Iconic London double-deckers go electric

hybrid double decker bus

Hybrid double decker bus in London. Image via sciencehistorylover.files.wordpress.com

China-based manufacturer BYD will supply battery-powered buses to Transport for London from October. The number 16 route will be the first to go emission-free.

According to PV Magazine, passengers travelling from the Edgware Road to Victoria bus station in London will be using zero-emission transport from October onwards, announced Mayor of London Boris Johnson this week.

The Mayor, widely tipped as a future Conservative Party leader, announced at this week’s C40: Clean Bus Summit, Transport for London (TfL) has signed a deal with Chinese electric vehicle (EV) giant BYD Company Ltd to supply battery-powered buses, starting with the number 16 route.

BYD says its double-decker buses can drive for 155 miles, even in thick city traffic, on a single charge and their iron-phosphate batteries come with a 12-year warranty.

The news follows a report last week that the Delhi Metro system is considering switching to 100% solar power as public transport organisations the world over begin the migration to clean power sources.

Bus operator First West started running its biomethane-powered ‘poo bus’ between Bristol and Bath, in the west of England at the end of March. The Bio-Bus runs on human and household waste from 32,000 households.

New discovery to make cheaper solar energy storage

new solar discovery

This is a photograph of a single-flake-layer WSe2 thin film deposited on flexible Sn:In2O3 (ITO)-coated PET plastic. Credit: Kevin Sivula (EPFL)

Scientists in Switzerland announced a clean-energy breakthrough on Wednesday; a cheaper solar technology that splits water molecules to create clean-burning hydrogen fuel.

According to The Japan Times, the solar panel design will make it cheaper to produce hydrogen, but a simple version won’t be available for average citizens for at least 10 years, scientists said.

Splitting water molecules to create hydrogen allows the sun’s energy to be more easily stored to generate electricity or power clean cars.

The discovery has major implications for climate change, as improved solar energy would reduce fossil fuel dependence.

Previous solar hydrogen technologies are too expensive to commercialize, scientists from the Ecole Polytechnique Federale de Lausanne said in their article appearing in the journal Nature Communications.

“We want to convert solar energy into hydrogen in an economically competitive way,” Kevin Sivula, one of the report’s authors, said.

The technology is “a huge increase (in efficiency) on what’s been done before . . . and it opens new pathways for solar development,” he said.

The new solar panel looks similar to the traditional version mounted on rooftops, except sunlight first passes through a thin layer of water contained inside the device.

Tungsten diselenide, a non-toxic chemical, acts as a photocatalyst and is critical for using the sun’s energy to split water into oxygen and hydrogen.

Currently, about 1 percent of the energy from the sunlight passing through a panel can be converted into hydrogen energy; efficiency must increase to about 10 percent for the discovery to have mass commercial appeal, Sivula said.

He estimated that when scientists are able to obtain “the same efficiency as traditional solar-to-hydrogen conversion, our cheap device production method would reasonably lead to a price for hydrogen that is five to 10 times less expensive.”

Sivula and his colleagues believe it is only a matter of time and research before the new technology’s efficiency is improved.

The new discovery is part of a larger international push towards improving solar power.

The global solar index tracked by investors has risen 40 percent this year, and investments in solar power are outperforming struggling fossil fuel commodities, such as natural gas or coal.

Oil giant Exxon Mobil expects solar capacity to grow by more than 20-fold between 2010 and 2040.

“At the rate we are using fossil fuels, a solar to hydrogen conversion technology will eventually become economically viable no matter what,” Sivula said.

South Korea ingeniously uses solar panels to cover bike lane and shade bikers

Solar-Powered-Bike-Lane

Solar-powered bike lane. Photo via inquisitr.com

Over the past five years, the solar energy community has seen major innovation in solar panels. First, the new solar panels are efficiently made to look like windows. As a result of the new design, there’s been a dramatic decrease in solar panel sludge, a waste pollutant left behind from solar panel creation that solar panel companies had issues with. Also, solar panels are becoming more versatile. This can be seen by having them incorporated into everyday items, like bicycles and water distillers, to improve efficiency.

