Showing posts with label solar cells. Show all posts
Showing posts with label solar cells. Show all posts

Thursday, 23 April 2015

Future Window Cleaners Will Have Fully Charged Phones

Future window cleaners will have fully charged phones soon by the look of it.

OK glass -  you'll soon be able to charge your phone from your window (Windows Update: transparent solar panels are almost here): A MIT startup has come up with a novel way of tweaking solar cells to remain transparent while still gathering usable energy from the Sun.


A transparent solar cell is difficult to build - solar cells traditionally capture energy by absorbing sunlight and converting it into electricity. A transparent cell, by definition, must allow sunlight through instead so it can reach your eye - that's why previous attempts at making see-through solar panels have only partially been transparent.

Ubiquitous Energy has been wrestling for years with that problem, but now has come up with a promising breakthrough. Instead of trying to make a transparent cell, they've built instead what they call a "transparent luminescent solar concentrator".

Here's how it works. The cell is made of plastic, and embedded in that plastic are chemicals that absorb non-visible wavelengths of light (infrared and ultraviolet). As they absorb them, they glow in another non-visible infrared wavelength, and that glow is guided to the edge of the plastic. There, thin strips of conventional photovoltaic cells absorb it and convert it to electricity.

Right now efficiency is low - only about one percent. But the researchers believe that an efficiency of ten percent is possible by the time the technology makes it to production. That's still half the effectiveness of a traditional solar cell, but if every window in a house or office block was converted then it could add up to a reasonable figure.

"It opens a lot of area to deploy solar energy in a non-intrusive way," Lunt said in an interview with Michigan State's Today blog. "It can be used on tall buildings with lots of windows or any kind of mobile device that demands high aesthetic quality like a phone or e-reader. Ultimately we want to make solar harvesting surfaces that you do not even know are there."

Near-infrared (NIR) harvesting transparent luminescent solar concentrators (TLSC) with non-tinted transparency are demonstrated by exploiting the excitonic nature of organic luminescent salts that provide perfectly tuned NIR-selective absorption and even deeper NIR emission. NIR TLSCs provide an entirely new route to more aesthetically pleasing light harvesting systems that can be widely deployed in energy scavenging windows and displays.

Wednesday, 3 September 2014

Making Every Window A Power Source

Researchers at Michigan State University have created a fully transparent solar concentrator, which could turn any window or sheet of glass into a photovoltaic solar cell.
http://www.extremetech.com/extreme/188667-a-fully-transparent-solar-cell-that-could-make-every-window-and-screen-a-power-source
A fully transparent solar cell that could make every window and screen a power source: Researchers at Michigan State University have created a fully transparent solar concentrator, which could turn any window or sheet of glass (like your smartphone’s screen) into a photovoltaic solar cell. Unlike other “transparent” solar cells that we’ve reported on in the past, this one really is transparent, as you can see in the photos throughout this story. According to Richard Lunt, who led the research, the team are confident that the transparent solar panels can be efficiently deployed in a wide range of settings, from “tall buildings with lots of windows or any kind of mobile device that demands high aesthetic quality like a phone or e-reader.”

Scientifically, a transparent solar panel is something of an oxymoron. Solar cells, specifically the photovoltaic kind, make energy by absorbing photons (sunlight) and converting them into electrons (electricity). If a material is transparent, however, by definition it means that all of the light passes through the medium to strike the back of your eye. This is why previous transparent solar cells have actually only been partially transparent — and, to add insult to injury, they usually they cast a colorful shadow too.


To get around this limitation, the Michigan State researchers use a slightly different technique for gathering sunlight. Instead of trying to create a transparent photovoltaic cell (which is nigh impossible), they use a transparent luminescent solar concentrator (TLSC). The TLSC consists of organic salts that absorb specific non-visible wavelengths of ultraviolet and infrared light, which they then luminesce (glow) as another wavelength of infrared light (also non-visible). This emitted infrared light is guided to the edge of plastic, where thin strips of conventional photovoltaic solar cell convert it into electricity.

If you look closely, you can see a couple of black strips along the edges of plastic block. Otherwise, though, the active organic material — and thus the bulk of the solar panel — is highly transparent. (Read: Solar singlet fission bends the laws of physics to boost solar power efficiency by 30%.)

The organic salts absorb UV and infrared, and emit infrared — processes that occur outside of the visible spectrum, so that it appears transparent.
Michigan’s TLSC currently has an efficiency of around 1%, but they think 5% should be possible. Non-transparent luminescent concentrators (which bathe the room in colorful light) max out at around 7%. On their own these aren’t huge figures, but on a larger scale — every window in a house or office block — the numbers quickly add up. Likewise, while we’re probably not talking about a technology that can keep your smartphone or tablet running indefinitely, replacing your device’s display with a TLSC could net you a few more minutes or hours of usage on a single battery charge.

The researchers are confident that the technology can be scaled all the way from large industrial and commercial applications, down to consumer devices, while remaining “affordable.” So far, one of the larger barriers to large-scale adoption of solar power is the intrusive and ugly nature of solar panels — obviously, if we can produce large amounts of solar power from sheets of glass and plastic that look like normal sheets of glass and plastic, then that would be big.

