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2014年2月19日星期三

LEDs turn out the light on incandescents and CFLs

LED-CFL-incandescent Light bulbs have evolved from the standard incandescent (right) to compact fluorescents and now LEDs (left), which come in a variety of shapes — some quite familiar in appearance.


Light bulbs have evolved from the standard incandescent (right) to compact fluorescents and now LEDs (left), which come in a variety of shapes — some quite familiar in appearance.


Most people have accepted that it’s all but over for old incandescent bulbs. But CFLs—compact fluorescent bulbs, the titular replacements for incandescents—may be rapidly becoming extinct as well.


LEDs or light-emitting diode bulbs are the next lighting generation, and they’ve made significant advances in the last couple of years. I’ve been testing dozens of bulbs from companies such as Cree, GE, Lighting Sciences, Sylvania, and Toshiba, and found that not only are LEDs a better alternative with superior lighting characteristics, they offer more features than any previous lighting technology—as long as you understand how they are rated and what to look for.


LEDs offer several advantages. First and foremost is the fact that LEDs are more efficient, saving electricity—and money. A typical 60-watt replacement LED actually uses just 11 watts to produce the same brightness. They can also replace everything from reading lamps to overheads, although LEDs vent heat from the base of the bulb and so are not appropriate for completely enclosed fixtures.


Compared to CFLs, LEDs do not contain hazardous, mercury-tinged gas, and they can withstand being turned on and off repeatedly without reducing their life span. LEDs also come on instantly, unlike CFLs that typically have to warm up (which is why some people just leave them on all the time). Most LEDs are also dimmable (an expensive feature for special CFLs), and they do not suddenly burn out without warning (LEDs gradually lose their brightness before failing).


The solid-state components of LEDs can also make them potentially shock resistant and virtually unbreakable, depending on the kind of glass used. I accidentally dropped a couple of Sylvania’s Ultra bulbs from a height of about five feet onto a living room carpet. No broken glass, no poison gas, and the Sylvania bulbs still worked perfectly.


The biggest downside to LEDs has been their price. Just a couple of years ago, 60-watt equivalent LEDs were $40 each or more. Today, however, the price of such A19 (standard household lamp bulb sizes) bulbs has dropped to under $10 each. That may still sound like a lot of money, but these bulbs have a usable life span equal to about 30 to 50 incandescent bulbs or 3 to 5 CFLs. In other words, based on 3 hours a day of use, an LED bulb may last you for over 20 years.


So why are some LEDs so expensive and why do some emit harsher light than others?

To understand what you’re buying and the kind of light you’ll get, you need to know a little about LED specifications.


Rather than looking at wattage ratings or replacement equivalence ratings, you should look at the lumen’s rating of a bulb to see how bright it will be. An 800 lumens rating, for example, is about typical for replacing a 60-watt incandescent bulb.


Color temperature indicates what kind of light the bulb will emit. A “soft white” bulb that has a comfortable yellowish light similar to incandescents of old will have a color temperature of 2400 to 2700 K (K is for Kelvin). A “clean white” LED bulb that has less yellow and a whiter glow will have a 3000 K rating. “Day light” or “natural white” bulbs will have a 4000 or 5000 K rating.


These bulbs, called “cooler” because they have a bluish hue even though they have a higher K rating, look harsh to some viewers but can be ideal in certain situations. I found 5000 K bulbs worked extremely well in lamps that were near a window, mimicking day light on cloudy days. A GE lighting expert told me that folks in the sunny south tend to prefer “day light” bulbs; those in the darker (and colder) northeast tend to prefer yellowish LEDs.


However, brightness and color temperature ratings alone will not tell you how certain colors or shades appear under a particular bulb. For example, while sorting laundry under a 5000 K, 800 lumens Cree day light bulb I found a pale pink shirt looked white but under a soft white 2700 K bulb from Cree with the same lumens rating the shirt was obviously pink. The reason for the difference is how accurately a given bulb displays the full spectrum of light.


So-called CRI or color rendering index numbers are supposed to give shoppers a way to judge how a bulb will look in terms of revealing colors, but the numbers can be deceptive. Both Cree bulbs, for example, had CRI’s of 80 (as do most household LED bulbs). But the CRI number doesn’t tell you where in the color spectrum the light falls short or may over emphasize a given color. Another design from Lighting Science, for example, has the same CRI as the Cree bulbs but uses a special filter to remove specific wavelengths of light and encourage melatonin production to improve sleep patterns, according to the company.


If color accuracy is very important to you, invest in higher CRI bulbs. These are sometimes called “enhanced spectrum” bulbs or use brand names like GE’s Reveal bulbs. These lights have a higher CRI of 90 or more and colors have a crisper appearance under them. But expect to also pay more for high CRI bulbs; a 60-watt replacement GE Reveal LED is just under $20, for example.


Still for all these nuances, even 80 CRI rated LEDs are much more accurate than CFLs. In the future, you may also be able to tune your LED lights, yellow for late at night, whiter for overcast days. In fact, Philips already offers a $200 Hue 3-bulb lighting package that you can program from a smartphone.

In the meantime, there’s no reason to buy CFLs, which are yesterday’s technology. LEDs are safer, brighter, and better.



LEDs turn out the light on incandescents and CFLs

2014年2月12日星期三

Cree Improves CXA Array LEDs for LED Industry’s Highest Lumen Density

Durham North Carolina-based Cree Inc., has launched three new LED arrays with double the light output of existing CXA LED arrays without increasing the size. According to Cree, the XLamp® CXA2590, CXA1850 and CXA1310 High-Density LED Arrays have an unprecidented increase in lumen density. Cree asserts that this new level of lumen density creates new levels of light intensity, enables the complete replacement of ceramic metal halide (CMH) light sources, expands the abilities of LED spotlights, and makes possible applications that could not be addressed by previous LED technologies.


Cree Improves CXA Array LEDs for Industry’s Highest Lumen Density Cree’s improved CXA Array LEDs with industry’s highest lumen density unlock new designs and applications for LED lighting


“The beauty of these new high-density LED arrays from Cree is that they are helping us bring products to the market that currently don’t exist,” said Mike Wang, vice president, lighting engineering, Edison Price Lighting, Inc. “Never before have we been able to harness such a large amount of light in such a small package, which can help us improve our lighting designs and address a number of applications that we previously could not.”


Cree says that the CXA2590 Array’s emission of more than 15,500 lumens from a 19 mm light source, makes possible luminaires with the same center beam candlepower (CBCP) and light quality of a 150-watt CMH light source at lower power, with longer lifetime and better control. Delivering more than 9,000 lumens from a 12 mm light source, the CXA1850 LED Array provides the same CBCP and light quality as 70-watt CMH while using half the power. Cree notes that the CXA1310 LED Array delivers more than 2,000 lumens in a 6 mm light source. According to Cree, this gives lighting manufacturers the opportunity to design smaller, more efficient track lights, reduce the size of halogen replacements by half and deliver twice the CBCP of CMH at 30 percent less power.


“Having access to such intense light sources without having to account for lots of variation in size is a tremendous benefit to our product design process,” said Seok-Ki Park, CEO, Hwang-Duck Engineering Co., LTD. “We have the flexibility to increase our design options while protecting our investment in ongoing product development.”


Like all CXA LED Arrays, the new arrays are characterized and binned at 85°C, available in ANSI White and EasyWhite® color temperatures (2700K – 6500K), and with CRI options of 70, 80 and 95. Samples of all three new high-density LED arrays are available now and production quantities are available with standard lead times.


About Cree, Inc.


Cree-LED-logo Cree-LED-logo


Cree, Inc. is a global, industry-leading manufacturer of lighting-class LEDs, LED lighting technologies, and semiconductor solutions for radio frequency (RF) and power applications. Cree is paving the way for the LED lighting revolution by producing long-lasting, energy-efficient LED lighting, rendering traditional technologies obsolete.


Cree’s LED Components and Modules division includes the market’s brightest and most reliable lighting-class LEDs, including the Cree XLamp® LED portfolio. By featuring light that is both efficient and beautiful, Cree LED components and modules offer lighting manufacturers and designers high-performance LEDs and LED modules that lower system cost.


Cree leads the industry in brightness and reliability for power LEDs with its XLamp LED family. Through XLamp LEDs, Cree is enabling the lighting industry with efficient LED light. With the largest family of high-performance, commercially-available LEDs, Cree has the right LED for your design.


Cree LEDs in our shop



Cree Improves CXA Array LEDs for LED Industry’s Highest Lumen Density

2014年2月11日星期二

When (and Where) Solar LED Lighting Makes Sense

Right now, very few businesses or real estate development companies would think first about using solar panels to run their outdoor lights, but in places where’s no established cabling, solar lights really can make sense from an economic and efficiency standpoint. And I’m not just talking about in emerging nations.


In the past six months, I’ve spoken with two companies that are pioneering the commercial market for these applications (the residential market is a separate animal): Sol Lighting, a Palm City, Fla.-based company that specializes in outdoor LED lighting technology; and Clear Blue Technologies, a Toronto-based maker of lighting controls and other smart grid components that is testing the viability of off-grid solar and wind-powered lights.


The size of the overall commercial outdoor lighting market is estimated at $11 billion. Within that, there’s a pronounced shift to LED technologies. In 2012, for example, 54 percent of the 2 million luminaires installed along roadways and tunnels around the world were LED format, reports Strategies Unlimited in its January 2014 report on outdoor area and street lighting. Another forecast from Navigant Research predicts shipments of smart, LED-based street lights will top 17 million by 2020.


