TY - JOUR
T1 - Numerical model and experimental validation for laser sinterable semi-crystalline polymer
T2 - Shrinkage and warping
AU - Li, Jiang
AU - Yuan, Shangqin
AU - Zhu, Jihong
AU - Li, Shaoying
AU - Zhang, Weihong
N1 - Publisher Copyright:
© 2020 by the authors.
PY - 2020/6/1
Y1 - 2020/6/1
N2 - Shrinkage and warping of additive manufacturing (AM) parts are two critical issues that adversely influence the dimensional accuracy especially in powder bed fusion processes such as selective laser sintering (SLS). Powder fusion, material solidification, and recrystallization are the key stages causing volumetric changes of polymeric materials during the abrupt heating-cooling process. In this work, the mechanisms of shrinkage and warping of semi-crystalline polyamide (PA) 12 in SLS are well investigated. Heat-transfer and thermo-mechanical models are established to predict the process-dependent shrinkage and warping. The influence of raw material- and laser-related parameters are considered in the heat-transfer and thermo-mechanical models. Such models are established considering the natural thermal gradient and dynamic recrystallization, which induce internal strain and volumetric change. Moreover, an experimental design via orthogonal approach is introduced to validate the feasibility and accuracy of the proposed models. Finally, the quantitative relationships of process parameterswith product shrinkage andwarping are established; the dimensional accuracy in part-scale can be well predicted and validated with printed parts in a real experiment.
AB - Shrinkage and warping of additive manufacturing (AM) parts are two critical issues that adversely influence the dimensional accuracy especially in powder bed fusion processes such as selective laser sintering (SLS). Powder fusion, material solidification, and recrystallization are the key stages causing volumetric changes of polymeric materials during the abrupt heating-cooling process. In this work, the mechanisms of shrinkage and warping of semi-crystalline polyamide (PA) 12 in SLS are well investigated. Heat-transfer and thermo-mechanical models are established to predict the process-dependent shrinkage and warping. The influence of raw material- and laser-related parameters are considered in the heat-transfer and thermo-mechanical models. Such models are established considering the natural thermal gradient and dynamic recrystallization, which induce internal strain and volumetric change. Moreover, an experimental design via orthogonal approach is introduced to validate the feasibility and accuracy of the proposed models. Finally, the quantitative relationships of process parameterswith product shrinkage andwarping are established; the dimensional accuracy in part-scale can be well predicted and validated with printed parts in a real experiment.
KW - Powder bed fusion process
KW - Recrystallizationinduced strain
KW - Shrinkage
KW - Thermo-mechanicalmodel
KW - Warping
UR - http://www.scopus.com/inward/record.url?scp=85087678111&partnerID=8YFLogxK
U2 - 10.3390/POLYM12061373
DO - 10.3390/POLYM12061373
M3 - 文章
AN - SCOPUS:85087678111
SN - 2073-4360
VL - 12
JO - Polymers
JF - Polymers
IS - 6
M1 - 1373
ER -