Difference between revisions of "Desalination" - New World Encyclopedia

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[[Image:Shevchenko BN350 desalinati.jpg|right|thumb|300px|Shevchenko BN350 desalination unit situated on the shore of the [[Caspian Sea]].]]
 
[[Image:Shevchenko BN350 desalinati.jpg|right|thumb|300px|Shevchenko BN350 desalination unit situated on the shore of the [[Caspian Sea]].]]
'''Desalination''', '''desalinization''', or '''desalinisation''' refer to any of several processes that remove excess [[sodium chloride|salt]] and other [[mineral]]s from [[water]]. Desalination may also refer to the removal of salts and minerals more generally,<ref>[http://dictionary.reference.com/browse/desalination "Desalination"] (definition), ''The American Heritage Science Dictionary'', Houghton Mifflin Company, via dictionary.com. Retrieved on [[2007]]-[[08-19]].</ref> as in [[salinity control|soil desalination]],<ref>[http://english.people.com.cn/english/200108/03/eng20010803_76423.html "Australia Aids China In Water Management Project."] ''People's Daily Online'', [[2001]]-[[08-03]], via english.people.com.cn. Retrieved on [[2007]]-[[08-19]].</ref><ref>
 
Takashi, Kume, Amaya Takao, and Mitsuno Tooru. [http://sciencelinks.jp/j-east/article/200307/000020030703A0178553.php "The Effect of Soil Desalinization in the Hetao Irrigation District, Inner Mongolia, China."] ''Transactions of the Japanese Society of Irrigation, Drainage and Reclamation Engineering'', No. 223, pp. 133-139, 2003, abstract via sciencelinks.jp. Retrieved on [[2007]]-[[08-19]].</ref> but the focus of this article is on water desalination.
 
  
Water is desalinated in order to obtain [[fresh water]] suitable for [[animal]] consumption or [[irrigation]], or, if almost all of the salt is removed, for [[human]] consumption. Sometimes the process produces [[sodium chloride|table salt]] as a [[by-product]]. It is used on many [[ship]]s and [[submarine]]s. Most of the modern interest in desalination is focused on developing cost-effective ways of providing fresh water for human use in regions where the availability of water is limited.  
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'''Desalination''' (or '''desalinization''' or '''desalinisation''') refers to any of several processes that remove excess [[sodium chloride|salt]] and other [[mineral]]s from [[water]]. The term ''desalination'' may also be used in a general sense, to refer to the removal of [[salt]]s and [[minerals]] from a mixture,<ref>[http://dictionary.reference.com/browse/desalination "Desalination"] (definition), ''The American Heritage Science Dictionary'', Houghton Mifflin Company, via dictionary.com. Retrieved October 8, 2007.</ref> as in [[salinity control|soil desalination]],<ref>[http://english.people.com.cn/english/200108/03/eng20010803_76423.html "Australia Aids China In Water Management Project."] ''People's Daily Online'', 2001-08-03, via english.people.com.cn. Retrieved October 8, 2007.</ref><ref>Kume
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Takashi, Amaya Takao, and Mitsuno Tooru. "The Effect of Soil Desalinization in the Hetao Irrigation District, Inner Mongolia, China." ''Transactions of the Japanese Society of Irrigation, Drainage and Reclamation Engineering'' 223: 133-139, 2003, abstract via sciencelinks.jp.</ref> but this article focuses on water desalination.
  
Large-scale desalination typically requires large amounts of energy as well as specialized, expensive infrastructure, making it very costly compared to the use of fresh water from rivers or [[groundwater]]. The large energy reserves of many Middle Eastern countries, along with their relative water scarcity, have led to extensive construction of desalination in this region. [[Saudi Arabia]]'s desalination plants account for about 24% of total world capacity. The world's largest desalination plant is the [[Jebel Ali]] Desalination Plant (Phase 2) in the [[United Arab Emirates]]. It is a dual-purpose facility that uses multi-stage flash distillation and is capable of producing 300 million [[cubic meters]] of water per year.
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Water is desalinated to obtain [[freshwater]] suitable for [[animal]] consumption or [[irrigation]], or, if almost all of the salt is removed, for [[human]] consumption. Sometimes the process produces [[sodium chloride|table salt]] as a [[by-product]]. It is used on many [[ship]]s and [[submarine]]s. Most of the modern interest in desalination is focused on developing cost-effective ways of providing freshwater for human use in regions where the availability of water is limited.
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Large-scale desalination typically requires large amounts of energy as well as specialized, expensive infrastructure, making it very costly compared to the use of freshwater from rivers or [[groundwater]]. Thus, desalination is a viable technology in affluent regions close to coastlines, but it is currently not an option for poverty-stricken areas or places that are at high altitudes or far inland. In addition, the wastewater from desalination plants can adversely affect the local marine ecosystem unless care is taken to ensure that the temperature and salinity of the wastewater are not too different from the temperature and salinity of the ocean.
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{{toc}}
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The large energy reserves of many [[Middle East]]ern countries, along with their relative water [[scarcity]], have led to extensive [[construction]] of desalination plants in this region. [[Saudi Arabia]]'s desalination plants account for about 24 percent of total world capacity. The world's largest desalination plant is the [[Jebel Ali]] Desalination Plant (Phase 2) in the [[United Arab Emirates]]. It is a dual-purpose facility that uses multi-stage flash distillation and is capable of producing 300 million [[cubic meters]] of water per year.
  
 
==Methods==
 
==Methods==
{{Refimprovesect|date=September 2007}}
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Desalination may be done by any of a number of different technologies, as listed below.
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#[[Distillation]]
 
#[[Distillation]]
 
##[[Multi-stage flash distillation]] (MSF)
 
##[[Multi-stage flash distillation]] (MSF)
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#High grade [[water recycling]]
 
#High grade [[water recycling]]
  
[[as of 2004|As of July 2004]], the two leading methods were reverse osmosis (47.2% of installed capacity world-wide) and multi-stage flash (36.5%).<ref>[http://www.wangnick.com Source: 2004 IDA Worldwide Desalting Plants Inventory Report No 18; published by Wangnick Consulting]</ref>{{Failed verification|date=September 2007}}
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As of July 2004, the two leading methods of desalination were [[reverse osmosis]] (47.2 percent of installed capacity worldwide) and multi-stage flash distillation (36.5 percent).<ref>[http://www.wangnick.com Source: 2004 IDA Worldwide Desalting Plants Inventory Report No 18]; published by Wangnick Consulting. Retrieved October 8, 2007.</ref>
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The traditional process used for desalination has involved [[vacuum distillation]]. In this method, water is boiled at below atmospheric pressure, and thus at a much lower [[temperature]] than normal. Because the temperature is reduced, energy is saved.
  