Now there are reports of solar panels actually providing something else most people wouldn’t think about: shade. That is the case for a bike lane in South Korea which is topped with solar panels.

According to Inquisitr, a stretch of highway in South Korea features a solar-powered bike lane running down the median. It is offset from traffic, protected by barriers, and sheltered by solar panels. The bike lane is about a few hours’ drive away from Seoul and runs 20 miles from Daejeon to Sejong. All 20 miles of it is solar panel covered.

Just to give an idea how efficiently innovative this idea is, we’ll provide the scenario: the solar panels are five feet by two feet, short side aligned with the length of the bike lane, and are offset by one foot each.

That means over 13 miles of the bike lane is covered by solar panels totaling 35,200 panels. Now let’s assume the solar panels are set at producing 250 kW per year without fluctuation. That is exactly 8,800,000 kW of electricity, which is about 80 percent of the power used in New York City annually.

That’s a lot of electricity.

If you want to see what the solar-powered bike lane looks like, Inhabitat provided a video by a drone displaying it from above in their follow-up. It is attached below for viewing.

Company offers a ‘safer’ alternative to emergency power generators

solar-powered generator

The portable, solar powered generators aim to provide a “safer” alternative. Image via Philadelphia Business Journal

Thousands of unlucky South Jersey residents were still without electricity Monday morning, six days after a violent storm knocked out power. Yet one local firm says customers could use its product to turn the lights back on, while they wait for utility providers to make a fix.

“We really think you should be able to have power whenever and wherever you need it,” said Heather Farber of NRG Home, which has offices in the Science Center in University City.

According to Philadelphia Business Journal, NRG Home, a division of Princeton, N.J.-based NRG Energy Inc., offers consumers several solar powered generators – something that may appeal to the more than 4,000 Atlantic City Electric customers who were still without electricity mid-day Monday.

“It is clean and quiet, and you can put it in your house,” said Farber, who calls the solar powered generators a better option than traditional gasoline powered models.

Companies and consumer advocacy groups regularly warn the public against using gas powered generators indoors since it puts residents at risk of carbon monoxide poisoning.

NRG Energy began offering the portable, fume-free generators after acquiring Goal Zero last summer.
The line includes three options, the Yeti 150, Yeti 400 and Yeti 1250 – each providing a different number of hours worth of power.

Goal Zero introduced the Yeti 1250 in 2012, and the other two solar generators followed in 2013.

The Yetis’ retail price ranges from around $200 to nearly $1,600, price points that cost the consumer hundreds of dollars more than the gas powered generators that support the same watt hours.

But Farber points out Yetis do not require any fuel, which over time will up the expense of the gasoline versions.

NRG Home declined to provide specifics on sales, but the company did say the 400 is the top seller.

Atlantic City Electric said it expected power to be restored by the end of the day to its customers, although frustrations already boiled over for many residents and at least one Gloucester County leader after nearly a week in the dark. The Greenwich Township mayor called for Gov. Chris Christie to do more to help his community.

Christie said Friday FEMA officials were on the ground and will determine if federal relief is needed by Tuesday.

Emirates Insolaire Installs World’s First Coloured Solar Panels in Switzerland

world's first coloured solar panels in switzerland

Dubai firm installs Kromatix panels on building. Photo via Business Wire

Emirates Insolaire LLC, a pioneer in the development and application of unique solar technologies and a joint venture of Dubai Investments PJSC [DI] and SwissINSO Holding Inc., has created history with the successful installation of the world’s first KromatixTM coloured solar panels on a building façade in Lausanne, Switzerland.

According to Blackbird PR News, the entire installation, worth AED 850,000, is capable of generating sufficient electric power annually for two families of four people each. The building, boasting of its unique blue façade – thanks to the Emirates Insolaire glass panels, thus has the unique recognition of having the first coloured, photovoltaic solar panel façade in the world.

