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    1. Naturvetenskap och teknik
    2. Geovetenskap
    3. Geovetenskap

    Metal Sustainability

    Global Challenges, Consequences, and Prospects

    AvReed M. Izatt,Reed M. Izatt

    Inbunden, Engelska, 2016

    1 823 kr

    Beställningsvara. Skickas inom 5-8 vardagar. Fri frakt över 249 kr.

    Beskrivning

    The sustainable use of natural resources is an important global challenge, and improved metal sustainability is a crucial goal for the 21st century in order to conserve the supply of critical metals and mitigate the environmental and health issues resulting from unrecovered metals.Metal Sustainability: Global Challenges, Consequences and Prospects discusses important topics and challenges associated with sustainability in metal life cycles, from mining ore to beneficiation processes, to product manufacture, to recovery from end-of-life materials, to environmental and health concerns resulting from generated waste. The broad perspective presented highlights the global interdependence of the many stages of metal life cycles. Economic issues are emphasized and relevant environmental, health, political, industrial and societal issues are discussed. The importance of applying green chemistry principles to metal sustainability is emphasized.Topics covered include:• Recycling and sustainable utilization of precious and specialty metals• Formal and informal recycling from electronic and other  high-tech wastes• Global management of electronic wastes• Metal reuse and recycling in developing countries• Effects of toxic and other metal releases on the environment and human health• Effect on bacteria of toxic metal release • Selective recovery of platinum group metals and rare earth metals• Metal sustainability from a manufacturing perspective• Economic perspectives on sustainability, mineral development, and metal life cycles• Closing the Loop – Minerals Industry IssuesThe aim of this book is to improve awareness of the increasingly important role metals play in our high-tech society, the need to conserve our metal supply throughout the metal life cycle, the importance of improved metal recycling, and the effects that unhindered metal loss can have on the environment and on human health.

    Produktinformation

    • Utgivningsdatum:2016-10-07
    • Mått:173 x 246 x 31 mm
    • Vikt:960 g
    • Format:Inbunden
    • Språk:Engelska
    • Antal sidor:560
    • Förlag:John Wiley & Sons Inc
    • ISBN:9781119009108

    Utforska kategorier

    • Geovetenskap inom Naturvetenskap och teknik
    • Miljövetenskap och miljöpolitik inom Naturvetenskap och teknik

    Mer om författaren

    Dr. Reed M. Izatt, Charles E. Maw Professor of Chemistry (Emeritus), Brigham Young University, U.S.A.Reed M. Izatt received a BS degree in Chemistry from Utah State University (1951) and a PhD degree in Chemistry with an Earth Sciences minor from Pennsylvania State University (1954). After post-doctoral work at Mellon Institute of Industrial Research, he embarked on an academic career at Brigham Young University retiring as Charles E. Maw Professor of Chemistry (1993). He is theauthor or co-author of over 550 publications.Research relevant to the subject matter of this book includes extensive studies of the coordination chemistry of metals; determination of trace metal concentration levels in human tissues and environmental samples; and development of novel liquid membrane and solid phase extraction systems capable of highly selective metal separations using molecular recognition principles. The separations work was recognized by the American Chemical Society in 1996 when Reed received the National Separation Science and Technology Award. In 1988, he co-founded IBC Advanced Technologies, Inc. (IBC). For 25 years, IBC has brought clean chemistry, highly selective metal separations to a variety of industries worldwide, including ore beneficiation and precious metal recycling.Reed has edited several books, contributed numerous chapters in books, written many journal and review articles and presented plenary, invited, and regular lectures on the subject of selective metal separations at universities worldwide; regional, national, and international chemistry conferences; and government laboratories.

