Academic literature on the topic 'Salts Aluminum chloride'

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Journal articles on the topic "Salts Aluminum chloride"

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Bataineh, H., M. H. Al-Hamood, and A. M. Elbetieha. "Assessment of aggression, sexual behavior and fertility in adult male rat following long-term ingestion of four industrial metals salts." Human & Experimental Toxicology 17, no. 10 (1998): 570–76. http://dx.doi.org/10.1177/096032719801701008.

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1 The effect of long-term ingestion of the industrial metals salts, manganese sulfate, aluminum chloride, lead acetate and copper chloride was investigated on aggression, sexual behavior and fertility in male rat. Adult male rats ingested solutions of these salts along with drinking water at a concentration of 1000 p.p.m. for 12 weeks. 2 Male rat sexual behavior was suppressed after the ingestion of manganese sulfate, aluminum chloride, lead acetate and copper chloride. The ingestion of solutions of these salts markedly prolonged the intromission and ejaculation latencies. Aluminum chloride an
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Takahashi, S. "Neutron Diffraction Study of Aluminum Chloride Imidazolium Chloride Molten Salts." ECS Proceedings Volumes 1994-13, no. 1 (1994): 69–76. http://dx.doi.org/10.1149/199413.0069pv.

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Šolc, Marek, Eva Grambalová, and Marian Šofranko. "The Quality Interaction of Molten Salts in the Systems SiO2-Al2O3." Advanced Materials Research 849 (November 2013): 20–25. http://dx.doi.org/10.4028/www.scientific.net/amr.849.20.

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The aim of this study was to realize and evaluate laboratory corrosion tests associated with problems such as wear of refractory materials, for example, at processing of aluminium. Corrosion tests were carried out by static crucible corrosion test in laboratory resistive furnace at 850 °C during 2 hours in air atmosphere. Two types of aluminum-silica molded refractories were used as a corroding material. As corrosive media were applied pure chlorides, namely: sodium chloride, potassium chloride. The results of corrosion tests were evaluated by macroscopic, microscopic, chemical and semiquantit
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Wang, Yu Jiang, Xin Xin Ma, and Guang Wei Guo. "Electrodeposition of Aluminum on 316L Stainless Steel from Molten Salts Based on Chlorides." Key Engineering Materials 373-374 (March 2008): 273–76. http://dx.doi.org/10.4028/www.scientific.net/kem.373-374.273.

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The electrodeposition of aluminum on 316L stainless steel from a molten salts based on chloride has been studied. The surface morphology of the aluminum layer has been examined through scanning electron microscope (SEM) and the structure of the aluminum layer has been analyzed by X-ray diffraction (XRD). The thickness of the deposited aluminum layer has been measured by the method of cross-section scan. It has been suggested that a white, smooth, non-porous and a high purity aluminum layer can be obtained on 316L stainless steel from the ternary chloride molten salts (AlCl3 – NaCl - KCl). And
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Lukasik, Jerzy, Troy M. Scott, Diane Andryshak, and Samuel R. Farrah. "Influence of Salts on Virus Adsorption to Microporous Filters." Applied and Environmental Microbiology 66, no. 7 (2000): 2914–20. http://dx.doi.org/10.1128/aem.66.7.2914-2920.2000.

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ABSTRACT We investigated the direct and indirect effects of mono-, di-, and trivalent salts (NaCl, MgCl2, and AlCl3) on the adsorption of several viruses (MS2, PRD-1, φX174, and poliovirus 1) to microporous filters at different pH values. The filters studied included Millipore HA (nitrocellulose), Filterite (fiberglass), Whatman (cellulose), and 1MDS (charged-modified fiber) filters. Each of these filters except the Whatman cellulose filters has been used in virus removal and recovery procedures. The direct effects of added salts were considered to be the effects associated with the presence o
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Grambálová, E., P. Vadász, and J. Petrík. "Interaction of molten salts in the systems SiO2-Al2O3." Cerâmica 59, no. 352 (2013): 570–75. http://dx.doi.org/10.1590/s0366-69132013000400013.

