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'''Renewable energy (sources)''' or '''RES''' capture their energy from existing flows of energy, from ''on-going natural processes'', such as ], ], ], ], and ] heat flows. |
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The most common definition is that renewable energy is from an energy resource that is replaced rapidly by a natural process such as power generated from the sun or from the wind. |
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Most renewable forms of energy, other than geothermal and ], ultimately come from the ]. Some forms are stored solar energy such as ]fall and wind power which are considered short-term solar-energy storage, whereas the energy in biomass is accumulated over a period of months, as in ], or through many years as in ]. Capturing renewable energy by plants, animals and humans does not permanently deplete the resource. ]s, while theoretically renewable on a very long time-scale, are exploited at rates that may deplete these resources in the near future (see: ]). |
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Renewable energy resources may be used directly, or used to create other more convenient forms of energy. Examples of direct use are ]s, geothermal heating, and ] and ]s. Examples of indirect use which require ] are ] through ]s or ] cells (PV cells), or production of fuels such as ethanol from biomass (see ]). A parameter sometimes used in renewable energy is the ] (toe). This is equal to 10,000 ] or 41,868 MJ of energy.<ref> Unit Converter (URL accessed ], ])</ref> |
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In a sense, ''renewable energy'' may be categorised as '']'', although most renewable energy sources would not normally be called "free energy". In ], ''free energy'' means an energy source available directly from the greater environment and which cannot be expected to be depletable by humans. Renewable energy development is concerned with the use of renewable energy sources by humans. For aspects of renewable energy use in modern societies see ]. Modern interest in renewable energy development is linked to concerns about exhaustion of fossil fuels and environmental, social and political risks of extensive use of fossil fuels and nuclear energy. For a general discussion, see ]. |
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{{TOCright}} |
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== Modern sources of renewable energy == |
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=== Wind energy === |
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{{main|Wind power}} |
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As the sun heats up the Earth unevenly, winds are formed. The kinetic energy in the ] can be used to run ]s, some capable of producing 5 MW of power. The power output is a function of the cube of the wind speed, so such turbines generally require a wind in the range 5.5 m/s (20 km/h), and in practice relatively few land areas have significant prevailing winds. Luckily, offshore or at high altitudes, the winds are much more constant. |
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There are now many thousands of wind turbines operating in various parts of the world, with utility companies having a total capacity of 59,322 MW<ref>"<cite>Wind energy is a relatively young but rapidly expanding industry. Over the past decade, global installed capacity has increased from 2,500 megawatts (MW) in 1992 to just over 40,000 MW at the end of 2003, at an annual growth rate of near 30%.</cite>" (URL accessed ], ])</ref><ref>"<cite>Record year for wind energy : global wind power market increased by 43% in 2005</cite>" (URL accessed ], ])</ref>. Capacity in this case means maximum possible output which does not count load factor. |
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New wind farms and offshore wind parks are being planned and built all over the world. This has been the most rapidly-growing means of electricity generation at the turn of the ] and provides a complement to large-scale base-load power stations. Most deployed turbines produce electricity about 25% of the time (load factor 25%), but some reach 35%. The load factor is generally higher in winter. It means that a 5 MW turbine can have average output of 1.7 MW in the best case. |
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Global winds long-term technical potential is believed to be 5 times current global energy consumption or 40 times current electricity demand. This requires 12.7% of all land area, or that land area with Class 3 or greater potential at a height of 80 meters. It assumes that the land is covered with 6 large wind turbines per square kilometer. Offshore resources experience mean wind speeds of ~90% greater than that of land, so offshore resources could contribute substantially more energy.<ref>"<cite>Offshore stations experience mean wind speeds at 80 m that are ~90% greater than over land on average.</cite> <br />"<cite>Overall, the researchers calculated winds at 80 meters traveled over the ocean at approximately 8.6 meters per second and at nearly 4.5 meters per second over land .</cite>" (URL accessed ], ])</ref> This number could also increase with higher altitude ground based or airborne wind turbines.<ref>"<cite>High-altitude winds could provide a potentially enormous renewable energy source, and scientists like Roberts believe flying windmills could put an end to dependence on fossil fuels. At 15,000 feet, winds are strong and constant. On the ground, wind is often unreliable -- the biggest problem for ground-based wind turbines.</cite>" (URL accessed ], ])</ref> |
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Wind strengths vary and thus cannot guarantee continuous power. Some estimates suggest that 1,000MW of wind generation capacity can be relied on for just 333 MW of continuous power. While this might change as technology evolves, advocates have suggested incorporating wind power with other power sources, or the use of energy storage techniques, with this in mind. It is best used in the context of a system that has significant reserve capacity such as hydro, or reserve load, such as a desalination plant, to mitigate the economic effects of resource variability. |
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] is renewable and is one of the few energy sources that contributes to ] mitigation, because it removes energy directly from the atmosphere without producing net emissions of greenhouse gases such as ] and ] (others greenhouse gas mitigating energy sources include ] and ]). |
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=== Water power === |
