Showing posts with label Floating Solar PV. Show all posts
Showing posts with label Floating Solar PV. Show all posts

Monday, February 1, 2016

Flotation Is the Next Big Thing in Energy Production


There’s a growing international trend in energy production: make it float.
Perhaps the most novel project type is the floating nuclear power plant. China General Nuclear (CGN), China’s largest nuclear operator, announced earlier this month that it expects to start operating a small modular offshore reactor by 2020.
Construction of the ACPR50S demonstration project is expected to begin next year, having recently been approved by China's National Development and Reform Commission as part of the country’s 13th Five-Year Plan. China plans to build 300 gigawatts of nuclear capacity over the next 10 to 20 years, with seven nuclear reactors coming on-line each year through 2030.
The 200-megawatt floating reactor is designed to supply electricity, heat and desalination, and could be used to supply power to remote coastal areas or deepwater oil and gas rigs. It could also prove useful in the event of a natural disaster. China sees the project as a significant piece of its domestic policy. According to the CGN press release, marine nuclear power platforms are being built to “play an important role in the implementation of the strategy of strong marine power.”
There are several logistical advantages to a waterborne nuclear plant, besides mobility. Theoretically at least, there are few siting concerns and a very low environmental impact. Also, building the plant at a shipyard is expected to bring efficiencies and cost savings, and once in operation, seawater can conveniently be used for cooling.
But at the same time, floating nuclear power has its drawbacks. Access to personnel and equipment is a challenge. And while nuclear is a low-carbon energy source, the possibility of radioactive material leaking into the sea presents health and environmental risks.
China’s ACPR50S won’t be the world’s first floating nuclear power plant. The Russian company Baltiysky Zavod has already started construction on the Akademik Lomonosov, a barge equipped with two 35-megawatt reactors similar to those used in submarines. The project is scheduled to be delivered to the Russian nuclear power plant operator Rosenergoatom in September, and could start operating in the Chukotka region as early as 2017.
Meanwhile, construction on the world’s largest floating solar project is getting underway.
In Japan, Kyocera Corp. and Century Tokyo Leasing Corp. and have started building a 13.7-megawatt floating solar plant on the Yamakura Dam reservoir near Tokyo. The plant is scheduled for launch in March 2018.
The Yamakura Dam project has grown in scale since it was first announced in 2014. The array will generate an estimated 16,170 megawatt-hours of electricity per year (up from the initial estimate of 15,635 megawatt-hours), which is enough to power nearly 5,000 typical households.
In 2015, the Kyocera TCL Solar joint venture launched three floating solar projects sized 1.7 megawatts, 1.2 megawatts and 2.3 megawatts, respectively. Japan is an ideal location for floating solar because space is limited and there are numerous inland waterways used for agricultural and flood-control purposes.
Floating solar is also a growing trend in the U.S. Last March, Sonoma Clean Power signed a contract to build a 12.5-megawatt "floatovoltaic" project -- the largest floating solar project in the U.S. and the second-largest in the world after the Yamakura Dam array.
Wind projects are now floating, too. Following successful testing of a 2-megawatt floating turbine developed by WindFloat, a consortium of companies announced plans this month to deploy a 25-megawatt offshore wind project by 2018.
The new wind park, located roughly 12 miles off the Portuguese coast at Viana do Castelo, is being developed by Principle Power Inc., EDP Renewables, Mitsubishi Corporation (through its subsidiary Diamond Generating Europe), and the Chinese Chiyoda Corporation (through its subsidiary Chiyoda Generating Europe).
The chief benefit of a floating wind farm is that it can be set up farther away from shore, where the water is too deep for bottom-mounted systems. This reduces the likelihood of interference with shipping routes and fishing, as well as addressing concerns over visual pollution. Wind is also stronger and more consistent over the open ocean.
The Norwegian energy giant Statoil started testing the first-ever floating wind project in 2009, and since then has reportedly reduced costs by 60 percent. Last November, the company announced it will build a five-turbine, 30-megawatt floating wind farm off the shore of Scotland by late 2017, which will become the first commercial-scale project of its kind.
Not to be left out, there’s also floating equipment for oil and gas production: floating production, storage and offloading (FPSO) vessels. Depleted onshore oil and gas reserves are pushing companies to explore for energy resources at sea. High upfront costs are likely to temper the adoption of FPSOs, but at the same time, there are high costs and technical risks associated with fixed platforms, which could ultimately drive up demand for floating systems.
In 2012, the FPSO market was valued at $12.6 billion. According to a new report by Transparency Market Research, the FPSO market is expected to grow by just over 17 percent between 2013 to 2019, when the market will reach $38.7 billion.
Exxon Mobil Corp., Statoil, DNV GL and others are exploring ways to use floating wind to power oil and gas production, similar to how China plans to support oil and gas operations with an aquatic nuclear power plant. A technical analysis on the potential for waterborne wind to serve the oil and gas industry is scheduled for release in the first quarter of 2016.

