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Siemens Gamesa to install FES heat-storage for wind energy

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Over a period of 3-years, Siemens Gamesa Renewable Energy has been doing R&D-activities on converting energy to heat in rock fill at a testing-unit in Hamburg. Now the company converts its findings into a real scale project. Starting in December, Siemens Gamesa will install the first full scale “Future Energy System – FES“ on the Trimet SE aluminum smelter site in Hamburg-Altenwerder. 
It will feature approximately 1,000 tons of rock fill which will be able to provide 30 MWh of electric energy at temperatures of 600 degree Celsius. Via a steam turbine, the heat can be re-converted into electricity. A generator rated at 1.5 megawatts will produce energy for up to 24 hours. Within this period, the system can supply energy equivalent to the consumption of 1,500 average German households or could charge the batteries of approximately 50 electric cars. Partner is the local utility Hamburg Energie GmbH. The company will test the commercial opportunities of the storage-technology in the energy markets. With the start of construction Siemens Gamesa reaches a milestone in the development of a key technology in the context of the energy transition.

In times of sunny weather and high wind conditions, renewable energies are available in large amounts – often the feed-in exceeds the grid capacities. Storage systems can help to act as a buffer between times of overload and weak production periods, which happen at slack periods and darkness. But most storage technology offer limited capacities or are not cost-competitive. The Siemens Gamesa solution under development in a project supported by the German Federal Ministry for Economic Affairs and Energy, offers a highly economic approach in storing energy. After having been converted to heat in rock fill, excess wind energy is stored and protected with an insulated cover. When there is a need for additional electricity, a steam turbine converts the heat energy back to electricity. The simple principle of this storage combines proven components to an innovative setup: For the conversion process of electricity into a hot air stream, it uses fans and heating elements out of mass production. The same applies to the re-conversion: Via a highly dynamic Siemens steam boiler, a standard steam turbine is operated to generate electricity at the end of the process chain.

The focus of Siemens Gamesa’s R&D activities was on the insulated container to house the rock fill which is the virtual battery and the core innovation. In the research project, the team has explored the thermodynamic principles to receive a high efficiency in all processes related to the transmission to heat. A scientist of Technical University Hamburg-Harburg (TUHH) supports the project by modelling the processes inside the storage unit, which results in principles for thermodynamic calculations of the processes. All learnings will now be incorporated in the real scale FES. One of the key findings was an optimized shape of the container with the rock fill. The design of the storage container of the new project reflects this: Its round bodied shape will have a decreasing diameter at both ends, where the inflow and the outflow openings are positioned. The ferroconcrete giant will have a content of 800 cubic meters of rock-fill with a mass of 1,000 tons and will be covered with a meter thick layer of thermal insulation.

Siemens Gamesa is expecting a construction time of approximately one year for the new FES system. The works in Hamburg-Altenwerder will start in December with commissioning planned spring 2019. After comprehensive testing, the new storage system will then be operated in collaboration with Hamburg Energie GmbH. 
Siemens Gamesa is a leading provider of wind power products and solutions to customers around the globe. The company has installed products and technology in more than 90 countries, with a total installed base of close to 83GW. Siemens Gamesa offers one of the industry’s broadest product portfolios, with both offshore and onshore technology as well as industry-leading service solutions, helping to make clean energy more affordable and reliable. The united company was created in 2017. Previously, Siemens Wind Power’s history in the wind industry extends back to the early 1980s, and Gamesa’s to 1994.



 

Eólica en Holanda: Nordex suministrará 50 aerogeneradores

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Nordex ha firmado un contrato con Vatenfall, propietaria de Nuon, para suministrarle 50 aerogeneradores N117/3600 destinados a uno de los mayores proyectos de eólica terrestres en Europa.
Los aerogeneradores, con una capacidad total de 180 megavatios, se instalarán en el parque  eólico "Wieringermeer", con un factor de capacidad del 42 por ciento, superior a la media.
Gracias a sus bajas emisiones de ruido, las turbinas eólicas pueden funcionar sin restricciones a plena potencia nominal, lo que tiene efectos positivos en el rendimiento energético esperado.
Los aerogeneradores N117/3600 emiten un nivel de ruido relativamente bajo por las características de su diseño y la incorporación de bordes dentados a las palas.
El director de ventas de Nordex, Patxi Landa, señaló que el emplazamiento del parque, situado a 60 kilómetros al norte de Ámsterdam, "está sometido a unas restricciones de emisión de ruidos que estos aerogeneradores pueden cumplir".
Además, afirmó que el parque eólico "evitará la emisión de alrededor de 300.000 toneladas anuales de dióxido de carbono, que son las que generaría una combinación de centrales eléctricas a gas y carbón".
La instalación de los 50 aerogeneradores comenzará a partir de marzo de 2019 y se completará antes de finales de ese año. Desde entonces, la empresa prestará servicio al parque eólico para lo que establecerá una estación de servicio local.
Nordex ha instalado parques eólicos con una capacidad total de casi 300 MW en los Países Bajos y dispone de una potente red de mantenimiento para la gestión técnica de los sistemas eólicos del país, según el fabricante.
El grupo posee cerca de 21 gigavatios de capacidad de energía eólica en más de 25 mercados que en 2016 generaron unas ventas de 3.400 millones de euros.
Cuenta con fábricas en Alemania, España, Brasil, Estados Unidos y la India y su gama de productos se concentra principalmente en los aerogeneradores terrestres de 1,5 a 4,5 megavatios.





