- Research Article
- 10.13182/nt85-a33636
Authors
- Aug 01, 1985
- Nuclear Technology
- H Deuber + 58 more +58
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X-Ray SpectrometryVolume 28, Issue 4 p. 207-208 Guest EditorialFree Access Guest Editorial Jorge E. Fernández, Jorge E. Fernández INFM, Department of Energetic, Nuclear and environmental control Engineering, University of BolognaSearch for more papers by this author Jorge E. Fernández, Jorge E. Fernández INFM, Department of Energetic, Nuclear and environmental control Engineering, University of BolognaSearch for more papers by this author First published: 27 September 1999 https://doi.org/10.1002/(SICI)1097-4539(199907/08)28:4<207::AID-XRS372>3.0.CO;2-8AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinked InRedditWechat No abstract is available for this article. Volume28, Issue4Special Issue: Papers from the European Conference on EDXRS, Bologna, Italy, 7–12 June 1998July/August 1999Pages 207-208 RelatedInformation
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Poly(methyloctadecyl)hydrosiloxane–a deactivation reagent for capillary columns
Journal of High Resolution ChromatographyVolume 11, Issue 2 p. 220-222 Short Communication Poly(methyloctadecyl)hydrosiloxane–a deactivation reagent for capillary columns J. Tříska, J. Tříska Laboratory of Synthetic Fuels, Prague Institute of Chemical Technology, CS-166 28 Praha 6, CzechoslovakiaSearch for more papers by this authorR. Hulik, R. Hulik Laboratory of Synthetic Fuels, Prague Institute of Chemical Technology, CS-166 28 Praha 6, CzechoslovakiaSearch for more papers by this authorL. Vodička, L. Vodička Laboratory of Synthetic Fuels, Prague Institute of Chemical Technology, CS-166 28 Praha 6, CzechoslovakiaSearch for more papers by this authorV. Janda, Corresponding Author V. Janda Department of Water Technology and Environmental Engineering, Prague Institute of Chemical Technology, CS-166 28 Praha 6, CzechoslovakiaDepartment of Water Technology and Environmental Engineering, Prague Institute of Chemical Technology, CS-166 28 Praha 6, CzechoslovakiaSearch for more papers by this authorM. Čapka, M. Čapka Institute of Chemical Process Fundamentals, Czechoslovak Academy of Sciences, CS-165 02 Praha 6, CzechoslovakiaSearch for more papers by this author J. Tříska, J. Tříska Laboratory of Synthetic Fuels, Prague Institute of Chemical Technology, CS-166 28 Praha 6, CzechoslovakiaSearch for more papers by this authorR. Hulik, R. Hulik Laboratory of Synthetic Fuels, Prague Institute of Chemical Technology, CS-166 28 Praha 6, CzechoslovakiaSearch for more papers by this authorL. Vodička, L. Vodička Laboratory of Synthetic Fuels, Prague Institute of Chemical Technology, CS-166 28 Praha 6, CzechoslovakiaSearch for more papers by this authorV. Janda, Corresponding Author V. Janda Department of Water Technology and Environmental Engineering, Prague Institute of Chemical Technology, CS-166 28 Praha 6, CzechoslovakiaDepartment of Water Technology and Environmental Engineering, Prague Institute of Chemical Technology, CS-166 28 Praha 6, CzechoslovakiaSearch for more papers by this authorM. Čapka, M. Čapka Institute of Chemical Process Fundamentals, Czechoslovak Academy of Sciences, CS-165 02 Praha 6, CzechoslovakiaSearch for more papers by this author First published: February 1988 https://doi.org/10.1002/jhrc.1240110220Citations: 1AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinkedInRedditWechat Citing Literature Volume11, Issue2February 1988Pages 220-222 RelatedInformation
Read moreSubsurface Remediation or I Love That Dirty Water
Groundwater Monitoring & RemediationVolume 14, Issue 2 p. 4-5 Free Access Subsurface Remediation or I Love That Dirty Water Mike Barcelona, Mike Barcelona Dr. Michael J. Barcelona is with the Department of Civil & Environmental Engineering, University of Michigan, Ann Arbor, Michigan. He is editor of Ground Water Monitoring & Remediation.Search for more papers by this author Mike Barcelona, Mike Barcelona Dr. Michael J. Barcelona is with the Department of Civil & Environmental Engineering, University of Michigan, Ann Arbor, Michigan. He is editor of Ground Water Monitoring & Remediation.Search for more papers by this author First published: May 1994 https://doi.org/10.1111/j.1745-6592.1994.tb00100.xAboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL No abstract is available for this article. Volume14, Issue2May 1994Pages 4-5 RelatedInformation
Read morePerformance of ultraviolet photocatalytic oxidation for indoor air cleaning applications