Monday, 9 July 2012

Solar Panel Cleaning

Sunny outlook: solar cells are being improved in order to harvest energy more efficiently.
Solar Panel Maintenance Opportunities: Solar Panels are exposed to the environment – sun, wind, dust, rain etc. Solar panels are very similar to windows, lying flat or at a slight angle which means they get dirty very fast. Pollen, bird droppings, dirt, and dust can build up on solar panels.“Solar Clouding” commonly referred by the panel manufacturers, which means dirty panels and needs to be cleaned on a regular schedule in order to keep them producing at full capacity. There is a 10-15% decrease in solar output when solar panels are dirty.

Solar panels generally require very little maintenance. A few times a year, the panels should be inspected for any dirt or debris that may collect on them. Most manufacturers recommend the cleaning of solar panels every six months. Typically they should be cleaned in March/April when the rainy season has passed and August/September, towards the end of summer. The cleaning services are a necessary part of the system maintenance and also to maintain its warranty.

Having the PhotoVoltaic system cleaned will:
  • Maintain your investment
  • Ensure peak performance
  • Extend the life of your product
  • Maintain product warranty.
How to Clean Solar Panels: One can use a garden hose to wash the face of the panels during either the early morning or in the evening. Care should be taken not to spray cold water onto hot panels or there could be a risk of cracking them. There are also automated cleaners, which can be programmed to clean the panels as needed - a good choice if you are in an especially dusty area. Professional solar panel cleaners are also in abundance and can come out periodically to clean them.

Generally the solar panels are dusted gently and then washed using a soft wash brush to lightly scrub the dirt off. One should check with the solar panel manufacturer to know the best way to clean your solar panels. Hard water should not be used for the cleaning. Also check if there is any blockage from the sun like trees or plants. Clean solar panels are worth the effort.

Checking Solar Panel Operation: The only other part of solar panel maintenance is monitoring their energy output and ensuring there are no malfunctions. Check and log the power output on the solar inverters display on a daily or monthly basis. With this data, one can check to see if solar panels are functioning at full efficiency.  Solar panels produce different amounts of power during the year, so keeping a baseline measurement helps.

Solar Panel Maintenance and Cleaning Companies:

1) GR3 Solar – is a leading solar panel maintenance company throughout the UK, which specializes in the maintenance, repair and upgrades of solar panel installations. The solar maintenance packages can be customized to suit any organizational size, demand and need, whether small business, corporate or public institution or body. It provides services like Solar panel repair, maintenance, upgradation, cleaning, roof vent repairs, photovoltaic repairs, solar panel servicing. GR3 Solar covers both commercial and domestic markets, helping to reach solar panels which are often difficult and dangerous to access for homeowners or building managers. Cracks, breaks, loose connections can be rectified and upgraded, where they have become out-dated. The company’s Health & Safety procedures are constantly reviewed and upgraded and are accredited by CHAS, SAFE contractor and Constructionline.

2) Solar Clean – is a professional solar panel cleaning company. The latest unique & environmental-friendly reach-and-wash cleaning system is used, which ensures perfect cleaning results and is safe for the solar panels. The  system uses approx. 1.5  litres of water per minute. At Solar Clean, services are available to clean all residential, business and corporate solar systems in South Australia. Residential cleaning costs start from as little as $6 a panel, subject to site inspection.

3) Solar Maid – is a leading provider of solar panel washing service, cleaning and maintenance and global solar O&M provider. The company provides residential, commercial and governmental solar panel washing service. Solar Maid was the first company to provide “Janitorial Solar O&M” and is still by far the largest worldwide. Solar Maid sets industry standards for this new service sector. Solar Maid has its headquarters in Pittsburgh, PA with service offices throughout North America and parts of Europe.

4) Solar King - A national company with over 10 years experience Solar King is a leading supplier and installer of Solar PV, Solar Thermal & Ground & Heat Source energy systems for domestic, industrial, and commercial projects across the UK. The services provided are – supply, design, installation, commissioning, handover, maintenance, upgrades and repairs to various microgeneration technologies (Solar Thermal, Heat Pumps, Solar Photovoltaic) to commercial and domestic customers. Solar Power systems that are managed by Solar King can be up to 30% more efficient.

5) Solar Shine – is a professional solar panel cleaning company, using 100% biodegradable cleaning products that are safe for the photovoltaic system and the environment. There are many cleaning packages to choose from. Commercial and residential cleaning are available. Solar Shine offers a cleaning maintenance service, to remove the build up of debris on the surface of  photovoltaic modules.

6) Spectrum Solar – is an Australian owned company. The company is engaged in delivering high end electronic solutions to homes and businesses, for the past 35 years.  The company has installed thousands of solar power systems, in homes, businesses and schools. Spectrum Solar identifies emerging problems like shading, scaling and leaf build up & its scheduled inspection & cleaning service consists of physical inspection, panel cleaning & performance check. The panels are cleaned with purified water and no detergents or chemicals are used.

