熱能冷卻材料和系統的商業機會:磁熱能、彈熱能、壓熱能和電熱能冷卻的市場和技術(2027-2047 年)
市場調查報告書
商品編碼
2105185

熱能冷卻材料和系統的商業機會:磁熱能、彈熱能、壓熱能和電熱能冷卻的市場和技術(2027-2047 年)

Caloric Cooling Materials, Systems Opportunities: Magnetcaloric, Elastocaloric, Barocaloric, Electrocaloric Markets, Technology 2027-2047

出版日期: | 出版商: Zhar Research | 英文 290 Pages | 商品交期: 最快1-2個工作天內

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簡介目錄

概要

隨著對更先進、更高效冷卻技術的需求迅速成長,開發新型材料和設備有望創造數十億美元的商機。全球暖化和人工智慧資料中心產生的熱只是推動這項需求的部分因素。人們越來越期待新型固體冷卻技術能更好地應對這些挑戰。到2047年,固體冷卻市場規模預計將達到670億美元,其中熱能冷卻技術在以金額為準最具成長潛力。

這份長達290頁的報告著重分析市場和商業層面,並充分考慮了市場趨勢。報告不僅重點介紹了2025-2026年間可能帶來競爭優勢的重大研究進展,還涵蓋了潛在的收購和合作夥伴。報告共分為六章,包含11份SWOT分析、29張資訊圖表及31項市場預測。每項預測都配有說明和圖表,確保讀者能夠清晰理解技術和市場趨勢,同時避免使用晦澀難懂的學術語言。

目錄

第1章:摘要整理與結論

  • 本報告的目的
  • 分析方法和報告範圍
  • 冷氣的未來:熱力製冷的關鍵趨勢、選擇、現狀、吸引力和未來前景
  • 17項主要結論
  • 固體冷卻的SWOT分析與材料分析
  • 292項最新固體冷卻研究成果中的關鍵材料
  • 電卡冷卻的SWOT分析與材料分析
  • 磁熱冷卻的SWOT分析與材料分析
  • 彈熱冷卻的SWOT分析與材料分析
  • 壓力熱冷卻的SWOT分析與材料分析
  • 按市場和技術分類的固體冷卻藍圖
  • 31項市場預測項目,附表格、圖表說明
    • 全球冷卻模組市場:蒸氣壓縮冷卻技術與七種固體冷卻技術的比較
    • 固體冷卻模組市場規模:依產業分類
    • 空調市場規模
    • 全球暖通空調、冷藏庫、冷凍庫和其他冷凍設備市場。
    • 固定式電池市場及冷卻需求
    • 6G通訊基礎設施和客戶端設備的溫度控管材料和結構市場
    • 6G用介電和導熱材料的市場規模:按地區分類
    • 5G/6G導熱界面材料市場比較
    • 6G基地台和5G基地台的市場規模
    • 熱超材料裝置市場:按應用領域分類

第2章:引言

  • 概述
  • 2027 年至 2047 年間冷凍需求發生重大變化的例子
    • 空調需求不斷成長以及未來需求的變化
    • 資訊圖表:多種因素促使冷氣需求不斷成長
    • 水和局部體溫冷卻相關的風險
    • 建築冷凍面臨的挑戰日益嚴峻,亟需新的解決方案
    • 傳統蒸氣壓縮冷卻技術面臨的挑戰日益增多
    • 6G通訊帶來的新冷卻需求
    • 人工智慧資料中心、電網電池、核融合巨型雷射和太陽能電池板面臨的冷卻挑戰。
    • 微晶片的嚴格新冷卻要求
  • 應對2027年至2047年新型冷卻挑戰的領先解決方案
    • 冷卻技術向智慧材料過渡的方向
    • 一場旨在將較早的被動式冷卻技術重新引入建築物的運動。
    • 改造空調技術,以實現低能耗、環保、低成本。
    • 面向未來微晶片、電池和電子設備的冷卻解決方案,包括固體冷卻。
    • 應對6G通訊引起的日益嚴重的發熱問題的對策
    • 智慧紡織品:固體技術等。
  • 三條曲線顯示了冷卻技術的關注度和成熟度。
  • 基於10項功能的12種固體冷卻運行原理比較
  • 資訊圖:導熱界面材料及其他導熱冷卻技術的未來
  • 被廣泛使用或提案的不良材料和商業機會