Friday, January 22, 2016

KYOCERA TCL Solar Begins Construction on 13.7MW Floating Solar Power Plant

Article published on www.businesswire.com, in January 22nd, 2016
KYOTO, Japan--()--In a joint venture, Kyocera Corporation (herein “Kyocera,”) and Century Tokyo Leasing Corporation (herein “Century Tokyo Leasing”) announced today that Kyocera TCL Solar LLC (herein “Kyocera TCL Solar”) has started construction of the world’s largest*1 13.7 megawatt (MW) floating solar power plant on the Yamakura Dam reservoir, managed by the Public Enterprises Agency of Chiba Prefecture in Japan for industrial water services.
Scheduled for launch in FY2018 (fiscal year ending March 31, 2018), the plant will be comprised of approximately 51,000 Kyocera modules installed over a fresh water surface area of 180,000m2. The project will generate an estimated 16,170 megawatt hours (MWh) per year — enough electricity to power approximately 4,970 typical households*2 — while offsetting about 8,170 tons*3 of CO2 emissions annually. This is equal to 19,000 barrels of oil consumed*4.
The project was initiated in October 2014, when the Public Enterprises Agency of Chiba Prefecture publicly sought companies to construct and operate a floating solar power plant to help reduce environmental impact.
With the decrease in tracts of land suitable for utility-scale solar power plants in Japan due to the rapid implementation of solar power, Kyocera TCL Solar has been developing floating solar power plants since 2014, which utilize Japan’s abundant water surfaces of reservoirs for agricultural and flood-control purposes. The company began operation of 1.7MW and 1.2MW plants in March 2015 followed by the launch of a 2.3MW plant in June. With Kyocera Communication Systems Co., Ltd. responsible for construction and Kyocera Solar Corporation undertaking O&M (operation and maintenance) of these projects, the Kyocera Group is cultivating the technology and expertise to construct, operate and maintain floating solar power plants.
 
Project Overview
Location Yamakura Dam
(Ichihara City, Chiba Prefecture, Japan)
OperationKyocera TCL Solar LLC
OutputApprox. 13.7MW
Solar modules270-watt Kyocera modules (50,904 modules in total)
Expected annual power generationApprox. 16,170MWh/year
Electricity generated is planned to be sold to Tokyo Electric Power Company, Incorporated
Construction timelineStart of construction: December 2015
Planned launch: FY2018 (fiscal year ending March 31, 2018)
Design & constructionKYOCERA Communication Systems Co., Ltd.
Maintenance KYOCERA Solar Corporation
 
Company Overview
Company name Kyocera TCL Solar LLC
LocationChiyoda-ku, Tokyo, Japan
ShareholdersCentury Tokyo Leasing Corporation (81%)
Kyocera Corporation (19%)
EstablishedAugust 2012
Business outline To sell power produced from solar power generation
 
