Tag: Energy
The Potential Economic Impact of Offshore Wind Energy in the Great Lakes
Download PDF | Published October 2013
Vertical-Axis Wind Turbines: The Future of Micro Wind? [w/video]
Walking the floor of WINDPOWER 2008, the annual conference and trade show for the wind energy industry, one couldn’t help but be transfixed by all of the different types of turbines – at least I couldn’t. The wind turbine has become the iconic symbol of clean, renewable energy. But the classic three-bladed turbine horizontal axis wind turbine, with its gracefully swooping blades, has become the symbol of not only renewable energy, but also of environmental consciousness and ecological possibility.
Despite the ubiquity of the three-bladed turbine, the oft-overlooked vertical-axes turbines are making quite a splash in the world of wind energy, especially in small and micro-applications. So what’s all the fuss about? Vertical-axis turbines apparently do not suffer from some of the same problems that plague small wind applications in urban settings including, aesthetic concerns, space requirements and sound levels.
Other advantages of vertical-axis turbines:
- Can produce up to 50% more electricity per year than conventional turbines with the same swept area
- Generate electricity at much lower wind speeds, as low as 4 mph (1.5 m/s)
- Will continue to generate power in high wind speeds, up to 130 mph (60m/s) depending on the mode
- Direct-drive units have no gearbox. No gearbox means a more efficient transfer of energy and no leaking oil
- Will not harm wildlife, in terms of bird and bat strikes
Below, I’ll cover some more basic differences and show you a few photos and short videos of some of these turbines I saw down in Houston at WINDPOWER 2008.
The designers from Taiwanese start-up A.N.I.T.A. Energy (pictured above and in video below) showed me why their models have a low start-up wind speed, and that is because of the light metal bands you can see surrounding the turbine itself. Apparently this design allows users with a less substantial wind resource (particularly those in urban applications), squeeze some electricity from the local winds. The larger model pictured above is scalable and can be stacked as many as three-high and integrated with the rooftops of large buildings.
Another design I saw scattered throughout the show floor were those that integrated small solar and wind together on the same unit (top photo and photo below). The unit below integrates both solar and wind onto a single 400W streetlight platform.
The turbine itself is a “GUS” from a company called Tangarie which features a reflective coating that reduces glare and can even be slathered with an advertisement or a state flag of Texas, as is the one below. The complete solar/wind/streetlight/pole package (made by another company altogether) costs about $7,000, not including installation.
There will undoubtedly be substantial growth in the vertical-axis turbines, especially in urban settings. Personally, I think this technology could best be applied in poorer countries to help address the most basic of energy needs, like lighting and light-duty water pumping.
Other Posts on Small and Micro Wind Energy:
“Top Five Micro Wind Turbines”
“Liveblogging from WINDPOWER 2008: Photos of Small Wind Turbines”
“Small Wind Remains in Farm Bill”
*Thanks again to the American Wind Energy Association for providing travel and conference support to WINDPOWER 2008.
Evaluating the Cleanliness of Solar Photovoltaics Can Be Complicated
I am a frustrating individual who likes to delve deeply into decision making computations and hates easy answers that sound like sales pitches. One of the best compliments I ever received came from one of my division officers when I was serving as the Engineer Officer on a submarine – he told me “Eng, you ask hard questions.”
As vocal advocate for nuclear fission power I recognize that it has many associated questions, but I after 30 years of study, I have determined to my own satisfaction that most of the important questions have reasonably good answers. In contrast, I have not yet found reasonable answers for many of my questions related to other renewable energy sources. (Yes, I – perhaps controversially – classify fission as renewable, but that is a discussion for a different post.)
Solar photovoltaic (PV) cells are a popular and often discussed (see, for example Atlantic City Convention Center Plans Largest Solar Roof in U.S., 10% of U.S. Electricity From Solar by 2025, SF Passes Largest City Solar Program in U.S. (Finally), all of which were published within the past week) form of “renewable” or “green” energy, but a casual scratching of the surface knowledge that many people have about the technology reveals some troubling details.
Not only are the panels expensive sources of electricity, but they do not last as long as advertised, they do not provide as much energy as the nameplate capacity implies, they consume significant quantities of energy in their production, installation and transportation, and they often use some very nasty materials in their manufacturing process.
The longevity of a solar panel will vary greatly depending on where it is installed, but any customer should remember that they are buying a product that will inherently need to spend as much time as possible fully exposed to the sun and weather. Though there are no visibly moving parts in a solar PV panel, there are many parts of the system where continuous chemical and physical reactions take place that can eventually lead to system degradation and failure.
Take a good look at panels that have been installed for several years and you will notice discontinuities and shiny areas where the components have been damaged and where the power production is reduced. If you have any panels, might want keep a record of the current production so that you can see this effect – or perhaps you will not want to find out just how fast that long term investment is decaying.
The literature accompanying most solar panels provide customers with numbers related to their peak capacity – what I call “noon on a clear day at the Equator”. That quantity of power is only available when the sun is directly overhead, when the panel is perfectly clean and when there are no clouds shading the cells. The cleaning part is important, any panel owner that wants maximum performance needs to set up a routine for cleaning and clearing the panels of any debris.
Leaves and snow are particular nuisances for rooftop solar panels, but sand and bird droppings can be important in some areas as well. Not that the article was specifically discussing PV panels, but I recently read about the 4,000 gallon water tanker trucks that are part of the maintenance equipment at some desert solar power plants.
