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市場調查報告書
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2126517

全球電動車電池冷卻市場:策略性洞察與預測(2026-2031年)

Global EV Battery Cooling Market - Strategic Insights and Forecasts (2026-2031)

出版日期: | 出版商: Knowledge Sourcing Intelligence | 英文 148 Pages | 商品交期: 最快1-2個工作天內

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簡介目錄

全球電動車電池冷卻市場預計將以 18.9% 的複合年成長率成長,從 2026 年的 35 億美元成長到 2031 年的 83 億美元。

全球電動車電池冷卻市場正經歷一場重大變革,其驅動力包括向電動出行模式轉移、電池組能量密度的不斷提高以及對更快充電速度日益成長的需求。這項市場演變的特點在於,人們逐漸意識到電池溫度控管已成為現代電動車的核心設計要求,直接影響續航里程、安全性、充電速度、保固成本和客戶滿意度。液冷技術、先進導熱材料和整合式溫度控管平台的融合,正在催生更有效率、更可靠、更緊湊的電池冷卻解決方案。如今,汽車製造商在評估冷卻系統時,不僅關注其熱性能,還考慮其重量、封裝效率、能耗、可靠性以及與電池管理系統的兼容性。隨著對整合式熱架構、預測控制系統以及在主要電動車製造地附近進行在地化生產的大量投資,電池冷卻已成為推動電動車普及的關鍵要素。

市場促進因素

  • 高容量電池組的日益普及是電動汽車電池冷卻市場的主要驅動力。汽車製造商不斷提升電池容量,以延長續航里程並適應更大的汽車平臺。高容量電池在充放電循環過程中會產生顯著的熱負荷,從而增加了對高效能冷卻系統的需求。溫度控管供應商正透過液冷技術、先進的冷卻液迴路以及在最大限度減少重量和空間佔用的同時提高傳熱效率的電池組設計來應對這一挑戰,從而推動電動汽車電池冷卻技術的應用持續成長。快速充電基礎設施和超快速充電能力的普及進一步加速了市場成長,因為冷卻需求也隨之增加。充電速度已成為電動車製造商之間關鍵的競爭優勢。雖然更快的充電速度可以提高車輛的可用性,但也會在電池內部產生額外的熱量。有效的冷卻系統有助於在快速充電過程中保持電池的穩定性,並減緩電池的長期劣化。這一趨勢正在推動對能夠承受反覆高功率充電循環的先進溫度控管架構的需求。消費者對更長電池保固期和更高電池耐久性的期望也在推動先進冷卻解決方案的應用。為了增強消費者信心並符合監管要求,汽車製造商正擴大提供電池延長保固服務。電池溫度仍然是影響電池壽命的最關鍵因素之一。能夠維持穩定動作溫度的冷卻系統有助於製造商管理保固風險,並長期維持電池效能。將溫度控管系統整合到整個汽車平臺可以降低系統複雜性,並提高車輛整體效率。汽車製造商正擴大採用整合式熱溫度控管架構,將電池冷卻、車廂空調、電力電子設備冷卻和熱泵功能融為一體。主要汽車生產地區電動車產能的擴張,正催生對在地化溫度控管供應鏈的需求。

市場限制因素

  • 電池平台之間複雜的整合要求增加了設計的複雜性,並延長了產品開發週期。電池組設計因製造商和車型類別而異。整個電動車價值鏈的成本壓力使得價格成為供應商選擇的關鍵因素。汽車製造商在降低電動車成本的同時,還需提高其性能和續航里程。材料和零件的供應風險可能造成生產瓶頸並增加成本。安全檢驗和認證要求延長了開發週期並增加了成本。在各種氣候條件下滿足性能要求需要額外的技術投入、測試和系統複雜性。

