Chemical Industry and Engineering Progress ›› 2025, Vol. 44 ›› Issue (S1): 368-387.DOI: 10.16085/j.issn.1000-6613.2025-0464
• Materials science and technology • Previous Articles
ZHAI Hengyan1(
), JIN Yufan1, LI Shuihan1, YIN Yanjun1,2, WANG Jiping1,2, JIA Xianfeng1,2(
)
Received:2025-03-28
Revised:2025-05-19
Online:2025-11-24
Published:2025-10-25
Contact:
JIA Xianfeng
翟恒艳1(
), 金宇凡1, 黎水涵1, 尹衍军1,2, 王季平1,2, 贾献峰1,2(
)
通讯作者:
贾献峰
作者简介:翟恒艳(2004—),女,本科生,研究方向为轻质碳纤维/酚醛复合材料。E-mail:zhaihengyan0424@163.com。
基金资助:CLC Number:
ZHAI Hengyan, JIN Yufan, LI Shuihan, YIN Yanjun, WANG Jiping, JIA Xianfeng. Research progress on preparation and modification of lightweight carbon fiber/phenolic composite materials[J]. Chemical Industry and Engineering Progress, 2025, 44(S1): 368-387.
翟恒艳, 金宇凡, 黎水涵, 尹衍军, 王季平, 贾献峰. 轻质碳纤维/酚醛复合材料的制备与改性研究进展[J]. 化工进展, 2025, 44(S1): 368-387.
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URL: https://hgjz.cip.com.cn/EN/10.16085/j.issn.1000-6613.2025-0464
| 材料 | 浸渍-固化工艺 | 密度/g·cm-³ | 力学性能/MPa | 热导率/W·m-1·K-1 | 线烧蚀率/mm·s-1 | 参考文献 |
|---|---|---|---|---|---|---|
| PICA | 真空/高温 | 0.22~0.37 | 1.1029 | 0.40~1.70 | — | [ |
| PICA-flex | 真空/高温 | 0.15~0.35 | 0.24~0.69 | 0.12 | — | [ |
| CBCF-Si-RF | 真空/低温 | 0.309~0.375 | 0.759~2.940 | 0.085~0.136 | — | [ |
| PICA | 常压/低温 | 0.27~0.47 | 2.2~16.5 | 0.056~0.062 | — | [ |
| PICA | 常压/低温 | 0.27~0.43 | 0.45~3.12 | 0.08 | — | [ |
| PAC | 真空/低温 | 0.27~0.40 | 2.2~30.5 | 0.056~0.068 | 0.0147 | [ |
| 碳纤维/有机硅-酚醛气凝胶(CFSP) | 常压/低温 | 0.25~0.28 | 0.8~1.8 | 0.054~0.056 | 0.227 | [ |
| SiCF/PR | 真空/高温 | 0.30~0.35 | 4.57~5.83 | 0.068 | 0.0109~0.0282 | [ |
| NCF-PR | 真空/高温 | 0.270~0.370 | 0.83~11.02 | 0.093~0.230 | 0.029 | [ |
| CF-Si-PR | 真空/高温 | 0.402~0.463 | 0.33~2.44 | 0.089~0.116 | 0.117 | [ |
| PSZ-PR/CF | 真空/低温 | 0.485~0.686 | 23.35~124.75 | 约0.126 | 0.018 | [ |
| CF-Si-PR | 真空/高温 | 0.30 | 2.45~4.18 | 0.063~0.091 | — | [ |
| CF/PFA/SiA | 真空/高温 | 0.323~0.381 | 2.1~4.1 | 0.081 | — | [ |
| ZrC-C/Ph | 真空/高温 | 0.322~0.437 | — | 0.129~0.150 | 0.015~0.075 | [ |
| SiC-C/Ph | 真空/高温 | 0.322~0.409 | 5~57 | 0.129~0.164 | 0.032~0.075 | [ |
| C-QF/PSi | 真空/高温 | 0.460~0.515 | 5.96~17.01 | 约0.112 | 0.017 | [ |
| Cf/TS-PR | 真空/高温 | 0.30 | 1.20 | 0.0756 | 0.003 | [ |
| YS-CFs/PR | 真空/高温 | 0.474~0.540 | 1.00~1.29 | 0.142~0.146 | 0.00500~0.00844 | [ |
| 3D TPS | 真空/高温 | 0.30~0.70 | 2~57 | 0.078~0.120 | 0.011 | [ |
| CPA | 真空/高温 | 0.34 | — | 0.057 | 0.012 | [ |
| PCS薄层(PL/PR/Cf) | 真空/高温 | 0.264~0.307 | 0.96~12.89 | 0.121~0.178 | 0.089 | [ |
| C-Ph/Si/GO | 常压/低温 | 0.32~0.35 | 45.63 | 0.1 | 0.215 | [ |
| LIMC | 真空/低温 | 0.74~1.13 | 1.24~212 | 0.136~0.385 | 0.0132~0.0176 | [ |
| TiCF/PR | 真空/高温 | 0.30~0.32 | 0.6~2.4 | 0.034 | 0.0262 | [ |
| 材料 | 浸渍-固化工艺 | 密度/g·cm-³ | 力学性能/MPa | 热导率/W·m-1·K-1 | 线烧蚀率/mm·s-1 | 参考文献 |
|---|---|---|---|---|---|---|
| PICA | 真空/高温 | 0.22~0.37 | 1.1029 | 0.40~1.70 | — | [ |
| PICA-flex | 真空/高温 | 0.15~0.35 | 0.24~0.69 | 0.12 | — | [ |
| CBCF-Si-RF | 真空/低温 | 0.309~0.375 | 0.759~2.940 | 0.085~0.136 | — | [ |
| PICA | 常压/低温 | 0.27~0.47 | 2.2~16.5 | 0.056~0.062 | — | [ |
| PICA | 常压/低温 | 0.27~0.43 | 0.45~3.12 | 0.08 | — | [ |