The traditional process used in these operations is [[vacuum distillation]]—essentially the boiling of water at less than atmospheric pressure and thus a much lower temperature than normal. Due to the reduced temperature, energy is saved.{{Fact|date=September 2007}}
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During the last decade, membrane processes have grown rapidly, and most new facilities use [[reverse osmosis]] technology. These processes use semi-permeable membranes and pressure to separate salts from water. Membrane systems typically use less energy than thermal distillation, leading to a reduction in overall desalination costs over the past decade. Desalination remains energy intensive, however, and future costs will continue to depend on the price of both energy and desalination technology.
  
In the last decade, membrane processes have grown very fast, and most new facilities use [[reverse osmosis]] technology.{{Fact|date=September 2007}} Membrane processes use semi-permeable membranes and pressure to separate salts from water.{{Fact|date=September 2007}} Membrane systems typically use less energy than thermal distillation, which has led to a reduction in overall desalination costs over the past decade. Desalination remains energy intensive, however, and future costs will continue to depend on the price of both energy and desalination technology.{{Fact|date=September 2007}}
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Forward osmosis employs a passive membrane filter that is [[hydrophilic]] and slowly permeable to [[water]], and blocks a portion of the solutes. Water is driven across the membrane by [[osmotic pressure]] created by food-grade concentrate on the clean side of the [[membrane]]. Forward osmosis systems are passive in that they require no energy input. They are used for emergency desalination purposes in [[seawater]] and [[floodwater]] settings.
  
Forward osmosis employs a passive membrane filter that is [[hydrophilic]] and slowly permeable to water, and blocks a portion of the solutes.{{Fact|date=September 2007}} Water is driven across the membrane by [[osmotic pressure]] created by food grade concentrate on the clean side of the membrane.{{Fact|date=September 2007}} Forward osmosis systems are passive in that they require no energy input.{{Fact|date=September 2007}} They are used for emergency desalination purposes in seawater and floodwater settings.{{Fact|date=September 2007}}
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==Co-generation==
  
==Considerations and criticism==
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Under some circumstances, it may be possible to use energy more efficiently. As [[heat]] is produced during distillation processes, it is possible to design a desalination plant that also reuses the heat generated to produce [[electricity]]. For example, in the [[Middle East]] and [[North Africa]], it has become fairly common for dual-purpose facilities to produce both electricity and water. The main advantage is that a combined facility consumes less fuel than would be needed by two separate facilities.
===Co-generation===
 
There are circumstances in which it may be possible to use energy more efficiently. With [[cogeneration]] this occurs as energy quality drops from a high level (typically in the form of electricity) toward lower levels (typically in the form of heat). Distillation processes, in particular, can be designed to take advantage of co-generation by recovering and reusing heat. In the [[Middle East]] and [[North Africa]], it has become fairly common for dual-purpose facilities to produce both [[electricity]] and water. The main advantage is that a combined facility can consume less fuel than would be needed by two separate facilities.
 
  
===Economics===
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==Economic issues==
{{Cleanup-section|July 2007}}
 
  
A number of factors determine the capital and operating costs for desalination: capacity and type of facility, location, feed water, labor, energy, financing and concentrate disposal. Desalination stills now control pressure, temperature and brine concentrations to optimize the water extraction efficiency. [[nuclear power|Nuclear-powered]] desalination might be economical on a large scale, and there is a [[fast breeder reactor|pilot plant in the former USSR]].<ref>[http://www.uic.com.au/nip74.htm "Nuclear Desalination: UIC Nuclear Issues Briefing Paper #74,"] Uranium Information Centre Ltd., Melbourne, Australia, [[October]] [[2006]]. Retrieved on [[2007]]-[[08-20]].</ref>
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A number of factors determine the capital and operating costs for desalination: capacity and type of facility, location, feed water, labor, energy, financing and concentrate disposal. Desalination stills now control pressure, temperature and brine concentrations to optimize the water extraction efficiency. [[nuclear power|Nuclear-powered]] desalination might be economical on a large scale, and there is a [[fast breeder reactor|pilot plant in the former USSR]].<ref>[http://www.uic.com.au/nip74.htm "Nuclear Desalination: UIC Nuclear Issues Briefing Paper #74,"] Uranium Information Centre Ltd., Melbourne, Australia, October 2006. Retrieved October 8, 2007.</ref>
  
Critics point to the high costs of desalination technologies, especially for poor third world countries, the impracticability and cost of transporting or piping massive amounts of desalinated seawater throughout the interiors of large countries, and the byproduct of concentrated seawater, which some environmentalists have claimed "is a major cause of marine pollution when dumped back into the oceans at high temperatures"<ref>Barlow, Maude, and Tony Clarke, [http://www.thenation.com/doc/20020902/barlow "Who Owns Water?"] ''The Nation'', [[2002]]-[[09-02]], via thenation.com. Retrieved on [[2007]]-[[08-20]].</ref>
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Critics point to the high costs of desalination technologies, especially for poverty-stricken developing countries, the difficulty in transporting or piping massive amounts of desalinated seawater throughout the interiors of large countries, and the byproduct of concentrated seawater, which some environmentalists have claimed "is a major cause of marine pollution when dumped back into the oceans at high temperatures."<ref>Maude Barlow and Tony Clarke, [http://www.thenation.com/doc/20020902/barlow "Who Owns Water?"] ''The Nation'', 2002-09-02, via ''thenation.com''. Retrieved October 8, 2007.</ref>
  
It should be noted that typically the reverse osmosis technology that is used to desalinate water does not produce this "hot water" as a byproduct. Additionally, depending on the prevailing currents of receiving waters, the seawater concentrate byproduct can be diluted and dispersed to background levels within relatively short distances of the ocean outlet.
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It should be noted that the reverse osmosis technology used for desalination typically does not produce this "hot water" as a by-product. Additionally, depending on the prevailing currents of receiving waters, the seawater concentrate by-product can be diluted and dispersed to background levels within relatively short distances of the ocean outlet.
  
