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A computational fluid dynamics and finite element analysis design of a microtubular solid oxide fuel cell stack for fixed wing mini unmanned aerial vehicles

机译:固定翼微型无人机微管固体氧化物燃料电池堆的计算流体力学和有限元分析设计

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Computational fluid dynamics (CFD) and finite element analysis (FEA) are important modelling and simulation techniques to design and develop fuel cell stacks and their balance of plant (BoP) systems.The aim of this work is to design a microtubular solid oxide fuel cell (SOFC) stack by coupling CFD and FEA models to capture the multiphysics nature of the system. The focus is to study the distribution of fluids inside the fuel cell stack, the dissipation of heat from the fuel cell bundle, and any deformation of the fuel cells and the stack canister due to thermal stresses, which is important to address during the design process. The stack is part of an innovative all-in-one SOFC generator with an integrated BoP system to power a fixed wing mini unmanned aerial vehicle. Including the computational optimisation at an early stage of the development process is hence a prerequisite in developing a reliable and robust all-in-one SOFC generator system. The presented computational model considers the bundle of fuel cells as the heat source. This could be improved in the future by replacing the heat source with electrochemical reactions to accurately predict the influence of heat on the stack design. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:计算流体力学(CFD)和有限元分析(FEA)是设计和开发燃料电池堆及其工厂平衡(BoP)系统的重要建模和仿真技术。这项工作的目的是设计微管固体氧化物燃料电池(SOFC)堆栈通过耦合CFD和FEA模型来捕获系统的多物理性质。重点是研究燃料电池堆内部的流体分布,燃料电池束中的热量耗散以及由于热应力导致的燃料电池和燃料电池堆变形,这在设计过程中必须解决。 。该烟囱是具有集成BoP系统的创新型多功能SOFC发电机的一部分,可为固定翼微型无人机提供动力。因此,在开发过程的早期阶段就包括计算优化是开发可靠而强大的多合一SOFC发电机系统的先决条件。提出的计算模型将燃料电池束作为热源。将来可以通过用电化学反应代替热源来准确预测热量对烟囱设计的影响来改善这一点。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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