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使用毫米和亚毫米尺度的计算机断层扫描对3D复杂几何尺寸测量进行不确定度评估的实验方法。

Experimental Approach for the Uncertainty Assessment of 3D Complex Geometry Dimensional Measurements Using Computed Tomography at the mm and Sub-mm Scales.

作者信息

Jiménez Roberto, Torralba Marta, Yagüe-Fabra José A, Ontiveros Sinué, Tosello Guido

机构信息

Centro Universitario de la Defensa, A.G.M. Carretera Huesca s/n, 50090 Zaragoza, Spain.

I3A, Universidad de Zaragoza, María de Luna 3, 50018 Zaragoza, Spain.

出版信息

Sensors (Basel). 2017 May 16;17(5):1137. doi: 10.3390/s17051137.

Abstract

The dimensional verification of miniaturized components with 3D complex geometries is particularly challenging. Computed Tomography (CT) can represent a suitable alternative solution to micro metrology tools based on optical and tactile techniques. However, the establishment of CT systems' traceability when measuring 3D complex geometries is still an open issue. In this work, an alternative method for the measurement uncertainty assessment of 3D complex geometries by using CT is presented. The method is based on the micro-CT system Maximum Permissible Error (MPE) estimation, determined experimentally by using several calibrated reference artefacts. The main advantage of the presented method is that a previous calibration of the component by a more accurate Coordinate Measuring System (CMS) is not needed. In fact, such CMS would still hold all the typical limitations of optical and tactile techniques, particularly when measuring miniaturized components with complex 3D geometries and their inability to measure inner parts. To validate the presented method, the most accepted standard currently available for CT sensors, the Verein Deutscher Ingenieure/Verband Deutscher Elektrotechniker (VDI/VDE) guideline 2630-2.1 is applied. Considering the high number of influence factors in CT and their impact on the measuring result, two different techniques for surface extraction are also considered to obtain a realistic determination of the influence of data processing on uncertainty. The uncertainty assessment of a workpiece used for micro mechanical material testing is firstly used to confirm the method, due to its feasible calibration by an optical CMS. Secondly, the measurement of a miniaturized dental file with 3D complex geometry is carried out. The estimated uncertainties are eventually compared with the component's calibration and the micro manufacturing tolerances to demonstrate the suitability of the presented CT calibration procedure. The 2U/T ratios resulting from the validation workpiece are, respectively, 0.27 (VDI) and 0.35 (MPE), by assuring tolerances in the range of ± 20-30 µm. For the dental file, the E < 1 value analysis is favorable in the majority of the cases (70.4%) and 2U/T is equal to 0.31 for sub-mm measurands (L < 1 mm and tolerance intervals of ± 40-80 µm).

摘要

对具有三维复杂几何形状的小型化部件进行尺寸验证极具挑战性。计算机断层扫描(CT)可以成为基于光学和触觉技术的微观计量工具的一种合适替代解决方案。然而,在测量三维复杂几何形状时,CT系统的可追溯性建立仍然是一个悬而未决的问题。在这项工作中,提出了一种使用CT对三维复杂几何形状进行测量不确定度评估的替代方法。该方法基于通过使用多个校准参考工件实验确定的微型CT系统最大允许误差(MPE)估计。所提出方法的主要优点是不需要通过更精确的坐标测量系统(CMS)对部件进行预先校准。事实上,这样的CMS仍然会存在光学和触觉技术的所有典型局限性,特别是在测量具有复杂三维几何形状的小型化部件时,以及它们无法测量内部部件的情况。为了验证所提出的方法,应用了目前CT传感器最被认可的标准,即德国工程师协会/德国电工协会(VDI/VDE)指南2630 - 2.1。考虑到CT中大量的影响因素及其对测量结果的影响,还考虑了两种不同的表面提取技术,以切实确定数据处理对不确定度的影响。首先,由于其可通过光学CMS进行可行的校准,用于微机械材料测试的工件的不确定度评估被用来验证该方法。其次,对具有三维复杂几何形状的小型牙科锉进行测量。最终将估计的不确定度与部件的校准以及微制造公差进行比较,以证明所提出的CT校准程序的适用性。通过确保公差在±20 - 30 µm范围内,验证工件产生的2U/T比分别为0.27(VDI)和0.35(MPE)。对于牙科锉,在大多数情况下(70.4%)E < 1值分析是有利的,对于亚毫米测量值(L < 1 mm且公差区间为±40 - 80 µm),2U/T等于0.31。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f37/5470813/ce380b659a38/sensors-17-01137-g001.jpg

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