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Thermal optimization of deterministic porous mold inserts for rapid heat cycle molding

机译:用于快速热循环成型的确定性多孔模具嵌件的热优化

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摘要

In this work a porous mold insert with a regular deterministic geometry was developed and its design was optimized by means of numerical simulations to maximize the heat exchange in Rapid Heat Cycle Molding (RHCM) between water and the cavity surface, without impairing the mold structural integrity. Compared to previous fluid convection technologies, such as steam heating and pressurized water in metal foam inserts, the optimized porous inserts performance is significantly higher, having a maximum heating rate of 7 ℃/s and a mean heating rate of 6 ℃/s. A testing mold with the optimized porous inserts was developed to validate the numerical simulations and to characterize the RHCM influence on the surface quality of fiber-reinforced polypropylene parts. Parts surface roughness decreases increasing mold temperature, packing pressure and injection rate. Moreover an increase of mold temperature attenuates the effect of injection rate on roughness. Therefore, with this RHCM technology it is possible to obtain a high quality fiber-reinforced part even at low injection speed.
机译:在这项工作中,开发了具有规则确定性几何形状的多孔模具嵌件,并通过数值模拟优化了其设计,以最大程度地在水和型腔表面之间进行快速热循环成型(RHCM)中的热交换,而不会损害模具的结构完整性。与以前的流体对流技术(例如蒸汽加热和金属泡沫插入物中的加压水)相比,优化的多孔插入物性能明显更高,最大加热速率为7℃/ s,平均加热速率为6℃/ s。开发了具有优化多孔插入物的测试模具,以验证数值模拟并表征RHCM对纤维增强聚丙烯零件表面质量的影响。零件表面粗糙度降低,从而增加模具温度,保压压力和注射速率。此外,模具温度的升高减弱了注射速率对粗糙度的影响。因此,利用该RHCM技术,即使在低注射速度下也可以获得高质量的纤维增强部件。

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