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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Research on spiral angle optimization for longitudinal road header's cutting head
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Research on spiral angle optimization for longitudinal road header's cutting head

机译:纵向公路头切割头螺旋角度优化研究

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The cutting head is the key component of a road header in tunnel excavation, where the concept of the spiral angle design directly affects the comprehensive performance, which includes cutting resistance, fluctuation coefficient, specific energy consumption, cutting head stress distribution, and so on. Based on the theory of rock-breaking by pick, the mechanical model of pick was established, and the three-dimensional force vector in the WORKBENCH coordinate system was determined. The 3D model of the proposed cutting head was designed using PRO/E and the static simulation was carried out using WORKBENCH, while the stress information of key parts was obtained. Furthermore, a four-dimensional fitting method was used to investigate the influence of the horizontal swing speed, rotational speed, and spiral angle of the cutting head, on the stress of the cutting head assembly. By setting the horizontal swing speed, rotational speed and the spiral angle as design variables and the specific energy consumption, total cutting resistance, fluctuation coefficient, power consumption, and stress on cutting head assembly as the objective function; the multiobjective optimization function of the cutting head was established. By using genetic algorithm, the complex problem has been solved. The solution of this optimization function provides the horizontal swing speed, rotational speed, and spiral angle values, where the optimal performance is achieved, in the aspect of energy consumption, cutting resistance, fluctuation coefficient, cutting power, and cutting motor power. This method provides solid guidance and is a great reference in spiral angle design and optimization.
机译:切割头是隧道开挖路线的关键部件,其中螺旋角设计的概念直接影响了综合性能,包括切割电阻,波动系数,特定能耗,切割头应力分布等。基于通过挑选的摇摆理论,建立了机械镐的机械模型,确定了工作坐标坐标系中的三维力载体。使用Pro / E设计了所提出的切割头的3D模型,并且使用工作台进行静态模拟,而获得关键部件的应力信息。此外,使用四维配合方法来研究切割头的水平摆速,转速和螺旋角对切割头组件的应力的影响。通过将水平摆动速度,转速和螺旋角设置为设计变量和特定的能耗,总切削电阻,波动系数,功耗和切割头组件的应力作为目标函数;建立了切割头的多目标优化功能。通过使用遗传算法,已经解决了复杂的问题。该优化功能的解决方案提供了水平的摆动速度,转速和螺旋角值,其中实现了最佳性能,在能量消耗,切削电阻,波动系数,切割功率和切割电动机电力方面实现了最佳性能。该方法提供实心指导,是螺旋角设计和优化的重要参考。

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