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首页> 外文期刊>izvestiya vysshikh uchebnykh zavedenij. chernaya metallurgiya >Straightening of low-rigid cylindrical details. Part 2. Stressed state of cylindrical billets at transverse cheesing by flat plates
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Straightening of low-rigid cylindrical details. Part 2. Stressed state of cylindrical billets at transverse cheesing by flat plates

机译:矫直低刚性圆柱形细节。第 2 部分。平板横向切削时圆柱形坯料的应力状态

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© 2019 National University of Science and Technology MISIS. All rights reserved.To restore the shape of curved low-rigid cylindrical details such as shafts and axles, bending straightening under distributed loading is proposed, followed by hardening of the billet using surface plastic deformation based on transverse cheesing of it by flat plates. It is known that after straightening by transverse bending, non-equilibrium stresses are formed over the entire volume of the billet and over time the shape of the detail may again be distorted. Therefore, after performing the straightening process by bending, it is necessary to additionally strengthen the billets by surface plastic deformation based on the transverse cheesing of them by flat plates. The aim of the work was to determine the condition of capture and stress state of the billet during such transverse cheesing. We used the mathematical apparatus and software package Ansys Workbench. The novelty of the work is a new way to manage the stress state when straightening cylindrical billets. As a result, the value of the capture limiting angle α is in the range of 2 – 8°. Maximum value of the absolute reduction depends on friction coefficient and diameter of the billet. Optimal value of the absolute compression is in the range of ∆H = 0.07 − 0.15 mm. The calculation results have shown that after transverse cheesing, in the center of the billet’s cross section there is a stress state of all-round tension, and a stress state of compression is formed in the billet’s shell. The method of hardening by transverse cheesing with flat plates eliminates the cracks formation and material destruction in the central part of cylindrical products.
机译:© 2019 国立科技大学-莫斯科国立钢铁合金学院保留所有权利。为了恢复弯曲的低刚性圆柱形细节(如轴和轴)的形状,提出了在分布载荷下的弯曲矫直,然后利用平板横向切削的表面塑性变形对坯料进行硬化。众所周知,在通过横向弯曲矫直后,在坯料的整个体积上形成非平衡应力,并且随着时间的推移,细节的形状可能会再次变形。因此,在通过弯曲进行矫直过程后,有必要根据平板对坯料的横向切解进行表面塑性变形,从而进一步加强坯料。这项工作的目的是确定在这种横向切割过程中坯料的捕获条件和应力状态。我们使用了数学仪器和软件包Ansys Workbench。这项工作的新颖之处在于矫直圆柱形坯料时管理应力状态的新方法。因此,捕获极限角α值在 2 – 8° 范围内。绝对折减的最大值取决于摩擦系数和坯料直径。绝对压缩的最佳值在 ∆H = 0.07 − 0.15 mm 的范围内。计算结果表明,横切后,在坯料截面中心存在全方位拉伸的应力状态,在坯料壳体中形成压缩的应力状态。通过平板横向切削硬化的方法消除了圆柱形产品中心部分的裂纹形成和材料破坏。

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