储能科学与技术

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锂离子电池储能系统浸没液冷的技术经济性分析研究

林季锦1(), 刘倩1, 曲涛2, 李京鲲2, 黄东永2, 朱晓庆1, 巨星1()   

  1. 1.新型储能技术北京实验室,能源动力与机械工程学院,华北电力大学,北京,102206
    2.嘉实多(上海)管理有限公司,上海,201206
  • 收稿日期:2025-03-03 修回日期:2025-04-07
  • 通讯作者: 巨星 E-mail:120242202501@ncepu.edu.cn;scottju@ncepu.edu.cn
  • 作者简介:林季锦(2002—),男,硕士研究生,研究方向:储能系统经济性,热管理仿真,E-mail:120242202501@ncepu.edu.cn
  • 基金资助:
    国家自然科学基金项目(52476196);BP嘉实多研究项目

Technical and economic analysis of liquid immersion cooling for lithium-ion battery energy storage system

Jijin LIN1(), Qian LIU1, Tao QU2, Jingkun LI2, Dongyong HUANG2, Xiaoqing ZHU1, Xing JU1()   

  1. 1.Beijing Laboratory of New Energy Storage Technology, School of Energy Power and Mechanical Engineering, North China Electric Power University, Beijing 102206, China
    2.Castrol (Shanghai) Management Ltd, Shanghai 201206, China
  • Received:2025-03-03 Revised:2025-04-07
  • Contact: Xing JU E-mail:120242202501@ncepu.edu.cn;scottju@ncepu.edu.cn

摘要:

浸没储能系统因传热能力强、电池一致性佳等优势,逐渐受到关注。然而,对浸没式液冷的经济性,目前比较研究工作仍较为匮乏。本文基于浸没储能系统的特点开展经济性分析研究。首先,对浸没储能系统技术对比分析,讨论储能系统方案中整包浸没、整簇浸没、储能柜以及储能集装箱的主要特点、系统结构和组成部件等。随后,基于浸没储能系统的总体结构和主要部件的成本,结合储能系统发热量计算模型和经济性分析模型,对四种组合下浸没储能系统的经济性进行了计算评估。最后,本文考虑浸没热管理下电池寿命变化对储能系统的经济性的影响进行了分析,并计算了浸没储能系统的浸没液成本和结构对经济性的影响。结果表明在一定条件下,浸没储能系统的投资回收期、净现值和内部收益率等经济性指标均位于合理区间。以整包浸没的电池集装箱系统为例,其静态投资回收期为4.65年,动态投资回收期为5.81年,净现值为434.09万元,内部收益率为18.14%,浸没储能系统在经济性上可具备一定优势。

关键词: 锂离子电池储能, 浸没液冷, 经济性分析, 电池寿命

Abstract:

The immersion cooling battery energy storage system (BESS) has attracted increasing attention due to its excellent heat transfer performance and high battery consistency. However, comparative research on the economic feasibility of immersion cooling remains limited. This paper conducts an economic analysis based on the characteristics of immersion cooling BESS. The study begins with a technical comparison of immersion cooling BESS, examining key features, system structures, and components of pack immersion, cluster immersion, BESS cabinet, and BESS container. Subsequently, based on the overall system structure and the costs of main components, along with heat generation calculation models and economic analysis models, the economics of four immersion energy storage configurations are evaluated. Furthermore, the paper analyzes the impact of battery lifespan changes under immersion thermal management on system economics and calculates the influence of immersion fluid costs and structural factors. The results indicate that, under certain conditions, the economic metrics of immersion energy storage systems—such as payback time (PBT), net present value (NPV), and internal rate of return (IRR)—fall within a reasonable range. For instance, the pack-immersed battery container system exhibits a static PBT of 4.65 years, a dynamic PBT of 5.81 years, an NPV of CNY 4.3409 million, and an IRR of 18.14%, highlighting the economic advantages of immersion energy storage systems.

Key words: lithium-ion battery energy storage, immersion cooling, economic analysis, battery lifespan

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