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Time-dependent climate impact of short rotation coppice willow–based systems for electricity and heat production

机译:基于短周期矮灌木柳树的电力和热量生产系统随时间变化的气候影响

摘要

Fossil fuel use and man-made land use change has increased carbon dioxide (CO₂) levels in the atmosphere, contributing to climate impacts such as global warming. Perennial crops such as short rotation coppice (SRC) willow have received attention because of their potential to sequester carbon (C) from the atmosphere and build up soil organic carbon stocks while producing biomass which can be used to generate energy services.ududThe aim of this thesis was to assess the climate impact of bioenergy systems and develop the methodology used to evaluate these systems. The biomass from a SRC willow plantation can be used in a number of different ways to produce energy services. Specific objectives of this thesis were to investigate the energy efficiency and time-dependent climate impact of SRC willow–based bioenergy systems using different ways of converting the biomass into electricity and heat.ududLife cycle assessment (LCA) methodology was used to enable the assessment of time-dependent climate impacts using a time-distributed inventory and a time-dependent indicator, i.e. the global mean surface temperature change (∆Ts). Several different ways of generating electricity and/or heat from the biomass produced at a SRC willow plantation were compared, taking biogenic C stock changes into account.ududThe main conclusions were that SRC willow–based bioenergy systems can be truly C negative and help contribute to counteract the current trend in global warming while delivering renewable energy at the same time. The choice of energy conversion technology affects both the energy efficiency and the potential climate impact mitigation potential of the system. Biogenic C pools can have a very large influence on the climate impact in bioenergy systems. It is therefore important to take these pools into account whenever land use or management changes take place, in order to counteract global warming more effectively.
机译:化石燃料的使用和人为土地用途的变化增加了大气中的二氧化碳(CO 2)水平,导致了诸如全球变暖等气候影响。多年生农作物,例如短轮伐木(SRC)柳树,因为它们有潜力从大气中固存碳(C)并积累土壤有机碳储量,同时产生可用于产生能源服务的生物量。 ud udThe本文的目的是评估生物能源系统对气候的影响,并开发用于评估这些系统的方法。来自SRC柳树人工林的生物质可以多种不同方式用于产生能源服务。本文的具体目标是使用不同的方式将生物质转化为电能和热能,研究基于SRC柳树的生物能源系统的能源效率和随时间变化的气候影响。 ud ud生命周期评估(LCA)方法用于使用时间分布的清单和时间相关的指标(即全球平均表面温度变化(∆Ts))对时间相关的气候影响进行评估。比较了SRC柳树人工林产生的生物质产生电能和/或热量的几种不同方式,同时考虑了生物碳的库变化。 ud ud主要结论是,基于SRC柳树的生物能源系统可能确实是C负的,并且有助于抵消当前全球变暖的趋势,同时提供可再生能源。能源转换技术的选择会影响能源效率和系统潜在的气候影响缓解潜力。生物碳库对生物能源系统中的气候影响具有很大的影响。因此,重要的是,每当土地使用或管理发生变化时,都应考虑这些池,以便更有效地应对全球变暖。

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    Ericsson Niclas;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 en
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