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{{main|Water power}} |
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Energy in water can be harnessed and used, in the form of motive energy or temperature differences. Since water is about a thousand times heavier than air, even a slow flowing stream of water can yield great amounts of energy. |
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There are many forms: |
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* ] energy, a term usually reserved for hydroelectric dams. |
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* ], which captures energy from the tides in horizontal direction. Tides come in, raise waterlevels in a basin, and tides roll out. The water must pass through a ] to get out of the basin. |
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* ], which does the same vertically, capturing the stream of water as it is pushed around the world by the tides. |
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* ], which uses the energy in waves. The waves will usually make large ]s go up and down in the water. |
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* ] (OTEC), which uses the temperature difference between the warmer surface of the ocean and the cool (or cold) lower recesses. To this end, it employs a ]. |
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* ], although not technically an energy generation method, can save a lot of energy in summer. It uses submerged pipes as a ] for ]. Lake-bottom water is a year-round local constant of about 4 °]. |
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* ], the reverse of ]. A difference in salt concentration exists between seawater and river water. This gradient can be utilized to generate electricity by separating positive and negative ions by ion specific membranes. ] is produced. This form of energy is in research, costs are not the issue, tests on pollution of the membrane are in progress.At this moment it is predicted that if everything works out, 1/3 of the electricity needs in the Netherlands can be covered with this system.(2005) |
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Hydroelectric power is probably not a major option for the future of energy production in the developed nations because most major sites within these nations with the potential for harnessing gravity in this way are either already being exploited or are unavailable for other reasons such as environmental considerations. However, ] may be an option for small scale applications such as single farms, homes or small businesses. |
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Building a dam often involves flooding large areas of land, this can change habitats so immensely that this risk of endangering local and non local wildlife is great. For example, since damming and redirecting the waters of the Platte River in Nebraska for agricultural and energy use, many native and migratory birds such as the Piping Plover and Sandhill Crane have become increasingly endangered. while hydroelectric energy produces essentially no carbon dioxide, recent reports have linked hydroelectric power to methane, which forms out of decaying submerged plants which grow in the dried up parts of the basis in times of drought. Methane is a potent greenhouse gas. |
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The other methods of energy generation (and cooling) have had varying degrees of success in the field. Wave and tidal power prove hard to tap, while OTEC has not been field tested on a large scale. |
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The general public mostly considers water power energy to be renewable. |
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===Solar energy=== |
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] |
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{{main|Solar power}} |
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Since most renewable energy is ultimately "solar energy" this term is slightly confusing and used in two different ways: firstly as a synonym for "renewable energies" as a whole and secondly for the energy that is directly collected from sunlight. In this section it is used in the latter category. |
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Solar power can be used to: |
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* generate electricity using ] |
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* generate electricity using ] |
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* heat buildings, directly |
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* heat buildings, through ]s |
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* heat foodstuffs, through ]s. |
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Obviously the sun does not provide constant energy to any spot on the Earth, so its use is limited. Solar cells are often used to power batteries, as most other applications would require a secondary energy source, to cope with outages. Some homeowners use a solar system which sells energy to the grid during the day, and draw energy from the grid at night; this is to everyone's advantage, since power demand for air conditioning is highest during the day. |
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Problems generally associated with electricity from solar cells: |
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<ul> |
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<li>It is not available in dark or cloudy conditions, hence producing variable voltages. |
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<li>Solar panels are expensive and energy collection is not yet optimized. |
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<li>The current generated is only of DC type. It must be converted to AC current before transmission. |
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</ul> |
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] plants work best in hot deserts and other places with plenty of direct sunshine. There are methods for storing solar heat so that electricity generation may continue through the night and even on cloudy days. |
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=== Geothermal energy === |
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{{main|Geothermal energy}} |
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Geothermal energy ultimately comes from ] in the core of the ], which heats the Earth from the inside out, and from the sun, which heats the surface. It can be used in three ways: |
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* Geothermal electricity |
