Abeer Seikaly’s stunning woven refugee tents powered by the sun

Solar-powered tent

Solar-powered shelters for disaster zones

Award-winning architect and designer Abeer Seikaly has created a practical yet beautiful solution to the need for lightweight, mobile, and structurally sound shelters for disaster zones.

According to inhabitat.com, the Canadian-Jordanian’s Weaving a Home project not only provides flexible, transportable shelter, but also incorporates water collection, solar power generation and solar water heating into the design.

Drawing inspiration from traditional basket weaving techniques and the flexibility of snake skin, the designer uses weatherproof fabric drawn between durable, curved plastic tubing. This creates a structurally sound tent that can handle both compression and tension loads.

The double-layered fabric tent skins are also hollow, allowing for weatherproof entrances and for water piping and electrical cables to run between the layers. While the design is scalable, the models shown are five meters in diameter and 2.4 meters high.

Solar-powered tents

Solar-powered woven refugee tents. Image via designboom.com

Each tent has its own water collection system, utilizing the natural channels formed by the skin to direct water to the storage point. By using a fabric with strong thermal properties, the tents can also convert solar radiation into power and heat collected water for showering. The strength of convection can also be used to draw fresh water into the heating system from an external source. The flexible design of the tents allow for openings to be made wherever they are needed to allow hot air out and to catch any cross-breezes. The tents also seal up tight in case of wet weather or cold conditions.

Seikaly states: “‘Weaving a Home’ reexamines the traditional architectural concept of tent shelters by creating a technical, structural fabric that expands to enclose and contracts for mobility while providing the comforts of contemporary life (heat, running water, electricity, storage, etc.)” The honeycomb-like design folds up neatly when not in use to allow for easy transportation to wherever the tents are needed. The project was a winning entry in the 2013 Lexus Design Awards.

Adding clean energy to power grid requires flexibility

power grid

Renewable energy and the power grid

Solar panels, wind turbines, electric vehicles and other green power sources are proliferating rapidly, but their reliable integration into the existing electric grid is another story.

According to http phys.org, a study led by Eilyan Bitar, assistant professor of electrical and computer engineering, offers a comprehensive reimagining of the power grid that involves the coordinated integration of small-scale distributed energy resources.

The study, commissioned by the Power Systems Engineering Research Center (PSERC), asserts that the proliferation of renewable energy must happen at the periphery of the power grid, which will enable the local generation of power that can be coordinated with flexible demand.

Bitar’s study outlines a new architecture to enable what he calls a grid with an intelligent periphery – a version of the so-called smart grid – along with coordination strategies and mathematical models to simulate how such a reorganized grid would work.

“The uncoordinated proliferation of distributed energy resources will wreak havoc at scale,” Bitar said. “Certain components of the legacy power system will fail; the existing distribution infrastructure isn’t equipped to accommodate, for instance, a large number of electric vehicles plugging into the grid at the same time under the same transformer … but, imagine taking all these new resources and coordinating their control.”

The way the power grid works now, large plants deliver power to substations, where electricity is provided on demand to homes. The fluctuating electric loads at each substation interact over a complex transmission network, but nearly everything that happens below the substation level is left uncoordinated. Electricity is an example of a commodity with inelastic demand – in the U.S., people are used to having it all the time, whenever they want. Bitar thinks that mindset will need to change slightly.

All the talk of the smart grid wouldn’t be nearly so complex if solar and wind, for example, were a reliable supply. But those resources are variable, and the gaps must be compensated by traditional bulk power generation, effectively defeating the purpose of a renewable source.

In an intelligent grid, this variability in supply would be balanced through the coordination of flexible distributed energy resources at the periphery of the system. Power would be produced locally and consumed locally, giving rise to self-sufficient communities or cities, called microgrids. Such an approach would decrease the need to transmit bulk power hundreds of miles to counterbalance fluctuations in renewable sources.

The architecture of such a system, which requires sensors and actuators in appliances, electric vehicles and the like, isn’t the hard part, Bitar said. The hard part is the design of algorithms to efficiently manage the deluge of information produced by those sensors in order to coordinate the simultaneous control of millions of distributed energy resources on fast time scales.