While noting that costs are falling, and generally positive about the technology for affluent areas that are proximate to oceans, one study argues that "Desalinated water may be a solution for some water-stress regions, but not for places that are poor, deep in the interior of a continent, or at high elevation. Unfortunately, that includes some of the places with biggest water problems." and "Indeed, one needs to lift the water by 2000 m, or transport it over more than 1600 km to get transport costs equal to the desalination costs. Thus, desalinated water is only expensive in places far from the sea, like New Delhi, or in high places, like Mexico City. Desalinated water is also expensive in places that are both somewhat far from the sea and somewhat high, such as Riyadh and Harare. In other places, the dominant cost is desalination, not transport. This leads to relatively low costs in places like Beijing, Bangkok, Zaragoza, Phoenix, and, of course, coastal cities like Tripoli."<ref>Zhoua, Yuan, and Richard S.J. Tolb. [http://www.uni-hamburg.de/Wiss/FB/15/Sustainability/DesalinationFNU41_revised.pdf "Evaluating the costs of desalination and water transport."] (Working paper). Via a Hamburg University website. [[2004]]-[[12-09]]. Retrieved on [[2007]]-[[08-20]].</ref> For cities on the coast, desalination is being increasingly viewed as an untapped and unlimited water storage.
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While noting that costs are falling, and generally positive about the technology for affluent areas that are proximate to oceans, one study argues that "Desalinated water may be a solution for some water-stress regions, but not for places that are poor, deep in the interior of a continent, or at high elevation. Unfortunately, that includes some of the places with biggest water problems." It further says, "desalinated water is only expensive in places far from the sea, like [[New Delhi]], or in high places, like [[Mexico City]]. Desalinated water is also expensive in places that are both somewhat far from the sea and somewhat high, such as [[Riyadh]] and [[Harare]]. In other places, the dominant cost is desalination, not transport. This leads to relatively low costs in places like [[Beijing]], [[Bangkok]], [[Zaragoza]], [[Phoenix]], and, of course, coastal cities like [[Tripoli]]."<ref>Yuan Zhoua and Richard S.J. Tolb. [http://www.uni-hamburg.de/Wiss/FB/15/Sustainability/DesalinationFNU41_revised.pdf "Evaluating the costs of desalination and water transport."] (Working paper). Via a Hamburg University website. 2004-12-09. Retrieved October 8, 2007.</ref> For cities on the coast, desalination is being increasingly viewed as an untapped and unlimited water resource.
  
Israel is now desalinizing water at a cost of 53 cents per cubic meter.<ref>Sitbon, Shirli. [http://www.ejpress.org/article/4873 "French-run water plant launched in Israel,"] ''European Jewish Press'', via ejpress.org, [[2005]]-[[12-28]]. Retrieved on [[2007]]-[[08-20]].</ref> Singapore is desalinizing water for 49 cents per cubic meter.<ref>[http://www.edie.net/news/news_story.asp?id=11402&channel=0 "Black & Veatch-Designed Desalination Plant Wins Global Water Distinction,"] (Press release). Black & Veatch Ltd., via edie.net, [[2006]]-[[05-04]]. Retrieved on [[2007]]-[[08-20]].</ref> Many large coastal cities in developed countries are considering the feasibility of seawater desalination, due to its cost effectiveness compared with other water supply options, which can include mandatory installation of rainwater tanks or stormwater harvesting infrastructure. Studies have shown that desalination is among the most cost-effective options for boosting water supply in major Australian state capitals.{{Fact|date=September 2007}} The city of [[Perth, Western Australia|Perth]] has been successfully{{Fact|date=September 2007}} operating a reverse osmosis seawater desalination plant since 2006, and the West Australian government has announced that a second plant will be built to service the city's needs. A desalination plant is to be built in Australia's largest city, [[Sydney]], and Wonthaggi, Victoria in the near future.<ref>[http://abc.net.au/news/stories/2007/06/25/1961044.htm "Sydney desalination plant to double in size,"] ''ABC News'' (Australian Broadcasting Corporation), via abc.net.au, [[2007]]-[[06-25]]. Retrieved on [[2007]]-[[08-20]].</ref>  
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Many large coastal cities in developed countries are considering the feasibility of seawater desalination, due to its cost effectiveness compared with other water supply options, which can include mandatory installation of [[rainwater]] tanks or storm water harvesting infrastructure. Studies have shown that desalination is among the most cost-effective options for boosting water supply in major Australian state capitals. The city of [[Perth, Western Australia|Perth]] has been successfully operating a reverse osmosis seawater desalination plant since 2006, and the West Australian government has announced that a second plant will be built to service the city's needs. A desalination plant is to be built in Australia's largest city, [[Sydney]], and in Wonthaggi, Victoria, in the near future.<ref>[http://abc.net.au/news/stories/2007/06/25/1961044.htm "Sydney desalination plant to double in size,"] ''ABC News'' (Australian Broadcasting Corporation), via abc.net.au, 2007-06-25. Retrieved October 8, 2007.</ref>
  
The Perth desalination plant is powered partially by renewable energy from the [[Emu Downs Wind Farm]]<ref>[http://www.npr.org/templates/story/story.php?storyId=11134967 Australia Turns to Desalination] by Michael Sullivan. Morning Edition, National Public Radio, June 18, 2007</ref>The Sydney plant will be powered entirely from renewable sources<ref>http://www.sydneywater.com.au/EnsuringTheFuture/Desalination/pdf/Desalinationfactsheet_Poweredgreenenergy.pdf</ref>, thereby eliminating harmful greenhouse gas emissions to the environment, a common argument used against seawater desalination due to the energy requirements of the technology.  The purchase or production of renewable energy to power desalination plants naturally adds to the capital and/or operating costs of desalination.  However, recent experience in Perth and Sydney indicates that the additional cost is acceptable to communities, as a city may then augment its water supply without doing environmental harm to the atmosphere.
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The Perth desalination plant is powered partially by renewable energy from the [[Emu Downs Wind Farm]].<ref>Michael Sullivan. [http://www.npr.org/templates/story/story.php?storyId=11134967 Australia Turns to Desalination]. ''Morning Edition, National Public Radio'', June 18, 2007. Retrieved October 8, 2007.</ref> The Sydney plant will be powered entirely from renewable sources,<ref>[http://www.sydneywater.com.au/EnsuringTheFuture/Desalination/pdf/Desalinationfactsheet_Poweredgreenenergy.pdf Sydney's Desalination Project] - ''NSW Government''. Retrieved October 8, 2007.</ref> thereby eliminating harmful greenhouse gas emissions to the environment, a common argument used against seawater desalination due to the energy requirements of the technology.
The Gold Coast desalination plant will be powered entirely from fossil fuels and at a time when the coal fired power stations have significantly reduced capacity due to the drought. At a rate of over 4 kWh per cubic meter to produce this will be the most expensive source of water in Australia.
 
