Difference between revisions of "Uranium"

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|[[Image:Uranium Olympic-Dam 45.jpg|Australia: Tailing Ponds with nuclear waste ([[#Olympic Dam Mine|Olympic Dam Mine]])<br/>http://strahlendesklima.de |thumb|right]]
 
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|[[Image:Uranium Olympic-Dam 37.jpg|Containers with "Yellow Cake" (Uraniumoxide) ([[#Olympic Dam Mine|Olympic Dam Mine]])<br/>http://strahlendesklima.de |thumb|right]]
 
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|[[Image:Uranium Olympic-Dam 13.jpg|Truck driving into the [[#Olympic Dam Mine|Olympic Dam]] uranium mine<br/>http://strahlendesklima.de |thumb|right]]
 
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|[[Image:Uranium Australia 01.jpg|Uranium mining in Australia<br/>http://strahlendesklima.de |thumb|right]]
 
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|[[Image:Uranium Olympic-Dam 05.jpg|Conveyor belt at [[#Olympic Dam Mine|Olympic Dam mine]] (AU)<br/>http://strahlendesklima.de |thumb|right]]
 
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|[[Image:Uranium Olympic-Dam 16.jpg|[[#Olympic Dam Mine|Olympic Dam uranium mine]] (AU)<br/>http://strahlendesklima.de |thumb|right]]
 
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|[[Image:Uranium Olympic-Dam 23.jpg|Winding tower at [[#Olympic Dam Mine|Olympic Dam mine]] (AU)<br/>http://strahlendesklima.de |thumb|right]]
 
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|[[Image:Uranium Olympic-Dam 27.jpg|Nuclear caution sign at [[#Olympic Dam Mine|Olympic Dam mine]] (AU)<br/>http://strahlendesklima.de |thumb|right]]
 
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|[[Image:Uranium Ranger 07.jpg|[[#Ranger Mine|Ranger uranium mine]] (AU)<br/>http://strahlendesklima.de |thumb|right]]
 
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|[[Image:Uranium Ranger 10.jpg|Water supply for the [[#Ranger Mine|Ranger mine]] (AU)<br/>http://strahlendesklima.de |thumb|right]]
 
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|[[Image:Uranium Ranger 12.jpg|Water pipeline to the [[#Ranger Mine|Ranger mine]] (AU)<br/>http://strahlendesklima.de |thumb|right]]
 
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|[[Image:Uranium Ranger 18.jpg|Uranium truck at [[#Ranger Mine|Ranger mine]] (AU)<br/>http://strahlendesklima.de |thumb|right]]
 
 
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<div style="color:#D3D3D3; text-align:center; font-variant:small-caps; font-weight:bolder">Shortcut to this page: <nowiki>http://uranium.nuclear-heritage.net</nowiki></div>
 
== Uranium Reserves ==
 
The world's biggest uranium reserves are currently located in Canada, Australia, Kazakhstan, Russia, Niger, Namibia, and Uzbekistan.<ref name="Uranbroschuere">.ausgestrahlt: Der schmutzige Atom-Brennstoff. Fragen und Antworten zur Herkunft des Urans. Mai 2009<br/>http://www.ausgestrahlt.de/fileadmin/user_upload/luki/der-schmutzige-atombrennstoff.pdf</ref>
 
  
In Europe today no uranium is mined apart from small amounts in the Czech Republic and Romania.<ref name="Uranbroschuere"/>
 
  
Since the world market price of uranium oxide (U3O8) has been tripled between 2000 and 2003 to 66 EUR per kilogram a new run to exploit even poor uranium reserves has been started<ref name="NorbertSuchanek"/>. Additionally according to the IAEA the demand for uranium is much higher than the uranium mined worldwide since many years. By now this demand could be substituted by the old nuclear weapon's fission materials, but this "resource" will be mostly exploited soon.
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'''<big>Uranium</big>''' as a chemical element was discovered in '''1789''' by ''Martin Heinrich Klaproth'' while analyzing pitchblende samples from a silver mine. He named the element after the planet Uranus. In the '''1800s''' the only use of uranium was to colour glass and ceramics. '''1840''' the French chemist ''Péligot'' succeeded in producing uranium in metal form. '''1896''' ''Henry Becquerel'' discovered the natural radiation in uranium ore from ''Joachimsthal''. ''Marie'' and ''Pierre Curie'' '''1898''' found in the same uranium ore the irradiant elements radium and polonium and formed the term "radioactivity". '''1927''' for the first time the genetic impact of radioactive rays was detected on ''Drosophilidae''. '''1934''' Maria Curie dies the aftermath of the radioactive radiation ([[Leukemia|leukemia]]). Research by ''Enrico Fermi'' lead to uranium as a nuclear weapon and nuclear fuel source. '''1938''' ''Otto Hahn'' discovered together with ''Fritz Straßmann'' the uranium's fission and so the theoretic basis of a new energy source enormous extent. With the ''Manhattan Project'' in the [[Anti-nuclear movement in the United States|USA]] the development of the atomic bomb was forced. '''1942''' under management of ''Robert Oppenheimer'' the first nuclear chain reaction succeeded. In July '''1945''' the first nuclear explosion took place at the experimental site of ''Alamogordo'' in New Mexico (USA). In August '''1945''' the USA released an atomic bomb on each of the Japanese cities ''Hiroshima'' (bomb called "Little Boy" and contained 64 kg of uranium) and ''Nagasaki'' (bomb called "Fat Man"). In Hiroshima about 100,000 people died immediately, in Nagasaki about 70,000. '''1946''' the ''Soviet Union'' started [[Uranium Mining|uranium mining]] in the ''Ore Mountains'' (D). In September '''1949''' the Soviet Union tested their first atomic bomb. The atomic arms race started. Lighting four ordinary light bulbs at an experimental nuclear reactor in Idaho Falls '''1951''' the myth of "peaceful use of nuclear power" was started. '''1952''' the [[Anti-nuclear Movement in the United Kingdom|United Kingdom]] detonated their first atomic bomb. '''1953''' US President ''Eisenhower'' delivered his historic "Atoms for Peace" speech to the UN envisioning the creation of an international body to promote and control "peaceful use" of atomic energy and to inhibit its use for military purposes. '''1954''' the first atomic power station worldwide was taken into operation in ''Obninsk'' near Moscow (SU). The so-called "peaceful" utilization of atomic power started. '''1957''' the International Atomic Energy Agency (IAEA) is formed. '''1963''' the USA and USSR signed a treaty on a partial stop of atomic weapons tests. 526 atomic explosions had taken place on surface by then polluting the environment all-around earth with radioactive fission products of uranium. '''1980''' more than 17,000 atomic warheads existed on earth. '''1985''' there are 374 atomic power stations in 26 [[:Category:Countries|countries]]. '''1986''' in Chernobyl the so far [[International Nuclear Event Scale|biggest]] [[Nuclear disasters|accident in an atomic power station]] took place. '''1986''' ''Mikhail Gorbachev'' submitted the Soviet proposal to abolish all atomic weapons until the year 2000.<ref>translated from: untitled document from GDR time connected to the WISMUT uranium mine (German)</ref><ref name="visualcapitalist">http://www.visualcapitalist.com/uranium-metal-of-tomorrow as at August 14, 2013</ref>
  
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Low concentrations of uranium occur naturally in soil, granite and seawater. As uranium decays it provides a major heat source for the earth causing convection and continental drift.<ref name="visualcapitalist" />
  
=== Closed Uranium Mines ===
 
==== Germany ====
 
* Former GDR: '''Wismut'''<ref>Source: lecture "Health effects of uranium mining workers and residents, the experience in Germany" of Prof. Inge Schmitz-Feuerhake at the expert hearing on uranium effects in Ranua on November 7th, 2009</ref>
 
** was the 3rd biggest uranium producer in the world until 1990<ref name="Uranbroschuere"/>
 
** in operation: 1946-1990
 
** underground and open cast mining of uranium in former GDR
 
** 1,200 million tons extracted mineral mass
 
** 200 million tons processed
 
** 1,000 million tons tailings
 
** about 500,000 persons occupied
 
** 15,000 accepted cases of silicosis (German: "Staublunge")
 
** 5,600 accepted cases of lung cancer
 
** reclamation costs: 7.5 billion EUR (publically paied)
 
*** tailings have been covered, mines filled
 
* Former FRG: '''Menzenschwand'''<ref name="Uranbroschuere"/>
 
** located in the ''Schwarzwald'' in Western Germany - was a very small uranium mine until 1991
 
  
==== France ====
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[[File:Uranium-graphic.jpg|right]]
** 210 uranium mines have been closed until 2001<ref name="Uranbroschuere"/>
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__TOC__
  
