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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Improving the deformation homogeneity of the transitional region in local loading forming of Ti-alloy rib-web component by optimizing unequal-thickness billet
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Improving the deformation homogeneity of the transitional region in local loading forming of Ti-alloy rib-web component by optimizing unequal-thickness billet

机译:通过优化不等厚度坯料改善局部加载成型局部装载成型的过渡区域的变形均匀性

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摘要

Isothermal local loading forming (ILLF) provides a new way to form large-scale Ti-alloy rib-web components (LTRC). However, the material undergoes complex inhomogeneous deformation in transitional region, which influences the forming quality of the component. The purpose of this paper is to improve the deformation homogeneity of the transitional region in ILLF by optimizing unequal thickness billet (UTB), which can adjust the initial volume distribution and control material flow with low cost and high efficiency. Based on the finite element (FE) simulation, the strain distribution of the transitional region in ILLF was investigated. It is found that the strain concentration at the root of formed rib in the first-loading region is more intense than that in the whole loading forming. Besides, the most strain concentration occurs at the root of partitioning rib on the side of first-loading region, which was not observed in the whole loading forming. The material transferred into the first-loading region during the second-loading step, and subsequent rib shift is the fundamental reasons for the strain concentration. The initial volume distribution of UTB has a significant effect on the strain concentration. In order to optimize the UTB, the average strain of strain concentration zone was correlated with geometric parameters of UTB by using response surface method (RSM). Based on the RSM model, the optimized UTB was achieved. The FE simulation of optimized UTB shows that the transferred material, rib shift, average strain, and maximum effective strain were all effectively decreased compared with equal thickness billet outcomes. The present RSM-based optimization method of UTB is proven to be a promising strategy to improve the deformation homogeneity of the transitional region in ILLF.
机译:等温局部装载成型(ILLF)提供了一种形成大型Ti合金肋网组件(LTRC)的新方法。然而,该材料在过渡区域中经历复杂的不均匀变形,其影响组分的形成质量。本文的目的是通过优化不等厚度坯料(UTB)来改善ILLF中过渡区域的变形均匀性,这可以通过低成本和高效率调节初始体积分布和控制材料流。基于有限元(FE)模拟,研究了ILLF中过渡区域的应变分布。发现在第一负载区域中形成的肋根部的应变浓度比整个装载成形更强烈。此外,最多的应变浓度发生在第一负载区域侧的分配肋的根部,在整个装载形成中未观察到。在第二加载步骤期间将材料转移到第一负载区域中,随后的肋变速是应变浓度的根本原因。 UTB的初始体积分布对应变浓度具有显着影响。为了优化UTB,通过使用响应表面方法(RSM)与UTB的几何参数相关的平均应变浓度区应变。基于RSM模型,实现了优化的UTB。优化UTB的FE模拟表明,与等于厚度的坯料结果相比,转移的材料,肋型,平均菌株和最大有效应变和最大有效应变。据证明,UTB的基于RSM的优化方法是提高ILLF中过渡区域的变形均匀性的有希望的策略。

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