7) Fortress Complete Cleaning – Founded in Melbourne, is the culmination of over 15 years in the cleaning and maintenance industry. It provides all the equipments to access and clean the panels & cleans the panels using the most appropriate cleaning method for the job, inspects the condition of the frames and mounts & panels and records the output of the system before & after cleaning and finally provides a report on the spot for client’s reference. Solar Panel cleaning starts from 7$ per panel subject to site inspection.

8) Solar Service WA – is a WA owned business who services all of the Perth area. Solar Service WA is fully accredited to the Clean Energy Council. The company is specialized to handle Perth specific problems – like dealing with hard water stains. Water Filtration and De-Ionization equipments are used to make the panels stain free. There are no harsh chemicals used in cleaning the panels and all equipments used are the latest environmental-friendly reach-and-wash cleaning technology, which ensures perfect cleaning results and scratch free brush ensuring crystal clear panels.

9) Watson Window Washing - are currently serving all commercial systems in Southern California and all utility sized systems in California and Arizona. They are  pioneers of the commercial solar panel industry for over 5 years & their completed jobs range from small 350kw rooftop systems to 15mw ground mount utility systems. The company uses super purified water that contains no chemicals or detergents, hence there is no sticky residue left on the solar panels. Therefore, there is nothing for the dust to stick to and they will stay clean up to 10x longer. The solar panels cannot much pressure on them. Hence, long telescopic poles with soft brush heads are used to safely maintain the solar panels, while not applying much pressure. They use a method that does not quickly lower the temperature of the panels otherwise the panels would break.

Cost Involved in  Cleaning & Maintaining Solar Panels

The cost of cleaning a residential solar panel depends upon:
  • Location of the Building
  • Number of Panels
  • Location of panels on the Premises
  • Availability of water.

Saturday, 25 February 2012

Invisible Solar Panels Will Replace Glass


“Invisible” Solar Panels are on the Way - Window gazers of the future may soon find themselves looking right through an energy-producing transparent glass solar panel, if the folks at the National Renewable Energy Laboratory are on the right track. Working with the company New Energy Technologies, Inc., the lab has produced a transparent photovoltaic module that is 14 times bigger than its last attempt.

Windows that double as solar panels:
At 170 square centimeters (about 26 square inches), the new module is about the size of a small window. If the technology can be ramped up to a more useful scale, practically any glass window could double as a clean energy generator, with the embedded photovoltaic cell all but invisible. The largest device of its kind produced at NREL, the new module represents a breakthrough in organic photovoltaic cell (OPV) technology according to a statement by Dr. David S. Ginley of NREL, who said that integrating solar technology into window glass represents a “promising avenue for OPV deployment.”

Organic photovoltaic technology set to rise:
In contrast to conventional solar technology based on silicon, OPV cells can be made from a variety of inexpensive polymers (plastics), which can be produced in liquid form and sprayed onto a substrate, or applied using a high volume, inexpensive roll-to-roll manufacturing process. The two sticking main sticking points so far have been increasing the size of the solar module, and increasing its efficiency. The solar energy conversion efficiency of other solar technologies has been trending up in the double digits but OPV efficiency is currently stuck around eight percent according to NREL.
Though OPV is starting from a lowly place on the conversion efficiency totem pole, its potential for building-integrated usage puts it in a strong position in the solar industry. The relatively low conversion rate could be counterbalanced by the potential for extremely low installation costs compared to other solar technologies. See-through glass solar panels could simply be substituted for conventional window glass at a marginal increase in cost, rather than being treated as an expensive add-on.

A place in the sun(shot) for OPV:
Lowering the overall installed cost of solar power is a primary goal of President Obama’s SunShot Initiative, which aims to make solar energy compete on price against fossil fuels within the next few years. That partly explains why NREL is so gung-ho on OPV technology despite its low efficiency. It should be noted, though, that the focus on OPV predates the Obama Administration. OPV was part of the Solar America initiative under the Bush Administration. Despite a conversion efficiency of only five percent at the time, a 2007 Department of Energy draft report identified some key benefits of developing OPV technology, including “the inherent low materials cost and low-energy, high-throughput processing technologies, and because of the huge variety of possible organic systems.”

OPV and American-made energy:
Another aspect of NREL’s interest in OPV has to do with reliability and stability of price and supply, which are key elements in President Obama’s broader “American-made energy” pitch. The use of a variety of polymers would enable the U.S. solar industry to overcome a major obstacle that derives from reliance on silicon-based solar technology, and that is the price fluctuation of a single key material – silicon – on the open market.
According to a report last week in Bloomberg News, China, which it describes as the “biggest supplier to solar-panel manufacturers worldwide,” has shut down almost a third of its polysilicon production after prices fell by 60 percent, a move that is expected to result in a quick return to higher prices. However, it’s too soon to say good-bye to silicon forever. NREL is also working with another small company, Innovalight, to develop solar modules based on a low cost, nano-engineered spray-on liquid silicon process.

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Sunday, 17 April 2011

Transparent Solar Cell Technology - Turning Windows In To Power Plants


Glass-Like Solar Cells Set Stage for Power-Producing Windows: Add this to the growing list of promising innovations in solar energy: photovoltaic cells that capture energy from sunlight but without changing the way sunlight appears to the naked human eye.  The kicker: you can paint these virtually invisible cells on everyday window panes used in everyday homes and everyday buildings..

