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储能系统技术 储能系统 ★ 5.0

电池电动轨道车辆热管理建模与仿真及其在热储能系统容量设计中的应用

Modeling and simulation of thermal management in battery electric rail vehicles for the sizing of thermal storage systems

作者 Steffen Wieser · Lucas Naveau · Werner Kraft · Ruth Arregi Beristain · Armando Anson
期刊 Energy Conversion and Management
出版日期 2025年1月
卷/期 第 346 卷
技术分类 储能系统技术
技术标签 储能系统
相关度评分 ★★★★★ 5.0 / 5.0
关键词 Thermal car body model of battery electric rail vehicle developed and validated.
语言:

中文摘要

摘要 由于对可持续公共交通的需求不断增长,目前处于研发和运营阶段的电池电动轨道车辆数量日益增加。然而,乘客舱供暖所需的能量仍由车载电池提供,这在低温环境条件下尤其会导致车辆续航里程受限。热储能系统为降低电池供电的供暖能耗提供了创新的解决方案。因此,本文研究了电池电动轨道车辆中此类热储能系统的设计需求。基于Python开发了一个车辆热力学模型,并对电池电动车辆运行过程中的热能需求进行了仿真分析。环境、轨道、车辆以及HVAC(供暖、通风、空调)控制参数的场景与边界条件均依据现行轨道车辆相关规范与标准设定。根据DIN EN 14750规定的III气候区情景,夏季热功率需求最高达48 kW,冬季则高达92 kW。所需热储能系统的容量范围介于52 kWh至255 kWh之间。总体而言,应用该类系统可使轨道车辆的续航里程最多提升5.6%,同时增强车辆在日常运行中对各类扰动的适应能力,从而提高运营灵活性。

English Abstract

Abstract The need for sustainable public passenger transport has led to an increase in the number of battery electric rail vehicles in development and operation. Nevertheless, the energy demand for the heating of the passenger cabin is provided by the battery and leads to limited range, especially at low ambient temperatures. Thermal storage systems offer an innovative possibility to reduce energy demand for heating from the battery. Therefore, the presented paper studies the requirements for such thermal storage systems in battery electric rail vehicles. A thermal car body model is developed in Python and the thermal energy demand in battery electric vehicle operation is simulated. Scenarios and boundary conditions for environment, track, vehicle and HVAC (heating, ventilation, air conditioning) control parameters are specified based on current codes and standards for rail vehicles. The thermal power demand is up to 48 kW in summer and 92 kW in winter for the presented scenario in climate zone III according to DIN EN 14750. The required size of a thermal storage system is between 52 kWh and 255 kWh. Overall, the application of these systems leads to an increased rail vehicle range of up to 5.6 %, which also leads to greater flexibility of the vehicles as they are more resilient against disturbances in daily operation.
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SunView 深度解读

该研究对阳光电源储能及电动交通解决方案具有重要参考价值。轨道车辆热管理储能系统需求52-255kWh与我司PowerTitan储能系统容量匹配,可通过ST系列PCS实现高效能量调度。研究显示热储能可提升续航5.6%,验证了储能系统在电动交通领域的应用潜力。建议结合我司充电桩产品,开发轨道交通储能-充电一体化方案,利用iSolarCloud平台实现热管理预测性控制,优化HVAC能耗策略,拓展轨道交通储能市场。