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OPTIMIZATION DESIGN FOR NORMAL DIRECTION MEASUREMENT IN ROBOTIC DRILLING

机译:机器人钻井正常方向测量的优化设计

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In large assemblies, the perpendicularity of a bolting hole has remarkable effects on the fatigue life and fluid dynamic configuration. While the Computer Aided Design (CAD) model of complexly curved workpieces is hardly satisfied because of manufacturing errors, it is very necessary to measure the normal direction in robotic drilling. One advisable approach is to arrange four laser displacement sensors at the vertices of a rhombus whose center aims at the drilling position. The influencing factors of the measurement precision are firstly discussed in this study, and a novel method to optimize the arrangement size of the displacement sensors for higher precision is introduced. The measurement error for the normal direction consists of the principle error and instrumental error, caused by inconstant curvature of the surfaces and distance measuring errors of instruments, respectively. When the displacement sensors are arranged closer to each other, the principle error will be decreased, whereas the instrumental error will be increased. After the curvature feature of the surface is obtained with the introduced method, the graph of the measurement precision and the arrangement size is plotted. Then, the graph can contribute to developing an optimized design of arrangement size for higher precision. Finally, an example of the curvature obtainment and the arrangement optimization is given. The experimental results show that the optimized design has achieved a higher precision of ± 0.17° for α_Y and ± 0.26° for α_X, whereas the precision of another design is about ± 0.21° for α_Y and ± 0.29° for α_X. The proposed optimization method will bring greater benefit for complexly curved surfaces in practical products and it offers a chance to optimize the arrangement during design phase with little costs.
机译:在大型组件中,螺栓孔的垂直性对疲劳寿命和流体动力学构造具有显着影响。虽然由于制造错误而几乎不满足复杂弯曲工件的计算机辅助设计(CAD)模型,但非常有必要测量机器人钻孔中的正常方向。一个可明智的方法是在菱形的顶点布置四个激光位移传感器,其中心瞄准钻井位置。在本研究中首先讨论了测量精度的影响因素,并引入了优化位移传感器的布置尺寸的新方法,以实现更高的精度。正常方向的测量误差包括原理误差和仪器误差,分别由表面和仪器距离测量误差的不稳定曲率引起。当位移传感器彼此靠近时,原理误差将减小,而仪器误差将增加。在用引入的方法获得表面的曲率特征之后,绘制测量精度和布置尺寸的图表。然后,该图可以有助于开发用于更高精度的布置大小的优化设计。最后,给出了曲率获得的示例和布置优化。实验结果表明,优化设计已经实现的±0.17°为α_Y和±0.26°为α_X更高的精度,而另一种设计的精度大约为±0.21°为α_Y和±0.29°为α_X。所提出的优化方法将为实际产品中的复杂弯曲表面带来更大的好处,并且它提供了在设计阶段期间优化的机会,以很少的成本。

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