Much of this coordination will involve using flexibility in demand to compensate for variability in supply. For example, electric vehicles, considered a viable alternative to internal combustion engines, need to plug into the grid in order to charge. But because they’re battery-based, the demand for their charge is flexible – for example, utilities could offer monetary incentives to electric vehicle owners willing to shift their charging patterns. Coordinating that flexibility with a variable resource like rooftop solar could lead to increased penetration of this renewable energy resource while supplying clean power to electric vehicles

Finland’s largest solar power plant under construction in Oulu

Oulu solar plant

Pilot results show that solar systems in Oulu produce as much electricity as those in northern Germany. Photo: Kalevi Rytkölä / Yle

Finland’s largest solar power plant, comprising of 1,600 solar panels producing 420 kilowatts of power, will be built in Oulu on the roof of the local printing plant this spring. The northern city of Oulu is quickly making a name for itself as a pioneer in the use of renewable energy sources.

According to yle.fi, Oulun Energia Group has announced plans to build a solar power unit on the roof of the local Kaleva newspaper’s printing plant in Oulu this spring. The 420-kilowatt unit will have 1,600 solar panels, combining to make a total panel surface area of approximately 2,400 square metres. Along with the support equipment, the setup will cover near to 3,200 square metres, which equals nearly half a football field.

System installation will begin in April, and the objective is for the unit to be operational by June 2015.

“On a clear summer day, we expect to gain up to 90 percent of the electricity required to run the Kaleva printing operations via solar. Annually, the solar energy obtained should cover about 10 percent of the printing house’s electricity costs,” says Kaleva’s CFO Esko Jokelainen.

The manufacture of solar panels in Finland is only in its early stages, so the panels for a project this large must be ordered from Germany. All of the other labour for the installation, from transport to assembly, will be carried out by local employees from the northern Finland region.

“Solar energy and other distributed energy production solutions will proliferate in the next few years and therefore create more jobs in northern Finland as well,” says Oulun Energia Group’s Sales Director Seppo Tuomi.

Oulun Energia Group generates, transmits, distributes and sells electricity and district heating in the Oulu region and is owned by the city of Oulu.

Why Oulu?

Located in North Ostrobothnia, Oulu is the largest city in northern Finland and the sixth largest city in the country, with a population over 200,000. It is one of the northernmost larger cities in the world. Situated this far north, one could wonder how a solar plant could be feasible with so many dark winter months in the year.

But the city of Oulu has taken on the role of a ‘living lab’, where residents experiment with new technologies from ICT to cleantech. Consequently, in per capita R&D spending, it ranks first in Finland and fifth in Europe. Oulu also has Europe’s largest technology park.

Oulun Energia Group conducted a pilot project for solar energy, testing the efficacy of 16 customer solar systems installed on local homes.

The pilot was surprisingly successful, producing results that were comparable to solar energy production conditions elsewhere. If properly situated, a 5-kilowatt system of 20 panels produced up to 4,500 kilowatts of electricity, which directly corresponds to a similar system in northern Germany.

In the Oulun Energia Group’s report on the pilot project, Tuomi is confident that there is significant potential for growth for photovoltaic systems in Finland.

“Solar energy systems are suitable for both businesses and consumers. Using them in the summer time to cool down property is particularly profitable. The cost of the panels is low, the payback period is reasonable and in ideal locations, the costs are clearly cheaper than grid electricity.”

The EU has set a climate target that 38 percent of member countries’ electricity consumption should be obtained from renewable energy sources by the year 2020.

Oil downturn slows progress in bringing solar power to mines

solar panels

Solar power in mines

High oil prices spurred mining companies to look at renewable energy to cut their diesel fuel bills. With crude plunging, it’s a different story today.

According to Bloomberg, an almost 50 percent drop in crude oil in the past year has pushed diesel prices lower, leading mines and other energy users to delay adding solar and wind projects.

“There’s no doubt about it there are a lot of parts of the world that see the drop in price as a reason for them to stall the decision on whether to proceed,” said John Eccles, director of global hybrid generation at First Solar Inc., the largest U.S. solar panel manufacturer.

