Volume 40 Issue 10
Oct.  2025
Turn off MathJax
Article Contents
DANG Wenwei, LI Xiaosheng, LI Kun, et al. Research progress on thermal insulation materials inside hypersonic aircraft cabins[J]. Journal of Aerospace Power, 2025, 40(10):20230770 doi: 10.13224/j.cnki.jasp.20230770
Citation: DANG Wenwei, LI Xiaosheng, LI Kun, et al. Research progress on thermal insulation materials inside hypersonic aircraft cabins[J]. Journal of Aerospace Power, 2025, 40(10):20230770 doi: 10.13224/j.cnki.jasp.20230770

Research progress on thermal insulation materials inside hypersonic aircraft cabins

doi: 10.13224/j.cnki.jasp.20230770
  • Received Date: 2023-12-05
    Available Online: 2025-07-25
  • With the rapid development of hypersonic aircraft technology, there are higher requirements for cabin thermal insulation materials. Lightweight and efficient thermal insulation materials are the key to ensure the normal operation of electronic instruments, electrical equipment, and other components inside the aircraft. The working mechanism and thermal conductivity test method of thermal insulation materials in hypersonic vehicle cabin under the modes of heat conduction, heat convection and heat radiation were described. The research status of foam ceramic thermal insulation materials, organic foam thermal insulation materials, fiber thermal insulation materials and aerogel thermal insulation materials was introduced. The results indicated that different thermal insulation materials exhibited different thermal insulation mechanisms and heat transfer forms due to their structural differences. Generally, the thermal conductivity calculated by theoretical mathematical models is not accurate, and steady state and non-steady state methods are often used to measure the thermal conductivity. To solve current difficulties in the research of thermal insulation materials, the future development direction of thermal insulation materials in hypersonic aircraft cabins should focus on optimizing the pore structure, deepening development and design, and innovating special functions.

     

  • loading
  • [1]
    黄红岩, 苏力军, 雷朝帅, 等. 可重复使用热防护材料应用与研究进展[J]. 航空学报, 2020, 41(12): 023716. HUANG Hongyan, SU Lijun, LEI Chaoshuai, et al. Reusable thermal protective materials: application and research progress[J]. Acta Aeronautica et Astronautica Sinica, 2020, 41(12): 023716. (in Chinese

    HUANG Hongyan, SU Lijun, LEI Chaoshuai, et al. Reusable thermal protective materials: application and research progress[J]. Acta Aeronautica et Astronautica Sinica, 2020, 41(12): 023716. (in Chinese)
    [2]
    柳凤琦, 王鲁凯, 门静, 等. 气凝胶隔热材料制备及航天热防护应用研究进展[J]. 宇航材料工艺, 2022, 52(2): 26-47. LIU Fengqi, WANG Lukai, MEN Jing, et al. Progress on the preparation of aerogel thermal insulations and their applications in aerospace thermal protection system[J]. Aerospace Materials & Technology, 2022, 52(2): 26-47. (in Chinese doi: 10.12044/j.issn.1007-2330.2022.02.003

    LIU Fengqi, WANG Lukai, MEN Jing, et al. Progress on the preparation of aerogel thermal insulations and their applications in aerospace thermal protection system[J]. Aerospace Materials & Technology, 2022, 52(2): 26-47. (in Chinese) doi: 10.12044/j.issn.1007-2330.2022.02.003
    [3]
    邢亚娟, 孙波, 高坤, 等. 航天飞行器热防护系统及防热材料研究现状[J]. 宇航材料工艺, 2018, 48(4): 9-15. XING Yajuan, SUN Bo, GAO Kun, et al. Research status of thermal protection system and thermal protection materials for aerospace vehicles[J]. Aerospace Materials & Technology, 2018, 48(4): 9-15. (in Chinese doi: 10.12044/j.issn.1007-2330.2018.04.002