 

Nordex Awarded 180-MW Project in the Netherlands

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Vattenfall, owner of the Dutch utility Nuon, yesterday signed a contract for the delivery of 50 N117/3600 turbines with the Nordex Group in Amsterdam. The project “Wieringermeer” is one of the biggest onshore projects for Vattenfall in Europe.
The wind farm has an above-average capacity factor of 42 per cent due the excellent average wind speed of 8.6 m/s combined with the highly-efficient Nordex N117/3600. Due to the low noise emissions, the turbines can run without curtailments at full rated power, having a positive effect on the expected energy yield. The relatively low sound power level of the N117/3600 is achieved thanks to the turbines design and the addition of serrations to the rotor blades.
“Sustainability is an important part of our DNA. This is why we are striving for sustainable solutions in different areas,” explains Patxi Landa, Chief Sales Officer for Nordex SE. This includes the interests of the immediate neighbourhood as well as the CO2 emissions that can be avoided. Located 60 kilometres north of Amsterdam, the site is subject to noise emission restrictions, which the turbines are able to meet. At the same time, the wind farm will prevent the emission of around 300,000 tons of carbon dioxide annually which would otherwise be produced by a mix of gas and coal-fuelled power stations.
Installation of the 50 turbines will commence from March 2019 and be completed by the end of the year respectively. Thereafter, the Nordex Group will provide service for the wind farm and establish a local service station for this purpose. “Everybody is looking forward to the start of this large project. We have already made the first preparations in the area and are glad to have professional companies with whom we will work closely to realize the installation of the first 50 turbines of this wind farm,” explains Ruben Lindenburg, Project Director of Nuon for Wind Farm Wieringermeer.
To date, the Nordex Group has installed wind farms with a combined capacity of almost 300 MW in the Netherlands and has a dense service network for the technical management of the wind power systems in this country.
The Group has installed wind power capacity of around 21 GW in over 25 markets, generating sales of EUR 3.4 billion in 2016. It currently has more than 5,000 employees. The production network comprises plants in Germany, Spain, Brazil, the United States and India. The product range primarily concentrates on onshore turbines in the 1.5 - 4.5 MW class addressing the requirements of developed as well as emerging markets.




 
 

GlassPoint to Build California’s Largest Concentrated Solar Power (CSP) Project

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Aera Energy, one of California’s largest oil and gas producers, and GlassPoint Solar, the leading supplier of solar energy for the oil and gas industry, today announced plans to build California’s largest solar energy project. Located at the Belridge oilfield west of Bakersfield, the integrated solar project will be the first of its kind in the world to use solar steam and solar electricity to power oilfield operations, efficiently reducing the field’s carbon emissions. Once complete, the Belridge Solar project will deliver the largest peak energy output of any solar plant in California. 


“Aera is committed to safe, responsible operations and is thrilled to extend our environmental leadership by using solar to power our production. Adding solar energy at Belridge allows us to continue to lead the way in the safest, most environmentally responsible energy extraction there is,” said Aera Energy President and CEO Christina Sistrunk. “The people of California are counting on us to help them get to school and work each day, allow their businesses to grow and thrive and help get California-grown food on their dinner tables. We are proud to be an active part of California’s low carbon future and lead the industry by adopting bold solutions to deliver valuable energy, more efficiently while protecting the environment.”
Belridge Solar will consist of an 850 MWt solar thermal facility, producing 12 million barrels of steam per year, and a 26.5 MWe photovoltaic facility that will generate electricity. The solar-generated steam and electricity will reduce natural gas currently used onsite in oilfield operations.
The facility is projected to save more than 376,000 metric tons of carbon dioxide emissions per year, offsetting the equivalent of 80,000 cars, more than one-third of the cars in Bakersfield today. The project is also expected to create hundreds of direct and indirect jobs in California throughout the oil and gas supply chain and supporting industries.
“GlassPoint is thrilled to partner with Aera to scale our solar oilfield technology in California and deliver meaningful carbon reductions. By harnessing the power of the sun to produce oil, oil operators can efficiently reduce emissions using advanced technology, creating long-term benefits for the local economy and environment,” said Sanjeev Kumar, GlassPoint SVP, Americas. “Our partnership with Aera demonstrates the growing energy convergence where renewables and traditional energy leaders are working together to address some of the biggest challenges of our time.”
Aera and GlassPoint plan to break ground on the Belridge Solar plant in the first half of 2019. The project is expected to start producing steam and electricity as early as 2020.
“Our local energy producers continue to invest in cutting edge innovation and compete globally to provide needed energy resources for our nation in an environmentally responsible way,” said 34th District Assemblyman Vince Fong. “Our community will benefit greatly from the added jobs that further boost our local economy. Aera continues to be an exemplary energy partner.”
“By harvesting the power of the sun, Aera Energy is leading us into the future of energy reliability and sustainability,” said 32nd Assemblyman Rudy Salas. “The exciting new Aera Energy and GlassPoint Solar project will have a positive impact locally and globally, using cutting edge technology to create jobs and grow the economy while conserving valuable resources and reducing carbon emissions,” he added.
GlassPoint’s solar technology provides low-cost renewable energy for extracting heavy oil, which accounts for half of California’s crude oil production. Heavy oil is produced by injecting steam in to the reservoir to heat the oil so it can be pumped to the surface. This process, known as thermal Enhanced Oil Recovery (EOR), typically generates steam using natural gas. By harnessing the sun’s thermal energy to replace the combustion of natural gas, GlassPoint is enabling Aera to reduce its energy consumption and carbon footprint at Belridge.
In 2011, GlassPoint unveiled its first commercial project with Berry Petroleum in Kern County. Following the success of the pilot project, GlassPoint scaled its technology overseas in Oman and is currently constructing Miraah, a landmark project with Petroleum Development Oman (PDO). Once complete, Miraah will produce over one gigawatt of peak thermal energy, making it one of the world’s largest solar plants of any kind.
Aera accounts for about 25% of the state’s oil production. The oil we produce allows millions of Californians to travel to work every day, businesses to grow and thrive and California-grown food to arrive at dinner tables. We live in the communities where we work, which includes Kern, Ventura, Monterey and Fresno counties. We’re working to redevelop a historic oilfield in northern Santa Barbara County. And just like our neighbors’ safety is our safety, their success is also our success. We’re proud to support local communities through jobs, partnerships and investments to build stronger neighborhoods and cities together. California is powered by oil. Aera is powered by safety, innovation and community.
GlassPoint Solar is the leading supplier of solar energy to the oil and gas industry. The global oil and gas industry consumes an amount of energy equal to 10% of its own production, making it one of the biggest markets for renewable energy. Operating worldwide from the Middle East to California, GlassPoint’s enclosed trough technology delivers the lowest cost energy to power oilfield operations. By harnessing sunshine, instead of burning natural gas or other fuels, GlassPoint helps oil producers reduce operating expenses while significantly cutting greenhouse gas emissions.
GlassPoint is one of the fastest-growing solar companies in the world with more than one gigawatt of solar oilfield projects under construction. The World Economic Forum recently recognized GlassPoint as a 2016 Technology Pioneer for its role in enabling more economical and sustainable oil production. 