Global renewable energy investment in mining was forecast last year by Ernst & Young to rise almost twentyfold to $3.9 billion by 2022. Now that target will take longer to reach, according to the consultants.
“While oil prices remain lower, it will slow down the adoption rate of alternative energy,” Mike Elliott, the Sydney-based global mining and metals leader at Ernst & Young, said by phone.

“There will be some of those investment decisions that will still default to a conventional fuel source as opposed to a renewable source,” he said.

As miners expanded into more remote locations during the decade-long commodities boom, they grew more dependent on diesel to generate power at sites that aren’t connected to the electricity grid. Energy accounts for as much as 40 percent of the operating costs at some mines, according to Ernst & Young.

Remote Projects

There are fewer than 12 remote mining projects in the world that get at least half of their power from wind and solar, mostly ones in Chile that have been developed over the past couple of years, Elliott said.
When oil prices surged and renewable energy costs fell, it gave miners in countries from Chile to Australia a strong incentive to increase reliance on wind and solar to offset some of their diesel consumption.

The oil price drop may still benefit renewable energy. At least 27 nations are decreasing or ending the subsidies that hold down costs for fuels used to generate electricity, including coal and natural gas, the International Energy Agency said in November. That’s adding momentum to global efforts to limit greenhouse gases by increasing the use of clean energy.

Efforts globally to reduce carbon emissions will probably continue to lead miners to weigh wind and solar projects when making investment decisions, Elliott said.

Competitive

Even with the drop in oil, total diesel fuel bills remain higher in some regions due to a range of factors from taxes to transportation costs, increasing solar’s appeal as an energy source, said First Solar’s Eccles.
The number of solar-diesel hybrid projects is forecast to increase, according to Tempe, Arizona-based First Solar, which signed a deal last year to bring solar power to a Rio Tinto Group bauxite mine in Queensland state.

Solar photovoltaic technology over time “needs lower and lower fuel prices to be economically competitive,” Eccles said. “There’s a long investment horizon. It needs time to crystallize, and then you’ll see a more rapid uptake.”

About 40 to 50 power projects in remote locations across Australia, the world’s biggest exporter of iron ore, are seeking funding from the Australian Renewable Energy Agency, its chief executive officer, Ivor Frischknecht, said in a phone interview.

“Some projects have slowed down a little bit in terms of how aggressively they are pursuing it” as the price of diesel declines, he said.

Scientists create a new type of solar cell

new solar cell

esearchers combine 2 types of photovoltaic material to make a cell that harnesses more sunlight

Researchers at MIT and Stanford University have developed a new kind of solar cell that combines two different layers of sunlight-absorbing material in order to harvest a broader range of the sun’s energy.

According to pddnet.com, the development could lead to photovoltaic cells that are more efficient than those currently used in solar-power installations, the researchers say.

The new cell uses a layer of silicon — which forms the basis for most of today’s solar panels — but adds a semi-transparent layer of a material called perovskite, which can absorb higher-energy particles of light. Unlike an earlier “tandem” solar cell reported by members of the same team earlier this year — in which the two layers were physically stacked, but each had its own separate electrical connections — the new version has both layers connected together as a single device that needs only one control circuit.

The new findings are reported in the journal Applied Physics Letters by MIT graduate student Jonathan Mailoa; associate professor of mechanical engineering Tonio Buonassisi; Colin Bailie and Michael McGehee at Stanford; and four others.

“Different layers absorb different portions of the sunlight,” Mailoa explains. In the earlier tandem solar cell, the two layers of photovoltaic material could be operated independently of each other and required their own wiring and control circuits, allowing each cell to be tuned independently for optimal performance.

By contrast, the new combined version should be much simpler to make and install, Mailoa says. “It has advantages in terms of simplicity, because it looks and operates just like a single silicon cell,” he says, with only a single electrical control circuit needed.