第3章 相變冷卻:熱力學冷卻方法的定位與比較

  • 概述:利用結構相變和鐵性相變的冷卻方法和材料。
  • 資訊圖表:相變冷卻技術(如固體冷卻)的比較。
  • 取向複合相變材料(OCPCM)
  • 熱冷卻的技術背景
  • 熱能冷卻的運行原理
  • 固體熱冷卻技術的研究與商業化分析
  • 對熱量冷卻和熱電冷卻進行比較,並確定有前景的熱量冷卻技術。
  • 性能係數(COP)比較
  • 已報告的各種商用固體冷卻技術在溫度降低和能源效率比方面的潛在優勢
  • 促進熱能冷卻技術廣泛應用的提案與發展。

第4章:新興的熱氣冷卻系統製造商

  • 概述
  • Barocal
  • Camfridge
  • Magneto Systems
  • Magnoric
  • Mateligent
  • Magnotherm
  • Qurie

第5章:熱量冷卻

  • 電熱冷卻
    • 概述和SWOT分析
    • EC冷凍循環、巨電卡效應、材料設計、發展目標
    • 基於現有知識的電熱冷卻技術在應用和系統設計方面的前景
    • 運行原理、裝置結構、潛在材料、外形規格
    • 電卡冷卻電池外形規格比較
    • 電卡材料的選擇
    • 最新研究中電熱材料應用的趨勢和說明。
    • 電熱冷卻面臨的挑戰
    • 電熱冷卻技術的研究進展
    • 電熱材料成分的研究,包括無鉛配方。
  • 磁熱冷卻和SWOT分析
    • 概述與技術進步
    • 磁熱冷卻技術詳情
  • 機械熱冷卻(彈熱冷卻、壓熱冷卻、扭轉熱冷卻)及SWOT分析
    • 彈熱冷卻概述:運行原理、系統設計、應用及SWOT分析
    • 彈性冷卻技術的進展
    • 氣壓冷卻技術的突破與SWOT分析
  • 多熱量冷卻技術的進步

第6章:實行技術:超材料冷卻材料與裝置

  • 概述
    • 基於兩項 SWOT 分析,圖片、資訊圖表、技術成就和新功能。
    • 超材料冷卻技術的應用
    • 利用活性超材料和超材料能量收集進行發電
  • 超材料固體冷卻的關鍵技術進步及其商業性意義
    • 整體趨勢
    • 利用相變超材料進行溫度控管
    • 用於熱控制的超材料智慧窗戶和溫室
    • 用於建築和設備冷卻的超材料
    • 用於太陽能電池板的超材料冷卻層
    • 具有冷卻性能的超材料紡織品及其SWOT分析
簡介目錄

Summary

You can create a billion-dollar business by offering new materials and devices to tackle the now very urgent need for more and better cooling. Global warming and belching AI datacenters are just part of that need. New solid-state cooling is being welcomed as a better answer in many cases. It may rise to $67 billion sales in 2047 and its subset with the largest dollar potential is caloric cooling.

On cue, the new 290-page, commercially-oriented Zhar Research report, “Caloric Cooling Materials, Systems Opportunities: Magnetocaloric, Elastocaloric, Barocaloric, Electrocaloric Markets, Technology 2027-2047” is your guide. Here are the massive research advances in 2025 through 2026 that can give you advantage and the companies for you to acquire or partner. Six chapters, 11 SWOT appraisals, 29 infograms and 31 forecast lines with explanations and graphs make it clear without academic obscurity.

The Executive Summary and Conclusions (42 pages) has the basics, the 17 key conclusions, forecast lines, roadmaps and most of the SWOT appraisal so it is complete in itself for those with limited time.

The Introduction (37 pages) puts cooling needs and solutions in context, showing new needs from the small devices such as arriving 1kW microchips to the large, all of which may be cooled more strongly and economically with caloric technologies. See infograms “Attention vs maturity of cooling technologies 3 curves 2027, 2037, 2047”, “Twelve solid-state cooling operating principles compared by 10 capabilities”, “Future of thermal interface materials and other cooling by thermal conduction” and “Undesirable materials widely used and proposed: this is an opportunity for you”.