 
 
 
 

 

Senvion installs 7,777th wind turbine

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Senvion, a leading global manufacturer of wind turbines has just installed its 7,777th wind turbine. The Senvion 3.2M122 is part of the 38.4 MW project Kerkow-Mürow-Landin, developed by Teut Windprojekte GmbH and has been installed over the last week. The company's wind turbines ranging from 1.5 to 6.2 MW are operating in 28 countries on 4 continents. Senvion has a total installed capacity of almost 17,000 MW worldwide, supplying about 11 million households with clean, renewable electricity.
The wind farm with the 7,777th turbine is located near Angermünde in the German Land of Brandenburg, 90 kilometers northeast of Berlin. It has been installed on a hybrid tower with a hub height of 139 meters and a rotor diameter of 122 meters.
Jürgen Geißinger, CEO of Senvion, says:"Senvion has expanded significantly over the past several years growing into new markets globally while extending and innovating technologically. With rotor diameters of up to 144 meters onshore and 152 meters offshore, we are well positioned to meet current market requirements. We are excited about the future and are working to address our customer's needs and exceed their expectations by developing the wind turbines of tomorrow."

Senvion is a leading global manufacturer of onshore and offshore wind turbines. The company develops, produces and markets wind turbines for almost any location - with rated outputs of 2 MW to 6.33 MW and rotor diameters of 82 metres to 152 metres. Furthermore, the company offers its customers project specific solutions in the areas of turnkey, service and maintenance, transport and installation, as well as foundation planning and construction. The Senvion systems are mainly designed in the major TechCenters in Osterrönfeld and Bangalore and manufactured at its German and Portuguese plants in Bremerhaven, Vagos and Oliveira de Frades as well as in Żory-Warszowice, Poland and Baramati, India. With approximately 4,500 employees worldwide, the company makes use of the experience gained from the manufacture and installation of more than 7,500 wind turbines around the world. The company's operational subsidiary Senvion GmbH is based in Hamburg and represented by distribution partners, subsidiaries and participations in European markets such as France, Belgium, the Netherlands, the UK, Italy, Romania, Portugal, Sweden, and Poland as well as on a global level in the USA, China, Australia, Japan, India, Chile and Canada. Senvion S.A. is listed on the Prime Standard of the Frankfurt Stock Exchange.




 

Exxon y Shell planean construir mayor termosolar en California

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Una empresa conjunta de Exxon Mobil Corp. y Royal Dutch Shell Plc está planificando la termosolar más grande del estado de California para proveer energía a las operaciones de perforación en el Valle de San Joaquín.

La instalación de 866 megavatios de Aera Energy LLC será construida por GlassPoint Solar Inc. para reducir la dependencia en los generadores de gas natural en el campo petrolero Belridge cerca de Bakersfield, dijeron las compañías en un comunicado el miércoles. Es casi la misma capacidad que un reactor nuclear estándar.
El proyecto se utilizará principalmente para crear vapor que Aera inyectará en los pozos, lo que facilita la extracción de crudo pesado a través de un proceso llamado recuperación mejorada de petróleo. La técnica representa más de la mitad de la producción de California, dijo en una entrevista el presidente ejecutivo de Glasspoint, Ben Bierman.
“El uso de la energía solar para generar vapor crea una oportunidad para una enorme reducción en las emisiones de carbono”, dijo Bierman.
El proyecto de GlassPoint utilizará principalmente tecnología termosolar, que cuenta con espejos que concentran la energía del sol en las tuberías de agua para crear vapor. Alrededor del 3% de la energía provendrá de paneles fotovoltaicos.
La construcción está programada para comenzar en el primer semestre de 2019, y se espera que el proyecto sea operativo en 2020. GlassPoint operará y mantendrá las instalaciones.
La compañía construyó su primer proyecto para Berry Petroleum Co. en el condado de Kern de California. GlassPoint está desarrollando actualmente un proyecto termosolar de 1 gigavatio en un yacimiento petrolífero de Omán, y el primero de los 36 tramos planificados comenzó a operar recientemente.
Aera, que representa alrededor del 25% de la producción de petróleo de California, tiene su sede en Bakersfield. Opera como una compañía independiente con operaciones de yacimientos petróleo en el Valle de San Joaquín y en los condados Ventura y Monterey, según su sitio web.