One tradeoff is that the current produced is limited by the capacity of the lesser of the two layers. Electrical current, Buonassisi explains, can be thought of as analogous to the volume of water passing through a pipe, which is limited by the diameter of the pipe: If you connect two lengths of pipe of different diameters, one after the other, “the amount of water is limited by the narrowest pipe,” he says. Combining two solar cell layers in series has the same limiting effect on current.

To address that limitation, the team aims to match the current output of the two layers as precisely as possible. In this proof-of-concept solar cell, this means the total power output is about the same as that of conventional solar cells; the team is now working to optimize that output.

Perovskites have been studied for potential electronic uses including solar cells, but this is the first time they have been successfully paired with silicon cells in this configuration, a feat that posed numerous technical challenges. Now the team is focusing on increasing the power efficiency — the percentage of sunlight’s energy that gets converted to electricity — that is possible from the combined cell.

In this initial version, the efficiency is 13.7 percent, but the researchers say they have identified low-cost ways of improving this to about 30 percent — a substantial improvement over today’s commercial silicon-based solar cells — and they say this technology could ultimately achieve a power efficiency of more than 35 percent.

They will also explore how to easily manufacture the new type of device, but Buonassisi says that should be relatively straightforward, since the materials lend themselves to being made through methods very similar to conventional silicon-cell manufacturing.

One hurdle is making the material durable enough to be commercially viable: The perovskite material degrades quickly in open air, so it either needs to be modified to improve its inherent durability or encapsulated to prevent exposure to air — without adding significantly to manufacturing costs and without degrading performance.

This exact formulation may not turn out to be the most advantageous for better solar cells, Buonassisi says, but is one of several pathways worth exploring. “Our job at this point is to provide options to the world,” he says. “The market will select among them.”

“I think this work is very significant,” says Martin Green, a professor at the University of New South Wales, in Australia, who was not connected with this research. “The work is important in establishing a proof-of-concept and will stimulate higher efficiencies with this approach. … It’s an excellent starting point for further work in this area.”

The research team also included Eric Johlin PhD ’14 and postdoc Austin Akey at MIT, and Eric Hoke and William Nguyen of Stanford. It was supported by the Bay Area Photovoltaic Consortium and the U.S. Department of Energy.

World’s first solar-powered cricket stadium

Solar-powered cricker stadium

Bengaluru’s Chinnaswamy stadium. Photo: India Today

This year’s edition of the Indian Premier League in Bengaluru will be played on what the state cricket association claims is the world’s only solar-powered cricket ground.

According to The Economic Times, the Karnataka State Cricket Association (KSCA) has commissioned a 400-KW solar plant to power the entire M Chinnaswamy stadium, except for the high-intensity floodlights, before the IPL season commences next month. The company executing the project has proposed powering the floodlights too using solar energy as the next step in KSCA’s ‘go green’ mission.

“We are aiming to make this a green stadium,” said KSCA honorary secretary Brijesh Patel, a former India cricketer. “It makes economic sense for us to do this, and the additional power we generate will be offloaded to the grid.”

The Rs 4.5 crore project, commissioned in February and inspired by Germany’s fully solar-powered Freiburg football stadium, is expected to reduce KSCA ‘s power consumption drastically . The state cricket body is headquartered in the Chinnaswamy stadium.

At present, KSCA consumes about 18 lakh units per year. After the solar power project is implemented, it is expected to use about 6 lakh units a year through solar and sell any additional power to the Bangalore Electricity Supply Co grid.

“In a matter of four years, the KSCA will get its returns,” said H Nandi, founder of city-based technology solutions firm MRO-TEK that’s implementing the project.”It would also be able to generate Rs 70-80 lakh revenue with the power it generates.”

MRO-TEK’s next target is the floodlights at the stadium. “Each floodlight consumes about 1 MW power, with each bulb carrying 1,000 watts of power. It can be replaced with 200 watt LED bulbs, which we plan to do experimentally without disturbing other floodlights. With this, power consumption would drastically reduce,” Nandi said.

Bring your innovative ideas to The Thin-Film Solar Awards Competition

thin-film solar awards

The Thin-Film Solar Awards Competition © Hanergy

The Thin-Film Solar Awards Competition, which is open to anyone, is offering cash prizes, incubator sponsorship, and production support for those submitting great thin-film solar product ideas.