  
===Environmental===
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The purchase or production of renewable energy to power desalination plants naturally adds to the capital and/or operating costs of desalination. However, recent experience in Perth and Sydney indicates that the additional cost is acceptable to communities, as a city may then augment its water supply without doing environmental harm to the atmosphere. [[The Gold Coast]] desalination plant will be powered entirely from fossil fuels, at a time when the coal-fired power stations have significantly reduced capacity due to the drought. At a rate of over 4 kWh per cubic meter of production, this will be the most expensive source of water in Australia.
One of the main environmental considerations of ocean water desalination plants is the impact of the open ocean water intakes, especially when co-located with [[power plant]]s. Many proposed ocean desalination plants initial plans relied on these intakes despite perpetuating ongoing huge impacts on marine life.  In the [[United States]], due to a recent court ruling under the [[Clean Water Act]] these intakes are no longer viable without reducing mortality by ninety percent of the lifeforce of the ocean; the [[plankton]], fish eggs and fish larvae.<ref>http://www.desalresponsegroup.org/files/RiverkeepervEPA1-25-07_decision.pdf</ref>  There are alternatives including beach wells that eliminate this concern, but require more energy and higher costs while limiting output.<ref>http://www.pacinst.org/reports/desalination/desalination_report.pdf</ref>  Other environmental concerns include [[air pollution]] and [[greenhouse gas]] emissions from the power plants that provide electricity and/or thermal energy to the desalination plants. 
 
 
Regardless of the method used, there is always a highly concentrated waste product consisting of everything that was removed from the created [[fresh water]].  This is sometimes referred to as [[brine]], which is also a common term for the byproduct of recycled water schemes that is often disposed of in the ocean. These concentrates are classified by the [[United States Environmental Protection Agency]] as [[industrial waste]]s. With coastal facilities, it may be possible to return it to the sea without harm if this concentrate does not exceed the normal ocean salinity gradients to which [[osmoregulation|osmoregulators]] are accustomed. Reverse osmosis, for instance, may require the disposal of wastewater with a salinity twice that of normal seawater. The [[benthos|benthic]] community cannot accommodate such an extreme change in salinity and many filter-feeding animals would be destroyed when the water is returned to the ocean. This presents an increasing problem further inland, where one needs to avoid ruining existing fresh water supplies such as ponds, rivers and aquifers. As such, proper disposal of concentrate needs to be investigated during the design phases.
 
  
To limit the environmental impact of returning the brine to the ocean, it can be diluted with another stream of water entering the ocean, such as the outfall of a [[wastewater treatment plant]] or power plant. While seawater power plant cooling water outfalls are not freshwater like wastewater treatment plant outfalls, the salinity of the brine will still be reduced. If the power plant is medium to large sized and the desalination plant is not enormous, the flow of the power plant's cooling water is likely to be at least several times larger than that of the desalination plant. Another method to reduce the increase in salinity is to spread the brine over a very large area so that there is only a slight increase in salinity. For example, once the pipeline containing the brine reaches the sea floor, it can split off into many branches, each one releasing the brine gradually along its length through small holes. This method can be used in combination with the joining of the brine with power plant or wastewater plant outfalls.
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==Environmental issues==
  
The concentrated seawater has the potential to harm [[ecosystem]]s, especially marine environments in regions with low turbidity and high evaporation that already have elevated salinity. Examples of such locations are the [[Persian Gulf]], the [[Red Sea]] and, in particular, [[coral]] [[lagoon]]s of [[atoll]]s and other [[tropics|tropical]] islands around the world. Because the brine is more dense than the surrounding sea water due to the higher solute concentration, discharge into water bodies means that the ecosystems on the bed of the water body are most at risk because the brine sinks and remains there long enough to damage the ecosystems. Careful re-introduction can minimize this problem. For example, for the desalination plant and ocean outlet structures to be built in Sydney from late 2007, the water authority states that the ocean outlets will be placed in locations at the seabed that will maximise the dispersal of the concentrated seawater, such that it will be indistinguishable from normal seawater between 50 metres and 75 metres from the outlet points.  Sydney is fortunate to have typical oceanographic conditions off the coast that allow for such rapid dilution of the concentrated byproduct, thereby minimising harm to the environment.
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One of the main environmental considerations of ocean water desalination plants is the impact of the open ocean water intakes, especially when co-located with [[power plant]]s. The initial plans of many proposed ocean desalination plants relied on these intakes, despite their huge potential impacts on marine life. In the [[United States]], due to a recent court ruling under the [[Clean Water Act]], these intakes are no longer viable without reducing mortality by 90 percent of the life force of the ocean—that is, the [[plankton]], fish eggs, and fish larvae.<ref>[http://www.desalresponsegroup.org/files/RiverkeepervEPA1-25-07_decision.pdf petitioners challenge the EPA] - ''United States Court of Appeals for the Second Circuit''. Retrieved October 8, 2007.</ref> There are alternatives, including beach wells, that eliminate this concern, but require more energy and higher costs while limiting output.<ref>[http://www.pacinst.org/reports/desalination/desalination_report.pdf Desalination, with a Grain of Salt] - ''Pacific Institute''. Retrieved October 8, 2007.</ref> Other environmental concerns include [[air pollution]] and [[greenhouse gas]] emissions from the power plants that provide electricity and/or thermal energy to the desalination plants.  
  
