The world installed 59 GW of solar PV capacity in 2015

solar PV

GTM: Global solar added 59 GW in 2015. Image source.

The world added 59 GW of solar photovoltaic capacity last year for a 34% growth compared to 2014, preliminary figures from GTM Research showed.

According to See News Renewables, in 2016, global installations are expected to be 64 GW, bringing the world’s cumulative installed PV capacity to 321 GW.

“The fourth quarter of 2015 showed that global PV demand is very much at the mercy of government support, which can often be unpredictable and idiosyncratic, leading to often negative but sometimes positive outcomes,” said GTM Research senior solar analyst Mohit Anand.

After the US extended the federal Investment Tax Credit (ITC) in December, its share of expected global PV demand between 2015 and 2020 has increased from an average of 10% to 15%, even as substantial growth in demand is projected for the Asia-Pacific region (apart from China) this year and beyond.

Japan, the UK and China have on the other hand pulled back feed-in tariff (FiT) support, which has reduced expectations.

Global installations in 2016 are expected to be led by the US and China. According GTM Research, emerging markets will play a key role as India will become a reliable multi-gigawatt market this year, while Brazil and Mexico will have their ambitions tested against actual project execution. A number of other markets in Asia and Latin America like the Philippines, Pakistan, Bangladesh, Uruguay, Guatemala and Panama will make progress and try to break through to 100 MW.

Denmark broke another world record in wind energy production

wind farm

Denmark produced 42% of its electricity from wind turbines last year. Image source.

Denmark successfully produced an astonishing 42% of its power from wind turbines in 2015, the highest proportion ever produced by any country.

According to mic.com, the figure exceeds 2014’s figure of 39%, which also set a record for national proportion of domestic energy generated via windmill. News agency Ritzau says Danish state electrical provider Energinet confirmed that in 1,460 of 8,760 hours during the year, windmill production actually exceeded the domestic power requirements of the country.

As a clean and renewable energy source, wind turbines are likely to become an important element of long-term climate and energy planning and in many countries already have.

Denmark’s successful harnessing of wind energy is the outcome of meticulous long-term investment by the country’s government. Its 7,314 miles of coastline are ideal for wind generation.

“It’s first country to build massive offshore wind parks and has an ambitious plan to run 100 percent on renewable energy by 2050: no oil, coal, or gas for electricity, heat, or even transportation,” NPR’s Lisa Desai reported in December. “The plan was set in motion in Denmark’s capital, Copenhagen, 40 years ago — not because of global warming, but because of the 1973 Arab oil embargo. With 99% of its energy then coming from the Middle East, Denmark decided to pursue energy independence.”

In the United States, wind is one of the fastest-growing energy sectors, an extended boom in U.S. wind energy may soon result in wind technology producing 4.5-5% of the country’s entire electrical supply — far behind Denmark, but significant as a measure of overall investment in a country traditionally dominated by dirty fuels.

Wind and solar energy comprise 61% of 2015 capacity additions, gas contributes 35%

wind turbines USA

Wind accounted for 47% of new generation capacity, followed by natural gas (35%) and solar (14%). Image source.

In 2015, the U.S. Energy Information Administration predicted that capacity additions would begin to slow, and from 2018 to 2024 the agency believes additions will average less than 4 GW annually.

New capacity additions are slowing as efficiency and demand management techniques make new generation less necessary nationwide, and the new plants that are added are largely cleaner than in years past, SNL Energy reports.

A combination of wind, solar and natural gas made up the overwhelming majority of new capacity additions last year: Some 96%, according to SNL’s data. Coal and oil combined for less than 1%.

Those figures are similar to what EIA noted last year: that renewable power made up 70% of new generation in the first half of 2015. But SNL’s data appears to show gas additions made up some ground, ultimately consisting of more than a third of additions last year.

According to Utility Dive, in the end, gas and wind together totalled 11,848 MW of the 14,468 MW installed in the U.S. last year — 82% of the total. 2,010 MW of solar made it the third largest resource in capacity added in 2015, with 14% of the total.

Record low prices have driven a big “build cycle” for wind energy, according to a study from the Lawrence Berkeley National Laboratory. Low power purchase agreement prices and the Clean Power Plan could help spur wind’s growth in 2016, especially as the U.S. House of Representatives passed a $1.1 trillion omnibus spending bill that included extensions for the solar investment tax credit and wind’s production tax credit.

According to EIA, new power additions through 2017 will average about 17 GW annually, with about half of that being non-hydro renewable power. From 2018 to 2024 EIA estimates capacity additions will average less than 4 GW annually. That’s a large shift from the 26 GW added each year between 2000 and 2013.