Coated onto a pane of standard window glass, a potentially revolutionary photovoltaic technology developed by researchers at the Massachusetts Institute of Technology uses organic molecules to capture the energy of infrared light without blocking the flow of light.  The technology may one day turn everyday wind panes into a source of electric power.  More importantly, it may be cheap enough for people to actually use these power-producing windows.

Vladimir Bulović, a professor of electrical engineering at MIT, and Richard Lunt, a postdoctoral researcher in the Research Laboratory of Electronics, explained the mechanics of this transparent solar-cell technology system in the most recent issue of the journal “Applied Physics Letters.”

The key innovation involved involves a specific chemical formulation used to fabricate the solar cells, which works in tandem with partially infrared-reflective coatings to increase the cell’s efficiency and ensure light flows unimpeded through the cell. All told, the efficiency gain in this process is massive compared to previous efforts to fashion transparent (and non-transparent) organic photovoltaic cells.

Bulović and Lunt also believe their transparent solar-cell technology could cut the cost of traditional thin-film solar products significantly. Currently, installation accounts for more than half of the cost of thin-film solar-power systems comes from those installation costs. Most of the remaining costs are associated with glass and structural components used in the panels.

In a new building, or one where windows are being replaced anyway, adding the transparent solar cell material to the glass would be a relatively small incremental cost, since the cost of the glass, frames and installation would all be the same with or without the solar component, the researchers say, although it is too early in the process to be able to estimate actual costs. And with modern double-pane windows, the photovoltaic material could be coated on one of the inner surfaces, where it would be completely protected from weather or window washing. Only wiring connections to the window and a voltage controller would be needed to complete the system in a home.

Richard Lunt, one of the researchers who developed the new transparent solar cell, demonstrates its transparency using a prototype cell.
Turning windows into powerplants:  If a new development from labs at MIT pans out as expected, someday the entire surface area of a building’s windows could be used to generate electricity — without interfering with the ability to see through them. The key technology is a photovoltaic cell based on organic molecules, which harnesses the energy of infrared light while allowing visible light to pass through. Coated onto a pane of standard window glass, it could provide power for lights and other devices, and would lower installation costs by taking advantage of existing window structures.

These days, anywhere from half to two-thirds of the cost of a traditional, thin-film solar-power system comes from those installation costs, and up to half of the cost of the panels themselves is for the glass and structural parts, said Vladimir Bulović, professor of electrical engineering in the Department of Electrical Engineering and Computer Science. But the transparent photovoltaic system he developed with Richard Lunt, a postdoctoral researcher in the Research Laboratory of Electronics, could eliminate many of those associated costs, they say.

Previous attempts to create transparent solar cells have either had extremely low efficiency (less than 1 percent of incoming solar radiation is converted to electricity), or have blocked too much light to be practical for use in windows. But the MIT researchers were able to find a specific chemical formulation for their cells that, when combined with partially infrared-reflective coatings, gives both high visible-light transparency and much better efficiency than earlier versions — comparable to that of non-transparent organic photovoltaic cells.

In a new building, or one where windows are being replaced anyway, adding the transparent solar cell material to the glass would be a relatively small incremental cost, since the cost of the glass, frames and installation would all be the same with or without the solar component, the researchers say, although it is too early in the process to be able to estimate actual costs. And with modern double-pane windows, the photovoltaic material could be coated on one of the inner surfaces, where it would be completely protected from weather or window washing. Only wiring connections to the window and a voltage controller would be needed to complete the system in a home.

In addition, much of the cost of existing solar panels comes from the glass substrate that the cells are placed on, and from the handling of that glass in the factory. Again, much of that cost would not apply if the process were made part of an existing window-manufacturing operation. Overall, Bulović says, “a large fraction of the cost could be eliminated” compared to today’s solar installations. This will not be the ultimate solution to all the nation’s energy needs, Bulović says, but rather it is part of “a family of solutions” for producing power without greenhouse-gas emissions. “It’s attractive, because it can be added to things already being deployed,” rather than requiring land and infrastructure for a whole new system.

Fine-tuning the cells: The work is still at a very early stage, Bulović cautions. So far, they have achieved an efficiency of 1.7 percent in the prototype solar cells, but they expect that with further development they should be able to reach 12 percent, making it comparable to existing commercial solar panels. “It will be a challenge to get there,” Lunt says, “but it’s a question of excitonic engineering,” requiring optimization of the composition and configuration of the photovoltaic materials.

The researchers expect that after further development in the lab followed by work on manufacturability, the technology could become a practical commercial product within a decade. In addition to being suitable for coating directly on glass in the manufacture of new windows, the material might also be coated onto flexible material that could then be rolled onto existing windows, Lunt says.

Using the window surfaces of existing buildings could provide much more surface area for solar power than traditional solar panels, Bulović says. In mornings and evenings, with the sun low in the sky, the sides of big-city buildings are brightly illuminated, he says, and that vertical “footprint” of potential light-harvesting area could produce a significant amount of power.