In Perth, Australia, in 2007, a wind powered desalination plant was opened. The water is sucked in from the ocean at only 0.1 meter per second, which is slow enough to let fish escape. The plant provides nearly 40 million gallons of clean water per day. [http://www.npr.org/templates/story/story.php?storyId=11134967]
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Regardless of the method used, there is always a highly concentrated waste product, consisting of everything that was separated from the newly generated [[freshwater]]. This is sometimes referred to as [[brine]], which is also a common term for the by-product of recycled water schemes that is often disposed of in the [[ocean]]. These concentrates are classified by the [[United States Environmental Protection Agency]] (EPA) as [[industrial waste]]s. With coastal facilities, it may be possible to return the concentrate to the sea without harm if it does not exceed the normal ocean salinity gradients to which [[osmoregulation|osmoregulators]] are accustomed. Reverse osmosis, for instance, may require the disposal of wastewater with a salinity twice that of normal seawater. The [[benthos|benthic]] community cannot accommodate such an extreme change in salinity, and many filter-feeding animals would be destroyed when the water is returned to the ocean. This presents an increasing problem further inland, where one needs to avoid ruining existing freshwater supplies such as ponds, rivers and aquifers. As such, proper disposal of concentrate needs to be investigated during the design phases.
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To limit the environmental impact of returning the brine to the ocean, one approach is to dilute the brine with another stream of water entering the ocean, such as the outfall of a [[wastewater treatment plant]] or [[power plant]]. In this manner, the salinity of the brine can be reduced. If the power plant is medium- to large-sized, and the desalination plant is not enormous, the flow of the power plant's cooling water is likely to be at least several times larger than that of the desalination plant.
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An alternative approach is to spread the brine over a very large area, so that there is only a slight increase in salinity. For example, once the pipeline containing the brine reaches the sea floor, it can split off into many branches, each one releasing the brine gradually along its length through small holes. This approach can be used together with the combining of brine with power plant or wastewater plant outfalls.
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 +
The concentrated seawater has the potential to harm [[ecosystem]]s, especially marine environments, in regions with low turbidity and high evaporation that already have elevated salinity. Examples of such locations are the [[Persian Gulf]], the [[Red Sea]], and, in particular, [[coral]] [[lagoon]]s of [[atoll]]s and other [[tropics|tropical]] islands around the world. Because the brine is denser than the surrounding seawater due to higher solute concentration, discharge into water bodies means that the ecosystems on the bed of the water body are most at risk because the brine sinks and remains there long enough to damage the ecosystems. Careful re-introduction can minimize this problem. For example, for the desalination plant and ocean outlet structures to be built in [[Sydney]] from late 2007, the water authority states that the ocean outlets will be placed in locations at the seabed that will maximize dispersal of the concentrated seawater, such that it will be indistinguishable from normal seawater between 50 and 75 meters from the outlet points. Sydney is fortunate to have typical oceanographic conditions off the coast that allow for such rapid dilution of the concentrated by-product, thereby minimizing harm to the environment.
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In [[Perth]], Australia, a wind-powered desalination plant was opened in 2007. The water is sucked in from the ocean at only 0.1 meter per second, which is slow enough to let [[fish]] escape. The plant provides nearly 40 million gallons of clean water per day.<ref>[http://www.npr.org/templates/story/story.php?storyId=11134967 Australia Turns to Desalination Amid Water Shortage.] ''npr.org''. Retrieved November 30, 2007.</ref>
  
 
==Desalination compared to other water supply options==
 
==Desalination compared to other water supply options==
  
Increased [[water conservation]] and water use efficiency remain the most cost effective priority for supplying water .<ref>Gleick, Peter H., Dana Haasz, Christine Henges-Jeck, Veena Srinivasan, Gary Wolff, Katherine Kao Cushing, and Amardip Mann. (November 2003.) [http://www.pacinst.org/reports/urban_usage/waste_not_want_not_full_report.pdf "Waste not, want not: The potential for urban water conservation in California."] (Website). ''[[Pacific Institute]]''. Retrieved on [[2007]]-[[09-20]].</ref> While comparing ocean water desalination to wastewater reclamation for drinking water shows desalination as the first option, using reclamation for irrigation and industrial use provides multiple benefits.<ref>Cooley, Heather, Peter H. Gleick, and Gary Wolff. (June 2006.) [http://www.pacinst.org/reports/desalination/index.htm "Desalination, With a Grain of Salt – A California Perspective."] (Website). ''[[Pacific Institute]]''. Retrieved on [[2007]]-[[09-20]].</ref>  Urban runoff and storm water capture also provide multiple benefits in treating, restoring and recharging groundwater.<ref>Gleick, Peter H., Heather Cooley, David Groves. (September 2005.) [http://pacinst.org/reports/california_water_2030/ca_water_2030.pdf "California water 2030: An efficient future."] (Website). ''[[Pacific Institute]]''. Retrieved on [[2007]]-[[09-20]].</ref>
+
Increased [[water conservation]] and water use efficiency remain the most cost-effective priority for supplying water.<ref>Peter H. Gleick, Dana Haasz, Christine Henges-Jeck, Veena Srinivasan, Gary Wolff, Katherine Kao Cushing, and Amardip Mann. November 2003. [http://www.pacinst.org/reports/urban_usage/waste_not_want_not_full_report.pdf "Waste not, want not: The potential for urban water conservation in California."] (Website). ''[[Pacific Institute]]''. Retrieved October 8, 2007.</ref> While comparing ocean water desalination to wastewater reclamation for drinking water shows desalination as the first option, using reclamation for irrigation and industrial use provides multiple benefits.<ref>Heather Cooley, Peter H. Gleick, and Gary Wolff. (June 2006.) [http://www.pacinst.org/reports/desalination/index.htm "Desalination, With a Grain of Salt – A California Perspective."] (Website). ''[[Pacific Institute]]''. Retrieved October 8, 2007.</ref>  Urban runoff and storm water capture also provide multiple benefits in treating, restoring and recharging groundwater.<ref>Peter H. Gleick, Heather Cooley, David Groves. (September 2005.) [http://pacinst.org/reports/california_water_2030/ca_water_2030.pdf "California water 2030: An efficient future."] (Website). ''[[Pacific Institute]]''. Retrieved October 8, 2007.</ref>
  
 
==Experimental techniques and other developments==
 
==Experimental techniques and other developments==
In the past many novel desalination techniques have been researched with varying degrees of success.
 
Some are still on the drawing board now while others have attracted research funding.  For example,
 
to offset the energy requirements of desalination, the U.S. Government is working to develop practical [[solar desalination]].
 
  
As an example of newer theoretical approaches for desalination, focusing specifically on maximizing energy efficiency and cost effectiveness, we may consider the [http://www.waterdesalination.com/theory.htm Passarell Process].
+
In the past, many novel desalination techniques have been researched, with varying degrees of success. Some are still on the drawing board, while others have attracted research funding. For example, to offset the energy requirements of desalination, the U.S. government is working to develop practical [[solar desalination]].
  
Other approaches involve the use of geothermal energy. An example would be the work being done by
+
As an example of newer, theoretical approaches for desalination, focusing specifically on maximizing energy efficiency and cost effectiveness, one may consider the Passarell Process.<ref>[http://www.waterdesalination.com/theory.htm Passarell Process] ''Water Desalination International''. Retrieved November 30, 2007.</ref>
[[San Diego State University|SDSU]] CITI International Consortium for Advanced Technologies and Security.<ref>[http://www.sci.sdsu.edu/cawt/desalination.html]</ref>
 
From an environmental and economic point of view, in most locations [[geothermal desalination]] can be preferable to using fossil groundwater or surface water for human needs, as in many regions the available surface and groundwater resources already have long been under severe stress.
 
