Effect of molding history on molecular orientation relaxation during physical aging of polystyrene injection moldings

IF 1.1 4区 工程技术 Q4 ENGINEERING, CHEMICAL International Polymer Processing Pub Date : 2023-02-17 DOI:10.1515/ipp-2022-4264
Kousaku Tao, K. Yamada, S. Higashi, K. Kago, Shiho Kuwashiro, H. Hirano, Hiroki Takeshita, K. Tokumitsu
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引用次数: 1

Abstract

Abstract This work examined the effect of changing molding conditions on the physical aging of polystyrene injection moldings. First, we investigated the relationship between the molecular orientation and the molding conditions. The molecular orientation near the surface changed with changing injection rate, so we hypothesized that this molecular orientation might form during the filling stage. Because this molecular orientation did not relax under heat treatment below the glass transition temperature (Tg), the oriented molecules near the surface were thought to be elongated owing to the high strain rate during the filling stage. On the other hand, the molecular orientation in the core layer changed with changing holding pressure and relaxed under heat treatment below Tg. Thus, the molecules in the core layer might become oriented during the holding stage and not be elongated owing to the slow strain rate. Furthermore, the molecular orientation in the core layer decreased with increasing mold temperature, and the physical heat resistance improved with increasing mold temperature. Meanwhile, the excess enthalpy did not change with changing molding conditions. Therefore, the improvement in physical heat resistance with increasing mold temperature was likely caused by the decrease in the molecular orientation in the core layer. Analyzing the relaxation behavior of the molecular orientation suggested that increasing mold temperature reduced the number of oriented molecules with large deformation in the core layer.
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成型历史对聚苯乙烯注塑制品物理老化过程中分子取向弛豫的影响
本文研究了成型条件的变化对聚苯乙烯注塑制品物理老化的影响。首先,我们研究了分子取向与成型条件之间的关系。表面附近的分子取向随着注入速率的变化而变化,因此我们假设这种分子取向可能在填充阶段形成。由于这种分子取向在低于玻璃化转变温度(Tg)的热处理下不会松弛,因此由于填充阶段的高应变速率,表面附近的取向分子被认为是细长的。另一方面,核心层中的分子取向随着保持压力的变化而变化,并且在低于Tg的热处理下松弛。因此,核心层内的分子可能在保持阶段变得取向,并且由于缓慢的应变速率而不会被拉长。此外,芯层中的分子取向随着模具温度的升高而降低,并且物理耐热性随着模具温度升高而提高。同时,过量焓不随成型条件的变化而变化。因此,随着模具温度的升高,物理耐热性的改善可能是由芯层中分子取向的降低引起的。分析分子取向的弛豫行为表明,模具温度的升高减少了芯层中变形较大的取向分子的数量。
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来源期刊
International Polymer Processing
International Polymer Processing 工程技术-高分子科学
CiteScore
2.20
自引率
7.70%
发文量
62
审稿时长
6 months
期刊介绍: International Polymer Processing offers original research contributions, invited review papers and recent technological developments in processing thermoplastics, thermosets, elastomers and fibers as well as polymer reaction engineering. For more than 25 years International Polymer Processing, the journal of the Polymer Processing Society, provides strictly peer-reviewed, high-quality articles and rapid communications from the leading experts around the world.
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