دانلود مقاله ISI انگلیسی شماره 144176
ترجمه فارسی عنوان مقاله

طراحی معماری پشتیبانی از دانه برای تولید افزودنی

عنوان انگلیسی
Grain-based Support Architecture Design for Additive Manufacturing
کد مقاله سال انتشار تعداد صفحات مقاله انگلیسی
144176 2017 11 صفحه PDF
منبع

Publisher : Elsevier - Science Direct (الزویر - ساینس دایرکت)

Journal : Procedia Manufacturing, Volume 10, 2017, Pages 876-886

ترجمه کلمات کلیدی
دانه پشتیبانی، رابط پشتیبانی رابط مدل، پشتیبانی کج الگوریتم تقسیم نقطه،
کلمات کلیدی انگلیسی
Support grain; model-support contact interface; slanting support; point divisive algorithm;
پیش نمایش مقاله
پیش نمایش مقاله  طراحی معماری پشتیبانی از دانه برای تولید افزودنی

چکیده انگلیسی

Supporting the overhang section, restraining the model deformation or warping, minimizing the residual stress and controlling the cooling rate are some common functions of support structure in multiple additive manufacturing (AM) process. Since it needs to be removed at the post processing stage of fabrication, it is a considerable waste in terms of material, energy and time employed for their construction. Hence, it is advantageous to minimize the amount of support which eventually can improve the overall efficiency of the AM process. In this paper, a novel support architecture design methodology is proposed considering the amount of support volume, maximum contact interface, lower fabrication time, and ease of fabrication. First, the support needed points on the object surface are identified considering their normal direction. The points are clustered with a weighted algorithm considering their uniform curvature and location. Afterward, each cluster of points is segmented iteratively into closed-convex regions i.e. grain boundary, considering the geometric factors such as aspect ratio, fill factor, and contour area to ensure the ease of fabrication and supportability. These convex grains are the model-support interface segments. Finally, self-supported slanting and pillar support structures are generated that minimizes support material consumption and consequently saving build time. The proposed research is implemented on free-form objects and the results are evaluated with the available support generator software.