Ultraviolet photocatalytic oxidation (UVPCO) systems for removal of volatile organic compounds (VOCs) from air are being considered for use in office buildings. Here, we report an experimental evaluation of a UVPCO device with tungsten oxide modified titanium dioxide (TiO2) as the photocatalyst. The device was challenged with complex VOC mixtures. One mixture contained 27 VOCs characteristic of office buildings and another comprised 10 VOCs emitted by cleaning products, in both cases at realistic concentrations (low ppb range). VOC conversion efficiencies varied widely, usually exceeded 20%, and were as high as approximately 80% at about 0.03 s residence time. Conversion efficiency generally diminished with increased airflow rate, and followed the order: alcohols and glycol ethers > aldehydes, ketones, and terpene hydrocarbons > aromatic and alkane hydrocarbons > halogenated aliphatic hydrocarbons. Conversion efficiencies correlated with the Henry's law constant more closely than with other physicochemical parameters. An empirical model based on the Henry's law constant and the gas-phase reaction rate with hydroxyl radical provided reasonable estimates of pseudo-first order photocatalytic reaction rates. Formaldehyde, acetaldehyde, acetone, formic acid and acetic acid were produced by the device due to incomplete mineralization of common VOCs. Formaldehyde outlet/inlet concentration ratios were in the range 1.9-7.2. Implementation of air cleaning technologies for both VOCs and particles in office buildings may improve indoor air quality, or enable indoor air quality levels to be maintained with reduced outdoor air supply and concomitant energy savings. One promising air cleaning technology is ultraviolet photocatalytic oxidation (UVPCO) air cleaning. For the prototype device evaluated here with realistic mixtures of VOCs, conversion efficiencies typically exceeded the minimum required to counteract predicted VOC concentration increases from a 50% reduction in ventilation. However, the device resulted in the net generation of formaldehyde and acetaldehyde from the partial oxidation of ubiquitous VOCs. Further development of the technology is needed to eliminate these hazardous air pollutants before such a UVPCO device can be deployed in buildings.
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Conference listing
川西亚高山-高山土壤表层有机碳及活性组分沿海拔梯度的变化
PDF HTML阅读 XML下载 导出引用 引用提醒 川西亚高山-高山土壤表层有机碳及活性组分沿海拔梯度的变化 DOI: 10.5846/stxb201304040605 作者: 作者单位: 成都大学城乡建设学院环境工程系,四川大学环境科学与工程系,四川大学 作者简介: 通讯作者: 中图分类号: 基金项目: 国家自然科学基金(41271094, 40871124);中央高校基本科研业务费(2010SCU22007)资助项目 Changes of organic carbon and its labile fractions in topsoil with altitude in subalpine-alpine area of southwestern China Author: Affiliation: Department of Environmental Engineering, College of Urban and Rural Construction,Department of Environmental Science and Engineering,Sichuan University,Department of Environmental Science and Engineering,Sichuan University Fund Project: 摘要 | 图/表 | 访问统计 | 参考文献 | 相似文献 | 引证文献 | 资源附件 | 文章评论 摘要:青藏高原东缘亚高山-高山地带土壤碳被认为是我国重要的土壤碳库,作为高海拔低温生态系统,土壤碳对土壤暖化的响应可能也更加敏感。该区域亚高山森林一般分布在海拔3200 m以上,上缘接高山树线和灌丛草地,土壤有机碳含量高。海拔梯度上变化的土壤环境因子是主要土壤温度,海拔梯度上高寒土壤有机碳及活性有机碳组的分布格局,可体现海拔梯度上温度因子对土壤碳动态的影响。对沿海拔3200 m(亚高山针叶林)、3340 m(亚高山针叶林)、3540 m(亚高山针叶林)、3670 m(亚高山针叶林)、3740 m(亚高山针叶林)、3850 m(高山林线)、3940 m(高山树线)、4120 m(高山草地)的土壤表层(0-20 cm)有机碳和活性有机碳组分含量进行分析,结果表明在该海拔范围内,表层土壤总有机碳含量随着海拔的升高而增加,显示高海拔有利于土壤碳的固存;土壤活性有机碳组分中,颗粒态有机碳含量及其占总有机碳比例与海拔呈显著正相关,在海拔最高的4120 m含量和占有机碳总量比例分别达到50.81 g/kg和56.52%。在该海拔范围内海拔越高颗粒态有机碳占有机碳比例越高,显示高海拔土壤有机碳更多以土壤颗粒态碳形式贮存。微生物量碳、水溶性碳、轻组分有机碳与海拔高度没有明显的相关性,表明这些活性有机碳组分受海拔因素影响不大;易氧化有机碳含量与海拔高度显著正相关。因此,颗粒态有机碳含量及其比例可作为高海拔地带土壤活性有机碳库动态的特征指标,表征高海拔地带土壤有机碳动态与贮量受温度影响的指标。 Abstract:The alpine-subalpine area of the eastern Tibetan Plateau, as typical high-altitude low-temperature ecosystem, is one of the most important soil carbon pools in China. The soil there has high content of organic carbon due to abundant biomass of the alpine forest and shrub land distributed in the area, and is considered to be more sensitive to soil warming than that in the tropic or subtropical area. The spatial distribution pattern of soil carbon and its labile fractions with altitude could reflect the combined effects of altitudinal biological and environmental factors, particularly the temperature, on soil carbon dynamics. In this study, total organic carbon and its labile fractions including particulate organic carbon, microbial biomass carbon, light fraction of organic carbon, easily oxidized organic carbon, and water soluble organic carbon in topsoil (0-20 cm) were determined with an aim to understand changes of their characteristics with elvational gradients. The investigated altitude range was from 3200 to 4120 m that was covered by subalpine coniferous forest at 3200, 3340, 3540, 3670 and 3740 m, timberline at 3850 m, alpine tree line at 3940 m, and alpine meadows at 4120 m. The results showed that content of total organic carbon in topsoil increased significantly with altitude in the studied range, indicating that high altitude and low temperature are conducive to carbon