[1] Xing Chao, Yan Yongzhu, Zhang Wenjin, et al. Miscibility of nitrated poly(phenylene oxide) and styrene-acrylonitrile copolymer blends[J]. Journal of Applied Polymer Science, 2023, 140(23): e 53934.[2] Yao Naiqun, Zhang Yingdong, Zhang Ruichen, et al. One-step fabrication of HNBR/MIL-100 composites via selective hydrogenation of acrylonitrile-butadiene rubber with a catalyst derived from MIL-100(Fe)[J]. Journal of Materials Science, 2021, 56(1): 326-336.[3] Wang Yong, Cao Feng, Fu Yunlei, et al. Preparation of diene-based nanoparticles by semibatch microemulsion polymerization and their catalytic hydrogenation[J]. Catalysis Today, 2023, 407: 156-164.[4] Nihmath A, Ramesan M T. Comparative evaluation of oil resistance, dielectric properties, AC conductivity, and transport properties of nitrile rubber and chlorinated nitrile rubber[J]. Progress in Rubber, Plastics and Recycling Technology, 2021, 37(2): 131-147.[5] Cui Ziwen, Jing Yuanrong, Wang Lin, et al. Thermoplastic vulcanizates with an integration of good mechanical performance and excellent resistance to high temperature and oil based on HNBR/TPEE[J]. Polymers for Advanced Technologies, 2023, 34(4): 1143-1153.[6] Rodriguez-Fernandez H, Dasappa S, Sabado K D, et al. Production of carbon black in turbulent spray flames of coal tar distillates[J]. Applied Sciences, 2021, 11(21): 10001.[7] Paul S, Rahaman M, Ghosh S K, et al. Recycling of waste tire by pyrolysis to recover carbon black: An alternative reinforcing filler[J]. Journal of Material Cycles and Waste Management, 2023, 25(3): 1470-1481.[8] Zhang Ziyi, Fang Yue, Chen Qionghai, et al. Molecular dynamics simulation of the impact of the surface topology of carbon black on the mechanical properties of elastomer nanocomposites[J]. Physical Chemistry Chemical Physics, 2023, 25(7): 5602-5612.[9] Hoch M, 毛杰, 蒋鲸喆, 等. 炭黑填充氢化丁腈橡胶低温性能的研究[J]. 特种橡胶制品, 2023, 44(2): 1-5.[10] 王增林, 李再峰, 孙宝全, 等. 甲基丙烯酸锌/炭黑增强氢化丁腈橡胶的性能[J]. 合成橡胶工业, 2011, 34(3): 218-222.[11] He Xiaozhen, Shi Xinyan, Hoch M, et al. Mechanical properties of carbon black filled hydrogenated acrylonitrile butadiene rubber for packer compounds[J]. Polymer Testing, 2016, 53: 257-266.[12] Zhao Xingbo, Zhang Qiuyu, Gu Junwei, et al. Effects of carbon black on the properties of HNBR reinforced by in-situ prepared ZDMA[J]. Polymer-Plastics Technology and Enginee-ring, 2011, 50(15): 1507-1510.[13] Sintharm P, Phisalaphong M. Green natural rubber composites reinforced with black/white rice husk ashes: Effects of reinforcing agent on film′s mechanical and dielectric properties[J]. Polymers, 2021, 13(6): 882.[14] 王增林, 张曾, 贾庆升, 等. 生物质硅炭增强改性氢化丁腈橡胶的性能及老化规律[J]. 弹性体, 2021, 31(1): 14-19.[15] Zeng Zongqiang, Li Yongzhen, Zhao Pengfei, et al. Fabrication of rice husk ash/natural rubber composites by the latex process[J]. Journal of Wuhan University of Technology (Materials Science Edition), 2020, 35(1): 42-46.[16] Baghel P, Sakhiya A K, Kaushal P. Ultrafast growth of carbon nanotubes using microwave irradiation: Characterization and its potential applications[J]. Heliyon, 2022, 8(10): e 10943.[17] Vardakas P, Kartsonakis I A, Kyriazis I D, et al. Pristine, carboxylated, and hybrid multi-walled carbon nanotubes exert potent antioxidant activities in in vitro-cell free systems[J]. Environmental Research, 2023, 220: 115156.[18] Xu Xiang, You Yang, Liu Xingyu, et al. Experimental and density functional theory investigations on the antioxidant mechanism of carbon nanotubes[J]. Carbon, 2021, 177: 189-198.