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Al-based optimization method for the analysis of co-ordinate measurements within integrated CAD/CAM/CAE systems

机译:基于AL的优化方法,用于分析集成CAD / CAM / CAE系统内的坐标测量

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To achieve higher geometric accuracy of complex shapes and overall increase in surface quality it is necessary to take full advantage of capabilities available in integrated CAD/CAM/CAE systems as well as in a new generation of CNC production equipment and coordinate measuring machines. Knowledge-based automation of product design, manufacture and coordinate measurements, using artificial intelligence methods, are of great importance for effective determination of global deviations between the virtual product model and the part machined. Due to a large number of points (500 to 100 000 and more), obtained from scanning measurements, it is only recently possible to run the appropriate, specialized software. To find a global optimum in the location and orientation of the cloud of points in relation to the geometric model, a new approach has been applied. A combinatorial-cyclic iteration method is, in fact, an reliable multivariable optimization method based on either deterministic models or selected neural network techniques. The method enables : (a) to analyse all errors in manufacturing processes, even on the most complex surfaces; (b) to effectively apply reverse engineering techniques; (c) to identify all sources of errors in CAD/CAM technology; (d) to eliminate the necessity of a precise set-up of the measured part on CMMs or other measuring systems; (e) to identify a global optimum, among many local optima.
机译:为了实现更高的复杂形状的几何精度和表面质量的总体增加,必须充分利用集成的CAD / CAM / CAE系统中可用的能力以及新一代CNC生产设备和坐标测量机。基于知识的产品设计自动化,使用人工智能方法的制造和坐标测量,对于有效确定虚拟产品模型和部件之间的全局偏差是重要的。由于从扫描测量获得的大量点(500到100 000和更多),它才能运行适当的专用软件。为了在与几何模型相关的点云的位置和方向中找到全局最优,已应用一种新方法。实际上,组合循环迭代方法是基于确定性模型或选择的神经网络技术的可靠的多变量优化方法。该方法启用:(a)即使在最复杂的表面上,也可以分析制造过程中的所有误差; (b)有效地应用逆向工程技术; (c)识别CAD / CAM技术中的所有错误来源; (d)消除在CMMS或其他测量系统上测量部分的精确设置的必要性; (e)在许多当地最佳最佳擎天中确定全球最优。

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