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The aim of this study was to realize and evaluate laboratory corrosion tests for a solution of problems such as wear of refractory materials at processing of aluminum, for example. The static crucible corrosion tests were carried out in laboratory resistive furnace at 850 °C during 2 h air atmosphere. Two standards of alumina-silica shaped refractory bricks were used as a corroding material. Pure sodium chloride and potassium chloride were applied as a corrosive media. The results of tests were evaluated by macroscopic, microscopic, chemical and semiquantitative EDX analysis. Sodium chloride s
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Xie, Jian. "V2O5 Xerogels in 1-Ethyl-3-Methylimidazolium Chloride/Aluminum Chloride Molten Salts." ECS Proceedings Volumes 1998-11, no. 1 (1998): 292–301. http://dx.doi.org/10.1149/199811.0292pv.

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Nanba, K., and Gary M. King. "Response of Atmospheric Methane Consumption by Maine Forest Soils to Exogenous Aluminum Salts." Applied and Environmental Microbiology 66, no. 9 (2000): 3674–79. http://dx.doi.org/10.1128/aem.66.9.3674-3679.2000.

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ABSTRACT Atmospheric methane consumption by Maine forest soils was inhibited by additions of environmentally relevant levels of aluminum. Aluminum chloride was more inhibitory than nitrate or sulfate salts, but its effect was comparable to that of a chelated form of aluminum. Inhibition could be explained in part by the lower soil pH values which resulted from aluminum addition. However, significantly greater inhibition by aluminum than by mineral acids at equivalent soil pH values indicated that inhibition also resulted from direct effects of aluminum per se. The extent of inhibition by exoge
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Carter, Michael T., Charles L. Hussey, Sandra K. D. Strubinger, and Robert A. Osteryoung. "Electrochemical reduction of dioxygen in room-temperature imidazolium chloride-aluminum chloride molten salts." Inorganic Chemistry 30, no. 5 (1991): 1149–51. http://dx.doi.org/10.1021/ic00005a051.

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Stuff, John R. "Thermal decomposition of 1-methyl-3-ethylimidazolium chloride (MEIC)/aluminum chloride molten salts." Thermochimica Acta 152, no. 2 (1989): 421–25. http://dx.doi.org/10.1016/0040-6031(89)85409-7.

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Dissertations / Theses on the topic "Salts Aluminum chloride"

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Proxmire, Paul R. "The influence of aluminum salts on the retention of titanium dioxide when using cationic polyelectrolyte as a retention aid." Diss., Georgia Institute of Technology, 1988. http://hdl.handle.net/1853/5533.

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Lang, Christopher M. "Development of quaternary ammonium based electrolytes for rechargeable batteries and fuel cells." Diss., Available online, Georgia Institute of Technology, 2006, 2006. http://etd.gatech.edu/theses/available/etd-10262006-140639/.

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Thesis (Ph. D.)--Chemical and Biomolecular Engineering, Georgia Institute of Technology, 2007.<br>Kohl, Paul, Committee Chair ; Bottomley, Lawrence, Committee Member ; Eckert, Charles, Committee Member ; Fuller, Tom, Committee Member ; Teja, Amyn, Committee Member.
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Pye, Stephen L. "The electrochemical behavior of iron, copper, and nickel electrodes in sodium chloride buffered, neutral room temperature aluminum chloride : 1-methyl-3-ethylimidazolium chloride molten salt." Thesis, Georgia Institute of Technology, 1996. http://hdl.handle.net/1853/11126.

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Watari, Raku. "Electrochemical behavior of a liquid tin electrode in molten ternary salt electrolyte containing sodium chloride, aluminum chloride, and tin chloride." Thesis, Massachusetts Institute of Technology, 2016. http://hdl.handle.net/1721.1/104316.

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Thesis: S.B., Massachusetts Institute of Technology, Department of Materials Science and Engineering, 2016.<br>Cataloged from PDF version of thesis.<br>Includes bibliographical references (pages 33-34).<br>One of the key limitations in the wide-scale adoption of mature renewable energy technologies is the lack of grid-level energy storage solutions. One important figure of merit in these battery systems is a high rate capability to match fluctuating demands for electricity. Molten salt batteries are an attractive option for stationary storage due to fast kinetics and good cycling capability, b
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Andrade, Erik de Lima [UNESP]. "Análise de eficiência de biopolímero como composto coadjuvante no processo de coagulação-floculação e sedimentação." Universidade Estadual Paulista (UNESP), 2017. http://hdl.handle.net/11449/148951.

