基于浣熊优化算法的RV减速器摆线轮齿廓修形优化研究

Research on cycloidal gear profile modification optimization of RV reducer based on NSCOA

  • 摘要: 针对RV减速器(rotary vector reducer)摆线轮齿廓修形后难以同时满足较高的承载能力和较小传动回差问题,将齿面接触力最小和传动回差最小作为优化目标,建立摆线轮齿多目标齿廓优化模型,以修形参数(等距修形量、移距修形量)作为设计变量,将非支配排序的多目标浣熊优化算法(non-dominated sorting-based multi-objective coati optimization algorithm, NSCOA)与改进理想点的多目标决策方法相结合,提出了一种提高RV减速器承载能力和减小传动回差的摆线轮齿廓修形优化方法。研究表明,经优化后筛选出的最优修形组合为等距修形量0.001 35 mm、移距修形量−0.008 67 mm;与未经优化的传统组合修形方式相比,优化后的最大接触力为747.39 N,降低了约16.6%,优化后的传动回差为0.003 95,降低了5.3%。

     

    Abstract: The rotary vector reducer cycloidal gear profile modification faces the challenge of simultaneously meeting high load capacity and low backlash requirements. To address this, a multi-objective cycloidal gear profile optimization model is established, with the objectives of minimizing the contact force and minimizing backlash. The modification parameters (equi-distant modification and offset modification) are treated as design variables. A multi-objective raccoon optimization algorithm with non-dominated sorting-based multi-objective coati optimization algorithm(NSCOA) is combined with an improved ideal point method for multi-objective decision-making. This approach proposes an optimization method for cycloidal gear profile modification to enhance the load capacity and reduce backlash in RV reducers. The study results show that the optimal modification combination selected after optimization is as follows: the equi-distant modification is about 0.001 35 mm, the offset modification is about -0.008 67 mm. Compared to the traditional modification method without optimization, the maximum contact force after optimization is 747.39 N, which is approximately a 16.6% reduction, and the optimized backlash is 0.003 95, which is approximately a 5.3% reduction.

     

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