超弹性等级的三次周期最小表面的属性
Christopher W Haney1, Hector R Siller1
1Department of Mechanical Engineering, University of North Texas, 3940 N. Elm Str., Denton, TX 76207, USA.
Polymers
|January 17, 2024
概括
这项研究分析了钻石,陀螺和施瓦茨晶格结构,发现它们的机械行为明显超过了理论预测. 与传统模型相比,增材制造的格子表现出优越的性能.
科学领域:
- 材料科学 材料科学 材料科学
- 机械工程 机械工程
- 添加剂制造 添加剂制造 添加剂制造
背景情况:
- 格子结构在先进的工程应用中至关重要.
- 了解它们的机械行为对于设计优化至关重要.
- 传统的模型往往无法捕捉增材制造 (AM) 格子的复杂性.
研究的目的:
- 分析和比较钻石,陀螺和施瓦茨晶格结构的机械行为.
- 评估它们的应激应变反应,能量吸收和恢复特征.
- 为了确定 AM 格子的实验结果和理论预测之间的差异.
主要方法:
- 通过聚合合成了三种不同的格子结构 (钻石,Gyroid,Schwarz).
- 在室温下进行单轴循环压缩试验.
- 分析了应力应变反应,装载/卸载模块,以及能量吸收/消耗.
主要成果:
- AM格子展示了超越理论预测的机械性能和应力-应变行为.
- 钻石格子表现出优越的刚性,更高的模量,以及更大的能量吸收/消散.
- 施瓦茨晶格显示出最一致的响应;钻石和陀螺达到了更大的应变和应力.
结论:
- 实验结果突出了与AM格子的传统模型的显著差异.
- 超弹性等级模型在预测格子行为方面超过了传统的Ashby-Gibson模型.
- 精细的建模方法是必要的,在工程应用中准确地描述AM格子.
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