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Predicted Fracture Behavior of Shaft Steels with Improved Corrosion Resistance

机译:具有改善的耐腐蚀性的轴钢的预测断裂行为

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One of the crucial steps in the shaft design process is the optimal selection of the material. Two types of shaft steels with improved corrosion resistances, 1.4305 and 1.7225, were investigated experimentally and numerically in this paper in order to determine some of the material characteristics important for material selection in the engineering design process. Ultimate tensile strength and yield strength have been experimentally obtained, proving that steel 1.4305 has higher values of both. In addition, J -integral is numerically determined as a measure of crack driving force for finite element models of standardized fracture specimens (single-edge notched bend and disc compact tension). Obtained J values are plotted versus specimen crack growth size (Δ a ) for different specimen geometries ( a/W ). Higher resulting values of J -integral for steel 1.4305 as opposed to 1.7225 can be noted. Results can be useful as a fracture parameter in fracture toughness assessment, although this procedure differs from experimental analysis.
机译:轴设计过程中的关键步骤之一是材料的最佳选择。为了确定一些对工程设计过程中的材料选择很重要的材料特性,本文通过实验和数值研究了两种具有更高耐腐蚀性的轴钢:1.4305和1.7225。通过实验获得了极限抗拉强度和屈服强度,证明钢1.4305两者均具有较高的值。此外,J积分是通过数值确定的,用于标准化断裂试样的有限元模型(单边切口弯曲和圆盘压缩张力)作为裂纹驱动力的量度。将获得的J值相对于不同试样几何形状(a / W)的试样裂纹扩展尺寸(Δa)作图。可以注意到与1.4225相比,钢1.4305的J积分更高的结果值。尽管此过程与实验分析有所不同,但结果可以用作断裂韧性评估中的断裂参数。

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