  
Recent research in the US indicates that [[nanotube membrane|nanotube membranes]] may prove to be extremely effective for water filtration and may produce a viable water desalination process that would require substantially less energy than reverse osmosis.<ref name="LLNL">{{cite press release  | title = Nanotube membranes offer possibility of cheaper desalination
+
Other approaches involve the use of geothermal energy. An example would be the work being done by the
  | publisher = [[Lawrence Livermore National Laboratory]] Public Affairs
+
[[San Diego State University]] CITI International Consortium for Advanced Technologies and Security. From an environmental and economic point of view, in most locations [[geothermal desalination]] can be preferable to using fossil groundwater or surface water for human needs, as these water resources have long been under severe stress.
  | date = [[2006-5-18]]
+
 
  | url = http://www.llnl.gov/pao/news/news_releases/2006/NR-06-05-06.html
+
Recent research in the United States indicates that [[nanotube membrane|nanotube membranes]] may prove to be extremely effective for water filtration and may produce a viable water desalination process that would require substantially less energy than reverse osmosis.<ref name="LLNL"> Nanotube membranes offer possibility of cheaper desalination. Lawrence Livermore National Laboratory Public Affairs, 2006-5-18.  [http://www.llnl.gov/pao/news/news_releases/2006/NR-06-05-06.html] ''NNSA''. Retrieved October 8, 2007.</ref>
  | accessdate = 2007-9-7 }}</ref>
 
  
 
==See also==
 
==See also==
* [[Soil salination]]
 
* [[Kwinana Desalination Plant]]
 
* [[Solar Powered Desalination Unit]]
 
  
==References==
+
* [[Salt]]
 +
* [[Water]]
 +
* [[Water purification]]
 +
 
 +
==Notes==
 
<references/>
 
<references/>
  
 
==External links==
 
==External links==
* [http://assets.panda.org/downloads/desalinationreportjune2007.pdf Making Water, WWF report on desalination]
+
All links retrieved January 29, 2024.
* [http://www.desalresponsegroup.org The Desal Response Group]
+
 
* [http://www.medrc.org.om Middle East Desalination Research Centre]
+
* [http://www.desware.net/ Encyclopedia of Desalination and water and Water Resources] - ''Desware''
* [http://www.desware.net/ Encyclopedia of Desalination and water and Water Resources]
+
* [http://www.idadesal.org/ International Desalination Association] - idadesal.org
* [http://www.globalwaterintel.com/ Global Water Intelligence - monthly newsletter featuring 'Desal Project Tracker']
+
* [http://www.edsoc.com European Desalination Society] - edsoc.com
* [http://www.globalwaterintel.com/wdr/ Water Desalination Report - weekly newsletter on international desal]
+
* [http://www.desline.com "Desalination Journal" and Desalination Directory of the European Desalination Society] by Miriam Balabam
* [http://www.idadesal.org/ International Desalination Association]
+
* [http://www.loc.gov/rr/scitech/tracer-bullets/desalinationtb.html Desalination bibliography Library of Congress] - ''Science Reference Service''
* [http://www.edie.net/magazines/info.asp?channel=0&mag=dwr Desalination & Water Reuse - Official magazine of the International Desalination Association]
+
*[http://www.technologyreview.com/read_article.aspx?ch=nanotech&sc=&id=16977&pg=1 Cheap Drinking Water from the Ocean] - ''Technology Review''
* [http://www.edsoc.com European Desalination Society]
+
*[http://www.theage.com.au/news/national/trucks-of-sludge-in-brine-drain/2007/06/24/1182623741887.html/ Report on other byproducts of desalination plants] - theage.com
* [http://www.iaea.org/nucleardesalination/ IAEA - Nuclear Desalination]
 
* [http://www.dme-ev.de DME - German Desalination Society]
 
* [http://aquagenesis.us/ Geothermal Desalination]
 
* [http://www.sci.sdsu.edu/cawt/ SDSU (San Diego State University) Center for Information Technology and Infrastructure (CITI) International Consortium of Advanced Technologies and Security]
 
* [http://www.desline.com "Desalination Journal" and Desalination Directory of the European Desalination Society]
 
*[http://www.desline.com/articoli/4107.pdf Desalination by humidification and dehumidification of air: state of the art]
 
* [http://www.zonnewater.net Zonnewater - optimized solar thermal desalination (distillation)]
 
* [http://www.enviromission.com.au SOLAR TOWER Project - Clean Electricity Generation for Desalination.]
 
* [http://www.solar-desalination.com Solar Desalination using the MEH-Method]
 
* [http://www.americancityandcounty.com/mag/government_water_issues_prompt/ Article: Water issues prompt new look at desalination]
 
* [http://www.loc.gov/rr/scitech/tracer-bullets/desalinationtb.html Desalination bibliography Library of Congress]
 
* [http://www.water-technology.net/projects/ Water-Technology]
 
*[http://www.technologyreview.com/read_article.aspx?ch=nanotech&sc=&id=16977&pg=1 Cheap Drinking Water from the Ocean] - Carbon nanotube-based membranes will dramatically cut the cost of desalination
 
*[http://www.kayotix.com/tmp/newsfeeds/22.03.06/israelwater/ BBC2 Newsnight Film: Israel build the world's largest desalination plant]
 
*[http://www.tampabaywater.org/watersupply/tbdesal.aspx Tampa Bay Water Seawater Desalination] Reverse Osmosis Deslaniation Plant on Tampa Bay
 
*[http://www.desline.com/articoli/5140.pdf Solar thermal-driven desalination plants based on membrane distillation]
 
*[http://www.eolss.net/ Encyclopedia of Water Sciences, Engineering and Technology Resources ]
 
*[http://www.theage.com.au/news/national/trucks-of-sludge-in-brine-drain/2007/06/24/1182623741887.html/ Report on other byproducts of desalination plants]
 
  
[[Category:Water technology]]
+
[[Category:Physical sciences]]
[[Category:Water treatment]]
+
[[Category:Technology]]
[[Category:Filters]]
 
  
 
{{credits|Desalination|162607343}}
 
{{credits|Desalination|162607343}}

Latest revision as of 09:52, 29 January 2024

Shevchenko BN350 desalination unit situated on the shore of the Caspian Sea.

Desalination (or desalinization or desalinisation) refers to any of several processes that remove excess salt and other minerals from water. The term desalination may also be used in a general sense, to refer to the removal of salts and minerals from a mixture,[1] as in soil desalination,[2][3] but this article focuses on water desalination.

Water is desalinated to obtain freshwater suitable for animal consumption or irrigation, or, if almost all of the salt is removed, for human consumption. Sometimes the process produces table salt as a by-product. It is used on many ships and submarines. Most of the modern interest in desalination is focused on developing cost-effective ways of providing freshwater for human use in regions where the availability of water is limited.

Large-scale desalination typically requires large amounts of energy as well as specialized, expensive infrastructure, making it very costly compared to the use of freshwater from rivers or groundwater. Thus, desalination is a viable technology in affluent regions close to coastlines, but it is currently not an option for poverty-stricken areas or places that are at high altitudes or far inland. In addition, the wastewater from desalination plants can adversely affect the local marine ecosystem unless care is taken to ensure that the temperature and salinity of the wastewater are not too different from the temperature and salinity of the ocean.