    XING Yajuan, SUN Bo, GAO Kun, et al. Research status of thermal protection system and thermal protection materials for aerospace vehicles[J]. Aerospace Materials & Technology, 2018, 48(4): 9-15. (in Chinese) doi: 10.12044/j.issn.1007-2330.2018.04.002
    [4]
    罗楚养, 尚梦菡, 朱龙宇, 等. 先进复合材料研究现状及其在机载武器上的应用展望[J]. 航空兵器, 2023, 30(2): 1-20. LUO Chuyang, SHANG Menghan, ZHU Longyu, et al. Research status of advanced composites and its application prospect in airborne weapons[J]. Aero Weaponry, 2023, 30(2): 1-20. (in Chinese doi: 10.12132/ISSN.1673-5048.2022.0246

    LUO Chuyang, SHANG Menghan, ZHU Longyu, et al. Research status of advanced composites and its application prospect in airborne weapons[J]. Aero Weaponry, 2023, 30(2): 1-20. (in Chinese) doi: 10.12132/ISSN.1673-5048.2022.0246
    [5]
    周尧, 吴波, 汪杨, 等. 隔热材料在航空电子设备中的应用[J]. 物联网技术, 2021, 11(11): 108-109. ZHOU Yao, WU Bo, WANG Yang, et al. Application of thermal insulation materials in avionics equipment[J]. Internet of Things Technologies, 2021, 11(11): 108-109. (in Chinese

    ZHOU Yao, WU Bo, WANG Yang, et al. Application of thermal insulation materials in avionics equipment[J]. Internet of Things Technologies, 2021, 11(11): 108-109. (in Chinese)
    [6]
    肖军, 程功, 赵融, 等. 一种机载导弹舱体内隔热层快速成型技术[J]. 航空兵器, 2018, 25(3): 83-87. XIAO Jun, CHENG Gong, ZHAO Rong, et al. Rapid forming technology of heat insulation coating on inner-wall for airborne missiles[J]. Aero Weaponry, 2018, 25(3): 83-87. (in Chinese

    XIAO Jun, CHENG Gong, ZHAO Rong, et al. Rapid forming technology of heat insulation coating on inner-wall for airborne missiles[J]. Aero Weaponry, 2018, 25(3): 83-87. (in Chinese)
    [7]
    吴海华, 任超群, 王俊, 等. 结构型隔热材料研究现状及发展趋势[J]. 化工新型材料, 2020, 48(1): 6-9, 14. WU Haihua, REN Chaoqun, WANG Jun, et al. Research status and development trend of structural thermal insulation material[J]. New Chemical Materials, 2020, 48(1): 6-9, 14. (in Chinese

    WU Haihua, REN Chaoqun, WANG Jun, et al. Research status and development trend of structural thermal insulation material[J]. New Chemical Materials, 2020, 48(1): 6-9, 14. (in Chinese)
    [8]
    王雪琴, 俞建勇, 丁彬. 纳米纤维隔热材料在航空航天领域的应用进展[J]. 纺织导报, 2018(增刊1): 68-72. WANG Xueqin, YU Jianyong, DING Bin. Application progress of nano-fiber thermal insulation materials in aerospace field[J]. China Textile Leader, 2018(Suppl.1): 68-72. (in Chinese

    WANG Xueqin, YU Jianyong, DING Bin. Application progress of nano-fiber thermal insulation materials in aerospace field[J]. China Textile Leader, 2018(Suppl.1): 68-72. (in Chinese)
    [9]
    邹军锋, 李文静, 刘斌, 等. 飞行器用热防护材料发展趋势[J]. 宇航材料工艺, 2015, 45(4): 10-15. ZOU Junfeng, LI Wenjing, LIU Bin, et al. Development of thermal protection materials for aircraft[J]. Aerospace Materials & Technology, 2015, 45(4): 10-15. (in Chinese

    ZOU Junfeng, LI Wenjing, LIU Bin, et al. Development of thermal protection materials for aircraft[J]. Aerospace Materials & Technology, 2015, 45(4): 10-15. (in Chinese)
    [10]
    毕成, 赵越, 唐桂华. 纳米超级隔热材料导热系数研究[C]//中国力学大会2013年度学术研讨会论文集. 西安: 西安交通大学, 2013: 416. BI Cheng, ZHAO Yue, TANG Guihua. Research on thermal conductivity of nano super insulation materials[C]//Collected Papers from the 2013 Academic Symposium of the Chinese Mechanics Conference. Xi’an: Xi’an Jiaotong University 2013: 416. (in Chinese