| PAC | 真空/低温 | 0.27~0.40 | 2.2~30.5 | 0.056~0.068 | 0.0147 | [ |
| 碳纤维/有机硅-酚醛气凝胶(CFSP) | 常压/低温 | 0.25~0.28 | 0.8~1.8 | 0.054~0.056 | 0.227 | [ |
| SiCF/PR | 真空/高温 | 0.30~0.35 | 4.57~5.83 | 0.068 | 0.0109~0.0282 | [ |
| NCF-PR | 真空/高温 | 0.270~0.370 | 0.83~11.02 | 0.093~0.230 | 0.029 | [ |
| CF-Si-PR | 真空/高温 | 0.402~0.463 | 0.33~2.44 | 0.089~0.116 | 0.117 | [ |
| PSZ-PR/CF | 真空/低温 | 0.485~0.686 | 23.35~124.75 | 约0.126 | 0.018 | [ |
| CF-Si-PR | 真空/高温 | 0.30 | 2.45~4.18 | 0.063~0.091 | — | [ |
| CF/PFA/SiA | 真空/高温 | 0.323~0.381 | 2.1~4.1 | 0.081 | — | [ |
| ZrC-C/Ph | 真空/高温 | 0.322~0.437 | — | 0.129~0.150 | 0.015~0.075 | [ |
| SiC-C/Ph | 真空/高温 | 0.322~0.409 | 5~57 | 0.129~0.164 | 0.032~0.075 | [ |
| C-QF/PSi | 真空/高温 | 0.460~0.515 | 5.96~17.01 | 约0.112 | 0.017 | [ |
| Cf/TS-PR | 真空/高温 | 0.30 | 1.20 | 0.0756 | 0.003 | [ |
| YS-CFs/PR | 真空/高温 | 0.474~0.540 | 1.00~1.29 | 0.142~0.146 | 0.00500~0.00844 | [ |
| 3D TPS | 真空/高温 | 0.30~0.70 | 2~57 | 0.078~0.120 | 0.011 | [ |
| CPA | 真空/高温 | 0.34 | — | 0.057 | 0.012 | [ |
| PCS薄层(PL/PR/Cf) | 真空/高温 | 0.264~0.307 | 0.96~12.89 | 0.121~0.178 | 0.089 | [ |
| C-Ph/Si/GO | 常压/低温 | 0.32~0.35 | 45.63 | 0.1 | 0.215 | [ |
| LIMC | 真空/低温 | 0.74~1.13 | 1.24~212 | 0.136~0.385 | 0.0132~0.0176 | [ |
| TiCF/PR | 真空/高温 | 0.30~0.32 | 0.6~2.4 | 0.034 | 0.0262 | [ |
| [1] | 李仲平, 冯志海, 徐樑华, 等. 我国高性能纤维及其复合材料发展战略研究[J]. 中国工程科学, 2020, 22(5): 28-36. |
| LI Zhongping, FENG Zhihai, XU Lianghua, et al. Development strategies for China’s high-performance fibers and their composites[J]. Strategic Study of CAE, 2020, 22(5): 28-36. | |
| [2] | 解维华, 韩国凯, 孟松鹤, 等. 返回舱/空间探测器热防护结构发展现状与趋势[J]. 航空学报, 2019, 40(8): 022792. |
| XIE Weihua, HAN Guokai, MENG Songhe, et al. Development status and trend of thermal protection structure for return capsules and space probes[J]. Acta Aeronautica et Astronautica Sinica, 2019, 40(8): 022792. | |
| [3] | 冯志海, 师建军, 孔磊, 等. 航天飞行器热防护系统低密度烧蚀防热材料研究进展[J]. 材料工程, 2020, 48(8): 14-24. |
| FENG Zhihai, SHI Jianjun, KONG Lei, et al. Research progress in low-density ablative materials for thermal protection system of aerospace flight vehicles[J]. Journal of Materials Engineering, 2020, 48(8): 14-24. | |
| [4] | 李亮, 任智毅, 王鹏, 等. 轻质树脂基防隔热一体化材料研究进展[J]. 空天防御, 2024, 7(6): 58-75. |
| LI Liang, REN Zhiyi, WANG Peng, et al. Research progress on lightweight resin-based thermal protection materials[J]. Air & Space Defense, 2024, 7(6): 58-75. | |
| [5] | TRUMBLE Kerry A, COZMUTA Ioana, SEPKA Steve, et al. Postflight aerothermal analysis of the stardust sample return capsule[J]. Journal of Spacecraft and Rockets, 2010, 47(5): 765-774. |
| [6] | AGRAWAL Parul, CHAVEZ-GARCIA Jose F, PHAM John. Fracture in phenolic impregnated carbon ablator[J]. Journal of Spacecraft and Rockets, 2013, 50(4): 735-741. |
| [7] | MILOS Frank S, GASCH Matthew J, PRABHU Dinesh K. Conformal phenolic impregnated carbon ablator arcjet testing, ablation, and thermal response[J]. Journal of Spacecraft and Rockets, 2015, 52(3): 804-812. |
| [8] | STACKPOOLE Margaret M, GHANDEHARI Ehson M, THORNTON Jeremy J, et al. Method of fabricating a flexible, low-density thermal protection material: US10427807B1[P]. 2019-10-01. |
