固体氧化物电池堆内部歧管快速流动模型的开发与校准

IF 8.1 2区 工程技术 Q1 CHEMISTRY, PHYSICAL Journal of Power Sources Pub Date : 2024-06-26 DOI:10.1016/j.jpowsour.2024.234857
Oscar Furst, Olaf Deutschmann
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引用次数: 0

摘要

由于固体氧化物电池(SOC)的商业化进程不断加快,因此越来越需要计算成本低廉、适应工程迭代性质的 SOC 模型。电堆中的流动模拟在这方面尤其具有挑战性,因为详细的计算流体力学模型对计算要求很高,而简化模型则依赖于压力损失系数和摩擦系数,这些因素在文献中并不容易获得。在本研究中,针对层流条件开发并校准了一个计算成本低廉的 SOC 烟囱内部歧管代数模型。因此,通过对 20 至 40 个单元的纳维-斯托克斯流模拟结果进行符号回归,确定了各种工作条件下的压力损失系数和达西摩擦因数。得出的入口和出口歧管的达西摩擦因数证明特别重要,因为它们与类似建模研究中假设的表达式有很大偏差。即使在校准窗口之外,也能准确预测烟囱中的流量分布,从而证明了所开发模型的预测能力。
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Development and calibration of a fast flow model for solid oxide cell stack internal manifolds

Due to the commercialization of solid oxide cells (SOC) progressing at an accelerated pace, computationally inexpensive SOC models adapted to the iterative nature of the engineering process are in increasing demand. Flow simulation in the stack is especially challenging in this regard because detailed computational fluid mechanic models are computationally demanding, while simplified models rely on pressure loss coefficients and friction factors not readily available in the literature. In this study, a computationally inexpensive algebraic model of an SOC stack internal manifold is developed and calibrated for laminar flow conditions. Thereby, pressure loss coefficients and Darcy friction factors are determined for a broad range of operating conditions through symbolic regression of Navier–Stokes flow simulation results of stacks of 20 to 40 cells. The derived Darcy friction factors for the inlet and outlet manifolds prove to be of particular importance, as they deviate strongly from the expressions assumed in similar modeling studies. The predictive power of the developed model is demonstrated by providing accurate predictions of the flow distribution in the stack, even outside of the calibration window.

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来源期刊
Journal of Power Sources
Journal of Power Sources 工程技术-电化学
CiteScore
16.40
自引率
6.50%
发文量
1249
审稿时长
36 days
期刊介绍: The Journal of Power Sources is a publication catering to researchers and technologists interested in various aspects of the science, technology, and applications of electrochemical power sources. It covers original research and reviews on primary and secondary batteries, fuel cells, supercapacitors, and photo-electrochemical cells. Topics considered include the research, development and applications of nanomaterials and novel componentry for these devices. Examples of applications of these electrochemical power sources include: • Portable electronics • Electric and Hybrid Electric Vehicles • Uninterruptible Power Supply (UPS) systems • Storage of renewable energy • Satellites and deep space probes • Boats and ships, drones and aircrafts • Wearable energy storage systems
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