首页> 外文期刊>Rapid prototyping journal >Exploring multi-axis material extrusion additive manufacturing for improving mechanical properties of printed parts
【24h】

Exploring multi-axis material extrusion additive manufacturing for improving mechanical properties of printed parts

机译:探索多轴材料挤压添加剂制造,以改善印刷零件的机械性能

获取原文
获取原文并翻译 | 示例
           

摘要

Purpose Material extrusion (ME) suffers from anisotropic mechanical properties that stem from the three degree of freedom (DoF) toolpaths used for deposition. The formation of each layer is restricted to the XY-plane, which produces poorly bonded layer interfaces along the build direction. Multi-axis ME affords the opportunity to change the layering and deposition directions locally throughout a part, which could improve a part's overall mechanical performance. The purpose of this paper is to evaluate the effects of changing the layering and deposition directions on the tensile mechanical properties of parts printed via multi-axis ME. Design/methodology/approach A multi-axis toolpath generation algorithm is presented and implemented on a 6-DoF robotic arm ME system to fabricate tensile specimens at different global orientations. Specifically, acrylonitrile butadiene styrene (ABS) tensile specimens are printed at various inclination angles using the multi-axis technique; the resulting tensile strengths of the multi-axis specimens are compared to similarly oriented specimens printed using a traditional 3-DoF method. Findings The multi-axis specimens had similar performances regardless of orientation and were equivalent to the 3-DoF specimens printed in the XYZ orientation (i.e. flat on the bed with roads aligned to the loading condition). This similarity is attributed to those sets of specimens having the same degree of road alignment. Practical implications - Parts with out-of-plane loads currently require design compromises (e.g. additional material in critical areas). Multi-axis deposition strategies could enable local changes in layering and deposition directions to more optimally orient roads in critical areas of the part. Originality/value - Though multi-axis ME systems have been demonstrated in literature, no prior work has been done to determine the effects of the deposition angle on the resulting mechanical properties. This work demonstrates that identical mechanical properties can be obtained irrespective of the build direction through multi-axis deposition. For ABS, the yield tensile strength of vertically oriented tensile bars was improved by 153 per cent using multi-axis deposition as compared to geometrically similar samples fabricated via 3-DoF deposition.
机译:目的材料挤出(ME)患有各向异性机械性能,可源于用于沉积的三度自由度(DOF)刀具路径。每个层的形成限于XY平面,其沿着构建方向产生不良粘合的层界面。多轴我提供了机会,可以在整个部分中局部改变分层和沉积方向,这可以提高部分的整体机械性能。本文的目的是评估改变分层和沉积方向对通过多轴ME打印的零件的拉伸力学性能的影响。设计/方法/方法在6-DOF机器人臂ME系统上提出和实现了多轴刀具路径生成算法,以制造不同全球方向的拉伸试样。具体地,使用多轴技术在各种倾斜角印刷丙烯腈丁二烯苯乙烯(ABS)拉伸样品;将产生的多轴样本的拉伸强度与使用传统的3-DOF方法印刷的类似定向样品进行比较。发现多轴样本具有相似性的性能,无论方向如何,都相当于在XYZ定向上印刷的三-COF样本(即,平板在床上,道路与装载条件对齐)。这种相似度归因于那些具有相同程度的道路对准的样本组。实际意义 - 具有平面外载荷的部件目前需要设计妥协(例如,关键区域中的其他材料)。多轴沉积策略可以使分层和沉积方向的局部变化能够在部分关键区域中更具最佳的方向道路。原创性/值 - 虽然在文献中已经证明了多轴ME系统,但没有完成现有的工作来确定沉积角对所得到的机械性能的影响。该工作表明,无论通过多轴沉积如何,都可以获得相同的机械性能。对于ABS,与通过3-DOF沉积制造的几何类似样品相比,使用多轴沉积的垂直取向拉伸棒的产量拉伸强度通过多轴沉积得到改善153%。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号