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Technologies for utilization of industrial excess heat: Potentials for energy recovery and CO2 emission reduction

机译:利用工业余热的技术:能源回收和二氧化碳减排的潜力

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摘要

Industrial excess heat is a large untapped resource, for which there is potential for external use, whichwould create benefits for industry and society. Use of excess heat can provide a way to reduce the useof primary energy and to contribute to global CO2 mitigation. The aim of this paper is to present differentmeasures for the recovery and utilization of industrial excess heat and to investigate how the developmentof the future energy market can affect which heat utilization measure would contribute the mostto global CO2 emissions mitigation. Excess heat recovery is put into a context by applying some of theexcess heat recovery measures to the untapped excess heat potential in Gävleborg County in Sweden.Two different cases for excess heat recovery are studied: heat delivery to a district heating system andheat-driven electricity generation. To investigate the impact of excess heat recovery on global CO2 emissions,six consistent future energy market scenarios were used. Approximately 0.8 TWh/year of industrialexcess heat in Gävleborg County is not used today. The results show that with the proposed recoverymeasures approximately 91 GWh/year of district heating, or 25 GWh/year of electricity, could be suppliedfrom this heat. Electricity generation would result in reduced global CO2 emissions in all of the analyzedscenarios, while heat delivery to a DH system based on combined heat and power production frombiomass would result in increased global CO2 emissions when the CO2 emission charge is low.
机译:工业余热是一种巨大的未开发资源,对其有潜在的外部利用潜力,这将为工业和社会带来收益。使用多余的热量可以提供一种减少一次能源使用并有助于全球二氧化碳减排的方法。本文的目的是提出用于工业余热回收和利用的不同措施,并研究未来能源市场的发展如何影响哪种热利用措施将对减少全球CO2排放做出最大贡献。通过对瑞典Gävleborg县尚未开发的过剩热潜力采取一些过剩热回收措施,将过剩热回收纳入背景。研究了两种不同的过剩热回收案例:向区域供热系统的供热和热力发电。为了研究过多的热量回收对全球CO2排放的影响,使用了六种一致的未来能源市场情景。盖夫堡县大约每年不使用0.8 TWh工业余热。结果表明,采用拟议的回收措施,每年可从这种供热中提供大约91 GWh /年的区域供暖或25 GWh /年的电力。在所有分析的场景中,发电将导致全球CO2排放量减少,而当二氧化碳排放收费较低时,基于生物质热电联产向DH系统的热传递将导致全球CO2排放量增加。

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