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Submitted by Erik de Lima Andrade null (erik_andrade88@hotmail.com) on 2017-03-06T18:12:25Z No. of bitstreams: 1 Dissertação_Erik de Lima Andrade.pdf: 2096082 bytes, checksum: fdfbde2d75d685f0c1cda5fc47b0b3f1 (MD5)<br>Approved for entry into archive by Juliano Benedito Ferreira (julianoferreira@reitoria.unesp.br) on 2017-03-10T14:43:15Z (GMT) No. of bitstreams: 1 andrade_el_me_soro.pdf: 2096082 bytes, checksum: fdfbde2d75d685f0c1cda5fc47b0b3f1 (MD5)<br>Made available in DSpace on 2017-03-10T14:43:15Z (GMT). No. of bitstreams: 1 andrade_el_me_soro.pdf: 2096082 bytes, checksum: fdfbde2d75d68
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Asztalos, Annifrid. "Untersuchung von Tetrachloroaluminatschmelzen als potentielle Wärmetransportflüssigkeiten in Solarkraftwerken." Doctoral thesis, Technische Universitaet Bergakademie Freiberg Universitaetsbibliothek "Georgius Agricola", 2018. http://nbn-resolving.de/urn:nbn:de:bsz:105-qucosa-236264.

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Um die Wirtschaftlichkeit von Solarkraftwerken zu verbessern, sollte geprüft werden, inwieweit eine geschmolzene Mischung aus Natriumchlorid und Aluminiumchlorid als Wärmetransportflüssigkeit in Frage kommt. Aufgrund der Hydrolyseempfindlichkeit solcher Schmelzen kommt es durch Einwirkung von Wasser zur Bildung von Chlorwasserstoff sowie Aluminiumoxidchloriden, die in einem geschlossenen System zu einem Druckanstieg bzw. Ausfällungen führen können. Der Gesamtdruck über schwach basischen NaCl-AlCl3-Schmelzen wird durch eine hohe HCl-Löslichkeit herabgesetzt, sodass aus der Bilanz heraus ein Hyd
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Liu, Shin-Yu, and 劉心玉. "Electrochemical Studies of Indium(III)/(I) Chloride in Aluminum Chloride-1,2-dimethylpropylimidazolium Chloride Room-Temperature Molten Salts." Thesis, 1996. http://ndltd.ncl.edu.tw/handle/65035137821789607344.

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Jeng, Gi-Shong, and 鄭吉雄. "Electrocheimcal Studies of Tellurium(IV) chloride and Thallium( I) Chloride in Aluminum Chloride-1-Methyl-3-Ethylimidazolium Chloride Room-Temperature Molten Salts." Thesis, 1997. http://ndltd.ncl.edu.tw/handle/94532647711861107260.

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Lin, Yu-Feng, and 林于豐. "Electrodeposition of Ga/As Films in Aluminum Chloride-1- Methyl-3-Ethylimidazolium Chloride Room-Temperature Molten Salts." Thesis, 1998. http://ndltd.ncl.edu.tw/handle/58682194770069312919.

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高為智. "Spectroscopic and Electrochemical Studies of Europium(III) Chloride and Ytterbium(III) Chloride in Aluminum Chloride-1-Methyl-3-ethylimidazolium Chloride Room-Temperature Molten Salts." Thesis, 1995. http://ndltd.ncl.edu.tw/handle/01356876508198645980.

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碩士<br>國立成功大學<br>化學學系<br>83<br>UV-visible absorption spectroscopy and amperometric titration experiments indicate that the EuCl3 and YbCl3 are complexed as the [EuCl6]3- and [YbCl6]3-, in basic aluminum chloride-1-methyl-3-ethylimidazolium chloride molten salt, respectively, and they can be reduced to Eu(II) and Yb(II) species via quasi reversible one-electron charge-transfer process. The standard heterogeneous rate constant and the cathodic transfer coefficient were calculated for the reduction of these two complexes. The formal redox potential, E0', obtained from Nernst plots is dependent up
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Books on the topic "Salts Aluminum chloride"

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The Electrodeposition of Cobalt, Iron, and Antimony and their Aluminum Alloys from Room-Temperature Aluminum Chloride 1-Methyl-3-Ethylimidazolium Chloride Molten Salt. Storming Media, 1997.