    Innehållsförteckning

    • List of Contributors xviiPreface xxiAcknowledgments xxiii1 Recycling and Sustainable Utilization of Precious and Specialty Metals 1Reed M. Izatt and Christian Hagelüken1.1 Introduction 11.2 How did we come to this Situation? 41.3 Magnitude of the Waste Problem and Disposal of End‐of‐Life Products 71.4 Benefits Derived by the Global Community from Effective Recycling 81.5 Urban Mining 131.6 Technologies for Metal Separations and Recovery from EOL Wastes 161.7 Conclusions 19References 212 Global Metal Reuse, and Formal and Informal Recycling from Electronic and Other High‐Tech Wastes 23Ian D. Williams2.1 Introduction 232.2 Metal Sources 242.3 E‐waste 282.4 Responses to the E‐waste Problem 292.5 Reuse of Metals from High‐tech Sources 312.6 Recycling of Metals from High‐tech Sources 362.7 Conclusions 46References 473 Global Management of Electronic Wastes: Challenges Facing Developing and Economy‐in‐Transition Countries 52Oladele Osibanjo, Innocent C. Nnorom, Gilbert U. Adie, Mary B. Ogundiran, and Adebola A. Adeyi3.1 Introduction 523.2 E‐waste Composition 563.3 E‐waste Generation 613.4 Problems with E‐waste 633.5 E‐waste Management Challenges Facing Developing Countries 653.6 Environmental and Health Impacts of E‐Waste Management in Developing Countries 713.7 Solutions for Present and Future Challenges 733.8 Conclusions 77References 784 Dynamics of Metal Reuse and Recycling in Informal Sector in Developing Countries 85Mynepalli K. C. Sridhar and Taiwo B. Hammed4.1 Introduction 854.2 Science of Metals 864.3 Technosphere, Demand and Mobility of Metals 894.4 Waste Dumpsites and Treasures of Heavy Metals 924.5 Scrap Metal and Consumer Markets 964.6 Export of Metal Scrap 994.7 E‐waste Scavenging and End‐of‐Life Management 1024.8 Scrap Metal Theft 1054.9 Conclusions 106References 1065 Metal Sustainability from Global E‐waste Management 109Jinhui Li and Qingbin Song5.1 Introduction 1095.2 E‐Waste Issues 1095.3 E‐Waste Management in China 1125.4 Recycling of Metals Found in E‐waste 1195.5 Challenges and Efforts in Metal Sustainability in China 1245.6 Summary 1275.7 Acknowledgment 130References 1316 E‐waste Recycling in China: Status Quo in 2015 134Martin Streicher‐Porte, Xinwen Chi, and Jianxin Yang6.1 Introduction 1346.2 Formal E‐waste Collection and Recycling System in China 1356.3 Informal E‐waste Collection and Recycling 1396.4 Conclusions 146References 1477 Metallurgical Recovery of Metals from Waste Electrical and Electronic Equipment (WEEE) in PRC 151Xueyi Guo, Yongzhu Zhang, and Kaihua Xu7.1 Introduction 1517.2 Major Sources of E‐Waste in China 1527.3 Strategies and Regulations for WEEE Management and Treatment 1537.4 Recycling and Processing of WEEE 1597.5 Current Issues in WEEE Treatment in China 1677.6 Conclusions 167References 1688 Metal Pollution and Metal Sustainability in China 169Xiaoyun Jiang, Shengpei Su, and Jianfei Song8.1 Introduction 1698.2 Heavy Metal Pollution in China 1708.3 Metal Sustainability in China 1858.4 Metal Sustainability in China: Future Prospects 192References 1939 Mercury Mining in China and its Environmental and Health Impacts 200Guangle Qiu, Ping Li, and Xinbin Feng9.1 Introduction 2009.2 Mercury Mines and Mining 2019.3 Mercury in the Environment 2029.4 Human Exposure and Health Risk Assessment 2119.5 Summary 216References 21610 Effects of Non‐Essential Metal Releases on the Environment and Human Health 221Peter G.C. Campbell and Jürgen Gailer10.1 Introduction 22110.2 Metal Biogeochemical Cycles 22210.3 Metal Environmental Toxicology 22610.4 Case Study: Cadmium 22910.5 Chronic Low‐Level Exposure of Human Populations to Non‐Essential Metals 232References 24311 How Bacteria are Affected by Toxic Metal Release 253Mathew L. Frankel, Sean C. Booth, and Raymond J. Turner11.1 Introduction to Bacteria in the Environment 25311.2 Bacterial Interactions with Metals 25511.3 Bacterial Response to Toxic Metals 25711.4 How Are Metals Toxic to Bacteria? 