目錄

第1章:引言

  • 市場概覽
  • 市場的定義
  • 調查範圍
  • 市場區隔
  • 貨幣
  • 先決條件
  • 基準年及預測年調查期
  • 相關人員的主要收益

第2章:調查方法

  • 調查設計
  • 研究過程

第3章執行摘要

  • 主要發現

第4章 市場動態

  • 市場促進因素
  • 市場限制因素
  • 波特五力分析
  • 產業價值鏈分析
  • 分析師意見

第5章 全球電動車電池冷卻市場:依冷卻類型分類

  • 空冷式
  • 液冷
  • 風扇冷卻

第6章 全球電動車電池冷卻市場:依電池類型分類

  • 鉛酸電池
  • 鋰離子
  • 其他

第7章 全球電動車電池冷卻市場:依車輛類型分類

  • 電池式電動車
  • 油電混合車
  • 插電式混合動力電動車

第8章 全球電動車電池冷卻市場:按地區分類

  • 北美洲
    • 透過冷卻方式
    • 依電池類型
    • 車輛類型
    • 國家
      • 美國
      • 加拿大
      • 墨西哥
  • 南美洲
    • 透過冷卻方式
    • 依電池類型
    • 車輛類型
    • 國家
      • 巴西
      • 阿根廷
      • 其他
  • 歐洲
    • 透過冷卻方式
    • 依電池類型
    • 車輛類型
    • 國家
      • 德國
      • 英國
      • 法國
      • 西班牙
      • 其他
  • 中東和非洲
    • 透過冷卻方式
    • 依電池類型
    • 車輛類型
    • 國家
      • 沙烏地阿拉伯
      • UAE
      • 其他
  • 亞太地區
    • 透過冷卻方式
    • 依電池類型
    • 車輛類型
    • 國家
      • 中國
      • 日本
      • 韓國
      • 印度
      • 澳洲
      • 其他

第9章:競爭環境與分析

  • 主要公司及策略分析
  • 市佔率分析
  • 合併、收購、協議和合作關係
  • 競爭環境儀錶板

第10章:公司簡介

  • Boyd
  • Hanon Systems
  • MAHLE GmbH
  • Modine Manufacturing Company
  • Robert Bosch GmbH LLC
  • Tata AutoComp System Ltd.
  • Valeo
  • Vikas Group
  • Sogefi SpA
  • Dana Incorporated
  • Miba AG
簡介目錄
Product Code: KSI061615224

The Global EV Battery Cooling market is forecast to grow at a CAGR of 18.9%, reaching USD 8.3 billion in 2031 from USD 3.5 billion in 2026.

The global EV battery cooling market is undergoing significant transformation driven by the paradigm shift toward electric mobility, the increasing energy density of battery packs, and the growing demand for faster charging capabilities. The market's evolution is characterized by the recognition that battery thermal management has become a core design requirement for modern electric vehicles, directly influencing range, safety, charging speed, warranty costs, and customer satisfaction. The convergence of liquid cooling technologies, advanced thermal materials, and integrated thermal management platforms is enabling more efficient, reliable, and compact battery cooling solutions. Vehicle manufacturers are increasingly evaluating cooling systems not only on thermal performance but also on weight, packaging efficiency, energy consumption, reliability, and compatibility with battery management systems. The market is witnessing significant investment in integrated thermal architectures, predictive control systems, and localized production near major EV manufacturing hubs, positioning battery cooling as a critical enabler of mainstream EV adoption.

Market Drivers

  • The expansion of high-capacity battery packs represents the primary driver for the EV battery cooling market. Vehicle manufacturers continue to increase battery capacity to improve driving range and support larger vehicle platforms. Higher-capacity batteries generate greater thermal loads during charging and discharging cycles, creating stronger demand for efficient cooling systems. Thermal management suppliers are responding through liquid cooling technologies, advanced coolant circuits, and battery pack designs that improve heat transfer while minimizing weight and space requirements, resulting in sustained growth in EV battery cooling utilization. The growth of fast-charging infrastructure and ultra-fast charging capability is further accelerating market growth through increased cooling requirements. Charging speeds have become an important competitive differentiator among EV manufacturers. Higher charging rates improve vehicle usability but generate additional heat within battery cells. Effective cooling systems help maintain cell stability during rapid charging events and reduce long-term battery degradation. This trend is increasing demand for sophisticated thermal management architectures capable of supporting repeated high-power charging cycles. Longer battery warranty periods and durability expectations are driving adoption of advanced cooling solutions. Automotive manufacturers increasingly provide extended battery warranties to support consumer confidence and comply with regulatory requirements. Battery temperature remains one of the most important factors affecting cell life. Cooling systems that maintain stable operating temperatures help manufacturers manage warranty exposure and preserve battery performance over extended operating periods. Integration of thermal management systems across vehicle platforms is reducing system complexity and improving overall vehicle efficiency. Vehicle manufacturers are increasingly adopting integrated thermal architectures that combine battery cooling, cabin climate control, power electronics cooling, and heat pump functionality. Expansion of EV manufacturing capacity across major automotive regions is creating demand for localized thermal management supply networks.

Market Restraints

  • Complex integration requirements across battery platforms increase engineering complexity and extend product development cycles. Battery pack designs vary considerably between manufacturers and vehicle categories. Cost pressure throughout the EV value chain makes pricing a critical factor during supplier selection. Vehicle manufacturers remain under pressure to reduce electric vehicle costs while improving performance and range. Material and component supply risks can create production bottlenecks and increase costs. Safety validation and qualification requirements extend development timelines and increase costs. Performance requirements across diverse climates require additional engineering effort, testing, and system complexity.

