无机材料学报

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旋翼飞行器中高温结构无机聚合物基复合材料应用展望

谌广昌1, 冯胜全1, 何培刚2, 廖兴祺3, 巢昺轩4, 梁昆1, 杨东雷1, 陈彪1, 邓旭东1, 朱本胜1, 贾德昌2,*, 周玉2,3   

  1. 1.中国直升机设计研究所,景德镇 333001;
    2.哈尔滨工业大学 特种陶瓷研究所, 哈尔滨 150001;
    3.哈尔滨工业大学(深圳) 材料科学与工程学院, 深圳 518055;
    4.昌河飞机工业(集团)有限责任公司, 景德镇 333003
  • 收稿日期:2026-05-26 修回日期:2026-07-15
  • 作者简介:谌广昌(1983-), 男, 博士, 正高级工程师. E-mail: chengc004@avic.com
  • 基金资助:
    中国工程院咨询项目“江西省先进陶瓷材料产业发展路径研究”(2025-02JXZD-01)

Geopolymer Matrix Composites in Rotorcraft Intermediate Temperature Structures: Application Prospect

CHEN Guangchang1, FENG Shengquan1, HE Peigang2, LIAO Xingqi3, CHAO Bingxuan4, LIANG Gun1, YANG Donglei1, CHEN Piao1, DENG Xudong1, ZHU Bensheng1, JIA Dechang2,*, ZHOU Yu2,3   

  1. 1. China Helicopter Research and Development Institute, Jingdezhen 333001, China;
    2. Institute for Advanced Ceramics, Harbin Institute of Technology, Harbin 150001, China;
    3. School of Materials Science and Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen 518055, China;
    4. Changhe Aircraft Industries (GROUP) Ltd, Jingdezhen 333003, China
  • Received:2026-05-26 Revised:2026-07-15
  • About author:CHEN Guangchang (1983-), male, PhD, professor. E-mail: chengc004@avic.com
  • Supported by:
    Strategic Consultation Project of Chinese Academy of Engineering “Research on the development path of advanced ceramic materials industry in Jiangxi Province” (2025-02JXZD-01)

摘要: 无机聚合物基复合材料兼具低密度(≤2.5 g/cm³)、良好耐温性及低成本工艺等优势,具体表现为:相比钛合金和高温合金,其密度低;相比树脂基复合材料,其耐高温;相比传统陶瓷基复合材料,其成本低且制备工艺简单。该材料有效弥合了金属、树脂基复合材料及传统陶瓷基复合材料之间的温度性能差异,并可采用现有旋翼飞行器常用的热固性树脂基复合材料结构制备工艺进行结构件制备,是旋翼飞行器发动机排气管、防火墙及电池外壳等中高温结构的轻量化、低成本优化设计的极佳候选材料。然而,尽管无机聚合物基复合材料针对航空飞行器中高温结构部位的研制已历时十余年,由于其组分热/化学相容性、基体多孔增韧机理、结构特有失效特征、连接集成制备及检测维护等方面的诸多挑战,目前仅在e-VTOL电池外壳上实现了工程应用。对于旋翼飞行器中高温结构而言,该材料仍属于新材料、新工艺、新技术范畴。为满足国内旋翼飞行器中高温结构对轻量化、低成本设计的应用需求,本文系统回顾和审视了无机聚合物基复合材料实现中高温结构工程化应用需突破的关键技术,并在此基础上提出了以下发展建议:研发系列高性能纤维(碳纤维/Al2O3纤维)增强无机聚合物基复合材料;开发力学性能高稳定性的无机聚合物基复合材料中高温结构制备工艺;建立中高温结构与周边结构连接诱发损伤控制技术;构建科学合理的中高温结构装机应用验证试验矩阵;实现中高温结构制备缺陷及服役损伤的高效无损检测评估及原位快速修复。

关键词: 旋翼飞行器, 中高温结构, 无机聚合物基复合材料, 轻质低成本, 缺陷与损伤控制, 高稳定性, 综述

Abstract: Geopolymer matrix composites (GMCs) offer distinct advantages over conventional materials such as lower density compared with titanium and superalloys, higher service temperature compared with polymer matrix composites, and lower cost and simpler processing compared with traditional ceramic matrix composites. Consequently, GMCs effectively fill the temperature performance gap between metal materials and polymer matrix composites and ceramic matrix composites. Furthermore, the fabrication process of thermosetting resin composite structures can be used to manufacture GMCs parts with low bulk density (≤2.5g/cm3). So GMCs are excellent candidate materials for lightweight and low-cost optimization design of intermediate temperature structures like rotorcraft engine exhaust dusts, firewalls and battery pack shells. Despite more than a decade of research and development on GMCs for aircraft intermediate temperature structures application, their engineering applications have been largely limited to e-VTOL battery pack shells. This is primarily attributed to persistent challenges such as the thermal/chemical compatibility of different components in GMCs, the porous toughening mechanism of geopolymer matrix, the unique failure characteristic of GMCs structures, and the difficulties for the connecting integration, inspection and maintenance of GMCs structures and surrounding structures. For rotorcraft intermediate temperature structures, GMCs therefore remain within the category of new materials, new processes and new technologies. To address the engineering application requirements of GMCs for lightweight and low-cost optimization development of intermediate temperature structures in domestic rotorcraft, this paper reviews and examines the key technologies that need to be broken. Based on the analysis, the following recommendations are proposed for the application and development of GMCs in intermediate temperature structures of domestic rotorcraft: developing a series of high-performance fiber (carbon fiber/Al2O3 fiber) reinforced GMCs; constructing the manufacturing processes that ensure high stability for performance of intermediate temperature structures of GMCs; establishing the connection induced damages control technologies between the intermediate temperature structures and surrounding structures; building a scientific and reasonable verification test matrix for GMCs application in rotorcraft intermediate temperature structures, and realizing efficient non-destructive evaluation (NDE) and rapidly in-situ repairing of manufacturing defects and service-induced damage in intermediate temperature GMCs structures.

Key words: rotorcraft, intermediate temperature, inorganic polymer matrix composites, lightweight and low-cost, defects and damage control, high stability, review

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