商用车纵梁套钻孔大规模孔群加工路径优化研究

Research on machining path optimization for large-scale hole groups in sleeve drilling of commercial vehicle longitudinal beams

  • 摘要: 针对商用车纵梁多孔径孔群加工中路径规划复杂、换刀频繁所导致的效率瓶颈,构建了以空行程时间和换刀时间综合最小化为目标的孔群加工路径规划模型,并提出一种改进的麻雀搜索算法(improved sparrow search algorithm, ISSA)进行求解。该模型首次将不同孔径对应的换刀时间作为关键约束纳入优化目标,充分考虑了空行程与换刀作业之间的耦合关系,适用于大规模、多孔径的实际加工场景。算法在标准麻雀搜索框架基础上,融合最近邻启发式初始化策略以提升初始解质量,引入交换与倒置变异机制以增强全局探索能力,嵌入周期性2-opt局部搜索以强化局部开发,并采用基于停滞检测的自适应参数调整策略动态平衡探索与开发,从而有效避免早熟收敛并提升了算法在高维离散优化问题中的鲁棒性。以某型商用车纵梁大规模多直径孔群为算例进行验证,结果显示,ISSA将空行程时间优化至1 654.55s,换刀次数降至34次,综合加工效率较原方案提升29.55%,与其他4种优化算法相比具有显著优势。在保持路径连续性的同时,有效降低了综合加工时间,为空行程与换刀作业的协同优化提供了可靠途径。

     

    Abstract: To address the efficiency bottlenecks arising from complex path planning and frequent tool changes in the machining of multi-diameter hole groups on commercial vehicle longitudinal beams, this study develops a hole-group machining path planning model that minimizes the combined idle travel time and tool change time. An improved sparrow search algorithm (ISSA) is proposed to solve the model. For the first time, tool change time corresponding to different hole diameters is explicitly incorporated as a key constraint into the optimization objective, fully accounting for the strong coupling between idle travel and tool change operations. This makes the model particularly suitable for large-scale, multi-diameter practical machining scenarios. Building on the standard Sparrow search framework, the ISSA integrates a nearest-neighbor heuristic initialization strategy to improve initial solution quality, introduces swap and inversion mutation operators to enhance global exploration, embeds periodic 2-opt local search to strengthen local exploitation, and adopts a stagnation-detection-based adaptive parameter adjustment strategy to dynamically balance exploration and exploitation. These enhancements effectively prevent premature convergence and significantly improve the algorithm’s robustness in high-dimensional discrete optimization problems. Validation using a real large-scale multi-diameter hole group (853 holes, 11 diameters) from a commercial vehicle longitudinal beam shows that the ISSA reduces idle travel time to 1654.55 s, lowers tool changes to 34, and improves overall machining efficiency by 29.55% compared with the original scheme, outperforming four other state-of-the-art optimization algorithms. The proposed method effectively shortens total machining time while maintaining path continuity, providing a reliable and practical approach for the synergistic optimization of idle travel and tool change operations in coaxial sleeve drilling.

     

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