sequestration in soil. Content of particulate organic carbon content and its ratio to total organic carbon showed significantly positive correlations with altitude, with its concentration reaching up to 50.81 g/kg and and accounting for 56.52% of total organic carbon, as measured at the highest elevation of 4120 m. Therefore, particulate organic carbon had become the major component of total organic carbon with its ratio gradually increased with altitude. On the other hand, microbial biomass carbon, water-soluble carbon, light fraction of organic carbon, as the group of less affected labile fractions, did not change significantly within the studied altitude range, while the fraction of easily-oxidized organic carbon tended to increase with altitude. To sum up, concentrations of particulate and easily-oxidized organic carbon fractions in topsoil could be used as indicators of labile organic carbon dynamics and balance in subalpine-alpine area at different altitudes. Moreover, soil warming may exacerbate the mineralization of particulate organic carbon, resulting in the decrease of the proportion of total organic carbon in soil. The elevational gradient study offered useful insights into the dynamics of high-altitude soil carbon and the differentiation of its labile fractions. It is indicated that soil carbon pool at high altitude could become a new carbon source under future warming scenarios. 参考文献 相似文献 引证文献
Read moreTHE MAXIMAL COVERING LOCATION PROBLEM
THE MAXIMAL COVERING LOCATION PROBLEM
Authors
Click to increase image sizeClick to decrease image size Additional informationNotes on contributorsCharles W. BagnalCharles W. Bagnal Jr. (BS, nuclear engineering, Georgia Institute of Technology, 1980) is a consulting engineer at GRP Consulting, Inc., currently engaged in reactor physics methods development and nuclear engineering support services. He has been involved in nuclear reactor design analysis and software development for six years. His experience includes advanced light water reactor (LWR) and heavy water reactor designs, including extended burnup fuel cycles using gadolinia burnable poison.Gerard P. CavanaughGerard P. Cavanaugh (BS, physics, Massachusetts Institute of Technology, 1969; MS, 1970, and PhD, 1976, nuclear engineering, University of Illinois, Urbana-Champaign) worked from 1973 to 1975 in the Neutronics Physics Division at Oak Ridge National Laboratory. He is currently supervisor of radiation physics and criticality analysis at Combustion Engineering, Inc. (C-E). His primary technical interests are in the areas of radiation transport, stochastic sampling methodologies, and computer applications ranging from mainframes to personal computers.Robert P. HarrisRobert P. Harris (BS, 1974, and MS, 1975, nuclear engineering, and MS, 1984, metallurgy, Rensselaer Polytechnic Institute) has worked in the core design, safety analysis, and licensing of C-E pressurized water reactors since 1973. He is currently involved in the neutronic design of advanced burnable poisons and fuel assemblies. He consults in the areas of core fuel management, safety analysis, and startup physics testing.Regis A. MatzieRegis A. Matzie (BS, physics, U.S. Naval Academy, 1965; MS, 1971, and PhD, 1976, nuclear engineering, Stanford University) is currently the manager of analog plants in the nuclear engineering department at C-E. His current technical interests include advanced LWR designs, methods of improving fuel utilization and fuel cycle costs in current design LWRs, and alternate fuel cycles for advanced converter reactors.Laszlo B. TarkoLaszlo B. Tarko (BS, physics, University of Connecticut, 1980) is currently the lead engineer in the radiation physics group at C-E. His current technical interests include radiation transport, ex-core radiation physics, dose rates, energy deposition, and associated computer techniques.Howard OckenHoward Ocken (D. Eng., metallurgy, Yale University, 1966) is a project manager in the Nuclear Power Division of the Electric Power Research Institute. He has managed projects that addressed materials performance in nuclear core components. His current interests include materials aspects associated with reducing radiation fields, especially replacing cobalt sources and decontamination and preconditioning technology.Per Hedemann JensenPer Hedemann Jensen (BSc, electronic engineering, Technical University, Aarhus, Denmark, 1970) is a senior health physicist at Ris0 National Laboratory, where he is head of the Section for Applied Health Physics. He has been involved in studies of radiological consequences from hypothetical core-melt accidents at nuclear power plants. His current technical interest is experimental work on internal dosimetry problems.Ian J. HastingsIan J. Hastings (PhD, metallurgical science, University of Queensland, 