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* Geothermal heating, through deep Earth pipes |
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* Geothermal heating, through a ]. |
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Usually, the term 'geothermal' is reserved for thermal energy from within the Earth. |
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Geothermal electricity is created by pumping a fluid (oil or water) into the Earth, allowing it to evaporate and using the hot gases vented from the earth's crust to run ]s linked to ]s. |
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The geothermal energy from the core of the Earth is closer to the surface in some areas than in others. Where hot underground steam or water can be tapped and brought to the surface it may be used to generate electricity. Such ] sources exist in certain geologically unstable parts of the world such as ], ], ], ] and ]. The two most prominent areas for this in the United States are in the ] basin and in northern ]. ] produced 170 MW geothermal power and heated 86% of all houses in the year 2000 through geothermal energy. Some 8000 MW of capacity is operational in total. |
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Geothermal heat from the surface of the Earth can be used on most of the globe directly to heat and cool buildings. The temperature of the crust a few feet below the surface is buffered to a constant 7 to 14 °C (45 to 58 °F), so a liquid can be pre-heated or pre-cooled in underground pipelines, providing free cooling in the summer and, via a ], heating in the winter. Other direct uses are in agriculture (greenhouses), aquaculture and industry. |
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Although geothermal sites are capable of providing heat for many decades, eventually specific locations cool down. Some interpret this as meaning a specific geothermal location can undergo depletion. Others see such an interpretation as an inaccurate usage of the word depletion because the overall supply of geothermal energy on Earth, and its source, remain nearly constant. Geothermal energy depends on local geological instability, which, by definition, is unpredictable, and might stabilise. |
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The present consumption of geothermal energy does not in any way threaten or diminish the quality of life for future generations, consequently, it is considered a renewable energy source. |
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== Small scale energy sources == |
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There are many small scale energy sources that generally cannot be scaled up to industrial size. A short list: |
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* ] crystals generate a small voltage whenever they are mechanically deformed. Vibration from ] can stimulate piezoelectric crystals, as can the heels of shoes |
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* Some watches are already powered by kinetics, in this case movement of the arm |
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* ] generate electricity from the kinetic energy in water that is pumped through tiny channels |
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* Special ] can collect energy from stray radio waves or theoretically even light (]). |
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== Issues == |
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=== Aesthetics, habitat hazards and land use === |
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Some people dislike the aesthetics of ] or bring up nature conservation issues when it comes to large solar-electric installations outside of cities. Some people try to utilize these renewable technologies in an efficient and aesthetically pleasing way: fixed solar collectors can double as noise barriers along highways, roof-tops are available already and could even be replaced totally by solar collectors, ] can be used to tint windows and produce energy etc. |
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Some renewable energy capture systems entail unique environmental problems. For instance, wind turbines can be hazardous to flying birds, while hydroelectric dams can create barriers for migrating fish - a serious problem in the Pacific Northwest that has decimated many salmon populations. <!-- this could prolly be phrased better... --> |
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Another problem with many renewables, especially biomass and biofuels, is the large amount of land required, which otherwise could be left as wilderness. |
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=== Concentration === |
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Another inherent difficulty with renewables is their variable and diffuse nature (the exception being ], which is however only accessible in exceptional locations). Since renewable energy sources are providing relatively low-intensity energy, the new kinds of "power plants" needed to convert the sources into usable energy need to be distributed over large areas. |
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Electrical power consumption in Western countries averages about 100 watts continuously per person (i.e. about 1 MWh per year). In cloudy ] this would require about eight square meters of ]s per person, assuming a below-average solar conversion rate of 12.5%. Systematic electrical generation requires reliable overlapping sources or some means of ] on a reasonable scale (]s, batteries, hydrogen ]s, etc). So, because of current costs of such energy storage systems, a stand-alone system is only economic in rare cases, or where a connection to a public grid would be impractical. |
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=== Proximity to demand === |
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The geographic diversity of resources is also significant. Some countries and regions have significantly better resources than others in particular RE sectors. Some nations have significant resources at distance from the major population centers where electricity demand exists. Exploiting such resources on a large scale is likely to require considerable investment in transmission and distribution networks as well as in the technology itself. |
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Rooftop photovoltaic arrays are especially attractive in that most of the power they produce is consumed in the structure on which they are mounted or in other nearby buildings. |
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=== Availability === |