No one appears to have cooked up a reliable separate market forecast for the niche solar sector, but Sol in particular, has made its presence felt globally over its roughly 20 years of existence. As of November 2013, it had installed more than 60,000 systems in 60 different countries, representing more than 10 megawatts of solar capacity. (That’s about 840,000 square feet of solar panels and enough lights to illuminate a nine square-mile parking lot.)


“The $11 billion-plus commercial outdoor lighting market is experiencing a solar and LED renaissance,” said Dibs Tailor, president and CEO of Sol Lighting, in a statement. “This 10 megawatt milestone confirms our leadership in this space and is a testament to our superior design, manufacturing and technology capabilities. By carefully integrating cutting-edge photovoltaic, LED and battery storage technologies into high-quality outdoor lighting products, we have made solar lighting very cost-effective and even more reliable.”


When I spoke with Tailor, he said roadway lighting such as the company’s 20/20, 10/10 and Greenway systems account for the vast majority of sales, although Sol sells integrated systems for bus stops, transit shelters, signs and emergency response.


In the United States, Sol is winning deals related to new construction projects, where there is little or no existing lighting infrastructure. Two examples include the Los Angeles County Arboretum, which couldn’t install grid-tied lights because of concerns over root systems across its 127-acre grounds; and the Top Gun Flight School in Fallon, Nev., which put them near aircraft fueling stations and power sub-stations. In both cases, the installations were meant to improve security. A third installation, this one for 146 systems, helped a swap meet business in Las Vegas add night-time events quickly while avoiding major new construction.


Sol’s technology was also used by Premier Homes in Richmond, Va., to add 21 lighting poles throughout a 40-home residential development.


Solar-LED-street-lights Added as an afterthought, these solar lights in Richmond cut installation costs in half for the developer.


The lights were actually an afterthought, one that didn’t emerge until after all the wiring and cabling for other utilities had already been buried, said Sean Bowers, chief operating officer for Premiere. “People were leaving lights on to brighten up the alleys,” he said.


Together with the city, the developer determined that solar lighting was a far more cost-effective way to put in lights than the traditional alternative: a savings of nearly $600,000 for the installation, not to mention the ongoing electricity cots, Bowers said. “It wasn’t very hard to learn how to work with these things,” he added.


So far, the installation has survived two hurricanes with no issue, and Premiere plans to use the same lights in another Richmond housing development, Bowers said.


It’s not realistic to expect solar lighting to become the norm for retrofits for years – if you take out the installation concerns, it’s tough to make the cost argument. But increasingly, the technology will find traction in locations where safety and grid infrastructure are of equal concern.


Aside from Sol and Clear Blue, some of the other companies with a particular focus on developing this emerging market include Solar Street Lights USA, OkSolar.com, Solar Lighting International, Solar Electric Power Co., and Silicon Solar.



When (and Where) Solar LED Lighting Makes Sense

2014年2月6日星期四

LEDs Change Thinking About the Light Bulb

Lights are no longer just for lighting. With the development of LED lamp technology, the lowly light bulb is doing more than turning on and off. A lamp can be the centerpiece of an environment meant to improve health, moods and even food.


LEDs can create light in multiple colors, generate less heat and use a fraction of the energy of older types of bulbs. And LEDs can be controlled remotely from a PC or smartphone app, as programmable as a television.


“There’s a tremendous potential for LED lighting to go beyond illumination,” said John Strainic, General Electric’s general manager for consumer lighting. “We’re asking people to think about lighting as more than just an impulse purchase.”


Because of the LED manufacturing process, the light that the technology creates is weighted toward the blue end of the spectrum. That is true whether the LED is used in a light bulb, a tablet or a television display.


Philips sells a range of energy-enhancing lights, including the goLITE BLU, a panel of blue LEDs. Philips sells a range of energy-enhancing lights, including the goLITE BLU, a panel of blue LEDs.


That blue light has its advantages: Blue stimulates a photoreceptor in the eye that reduces melatonin production and helps a person stay awake.


“You have to start thinking of light as a drug,” said Terry K. McGowan, the director of engineering for the American Lighting Association, a trade group.


That is why Lighting Science, an LED manufacturer, is now selling Awake and Alert, an LED lamp that keeps people pumped up by pumping up the blue. Conversely, the company’s Good Night lighting product reduces the blue output, helping people sleep. This summer, Lighting Science will offer its Rhythm Downlight, a lamp controlled by a smartphone app that adjusts blue light based on a user’s sleep schedule.


“The Awake and Alert lamp does not look brighter, but our circadian system sees it as such,” said Robert Soler, Lighting Science’s director of lighting research. “We always felt that there was so much more you can do with light than just increase vision.”


awake-alert-LED-lamp The Awake and Alert, an LED lamp from Lighting Science, pumps out blue light, which stimulates a photoreceptor in the eye that reduces melatonin production and helps a person stay awake.


Philips sells its own range of energy-enhancing lights, including its Wake-up Light and — to combat winter blues — the goLITE BLU, a panel of blue LEDs.


In Europe, Philips is experimenting with its HealWell system in hospitals. By changing colors based on time of day, it encourages a patient to wake up, feel more relaxed and sleep more easily. At a field study at the Maastricht University Medical Center in the Netherlands, cardiology patients were found to sleep longer and experience reduced depression.


In the United States, Lighting Science is working on a similar system, and expects to offer products by the end of this year. “Unfortunately, many hospitals have removed solariums, but lots of studies have shown that they improve recovery time,” said Mr. Soler of Lighting Science.


While the ability to alter an LED lamp’s color opens up new uses for light, the fact that LEDs can be remotely controlled significantly changes their potential.


With Osram Sylvania’s ULTRA iQ system, users can program lamps to turn on when a key is put in the lock. Philips’s Hue system, on the other hand, allows users to create their own lighting moods and then send those instructions to special lamps via a smartphone app. The lights can also be programmed to respond to specific events, such as by glowing a prescribed color when it is time to remove the roast from the oven.


tabu-lumen-TL800-led-lap-bluetooth-smartphone Tabu’s Lumen TL800 lamp uses Bluetooth connectivity to control the lamp from a smartphone, allowing the user to change colors, dim the bulb and synchronize lighting effects to the rhythm of a song played on the phone.


Tabu’s Lumen TL800 lamp uses Bluetooth connectivity to control the lamp from a smartphone, allowing the user to change colors, dim the bulb and synchronize lighting effects to the rhythm of a song played on the phone.


But synchronizing lighting to events is much more than a parlor trick. Philips has designed lighting systems that decrease growing times and increase yield for greenhouse vegetables and flowers, by using a light’s specific hues.


In the Netherlands and Canada, among other places, tomato and vegetable growers are using Philips’s LEDs to improve bulk, increase fruit growth and reduce vegetable maturation time while reducing energy costs.


“We find the optimal light recipe for the grower,” said Udo van Slooten, a Philips Lighting general manager for horticulture.


Within the next few years, the world’s major lighting companies expect to expand LEDs’ connected capabilities, particularly with sensors.


For example, sensors could tell how many people are in a room and their location, and direct the proper amount of lighting to where it is needed. Medical patients prone to agitation could be calmed once facial recognition technology identifies them and changes the hue of an examining room to more calming tones. When older people enter a room, lighting intensity can be raised to compensate for their decreased ability to see.


“Today, lighting is becoming an appliance, like a blender,” said Mr. McGowan of the American Lighting Association. “I tell people when they move, they should take their LED bulbs with them.”



LEDs Change Thinking About the Light Bulb

2014年1月16日星期四

Will local councils see the light on LED technology?

Shanghai gears up for green lighting UK councils need to follow the example set by cities such as Shanghai, where LED lighting illuminates the elevated highways. Photograph: Imaginechina/Corbis


Visitors to the Commonwealth Games in Glasgow this summer will find a city transformed by the £0.5bn poured into new sporting venues and beefing up the city’s infrastructure.


But there is an even more fundamental transformation under way in Scotland’s biggest city. By next summer, it will be firmly on track to becoming a world-leading “smart” city, having won £25m from the government’s Technology Strategy Board to show how a city can use cutting-edge digital and wireless technology to provide services such as roads, security and lighting to its citizens more efficiently, while cutting CO2 emissions.


And lighting is one of three key areas where Glasgow is trying to shine as a smart city. In November, the council announced that by next summer the sulphurous orange glow of 10,000 sodium street lights will be replaced with the crisp white light of light-emitting diodes (LEDs) and compact fluorescent bulbs, cutting the city’s energy and maintenance bills.


But the really smart bit is that Glasgow will test the way LED lights, unlike their technological predecessors, can be equipped with digital sensors allowing them to be controlled remotely, and to respond to changes in the local environment, such as an increase in traffic. Such intelligent controls can push the average energy savings with LED lighting from 50% to 70%, according to the European commission.


Yet a recent roundtable discussion on the future of lighting in cities – hosted by the Guardian in association with GE Lighting – heard that only 10% of new public streetlights are LED based. So what is preventing LEDs from being installed in every house, skyscraper and city street? How do you flick the switch on the LED revolution?