| [9] | MAHZARI Milad, BRAUN Robert D, WHITE Todd R, et al. Inverse estimation of the Mars science laboratory entry aeroheating and heatshield response[J]. Journal of Spacecraft and Rockets, 2015, 52(4): 1203-1216. |
| [10] | NATALI Maurizio, PURI Ivan, KENNY José M, et al. Microstructure and ablation behavior of an affordable and reliable nanostructured phenolic impregnated carbon ablator (PICA)[J]. Polymer Degradation and Stability, 2017, 141: 84-96. |
| [11] | HONG Changqing, HAN Jiecai, ZHANG Xinghong, et al. Novel phenolic impregnated 3-D Fine-woven pierced carbon fabric composites: Microstructure and ablation behavior[J]. Composites Part B: Engineering, 2012, 43(5): 2389-2394. |
| [12] | CHENG Haiming, HONG Changqing, ZHANG Xinghong, et al. Super flame-retardant lightweight rime-like carbon-phenolic nanofoam[J]. Scientific Reports, 2016, 6: 33480. |
| [13] | CHENG Haiming, XUE Huafei, HONG Changqing, et al. Characterization, thermal and mechanical properties and hydrophobicity of resorcinol-furfural/silicone hybrid aerogels synthesized by ambient-pressure drying[J]. RSC Advances, 2016, 6(79): 75793-75804. |
| [14] | ZHANG Jun, FANG Guodong, YANG Lingwei, et al. Comparison of ablative and compressive mechanical behavior of several PICA-like ablative materials[J]. Science China Technological Sciences, 2020, 63(8): 1478-1486. |
| [15] | 贾献峰, 刘旭华, 乔文明, 等. 酚醛浸渍碳烧蚀体(PICA)的制备、结构及性能[J]. 宇航材料工艺, 2016, 46(1): 77-80, 90. |
| JIA Xianfeng, LIU Xuhua, QIAO Wenming, et al. Preparation and properties of phenolic impregnated carbon ablator[J]. Aerospace Materials & Technology, 2016, 46(1): 77-80, 90. | |
| [16] | 杨威, 贾献峰, 乔文明, 等. 刚性短切碳纤维预制体和酚醛浸渍碳烧蚀体的制备及性能[J]. 宇航材料工艺, 2016, 46(2): 13-18. |
| YANG Wei, JIA Xianfeng, QIAO Wenming, et al. Preparation and properties of rigid carbon fiber preform and resulting phenolic impregnated carbon ablator[J]. Aerospace Materials & Technology, 2016, 46(2): 13-18. | |
| [17] | 朱召贤, 董金鑫, 贾献峰, 等. 酚醛气凝胶/炭纤维复合材料的结构与烧蚀性能[J]. 新型炭材料, 2018, 33(4): 370-376. |
| ZHU Zhaoxian, DONG Jinxin, JIA Xianfeng, et al. The microstructure and ablation behavior of carbon fiber/phenolic aerogel composites[J]. New Carbon Materials, 2018, 33(4): 370-376. | |
| [18] | SONG Wenda, JIA Xianfeng, MA Cheng, et al. Facile fabrication of lightweight carbon fiber/phenolic ablator with improved flexibility via natural rubber modification[J]. Composites Communications, 2022, 31: 101119. |
| [19] | WANG Wenkai, XU Wenjie, JIA Xianfeng, et al. A facile in situ strategy to fabricate lightweight carbon fiber/silicone-phenolic aerogel composites with superior toughness and ablation performance[J]. Journal of Materials Science, 2024, 59(39): 18488-18498. |
| [20] | 师建军, 孔磊, 左小彪, 等. 酚醛/SiO2双体系凝胶网络结构杂化气凝胶的制备与性能[J]. 高分子学报, 2018, 49(10): 1307-1314. |
| SHI Jianjun, KONG Lei, ZUO Xiaobiao, et al. Preparation of PR/SiO2 hybrid phenolic aerogel with bi-component gel networks[J]. Acta Polymerica Sinica, 2018, 49(10): 1307-1314. | |
| [21] | 师建军, 张宗波, 冯志海, 等. 低密度碳粘接碳纤维复合材料(CBCF)抗氧化改性研究[J]. 无机材料学报, 2018, 33(7): 728-734. |