*1 World’s largest floating solar power plant in terms of output. Claim is based on research by Kyocera TCL Solar LLC (as of January 15, 2016) of projects currently under construction and in operation.
*Based on average annual use of 3,254.4kWh per household. Source: Federation of Electric Power Companies of Japan (Graphical Flip-chart of Nuclear & Energy Related Topics 2015)
*3 Based on calculations derived from JPEA (Japan Photovoltaic Energy Association) standards
*Based on calculations derived from the United States Environmental Protection Agency’s Greenhouse Gas Equivalencies Calculator
Kyocera Corporation (NYSE:KYO)(TOKYO:6971) (http://global.kyocera.com/), the parent and global headquarters of the Kyocera Group, was founded in 1959 as a producer of fine ceramics (also known as “advanced ceramics”). By combining these engineered materials with metals and integrating them with other technologies, Kyocera has become a leading supplier of solar power generating systems, mobile phones, printers, copiers, electronic components, semiconductor packages, cutting tools and industrial ceramics. During the year ended March 31, 2015, the company’s net sales totaled 1.53 trillion yen (approx. USD12.7 billion). Kyocera appears on the latest listing of the “Top 100 Global Innovators” by Thomson Reuters, and is ranked #552 on Forbes magazine’s 2015 “Global 2000” listing of the world’s largest publicly traded companies.
Century Tokyo Leasing Corporation (TOKYO:8439) was launched in 2009 through the merger of the former Century Leasing System, Inc. and the former Tokyo Leasing Co., Ltd. Century Tokyo Leasing is one of the leading companies in the industry, operating in four business segments, Equipment Leasing, Specialty Financing (including environmental and energy business), Automobile Financing and International Business. Century Tokyo Leasing enjoys the support of a strong line-up of shareholders, including Mizuho Financial Group and ITOCHU Corporation. As of the year ended March 31, 2015, the company's consolidated operating assets reached total of 2.9 trillion yen (approx. USD24.2 billion), and the company's market capitalization stood at 390billion yen (approx. USD3.2 billion).

Contacts

KYOCERA Corporation (Japan)
Hina Morioka, +81-(0)75-604-3416
Corporate Communications
Fax: +81-(0)75-604-3516
E-Mail: webmaster.pressgl@kyocera.jp
Website: http://global.kyocera.com/
or
Century Tokyo Leasing Corporation
Takeshi Matsubara, +81-(0)3-5209-6710
Investor Relations Office
E-Mail: contact_e@ctl.co.jp
Website: http://www.ctl.co.jp/english/

Thursday, December 10, 2015

Benefits of a Floating Solar Array

Article published on www.engineering.com, in December 12th, 2015
Manchester England will soon be the home of Europe’s largest floating solar array. United Utilities, provider of water and sewer services for nearly seven million people in northwest England, is installing a solar farm on rafts that will float atop Manchester’s Godley reservoir. The three megawatt photovoltaic array will generate one third of the electricity used by the water treatment facility - about 2.7 GWh per year. (That number assumes an average of 2.4 peak sun hours per day, which is pretty low but probably correct for northern England, with its 53o latitude.) Although United Utilities is privately owned, its prices are regulated by the UK, so customers will ultimately see lower rates as a result of this investment.

Economics aside, I’d like to focus on the technical benefits of solar panels floating on water. First and foremost, water is a great heat sink, and PV panels operate better when they’re kept cool. How much better?
[Pause for dramatic effect...]
Let’s do the math!

Increasing Power

A typical PV panel has nominal current and voltage ratings. Output current is a function of the amount of light reaching the panel, and output voltage is primarily dependent on the load. Power is the product of  current times voltage. Nominal values are based on standard test conditions, typically a light intensity of 1000 w/m2and an operating temperature of 25oC.

Each panel has temperature coefficients that tell how much the voltage and current will vary with temperature. For example, a panel’s voltage and current may vary by -80mV/oC and 5mA/oC, respectively. (Note that the voltage has a negative temperature coefficient, so lower temperature results in higher voltage.) Cooling a panel by 1oC will increase its voltage by 80mV and decrease its current by 5mA.
How does cooling the panel affect power production? 

Let's look at a commercial panel that provides 135W when its voltage is 17.7V and current is 7.63A. Suppose the panels are cooled by 5oC*. How does the voltage and current change?

Voltage will increase by 0.4V, giving 18.1V.
Current will decrease by 0.025A, giving 7.605A
The new power output is 18.1V x 7.605A = 137.7W, an increase of about 2%.

Two percent doesn’t seem like much, but with a 3 MW array, an extra 2% is 60kW. Over one year at that location, we’re looking at an additional 52 MWh of energy.

*Disclaimer: I don’t know exactly how much of a cooling effect the water will have on the panels. I know of a hybrid PV thermal panel that decreases cell temperature by 22oC, but that system pumps water under the panels for more efficient cooling. I suspect that floating on a reservoir will have a less dramatic impact, so I used 5oC in my calculations.

Reducing Evaporation

The floating array will cover more than 45,000 square meters of water, 75% of the reservoir’s surface. Godley is an open air reservoir, so it’s affected by evaporation. How much? Well, we’re getting out of my area of expertise, so I went to theEngineering Toolbox and found that under typical atmospheric conditions, a body of water with a 45,000 m2 surface area could lose more than 15,000 kg (almost 4000 gallons) of water every hour. If we assume that evaporation takes place primarily during the day in warmer months, we can cut that number by a factor of four, so the floating array could prevent the reservoir from losing about eight million gallons of water every year. (It won’t stop rainwater from getting in, though - the floats will have drainage.)


