TY - GEN
T1 - Quantitative study of shrinkage and warpage behavior for microcellular and conventional injection molding
AU - Kramschuster, Adam
AU - Oavitt, Ryan
AU - Ermer, Don
AU - Shen, Chris
AU - Chen, Zhongbao
AU - Turng, Lih Sheng
PY - 2005
Y1 - 2005
N2 - This research investigated the effects of processing conditions on the shrinkage and warpage (S&W) behavior of a box-shaped, polypropylene part using conventional, microcellular, and microcellular co-injection molding. Three sets of 26-1 fractional factorial design of experiments (DOE) were employed to perform the experiments and proper statistical theory was-used to analyze the data. After the injection molding process reached steady state, molded samples were collected and measured using an optical coordinate measurement machine (OCMM), which had been evaluated using a proper repeatability and reproducibility (R&R) measurement study. By analyzing the statistically significant main and two-factor interaction effects, the results show that the supercritical fluid (SCF) content (nitrogen in this case, in terms of SCF dosage time) and the injection speed affect the S&W of microcellular injection and microcellular co-injection molded parts the most, whereas pack/hold pressure and pack/hold time have the most significant effect on the S&W of conventional injection molded parts. Also, this study quantitatively showed that, within the processing range studied, a reduction in the S&W could be achieved with the microcellular injection molding and microcellular co-injection molding processes. Copyright ° 2005 by ASME.
AB - This research investigated the effects of processing conditions on the shrinkage and warpage (S&W) behavior of a box-shaped, polypropylene part using conventional, microcellular, and microcellular co-injection molding. Three sets of 26-1 fractional factorial design of experiments (DOE) were employed to perform the experiments and proper statistical theory was-used to analyze the data. After the injection molding process reached steady state, molded samples were collected and measured using an optical coordinate measurement machine (OCMM), which had been evaluated using a proper repeatability and reproducibility (R&R) measurement study. By analyzing the statistically significant main and two-factor interaction effects, the results show that the supercritical fluid (SCF) content (nitrogen in this case, in terms of SCF dosage time) and the injection speed affect the S&W of microcellular injection and microcellular co-injection molded parts the most, whereas pack/hold pressure and pack/hold time have the most significant effect on the S&W of conventional injection molded parts. Also, this study quantitatively showed that, within the processing range studied, a reduction in the S&W could be achieved with the microcellular injection molding and microcellular co-injection molding processes. Copyright ° 2005 by ASME.
KW - Co-injection
KW - Design of experiments (DOE)
KW - Dimensional stability
KW - Microcellular injection molding
KW - Shrinkage and warpage
KW - Two-factor interactions
KW - Verification
UR - https://www.scopus.com/pages/publications/33645657104
U2 - 10.1115/IMECE2005-79972
DO - 10.1115/IMECE2005-79972
M3 - 会议稿件
AN - SCOPUS:33645657104
SN - 0791842347
SN - 9780791842348
T3 - American Society of Mechanical Engineers, Materials Division (Publication) MD
SP - 535
EP - 543
BT - Proceedings of the ASME Materials Division 2005
T2 - 2005 ASME International Mechanical Engineering Congress and Exposition, IMECE 2005
Y2 - 5 November 2005 through 11 November 2005
ER -