Ben Ferrari, director of corporate relationships for the Climate Group, a not-for-profit organisation working globally with governments and business on the green economy, told the workshop that LED could be a critical weapon against climate change, as lighting accounts for almost 20% of global electricity use. At the recent UN climate conference in Warsaw, the Climate Group renewed its call for all new public lighting globally to be LED by 2020.


“If we are facing peak emissions this decade, scale for LED isn’t just desirable,” Ferrari said. “We have to get where we are going, and we have to get there quickly.”


Energy savings


The roundtable – which included representatives from industry, law, environmental groups and government-funded bodies – agreed that the technology is now ripe for take-off. One of the biggest barriers to LED competing in the market for general lighting has been high cost. But research from management consultancy McKinsey shows that costs are dropping 30% a year. And efficiency rates and life-spans are going just as quickly in the opposite direction, so that by 2020 the energy saving compared to today’s conventional lighting is expected to reach 90%.


Guardian executive editor Jo Confino, who chaired the discussion, asked if the technology is changing too quickly, making councils reluctant to invest in what is effectively a moving target.


Ronald Hendrikx, partner at Bird & Bird, a law firm that is working with the Department of Energy & Climate Change on the roll-out of smart meters, said that with the rapid growth of companies in the sector, “the amount of choice available is baffling. You don’t know where to stop or start.” Falling costs are also an excuse for cities to put off a decision.


But Iain Watson, director of energy efficiency for the Green Investment Bank (GIB), said the savings in energy and maintenance costs that councils can make by acting today are already so substantial that delay no longer makes financial sense.


Although Glasgow’s decision to replace its street lights was independent of the smart city funding, the money will be used for pilot projects that pair LED lighting on a stretch of road with smart controls and wireless technology, enabling city planners to monitor traffic, air quality, congestion and noise levels, and respond accordingly.


The LED replacement is a simpler proposition. It costs Glasgow £8.5m a year to power and repair its ageing light network. Since the new lamps are expected to use less than half the energy of the old ones, and last three to seven times longer, the council said the £9m investment in LEDs will be quickly recouped.


Strategic thinking


But recognising the savings requires strategic thinking at a high level, Watson said. “The feeling from the GIB is that we are on the cusp of local authorities understanding the technologies, but you need a visionary to drive forward support for it, because it doesn’t sit in any one team. It needs to get up to the chief executive level to see the benefits, because it is not just the kit that you buy, but the savings you are going to get from it over the long term.”


Dan Palmer, head of market development for the British Standards Institution (BSI), agrees.


“A lot of technology works and could be deployed by cities, but the city isn’t able to act as an intelligent customer,” Palmer said. He added that cities are also unaccustomed to working in partnerships with companies in smart city projects and at a level that spans different departments. “There isn’t a single person whose responsibility it is.”


To overcome this, the BSI was asked by the Department for Business, Innovation and Skills to come up with smart city guidelines and standards, and it has been working to share the experience of Glasgow and its industry partners with other councils. The first standard will be published next month.


Ersel Oymak, innovations technology manager at Cisco Systems, which is working on Glasgow’s smart city initiative, said one way to sell LED lighting to cities is to focus on its potential to have social benefits that extend far beyond lighting, if used intelligently. Studies have shown that patients in hospital recover better and students achieve more in school if exposed to lighting conditions that adapt to their needs. “We need to raise awareness in local authorities so that they grasp this is the sustainable and strategic thing to do,” Oymak said.


But Agostino Renna, chief executive officer of GE Lighting, said in his experience few cities are capable of such strategic thinking. And the focus on ever-smarter technology runs the risk of putting them off simpler solutions, such as LED replacement.


“I am convinced the answer isn’t more technology,” he said. “I’m a big fan of evolution instead of revolution. Small things that work well, done repeatedly by a lot of people, can make a big difference.”


Several participants called for technology companies to focus less on technology and more on innovative business models that will remove the upfront costs of LED lighting from hard-pressed UK councils facing budget cuts. Bulen Hourshid, director of value engineering at consultancy Aecom, said: “Local authorities have an annual budget. Green technology is all about getting investment back over time. But councils don’t want to invest in something that won’t give them payback within two to three years.”


Dax Lovegrove, head of business engagement at WWF, said one answer could be performance contracts. He pointed to the success of SolarCity in the US, which has cornered the US solar panel market in a few short years by selling solar energy as a service, with no upfront cost to customers to buy and install the solar panels. SolarCity’s customers sign a contract agreeing to pay a monthly fee for electricity that is cheaper than they would pay to their local utility. Financing comes from banks, which get a return for the life of the contract.


John Raspin, partner in the energy and environment group at legal firm Frost & Sullivan, said such performance contracts could be the way of the future. “There needs to be a fundamental thinking shift, from selling a product or solution to selling an outcome.”


Several participants lamented the lack of political will to tackle energy efficiency, with cash-strapped councils neglecting their climate-change targets and the UK government considering scrapping green levies and reviewing its targets for cutting CO2 emissions.


In Brussels, European legislators, who boosted the LED industry by imposing a phased ban on incandescent bulbs, are debating setting binding targets for energy-efficiency savings by 2030, a move that would be another huge fillip to the industry. But Ferrari said strong opposition from business lobby groups could scupper these efforts unless progressive companies champion the cause.


Like GE’s Renna, he thinks the push for LED shouldn’t be mixed up with the drive for smart cities, which will take many years to bear fruit. “The message to cities is don’t wait. There are lots of practical solutions you can do now,” Ferrari said. “They don’t prevent a smart future, but they don’t wait for it, either.”



Will local councils see the light on LED technology?

2014年1月14日星期二

ABI Research: LED and Visible Light Communications Could be Key to Indoor Location Market

lifi_environment lifi_environment


While GPS (global positioning satellite) technology works well outside to give a person’s location, finding your location indoors requires different technology. LED/visible light communication technology is one method of establishing a person’s location indoors. While the indoor location market is relatively nascent, companies are already aggressively addressing next-generation, high accuracy (sub-5m) technologies to ensure they are best placed to dominate the emerging multi-billion dollar retail technology market. According to ABI research LED/Visible light Communications (VLC) is tantalizingly close to providing huge performance benefits without the usual cost implications.


ABI Research’s latest report examines the case for LED/VLC technologies in the high-accuracy indoor location space. Senior analyst Patrick Connolly commented, “As a standalone location technology, LED/VLC has some inherent problems, including the need for line-of-sight and a complex value chain. But as part of a hybrid solution it becomes indoor location on steroids, offering ubiquitous sub-meter levels of accuracy in three dimensions, and even has the theoretical possibility as a data communications alternative to Wi-Fi, etc.”


Connolly added, “Most implementations under consideration are already compatible with existing smartphone technology today. If this can be incorporated with negligible cost at the infrastructure side as retail stores naturally migrate to LED lighting, it immediately becomes a no-brainer. However, this means it will also require the backing of at least one of the big four LED OEMs.”


ABI research points out that major OEMs, start-ups, and universities are investigating a host of competing technologies including: sensor fusion, audio/ultrasound, magnetic field, UWB and future evolutions of BLE and Wi-Fi, such as Quuppa’s HAIP technology.


Practice director, Dominique Bonte noted, “Despite the inherent barriers, many companies continue to research and develop in the LED/VLC area, because the technology is potentially so powerful. With large companies like Qualcomm, Casio, Motorola (via Bytelight investment) and Intel joining start-ups in this area, there is now the necessary muscle to force this technology into the mainstream.”



ABI Research: LED and Visible Light Communications Could be Key to Indoor Location Market

2013年11月29日星期五

Mid Power LED EMC/PCT/Flip-Chip Fight for Market Share

super-white-polycyclohexylene-dimethylene-terephthalates-PCT-compounds super-white-polycyclohexylene-dimethylene-terephthalates-PCT-compounds


With the LED lighting market booming and LEDs in backlight spec changes, the mid power spec market had taken center stage within the LED industry this year, already surpassing the high power market in initial output value. LED drivers with EMC lead frames can reach 1-2W power output which can supply the mid power and mid/high power LED market. LED package manufacturers are expanding EMC production capacity. After improvements to PCT lead frame materials, LED package manufacturers plan to introduce PCT products into the mid power market. Flip-chip products are also making their way in the 2014 mid power market.


EMC products have become a rising star this year amid the emerging mid power market. Nichia has released the popular EMC 757 series on the market this year. With EMC products able to be employed in direct-lit backlighting and the lighting market, as well as rapid price declines, LED package manufacturers have begun expanding EMC product development and production capacity.


Nichia has come out on top among LED package manufacture for EMC production capacity, with single month production reaching 800KK. Following close behind is Chinese LED package manufacturer Lighting Optoelectronics with 2700KK. Among Taiwanese LED package manufacturers, AOT single month peak production reached 1200KK. The recent acquisition of China Electric, GIO Optoelectronics has a single month production capacity of 80KK and Everlight reached 60KK. Each manufacturer plans to continue with EMC production capacity expansion in 2014.


PCT lead frame driver power has increased from 0.7W-1.2W through improvements by Taiwanese and Korean manufacturers. This has not only distanced PCT and PPA lead frames but also pushed PCT into the once EMC dominated 0.7W01.2W market. High cost/performance ratio (C/P) PCT products have also become an important mid power product line for some LED package manufactures in 2014.


Initial output value for the mid power market has already surpassed high power in 2013. Philips Lumileds originally focused on the high power market, but in 2013 turned their attention towards mid power. Philips Lumileds has already launched several mid power products and plans to also use a smaller flip chip with better lumens per area, wider beam angle, and five-sided emitter in the mid power market in 2014, showing how much importance the company places on the mid power market.



