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Design and Fatigue Analysis of an E-Drive Transmission System of Single-Speed Gear for Electric Vehicle

机译:电动汽车单速齿轮电子驱动传动系统的设计与疲劳分析

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Design an e-drive transmission gear, it is very crucial, to understand the failure modes since gears should be sized correctly to withstand loads that will expect to act on the gear teeth and make sure that still be within reasonable load-carrying capacity, compact and lightweight. Fatigue failure can happen on gears under cyclic loading due to higher stresses on tooth root and surface in contact. To prevent such failure, utilizing proper design, material development and fatigue analysis is very vital. In this study, Materials used were two developed alloy steels of Cr-Mo and Cr-Mo-Ni. The methods of design and analysis employed in this paper were by iteration through KISSsoft gear simulation software and American Gear Manufacturers Association (AGMA) standard approaches. Investigations have been done by altering helix angle, face-width, and input torque to get fitting safety factors, fatigue stresses, lightweight, compactness, and quiet operation of the gear pair. From the obtained results, it was found out that by increasing face width and helix angle both safety factors were increased uniformly regardless of the input torque. Through increasing input torque from 50 Nm to 75 Nm by keeping other parameters constant fatigue safety factor decreases. Similarly, results showed that by increasing the helix angle and face width it brings to reduce the contact and bending stresses on transmission gear. Regarding smooth and quietness operation of the system as contact ratio increases vibration of the system decreases. By comparing the results, the KISSsoft software values are a little higher than the AGMA standard values as depicted in all figures of fatigue safety factors. For better design approach, the transmission gears geometric parameters were selected based on the safety factors, downsizing and weight saving. As a result it was chosen as the face width is 24.5 mm and the helix angle is 25 degrees.
机译:设计电子驱动传动装置,非常重要,以了解故障模式,因为齿轮应正确尺寸,以承受将期望在齿轮齿上采用的负荷,并确保仍然在合理的承载能力,紧凑而轻巧。由于齿根和接触的表面上的较高应力,循环负载下的齿轮上可能发生疲劳失效。为了防止这种失败,利用适当的设计,材料开发和疲劳分析非常重要。在这项研究中,所用材料是Cr-Mo和Cr-Mo-Ni的两个开发的合金钢。本文采用的设计和分析方法是通过Kisssoft Gear仿真软件和美国齿轮制造商协会(AGMA)标准方法的迭代。通过改变螺旋角,面部宽度和输入扭矩来完成调查,以获得拟合安全因子,疲劳应力,轻质,紧凑性和齿轮对的安静操作。从获得的结果中,发现,不管输入扭矩如何,通过增加面宽度和螺旋角度,这两个安全因子都会均匀地增加。通过通过保持其他参数恒定疲劳安全因子降低,通过增加50nm至75nm的输入扭矩。类似地,结果表明,通过增加螺旋角和面宽度,它使其在传动齿轮上减小触点和弯曲应力。关于系统的平滑和安静运行作为接触率,增加系统的振动减小。通过比较结果,KissSoft软件值比疲劳安全因子的所有图所示的AGMA标准值一点。为更好的设计方法,基于安全因素,缩小和重量储存来选择传动齿轮几何参数。结果,选择脸部宽度为24.5mm,螺旋角为25度。

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