Transient Thermal Simulation of Lithium-Ion Batteries for Hybrid/Electric Vehicles

IF 3.6 4区 工程技术 Q3 ENERGY & FUELS
Nicholas Vinten, Ofelia Jianu, Alaa El-Sharkawy, Dipan Arora
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引用次数: 0

Abstract

This paper focuses on the development of a plug-in hybrid vehicle (PHEV) full-vehicle transient thermal model in thermal modelling software to predict the battery surface temperature at various locations. The full-vehicle thermal model consists of a full exhaust piping system, a high-voltage lithium-ion battery pack system, and a battery liquid coolant system. All modes of heat transfer including conduction, forced and natural convection, radiation from the exhaust system, battery cooling, and battery internal heat generation are considered in the model. The full-vehicle model is simulated under various vehicle conditions to represent four standard customer drive cycles. The simulated battery surface temperature at specified points along the battery module surfaces is compared to experimental vehicle test-cell data to provide model validation. Using the results from the transient thermal simulations, prediction of the battery thermal degradation is performed throughout the entire vehicle lifecycle. The thermal degradation is estimated using thermal goals and equivalent exposure times.

Abstract Image

混合动力/电动汽车用锂离子电池瞬态热模拟
本文针对插电式混合动力汽车(PHEV)整车瞬态热模型的开发,在热建模软件中对电池在不同位置的表面温度进行预测。整车热模型由全排气管道系统、高压锂离子电池组系统和电池液体冷却剂系统组成。该模型考虑了所有传热模式,包括传导、强制对流和自然对流、排气系统的辐射、电池冷却和电池内部产生的热量。整车模型在各种车辆条件下进行了仿真,以表示四种标准的客户驾驶循环。模拟的电池表面温度沿电池模块表面指定点与实验车辆测试电池的数据进行比较,以提供模型验证。利用暂态热模拟的结果,对整个车辆生命周期的电池热退化进行了预测。热降解是用热目标和等效暴露时间来估计的。
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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来源期刊
Energy technology
Energy technology ENERGY & FUELS-
CiteScore
7.00
自引率
5.30%
发文量
0
审稿时长
1.3 months
期刊介绍: Energy Technology provides a forum for researchers and engineers from all relevant disciplines concerned with the generation, conversion, storage, and distribution of energy. This new journal shall publish articles covering all technical aspects of energy process engineering from different perspectives, e.g., new concepts of energy generation and conversion; design, operation, control, and optimization of processes for energy generation (e.g., carbon capture) and conversion of energy carriers; improvement of existing processes; combination of single components to systems for energy generation; design of systems for energy storage; production processes of fuels, e.g., hydrogen, electricity, petroleum, biobased fuels; concepts and design of devices for energy distribution.
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