| SHI Jianjun, ZHANG Zongbo, FENG Zhihai, et al. Modification of oxidation resistance for low density carbon-bonded carbon fiber (CBCF) composite[J]. Journal of Inorganic Materials, 2018, 33(7): 728-734. | |
| [22] | 师建军, 李弘瑜, 张凌东, 等. 烧蚀型防隔热/隐身多功能复合材料制备与性能[J]. 宇航材料工艺, 2021, 51(6): 59-64. |
| SHI Jianjun, LI Hongyu, ZHANG Lingdong, et al. Preparation and properties of multi-functional composite integrated with heat-shielding, insulating and radar-absorbing[J]. Aerospace Materials & Technology, 2021, 51(6): 59-64. | |
| [23] | 郭慧, 刘圆圆, 宋寒, 等. 纤维对酚醛气凝胶材料性能的影响[J]. 材料导报, 2020, 34(S2): 513-515, 520. |
| GUO Hui, LIU Yuanyuan, SONG Han, et al. Effect of fibers on the properties of fiber reinforced phenolic aerogel composites[J]. Materials Reports, 2020, 34(S2): 513-515, 520. | |
| [24] | 王瑞杰, 郭建业, 宋寒, 等. 酚醛气凝胶多功能复合材料的设计与性能[J]. 材料导报, 2021, 35(S1): 548-551. |
| WANG Ruijie, GUO Jianye, SONG Han, et al. Design and properties of multifunctional phenolic aerogel composites[J]. Materials Reports, 2021, 35(S1): 548-551. | |
| [25] | YUAN Quan, YAN Liwei, LU Junyu, et al. Influence of three-dimensional skeletal support by different fiber felts on thermal protection properties of aerogel composites[J]. Industrial & Engineering Chemistry Research, 2024, 63(22): 9858-9868. |
| [26] | LIU Xinchao, SUN Jiancheng, YUAN Fang, et al. Lightweight, flexible, and heat-insulated phenolic impregnated carbon ablator (PICA) with adjustable flexibility and high compressive resilience property[J]. Journal of Applied Polymer Science, 2022, 139(9): 51712. |
| [27] | 程海明, 薛华飞, 洪长青, 等. 一种新型低密度低热导率碳/酚醛复合材料的制备与隔热性能研究[J]. 稀有金属材料与工程, 2015, 44(S1): 478-481. |
| CHENG Haiming, XUE Huafei, HONG Changqing, et al. Fabrication and heat-insolation of a novel low-density and low thermal conductivity carbon/phenolic composite[J]. Rare Metal Materials and Engineering, 2015, 44(S1): 478-481 | |
| [28] | WANG Hebing, PAN Yiwu, JIN Xiangyu, et al. Gradient fiber-reinforced aerogel composites using surface ceramicizable-resin densification with outstanding ablation resistance for high-temperature thermal protection[J]. Composites Science and Technology, 2022, 230: 109798. |
| [29] | WANG Hebing, YAN Xiaojie, JIN Xiangyu, et al. Mechanical and thermal ablative behavior of ceramic-modified lightweight quartz felt reinforced phenolic aerogel[J]. Composites Communications, 2022, 35: 101285. |
| [30] | WANG Hebing, QUAN Xiandong, YIN Lianhua, et al. Lightweight quartz fiber fabric reinforced phenolic aerogel with surface densified and graded structure for high temperature thermal protection[J]. Composites Part A: Applied Science and Manufacturing, 2022, 159: 107022. |
| [31] | NIU Bo, ZHANG Hongyu, QIAN Zhen, et al. Micro-fracture behaviors of needled short-chopped fiber reinforced phenolic aerogel composites based on in situ X-ray micro-CT[J]. Composites Communications, 2022, 33: 101224. |
| [32] | 沈昊辰, 牛波, 张琪凯, 等. 2.5D石英纤维增强纳米孔酚醛树脂基复合材料的力学和传热性能[J]. 复合材料科学与工程, 2023(4): 5-13. |
| SHEN Haochen, NIU Bo, ZHANG Qikai, et al. Mechanical and thermal properties of 2.5D quartz fiber reinforced nano-porous resin-based composites[J]. Composites Science and Engineering, 2023(4): 5-13. | |