Chapter 3. Phase Change Cooling: Caloric in Context, Options compared takes 16 pages then Chapter 4. Seven Emerging Manufacturers of Caloric Cooling Systems (10 pages) details the caloric cooling capabilities and activities of these manufacturers and putative manufacturers. Learn how activity is at an early stage but with some proven success, so now is the time for you to get in at the beginning.

Chapter 5. Caloric Cooling takes a full 113 pages because here are the four leading options appraised in detail with pie charts, tables, SWOT appraisals, including the flood of very important advances in 2025 and 2026 being explained. Primarily that means solid-state electrocaloric, magnetocaloric, barocaloric and elastocaloric options including their shortcoming and what you can do to overcome them and gain advantage. However, the less important aspects such as liquid options and twistocalorics are also covered, briefly.

The report ends with Chapter 6. Enabling Technology: Metamaterial Cooling Materials and Devices (64 pages) because these constructs are used in many caloric devices and alongside them to further improve complete cooling systems. This report, “Caloric Cooling Materials, Systems Opportunities: Magnetocaloric, Elastocaloric, Barocaloric, Electrocaloric Markets, Technology 2027-2047” is key to your success in this new and exciting field.

CAPTION: Winning materials in latest electrocaloric cooling research with commentary. Source: Zhar Research report, “Caloric Cooling Materials, Systems Opportunities: Magnetocaloric, Elastocaloric, Barocaloric, Electrocaloric Markets, Technology 2027-2047”.

Table of Contents

1. Executive summary and conclusions

  • 1.1 Purpose of this report
  • 1.2 Methodology of this analysis and scope of the report
  • 1.3 The future of cooling: highlights, options, caloric sstatus, attractions and prospects
  • 1.4 Seventeen primary conclusions
  • 1.5 Solid state cooling SWOT appraisal and materials analysis
  • 1.6 Leading materials in 292 latest research advances in solid state cooling
  • 1.7 SWOT appraisal of electrocaloric cooling and materials analysis
  • 1.8 SWOT appraisal of magnetocaloric cooling and materials analysis
  • 1.9 SWOT appraisal of elastocaloric cooling and materials analysis
  • 1.10 SWOT appraisal of barocaloric cooling and materials analysis
  • 1.11 Solid state cooling roadmap by market and by technology 2027-2047
  • 1.12 Market forecasts as tables, graphs, explanation in 31 lines 2027-2047
    • 1.12.1 Cooling module global market vapor compression vs seven solid state technologies $ billion 2026-2047 and % by industry
    • 1.12.2 Solid state cooling module value market % by industry 2026-2047
    • 1.12.3 Air conditioner value market $ billion 2024-2047
    • 1.12.4 Global market for HVAC, refrigerators, freezers, other cooling $ billion 2025-2047
    • 1.12.5 Stationary battery market $ billion and cooling needs 2024-2047
    • 1.12.6 Thermal management material and structure for 6G Communications infrastructure and client devices $ billion if 6G is successful 2026-2047
    • 1.12.7 Dielectric and thermal materials for 6G value market % by location 2029-2047
    • 1.12.8 5G vs 6G thermal interface material market $ billion 2025-2047
    • 1.12.9 Market for 6G vs 5G base stations units millions and $ billion yearly 2025-2047
    • 1.12.10 Smartphone billion units sold globally 2024-2047 if 6G is successful
    • 1.12.11 Thermal meta-device market $ billion 2025-2047 by 3 application segments