==== Portugal ====
 
* 1909 the first licence for uranium mining was granted; after World War II the Portuguese uranium oxide was delivered as well to the British as to the US nuclear industry<ref name="NorberSuchanek">Norbert Suchanek: Kein Uranbergbau im Alentejo - Portugals radioaktives Erbe (November 2009)</ref>
 
* by 1991 62 uranium mines have been exploited in Portugal<ref name="NorberSuchanek"/>
 
* '''Urgeiriça''' (near Viseu): closed in 1991<ref name="NorberSuchanek"/>
 
  
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== Uranium - A Deadly Material ==
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''extract of the homonymous [http://www.nuclear-heritage.net/images/f/fa/NuclearHeritage_Infoflyer_Uranium.pdf flyer]''
  
=== Uranium Mines in Operation ===
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This is the story of the stages of the uranium chain and gives an overview of the threats connected to each step of the processing of that radioactive material. It starts with the [[Uranium Mining|mining]] of the uranium ore, continues with the conversion of the milled "Yellow Cake" into the gaseous UF<sub>6</sub>, then it is enriched and, in the next step, the fuel elements are fabricated. After that the uranium is used in nuclear reactors and for nuclear weapons - leaving long-lasting radioactive waste. Each stage of the uranium chain is connected to dangerous transports and the release of huge amounts of carbon dioxide.
==== Australia ====
 
* '''Olympic Dam'''<ref name="roxstop">Treena Lenthall and Kim Stewart: http://www.roxstop-action.org/Booklet_16pp.pdf , November 17, 2009</ref>:
 
** Olympic Dam, located in the South Australian desert outside the town of Roxby Downs, is Australia's biggest uranium resource. The mine is on the land of the Kokatha people and draws water from the land of the Arabunna people.
 
** In 2005 BHP Billiton (BHPB) took over Western Mining Corporation inheriting not only ownership of Olympic Dam but the Roxby Indenture Act. This allows for extravafant exceptions to environmental and cultural heritage legislation protection.
 
** BHPB plans to make Olympic Dam the largest open-cut mine in the world by digging a pit of about 20 cubic kms. Export of uranium is expected to increase from an average of 4000 tonnes per year to 19,000 tonnes per year and production of copper, gold and silver is also expected to increase.
 
** ''Tailings:'' The production of radioactive tailings, stored above ground, will increase to 70 million tonnes annually. Currently, tailings are producted at a rate of 10 million tonnes annually and the stockpile amounts to 100 million tonnes. The tailings dam contain a toxic, acidic soup of radionuclides and heavy metals and are responsible for large numbers of bird deaths - over 100 deaths in a four-days period in 2004. There have been numerous spills and leaks - most significantly in 1994, when it was revealed that three billion litres had leaked from the tailings dams over two years.
 
** ''Water:'' BHP Billiton proposes an increase in water consumption from 35 million litres daily (from the Great Artesian Basin) to 150 million litres daily (up to 42 million litres from the Great Artesian Basin, the remainder from a proposed desalination plant at Port Bonython). The water take from the Great Artesian Basin had adverse impacts on the precious Mound Springs and needs to be reduced or stopped altogether. BHP Billiton pays nothing for its massive water take despite recording a profit of A$ 22 billion in 2007/08.
 
** ''Electricity:'' Electricity demand for the mine will increase from 120 megawatts to 690 megawatts - equivalent to 42 % of South Australia's current total electricity consumption. Electricity will be supplied from the SA grid and/or an on-site gas-fired plant, with no government requirement or company plans for any electricity to be supplied from renewable energy sources.
 
** ''Nuclear Weapons Proliferation:'' There is an unacceptable risk of uranium from Roxby Downs finding its way into nuclear weapons. Accounting discrepancies involving Australia's uranium exports are common. International Atomic Energy Agency Director-General Dr. Mohamed El Baradei has acknowledged that the IAEA's rights of inspection are "fairly limited", that the 'safeguards' system is subject to "vulnerabilities" and "clearly needs reinforcement", that efforts to improve the system have been "half-hearted", and that the safeguards system operates on a "shoestring budget ... comparable to a local police department". Uranium production at Roxby is expected to increase to 19,000 tonnes per year, sufficient to fuel 95 power reactors which will produce 18.5 tonnes of plutonium each year - enough for 2,850 nuclear weapons each year.
 
  
==== India ====
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There are 92 naturally occurring elements but only one, uranium, has become the key to the operation of the nuclear fuel cycle. This singular use of uranium stems from its unstable, radioactive atomic structure. The safety problems arising from the use of uranium as an energy source stem from this highly radioactive property of uranium and the wastes it produces. The nucleus of uranium-235 has 143 neutrons and 92 protons and uranium-238 has 146 neutrons and 92 protons. The [[Half-life|half-life]] of uranium-235 is 713,000,000 years and for uranium-238 it is 4,500,000,000 years. [[#Uranium-238|Uranium-238]], unlike uranium-235, rarely fissions. But an uranium-238 atom can capture a neutron to produce a plutonium-239 atom; though, also plutonium-238, -240 and -242 are formed in lesser amounts.
===== Jadugoda =====
 
Jadugoda, located in the mineral-rich Singhbum district of Jharkhand, is the chief source of Uranium in India, providing fuel for  the nuclear reactors. However, the uranium comes at a colossal human cost. In this case, those paying the price are adivasis (indigenous population), the Santhal, Munda and Ho tribes. Due to the proximity of the mine, a large number of villagers suffer from cancer, skin diseases, physical deformities, blindness, brain damage, disruption of menstrual cycle or loss of fertility. Villagers, evicted from their lands, work as miners and are exposed to a heavy dose of radiation. Uranium Corporation of India Limited (UCIL), responsible for operating the mine refutes the allegations and refuses to acknowledge the problems. However, independent researchers believe that it is difficult to conceive of any reason, other than radiation, for the human and environmental catastrophe.<ref>http://www.jadugoda.net/ , November 19, 2009</ref>
 
  
On '''December 24, 2006''', one of the '''pipes carrying radioactive wastes''' from the uranium mill to a storage dam '''had burst''', discharging highly toxic wastes into a nearby creek.  When released into the environment in such a hazardous manner, the radioactive wastes are deadly to the people living in the surrounding area as well as their land and water.<br/>
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[[File:Uranium Ranger 02.jpg|Open-pit mine in Australia: Ranger Mine<br/>''credits: http://nukingtheclimate.com''|thumb|right]]
The accident occurred in Dungridih – a small village near Jadugoda inhabited largely by displaced families whose lands were acquired to construct two of the three storage dams, also known as tailings ponds. The tailings ponds store all the radioactive wastes generated by the milling of uranium ore in Jadugoda. Based on the experience of similar accidents in other countries, however, the negative effects on human and environmental health will impact communities living downstream, perhaps even hundreds of kilometers away. Therefore, it is imperative that the Uranium  Company of India Limited (UCIL) – the owner and operator of the uranium mine, mill, pipes, and tailing ponds in Jadugoda – immediately inform downstream communities of the disaster and prevent them from using the creek water until it is certifiably safe.  Until the creek is safe to use, UCIL should supply water to the impacted communities so that they can continue their necessary activities such as bathing and washing clothes. Also, UCIL may need to provide compensation for families living downstream whose livelihoods depend upon the stream, a tributary to the Subarnarekha River, either for irrigation or fishing.<ref>http://jadugoda.net/Accidents/index.html , November 19 2009</ref>
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=== Uranium Mining ===
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Depending on the uranium deposit, the ore is extracted in underground mines, by open-pit mining or by pressing chemicals containing acids and leaches into the subsoil to dissolve the uranium metal and to pump the liquids upwards (”in situ leaching”). The content of uranium in the ore is between 0.1 and 1 percent, sometimes as little as 0.01 percent. Only at a few locations in Canada uranium ore with concentrations of up to 20 percents can be found. Therefore, to produce 1 ton of uranium, typically between 100 and 10,000 tons of ore have to be loosened, extracted and processed.
  