26111.5 Conclusions 265References 26512 Application of Molecular Recognition Technology to Green Chemistry: Analytical Determinations of Metals in Metallurgical, Environmental, Waste, and Radiochemical Samples 271Yoshiaki Furusho, Ismail M.M. Rahman, Hiroshi Hasegawa, and Neil E. Izatt12.1 Introduction 27112.2 Technologies Used for Green Chemistry Trace Element Analysis 27212.3 Elemental Analysis Instrumentation 27312.4 Arsenic Speciation in Food Analysis 27512.5 Metal Separation Resins and Their Application to Elemental Analyses 27512.6 Green Chemistry Analytical Applications of Metal Separation Resins 27912.7 Conclusions 288References 29013 Ionic Liquids for Sustainable Production of Actinides and Lanthanides 295Paula Berton, Steven P. Kelley, and Robin D. Rogers13.1 Introduction 29613.2 f‐Element Chemistry in Ionic Liquids 29713.3 Applications of Ionic Liquids in f‐Element Isolation 29813.4 Summary 30813.5 Acknowledgments 308References 30914 Selective Recovery of Platinum Group Metals and Rare Earth Metals from Complex Matrices Using a Green Chemistry/Molecular Recognition Technology Approach 317Steven R. Izatt, James S. McKenzie, Ronald L. Bruening, Reed M. Izatt, Neil E. Izatt, and Krzysztof E. Krakowiak14.1 Introduction 31714.2 Molecular Recognition Technology 31914.3 Strengths of Molecular Recognition Technology in Metal Separations 32014.4 Applications of Molecular Recognition Technology to Separations Involving Platinum Group Metals 32214.5 Applications of Molecular Recognition Technology to Separations Involving Rare Earth Elements 32714.6 Comparison of Opex and Capex Costs for Molecular Recognition Technology and Solvent Extraction in Separation and Recovery of Rare Earth Metals 33014.7 Conclusions 331References 33115 Refining and Recycling Technologies for Precious Metals 333Tetsuya Ueda, Satoshi  Ichiishi, Akihiko Okuda, and Koichi Matsutani15.1 Introduction 33315.2 Precious Metals Supply and Demand 33415.3 Autocatalysts (Pt, Pd, Rh) 33715.4 Electronic Components 34415.5 Catalysts for Fuel Cell Application 34915.6 Extraction and Refining Technologies for Precious Metals 35515.7 Conclusions 359References 36016 The Precious Metals Industry: Global Challenges, Responses, and Prospects 361Michael B. Mooiman, Kathryn C. Sole, and Nicholas Dinham16.1 Introduction: The Precious Metals Industry 36116.2 Current and Emerging Challenges 36516.3 Responding to the Challenges: Mitigating Approaches and New Developments 38016.4 Concluding Remarks: A Long‐Term View of the Precious Metals Industry 388References 38917 Metal Sustainability from a Manufacturing Perspective: Initiatives at ASARCO LLC Amarillo Copper Refinery 397Luis G. Navarro, Tracy Morris, Weldon Read, and Krishna Parameswaran17.1 Introduction 39717.2 General Overview of Sustainability from the Copper Industry Perspective 39817.3 A Brief History of ASARCO LLC 39917.3.1 Asarco’s Footprint in Amarillo, Texas 39917.4 How Refined Copper Is Produced 40017.5 Introduction to Physical Chemistry of Copper Electrorefining 40217.6 Electrolyte Purification 40417.8 Other Sustainable Development Efforts at ACR 41917.9 Conclusions 421References 42218 Sustainability Initiatives at ASARCO LLC: A Mining Company Perspective 424Dr. Krishna Parameswaran18.1 Introduction 42418.2 What is Sustainable Mining? 42518.3 Exploration 42718.4 Innovative Reclamation Methods 43618.5 Reclamation of San Xavier Tailings Storage Facilities and Waste Rock Deposition Areas 44118.6 Fostering Renewable Energy Projects on Disturbed Lands 44218.7 Utilization of Mining Wastes 44818.8 Conclusions 450References 45119 Recycling and Dissipation of Metals: Distribution of Elements in the Metal, Slag, and Gas Phases During Metallurgical Processing 453Kenichi Nakajima, Osamu Takeda, Takahiro Miki, Kazuyo Matsubae, and Tetsuya Nagasaka19.1 Introduction: Background, Motivation, and Objectives 45319.2 Method: Chemical Thermodynamic Analysis of the Distribution of Elements in the Smelting Process 45419.3 Element Distribution Tendencies in Recycling Metals 45619.4 Metallurgical Knowledge for Recycling: Element Radar Chart for Metallurgical Processing 463References 46520 Economic Perspectives on Sustainability, Mineral Development, and Metal Life Cycles 467Roderick G. Eggert20.1 Introduction 46720.2 The Many Faces of Sustainability 46820.3 Economic Concepts 46920.4 Implications for Mine Development 47120.5 Implications for Regional and National Mineral Development 47320.6 Implications for Metal Life Cycles, Material Efficiency, and the Circular Economy 47620.7 What to Do? 481Acknowledgments 482References 48321 Closing the Loop: Minerals Industry Issues 485William J. Rankin and Nawshad Haque21.1 Introduction 48521.2 The Waste Hierarchy 48621.3 Reducing and Eliminating Wastes 48721.4 Tools for Closing the Loop 49721.5 Closing the Loop: Barriers and Drivers 503References 505Index 508