Simultaneous measurements of temperature and heat flux using ultrasound

I. Ihara, A. Kosugi, Shingo Isobe, I. Matsuya
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引用次数: 3

Abstract

Noninvasive and quantitative method for measuring both temperature distribution near heating surface of a material and heat flux through the heating surface is presented. In the method, temperature distribution of a heated material is determined by a combined technique consisting of an ultrasonic pulse-echo measurement and an inverse analysis coupled with a one-dimensional finite difference calculation, and heat flux is then estimated from the determined temperature distribution near the heating surface. To demonstrate the feasibility of this method, an experiment with a single-side heated steel plate is carried out. Ultrasonic pulse-echo measurements are performed with the heated steel plate, and measured ultrasonic signals are used for the analysis to determine internal temperature distributions of the plate and then heat fluxes through the heating surface are determined. The temperature distributions estimated by the ultrasonic method agree well with those measured by thermocouples installed in the plate, and the validity of the heat flux estimated by the present method is also investigated. It has been observed in the experiment that heat flux through the heating surface increases rapidly just after heating starts and then decreases gradually with elapsed time.
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用超声波同时测量温度和热流
提出了一种测量材料受热面附近温度分布和通过受热面的热流密度的无创定量方法。该方法采用超声脉冲回波测量和一维有限差分计算相结合的方法确定被加热材料的温度分布,然后根据确定的受热面附近的温度分布估计热流密度。为了证明该方法的可行性,对单面加热钢板进行了实验。对加热后的钢板进行超声脉冲回波测量,利用测量到的超声信号进行分析,确定钢板内部温度分布,进而确定通过受热面的热流。超声波法测得的温度分布与安装在板上的热电偶测得的温度分布吻合较好,并对该方法测得的热流密度的有效性进行了验证。实验观察到,加热刚开始时,通过受热面的热流密度迅速增大,然后随着时间的推移逐渐减小。
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