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Uranium mining causes the destruction of huge areas; usually untouched nature on indigenous lands. Big stockpiles of unexploitable uranium ore, large tailing ponds with poisonous waste waters and the main part of the radioactivity of the mined uranium is left in the affected areas. The health of the workers and people living in the region is affected, but the environment is polluted as well.
  
=== Proposed Uranium Mines ===
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One of the most harmful decay products of uranium-238 is the gas radon-222. It is generated naturally by the decay of uranium-238 and has a half-life of 3.823 days. By mining and processing the uranium ore, it is released to the environment and causes serious damages in the human body when breathed in.
==== Portugal ====
 
* '''Nisa''': near to the 3,600 inhabitants city the biggest not yet exploited uranium resource is situated; it had already been discovered in 1959; about six million tons of uranium ore can be found here - enough to produce some 650 tons of uranium oxide<ref name="NorberSuchanek"/>
 
  
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In 2009, Kazakhstan, Canada and Australia were the biggest producers of uranium, followed by Russia, Namibia and Niger. Until the closure of the East German “Wismut” mine, it was the third biggest producer of uranium in the world. As the uranium supplies are running out of stock (big parts of the uranium for the fuel production is derived from disarmed nuclear weapons) a new run for mineable uranium has started since 2003. In Europe particularly Slovakia, Ukraine and Spain are targets of new uranium mining projects, while also Sweden and Finland are threatened by these developments.
  
== Uranium Facts ==
 
* Volumes of '''greenhouse gases''' are emitted throughout the nuclear chain from mining, milling, transporting, building nuclear power plants and reprocessing uranium for use in weapons and nuclear power.<ref name="roxstop"/>
 
* Uranium is the heaviest of all minerals. The '''percentage of uranium''' to ore is '''quite small''' in commercially mined uranium, averaging 0.3 % in Australia but as high as 15 % in Canada. The ore is, therefore, milled to concentrate the uranium, resulting in a marketable product, uranium oxide (U3O8), also known as 'yellowcake'.<ref name="roxstop"/>
 
* Uranium isotopes '''remain radioactive for millions of years''':<ref name="roxstop"/>
 
** ''U238'': (also known as depleted uranium) has a half-life (the time it takes for it to lose half its radioactivity) of 4.5 billion years
 
** ''U235:'' 704 million years
 
** ''U234:'' 245,000 years
 
* '''Radon''' is a radioactive gas released from uranium decay.<ref name="roxstop"/>
 
* In Australia '''three kinds of mining process''' are used to extract uranium: ''underground'' (as currently used at Olympic Dam), ''surface'' (open pit, as used at Ranger), or ''acid solution/in-situ leach'' (as used at Beverley). Tunnel mining poses risks to both human health and environment. Besides the '''risk of collapse''' and poor or dangerous air quality in underground operations, uranium mines present a dangerous scenario for workers due to '''exposure to radon gas and uranium dust'''.<ref name="roxstop"/>
 
* After ore extraction, uranium must be separated from the other minerals in the matrix. This is done by crushing and leaching the rock using water and sulfuric acid. This process '''uses enormous amounts of water''' which is contaminated with acid, unwanted minerals and leftover uranium, and contains long lived decay products which continue to pose a risk to health and environment. It is left on site in tailing dams, in an attempt to minimise dust and because there is no safe means of disposal. The sludge that tailing water covers is '''85% as radioactive as the uranium extracted''' and it continues to release the deadly radon gas.<ref name="roxstop"/>
 
* Tailing dams all over the world have had leakage problems. There are '''many documented instances of increased exposure to radiation''' in people living downstream from these tailings damas through consuming contaminated water, fish and crops. Local wildlife, particularly water birds, have also been killed by drinking the tailings water.<ref name="roxstop"/>
 
* The health and environment effects are felt in many mining communities worldwide. Recent reports from China indicate that there are both '''serious health impacts on communities living near uranium mines''' and grave consequences for workers who speak out on the issue. Navajo homelands in the US are a notable example of former mining communities where residents now experience high lung cancer rates. Over half of the groundwater is contaminated by defunct uranium mines.<ref name="roxstop"/>
 
* Workers and the community are exposed to serious health risks at all stages of the nuclear chain from mining to transport, use and disposal of nuclear materials including waste. Workers are at risk from '''radiation exposure through inhalation of radioactive dust''' or direct contamination from the mine. The permitted levels of radiation exposure considered 'safe' for workers and the public have dropped dramatically over the years as '''research indicates harmful effects still exist at much lower exposure levels than what was originally thought to be safe'''. It is now acknowledged that there is '''no safe level of radiation exposure''' that guarantees cancer will not be triggered.<ref name="roxstop"/>
 
* Globally, the nuclear industry has a '''history of developing uranium mines, nuclear tests, and waste dumps on indigenous people's lands against their wishes'''. Australia is not different. Unfortunately, lack of infrastructure and investment in remote areas, has allowed mining companies to pressure indigenous communities to permit mining on their sacred lands, in exchange for basic services like school and hospitals. Royalties are often an enticement in areas where poverty and lack of services prevail due to government neglect.<ref name="roxstop"/>
 
  
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=== Conversion: Yellow Cake ===
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Ore mined conventionally in open-pit or underground mines is first crushed and leached in a uranium mill. The mill is usually located near the mines to reduce transport. The uranium is then extracted in a hydrometallurgical process. The final product produced from the mill, a powder consisting of a mixture of different uranium compounds, is packed and shipped in casks.
  
== Information ==
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Commonly this uranium ore concentrate (U308) is referred to as “Yellow Cake”, named after the colour of one popular type of this concentrate. Two tons of mined ore will yield approximately one kilogram of this material. The residues (tailings) from this uranium extraction are always radioactive and need to be disposed of "in an orderly way". Due to their huge amounts and the long radioactive half-life of the remaining thorium, radium and uranium isotopes, these constitute a long-term environmental problem.
* [http://www.wise-uranium.org/ WISE Uranium Project] - WISE Uranium Project is part of World Information Service on Energy. It covers the health and environmental impacts of nuclear fuel production
 
* [http://uranium-network.org uranium network] <small><small>English/German</small></small>
 
* [http://uraniumwatch.org/ Uranium Watch] - a Urah / USA based information service on Uranium
 
* [http://www.sea-us.org.au/ SEA-US Inc.] - The sustainable energy & anti-uranium service
 
  
=== Local Resistance ===
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The next stage of the procedure is the conversion of the uranium ore concentrate into the solid UF6. In Ekaterinburg (RUS) and Pierrelatte (F) as well as in Lancashire (UK) conversion facilities are in operation. Several other countries also operate such plants.
* [http://www.ranuarescue.blogspot.com/ Ranua Rescue project] <small><small>Finnish</small></small>
 
* [http://www.nejtilluranbrytning.nu/ Swedish Anti Uranium Network] <small><small>Swedish</small></small>
 
* [http://movimento-uranio-nao.blogspot.com/ Movimento Não a Opção Nuclear] <small><small>Portuguese</small></small>
 
* [http://www.nianfors.nu/engvers.html Nianfors resistance against uranium mining (SE)] <small><small>English/Swedish</small></small>
 
* [http://www.roxstop-action.org/ Roxstop Action against the Olympic Dam mine in Australia] <small><small>English</small></small>
 
  
=== Materials ===
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[[File:001399.JPG|Entrance to the Uranium Enrichment Plant Gronau<br/>''credits: Falk Beyer''|thumb|right]]
* [http://www.ausgestrahlt.de/fileadmin/user_upload/luki/der-schmutzige-atombrennstoff.pdf Der schmutzige Atombrennstoff] <small><small>German</small></small>
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=== Enrichment ===
* [http://nukingtheclimate.com/index.php/lang/en Nuking The Climate] ''- Movie about uranium mining'' <small><small>English/German</small></small>
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The concentration of the fissile uranium isotope -235 in natural uranium ore is not high enough for the use in nuclear power plants. Usually, the share of uranium-235 is 0.7 % while some 99 percent of the natural uranium is made by the not fissile uranium-238. Thus, the concentration of uranium-235 has to be increased for the usage in the so-called “light water reactors” to enable a nuclear chain reaction - the uranium has to be enriched. Technically, there are different methods of uranium enrichment. One of the most common techniques is the separation of the uranium isotopes by gas centrifuges. In Gronau (D) an uranium enrichment facility with gas centrifuges is in operation and produces fuel for some 20 nuclear reactors. An extension of the factory’s capacity is planned to enrich uranium for 32 big nuclear reactors. Further unranium enrichment plants are situated for example in Tricastin (F) and Almelo (NL).
* [http://www.wise-uranium.org/slide.html Uranium Mining "Slide Talk"] ''- online slideshow presentation'' <small><small>English</small></small>
 
