| Optimization Design |
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| Warpage deformation control and extension-based optimization design for large injection-molded parts |
Zhanhui ZHANG1,2( ),Wei WANG3,Xingsen LI2,Jinjun ZHAO3( ) |
1.School of Electromechanical Engineering, Guangdong University of Technology, Guangzhou 510006, China 2.Institute of Extension and Innovation Methods, Guangdong University of Technology, Guangzhou 510006, China 3.Guangzhou HKUST Fok Ying Tung Research Institute, Guangzhou 511458, China |
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Abstract Large injection-molded parts are prone to significant warpage deformation during the injection molding process due to their large size and complex rib structures. Traditional methods based on process parameter optimization and empirical structural design are often insufficient to meet the low deformation requirements of these parts. To effectively reduce such warpage deformation, a structural optimization design approach based on the extension innovation is proposed. This approach began by constructing an extension model of the injection-molded part, followed by extension analysis and extension transformation to generate multiple candidate optimization schemes. Then, injection molding simulations were employed to identify the optimal structural scheme. Simulation results showed that the warpage deformation on the bottom surface of the initial injection-molded building formwork was 3.49 mm, which was reduced to 2.82 mm after optimization using the extension innovation method. Final trial mold validation results demonstrated that the maximum relative error between the simulated value and measured average value of warpage deformation for the optimized injection-molded building formwork was only 5.6%. The extension innovation-based structural optimization design approach enables efficient identification of structural defects and rapid generation of optimized solutions, providing novel optimization insights and practical references for the low warpage design and manufacturing of large injection-molded parts.
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Received: 28 August 2025
Published: 28 April 2026
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Corresponding Authors:
Jinjun ZHAO
E-mail: 2112301019@mail2.gdut.edu.cn;jinjunzhao@ust.hk
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大型注塑件的翘曲变形控制及可拓优化设计
大型注塑件因尺寸大、加强筋结构复杂,在注塑成型过程中易产生显著的翘曲变形,传统的工艺参数优化和经验性结构设计方法难以满足其低变形要求。为有效降低此类翘曲变形,提出了一种基于可拓创新的结构优化设计方法。该方法先建立注塑件的可拓模型,通过拓展分析和可拓变换生成多个候选优化方案,再结合注塑成型仿真分析确定最佳结构方案。仿真结果显示:初始注塑建筑模板底面的翘曲变形量为3.49 mm;应用可拓创新方法优化后,翘曲变形量降至2.82 mm。最终的试模验证结果表明,优化后注塑建筑模板的翘曲变形量仿真值与实测平均值之间的最大相对误差仅为5.6%。基于可拓创新的结构优化设计方法能够有效且快速地定位结构缺陷并生成优化方案,为大型注塑件的低翘曲变形设计与制造提供了新的优化思路和实践参考。
关键词:
可拓创新方法,
大型注塑件,
翘曲变形,
结构优化
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