 
 
 



Vestas and Gas Natural Fenosa Renovables strengthen ties with order for five tailor-made wind farms in Spain

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At WindEurope 2017 in Amsterdam, Vestas and Gas Natural Fenosa today sealed an agreement to build 86 MW of wind energy across five new wind parks in Spain. The order showcases Vestas’ 2 MW and 4 MW platforms’ versatility and flexibility, utilising the V110-2.0 MW, V117-3.45 MW and V126-3.45 MW to maximise energy output across different wind regimes.
The five wind parks will be Vestas’ first projects derived from Spain’s latest auctions held in May. Commissioning and installation of the wind turbines is expected for the second half of 2018.
Signing the contract in Amsterdam, Executive Vice President of Vestas Sales, Juan Araluce, said: “This contract proves Vestas’ capability to add value for our customers by providing competitive and tailor-made solutions that meet their specific needs. In this case, each wind park required different turbine models to optimise performance at the lowest cost of energy and we are proud to see that, once again, Gas Natural Fenosa Renovables has put its trust in our products and expertise”.
The renewables branch of Gas Natural Fenosa, one of the leading utilities worldwide, has installed more than 400 MW of Vestas’ turbines in Spain, the latest installed in 2016.



 
 
 


GE Renewable Energy Receives Full Maintenance contract for Alsleben Wind Farm in Germany

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GE Renewable Energy today announced it was awarded a Full Maintenance contract for the Alsleben wind farm in Germany by Dortmunder Energie- und Wasserversorgung (DEW21), a subsidiary of the municipal utility of the city of Dortmund in North Rhine-Westphalia, who currently operates the site and its 36 turbines.
The agreement includes the implementation of remote monitoring and regular maintenance intervals as well as the preventive maintenance and replacement of large components when needed. GE Renewable Energy will be responsible for the full maintenance of the facilities over a period of nine years. The agreement was tendered by DEW21 in the framework of a European procurement procedure.
The Alsleben wind farm is located in in Saxony-Anhalt and has a total power output capacity of 54MW. The site comprises 36 of GE's 1.5sl wind turbines and is the largest wind installment with GE turbines in Germany.
Matthias von der Malsburg, Head of Sales for GE's Onshore Wind Services in Germany said "We are proud to provide servicing for the Alsleben wind farm. GE has more than 20 years of expertise building and servicing onshore wind turbines in Europe and we are determined to use the knowledge collected as the OEM along the way to best serve DEW21 with preventive maintenance and replacement of large components.
Maik Löhr, Head of Renewable Energies at DEW21 said "In the long-standing partnership since 2010, GE has proven to be a reliable and competent partner for us and once again won the best price / performance ratio in the current tender. We look forward to continuing our cooperation."
GE Renewable Energy recently introduced its 4.8-158 onshore wind turbine with a rotor diameter of 158 meters. With GE's largest rotor and innovative blade design, the 4.8-158 is expected to significantly improve annual energy yield and will reduce the cost of electricity to customers at low to medium wind speeds.




 

DLR scientists start operating new test facility for hydrogen production with Concentrated Solar Power

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On 28 November 2017, the German Aerospace Center (Deutsches Zentrum für Luft- und Raumfahrt; DLR), together with international project partners, presented what is currently the largest solar-chemical installation for the production of hydrogen. In the HYDROSOL_Plant project, scientists and companies have jointly further developed the process of direct hydrogen production using solar radiation. By redeveloping both the materials used and the structure of the reactor, the facility can now provide a power of 750 kilowatts. This is a significant improvement over the previous development stage of this facility, which had a power output of approximately 100 kilowatts. In the coming months, scientists will produce hydrogen in test operations and demonstrations at the Plataforma Solar de Almería (PSA) in southern Spain, and investigate the suitability of materials.

Hydrogen – an important energy source for the power and transport sector
Hydrogen has the potential to increase the proportion of renewable energies used, particularly in the transport and heating sectors. This energy source can, for example, be used directly in vehicles with fuel-cell drives. In addition, it is a component in the production of synthetic fuels such as methane, methanol, petrol and kerosene. Hydrogen generated using renewable energies can thus significantly reduce carbon dioxide emissions in the transport and heating sectors. Karsten Lemmer, DLR Executive Board Member responsible for Energy and Transport emphasised: “In the transport sector, hydrogen drives can make a significant contribution towards climate protection. The HYDROSOL_Plant research project is thus a significant step on the road to efficient production of hydrogen using solar energy.”
http://www.dlr.de/dlr/en/Portaldata/1/Resources/portal_bilder/2017/2017_4/28112017_Hydrosol_03_xl.jpg
This international project, coordinated by the Greek Aerosol and Particle Technology Laboratory (CERTH-CPERI-APTL), is a collaboration between DLR, the Spanish Centro de Investigaciones Energéticas Medioambientales y Tecnológicas (CIEMAT), the Dutch company HyGear and the Greek energy supply company Hellenic Petroleum. The DLR Institute of Solar Research is predominantly responsible for the development of the solar reactor, the layout of the facility and the measuring and control technology. The project is funded by the European Technology Initiative on Fuel Cells and Hydrogen Joint Undertaking (Fuel Cells and Hydrogen Joint Undertaking, FCH 2 JU).
http://www.dlr.de/dlr/en/Portaldata/1/Resources/portal_bilder/2017/2017_4/28112017_Hydrosol_04_xl.jpg