Material stores solar energy, releases heat on demand

solar material

New material stores solar energy and releases it in form of heat when required. Image source

Imagine if your clothing could, on demand, release just enough heat to keep you warm and cozy, allowing you to dial back on your thermostat settings and stay comfortable in a cooler room. Or, picture a car windshield that stores the sun’s energy and then releases it as a burst of heat to melt away a layer of ice.

According to a team of researchers at MIT, both scenarios may be possible before long, thanks to a new material that can store solar energy during the day and release it later as heat, whenever it’s needed. This transparent polymer film could be applied to many different surfaces, such as window glass or clothing.

Although the sun is a virtually inexhaustible source of energy, it’s only available about half the time we need it — during daylight. For the sun to become a major power provider for human needs, there has to be an efficient way to save it up for use during nighttime and stormy days. Most such efforts have focused on storing and recovering solar energy in the form of electricity, but the new finding could provide a highly efficient method for storing the sun’s energy through a chemical reaction and releasing it later as heat.

The finding, by MIT professor Jeffrey Grossman, postdoc David Zhitomirsky, and graduate student Eugene Cho, is described in a paper in the journal Advanced Energy Materials. The key to enabling long-term, stable storage of solar heat, the team says, is to store it in the form of a chemical change rather than storing the heat itself. Whereas heat inevitably dissipates over time no matter how good the insulation around it, a chemical storage system can retain the energy indefinitely in a stable molecular configuration, until its release is triggered by a small jolt of heat (or light or electricity).

The key is a molecule that can remain stable in either of two different configurations. When exposed to sunlight, the energy of the light kicks the molecules into their “charged” configuration, and they can stay that way for long periods. Then, when triggered by a very specific temperature or other stimulus, the molecules snap back to their original shape, giving off a burst of heat in the process.

Such chemically-based storage materials, known as solar thermal fuels (STF), have been developed before, including in previous work by Grossman and his team. But those earlier efforts “had limited utility in solid-state applications” because they were designed to be used in liquid solutions and not capable of making durable solid-state films, Zhitomirsky says. The new approach is the first based on a solid-state material, in this case a polymer, and the first based on inexpensive materials and widespread manufacturing technology.

“This work presents an exciting avenue for simultaneous energy harvesting and storage within a single material,” says Ted Sargent, university professor at the University of Toronto, who was not involved in this research.

Manufacturing the new material requires just a two-step process that is “very simple and very scalable,” says Cho. The system is based on previous work that was aimed at developing a solar cooker that could store solar heat for cooking after sundown, but “there were challenges with that,” he says. The team realized that if the heat-storing material could be made in the form of a thin film, then it could be “incorporated into many different materials,” he says, including glass or even fabric.

To make the film capable of storing a useful amount of heat, and to ensure that it could be manufactured easily and reliably, the team started with materials called azobenzenes that change their molecular configuration in response to light. The azobenzenes can then can be stimulated by a tiny pulse of heat, to revert to their original configuration and release much more heat in the process. The researchers modified the material’s chemistry to improve its energy density — the amount of energy that can be stored for a given weight — its ability to form smooth, uniform layers, and its responsiveness to the activating heat pulse.

The material they ended up with is highly transparent, which could make it useful for de-icing car windshields, says Grossman, the Morton and Claire Goulder and Family Professor in Environmental Systems and a professor of materials science and engineering. While many cars already have fine heating wires embedded in rear windows for that purpose, anything that blocks the view through the front window is forbidden by law, even thin wires. But a transparent film made of the new material, sandwiched between two layers of glass — as is currently done with bonding polymers to prevent pieces of broken glass from flying around in an accident — could provide the same de-icing effect without any blockage. German auto company BMW, a sponsor of this research, is interested in that potential application, he says.

With such a window, energy would be stored in the polymer every time the car sits out in the sunlight. Then, “when you trigger it,” using just a small amount of heat that could be provided by a heating wire or puff of heated air, “you get this blast of heat,” Grossman says.“We did tests to show you could get enough heat to drop ice off a windshield.”

Accomplishing that, he explains, doesn’t require that all the ice actually be melted, just that the ice closest to the glass melts enough to provide a layer of water that releases the rest of the ice to slide off by gravity or be pushed aside by the windshield wipers.

According to Laboratory Equipment, the team is continuing to work on improving the film’s properties. The material currently has a slight yellowish tinge, so the researchers are working on improving its transparency. And it can release a burst of about 10 degrees Celsius above the surrounding temperature — sufficient for the ice-melting application — but they are trying to boost that to 20 degrees.

Already, the system as it exists now might be a significant boon for electric cars, which devote so much energy to heating and de-icing that their driving ranges can drop by 30 percent in cold conditions. The new polymer could significantly reduce that drain, Grossman says.

“The approach is innovative and distinctive,” says Sargent. “The research is a major advance towards the practical application of solid-state energy-storage/heat-release materials from both a scientific and engineering point of view.”