Experimental and Theoretical Study of Radial Force Component Effects on Spur Gear Teeth Design to Resist Failure

محتوى المقالة الرئيسي

Malik N. Hawas
Doaa Fadhil Kareem

الملخص

The Lewis equation in gear design is always used to determine spur gear tooth dimensions, i.e., face width tooth (b), based on the pushing force tangential component during engagement between gear and pinion. The radial pushing component force was neglected due to its insignificant value. The present study depends on the high radial component force along a tooth caused by the longitudinal vibration. The tooth was regarded as a cantilever. The Timoshenko equation was used to produce dynamic force. Then, the dynamic pushing component of tooth face width in the second case can be calculated. All the results were obtained from the Auto desk inventor program in the case of the Lewis equation depending on machine power. The Timoshenko equation for longitudinal vibration with different gear rotation speeds showed the same results as the theoretical ones. An inverse relationship was found between the speed increase and the tooth face width. The strain gauge technique, receiver, and transmitter (wireless) were experimentally used to record the dynamic strain readings and calculate (b). The importance of longitudinal vibration in tooth gear design in avoiding failure was highlighted.

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المراجع

Croccolo D, De Agostinis M, Olmi G, Vincenzi N. A Practical Approach to Gear Design and Lubrication: A Review. Lubricants 2020; 8(9):84. DOI: https://doi.org/10.3390/lubricants8090084

Park C Il. Dynamic Behavior of the Spur Gear System with Time Varying Stiffness by Gear Positions in the Backlash. Journal of Mechanical Science and Technology 2020; 34:565-572. DOI: https://doi.org/10.1007/s12206-020-0104-9

Hamed NN. An Automatic Drawing Spur Gears Based on AutoCAD Program. Tikrit Journal of Engineering Sciences 2021; 28(1):64-70. DOI: https://doi.org/10.25130/tjes.28.1.07

Tian D, Tao L, Hu Y, Li B, Wu X, Tang S. Vibration Characteristics of Spur Gear Under Tooth Fatigue Wear. 2021. DOI: https://doi.org/10.21203/rs.3.rs-574463/v1

Shi X, Sun W, Lu X, Ma X, Zhu D, Zhao B, et al. Three-Dimensional Mixed Lubrication Analysis of Spur Gears with Machined Roughness. Tribology International 2019; 140:105864. DOI: https://doi.org/10.1016/j.triboint.2019.105864

Liang M, Wang Y, Zhao T. Optimization on Nonlinear Dynamics of Gear Rattle in Automotive Transmission System. Shock and Vibration 2019; 2019:1-12. DOI: https://doi.org/10.1155/2019/4056204

Quadri SAN, Dolas DR. Effect of Stress Relieving Features on Stresses of Involute Spur Gear Under Static Loading. International Journal of Emerging Technology and Innovative Engineering 2015; 1(5).

Hamed NN. Computerized Geometrical Design Thread Forms (ISO Metric Thread). Tikrit Journal of Engineering Sciences 2005; 12(4):23-44. DOI: https://doi.org/10.25130/tjes.12.4.08

Osakue EE, Anetor L. Spur Gear Design: Some New Perspectives. International Journal of Research in Engineering and Technology 2016; 5(9):275-286. DOI: https://doi.org/10.15623/ijret.2016.0509043

Rajprabhakaran V, Ashokraj R. Spur Gear Tooth Stress Analysis and Stress Reduction. IOSR Journal of Mechanical and Civil Engineering 2013; 38-48.

Maitra GM. Fundamentals of Toothed Gearing: Handbook of Gear Design. 2013.

Sobiepański M, Nieszporek T. Spur Gears with Longitudinal Tooth Profile Modification Mesh Creating Which Is Suitable for Stress Analysis. Technical Gazette 2017; 24(6):1657-1660. DOI: https://doi.org/10.17559/TV-20150919105345

Sobiepański M, Nieszporek T. Numerical Analysis of Spur Gears with Longitudinal Tooth Profile Modifications in Mesh. Academic Journal of Manufacturing Engineering 2012; 10(3).

Li X, Chen K, Huangfu Y, Ma H, Zhao B, Yu K. Vibration Characteristic Analysis of Spur Gear Systems Under Tooth Crack or Fracture. Journal of Low Frequency Noise, Vibration and Active Control 2021; 40(1):135-153. DOI: https://doi.org/10.1177/1461348419879550

Pokhrel M, Bandelt MJ. Plastic Hinge Behavior and Rotation Capacity in Reinforced Ductile Concrete Flexural Members. Engineering Structures 2019; 200(May):109699. DOI: https://doi.org/10.1016/j.engstruct.2019.109699

Luo Y, Baddour N, Liang M. Performance Assessment of Gear Condition Indicators in Detecting Progressive Gear Tooth Crack. International Design Engineering Technical Conferences and Computers and Information in Engineering Conference 2017; American Society of Mechanical Engineers: V008T12A010. DOI: https://doi.org/10.1115/DETC2017-67460

Osakue EE, Anetor L, Harris K. A Parametric Study of Frictional Load Influence in Spur Gear Bending Resistance. FME Transactions 2020; 48(2):294-306. DOI: https://doi.org/10.5937/fme2002294O

Ahmed AA, Hassan AR. Experimental and Numerical Study of Spur Gears with Lightening Holes. Engineering and Technology Journal 2023; 41(7):1-11. DOI: https://doi.org/10.30684/etj.2023.134713.1246

Sarhan AR. Vertical Forced Vibration Effect on Natural Convective Performance of Longitudinal Fin Heat Sinks. Tikrit Journal of Engineering Sciences 2013; 20(2):60-69. DOI: https://doi.org/10.25130/tjes.20.2.06

Kumar M, Rathore AS, Biswas A. Stress Analysis of an Asymmetric Spur Gear Tooth with Series of Circular Hole Using Finite Element Method. Journal of Innovation in Mechanical Engineering 2018; 1(2):21-25.

Khurmi RS, Gupta JK. Machine Design. Eurasia Publishing House; 2005.

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