Efficient water splitting using sunlight
Hydrogen is produced directly via a thermo-chemical redox reaction using the thermal energy of the Sun. A set of mirrors focuses the sunlight onto a single point that is heated up to very high temperatures. With this heat, water can be split into hydrogen and oxygen. In the first part of the procedure, the Sun heats redox materials, such as nickel ferrite or cerium oxide, in the interior of the reactor to 1400 degrees Celsius. At these temperatures, the metal oxide is chemically reduced, that is oxygen is released and transported out of the reactor. The actual water splitting occurs in the second step, which takes place at 800 to 1000 degrees Celsius. Here, the researchers let water vapour flow through the reactor. The previously reduced material is reoxidised. As the oxygen is now bound into a metal oxide, it remains in the reactor, whilst the hydrogen is free to be transported out of the reactor. Once the material is completely reoxidised, it is regenerated through the first step of the procedure and the cycle starts again.
http://www.dlr.de/dlr/en/Portaldata/1/Resources/portal_bilder/2017/2017_4/28112017_Hydrosol_02_xl.jpg
Higher efficiency, greater durability
Building on earlier research projects, the scientists have significantly advanced both the structure of the reaction chamber as well as the materials. The solar radiation is secondarily focused using a cone with a coating of reflecting material, which increases the efficiency of the process as less heat can escape. Newly-developed ceramic foams hold promise for a higher hydrogen yield and greater durability. The researchers expect that these will produce around three kilograms of hydrogen per week in test mode. Martin Roeb, Project Manager at the DLR Institute of Solar Research explains: “With the HYDROSOL_Plant, we have for the first time designed a plant that reproduces the entire process, from generation, through the separation of high-purity hydrogen, to its storage. Although our work is still in the research phase, we can already generate one kilogram of hydrogen per week, which is a significant amount. An efficient fuel-cell vehicle can travel well over 100 kilometres on one kilogram of hydrogen.”
Industrial application possible in a decade
Hydrogen is one of the most important basic chemical elements. At this moment it is mainly used in the production of fertilisers and to desulfurise crude oil. In Japan there are already 200,000 fuel cell systems are already being used in buildings. The aim is to also use hydrogen in large gas power plants to produce energy and thus replace fossil and nuclear power plants. The use of hydrogen in industrial applications, such as steel production, could also lead to significant reductions in carbon dioxide emissions. Researchers reckon that it will be at least a few years before the procedure is ready for the market and for commercial applications. “The first applications could act as a stand-alone solution, for instance in areas where there is no connection to the electricity network. In those cases, a production of 10 kilograms per week may already be worthwhile. Depending on how fast development progresses, in 10 years time it will be possible to use this procedure for the industrial generation of hydrogen,” Roeb is convinced.
The general idea behind the HYDROSOL project and the demonstration of its feasibility have already received numerous scientific awards, including the European Union’s Descartes Prize in 2007 and the Eco Tech Award at the World Exposition in Tokyo in 2005.





Nordex repotenciará el parque eólico "El Cabrito"

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Nordex, participada por Acciona Energía, se ha adjudicado un contrato para renovar el parque eólico "El Cabrito", uno de los más antiguos de la compañía española y situado en Tarifa.
Nordex informó renovará "El Cabrito", un parque eólico de 30 megavatios, con 12 aerogeneradores grandes nuevos.
Acciona Energía ha pedido ocho turbinas de la serie N100/3000 y cuatro del tipo AW70/1500.
El contrato de energía eólica incluye, además del suministro, la garantía durante un periodo de dos años.
El parque eólico "El Cabrito" se construyó hace 25 años y fue entonces uno de los primeros proyectos de estas características.
"Este proyecto es para nosotros como una constelación de deseo. Aquí podemos demostrar que la energía eólica ha ganado notablemente eficacia y que este tipo de proyectos son razonables ecológica y económicamente", dijo el director de Ventas de Nordex, Patxi Landa.
Las nuevas turbinas tienen una capacidad diez veces mayor que las 90 que están instaladas ahora en el parque eólico, por lo que aumentan la generación de electricidad, reducen los costes operativos y lastran menos el paisaje porque son necesarios menos aerogeneradores.
Nordex, que emplea a 5.000 personas, posee una capacidad instalada de más de 21 gigavatios de energía eólica en más de 25 mercados y en 2016 facturó 3.400 millones de euros.
Tiene fábricas en Alemania, España, Brasil, EEUU y en India y sus productos son principalmente aerogeneradores terrestres de 1,5 a 4,5 megavatios.





 

Acciona Energía to replace 90 older wind power systems with 12 new wind turbines

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The Nordex Group has won a 30-MW order to renovate one of Acciona Energía’s oldest wind farm in Spain. In the second half of 2018, it will upgrade the 30-MW wind farm “El Cabrito” with twelve multi-megawatt turbines. In this connection, Acciona Energia has opted for eight N100/3000 turbines and four AW70/1500 turbines that fit optimally in the existing wind farm layout. The contract provides for the delivery of the turbines as well as a guarantee for an initial period of two years.
 
The wind farm was originally constructed around 25 years ago and was one of the first projects of its kind at that time. Accordingly, the 90 turbines, each of which have a nominal capacity of around 330 KW, are now showing their age. With a capacity that is up to ten times greater, the twelve new turbines will produce an increased energy yield despite having the same nominal capacity, whilst simultaneously lowering the operating costs. At the same time, the landscape will also be improved aesthetically thanks to the substantially lower number of turbines.
“El Cabrito” is situated on a mountain range near Tarifa in southern Spain where high wind speeds prevail. Acciona Energía will handle the dismantling of the older wind systems.
“This project is something of an ideal constellation for us, as with it, we can demonstrate that wind power has gained substantially in efficiency and show that this kind of projects makes good ecological and economic sense,” says Patxi Landa, Chief Sales Officer of Nordex SE.
 
The Group has installed wind power capacity of more than 21 GW in over 25 markets, generating sales of EUR 3.4 billion in 2016. It currently has roughly 5,000 employees. The production network comprises plants in Germany, Spain, Brazil, the United States and India. The product range primarily concentrates on onshore turbines in the 1.5 - 4.5 MW class addressing the requirements of land constrained as well as grid constrained markets.

