拓扑优化
制动器
拓扑(电路)
陶瓷基复合材料
灵敏度(控制系统)
材料科学
冯·米塞斯屈服准则
碳化硅
陶瓷
压力(语言学)
约束(计算机辅助设计)
计算机科学
还原(数学)
瞬态(计算机编程)
复合数
有限元法
最优化问题
机械工程
降级(电信)
控制理论(社会学)
基质(化学分析)
温度循环
结构工程
网络拓扑
作者
Feng Yanping,Liu Zhenzhang,Zhu Dachang
标识
DOI:10.1177/09544070261464509
摘要
Carbon-fiber-reinforced silicon carbide (C/C-SiC) ceramic matrix composites have emerged as a leading candidate for next-generation lightweight high-performance brake disks. However, conventional topology optimization approaches based on stress or compliance constraints fail to capture the temperature-driven degradation mechanism that governs the safety of ceramic composites. To address this gap, this paper proposes a thermal-mechanical coupled topology optimization framework for C/C-SiC brake disks with temperature-dependent material properties. A radially graded reinforcement distribution is introduced to enhance local thermal performance, and an element-level high-temperature resistance margin together with a complementary thermo-mechanical safety index is formulated to simultaneously characterize thermal degradation risk and stress-induced failure. A Kreisselmeier–Steinhauser double aggregation strategy in both space and time is developed to efficiently handle the massive transient element-wise constraints. The framework is implemented within the SIMP scheme with adjoint sensitivity analysis, providing a generalizable design methodology for ceramic composite brake systems. The numerical results show that the optimized topology reduces the peak temperature by 18.6%, decreases the maximum von Mises stress by 23.0% compared with the initial brake disk design. The safety constraint value decreases from 0.092 to −0.014, corresponding to an absolute reduction of 0.106, and the constraint is changed from violation to satisfaction.
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