Hybrid solar thermal and heat pump systems in industry: Model based development of globally applicable design guidelines

Mateo Jesper, Felix Pag, Klaus Vajen, Ulrike Jordan
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引用次数: 2

Abstract

Solar thermal heating systems and heat pumps are key technologies for decarbonizing low temperature industrial heat demand. Fluctuating solar irradiance, limited heat source capacity or limited availability of renewable electricity often limit the potential of the single technologies. To maximize the share of renewable heat supply, the combination of both technologies is a promising option. This study takes the first steps towards filling the research gap of missing guidelines for preliminary design or feasibility studies. A simulation tool based on idealized component models is used to compare technical and economic performance for 30,240 parameter combinations, that define various global reference applications, system designs, and economic frameworks. The heat sink and source temperatures, and the energy prizes have the highest impact on the economic performance. The potential for technical optimization is small. If the fraction of both heat generators together is close to 100 %, SCOP differences between different hydraulic concepts are neglectable. The most viable option for optimizing the system's LCOH is to reduce the heat pump capacity to about the half of the annual peak load. Due to recent increases in energy prices, a complete decarbonization is economically feasible without subsidies for most of the applications studied.

工业中的混合太阳能热能和热泵系统:全球适用设计指南的基于模型的开发
太阳能供暖系统和热泵是实现低温工业用热需求脱碳的关键技术。波动的太阳辐照度、有限的热源容量或有限的可再生电力供应往往限制了单一技术的潜力。为了最大限度地提高可再生能源供热的份额,这两种技术的结合是一个很有前途的选择。这项研究迈出了填补初步设计或可行性研究指南缺失的研究空白的第一步。基于理想化组件模型的模拟工具用于比较30240个参数组合的技术和经济性能,这些参数组合定义了各种全球参考应用程序、系统设计和经济框架。散热器和热源的温度以及能源奖对经济表现的影响最大。技术优化的潜力很小。如果两个热发生器的比例接近100%,则不同水力概念之间的SCOP差异可以忽略不计。优化系统LCOH的最可行的选择是将热泵容量降低到年峰值负荷的一半左右。由于最近能源价格的上涨,在没有补贴的情况下,完全脱碳在经济上是可行的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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