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Book chapters on the topic "Salts Aluminum chloride"

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Mendes, E., O. Conocar, A. Laplace, N. Douyère, J. Lacquement, and M. Miguirditchian. "Actinides Oxidative Back-Extraction from Liquid Aluminium, in Molten Chloride Media." In Molten Salts Chemistry and Technology. John Wiley & Sons, Ltd, 2014. http://dx.doi.org/10.1002/9781118448847.ch6c.

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Abbasalizadeh, Aida, Lidong Teng, Seshadri Seetharaman, Jilt Sietsma, and Yongxiang Yang. "Rare Earth Extraction from NdFeB Magnets and Rare Earth Oxides Using Aluminum Chloride/Fluoride Molten Salts." In Rare Earths Industry. Elsevier, 2016. http://dx.doi.org/10.1016/b978-0-12-802328-0.00024-3.

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Saito, S. "Lithium Aluminum Hydride with Various Metal Chloride Salts for the ­Catalytic Reduction of Alkynes, Alkenes, and Aryl and Alkyl Chlorides." In Compounds of Groups 13 and 2 (Al, Ga, In, Tl, Be...Ba). Georg Thieme Verlag KG, 2004. http://dx.doi.org/10.1055/sos-sd-007-00030.

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Saito, S. "Aluminum Chlorides with Metal Salts." In Compounds of Groups 13 and 2 (Al, Ga, In, Tl, Be...Ba). Georg Thieme Verlag KG, 2004. http://dx.doi.org/10.1055/sos-sd-007-00101.

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Atkins, Peter. "Electric Occurrence: Electrolysis." In Reactions. Oxford University Press, 2011. http://dx.doi.org/10.1093/oso/9780199695126.003.0010.

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Electrolysis makes use of electric currents, a stream of electrons, to bring about chemical change. It puts electricity to work by using it to break or form bonds by forcing electrons on to molecules or sucking electrons out of them. Electrolysis is an application of the redox processes I described in Reaction 5, where I showed that reduction is the gain of electrons and that oxidation is their loss. All that happens in electrolysis is the use of an external supply of electrons from a battery or other direct-current (DC) source to push them on to a species and so bring about its reduction, or the use of the electron-sucking power of a battery to remove them from a species to bring about its oxidation. Electrolysis, in other words, is electrically driven reduction and oxidation. In fact, the process is rather broader than just forcing species to accept or give up electrons because, as I have hinted, molecules might respond to the change in their number of electrons by discarding or rearranging atoms. For instance, when water is electrolysed, the H–O bonds of the H2O molecules are broken and hydrogen and oxygen gases are formed. When an electric current is passed through molten common salt (sodium chloride, NaCl), metallic sodium and gaseous chlorine, Cl2, are formed. Electrolysis is a major technology in the chemical industry, for among other applications it is used to make chlorine, to purify copper, and to extract aluminium. To bring about electrolysis, two metal or graphite rods, the ‘electrodes’, are inserted into the molten substance or solution and connected to a DC electrical supply. The electrons that form the electric current enter the substance through one electrode (the ‘cathode’) and leave it through the other electrode (the ‘anode’). A molecule or ion close to the cathode is forced to collect one or more electrons from that electrode and be reduced. A molecule or ion close to the anode is forced to release them to that electrode and thereby become oxidized. A reasonably simple first example is the purification of copper.
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Conference papers on the topic "Salts Aluminum chloride"

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Myers, Philip D., D. Yogi Goswami, and Elias Stefanakos. "Molten Salt Spectroscopy for Quantification of Radiative Absorption in Novel Metal Chloride-Enhanced Thermal Storage Media." In ASME 2014 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/imece2014-40157.