2. Introduction

  • 2.1 General situation
  • 2.2 Examples of radical changes in the requirements for cooling 2027-2047
    • 2.2.1 Escalation of demand for air conditioning and forthcoming changes in requirement
    • 2.2.2 Infogram: Cooling needs increase for many reasons 2027-2047
    • 2.2.3 Dangers of water and localised cooling of your body
    • 2.2.4 Growing problems call for new solutions when cooling buildings
    • 2.2.5 The increasing problems of traditional vapor compression cooling
    • 2.2.6 How 6G Communications from 2030 will bring new cooling requirements: infograms
    • 2.2.7 AI datacenters, grid storage batteries, fusion mega-lasers, solar panels and other cooling problems
    • 2.2.8 Severe new microchip cooling requirements arriving
  • 2.3 Some of the primary answers to emerging cooling challenges 2027-2047
    • 2.3.1 How cooling technology will trend to smart materials 2027-2047
    • 2.3.2 Back to the future: bring back ancient passive cooling for buildings
    • 2.3.3 Reinventing air conditioning to be lower power, greener, more affordable
    • 2.3.4 Cooling future microchips, batteries and electronics with or without solid-state cooling
    • 2.3.5 Answers to 6G Communications bringing tougher heat issues from
    • 2.3.6 Smart textiles: solid-state and other
  • 2.4 Attention vs maturity of cooling technologies 3 curves 2027, 2037,
  • 2.5 Twelve solid-state cooling operating principles compared by 10 capabilities
  • 2.6 Infogram: The future of thermal interface materials and other cooling by thermal conduction
  • 2.7 Undesirable materials widely used and proposed: this is an opportunity for you

3. Phase change cooling: caloric in context, options compared

  • 3.1 Overview: structural and ferroic phase change cooling modes and materials with infogram
  • 3.2 Infogram: phase-change cooling technologies compared: solid state, other
  • 3.3 Oriented composite phase change material (OCPCM)
  • 3.4 Caloric cooling: technical context
  • 3.5 Operating principles for caloric cooling
  • 3.6 Analysis of research and commercialisation of solid-state caloric cooling
  • 3.7 Caloric compared to thermoelectric cooling and winning caloric technologies identified
  • 3.8 Coefficient of Performance comparison
  • 3.9 Reported and potential temperature drop, COP by different commercial solid-state technologies 2027-2047
  • 3.10 Some proposals for work to advance the use of caloric cooling

4. Emerging manufacturers of caloric cooling systems

  • 4.1 Overview
  • 4.2 Barocal UK
  • 4.3 Camfridge UK
  • 4.4 Magneto Systems Netherlands
  • 4.5 Magnoric France Germany
  • 4.6 Mateligent Germany
  • 4.7 Magnotherm Germany
  • 4.8 Qurie Germany

5. Caloric cooling

  • 5.1 Electrocaloric cooling
    • 5.1.1 Overview and SWOT appraisal
    • 5.1.2 EC refrigeration cycle, giant electrocaloric effect, material design, objectives
    • 5.1.3 Likely electrocaloric cooling applications and system designs based on current knowledge
    • 5.1.4 Operating principles, device construction, successful materials and form factors
    • 5.1.5 Electrocaloric cooler cell form factors compared
    • 5.1.6 Choosing electrocaloric materials
    • 5.1.7 Electrocaloric material popularity in latest research with explanation
    • 5.1.8 Electrocaloric cooling: issues to address
    • 5.1.9 Electrocaloric cooling research advances 2025 and
    • 5.1.10 Research on electrocaloric material formulations including avoiding lead
  • 5.2 Magnetocaloric cooling with SWOT appraisal
    • 5.2.1 Overview with progress 2025 and
    • 5.2.2 Magnetocaloric cooling in detail
  • 5.3 Mechanocaloric cooling (elastocaloric, barocaloric, twistocaloric) cooling with SWOT appraisals
    • 5.3.1 Elastocaloric cooling overview: operating principle, system design, applications, SWOT
    • 5.3.2 Elastocaloric advances 2025 and
    • 5.3.3 Barocaloric cooling: breakthroughs in 2025 and 2026 with SWOT
  • 5.4 Multicaloric cooling advances in 2025 and

6. Enabling technology: Metamaterial cooling materials and devices

  • 6.1 Overview
    • 6.1.1 Emerging capabilities with images, infograms, achievements, two SWOT appraisals
    • 6.1.2 Applications of metamaterial cooling
    • 6.1.3 Active (powered) metamaterials and power from metamaterial harvesting
  • 6.2 Major advances in metamaterial solid-state cooling 2025 and 2026 with commercial implications
    • 6.2.1 General situation
    • 6.2.2 Thermal management with phase change metamaterials
    • 6.2.3 Metamaterial smart windows and greenhouses for thermal control
    • 6.2.4 Metamaterials cooling buildings and devices
    • 6.2.5 Metamaterial cooling overlayers for solar panels
    • 6.2.6 Metamaterial textiles that cool with SWOT