1. 北京理工大学先进结构技术研究院,北京,100081
2. 北京理工大学爆炸科学与技术国家重点实验室,北京,100081
纸质出版:2022
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葛敬冉,刘增飞,乔健伟,梁军. 航空复杂结构纤维预制体成型工艺与复合材料性能仿真研究进展[J]. 航空制造技术, 2022, 65(16): 14-30.
GE Jingran,LIU Zengfei,QIAO Jianwei,LIANG Jun. Research Progress on Molding Processes of Fiber Preforms and Performances Simulation of Composites for Aeronautical Complex Structures[J]. Aeronautical Manufacturing Technology, 2022, 65(16): 14-30.
葛敬冉,刘增飞,乔健伟,梁军. 航空复杂结构纤维预制体成型工艺与复合材料性能仿真研究进展[J]. 航空制造技术, 2022, 65(16): 14-30. DOI: 10.16080/j.issn1671-833x.2022.16.014.
GE Jingran,LIU Zengfei,QIAO Jianwei,LIANG Jun. Research Progress on Molding Processes of Fiber Preforms and Performances Simulation of Composites for Aeronautical Complex Structures[J]. Aeronautical Manufacturing Technology, 2022, 65(16): 14-30. DOI: 10.16080/j.issn1671-833x.2022.16.014.
航空发动机叶片、机匣等复合材料结构内部纱线在纤维预制体赋形过程中,纤维束间会发生挤压、错动、扭转等相互作用,使得经纬纱线截面形态、体积含量和走向轨迹呈现不规则分布,这种复合材料细观结构的高度非均匀性极易引起材料内部应力集中,导致损伤发生,降低结构的可靠性,同时也大大增加了复合材料结构力学性能分析与评价的难度。从纤维预制体成型工艺过程仿真、细观几何建模以及力学性能数值分析 3 个方面入手,总结和评述了目前先进复合材料及其复杂结构力学响应分析方法的研究现状,重点介绍了数字单元法在针刺复合材料和三维机织复合材料纤维预制体成型工艺过程仿真方面的应用,概述和评价了考虑复合材料真实结构状态的细观建模和力学性能预示方法研究现状。针对航空复合材料复杂结构在制造工艺与力学性能数值仿真研究面临的问题与挑战,提出了结合虚拟纤维成型工艺模拟,建立复杂结构数据驱动高效多尺度分析方法的研究思路,揭示复合材料结构成型工艺 – 细观结构 – 宏观力学性能之间的映射关系,为优化复合材料结构制造工艺,进一步实现航空复合材料装备的数字化技术提供理论支撑。
In the process of molding fiber preforms
the internal yarns of composite structures such as aero-engine blade and casing will interact with each other such as extrusion
dislocation
and twisting between fiber bundles
and the warp and weft yarns are irregularly distributed in terms of cross-sectional shape
fiber volume content and path. The highly non-uniformity of the composite mesoscopic structure is extremely susceptible to cause stress concentration in the internal material
which leads to damage. It reduces the reliability of the structure
and significantly increases the difficulty of mechanical performance analysis and evaluation of composite structures. This paper summarizes and reviews the current research status of the mechanical behavior analysis methods for advanced composites and its preformed complex structures from three aspects: simulation of fiber preform molding process
mesoscopic modelling
and mechanical performance analysis. The application of the digital element approach to the simulation of fiber preform molding processes for needle-punched composites and 3D woven composites is highlighted. And the development status of mesoscopic modeling that considers the real structural geometry of composites and mechanical property prediction methods is summarized and evaluated. In view of the problems and challenges of numerical simulation research on the manufacturing processes and mechanical properties of aeronautical complex structures of composites
a research idea of establishing data-driven efficient multiscale analysis method for complex structures by combining virtual fiber molding process simulation is proposed. In this way
the mapping relationship of composite structure molding process–mesoscopic structure–macroscopic mechanical properties is revealed
which will be able to optimize the composite structures manufacturing process and provide theoretical support to further realize the digital technology of aeronautical composite equipment.
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