1968) is head of the Fuel Properties and Behaviour Group in the Fuel Materials Branch at the Chalk River Nuclear Laboratories (CRNL) of Atomic Energy of Canada Limited. His current interests are in oxide fuel behavior under irradiation, particularly release of short-lived fission products under normal and accident conditions, and in fusion ceramics.Elio MizzanElio Mizzan (BA Sc, chemical engineering, University of Toronto, 1949) is a supervisor at the Fuel Materials Branch Hot Cell Facility at CRNL. His interests have been in the areas of postirradiation examination of reactor fuels and materials, particularly postdefect handling of spent U02 fuel.Alan M. RossAlan M. Ross (BSc, general, University of London, 1953) is a supervisor at the Recycle Fuel Fabrication Laboratories of the Fuel Materials Branch of CRNL. His interests include the fabrication, nondestructive assay, properties, irradiation behavior, and neutron radiography of current and advanced thermal reactor fuels.John R. KelmJohn R. Kelm is a research technician in the Fuel Materials Branch at CRNL. His research responsibility is the operation of a special project hot cell. His current interest is U02 oxidation and stress corrosion cracking.Real J. ChenierReal J. Chenier is a research technician in the Fuel Materials Branch at CRNL. His current research responsibility is operation of the postirradiation metallographic facilities.D. H. RoseD. H. Rose is a research technologist in the Fuel Properties and Behaviour Group of the Fuel Materials Branch at CRNL. His current responsibility is fabrication and operation of instrumented in-reactor experiments.J. NovakJ. Novak (BASc, engineering science, University of Toronto, 1974) is employed in Central Nuclear Services, Nuclear Generation Division of Ontario Hydro. Since 1976 he has been engaged in the areas of nuclear fuel production and development. His current technical interests include behavior of irradiated fuel in air, U02 powder characteristics, and fuel performance improvement.Claudio RonchiClaudio Ronchi (Dr. rer. nat. phys., State University, Milan, Italy, 1965) is a research officer at the Joint Research Centre (JRC) of the Commission of European Communities. After having worked in the research and development of advanced fuels for fast breeders, he is now engaged in reactor safety studies.Jacques van de LaarJacques van de Laar (Ingenieur Fysische Techniek, H.T.S., Heerlen, The Netherlands, 1974) works in thec mathematical modeling department of JRC-Karlsruhe. He is currently involved in the development and execution of computer programs for reactor fuel performance and safety analysis.Hubert BlankHubert Blank (PhD, metal physics, Technical University of Stuttgart, 1957), head of the Physics Division of the European Institute for Transuranium Elements, Karlsruhe, has directed the “Swelling of Advanced Fuels” project at this institute since 1973.Tetsuo FukasawaTetsuo Fukasawa (BS, 1976; MS, 1978; and Dr. Eng., 1981, nuclear engineering, Tohoku University) is a researcher in the Energy Research Laboratory (ERL), Hitachi, Ltd. He has specialized in the radiochemistry of actinide elements and is currently working in the field of low-level radioactive waste treatment and spent fuel reprocessing.Koichi ChinoKoichi Chino (BS, 1972, and MS, 1974, mechanical engineering, Tokyo Institute of Technology) is a researcher at ERL. His primary areas of interest are transport phenomena and radioactive waste management.Osamu KuriyamaOsamu Kuriyama (BS, 1973, and MS, 1975, Tohoku University) is a researcher at ERL. His current interests include the radioactive waste management and chemistry of nuclear waste.Fumio KawamuraFumio Kawamura (BS, chemical engineering, Gunma University,1970; MS, 1972, and Dr. Eng., 1976, Tohoku University) is a researcher at ERL where he is involved in radioactive waste management and reactor water chemistry.Hideo YusaHideo Yusa (BS, physics, Tohoku University, 1959; Dr. Eng., Osaka University, 1969) is a chief researcher at ERL. He is responsible for the research and development of radioactive waste management systems.Bernard L. CohenBernard L. Cohen (BS, Case Institute of Technology, 1944; MS, University of Pittsburgh, 1948; DSc, Carnegie Institute of Technology, 1950) did basic research on nuclear structure using accelerators at Oak Ridge National Laboratory from 1950 to 1958 and at the University of Pittsburgh until the mid-1970s. He then turned his research efforts to the environmental impacts of energy generation, including studies of radioactive waste, health effects of radiation, risk and risk aversion, radon problems, and reactor safety. He is a professor of physics at the University of Pittsburgh and a former director (1965 to 1978) of its Scaife Nuclear Laboratories.K. TasakaK. Tasaka (PhD, nuclear