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CONSIDERATION AND IMPACT ASSESSMENT OF MEASUREMENT UNCERTAINTY IN THE CONTEXT OF TOLERANCE ANALYSIS

机译:公差分析中对测量不确定度的考虑和影响评估

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Virtual product validation ensures that products fulfil their function under different varying conditions. Within the framework of virtual product validation, variation simulation represents the specific area that deals with the consequences of geometric part variations on functional key characteristics. In addition to the nominal geometry of the parts, the permissible part deviations in the form of tolerances, the joining sequence and process variations during assembly are required to simulate the effects of geometrical part deviations on assembly or product key characteristics. If the required quality targets are not achieved, the part tolerances usually have to be tightened, which goes hand in hand with increased production costs. The achievable part tolerances depend, among other things, on the material used, the workpiece dimensions, the manufacturing process, but also on the interaction between these factors. Therefore, the prediction of specific manufacturing process dependent deviations is hardly possible. However, if predictions should be made as exactly as possible, there is also the possibility to integrate measurement data directly or indirectly into the tolerance analysis. This has the advantage that material- and production-specific deviations can be considered in the best possible way for a certain part geometry. However, if measurement data is integrated into tolerance analysis, the problem arises that, in addition to the actual component deviation, the measurement uncertainty as part of the measurement result, must be implicitly determined in order to also be taken into account. Conversely, the tolerance analysis results are also influenced by the measurement uncertainty. To tackle this issue a novel procedure is presented which allows the quantification of the influence of the measurement uncertainty on the result of the tolerance analysis. In addition, it is shown how the measurement uncertainty is determined, whereby in particular the single point measurement uncertainty is dealt with. Since the measurement uncertainty can be different for each measuring point. Skin Model Shapes are used for tolerance analysis in order to have the possibility for defining point specific information. The developed procedure is then applied to a suitable case-study. CT measurements are used as the measurement method for determination of the single point measurement uncertainties. Finally, different scenarios for the tolerance analysis are compared in order to quantify the influence of the measurement uncertainty in the best possible way.
机译:虚拟产品验证可确保产品在不同的条件下发挥其功能。在虚拟产品验证的框架内,变化模拟表示特定区域,该区域处理几何零件变化对功能关键特性的影响。除了零件的标称几何形状外,还需要公差形式的允许零件偏差,组装过程中的连接顺序和过程变化,以模拟几何零件偏差对组装或产品关键特性的影响。如果未达到要求的质量目标,则通常必须收紧零件公差,这与增加的生产成本息息相关。除其他因素外,可达到的零件公差取决于所用材料,工件尺寸,制造工艺以及这些因素之间的相互作用。因此,几乎不可能预测与制造过程有关的特定偏差。但是,如果应尽可能准确地进行预测,则也有可能将测量数据直接或间接地集成到公差分析中。这样做的好处是,对于特定的零件几何形状,可以以最佳方式考虑特定于材料和生产的偏差。但是,如果将测量数据集成到公差分析中,则会出现以下问题:除了实际的组件偏差外,还必须隐式确定作为测量结果一部分的测量不确定度,以便也将其考虑在内。相反,公差分析结果也受测量不确定度的影响。为了解决这个问题,提出了一种新颖的程序,该程序可以量化测量不确定度对公差分析结果的影响。此外,示出了如何确定测量不确定度,尤其是如何处理单点测量不确定度。由于每个测量点的测量不确定度可能不同。皮肤模型形状用于公差分析,以便可以定义点特定信息。然后将开发的过程应用于适当的案例研究。 CT测量用作确定单点测量不确定度的测量方法。最后,比较公差分析的不同场景,以便以最佳可能的方式量化测量不确定性的影响。

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