Two other projects in Basel, Switzerland, and Austria have also been completed. Emirates Insolaire continues to receive enquiries for its solar panels from UAE, Qatar, Saudi Arabia, Kuwait, Egypt, Bahrain, Lebanon, as well as from Europe, Asia, the US and Brazil.

Going by the projects on hand, demand and enquiries across the globe, Emirates Insolaire expects sales over 50,000 square metres for coloured solar panels in 2015 alone. Each coloured solar panel can generate above 150 watts electric power per square meter on roofs, or above 110 watts per square meter on façades.

Globally, the photovoltaic market has grown 40% year-on-year and the number of installations foreseen for 2015 is 160 GW – approximately 800 million square meters of glass. The share of Building Integrated Photovoltaic for rooftops and facades is witnessing one of the fastest growth rates.

Rafic Hanbali, Managing Partner of Emirates Insolaire, said: “The completion of Emirates Insolaire’s first project in Lausanne is a major milestone for the company. With the KromatixTM technology, the company has ushered in a paradigm shift in solar applications because of its aesthetic appeal to any building façade and efficiency due to its power generating attributes. The company sees significant growth opportunities going forward not only in the Europe but across the globe.”

KromatixTM solar panels can supply between 20% and 60% of the needed energy for a building. For certain industries with large roofs and façades, this can go up to 100%. Coming in virtually any colour, the Emirates Insolaire solar panels are optimised for both photovoltaic modules and solar thermal collectors.

Germany’s Grafenrheinfeld nuclear reactor will be shut down permanently on June 27th

Grafenrheinfeld nuclear reactor

Grafenrheinfeld nuclear reactor. Photo via m8.i.pbase.com

One less nuclear reactor threat to the people of Europe with the early closure of the Grafenrheinfeld nuclear reactor.

According to Greenpeace International, Germany’s 33 year-old Grafenrheinfeld nuclear reactor will be shut down permanently on June 27th as the country’s phase out of nuclear power continues.

It’s the first reactor to close since Germany passed its Atomic Energy Act in July 2011 which requires the closure of all commercial nuclear reactors by the end of 2022.

The reactor is being shut down seven months early as the disastrous economics of nuclear power and Germany’s drive for clean and sustainable energy have made it impossible for its owner E.ON to operate the reactor and make a profit.

E.ON and other large nuclear utilities only have themselves to blame. They failed to anticipate the growth of renewable energy and so they failed to invest in it. At the same time, electricity prices have fallen making their nuclear power plants even less profitable.

That said, even E.ON is waking up to the new energy future of Germany. “The transformation of Europe’s energy system continues to offer us attractive growth opportunities in renewables and distributed energy,” said the company in a report from March this year.

But what are the implications of the closure of Grafenrheinfeld? Won’t it leave an energy gap?

In short: no.

Since 1981, Grafenrheinfeld reactor was the cornerstone of electricity production in Bavaria but that was before the renewables revolution. Now its closure will be barely noticed. There will be no blackouts and the security of supply is guaranteed.

The simple explanation is that over the last 15 years Germany has embraced renewables. The share of renewable energy in electricity generation grew from six percent in 2000 to around 27 percent in 2014, spread across wind, solar, and bioenergy. Germany is a major net exporter of electricity, reaching record levels in 2013 and 2014.

“This is going smoothly… No one, no company, no private citizen will feel that the reactor power is off the grid,” says Bavarian Economy and Energy Minister Ilse Aigner.

So what’s next? It’s clear that Germany doesn’t need nuclear power and that renewables are more than up to the job of leading the country into a future of sustainable, safe electricity.

But the job isn’t finished. At current growth rates, Germany is likely to reach its target of 35 percent by 2020 for renewable electricity. However, the overall share of renewable energy generation remains quite low at 11 percent because the power industry is being left to its own devices.

Germany will probably not reach its target of 20 percent of its total energy provision being renewable by the end of this decade without further government support.

