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Composite Fabric Blankets for Plastic Gears

机译:塑料齿轮复合面料毛毯

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摘要

Two approaches for increasing the load capacity of plastic gears in general are proposed and investigated: modifying the conventional involute profile of the gear tooth surfaces by applying a parabolic-crowned profile, and introducing a composite fabric, which blankets the surface of the teeth. The investigation is carried out using the finite element method (IGD/ANSYS). A five-tooth model is applied for the gears, and nylon and carbonylon are adopted for the materials. The evolution of maximum contact and bending stresses is evaluated over two cycles of meshing for both the pure plastic (nylon) gears and the gears with the composite surface blanket (carbonylon) to investigate the process of transfer of load between consecutive pairs of teeth and detect possible edge contacts. The results indicate that selecting the proper parabolic-crowned profile helps to alleviate the contact stress, and more specifically, to reduce the peaks of contact stresses due to edge contacts at the tip of the teeth. The results also indicate that there are an optimum parabolic-crowned profile and an optimum thickness of the composite blanket, which render the lowest maximum level of contact stresses over the cycle of meshing and bending stresses at the fillet. However, this preliminary research work suggests that, for the case considered, the novel idea of composite blanket is inconclusive - though the blanket may protect the plastic core, it itself becomes vulnerable to failure. The idea is being explored more, and the results will be disseminated in a future work.
机译:总体上提出并研究了两种增加塑料齿轮负载能力的方法:通过应用抛物线形的齿形来修改齿轮齿面的传统渐开线齿形,以及引入一种覆盖齿形表面的复合织物。使用有限元方法(IGD / ANSYS)进行研究。齿轮采用五齿模型,材料采用尼龙和碳/尼龙。对于纯塑料(尼龙)齿轮和带复合表面覆盖层的齿轮(碳/尼龙),在两个啮合周期内评估了最大接触应力和弯曲应力的变化,以研究连续两对齿之间的载荷传递过程并检测可能的边缘接触。结果表明,选择合适的抛物线形冠状轮廓有助于减轻接触应力,更具体地说,可以减少由于齿尖处的边缘接触而导致的接触应力峰值。结果还表明,复合材料覆盖层具有最佳的抛物线形冠状轮廓和最佳厚度,从而在圆角处的啮合和弯曲应力循环中呈现最低的最大接触应力水平。但是,这项初步研究工作表明,就所考虑的情况而言,复合毯的新颖概念尚无定论-尽管毯可以保护塑料芯,但它本身很容易损坏。这个想法正在进一步探索中,其结果将在以后的工作中传播。

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