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    • 3. 发明授权
    • Automatic estimation of weldgun size using section geometry
    • 使用截面几何自动估计焊枪尺寸
    • US07974733B2
    • 2011-07-05
    • US12363244
    • 2009-01-30
    • Ashish GuptaGopalakrishna ShastryNarahari K. Hunsur
    • Ashish GuptaGopalakrishna ShastryNarahari K. Hunsur
    • G06F19/00B23K9/12B23K33/00B23K35/30B23K9/00B23K9/28B23K13/01
    • B23K11/314
    • A method for estimating a plurality of geometrical parameters defining the size of a weld gun that has particular application for automatically selecting a weld gun for a welding operation. The method includes iteratively estimating a plurality of geometric parameters based on part section curves corresponding to a direction of approach of the weld gun to weld point of the plurality of weld points. Thereafter, a set of valid weld gun sizes are calculated based on the estimated plurality of geometric parameters. Similarly all the valid weld gun sizes are calculated corresponding to each of the weld gun approach direction. Further, each set of the valid gun sizes are estimated for each of the weld point for the welding operation. Finally, a weld gun for performing the welding operation is selected based on the set of weld gun sizes corresponding to the welding operation.
    • 一种用于估计定义焊枪尺寸的多个几何参数的方法,其具有用于自动选择用于焊接操作的焊枪的特定应用。 该方法包括基于与焊枪的接近方向对应于多个焊接点的焊接点的部分曲线迭代地估计多个几何参数。 此后,基于估计的多个几何参数来计算一组有效的焊枪尺寸。 类似地,所有有效的焊枪尺寸都对应于每个焊枪接近方向计算。 此外,针对焊接操作的每个焊接点估计每组有效的枪尺寸。 最后,基于与焊接操作相对应的一组焊枪尺寸来选择用于执行焊接操作的焊枪。
    • 4. 发明授权
    • Method of optimizing weld design for concurrent consideration of performance and manufacturing requirements
    • 优化焊接设计的方法,同时考虑性能和制造要求
    • US08032343B2
    • 2011-10-04
    • US12178689
    • 2008-07-24
    • Wayne W. CaiRobert Bruce TiloveGopalakrishna Shastry
    • Wayne W. CaiRobert Bruce TiloveGopalakrishna Shastry
    • G06G7/48
    • G06F17/50B23K11/11B23K11/36B23K31/12G06F17/5095G06F2217/42
    • A method of weld design for a work piece is provided. The work piece may be a unitary piece or a multi-component piece. The method includes determining a manufacturing feasible region of the work piece satisfying one or more predetermined manufacturing requirements including accessibility of welding components. The method includes determining a performance feasibility function satisfying one or more predetermined performance factors as applied in a performance simulation of the work piece. The workpiece may have a varying number of welds. An optimized weld design may be determined by minimizing an objective function, defined as a summation of the number of welds and the performance feasibility function, within the manufacturing feasible region. The optimized weld design is configured to have a minimum number of welds, and concurrently satisfy the predetermined manufacturing requirements and the performance factors.
    • 提供了一种用于工件的焊接设计方法。 工件可以是整体件或多件件。 该方法包括确定满足一个或多个包括焊接部件的可接近性的预定制造要求的工件的制造可行区域。 该方法包括确定在工件的性能模拟中应用的满足一个或多个预定性能因素的性能可行性函数。 工件可能具有不同数量的焊缝。 优化的焊接设计可以通过在制造可行区域内最小化被定义为焊缝数目和性能可行性函数的总和的目标函数来确定。 优化的焊接设计被配置为具有最小数量的焊缝,并且同时满足预定的制造要求和性能因素。