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Effect of Temperature on Solid Ultrasonic Propagation Using Finite Element Method and Experiments

机译:温度对使用有限元法和实验的固体超声波传播的影响

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Time of flight (TOF) is considered to be a sign of solid ultrasonic propagation. The more precise measurement of TOF is the better propagation of ultrasonic in solid we can get. Uncertainties associated with coupling fluids or positional offsets can be eliminated by permanently installed ultrasonic probes. However, the variations caused by temperature need to be considered during measurement of TOF, which makes it potentially possible to monitor the onset of material degradation such as stress modification. In this paper, firstly, the finite element models of ultrasonic propagation in aluminum and steel were respectively established under temperatures from 25°C to 200°C. An error of ultrasonic flight-time due to the change of the ultrasonic path caused by solid thermal expansion was corrected, which was implemented and its performance was compared with simulated and experimental measurements. The results show that the modified velocity equation can effectively reflect the effluence of temperature on ultrasonic flight-time and ultrasonic velocity up to 200°C. The TOF measurements maximum relative errors in aluminum and steel were respectively decreased to 0.4395% and 0.5204%.
机译:飞行时间(TOF)被认为是坚实超声波传播的迹象。 TOF的更精确测量是我们可以得到的超声波更好地传播。可以通过永久安装的超声波探头消除与偶联流体或位置偏移相关的不确定性。然而,在TOF的测量期间需要考虑由温度所需的变化,这使得可能能够监测材料劣化的发作,例如应力修改。在本文中,首先,在25℃至200℃的温度下,分别在铝和钢中超声波繁殖的有限元模型。校正由固体热膨胀引起的超声波路径的变化的超声波飞行时间误差,其实施了,并将其性能与模拟和实验测量进行了比较。结果表明,改进的速度方程可以有效地将温度的过度反映出超声波飞行时间和超声速度高达200°C的流出。 TOF测量铝和钢中的最大相对误差分别降至0.4395%和0.5204%。

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