Decreasing Algae

Anyone who’s ever owned a swimming pool knows that algae loves sunlight. Curtailing the growth of algae in open air reservoirs is often accomplished through the use of herbicides and algaecides, and nobody wants to drink those. I’ll leave it to the biologists to run the calculations on how much this array will reduce algae growth, but with 75% of the surface covered, I think it’s safe to say that United Utilities will spend less money on chemical treatments for algae reduction.

United Utilities’ Barry Tayburn and Chris Stubbs talk about the project:




Image and video courtesy of United Utilities

Friday, November 13, 2015

Brazil's Chesf to install 5-MW floating PV system in Bahia - report

Article published in November 9th on www.renewables.seenews.com 

Brazilian power utility Chesf and Pernambuco's Federal University (UFPE) will build a 5-MW solar floating system in the Sobradinho reservoir, Bahia, local news portal Jornal do Commercio reported on Sunday.
Some BRL 50 million (USD 13m/EUR 12.2m) will be invested in the project through the Research, Development and Innovation Programme.
By December 15, the company responsible for the installation of solar panels will be hired. The first 1 MW of the system should be finalised within seven to eight months from December.
Apart from producing clean electricity, the solar panels will help reduce the evaporation in the reservoir, says Chesf's Director of Engineering and Construction, Antonio Varejao, as quoted by Jornal do Commercio. One of the goals of the project is to study the impact of solar panels on the reservoir volumes, temperature and humidity.
Similar installations have already been completed in China, India, Japan and other countries.
For more information about floating solar benefits, please check www.cieletterre.net 

Tuesday, October 27, 2015

New installation in Israël for Floating Solar PV




You can find more information at : www.cieletterre.net about the Hydrelio(c) system used in the video

Thursday, October 15, 2015

TNB Puts To Test Pilot Floating PV System

Article originally published in http://themalaysianreserve.com/ on July 3rd, 2015

Image
Floating solar panels at a Kyocera solar plant in Hyogo Prefecture, Japan.
With some 70 lakes found suitable in Peninsular Malaysia for developing floating photovoltaic (PV) systems, Tenaga Nasional Bhd (TNB) has just embarked on its a 100kWp pilot system in Sg Labu Water Treatment Plant in Sepang, Selangor. The project, which is owned by the Ministry of Energy, Green Technology and Water, is 80% funded by the Malaysia n Elect ricit y Supply Industries Trust Account or known by its Malay acronym AAIBE (Akaun Amanah Industri Bekalan Elektrik), while the rest is by TNB.
The RM3.95 million project will span around 1,000 sq m over a 50ha lake. The pilot floating PV systems project commenced in March 2015 and is scheduled for completion by November 2016.
Should the project proves to be successful, TNB will look at how to replicate and promote the initiative in the other lakes which have a combined surface area of 1,001.9 sq km (100,190ha).
“If we take up just 10% of the total surface of these lakes to fix floating PV systems, we can generate 8.4TW-hours of electricity,” TNB Research Sdn Bhd’s green technology researcher Mohd Razwan Rusli said to reporters recently at TNB’s Media Familiarisation programme in Cameron Highlands.
The system is ideal for installation in water reservoirs and water catchment areas as well as several holding ponds used by the Stormwater Management And Road Tunnel.
While it is the first of its kind in Malaysia, neighbouring countries have ventured along this path.
Similar system has been installed for raw water catchment/pond in Cheongju, South Korea and in Okegawa, Japan.
Singapore’s Economic Development Board and national water agency Public Utility Board are launching its US$8.6 m illion (RM32.17 million) pilot floating solar farm in Tengeh Reservoir. It is capable of generating energy enough for the consumption of 1,000 Housing and Development Board households.
Japan will soon have what is said to be the world’s largest floating solar power plant, with a total capacity of 1.7MW installed on Lake Nishihira in the region of Hyogo.
Mohd Razwan said the floating PV systems development will negate the need for ground-based installations or tree felling. It may also reduce unwanted algae growth and water evaporation rate, and can be integrated with a hydroelectric power plant to minimise the effects of voltage fluctuations from the PV system.
One major challenge in large-scale deploy ment of ground-based photovoltaic system is securing land of sufficient size.
On average, a 1MWp solar plant requires four acres of land. The cost to purchase or rent can advsersely affect the return-oninvestment of the project.
The PV system on agricultural land also poses its own set of challenges.
“Placing the solar panels on water bodies frees up land for agricultural use, conservation or other development. More importantly, we don’t have to clear land to make space for the system,” he added.
He said that installation of PV system on water bodies may minimise water evaporation by lowering the water temperature and reducing the size of water area exposed to air.
The cooling effect of the water on both the panels and the electrical equipment is said to be beneficial as the floating PV systems would yield higher power output than conventional solar power system.
“One major problem for solar panels is the loss of power with the increase of temperature,” he said. Estimates suggest a loss of 0.41% power for every 1% increase in temperature.
Solar panels in a conventional power system across a tropical region like Malaysia can reach temperatures of 60°C-70°C on a hot day, which can reduce the PV system’s power output to between 14% and 24%.
“There is also the potential reduction in algae growth due to reduced sunlight penetration,” he added.
Since no excavation work is required, Mohd Razwan said the implementation has little or no impact on existing ecosystems.
“Although this source of renewable energy needs a high initial capital, the maintenance cost is very minimal. The system could also be installed in homes with the option of selling it back to utility companies such as TNB,” he added.
Discover the solution that will be installed in Sungai Labu Reservoir.