* [http://www.roxstop-action.org/Booklet_16pp.pdf Roxstop Action Kit] ''-Information about uranium mining, the Olympic Dam mine in Australia and how to become active against it'' <small><small>English</small></small>
 
* [http://www.youtube.com/watch?v=MlsJHeNEtik&feature=player_embedded All that glitters is not Gold - Roxstop Action] ''- short film about the dangers of uranium mining (basing on the Olympic Dam mine in Australia'' <small><small>English</small></small>
 
  
  
== Action ==
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=== Fabrication of Fuel Elements ===
* [[Ranua Uranium Exploration Action|Ranua Rescue project]]
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The UF6 is reconverted into UO2, milled to uranium powder and pressed into pellets of 10 to 15 mm length and 8 to 15 mm diameter. These are sintered at a high temperature of about 1700 °C to form a ceramic material, reground mechanically and filled into zircaloy cladding tubes. The ends of these tubes are welded up. A larger number of single rods (up to 250) are joined together to form a fuel element. Examples for nuclear fuel facilities are the sites in Lingen (Germany) and Dessel (Belgium).
* [[Uranium-Action-Day|Uranium Action Day]]
 
  
  
== Uranium Mining Images ==
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=== Nuclear Power Plant ===
=== Uranium Mining in Australia ===
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The usage of uranium as fuel in the nuclear reactor is only one of many stages in the uranium chain. The nuclear fission in the reactor produces hot steam that is used to generate electricity in turbines. During the operation of a nuclear power plant radioactive particles and radiation are released to the environment. Additionally, big amounts of radioactive waste are produced in form of the spent fuel by a nuclear power plant that have to be disposed permanently or are going to be “reprocessed”. Accidents like the catastrophe 1986 in Chernobyl are an unacceptable risk for human beings and the environment. No reactor can be operated safely. 436 nuclear reactors were in operation in 2009.
<gallery caption="Sample gallery" widths="100px" heights="100px" perrow="6">
 
Image:Uranium Australia 02.jpg|http://strahlendesklima.de
 
</gallery>
 
  
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Independent of the question whether the nuclear waste will be shipped to a final disposal site or treated in a reprocessing unit, a temporary disposal of the spent fuel is necessary. For this reason each nuclear power plant has its own temporary repository. The spent fuel elements are stored for a couple of years in a spent fuel storage bay. Many nuclear reactors have an additional dry storage repository to store the fuel elements for further years. These repositories increase the threat, because the amount of radioactive inventory is raised and the effects of accidents or incidents would be much higher.
  
==== Olympic Dam Mine ====
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[[File:Uranium Olympic-Dam 47.jpg|Tailing ponds at the Olympic Dam Mine in Australia<br/>''credits: http://nukingtheclimate.com''|right|thumb]]
<gallery caption="Sample gallery" widths="100px" heights="100px" perrow="6">
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=== Disposal ===
Image:Uranium Olympic-Dam 44.jpg|http://strahlendesklima.de
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In each stage of the uranium chain nuclear waste is produced. A normal nuclear power plant with a capacity of some 1,300 megawatt needs at full load approximately 33 tons of enriched uranium a year. To produce this amount of fuel about 740,000 tons of rock have to be moved. Almost 620,000 tons of it are left as partly radioactive overburn in stockpiles in the mining areas. Only 120,000 tons of uranium ore are processed in the next step. Here some 123,000 tons are left as radioactive and toxic sludge in the uranium mines’ tailing ponds. Some 280 tons of uranium ore concentrates are converted into 348 tons of the gaseous UF6, leaving another 165 tons of solid respectively 153 m3 of liquid nuclear waste to be stored temporary for later final disposal. The uranium enrichment leaves some additional 305 tons of depleted UF6 to be disposed or used for military purposes. Not more than 43 tons of enriched UF6 are processed into 33 tons of UO2 to end up as fuel for a nuclear reactor. During operation of this plant, high level it turns into nuclear waste and additional radioactive material is created that has to be disposed.
Image:Uranium Olympic-Dam 01.jpg|Container with Yellow Cake (Uraniumoxide)<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 02.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 03.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 04.jpg|Conveyor belt<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 06.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 07.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 08.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 09.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 10.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 11.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 12.jpg|Truck driving into the uranium mine<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 14.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 15.jpg|Winding tower<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 17.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 18.jpg|Conveyor belt<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 19.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 20.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 21.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 22.jpg|Winding tower<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 24.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 25.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 26.jpg|Nuclear caution signs<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 28.jpg|Nuclear caution sign + workers<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 29.jpg|Nuclear worker<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 30.jpg|Nuclear caution sign<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 31.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 32.jpg|Nuclear caution sign<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 33.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 34.jpg|Nuclear caution signs on containers<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 35.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 36.jpg|Containers with Yellow Cake<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 38.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 39.jpg|Conveyor belt<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 40.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 41.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 42.jpg|Nuclear workers<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 43.jpg|Nuclear caution sign<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 46.jpg|Tailing Ponds with nuclear waste<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 47.jpg|http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 48.jpg|Nuclear caution sign<br/>http://strahlendesklima.de
 
Image:Uranium Olympic-Dam 49.jpg|http://strahlendesklima.de
 
</gallery>
 
  
 +
During all these stages of the uranium chain the amount of nuclear waste has been duplicated, because most of the materials in contact with the radioactive substances have also become radioactive and have to be disposed as low or intermediate level radioactive waste.
  
==== Ranger Mine ====
+
Nowhere in the world a safe final repository for the long-lived nuclear waste exists. It is very likely that there will never be a safe solution for this harmful material as it is not possible to make accurate assumptions to design a safe final repository for millions of years. No one can calculate detailed projections of geological or even social developments for such a long time.
<gallery caption="Sample gallery" widths="100px" heights="100px" perrow="6">
 
Image:Uranium Ranger 01.jpg|http://strahlendesklima.de
 
Image:Uranium Ranger 03.jpg|Open pit mine<br/>http://strahlendesklima.de
 
Image:Uranium Ranger 04.jpg|http://strahlendesklima.de
 
Image:Uranium Ranger 05.jpg|Truck probably with uranium ore<br/>http://strahlendesklima.de
 
Image:Uranium Ranger 06.jpg|Conveyor belt<br/>http://strahlendesklima.de
 
Image:Uranium Ranger 08.jpg|Pipe<br/>http://strahlendesklima.de
 
Image:Uranium Ranger 09.jpg|Water supply for the uranium mine<br/>http://strahlendesklima.de
 
Image:Uranium Ranger 11.jpg|Water pipeline for the uranium mine<br/>http://strahlendesklima.de
 
Image:Uranium Ranger 13.jpg|http://strahlendesklima.de
 
Image:Uranium Ranger 14.jpg|http://strahlendesklima.de
 
Image:Uranium Ranger 15.jpg|Fence<br/>http://strahlendesklima.de
 
Image:Uranium Ranger 17.jpg|Uranium truck<br/>http://strahlendesklima.de
 
Image:Uranium Ranger 19.jpg|http://strahlendesklima.de
 
Image:Uranium Ranger 20.jpg|Old sign with information for emergency cases (contamination of people)<br/>http://strahlendesklima.de
 
Image:Uranium Ranger 21.jpg|Nuclear caution sign<br/>http://strahlendesklima.de
 
Image:Uranium Ranger 23.jpg|Water supply for the uranium mine<br/>http://strahlendesklima.de
 
Image:Uranium Ranger 22.jpg|http://strahlendesklima.de
 
</gallery>
 
  
 +
Today, the uranium waste is stored in huge stockpiles of radioactive overburden and big toxic and radioactive tailing ponds in the mining areas, in temporary repositories close to the processing facilities, dumped in certain areas of the world (e.g. German uranium waste was shipped to Russia for a long time) or it was stored in well-known unsafe disposal sites for radioactive materials.
  