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One recurring criticism of renewable sources is their intermittent nature. Sunlight is only available during the day (50% of the time, on a yearly basis). Wind energy is somewhat more available, while geothermal and wave energy are continuously available, although wave intensity varies by season. A wave energy scheme installed in Australia is generating electricity with an 80% availability factor. |
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=== Fossil fuels === |
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{{main|Fossil fuel}} |
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Renewable energy sources are fundamentally different from fossil fuel or nuclear power plants because the Sun will 'power' these 'power plants' (meaning sunlight, the wind, flowing water, etc.) for the next 4 billion years. They also do not directly produce greenhouse gases and other emissions, as fossil fuel combustion does. Most do not introduce any global new risks such as ]. |
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Fossil fuels are not considered a renewable energy source, but are often compared and contrasted with renewables in the context of ]. |
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The traditionally, though not universally, held Western (biogenic) theory postulates that fossil fuels are the altered remnants of ancient plant and animal life deposited in sedimentary rocks. They were formed millions of years ago and have rested underground, mostly dormant, since that time. |
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In contrast, the ] theory states that ] (or ]) is primarily created from non-] sources of ]s located deep in the ]. This view was championed by ] in his book ''The Unity of the Universe''. |
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Though it is possible to produce complex ] artificially by using the ], this process does not generate energy, and cannot be considered a large scale solution to the energy problem. However, liquid fuels and hydrocarbons are needed, and the Fischer-Tropsch-process can use biomass, hydrogen and oxygen produced with renewable energy, as feedstocks. |
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The coal industry in the US is publicly claiming coal is renewable energy because the coal was originally biomass. However, the biomass of fossil fuels was produced on the time scale of millions of years through a series of events and it is considered to be a deposit of energy, not an energy flow. Some scientist hold the view that the formation of fossil fuels was a one-time event, made possible by unique conditions during the ] period, such as increased oxygen levels and huge swamps. |
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When the term renewable was introduced (see ] within this article), it was a generally held belief that the Earth's sources would be depleted within some 50 years. Since then, large deposits of deep-Earth oil have been found, which has extended this timetable. Because the current rate of consumption exceeds the rate of renewal (if, indeed, there is renewal of fossil fuels), the Earth will eventually run out of fossil fuels (''see ]''). |
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=== Transmission === |
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If renewable and ] were to become widespread, ] and ] systems might no longer be the main distributors of electrical energy but would operate to balance the electricity needs of local communities. Those with surplus energy would sell to areas needing "top ups". That is, network operation would require a shift from 'passive management' - where generators are hooked up and the system is operated to get electricity 'downstream' to the consumer - to 'active management', wherein generators are spread across a network and inputs and outputs need to be constantly monitored to ensure proper balancing occurs within the system. Some Governments and regulators are moving to address this, though much remains to be done. One potential solution is the increased use of active management of electricity transmission and distribution networks. This will require significant changes in the way that such networks are operated. |
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However, on a small scale, use of renewable energy that can often be produced "on the spot" lowers the requirements ] systems have to fulfill. Current systems, while rarely economically efficient, have proven an average household with a solar panel array and energy storage system of the right size needs electricity from outside sources for only a few hours every week. Hence, advocates of renewable energy believe electricity distribution systems will become smaller and easier to manage, rather than the opposite. |
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=== Market development of renewable heat energy === |
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] is an application of ], namely the generation of heat from renewable sources. In some cases, contemporary discussion on renewable energy focuses on the generation of electrical, rather than heat, energy. This is despite the fact that many colder countries consume more energy for heating than as electricity. On an annual basis the United Kingdom consumes 350 TWh<ref> Department of Trade and Industry report (URL accessed ], ])</ref> of electric power, and 840 TWh of gas and other fuels for heating. The residential sector alone consumes a massive 550 TWh of energy for heating, mainly in the form of gas.<ref> Department of Trade and Industry, 2005 study on (URL accessed ], ])</ref> |
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Renewable electric power is becoming cheap and convenient enough to place it, in many cases, within reach of the average consumer. By contrast, the market for renewable heat is mostly inaccessible to domestic consumers due to inconvenience of supply, and high capital costs. Heating accounts for a large proportion of energy consumption, however a universally accessible market for renewable heat is yet to emerge. Also see ]. |
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== Historical usage of renewable energy == |
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Throughout history, various forms of renewable and non-renewable energies have been employed. |