    BI Cheng, ZHAO Yue, TANG Guihua. Research on thermal conductivity of nano super insulation materials[C]//Collected Papers from the 2013 Academic Symposium of the Chinese Mechanics Conference. Xi’an: Xi’an Jiaotong University 2013: 416. (in Chinese)
    [11]
    郝栋连, 冯慧, 苏悦, 等. 高温隔热材料的研究现状及发展趋势[J]. 合成纤维工业, 2022, 45(1): 68-73. HAO Donglian, FENG Hui, SU Yue, et al. Research status and development trend of high temperature thermal insulation materials[J]. China Synthetic Fiber Industry, 2022, 45(1): 68-73. (in Chinese doi: 10.3969/j.issn.1001-0041.2022.01.013

    HAO Donglian, FENG Hui, SU Yue, et al. Research status and development trend of high temperature thermal insulation materials[J]. China Synthetic Fiber Industry, 2022, 45(1): 68-73. (in Chinese) doi: 10.3969/j.issn.1001-0041.2022.01.013
    [12]
    杨世铭, 陶文铨. 传热学[M]. 3版. 北京: 高等教育出版社, 1998: 35-37. YANG Shiming, TAO Wenquan. Heat transfer[M]. 3rd ed. Beijing: Higher Education Press, 1998: 35-37. (in Chinese

    YANG Shiming, TAO Wenquan. Heat transfer[M]. 3rd ed. Beijing: Higher Education Press, 1998: 35-37. (in Chinese)
    [13]
    史振宇. ZrO2气凝胶材料的微观结构调控及其隔热性能研究[D]. 杭州: 浙江大学, 2018. SHI Zhenyu. Study on microstructure control and thermal insulation performance of ZrO2 aerogels[D]. Hangzhou: Zhejiang University, 2018. (in Chinese

    SHI Zhenyu. Study on microstructure control and thermal insulation performance of ZrO2 aerogels[D]. Hangzhou: Zhejiang University, 2018. (in Chinese)
    [14]
    李泽朋, 郭松青, 王维波. 稳态法测量不良导体导热系数的改进设计[J]. 实验室研究与探索, 2015, 34(6): 77-79. LI Zepeng, GUO Songqing, WANG Weibo. An improved designation of measuring thermal conductivity coefficient of poor conductor by steady-state method[J]. Research and Exploration in Laboratory, 2015, 34(6): 77-79. (in Chinese doi: 10.3969/j.issn.1006-7167.2015.06.020

    LI Zepeng, GUO Songqing, WANG Weibo. An improved designation of measuring thermal conductivity coefficient of poor conductor by steady-state method[J]. Research and Exploration in Laboratory, 2015, 34(6): 77-79. (in Chinese) doi: 10.3969/j.issn.1006-7167.2015.06.020
    [15]
    姚凯, 郑会保, 刘运传, 等. 导热系数测试方法概述[J]. 理化检验(物理分册), 2018, 54(10): 741-747. YAO Kai, ZHENG Huibao, LIU Yunchuan, et al. Survey of measurement methods for thermal conductivity[J]. Physical Testing and Chemical Analysis (Part A (Physical Testing)), 2018, 54(10): 741-747. (in Chinese

    YAO Kai, ZHENG Huibao, LIU Yunchuan, et al. Survey of measurement methods for thermal conductivity[J]. Physical Testing and Chemical Analysis (Part A (Physical Testing)), 2018, 54(10): 741-747. (in Chinese)
    [16]
    李俊宁, 胡子君, 李增耀, 等. 纳米超级隔热材料的设计与制备[J]. 宇航材料工艺, 2013, 43(2): 26-30. LI Junning, HU Zijun, LI Zengyao, et al. Designing and synthesis of nano-superinsulating materials[J]. Aerospace Materials & Technology, 2013, 43(2): 26-30. (in Chinese doi: 10.3969/j.issn.1007-2330.2013.02.006

    LI Junning, HU Zijun, LI Zengyao, et al. Designing and synthesis of nano-superinsulating materials[J]. Aerospace Materials & Technology, 2013, 43(2): 26-30. (in Chinese) doi: 10.3969/j.issn.1007-2330.2013.02.006
    [17]
    . 高海波. 耐高温ZrO2改性气凝胶及其复合隔热材料的制备与性能研究[D]. 杭州: 浙江大学, 2017. GAO Haibo. Study on preparation and properties of high temperature resistant ZrO2 modified aerogel and its composite thermal insulation materials[D]. Hangzhou: Zhejiang University, 2017. (in Chinese

