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Dimension-Reduced Analog—Digital Mixed Measurement Method of Inductive Proximity Sensor

机译:电感式接近传感器的降维模拟—数字混合测量方法

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Inductive proximity sensors (IPSs) present a unique no-contact advantage. They are widely preferred for displacement measurement in various industrial fields (e.g., aviation and aerospace), and they are improved continuously. When the inductance and resistance components of the IPS sensing core are separated, the influence of temperature drift on measurement can be eliminated. The complexity of online computation of component separation can be reduced using a two-dimensional look-up table method. However, this method exhibits disadvantages, such as large capacity of the look-up table, dependency on precision measurement of sensing core parameter, and nonlinear distribution of measurement resolution. This study aims to overcome these disadvantages by examining the nonlinear relationship between the response of the sensing core and the ambient temperature, and proposes a dimension-reduced measurement method. The proposed method extracts the characteristics of the response curves at two temperatures and calculates the characteristics of the response curves at any temperature using a linear approximation. The look-up table capacity is less than 0.37% of the two-dimensional look-up table capacity (condensed) under the same condition; dimension reduction enables the construction of a complete look-up table directly by calibration procedures and avoids precise measurement on sensing core parameters; the calibration procedures establish uniform mapping of the distribution of measurement resolution. The experiment shows that, when the measurement ranges are 0–6, 0–5, and 0–4 mm, the maximum measurement errors are 0.140, 0.065, and 0.040 mm, respectively, under temperature ranging from 20 ° C to 110 ° C. This study extends the measurement range from 0–5 mm to 0–7 mm and improves the measurement accuracy over 0.1 mm (50% at 5 mm) compared with the two-dimensional look-up table method. Therefore, the proposed method not only inherits the advantages of the original method but also achieves the above-mentioned expected capacity improvements effectively.
机译:电感式接近传感器(IPS)具有独特的无接触优势。在各种工业领域(例如,航空和航天)中,它们是位移测量的广泛首选,并且不断得到改进。当IPS感应核心的电感和电阻组件分开时,可以消除温度漂移对测量的影响。可以使用二维查找表方法来减少组分分离在线计算的复杂性。但是,该方法存在诸如查找表的容量大,依赖于感测核心参数的精度测量以及测量分辨率的非线性分布之类的缺点。这项研究旨在通过检查传感芯的响应与环境温度之间的非线性关系来克服这些缺点,并提出了一种尺寸减小的测量方法。所提出的方法提取了两个温度下的响应曲线的特征,并使用线性逼近计算了任何温度下的响应曲线的特征。在相同条件下,查询表容量小于二维查询表容量(压缩)的0.37%;尺寸减小使得可以直接通过校准程序构建完整的查找表,并且避免了对传感核心参数的精确测量;校准程序建立了测量分辨率分布的统一映射。实验表明,在20°C至110°C的温度范围内,当测量范围为0–6、0–5和0–4 mm时,最大测量误差分别为0.140、0.065和0.040 mm。 。这项研究与二维查找表方法相比,将测量范围从0-5 mm扩展到0-7 mm,并提高了0.1 mm(5 mm处为50%)的测量精度。因此,提出的方法不仅继承了原有方法的优点,而且有效地实现了上述预期的容量提高。

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