 
 
 
 

Camboya por impulsar desarrollo de energía eólica

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Las autoridades de Camboya se empeñan actualmente en impulsar un estudio sobre electricidad eólica en aras de diversificar las fuentes energéticas del país, según el Ministerio de Minería y Energía del país indochino.

Sobre la base del resultado del proyecto realizado por la corporación singapurense Blue Circle, que será publicado a mediados de 2018, el gobierno camboyano considerará la inversión en esa esfera.
Especialistas esperan que con el aprovechamiento de las fuentes eólicas, Camboya goce de más condiciones favorables para garantizar la estabilidad de la producción, en paralelo con la conservación medioambiental.

Según datos oficiales, la demanda de energía en Camboya registra actualmente un rápido crecimiento durante los últimos años y cada año, el país sudesteasiático consume alrededor de dos mil megavatios, cuyo 60 por ciento provienen de las plantas nacionales y el resto, de Vietnam, Laos y Tailandia. Camboya aspira a garantizar en 2020 el acceso a electricidad de todas las comunas.


 

 
 

Renewable Energy can account for 37% of Thailand’s energy mix by 2036

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With a stronger and more ambitious energy development plan, Thailand’s share of renewable energy in total final energy consumption could surpass its national target by a quarter and reach more than 37 per cent by 2036, according to a new report published by the International Renewable Energy Agency (IRENA) and the Ministry of Energy of Thailand.


Renewable Energy Outlook: Thailand finds that decreasing imports of fossil fuels and increasing the share of renewables in the energy mix to 37 per cent would improve energy security and reduce the cost of Thailand’s energy system by USD 1.2 billion annually by 2036. An additional USD 8 billion per year could be saved in avoided externalities from environmental and health-related costs of fossil fuels. Thailand currently relies on imported energy for more than half of its energy supply, a proportion that is likely to increase further as its proven reserves of oil and gas diminish and its energy demand continues to grow.

“Thailand, like other Southeast Asian nations, stands at an important crossroads in its energy future, as its growing economy is set to fuel energy demand growth of close to 80 per cent over the next two decades,” said IRENA Director-General Adnan Z. Amin. “Accelerating the deployment of renewable energy in Thailand can underpin a period of sustainable economic growth that decarbonises the energy system while also lowering costs, creating jobs and improving energy access across the country,” continued Mr. Amin. “The switch to renewable energy represents more than just an energy transition in Thailand – it can support a complete economic transformation.”

The report also emphasises the importance of developing a portfolio of different renewable energy sources in Thailand’s energy mix that can complement each other in resource availability. It shows the country can expand its use of indigenous solar, wind and bioenergy resources across power generation, thermal uses and transportation.

The report offers five main recommendations for Thailand:
  • Increasing the role of solar photovoltaic (PV) and wind power in its energy mix;
  • Scaling up the use of solar thermal technologies in water heating and end-use sectors;
  • Developing mechanisms to ensure effective thermal use based on renewable energy sources;
  • Ensuring reliable, high-quality, affordable supply of biomass fuels while diversifying incomes for local farms;
  • Devising a long-term transportation development plan focusing on electric or renewable-based vehicles and fuel types.

Renewable Energy Outlook: Thailand, is the first undertaking from IRENA that combines the methodologies of both REmap and Renewables Readiness Assessments (RRA). While REmap determines the potential for countries to ensure an affordable and sustainable energy future and RRA is a country-initiated process that identifies short- and medium-term actions for the rapid up-scaling of renewables.






Siemens Gamesa firma un acuerdo en Taiwán para el desarrollo la eólica marina

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El acuerdo no vinculante contempla la posibilidad de establecer un centro de producción, oficinas y un área para la manipulación de los componentes de los aerogeneradores.
Siemens Gamesa Renewable Energy (SGRE) y la empresa estatal Taiwan International Ports Corporation han firmado hoy un acuerdo de intenciones (MoU) para analizar, de manera conjunta, el desarrollo de zonas en el puerto Taichung en Taiwán dedicadas a la eólica marina (offshore).

Este acuerdo no vinculante contempla la posibilidad de establecer una fábrica de componentes offshore y oficinas así como habilitar zonas para la manipulación y montaje, el almacenamiento o la descarga de materiales junto al muelle.
“Este MoU es una prueba de nuestro firme interés en contribuir al desarrollo de la energía eólica offshore en Taiwán. Estamos convencidos del potencial de este mercado emergente y queremos aportar el conocimiento que nos da ser líderes de esta industria”, explica Andreas Nauen, CEO de la división Offshore en Siemens Gamesa.

No se ha fijado un plazo para la finalización del acuerdo de cooperación.

Además, SGRE ha abierto una nueva oficina en Taipei, con el objetivo de aumentar el interés de los clientes de Asia Pacífico –excluyendo China- en la eólica offshore. La oficina servirá de centro regional offshore, que junto con las oficinas regionales de Japón y Corea, presentará los últimos desarrollos y servicios de la industria offshore. 

“La industria eólica offshore en Taiwán está estudiando, hoy en día, más de 10 GW de proyectos. A lo largo de 2017, el gobierno taiwanés ha mostrado signos firmes de apoyo al sector, con planes detallados de capacidad de red, y un aumento de los objetivos a largo plazo. Y en el resto de la región también se han completado hitos significativos. Japón está desarrollando su primer proyecto a gran escala y Corea ha puesto en marcha su primer parque de tamaño comercial. Vamos a concentrar nuestros esfuerzos en reducir los costes y en confirmar que la infraestructura adecuada está en marcha”, continúa Nauen.

