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DEFORMATION VERSUS MODIFIED J-INTEGRAL RESISTANCE CURVES FOR DUCTILE MATERIALS

机译:变形与延性材料的改性J-积分电阻曲线

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The J-integral resistance curve (or J-R curve) has been widely used as material property in fracture mechanics methods for structural integrity assessment. ASTM E1820 provides the standard fracture toughness test methods to measure J_(Ic) and J-R curves. The conventional J-R curve utilizes the J-integral parameter proposed by Rice [1] based on the deformation theory of plasticity. Due to crack-tip constraint effect, J-R curves of a material depend on specimen size, geometry type and crack length. In order to obtain size-independent resistance curves, Ernst [11] introduced a modified J-integral or J_m to minimize the size dependence and to characterize the resistance curve for large crack extensions beyond the limitation of deformation J-R curves. In the late 1980s and in the early 1990s, different experimental results showed the modified J_m-R curves were still size-dependent and may even behave worse than the deformation J-R curves. However, to date, the J_m-R curves are still regarded as "size-independent" in fracture mechanics analysis. To clarify this, the present paper gives a brief historical review of ductile resistance curves in terms of deformation J-integral and the modified J_m-integral, and evaluates the size dependence using experimental results for various steels and specimens, including A285 carbon steel and SENB specimens. A suggestion how to use the resistance curves is made accordingly.
机译:J-积分电阻曲线(或J-R曲线)已被广泛用作结构完整性评估的断裂力学方法中的材料性能。 ASTM E1820提供了测量J_(IC)和J-R曲线的标准断裂韧性试验方法。传统的J-R曲线利用基于塑性变形理论的米[1]提出的J-Integral参数。由于裂纹尖端约束效果,材料的J-R曲线取决于样品尺寸,几何型和裂缝长度。为了获得尺寸无关的电阻曲线,ERNST [11]引入了修改的J-Integryal或J_M,以最小化尺寸依赖性,并表征大裂缝延伸的电阻曲线,超出变形J-R曲线的限制。在20世纪80年代后期和20世纪90年代初,不同的实验结果表明,修改的J_M-R曲线仍然依赖于尺寸,甚至可能表现得比变形J-R曲线差。然而,迄今为止,J_M-R曲线仍被视为骨折力学分析中的“尺寸无关”。为了澄清这一点,本文在变形J-Intional和改进的J_M-Integlal方面对延性抗性曲线进行了简要的历史回顾,并使用各种钢和样本的实验结果评估尺寸依赖性,包括A285碳钢和Senb标本。建议如何使用电阻曲线。

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