So while it is excellent news from Grafenrheinfeld, there is still much to do. In the meantime, with the closure of this reactor, we see the victory of renewables over nuclear power. Germany is leading the way globally to the safe, clean energy future. The rest of the world needs to follow.

Fund solar panels for Gaza hospitals

solar panels on the roof of Gaza's hospital

Solar panels on the roof of Gaza’s hospital. Photo via middleeastmonitor.com

A group of Canadian doctors hope to make blackouts a thing of the past for Gaza’s hospitals by installing solar panels to provide energy 24/7 for emergency rooms and operating theatres.

The “EmpowerGAZA” project has launched a fundraising drive on Indiegogo to secure the $200,000 required to fund the first hospital, with the ultimate goal being to supply a further three hospitals with the life-saving solar panels.

Power outages are a daily reality in the Gaza Strip, and can last more than 16 hours per day. Hospital patients are especially vulnerable, and insufficient power can be the difference between life and death.

According to Dr Tarek Loubani, an emergency physician and collaborator on the project: “Doctors in Gaza were asking for reliable and green power, and the United Nations Development Programme (UNDP) came on board immediately when they heard about the project.”

“Everyone agreed, this project is urgent. We believe people world over will understand the impact and help its success.”

According to Middle East Monitor, EmpowerGAZA is a joint initiative of the United Nations Development Programme (UNDP) and Islamic Relief Canada to provide a renewable, reliable source of energy for intensive care units (ICUs), operating rooms and emergency departments.

A crowd-funding campaign began on 28 April and will run through to 26 June.

New ultralow-power circuit improves efficiency of energy harvesting to more than 80 percent

solar-powered sensors

The MIT researchers’ prototype for a chip measuring 3 millimeters by 3 millimeters. Image via Nanotechnology Now

The latest buzz in the information technology industry regards “the Internet of things” — the idea that vehicles, appliances, civil-engineering structures, manufacturing equipment, and even livestock would have their own embedded sensors that report information directly to networked servers, aiding with maintenance and the coordination of tasks.

Realizing that vision, however, will require extremely low-power sensors that can run for months without battery changes — or, even better, that can extract energy from the environment to recharge.

Last week, at the Symposia on VLSI Technology and Circuits, MIT researchers presented a new power converter chip that can harvest more than 80 percent of the energy trickling into it, even at the extremely low power levels characteristic of tiny solar cells. Previous experimental ultralow-power converters had efficiencies of only 40 or 50 percent.

Moreover, the researchers’ chip achieves those efficiency improvements while assuming additional responsibilities. Where its predecessors could use a solar cell to either charge a battery or directly power a device, this new chip can do both, and it can power the device directly from the battery.

All of those operations also share a single inductor — the chip’s main electrical component — which saves on circuit board space but increases the circuit complexity even further. Nonetheless, the chip’s power consumption remains low.

“We still want to have battery-charging capability, and we still want to provide a regulated output voltage,” says Dina Reda El-Damak, an MIT graduate student in electrical engineering and computer science and first author on the new paper.

“We need to regulate the input to extract the maximum power, and we really want to do all these tasks with inductor sharing and see which operational mode is the best. And we want to do it without compromising the performance, at very limited input power levels — 10 nanowatts to 1 microwatt — for the Internet of things.”

Ups and downs

The circuit’s chief function is to regulate the voltages between the solar cell, the battery, and the device the cell is powering. If the battery operates for too long at a voltage that’s either too high or too low, for instance, its chemical reactants break down, and it loses the ability to hold a charge.

To control the current flow across their chip, El-Damak and her advisor, Anantha Chandrakasan, the Joseph F. and Nancy P. Keithley Professor in Electrical Engineering, use an inductor, which is a wire wound into a coil. When a current passes through an inductor, it generates a magnetic field, which in turn resists any change in the current.

Throwing switches in the inductor’s path causes it to alternately charge and discharge, so that the current flowing through it continuously ramps up and then drops back down to zero. Keeping a lid on the current improves the circuit’s efficiency, since the rate at which it dissipates energy as heat is proportional to the square of the current.

