Atomistic Construction of Silicon Nitride Ceramic Fiber Molecular Model and Investigation of Its Mechanical Properties Based on Molecular Dynamics Simulations

被引:3
|
作者
Hong, Yiqiang [1 ,2 ]
Zhu, Yu [2 ]
Du, Youpei [2 ]
Che, Zhe [2 ]
Qu, Guoxin [3 ]
Li, Qiaosheng [2 ]
Yuan, Tingting [2 ]
Yang, Wei [2 ]
Dai, Zhen [2 ]
Han, Weijian [4 ]
Ma, Qingsong [1 ]
机构
[1] Natl Univ Def Technol, Coll Aerosp Sci, Sci & Technol Adv Ceram Fibers & Composites Lab, Changsha 410073, Peoples R China
[2] Beijing Syst Design Inst Mech Elect Engn, Beijing 100871, Peoples R China
[3] Fourth Acad CASIC, Beijing 100028, Peoples R China
[4] Chinese Acad Sci, Inst Chem, Dept Polymer Chem & Phys, Key Lab Sci & Technol High Tech Polymer Mat, Beijing 100190, Peoples R China
基金
中国国家自然科学基金;
关键词
ceramic fiber; amorphous and crystal; silicon nitride; Monte Carlo; tensile fracture property; TENSILE DEFORMATION; BEHAVIOR; NANOWIRES;
D O I
10.3390/ma16186082
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Molecular simulations are currently receiving significant attention for their ability to offer a microscopic perspective that explains macroscopic phenomena. An essential aspect is the accurate characterization of molecular structural parameters and the development of realistic numerical models. This study investigates the surface morphology and elemental distribution of silicon nitride fibers through TEM and EDS, and SEM and EDS analyses. Utilizing a customized molecular dynamics approach, molecular models of amorphous and multi-interface silicon nitride fibers with complex structures were constructed. Tensile simulations were conducted to explore correlations between performance and molecular structural composition. The results demonstrate successful construction of molecular models with amorphous, amorphous-crystalline interface, and mixed crystalline structures. Mechanical property characterization reveal the following findings: (1) The nonuniform and irregular amorphous structure causes stress concentration and crack formation under applied stress. Increased density enhances material strength but leads to higher crack sensitivity. (2) Incorporating a crystalline reinforcement phase without interfacial crosslinking increases free volume and relative tensile strength, improving toughness and reducing crack susceptibility. (3) Crosslinked interfaces effectively enhance load transfer in transitional regions, strengthening the material's tensile strength, while increased density simultaneously reduces crack propagation.
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收藏
页数:17
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