汽车安全与节能学报 ›› 2021, Vol. 12 ›› Issue (1): 125-132.DOI: 10.3969/j.issn.1674-8484.2021.01.013
• 汽车节能与环保 • 上一篇
收稿日期:2021-03-12
出版日期:2021-03-31
发布日期:2021-04-02
通讯作者:
邹晔
作者简介:*邹晔,教授。E-mail: zouy@wxit.edu.cn。基金资助:
DING Peng(
), ZHOU Ye*(
), ZHANG Meijuan, JIANG Hao, ZHNAG Pengbo
Received:2021-03-12
Online:2021-03-31
Published:2021-04-02
Contact:
ZHOU Ye
摘要:
为了提高并联式混合动力汽车发动机和动力电池低温生存能力,探索发动机与电池冷却余热资源的利用新途径,提出了一种基于余热再利用的发动机和动力电池双向循环低温预热的新方法。建立发动机和动力电池余热数值模型,定量分析和研究余热系统的温升特点与温度分布状况,揭示了发动机与动力电池余热的传热规律,设计了基于相变材料的自动双向热控装置并进行了低温试验。结果表明:该方法实现了发动机与动力电池吸热冷却和发热加热的一体化应用,可将发动机冷却余热经热换器预热动力电池并使电池内部温度保持在29 ℃,又将动力电池冷却余热反向循环传输至发动机机体,使发动机内部冷却液温度预热至51 ℃,能够明显提高发动机和动力电池低温运行能力,节约了能量,验证了所提方法的优越性。
中图分类号:
丁鹏, 邹晔, 张美娟, 蒋豪, 张鹏博. 混合动力发动机与动力电池冷却余热双向循环预热[J]. 汽车安全与节能学报, 2021, 12(1): 125-132.
DING Peng, ZHOU Ye, ZHANG Meijuan, JIANG Hao, ZHNAG Pengbo. Bi-directional circulating preheating method based on waste heat reuse of engine and battery for hybrid electric vehicle[J]. Journal of Automotive Safety and Energy, 2021, 12(1): 125-132.
| 项目 | 规格 | 项目 | 规格 |
|---|---|---|---|
| 发动机排量 | 1.4 L | 电池容量 | 32 Ah |
| 发动机最大功率 | 110 kW | 电池电压 | 288 V |
| 发动机冷却液流率 | 80 L / min | 电池冷却液流速 | 12 L / min |
| 换热器材料密度 | 910 kg / m3 | 换热器导热系数 | 0.29 W / m.K |
| 项目 | 规格 | 项目 | 规格 |
|---|---|---|---|
| 发动机排量 | 1.4 L | 电池容量 | 32 Ah |
| 发动机最大功率 | 110 kW | 电池电压 | 288 V |
| 发动机冷却液流率 | 80 L / min | 电池冷却液流速 | 12 L / min |
| 换热器材料密度 | 910 kg / m3 | 换热器导热系数 | 0.29 W / m.K |
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