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Steam Generator Component Sizing Model In A Combined Cycle Of Power Conversion Unit For Very High Temperature Gas-cooled Reactor

机译:高温气冷堆动力转换单元联合循环中的蒸汽发生器部件选型模型

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The U.S. Department of Energy and Idaho National Laboratory are developing a next-generation nuclear plant, very high temperature gas-cooled reactor (VHTR) to serve as a demonstration of state-of-the-art nuclear technology. The purpose of the demonstration is twofold: (a) efficient low-cost energy generation and (b) hydrogen production. While hydrogen production and advanced energy cycles are still in the early stages of development, research toward coupling VHTR, electrical generation, and hydrogen production is under way.rnThis technical note includes the coupling of a VHTR with a power conversion unit. One of the power conversion configurations in the coupled plant is a combined Brayton cycle and Rankine cycle. This configuration uses a mixture of helium and nitrogen that allows the use of modified gas-turbine technology, including the same design techniques, material, and testing facilities used for conventional air gas turbines, to be used for the VHTR electricity production application. Exhaust heat from the turbine is transferred to a heat exchanger where the transferred heat is used to generate steam for a Rankine cycle.The study was focused on the verification of the steam generator model and comparisons of results from HYSYS and RELAP5-3D. This technical note concludes that the overall results are in good agreement despite the differences in size of different flow regime lengths. The overall heat transfer behavior deviated within ~2.1%, and exit temperatures and temperature drops across the steam generator also show reasonable agreement with <5.1% difference between the two methods.
机译:美国能源部和爱达荷州国家实验室正在开发下一代核电站,超高温气冷堆(VHTR),以展示最新的核技术。示范的目的有两个:(a)高效低成本的能源生产和(b)氢气生产。尽管制氢和先进的能量循环仍处于开发的早期阶段,但有关将VHTR,发电和制氢耦合的研究仍在进行中。本技术说明包括将VHTR与功率转换单元耦合。耦合工厂中的一种功率转换配置是布雷顿循环和朗肯循环的组合。此配置使用氦气和氮气的混合物,允许使用改良的燃气轮机技术,包括用于VHTR发电应用的相同的设计技术,材料和与常规空气燃气轮机相同的测试设备。涡轮机排出的热量被传递到热交换器,在热交换器中,这些热量被用来产生朗肯循环的蒸汽。研究的重点是蒸汽发生器模型的验证以及HYSYS和RELAP5-3D的结果比较。本技术说明的结论是,尽管不同流态长度的大小不同,但总体结果还是很一致的。整体传热行为偏离了约2.1%,并且整个蒸汽发生器的出口温度和温度下降也显示出合理的一致性,两种方法之间的差异<5.1%。

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