=== Uranium Mining in India ===
 
<gallery caption="Sample gallery" widths="100px" heights="100px" perrow="6">
 
Image:Uranium Mine India 05.jpg|Tailing Pond for the waste water from the milling process. On the front you see radioactive uranium waste. A field of sludge in the process of drying.
 
Image:Uranium Mine India 04.jpg|Here the radioactive water continues in an open canal towards the Bengali bay, according to the locals.
 
Image:Uranium Mine India 03.jpg|This is a child who was born disformed and their head and hand are twisted. Most of their siblings are dead, and they also had disformations before dying.
 
Image:Uranium Mine India 01.jpg|Radioactive water flowing out through the pipes on the lower part of the damed pond
 
Image:Uranium Mine India 02.jpg|Tailing pond photographed from the outside
 
</gallery>
 
  
==== Spill from new tailings pipeline burst reaches homes at Jaduguda ====
+
=== Waste Treatment: Reprocessing Units ===
On Feb. 21, 2008, a new tailings pipeline burst near Jaduguda caused a uranium mill tailings spill that reached nearby homes.<ref>JOAR Mar. 20, 2008, from: http://www.wise-uranium.org/umopjdg.html , November 19, 2009</ref>
+
The chemical procedure for separating plutonium or fissionable uranium from spent nuclear fuel is called reprocessing. About 10% of the spent fuel that is produced worldwide is being reprocessed. Reprocessing plants around the world - e.g. in La Hague (F) or Sellafield (UK) - have exhibited poor records of occupational safety, pollution control, waste containment, and security.
According to UCIL, the spill comprised about 40 cubic metres of liquid.<ref>UCIL letter April 29, 2008, from: http://www.wise-uranium.org/umopjdg.html , November 19, 2009</ref>
 
<gallery caption="Sample gallery" widths="100px" heights="100px" perrow="6">
 
Image:Image-Uranium Mine India 07.jpg|Pipeline with nuclear waste water
 
Image:Uranium Mine India 06.jpg|Old man showing the burst of a nuclear waste water pipe
 
Image:Image-Uranium Mine India 09.jpg|Tailings in the homes of residents - result of the second burst of an uranium waste water pipeline
 
Image:Image-Uranium Mine India 08.jpg|Media coverage on the second burst of the pipeline
 
</gallery>
 
  
 +
Reprocessing was developed decades ago when the nuclear industry planned to use the separated plutonium in fast breeder reactors. Due to problems with economics, safety and technical issues the breeder story failed to succeed. Despite this failure, reprocessing still continues in Europe and Asia. Plutonium, of which only a few kilograms are enough to produce a nuclear weapon, is now for a small part used in so called MOX fuel. MOX increases the dangers of nuclear proliferation, as the plutonium in it is easier to extract for weapons use than plutonium in spent nuclear fuel. In order to use MOX fuel, the reactor must be adapted. These changes lead to smaller safety margins when the reactor is switched off and the fuel rods are damaged sooner. The rate of fission of Pu tends to increase with temperature. This can endanger reactor control.
  
== Uranium Companies ==
+
Besides the limited re-use of Pu, the nuclear industry claims 95% of the reprocessed uranium is re-enriched and used again in fuel. However, this is the theory. In reality only a small part is re-used.
* [http://www.uraniumminer.net/miners.htm Official list of uranium mining companies]
 
  
  
<big>'''Finde <span class="plainlinks">[http://www.greenkids.de/europas-atomerbe/index.php/Category:Uranium more articles about Uranium]</span> on the Nuclear Heritage Network webpage.'''</big>
+
=== Military Use ===
 +
Uranium enrichment is also an explosive topic of military policy. In principle, enrichment plants such as the one in Gronau (D) can also produce weapon grade uranium. This is uranium enriched to a degree that it consists to 70-90 % of U-235. Officially, Gronau is so far only allowed to enrich up to "civil" 5 %. A higher percentage could surely be reached after some reconstruction.
 +
 
 +
But not only the enrichment facilities provide the military with deadly materials: in reprocessing units like La Hague (F) plutonium is produced that can be used for nuclear weapons. That was the original usage of these plants, shown in France by the term “l’usine de plutonium”.
 +
 
 +
Since the 90s of the last century the military of several countries like the United States or Great Britain uses depleted uranium (DU - the by-product of the enrichment of uranium-235) to strengthen the effects of their weapons. When the uranium weapons explode a fine powder of uranium dust is released and spread. During the last decade, DU ammunition caused heavy health issues and casualties among affected soldiers and residents in the attacked areas.
 +
 
 +
 
 +
=== Climate Issues ===
 +
Nuclear power is not carbon neutral. Mining the uranium ore, processing it, the conversion of “Yellow Cake” into gaseous UF6, the enrichment of uranium, the re-conversion of the UF6 into uranium oxide and the following fabrication of fuel elements eat up a huge amount of fossil energy. The worse the grade of uranium ore, the higher are the efforts necessary to produce the fuel. Even today, each kilowatt hour of nuclear electricity is connected to some 32-65 grams of carbon dioxide released to the atmosphere. Other studies showed up to 159 gram CO2 per kilowatt hour nuclear electricity. Most renewable energy sources produce less CO2 or comparable climate-relevant emissions. Even modern block heating and generating plants cause less climate issues than nuclear power.
 +
 
 +
Besides for processing the uranium to produce fuel elements much energy is used in the construction of the nuclear power plants and supplying facilities need much resources and energy, as they have to be very strong because of the risks connected to the operation of a nuclear plant. This energy is generated mostly by fossil sources.
 +
 
 +
Additionally, the nuclear fuel cycle produces greenhouse gases like HFCs (e.g. emitted by the nuclear facility Sellafield) thousands of times more potent than carbon dioxide.
 +
 
 +
 
 +
=== Transportation ===
 +
Connected to the development of nuclear fuel for reactors out of natural uranium a huge number of transports are necessary. Each shipment is connected with the danger of accidents or mostly harmful attacks as well as to the release of a big amount of climate-relevant gases. Also, the transports increase the radiation exposition of residents, drivers, guards and other people passed by the shipments.
 +
 
 +
Transportation is necessary to move the uranium ore and the processed products from one facility to another, to move the nuclear waste from the power plants to the repositories or reprocessing units and to ship other supplies and materials for these activities to the right places. Together with the processing of uranium, the transports are most responsible for the bad climate balance of nuclear power plants.
 +
 
 +
Nuclear transports are largely done by truck, ship or train. Thus, the local communities of certain seaports, train stations and highway routes are affected by these dangerous
 +
shipments.
 +
 
 +
In Germany the transport of high level radioactive waste (so-called Castor transports) to the temporary repositories in Gorleben or Ahaus is again and again leading to the resistance of thousands of people and is pushed through by the force of thousands of police.
 +
 
 +
 
 +
=== Independent Organizations... ===
 +
==== Greenkids e.V. ====
 +
:PO-Box 32 01 19 | D-39040 Magdeburg
 +
:Tel.: +49 3431 / 589 41 70 | [mailto:morslebenATgreenkids.de morsleben AT greenkids.de]{{Spamprotection}}
 +
:''Activities: Action, campaigns & investigations''
 +
 
 +
==== Nuclear Heritage Network ====
 +
:Am Bärental 6 | D-04720 Ebersbach OT Mannsdorf
 +
:Tel.: +49 3431 / 589 41 77
 +
:[mailto:contactATnuclear-heritage.net contact AT nuclear-heritage.net]{{Spamprotection}}
 +
:''Activities: Information & networking''
 +
 
 +
==== AKU Gronau ====
 +
:Siedlerweg 7 | D-48599 Gronau
 +
:Tel.: +49 25 62 / 23 125 | Fax: +49 25 65 / 977 82
 +
:[mailto:mailATaku-gronau.de mail AT aku-gronau.de]{{Spamprotection}}
 +
:''Activities: Opposition to the uranium enrichment plant''
 +
 
 +
==== WISE Uranium project ====
 +
:Peter Diehl | Am Schwedenteich 4 | D-01477 Arnsdorf
 +
:[mailto:uraniumATt-online.de uranium AT t-online.de]{{Spamprotection}}
 +
 
 +
 
 +
=== ... Support ===
 +
Besides your active contribution, you can support our criticism concerning uranium activities and nuclear waste through a donation:
 +
 