The large energy reserves of many Middle Eastern countries, along with their relative water scarcity, have led to extensive construction of desalination plants in this region. Saudi Arabia's desalination plants account for about 24 percent of total world capacity. The world's largest desalination plant is the Jebel Ali Desalination Plant (Phase 2) in the United Arab Emirates. It is a dual-purpose facility that uses multi-stage flash distillation and is capable of producing 300 million cubic meters of water per year.

Methods

Desalination may be done by any of a number of different technologies, as listed below.

  1. Distillation
    1. Multi-stage flash distillation (MSF)
    2. Multiple-effect evaporator (MED|ME)
    3. Vapor-compression evaporation (VC)
    4. Evaporation/condensation
  2. Membrane processes
    1. Electrodialysis reversal (EDR)
    2. Reverse osmosis (RO)
    3. Nanofiltration (NF)
    4. Forward osmosis (FO)
    5. Membrane distillation (MD)
  3. Freezing
  4. Geothermal desalination
  5. Solar humidification (HDH, MEH)
  6. Methane hydrate crystallisation
  7. High grade water recycling

As of July 2004, the two leading methods of desalination were reverse osmosis (47.2 percent of installed capacity worldwide) and multi-stage flash distillation (36.5 percent).[4]

The traditional process used for desalination has involved vacuum distillation. In this method, water is boiled at below atmospheric pressure, and thus at a much lower temperature than normal. Because the temperature is reduced, energy is saved.

During the last decade, membrane processes have grown rapidly, and most new facilities use reverse osmosis technology. These processes use semi-permeable membranes and pressure to separate salts from water. Membrane systems typically use less energy than thermal distillation, leading to a reduction in overall desalination costs over the past decade. Desalination remains energy intensive, however, and future costs will continue to depend on the price of both energy and desalination technology.

Forward osmosis employs a passive membrane filter that is hydrophilic and slowly permeable to water, and blocks a portion of the solutes. Water is driven across the membrane by osmotic pressure created by food-grade concentrate on the clean side of the membrane. Forward osmosis systems are passive in that they require no energy input. They are used for emergency desalination purposes in seawater and floodwater settings.

Co-generation

Under some circumstances, it may be possible to use energy more efficiently. As heat is produced during distillation processes, it is possible to design a desalination plant that also reuses the heat generated to produce electricity. For example, in the Middle East and North Africa, it has become fairly common for dual-purpose facilities to produce both electricity and water. The main advantage is that a combined facility consumes less fuel than would be needed by two separate facilities.

Economic issues

A number of factors determine the capital and operating costs for desalination: capacity and type of facility, location, feed water, labor, energy, financing and concentrate disposal. Desalination stills now control pressure, temperature and brine concentrations to optimize the water extraction efficiency. Nuclear-powered desalination might be economical on a large scale, and there is a pilot plant in the former USSR.[5]

Critics point to the high costs of desalination technologies, especially for poverty-stricken developing countries, the difficulty in transporting or piping massive amounts of desalinated seawater throughout the interiors of large countries, and the byproduct of concentrated seawater, which some environmentalists have claimed "is a major cause of marine pollution when dumped back into the oceans at high temperatures."[6]

It should be noted that the reverse osmosis technology used for desalination typically does not produce this "hot water" as a by-product. Additionally, depending on the prevailing currents of receiving waters, the seawater concentrate by-product can be diluted and dispersed to background levels within relatively short distances of the ocean outlet.

While noting that costs are falling, and generally positive about the technology for affluent areas that are proximate to oceans, one study argues that "Desalinated water may be a solution for some water-stress regions, but not for places that are poor, deep in the interior of a continent, or at high elevation. Unfortunately, that includes some of the places with biggest water problems." It further says, "… desalinated water is only expensive in places far from the sea, like New Delhi, or in high places, like Mexico City. Desalinated water is also expensive in places that are both somewhat far from the sea and somewhat high, such as Riyadh and Harare. In other places, the dominant cost is desalination, not transport. This leads to relatively low costs in places like Beijing, Bangkok, Zaragoza, Phoenix, and, of course, coastal cities like Tripoli."[7] For cities on the coast, desalination is being increasingly viewed as an untapped and unlimited water resource.

Many large coastal cities in developed countries are considering the feasibility of seawater desalination, due to its cost effectiveness compared with other water supply options, which can include mandatory installation of rainwater tanks or storm water harvesting infrastructure. Studies have shown that desalination is among the most cost-effective options for boosting water supply in major Australian state capitals. The city of Perth has been successfully operating a reverse osmosis seawater desalination plant since 2006, and the West Australian government has announced that a second plant will be built to service the city's needs. A desalination plant is to be built in Australia's largest city, Sydney, and in Wonthaggi, Victoria, in the near future.[8]

The Perth desalination plant is powered partially by renewable energy from the Emu Downs Wind Farm.[9] The Sydney plant will be powered entirely from renewable sources,[10] thereby eliminating harmful greenhouse gas emissions to the environment, a common argument used against seawater desalination due to the energy requirements of the technology.

The purchase or production of renewable energy to power desalination plants naturally adds to the capital and/or operating costs of desalination. However, recent experience in Perth and Sydney indicates that the additional cost is acceptable to communities, as a city may then augment its water supply without doing environmental harm to the atmosphere. The Gold Coast desalination plant will be powered entirely from fossil fuels, at a time when the coal-fired power stations have significantly reduced capacity due to the drought. At a rate of over 4 kWh per cubic meter of production, this will be the most expensive source of water in Australia.

Environmental issues

One of the main environmental considerations of ocean water desalination plants is the impact of the open ocean water intakes, especially when co-located with power plants. The initial plans of many proposed ocean desalination plants relied on these intakes, despite their huge potential impacts on marine life. In the United States, due to a recent court ruling under the Clean Water Act, these intakes are no longer viable without reducing mortality by 90 percent of the life force of the ocean—that is, the plankton, fish eggs, and fish larvae.[11] There are alternatives, including beach wells, that eliminate this concern, but require more energy and higher costs while limiting output.[12] Other environmental concerns include air pollution and greenhouse gas emissions from the power plants that provide electricity and/or thermal energy to the desalination plants.

