Optimization design of fuel tank structure for a certain excavator based on finite element analysis

  • Bowen Chen

    School of Mechanical Engineering, Shandong Jiaotong University, Jinan 250357, China

  • Peigang Jiao orcid

    School of Mechanical Engineering, Shandong Jiaotong University, Jinan 250357, China

  • Guoqing Qi

    School of Mechanical Engineering, Shandong Jiaotong University, Jinan 250357, China

  • Yanan Zhang

    School of Mechanical Engineering, Shandong Jiaotong University, Jinan 250357, China

Article ID: 4175
Keywords: vibration characteristics; static strength; modal analysis; reinforcement ribs; wave suppression plate

Abstract

This study focuses on the fuel tank of a specific excavator model, employing CATIA for modeling and ANSYS Workbench for finite element analysis. Static strength, modal, and random vibration simulations were performed to address stress concentration, excessive deformation, and resonance risks caused by oil sloshing. An optimized design was proposed and experimentally validated. The original fuel tank was first simplified and modeled using Q235 material. A mesh convergence study determined a 10 mm element size, balancing accuracy and computational efficiency. Static analysis confirmed that maximum stress and deformation met material allowables. Modal analysis revealed a first natural frequency of approximately 67.40 Hz, significantly above the frame's excitation frequency of around 10 Hz, effectively avoiding resonance. Random vibration analysis indicated prominent Y-direction deformation and X-direction stress. An optimization scheme was developed: symmetrically lengthening the transverse anti-slosh baffles and adding rounded stiffening ribs at the bottom. Post-optimization, deformations and stresses decreased markedly in all directions, with X-direction stress reduced by over 60%. Bench strain testing agreed with simulation results to within 91%, verifying the reliability and safety of the optimized structure. Results demonstrate that combining anti-slosh baffles with stiffening ribs significantly enhances vibration resistance, reduces fatigue failure risk, and maintains controllable manufacturing processes and costs. This provides a reusable simulation and optimization methodology for lightweight, durable fuel tank design in construction machinery.

Published
2026-07-22
How to Cite
Chen, B., Jiao, P., Qi, G., & Zhang, Y. (2026). Optimization design of fuel tank structure for a certain excavator based on finite element analysis. Sound & Vibration, 60(4). https://doi.org/10.59400/sv4175
Section
Article

References

[1]Onyibo EC, Safaei B. Application of finite element analysis to honeycomb sandwich structures: a review. Reports in Mechanical Engineering. 2022; 3(1): 283–300. Available online: https://www.rme-journal.org/index.php/asd/article/view/84

[2]Muhammad A, Ali MAH, Shanono IH. Finite Element Analysis of a connecting rod in ANSYS: An overview. IOP Conference Series: Materials Science and Engineering. 2020; 736(2): 022119. doi: 10.1088/1757-899X/736/2/022119

[3]Agrawal AP, Ali S, Rathore S. Finite element stress analysis for shape optimization of spur gear using ANSYS. Materials Today: Proceedings. 2022; 64: 1147–1152. doi: 10.1016/j.matpr.2022.03.404

[4]Liu Y, Gao X, Huang H, et al. Design and Finite Element Analysis of Reducer Housing Based on ANSYS. Symmetry. 2025; 17(10): 1663. doi: 10.3390/sym17101663

[5]Ahiwale D, Madake H, Phadtare N, et al. Modal analysis of cracked cantilever beam using ANSYS software. Materials Today: Proceedings. 2022; 56: 165–170. doi: 10.1016/j.matpr.2022.01.055

[6]Avikal S, Bisht A, Sharma D, et al. Design and fatigue analysis of front axle beam of a heavy duty truck using ansys. Materials Today: Proceedings. 2020; 26: 3211–3215. doi: 10.1016/j.matpr.2020.02.901

[7]Chan TC, Ullah A, Roy B, et al. Finite element analysis and structure optimization of a gantry-type high-precision machine tool. Scientific Reports. 2023; 13(1): 13006. doi: 10.1038/s41598-023-40214-5

[8]Cavalheiro FN, Cabaleiro M, Conde B, et al. Clamp-based steel connections for structural reusability: Experimental and finite element analysis in the elastic range. Structures. 2025; 75: 108767. doi: 10.1016/j.istruc.2025.108767

