Effect of composite lattice on the high-temperature compressive behavior of silicone rubber based ablative materials

被引:1
|
作者
Yang, Peixin [1 ,2 ]
Yuan, Wu [1 ,2 ]
Song, Hongwei [1 ,2 ]
机构
[1] Chinese Acad Sci, Key Lab Mech Fluid Solid Coupling Syst, Inst Mech, Beijing 100190, Peoples R China
[2] Univ Chinese Acad Sci, Sch Engn Sci, Beijing 100049, Peoples R China
基金
中国国家自然科学基金;
关键词
Composite lattice; Ablative materials; High -temperature stiffness; Enhancement effect; POSTFIRE MECHANICAL-PROPERTIES; PHENOLIC COMPOSITE; POLYMER;
D O I
10.1016/j.compstruct.2024.118337
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Besides aerodynamic heating, ablative materials are always exposed to aerodynamic pressure. This paper proposes an effective method to improve the high-temperature compressive performance of silicone rubber based ablative materials using silica/phenolic pyramidal lattice. Composite structures of silica/phenolic pyramidal lattice reinforced silicone rubber based ablative material were fabricated and tested with the high-temperature material testing machine. To determine the stiffness of lattice reinforced ablative materials at different temperatures, a theoretical model was developed and validated by comparison with experimental results. Results show that silica/phenolic pyramidal lattices can significantly improve the stiffness of ablative materials at high temperatures. The changes in the stiffness of ablative materials reinforced with silica/phenolic pyramidal lattices at high temperatures can be divided into four stages. The composite lattice has a reinforcing effect on the mechanical properties of ablative materials up to 1000 degrees C, with optimal enhancement observed at 681 degrees C. Furthermore, the effects of geometrical parameters of the lattice and heating rates on stiffness at high temperatures are also discussed.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] High-temperature behavior of silicone rubber composite with boron oxide/calcium silicate
    Wang, Xiaotian
    Qin, Yan
    Zhao, Chenglong
    E-POLYMERS, 2022, 22 (01) : 595 - 606
  • [2] SILICONE-RUBBER HIGH-TEMPERATURE SEAL
    不详
    ENGINEERING MATERIALS AND DESIGN, 1978, 22 (12): : 24 - 24
  • [3] High-temperature composite materials
    Pilipovskii, YL
    Vishnevskii, LG
    Grudina, TV
    Pereselentseva, LN
    POWDER METALLURGY AND METAL CERAMICS, 1995, 34 (7-8) : 457 - 464
  • [4] HIGH-TEMPERATURE DEGRADATION OF SILICONE-RUBBER COMPOUNDS IN A SILICONE OIL ENVIRONMENT
    HENRY, AW
    RUBBER CHEMISTRY AND TECHNOLOGY, 1983, 56 (01): : 83 - 93
  • [5] High-Temperature Compressive Behavior of Refractory Alumina-Niobium Composite Material
    Guenay, Gokhan
    Zienert, Tilo
    Endler, Dirk
    Aneziris, Christos G.
    Biermann, Horst
    Weidner, Anja
    ADVANCED ENGINEERING MATERIALS, 2022, 24 (08)
  • [6] Water and Moisture Permeability of High-temperature Vulcanized Silicone Rubber
    Wang, Z.
    Zhao, L. H.
    Jia, Z. D.
    Guan, Z. C.
    IEEE TRANSACTIONS ON DIELECTRICS AND ELECTRICAL INSULATION, 2017, 24 (04) : 2440 - 2448
  • [7] Demand for High-Temperature Vulcanized Silicone Rubber Increases Rapidly
    HouLeshan
    ChinaChemicalReporter, 2008, 19 (27) : 21 - 21
  • [8] ABLATIVE MATERIALS FOR HIGH-TEMPERATURE THERMAL PROTECTION OF SPACE VEHICLES
    BOWMAN, WH
    LAWRENCE, RM
    JOURNAL OF CHEMICAL EDUCATION, 1971, 48 (10) : 690 - &
  • [9] Numerical study of the thermal response of high-temperature ablative materials
    Shih, YC
    Cheung, FB
    NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 1997, 32 (06) : 555 - 574
  • [10] Study on Dynamic Ablative Behavior and Mechanism of Silicone Rubber Based Thermal Protective Coating
    Yan X.
    Wang H.-B.
    Fan X.-Z.
    Zhang H.
    Shan Y.-J.
    He C.
    Yuhang Xuebao/Journal of Astronautics, 2020, 41 (05): : 617 - 623