Mid Power LED EMC/PCT/Flip-Chip Fight for Market Share

2013年11月23日星期六

How One Light Bulb Can Change Your Life

What a Difference a Light Bulb Makes? People in developing countries are leapfrogging our 19th century technology.


An M-Kopa solar system, in Kenya. An M-Kopa solar system, in Kenya.


There’s a simple technology that transforms our lives every day, and yet we rarely give a passing thought to its existence (unless of course it flares out at an inopportune moment): the light bulb. And yet for more than a billion people in the developing world who lack access to electricity, this simple device can make an unimaginable difference.


Thomas Edison didn’t actually invent the light bulb, as is commonly credited; rather, he built on decades of research and perfected a practical method for delivering light powered by electricity. But because of Edison, in 1882 the first light bulbs graced buildings in New York City. A New York Herald reporter described it: “In stores and business places throughout the lower quarter of the city, there was a strange glow last night. The dim flicker of gas, often subdued and debilitated by grim and uncleanly globes, was supplanted by a steady glare, bright and mellow, which illuminated interiors and shown through windows fixed and unwavering. … It was the glowing incandescent lamps of Edison, used last evening for the first time.”


A family with a light bulb is a family with opportunities.

We’ve been reaping the benefits ever since. Consider this: Night drifts in through the window, and the room darkens. You casually stroll over and flip a switch, a movement so ingrained you barely notice you’ve done so. The bulbs blaze, the dusky shadows outside disappear. Your home once again turns bright as day. You read a book, maybe cook dinner, and the kids in the house settle in to do some homework.


But for people around the world who can’t flip that switch, their lives are ruled by that great ball of flaming plasma passing across the sky. To the extent that they do illuminate their homes after the sun dips below the horizon, they rely on candles or kerosene, both of which are expensive, dangerous, and polluting. In some areas of Africa, people spend from 10 to 30 percent of their income on refilling kerosene lamps, which are little more than tin cans with an open flame. Burning them releases millions of tons of carbon dioxide per year and contributes to climate change. And igniting them in a closed home can equate to smoking a couple of packs a cigarettes a day. Smoke from burning kerosene irritates the eyes, so students extinguish them instead of doing homework.


On the flip side, a family with a light bulb is a family with opportunities. Women can set up small shops in their homes, for instance, to sew or cook for extra money. Kids can study for school: A light may keep a girl or boy from dropping out. Families read, or may use the light to set up classes to teach others to read. A shop owner keeps his or her store open longer, earns more money, sends more kids to school—and those kids can then use the glow to read in the evenings. That’s why there are dozens of organizations around the world dedicated to nothing more than making sure that people have access to light.


Many of the communities without access to regular electricity are now leapfrogging our ancient 1800s technology. The ubiquitous incandescent bulb, the one perfected by Edison more than a century ago, basically works via a filament that, when electricity passes through, burns hot enough to emit light. But about 95 percent of that energy is wasted as heat. As a result, incandescents are being phased out by many governments; the U.S. slowly began phasing them out in 2012. Compact fluorescent lights, or CFLs, were invented in the 1940s and are significantly more energy efficient. But for decades their cooler tone turned off many consumers (though the color has gotten warmer, and CFLs have been replacing incandescents).


Light-emitting diodes, or LEDs, are the top new technology in lighting. When electricity is applied to an LED, electrons jump from one layer of material within the diode to another and give off light. They’re hardy, they last for years, and they’re incredibly energy efficient. The problem is that white LEDs are pricey. Americans might weigh the options and decide: Why shell out around $10 to $20 for an LED, even if it will last perhaps 25 times longer than the cheap incandescent?


But nearly unbreakable LEDs are easily paired with solar power, and so in poor communities, what seems excessive to us becomes a long-lasting investment that bypasses both inefficient incandescents and the lumbering power grid. Some nonprofits, such the Light Up the World Foundation, pair solar panels with LEDs. The organization Solar Sister provides women in Africa with training, marketing, and an inventory of solar-powered light bulbs. M-Kopa in Kenya provides a financing scheme along with the requisite technology; the organization sells an entire home system with solar panels, lights, and a cellphone charger, for about $200. Customers pay as little as about 45 cents a day and can pay off the debt in a year.


Companies are also focusing on the design of that LED light in the first place. D.light Solar provides rugged lights and chargers to M-Kopa and has already sold more than 1 million units. Nokero, founded in 2010 (the name comes from “no kerosene”), just this October released the latest version of their solar-powered lanterns. The elaborate $45 version can either plug into the grid or recharge via solar panels, and it includes outlets that allow users to power their mobile phones. Their simplified solar-powered bulb is only $5 to $6, the cheapest on the market. They’ve already sold hundreds of thousands of units throughout the developing world through commercial distributors, nonprofits, and governments.


That light can do more than improve someone’s financial situation: A light bulb can save a life. When Laura Stachel, an obstetrician and gynecologist in California, was on a research trip to Nigeria in 2008, the lights went out during an emergency C-section. She was able to supply her flashlight, but she quickly realized that surgeries were postponed, and people died, simply due to a lack of light. This was true not only in Nigeria, but all around Africa. She returned home and with her husband designed a so-called “solar suitcase,” now the foundation of her nonprofit, We Care Solar. The suitcases include solar panels to be mounted on a hospital roof, a battery for energy storage, rechargeable LED lights and a headlamp, walkie-talkies for communication, and a fetal heart-rate monitor. Today, these solar-powered lights are saving lives in 27 countries in Africa, Asia, and Central America. (Stachel was named a CNN 2013 Top 10 Hero.)


It may seem like a throwaway technology to us. But for perhaps 20 percent of the world population, a functioning, reliable light bulb is a godsend.



How One Light Bulb Can Change Your Life

2013年11月21日星期四

Tivoli Introduces Flexlum: a flexible, low voltage LED system

Tivoli’s Flexlum is a flexible, low voltage LED system well suited for delineating architectural details in both interior and exterior applications. This versatile, LED system delivers consistent bright recessed illumination for both straight and curved applications with a choice of three product installation configurations.


tivoli-introduces-flexlum-a-flexible-low-voltage-led-system tivoli-introduces-flexlum-a-flexible-low-voltage-led-system[/caption]


Patent pending flexible low voltage LED system (Tivoli)


The flexible curved channel accommodates bends and arcs with up to a 6 foot radius and mounts in 4 feet and 8 feet, interconnecting field-trimmable sections. The straight channel can be mounted vertically or horizontally to illuminate a façade or recessed cove with linear design. The flexible LED module strand can be mounted, without a channel, using screws or double-sided tape and features flexible variable spacing of LED modules from 2.75 inches to 4.5 inches.


Available with an optional diffuser, Flexlum utilizes energy efficient SMD LEDs with 50,000 hour life in a choice of Red, Yellow, Blue, Green, Deluxe Warm White (2,800 K), Warm White (3,200 K), Neutral White (4,100 K) and Cool White (5,000 K) with up to 130 Lumens per foot. This energy efficient linear system operates at between 2 to 4 watts per foot with an efficacy of approximately 49 lumens per watt depending on the color choice.


IP65 rated to withstand the elements, Flexlum is field cuttable and can be maintained in the field with replaceable LED modules and comes with a standard 5-year warranty. Available with smooth full range dimming to 1 percent, the Flexlum provides a suitable, low voltage solution for accenting architectural details on bridges, building exteriors, coves and building facades.



Tivoli Introduces Flexlum: a flexible, low voltage LED system

Intematix Introduces Remote Phosphor Product for 150W LED Retrofit Lamps

Intematix-150W-Remote-Phosphor Intematix-150W-Remote-Phosphor[/caption]


Intematix Corporation, a Fremont, California-based innovator of patented phosphor solutions for LED lighting, announced the volume shipments of their remote phosphor component that enables 150W equivalent LED retrofit lamps. The new remote phosphor product for 150W LED retrofit lamps adds to the product family that already enables 40W, 60W, 75W and 100W bulb replacements with a similar omni-directional form factor. Intematix contends that this innovative form factor can deliver an incandescent-like 325 degree light distribution pattern.


“By applying this remote phosphor technology to the high end of the light bulb output range, we show 38% higher lumen output than bulbs available today,” said Julian Carey, Senior Director of Strategic Marketing at Intematix. “We are already seeing newly available, 2200-plus lumen LED light bulbs worldwide using this technology.”


Remote phosphor is a lighting system architecture in which a separate phosphor component emits white light after the phosphor component is exposed to light from blue LEDs. Intematix asserts that this architecture enables a reduction in LED component count and costs. Furthermore, the company claims that lighting uniformity and consistency are also improved and supply chains are simplified. This specific new ChromaLit® Contour product from Intematix has a light bulb reference design that includes: Three-way switching mode up to 2200 lumens; 2700K, 3000K & 5000K color temperature options; Standard color rendering options of 80 and 90CRI; 30 watts power consumption; 325 degree, omni-directional light meeting ENERGY STAR® requirements; Up to 25,000 hour lifetime. Intematix says that 150W equivalent LED light bulbs utilizing Intematix’s its ChromaLit remote phosphor technology are now available at major US retail outlets.