| [33] | WU Can, WANG Lumeng, YAN Xiaojie, et al. Environmental-friendly and fast production of ultra-strong phenolic aerogel composite with superior thermal insulation and ablative-resistance[J]. Composites Science and Technology, 2024, 256: 110776. |
| [34] | WU Cao, CHEN Zhaofeng, WANG Fei, et al. Preparation and characterization of ultralight glass fiber wool/phenolic resin aerogels with a spring-like structure[J]. Composites Science and Technology, 2019, 179: 125-133. |
| [35] | HUANG He, LI Jinliang, WANG Wei, et al. Lightweight, flexible, and covalent-bonding phenolic fabric reinforced phenolic ablator for thermal insulation and conformal infrared stealth[J]. ACS Applied Materials & Interfaces, 2023, 15(51): 59866-59875. |
| [36] | ZUBER C, REIMER T, ESSER B, et al. Development of the low-density phenolic-based fibrous ablator ZURAM-K[J]. Journal of Spacecraft and Rockets, 2020, 58(2): 415-424. |
| [37] | LI Jian, GUO Penglei, HU Chenglong, et al. Fabrication of large aerogel-like carbon/carbon composites with excellent load-bearing capacity and thermal-insulating performance at 1800℃[J]. ACS Nano, 2022, 16(4): 6565-6577. |
| [38] | MA Jian, LI Jian, GUO Penglei, et al. Tailoring microstructures of carbon fiber reinforced carbon aerogel-like matrix composites by carbonization to modulate their mechanical properties and thermal conductivities[J]. Carbon, 2022, 196: 807-818. |
| [39] | YUAN Chengfan, WANG Degang, ZHANG Yijun, et al. Research progress on preparation, modification, and application of phenolic aerogel[J]. Nanotechnology Reviews, 2023, 12: 20230109. |
| [40] | 贾献峰, 陈伟, 马成, 等. 常压干燥制备酚醛树脂基炭气凝胶研究进展[J]. 化学通报, 2021, 84(3): 194-203. |
| JIA Xianfeng, CHEN Wei, MA Cheng, et al. Research progress in the preparation of phenolic resin based carbon aerogels via ambient pressure drying[J]. Chemistry, 2021, 84(3): 194-203. | |
| [41] | 张世忠, 贺丽娟, 孔得力, 等. 反应溶剂极性对酚醛气凝胶微观结构的影响研究[J]. 高分子通报, 2024, 37(11): 1620-1627. |
| ZHANG Shizhong, HE Lijuan, KONG Deli, et al. Study on the effect of solvent polarity on the microstructure of phenolic aerogel[J]. Chinese Polymer Bulletin, 2024, 37(11): 1620-1627. | |
| [42] | 严蛟, 邝旻翾, 胡宏林, 等. 间苯二酚-甲醛基酚醛/碳气凝胶微观结构调控研究进展[J]. 材料导报, 2022, 36(12): 209-218. |
| YAN Jiao, KUANG Minxuan, HU Honglin, et al. Research progress in tailoring the microstructure of resorcinol-formaldehyde organic/carbon aerogel[J]. Materials Reports, 2022, 36(12): 209-218. | |
| [43] | JIA Xianfeng, DAI Bowen, ZHU Zhaoxian, et al. Strong and machinable carbon aerogel monoliths with low thermal conductivity prepared via ambient pressure drying[J]. Carbon, 2016, 108: 551-560. |
| [44] | 郑振荣, 吕红丽, 罗丽娟, 等. 原料配比对酚醛气凝胶结构和性能的影响[J]. 宇航材料工艺, 2024, 54(6): 52-58. |
| ZHENG Zhenrong, Hongli LYU, LUO Lijuan, et al. Effects of material composition on structure and properties of phenolic aerogel[J]. Aerospace Materials & Technology, 2024, 54(6): 52-58. | |
| [45] | 付前刚, 张佳平, 李贺军. 抗烧蚀C/C复合材料研究进展[J]. 新型炭材料, 2015, 30(2): 97-105. |
| FU Qiangang, ZHANG Jiaping, LI Hejun. Advances in the ablation resistance of C/C composites[J]. New Carbon Materials, 2015, 30(2): 97-105. | |