Are you one of those people who’s always coming up with great ideas, even if you never do anything with them? Do you have a notebook full of ideas for inventions or product designs that have never seen the light of day? Do you often find yourself thinking about how to improve everyday products so they work better for you, or for others?

Have you ever said, “if you could only put solar on it…,” and meant it?

If you can answer yes to any of the above (or maybe even if you’ve ever thought “I wish there was such a thing as a solar-powered ________.”), then you might want to submit an idea or two to the Hanergy Thin-Film Solar Product Global Innovation Competition.

According to Tree Hugger, Hanergy, said to be the world’s largest thin-film solar power company, is looking for some bright ideas for innovative applications of its thin-film products on everyday items, and is offering cash prizes, production support, sponsorship at an incubator, and more, to the winners of the competition.

The concepts for submissions can be from across a wide spectrum of thin-film solar applications, from construction to mobile electronics to homes to vehicles and beyond, and don’t have to include a prototype or technical brief, which makes the competition open to just about anyone. In fact, if you need or want help with submitting your proposal, you can connect with the team first and they’ll help you to find the right resources or the right network to find the people who can help you.

The awards will include a $160,000 USD Grand Prize, as well as a number of other cash prizes, starting at $16,000 USD. Along with the money, the big winner will get a trip to a solar R&D lab, an opportunity for employment and profit-sharing, and production support from Hanergy. Plus, the thin-film solar ideas of today could turn out to revolutionize how we use, make, and think about mobile energy, so winners could be a part of a world-changing movement.

“All the business models built around steam-engines and baseload power are being disrupted by standard silicon solar modules. Imagine what will happen when we can provide electricity at the point of use with small applications of solar power appropriate to the load. It will put portable power into the hands of the people. The creative designers who enter this competition will have a chance to make history with their powerful new ideas.” – Danny Kennedy, founder of SfunCube solar incubator

[VIDEO] Scientists use solar film to separate water into hydrogen and oxygen…without exploding

solar-powered membrane

Researcher Ke Sun, an author of the new study holds a sample of the film that he helped develop. Photo: Lance Hayashida/Caltech

Hydrogen powered cars are slowly accelerating in popularity with boosts from infrastructure development and car manufacturers. But getting eco-friendly hydrogen is still a bit of a challenge. Right now, a lot of hydrogen is produced through mixing steam and natural gas. An alternative to using natural gas is electrolysis, using an electric current to pull apart the oxygen and hydrogen in water, but current methods use way too much energy to make it worth it.

Scientists around the country are working on making the process simpler, using AAA batteries, chemical reactions and other methods to make hydrogen a greener choice.

Of course, one of the greenest methods is to act like a leaf, and use the sun for energy.

According to Popular Science, a new study published in the Proceedings of the National Academy of Sciences announces the development of a transparent film that uses energy from the sun to separate water into hydrogen and oxygen, without some of the dangerous side effects inherent in the process.

Author Nate Lewis and his colleagues at Caltech created a thin coating of nickel oxide that can be applied to semi-conductors made of silicon or other materials–a setup that acts like an artificial leaf, using sunlight to power the system. When introduced to water, one side of the ‘leaf’ oxidizes the water, releasing oxygen, while the other side gathers the hydrogen.

A membrane keeps the newly separated hydrogen and oxygen isolated from each other, which helps reduce the risk of explosion. If heat (or electricity) is added to a mixture of hydrogen and oxygen the results can be incredibly explosive, much more so than each gas on its own. Check out the differences in burning oxygen, hydrogen, and a mix of the two in the video below.

“Without a membrane, the photoanode and photocathode are close enough to each other to conduct electricity, and if you also have bubbles of highly reactive hydrogen and oxygen gases being produced in the same place at the same time, that is a recipe for disaster,” Lewis says. “With our film, you can build a safe device that will not explode, and that lasts and is efficient, all at once.”

The film has other benefits too. Other research groups have also developed solar powered water-splitters, but those tend to have a very short shelf life, breaking down quickly. In addition to not exploding (always good) the new coating is transparent, which helps get sunlight to the leaf, and it is also rust-resistant, meaning that the material can work for a long time without degrading.