A prototype of the MIT researchers' transparent solar cell is seen on top of a promotional item for MIT's 150th anniversary celebrations.  
Max Shtein, associate professor of materials science and engineering at the University of Michigan, says, “This work demonstrates a useful effect, and is based on very sound science and engineering.” But he adds that “it is but one of the many other methods by which a similar functionality could be achieved,” and says the biggest uncertainty at this point is that because they are so new, “the lifetime of organic PV cells is a bit of an unknown at this point, though there is some hope.” In addition, Shtein says, “The potential of this technology is good if projected far into the future,” but only if the efficiency can be improved as the researchers expect it can.

As added benefits, the manufacturing process for the MIT researchers' solar cells could be more environmentally friendly, because it does not require the energy-intensive processes used to create silicon solar cells. The MIT process of fabricating solar cells keeps the glass panes at ordinary room temperature, Bulović noted. Installations of the new system would also block much of the heating effect of sunlight streaming through the windows, potentially cutting down on air conditioning needs within a building. The research was funded by the Center for Excitonics, an Energy Frontier Research Center funded by the U.S. Department of Energy.

Tuesday, 21 December 2010

Smarter Homes, Windows & Window Cleaning Apparel

'Smart' electrochromic and gasochromic windows latest in green innovations: For the past few years, a seminar on new and innovative green building products has been a staple at Construct Canada. This year was no exception as BuildGreen Solutions partner Rodney Wilts updated architects, engineers and contractors on the some of the “great” green products that have crossed his desk in the past 12 months. “This (presentation) is a bit of a hodge-podge of things that we look at in the green building world,” said Wilts, whose firm works with architects, developers and other organizations to implement sustainable practices in the built environment. 

BuildGreen has managed more than 40 LEED projects in Canada, the U.S. and Mexico. Wilts, whose firm is part of the Windmill Developments family of companies, said windows “are getting serious” as manufacturers compete to build the most energy-efficient products. Soon to hit the market, he said, are “smart” electrochromic and gasochromic windows. “We’re seeing leaps and bounds in quality window manufacturing,” Wilts said.

Other green products include a device that monitors energy consumption over a period of time and automatically kills “vampire” power and building-integrated photovoltaic systems. On the materials side, “torrified” wood appears to be catching on “like wildfire,” Wilts said. A chemical-free process is used to heat up the wood, making it less susceptible to mould, rot and fungi. Other green materials include an environemtally friendly drywall product. Wilts, whose firm is based in Ottawa, said clients also are demonstrating increased interest in indoor air quality. One such item that is on the market is a proprietary drywall product that cleans the air, reacts with volatile organic compounds and makes them inert and is highly mould-resistant. “It is no longer enough to be less bad,” Wilts said.

Living walls also are catching on in a big way, he said, noting that a five-storey, plant-covered Biowall has been incorporated into the Algonquin Centre for Construction Excellence in Ottawa. This system helps control humidity while also cleaning the air. Water efficiency is also gaining increased attention, Wilts said. He cited introduction of a greywater reuse system that is suitable for either commercial or residential projects, a dual-flush toilet that has an integrated sink for immediate greywater reuse and a 0.8 gallon per flush, high-efficiency toilet. In his presentation, Wilts also touched on various developments on the green building front, including LEED Canada and the Living Building Challenge, which he described as “LEED on steroids.”

Clothing to harness renewable energy: Silvr Lining, a California based fashion company, has created the Go Collection of clothing with integrated solar power supplies suitable for charging personal communication devices (PCDs), such as cell phones and smart phones, and personal digital assistants (PDAs), such as MP3(4) players. This "wearable" power virtually eliminates the need to recharge at wall sockets. The power supply hardware is easily installed in GO garments in less than one minute, and un‐installed for cleaning just as quickly. The GO Integrated Solar Power System is comprised of 6‐inch by 8‐inch solar panels designed to fit pockets in the front of the garments. As these pockets contain windows to allow the sun's rays to impinge on the active side of each panel, the pockets are referred to as "frames". There are two frames in the GO Utility Vest, four in the GO Director's Jacket, two in the GO Myer's Topper, and two in the GO Cargo Pant that can accommodate panels.


The GO Solar Power System contains a power regulator and energy reservoir connected in between the solar panel and the device under charge (DUC). Its function is to efficiently capture the electrical power generated by the solar panel, to store that energy in the reservoir, and to provide the DUC with a highly stable voltage and current at its output compliant with the requirements of the mobile device. The system features "Power Tracking" to condition the energy making the most efficient use of the sun. The output voltage and current are automatically controlled by the regulator to the precise levels required by the DUC.

Simple indicator lights show the status of the system. GO power supplies can also be used separately as carry‐anywhere charging systems for hiking and picnicking, and can be left on the dashboard of the car or placed in the window of the office for complete internal recharging. Silvr Lining also offers the "Booster Panel", a stand‐alone panel about twice as large as the Small Panel. When connected, the Booster Panel would cut in half the charging time of either the reservoir of the Small Panel or a DUC connected to the Small Panel.

The solar panels are constructed of rugged, flexible, and non‐flammable materials able to withstand the sun's radiation, hot and cold temperatures, and wet and dry conditions. Cable assemblies, including cables, connectors, and receptacles, and electronics enclosure are also waterproof. Additional adaptors are also available. More.