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*] was the earliest manipulated energy source in human history, being used as a thermal energy source through burning, and it is still important in this context today. Burning wood was important for both ] and providing heat, enabling human presence in cold climates. Special types of wood cooking, ] and ], also enabled human societies to safely store perishable foodstuffs through the year. Eventually, it was discovered that partial combustion in the relative absence of oxygen could produce ], which provided a hotter and more compact and portable energy source. However, this was not a more efficient energy source, because it required a large input in wood to create the charcoal. |
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*] for vehicles and mechanical devices was originally produced through ]. Animals such as horses and oxen not only provided transportation but also powered mills. Animals are still extensively in use in many parts of the world for these purposes. |
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*] for vehicles, mechanical devices and individual non-machine-aided transportation has been employed throughout human history. Slaves have been used for powering boats and powering construction machinery such as that used to build the ]. Today, slaves have largely been replaced by other sources of power to the degree that the average American accesses the same amount of power that otherwise would require 50 slaves. One of the largest uses of human power today is bicycling. |
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*] eventually supplanted animal power for mills, wherever the power of falling water in rivers was exploitable . Water power through ] continues to be the least expensive method of storing and generating dispatchable energy throughout the world. Historically as well as presently, hydroelectricity provides more renewable energy than any other renewable source. |
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*], especially ] was long burned as an oil for light. |
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*] has been used for several hundred years. It was originally used via large sail-blade ]s with slow-moving blades, such as those seen in the ] and mentioned in ]. These large mills usually either pumped water or powered small mills. Newer windmills featured smaller, faster-turning, more compact units with more blades, such as those seen throughout the ]. These were mostly used for pumping water from wells. Recent years have seen the rapid development of wind generation farms by mainstream power companies, using a new generation of large, high wind turbines with two or three immense and relatively slow-moving blades. Today, wind power is the fastest growing energy source in the world. |
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*] as a direct energy source has been not been captured by mechanical systems until recent human history, but was captured as an energy source through architecture in certain societies for many centuries. Not until the twentieth century was direct solar input extensively explored via more carefully planned architecture (passive solar) or via heat capture in mechanical systems (active solar) or electrical conversion (photovoltaic). Increasingly today the sun is harnessed for heat and electricity. |
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*Attempts to harness the power of ] appears in drawings and patents back to the 19th century. Modern attempts to capture wave power began in the 1970's by Professor Steven Salter who started the Wave Energy Group at the University of Edinburgh in Scotland. There are several pilot plants generating power into the grid, and many new and curious designs are in various stages of development and testing. |
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== See also == |
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* ] |
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* ] |
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* ] |
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* ] |
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* ] |
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* ] |
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* ] |
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* ] |
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* ] |
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* ] (TREC) |
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== External links == |
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{{Commons|Category:Renewable energy}} |
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* alternative energy news |
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* Collection of articles about how advances in genomics is leading to advances in energy production. |
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* . |
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* — US Election 2004 Web Monitor |
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* , ] and ]. |
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* , fields of activity : air quality, wastes, energy-efficiency and renewables, environmental management, polluted soils, transportation |
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* |
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* Renewable energy world record |
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* On the possible abiogenic origin of fossil fuels |
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* Collective articles on renewable energy and other topics related to sustainable living |
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* A directory to more than 9000 renewable energy businesses worldwide |
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* Where should i spend my money if i want to have a low carbon home? |
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* Information on offshore wind energy throughout the World. |
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* Document references on Renewable Energy - multilingual site |
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* Consolidated News Links |
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* A groundbreaking power-generation solution |
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* Information Gateway for Renewable Energy and Energy Efficiency |
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== References == |
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<references/> |
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* provides a wide range of statistics and information on the industry. |
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*Boyle, G. (ed.), ''Renewable Energy: Power for a Sustainable Future''. Open University, UK, 1996. |
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{{Sustainability and energy development group}} |
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