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Towards an energy efficient chemistry. Switching from fossil to bio-based products in a life cycle perspective

机译:迈向节能化学。从生命周期的角度看从化石产品转向生物基产品

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The reduction of energy demand and greenhouse gases (GHG) emissions is a main target of the chemical industry. By implementing Best Practice Technologies (BPTs) (i.e. the most advanced technologies currently in use at industrial scale) as well as by implementing recycling and energy recovery strategies through cogeneration and process intensification, consistent energy savings and CO2 emissions reduction can be achieved in the short to medium term. Long-term additional cuts may arise from development and deployment of "game changer" technologies, that re-invent the way some large-volume chemicals are made. Although still far from commercial maturity and still facing high economic and technical hurdles, switching to the use of non-food biomass as fuel and feedstock in the chemical industry may represent a suitable option. During the transition towards a more energy efficient chemistry, the environmental performance of bio-based products need to be carefully evaluated on a case-by-case basis. In this study, an overview of energy improvement options is provided and the different patterns of bio-ethanol as fuel to generate energy or as platform chemical to generate chemical derivatives are compared as a case study within a life cycle perspective. The consequences on the environmental sustainability of the chemical industry are envisaged. (C) 2019 Elsevier Ltd. All rights reserved.
机译:减少能源需求和减少温室气体排放是化学工业的主要目标。通过实施最佳实践技术(BPT)(即目前在工业规模上使用的最先进技术),以及通过热电联产和工艺强化实施循环利用和能源回收战略,可以在短期内实现一致的节能和减少二氧化碳排放量到中期。长期的削减可能来自“改变游戏规则”技术的开发和部署,这些技术重新发明了一些大批量化学品的制造方式。尽管距离商业成熟还很远,并且仍然面临着巨大的经济和技术障碍,但在化学工业中转向使用非食品生物质作为燃料和原料可能是一个合适的选择。在向更加节能的化学过渡期间,需要根据具体情况仔细评估生物基产品的环境性能。在本研究中,提供了能源改进方案的概述,并比较了作为生命周期角度内案例研究的生物乙醇作为燃料产生能量或作为平台化学品产生化学衍生物的不同模式。设想了对化学工业的环境可持续性的影响。 (C)2019 Elsevier Ltd.保留所有权利。

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