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System Modeling and Validation of a Thermoelectric Fluidic Power Source: Proton Exchange Membrane Fuel Cell and Thermoelectric Generator (PEMFC-TEG)

机译:热电流体动力源的系统建模和验证:质子交换膜燃料电池和热电发生器(PEMFC-TEG)

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摘要

To facilitate the co-design and co-optimization of fluid or combustion systems and thermoelectric devices, a three-dimensional (3D) thermoelectric generator (TEG) model has been proposed and implemented in a computational fluid dynamics (CFD) simulation environment. The model includes all temperature-dependent characteristics of the materials and nonlinear fluid–thermal– electric multiphysics coupled effects. In this paper, the device-level model is first extended to the module level by taking a general geometry, identifying regions such as positive and negative thermoelements, and assigning properties to them. The system-level model is then demonstrated by coupling the module-level model with a fluidic–thermal system model in a single CFD simulator to predict the generation performance based on the thermal equilibrium that is achieved. The linked models are validated experimentally at the system level using data from three real thermoelectric modules installed on the surface of an exhaust pipe-like rig, where the temperature profile as well as the electricity generated can be measured and compared with the simulation results. The rig is intended not only to verify the proposed system model but also to mimic a practical exhaust recovery apparatus for a proton exchange membrane fuel cell (PEMFC). Based on the data obtained from the system-level test rig, a novel low-temperature low-cost application for auxiliary electric power appliances based on the waste heat of the PEMFC can be envisaged. Within the common simulator, it is shown that the thermoelectric model can be connected to various continuum-domain CFD models of the fuel cell itself, thus enabling further possibilities to optimize system efficiency and performance.
机译:为了促进流体或燃烧系统与热电设备的共同设计和共同优化,已提出了三维(3D)热电发生器(TEG)模型,并在计算流体动力学(CFD)模拟环境中实现了该模型。该模型包括材料的所有与温度相关的特性以及非线性的流体-热-电多物理场耦合效应。在本文中,设备级模型首先通过采用通用几何形状,识别正负热元件等区域并为其分配属性来扩展到模块级。然后,通过在单个CFD仿真器中将模块级模型与流体-热系统模型耦合来演示系统级模型,以基于所达到的热平衡来预测发电性能。使用安装在排气管式钻机表面上的三个真实热电模块的数据,在系统级别上通过实验验证了链接的模型,在那里可以测量温度曲线以及所产生的电能,并将其与仿真结果进行比较。该装置不仅旨在验证所提出的系统模型,而且还旨在模仿用于质子交换膜燃料电池(PEMFC)的实用排气回收装置。基于从系统级试验台获得的数据,可以设想一种基于PEMFC余热的新型低成本辅助电器应用。在通用模拟器中,已显示出热电模型可以连接到燃料电池本身的各种连续域CFD模型,从而为优化系统效率和性能提供了进一步的可能性。

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