Tuesday, 23 November 2010

Glass Technology News For The Window Cleaner


Infomercial ruined by the most breakable “unbreakable” glass ever: The hosts in this video are touting a bit of unbreakable glass that’s part of their grill product. Small problem: The glass might be the most breakable thing ever. Oops.

Vandal Shield repels vandals but welcomes visitors: A sports and youth centre in the North West has found the ideal security solution – a lightweight window shield that repels vandals yet retains the building’s inviting aspect to visitors. Copley Young Persons Centre in Tameside has fitted 2317m2 Vandal Shield on two large glass elevations of its new extension, which opened in June 2010. The building offers a range of child and youth services, as well as outreach work with community groups and families – so it was important to make it vandal proof, yet keep its open and welcoming look. “The centre was not a particular target for vandals before the extension went up, but there was concern over the potential for attacks, with the large amount of glass used. Without Vandal Shield, the project simply would not have gone ahead,” explained Lindsey Thomson, project team leader for the centre. “Because of the materials used in the design of the building, we needed a lightweight system, and this was the only one that was suitable.
“It protects the building but does not put people off using it, which is very important in a facility of this type, which needs to continue engaging with the whole community. We needed a solution that was unobtrusive, and allowed the glass to do its job of allowing plenty of light into the building.” Vandal Shield, from Manchester firm Fingershield Safety (UK), fitted the bill perfectly. From a distance, it looks like tinted glass but the durable perforated galvanised steel mesh, set in an extruded aluminium frame, provides a tough physical barrier to vandals, yet lets in maximum light.  Vandal Shield is designed to complement existing windows, whether modern or classical, and can be mounted in front of or behind existing windows, in a range of different coloured frames. It is more cost effective than re-glazing, an increasingly expensive solution. The product is recommended by police crime prevention officers and has been fitted in a number of public buildings across the country, including schools and churches.

The riots at Millbank Tower shows protesters destroying windows. Business owners are responsible for keeping their glass safe, it's the law. Most readers will have seen the striking photograph on most newspaper front-pages of a rioting student demonstrator kicking in a window at Millbank Tower. To most observers, this was an act of reckless violence. But to any business premise owner, the image of how the broken glass actually stayed relatively intact after being shattered tells another story. The remarkable fact is, despite press coverage being full of reports of broken glass, no one was seriously injured or killed by a lethal shard of glass. This was not down to luck. It was down to a micro-thin technology that all business premise owners should be aware of – safety window film.
Ever since 1992, when Health, Safety and Welfare Regulation 14 came into force, business premise owners have been required to ensure that “every window or other transparent or translucent surface in a wall, partition, door or gate should, where necessary for reasons of health or safety, be of a safety material or be protected against breakage of the transparent or translucent material; and be appropriately marked or incorporate features to make it apparent.” This regulation, designed to protect building occupants as well as passersby, applies to a wide range of workplaces including offices, shops, schools, hospitals, hotels and places of entertainment. In other words, the business owner is responsible for keeping their glass safe, or they could be held liable and face legal consequences if someone gets hurt or killed due to poor safety practices.
Last year, the media reported the death of a young man who died after cutting himself when he threw his girlfriend through the front window of a well-known high street retailer. Many of us will also have seen the newspaper photographs of the windowpane that fell dozens of stories onto Old Broad Street, narrowly missing passersby. With the 2012 Olympics around the corner, let’s not forget the growing threat of terrorism – almost 90 percent of all injuries from a bomb blast are related to flying glass, rather than the blast itself. Millbank Tower was built in 1963. Like most British business premises it was built before 1992, when Regulation 14 came into force. Fortunately, the owners of the building took the necessary steps to retrofit safety window film, which kept both the baying mob and our brave boys in blue safe. Although retrofitting safety window film is a relatively inexpensive and unobtrusive process, most business premises are not up to scratch when it comes to glass safety. The main advice is this: before taking on a new lease, prospective tenants should seriously question the landlord whether the property meets Regulation 14.

NanaWall Systems, the leader in large opening glass walls, announces the introduction of its newest product: NanaGlass SL25. NanaGlass SL25 has evolved from the European concept of balcony glazing and provides developers and builders advanced architectural technology for energy-efficiency and expanded living spaces. The NanaGlass SL25 is a frameless opening glass wall system installed on the exterior of balconies, patios, and under second-story decks to create a pleasant living area sheltered from the elements. With no vertical stiles, the NanaGlass system provides uninterrupted views and natural light while forming an insulating air pocket over the building facade. The NanaGlass panels easily slide wide open and stack to one or both sides for natural ventilation on a beautiful day or quickly close to protect the balcony, deck or patio from wind, rain, pests, and birds. The NanaGlass individual sliding panels are top-supported in a single track and can ride a fixed balcony railing or extend all the way to the floor. The NanaGlass SL25 1/2 inch glass panels are engineered to withstand wind loads up to 80 stories in 90 mile-per-hour wind zones. A NanaGlass system installed on a high-rise balcony transforms unusable windy space into a pleasant year-round entertaining area and adds immediate collateral value to the unit.