Intematix Introduces Remote Phosphor Product for 150W LED Retrofit Lamps

2013年11月18日星期一

Zhaga publishes new downlight and rectangular LED - Book 7 and Book 8 - module specifications

zhaga-based-prevaled-module-from-osram zhaga-based-prevaled-module-from-osram[/caption]


Zhaga has made the Book 7 specification for square or rectangular SSL modules, for use in indoor fixtures such as troffers, and the Book 8 specification for downlight LED modules available for public use.


The Zhaga Consortium has published its Book 7 and 8 specifications for LED light engines (LLEs), essentially placing the standards into the public domain for usage by any company. The new specifications, for modules focused on linear/square fixtures and downlights respectively, join Books 1, 2, and 3 that Zhaga previously made available for public use.


Modular solid-state lighting (SSL) technology in general, and Zhaga-based modules in particular, are meant to accelerate product development and in the case of Zhaga allow lighting manufacturers to choose from compatible LLEs offered by multiple vendors. We had a feature article on LED module technology in the October 2013 issue of LEDs Magazine. There are now Zhaga specifications, that the consortium calls books, to serve in a variety of indoor and outdoor fixtures types.


The Book 7 specification covers non-socketable LLEs, meaning that the module can’t be installed or replaced without tools, which depend on a separate driver module that Zhaga refers to as control gear. A Book 7 module would typically be fastened into a fixture with screws whereas some Books, such as Book 2, cover socketable LLEs can be installed or removed by hand with a twist/lock mechanism.


Book 7 covers a variety of square and linear form factors:



  • L28W2 — maximum length 280 mm × maximum width 24 mm

  • L28W4 (281 × 41 mm)

  • L28W6 (281 × 61 mm)

  • L56W4 (561 × 41 mm)

  • L6W6 (60 × 60 mm).


A fixture such as a recessed ceiling troffer could include one or more of the Book 7 LLEs depending on the size of the luminaire and the lumen output required. Typically a single control gear would drive all modules when multiple LLEs are used in a luminaire so that on/off and dimming controls are applied to all LLEs simultaneously.


Socketable downlight LLE


The Book 8 specification, meanwhile, defines a socketable LLE for downlight fixtures with integrated driver or control gear. Zhaga describes Book 8 modules as having a drum shape and are 95 mm in diameter and 45 mm in height. The light emitting surface can vary from 59 mm to 71 mm. Book 8 is very similar to Book 2; however , Book 8 defines larger modules.


Lighting manufacturers have been slower to achieve Zhaga certification for socketable LLEs thus far. We covered that issue in the aforementioned feature article. The mechanical intricacies of the twist/lock mechanism are much tougher to design to and to test and verify for compliance. The Book 8 LLE has a PHJ85d-type base with a diameter of 85 mm.


Zhaga also said that other Books, such as Book 5, will be published shortly now that testing and verification procedures are in place. Zhaga recently authorized test labs Dekra, UL, and VDE to certify Book 5 products. Moreover, the organization is working on additional module form factors to further diversify the fixture types supported by the portfolio.


The Zhaga website has a searchable database of all certified products that can also be searched by Book number.



Zhaga publishes new downlight and rectangular LED - Book 7 and Book 8 - module specifications

2013年11月16日星期六

Opel Developing Next Generation LED Matrix Lighting System

opel-developing-next-generation-led-matrix-lighting-system opel-developing-next-generation-led-matrix-lighting-system[/caption]


100 years ago, road traffic safety changed forever when automotive components company Bosch introduced the first electric headlights. Today, GM and Opel are at the forefront of the ever increasing improvement to headlight technology and road traffic safety.


Opel’s Adaptive Forward Lighting (AFL+) systems, available in a wide range of Opel vehicles, features up to ten headlight functions for a varying range of driving conditions. The variable Xenon headlamp beam automatically adapts to the driving situation, adjusting the distribution of the light beam depending on road and weather conditions with varying brightness for city driving, pedestrians, highways and country roads. The direction and intensity of the beam also self-adjusts depending on the steering angle and speed of the vehicle. And things continue to push forward.


Opel’s next generation headlight system, called LED matrix, provides glare-free high beam lighting that is constantly self-adjusting for varying driving situations. When lights from oncoming traffic are detected, individual LED’s are deactivated while the road remains constantly illuminated, preventing glare in the other drivers eyes.


Opel says it has been “intensively testing” the new headlight technology in prototypes. A study done by the Technical University of Darmstadt found that the LED matrix system allows drivers to spot objects on the side of the road 1.3 seconds faster at 80 km/h than what would be possible with xenon lighting.


“This is a good 30 meter difference,” says Ingolf Schneider, Supervisor of Lighting Technology at Opel, “That almost equals the braking distance required to come to a standstill from 100 km/h.” Opel says the LED matrix technology will be gradually rolled out across its model lineup over the next few years.


About Adam Opel AG


Opel_logo Opel_logo[/caption]

Adam Opel AG (Opel) is a German automobile manufacturer headquartered in Rüsselsheim, Hesse, Germany and a subsidiary of the American General Motors Company. The company designs, engineers, manufactures and distributes Opel-branded passenger vehicles, light commercial vehicles and vehicle parts for distribution in Africa, Asia, Europe and South America. Opel designed and manufactured vehicles are also sold under the Buick brand in the United States, Canada, Mexico and China, the Holden brand in Australia and the Vauxhall brand in the United Kingdom.



Opel Developing Next Generation LED Matrix Lighting System

2013年11月13日星期三

NIH award funds research into tiny LED devices that shine light on brain disorders

To better understand and one day provide improved treatments for depression, addiction and anxiety, researchers at Washington University School of Medicine in St. Louis are using tiny, electronic devices to identify and map neural circuits in the brain.


Portable optogenetic LED device Portable optogenetic LED device[/caption]


The innovative work has been recognized with a rare grant called EUREKA (Exceptional, Unconventional Research Enabling Knowledge Acceleration) that funds high-risk/high-reward projects. The National Institutes of Health (NIH) supports 12 to 18 such grants each year.


With the award, Michael R. Bruchas, PhD, assistant professor of anesthesiology, and his colleagues will conduct studies with micro-LED devices that his group recently co-developed with a team at the University of Illinois in Urbana-Champaign.


The work is part of the developing field of optogenetics, which uses advances in optics and genetics to control individual brain cells. For example, scientists can take a light-activated gene targeted at a particular type of neuron and insert the gene into a mouse. It then becomes possible to shine light into the animal’s brain either to get neurons to fire or to inhibit their activity.


In a recent study, Bruchas and his colleagues used the tiny electronic devices, which are thinner than a human hair, to tap into the internal reward system of mice, prodding their neurons to release dopamine, a chemical associated with pleasure, when the mice poked their noses through a hole in a particular part of a maze.


“Optogenetics allows us to zero in on specific populations of neurons and understand which ones are involved in complex behaviors,” Bruchas said. “What we learn from these studies will make it possible for us to target specific populations of brain cells that malfunction in depression, pain, addiction and other disorders.”

The four-year, $1.2 million grant will permit Bruchas and his team to develop specialized, optically sensitive G-protein-coupled receptors on brain cells that will make it possible to control cell signaling in the brain with light. Combining these new receptor tools with wireless micro-LED devices implanted in the mouse brain should allow the researchers to uncover more information about molecular and cellular events that underlie stress, addiction and depression.


Bruchas_secondary Bruchas_secondary[/caption]

For example, Bruchas hopes to isolate and map the brain networks involved in stress by studying how mice interact in their cages. A dominant mouse may limit a cagemate from moving about freely, creating stress that may be apparent in the mouse’s brain networks.


Although many scientists use optogenetic techniques to isolate pathways in the mouse brain, often those animals are tethered to wires. Bruchas and his colleagues have the advantage of studying animals that are able to move freely because the LED devices that he and his colleagues have developed are portable and wireless. With funding from the EUREKA grant, his team plans to make them even smaller and add sensing capabilities to measure dynamic changes in the brain’s chemical transmission.


The EUREKA grant is part of a program by the National Institutes of Health (NIH) to fund exceptionally innovative research projects enabling the establishment of novel concepts and approaches to solve important problems or open new areas for investigation.


Washington University School of Medicine’s 2,100 employed and volunteer faculty physicians also are the medical staff of Barnes-Jewish and St. Louis Children’s hospitals. The School of Medicine is one of the leading medical research, teaching and patient care institutions in the nation, currently ranked sixth in the nation by U.S. News & World Report. Through its affiliations with Barnes-Jewish and St. Louis Children’s hospitals, the School of Medicine is linked to BJC HealthCare.



NIH award funds research into tiny LED devices that shine light on brain disorders

Dialog announces an IC-level platform to support Ledotron controls in LED lighting

Products with digital dimming technology and communications with switches and sensors with no new wires are realizable with the new Dialog Semiconductor SmarteXite family of Ledotron-compatible ICs.
dialog-announces-an-ic-level-platform-to-support-ledotron-controls-in-led-lighting dialog-announces-an-ic-level-platform-to-support-ledotron-controls-in-led-lighting[/caption]


Dialog Semiconductor has announced the SmarteXite family of ICs and the initial iW6401 product for Ledotron-based solid-state lighting (SSL) products, along with a partnership with Sengled. The new family enables digital interconnects between LED-based lamps or luminaires, and adaptive-control elements such as switches and sensors that compose a solid-state lighting (SSL) system.


