Investigation of the Static and Dynamic Performance of Leaf Springs under Different Shapes, Leaf Numbers, and Beam Widths

Main Article Content

Ibtehal Abdul Hussain Bani
Aveen Ahmed Abdulkareem

Abstract

This study is related to a new geometrical design of automotive leaf springs that involves substituting the common trapezoidal base and circular shape with a circular base plate and parabolic shape. The main aim is to explore how the shape of the base and the profile of curvature affect the performance of the leaf springs, both at rest and in dynamic conditions under realistic loading conditions. There were four geometrical combinations that were experimented with: trapezoidal base with circular curvature, circular base with circular curvature, trapezoidal base with parabolic curvature, and circular base with parabolic curvature. The influence of the leaf number and width distribution on the mechanical performance of each arrangement under the constant-width and variable-width scenarios was examined. ANSYS Workbench 20 and Mechanical APDL were used to conduct a finite element analysis to approximate the maximum primary stress, overall deformation, and natural frequency. Comparing the trapezoidal base with the circular foundation, it has been found that the circular foundation is better in terms of load distribution as well as minimization of stress concentration. Specifically, the circular base configuration reduced the maximum static bending stress by more than 36% when compared to the conventional design. A parabolic shape was used to further enhance dynamic performance, boosting natural frequency by up to 300% in certain combinations. The use of a parabolic curve improved dynamic performance significantly, increasing natural frequency by more than 300% in some combinations.

Downloads

Download data is not yet available.

Article Details

Section

Articles

How to Cite

“Investigation of the Static and Dynamic Performance of Leaf Springs under Different Shapes, Leaf Numbers, and Beam Widths” (2026) Journal of Engineering, 32(5), pp. 21–41. doi:10.31026/j.eng.2026.05.02.

References

Abdulkareem, A.A., 2018. Effect of leaf spring curvature and shape on its static and dynamic performance. Association of Arab Universities Journal of Engineering Sciences, 25(3), pp. 1–15.

Agarwal, B.D., Broutman, L.J. and Chandrashekhara, K., 2017. Analysis and performance of fiber composites. John Wiley & Sons.

Aggarwal, S., Kumar, K. and Aggarwal, M., 2024. Analysis of glass fiber-reinforced composite leaf springs in a light commercial vehicle. Scientific Reports, 14(1), P. 20126. https://doi.org/10.1038/s41598-024-67616-3

Al-Qureshi, H., 2001. Automobile leaf springs from composite materials. Journal of Materials Processing Technology, 118(1–3), pp. 58–61. https://doi.org/10.1016/S0924-0136(01)00863-9

Ben Sghaier, R., Atig, A. and Fathallah, R., n.d. Analytical study of curvature radius effect on the bending stress and fatigue life of parabolic leaf spring. In: International Conference on Advanced Materials Mechanics & Manufacturing, pp. 204–211. https://doi.org/10.1007/978-3-030-19781-0_25

Besekar, S.S., Pimpalkar, P.R. and Gorantiwar, V.S., 2023. Design and analysis of leaf spring using ANSYS. International Journal for Research in Applied Science, Engineering and Technology, 11(3). https://doi.org/10.22214/ijraset.2023.49583

Dighe, A., 2016. A review on testing of steel leaf spring. International Research Journal of Engineering and Technology, 3, pp. 492–496.

Ehab, 2021. Evaluation of modal parameters and static characteristics for composite mono leaf spring. Noise & Vibration Worldwide, 52(3), pp. 33–47. https://doi.org/10.1177/0957456520964880

Hammza, T.M., Hmoad, N.R. and Abdulkareem, A.A., 2022. The effect of biolubricants oil on the dynamic performance of rotor bearing system. In AIP Conference Proceedings, 2415(1), P. 040003. AIP Publishing LLC.

Hearn, E.J., 1997. Mechanics of materials 2: The mechanics of elastic and plastic deformation of solids and structural materials. Elsevier.

Hmoad, N.R., Abdulkareem, A.A. and Abdullah, M.Q., 2020. Dynamic load factor for single element camshaft under harmonic excitation. Journal of Mechanical Engineering Research and Developments, 43(3), pp. 224–234.

Jadhav, S., Landage, M.G., Patil, C.D. and Jawarkar, N., 2024. Analysis of vibration in hybrid composite leaf spring. In Journal of Physics: Conference Series, 2763(1), P. 012026. IOP Publishing. https://doi.org/10.1088/1742-6596/2763/1/012026

Kader, E.E., Adwan, R. and Zedan, L.Y., 2021. Fabrication of hybrid composite materials leaf spring. Journal of Mechanical Engineering Research and Development, 44(2), pp. 289–297.

Karditsas, S., Savaidis, G., Mihailidis, A., Savaidis, A. and Fragoudakis, R., 2014. Leaf springs–Design, calculation and testing requirements. In 35th International Conference on Mechanics and Materials, At Faliraki, Greece, pp. 117-126.

Khan, D., Kesheorey, G. and Shah, M., 2018. Design, simulation and analysis of leaf spring. International Journal for Research & Development in Technology, 9(2), pp. 187–193.

Kotha, R., Misra, N., Karthikeyan, R., Udayakumar, R. and Hussain, M., 2024. Finite element analysis of composite leaf spring for automotive vehicle. In E3S Web of Conferences, 564, P. 11002. EDP Sciences. https://doi.org/10.1051/e3sconf/202456411002.

Kumar, D.A. and Kalam, A., 2016. Design, analysis and comparison between conventional materials and composite materials of leaf springs. Fluid Mechanics: Open Access, 3(1).

