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Application of the Monte Carlo method to estimate the uncertainty of air flow measurement

机译:蒙特卡罗法应用估计空气流量测量的不确定性

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The Guide to the Expression of Uncertainty in Measurement (GUM) approves the use of both the classical approach with partial derivatives and the Monte Carlo technique. The former procedure exhibits two main limitations: Firstly, it requires some mathematical skills to compute the first-order derivatives of each component of the output quantity; secondly, it cannot predict the probability distribution of the output quantity if the input quantities are not normally distributed. The drawbacks, however, are eliminated by the latter concept, namely the Monte Carlo approach. This paper demonstrates that the Monte Carlo simulation method is fully compatible with conventional uncertainty estimation methods. The authors describe application of the Monte Carlo method for the estimation of measurement uncertainty in indirect measurement of air flow with a multiport averaging Pitot tube. The uncertainty of the flowmeter is dependent on the averaging Pitot tube (as a primary element) and on the differential pressure transmitter uncertainty. In this case, the probability distributions of the input quantities are not normal. Matlab is used for the estimation of the air flow measurement uncertainty via the Monte Carlo method.
机译:测量中不确定性表达的指南(GUM)批准了使用典型方法与部分衍生物和蒙特卡罗技术。前一个程序展示了两个主要限制:首先,它需要一些数学技能来计算输出量的每个组件的一阶导数;其次,如果输入量通常不分布,则无法预测输出量的概率分布。然而,缺点被后一种概念消除,即蒙特卡罗方法。本文表明,蒙特卡罗模拟方法与传统的不确定性估算方法完全兼容。作者描述了Monte Carlo方法在间接测量空气流量的间接测量中的测量不确定性的应用。流量计的不确定性取决于平均皮托管(作为主要元件)和差压变送器不确定性。在这种情况下,输入量的概率分布是不正常的。 MATLAB用于通过蒙特卡罗方法估计空气流量测量不确定性。

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