Ledotron is an initiative launched by Feller, Gira, Jung Merten, Schneider Electric, Radium, and Osram — primarily centric to Europe at the moment — that establishes a digital communication scheme for dimming. The communications between lamps or luminaires and other elements such as switches can run over the existing power line or via the use of wireless interconnects.


The iW6401 is a configurable digital IC that Dialog refers to as a driver IC, although as you can see from the nearby illustration, the IC is more a power-management IC. The power conversion circuits must be implemented separately from the iW6401. But the new IC, according to Dialog, is the first to implement the Ledotron IEC 62756-1 dimming protocol and will enable plug-and-play interconnected SSL products.


Apparently the IC, while integrating the Ledotron support, has no inherent connectivity beyond the chip level. But an I2C chip-level serial interconnect will allow SSL product developers to add power line or wireless interconnectivity, such as ZigBee or Wi-Fi, in a separate IC.
dialog-announces-an-ic-level-platform-to-support-ledotron-controls-in-led-lighting-2 dialog-announces-an-ic-level-platform-to-support-ledotron-controls-in-led-lighting-2[/caption]


Dialog is also touting the digital configurability of the iW6401 as a key factor in driving down the cost of SSL products including retrofit lamps. The company says that an LED lamp can be configured via software on a manufacturing line for settings such as color or brightness, potentially allowing a manufacturer to design one product and offer different versions with a simplified supply chain.


Dialog also announced a partnership with Sengled Lighting, a manufacturer of LED retrofit lamps that will presumably use the new IC. “Smart lighting is one of the most important growth segments in LED lighting, with digital dimming and wireless control as the next major steps in creating innovative products,” said Johnson Shen, founder and president of Sengled. “With Dialog’s SmarteXite family of LED driver products, we can accelerate our innovation cycles and create new lighting experiences for our customers.”


The partners also asserted growing popularity for the Ledotron technology. For example, Insta is a member of the Ledotron Marketing Alliance and has already launched a dimmer product. “With Ledotron we have created a digital dimmer for a digital light source, which resolves all compatibility and performance issues known from traditional dimmers. Beyond being retrofit, Ledotron makes LED lighting future-fit and smart-fit,” said Alexander Burgbacher, CEO of Insta. “The adoption of Ledotron in LED lighting is gaining momentum, as the integration into lamps is made easier with the adoption of the iW6401, the first in a range of smarteXite products from Dialog.”


About Dialog Semiconductor


Dialog-Semiconductor-Logo Dialog-Semiconductor-Logo[/caption]

Dialog Semiconductor PLC is a German-based manufacturer of semiconductor based system solutions. The company is registered in the United Kingdom but headquartered in Kirchheim unter Teck, a town in the Stuttgart metropolitan area. Dialog Semiconductor develops integrated circuits for power and motor control as well as audio and display processing. Their products are mainly used within mobile phones and the automotive industry. Dialog Semiconductor is fabless, but maintains own test and physical laboratories at its headquarters in Kirchheim.



Dialog announces an IC-level platform to support Ledotron controls in LED lighting

2013年11月11日星期一

Intematix and Philips Lumileds announce 203lm/W module demo

Philips Lumileds Luxeon T/TX LEDs combined with an Intematix remote-phosphor optic deliver light source efficacy of 203 lm/W in an SSL module developed by the duo as a technology demonstration.


intematix-and-philips-lumileds-announce-203-lumens-per-watt-module-demo intematix-and-philips-lumileds-announce-203-lumens-per-watt-module-demo[/caption]


Intematix has announced that one of its remote-phosphor optics combined with Philips Lumileds Luxeon T/TX LEDs in a technology demonstration has yielded efficacy of 203 lm/W at the light source level. The duo built the module, that at least for now will not be commercially sold, although the remote-phosphor optic and the LEDs used in the demo are readily available from the two companies to developers of solid-state lighting (SSL) products.


The demonstration relied on a rather cool CCT of 6000K that Intematix called a daylight spectrum, and that the company noted is located on the black-body curve, albeit with a CRI of 70. Certainly the cool CCT and relatively low CRI make high efficacy more easily achievable, although the accomplishment is still noteworthy.


“Remote-phosphor architectures lower cost, increase efficacy, and improve light quality in many of the consumer, commercial, industrial, and outdoor area lighting applications commonly deploying LED technology today,” said Yi-Qun Li, CTO of Intematix. “This result is a significant step along our innovation roadmap for phosphor solutions.”


Last year we had dueling articles from Cree and Intematix on the merits of remote-phosphor technology. We also had a recent feature in which Xicato asserted the color consistency advantages of remote phosphor.


Of course, the obvious question is why did Intematix and Lumileds decide to make a public announcement about the demonstration in module form, when apparently neither will offer the module for sale. Senior director of strategic marketing Julian Carey said, “Intematix remains a phosphor solutions maker. The module was developed as a technology demonstration to show how much performance can be obtained using remote-phosphor solutions.”


Lumileds certainly welcomed the chance to demonstrate the blue-pump LEDs in the Luxeon T/TX family that deliver wall plug efficiency of 76%. “This marquee performance simplifies a wide variety of thermally constrained applications such as 100W A19 bulbs and high-lumen candle lamps, and enables downlights with the highest efficacy in the industry,” said Jy Bhardwaj, senior vice president of R&D at Philips Lumileds.


Still, the question remains as to how popular remote-phosphor technology will be going forward despite any efficacy advantage. Lumiled’s parent Philips Lighting has moved away from remote phosphor despite success with designs such as the L Prize lamp. But Intematix does have new optics that have a near-white look in the off state.


“We expect more of our customers to come out with systems that have high performance using our remote phosphor solutions,” added Carey. Lumileds Bhardwaj said, “We’re very proud of this landmark performance of 203 lm/W as this was achieved using our latest commercially available LED technology and Intematix’s remote phosphor.”


About the Author

Maury Wright is editor of LEDs Magazine and Illumination in Focus.



Intematix and Philips Lumileds announce 203lm/W module demo

2013年11月6日星期三

silicone materials in LEDs can enable a more cost-effective efficacy

LED-silicone LED-silicone[/caption]


Optical silicones enable LEDs to compete for lighting applications. Kaz Maruyama, global industry director for lighting solutions at Dow Corning, states that the choice of silicone materials in LEDs can enable a more cost-effective efficacy boost than chip innovation in some cases.


As LED chips quickly approach their theoretical limits for efficient light output, incremental improvements to the LED die provide diminishing returns on investment. This presents a dual challenge to LED manufacturers, who are feeling the pressure to optimize the lumen-per-watt efficacy of their devices while simultaneously driving down costs. This challenge is particularly acute for manufacturers competing for the rapidly expanding opportunities in general solid-state lighting (SSL) applications — but optical silicones can help.


Lighting consumes nearly 20% of global electricity generation, according to the United Nations en.lighten initiative. This fact has not only prompted governments around the world to plan or implement stringent new energy-efficiency regulations, it has sparked growing competition from LED manufacturers for a share in the expanding general lighting market.


As designers look beyond the technological status quo to boost lumen output and streamline costs, many are showing interest in optical silicone technology. As a class of materials, silicones are driving greater reliability, performance, and cost efficiency in applications spanning the entire LED value chain. Easily molded, these versatile materials are finding application as optically clear encapsulants or highly reflective LED packaging elements. In either case, silicone technology offers expanded design latitudes for shaping light and improving LED reliability.


Silicones also deliver high thermal and photostability compared to organic materials, such as epoxies or plastics. This stability is an important consideration as LED designers increase the amount of drive current in their devices and decrease the overall size of lighting fixtures. Combined, these trends are pushing LED temperatures to 150°C and higher, which can cause conventional epoxies and plastics to turn yellow and physically degrade over time. In contrast, silicones have demonstrated reliable optical and physical performance at temperatures reaching 200°C and higher. This range helps ensure next-generation LEDs can meet and exceed the lumen maintenance requirements of challenging packaging applications.


Many LED manufacturers may already be familiar with these properties of silicones. Yet many are unaware that not all optical-grade silicones are created equal. While all silicones share the same basic silicon-oxygen building blocks, they actually fall into two distinct chemistries characterized either by phenyl or methyl end groups distributed along their molecular backbone.


The differences between phenyl and methyl chemistry pose significant real-world implications for LED manufacturers. Namely, phenyl-based silicones deliver a comparatively higher refractive index (RI) of 1.54 vs. the 1.41 exhibited by methyl-based technologies. Although small, this difference in RI can translate into about 7% more light output — independent of the LED chip, case, or input power.


In other words, phenyl-based optical silicones enable LED designers to boost LED output simply by changing encapsulant materials. Such a materials choice signals a more cost-effective alternative to achieving a comparable improvement in LED chip performance.


Traditionally, the view among many veteran LED designers and manufacturers was that phenyl silicones came with certain limitations when it came to thermal stability — but no more. Breakthroughs in phenyl-based silicone chemistry now enable optical silicone encapsulants to perform with exceptional reliability in the latest generation of chip-on-board LED architectures.


Further, phenyl-based silicone encapsulants provide comparatively higher mechanical strength, and stronger gas barrier properties. This quality is particularly important for protecting delicate LED components such as phosphors or silver electrodes against moisture deterioration and sulfur corrosion. Because LED electrodes double as reflective elements and phosphor is a key element of light conversion, enhanced gas barrier protection is absolutely critical to maintaining both the performance and reliability of LED output.


