Journal of Textile Research ›› 2025, Vol. 46 ›› Issue (07): 253-261.doi: 10.13475/j.fzxb.20241205802

• Comprehensive Review • Previous Articles     Next Articles

Review on research progress of cooling garments with phase-change packages as cold source

LUO Yuling1, YANG Xizhu1, WANG Xinglan1, ZHENG Xiaohui2, ZHAO Shengnan3, CHANG Suqin1()   

  1. 1 School of Material Design and Engineering, Beijing Institute of Fashion Technology, Beijing 100029, China
    2 State Key Laboratory of NBC Protection for Civilian, Beijing 100191, China
    3 Systematic Engineering Center of Jihua Group Co., Ltd., Beijing 102627, China
  • Received:2024-12-26 Revised:2025-03-23 Online:2025-07-15 Published:2025-08-14
  • Contact: CHANG Suqin E-mail:csqdlut@163.com

Abstract:

Significance Phase-change cooling garments are a special functional clothing, which use phase-change materials (PCM) at a specific temperature can change their physical status to absorb or release a significant amount of heat, so as to regulate the comfortable temperature of the clothing microclimate between clothing and the human body. Phase-change cooling garments can effectively improve the conventional liquid cooling and gas cooling garments in terms of large volume, high cost, liquid leakage, explosion, restricted application places, and other related issues.

Progress Despite the many advantages of phase-change cooling garments, problems still exist, such as low cooling rate, high humidity in the microclimate of the garment, short cooling time, and imperfect selection of working conditions. Comprehensive national and international latest research status suggests that the microclimate inside the garments directly affects the human body thermal comfort, and the influencing factors range from phase-change cooling garments, cooling garments structural optimization, and the use of working conditions. In order to keep the microclimate temperature regulated by the cooling garments at (32±1) ℃, relative humidity at (50±10)%, and air velocity at (25±5) cm/s within the standard climate range, phase-change materials are the core structure in the phase-change cooling garments.

The main factors that influence the final use of the cooling suit are the operating environment and human activity level. In order to optimize the overall performance of the cooling suit, the influence of the environment and human activity level on its performance should be considered. In order to select the optimal cooling material, the physical parameters of the PCM, such as phase-change temperature, latent heat of change, thermal conductivity, and so on, should be taken into account. Solutions to common problems of cooling garments are identified through the structural design of the phase-change package cold source system, with their advantages and disadvantages. Phase-change cooling garments address common issues in cooling garment solutions through the structural design of the cold source system, and analyze their advantages and disadvantages:

Low cooling rate of cooling garments: modifying phase change materials to improve thermal conductivity can enhance the cooling rate, but the development process is cumbersome and time-consuming. Additionally, adjusting the temperature gradient (the difference between skin temperature and the melting point of the PCM) can also improve the cooling rate; however, this approach may not be suitable for situations requiring long-term cooling.

High humidity in microclimate: While combining phase change garments with desiccants has an excellent dehumidification effect, it poses a potential heating issue that reduces the cooling duration. Mixing phase change garments with vortex tubes can improve the microenvironment's humidity, but the large size of vortex tubes makes movement inconvenient. Introducing a micro-fan can effectively mitigate humidity problems, but its effectiveness diminishes when the skin temperature equals the external environment temperature. Utilizing moisture-absorbent fabrics can efficiently reduce microenvironment humidity in the short term, but prolonged wear limits its efficacy.

Short cooling duration: adjusting the structure of the packaging layer can extend cooling time to some extent, but only until the phase change package becomes ineffective. Combining different melting points of phase change materials can prolong the cooling duration, although this increases the thickness of the phase change package, which affects wearing comfort. Integrating various cooling mechanisms allows for the recyclability of the phase change package, but results in a larger volume, limiting application to certain insulated areas. Vortex tubes combined with phase-change cooling garments are restricted to specific locations due to these limitations.