Wednesday, June 17, 2015

Can Solar Panels Help Solve California's Drought

Article originally parished in www.bloomberg.com, on april 17th 2015.

From a distance, they almost look like a massive mosaic swimming-pool cover. They are photovoltaic panels, half-millimeter thick silicon wafers that are erected over reservoirs. Their function: Generate power while also conserving water.
For years, the technology was just a niche product. Now, with drought concerns growing in many places across the planet, it’s showing signs of taking off.
In parched parts of California and Australia, as well as in Japan, where cramped living conditions put land at a premium, the panels can increasingly be seen dotting the water. According to Infratech Industries Inc., a Sydney-based developer of the technology, they can produce almost 60 percent more electricity than land-based solar farms and they reduce evaporation by 90 percent.
Invisible Solar Cells That Could Power Skyscrapers
While still representing less than 1 percent of the power generated by all solar installations today, up from about zero a few years ago, Infratech anticipates much more growth in demand for the floating panels -- on reservoirs and even above hydro dams -- as global temperatures rise.
“Water is a commodity that is only going to increase in value,” Felicia Whiting, an Infratech director, said in a telephone interview.

Higher Cost

For the technology to keep gaining market share, though, producers will have to overcome what could be their biggest obstacle: The higher cost of installing and maintaining the panels relative to conventional units, which could limit their spread to drought-stricken or crowded areas.
“Making the system float has to be more expensive than putting a solar panel on a roof, or in a field,” Paul Meredith, a materials physicist at The University of Queensland who is investigating the efficient production of solar energy, said by phone. “Operating and maintenance is difficult enough on land without having to get into a row boat.”
Kyocera Corp. and Century Tokyo Leasing Corp. have built three plants in Japan’s Hyogo Prefecture, with combined capacity of 5.2 megawatts, according to a May statement. One megawatt is enough to power 357 Japanese homes, Kyocera said.
The Japanese plants are being developed on water in regions that lack available land for utility-scale generation, Hina Morioka, a Kyoto-based spokeswoman for Kyocera, said May 28 in an e-mailed response to questions. There are projects planned on about 30 reservoirs in Japan to generate about 60 megawatts. There are at least 5 operating plants in Japan with a combined capacity of 7.4 megawatts, less than 1 percent of the country’s 23.3 gigawatts of installed solar.

Japan, Mexico

Kyocera’s 2.3 megawatt rectangular plant at Kasai City has more than 9,000 solar modules sitting on floating platforms, which are anchored to the bottom of the reservoir. It covers about 40 percent of the water.
Solar Power Inc., backed by China’s LDK Solar Co., is planning projects in the U.S. and Mexico. The company has teamed with San Diego-based Aqua Clean Energy and identified more than 50 megawatts of potential plants for places including California, according to a statement in March.
Floating panels help conserve water, a shortage of which is threatening the production of coffee, almonds and other commodities. A record drought in California left millions of acres of farmland fallow.