    GAO Haibo. Study on preparation and properties of high temperature resistant ZrO2 modified aerogel and its composite thermal insulation materials[D]. Hangzhou: Zhejiang University, 2017. (in Chinese)
    [18]
    王慧利, 邓建国, 舒远杰. 多孔隔热材料的研究现状与进展[J]. 化工新型材料, 2011, 39(12): 18-21. WANG Huili, DENG Jianguo, SHU Yuanjie. Study of porous thermal insulation materials: present status and development[J]. New Chemical Materials, 2011, 39(12): 18-21. (in Chinese doi: 10.3969/j.issn.1006-3536.2011.12.006

    WANG Huili, DENG Jianguo, SHU Yuanjie. Study of porous thermal insulation materials: present status and development[J]. New Chemical Materials, 2011, 39(12): 18-21. (in Chinese) doi: 10.3969/j.issn.1006-3536.2011.12.006
    [19]
    SUTCU M. Influence of expanded vermiculite on physical properties and thermal conductivity of clay bricks[J]. Ceramics International, 2015, 41(2): 2819-2827. doi: 10.1016/j.ceramint.2014.10.102
    [20]
    WANG Qingtao, YU Huaqin, BEN Tao, et al. Preparation of lightweight high-strength thermal insulation and decoration integration porous ceramics using red mud[J]. Journal of the Australian Ceramic Society, 2020, 56(1): 91-98. doi: 10.1007/s41779-019-00374-y
    [21]
    ZHOU Wenying, YAN Wen, LI Nan, et al. Fabrication of mullite-corundum foamed ceramics for thermal insulation and effect of micro-pore-foaming agent on their properties[J]. Journal of Alloys and Compounds, 2019, 785: 1030-1037. doi: 10.1016/j.jallcom.2019.01.212
    [22]
    郑彧, 韦中华, 张阳, 等. 多孔二氧化锆基隔热材料的制备及性能[J]. 硅酸盐通报, 2020, 39(11): 3643-3648. ZHENG Yu, WEI Zhonghua, ZHANG Yang, et al. Preparation and properties of porous zirconia based thermal insulation materials[J]. Bulletin of the Chinese Ceramic Society, 2020, 39(11): 3643-3648. (in Chinese

    ZHENG Yu, WEI Zhonghua, ZHANG Yang, et al. Preparation and properties of porous zirconia based thermal insulation materials[J]. Bulletin of the Chinese Ceramic Society, 2020, 39(11): 3643-3648. (in Chinese)
    [23]
    WU Zhen, SUN Luchao, WANG Jingyang. Progresses on the optimal processing and properties of highly porous rare earth silicate thermal insulators[J]. Journal of the Korean Ceramic Society, 2018, 55(6): 527-555. doi: 10.4191/kcers.2018.55.6.12
    [24]
    WU Zhen, SUN Luchao, WANG Jingyang. Synthesis and characterization of porous Y2SiO5 with low linear shrinkage, high porosity and high strength[J]. Ceramics International, 2016, 42(13): 14894-14902. doi: 10.1016/j.ceramint.2016.06.128
    [25]
    唐庆, 曾敏玉, 郭佳明, 等. 利用发泡-注凝-冷冻干燥法制备多孔Y2SiO5陶瓷隔热材料的研究[J]. 应用化工, 2022, 51(2): 437-441. TANG Qing, ZENG Minyu, GUO Jiaming, et al. Study on preparation of porous Y2SiO5 ceramics thermal insulation materials by foam-gelcasting-freeze drying method[J]. Applied Chemical Industry, 2022, 51(2): 437-441. (in Chinese doi: 10.3969/j.issn.1671-3206.2022.02.027

