Parametric Modeling and Economic Analysis of a 2MWth 3-Stream sCO2 Heat Exchanger

Joshua D. Neveu, Owen M. Pryor, Stefan D. Cich, E. Stechel
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Abstract

This paper presents the design and cost optimization of a novel 2MWth 3-stream sCO2 plate-fin heat exchanger. This heat exchanger design is unique in that it uses reduced metal oxide particle-to-sCO2 heat exchanger for cost-effective energy storage applications. The design uses low velocity, laminar air as the re-oxidizing reactant to transfer the heat of the re-oxidizing reaction to a sCO2 power loop. The design of the heat exchanger is based on a 2-D, 3-fluid plate/fin heat transfer model. The model parameterizes the size, shape, and number of passages of the heat exchanger to calculate the temperature profile, pressure drop, and fluid velocities of all three fluids. Global heat exchanger parameters such as the effectiveness and total heat transferred to the sCO2 are then calculated for overall performance. Due to the value and increased use of sCO2 heat exchangers in power cycles, a cost model of the system based on the unique high temperature/high pressure operating conditions was created using quotes from reference projects and market analysis. These quoted air-to-sCO2 heat exchangers are then processed using multiple weighting factors pertinent to heat exchanger design, including heat exchanger type, maximum temperature, differential pressures, fluids, duty, and more. These factors are then used in an exponential function in order to generate a parameterized cost curve. The design and cost of the heat exchanger are then optimized using the SMPSO genetic algorithm in Python. The optimization objectives for the system are to maximize the overall system effectiveness, including an air recuperator for preheating, and to minimize unit costs. Additional constraints are added to the system for the sCO2 and air pressure drops, air velocity to reduce particle entrainment, and the length and volume of the heat exchanger.
2mw三流sCO2换热器参数化建模及经济性分析
本文介绍了一种新型2兆瓦3流sCO2板翅式换热器的设计和成本优化。这种热交换器的设计是独特的,因为它使用减少的金属氧化物颗粒到sco2热交换器,具有成本效益的储能应用。设计采用低速层流空气作为再氧化反应物,将再氧化反应的热量传递到sCO2电源回路。换热器的设计基于二维,三流体板/翅片传热模型。该模型将热交换器的尺寸、形状和通道数量参数化,以计算所有三种流体的温度分布、压降和流体速度。然后计算整体热交换器参数,例如效能和传递到sCO2的总热量。由于sCO2热交换器在电力循环中的价值和使用的增加,根据参考项目和市场分析的报价,建立了基于独特高温/高压操作条件的系统成本模型。然后使用与热交换器设计相关的多个加权因素对这些引用的空气- sco2热交换器进行处理,包括热交换器类型,最高温度,压差,流体,负载等。然后将这些因素用于指数函数,以生成参数化的成本曲线。然后使用Python中的SMPSO遗传算法对换热器的设计和成本进行优化。系统的优化目标是使整个系统的效率最大化,包括用于预热的空气回收器,并使单位成本最小化。系统中还增加了额外的限制条件,如sCO2和空气压降、减少颗粒夹带的空气速度以及热交换器的长度和体积。
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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