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19篇 您的检索式:作者名="Giammar"
    题名 作者 年代 出处 被引量
1Effects of flow and water chemistry on lead release rates from pipe scales显示文摘Yanjiao Xie Daniel E. Giammar 2011Water Research2011,,19:1
2Time scales for sorption - desorption and surface precipitation of uranyl on goethite 显示文摘Giammar D E Hering J G 2001Environmental Science & Technology2001,35,16:1
3Forsterite dissolution and magnesite precipitation at conditions relevant for deep saline aquifer storage and sequestration of car- bon dioxide显示文摘Daniel E Giammar Robert G Bruant Jr Catherine A Peters 2005Chemical Geology2005,217,:1
4Mass action expressions for bidentate adsorption in surface complexation modeling: theory and practice 显示文摘WANG Zimeng GIAMMAR D E 2013Environmental Science & Technology2013,47,9:1
5A prospective study of bile leaks after laparoscopic cholecystectomy for acute cholecystitis显示文摘DOMINGUEZ EP GIAMMAR D BAUMERT J 2006Am Surg2006,72,3:1
6Effects of water chemistry on arsenic removal from drinking water by electrocoagulation显示文摘Wei Wan Troy J. Pepping Tuhin Banerji Sanjeev Chaudhari Daniel E. Giammar 2010Water Research2010,,1:1
7Forsterite dis- solution and magnesite precipitation at conditions relevant for deep saline aquifer storage and sequestration of carbon dioxide 显示文摘Giammar DE Robert G Bruant JR Peters CA 2005Chemical Geology2005,217,34:1
8Time scales for sorptiondesorption and surface precipitation of uranyl on goethite 显示文摘Giammar D E Hering J G 2001Environmental Science & Technology2001,35,16:1
9Individual and competitive adsorption of arsenate and phosphate to a high-surface-area iron oxide-based sorbent显示文摘Zeng H Fisher B Giammar D E 2007Environmental Science & Technology2007,42,1:1
10Equilibrium solubility and dissolution rate of the lead phosphate chloropyromorphite显示文摘Xie L Giammar D E 2007Environmental Science & Techndogy2007,41,:1
11Effect of Mn(Ⅱ) on the structure and reactivity of biogenic uraninite显示文摘VERRAMANI H SCHOFIELD E J SHARP J O SUVOROVA E I ULRICH K U MEHTA A GIAMMAR D E BARGAR J R BERNIER-LATMANI R 2009Environmental Science and Technology2009,43,:1
12Impact of phosphate on U(VI) immobilization in the presence of goethite显示文摘SINGH A ULRICH K U GIAMMAR D E 2010Geoch Cosmoch Acta2010,74,22:1
13Time scales for sorption-desorp- tion and surface precipitation of uranyl on goethite显示文摘Giammar D E Hering J G 2001Envi- ronmental Science& Technology2001,35,16:1
14Effect of particle size and crystalline phase on lead adsorption to titanium dioxide nanoparticles显示文摘Giammar D E Maus C J Xie L 2007Environmental Engineering Science2007,24,1:1
15A prospective study of bile leaks after laparoscopic cholecystectomy for acute cholecystitis显示文摘Dominguez EP Giammar D Baumert J 2006Aim Sury2006,72,3:1
16Effects of water chemistry and flow rate on arsenate removal by adsorption to an iron oxide-based sorbent显示文摘Zeng H Arashiro M Giammar D E 2008Water Research2008,42,18:1
17Impact of galvanic corrosion on lead release from aged lead service lines显示文摘Yin Wang He Jing Vrajesh Mehta Gregory J. Welter Daniel E. Giammar 2012Water Research2012,,16:1
18A prospective study of bile leaks after laparoscopic cholecystectomy for acute cholecystitis显示文摘Dominguez EP Giammar D Baumert J 2006Am Surg2006,72,3:1
19Interplay of transport processes and interfacial chemistry affecting chromium reduction and reoxidation with iron and manganese显示文摘Hexavalent chromium(Cr(Ⅵ))is a water-soluble pollutant in soil and groundwater,the mobility,bioavailability,and toxicity of which can be controlled by transforming to less mobile and more environmentally benign Cr(Ⅲ)by ways of reduction.This review focused on recent advances in identifying the reaction pathways,kinetics,and products of iron-based techniques for Cr(Ⅵ)removal.It also examines new information regarding remobilization of Cr(Ⅲ)in the existence of complexing ligands and manganese(Mn)of different oxidation states.A range of iron-based techniques can remove Cr(Ⅵ)from water by adsorption or reduction-coprecipitation processes.However,the success of a chromium treatment or remediation strategy requires the stability of the Cr(Ⅲ)-containing solids with respect to solubilization or reoxidation in the settings they are generated.Manganese is ubiquitous in aquatic and terrestrial environments,and the redox cycling of manganese may greatly influence the fate,transport,and distribution of chromium.Coupling of redox reactions of chromium,iron,and manganese involves reaction pathways not only in the aqueous phase but also at solid-aqueous interfaces.To provide a quantitative understanding of these processes,it is essential to develop mechanistically based kinetic and transport models.Continued research should be made on iron-based treatment of Cr(Ⅵ)-contaminated water and soils and the stability of the subsequently produced Cr(Ⅲ)-containing solids at environmentally relevant conditions,which will support improved predictions of chromium's environmental fate and transport and aid in decision-making for remediation and treatment of Cr contamination.Chao Pan Daniel Giammar 2020Frontiers of Environmental Science & Engineering2020,14,5:0
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