| [46] | TIAN Ye, HUANG Haiming, XU Xiaoliang. Optimization of the curing process of phenolic impregnated carbon ablator[J]. Journal of Applied Polymer Science, 2018, 135(18): 46230. |
| [47] | JIN Xiangyu, LIU Chen, HUANG He, et al. Multiscale, elastic, and low-density carbon fibre/siliconoxycarbide-phenolic interpenetrating aerogel nanocomposite for ablative thermal protection[J]. Composites Part B: Engineering, 2022, 245: 110212. |
| [48] | 张鸿宇, 钱震, 牛波, 等. 低密度纤维增强酚醛气凝胶复合材料的力学特性及断裂机制[J]. 复合材料学报, 2022, 39(8): 3663-3673. |
| ZHANG Hongyu, QIAN Zhen, NIU Bo, et al. Mechanical properties and fracture mechanisms of low-density fiber preforms reinforced phenolic aerogel composites[J]. Acta Materiae Compositae Sinica, 2022, 39(8): 3663-3673. | |
| [49] | CHENG Haiming, XUE Huafei, HONG Changqing, et al. Preparation, mechanical, thermal and ablative properties of lightweight needled carbon fibre felt/phenolic resin aerogel composite with a bird’s nest structure[J]. Composites Science and Technology, 2017, 140: 63-72. |
| [50] | YU Zhilong, GAO Yucheng, QIN Bing, et al. Revitalizing traditional phenolic resin toward a versatile platform for advanced materials[J]. Accounts of Materials Research, 2024, 5(2): 146-159. |
| [51] | WANG Chonghai, CHENG Haiming, HONG Changqing, et al. Lightweight chopped carbon fibre reinforced silica-phenolic resin aerogel nanocomposite: Facile preparation, properties and application to thermal protection[J]. Composites Part A: Applied Science and Manufacturing, 2018, 112: 81-90. |
| [52] | 徐文杰, 贾献峰, 王际童, 等. 有机硅/酚醛杂化气凝胶的制备和性能研究[J]. 化工学报, 2023, 74(8): 3572-3583. |
| XU Wenjie, JIA Xianfeng, WANG Jitong, et al. Preparation and properties of silicone/phenolic hybrid aerogel[J]. CIESC Journal, 2023, 74(8): 3572-3583. | |
| [53] | YOU Qi, LIU Gang, ZHONG Ya, et al. Mechanical properties and oxidative ablation behaviors of polysilazane-modified phenolic resin aerogel/carbon fiber fabric composites[J]. Polymer Composites, 2024, 45(1): 286-301. |
| [54] | POLONI Erik, GRIGAT Felix, EBERHART Martin, et al. An open carbon-phenolic ablator for scientific exploration[J]. Scientific Reports, 2023, 13(1): 13135. |
| [55] | PAGLIA Laura, BOTTACCHIARI Rita, COGNIGNI Flavio, et al. Micro and nanostructured carbon-phenolic ablators modified by PVP addition[J]. Materials & Design, 2024, 242: 113014. |
| [56] | POLONI Erik, BOUVILLE Florian, SCHMID Alexander L, et al. Carbon ablators with porosity tailored for aerospace thermal protection during atmospheric re-entry[J]. Carbon, 2022, 195: 80-91. |
| [57] | GE Rufei, ZHANG Jie, YANG Ning, et al. Constructing lightweight ternary interpenetrating network of carbon fabric/siloxane/phenolic aerogels for long-time high-temperature thermal protection[J]. Composites Communications, 2024, 48: 101914. |
| [58] | ZHANG Jie, YIN Rongying, FAN Zihao, et al. Significantly enhanced mechanical, thermal, and ablative properties of the lightweight carbon fabric/phenol-formaldehyde resin/siloxane aerogels ternary interpenetrating network[J]. ACS Applied Materials & Interfaces, 2024, 16(29): 38520-38530. |