 +
* ''Account Holder:'' '''Greenkids e.V.'''
 +
* ''IBAN:'' '''DE75430609671101740600'''
 +
* ''BIC:'' '''GENO DE M 1 GLS'''
 +
* ''Bank:'' '''GLS Bank'''
 +
 
 +
 
 +
=== Web-sites... ===
 +
* [http://www.sea-us.org.au The Sustainable Energy & Anti-Uranium Service]
 +
* [http://nukingtheclimate.com Nuking the Climate (film on uranium mining)]
 +
* [http://www.wise-uranium.org WISE Uranium Project]
 +
* [http://uranium-network.org Uranium Network]
 +
* [http://uranium.nuclear-heritage.net  Nuclear Heritage Network - Uranium Section]
 +
* [http://uraniumwatch.org Uranium Watch]
 +
 
 +
 
 +
 
 +
Download this text as a flyer (A4, 4 pages, 600dpi) in [http://www.nuclear-heritage.net/images/f/fa/NuclearHeritage_Infoflyer_Uranium.pdf English], [http://www.nuclear-heritage.net/images/b/bc/NuclearHeritage_Infoflyer_Finnish_Uranium_1200dpi.pdf Finnish], [http://www.nuclear-heritage.net/images/5/54/EuropasAtomerbe_Infoflyer_Uran_600dpi.pdf German] or [http://www.nuclear-heritage.net/images/1/11/NuclearHeritage_Infoflyer_Russian_Uranium_600dpi.pdf Russian].''
 +
 
 +
This is also available as presentation in [http://www.nuclear-heritage.net/images/f/fa/Uranium_-_A_Deadly_Material.pdf English] and [http://www.nuclear-heritage.net/images/d/d4/Uran_-_ein_toedlicher_Stoff.pdf German].
 +
 
 +
 
 +
== Uranium-238 ==
 +
 
 +
=== Natural decay chain of uranium-238 ===
 +
Uranium-238 is not only radiating itself but also produced a series of radioactive daughter elements which all are existing in the ore. The main problems for the surroundings of the ore are radium and radon, because radium binds easily to soluble substances and will be washed out by rain and goes to ground water. Radon is gaseous und leaves the mineral at open surfaces and is in the air to be inhaled. Its half-life is only short, 3.8 days, but it is continuously produced again by radium.<ref name="Schmitz-Feuerhake">Prof. Dr. Inge Schmitz-Feuerhake, Hannover, Germany, German Society of Radiation Protection: Health Effects of Uranium Mining in Workers and Residents and the Experience in Germany. Lecture hold at the independent experts' hearing in Ranua on November 7, 2009</ref>
 +
 
 +
{| style="background:#ffffff; color:#000000; text-align:center; border-width:1px; border-color:#808080; border-style:solid;"
 +
|+ '''''Table 1 Natural decay chain of uranium-238'''''
 +
|- style="background:#EEDC82; color:white;"
 +
! style="width:30%;" |Nuclide
 +
! style="width:30%;" |Half-life
 +
! style="width:20%;" |Radiation
 +
! style="width:20%;" |Relative activity
 +
 
 +
|- style="background:#FFF68F;"
 +
| Uranium 238 || style="text-align:left" | 4,5 x 10<sup>9</sup> y || &alpha; &gamma; || 100
 +
 
 +
|- style="background:#EEE685;"
 +
| Th 234 || style="text-align:left" | 24 d || &beta; &gamma; || 100
 +
 
 +
|- style="background:#FFF68F;"
 +
| Pa 234m || style="text-align:left" | 1,2 m || &beta; &gamma; || 100
 +
 
 +
|- style="background:#EEE685;"
 +
| U 234 || style="text-align:left" | 2,5 x 10<sup>5</sup> y || &alpha; &gamma; || 100
 +
 
 +
|- style="background:#FFF68F;"
 +
| Th 230 || style="text-align:left" | 8,0 x 10<sup>4</sup> y || &alpha; &gamma; || 100
 +
 
 +
|- style="background:#EEE685;"
 +
| Radium 226 || style="text-align:left" | 1622 y || &alpha; &gamma; || 100
 +
 
 +
|- style="background:#FFF68F;"
 +
| Radon 222 || style="text-align:left" | 3,8 d || &alpha; || 100
 +
 
 +
|- style="background:#EEE685;"
 +
| Po 218 || style="text-align:left" | 3,05 m || &alpha; || 100
 +
 
 +
|- style="background:#FFF68F;"
 +
| Pb 214 || style="text-align:left" | 26,8 m || &beta; &gamma; || 100
 +
 
 +
|- style="background:#EEE685;"
 +
| Bi 214 || style="text-align:left" | 19,7 m || &beta; || 100
 +
 
 +
|- style="background:#FFF68F;"
 +
| Po 214 || style="text-align:left" | 1,6 x 10<sup>-4</sup> s || &alpha; &gamma; || 100
 +
 
 +
|- style="background:#EEE685;"
 +
| Tl 210 || style="text-align:left" | 1,3 m || &beta; &gamma; || 100
 +
 
 +
|- style="background:#FFF68F;"
 +
| Pb 210 || style="text-align:left" | 22 y || &beta; &gamma; || 100
 +
 
 +
|- style="background:#EEE685;"
 +
| Bi 210 || style="text-align:left" | 5,0 d || &beta; || 100
 +
 
 +
|- style="background:#FFF68F;"
 +
| Po 210 || style="text-align:left" | 138 d || &alpha; || 100
 +
 
 +
|- style="background:#EEE685;"
 +
| Tl 206 || style="text-align:left" | 4,2 m || &beta; || 100
 +
 
 +
|- style="background:#FFF68F;"
 +
| Pb 206 || style="text-align:left" | stable || ||
 +
|}
 +
 
 +
The radiations of the nuclides in Table 1 are alpha-, beta- and gamma-rays. Gamma-rays are penetrating matter, they are very similar to x-rays. Beta- and alpha-rays are high energetic particles with electrical charge. All these rays produce mutations in tissues.<ref name="Schmitz-Feuerhake"/>
 +
 
 +
Alpha-rays are of high biological effectiveness if they can get into the body via the lungs or into the stomach. Fig.1 shows tracks of single alpha particles sent out by radium. The path length in air is some centimeters, in tissue it would be only 1/1000 of that: some 10 micrometers. They are only dangerous if incorporated.<ref name="Schmitz-Feuerhake"/>
 +
 
 +
 
 +
<big>'''Finde <span class="plainlinks">[http://www.nuclear-heritage.net/index.php/Category:Uranium more articles about Uranium]</span> on the Nuclear Heritage Network webpage.'''</big>
 +
 
 +
 
 +
== Legal limits for uranium in drinking water ==
 +
* [http://www.foodwatch.de/kampagnen__themen/mineralwasser/trinkwasser/index_ger.html new regulations in Germany] <small><small>German</small></small>
  
  
Line 233: Line 224:
  
  
[[Category: Topics]]
+
[[Category: Uranium]]
 +
[[Category: Gronau]]
 +
[[Category: MOX]]
 +
[[Category: Plutonium]]
 +
[[Category: Radioactive isotopes]]
 +
[[Category: Transuranium Elements]]
 +
[[Category: English]]