[9]Imran M, Khan R, Badshah S. Experimental, analytical, and finite element vibration analyses of delaminated composite plates. Scientia Iranica. 2019; 28(1). doi: 10.24200/sci.2019.51508.2223

[10]Tahenni T, Bouziadi F, Boulekbache B, et al. Experimental and nonlinear finite element analysis of shear behaviour of reinforced concrete beams. Structures. 2021; 29: 1582–1596. doi: 10.1016/j.istruc.2020.12.043

[11]Sreenivasan M, Kumar MD, Krishna R, et al. Finite element analysis of coil spring of a motorcycle suspension system using different fibre materials. Materials Today: Proceedings. 2020; 33: 275–279. doi: 10.1016/j.matpr.2020.04.051

[12]Shaikh MF, Nallasivam K. Static analysis of box-girder bridge under the influence of Indian railway vehicle loading using ANSYS finite element model. Advances in Bridge Engineering. 2022; 3(1): 25. doi: 10.1186/s43251-022-00076-9

[13]Mughal KH, Bugvi SA, et al. Numerical Evaluation of Contemporary Excavator Bucket Designs using Finite Element Analysis. Jurnal Kejuruteraan. 2021; 33(3): 579–591. doi: 10.17576/jkukm-2021-33(3)-18

[14]Idrees U, Ahmad S, Shah IA, et al. Finite element analysis of car frame frontal crash using lightweight materials. Journal of Engineering Research. 2023; 11(1): 100007. doi: 10.1016/j.jer.2023.100007

[15]Uğur L, Duzcukoglu H, Sahin OS, et al. Investigation of impact force on aluminium honeycomb structures by finite element analysis. Journal of Sandwich Structures & Materials. 2020; 22(1): 87–103. doi: 10.1177/1099636217733235

[16]Sivasuriyan A, Vijayan DS, Sankaran N, et al. Finite element analysis of RC beams using static experimental data to predict static and dynamic behaviors. Scientific Reports. 2024; 14(1): 31238. doi: 10.1038/s41598-024-82537-x

[17]Belhocine A, Afzal A. Computational finite element analysis of brake disc rotors employing different materials. Australian Journal of Mechanical Engineering. 2022; 20(3): 637–650. doi: 10.1080/14484846.2020.1733175

[18]Loganathan TG, Vinoth Kumar K, Madhu S. Flexural and fatigue of a composite leaf spring using finite element analysis. Materials Today: Proceedings. 2020; 22: 1014–1019. doi: 10.1016/j.matpr.2019.11.265

[19]Khan SU, Jamshed W. Finite Element Analysis and Wear Rate Analysis of Nano Coated High Speed Steel Tools for Industrial Application. Babylonian Journal of Mechanical Engineering. 2023; 1(1): 12–19. doi: 10.58496/BJME/2023/002

[20]Al-Haddad L, Jaber A, Ibraheem L, et al. Enhancing Wind Tunnel Computational Simulations of Finite Element Analysis Using Machine Learning-Based Algorithms. Engineering and Technology Journal. 2023; 42(1): 1–9. doi: 10.30684/etj.2023.142873.1552

[21]Triantafyllou G, Kalozoumis PG, Dimas G, et al. DeepFEA: Deep learning for prediction of transient finite element analysis solutions. Expert Systems with Applications. 2025; 269: 126343. doi: 10.1016/j.eswa.2024.126343

[22]Wang W, Zhang Z, Liu G, et al. Simulation study on the vibration durability test of an automotive plastic fuel tank based on fluid–structure coupling. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering. 2025; 239(4): 1240–1250. doi: 10.1177/09544070231217553

[23]Cadet G, Paredes M. Convergence analysis and mesh optimization of finite element analysis related to helical springs. Mechanics & Industry. 2024; 25: 22. doi: 10.1051/meca/2024018

[24]Firouzi N, Lenci S, Amabili M, et al. Nonlinear free vibrations of Timoshenko–Ehrenfest beams using finite element analysis and direct scheme. Nonlinear Dynamics. 2024; 112(9): 7199–7213. doi: 10.1007/s11071-024-09403-3

[25]Pang G, Lu Y, Xu Y, et al. The investigation of opening modes of head and neck thermoplastic mask for radiotherapy based on finite element analysis. Radiation Oncology. 2025; 20(1): 64. doi: 10.1186/s13014-025-02648-1