在3D空间中分析多个打印头位移机制,用于材料挤出机
Ishant Singhal1, Bobby Tyagi1, Abhishek Raj1
13D Printing and Additive Manufacturing Lab, Faculty of Engineering, Dayalbagh Educational Institute, Agra, India.
3D printing and additive manufacturing
|January 1, 2025
概括
这项研究比较了卡特西安,3D打印系统,三角形和极点3D打印系统. 德尔塔打印机提供卓越的表面表面和精度,而极点打印机实现更快的构建时间,用于材料挤出增材制造.
科学领域:
- 增材制造 增材制造 增材制造
- 材料科学 材料科学 材料科学
- 机械工程 机械工程
背景情况:
- 基于材料挤出 (MatEx) 的增材制造 (AM) 由于其多功能性和降低成本而被广泛采用.
- 优化机器生产速度需要了解不同的动力学配置.
- 目前的MatEx系统主要使用笛卡尔定位,而三角洲和极地系统的探索较少.
研究的目的:
- 在MatEx 3D打印机中分析和比较笛卡尔式,三角形和极性动力学配置的有效性.
- 根据物理检查,打印头动态,表面表面,尺寸精度和构造时间来评估性能.
主要方法:
- 对卡特西安,三角形和极形MatEx3D打印机系统进行比较分析.
- 评估指标包括物理检查,打印头动态,打印件表面表面,尺寸精度和构造时间.
- 构建时间分析考虑了不同的填充密度和打印速度.
主要成果:
- 基于Delta系统的3D打印机与极点和卡特西安系统相比,表现出更好的表面表面和尺寸精度.
- 基于极地系统的3D打印机在不同的灌装密度和打印速度上表现出比三角形和笛卡尔系统更快的构建时间.
结论:
- 动力学配置显著影响MatEx 3D打印机的性能.
- 达尔塔系统是最适合优先考虑表面表面和尺寸精度的应用程序.
- 极地系统有利于快速原型和高通量制造,其中构建时间至关重要.
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