Conclusion and Prospect Phase-change cooling garments need to be designed against the working environment. Under the conditions of determining the temperature, humidity, wind speed, and radiation intensity of the working conditions, and according to the comfort needs of the microclimate inside the garment, the existing problems of phase-change cooling garments are solved from the selection of phase change materials, cold source design, and garment structure in three directions, so as to ensure that phase-change cooling garments with the cooling performance, comfort, cost, and other aspects of the optimal effect. The future research focus of phase-change cooling garments includes. (1) Development of a phase-change material with high storage energy (high latent heat of phase change) and high heat absorption efficiency (high thermal conductivity); (2) Integration PCM with melting points with ergonomics for different parts of the human body with the difference in temperature sensitivity; (3) When selecting working conditions, factors such as temperature, humidity, wind speed, and radiation need to be considered to ensure that the cooling performance of the cooling garments is optimized during use.

Key words: functional garment design, phase-change cooling garment, phase-change material, thermal-moisture comfort, clothing microclimate, phase-change package

CLC Number: 

  • TS941.17

Fig.1

Design of cold source structure of phase change cooling garment. (a) Conventional PCM package; (b) PCM package added with insulation layer"

Tab.1

Different packaging modes for PCM and their advantages and disadvantages"

包装材料 优点 缺点
铝箔 导热性良好,传热快 较薄易破,导致材料泄露
TPU TPU有更好的柔韧性和耐用性,不容易被刺破 导热性较差,冷却速度变慢
TPU+聚
氨酯
聚氨酯提供额外的绝缘效果,延长冷却时效 减少接触面积,降低冷却功率

Fig.2

Schematic structure of phase change cooling suit with highly absorbent fibers used internally"

