C-type two-thermocouple sensor design between 1000 and 1700 °C.

IF 1.3 4区 工程技术 Q3 INSTRUMENTS & INSTRUMENTATION Review of Scientific Instruments Pub Date : 2024-10-01 DOI:10.1063/5.0224040
Yangkai Guo, Zhijie Zhang, Yanfeng Li, Wenzhuo Wang
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Abstract

At the present stage of transient ultra-high-temperature energy release of boron-containing warm-pressure explosives, single thermocouples are often used for multi-point measurements in the process of their temperature field changes, and the results of their temperature field reconstruction are not satisfactory due to the limited consistency of the thermocouples. Aiming at the above-mentioned problems, a C-type two-thermocouple suitable for transient temperature measurement in high-temperature environments is designed; the system characterization of the two-thermocouple is carried out by using the blind system identification method of the inter-relationships; the identification process is evaluated by a new cost function; and the optimal solution on the new cost function is realized by using the gradient descent method. The temperature reconstruction of the two-thermocouple output excited by the simulated heat source is carried out by using the auto-regressive with extra inputs model, and the feasibility of the reconstruction results is verified. In the experimental part, a thermocouple dynamic characteristic calibration system based on a high-temperature furnace is constructed and experimental validation is carried out in the high-temperature furnace to compare the effects of different exposure lengths and different wire diameters on the output of the two-thermocouple, and as a result, the outputs are corrected and analyzed. The results show that two-thermocouple methods with different combinations of wire diameters are better for temperature measurement, with a reconstructed root mean squared error of 0.0162 and a goodness of fit of 89.13%.

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C 型双热电偶传感器的设计温度范围为 1000 至 1700 °C。
现阶段,在含硼温压炸药瞬态超高温能量释放过程中,往往采用单热电偶对其温度场变化过程进行多点测量,由于热电偶的一致性有限,其温度场重建结果并不理想。针对上述问题,设计了一种适用于高温环境下瞬态温度测量的 C 型双热电偶,利用相互关系的盲系统识别方法对双热电偶进行了系统表征,用新的代价函数对识别过程进行了评估,并利用梯度下降法实现了新代价函数上的最优解。利用带额外输入的自动回归模型,对模拟热源激励的双热电偶输出进行了温度重构,并验证了重构结果的可行性。在实验部分,构建了基于高温炉的热电偶动态特性校准系统,并在高温炉中进行了实验验证,比较了不同暴露长度和不同导线直径对双热电偶输出的影响,并对输出结果进行了修正和分析。结果表明,采用不同线径组合的双热电偶法测温效果更好,重建的均方根误差为 0.0162,拟合优度为 89.13%。
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来源期刊
Review of Scientific Instruments
Review of Scientific Instruments 工程技术-物理:应用
CiteScore
3.00
自引率
12.50%
发文量
758
审稿时长
2.6 months
期刊介绍: Review of Scientific Instruments, is committed to the publication of advances in scientific instruments, apparatuses, and techniques. RSI seeks to meet the needs of engineers and scientists in physics, chemistry, and the life sciences.
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