Electricity Source

The sun could become the largest source of electricity by 2050, provided solar costs can be lowered, the International Energy Agency said in September. Panel prices are about two-thirds lower since 2010 because of a global supply glut driven by production in China.
Photovoltaic installations this year may exceed a record 61 gigawatts, according to Bloomberg New Energy Finance. Japan may add more than 12 gigawatts and China 17 gigawatts. Global installations may reach 70 gigawatts next year, BNEF says.
“Photovoltaic solar is growing exponentially,” Chris Fell, principal research scientist at Australia’s Commonwealth Scientific and Industrial Research Organisation, said by phone. “It’s renewable, non-polluting, and granular, so you can put it where you need it.”
U.S. solar capacity rose 30 percent to more than 20 gigawatts in 2014 and will more than double by the end of 2016, the Solar Energy Industries Association in Washington says.
Infratech’s 4 megawatt plant at Jamestown in southern Australia opened in April, the first such installation in the country. The nation has 4,100 megawatts of installed solar capacity, according to the Australian Photovoltaic Institute.
“In countries or regions where land, rather than cost, is the limiting factor in a solar system, floating panels may find a friendlier market,” Jacqueline Lilinshtein, a New York-based analyst for BNEF, wrote in an e-mail June 3.

Thursday, June 4, 2015

REC Solar Panels Now Certified for North American Floating Installations

Article originally published on www.cospp.com, in June 3rd 2015.

SAN FRANCISCO, CA--(Marketwired - Jun 3, 2015) - REC Group, a leading global provider of solar energy solutions, has successfully completed tests to confirm that REC solar panels can be deployed in floating solar installations to the same exacting standards of reliability, performance and quality as on rooftops or in ground-mounted installations. Since the company has extended its product and performance guarantees to include floating solar installations, investors and users can rely on REC panels' long-term reliability and optimized energy output for these innovative projects under way in several parts of the United States, Mexico, and other countries.
The costs of solar technology have dropped by more than 50% over the past six years and continue to shrink, with solar energy reaching grid parity in more and more regions around the world. Analysts predict that solar will be the world's most common energy source by 2050, with generation costs reaching ~2 cents per kilowatt-hour. The total installed capacity of solar photovoltaic is expected to increase to 4,600 gigawatts (GW) by 2050, up from ~150 GW today.
But in some regions, the greatest barrier to accelerated solar growth might be the amount of available acreage. No matter how much sunshine they enjoy, countries and regions where space is at a premium, such as the U.S. East Coast, Japan, U.K., and Hong Kong, are seeking alternative deployment strategies such as floating solar installations.
Putting solar on fresh water makes sense
With projects sized from a few kilowatts to several megawatts and more, floating solar installations have the potential to power thousands of households, and enable underused bodies of water to become solar-friendly real estate. A wide range of sites are suitable, including wastewater ponds at water treatment facilities and chemical plants, irrigation storage ponds at farms or vineyards, quarry lakes, and large storage reservoirs behind dams. A growing number of such installations have been built or are in various stages of development, including projects in California, Arizona, Texas, New Jersey, Mexico, Brazil, France, Japan, and Australia.
Heavy power users such as water treatment facilities, for example, could save hundreds of thousands of dollars per year by using electricity generated by a floating solar installation. Since lease payments for underutilized bodies of water are likely to be lower than land lease payments, a floating installation could be even more competitive compared to other energy sources. Owners of these "liquid assets" could benefit from modest revenue streams by leasing their water surface.
The benefits of floating solar installations go beyond the obvious economic advantages of distributed onsite power generation. In drought-impacted, energy-hungry areas such as California, the sun-blocking shade provided by such systems can significantly reduce water evaporation. The shading effect also hinders photosynthesis in the water and therefore results in less algae growth on the ponds themselves.
Arndt Lutz, senior vice president of REC Group and managing director of its North American business, is confident that REC's high-performance solar panels will help pioneer this new direction. "For many investors, solar installations on water surfaces are uncharted territory, and there are very few projects worldwide to serve as benchmarks. We are delighted to extend REC's product and performance guarantees to floating applications in North America. This gives U.S. and other regional investors and users greater investment security, while also delivering substantial ecological benefits."
REC assured quality for floating installations
Floating PV systems experience different dynamic stresses compared to those encountered by standard ground-mounted installations. REC has performed rigorous component and panel evaluations in real and simulated floating conditions, including component salt spray, panel vibration, immersion and UV exposure tests.
The installation is relatively easy to implement, since the floatation structure can be assembled without heavy equipment. As an initial example, REC solar panels have been proven to be safe for installations on specially designed Hydrelio floating pontoons manufactured by the French company Ciel et Terre, with a water salinity not exceeding 25 mS/cm at 25°C (15 PSU).
About REC:
REC is a leading global provider of solar energy solutions. With more than 15 years of experience, we offer sustainable, high performing products, services and investments for the solar industry. Together with our partners, we create value by providing solutions that better meet the world's growing energy needs. Our 1,800 employees worldwide generated revenues of USD 803 million in fiscal year 2014. As of May 13, 2015, REC belongs to Bluestar Elkem Investment Co. Ltd.
Agnieszka Schulze
Public Relations Manager
REC
Leopoldstr. 175, 80804 Munich, Germany
Phone: +49 89 54 04 67 225
Email: Email Contact
Cameron Crowe
Account Director
Impress Labs
811 Sansome St., San Francisco
Phone: +1 415 735 8420
Email: Email Contact

