daohang fenxiangbox searchbox qikanlogonew daohangnew searchboxnew navrightzone footerzone paper

Exit morphology and mechanical property of FDM printed PLA: influence of hot melt extrusion process AITranslate

Beijing City University; University of Chinese Academy of Sciences; Beijing City University; University of Chinese Academy of Sciences; University of Chinese Academy of Sciences; University of Chinese Academy of Sciences; University of Chinese Academy of Sciences
AITranslate
Publisher: Springer Nature
Share Citation Information Add to Favorites

    Scan to share on WeChat or Moments

Use WeChat scan.
Share with WeChat friends or Moments

Abstract AITranslate

In order to study the hot melt extrusion process in fused deposition modeling (FDM), this study mainly explores the effects of printing temperature, heated block length, feeding speed on the exit morphology and mechanical properties of FDM printed Polylactic acid (PLA) samples. High-speed camera is used to capture the exit morphology of molten PLA just extruded to the nozzle. According to exit morphology, the outlet states of extruded molten material can be divided into four categories, namely, bubbled state, coherent state, expanding state, and unstable state. Tensile test results show that printing temperature, heated block length and printing speed have significant influence on tensile properties and fracture mode of FDM printed samples. When the heated block length is 15 mm and 30 mm, there is a ductile-brittle transition in fracture mode with the increase of printing speed. The printing process window under different heated block lengths and printing temperatures has been figured out and the distribution of printing process window under different printing speeds has been discussed. There is a maximum printing process window under the heated block length of 30 mm. This finding provides a frame work for performance prediction of FDM printed parts and theoretical guidance for expanding the scope of printing process window.

KeyWords AITranslate

Fused deposition modeling (FDM) Polylactic acid (PLA) Exit morphology Tensile property Printing process window
No data

Basic Information:

DOI:https://doi.org/10.1007/s40436-022-00405-1

Chinese Library Classification Number:

Citation Information:

In order to study the hot melt extrusion process in fused deposition modeling (FDM), this study mainly explores the effects of printing temperature, heated block length, feeding speed on the exit morphology and mechanical properties of FDM printed Polylactic acid (PLA) samples. High-speed camera is used to capture the exit morphology of molten PLA just extruded to the nozzle. According to exit morphology, the outlet states of extruded molten material can be divided into four categories, namely, bubbled state, coherent state, expanding state, and unstable state. Tensile test results show that printing temperature, heated block length and printing speed have significant influence on tensile properties and fracture mode of FDM printed samples. When the heated block length is 15 mm and 30 mm, there is a ductile-brittle transition in fracture mode with the increase of printing speed. The printing process window under different heated block lengths and printing temperatures has been figured out and the distribution of printing process window under different printing speeds has been discussed. There is a maximum printing process window under the heated block length of 30 mm. This finding provides a frame work for performance prediction of FDM printed parts and theoretical guidance for expanding the scope of printing process window.

quote

GB/T 7714-2015 [1] YanHua Bian, Gang Yu, Xin Zhao, et al. Advances in Manufacturing, 2023(11). DOI:10.1007/s40436-022-00405-1.
MLA [1] YanHua Bian, et al., Advances in Manufacturing, no. 11, 2023, https://doi.org/10.1007/s40436-022-00405-1.
APA [1] YanHua Bian, Gang Yu, Xin Zhao, ShaoXia Li, XiuLi He, ChongXin Tian, & ZhiYong Li. (2023). Advances in Manufacturing(11). https://doi.org/10.1007/s40436-022-00405-1
IEEE [1] YanHua Bian, Gang Yu, Xin Zhao, ShaoXia Li, XiuLi He, ChongXin Tian, and ZhiYong Li, Advances in Manufacturing, no. 11, 2023, doi: 10.1007/s40436-022-00405-1. keywords: {Fused deposition modeling (FDM);Polylactic acid (PLA);Exit morphology;Tensile property;Printing process window}