Modeling a self-calibrating thermocouple for use in a smart temperature measurement system

F. Ruppel
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引用次数: 3

Abstract

A smart temperature measurement system that consists of a commercially available self-calibrating thermocouple connected to a data-acquisition system with a specially designed algorithm capable of automatically detecting the calibration temperature of the self-calibrating thermocouple was developed. The self-calibrating thermocouple has a high-purity, low-melting-point metal encapsulated near its thermojunction. The time-temperature record of the thermocouple forms a plateau at the phase transition temperature of the encapsulated metal, providing a single-point calibration. Since the plateau is usually not horizontal, a major effort of the work reported was to determine which point of the phase transition plateau is the actual phase transition temperature. A finite-difference computer simulation program was written to explain the thermodynamic behavior of the system. On the basis of a literature review and simulation analysis, a method was developed to recognize which point on the melting or freezing plateau curve is the actual phase transition temperature of the encapsulated metal. The known phase transition temperature is compared with the reported melting or freezing point of the encapsulated metal to determine the magnitude of error in the thermocouple output.<>
一个用于智能温度测量系统的自校准热电偶建模
开发了一种智能温度测量系统,该系统由市售的自校准热电偶连接到具有特殊设计算法的数据采集系统,能够自动检测自校准热电偶的校准温度。自校准热电偶具有高纯度,低熔点的金属封装在其热结附近。热电偶的时间-温度记录在封装金属的相变温度处形成平台,提供单点校准。由于平台通常不是水平的,因此报告的主要工作是确定相变平台的哪一点是实际相变温度。编写了有限差分计算机模拟程序来解释系统的热力学行为。在文献综述和模拟分析的基础上,提出了一种识别熔化或冻结平台曲线上哪一点是被封装金属实际相变温度的方法。将已知的相变温度与封装金属的熔点或冰点进行比较,以确定热电偶输出的误差大小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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