Once the current drops to zero, however, the switches in the inductor’s path need to be thrown immediately; otherwise, current could begin to flow through the circuit in the wrong direction, which would drastically diminish its efficiency. The complication is that the rate at which the current rises and falls depends on the voltage generated by the solar cell, which is highly variable. So the timing of the switch throws has to vary, too.

Electric hourglass

To control the switches’ timing, El-Damak and Chandrakasan use an electrical component called a capacitor, which can store electrical charge. The higher the current, the more rapidly the capacitor fills. When it’s full, the circuit stops charging the inductor.

The rate at which the current drops off, however, depends on the output voltage, whose regulation is the very purpose of the chip. Since that voltage is fixed, the variation in timing has to come from variation in capacitance. El-Damak and Chandrakasan thus equip their chip with a bank of capacitors of different sizes. As the current drops, it charges a subset of those capacitors, whose selection is determined by the solar cell’s voltage. Once again, when the capacitor fills, the switches in the inductor’s path are flipped.

British naval base goes solar

Portsmouth naval base

Portsmouth naval base. Photo via mirror.co.uk

The British navy’s base at Portsmouth, England is to benefit from on-site solar energy.

According to cospp.com, the base has had 2000 solar PV panels fitted and it is estimated the facility will save £1m over the next 20 years as a result of the installation.

Ken Hobbs, head of energy solutions and services at BAE Systems Maritime Services, said: ‘‘Solar panels will generate power, transforming these buildings into clean energy producing facilities, improving efficiency and ultimately reducing costs for the Ministry of Defence (MoD).’

The naval base’s head of infrastructure, Captain Iain Greenlees, said: “This is an important step on the path to modernising the base to support the Royal Navy on global operations.”

The MoD is expecting to save more than £500,000 this financial year thanks to the panels, combined with other energy-saving initiatives at the base, which have been project-managed by BAE Systems.

Other measures have included the installation of LED lighting in offices, LED street lighting, air-source heat pumps and intelligent control systems.

The 500kW panels are part of a contract called the Maritime Support Delivery Framework.

This free app can help you calculate your renewable energy potential

IRENA app

IRENA launches the Global Atlas pocket. Image credit: IRENA

Businesses and individuals can make use of a free smartphone app to calculate the renewable energy generation potential of a given location.

According to Green Biz, the Global Atlas pocket was launched recently by the International Renewable Energy Agency (IRENA) and is designed to allow renewable energy “prospectors” and investors to comprehensively research projects before making early investment decisions.

The app draws on data from 1,000 maps provided by 67 governments and 50 data centers, and is designed to provide detailed information on whether a region or site represents a good prospect for renewable energy generation.

Adnan Z. Amin, IRENA’s director-general, said the app will help make it is easier for renewable energy firms to identify viable projects, curbing some costs of development.

“One of the major hurdles to worldwide renewable energy deployment is reaching the needed levels of investment,” he said in a statement. “The Global Atlas pocket brings more investment certainty to renewable energy prospectors and investors. Users can freely access data from geothermal potentials in the Caribbean to solar potentials in the Middle East and anything in between. It is an incredibly powerful tool.”

The app is being targeted at energy firms, governments and community project developers and is available for iOS, Android, Windows Phone and Blackberry 10 smartphones.

Anita Marangoly George, senior director of the World Bank’s Energy and Extractives Global Practice, which supported development of the app, said it could prove particularly attractive to companies in developing countries.

“Through its Energy Sector Management Assistance Program, the World Bank is making data-rich renewable energy resource maps of 12 developing countries available through IRENA’s Global Atlas,” she said. “As renewable resources take on a central role in countries’ energy planning, this information becomes increasingly important to governments, citizens and the private sector.”

The smartphone is an extension of IRENA’s online Global Atlas portal, which allows users to visualize information on renewable energy resources from any computer.