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Numerical study on the effect of the Luders plateau on the ductile crack growth resistance of SENT specimens

机译:遵守高原对送置标本延展性裂纹生长抗性影响的数值研究

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The increasing demand of energy prompts the petroleum industry exploitation activities to the Arctic region where the low temperature is a strong challenge, both for structural design and material selection. For structural materials exhibiting the Luders plateau, it has been reported that lowering the temperature will increase the Luders plateau length. In order to obtain a deep understanding of the Luders plateau effect on ductile crack growth resistance, we performed numerical analyses with SENT specimens and the Gurson damage model. The Luders plateau was simplified by keeping the flow stress constant and varying the plateau length. The results show that the existence of the Luders plateau does not influence the initiation toughness, however, will alter the material's fracture resistance significantly. It is found that the Luders plateau effect is in general controlled by the stress triaxiality level in front of the crack tip. Both the strain hardening and the crack depth effects on resistance curves are alleviated due to the Luders plateau. For materials with very small initial void volume fraction, the Luders plateau effect is more pronounced. Since the Luders plateau intensifies the crack driving force and may lower down crack resistance curve, special attention should be paid to the application of materials with the Luders plateau in the Arctic.
机译:能量越来越多的需求促使石油工业利用对北极地区的开发活动,其中低温是结构设计和材料选择的强烈挑战。对于展示铅板平台的结构材料,据报道,降低温度将增加铅板高原长度。为了深入了解对延伸的高原对延展性裂纹生长抗性的影响,我们用寄定标本和Gurson损伤模型进行了数值分析。通过保持流量应力恒定并改变平台长度来简化遵守高原。结果表明,铅板平台的存在不会影响起始韧性,但是将显着改变材料的骨折抗性。结果发现,遵循的高原效应通常由裂缝尖端前方的应力三轴性水平控制。由于铅化平台,应变硬化和对电阻曲线的裂纹深度效应。对于具有非常小的初始空隙体积分数的材料,遵守高原效应更加明显。由于遵守高原加剧了裂缝驱动力并且可能降低抗裂性曲线,因此应特别注意材料在北极地区的铅板高原的应用。

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