engineering, University of Tokyo, 1976) first worked in breeder reactor safety and fission product characteristics research for ten years and in light water reactor (LWR) safety research for nine years at the Japan Atomic Energy Research Institute (JAERI). He is the project leader of the Rig of Safety Assessment (ROSA) program, and his current interests include analysis of thermal-hydraulic behavior during a loss-of-coolant accident (LOCA) and an anticipated transient without scram in LWRs.M. SuzukiM. Suzuki (MS, mechanical engineering, Kyoto University, 1971) has worked for the ROSA program since 1974. His current interests include safety evaluation of an LWR.Y. AnodaY. Anoda (PhD, mechanical engineering, University of Tokyo, 1979) is a research engineer for the ROSA program. His current interests include two-phase flow during a LOCA.Y. KoizumiY. Koizumi (PhD, mechanical engineering, University of Tokyo, 1977) is a research engineer for the ROSA program. His current interests include analysis of thermal-hydraulic behavior during a LOCA with emphasis on two-phase flow characteristics and heat transfer.T. YonomotoT. Yonomoto (MS, nuclear engineering, University of Osaka, 1982) is a research engineer for the ROSA program. His current interests include analysis of thermal-hydraulic behavior during a LOCA.H. KumamaruH. Kumamaru (PhD, nuclear engineering, University of Tokyo, 1980) is a research engineer for the ROSA program. His current interests include core heat transfer under LOCA conditions.H. NakamuraH. Nakamura (MS, crystalline material engineering, Nagoya University, 1981) is a research engineer for the ROSA program. His current interests include analysis of thermal-hydraulic behavior during a LOCA.M. ShibaM. Shiba (MS, mechanical engineering, Waseda University, 1959) is the general manager of Reactor Safety Laboratory 1 at JAERI. He has worked for 22 years at JAERI in the field of reactor engineering and safety and is currently responsible for simulated LOCA experiments.Genichi MatsumotoGenichi Matsumoto (BS, physics, Tokyo University, 1946) has been an associate professor of nuclear engineering at Nagoya University from 1963 to the present, where he is responsible for research and education in nuclear reactor engineering. He worked as a member of the Scientific Research Institute of Tokyo following his graduation from Tokyo University, and from 1950 to 1963, he served on the technical staff of the Research Reactor Operation Division of the Japan Atomic Energy Research Institute. His current research field includes nuclear safety, neutron radiography (especially neutron television technology), and heat pipe technology.Soichi DoiSoichi Doi (BS, 1976, and MS, 1978, nuclear engineering, Nagoya University) has been employed by the Mitsubishi Atomic Power Industry Co. since 1978, where he is responsible for the nuclear fuel engineering of light water reactors.Kohei OhkuboKohei Ohkubo (BS, mechanical engineering, Aichi Institute of Technology, 1975) is a staff member of Nagoya University.Yasushi IkedaYasushi Ikeda (BS, physics, 1963, and PhD, nuclear engineering, 1982, Nagoya University) has been an assistant staff member of Nagoya University from 1964 to the present. He has investigated thermodynamics of nuclear materials using mass spectrometric technology; neutron radiography technology is also included in his research interests.Günther HesselGünther Hessel [BS, physics, Technical University Dresden, German Democratic Republic (GDR), 1970] is a research scientist at the Central Institute of Nuclear Research (CIN), Rossendorf. He is involved in experimental investigations and developments for technical diagnosis, especially at nuclear power plants.Hans-Erich KöppenHans-Erich Köppen (BS, computer science, Technical University Dresden, 1973) is a research scientist at the CIN. His area of expertise is microprocessor hard- and software and the construction of autonomously working monitors.Peter LiewersPeter Liewers (BS, physics, University of Halle, GDR, 1957; PhD, physics, University of Leipzig, GDR, 1962) is the scientific leader of the group for reactor diagnostics at the CIN. His interests and activities have shifted from reactor physics to technical diagnostics.Peter SchumannPeter Schumann (BS, nuclear engineering, Technical University Dresden, 1963; PhD, physics, Bergakademie Freiberg, GDR, 1970) is a staff scientist at the CIN where he is concerned with digital signal processing and computer software. Formerly he worked in the field of in-core measuring techniques and neutron spectrometryFrank-Peter WeiβFrank-Peter Weiβ (BS, physics, Technical University Dresden, 1973) is a research scientist in the group for technical diagnostics at the CIN. His current interest is the application of statistical pattern recognition to technical diagnostics.