We expect a key factor in the worldwide growth of LED-based lighting to be driven largely based on the adoption of high-RI materials. Advances in phenyl silicone technology have come just in time to improve the efficiency, reliability, and competitive value of LEDs as manufacturers target new applications emerging in today’s general lighting market.


About Kaz Maruyama


Kaz Maruyama is global industry director for lighting solutions at Dow Corning.



silicone materials in LEDs can enable a more cost-effective efficacy

2013年11月5日星期二

UC Santa Barbara: Optimizing Phosphors Using Simple Guidelines Improves Efficiency of Solid-State Lighting

By determining simple guidelines, researchers at UC Santa Barbara’s Solid State Lighting & Energy Center (SSLEC) have made it possible to optimize phosphors –– a key component in white LED lighting –– allowing for brighter, more efficient lights.


This illustration demonstrates how bright blue LED light, shone through its complementary yellow phosphor, yields white light This illustration demonstrates how bright blue LED light, shone through its complementary yellow phosphor, yields white light
[/caption]


“These guidelines should permit the discovery of new and improved phosphors in a rational rather than trial-and-error manner,” said Ram Seshadri, a professor in the university’s Department of Materials as well as in its Department of Chemistry and Biochemistry, of the breakthrough contribution to solid-state lighting research. The results of this research, performed jointly with materials professor Steven DenBaars and postdoctoral associate researcher Jakoah Brgoch, appear in The Journal of Physical Chemistry.


LED (light-emitting diode) lighting has been a major topic of research due to the many benefits it offers over traditional incandescent or fluorescent lighting. LEDs use less energy, emit less heat, last longer and are less hazardous to the environment than traditional lighting. Already utilized in devices such as street lighting and televisions, LED technology is becoming more popular as it becomes more versatile and brighter.


According to Seshadri, all of the recent advances in solid-state lighting have come from devices based on gallium nitride LEDs, a technology that is largely credited to UCSB materials professor Shuji Nakamura, who invented the first high-brightness blue LED. In solid-state white lighting technology, phosphors are applied to the LED chip in such a way that the photons from the blue gallium nitride LED pass through the phosphor, which converts and mixes the blue light into the green-yellow-orange range of light. When combined evenly with the blue, the green-yellow-orange light yields white light.


The notion of multiple colors creating white may seem counterintuitive. With reflective pigments, mixing blue and yellow yields green; however, with emissive light, mixing such complementary colors yields white.


Art to science


Until recently, the preparation of phosphor materials was more an art than a science, based on finding crystal structures that act as hosts to activator ions, which convert the higher-energy blue light to lower-energy yellow/orange light.


“So far, there has been no complete understanding of what make some phosphors efficient and others not,” Seshadri said. “In the wrong hosts, some of the photons are wasted as heat, and an important question is: How do we select the right hosts?”


As LEDs become brighter, for example a they are used in vehicle front lights, they also tend to get warmer, and, inevitably, this impacts phosphor properties adversely.


“Very few phosphor materials retain their efficiency at elevated temperatures,” Brgoch said. “There is little understanding of how to choose the host structure for a given activator ion such that the phosphor is efficient, and such that the phosphor efficiency is retained at elevated temperatures.”


However, using calculations based on density functional theory, which was developed by UCSB professor and 1998 Nobel Laureate Walter Kohn, the researchers have determined that the rigidity of the crystalline host structure is a key factor in the efficiency of phosphors: The better phosphors possess a highly rigid structure. Furthermore, indicators of structural rigidity can be computed using density functional theory, allowing materials to be screened before they are prepared and tested.


This breakthrough puts efforts for high-efficiency, high-brightness, solid-state lighting on a fast track. Lower-efficiency incandescent and fluorescent bulbs –– which use relatively more energy to produce light –– could become antiquated fixtures of the past.


“Our target is to get to 90 percent efficiency, or 300 lumens per watt,” said DenBaars, who also is a professor of electrical and computer engineering and co-director of the SSLEC. Current incandescent light bulbs, by comparison, are at roughly 5 percent efficiency, and fluorescent lamps are a little more efficient at about 20 percent.


“We have already demonstrated up to 60 percent efficiency in lab demos,” DenBaars said.



UC Santa Barbara: Optimizing Phosphors Using Simple Guidelines Improves Efficiency of Solid-State Lighting

2013年11月3日星期日

Researchers Use OLED Technology to Cultivate Algae at IDW

Which scientist does not dream of the possibility to utilize waste in a useful way? One of these superfluous waste materials is carbon dioxide. So why not use the climate killing carbon dioxide for producing high-quality products? The process needed for this is one of the oldest and most effective in the history of our planet: photosynthesis.


OLED-lighting-panel OLED-lighting-panel[/caption]


OLED lighting panel (photo courtesy: Fraunhofer COMEDD)


Researchers of the TU Dresden and Fraunhofer COMEDD are developing bioreactors for the cultivation of micro algae by using organic light-emitting diodes (OLED) in a worldwide unique pilot project funded by the Saxon State Ministry for Higher Education, Research and the Arts (SMWK).


Dr. Karsten Fehse, project manager at Fraunhofer COMEDD is delighted: “With the help of OLED lighting, salts and water the carbon dioxide will be absorbed by micro algae and transformed into a wide range of high-quality products, e. g. proteins, dyes, cosmetic or pharmaceutical substances.“


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Transparent OLED (photo courtesy: Fraunhofer COMEDD)


The researchers of the Institute of Food Technology and Bioprocess Engineering at the TU Dresden and Fraunhofer COMEDD are working on a method to make this versatile process more effective by providing the necessary lighting energy to the micro algae by means of organic semiconductors, so-called organic light-emitting diodes (OLED). These innovative area light sources can be produced in almost every shape and are characterized by their flat design (less than 200 nm thick). Thus they can be integrated into a variety of substrates such as glass, metal or foils and enable the bioprocess engineers to realize novel reactor models beyond the previous geometrical borders.


Within the current project a reactor system will be developed which combines OLED technology and bioprocess technology by phototrophic microorganisms and thus provides the basis for novel and innovative algea reactors. These innovative reactors are no large stainless steel boilers, but miniaturized plastic photobioreactors which have the size of a cigarette packet. The small all-rounders provide information about procedural process parameters, the physiological condition of the algea cells and the development of the target products – and all of this by means of optical measurement technology. Due to the extensive process information the new technology helps on optimizing biotechnological processes with phototrophic organisms in a fast and sustainable way.


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Bioreactor with OLED lighting (schematic) (photo courtesy: Fraunhofer COMEDD)


Felix Krujatz, researcher at the Institute of Food Technology and Bioprocess Engineering at the TU Dresden summarizes: “Due to this next generation of reactor technology we hope to gain a deeper insight and new findings concerning the behavior of micro algea in biotechnological production processes.”


The joint research project is funded by the Saxon State Ministry for Higher Education, Research and the Arts with 670,000 Euro under the funding number 4-7531.60/29/16 and has a duration of 20 months. The project partner thank the SMWK for the funding of the project.



Researchers Use OLED Technology to Cultivate Algae at IDW

Verbatim’s Diamond Cut Optics Improve LED Spotlights

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In its efforts to constantly improve product performance, Verbatim has introduced the latest optical technology to a new range of high performance LED spotlights to better control beam patterns.


Two new series of Verbatim LED spotlights – PAR16 GU10s and MR16 GU5.3s – employ single focus diamond cut lenses to mimic the warmth and dimming characteristics of halogen lamps that lighting professionals demand along with exceptional beam management and high brightness. Diamond cutting is used to achieve precision-finished optical surfaces that allow light to be dispersed in a defined manner, avoiding the glare, stray light and hotspots associated with many competing products.


A family of three 7.3W PAR16 GU10 spotlights offer various lumen and colour temperature options, all at very high efficacy levels. Delivering 390lm, 420lm or 440lm (equivalent to 60W or greater), the LED lamps all offer a 36 degree beam angle and produce a corresponding luminous intensity of 720cd, 800cd and 830cd at colour temperatures of 2700K, 3000K and 4000K respectively. The lamps have a lifetime over 35,000 hours and offer improved compatibility to dimming controllers.


Additionally, a family of three 7W MR16 GU5.3 spotlights with a 40 degree beam angle also benefit from the diamond cut optics. Delivering between 400lm, 410lm or 490lm and luminous intensity of 680cd, 700cd and 800cd, the LED lamps also offer colour temperatures of 2700K, 3000K and 4000K respectively. The lamps have a lifetime over 30,000 hours and offer easier compatibility to dimming controllers and many combinations of transformers.


Suitable for accent lighting in retail, hospitality and gallery settings, all the new spotlight lamps employ the latest chip-on-board (COB) technology, where the LED die is mounted directly onto the circuit board, to improve thermal resistance, lumen output and efficacy.


“The optics technology we employ in our latest LED spotlights will improve mood lighting in hotels, museums, restaurants and cafés where even subtle differences in beam quality and dimming performance can result in a significant impact to visitor experience. Beyond the anti-glare and perfect beam benefits that diamond cut optics bring, Verbatim’s PAR 16 LED lamps achieve up to 87% energy savings compared to 60W standard halogen lamps, last 15 times longer and deliver excellent price performance,” comments Jeanine Chrobak, Business Development Manager LED EUMEA, Verbatim.



