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通过添加混合填料提高具有随形冷却通道的注塑模具的冷却性能

Improving Cooling Performance of Injection Molding Tool with Conformal Cooling Channel by Adding Hybrid Fillers.

作者信息

Kuo Chil-Chyuan, Chen Wei-Hua

机构信息

Department of Mechanical Engineering, Ming Chi University of Technology, New Taipei City 243, Taiwan.

Research Center for Intelligent Medical Devices, Ming Chi University of Technology, No. 84, Gungjuan Road, New Taipei City 243, Taiwan.

出版信息

Polymers (Basel). 2021 Apr 10;13(8):1224. doi: 10.3390/polym13081224.

Abstract

Silicone rubber mold (SRM) is capable of reducing the cost and time in a new product development phase and has many applications for the pilot runs. Unfortunately, the SRM after injection molding has a poor cooling efficiency due to its low thermal conductivity. To improve the cooling efficiency, the thermal conductivity of the SRM was improved by adding fillers into the SRM. An optimal recipe for fabricating a high cooling efficiency low-pressure injection mold with conformal cooling channel fabricated by fused deposition modeling technology was proposed and implemented. This study proposes a recipe combining 52.6 wt.% aluminum powder, 5.3 wt.% graphite powder, and 42.1 wt.% liquid silicon rubber can be used to make SRM with excellent cooling efficiency. The price-performance ratio of this SRM made by the proposed recipe is around 55. The thermal conductivity of the SRM made by the proposed recipe can be increased by up to 77.6% compared with convention SRM. In addition, the actual cooling time of the injection molded product can be shortened up to 69.1% compared with the conventional SRM. The actual cooling time obtained by the experiment is in good agreement with the simulation results with the relative error rate about 20%.

摘要

硅橡胶模具(SRM)能够在新产品开发阶段降低成本和时间,并且在试生产中有许多应用。不幸的是,注塑成型后的SRM由于其低导热率而具有较差的冷却效率。为了提高冷却效率,通过向SRM中添加填料来提高其导热率。提出并实施了一种用于制造具有通过熔融沉积建模技术制造的随形冷却通道的高冷却效率低压注塑模具的最佳配方。本研究提出一种由52.6 wt.%的铝粉、5.3 wt.%的石墨粉和42.1 wt.%的液态硅橡胶组成的配方,可用于制造具有优异冷却效率的SRM。由该配方制成的这种SRM的性价比约为55。与传统SRM相比,由该配方制成的SRM的导热率可提高高达77.6%。此外,与传统SRM相比,注塑产品的实际冷却时间可缩短高达69.1%。实验获得的实际冷却时间与模拟结果吻合良好,相对误差率约为20%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6810/8069664/705a50fa6234/polymers-13-01224-g001.jpg

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