Find out more about REC at www.recgroup.com
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12.5GW of Brazilian PV projects to go head-to-head in August auction

article originally published on www.solarplaza.com, in June 3rd, 2015

PVT - More than 12.5GW of solar PV projects have been given the green light to participate in Brazil's latest round of reserve energy auctions.

The country's Energy Research Company (EPE), announced at the end of last week that 382 PV projects have been accredited, making up 12,528MW of capacity in total, ahead of the tender process taking place on 14 August.

According to an EPE statement, the total capacity of prospective bidders exceeds the total capacity of a vast 11GW hydro power plant, Belo Monte, being built in the country.

Wednesday, June 3, 2015

EU Extends Solar Anti-dumping Investigation To Malaysia And Taiwan

Article originally publish on www.cleantechnica.com, in June 1st, 2015

Chinese solar modules manufacturers who have moved a part of their production facilities to neighbouring countries may face fresh anti-dumping investigations from the European Union.
Following an application by SolarWorld, the European Commission announced last week that it has initiated anti-dumping investigations into solar PV modules imported into the EU and manufactured in Malaysia and Taiwan.
According to media reports, the investigation is expected to cover only Chinese companies that have manufacturing facilitates in Malaysia and Taiwan. Currently, EU levies anti-dumping duties on solar PV modules manufactured only in China. Manufacturers that set a minimum sale price for the modules, as per EU requirement, are not affected by such duties.
The investigation could be a big blow to the Chinese manufacturers that had shifted production bases out of China. SunPower and Hanwha Q Cells, among others, have operational production facilities in Malaysia. For the moment, the investigation will only look into the import of crystalline silicon modules.
Several Chinese companies have moved to other countries to escape countervailing duties imposed by the EU. Apart from Taiwan and Malaysia, companies have moved to South Korea, Thailand, and even the EU and US. Some of the companies are now also planning to enter India. Over the last few months, the likes of Trina Solar and Zhongli Talesun have started construction of production facilitates for solar PV modules in Thailand.

Monday, June 1, 2015

Biggest floating solar power plant built in Hyogo

Article originally published on www.jw.asahi.com, in May 26th, 2015
KASAI, Hyogo Prefecture--The world's largest floating solar power plant has been built on Sakasamaike Pond here.
A ceremony was held May 24 to mark the completion of the mega power plant, which can generate 2.3 megawatts and is capable of producing enough electricity to supply 820 households.
Nine thousand solar panels, each measuring about 1.7 meters by 1 meter, are spread on resin floats on the surface of the water.
The power plant will be operated by an affiliated company of Kyocera Corp. and the electricity generated will be sold to Kansai Electric Power Co.
A portion of the operator’s annual income of about 100 million yen ($821,000) will be paid to a local residents group in charge of maintenance of the pond as a rental fee for the site.
When solar power plants are constructed on water, power-generation capacity can be maintained at a high level as the cooling effect of the water prevents the panels from heating up, officials said.

Friday, May 29, 2015

Japan’s Solar Farms Take to the Water

ARTICLE ORIGINALLY PUBLISHED ON THE WALLSTREET JOURNAL JAPAN , in may 27TH 2015



Workers walk past rows of solar panels at the 2.3-megawatt floating solar power station operated by Kyocera  TCL Solar LLC.
 
