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Thermal analysis of multigeneration system using geothermal energy as its main power source

机译:地热能作为其主要电源的多粒系统热分析

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The study presented in this paper examines the operation of an integrated system. The study aims to present a method for utilizing geothermal energy in a way that minimizes energy waste and delivers maximum efficiency. A high-temperature geothermal well with a temperature of 300 degrees C is used as its primary source of energy. The system produces space heating, space cooling, electric power, hot water, freshwater and hydrogen as its outputs. These outputs utilize the excess energy that is obtained from the geothermal well, and by doing so, reduces waste, and increases the overall efficiency of the system. Among these outputs, freshwater and hydrogen are considered the most valuable, as water is an essential life resource and hydrogen is a prized form of energy. The novelty of this system compared to other geothermal sources is that it does not rely on any other source of input energy. It produces both freshwater, hydrogen and considerable amounts of electric power for commercial, industrial and/or residential use. Electric power is produced by two power cycles; the first one is a double flash steam cycle in the geothermal system and the second one is an organic Rankine cycle. 40% of the total electric power produced is sent to an electrolyzer to produce hydrogen gas. Freshwater is produced by single flash desalination. The system produces 22.1 MW of power as net electricity output. The system is assessed energetically and exergetically; it is found that the energy efficiency is 49.1%, while the exergy efficiency is 67.9%. Further parametric studies are carried out using Engineering Equation Solver (EES) to investigate the influence of operating conditions on the energy and exergy of the system. Moreover, major exergy destruction areas in the system are also identified. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:本文提出的研究介绍了集成系统的运行。该研究旨在提出一种利用地热能的方法,以便最大限度地减少能量浪费并提供最大效率。温度为300摄氏度的高温地热孔作为其主要能量来源。该系统生产空间加热,空间冷却,电力,热水,淡水和氢气作为输出。这些输出利用从地热井获得的过量能量,并通过这样做,减少浪费,并提高系统的整体效率。在这些产出中,淡水和氢被认为是最有价值的,因为水是必需的寿命资源,氢是一种珍贵的能量形式。与其他地热源相比该系统的新颖性是它不依赖于任何其他输入能源来源。它为商业,工业和/或住宅使用产生淡水,氢和相当大量的电力。电力由两个功率循环产生;第一个是地热系统中的双闪蒸循环,第二个是有机朗肯循环。产生的总电力的40%被送到电解槽以产生氢气。淡水是通过单次闪蒸脱盐产生的。该系统产生22.1 MW的电力作为净电力输出。该系统在高大和前进地评估;发现能源效率为49.1%,而低级效率为67.9%。使用工程方程求解器(EES)进行进一步的参数研究来研究操作条件对系统能量和漏极的影响。此外,还确定了系统中的主要漏洞破坏区域。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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