Read moreKinetics of Solvent Extraction of Copper(II) by Bis‐(2,4,4‐Trimethylpentyl)Phosphonic Acid using a Single Drop Technique
Chemical Engineering & TechnologyVolume 30, Issue 9 p. 1165-1165 ErratumFree Access Kinetics of Solvent Extraction of Copper(II) by Bis-(2,4,4-Trimethylpentyl)Phosphonic Acid using a Single Drop Technique This article corrects the following: Kinetics of Solvent Extraction of Copper(II) by Bis-(2,4,4-Trimethylpentyl)Phosphonic Acid using a Single Drop Technique R. K. Biswas, M. R. Ali, A. K. Karmakar, M. Kamruzzaman, Volume 30Issue 6Chemical Engineering & Technology pages: 774-781 First Published online: May 30, 2007 R. K. Biswas, R. K. Biswas rkbiswas53@yahoo.com Department of Applied Chemistry and Chemical Technology, Rajshahi University, Rajshahi, BangladeshSearch for more papers by this authorM. R. Ali, M. R. Ali Department of Applied Chemistry and Chemical Technology, Rajshahi University, Rajshahi, BangladeshSearch for more papers by this authorA. K. Karmakar, A. K. Karmakar Department of Applied Chemistry and Chemical Technology, Rajshahi University, Rajshahi, BangladeshSearch for more papers by this authorM. Kamruzzaman, M. Kamruzzaman Department of Applied Chemistry and Chemical Technology, Rajshahi University, Rajshahi, BangladeshSearch for more papers by this author R. K. Biswas, R. K. Biswas rkbiswas53@yahoo.com Department of Applied Chemistry and Chemical Technology, Rajshahi University, Rajshahi, BangladeshSearch for more papers by this authorM. R. Ali, M. R. Ali Department of Applied Chemistry and Chemical Technology, Rajshahi University, Rajshahi, BangladeshSearch for more papers by this authorA. K. Karmakar, A. K. Karmakar Department of Applied Chemistry and Chemical Technology, Rajshahi University, Rajshahi, BangladeshSearch for more papers by this authorM. Kamruzzaman, M. Kamruzzaman Department of Applied Chemistry and Chemical Technology, Rajshahi University, Rajshahi, BangladeshSearch for more papers by this author First published: 27 August 2007 https://doi.org/10.1002/ceat.200790043Citations: 1AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinked InRedditWechat No abstract is available for this article.Citing Literature Volume30, Issue9September, 2007Pages 1165-1165 RelatedInformation
Read moreOn Structural Problems of Spherical Anisotropy
StrainVolume 38, Issue 2 p. 75-77 On Structural Problems of Spherical Anisotropy P. A. A. Laura, P. A. A. Laura Department of Engineering, Institute of Applied Mechanics, Universidad Nacional del Sur, 8000 – Bahía Blanca, ArgentinaSearch for more papers by this authorR. H. Gutierrez, R. H. Gutierrez Department of Engineering, Institute of Applied Mechanics, Universidad Nacional del Sur, 8000 – Bahía Blanca, ArgentinaSearch for more papers by this authorC. A. Rossit, C. A. Rossit Department of Engineering, Institute of Applied Mechanics, Universidad Nacional del Sur, 8000 – Bahía Blanca, ArgentinaSearch for more papers by this author P. A. A. Laura, P. A. A. Laura Department of Engineering, Institute of Applied Mechanics, Universidad Nacional del Sur, 8000 – Bahía Blanca, ArgentinaSearch for more papers by this authorR. H. Gutierrez, R. H. Gutierrez Department of Engineering, Institute of Applied Mechanics, Universidad Nacional del Sur, 8000 – Bahía Blanca, ArgentinaSearch for more papers by this authorC. A. Rossit, C. A. Rossit Department of Engineering, Institute of Applied Mechanics, Universidad Nacional del Sur, 8000 – Bahía Blanca, ArgentinaSearch for more papers by this author First published: 19 July 2002 https://doi.org/10.1046/j.0039-2103.2002.00011.xRead the full textAboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinkedInRedditWechat Volume38, Issue2May 2002Pages 75-77 RelatedInformation
Read moreElectrical breakdown in semiconductors