Bloomberg News
At a time when major electronics makers are using idled semiconductor clean rooms to grow high-quality vegetables, it should come as no surprise to see Japanese farmers floating solar panels on reservoirs that are used to water rice fields.
Thanks to a generous feed-in tariff for renewable energy, Japan has become a global force to be reckoned with in the area of floating solar power generation.
Earlier this week, the world’s largest facility by capacity started commercial operations in Hyogo prefecture, western Japan. The 2.3 megawatt Sakasamaike facility, set up on an agricultural water reservoir, was built and is operated by a joint venture between major solar cell manufacturer Kyocera Corp. and Century Tokyo Leasing Corp
Before the Sakasamaike facility came online, the world’s largest floating solar station was a 1.7MW facility also in Hyogo. And 10 months from now, Sakasamaike is likely to be knocked from the top spot by a 13.4MW facility being built on a dam reservoir in Chiba prefecture near Tokyo, according to Kyocera.
Japan has a large number of agricultural water reservoirs that keep water supplies necessary for growing rice. With land suitable for utility-scale solar generation already otherwise occupied, Kyocera is focusing on artificial ponds and lakes to build more solar facilities.
“Floating solar stations are not expensive compared with land-based solar. Equipment is more costly, but construction is simpler,” a Kyocera spokeswoman said.
Ciel Terre, a French technology firm specializing in floating solar technology, opened an office in Tokyo in 2013 and has provided equipment for floating solar ventures including Kyocera’s projects. It even started equipment production in Japan last October.
There are several firms in the floating solar field. Osaka Gas is one such company. It started operations at a 850KW floating solar station on an agricultural water reservoir in Hyogo prefecture last September. “We have received many inquiries from communities that jointly hold rights to use artificial ponds. There are a particularly large number of such ponds in Hyogo, so we’ve had many inquiries from there,” a company spokesman said.
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Monday, April 27, 2015

Japan has floating solar power plants in Hyogo Prefecture

Article originally published in http://techxplore.com/, on April 27th, 2015.
Kyocera is in the news this month. Two floating solar power plants in two reservoirs in Kato City, Hyogo Prefecture, Japan, are complete. This is a joint venture. The two players are Kyocera and Century Tokyo Leasing, which is in the business of equipment leasing. Construction started last year in September. They use 255-watt Kyocera modules, 11,256 modules in total.
The 11,256 Kyocera modules are affixed to specially developed floating platforms, attachedto the lakebeds, said RenewablesBiz.com.
The plants are on Nishihira Pond and Higashihira Pond. Capacity on Nishihira is 1.7MW. Capacity on Higashihira is 1.2MW. Tom Kenning reported in PV-Tech.org, which covers the solar PV supply chain, that, combined, the plants will generate enough to power 920households.
The electricity generated will be sold to the local utility, Kansai Electric Power, through Japan's feed-in-tariff system. BusinessGreen commented that the feed-in-tariff system "has played a key role in establishing Japan as one of the world's largest solar markets in recent years." Liat Clark in Wired.co.uk made the observation that "Solar power is booming in Japan; the nation doubled its  capacity within two years of the 2011 Fukushima nuclear disaster, and is now a world leader along with China and the US."
What is the advantage of a "floating" solar power system design? Kyocera said the cooling effect of the water results in more electricity generated than with ground-mount and rooftop systems. Also, by shading the water, they reduce reservoir water evaporation and algae growth.
The platforms use high-density polyethylene, which can withstand ultraviolet rays and resist corrosion. The floating plants are said to be engineered to withstand typhoon conditions.
This is not the last you will hear of floating plants. Liat Clark in Wired.co.uk said "floating  are having a moment in the sun." He said some "are starting to appear in the UK, while larger scale projects are also planned in California's wine country." BusinessGreen also mentioned plans for arrays on reservoirs in California. Last year, Young-Kwan Choi of the Korea Water Resources Corporation, discussed at length Floating PV Systems in terms of power generation and environmental impact. He wrote that the floating PV system demonstrated in his paper was a new way of generating solar energy, using the water surface that is available on dams, reservoirs and other bodies of water. "This method has an advantage that allows efficient use of the nation's soil without bringing damages to the environment." His paper compared and analyzed the empirical data of the floating PV system that K-water installed with that of the existing overland PV. The author verified that the generating efficiency of floating PV system was superior by 11 percent and more (the floating PV system has 11 percent better generation efficiency than overland equivalents.)
His paper was published in the International Journal of Software Engineering and Its Applications.