Latest revision as of 16:30, 21 February 2017


Uranium as a chemical element was discovered in 1789 by Martin Heinrich Klaproth while analyzing pitchblende samples from a silver mine. He named the element after the planet Uranus. In the 1800s the only use of uranium was to colour glass and ceramics. 1840 the French chemist Péligot succeeded in producing uranium in metal form. 1896 Henry Becquerel discovered the natural radiation in uranium ore from Joachimsthal. Marie and Pierre Curie 1898 found in the same uranium ore the irradiant elements radium and polonium and formed the term "radioactivity". 1927 for the first time the genetic impact of radioactive rays was detected on Drosophilidae. 1934 Maria Curie dies the aftermath of the radioactive radiation (leukemia). Research by Enrico Fermi lead to uranium as a nuclear weapon and nuclear fuel source. 1938 Otto Hahn discovered together with Fritz Straßmann the uranium's fission and so the theoretic basis of a new energy source enormous extent. With the Manhattan Project in the USA the development of the atomic bomb was forced. 1942 under management of Robert Oppenheimer the first nuclear chain reaction succeeded. In July 1945 the first nuclear explosion took place at the experimental site of Alamogordo in New Mexico (USA). In August 1945 the USA released an atomic bomb on each of the Japanese cities Hiroshima (bomb called "Little Boy" and contained 64 kg of uranium) and Nagasaki (bomb called "Fat Man"). In Hiroshima about 100,000 people died immediately, in Nagasaki about 70,000. 1946 the Soviet Union started uranium mining in the Ore Mountains (D). In September 1949 the Soviet Union tested their first atomic bomb. The atomic arms race started. Lighting four ordinary light bulbs at an experimental nuclear reactor in Idaho Falls 1951 the myth of "peaceful use of nuclear power" was started. 1952 the United Kingdom detonated their first atomic bomb. 1953 US President Eisenhower delivered his historic "Atoms for Peace" speech to the UN envisioning the creation of an international body to promote and control "peaceful use" of atomic energy and to inhibit its use for military purposes. 1954 the first atomic power station worldwide was taken into operation in Obninsk near Moscow (SU). The so-called "peaceful" utilization of atomic power started. 1957 the International Atomic Energy Agency (IAEA) is formed. 1963 the USA and USSR signed a treaty on a partial stop of atomic weapons tests. 526 atomic explosions had taken place on surface by then polluting the environment all-around earth with radioactive fission products of uranium. 1980 more than 17,000 atomic warheads existed on earth. 1985 there are 374 atomic power stations in 26 countries. 1986 in Chernobyl the so far biggest accident in an atomic power station took place. 1986 Mikhail Gorbachev submitted the Soviet proposal to abolish all atomic weapons until the year 2000.[1][2]

Low concentrations of uranium occur naturally in soil, granite and seawater. As uranium decays it provides a major heat source for the earth causing convection and continental drift.[2]


Uranium-graphic.jpg


Uranium - A Deadly Material

extract of the homonymous flyer

This is the story of the stages of the uranium chain and gives an overview of the threats connected to each step of the processing of that radioactive material. It starts with the mining of the uranium ore, continues with the conversion of the milled "Yellow Cake" into the gaseous UF6, then it is enriched and, in the next step, the fuel elements are fabricated. After that the uranium is used in nuclear reactors and for nuclear weapons - leaving long-lasting radioactive waste. Each stage of the uranium chain is connected to dangerous transports and the release of huge amounts of carbon dioxide.

There are 92 naturally occurring elements but only one, uranium, has become the key to the operation of the nuclear fuel cycle. This singular use of uranium stems from its unstable, radioactive atomic structure. The safety problems arising from the use of uranium as an energy source stem from this highly radioactive property of uranium and the wastes it produces. The nucleus of uranium-235 has 143 neutrons and 92 protons and uranium-238 has 146 neutrons and 92 protons. The half-life of uranium-235 is 713,000,000 years and for uranium-238 it is 4,500,000,000 years. Uranium-238, unlike uranium-235, rarely fissions. But an uranium-238 atom can capture a neutron to produce a plutonium-239 atom; though, also plutonium-238, -240 and -242 are formed in lesser amounts.

Open-pit mine in Australia: Ranger Mine
credits: http://nukingtheclimate.com

Uranium Mining

Depending on the uranium deposit, the ore is extracted in underground mines, by open-pit mining or by pressing chemicals containing acids and leaches into the subsoil to dissolve the uranium metal and to pump the liquids upwards (”in situ leaching”). The content of uranium in the ore is between 0.1 and 1 percent, sometimes as little as 0.01 percent. Only at a few locations in Canada uranium ore with concentrations of up to 20 percents can be found. Therefore, to produce 1 ton of uranium, typically between 100 and 10,000 tons of ore have to be loosened, extracted and processed.

Uranium mining causes the destruction of huge areas; usually untouched nature on indigenous lands. Big stockpiles of unexploitable uranium ore, large tailing ponds with poisonous waste waters and the main part of the radioactivity of the mined uranium is left in the affected areas. The health of the workers and people living in the region is affected, but the environment is polluted as well.

One of the most harmful decay products of uranium-238 is the gas radon-222. It is generated naturally by the decay of uranium-238 and has a half-life of 3.823 days. By mining and processing the uranium ore, it is released to the environment and causes serious damages in the human body when breathed in.

In 2009, Kazakhstan, Canada and Australia were the biggest producers of uranium, followed by Russia, Namibia and Niger. Until the closure of the East German “Wismut” mine, it was the third biggest producer of uranium in the world. As the uranium supplies are running out of stock (big parts of the uranium for the fuel production is derived from disarmed nuclear weapons) a new run for mineable uranium has started since 2003. In Europe particularly Slovakia, Ukraine and Spain are targets of new uranium mining projects, while also Sweden and Finland are threatened by these developments.


Conversion: Yellow Cake

Ore mined conventionally in open-pit or underground mines is first crushed and leached in a uranium mill. The mill is usually located near the mines to reduce transport. The uranium is then extracted in a hydrometallurgical process. The final product produced from the mill, a powder consisting of a mixture of different uranium compounds, is packed and shipped in casks.

Commonly this uranium ore concentrate (U308) is referred to as “Yellow Cake”, named after the colour of one popular type of this concentrate. Two tons of mined ore will yield approximately one kilogram of this material. The residues (tailings) from this uranium extraction are always radioactive and need to be disposed of "in an orderly way". Due to their huge amounts and the long radioactive half-life of the remaining thorium, radium and uranium isotopes, these constitute a long-term environmental problem.

The next stage of the procedure is the conversion of the uranium ore concentrate into the solid UF6. In Ekaterinburg (RUS) and Pierrelatte (F) as well as in Lancashire (UK) conversion facilities are in operation. Several other countries also operate such plants.

Entrance to the Uranium Enrichment Plant Gronau
credits: Falk Beyer

Enrichment

The concentration of the fissile uranium isotope -235 in natural uranium ore is not high enough for the use in nuclear power plants. Usually, the share of uranium-235 is 0.7 % while some 99 percent of the natural uranium is made by the not fissile uranium-238. Thus, the concentration of uranium-235 has to be increased for the usage in the so-called “light water reactors” to enable a nuclear chain reaction - the uranium has to be enriched. Technically, there are different methods of uranium enrichment. One of the most common techniques is the separation of the uranium isotopes by gas centrifuges. In Gronau (D) an uranium enrichment facility with gas centrifuges is in operation and produces fuel for some 20 nuclear reactors. An extension of the factory’s capacity is planned to enrich uranium for 32 big nuclear reactors. Further unranium enrichment plants are situated for example in Tricastin (F) and Almelo (NL).


Fabrication of Fuel Elements

The UF6 is reconverted into UO2, milled to uranium powder and pressed into pellets of 10 to 15 mm length and 8 to 15 mm diameter. These are sintered at a high temperature of about 1700 °C to form a ceramic material, reground mechanically and filled into zircaloy cladding tubes. The ends of these tubes are welded up. A larger number of single rods (up to 250) are joined together to form a fuel element. Examples for nuclear fuel facilities are the sites in Lingen (Germany) and Dessel (Belgium).


Nuclear Power Plant

The usage of uranium as fuel in the nuclear reactor is only one of many stages in the uranium chain. The nuclear fission in the reactor produces hot steam that is used to generate electricity in turbines. During the operation of a nuclear power plant radioactive particles and radiation are released to the environment. Additionally, big amounts of radioactive waste are produced in form of the spent fuel by a nuclear power plant that have to be disposed permanently or are going to be “reprocessed”. Accidents like the catastrophe 1986 in Chernobyl are an unacceptable risk for human beings and the environment. No reactor can be operated safely. 436 nuclear reactors were in operation in 2009.

Independent of the question whether the nuclear waste will be shipped to a final disposal site or treated in a reprocessing unit, a temporary disposal of the spent fuel is necessary. For this reason each nuclear power plant has its own temporary repository. The spent fuel elements are stored for a couple of years in a spent fuel storage bay. Many nuclear reactors have an additional dry storage repository to store the fuel elements for further years. These repositories increase the threat, because the amount of radioactive inventory is raised and the effects of accidents or incidents would be much higher.

