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Revisiting the empirical relation for the maximum shearing force using plasticity and ductile fracture mechanics

机译:利用可塑性和韧性断裂力学重新探讨最大剪切力的经验关系

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Combination of plasticity with ductile fracture mechanics in a simple plastic flow model for sheet metal cutting provides a new level of understanding of the empirical relation between the maximum shearing force F_(max) and the ultimate tensile stress σ_(UTS) of the workpiece. The constant C in F_(max) = Cσ_(UTS)tL, where t is the sheet thickness and L the total surface length of the cut contour, is shown to be determined either (a) by the load to cause plastic instability in shear with separation (cracking) occurring subsequently or (b) by the load to cause cracking when that occurs at a punch displacement smaller than that at plastic instability in which case no instability occurs. The usually encountered range of empirical values for C, viz.: 0.65 < C < 0.85, is shown to correspond with the load for instability and depends on the work hardening index, with less-ductile materials having C at the lower end of the range. Whether cracking can precede the instability depends on the toughness/strength ratio (R/k_0) of the material and the workpiece thickness, where R is the fracture toughness and k_0 the yield stress in shear. The thicker the sheet and the less ductile the material, i.e. the lower the (R/k_0), promotes ductile fracture at a load smaller than that for plastic instability.
机译:在用于钣金切割的简单塑性流模型中将塑性与韧性断裂力学相结合,为工件最大剪切力F_(max)和极限拉伸应力σ_(UTS)之间的经验关系提供了新的理解水平。常数C in F_(max)=Cσ_(UTS)tL,其中t是板材厚度,L是切割轮廓的总表面长度,由以下两个因素决定:(a)由引起剪切塑性不稳定性的载荷决定随后发生分离(开裂)或(b)在载荷作用下导致开裂,当冲头位移小于塑性不稳定性时开裂,在这种情况下不会发生不稳定性。 C的经验值通常遇到的范围,即:0.65

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