physica status solidi (a)Volume 8, Issue 2 p. 335-374 Review Article Electrical breakdown in semiconductors Sudha Mahadevan, Sudha Mahadevan Departments of Physics and High Voltage Engineering, Indian Institute of Science, BangaloreSearch for more papers by this authorS. M. Hardas, S. M. Hardas Departments of Physics and High Voltage Engineering, Indian Institute of Science, BangaloreSearch for more papers by this authorG. Suryan, G. Suryan Departments of Physics and High Voltage Engineering, Indian Institute of Science, BangaloreSearch for more papers by this author Sudha Mahadevan, Sudha Mahadevan Departments of Physics and High Voltage Engineering, Indian Institute of Science, BangaloreSearch for more papers by this authorS. M. Hardas, S. M. Hardas Departments of Physics and High Voltage Engineering, Indian Institute of Science, BangaloreSearch for more papers by this authorG. Suryan, G. Suryan Departments of Physics and High Voltage Engineering, Indian Institute of Science, BangaloreSearch for more papers by this author First published: 16 December 1971 https://doi.org/10.1002/pssa.2210080202Citations: 38AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinkedInRedditWechat Citing Literature Volume8, Issue216 December 1971Pages 335-374 RelatedInformation
Read moreChemical comminution of coal
AIChE JournalVolume 33, Issue 2 p. 319-321 R & D Note Chemical comminution of coal A. H. Mamaghani, A. H. Mamaghani Center for Particulate Materials Processing Sciences, Department of Chemical and Materials Engineering, University of Iowa Iowa City, IA 52242Search for more papers by this authorJ. K. Beddow, J. K. Beddow Center for Particulate Materials Processing Sciences, Department of Chemical and Materials Engineering, University of Iowa Iowa City, IA 52242Search for more papers by this authorA. F. Vetter, A. F. Vetter Center for Particulate Materials Processing Sciences, Department of Chemical and Materials Engineering, University of Iowa Iowa City, IA 52242Search for more papers by this author A. H. Mamaghani, A. H. Mamaghani Center for Particulate Materials Processing Sciences, Department of Chemical and Materials Engineering, University of Iowa Iowa City, IA 52242Search for more papers by this authorJ. K. Beddow, J. K. Beddow Center for Particulate Materials Processing Sciences, Department of Chemical and Materials Engineering, University of Iowa Iowa City, IA 52242Search for more papers by this authorA. F. Vetter, A. F. Vetter Center for Particulate Materials Processing Sciences, Department of Chemical and Materials Engineering, University of Iowa Iowa City, IA 52242Search for more papers by this author First published: February 1987 https://doi.org/10.1002/aic.690330221Citations: 2AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinkedInRedditWechat Citing Literature Volume33, Issue2February 1987Pages 319-321 RelatedInformation
Read moreNonporous magnetic supports for proteases, cell-lytic enzymes, and ribonuclease: limits of reactant size.
Biotechnology and BioengineeringVolume 21, Issue 12 p. 2359-2363 Communications to the EditorFree Access Nonporous magnetic supports for proteases, cell-lytic enzymes, and ribonuclease: Limits of reactant size P. J. Halling, P. J. Halling Department of Chemical and Biochemical Engineering, University College London, Torrington Place, London, WC1E 7JE, EnglandSearch for more papers by this authorJ. A. Asenjo, J. A. Asenjo Department of Chemical and Biochemical Engineering, University College London, Torrington Place, London, WC1E 7JE, EnglandSearch for more papers by this authorP. Dunnill, P. Dunnill Department of Chemical and Biochemical Engineering, University College London, Torrington Place, London, WC1E 7JE, EnglandSearch for more papers by this author P. J. Halling, P. J. Halling Department of Chemical and Biochemical Engineering, University College London, Torrington Place, London, WC1E 7JE, EnglandSearch for more papers by this authorJ. A. Asenjo, J. A. Asenjo Department of Chemical and Biochemical Engineering, University College London, Torrington Place, London, WC1E 7JE, EnglandSearch for more papers by this authorP. Dunnill, P. Dunnill Department of Chemical and Biochemical Engineering, University College London, Torrington Place, London, WC1E 7JE, EnglandSearch for more papers by this author First published: December 1979 https://doi.org/10.1002/bit.260211217Citations: 14AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinked InRedditWechat Citing Literature Volume21, Issue12December 1979Pages 2359-2363 ReferencesRelatedInformation