    TANG Qing, ZENG Minyu, GUO Jiaming, et al. Study on preparation of porous Y2SiO5 ceramics thermal insulation materials by foam-gelcasting-freeze drying method[J]. Applied Chemical Industry, 2022, 51(2): 437-441. (in Chinese) doi: 10.3969/j.issn.1671-3206.2022.02.027
    [26]
    LEI Shiwen, GUO Quangui, ZHANG Dongqing, et al. Preparation and properties of the phenolic foams with controllable nanometer pore structure[J]. Journal of Applied Polymer Science, 2010, 117(6): 3545-3550. doi: 10.1002/app.32280
    [27]
    殷忠义, 雷玥, 郑金煌. 酚醛树脂基泡沫碳材料的烧蚀与隔热性能[J]. 宇航材料工艺, 2020, 50(2): 48-51. YIN Zhongyi, LEI Yue, ZHENG Jinhuang. Oxyacetylene torch testing and thermal insulation property of phenolic carbon foam[J]. Aerospace Materials & Technology, 2020, 50(2): 48-51. (in Chinese doi: 10.12044/j.issn.1007-2330.2020.02.009

    YIN Zhongyi, LEI Yue, ZHENG Jinhuang. Oxyacetylene torch testing and thermal insulation property of phenolic carbon foam[J]. Aerospace Materials & Technology, 2020, 50(2): 48-51. (in Chinese) doi: 10.12044/j.issn.1007-2330.2020.02.009
    [28]
    楚晖娟, 朱宝库, 徐又一. 聚酯铵盐粉末发泡制备聚酰亚胺泡沫材料的研究[J]. 广东化工, 2007, 34(12): 14-17. CHU Huijuan, ZHU Baoku, XU Youyi. Studies on polyimide foams prepared from poly(ester-amine salt) precursor powder[J]. Guangdong Chemical Industry, 2007, 34(12): 14-17. (in Chinese doi: 10.3969/j.issn.1007-1865.2007.12.006

    CHU Huijuan, ZHU Baoku, XU Youyi. Studies on polyimide foams prepared from poly(ester-amine salt) precursor powder[J]. Guangdong Chemical Industry, 2007, 34(12): 14-17. (in Chinese) doi: 10.3969/j.issn.1007-1865.2007.12.006
    [29]
    杨富凯, 张玉迪, 邓玉媛, 等. 聚酰亚胺泡沫材料的性能研究概述[J]. 中国塑料, 2020, 34(11): 94-101. YANG Fukai, ZHANG Yudi, DENG Yuyuan, et al. Research progress in polyimide foam materials[J]. China Plastics, 2020, 34(11): 94-101. (in Chinese

    YANG Fukai, ZHANG Yudi, DENG Yuyuan, et al. Research progress in polyimide foam materials[J]. China Plastics, 2020, 34(11): 94-101. (in Chinese)
    [30]
    王伟. 单组分高阻燃喷涂型聚氨酯泡沫材料的研制[J]. 化学推进剂与高分子材料, 2022, 20(6): 50-54. WANG Wei. Development of one-component highly flame-retardant spray-type polyurethane foam material[J]. Chemical Propellants & Polymeric Materials, 2022, 20(6): 50-54. (in Chinese

    WANG Wei. Development of one-component highly flame-retardant spray-type polyurethane foam material[J]. Chemical Propellants & Polymeric Materials, 2022, 20(6): 50-54. (in Chinese)
    [31]
    闫曦, 雷世文, 陶则超, 等. 氧化石墨烯/酚醛树脂基泡沫炭的制备和隔热性能研究[J]. 固体火箭技术, 2022, 45(1): 44-49. YAN Xi, LEI Shiwen, TAO Zechao, et al. Preparation and thermal insulation property of graphene oxide/phenolic resin-based carbon foams[J]. Journal of Solid Rocket Technology, 2022, 45(1): 44-49. (in Chinese doi: 10.7673/j.issn.1006-2793.2022.01.006

    YAN Xi, LEI Shiwen, TAO Zechao, et al. Preparation and thermal insulation property of graphene oxide/phenolic resin-based carbon foams[J]. Journal of Solid Rocket Technology, 2022, 45(1): 44-49. (in Chinese) doi: 10.7673/j.issn.1006-2793.2022.01.006
    [32]
    郑梓璇, 王德刚, 梁国杰, 等. 聚氨酯泡沫浸渍酚醛树脂溶液制备炭泡沫隔热材料研究[J]. 材料导报, 2022, 36(7): 227-233. ZHENG Zixuan, WANG Degang, LIANG Guojie, et al. Preparation of carbon foam insulation material from polyurethane foam impregnated with phenolic resin solution[J]. Materials Reports, 2022, 36(7): 227-233. (in Chinese