Solar charge controller to improve efficiency of solar panels

charge controller

New controller for solar panels

The simplest and easiest way to charge a battery with a solar panel is to connect the panel directly to the battery. Assuming the panel has a diode to prevent energy from flowing through it from the battery when there’s no sunlight. This is fairly common but not very efficient. Debasish Dutta has built a charge controller that addresses the inefficiencies of such a system though, and was able to implement maximum power point tracking using an Arduino.

Maximum power point tracking (MPPT) is a method that uses PWM and a special DC-DC converter to match the impedance of the solar panel to the battery. This means that more energy can be harvested from the panel than would otherwise be available. The circuit is placed in between the panel and the battery and regulates the output voltage of the panel so it matches the voltage on the battery more closely. [Debasish] reports that an efficiency gain of 30-40% can be made with this particular design.

According to Hackday, this device has a few bells and whistles as well, including the ability to log data over WiFi, an LCD display to report the status of the panel, battery, and controller, and can charge USB devices. This would be a great addition to any solar installation, especially if you’ve built one into your truck.

This is [Debasish]’s second entry to The Hackaday Prize. We covered his first one a few days ago. That means only one thing: start a project and start documenting it on hackaday.io

Solar Shirt: the phone charger you can wear

solar shirt

The solar shirt. Photo: Holst Centre

Ever had the frustration of your phone, camera or GPS battery going flat when you’re out and about? That could soon be a thing of the past thanks to the Solar Shirt – the follow-up project after Wearable Solar. Created in collaboration by Holst Centre, TNO and renowned fashion designer Pauline van Dongen, the shirt brings the worlds of high tech and high-street fashion together.

It combines solar panels and flexible electronics into an attractive, off-the-peg T-shirt for everyday wear that can charge your smartphone or other portable devices.

According to Printed Electronics World, the Solar Shirt generates power from 120 thin-film solar cells integrated into the fabric itself. In bright sunlight, it produces around 1 W of electricity – enough to charge a typical phone in a few hours. Indoors, the shirt generates enough power to keep a battery charged – so your phone or other device is always ready when you need it.

The shirt can charge smartphones, MP3 players, cameras, GPS systems and other USB-compatible handheld or portable devices. And if all your devices are charged, the electricity can be stored in the shirt’s battery pack for later use.

The solar cells are combined into standardized functional modules using Holst Centre’s vast solar cell know-how developed within the Solliance alliance and its stretchable electronics technology for integrating electronics into fabrics. This technology is part of a research program on wearable applications that integrates functionalities ranging from lighting (LED/OLED), energy harvesting (PV), sensors and displays, in textile or other flexible materials.

The solar cell modules can be mass-manufactured in a cost effective way by Roll to Roll compatible technologies and then incorporated into the fabric using familiar industrial “iron-on” techniques before the garment is stitched. Designers and garment manufacturers can arrange the modules as they like, giving them complete freedom to create their own unique designs,” says Holst Centre’s Managing Director Ton van Mol.

The Solar Shirt design was created by fashion designer Pauline van Dongen, a pioneer in the field of wearable technology garments. “Wearing solar cells lets us harness the sun’s potential energy and become a power source ourselves. As a designer, I’m excited by how solar cells can add to the esthetic of a garment. To date, all attempts to combine solar technology and fashion had focused on one-off haute couture designs.With Holst Centre’s technology, we were able to seamlessly integrate the technology and the design so they mutually inform each other – advancing the concept and value of fashion. We’ve taken solar fashion from the catwalk to the high street, with an attractive yet practical garment that people could wear every day,” she says.

“Our technology enables extremely thin electronics that are stretchable, flexible and washable. It can be integrated into fabrics using standard high-volume techniques that are well known in the textile industry. The maturity of the technology means textile manufactures could bring functional fabrics to market in a matter of months using existing production facilities. Pauline is one of the leading names in wearable technology, and her design shows how technology and fashion can complement each other to create desirable clothing that has a function,” adds Holst Centre’s Margreet de Kok.