Department of Business Administration, Business School, Al al-Bayt University, P.O.BOX 130040, Mafraq, 25113, Jordan.
Energy Department, Universidad de la Costa, Barranquilla, Colombia.
Chemosphere. 2023 Sep;336:139269. doi: 10.1016/j.chemosphere.2023.139269. Epub 2023 Jun 18.
In recent years, the interest in generating power through hybrid power generation systems has increased. In this study, a hybrid power generation system including an internal combustion engine (ICE) and a solar system based on flat plate collectors to generate electricity is investigated. To benefit from the thermal energy absorbed by solar collectors, an organic Rankine cycle (ORC) is considered. In addition to the solar energy absorbed by the collectors, the heat source of the ORC is the wasted heat through exhaust gases and the cooling system of the ICE. A two-pressure configuration for ORC is proposed for optimal heat absorption from the three available heat sources. The proposed system is installed to produce power with a capacity of 10 kW. A bi-objective function optimization process is carried out to design this system. The objective of the optimization process is to minimize the total cost rate and maximize the exergy efficiency of the system. The design variables of the present problem include the ICE rated power, the number of solar flat plate collectors (SFPC), the pressure of the high-pressure (HP) and low-pressure (LP) stage of the ORC, the degree of superheating of the HP and LP stage of the ORC, and its condenser pressure. Finally, it is observed among the design variables the most impact on total cost and exergy efficiency is related to the ICE rated power and the number of SFPCs.
近年来,通过混合发电系统产生电能的兴趣日益增加。在这项研究中,研究了一种包括内燃机 (ICE) 和基于平板集热器的太阳能系统的混合发电系统,以发电。为了利用太阳能集热器吸收的热能,考虑采用有机朗肯循环 (ORC)。除了集热器吸收的太阳能外,ORC 的热源还包括废气和 ICE 冷却系统的废热。为了从三个可用热源中最佳吸收热量,提出了用于 ORC 的双压配置。该系统被安装用于产生 10kW 的功率。进行了双目标函数优化过程来设计该系统。优化过程的目标是最小化总成本率并最大化系统的火用效率。本问题的设计变量包括 ICE 额定功率、太阳能平板集热器 (SFPC) 的数量、ORC 的高压 (HP) 和低压 (LP) 阶段的压力、HP 和 LP 阶段的过热度以及其冷凝器压力。最后,在设计变量中观察到,对总成本和火用效率影响最大的变量与 ICE 额定功率和 SFPC 的数量有关。