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Hall Coefficient Measurement for Residual Stress Assessment in Precipitation Hardened IN718 Nickel-base Superalloy

机译:沉淀在沉淀中残余应力评估的霍尔系数测量硬化In718镍基超合金

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We investigated the feasibility of residual stress assessment based on Hall coefficient measurements in precipitation hardened IN718 nickel-base superalloy. As a first step, we studied the influence of microstructural variations on the galvanomagnetic properties of IN718 nickel-base superalloy. We found that the Hall coefficient of IN718 increases from ≈8.0 × 10~(-11) m~3/C in its fully annealed state of 15 HRC Rockwell hardness to ≈9.4 × 10~(-11) m~3/C in its fully hardened state of 45 HRC. We also studied the influence of cold work, i.e., plastic deformation, at room temperature and found that cold work had negligible effect on the Hall coefficient of fully annealed IN718, but significantly reduced it in hardened states of the material. For example, measurements conducted on fully hardened IN718 specimens showed that the Hall coefficient decreased more or less linearly with cold work from its peak value of ≈9.4 × 10-~(11) m~3/C in its intact state to ≈9.0 × 10~(-11) m~3/C in its most deformed state of 22% plastic strain. We also studiedthe influence of applied stress and found that elastic strain significantly increases the Hall coefficient of IN718 regardless of the state of hardening. The relative sensitivity of the Hall coefficient to elastic strain was measured as a unitless gauge factor k that is defined as the ratio of the relative change of the Hall coefficient AR_H/R_H divided by the axial strain ε= a/E, where a is the applied uniaxial stress andE is the Young's modulus of the material. We determined that the galvanomagnetic gauge factor of IN718 is k≈2.6-2.9 depending on the hardness level. Besides the fairly high value of the gauge factor, it is important that it is positive, which means that compressive stress in surface-treated components decreases the Hall coefficient in a similar way as plastic deformation does, therefore the unfortunate cancellation that occurs in fully hardened IN718 in the case of electric conductivity measurements will not happen in this case. Additionally, the temperature dependence of the Hall coefficient was measured at three different hardness levels and the influence of thermal exposure was studied in fully hardened IN718 up to 700 °C.
机译:我们研究了基于沉淀霍尔系数测量的残余应力评估的可行性硬化了In718镍基超合金。作为第一步,我们研究了微观结构变化对IN718镍基超合金的镀锌性能的影响。我们发现In718的霍尔系数从≈8.8×10〜(-11)m〜3 / c的完全退火状态增加了15小时的罗克韦尔硬度至≈9.4×10〜(-11)m〜3 / c它完全硬化的45小时状态。我们还研究了冷加工的影响,即塑性变形,在室温下,发现冷工作对霍尔的霍尔系数效果可忽略于718,但在材料的硬化状态下显着降低了它。例如,在完全硬化的IN718标本上进行的测量结果表明,霍尔系数在其完整状态下的峰值值为≈9.4×10-(11)m〜3 / c的峰值或多或少地线性地线性减少到其完整状态至≈9.0× 10〜( - 11)m〜3 / c的最变形状态为22%的塑性菌株。我们还研究了应用应力的影响,发现弹性应变显着增加了IN718的霍尔系数,而不管硬化状态如何。测量霍尔系数与弹性应变的相对灵敏度被测量为无单位规计因子K,其定义为霍尔系数Ar_h / R_h的相对变化与轴向应变ε= A / E的相对变化的比率,其中A是应用的单轴应力Ande是杨氏的材料模量。我们确定IN718的镀锌磁性量因子根据硬度水平为k≈2.6-2.9。除了规模因子的相当高的值外,重要的是,它是阳性的,这意味着表面处理的组件中的压缩应力以与塑性变形相似的方式将霍尔系数降低,因此不幸的消除完全硬化在这种情况下,在电导率测量的情况下,不会发生电导率。另外,在三种不同的硬度水平下测量霍尔系数的温度依赖性,并在高达700℃完全硬化的情况下研究了热暴露的影响。

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