[19] Li Hui, Cheng Kai, Zhang Zeng, et al. Effect of carbon nanotubes on aging properties of hydrogenated nitrile rubber in the dilute oxygen medium[J]. Journal of Macromolecular Science (Part A): Pure and Applied Chemistry, 2022, 59(1): 38-45.[20] Guo Jianhua, Chen Xuming, Li Zhicai. Thermal oil aging behavior of hydrogenated nitrile butadiene rubber/multi-walled carbon nanotube composites under free or compression state[J]. Journal of Elastomers & Plastics, 2018, 50(5): 448-462.[21] Cadambi R M, Ghassemieh E. Optimized process for the inclusion of carbon nanotubes in elastomers with improved thermal and mechanical properties[J]. Journal of Applied Polymer Science, 2012, 124(6): 4993-5001.[22] Sayfo P, Pirityi D Z, P■l■skei K. Characterization of graphene-rubber nanocomposites: A review[J]. Materials Today Che-mistry, 2023, 29: 101397.[23] Pradhan S, Goswami D, Ratna D, et al. Graphene nanoplatelet filled elastomer composites; influence of different matrices on the dispersion, electrical and mechanical properties[J]. Polymer Engineering and Science, 2022, 62(11): 3880-3887.[24] Wang Xiaolei, Sinha T K, Sun Jujie, et al. Facile preparation of hydrogenated nitrile butadiene rubber/reduced graphene oxide nanocomposite with one-pot reduction approach via the latex way[J]. Colloid and Polymer Science,2021,299(11): 1703-1715.[25] Wang Yanan, Suo Junying, Wang Haoyu, et al. Preparation and reinforcement performance of RGO-CNTs-SiO2 three-phase filler for rubber composites[J]. Composites Science and Technology, 2022, 228: 109633.[26] Zhou Ran, Ma Haihong, Zhou Zhengfa, et al. Preparation of SiO2 particles with silicone-methoxy groups on surface and its co-curing hydroxyl silicone oil[J]. Materials Research Express, 2020, 7(6): 065309.[27] Liu Xue, Zhou Xincong, Yang Chaozhen, et al. Study on the effect of particle size and dispersion of SiO2 on tribological properties of nitrile rubber[J]. Wear,2020,460/461: 203428.[28] Yuan Zhengqiu, Wu Yangfeng, Zeng Jianxian, et al. Modified nano-SiO2 /PU hydrophobic composite film prepared through in-situ coupling by KH 550 for oil-water separation[J]. Environmental Science and Pollution Research, 2023, 30(18): 52958-52968.[29] Ye Xin, Tian Miao, Zhang Liqun. Some interesting phenomena in silica-filled HNBR with the addition of silane coupling agent[J]. Journal of Applied Polymer Science, 2012, 124(2): 927-934.[30] 周阳, 邹华, 冯予星, 等. 硅烷偶联剂原位改性白炭黑填充氢化丁腈橡胶复合材料的性能研究[J]. 橡胶工业, 2016, 63(7): 389-393.[31] 何晓庆, 李文风, 甄恩龙, 等. 气相法白炭黑填充氢化丁腈橡胶(HNBR)的研究[J]. 有机硅材料, 2020, 34(4): 35-39.[32] Tanpichai S, Thongdeelerd C, Chantaramanee T, et al. Pro-perty enhancement of epoxidized natural rubber nanocomposites with water hyacinth-extracted cellulose nanofibers[J]. International Journal of Biological Macromolecules,2023,234: 123741.[33] Wang Qiming, Chen Xinyi, Zeng Shaohua, et al. In-situ polycondensate-coated cellulose nanofiber heterostructure for polylactic acid-based composites with superior mechanical and thermal properties[J]. International Journal of Biological Macromolecules, 2023, 240: 124515.[34] Aghaei M, Shokrieh M M, Mosalmani R. Effects of the addition of carbon nanofibers on mechanical properties of woven glass/epoxy composites with different weave patterns[J]. Journal of Industrial Textiles, 2022, 51(2 S): 3094 S-3118 S.[35] Wang Fanghui, Dong Shengnan, Wang Zhongying, et al. Self-assembled carbon nanofibers-silica nanocomposites for hydrogenated nitrile butadiene rubber reinforcement[J]. Polymer Composites, 2021, 42(11): 5830-5838.