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STRUCTURAL OPTIMIZATION OF INJECTION MOLDS WITH LATTICE COOLING

机译:用晶格冷却注塑模具的结构优化

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Lattice cooling (LC) is a novel approach to improve the thermal and mechanical performance of an injection mold, thus challenging the traditional conformal cooling approach. By using current Additive Manufacturing (AM) technologies, LC with highly complex structures is possible. In this study, the design concept of LC is further improved by implementing a thermo-mechanical topology optimization method. This method utilizes porosity-dependent heat conduction, convection to dissipate internal heat generation, while maintaining mechanical stability of an injection mold. The porosity and shape of each lattice unit cell (LUC) in LC channels is determined by employing this method. A homogenization method is used to determine the porosity dependency of mechanical elasticity and heat conductivity, a surrogate model is used to determine the porosity dependency of heat convection and internal heat generation. The method firstly determines the porosity distribution of LUCs, then optimizing the bulk moduli of each LUC using inverse homogenization to improve the stability of LC. An example is presented to illustrate how to use the proposed approach to design LC sections for an injection mold with a given average porosity. The result shows, by applying the proposed approach, the thermal performance is improved 30% compared to a uniform LC channel with the same average porosity, without decreasing the mechanical performance. The resulting optimized lattice made possible by utilizing Additive Manufacturing technologies.
机译:格子冷却(LC)是一种提高注塑模具热和机械性能的新方法,从而挑战传统的保形冷却方法。通过使用电流添加剂制造(AM)技术,可以实现具有高度复杂结构的LC。在该研究中,通过实现热机械拓扑优化方法,进一步提高了LC的设计理念。该方法利用孔隙依赖性导热,对流来消散内部发热,同时保持注塑模具的机械稳定性。通过采用该方法确定LC通道中的每个晶格单元电池(LUC)的孔隙率和形状。使用均质化方法来确定机械弹性和导热性的孔隙率依赖性,使用替代模型来确定热对流和内部发热的孔隙率依赖性。该方法首先确定LUCS的孔隙率分布,然后优化每个LUC的大量模态使用逆均匀化以提高LC的稳定性。提出了一个例子来说明如何使用所提出的方法来设计具有给定平均孔隙率的注射模具的LC部分。结果表明,通过应用所提出的方法,与具有相同平均孔隙率的均匀LC通道相比,热性能提高了30%,而不会降低机械性能。通过利用添加剂制造技术可以实现所得到的优化格子。

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