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Three-dimensional temperature field compensation technology for large-scale ultrasonic positioning system

机译:大型超声波定位系统的三维温度场补偿技术

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摘要

Large-scale ultrasonic positioning systems have recently shown substantial improvement, according to the current great interest concerning large-scale metrology applications in many different fields of manufacturing industry. However, the sound velocity is greatly influenced by the ambient temperature especially in large-scale applications. The traditional sound velocity compensation method mainly uses the average temperature in measurement space based on an assumption that the temperature field is uniform and stable. As the assumption is invalid in most cases, especially in industrial measurement environments, the traditional compensation method will bring obvious errors. To reduce these errors caused by sound velocity, this article proposes a novel compensation method by constructing a three-dimensional temperature field of measurement space through heat transfer theory as well as the finite element method, and then estimating the distance accurately using a couple iterating algorithm. Verification experiments demonstrate that the ranging deviation estimated through the proposed method may keep within 0.5 mm in 5.4x2 m measurement space, whereas the average distance measurement uncertainty is about 0.25 mm.
机译:根据制造业许多不同领域的大规模计量应用,最近,大型超声波定位系统最近显示出实质性的改善。然而,声速受到环境温度的极大影响,特别是在大规模应用中。传统的声速补偿方法主要基于温度场均匀且稳定的假设使用测量空间中的平均温度。在大多数情况下,假设无效,特别是在工业测量环境中,传统的补偿方法将带来明显的错误。为了减少由声速引起的这些误差,本文通过传热理论构建测量空间的三维温度场以及有限元方法来提出一种新的补偿方法,然后使用耦合迭代算法准确地估计距离。验证实验表明,通过所提出的方法估计的测距偏差可以保持在5.4x2 m测量空间的0.5mm以内,而平均距离测量不确定度约为0.25mm。

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