Technology and Product Insights

  • The technology landscape is characterized by the growing importance of liquid cooling, integrated thermal architectures, and predictive control systems. Liquid cooling represents the most commercially important cooling technology segment because it provides higher heat transfer efficiency than conventional air-based systems and supports the thermal requirements associated with larger battery packs, higher charging rates, and longer vehicle operating ranges. As battery energy density increases, manufacturers are placing greater emphasis on cooling precision and temperature uniformity across battery cells. Battery electric vehicles are the primary demand source for liquid cooling systems. These vehicles typically contain larger battery packs than hybrid platforms and face greater thermal management requirements during charging and high-power operation. OEM purchasing decisions increasingly focus on thermal performance, system efficiency, reliability, packaging flexibility, and integration with vehicle-wide thermal management architectures. The segment analysis reveals that competition extends beyond hardware performance, with suppliers differentiating through integrated cooling plates, advanced coolant distribution systems, thermal simulation capabilities, software controls, and system-level engineering support. The ability to reduce temperature variation between cells while minimizing energy consumption has become a critical factor influencing supplier selection. Asia Pacific remains the largest center for electric vehicle production and battery manufacturing, with China playing a particularly important role due to its scale of EV production, battery cell manufacturing, charging infrastructure deployment, and government support for electrification. North America's automotive manufacturers continue to expand EV production and battery manufacturing investments. Europe's stringent vehicle emissions regulations and long-term decarbonization objectives continue to support electric vehicle adoption. The integration of thermal management systems is becoming increasingly important as OEM focus shifts from basic temperature control toward integrated battery thermal management platforms.

Competitive and Strategic Outlook

  • The competitive landscape exhibits characteristics of a technology-driven automotive supply industry where competition is based on thermal performance, system integration capability, manufacturing scale, engineering expertise, product reliability, and alignment with OEM vehicle platforms. Companies including 3M, Boyd, Hanon Systems, MAHLE GmbH, Modine Manufacturing Company, Robert Bosch GmbH, Tata AutoComp Systems Ltd., Valeo, Vikas Group, Sogefi SpA, Dana Incorporated, and Miba AG compete across different portions of the thermal management value chain. The competitive environment increasingly favors suppliers capable of supporting complete vehicle thermal architectures, with automotive manufacturers reducing supplier complexity and seeking partners able to integrate battery cooling, power electronics cooling, heating systems, and energy management functions within unified platforms. Investment activity reflects this shift, with suppliers continuing to expand engineering resources, thermal simulation capabilities, software development expertise, and manufacturing capacity. Strategic partnerships with battery manufacturers and vehicle OEMs are becoming more common as thermal management requirements become more closely linked with battery pack design. Barriers to entry remain relatively high due to automotive qualification requirements, safety standards, long development cycles, and the need for global manufacturing support. Recent key developments include Freudenberg Sealing Technologies showcasing next-generation battery thermal-management products, including advanced cooling components, cell-to-cell barriers, and heat-pump technologies. Valeo expanded its electric-vehicle thermal portfolio with more than 70 new references, including battery-cooling and heat-exchanger solutions supporting newer EV platforms from major European automakers. AISIN highlighted a newly developed battery cooling plate engineered to regulate battery temperatures more effectively. At IAA Mobility 2025, Valeo showcased expanded EV thermal-management solutions focused on battery efficiency, energy optimization, and integrated electrification systems.

Short Conclusion

  • The global EV battery cooling market is positioned for sustained growth driven by the convergence of battery capacity expansion, fast-charging adoption, and integrated thermal architectures. The transition from basic temperature control toward integrated battery thermal management platforms represents a fundamental shift in EV design. While challenges related to integration complexity, cost pressure, and supply risks persist, strategic investments in engineering capability, system integration, and localization are creating durable competitive advantages for market leaders. The long-term market outlook remains positive, with EV battery cooling evolving into a critical enabler of electric mobility, supporting battery performance, safety, and longevity across global automotive markets.

Key Benefits of this Report

  • Insightful Analysis: Detailed market insights across regions, customer segments, policies, socio-economic factors, consumer preferences, and industry verticals.
  • Competitive Landscape: Understand strategic moves by key players to identify optimal market entry approaches.
  • Market Drivers and Future Trends: Assess major growth forces and emerging developments shaping the market.
  • Actionable Recommendations: Support strategic decisions to unlock new revenue streams.
  • Caters to a Wide Audience: Suitable for startups, research institutions, consultants, SMEs, and large enterprises.

What Businesses Use Our Reports For

  • Industry and market insights, opportunity assessment, product demand forecasting, market entry strategy, geographical expansion, capital investment decisions, regulatory analysis, new product development, and competitive intelligence.