[1] ROELOFSEN P, JANSEN K. Comfort and performance improvement through the use of cooling vests for construction workers[J]. International Journal of Clothing Science and Technology, 2023, 35(1): 152-161.
[2] WANG F, PANG D, LIU X, et al. Progress in application of phase-change materials to cooling clothing[J]. Journal of Energy Storage, 2023. DOI: 10.1016/j.est.2023.106606.
[3] MOKHTARI YAZDI M, SHEIKHZADEH M. Personal cooling garments: a review[J]. The Journal of The Textile Institute, 2014, 105(12): 1231-1250.
[4] 刘雨婷, 宋泽涛, 赵胜男, 等. 个体冷却服的研究现状与发展趋势[J]. 纺织学报, 2023, 44(12): 233-241.
doi: 10.13475/j.fzxb.20221003402
LIU Yuting, SONG Zetao, ZHAO Shengnan, et al. Research status and development trend in individual cooling garments[J]. Journal of Textile Research, 2023, 44 (12):233-241.
doi: 10.13475/j.fzxb.20221003402
[5] 张昌. 服装热舒适性与衣内微气候[J]. 武汉科技学院学报, 2005(1): 4-7.
ZHANG Chang. Thermal comfort and climate in clothing[J]. Journal of Wuhan Textile University, 2005(1): 4-7.
[6] 原田隆司. 衣服内气候与衣着[J]. 国外纺织技术(针织及服装分册), 1987(16):35-40.
TAKASHI Harada. Climate and clothing within clothing[J]. Textile Technology Overseas (Knitting and Clothing Division), 1987(16):35-40.
[7] 陈东生. 服装卫生学[M]. 北京: 中国纺织出版社, 2000:31.
CHEN Dongsheng. Clothing hygiene[M]. Beijing: China Textile & Apparel Press, 2000:31.
[8] MONDAL S. Thermo-regulating textiles with phase-change materials[M]. Cambridge: Woodhead Publishing, 2011: 163-183.
[9] HAMDAN H, GHADDAR N, OUAHRANI D, et al. PCM cooling vest for improving thermal comfort in hot environment[J]. International Journal of Thermal Sciences, 2016, 102: 154-167.
[10] 梁国治, 周孟颖, 张奋奋. 矿用降温服的研究与应用[J]. 矿业安全与环保, 2014, 41(3): 39-42.
LIANG Guozhi, ZHOU Mengying, ZHANG Fenfen. Development and application of mine cooling clothes[J]. Mining Safety & Environmental Protection, 2014, 41(3): 39-42.
[11] GAO C, KUKLANE K, HOLMÉR I. Cooling vests with phase change material packs: the effects of temperature gradient, mass and covering area[J]. Ergonomics, 2010, 53(5): 716-723.
doi: 10.1080/00140130903581649 pmid: 20432090
[12] ZHAO M, GAO C, WANG F, et al. The torso cooling of vests incorporated with phase change materials: a sweat evaporation perspective[J]. Textile Research Journal, 2013, 83(4): 418-425.
[13] HOUSE J R, LUNT H C, TAYLOR R, et al. The impact of a phase-change cooling vest on heat strain and the effect of different cooling pack melting temper-atures[J]. European Journal of Applied Physiology, 2013, 113: 1223-1231.
[14] CHOU C, TOCHIHARA Y, KIM T. Physiological and subjective responses to cooling devices on firefighting protective clothing[J]. European Journal of Applied Physiology, 2008, 104: 369-374.
doi: 10.1007/s00421-007-0665-7 pmid: 18259772
[15] XU H, CAO B, GAO L, et al. Personal cooling garments with phase change material packages: a critical review of challenges, solutions and recent progress[J]. Building and Environment, 2024. DOI: 10.1016/j.buildenv.2024.111169.
[16] 陈家鹏. 相变冷却服热舒适性研究[D]. 武汉: 华中科技大学, 2021:15-22.
CHEN Jiapeng. Study on thermal comfort of phase change cooling vest[D]. Wuhan: Huazhong University of Science and Technology, 2021:15-22.
[17] SARIER N, ONDER E. Organic phase change materials and their textile applications: an overview[J]. Thermochimica Acta, 2012, 540: 7-60.
[18] 陈贡. 提高相变材料热导率的研究进展[J]. 化工新型材料, 2024, 52(S2): 11-15.
CHEN Gong. Research progress on improving the thermal conductivity of phase change materials[J]. New Chemical Materials, 2024, 52(S2): 11-15.
[19] LIU S, XIN S, WEI X, et al. Novel composite phase change material with modified melamine foam as an encapsulation template for use in personal cooling suits[J]. Journal of Energy Storage, 2024. DOI: 10.1016/j.est.2024.113796.
[20] 赵辰, 王敏, 李俊. 个体降温服优化设计对其降温效果影响的研究进展[J]. 纺织学报, 2023, 44(9): 243-250.
