基于骨质的微纳米结构及其低速度冲击损伤行为的生物设计
Yuxi Liu1, Aihua Li2, Yanhua Li3
1School of Smart Health, Chongqing College of Electronic Engineering, Chongqing, 401331, China. yuxiliu66@126.com.
Bioresources and bioprocessing
|April 22, 2024
概括
该研究发现,生物复合材料中的30°纤维螺旋角度模仿了天然的骨结构,显著改善了抗冲击和能量消耗. 这种螺旋式设计增强了材料的抗损性.
科学领域:
- 生物材料科学 生物材料科学
- 材料工程 材料工程 材料工程
- 生物力学 生物力学
背景情况:
- 骨,皮层骨的基本结构单元,表现出一个周期性的微观结构,矿物化原纤维排列在片状.
- 假设这种自然的螺旋布局有助于骨显著的机械特性,包括抗冲击能力.
研究的目的:
- 为了研究矿化原纤维螺旋角度对生物复合材料的抗冲击和能量消耗的影响.
- 建立和分析复制骨微观结构的生物复合模型.
主要方法:
- 基于骨微观结构的四个生物复合模型的制造,具有不同的纤维螺旋角度.
- 有限元冲击分析,以评估在冲击负载下生物模型的性能.
- 对标本进行实验测试,以验证模拟结果.
主要成果:
- 纤维螺旋角度显著影响多层纤维增强复合材料中的冲击损伤阻力和能量消耗.
- 一个带有30°纤维螺旋角度的复合模型显示出卓越的全面抗冲击能力.
- 实验结果证实,30°螺旋角样本的撞击损伤面积最小,与有限元分析一致.
结论:
- 骨中矿化原纤维的周期性螺旋结构,通过进化优化,增强皮质骨的抗冲击能力.
- 结合30°纤维螺旋角度的生物复合材料在抵御冲击损伤和散射能量方面表现得更好.
- 这些发现为设计和制造高性能,抗冲击的生物复合材料提供了宝贵的指导.
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