| [59] | KUMAR Colonel Vijay, KANDASUBRAMANIAN Balasubramanian. Advances in ablative composites of carbon based materials: A review[J]. Industrial & Engineering Chemistry Research, 2019, 58(51): 22663-22701. |
| [60] | PULCI G, PAGLIA L, GENOVA V, et al. Low density ablative materials modified by nanoparticles addition: Manufacturing and characterization[J]. Composites Part A: Applied Science and Manufacturing, 2018, 109: 330-337. |
| [61] | WANG Shuang, HUANG Haiming, TIAN Ye. Effects of zirconium carbide content on thermal stability and ablation properties of carbon/phenolic composites[J]. Ceramics International, 2020, 46(4): 4307-4313. |
| [62] | WANG Shuang, HUANG Haiming, TIAN Ye, et al. Effects of SiC content on mechanical, thermal and ablative properties of carbon/phenolic composites[J]. Ceramics International, 2020, 46(10): 16151-16156. |
| [63] | 黄成杰, 杨敏, 李红, 等. 三维织造预制体微观结构及致密化[J]. 材料工程, 2021, 49(1): 104-111. |
| HUANG Chengjie, YANG Min, LI Hong, et al. Microstructure and densification of 3D weaving preform[J]. Journal of Materials Engineering, 2021, 49(1): 104-111. | |
| [64] | 孙乐, 王成, 李晓飞, 等. C/C复合材料预制体的研究进展[J]. 航空材料学报, 2018, 38(2): 86-95. |
| SUN Le, WANG Cheng, LI Xiaofei, et al. Research progress on preforms of C/C composites[J]. Journal of Aeronautical Materials, 2018, 38(2): 86-95. | |
| [65] | YANG Dongdong, DONG Shun, HONG Changqing, et al. Preparation, modification, and coating for carbon-bonded carbon fiber composites: A review[J]. Ceramics International, 2022, 48(11): 14935-14958. |
| [66] | LIU Chen, HAN Jiecai, ZHANG Xinghong, et al. Lightweight carbon-bonded carbon fiber composites prepared by pressure filtration technique[J]. Carbon, 2013, 59: 551-554. |
| [67] | CHENG Haiming, HONG Changqing, ZHANG Xinghong, et al. Lightweight carbon-bonded carbon fiber composites with quasi-layered and network structure[J]. Materials & Design, 2015, 86: 156-159. |
| [68] | JI Yuan, HAN Shida, XIA Lichao, et al. Synergetic effect of aramid fiber and carbon fiber to enhance ablative resistance of EPDM-based insulators via constructing high-strength char layer[J]. Composites Science and Technology, 2021, 201: 108494. |
| [69] | CHENG Haiming, FAN Zihao, HONG Changqing, et al. Lightweight multiscale hybrid carbon-quartz fiber fabric reinforced phenolic-silica aerogel nanocomposite for high temperature thermal protection[J]. Composites Part A: Applied Science and Manufacturing, 2021, 143: 106313. |
| [70] | WANG Wei, JIN Xiangyu, HUANG He, et al. Thermal-insulation and ablation-resistance of Ti-Si binary modified carbon/phenolic nanocomposites for high-temperature thermal protection[J]. Composites Part A: Applied Science and Manufacturing, 2023, 169: 107528. |
| [71] | SUN Jin, WANG Shuang, HUANG Jie, et al. Yttrium silicate-coated carbon fiber reinforced phenolic aerogel-like composites with low density and low ablation[J]. ChemistrySelect, 2024, 9(23): e202400972. |
| [72] | 张鹏飞, 赖小明, 洪长青, 等. 抗氧化三维纤维增强酚醛气凝胶的性能[J]. 材料导报, 2021, 35(16): 16155-16159. |
| ZHANG Pengfei, LAI Xiaoming, HONG Changqing, et al. Properties of anti-oxidation 3D fiber preform reinforced phenolic aerogel material[J]. Materials Reports, 2021, 35(16): 16155-16159. | |