[36] Pan Ye, Wang Jincheng, Yang Siyuang. Preparation of novel damping layered silicates and its application in chlorinated butyl rubber(CIIR) composites[J]. Polymer-Plastics Techno-logy and Materials, 2020, 59(4): 385-397.[37] Zemzem M, Vinches L, Hallé S. Molecular sorption and diffusion of organic solvents through maleated rubber/layered silicate nanocomposites[J]. Journal of Elastomers & Plastics, 2021, 53(8): 1015-1032.[38] 黄婷婷, 陈春花, 辛振祥. 强威粉/氢化丁腈橡胶纳米复合材料的结构与性能[J]. 橡胶工业, 2013, 60(1): 11-15.[39] Zhang Mengying, Lyu Jianxiong, Zuo Yingfang, et al. Effect of KH 560 concentration on adhesion between silicate modified poplar and waterborne varnish[J]. Progress in Organic Coa-tings, 2023, 174: 107267.[40] 韩珍, 张立群, 田明. 硅酸盐纳米纤维/氢化丁腈橡胶复合材料的性能[J]. 合成橡胶工业, 2007, 30(4): 258-262.[41] Luan Jingde, Zhao Chen, Zhai Qian, et al. The highly efficient simultaneous removal of Pb2+ and methylene blue induced by the release of endogenous active sites of montmorillonite[J]. Water Science & Technology, 2022, 86(9): 2336-2347.[42] Chen Yufei, Zhao Hui, Liu Yulong, et al. Enhancing the mechanical properties of bismaleimide resin with montmorillonite modified by two intercalators (amino-terminated polyoxypropylene and octadecyl trimethyl ammonium chloride)[J]. Pigment & Resin Technology, 2021, 51(4): 406-412.[43] Guo Yixuan, Liu Jiahui, Gates W P, et al. Organo-modification of montmorillonite[J]. Clays and Clay Minerals, 2020, 68(6): 601-622.[44] 黄安民, 王丹丹, 王小萍, 等. 补强剂填充HNBR胶料的结构和性能[J]. 橡胶工业, 2008, 55(2): 69-74.[45] Gu Zheng, Song Guojun, Liu Weisheng, et al. Structure and properties of hydrogenated nitrile rubber/organo-montmorillonite nanocomposites[J]. Clays and Clay Minerals, 2010, 58(1): 72-78.[46] Li Kewei, Lu Hailong, Nkoh J N, et al. The important role of surface hydroxyl groups in aluminum activation during phyllosilicate mineral acidification[J]. Chemosphere, 2023, 313: 137570.[47] Zhang R L, Zhao L F, Liu L, et al. Effect of two types of la-yered silicate on mechanical and barrier properties of hydrogenated acrylonitrile butadiene rubber (HNBR)/layered silicate nanocomposites[J]. Plastics, Rubber and Composites, 2014, 43(7): 235-239.[48] Gatos K G, Karger-Kocsis J. Effect of the aspect ratio of silicate platelets on the mechanical and barrier properties of hydrogenated acrylonitrile butadiene rubber (HNBR)/layered silicate nanocomposites[J]. European Polymer Journal,2007,43(4): 1097-1104.[49] Liao Kerui, Liu Feifei, Wang Zhaobo. Dynamically vulcanized ethylene-methacrylic acid copolymer/nitrile butadiene rubber blends reinforced by zinc dimethacrylate[J]. Journal of Thermoplastic Composite Materials, 2021, 34(9): 1286-1298.[50] 武守鹏, 王增林, 田帅承, 等. 甲基丙烯酸锌增强氢化丁腈橡胶复合材料的性能[J]. 合成橡胶工业, 2014, 37(5): 376-379.[51] 赵兴波, 张秋禹, 顾军渭, 等. 甲基丙烯酸锌/炭黑/氢化丁腈橡胶复合材料的制备与性能[C]∥American Applied Sciences Research Institute. Proceedings of 2011 AASRI Confe-rence on Artificial Intelligence and Industry Application (AASRI-AIIA 2011 V 4). Male: American Applied Sciences Research Institute, 2011: 125-128.[52] Li Qi, Zhao Suhe, Pan Yan. Structure, morphology, and pro-perties of HNBR filled with N 550, SiO2, ZDMA, and two of three kinds of fillers[J]. Journal of Applied Polymer Science, 2010, 117(1): 421-427.[53] Zhang Jihua, Zhang Hui, Pang Jincheng, et al. Improved understanding on the reinforcement of low-temperature hydrogenated nitrile butadiene rubber composites by in situ polyme-rization of unsaturated metal methacrylate: Influences of salt cation[J]. RSC Advances, 2016, 6(106): 104416-104424.