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Multiobjective optimization of injection molding process parameters based on Opt LHD, EBFNN, and MOPSO

机译:基于Opt LHD,EBFNN和MOPSO的注塑工艺参数多目标优化

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摘要

The injection molding process parameters strongly affect plastic production quality, manufacturing cost, and molding efficiency. In this study, the effects of the process parameters, including the valve gate open timing, the molding temperature, the melt temperature, the injection time, the packing pressure, the packing time, and the cooling time, on the warpage of the plastic product and the clamping force during the injection molding process are analyzed using the analysis of variance method. A multiobjective optimization of the injection molding process parameters for a diesel engine oil cooler cover was carried out based on the optimal Latin hypercube design, ellipsoidal basis function neural network, and multiobjective particle swarm optimization. According to the calculated results using the optimal parameters, a structural optimization on the oil cooler cover cooling and a cooling channel improvement are proposed to further reduce the warpage. At last, a suite of overall tools are developed to treat the cooling deformation. As a result, the reduction on warpage is about 4 mm, the peak stress of the optimized plastic oil cooler cover is reduced by 60 MPa, and the stress distributes more evenly throughout the whole product. The peak clamping force is decreased from 760 to 470 t which makes the machine selection more flexible and reduces the production cost.
机译:注射成型工艺参数严重影响塑料的生产质量,制造成本和成型效率。在这项研究中,工艺参数(包括阀门浇口打开时间,成型温度,熔融温度,注射时间,填充压力,填充时间和冷却时间)对塑料产品翘曲的影响采用方差分析法对注塑过程中的锁模力进行了分析。基于最优拉丁超立方体设计,椭圆基函数神经网络和多目标粒子群算法,对柴油机油冷却器盖的注塑工艺参数进行了多目标优化。根据使用最佳参数的计算结果,提出了机油冷却器盖冷却的结构优化和冷却通道的改进,以进一步减少翘曲。最后,开发了一套用于冷却变形的整体工具。结果,翘曲减小量约为4 mm,优化的塑料油冷却器盖的峰值应力减小了60 MPa,并且应力在整个产品中的分布更加均匀。峰值夹紧力从760吨降低到470吨,这使机器选择更加灵活,并降低了生产成本。

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