    ZHENG Zixuan, WANG Degang, LIANG Guojie, et al. Preparation of carbon foam insulation material from polyurethane foam impregnated with phenolic resin solution[J]. Materials Reports, 2022, 36(7): 227-233. (in Chinese)
    [33]
    QIN Yuyang, PENG Qingyu, ZHU Yue, et al. Lightweight, mechanically flexible and thermally superinsulating rGO/polyimide nanocomposite foam with an anisotropic microstructure[J]. Nanoscale Advances, 2019, 1(12): 4895-4903. doi: 10.1039/C9NA00444K
    [34]
    李寅, 吴文敬, 王晓静, 等. 高硅氧纤维/酚醛泡沫复合材料的结构与性能[J]. 宇航材料工艺, 2018, 48(5): 26-29. LI Yin, WU Wenjing, WANG Xiaojing, et al. Structure and properties of high silica glass fiber/phenolic foam composites[J]. Aerospace Materials & Technology , 2018, 48(5): 26-29. (in Chinese

    LI Yin, WU Wenjing, WANG Xiaojing, et al. Structure and properties of high silica glass fiber/phenolic foam composites[J]. Aerospace Materials & Technology , 2018, 48(5): 26-29. (in Chinese)
    [35]
    ZHENG Hongxia, SHAN Haoru, BAI Ying, et al. Assembly of silica aerogels within silica nanofibers: towards a super-insulating flexible hybrid aerogel membrane[J]. RSC Advances, 2015, 5(111): 91813-91820. doi: 10.1039/C5RA18137B
    [36]
    毛雪. ZrO2基纳米纤维膜的柔性机制及其应用研究[D]. 上海: 东华大学, 2016. MAO Xue. Study on flexibility mechanism and application of ZrO2 based nanofiber membrane[D]. Shanghai: Donghua University, 2016. (in Chinese

    MAO Xue. Study on flexibility mechanism and application of ZrO2 based nanofiber membrane[D]. Shanghai: Donghua University, 2016. (in Chinese)
    [37]
    ZHANG Xiaoshan, WANG Bing, WU Nan, et al. Flexible and thermal-stable SiZrOC nanofiber membranes with low thermal conductivity at high-temperature[J]. Journal of the European Ceramic Society, 2020, 40(5): 1877-1885. doi: 10.1016/j.jeurceramsoc.2020.01.037
    [38]
    郭建业, 王冬, 苏力军, 等. 气凝胶掺杂对玻璃纤维毡隔热性能的影响[J]. 无机盐工业, 2023, 55(11): 53-57. GUO Jianye, WANG Dong, SU Lijun, et al. Effect of aerogel doping on thermal insulation performance of glass fiber felt[J]. Inorganic Chemicals Industry, 2023, 55(11): 53-57. (in Chinese

    GUO Jianye, WANG Dong, SU Lijun, et al. Effect of aerogel doping on thermal insulation performance of glass fiber felt[J]. Inorganic Chemicals Industry, 2023, 55(11): 53-57. (in Chinese)
    [39]
    董建红. 轻质氧化锆基纤维隔热材料的制备及性能研究[D]. 济南: 山东大学, 2022. DONG Jianhong. Preparation and properties of lightweight zirconia-based fiber thermal insulation materials[D]. Jinan: Shandong University, 2022. (in Chinese

    DONG Jianhong. Preparation and properties of lightweight zirconia-based fiber thermal insulation materials[D]. Jinan: Shandong University, 2022. (in Chinese)
    [40]
    薛云嘉, 刘家臣. 柔性纤维毡的制备及弹性与隔热性能研究[J]. 材料导报, 2023, 37(3): 251-256. XUE Yunjia, LIU Jiachen. Preparation and elasticity & thermal insulation properties of flexible fiber blankets[J]. Materials Reports, 2023, 37(3): 251-256. (in Chinese

