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    1. Naturvetenskap och teknik
    2. Teknik och industri
    3. Miljöteknik

    Integrated Sustainable Urban Water, Energy, and Solids Management

    Achieving Triple Net-Zero Adverse Impact Goals and Resiliency of Future Communities

    AvVladimir Novotny

    Inbunden, Engelska, 2020

    1 580 kr

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    Beskrivning

    A guide for urban areas to achieve sustainability by recovering water, energy, and solidsIntegrated Sustainable Urban Water, Energy, and Solids Management presents an integrated and sustainable system of urban water, used (waste) water, and waste solids management that would save and protect water quality, recover energy and other resources from used water and waste solids including plastics, and minimize or eliminate the need for landfills. The author—a noted expert on the topic—explains how to accomplish sustainability with drainage infrastructures connected to receiving waters that protect or mimic nature and are resilient to natural and anthropogenic stresses, including extreme events.The book shows how to reduce emissions of greenhouse gasses to net zero level through water conservation, recycling, and generating blue and green energy from waste by emerging emission free technologies while simultaneously installing solar power on houses and wind power in communities. Water conservation and stormwater capture can provide good water quality for diverse applications from natural and reclaimed water to blue and green energy and other resources for use by present and future generations. This important book: Considers municipal solid waste as an ongoing source of energy and resources that will eliminate the need for landfills and can be processed along with used waterPresents an integrated approach to urban sustainabilityOffers an approach for reducing greenhouse gas emissions by communities to net zero Written for students, urban planners, managers, and waste management professionals, Integrated Sustainable Urban Water, Energy, and Solids Management is a must-have guide for achieving sustainable integrated water, energy, and resource recovery in urban areas.

    Produktinformation

    • Utgivningsdatum:2020-03-09
    • Mått:178 x 257 x 25 mm
    • Vikt:1 066 g
    • Format:Inbunden
    • Språk:Engelska
    • Antal sidor:416
    • Förlag:John Wiley & Sons Inc
    • ISBN:9781119593652

    Utforska kategorier

    • Miljöteknik inom Naturvetenskap och teknik

    Mer om författaren

    VLADIMIR NOVOTNY is Professor Emeritus at Marquette University, Milwaukee, WI and Northeastern University, Boston, MA, as well as managing partner at AquaNova LLC. He has over 50 years' experience in teaching and research in the fields of water quality and environmental management, wastewater treatment plant design, and nonpoint pollution identification and management.