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This study describes the development and characterization of novel high-temperature thermal storage media, based on inclusion of transition metal chlorides in the potassium-sodium chloride eutectic system, (K-Na)Cl (melting temperature of 657°C, latent heat of 278 J/g). At the melting temperature of (K-Na)Cl, infrared (IR) radiation can play a major role in the overall heat transfer process — 90 percent of spectral blackbody radiation falls in the range of 2 to 13 μm. The authors propose inclusion of small amounts (less than 0.2 wt %) of IR-active transition metal chlorides to increase radiati
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van Essen, V. M., J. Cot Gores, L. P. J. Bleijendaal, et al. "Characterization of Salt Hydrates for Compact Seasonal Thermochemical Storage." In ASME 2009 3rd International Conference on Energy Sustainability collocated with the Heat Transfer and InterPACK09 Conferences. ASMEDC, 2009. http://dx.doi.org/10.1115/es2009-90289.

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This paper describes the characterization of four salt hydrates as potential thermochemical material for compact seasonal heat storage in the built environment. First, magnesium sulfate was investigated in detail using TG-DSC apparatus. The results of this study revealed that magnesium sulfate is able to store almost 10 times more energy than water of the same volume. However, the material was unable to take up water (and release heat) under practical conditions. A new theoretical study identified three salt hydrates besides magnesium sulfate as promising materials for compact seasonal heat st
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Illés, István, Meriem Sassi, Hanna Zakiyya, and Tamás Kékesi. "The Fundamental Kinetic Characteristics of Aqueous Dissolution of Chloride and Fluoride Salts from Secondary Aluminium Dross." In MultiScience - XXXIII. microCAD International Multidisciplinary Scientific Conference. University of Miskolc, 2019. http://dx.doi.org/10.26649/musci.2019.083.

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Lester, T., D. J. Kingerley, S. J. Harris, and S. P. Matthews. "Thermally Sprayed Composite Coatings for Enhanced Corrosion Protection of Steel Structures." In ITSC 1998, edited by Christian Coddet. ASM International, 1998. http://dx.doi.org/10.31399/asm.cp.itsc1998p0049.

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Abstract Zinc and aluminium coatings have been used widely to protect steel structures from corrosion in aggressive and hostile conditions. The more recent development of zinc 15wt% aluminium alloy in a wire form has demonstrated that arc-spray coatings can be produced with a resistance to red rust which is superior to that of the single metals. Competitive 'pseudo' alloy or composite coatings produced by co-spraying wires of zinc and aluminium have been shown to achieve resistance to salt spray conditions similar to this conventional alloy. Work described in this paper confirms these findings
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Shifler, D. A., and S. R. Choi. "CMAS Effects on Ship Gas-Turbine Components/Materials." In ASME Turbo Expo 2018: Turbomachinery Technical Conference and Exposition. American Society of Mechanical Engineers, 2018. http://dx.doi.org/10.1115/gt2018-75865.

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Recent inspection of shipboard gas-turbine components under the platform has indicated the apparent presence of CMAS (calcium, magnesium, alumino-silicate) and its related attack. This type of attack has often been observed in aero gas turbine engines when sand and similar siliceous matter is ingested into the engine and the sand debris melts due to high engine operating temperature greater than 1150°C. Initial chemical analysis shows that the CMAS-affected areas of ship engine components versus aero engine components are similar. However, this phenomenon commonly observed in advanced aeroengi
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Mason, J. Brad, and Corey A. Myers. "THOR® Steam Reforming Technology for the Treatment of Ion Exchange Resins and More Complex Wastes Such as Fuel Reprocessing Wastes." In ASME 2010 13th International Conference on Environmental Remediation and Radioactive Waste Management. ASMEDC, 2010. http://dx.doi.org/10.1115/icem2010-40165.

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The THOR® fluidized bed steam reforming process has been successfully operated for more than 10 years in the United States for the treatment of low- and intermediate-level radioactive wastes generated by commercial nuclear power plants. The principle waste stream that has been treated is ion exchange resins (IER) and Dry Active Waste (DAW), but various liquids, sludges, and solid organic wastes have also been treated. The principle advantages of the THOR® process include: (a) high volume reduction on the order of 5:1 to 10:1 for IER and up to 50:1 for high plastic content DAW streams depending
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