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Working Fluid Selection and Electrical Performance Optimisation of a Domestic Solar-ORC Combined Heat and Power System for Year-Round Operation in the UK

机译:国内太阳能ORC热电联产系统工作流体选择和电气性能优化在英国全年运行

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摘要

In this paper, we examine the electrical power-generation potential of a domestic-scale solar combined heating and power (S-CHP) system featuring an organic Rankine cycle (ORC) engine and a 15-m2 solar-thermal collector array. The system is simulated with a range of organic working fluids and its performance is optimised for operation in the UK climate. The findings are applicable to similar geographical locations with significant cloud coverage, a low solar resource and limited installation areas. A key feature of the system’s design is the implementation of fixed fluid flow-rates during operation in order to avoid penalties in the performance of components suffered at part-load. Steady operation under varying solar irradiance conditions is provided by way of a working-fluid buffer vessel at the evaporator outlet, which is maintained at the evaporation temperature and pressure of the ORC. By incorporating a two-stage solar collector/evaporator configuration, a maximum net annual electrical work output of 1070 kWh yr−1 (continuous average power of 122 W) and a solar-to-electrical efficiency of 6.3% is reported with HFC-245ca as the working fluid at an optimal evaporation temperature of 126 ◦C (corresponding to an evaporation pressure of 16.2 bar). This is equivalent to ∼ 32% of the electricity demand of a typical/average UK home, and represents an improvement of more than 50% over a recent effort by the same authors based on an earlier S-CHP system configuration and HFC-245fa as the working fluid [1]. A performance and simple cost comparison with standalone, side-by-side PV and solar-thermal heating systems is presented.
机译:在本文中,我们研究了具有有机朗肯循环(ORC)发动机和15平方米太阳能集热器阵列的家用规模太阳能联合供热(S-CHP)系统的发电潜力。该系统使用一系列有机工作流体进行了仿真,其性能针对英国气候下的运行进行了优化。研究结果适用于云量大,太阳能资源少和安装区域有限的相似地理位置。该系统设计的关键特征是在操作过程中实现固定的流体流速,以避免因部分负载而遭受性能损失。通过在蒸发器出口处的工作流体缓冲容器,可在变化的太阳辐射条件下实现稳定运行,该容器保持在ORC的蒸发温度和压力下。通过采用两级太阳能集热器/蒸发器配置,HFC-245ca的最大净年度电力工作净输出为1070 kWh yr-1(连续平均功率为122 W),太阳能电效率为6.3%作为最佳工作温度为126℃(对应于16.2 bar的蒸发压力)的工作流体。这相当于约32%的英国普通/普通家庭的用电需求,与同一作者基于较早的S-CHP系统配置和HFC-245fa所做的最新努力相比,节省了50%以上。工作液[1]。提出了与独立的并排PV和太阳热能供暖系统的性能和简单的成本比较。

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