Advanced S-CO2 Brayton Power Cycles in Nuclear and Fusion Energy

J. Syblik, L. Vesely, S. Entler, Václav Dostál, J. Štěpánek
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引用次数: 4

Abstract

Cooling system is one of the most important part of the power plants and cooling systems based on S-CO2 (Supercritical Carbon Dioxide) coolant seems nowadays perspective alternative to Helium and Rankine steam power cycles. Due to many advantages of S-CO2, these cooling systems are researched on many institutions and the results confirm that it should be successful for the future cooling systems design. One of the main objectives is comparison of the possible cooling mediums of DEMO2 (Demonstration power plant 2) with focusing on different power cycles with S-CO2. The First part of this article targets on comparison of three main coolants: steam, helium and S-CO2. The second part of this article focuses on the new software called CCOCS (Cooling Cycles Optimization Computational Software) which was developed on CTU in Prague. This software works on deeper optimization of the power cycles with various coolants and initial conditions. The third part describes advanced S-CO2 power cycles and enlarges past research, which was based on optimization of S-CO2 Brayton Simple power cycle and S-CO2 Re-compression power cycle both with recuperation and their usage in fusion and Fission energy engineering. It is possible to heighten thermodynamic efficiency of power cycle by changing the layout of the power cycle and the main objective of this paper is to compare four advanced layouts, describe the results of the optimization of these cycles and outline advantages and disadvantages of chosen optimized layouts.
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核能和核聚变能源中的先进S-CO2布雷顿动力循环
冷却系统是电厂最重要的组成部分之一,以超临界二氧化碳(S-CO2)为冷却剂的冷却系统是目前替代氦和朗肯蒸汽动力循环的理想选择。由于S-CO2的许多优点,这些冷却系统在许多机构进行了研究,结果证实了它应该是未来冷却系统设计的成功。其中一个主要目标是比较DEMO2(示范电厂2)可能的冷却介质,重点是S-CO2的不同动力循环。本文第一部分对蒸汽、氦和S-CO2三种主要冷却剂进行了比较。本文的第二部分重点介绍名为CCOCS(冷却循环优化计算软件)的新软件,该软件是由位于布拉格的CTU开发的。该软件可在各种冷却剂和初始条件下对功率循环进行更深层次的优化。第三部分介绍了先进的S-CO2动力循环,并对以往的研究进行了拓展,对S-CO2 Brayton简单动力循环和S-CO2再压缩动力循环进行了优化,并将其应用于核聚变和裂变能源工程。通过改变动力循环的布局可以提高动力循环的热力学效率,本文的主要目的是比较四种先进的布局,描述这些循环优化的结果,并概述所选择的优化布局的优缺点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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