En 2016, Siemens Gamesa instaló el primer parque eólico offshore de Taiwán, el proyecto piloto Formosa 1 de 8 MW.

Siemens Gamesa es una compañía líder en el sector de la energía eólica, con productos y soluciones tecnológicas para clientes de todo el mundo. Con 83 GW instalados, la compañía ha suministrado sus productos y tecnología a más de 90 países. Siemens Gamesa cuenta con una de las carteras de producto más versátiles del sector, con tecnologías adaptadas a proyectos tanto offshore como onshore, y soluciones de servicios a la vanguardia, con las que contribuye a generar una energía limpia más asequible y fiable. Siemens Gamesa nación en 2017 como resultado de la fusión de Siemens Wind Power, presente en la industria eólica desde principios de los años 80, y Gamesa, con experiencia en el sector eólico desde 1994.






 
 
 


Siemens Gamesa signs MoU with Taiwan International Ports Corporation for offshore wind power development

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Siemens Gamesa Renewable Energy and the Taiwan International Ports Corporation signed a Memorandum of Understanding to begin a collaborative investigation into the development of areas of the Taichung harbor in Taiwan for the Offshore wind business.
The non-binding MoU covers investigations of a potential manufacturing site for offshore wind components, office facilities, and staging areas including storage, pre-assembly, and quayside load-out.

“Signing the MoU demonstrates our strong desire to contribute to the development of offshore wind in Taiwan. We fully believe in the potential of this emerging market, and wish to support it with our vast knowledge as an industry leader,” states Andreas Nauen, CEO Offshore, Siemens Gamesa Renewable Energy.
A timeline has not been set for finalization of the cooperation agreement.
Furthermore, SGRE opened a new office location in Taipei, aimed at increasing offshore wind customer responsiveness in APAC excluding mainland China. The office will act as the offshore wind regional hub, and together with other regional offices in Japan and Korea, it will deliver the latest offshore wind and service portfolios.
“The offshore wind industry in Taiwan is today looking at over 10 GW of projects under planning according to official information. During 2017, strong supportive signs were shown by the Taiwanese government, with detailed grid capacity planning, and an increase of the long term ambitions. Similarly, significant milestones have been completed in the rest of the region. Japan is developing the first utility-scale projects, and Korea has now commissioned their first commercial-sized offshore wind power plant. We look forward to helping ensure that the right infrastructure is in place, as well as maintaining efforts towards further cost reductions,” Nauen continues.
In 2016, Siemens Gamesa installed Taiwan’s first offshore wind power plant, the 8 MW Formosa Phase 1 demonstration project.








New Chinese customer chooses Vestas for first wind energy project

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The wind farm is the new customer’s first wind energy project, underlining Vestas’ role as a trusted partner in the world’s biggest wind power market and its position as the leading foreign OEM in China. The order includes 35 V110-2.0 MW wind turbines delivered in 2.2 MW Power Optimised Mode for a project in Dezhou city of eastern China’s Shandong Province. 
The wind park will leverage Vestas’ high tower solutions with a hub height of 137 meters, levelling the record high in the Chinese market set by Vestas in August with a project in the same province. Vestas’ high tower solutions continue to open up new sites and projects in low and ultra-low wind in China.
“With another high tower project, Vestas’ technical solutions continue to deliver a strong business case in the very competitive Chinese market and strengthen our capability to build trust with new customers”, said Kebao Yang, Vestas Group Senior Vice President and President of Vestas China.
The project includes a two-year Active Output Management 4000 (AOM 4000) service contract. Delivery and commissioning are expected to begin in the first half of 2018.
This new order takes Vestas’ announced order intake in China to more than 700 MW in 2017.
Customer name and other information have not been disclosed at the customer's request.

 

Vestas receives 40 MW order of 80 percent PTC qualifying turbine components in the U.S.

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Vestas has received an order for 40 MW of turbine components that qualify for 80 percent of the PTC value under the bipartisan PATH act that Congress passed in 2015.
The long-term phasedown terms set in the PATH act have resulted in nearly USD 50 billion of investment in the U.S. including the expansion of factories, millions of dollars in technology innovation investment and the addition of tens of thousands of jobs across the wind value chain. In 2016, the wind industry added jobs 9x faster than the overall U.S. economy, and today there are more than 102,000 wind workers. 
“Each American-made turbine manufactured supports 30 jobs over the course of its lifetime” said Chris Brown, President of Vestas’ sales and service division in the United States and Canada, “This order underscores that wind is the low-cost energy of choice for consumers and companies that will deliver millions of dollars in economic growth and jobs to American communities.”
Project and customer are undisclosed at the customer’s request.






WindEurope applauds new platform for coal region transition

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WindEurope congratulates the European Commission on the creation of its ‘Platform on Coal Regions in Transition’ today. The Platform, part of a number of energy transition measures within the wider Clean Energy Package, will help regions with coal mining activities to modernise their economies and prepare them for structural and technological transition. The Commission’s goal is to ensure that no regions are left behind when moving away from an economy driven by fossil fuels and to ensure a socially-fair clean energy transition.

“The wind industry is already at the forefront of helping regions and local economies make the transition from coal to clean energy,” said WindEurope CEO Giles Dickson. “We’re making a positive impact even in those countries and regions where coal has been strongest.
“In 2013, with the support of EU funds, the German company Euros, which makes blades for wind turbines, opened a factory in Żory-Warszowice in Upper Silesia, the heart of the Polish coal industry. And across Poland a growing wind energy supply chain – towers, foundations, cranes, cables – has given new opportunities to workers from coal and other traditional industries. The skills transfer has in fact helped make Poland one of the leading centres of the wind supply chain in Europe. Thousands of new jobs have been created and wind has become an export success story for Poland. In Germany, the Lausitz Innovation Region initiative is undertaking a number of measures to prepare the region for a coal-free future.”
The launch took place on the eve of the One Planet Summit convened by the French President Emmanuel Macron to mark the second anniversary of the Paris climate agreement.




