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  • 1
    Keywords: Electronic books
    Description / Table of Contents: Intro -- Foreword -- Preface -- Acknowledgements -- How to Cite the Book -- Contents -- Editors and Contributors -- Acronyms and Abbreviations -- List of Figures -- List of Plates -- List of Tables -- 1 Greenhouse Gases from Agriculture -- 1.1 Introduction -- 1.2 Impact of Ammonia on GHG Emissions -- 1.3 Aim of the Book -- References -- 2 Methodology for Measuring Greenhouse Gas Emissions from Agricultural Soils Using Non-isotopic Techniques -- 2.1 Introduction -- 2.2 Chamber-Based Methods -- 2.2.1 Advantages and Disadvantages of Closed Chamber-Based Methods -- 2.2.2 Principles and Applications of Chamber-Based Techniques for Gas Flux Measurement -- 2.2.3 Gas Exchange Processes -- 2.2.4 Chamber Types -- 2.2.5 Chamber Design -- 2.2.6 Chamber Operation, Accessories, Evacuation of Exetainers, and Gas Flux Measurement -- 2.2.7 Gas Pooling to Address the Spatial Variability of Soil GHG Fluxes -- 2.2.8 GHG Measurements in Paddy Rice System -- 2.2.9 Analysis of GHG Samples on a Gas Chromatograph (GC) -- 2.3 Methods to Quantify GHG Production in the Soil Profile -- 2.4 Standard Operating Procedure (SOP) for Gas Flux Measurement -- 2.4.1 Field Gears and Equipment Needed for GHG Sampling -- 2.4.2 Step-Wise Procedure (SOP) for GHG Measurements -- 2.4.3 Gas and Soil Sampling -- 2.4.4 Safety Measures for GHG Sampling -- 2.5 Calculation of GHG Fluxes -- 2.5.1 Overview -- 2.5.2 Calibration -- 2.5.3 Calculation of the Gas Concentration and Fluxes -- 2.5.4 Conversion from Concentration to Mole -- 2.5.5 Data Analysis -- 2.6 Analysis of GHG Samples with Optical Gas Analysers -- 2.7 Hands-On Approaches Using a CRDS Analyser -- 2.7.1 Overview of the CRDS Techniques for Determining GHG Concentrations and Soil Fluxes -- 2.7.2 Theory: Near-Infrared Absorption Spectroscopy Fundamentals -- 2.7.3 Operational Principle of Cavity Ring-Down Spectroscopy.
    Type of Medium: Online Resource
    Pages: 1 online resource (375 pages)
    ISBN: 9783030553968
    Language: English
    Note: Description based on publisher supplied metadata and other sources
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  • 2
    Keywords: Electronic books
    Type of Medium: Online Resource
    Pages: 1 online resource (780 pages)
    ISBN: 9781000398229
    Language: English
    Note: Description based on publisher supplied metadata and other sources
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  • 3
    Publication Date: 2021-07-03
    Description: Increasing temperature trends are expected to impact yields of major field crops by affecting various plant processes, such as phenology, growth, and evapotranspiration. However, future projections typically do not consider the effects of agronomic adaptation in farming practices. We use an ensemble of seven Global Gridded Crop Models to quantify the impacts and adaptation potential of field crops under increasing temperature up to 6 K, accounting for model uncertainty. We find that without adaptation, the dominant effect of temperature increase is to shorten the growing period and to reduce grain yields and production. We then test the potential of two agronomic measures to combat warming‐induced yield reduction: (i) use of cultivars with adjusted phenology to regain the reference growing period duration and (ii) conversion of rainfed systems to irrigated ones in order to alleviate the negative temperature effects that are mediated by crop evapotranspiration. We find that cultivar adaptation can fully compensate global production losses up to 2 K of temperature increase, with larger potentials in continental and temperate regions. Irrigation could also compensate production losses, but its potential is highest in arid regions, where irrigation expansion would be constrained by water scarcity. Moreover, we discuss that irrigation is not a true adaptation measure but rather an intensification strategy, as it equally increases production under any temperature level. In the tropics, even when introducing both adapted cultivars and irrigation, crop production declines already at moderate warming, making adaptation particularly challenging in these areas.
    Description: Plain Language Summary: Global warming affects yields of grain crops, which are at the base of human diets. We use crop models to quantify its impacts on global crop production and to assess how adaptation could compensate for the adverse effects. We find that up to 2 K of increased temperature production can be maintained at the current level by using new cultivars, selected to maintain current growing period length under warming. Irrigation, as another management strategy, is shown to have the potential to increase yields in dry regions if water is available. However, models do not indicate that irrigation reduces the crops' sensitivity to warming. We find large differences in the yield response to warming and adaptation across climatic regions. While continental and temperate regions may benefit from higher temperatures but also show sizable adaptation potentials, tropical and arid regions show largest temperature impacts and smaller adaptation potentials. After all, these two crop management options appear effective to balance the effects of moderate warming but cannot fully compensate impacts above 2 K of warming.
    Description: Key Points: Without agronomic adaptation, the dominant effect of temperature increase is to shorten growing periods and to reduce yields and production. Adaptation via cultivars that maintain current growing periods under warming can compensate global production losses up to 2 K. Irrigation would act as intensification rather than true adaptation, as it hardly affects the sensitivity of crop yields to warming.
    Description: Early Postdoctoral Mobility Fellowship http://dx.doi.org/10.13039/501100001711
    Description: 7th Framework Programme Early http://dx.doi.org/10.13039/100013273
    Description: MACMIT project
    Description: BioNex Project
    Description: University of Chicago Center for Robust Decision‐making on Climate and Energy Policy http://dx.doi.org/10.13039/100006445
    Keywords: 631.5 ; 333.913 ; temperature increase ; crop yield ; adaptation ; growing period ; irrigation ; crop model
    Type: article
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