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Design of cascade analysis for renewable and waste heat recovery in a solar thermal regeneration unit of a liquid desiccant dehumidification system

机译:液体干燥剂除湿系统太阳能热再生单元中可再生和废热回收梯级分析设计

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Liquid desiccant dehumidification (LDD) system is an emerging technology with energy-saving benefit in HVAC applications. It removes moisture from the inlet air stream and handles the latent load without overcooling and reheating. The most energy-intensive process of the LDD system, the desiccant regeneration process, can be driven by renewable solar thermal energy with a temperature lower than 100 degrees C. However, the integration of solar heat needs to consider the inconsistent availability of solar radiation and regeneration heat demand.In this study, a pinch-based Cascade Analysis (CA) approach is used to optimally size the solar thermal collectors and thermal energy storage (TES) water tanks, which are the main components of the solar thermal system. From the analysis, the overall system efficiency, minimum area of solar thermal collectors and total TES volume are 78.8%, 59.83 m(2) and 7.10 m(3), respectively, with an average daily regeneration heat demand of 213.48 kWh. The overall system installation and operating cost is approximately 14219.98 USD or 948.00 USD annually over 15 years. This work serves as a preliminary study to provide an overview of the implementation of solar thermal systems for decision-makers who intend to implement solar-based LDD systems in HVAC or drying applications. (C) 2021 Elsevier Ltd. All rights reserved.
机译:液体干燥剂Dehumidification(LDD)系统是一种新兴技术,具有HVAC应用中的节能益处。它从入口空气流中除去水分,并在没有过冷和再加热的情况下处理潜伏。 LDD系统中最能集中的过程,干燥剂再生过程,可通过低于100摄氏度的可再生太阳能热能驱动。然而,太阳能的整合需要考虑太阳辐射的不一致可用性再生热需求。本研究采用了捏合的级联分析(CA)方法,用于最佳地尺寸尺寸,是太阳能热收集器和热能储存(TES)水箱,这是太阳能热系统的主要部件。从分析中,整体系统效率,太阳能热收集器的最小面积和总TES体积分别为78.8%,59.83米(2)和7.10米(3),平均每日再生热需求为213.48千瓦时。整体系统安装和运营成本约为每年约14219.98美元或超过15年的948.00美元。这项工作是初步研究,概述了用于在HVAC或干燥应用中实施基于太阳基于LDD系统的决策者的太阳能热系统的实施。 (c)2021 elestvier有限公司保留所有权利。

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