具有数值确定表面热流通量历史的瞬态传热用快速响应温度传感器的热产物

H. Mohammed, H. Salleh, M. Yusoff
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引用次数: 0

摘要

提出了一种动态标定技术,用于评定不同划痕温度传感器的热积值。这些传感器具有可再生结,响应时间快,可用于高超声速飞行器的瞬态传热测量。使用两种类型的划痕,主要是不同粒度的砂纸和不同厚度的手术刀刀片,形成传感器连接点。研究了划痕技术对传感器热产物的影响。在激波管装置中对传感器进行了不同工况下的测试。观察到,特定传感器的热积取决于马赫数、表面结划伤技术、结位置以及焓条件。还注意到,使用特定刀片尺寸的手术刀刀片技术可以提供一致的热产品值。因此,它不需要单独校准。然而,对于使用不同粒度的磨料纸技术创建的传感器,可能需要对每个传感器进行校准。本研究结果为不同刻痕温度传感器的热产物值提供了有用的实用数据。这些数据对现场的实验人员是有益的,可以用于精确的瞬态换热率的测定。标定结果表明,传感器的响应时间在微秒量级(小于50 μs),上升时间小于0.3 μs。采用数值计算的方法,通过编写MATLAB程序,从测量的表面温度历史中获得瞬态热流通量历史,从而计算换热率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal Product of Fast Response Temperature Sensors for Transient Heat Transfer Applications with Numerically Determined Surface Heat Flux History~!2009-09-06~!2009-11-10~!2010-04-16~!
A dynamic calibration technique for evaluating the thermal product values of different scratched temperature sensors is presented. These sensors have renewable junction, fast response time and it can be used for transient heat transfer measurements in hypersonic vehicles. Two types of scratch were used, mainly abrasive papers with different grit sizes and scalpel blades with different thicknesses to form the sensor junction. The effect of scratch technique on the sensor’s thermal product is investigated. The sensors were tested in shock tube facility at different operating conditions. It was observed that the thermal product of a particular sensor depends on the Mach number, surface junction scratch technique, junction location as well as on the enthalpy conditions. It was also noticed that using scalpel blade technique with a particular blade size gives consistent thermal product values. Thus, it does not require an individual calibration. However, for sensors whose junction created using abrasive paper technique with different grit sizes, a calibration for each sensor is likely to be needed. The present results have provided useful and practical data for thermal product values for different scratched temperature sensors. These data are beneficial to the experimentalists in the field and it can be used for accurate transient heat transfer rate determination. Furthermore, the present calibration technique has shown that the response time of these sensors is on the order of microseconds (less than 50 μs) and it has a rise time less than 0.3 μs. A numerical technique was used in the calculation of the heat transfer rate by developing a MATLAB routine to obtain the transient heat flux history from the measured surface temperatures history.
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