在FDM-PEEK中以打印路径为主导的异构性:通过构建定向对拉伸和剪切性能进行调制
Kui Liu1,2, Wei Chen1,2, Feihu Shan1,2
1Aviation Key Laboratory of Science and Technology on Additive Manufacturing, Beijing 100024, China.
Polymers
|January 10, 2026
概括
打印路径对3D打印的聚乙烯 (PEEK) 的机械性能产生重大影响,其与构建方向的相互作用决定了故障模式. 根据这些因素进行定制,可以优化PEEK组件的性能,使其适用于各种应用.
科学领域:
- 材料科学 材料科学 材料科学
- 增材制造 增材制造 增材制造
- 聚合物工程 聚合物工程
背景情况:
- 化沉积模型 (FDM) 能够实现复杂的PEEK结构.
- 关于影响FDM-PEEK机械性能的构建方向和打印路径相互作用的研究有限.
研究的目的:
- 研究FDM-PEEK的拉力和剪切性能.
- 在结合的构建定向和打印路径效应下分析故障机制.
- 确定这些因素对异构性行为的影响.
主要方法:
- 机械测试 (拉力和剪切).
- 骨折形态分析. 骨折形态分析.
- 统计分析. 统计分析.
主要成果:
- 打印路径主导着异构行为;路径-构建方向相互作用控制了剪切失效.
- 断裂时的延长在构建方向上变化了多达两倍;W或T路径导致<5%的延长.
- 横截面尺寸影响了拉伸性能,较大的截面减少了模量,但增加了屈服强度和延长.
结论:
- 路径的重复频率对于温度均性和层间粘附性至关重要,驱动异型行为.
- 截面几何学调节机械反应.
- 优化打印路径和构建方向的协同策略可以定制FDM-PEEK的机械性能.
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