    XUE Yunjia, LIU Jiachen. Preparation and elasticity & thermal insulation properties of flexible fiber blankets[J]. Materials Reports, 2023, 37(3): 251-256. (in Chinese)
    [41]
    毛丽贺, 尹春晖, 焦亚男, 等. 石英纤维柔性缝合隔热材料的制备及其隔热性能[J]. 天津工业大学学报, 2021, 40(5): 37-41. MAO Lihe, YIN Chunhui, JIAO Yanan, et al. Preparation of quartz fibre flexible suture thermal insulation material and its thermal insulation performance[J]. Journal of Tiangong University, 2021, 40(5): 37-41. (in Chinese doi: 10.3969/j.issn.1671-024x.2021.05.006

    MAO Lihe, YIN Chunhui, JIAO Yanan, et al. Preparation of quartz fibre flexible suture thermal insulation material and its thermal insulation performance[J]. Journal of Tiangong University, 2021, 40(5): 37-41. (in Chinese) doi: 10.3969/j.issn.1671-024x.2021.05.006
    [42]
    郭建业, 赵英民, 吴朝军, 等. 温度对石英纤维毡隔热性能的影响[J]. 材料导报, 2020, 34(24): 24019-24022, 24033. GUO Jianye, ZHAO Yingmin, WU Chaojun, et al. Effect of temperature on thermal insulation performance of quartz fiber felt[J]. Materials Reports, 2020, 34(24): 24019-24022, 24033. (in Chinese doi: 10.11896/cldb.19070145

    GUO Jianye, ZHAO Yingmin, WU Chaojun, et al. Effect of temperature on thermal insulation performance of quartz fiber felt[J]. Materials Reports, 2020, 34(24): 24019-24022, 24033. (in Chinese) doi: 10.11896/cldb.19070145
    [43]
    瑚佩, 姜勇刚, 张忠明, 等. 耐高温、高强度隔热复合材料研究进展[J]. 材料导报, 2020, 34(7): 7082-7090. HU Pei, JIANG Yonggang, ZHANG Zhongming, et al. Research progress on high-temperature insulation composites with high mechanical property[J]. Materials Reports, 2020, 34(7): 7082-7090. (in Chinese doi: 10.11896/cldb.19040275

    HU Pei, JIANG Yonggang, ZHANG Zhongming, et al. Research progress on high-temperature insulation composites with high mechanical property[J]. Materials Reports, 2020, 34(7): 7082-7090. (in Chinese) doi: 10.11896/cldb.19040275
    [44]
    LIU Benxue, LIU Xiaochan, ZHAO Xinfu, et al. High-strength, thermal-stable ZrO2 aerogel from polyacetylacetonatozirconium[J]. Chemical Physics Letters, 2019, 715: 109-114. doi: 10.1016/j.cplett.2018.11.025
    [45]
    ZHANG Ce, LIU Shengtang, QI Yunchuan, et al. Conformal carbon coated TiO2 aerogel as superior anode for lithium-ion batteries[J]. Chemical Engineering Journal, 2018, 351: 825-831. doi: 10.1016/j.cej.2018.06.125
    [46]
    ZHANG Xinhai, LI Wei, SONG Pengyu, et al. Double-cross-linking strategy for preparing flexible, robust, and multifunctional polyimide aerogel[J]. Chemical Engineering Journal, 2020, 381: 122784. doi: 10.1016/j.cej.2019.122784
    [47]
    LEE J H, PARK S J. Recent advances in preparations and applications of carbon aerogels: a review[J]. Carbon, 2020, 163: 1-18. doi: 10.1016/j.carbon.2020.02.073
    [48]
    LIANG Caiyun, WANG Zhijiang. Eggplant-derived SiC aerogels with high-performance electromagnetic wave absorption and thermal insulation properties[J]. Chemical Engineering Journal, 2019, 373: 598-605. doi: 10.1016/j.cej.2019.05.076
    [49]
    LI Xiafei, FENG Junzong, JIANG Yonggang, et al. Preparation and properties of PAN-based carbon fiber-reinforced SiCO aerogel composites[J]. Ceramics International, 2019, 45(14): 17064-17072. doi: 10.1016/j.ceramint.2019.05.258
    [50]
    HOU Xianbo, ZHANG Rubing, FANG Daining. An ultralight silica-modified ZrO2-SiO2 aerogel composite with ultra-low thermal conductivity and enhanced mechanical strength[J]. Scripta Materialia, 2018, 143: 113-116. doi: 10.1016/j.scriptamat.2017.09.028
    [51]
    ZHANG Xiang, ZHANG Tao, YI Zhehan, et al. Multiscale mullite fiber/whisker reinforced silica aerogel nanocomposites with enhanced compressive strength and thermal insulation performance[J]. Ceramics International, 2020, 46(18): 28561-28568. doi: 10.1016/j.ceramint.2020.08.013
    [52]
    LIU Benxue, GAO Min, LIU Xiaochan, et al. Thermally stable nanoporous ZrO2/SiO2 hybrid aerogels for thermal insulation[J]. ACS Applied Nano Materials, 2019, 2(11): 7299-7310. doi: 10.1021/acsanm.9b01791
    [53]
    李占峰, 刘本学, 刘晓婵, 等. 氧化锆湿凝胶中乙酰丙酮配体的脱除机理及气凝胶复合材料的制备[J]. 高等学校化学学报, 2021, 42(9): 2904-2910. LI Zhanfeng, LIU Benxue, LIU Xiaochan, et al. Mechanism of the removal of acetylacetone ligands in zirconia wet gel and fabrication of zirconia aerogel composites[J]. Chemical Journal of Chinese Universities, 2021, 42(9): 2904-2910. (in Chinese