Some of the most energy efficient solar panels, in terms of both the energy required to produce the panel and the panel operating efficiency are made of a semiconductor material called CdTe (Cadmium Telluride). Companies that make CdTe cells like to brag about the quality of their products, but they have also recently had to warn their investors that they may not be able to sell their panels in the EU for much longer because of rules about using toxic heavy metals in electronics. What they have not made clear yet is what their long term liability is for the panels that they have already sold. What will happen in 5, 10 or 20 years when the panel output is no longer useful and the materials need disposal? Can they be recycled without releasing the heavy metals? Will their customers be able to return the panels to the original producer? Will they make the effort or simply take the systems to the dump like many consumers do with batteries made of similar materials? (Those are the kinds of questions that my former division officer was talking about.)
There are definitely answers to some of the questions that I have about solar PV, but that does not mean that the issues are fully solved. If you are in the market for solar PV systems, please ask the hard questions and realize that anyone who wants you to buy the systems without good answers is just a salesman who is not much different from any other salesman.
Photo credit – The Sun Works (photos to be shared)
Atlantic City Convention Center Plans Largest Solar Roof in U.S.
Giving a new meaning to the term “sun roof”, Atlantic City’s Convention Center will install solar photovoltaic (PV) modules on 290,000 square feet of roof space, saving a projected $4.4 million over 20 years, according to the New Jersey Star-Ledger. In a groundbreaking economic arrangement, Pepco Energy Services, a subsidiary of Pepco Holdings, will pay to have the solar panels installed, and the Convention Center will then buy back the electricity from Pepco. The installation will provide a quarter of the energy consumed by the convention center. The Solar Energy Industry Association (SEIA) says the installation will be the largest in the U.S. on one roof.
“Jeffrey Vasser, executive director of the Atlantic City Convention & Visitors Authority, said the group began planning a solar project a few years ago when Gov. Jon S. Corzine pushed for greater use of sun and wind power in New Jersey.
‘We have a great building to do this on, and we wanted to be the first kid on the block to get in on it,’ Vasser said. This helps a young industry grow into a mature one, helps reduce our dependence on oil, and produces electricity that does not increase carbon emissions into the air,’ he said of the multi million-dollar project.”
State Governors, take note what a little forward-thinking leadership can accomplish. And think about the vast acreage across the U.S. devoted to industrial-size roofs that could be deployed to save businesses millions of dollars on energy while lessening our dependence on foreign oil. Oh yeah, and helping the environment.
Image Credit: Solar Service, Inc.
Related Posts:
10% of U.S. Electricity From Solar by 2025
Solar energy currently generates .1% of the electricity used in the U.S. According to a study released today, this will change rapidly as the cost of electricity increases and the cost of solar energy drops.
The Utility Solar Assessment Study produced by Clean Edge and Co-op America finds that solar energy is already reaching cost parity with conventional sources in some areas of the U.S. where electric rates are highest. By 2015, this will be achieved in many more areas, including Boston, San Diego, and New York. By 2025, cost parity will be achieved throughout the U.S.
The implications of this are huge. The U.S. solar photovoltaic market now relies heavily on state incentives to lower the cost of solar energy. Many people utilize solar energy because it is “the right thing to do” or businesses like the positive publicity solar brings.
Unique Advantages of Solar Electricity
Solar energy does not have fuel costs, like power generated from coal, natural gas, oil, or nuclear energy. The maintenance costs of solar are relatively low , it can generate electricity at the point of use, and emits no carbon. Solar is ideally suited to produce peak electricity, when demand is highest on the power grid and utility companies pay the highest rates. This is also where there is the greatest growth in electricity demand.
“The daily and seasonal variation in grid load in the United States matches solar availability,” said John O’Donnell, executive vice president of Ausra. Solar effectively generates electricity when the rates and demand are the highest.
Action is Needed to Advance Widespread Use of Solar Energy
Solar Companies
Large-scale use of solar energy depends on prices dropping to $3 per peak watt of electricity by 2018, according to the study. This involves quickly implementing advanced technologies in a cost-effective manner. Solar technology needs to be easier to install, thus reducing installation costs and other installations barriers.
Utility Companies
Utilities have become more and more interested in solar energy. California is a great example, where many utilities have signed purchase agreements for solar plant output. The U.S. will also need trained workers, which is another opportunity for utilities to take the lead.
A large investment in solar energy is needed for 10% of U.S. electricity to be generated by solar energy by 2025. Utilities will need to invest between $26 and $33 billion per year, a pretty hefty sum. To put this number in perspective, utilities invested $70 billion in 2007 on new power plants and transmission and distribution centers.
Solar Regulation and Policy
There is currently a 30% commercial tax credit for solar energy, but it is set to expire at the end of the year. There are purchase agreements for 3.2 gigawatts of concentrated solar power during 2007, but these solar power plants cannot be constructed before the tax credit expires. A long-term extension of the renewable energy tax credit is needed for large-scale use of solar energy. Many states also have renewable portfolio standards, but a national renewable portfolio standard would also help strengthen the industry.
Related Posts on Solar Energy
Solar Thermal Electricity: Can it Replace Coal, Gas, and Oil?
Senate Coalition Introduces Clean Energy Tax Package
Solar Panels and the Quest for $1/Watt
Clean Energy Intro: Solar Businesses
4 Things to Consider Before Going Solar
Photo Credit: Solar Service Inc of Illinois