Glass: Newest material for extra-sturdy homes - Simon Parrish says he has spent about 20 years developing a method of housing construction that can stand up to just about anything. Now, he is letting the rest of the world know about it. Parrish is production director for the Ambiente brand of manufactured housing. Ambiente is a division of Abersham Commercial Services LLC, based in the Town of Brookfield, Wis. A key ingredient of Ambiente's houses is waste glass. In a process that was developed and eventually brought to market by Parrish and his father, Malcolm, waste glass is transformed into a very fine powder similar to sand. It is then combined with a resin to form reinforced wall sections that are resistant to fire, water and mold. They are also engineered to withstand hurricanes and earthquakes. "It's absolutely the best material to make a house from," Simon Parrish said. The process is also environmentally friendly. "Each house has 13 tons of waste glass in it," he said. There is no wood or metal in the house. Channels for plumbing and electrical wiring are built into the panels. Once manufactured, houses are shipped out as kits to be assembled at a construction site.

Glass company invests $2.6 million in NLAB Solar’s cheap, transparent solar cells: NLAB Solar just landed an investment of $2.6 million from Fasadglas Bäcklin, Scandinavia’s largest glass facade company. NLAB Solar manufactures energy-producing dye-sensitized solar cells (DSC). The cells which can be integrated into transparent and colored facades such as those produced by Fasadglas. The funding will be used to accelerate product development in NLAB’s new plant in Stockholm.
DSC operate in a similar manner to photosynthesis in plants. In nature a dye called chlorophyll, which gives plants their green colour, absorbs solar energy. That energy is used to convert carbon dioxide into sugars which feed the plant. DSC cells use an artificial dye to absorb the energy in sunlight. Most solar cells available today are based on silicon. When sunlight hits the silicon, electrons flow through the material to produce electricity. Although DSC has a lower efficiency rate than silicon cells, it can be made transparent and produced in different colors, which explains Fasadglas’s interest in the technology. The DSC film can be built into windows and building facades where sun shading film is normally used. Based on an energy efficiency of 5.1 percent, one meter of glass facade in Stockholm (1000 hours of sun per year), could provide electricity for approximately one square meter of office space. NLAB aims for 4 percent efficiency in transparent cells for window applications in urban environments.
DSC cells also have other advantages such as higher efficiency under low and angled light conditions. DSC cells are much cheaper to manufacture than silicon since they do not require pure silicon as a raw material or the related complex manufacturing equipment. NLAB Solar’s twist on DSC technology is to add a one-dimensional photonic crystal (1DPC). This is a transparent mirror placed inside the DSC that reflects certain wavelengths of light back through the dye layer. This increases the number of photons striking the dye and leads to higher efficiency. The company claims to have seen a 37 percent improvement over standard DSC, which would improve the efficiency from 4 percent to approximately 5.5 percent.

The global market for Flat Glass is projected to exceed 34 million metric tons by 2015. The industry that was hard hit by the global economic meltdown is gradually witnessing signs of recovery, particularly led by economic growth in developing countries. Huge governmental stimulus subsequent to the economic turmoil coupled with high construction activity in the developing world is expected to fuel future growth in the global flat glass market. The industry is also deriving growth from new smart-glass products such as electrochromic, switchable glass, self-cleaning window glass and heads-up display windscreens.

What to do with the Gardiner Expressway? Whether it be tearing it down and replacing it with tunnel or a widened Lake Shore Boulevard or its conversion into an elevated park reminiscent of New York's High Line, it's one of those pieces of infrastructure that continually sparks debate amongst architects, city planners, politicians and residents. Although a Waterfront Toronto environmental assessment to evaluate the proposed removal of a portion of the expressway that runs between Jarvis Street and the DVP got underway in March of 2009, that hasn't put a stop to the novel alternatives that continue to be tossed around. Last year, Les Klein's Green Ribbon plan (pictured above) to turn the expressway into an elevated park was cause for much discussion -- both positive and critical -- but another plan from around the same time has flown a bit under the radar. In an October 2009 article in The Bulletin, Michael Comstock, president of the Toronto Association of BIAs, wrote about architect Peter Michno's proposal to enclose the Gardiner in a glass dome. Without many renderings readily available online, however, it never garnered the attention that Klein's idea enjoyed.

A Window That Can Tint Itself: We've seen windows that can serve as solar panels, and thanks RavenBrick we now have windows that can become tinted based on the temperature. The company has developed a type of glass that can change it's tint based on the temperature outside. So when it becomes hot and sunny, the windows will become darker allowing less sunlight to come in, thus reducing the amount of air conditioning necessary to keep a building or a home cool. The windows are able to do this by using what the company describes as a "an organic, nontoxic polymer which changes its molecular structure in response to temperature." It's actually a filter that's placed between two panes of glass and it can be adjusted to suit the needs of one particular location.

