基于太阳能发电塔的新型氦-布雷顿循环和有机朗肯循环组合的性能评估和工作流体选择,以实现可持续发电

IF 1.5 4区 工程技术 Q3 ENGINEERING, MECHANICAL
Yunis Khan, D. Apparao, Sandeep Gawande, Nagendra Singh, Yashwant Singh Bisht, Parminder Singh
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引用次数: 0

摘要

正如以前所认识到的那样,太阳能发电塔(SPT)电站的太阳能分段存在许多不可逆转因素,而且无法避免。因此,有必要开发一种新型高效发电装置,以提高太阳能发电塔发电厂的性能。本研究为 SPT 工厂开发了独特的联合循环。氦气布雷顿循环(HBC)采用工作流体氦气,余热回收采用中温有机郎肯循环(ORC)。利用工程方程求解软件,对建议的系统进行了放能和能量分析。此外,还进行了参数研究,以了解重要特性对设备性能的影响。同时,还对 ORC 的工作流体选择进行了研究。结论是,在基本 HBC 系统中采用 ORC 后,能效和网络输出分别提高了 19.11% 和 19.09%。电厂(SPT-HBC-ORC)的网络输出、放能和能效分别为 19 135 千瓦、39.74% 和 37.11%。推荐使用 R1233zd(E) 作为热力学最佳流体。与之前的研究相比,当前系统的性能优于超临界二氧化碳和基于朗肯循环的系统。此外,与之前的研究相比,目前开发的太阳能发电系统更高效、更易于配置,可产生无碳电力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Performance Assessment and Working Fluid Selection of the Novel Combined Helium Brayton Cycle and Organic Rankine Cycle Based on Solar Power Tower for Sustainable Generation

Performance Assessment and Working Fluid Selection of the Novel Combined Helium Brayton Cycle and Organic Rankine Cycle Based on Solar Power Tower for Sustainable Generation

Numerous irreversibilities exist in the solar subsection of solar power tower (SPT) plants, as was previously recognized, and cannot be prevented. Therefore, it is necessary to develop a new and efficient power generation unit to enhance the performance of the SPT plant. The unique combined cycle for SPT plant was developed in the current study. Working fluid helium was employed in the helium Brayton cycle (HBC), and the medium temperature organic Rankine cycle (ORC) was utilized for waste heat recovery. Using engineering equation solver software, the suggested system’s exergy and energy analysis was carried out. Additionally, a parametric study was performed to look into how important characteristics affected plant performance. Simultaneously, working fluid selection study has been performed for ORC. It was concluded that energy efficiency and network output were enhanced by 19.11% and 19.09%, respectively, by implementing ORC to the basic HBC system. The network output, exergy and energy efficiency of the plant (SPT-HBC-ORC) were obtained as 19,135 kW, 39.74% and 37.11%, respectively. The fluid R1233zd(E) was recommended as the thermodynamically best fluid. The current system performs better than supercritical CO2 and the Rankine cycles based systems, according to a comparison with previous studies. Also, present developed solar power system is more efficient and easier to configure compared to previous research to generate the carbon free power.

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来源期刊
CiteScore
2.90
自引率
7.70%
发文量
76
审稿时长
>12 weeks
期刊介绍: Transactions of Mechanical Engineering is to foster the growth of scientific research in all branches of mechanical engineering and its related grounds and to provide a medium by means of which the fruits of these researches may be brought to the attentionof the world’s scientific communities. The journal has the focus on the frontier topics in the theoretical, mathematical, numerical, experimental and scientific developments in mechanical engineering as well as applications of established techniques to new domains in various mechanical engineering disciplines such as: Solid Mechanics, Kinematics, Dynamics Vibration and Control, Fluids Mechanics, Thermodynamics and Heat Transfer, Energy and Environment, Computational Mechanics, Bio Micro and Nano Mechanics and Design and Materials Engineering & Manufacturing. The editors will welcome papers from all professors and researchers from universities, research centers, organizations, companies and industries from all over the world in the hope that this will advance the scientific standards of the journal and provide a channel of communication between Iranian Scholars and their colleague in other parts of the world.
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