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基于选择性激光烧结技术的生物质复合工件支撑结构研究

Study of Biomass Composite Workpiece Support Structure Based on Selective Laser Sintering Technology.

作者信息

Sun Tianai, Guo Yanling, Li Jian, Guo Yifan, Zhang Xinyue, Wang Yangwei

机构信息

College of Mechanical and Electrical Engineering, Northeast Forestry University, Harbin 150040, China.

出版信息

Materials (Basel). 2023 Jun 27;16(13):4644. doi: 10.3390/ma16134644.

Abstract

When using selective laser sintering to print parts with thin-walled structures, the thermal action of the laser can cause thermal stresses that lead to plastic deformation, resulting in large warpage and dimensional deviations. To address this issue, this study proposes a bottom support method for selective laser sintering. The impact of lattice-type, concentric-type, and cross-type support structures with varying filling densities and thicknesses on the suppression of warpage and dimensional errors was investigated. The optimal process parameters for each support structure were then determined through optimization. The findings of this study demonstrated a reduction in -axis dimensional errors of the workpiece following the addition of supports. The reduction amounted to 33.809%, 86.160%, and 66.214%, respectively, compared to the original workpiece. Moreover, the corresponding warpage was reduced by 35.673%, 46.189%, and 46.059% for each respective case, showcasing an improvement in the printing precision. Therefore, the bottom support effectively reduces dimensional and shape errors in thin-walled parts printed by selective laser sintering. Specifically, the results obtained indicated that the concentric type of support is more effective in reducing dimensional errors and enhancing the shape accuracy of the printed workpiece. Conversely, the cross type of support demonstrated superior capabilities in minimizing the consumption of printing materials while still delivering satisfactory results. Thus, this study holds promise for contributing to the advancement of thin-walled part quality using selective laser sintering technology. This research can contribute to achieving greater accuracy in the fabrication of parts through 3D printing.

摘要

当使用选择性激光烧结来打印具有薄壁结构的零件时,激光的热作用会产生热应力,导致塑性变形,从而产生较大的翘曲和尺寸偏差。为了解决这个问题,本研究提出了一种用于选择性激光烧结的底部支撑方法。研究了具有不同填充密度和厚度的格子型、同心型和交叉型支撑结构对抑制翘曲和尺寸误差的影响。然后通过优化确定每种支撑结构的最佳工艺参数。本研究的结果表明,添加支撑后工件的 -轴尺寸误差有所降低。与原始工件相比,降低幅度分别为33.809%、86.160%和66.214%。此外,相应的翘曲在每种情况下分别降低了35.673%、46.189%和46.059%,显示出打印精度的提高。因此,底部支撑有效地减少了选择性激光烧结打印的薄壁零件的尺寸和形状误差。具体而言,获得的结果表明,同心型支撑在减少尺寸误差和提高打印工件的形状精度方面更有效。相反,交叉型支撑在最小化打印材料消耗同时仍能取得令人满意的结果方面表现出卓越的能力。因此,本研究有望为利用选择性激光烧结技术提高薄壁零件质量做出贡献。这项研究有助于通过3D打印在零件制造中实现更高的精度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6666/10342441/24cd620e63e0/materials-16-04644-g001.jpg

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