Verbatim’s Diamond Cut Optics Improve LED Spotlights

2013年11月1日星期五

LED Display Industry"s Transforming Business Models in Turbulent Times

Allen Xu, LEDinside analyst in Shanghai, talks about Chinese LED display manufacturers shift into the media sector in this article. Xu gives insights about the pros and cons for manufacturers transiting into the media sector.


After a decade of development, the LED display industry is entering a phase of large scale restructure. In July 2013, Shenzhen Everlight Technology Co. became insolvent after reports revealed the company owed suppliers RMB millions. Another company Shenzhen Ten-Lighting Technology Co. also declared bankruptcy the following month after it maliciously defrauded suppliers RMB 80 million (US$ 13.13 million) and delayed salary payments to 220 employees for two months. By September Shenzhen Barck Technology Co. was mortgaged because of bad management. The industries restructure dates back to 2011, when Shenzhen Junduoli Industrial Co. and Shenzhen Bright Optoelectronics Science and Technology Co. announced insolvency and exited the market. By the end of 2012, ShenZhen Sinolight Optoelectronics Co., Topvision, HiboLED and Dongguan Jia Hao Optoelectronics Technology Co. all joined the wave of bankruptcy. This indicates the ongoing restructure of the LED display market.


Arrival of acquisition age amidst bankruptcy wave


From July-Sept., 2013, three merges occurred in the LED display industry including Jiangmen Keheng Industry Co. acquisition of 51 percent of Linkupper stock; Furi Electronics purchase of 93 percent of Shenzhen MR Photoelectricity Co. stocks (MR Photoelectricity); Hong Kong listed company Seamless Green China procurement of 51 percent of Shenzhen San Shen Gao Enterprises Co. stock. The bad market condition is causing the industry to enter over competition. Continual decline in industry profitability has led to the use of poor quality materials to guarantee profitability, which has in turn led to product quality issues. As a result, companies are unable to collect product revenue which has led to growing accounts receivable. The market demand is also lower than production capacity growth, which has led to rising company inventory. Cash flow risks mainly caused by lowered profitability, and increasing accounts receivable and inventory are contributing to a new wave of acquisitions.


Table 1: Lienteng Optoelectronic recent revenue situation


Source: Public information organized by LEDinside.


Lienteng Technology’s 2010 revenue reached RMB 45.48 million and operating profit was RMB 2.14 million. In 2011, the company’s revenue soared 129% compared to the previous year to RMB 104 million. However, operating profits was only up five percent to RMB 2.24 million, while gross profit declined 10 percent. By 2012, the company began to lose money with decreased net profit of RMB 16 million. The company losses continued throughout Jan.-May, 2013.


Table 2: MR Photoelectricity Co. financial performance in recent years (Unit: RMB 100 million)


Source: public information organized by LEDinside


In the first half of 2013, MR Photoelectricity’s revenue reached RMB 177 million, accounts receivable was about RMB 66 million and its inventory valued RMB 153 million. The high inventory levels took up most of the operating cash flow. In addition, as LED display features improve and prices fall, overtly high inventory levels contribute to higher depreciation risks. Rising accounts receivable is also aggravating the company’s cash flow tension situation.


Close observations of the 2011 LED bankruptcy wave reveal most companies shutdown due to disrupted capital flow. The cruel market condition has caused small-mid sized enterprises (SME) to use low pricing strategy to enter the market, or abnormally use goods on credit methods to expand product volume. All these factors will add onto the company’s operation risks.


Increasingly polarized developments, industry focuses on improvements


Although, 1H13 was marked by the wave of LED display SMEs bankruptcy and acquisitions, listed company financial performance continued to grow. Unilumin revenue from 1H13 grew nearly 30 percent, while Shenzhen AOTO net profit soared 54.8 percent. Large LED display component manufacturers targeting big manufacturers’ revenue continued to grow in 2013, such as Foshan Nationstar Optoelectronics Co. (Nationstar), Shenzhen Kinglight Optoelectronics Co. (Kinglight), and Shenzhen Lanke Electronics Co. (Lanke Electronics). Kinglight production capacity has reached 1,300 KK/month and has continued expanding its production.


In reality, on average upstream LED display chip suppliers’ sales performance dropped, such as HC Semitek Corp. and Hangzhou Silan Azuire Co. Although, the overall LED display market demands continued to grow, the total value has decreased due to lowered product prices. The industry/s current condition is either experiencing incremental growth or stagnant. Large manufacturers ability to maintain high profitability and sales growth under these market conditions proves the industry is becoming increasingly concentrated.


Table 3: Major LED display manufacturers profit situation in 1H13


Source: public information organized by LEDinside.


Post LED Display Era: Is media advertisment sector the next frontier?


In the face of faster LED display industry restructure, companies are starting to consider changing their LED supply chain business model to either horizontal or vertical integration to seek out new business opportunities. A classical horizontal supply chain transition example is Unilumin’s shift into LED lighting. In 1H13, the company’s LED lighting application revenue reached RMB 46.99 million. In addition, LED display manufacturers including Ledman Optoelectronics Co. and MR Photoelectricity have launched LED lighting products. However, LED lighting industry also faces intense competition, and huge investments are required during the initial phase to build company brand and distribution channels. LED display manufacturers do not have many competition advantages in the lighting field.


There are no advantages in horizontal integration developments. Vertical integration developments include media advertisement or new markets. In the media advertisement sector, companies with the large market shares include Phoenix Publishing and Media Inc., Tulip Media, Media AD Vision, and Focus Media Holding Inc. Although, the advertisement market is increasingly focused and entering a phase of gradual growth, the four large media companies do not have particularly large market shares. This provides potential opportunities for LED display manufacturers.


Moreover, prices have been forced down as media company expansions have led to tighter capital, and over competitiveness in the LED display industry. Many LED display manufacturers and media companies have no choice but to cooperate. LED manufacturers will usually invest in display production first, before using revenue from ads to compensate display costs or media companies will sell advertisement time to LED display manufacturers. These partnership models have transferred cost risks to LED display manufacturers. Therefore, LED display manufacturers might as well set up their own media company and manage their own media services. In fact, some Chinese LED display manufacturers have begun to take this path including Shenzhen Liantronics Co., Leyard, Elec-Tech International Co. (ETI), Ledman and Unilumin.


Table 4: Chinese LED display manufacturers that have already entered media sector


Source: Organized by LEDinside


LED outdoor display advertisement are very effective, but have limited coverage. Traditional media companies need to undergo industry integration, due to ad clients strong nationwide “simultaneous broadcast” demands. Conventional media have underwent industry integration including direct acquisition and agent models, but these require huge capital investments and are difficult to maintain in later phases. For instance, Focus Media Holding is trying to replicate the successful case of hallway advertisements, but due to finance pressure the progress of the whole plan has been average. While “DIY display models” display manufacturers can solve the above issues, and is a major advantage for LED display manufacturers entering the media market. In addition, media service profits are much higher than the display itself. LED display commercial broadcast prices are expected to increase at a rate of 5 to 10 percent per year, according to estimations by Guotai Junan Securities.


Liantronics transition into the media industry


The most typical case of LED display manufacturer turning to media industry has been Liantronics. The company announced in May 2012 that it will be using Shenzhen Liantronic Cultural Investment Co. (literal translation) as a platform to invest and establish Liantronic Cultural Inc. (literal translation). It appears that the company plans to use part of Liantronic advertisement and media clients to acquire 10 to 30 percent of LED display advertisement time in major Chinese cities to build a simultaneous outdoor LED display broadcasting network; and benefit from selling advertisement periods. One of Liantronic Cultural partners that have gained most attention has been Liang Qinjiang, the current China Advertisement Association Executive Director. Considering Liang’s position and influence, Liantronic might be able to try out the emerging LED display market.


Table 5: Liantronic and Phoenix Metropolis Media Display Distribution


Source: Liantronic website


Liantronic announced in mid 2013, that the company has already acquired the operation rights of 72 LED display locations, which is lower than the company’s original plan. However, the company has entered the top three spot for Chinese LED display advertisement operation. Currently there are two types of partnership models: the cooperating company buys display construction sites from Liantronic, and Liantronic Culture buys from the commercial client advertisement period at the cost price. Another model has been Liantronic Culture invests in the display, and the partner helps find a location. Liantronic Culture then takes a part of commercial time. In the two models, the partner covers electricity and venue rental costs, while Liantronic is responsible for the display’s maintenance and after sales services. The business is currently being managed by Liantronic’s chairman, and its sales team and sales strategy has gradually matured.


In addition, the company has proposed a “1,000 display cooperation plan”, which aims to establish 1,000 outdoor LED displays in 300 cities in China. This will become the company’s new business highlight and growth drive. However, there are still risks involved in the company’s expansion into the outdoor advertisement media. When cooperating with media companies, in general most media will not change advertisements in good locations, and are more inclined to swap commercial ads in remote areas. If these sites have low profitability than initial investments cannot be recovered. Liantronic’s advantages lies in it has been a leader in China’s LED display industry, and has through understanding of downstream advertisement media and management. By exploring second and third tier cities commercial ad markets and combining Liantronic Culture’s advantages, the company is likely to succeed in its transition into the field of outdoor LED display media.


In the face of intense industry competition, restructure of the LED display industry is inevitable and increasingly faster. In the short term, LED display industry still faces cutthroat market competition hence LED display manufacturers must search for new profit markets. The advertisement media field might be a new market for LED display manufacturers.



LED Display Industry"s Transforming Business Models in Turbulent Times