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Uncertainty Evaluation and Validation of a Comparison Methodology to Perform In-house Calibration of Platinum Resistance Thermometers using a Monte Carlo Method

机译:使用蒙特卡洛方法进行铂电阻温度计内部校准的比较方法的不确定性评估和验证

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摘要

The uncertainty required by laboratories and industry for temperature measurements based on the practical use of platinum resistance thermometers (PRTs) can commonly be achieved by calibration using temperature reference conditions and comparison methodologies (TCM) instead of the more accurate primary fixed-point (ITS-90) method. TCM is suitable for establishing internal traceability chains, such as connecting reference standards to transfer and working standards. The data resulting from the calibration method can be treated in a similar way to that prescribed for the ITS-90 interpolation procedure, to determine the calibration coefficients. When applying this approach, two major tasks are performed: (i) the evaluation of the uncertainty associated with the estimate of temperature (a requirement shared by the ITS-90 method), based on knowledge of the uncertainties associated with the temperature fixed points and the measured electrical resistances, and (ii) the validation of this practical comparison considering that the reference data are obtained using the ITS-90 method. The conventional approach, using the GUM uncertainty framework, requires approximations with unavoidable loss of accuracy and might not provide adequate uncertainty evaluation for the methods mentioned, because the conditions for its valid use, such as the near-linearity of the mathematical model relating temperature to electrical resistance, and the near-normality of the measurand (temperature), might not apply. Moreover, there can be some difficulty in applying the GUM uncertainty framework relating to the formation of sensitivity coefficients through partial derivatives for a model that, as here, is somewhat complicated and not readily expressible in an explicit form. Alternatively, uncertainty evaluation can be carried out by a Monte Carlo method (MCM), a numerical implementation of the propagation of distributions that is free from such conditions and straightforward to apply. In this paper, (a) the use of MCM to evaluate uncertainties relating to the ITS-90 interpolation procedure, and (b) a validation procedure to perform in-house calibration of PRTs by comparison are discussed. An example illustrating (a) and (b) is presented.
机译:通常,可以通过使用温度参考条件和比较方法(TCM)进行校准,而不是使用更精确的主要定点(ITS-),来实现实验室和行业根据铂电阻温度计(PRT)的实际使用进行温度测量所需的不确定性。 90)方法。 TCM适用于建立内部追溯链,例如将参考标准连接到转移和工作标准。可以按照与ITS-90内插程序规定的方式相似的方式处理由校准方法得到的数据,以确定校准系数。当采用这种方法时,要执行两个主要任务:(i)基于与温度固定点相关的不确定性的知识,评估与温度估计相关的不确定性(ITS-90方法共有的要求)。 (ii)考虑到使用ITS-90方法获得的参考数据,对该实际比较进行了验证。使用GUM不确定性框架的常规方法需要进行近似计算,不可避免地会损失准确性,并且可能无法为上述方法提供足够的不确定性评估,因为其有效使用的条件(例如,温度与温度相关的数学模型的近似线性)是可行的。电阻和被测量物(温度)的接近正常值可能不适用。而且,在模型的应用中,通过部分导数应用与形成敏感系数有关的GUM不确定性框架可能会有些困难,因为模型在这里有些复杂,并且不易以明确的形式表示。可替代地,不确定性评估可以通过蒙特卡洛方法(MCM)进行,蒙特卡罗方法是数值分布的传播的一种实现方式,它不受这种条件的限制并且易于应用。在本文中,讨论了(a)使用MCM评估与ITS-90内插程序有关的不确定性,以及(b)通过比较进行PRT内部校准的验证程序。给出了示出(a)和(b)的示例。

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