ZHAO Chen, WANG Min, LI Jun. Review on optimal design of personal cooling garments on cooling effect[J]. Journal of Textile Research, 2023, 44(9): 243-250.
[21] EIDSMO R R, HILDE F, KRISTINE H, et al. Optimizing the performance of phase-change materials in personal protective clothing systems.[J]. International Journal of Occupational Safety and Ergonomics (JOSE), 2008, 14(1): 43-53.
[22] SONG W, WANG F. The hybrid personal cooling system (PCS) could effectively reduce the heat strain while exercising in a hot and moderate humid environment[J]. Ergonomics, 2016, 59(8): 1009-1018.
doi: 10.1080/00140139.2015.1105305 pmid: 26457872
[23] RAJ U, WANG F, SONG W, et al. Performance enhancement of hybrid personal cooling clothing in a hot environment: PCM cooling energy management with additional insulation[J]. Ergonomics, 2019, 62(7):928-939.
doi: 10.1080/00140139.2019.1596318 pmid: 30885053
[24] TEUNISSEN L, JANSSEN E, SCHOOTSTRA J, et al. Evaluation of phase change materials for personal cooling applications[J]. Clothing and Textiles Research Journal, 2023, 41(3): 208-224.
[25] ZHENG Q, KE Y, WANG H. Design and evaluation of cooling workwear for miners in hot underground mines using PCMs with different temperatures[J]. International Journal of Occupational Safety and Ergonomics, 2022, 28(1): 118-128.
[26] HOU J, YANG Z, XU P, et al. Design and performance evaluation of novel personal cooling garment[J]. Applied Thermal Engineering, 2019, 154: 131-139.
doi: 10.1016/j.applthermaleng.2019.02.013
[27] ZHAO M, GAO C, LI J, et al. Effects of two cooling garments on post-exercise thermal comfort of female subjects in the heat[J]. Fibers and Polymers, 2015, 16: 1403-1409.
[28] ITANI M, GHADDAR N, GHALI K. Innovative PCM-desiccant packet to provide dry microclimate and improve performance of cooling vest in hot environ-ment[J]. Energy Conversion and Management, 2017, 140: 218-227.
[29] 吴珺秋. 不同除湿方式相变冷却服的冷却效果及着装人体热生理反应研究[D]. 上海: 东华大学, 2023:61-63.
WU Junqiu. Comparison of cooling performance and thermophysiological response between cooling clothing combining phase change material and different dehumidification[D]. Shanghai: Donghua University, 2023:61-63.
[30] 宁宁. 涡流管复合相变材料冷却服制冷性能实验研究[D]. 西安: 西安科技大学, 2021:20-60.
NING Ning. Experimental study on the refrigeration performance of vortex tube composite phase change material cooling suit[D]. Xi'an: Xi'an University of Science and Technology, 2021:20-60.
[31] SU X, TIAN S, LI H, et al. Thermal and humid environment improvement of the protective clothing for medical use with a portable cooling device: analysis of air supply parameters[J]. Energy and Buildings, 2021. DOI: 10.1016/j.enbuild.2021.110909.
[32] LU Y, WEI F, LAI D, et al. A novel personal cooling system (PCS) incorporated with phase change materials (PCMs) and ventilation fans: an investigation on its cooling efficiency[J]. Journal of Thermal Biology, 2015, 52: 137-146.
doi: 10.1016/j.jtherbio.2015.07.002 pmid: 26267508
[33] 吴国珊, 刘何清, 吴世先, 等. 不同环境下个体通风服的制冷量[J]. 纺织学报, 2021, 42(10): 139-145.
doi: 10.13475/j.fzxb.20200908507
WU Guoshan, LIU Heqing, WU Shixian, et al. Cooling capacity of personal ventilation systems in different environments[J]. Journal of Textile Research, 2021, 42(10): 139-145.
doi: 10.13475/j.fzxb.20200908507
[34] WAN X, WANG F. Numerical analysis of cooling effect of hybrid cooling clothing incorporated with phase change material (PCM) packs and air ventilation fans[J]. International Journal of Heat and Mass Transfer, 2018, 126: 636-648.
[35] BACHNAK R, ITANI M, GHADDAR N, et al. Performance of hybrid PCM-fan vest with deferred fan operation in transient heat flows from active human in hot dry environment[J]. Building and Environment, 2018, 144: 334-348.
[36] 梁高勇, 曹薇. 防护服舒适性测试评价的新方法[J]. 中国劳动防护用品, 1999(4): 39-43.