Report Coverage

  • Historical data from 2021 to 2024, Base year 2025, and Forecast years from 2026 to 2031
  • Growth opportunities, challenges, supply chain outlook, regulatory framework, and trend analysis
  • Competitive positioning, strategies, and market share evaluation, and trade analysis
  • Revenue growth and forecast assessment across segments and regions
  • Company profiling including strategies, products, financials, and key developments

TABLE OF CONTENTS

1. INTRODUCTION

  • 1.1. Market Overview
  • 1.2. Market Definition
  • 1.3. Scope of the Study
  • 1.4. Market Segmentation
  • 1.5. Currency
  • 1.6. Assumptions
  • 1.7. Base and Forecast Years Timeline
  • 1.8. Key benefits for the stakeholders

2. RESEARCH METHODOLOGY

  • 2.1. Research Design
  • 2.2. Research Process

3. EXECUTIVE SUMMARY

  • 3.1. Key Findings

4. MARKET DYNAMICS

  • 4.1. Market Drivers
  • 4.2. Market Restraints
  • 4.3. Porter's Five Forces Analysis
    • 4.3.1. Bargaining Power of Suppliers
    • 4.3.2. Bargaining Power of Buyers
    • 4.3.3. The Threat of New Entrants
    • 4.3.4. Threat of Substitutes
    • 4.3.5. Competitive Rivalry in the Industry
  • 4.4. Industry Value Chain Analysis
  • 4.5. Analyst View

5. GLOBAL EV BATTERY COOLING MARKET BY COOLING TYPE

  • 5.1. Introduction
  • 5.2. Air Cooling
  • 5.3. Liquid Cooling
  • 5.4. Fan Cooling

6. GLOBAL EV BATTERY COOLING MARKET BY BATTERY TYPE

  • 6.1. Introduction
  • 6.2. Lead Acid
  • 6.3. Lithium Ion
  • 6.4. Others

7. GLOBAL EV BATTERY COOLING MARKET BY VEHICLE TYPE

  • 7.1. Introduction
  • 7.2. Battery Electric Vehicles
  • 7.3. Hybrid Electric Vehicles
  • 7.4. Plug-In Hybrid Electric Vehicle

8. GLOBAL EV BATTERY COOLING MARKET BY GEOGRAPHY

  • 8.1. Introduction
  • 8.1. North America
    • 8.1.1. By Cooling Type
    • 8.1.2. By Battery Type
    • 8.1.3. By Vehicle Type
    • 8.1.4. By Country
      • 8.1.4.1. United States of America
      • 8.1.4.2. Canada
      • 8.1.4.3. Mexico
  • 8.2. South America
    • 8.2.1. By Cooling Type
    • 8.2.2. By Battery Type
    • 8.2.3. By Vehicle Type
    • 8.2.4. By Country
      • 8.2.4.1. Brazil
      • 8.2.4.2. Argentina
      • 8.2.4.3. Others
  • 8.3. Europe
    • 8.3.1. By Cooling Type
    • 8.3.2. By Battery Type
    • 8.3.3. By Vehicle Type
    • 8.3.4. By Country
      • 8.3.4.1. Germany
      • 8.3.4.2. United Kingdom
      • 8.3.4.3. France
      • 8.3.4.4. Spain
      • 8.3.4.5. Others
  • 8.4. Middle East and Africa
    • 8.4.1. By Cooling Type
    • 8.4.2. By Battery Type
    • 8.4.3. By Vehicle Type
    • 8.4.4. By Country
      • 8.4.4.1. Saudi Arabia
      • 8.4.4.2. UAE
      • 8.4.4.3. Others
  • 8.5. Asia Pacific
    • 8.5.1. By Cooling Type
    • 8.5.2. By Battery Type
    • 8.5.3. By Vehicle Type
    • 8.5.4. By Country
      • 8.5.4.1. China
      • 8.5.4.2. Japan
      • 8.5.4.3. South Korea
      • 8.5.4.4. India
      • 8.5.4.5. Australia
      • 8.5.4.6. Others

9. COMPETITIVE ENVIRONMENT AND ANALYSIS

  • 9.1. Major Players and Strategy Analysis
  • 9.2. Market Share Analysis
  • 9.3. Mergers, Acquisitions, Agreements, and Collaborations
  • 9.4. Competitive Dashboard

10. COMPANY PROFILES

  • 10.2. Boyd
  • 10.3. Hanon Systems
  • 10.4. MAHLE GmbH
  • 10.5. Modine Manufacturing Company
  • 10.6. Robert Bosch GmbH LLC
  • 10.7. Tata AutoComp System Ltd.
  • 10.8. Valeo
  • 10.9. Vikas Group
  • 10.10. Sogefi SpA
  • 10.11. Dana Incorporated
  • 10.12. Miba AG