 

GE Power, Egypt’s EETC to connect 120 MW of wind power

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GE Power (NYSE: GE) today announced that it has signed an agreement with the Egyptian Electricity Transmission Company (EETC) for the extension of the Gabal El Zayt 22/220 kilovolt (kV) Gas Insulated Substation, connecting an additional 120 megawatts (MW) of power to the national grid by the end of 2018.
The extension will leverage GE Power’s Grid Solutions portfolio, which includes GE’s B105 220 kV gas-insulated switchgear (GIS), in addition to medium and low voltage systems, control and protection systems and auxiliary services. GE will also provide local project management, engineering, design, fabrication, the erection of power transformers, site management, testing and commissioning services on a turnkey basis.
Eng. Gamal Abdel Rehim, EETC Chairman said:“This project is a direct reflection of our efforts to continuously upgrade Egypt’s national grid, and in so doing delivering increased energy supply and support toward the diversification of the country’s energy mix. GE has always been a committed partner to EETC, and we are proud of our partnerships and the tangible results they generate in the energy sector.”
The Gabal El Zayt substation is the main connection point between the Gabal El Zayt wind farm, one of the largest in the region, and the grid. First commissioned in 2014 by GE, this will be the substation’s second extension. Upon completion of this extension, the substation’s total capacity will reach 540 MW, with plans to connect another 40 MW in the near future.
Mohammed Mohaisen, President and CEO of GE Power’s Grid Solutions business in the Middle East, North Africa and Turkey said: “The Gabal El Zayt wind farm is considered one of the largest across the region, underscoring the significance of this project to both EETC and GE. As the wind farm expands, our work with EETC to apply further extensions continues while ensuring minimal loss of transferred power. We remain committed to bringing our advanced technologies to Egypt to improve the efficiency of the electricity sector.”
The current agreement reflects GE’s long-standing role in upgrading and providing Egypt’s energy sector with the latest solutions to meet increasing generation and transmission demands. Today, GE has installed more than 150 gas and steam turbines countrywide, helping to generate more than 15.5 gigawatts (GW) of electricity, enough to power more than 15 million homes across Egypt.


 
 
 

Climate change could cause wind power to flip hemispheres

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Climate change will soon cause global wind power to flip hemispheres, researchers have claimed. The new study predicts wind resources in the next century may decrease in many regions in the Northern Hemisphere – and could sharply increase in several hotspot regions down south. Climate change will drive the flip, researchers wrote in the journal Nature. 

‘There’s been a lot of research looking at the potential climate impact of energy production transformations-like shifting away from fossil fuels toward renewables,’ said lead author Kris Karnauskas, CIRES Fellow and Assistant Professor in Atmospheric and Oceanic Sciences (ATOC) at CU Boulder. 
‘But not as much focuses on the impact of climate change on energy production by weather-dependent renewables, like wind energy.’
Wind powers only about 3.7 percent of worldwide energy consumption today, but global wind power capacity is increasing rapidly – about 20 percent a year. 
Researchers used an international set of climate model outputs to assess changes in wind energy resources across the globe.
The team then used a ‘power curve’ from the wind energy industry to convert predictions of global winds, density and temperature into an estimate of wind energy production potential.
While not all of the climate models agreed on what the future will bring, substantial changes may be in store, especially a prominent asymmetry in wind power potential across the globe. 
If carbon dioxide emissions continue at high levels, wind power resources may decrease in the Northern Hemisphere’s mid-latitudes, and increase in the Southern Hemisphere and tropics by 2100.
Strangely, the team also found that if emission levels are mitigated, dropping lower in coming decades, they see only a reduction of wind power in the north – it may not be countered with an increase of power in the south.
Renewable energy decision makers typically plan and install wind farms in areas with consistently strong winds today. 
For example, the prairies of the American Midwest – persistently windy today and in recent decades – are dotted with tens of thousands of turbines. 
While the new assessment finds wind power production in these regions over the next twenty years will be similar to that of today, it could drop significantly by the end of the century.
By contrast, potential wind energy production in northeastern Australia could see dramatic increases.
There were different reasons for the Northern decline and the Southern increase in wind power potential in the high-emissions scenario, Karnauskas and his co-authors found in their modeling results. 
The prairies of the American Midwest - persistently windy today and in recent decades - are dotted with tens of thousands of turbines. While the new assessment finds wind power production in these regions over the next twenty years will be similar to that of today, it could drop significantly by the end of the century.
In the Northern Hemisphere, warmer temperatures at the North Pole weaken the temperature difference between this cold region and the warm equator. 
A smaller temperature gradient means slower winds in the northern mid-latitudes.
‘These decreases in North America occur primarily during the winter season, when those temperature gradients should be strong and drive strong winds,’ said Associate professor Lundquist, who is also a RASEI Fellow. 
In addition to North America, the team identified possible wind power reductions in Japan, Mongolia and the Mediterranean.
This may be bad news for the Japanese, who are rapidly accelerating their wind power development.
In the Southern Hemisphere, where there is more ocean than land, a different kind of gradient increases: land warms faster than the surrounding, much-larger oceans. That intensified gradient increases the winds. 
Hotspots for likely wind power increases include: Brazil, West Africa, South Africa and Australia.
Karnauskas and colleagues Julie Lundquist and Lei Zhang, also in ATOC, wanted to better understand likely shifts in production for their paper in Nature Geosciences.







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