    Innehållsförteckning

    • Preface xiIntegrated Sustainable Urban Water, Energy, and Solids Management 11 Sustainability Goals for Urban Water and Solid Waste Systems 31.1 Introduction to Urban Sustainability / 31.2 Historic and Current Urban Paradigms / 8Paradigms of Urbanization / 91.3 Global Climate Changes / 141.4 Need for a Paradigm Shift to Sustainability / 161.5 Population Increase, Urbanization, and the Rise of Megalopolises / 19Waste Accumulation / 23Brief Outlook Toward the Future / 231.6 What Is a Sustainable Ecocity? / 24Impact of Global Warming and Continuing Overuse of Resources / 28The UN 2015 Resolution of Sustainability / 282 the New Paradigm of Urban Water, Energy, and Resources Management 312.1 The Search for a New Paradigm / 312.2 From Linear to Hybrid Urban Metabolism / 33Circular Economy / 372.3 Urban Resilience and Adaptation to Climate Change / 40Engineering and Infrastructure Hazards and Disaster Resilience / 42Socioecological or Governance Resilience / 483 Goals and Criteria of Urban Sustainability 513.1 Review of Existing Sustainability Criteria / 51LEED Criteria for Buildings and Subdivisions / 53Triple Net-Zero (TNZ) Goals / 54Water Footprint / 56GHG (Carbon Dioxide) Net-Zero Footprint Goal / 58Water/Energy Nexus / 60Ecological Footprint / 603.2 Zero Solid Waste to Landfill Goal and Footprint / 61Landfill Gas (LFG) / 64Exporting Garbage / 68Swedish Recycling Revolution / 683.3 Importance of Recycling versus Combusting or Landfilling / 694 Origin of Hydrogen Energy, GHG Emissions, And Climatic Changes 734.1 Introduction to Energy / 73Energy Definitions and Units / 73Greenhouse Gases (GHGs) / 764.2 Hydrogen Energy / 79Blue and Green Sources of Hydrogen on Earth / 79Hydrogen as a Source of Energy / 84Vision of Hydrogen Role in the (Near) Future / 894.3 Carbon Dioxide Sequestering and Reuse / 91Stopping the Atmospheric CO2 Increase and Reversing the Trend / 91Sequestering CO2 / 93Non-CCUS Reuse of Carbon Dioxide / 96Recycling / 974.4 Solar and Wind Blue Power / 98Solar Power / 98Wind Power / 103Green and Blue Energy Storage / 1064.5 Food/Water/Energy/Climate Nexus / 1084.6 World and US Energy Outlook / 1105 Decentralized Hierarchical Urban Water, Used Water, Solids, and Energy Management Systems 1175.1 Economy of Scale Dogma Forced Centralized Management 45 Years Ago / 1175.2 Distributed Building and Cluster Level Designs and Management / 119Cluster or Neighborhood Level Water and Energy Recovery / 1215.3 Flow Separation: Gray Water Reclamation and Reuse / 126Tap a Sewer, Keep the Liquid, and Sell the Solids / 132Integrated District Water and Energy Providing Loop / 136Energy Savings and GHG Reduction by Gray Water Reuse in Clusters / 1376 Biophilic Sustainable Landscape and Low Impact Development 1416.1 Urban Nature and Biophilic Designs / 141Biophilic Designs / 1426.2 Low-Impact Development / 144Classification of LID (SUDS) Practices / 1496.3 Restoring, Daylighting, and Creating Urban Water Bodies / 165Stream Restoration / 165Waterscapes / 169Vertical Forests and Systems / 1706.4 Biophilic Urban Biomass Management and Carbon Sequestering / 171Lawns and Grass Clippings / 172Other Vegetation / 1727 Building Blocks of the Regional Integrated Resources Recovery Facility (IRRF) 1757.1 Traditional Aerobic Treatment / 175GHG Emissions from Traditional Regional Water/Resources Recovery Facilities / 1787.2 Energy-Producing Treatment / 179Anaerobic Digestion and Decomposition / 179Comparison of Aerobic and Anaerobic Treatment and Energy Recovery (Use) Processes / 182Acid Fermentation and Its Hydrogen Production / 184Anaerobic Treatment / 1887.3 Triple Net-Zero: COF Future Direction and Integrated Resource Recovery Facilities / 189Goals of the Future IRRFs and Enabling Technologies / 190Energy Recovery in a Centralized Concept with Anaerobic Treatment and Digestion as the Core Technology / 192Anaerobic Energy Production and Recovery Units and Processes / 194High Rate Anaerobic Treatment Systems / 1957.4 Co-Digestion of Sludge with Other Organic Matter / 2037.5 Conversion of Chemical and Sensible Energy in Used Water into Electricity and Heat / 2078 Integrating Gasification and Developing An Integrated “waste to Energy” Power Plant 2118.1 Traditional Waste-to-Energy Systems / 211Incineration / 212Heat Energy to Dry the Solids / 2158.2 Pyrolysis and Gasification / 216Gasification of Digested Residual Used Water Solids with MSW / 218Gasification of Municipal Solid Wastes (MSW) / 2218.3 Converting Biogas to Electricity / 232Steam Methane Reforming (SMR) to Syngas and Then to Hydrogen / 2348.4 Microbial Fuel Cells (MFCs) and Microbial Electrolysis Cells (MECs) / 235Increasing Hydrogen Energy Production / 236Microbial Fuel Cells (MFCs) / 236Modifications of MFCs to MECs for Hydrogen Production / 238Hybrid Fermentation and the MEC System / 2418.5 Hydrogen Yield Potential by Indirect Gasification / 242Sources of Energy Hydrogen / 244Maximizing Hydrogen Energy Yield by Selecting the Proper Technologies / 2518.6 Hydrogen Fuel Cells / 249Molten Carbonate Fuel Cells (MCFCs) / 250Solid Oxide Fuel Cells (SOFCs) / 253Producing Hydrogen and Oxygen by Electrolysis / 254Gas Separation / 2568.7 The IRRF Power Plant / 257Hydrogen-CO2 Separator / 260Carbon Dioxide Sequestering in an IRRF / 262Carbon Dioxide Capture and Concentration by the Molten Carbonate Fuel Cell / 2649 Nutrient Recovery 2659.1 The Need to Recover, Not Just Remove Nutrients / 2659.2 Biological Nutrient Removal and Recovery / 267Traditional Nutrient Removal Processes / 267Anammox / 268Phosphorus Biological Removal and Limited Recovery / 270MEC Can Recover Struvite / 2729.3 Unit Processes Recovering Nutrients / 273Urine Separation / 273Nutrient Separation / 274Phytoseparation of Nutrients / 275Chemical Removal and Recovery of Nutrients / 283Phosphorus Flow in the Distributed Urban System / 285Nutrients in Gasifier Ash / 28610 Building the Sustainable Integrated System 29110.1 Assembling the System / 291Concepts, Building Blocks, and Inputs / 29110.2 Upgrading Traditional Systems to Cities of the Future / 295Milwaukee (Wisconsin) Plan / 295Danish Billund BioRefinery / 296Integrating MSW / 29910.3 Visionary Mid-Twenty-First Century Regional Resource Recovery Alternative / 304The Power Plant / 30910.4 Water–Energy Nexus and Resource Recovery of Three Alternative Designs / 311Three Alternatives / 311Inputs to the Analyses / 315CO2 /Kw-h Ratio for the Alternatives / 319Discussion and Results / 32111 Closing the Quest Toward Triple Net-zero Urban Systems 33711.1 Community Self-Reliance on TMZ System for Power and Recovering Resources / 33711.2 Economic Benefits and Approximate Costs of the 2040+ Integrated Water/Energy/MSW Management / 341Cost of Green and Blue Energies Is Decreasing / 34211.3 Can It Be Done in Time to Save the Earth from Irreversible Damage? / 349Political-Economical Tools / 349The Process to Achieve the Goals / 351References 357Index 385