Read moreOn the Effective Electron Mass in Superlattices of III–V Semiconductors in the Presence of a Quantizing Magnetic Field
physica status solidi (b)Volume 154, Issue 2 p. K121-K126 Short Note On the Effective Electron Mass in Superlattices of III–V Semiconductors in the Presence of a Quantizing Magnetic Field K. P. Ghatak, K. P. Ghatak Department of Electronics and Telecommunication Engineering, Faculty of Engineering and Technology, University of Jadavpur, Calcutta Search for more papers by this authorB. Mitra, B. Mitra Department of Electronics and Telecommunication Engineering, Faculty of Engineering and Technology, University of Jadavpur, Calcutta Office of the Controller of Examinations, University of Jadavpur, Calcutta 700032, India.Search for more papers by this authorA. Ghoshal, A. Ghoshal Department of Electronics and Telecommunication Engineering, Faculty of Engineering and Technology, University of Jadavpur, Calcutta Search for more papers by this author K. P. Ghatak, K. P. Ghatak Department of Electronics and Telecommunication Engineering, Faculty of Engineering and Technology, University of Jadavpur, Calcutta Search for more papers by this authorB. Mitra, B. Mitra Department of Electronics and Telecommunication Engineering, Faculty of Engineering and Technology, University of Jadavpur, Calcutta Office of the Controller of Examinations, University of Jadavpur, Calcutta 700032, India.Search for more papers by this authorA. Ghoshal, A. Ghoshal Department of Electronics and Telecommunication Engineering, Faculty of Engineering and Technology, University of Jadavpur, Calcutta Search for more papers by this author First published: 1 August 1989 https://doi.org/10.1002/pssb.2221540247Citations: 20 Calcutta 700009, India. AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinked InRedditWechat Citing Literature Volume154, Issue21 August 1989Pages K121-K126 RelatedInformation
Read moreStretching a Surface in a Rotating Power‐Law Fluid
ZAMM - Journal of Applied Mathematics and Mechanics / Zeitschrift für Angewandte Mathematik und MechanikVolume 75, Issue 12 p. 876-878 Short Communications Stretching a Surface in a Rotating Power-Law Fluid R. S. R. Gorla, R. S. R. Gorla Prof. Dr. R. S. R. GORLA and V. DAKAPPAGARI, Department of Mechanical Engineering, Cleveland State University, Cleveland, Ohio 44115, U.S.A.; Prof. Dr. I. POP, Faculty of Mathematics, University of Cluj, R-3400 Cluj, CP 253, RomaniaSearch for more papers by this authorV. Dakappagari, V. Dakappagari Prof. Dr. R. S. R. GORLA and V. DAKAPPAGARI, Department of Mechanical Engineering, Cleveland State University, Cleveland, Ohio 44115, U.S.A.; Prof. Dr. I. POP, Faculty of Mathematics, University of Cluj, R-3400 Cluj, CP 253, RomaniaSearch for more papers by this authorI. Pop, I. Pop Prof. Dr. R. S. R. GORLA and V. DAKAPPAGARI, Department of Mechanical Engineering, Cleveland State University, Cleveland, Ohio 44115, U.S.A.; Prof. Dr. I. POP, Faculty of Mathematics, University of Cluj, R-3400 Cluj, CP 253, RomaniaSearch for more papers by this author R. S. R. Gorla, R. S. R. Gorla Prof. Dr. R. S. R. GORLA and V. DAKAPPAGARI, Department of Mechanical Engineering, Cleveland State University, Cleveland, Ohio 44115, U.S.A.; Prof. Dr. I. POP, Faculty of Mathematics, University of Cluj, R-3400 Cluj, CP 253, RomaniaSearch for more papers by this authorV. Dakappagari, V. Dakappagari Prof. Dr. R. S. R. GORLA and V. DAKAPPAGARI, Department of Mechanical Engineering, Cleveland State University, Cleveland, Ohio 44115, U.S.A.; Prof. Dr. I. POP, Faculty of Mathematics, University of Cluj, R-3400 Cluj, CP 253, RomaniaSearch for more papers by this authorI. Pop, I. Pop Prof. Dr. R. S. R. GORLA and V. DAKAPPAGARI, Department of Mechanical Engineering, Cleveland State University, Cleveland, Ohio 44115, U.S.A.; Prof. Dr. I. POP, Faculty of Mathematics, University of Cluj, R-3400 Cluj, CP 253, RomaniaSearch for more papers by this author First published: 1995 https://doi.org/10.1002/zamm.19950751215Citations: 1AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Citing Literature Volume75, Issue121995Pages 876-878 RelatedInformation
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