用基于剪切模块的FE同质化模型改进周期格子材料的模态响应
Tianheng Luo1,2, Lizhe Wang1,3, Fuyuan Liu1,3
1School of Advanced Technology, Xi'an Jiaotong-Liverpool University, Suzhou 210053, China.
Materials (Basel, Switzerland)
|March 28, 2024
概括
一种新的等距离细分方法简化了对格子材料的机械响应评估. 三重周期性最小表面 (TPMS) 格子显示出优越的抗振能力,密度优化了特定应用的性能.
科学领域:
- 材料科学 材料科学 材料科学
- 机械工程 机械工程
- 计算力学 计算力学 计算力学
背景情况:
- 格子材料为工业用途提供可调节的刚性和能量吸收.
- 评估大型格子结构是计算密集的.
- 基于均质化的多尺度分析提供了一个有效的替代方案.
研究的目的:
- 为格子结构引入精确和简化的同质化方法.
- 为了评估和比较不同格子拓的抗振性能.
- 研究基于相对密度的抗振和负载能力之间的权衡.
主要方法:
- 提出了一种等距离细分 (ES) 方法,以近似周期边界条件 (PBC).
- 应用多尺度分析对以身体为中心的立方体 (BCC) 和三次周期最小表面 (TPMS) 格子 (轮状,原始).
- 进行了同等的模态分析,以预测和比较抗振能力.
主要成果:
- 该ES方法提供了一个精确和计算效率高的方法,用于同质化.
- 与BCC网格相比,TPMS网格显示出更高的抗振能力.
- 在TPMS中较低的相对密度增强了抗振动 (频率抵抗),而较高的密度提高了承载能力.
结论:
- ES方法是一种合理而准确的技术,用于对各种格子结构的多尺度分析.
- 对于需要高抗振性能的应用,TPMS格子是有前途的.
- 相对密度在TPMS设计中是平衡抗振和负载能力的关键参数.
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