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Performance analysis and optimization for maximum exergy efficiency of a geothermal power plant using gravitational search algorithm

机译:用引力搜索算法实现地热发电厂最大电流效率的性能分析与优化

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摘要

The limited energy resources globally, low efficiency of renewable energies, complicated and costly energy conversion systems and environmental pollution have significantly increased scholar's interest in innovative and efficient systems and their improvement studies. Therefore, it is necessary to increase the efficiency of power generation systems used in geothermal sources of medium or low enthalpy. This study aims to improve the thermodynamic performance of an existing binary geothermal system with organic Rankine cycle and its system components while trying to comprehend the physical events/changes during these improvement processes. A model has been developed that simulates the system completely and accurately. Seventeen system parameters which were considered as crucial to maximize the exergy efficiency of the system like turbine inlet, condenser temperature and so on, are optimized using a gravitational search algorithm. The results of the study show that the exergy efficiency of the system is 14% and thus it can be maximized to 31% with optimization. During the optimization process, the pressure of work fluid on the evaporator line is increased and thus 2.1 MW more power is produced compared to normal power production. The condenser, with the highest exergy destruction in the system, has performance improvements of 75%. As a result, with the optimization process, a more compatible operating strategy between system components is ensured. This will allow the system and its components to run for longer and without failures.
机译:全球的能源资源有限,可再生能源的低效率,复杂且昂贵的能源转换系统和环境污染大大增加了学者对创新和高效的系统的兴趣及其改进研究。因此,有必要提高中药源的发电系统的效率。本研究旨在提高现有二元地热系统的热力学性能,在试图在这些改进过程中理解物理事件/变化的同时具有有机朗肯循环及其系统组件。已经开发了一种模型,可以完全准确地模拟系统。使用引力搜索算法优化了十七个系统参数,这些参数被认为是最大限度地以最大限度地提高系统等系统等涡轮机入口,冷凝器温度等。研究结果表明,该系统的漏极效率为14%,因此可以最大限度地达到31%。在优化过程中,蒸发器管线上的工作流体的压力增加,因此与正常的电力产生相比,产生的功率更多2.1 MW。在系统中具有最高的毁灭破坏的冷凝器,性能提高为75%。结果,通过优化过程,确保了系统组件之间更兼容的操作策略。这将允许系统及其组件运行更长且不发生故障。

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