Regardless of the method used, there is always a highly concentrated waste product, consisting of everything that was separated from the newly generated freshwater. This is sometimes referred to as brine, which is also a common term for the by-product of recycled water schemes that is often disposed of in the ocean. These concentrates are classified by the United States Environmental Protection Agency (EPA) as industrial wastes. With coastal facilities, it may be possible to return the concentrate to the sea without harm if it does not exceed the normal ocean salinity gradients to which osmoregulators are accustomed. Reverse osmosis, for instance, may require the disposal of wastewater with a salinity twice that of normal seawater. The benthic community cannot accommodate such an extreme change in salinity, and many filter-feeding animals would be destroyed when the water is returned to the ocean. This presents an increasing problem further inland, where one needs to avoid ruining existing freshwater supplies such as ponds, rivers and aquifers. As such, proper disposal of concentrate needs to be investigated during the design phases.

To limit the environmental impact of returning the brine to the ocean, one approach is to dilute the brine with another stream of water entering the ocean, such as the outfall of a wastewater treatment plant or power plant. In this manner, the salinity of the brine can be reduced. If the power plant is medium- to large-sized, and the desalination plant is not enormous, the flow of the power plant's cooling water is likely to be at least several times larger than that of the desalination plant.

An alternative approach is to spread the brine over a very large area, so that there is only a slight increase in salinity. For example, once the pipeline containing the brine reaches the sea floor, it can split off into many branches, each one releasing the brine gradually along its length through small holes. This approach can be used together with the combining of brine with power plant or wastewater plant outfalls.

The concentrated seawater has the potential to harm ecosystems, especially marine environments, in regions with low turbidity and high evaporation that already have elevated salinity. Examples of such locations are the Persian Gulf, the Red Sea, and, in particular, coral lagoons of atolls and other tropical islands around the world. Because the brine is denser than the surrounding seawater due to higher solute concentration, discharge into water bodies means that the ecosystems on the bed of the water body are most at risk because the brine sinks and remains there long enough to damage the ecosystems. Careful re-introduction can minimize this problem. For example, for the desalination plant and ocean outlet structures to be built in Sydney from late 2007, the water authority states that the ocean outlets will be placed in locations at the seabed that will maximize dispersal of the concentrated seawater, such that it will be indistinguishable from normal seawater between 50 and 75 meters from the outlet points. Sydney is fortunate to have typical oceanographic conditions off the coast that allow for such rapid dilution of the concentrated by-product, thereby minimizing harm to the environment.

In Perth, Australia, a wind-powered desalination plant was opened in 2007. The water is sucked in from the ocean at only 0.1 meter per second, which is slow enough to let fish escape. The plant provides nearly 40 million gallons of clean water per day.[13]

Desalination compared to other water supply options

Increased water conservation and water use efficiency remain the most cost-effective priority for supplying water.[14] While comparing ocean water desalination to wastewater reclamation for drinking water shows desalination as the first option, using reclamation for irrigation and industrial use provides multiple benefits.[15] Urban runoff and storm water capture also provide multiple benefits in treating, restoring and recharging groundwater.[16]

Experimental techniques and other developments

In the past, many novel desalination techniques have been researched, with varying degrees of success. Some are still on the drawing board, while others have attracted research funding. For example, to offset the energy requirements of desalination, the U.S. government is working to develop practical solar desalination.

As an example of newer, theoretical approaches for desalination, focusing specifically on maximizing energy efficiency and cost effectiveness, one may consider the Passarell Process.[17]

Other approaches involve the use of geothermal energy. An example would be the work being done by the San Diego State University CITI International Consortium for Advanced Technologies and Security. From an environmental and economic point of view, in most locations geothermal desalination can be preferable to using fossil groundwater or surface water for human needs, as these water resources have long been under severe stress.

Recent research in the United States indicates that nanotube membranes may prove to be extremely effective for water filtration and may produce a viable water desalination process that would require substantially less energy than reverse osmosis.[18]

See also

Notes

  1. "Desalination" (definition), The American Heritage Science Dictionary, Houghton Mifflin Company, via dictionary.com. Retrieved October 8, 2007.
  2. "Australia Aids China In Water Management Project." People's Daily Online, 2001-08-03, via english.people.com.cn. Retrieved October 8, 2007.
  3. Kume Takashi, Amaya Takao, and Mitsuno Tooru. "The Effect of Soil Desalinization in the Hetao Irrigation District, Inner Mongolia, China." Transactions of the Japanese Society of Irrigation, Drainage and Reclamation Engineering 223: 133-139, 2003, abstract via sciencelinks.jp.
  4. Source: 2004 IDA Worldwide Desalting Plants Inventory Report No 18; published by Wangnick Consulting. Retrieved October 8, 2007.
  5. "Nuclear Desalination: UIC Nuclear Issues Briefing Paper #74," Uranium Information Centre Ltd., Melbourne, Australia, October 2006. Retrieved October 8, 2007.
  6. Maude Barlow and Tony Clarke, "Who Owns Water?" The Nation, 2002-09-02, via thenation.com. Retrieved October 8, 2007.
  7. Yuan Zhoua and Richard S.J. Tolb. "Evaluating the costs of desalination and water transport." (Working paper). Via a Hamburg University website. 2004-12-09. Retrieved October 8, 2007.
  8. "Sydney desalination plant to double in size," ABC News (Australian Broadcasting Corporation), via abc.net.au, 2007-06-25. Retrieved October 8, 2007.
  9. Michael Sullivan. Australia Turns to Desalination. Morning Edition, National Public Radio, June 18, 2007. Retrieved October 8, 2007.
  10. Sydney's Desalination Project - NSW Government. Retrieved October 8, 2007.
  11. petitioners challenge the EPA - United States Court of Appeals for the Second Circuit. Retrieved October 8, 2007.
  12. Desalination, with a Grain of Salt - Pacific Institute. Retrieved October 8, 2007.
  13. Australia Turns to Desalination Amid Water Shortage. npr.org. Retrieved November 30, 2007.
  14. Peter H. Gleick, Dana Haasz, Christine Henges-Jeck, Veena Srinivasan, Gary Wolff, Katherine Kao Cushing, and Amardip Mann. November 2003. "Waste not, want not: The potential for urban water conservation in California." (Website). Pacific Institute. Retrieved October 8, 2007.
  15. Heather Cooley, Peter H. Gleick, and Gary Wolff. (June 2006.) "Desalination, With a Grain of Salt – A California Perspective." (Website). Pacific Institute. Retrieved October 8, 2007.
  16. Peter H. Gleick, Heather Cooley, David Groves. (September 2005.) "California water 2030: An efficient future." (Website). Pacific Institute. Retrieved October 8, 2007.
  17. Passarell Process Water Desalination International. Retrieved November 30, 2007.
  18. Nanotube membranes offer possibility of cheaper desalination. Lawrence Livermore National Laboratory Public Affairs, 2006-5-18. [1] NNSA. Retrieved October 8, 2007.

External links

All links retrieved January 29, 2024.

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