Larco, C., Pahonie, R. and Edu, I., 2015. The effects of fibre volume fraction on a glass-epoxy composite material. INCAS Bulletin, 7(3), P.113. https://doi.org/10.13111/2066-8201.2015.7.3.10.

Ma, L., He, J., Gu, Y., Zhang, Z., Yu, Z., Zhou, A., Tam, L.H. and Wu, C., 2021. Structure design of GFRP composite leaf spring: An experimental and finite element analysis. Polymers, 13(8), P. 1193. https://doi.org/10.3390/polym13081193

Mallesh, B., Gupta, B., Kumar, S.K. and Jani, S., 2021. Modeling and analysis of leaf spring with different types of materials. Materials Today: Proceedings, 45, pp. 1945–1949. https://doi.org/10.1016/j.matpr.2020.09.223

Mohamed, F., Yaknesh, S., Radhakrishnan, G. and Kumar, P.M., 2020. FEA of composite leaf spring for light commercial vehicle: Technical note. International Journal of Vehicle Structures and Systems, 12(4), pp. 369–371. https://doi.org/10.4273/ijvss.12.4.02.

Patunkar, M. and Dolas, D., 2011. Modelling and analysis of composite leaf spring under static load condition using FEA. International Journal of Mechanical & Industrial Engineering, 1(1), pp. 1–4.

Polilov, A., Tatus’, N. and Tian, X., 2019. Analysis of efficiency of uniform-strength composite leaf springs under various loading conditions. Journal of Machinery Manufacture and Reliability, 48(5), pp. 431–439. https://doi.org/10.3103/S105261881905008X

Raghavedra, M., Hussain, S.A., Pandurangadu, V. and PalaniKumar, K., 2012. Modeling and analysis of laminated composite leaf spring under static load condition using FEA. International Journal of Modern Engineering Research, 2(4), pp. 1875–1879.

Rahman, M.A. and Kowser, M.A., 2010. Inelastic deformations of stainless steel leaf springs: Experiment and nonlinear analysis. Meccanica, 45, pp. 503–518.

Rajendran, I. and Vijayarangan, S., 2001. Optimal design of a composite leaf spring using genetic algorithms. Computers & Structures, 79(11), pp. 1121–1129. https://doi.org/10.1016/S0045-7949(00)00174-7

Saini, P., Goel, A. and Kumar, D., 2013. Design and analysis of composite leaf spring for light vehicles.

Sakthivel, P., Santhosh, S. and Sivaraman, P., 2024. Exploring the mechanical properties of leaf springs reinforced with fibre composites. Materials and Technology, 58(1), pp. 81–86. https://doi.org/10.17222/mit.2023.932

Shi, W.K., Liu, C., Chen, Z.Y., He, W. and Zu, Q.H., 2016. Efficient method for calculating composite stiffness of parabolic leaf springs. Mathematical Problems in Engineering, 2016, P. 5169018. https://doi.org/10.1155/2016/5169018

Singh, H. and Brar, G.S., 2018. Characterization and investigation of mechanical properties of composite materials used for leaf spring. Materials Today: Proceedings, 5(2), pp. 5857–5863.

Sonawane, T., Sarode, S., Shende, M., Ghodake, A. and Chavan, D., 2014. Comparative FEM analysis of V-shape and leaf springs. IOSR Journal of Mechanical and Civil Engineering, 11(1), pp. 53–57.

Srikanth, S. and Tarun, D., 2020. Design and analysis of composite leaf spring. Journal of Manufacturing Engineering, 15(3), pp. 76–83.

Suresh, J., Muneendra, K. and Mohammed, R., 2019. Design and analysis of steel and composite material leaf spring. International Journal of Modern Trends in Science and Technology, 5, pp. 12–20.

Suribabu, K., Sandeepsunandh, K. and Kumar, G.S., 2018. Design optimization and dynamic analysis of composite leaf spring using FEA. International Journal of Engineering Development and Research, 6(4), pp. 138–144.

Tadesse, B.A. and Fatoba, O., 2022. Theoretical and finite element analysis of coated composite leaf spring for heavy-duty truck application. Materials Today: Proceedings, 62, pp. 4283–4290. https://doi.org/10.1016/j.matpr.2022.04.782

Takim, S.A., 2014. Performance characteristics and evaluation of alternate materials for automobile leaf springs. IOSR Journal of Mechanical and Civil Engineering, 11(4), pp. 28–38.

Tariq, M.M., 2020. Design and analysis of composite leaf spring. Master’s thesis, Capital University of Science and Technology, Islamabad.

Varma, N., Ahuja, R., Vijayakumar, T. and Kannan, C., 2021. Design and analysis of composite mono leaf spring for passenger cars. Materials Today: Proceedings, 46, pp. 7090–7098. https://doi.org/10.1016/j.matpr.2020.10.073

Venkatesan, M. and Devaraj, D.H., 2012. Design and analysis of composite leaf spring in light vehicle. International Journal of Modern Engineering Research, 2(1), pp. 213–218.

Wang, L., Chen, W. and Lu, X., 2024. Thermal fatigue analysis and structural optimization of sliding composite leaf spring. Frontiers in Materials, 11, P. 1353274. https://doi.org/10.3389/fmats.2024.1353274

Winter, J., Fiebig, S., Franke, T., Bartz, R. and Vietor, T., 2022. Spline-based shape optimization of large-scale composite leaf spring models using Bayesian strategies. Structural and Multidisciplinary Optimization, 65(9), P. 257. https://doi.org/10.1007/s00158-022-03333-7

Zou, X., Zhang, B. and Yin, G., 2022. Analysis of stiffness and damping performance of the composite leaf spring. Scientific Reports, 12(1), P. 6842. https://doi.org/10.1038/s41598-022-11055-5

Similar Articles

You may also start an advanced similarity search for this article.