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020 _a3319480065
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020 _a9783319480060
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020 _z3319480057
020 _z9783319480053
_q(print)
020 _z9783319586786
035 _a(OCoLC)969640551
_z(OCoLC)969863754
_z(OCoLC)972392756
_z(OCoLC)972538227
_z(OCoLC)972854083
_z(OCoLC)974651423
_z(OCoLC)981890055
_z(OCoLC)994006170
_z(OCoLC)994071520
_z(OCoLC)994467428
_z(OCoLC)1005787888
_z(OCoLC)1012016507
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050 4 _aS494.5.S86
_bS878 2017 EB
245 0 0 _aSustainable Agriculture Reviews
_nVolume 22
_cEric Lichtfouse, editor.
264 1 _aCham
_bSpringer
_c2017
300 _a1 recurso en línea (330 páginas)
336 _aTexto
_btxt
_2rdacontent
337 _aelectrónico
_bc
_2rdamedia
338 _arecurso electrónico
_bcr
_2rdacarrier
347 _atext file
_bPDF
_2rda
490 0 _aSustainable agriculture reviews
_vvolume 22
500 _a4.6.1 Types of€Pyrolysis.
500 _aSpringerLink
_bSpringer Biomedical and Life Sciences eBooks 2017 English+International
505 0 _aChapter 1: Animal Waste: Opportunities and€Challenges; 1.1 Introduction; 1.2 Animal Waste Characterization and€Disposal; 1.3 Traditional Management Practices and€Related Problems; 1.4 Safe and€Sustainable Management of€Animal Waste; 1.4.1 Biological Stabilisation prior Land Application; 1.4.2 Energy Recovery from€Animal Waste; 1.4.3 Animal Waste Management using Insects; 1.5 Conclusion; References; Chapter 2: Soil Microorganisms Can Reduce P Loss from€Cropping Systems; Abbreviation; 2.1 Introduction.
505 8 _a2.2 Phosphorus: The€Paradox of€a€Vital Dwindling Resource and€Expanding Environmental Pollutant2.3 Phosphorus Fertilizer; 2.4 Soil Phosphorus: Amount, Forms, Measurements, and€Plant Availability; 2.5 Using Soil Microbes to€Efficiently Supply Plant P in€Agroecosystems; 2.6 The Role of€Arbuscular Mycorrhizal Fungi (AMF) in€P Utilization Efficiency by€Crops; 2.7 Linking Plant and€Soil Diversity with€Soil Fertility; 2.8 Conclusion; References; Chapter 3: Greenhouse Technology for€Agriculture Under Arid Conditions; 3.1 Introduction; 3.2 Greenhouse Microclimate; 3.2.1 Solar Radiation.
505 8 _a3.2.2 Temperature3.2.3 Relative Humidity; 3.2.4 Air Velocity; 3.3 Ventilation and€Cooling in€Greenhouses; 3.3.1 Natural Ventilation; 3.3.1.1 Effect of€Vent Configuration on€Temperature and€Relative Humidity; 3.3.1.2 Effect of€Wind Speed and€Direction on€Internal Air Temperature and€Relative Humidity; 3.3.1.3 Effect of€Crop Height on€Internal Air Temperature and€Relative Humidity; 3.3.1.4 Effect of€Insect-Proof Screens on€Internal Air Temperature and€Relative Humidity; 3.3.2 Fan-Pad Evaporative Cooling and€Ventilation; 3.4 Comparison of€Natural and€Fan-Pad Evaporative Cooling and€Ventilation.
505 8 _a3.4.1 Comparison Between€Natural and€Fan-Pad Evaporative Cooling and€Ventilation on€Temperature and€Relative Humidity3.4.2 Comparison of€Natural Ventilation and€Fan-Pad Ventilation on€Crop Growth and€Yield; 3.5 Discussion; 3.6 Conclusion; References; Chapter 4: Biochar for€Agriculture in€Pakistan; 4.1 Introduction; 4.2 Potential Feedstock in€Pakistan for€Making Biochar; 4.2.1 Municipal Solid Wastes; 4.2.2 Agricultural Organic Wastes; 4.2.2.1 Livestock; 4.2.2.2 Poultry Manure; 4.3 Chemical and€Nutrient Properties of€Biochar: Suitability for€Pakistani Soils; 4.3.1 Chemical Properties.
505 8 _a4.3.1.1 pH4.3.1.2 Cation Exchange Capacity; 4.3.1.3 Electrical Conductivity; 4.3.2 Nutrient Properties; 4.3.2.1 Nitrogen; 4.3.2.2 Phosphorus; 4.3.2.3 Potassium; 4.3.2.4 Calcium and€Magnesium; 4.3.2.5 Sulfur; 4.3.2.6 Micronutrients; 4.4 Biochar and€Trace Metals; 4.5 Biochar and€Dryland Agriculture of€Pakistan; 4.5.1 Influence of€Biochar on€Nutrient Availability and€Crop Yield in€Drylands; 4.5.2 Biochar Influence on€Water Retention Capacity in€Dryland; 4.5.3 Soil Carbon Sequestration and€Greenhouse Gases in€Dryland Calcareous Soils; 4.6 Available Technology for€Making Biochar.
520 3 _aThis book deals with a rapidly growing field aiming at producing food and energy in a sustainable way for humans and their children. It is a discipline that addresses current issues such as climate change, increasing food and fuel prices, poor-nation starvation, rich-nation obesity, water pollution, soil erosion, fertility loss, pest control, and biodiversity depletion. Novel, environmentally-friendly solutions are proposed based on integrated knowledge from sciences as diverse as agronomy, soil science, molecular biology, chemistry, toxicology, ecology, economy, and social sciences. Indeed, sustainable agriculture decipher mechanisms of processes that occur from the molecular level to the farming system to the global level at time scales ranging from seconds to centuries. For that, scientists use the system approach that involves studying components and interactions of a whole system to address scientific, economic and social issues. In that respect, sustainable agriculture is not a classical, narrow science. Instead of solving problems using the classical painkiller approach that treats only negative impacts, sustainable agriculture treats problem sources. Because most actual society issues are now intertwined, global, and fast-developing, sustainable agriculture will bring solutions to build a safer world. This book series gathers review articles that analyze current agricultural issues and knowledge, then propose alternative solutions. It will therefore help all scientists, decision-makers, professors, farmers and politicians who wish to build a safe agriculture, energy and food system for future generations.
650 7 _aAgricultura sostenible
_2embne
_0(OCoLC)fst01139712
_0
_9157302
700 1 _aLichtfouse, Eric.
_985145
856 4 0 _uhttps://go.openathens.net/redirector/universidadeuropea.es?url=http://link.springer.com/10.1007/978-3-319-48006-0
_zAcceso a este recurso digital (usuarios Universidad Europea de Madrid)
988 _aEBOOK, asignarmaterias, EBSPRINGER_2017B
998 _b02/2018
_dz
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_zSI
999 _c95246
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