A window into the future - Here’s a futuristic notion: Windows that darken on hot sunny days to block heat and glare, clear  up on cool or cloudy days to allow in sunlight and warmth, save lots of energy, eliminate the need for blinds or shades and, most important, allow people indoors to be connected all the time to the natural world. This may sound like magic, but electrochromic windows are here today. You can see them, above, at the student center at Chabot College in Hayward, CA. They’re made by a small Minnesota-based company called SAGE Electrochromics, which is about to get bigger: This week,  SAGE announced that it sold 50% of itself for $80 million to  Saint-Gobain, a global building materials firm based in  France. Until they worked out their deal,  SAGE and Saint-Gobain had been competing to develop windows that would electronically control the sun’s energy that flows through them. Also here.

Germany closes famous glass dome at Berlin's Reichstag to visitors as terror fears mount: Last week the interior minister announced 'concrete indications' of a terror plot about to come to fruition. Security spiked at all major airports and railway stations across Germany. Police believe at least two members of a jihadi hit squad are in Berlin. Al Qaeda and associated Islamist groups are planning to take hostages and fire at people in the Reichstag, said news magazine Der Spiegel, citing intelligence sources. News of the plot reportedly came from a jihadist who contacted the German authorities.

Governments worldwide have successively established their own energy-efficient standards for buildings, and implemented a variety of policies to promote energy-efficient building materials, which has greatly boosted the application of low emissivity (Low-E) glass. The sales of Low-E glass worldwide grew rapidly during 1990-2005, and exceeded 250 million m2 in 2005, with a CAGR of around 18%. Currently, Low-E glass is widely applied in developed countries. The utilization rate of Low-E glass is 92% in Germany, 90% in South Korea and 75% in Poland. While in China, the penetration rate of energy-efficient glass is only 10%, and the Low-E glass' 8%. Therefore, China will have a large space for the development of Low-E glass in the future, and will see rapid growth of Low-E glass in the coming years. It is projected that a total of 148 million m2 of Low-E glass will be applied in the public and residential buildings by 2012.

New Energy Technologies, Inc. today announced plans to advance its efforts to commercialize the Company's novel SolarWindow(TM) technology, in order to accelerate to-market the 'first-of-its-kind' product capable of generating electricity on see-thru glass windows. Electrical power is generated on glass by spraying New Energy's SolarWindow(TM) coatings onto surfaces using commercially available equipment. Through the Company's patent-pending process, company researchers spray SolarWindow(TM) coatings onto glass at room temperature, eliminating expensive and often cumbersome high-temperature or high-vacuum production methods typically used by current solar manufacturers. Unique to SolarWindow(TM), glass surfaces remain see-thru, and generate electricity in both natural and artificial light conditions. In artificial light, New Energy's SolarWindow(TM) technology outperforms today's commercial solar and thin-films by as much as 10-fold under low-intensity irradiance. This feature was recently demonstrated at a public unveiling of SolarWindow(TM).

Friday, 30 July 2010

Spray On Solar Glass - Window Cleaning "Add-On?"



Spray On Solar Glass A Coming Reality: There have been plenty of shouts and rumors about see-through solar glass, but until now the technology had not reached the point where anyone was ready to begin commercial development. That appears to have changed, as New Energy Technologies, Inc., of Maryland, recently announced that researchers working on its proprietary Solar Window technology have achieved a series of breakthroughs that will allow the company to unveil a working prototype of the world’s first-ever glass window capable of generating electricity. The University of South Florida Research Foundation has granted New Energy an exclusive, worldwide license for technologies to enable commercial development of the product.



Until now, the limiting factors appear to have been the need for metals and various expensive processes that block visibility and prevent light from passing through glass surfaces. New Energy see-through solar glass is made possible by the world’s smallest working organic solar cells, a nanotechnology application developed by Dr. Xiaomei Jiang at the University of South Florida. Unlike conventional solar energy systems, New Energy’s solar cells are capable of generating electricity from both natural and artificial light sources; according to the company, they outperform today’s commercial solar and thin-film technologies by as much as 10-fold.



Technical hurdles surpassed in recent months by New Energy’s researchers include testing of these nanotech solar cells, measuring less than ¼ the size of a grain of rice, which generate electricity from both natural and artificial light sources; development of a patent-pending process to spray SolarWindow coatings onto see-through glass using commercially available technologies; and the ability to spray SolarWindow coatings onto glass at room temperature, eliminating expensive high-temperature or high-vacuum production methods commonly used by current solar manufacturers.



Sphelar cells are the new 'power windows': Developed by Kyosemi Corporation, Sphelar solar cells are one of the most intriguing solar solutions that we have seen in a while. On display at the recent PV Expo 2010 in Tokyo, these tiny spherical cells gave us a glimpse of how windows in buildings might be used to collect solar power in the not-so-distant future. Sphelar cells are solidified silicon drops measuring 1.8 mm in diameter and are highly transparent, which is advantageous for a number of reasons. They can be embedded in glass to create a transparent solar cell window, capable of absorbing light from any direction or angle. Because both sides of the glass can collect light, this should translate into highly efficient energy harvesting.



The cells can also be embedded in flexible surfaces, allowing for them to take on unusual shapes or be bent if necessary. The Sphelar Dome is one such example, designed to absorb more energy in the early morning and late evening unlike a flatter design. Have we seen the last of roof-mounted solar panels? It's exciting to think that a day may come when these 'power windows' could be in buildings everywhere, integrated into existing structural designs.

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