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Model of an integrated solar thermochemical reactor/reticulated ceramic foam heat exchanger for gas-phase heat recovery

机译:集成式太阳能热化学反应器/网状陶瓷泡沫热交换器的气相热回收模型

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摘要

The efficiency of solar thermochemical cycles to split water and carbon dioxide depends in large part on highly effective gas phase heat recovery. To accomplish this goal, we present the design and analysis of the thermal and hydrodynamic performance of a counter-flow, tube-in-tube alumina heat exchanger operating at temperatures of 1500 ℃ and integrated with a solar thermochemical reactor for isothermal production of syngas via the ceria redox cycle. The heat exchanger tubes are filled with alumina reticulated ceramic to enhance heat transfer. The effects of foam morphology and heat exchanger size on heat transfer, pressure drop, and process solar-to-fuel efficiency are explored by coupling a computational fluid dynamic model of the heat exchanger, including radiative transport, with the overall reactor energy balance. We examine foam pore densities of 10,20 and 30 PPI, and porosities of 65-90%. The 10 PPI foam yields the best heat transfer performance and lowest pressure drop, as the larger pores enhance radiative heat transfer and decrease fluid phase drag forces. Although lower porosity is preferred to improve solid phase conduction in the RPC, the tradeoff in heat transfer and pressure drop point to use of higher porosity foam. Optimization for solar-to-fuel reactor efficiency is achieved with 85-90% porosity, 10 PPI RPC.
机译:太阳热化学循环分解水和二氧化碳的效率在很大程度上取决于高效的气相热回收。为实现此目标,我们介绍了设计和分析的反向流,管对管式氧化铝热交换器的热力学和流体力学性能,它们在1500℃的温度下运行,并与太阳能热化学反应器集成在一起,可通过以下方式等温生产合成气二氧化铈氧化还原循环。热交换器管中填充有氧化铝网状陶瓷,以增强热传递。通过将热交换器的计算流体动力学模型(包括辐射传输)与整体反应堆能量平衡相结合,探索了泡沫形态和热交换器尺寸对传热,压降和过程太阳能转化为燃料效率的影响。我们检查了10,20和30 PPI的泡沫孔隙密度,以及65-90%的孔隙率。 10 PPI泡沫具有最佳的传热性能和最低的压降,因为较大的孔可增强辐射传热并降低液相阻力。尽管较低的孔隙度是优选的,以改善RPC中的固相传导性,但在传热和压降方面的权衡却指向使用较高孔隙度的泡沫。孔隙度为85-90%,10 PPI RPC可实现太阳能到燃料反应堆效率的优化。

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