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首页> 外文期刊>International Journal of Material Forming: Official Journal of the European Scientific Association for Material Forming - ESAFORM >Development of a numerical compensation framework for geometrical deviations in bulk metal forming exploiting a surrogate model and computed compatible stresses
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Development of a numerical compensation framework for geometrical deviations in bulk metal forming exploiting a surrogate model and computed compatible stresses

机译:利用替代模型和计算的相容应力,开发用于体金属成形几何偏差的数值补偿框架

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摘要

The optimal design of the tools in bulk metal forming is a crucial task in the early design phase and greatly affects the final accuracy of the parts. The process of tool geometry assessment is resource- and time-consuming, as it consists of experience-based procedures. In this paper, a compensation method is developed with the aim to reduce geometrical deviations in hot forged parts. In order to simplify the transition process between the discrete finite-element (FE) mesh and the computer-aided-design (CAD) geometry, a strategy featuring an equivalent surrogate model is proposed. The deviations are evaluated on a reduced set of reference points on the nominal geometry and transferred to the FE nodes. The compensation approach represents a modification of the displacement-compatible spring-forward method (DC-SF), which consists of two elastic FE analyses. The compatible stress originating the deviations is estimated and subsequently applied to the original nominal geometry. After stress relaxation, an updated nominal geometry of the part is obtained, whose surfaces represent the compensated tools. The compensation method is verified by means of finite element simulations and the robustness of the algorithm is demonstrated with an additional test geometry. Finally, the compensation strategy is validated experimentally.
机译:在早期设计阶段,对大宗金属成型中的刀具进行优化设计是一项至关重要的任务,极大地影响了零件的最终精度。刀具几何评估的过程既费力又耗时,因为它由基于经验的程序组成。本文提出了一种补偿方法,旨在减少热锻件的几何偏差。为了简化离散有限元(FE)网格与计算机辅助设计(CAD)几何之间的过渡过程,该文提出一种具有等效代理模型的策略。偏差在标称几何形状上的一组简化的参考点上进行评估,并传输到有限元节点。补偿方法代表了位移兼容弹簧前向法 (DC-SF) 的改进,该法由两个弹性有限元分析组成。估计产生偏差的相容应力,然后将其施加到原始标称几何形状上。应力松弛后,获得零件的更新标称几何形状,其表面代表补偿的刀具。通过有限元仿真验证了补偿方法,并通过额外的测试几何结构证明了算法的鲁棒性。最后,对补偿策略进行了实验验证。

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