首页> 外文期刊>Geothermics >Energy, exergy and exergoeconomic analysis of a cogeneration system for power and hydrogen production purpose based on TRR method and using low grade geothermal source
【24h】

Energy, exergy and exergoeconomic analysis of a cogeneration system for power and hydrogen production purpose based on TRR method and using low grade geothermal source

机译:基于TRR方法和低品位地热源的热电联产热电联产系统的能,能和能经济分析

获取原文
获取原文并翻译 | 示例
           

摘要

In this research, a modified organic Rankine cycle (ORC) with a regeneration is used to generate power along with hydrogen. For hydrogen production purpose, a proton exchange membrane (PEM) electrolyzer is used, taking its required heating and power from the ORC. The proposed system is driven by geothermal energy. A comprehensive thermodynamic modelling (energy and exergy analysis) and exergoeconomic analysis are carried out for the proposed cycle, using various working fluids (i.e., R245fa, R114, R600 and R236fa) in order to compare their influences on performance of the integrated system. For this purpose, Engineering Equation Solver (EES) software is used in all conducted simulations which is proven to be the most professional and commercial software in thermodynamics. In addition, a comprehensive parametric study is carried out for investigating the effects of main thermodynamic flow parameters on the energetic, exergetic and economic factors of the integrated system. The results showed that R245fa had the highest energy and exergy efficiencies of 3.511% and 67.58%, respectively. Furthermore, it is the most cost-efficient working fluid with 11.54 $/GJ and 4.921 $/GJ average costs per exergy unit for output power and hydrogen production, respectively. Regarding their operational features and cost effectiveness, the working fluids R114, R600 and R236fa ranked successively after R245fa. Also R245fa had the lowest cost associated with the exergy destruction. Moreover, the results of parametric study showed that increasing of the evaporator pressure results in increasing of the output power, hydrogen production, and energy and exergy efficiencies, whereas the costs of output power and hydrogen production decreased. In addition, increasing the geothermal fluid temperature increases the output power, hydrogen production, and also their costs, while decreases the energy and exergy efficiencies. It is also found that an increase in the turbine extracted steam pressure (mean pressure) will increase the exergy efficiency, costs of produced power and hydrogen, whereas decrease the output power, hydrogen production, and energy efficiency.
机译:在这项研究中,带有再生的改性有机朗肯循环(ORC)用于与氢一起发电。为了制氢,使用质子交换膜(PEM)电解器,并从ORC获取所需的热量和功率。拟议的系统由地热能驱动。针对拟议的循环,使用各种工作流体(即R245fa,R114,R600和R236fa)进行了全面的热力学建模(能量和火用分析)和能效经济分析,以便比较它们对集成系统性能的影响。为此,在所有进行的模拟中均使用了工程方程求解器(EES)软件,该软件被证明是热力学中最专业,最商业的软件。此外,进行了一项综合的参数研究,以研究主要热力学流量参数对集成系统的能量,能量和经济因素的影响。结果表明,R245fa具有最高的能量效率和火用效率,分别为3.511%和67.58%。此外,它是成本效益最高的工作流体,每个火用单位的输出功率和制氢平均成本分别为11.54 $ / GJ和4.921 $ / GJ。关于其工作特性和成本效益,工作液R114,R600和R236fa依次排在R245fa之后。同样,R245fa具有与火用破坏相关的最低成本。此外,参数研究的结果表明,蒸发器压力的增加导致输出功率,制氢量以及能源和火用效率的提高,而输出功率和制氢的成本却降低了。此外,增加地热流体温度会增加输出功率,制氢量以及其成本,同时会降低能源和火用效率。还发现,涡轮机抽取的蒸汽压力(平均压力)的增加将增加火用效率,产生的功率和氢的成本,而降低输出功率,氢的产生和能源效率。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号