Study on surface quality and cell morphology of foamed components fabricated using gas counter‐pressure with core‐back and high‐pressure foam injection molding with core‐back process

IF 3.2 4区 工程技术 Q2 ENGINEERING, CHEMICAL
Chun‐Yang Chiu, Sen‐Yeu Yang, Shu‐Kai Yeh
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Abstract

The core‐back process has substantially increased the range of applicability of foam injection molding (FIM) by increasing the pressure drop rate and expansion ratio. However, cell nucleation and growth occur concurrently with the flow of the melt/gas mixture during the filling stage, resulting in poor surface quality and a non‐uniform cell structure. This study investigated foam injection molding with gas counter pressure (GCP) and core‐back to produce foamed components, with comparison to high‐pressure FIM with core‐back process. Through this method, the nucleation during filling is suppressed. The surface roughness was improved to 0.987 μm, a 59% reduction compared to high‐pressure injection molding foam with core‐back. In addition, the cell uniformity was improved, measured at two locations near and far from the gate, the cell density reaching 1.7 × 105 and 2.1 × 105 cells/cm3, and cell size measuring 120.88 and 129.57 μm, respectively. GCP also prevented the formation of the bubbles larger than 500 μm at the location far from the gate. Even at the lowest recommended mold temperature, the combination of GCP and core‐back enables the production of high‐quality foamed components with reduced cooling time.Highlights Preventing the simultaneous occurrence of cell nucleation, growth and melt flow. Foamed material with high surface quality produced by FIM. Improving the cell uniformity throughout the foamed component. Feasibility of GCP technology in conjunction with core‐back process.
使用气体反压回芯和高压泡沫注塑回芯工艺制造的发泡部件的表面质量和细胞形态研究
回芯工艺通过提高压降率和膨胀率,大大增加了泡沫注射成型(FIM)的适用范围。然而,在填充阶段,细胞的成核和生长与熔体/气体混合物的流动同时发生,导致表面质量差和细胞结构不均匀。本研究对使用气体反压(GCP)和回芯工艺进行泡沫注塑成型以生产发泡部件进行了研究,并与使用回芯工艺的高压 FIM 进行了比较。通过这种方法,填充过程中的成核现象得到了抑制。表面粗糙度提高到 0.987 μm,与高压回芯注塑泡沫相比降低了 59%。此外,细胞的均匀性也得到了改善,在离浇口较近和较远的两个位置测量,细胞密度分别达到 1.7 × 105 和 2.1 × 105 cells/cm3,细胞尺寸分别为 120.88 和 129.57 μm。GCP 还防止了在远离浇口的位置形成大于 500 μm 的气泡。即使在推荐的最低模具温度下,GCP 和回芯的组合也能在缩短冷却时间的情况下生产出高质量的发泡部件。通过 FIM 生产表面质量高的发泡材料。改善整个发泡部件的气孔均匀性。GCP 技术与回芯工艺相结合的可行性。
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来源期刊
Polymer Engineering and Science
Polymer Engineering and Science 工程技术-高分子科学
CiteScore
5.40
自引率
18.80%
发文量
329
审稿时长
3.7 months
期刊介绍: For more than 30 years, Polymer Engineering & Science has been one of the most highly regarded journals in the field, serving as a forum for authors of treatises on the cutting edge of polymer science and technology. The importance of PE&S is underscored by the frequent rate at which its articles are cited, especially by other publications - literally thousand of times a year. Engineers, researchers, technicians, and academicians worldwide are looking to PE&S for the valuable information they need. There are special issues compiled by distinguished guest editors. These contain proceedings of symposia on such diverse topics as polyblends, mechanics of plastics and polymer welding.
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