| [73] | YUAN Quan, YAN Liwei, TIAN Jinfeng, et al. Poly(dimethyl-diphenyl-imide) siloxane/phenolic-based double network hybrid resin coatings for ablation thermal protection[J]. Progress in Organic Coatings, 2023, 182: 107693. |
| [74] | YUAN Quan, YAN Liwei, TIAN Jinfeng, et al. In situ ceramization of nanoscale interface enables aerogel with thermal protection at 1950℃[J]. ACS Nano, 2024, 18(4): 3520-3530. |
| [75] | FU Huadong, QIN Yan, ZOU Zhenyue, et al. Reinforced compressive and ablative properties of phenolic aerogel by in situ polycarbosilane-derived ceramic[J]. Ceramics International, 2023, 49(24): 40392-40402. |
| [76] | WANG Zhenyu, ZHANG Yongzheng, SUN Gangwei, et al. Improvement of carbon fiber/phenolic composite properties by low-loading graphene oxide and SiO2 nanoparticles[J]. Materials Letters, 2024, 365: 136400. |
| [77] | JIANG Zuhang, WANG Tongkai, LI Weijie, et al. Effect of weaving parameter and resin structure of lightweight integrated multifunctional composite on thermal protection performance in extreme environment[J]. Polymer Composites, 2023, 44(8): 4509-4518. |
| [78] | PAN Yiwu, JIN Xiangyu, WANG Hebing, et al. Nano-TiO2 coated needle carbon fiber reinforced phenolic aerogel composite with low density, excellent heat-insulating and infrared radiation shielding performance[J]. Journal of Materials Science & Technology, 2023, 152: 181-189. |
| [79] | ZHENG Hao, ZHANG Wenjian, LI Bowen, et al. Recent advances of interphases in carbon fiber-reinforced polymer composites: A review[J]. Composites Part B: Engineering, 2022, 233: 109639. |
| [80] | 付宇, 王洋, 蔡明. 气凝胶/纤维复合材料的热学和力学性能以及界面相容性的研究进展[J]. 材料工程, 2023, 51(11): 1-13. |
| FU Yu, WANG Yang, CAI Ming. Progress in thermal and mechanical properties and interfacial compatibility of aerogel/fiber composites[J]. Journal of Materials Engineering, 2023, 51(11): 1-13. | |
| [81] | 李成伟, 庄晟逸, 向文超, 等. 航天热防护用树脂基复合材料研制的前沿进展[J]. 中国科学:化学, 2024, 54(11): 2167-2182. |
| LI Chengwei, ZHUANG Shengyi, XIANG Wenchao, et al. Frontier development of resin-based composites for aerospace thermal protection[J]. Scientia Sinica Chimica, 2024, 54(11): 2167-2182. | |
| [82] | BESSIRE Brody K, MINTON Timothy K. Decomposition of phenolic impregnated carbon ablator (PICA) as a function of temperature and heating rate[J]. ACS Applied Materials & Interfaces, 2017, 9(25): 21422-21437. |
| [83] | BESSIRE Brody K, LAHANKAR Sridhar A, MINTON Timothy K. Pyrolysis of phenolic impregnated carbon ablator (PICA)[J]. ACS Applied Materials & Interfaces, 2015, 7(3): 1383-1395. |
| [84] | QIAN Zhen, LI Guixiang, FENG Yun, et al. Pyrolysis behavior of the nanoporous phenolic matrix and the resultant microstructure and property evolution in the composites[J]. Composites Communications, 2023, 40: 101573. |
| [85] | NIU Zhaoqi, CHEN Beixi, SHEN Shuai, et al. Zirconium chelated hybrid phenolic resin with enhanced thermal and ablation resistance properties for thermal insulation composites[J]. Composites Communications, 2022, 35: 101284. |
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