    LI Zhanfeng, LIU Benxue, LIU Xiaochan, et al. Mechanism of the removal of acetylacetone ligands in zirconia wet gel and fabrication of zirconia aerogel composites[J]. Chemical Journal of Chinese Universities, 2021, 42(9): 2904-2910. (in Chinese)
    [54]
    PENG Fei, JIANG Yonggang, FENG Jian, et al. Foreign element doping and thermal stability of alumina aerogels[J]. Journal of the American Ceramic Society, 2022, 105(3): 2288-2299. doi: 10.1111/jace.18202
    [55]
    PENG Fei, JIANG Yonggang, FENG Junzong, et al. A facile method to fabricate monolithic alumina-silica aerogels with high surface areas and good mechanical properties[J]. Journal of the European Ceramic Society, 2020, 40(6): 2480-2488. doi: 10.1016/j.jeurceramsoc.2020.01.058
    [56]
    ZOU Wenbing, WANG Xiaodong, WU Yu, et al. Opacifier embedded and fiber reinforced alumina-based aerogel composites for ultra-high temperature thermal insulation[J]. Ceramics International, 2019, 45(1): 644-650. doi: 10.1016/j.ceramint.2018.09.223
    [57]
    YU Huijun, JIANG Yiting, LU Yufa, et al. Quartz fiber reinforced Al2O3-SiO2 aerogel composite with highly thermal stability by ambient pressure drying[J]. Journal of Non-Crystalline Solids, 2019, 505: 79-86. doi: 10.1016/j.jnoncrysol.2018.10.039
    [58]
    PENG Fei, JIANG Yonggang, FENG Jian, et al. Thermally insulating, fiber-reinforced alumina-silica aerogel composites with ultra-low shrinkage up to 1 500 ℃[J]. Chemical Engineering Journal, 2021, 411: 128402. doi: 10.1016/j.cej.2021.128402
    [59]
    ZHANG Rubing, YE Changshou, WANG Baolin. Novel Al2O3-SiO2 aerogel/porous zirconia composite with ultra-low thermal conductivity[J]. Journal of Porous Materials, 2018, 25(1): 171-178. doi: 10.1007/s10934-017-0430-1
    [60]
    WANG K Y, LIU R X, ZHANG L, et al. Preparation and thermal stability of quartz fiber reinforced silicon doped aluminum aerogel composites[J]. IOP Conference Series: Materials Science and Engineering, 2019, 678(1): 012076. doi: 10.1088/1757-899X/678/1/012076
    [61]
    ZHAO Junjie, DUAN Yuanyuan, WANG Xiaodong, et al. Radiative properties and heat transfer characteristics of fiber-loaded silica aerogel composites for thermal insulation[J]. International Journal of Heat and Mass Transfer, 2012, 55(19/20): 5196-5204.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (417) PDF downloads(74) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return