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STUDIES OF SUPERCRITICAL CARBON DIOXIDE BRAYTON CYCLE PERFORMANCE COUPLED TO VARIOUS HEAT SOURCES

机译:超临界二氧化碳Brayton循环性能与各种热源的研究

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The concern about the global climate change and the unstable supply of fossil fuels stimulate the research of the new energy source utilization and the efficient energy system design. As the interests on the future energy sources and renovating the conventional power plants grow, an efficient and widely applicable power conversion system is required to satisfy both requirements. S-CO_2 cycle is considered as a promising candidate with the advantages of 1) relatively high efficiency in the modest temperature (450-750°C) region because of non-ideal properties near the critical point, 2) effectively reduced size of the total cycle with compact turbo-machines and heat exchangers, 3) potential for using in various applications with competitive efficiency and simple layout. The S-CO_2 cycle was originally considered as an attractive candidate for the power conversion cycle of the next generation nuclear reactors. However, due to many benefits of the S-CO_2 cycle, it is recently considered in other conventional and renewable energy system applications including fossil fuel power plant system, ship propulsion application, concentrated solar power system, fuel cell bottoming power cycle and so on. This paper will discuss about the design of S-CO_2 cycle for the various energy system applications over different temperature range. Unlike a large size power plant which usually focuses more on maximizing the cycle efficiency, a small capacity energy system is seriously concerned about the total size of the cycle. In this manner, several preliminary S-CO_2 cycle designs will be compared in terms of the efficiency and the physical size. Various layouts and components of S-CO_2 cycle are compared to find the optimum cycle for each energy systems. The in-house codes developed by the KAIST research team are used to evaluate the various cycle performances and component preliminary designs. The obtained results will be compared to the conventional power conversion systems along with its implication to other existing designs.
机译:对全球气候变化和无稳定性供应的关注促进了新能源利用的研究和高效的能源系统设计。随着对未来能源的利益和传统发电厂的增长,需要一种有效和广泛适用的电源转换系统来满足所有要求。 S-CO_2循环被认为是具有1)优点的有希望的候选者,在临界点附近的非理想性质,2)由于非理想性能,2)有效减少总数的较高温度(450-750°C)区域的高效率循环紧凑型涡轮机和热交换器,3)在各种应用中使用具有竞争力的应用和简单布局。 S-CO_2循环最初被认为是下一代核反应堆的电力转换周期的有吸引力的候选者。然而,由于S-CO_2周期的许多益处,最近在其他传统和可再生能源系统应用中考虑,包括化石燃料电厂系统,船舶推进应用,集中的太阳能系统,燃料电池底部电源循环等。本文将在不同温度范围内讨论各种能源系统应用的S-CO_2周期的设计。与大型发电厂不同,通常侧重于最大化循环效率,小容量能量系统严重关注循环的总大小。以这种方式,将在效率和物理尺寸方面进行比较几个初步的S-CO_2循环设计。比较S-CO_2周期的各种布局和组件,以找到每个能量系统的最佳循环。 KAIST研究团队开发的内部代码用于评估各种循环表演和组件初步设计。将获得的结果与传统的电力转换系统相比,以及其对其他现有设计的含义。

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