Tailing ponds at the Olympic Dam Mine in Australia
credits: http://nukingtheclimate.com

Disposal

In each stage of the uranium chain nuclear waste is produced. A normal nuclear power plant with a capacity of some 1,300 megawatt needs at full load approximately 33 tons of enriched uranium a year. To produce this amount of fuel about 740,000 tons of rock have to be moved. Almost 620,000 tons of it are left as partly radioactive overburn in stockpiles in the mining areas. Only 120,000 tons of uranium ore are processed in the next step. Here some 123,000 tons are left as radioactive and toxic sludge in the uranium mines’ tailing ponds. Some 280 tons of uranium ore concentrates are converted into 348 tons of the gaseous UF6, leaving another 165 tons of solid respectively 153 m3 of liquid nuclear waste to be stored temporary for later final disposal. The uranium enrichment leaves some additional 305 tons of depleted UF6 to be disposed or used for military purposes. Not more than 43 tons of enriched UF6 are processed into 33 tons of UO2 to end up as fuel for a nuclear reactor. During operation of this plant, high level it turns into nuclear waste and additional radioactive material is created that has to be disposed.

During all these stages of the uranium chain the amount of nuclear waste has been duplicated, because most of the materials in contact with the radioactive substances have also become radioactive and have to be disposed as low or intermediate level radioactive waste.

Nowhere in the world a safe final repository for the long-lived nuclear waste exists. It is very likely that there will never be a safe solution for this harmful material as it is not possible to make accurate assumptions to design a safe final repository for millions of years. No one can calculate detailed projections of geological or even social developments for such a long time.

Today, the uranium waste is stored in huge stockpiles of radioactive overburden and big toxic and radioactive tailing ponds in the mining areas, in temporary repositories close to the processing facilities, dumped in certain areas of the world (e.g. German uranium waste was shipped to Russia for a long time) or it was stored in well-known unsafe disposal sites for radioactive materials.


Waste Treatment: Reprocessing Units

The chemical procedure for separating plutonium or fissionable uranium from spent nuclear fuel is called reprocessing. About 10% of the spent fuel that is produced worldwide is being reprocessed. Reprocessing plants around the world - e.g. in La Hague (F) or Sellafield (UK) - have exhibited poor records of occupational safety, pollution control, waste containment, and security.

Reprocessing was developed decades ago when the nuclear industry planned to use the separated plutonium in fast breeder reactors. Due to problems with economics, safety and technical issues the breeder story failed to succeed. Despite this failure, reprocessing still continues in Europe and Asia. Plutonium, of which only a few kilograms are enough to produce a nuclear weapon, is now for a small part used in so called MOX fuel. MOX increases the dangers of nuclear proliferation, as the plutonium in it is easier to extract for weapons use than plutonium in spent nuclear fuel. In order to use MOX fuel, the reactor must be adapted. These changes lead to smaller safety margins when the reactor is switched off and the fuel rods are damaged sooner. The rate of fission of Pu tends to increase with temperature. This can endanger reactor control.

Besides the limited re-use of Pu, the nuclear industry claims 95% of the reprocessed uranium is re-enriched and used again in fuel. However, this is the theory. In reality only a small part is re-used.


Military Use

Uranium enrichment is also an explosive topic of military policy. In principle, enrichment plants such as the one in Gronau (D) can also produce weapon grade uranium. This is uranium enriched to a degree that it consists to 70-90 % of U-235. Officially, Gronau is so far only allowed to enrich up to "civil" 5 %. A higher percentage could surely be reached after some reconstruction.

But not only the enrichment facilities provide the military with deadly materials: in reprocessing units like La Hague (F) plutonium is produced that can be used for nuclear weapons. That was the original usage of these plants, shown in France by the term “l’usine de plutonium”.

Since the 90s of the last century the military of several countries like the United States or Great Britain uses depleted uranium (DU - the by-product of the enrichment of uranium-235) to strengthen the effects of their weapons. When the uranium weapons explode a fine powder of uranium dust is released and spread. During the last decade, DU ammunition caused heavy health issues and casualties among affected soldiers and residents in the attacked areas.


Climate Issues

Nuclear power is not carbon neutral. Mining the uranium ore, processing it, the conversion of “Yellow Cake” into gaseous UF6, the enrichment of uranium, the re-conversion of the UF6 into uranium oxide and the following fabrication of fuel elements eat up a huge amount of fossil energy. The worse the grade of uranium ore, the higher are the efforts necessary to produce the fuel. Even today, each kilowatt hour of nuclear electricity is connected to some 32-65 grams of carbon dioxide released to the atmosphere. Other studies showed up to 159 gram CO2 per kilowatt hour nuclear electricity. Most renewable energy sources produce less CO2 or comparable climate-relevant emissions. Even modern block heating and generating plants cause less climate issues than nuclear power.

Besides for processing the uranium to produce fuel elements much energy is used in the construction of the nuclear power plants and supplying facilities need much resources and energy, as they have to be very strong because of the risks connected to the operation of a nuclear plant. This energy is generated mostly by fossil sources.

Additionally, the nuclear fuel cycle produces greenhouse gases like HFCs (e.g. emitted by the nuclear facility Sellafield) thousands of times more potent than carbon dioxide.


Transportation

Connected to the development of nuclear fuel for reactors out of natural uranium a huge number of transports are necessary. Each shipment is connected with the danger of accidents or mostly harmful attacks as well as to the release of a big amount of climate-relevant gases. Also, the transports increase the radiation exposition of residents, drivers, guards and other people passed by the shipments.

Transportation is necessary to move the uranium ore and the processed products from one facility to another, to move the nuclear waste from the power plants to the repositories or reprocessing units and to ship other supplies and materials for these activities to the right places. Together with the processing of uranium, the transports are most responsible for the bad climate balance of nuclear power plants.

Nuclear transports are largely done by truck, ship or train. Thus, the local communities of certain seaports, train stations and highway routes are affected by these dangerous shipments.

In Germany the transport of high level radioactive waste (so-called Castor transports) to the temporary repositories in Gorleben or Ahaus is again and again leading to the resistance of thousands of people and is pushed through by the force of thousands of police.


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Uranium-238

Natural decay chain of uranium-238

Uranium-238 is not only radiating itself but also produced a series of radioactive daughter elements which all are existing in the ore. The main problems for the surroundings of the ore are radium and radon, because radium binds easily to soluble substances and will be washed out by rain and goes to ground water. Radon is gaseous und leaves the mineral at open surfaces and is in the air to be inhaled. Its half-life is only short, 3.8 days, but it is continuously produced again by radium.[4]

Table 1 Natural decay chain of uranium-238
Nuclide Half-life Radiation Relative activity
Uranium 238 4,5 x 109 y α γ 100
Th 234 24 d β γ 100
Pa 234m 1,2 m β γ 100
U 234 2,5 x 105 y α γ 100
Th 230 8,0 x 104 y α γ 100
Radium 226 1622 y α γ 100
Radon 222 3,8 d α 100
Po 218 3,05 m α 100
Pb 214 26,8 m β γ 100
Bi 214 19,7 m β 100
Po 214 1,6 x 10-4 s α γ 100
Tl 210 1,3 m β γ 100
Pb 210 22 y β γ 100
Bi 210 5,0 d β 100
Po 210 138 d α 100
Tl 206 4,2 m β 100
Pb 206 stable

The radiations of the nuclides in Table 1 are alpha-, beta- and gamma-rays. Gamma-rays are penetrating matter, they are very similar to x-rays. Beta- and alpha-rays are high energetic particles with electrical charge. All these rays produce mutations in tissues.[4]

Alpha-rays are of high biological effectiveness if they can get into the body via the lungs or into the stomach. Fig.1 shows tracks of single alpha particles sent out by radium. The path length in air is some centimeters, in tissue it would be only 1/1000 of that: some 10 micrometers. They are only dangerous if incorporated.[4]


Finde more articles about Uranium on the Nuclear Heritage Network webpage.


Legal limits for uranium in drinking water


  1. translated from: untitled document from GDR time connected to the WISMUT uranium mine (German)
  2. 2.0 2.1 http://www.visualcapitalist.com/uranium-metal-of-tomorrow as at August 14, 2013
  3. 3.0 3.1 3.2 3.3 For protection against automatical email address robots searching for addresses to send spam to them this email address has been made unreadable for them. To get a correct mail address you have to displace "AT" by the @-symbol.
  4. 4.0 4.1 4.2 Prof. Dr. Inge Schmitz-Feuerhake, Hannover, Germany, German Society of Radiation Protection: Health Effects of Uranium Mining in Workers and Residents and the Experience in Germany. Lecture hold at the independent experts' hearing in Ranua on November 7, 2009