LIANG Gaoyong, CAO Wei. A new method for comfort test evaluation of protective clothing[J]. China Personal Protective Equipment, 1999(4): 39-43.
[37] 明诗林, 夏婉婷, 张成隆, 等. 相变与吸湿结合下的新型多功能降温服设计[J]. 安全、健康和环境, 2023, 23(11): 13-18.
MING Shilin, XIA Wanting, ZHANG Chenglong, et al. Design of a new multi-functional cooling suit under the combination of phase change and moisture absorp-tion[J]. Safety Health & Environment 2023, 23(11): 13-18.
[38] HOUSE J R, LUNT H C, TAYLOR R, et al. The impact of a phase-change cooling vest on heat strain and the effect of different cooling pack melting temper-atures[J]. European Journal of Applied Physiology, 2013, 113: 1223-1231.
[39] GAO C, KUKLANE K, HOLMÉR I. Cooling vests with phase change materials: the effects of melting temperature on heat strain alleviation in an extremely hot environment[J]. European Journal of Applied Physiology, 2011, 111: 1207-1216.
doi: 10.1007/s00421-010-1748-4 pmid: 21127896
[40] DORMAN L E, HAVENITH G. The effects of protective clothing on energy consumption during different acti-vities[J]. European Journal of Applied Physiology, 2009, 105: 463-470.
[41] YAZDI M M, SHEIKHZADEH M, CHAVOSHI S E. Modeling the performance of a PCM cooling vest considering its side effects[J]. International Journal of Clothing Science and Technology, 2015, 27(4): 573-586.
[42] ITANI M, GHADDAR N, GHALI K, et al. Significance of PCM arrangement in cooling vest for enhancing comfort at varied working periods and climates: modeling and experimentation[J]. Applied Thermal Engineering, 2018, 145: 772-790.
[43] WANG H, XU Z, GE B, et al. Experimental study on a phase change cooling garment to improve thermal comfort of factory workers[J]. Building and Environment, 2023. DOI: 10.1016/j.buildenv.2022.109819.
[44] ITANI M, OUAHRANI D, GHADDAR N, et al. The effect of PCM placement on torso cooling vest for an active human in hot environment[J]. Building and Environment, 2016, 107: 29-42.
[45] YANG H, CAO B, JU Y, et al. The effects of local cooling at different torso parts in improving body thermal comfort in hot indoor environments[J]. Energy and Buildings, 2019, 198: 528-541.
[46] LI W, LIANG Y, LIU C, et al. Study of ultra-light modular phase change cooling clothing based on dynamic human thermal comfort modeling[J]. Building and Environment, 2022. DOI: 10.1016/j.buildenv.2022.109390.
[47] 王棋生. 相变材料分布对相变调温热防护效果的影响分析[D]. 苏州: 苏州大学, 2016:15-32.
WANG Qisheng. Analysis of protective effects of pcm distribution on PCM thermal controlling perfor-mance[D]. Suzhou: Soochow University, 2016:15-32.
[48] 姬长发, 许多, 李美晨, 等. 相变蓄冷材料包间隙对冷却服热湿传递特性的影响[J]. 煤矿安全, 2020, 51(8): 239-244.
JI Changfa, XU Duo, LI Meichen, et al. Influence of gap of phase change cold storage materials on heat and moisture transmission characteristics of cooling suit[J]. Safety in Coal Mines, 2020, 51(8): 239-244.
[49] 吴珺秋, 李俊. 相变-通风混合冷却服的冷却效果及其测评方法进展[J]. 丝绸, 2023, 60(4): 71-79.
WU Junqiu, LI Jun. Research progress on the cooling effects and evaluation methods of hybrid cooling clothing based on phase change materials and ventilation fans[J]. Journal of Silk, 2023, 60(4): 71-79.
[50] 郝昊昊, 张亚平, 蒋昊辰, 等. 相变复合冷却服的舒适性能[J]. 上海纺织科技, 2023, 51(7): 22-25.
HAO Haohao, ZHANG Yaping, JIANG Haochen, et al. Comfort of phase change composite cooling suit[J]. Shanghai Textile Science & Technology, 2023, 51(7): 22-25.
[51] LIU Y, YAN X, ZHANG S, et al. High-efficiency application area in china of evaporative cooling garments: effects of solar radiation and wind speed[J]. Applied Thermal Engineering, 2025. DOI: 10.1016/j.applthermaleng.2025.125977.
[52] 马昆明. 深井矿用凝胶相变降温背心的热舒适性优化实验研究[D]. 徐州: 中国矿业大学, 2023:50-58.
MA Kunming. Experimental study on the thermal comfortable optimization of gel phase change cooling vest used in deep mine[D]. Xuzhou: China University of Mining and Technology, 2023:50-58.
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