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New Ultrasonic Methodology for Determining Temperature Gradient and Its Application to Heated Materials Monitoring

机译:用于测定温度梯度的新超声波方法及其在加热材料监测中的应用

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In various fields of science and engineering, temperature measurement has become one of the most fundamental and important issues. For example, in industrial materials processing, it is required to measure the temperature gradient and its transient variation in the material being processed at high temperatures because the temperature state during processing crucially influences the quality of final products. Such temperature measurements are also required for making structural health monitoring at high temperature environments. In this work, a new ultrasonic method for monitoring temperature gradient of a material being heated or cooled is presented. The principle of the method is based on the temperature dependence of the velocity of ultrasonic wave propagating through a material. An effective analysis method coupled with a finite difference calculation is developed to determine one-dimensional temperature distributions in a heated material. To verify the practical feasibility of the method, some experiments have been made. A single side of a steel plate of 30 mm thickness is heated by contacting with a heater and subsequently cooled down by water. Ultrasonic pulse-echo measurements are performed during heating and cooling, and the measured transit time of ultrasound across the steel is used for the analysis to determine the temperature gradient in the steel. Furthermore, rapid heating by contacting with molten aluminium at 700 degree C and rapid cooling by contacting with an ice are evaluated and the transient variations of the temperature gradient in the steel have successfully been monitored.
机译:在各种科学和工程领域,温度测量已成为最基本和重要的问题之一。例如,在工业材料处理中,需要测量在高温下处理的材料的温度梯度及其瞬态变化,因为在处理过程中的温度状态至关重要地影响最终产品的质量。在高温环境下制造结构健康监测也需要这种温度测量。在这项工作中,提出了一种用于监测被加热或冷却的材料温度梯度的新型超声波方法。该方法的原理基于通过材料传播的超声波速度的温度依赖性。开发了一种与有限差分计算耦合的有效分析方法以确定加热材料中的一维温度分布。为了验证该方法的实际可行性,已经进行了一些实验。通过与加热器接触并随后被水冷却来加热30mm厚度的钢板的单侧。在加热和冷却期间进行超声波脉冲回波测量,并且使用钢跨越超声的测量的传输时间用于分析以确定钢中的温度梯度。此外,通过在700℃下与熔融铝接触并通过与冰接触快速冷却来快速加热,并监测钢中的温度梯度的瞬态变化。

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