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Ma Kai, Du Jingtao, Liu Yang, Chen Ximing. A comparative study on the torsional vibration attenuation of closed-loop internal combustion engine shafting using tuned mass damper and nonlinear energy sink. Chinese Journal of Theoretical and Applied Mechanics, 2024, 56(1): 236-246. DOI: 10.6052/0459-1879-23-285
Citation: Ma Kai, Du Jingtao, Liu Yang, Chen Ximing. A comparative study on the torsional vibration attenuation of closed-loop internal combustion engine shafting using tuned mass damper and nonlinear energy sink. Chinese Journal of Theoretical and Applied Mechanics, 2024, 56(1): 236-246. DOI: 10.6052/0459-1879-23-285

A COMPARATIVE STUDY ON THE TORSIONAL VIBRATION ATTENUATION OF CLOSED-LOOP INTERNAL COMBUSTION ENGINE SHAFTING USING TUNED MASS DAMPER AND NONLINEAR ENERGY SINK

  • Received Date: July 01, 2023
  • Accepted Date: September 13, 2023
  • Available Online: September 14, 2023
  • Traditional linear vibration absorber has long been used in vibration suppression, but its performance is limited by its narrow bandwidth. Considering that the cyclic excitation force of closed-loop shafting of internal combustion engine varies with the speed, it is necessary to achieve efficient vibration reduction in a relatively wide frequency domain. In order to investigate the feasibility of nonlinear energy sink (NES) replacing tuned mass damper (TMD) to suppress the torsional vibration of crankshaft, a multi-inertias nonlinear closed-loop self-excited coupled oscillation model (M-NCSCO) is established in this study. Based on this, the effects of TMD and NES on torsional vibration of crankshaft are studied. The transient and steady-state torsional oscillations at different coaxial segments of shafting are considered comprehensively in the analysis process. In addition, three functions of vibration density, performance lead efficiency and fluctuation ratio are defined to consider the performance of the dynamic vibration absorbers (DVA). The efficiency and robustness of NES and TMD under different design parameters (variable stiffness, variable damping and variable position arrangement) are discussed. The results show that NES and TMD have different stiffness and damping failure interval when controlling crankshaft torsional vibration. With the change of design parameters, NES and TMD lead the performance of vibration reduction alternately, with a combined performance of 24.5% for NES and 3.3% for TMD. At the same time, NES has a high damping dependence (13.6%), TMD has a high stiffness dependence (3.6%) and position dependence (25.6%).
  • [1]
    刘佳鑫, 顾灿松, 袁兆成等. 结构与参数对曲轴扭振减振器减振效果影响研究. 机械设计与制造, 2020, 12: 282-288 (Liu Jiaxin, Gu Cansong, Yuan Zhaocheng, et al. Research on the influence of structure forms and design parameters on damping effect of torsional vibration dampers (TVD). Machinery Design & Manufacture, 2020, 12: 282-288 (in Chinese) doi: 10.3969/j.issn.1001-3997.2020.04.068

    LIU Jiaxin, GU Cansong, YUAN Zhaocheng, et al. Research on the Influence of Structure Forms and Design Parameters on Damping Effect of Torsional Vibration Dampers (TVD). Machinery Design & Manufacture, 2020, 12: 282-288. (in Chinese)) doi: 10.3969/j.issn.1001-3997.2020.04.068
    [2]
    郭一鸣. 发动机曲轴橡胶扭转减振器动力学建模及性能匹配的研究. [博士论文]. 广州: 华南理工大学, 2016

    Guo Yiming. Study on the dynamic modeling and peformance matching of the rubber-damped torsional vibration damper for the crankshaft system of the engine. [PhD Thesis]. Guangzhou: South China University of Technology, 2016 (in Chinese)
    [3]
    Han HS, Lee KH, Park SH. Parametric study to identify the cause of high torsional vibration of the propulsion shaft in the ship. Engineering Failure Analysis, 2016, 59: 334-346 doi: 10.1016/j.engfailanal.2015.10.018
    [4]
    Wen XF, Yuan Q, Lu JS, et al. Analysis of propulsion shafting torsional vibration of vessels with double engines and double propellers. Advanced Materials Research, 2012, 479-481: 1310-1313 doi: 10.4028/www.scientific.net/AMR.479-481.1310
    [5]
    Tan W, Cong Z, Zhe T, et al. Analysis of torsional vibration of large-scale ship propulsion shafting//ASME 34th International Conference on Ocean, Offshore and Arctic Engineering, Canada. 2015: 1-6
    [6]
    Wang M, Xiao N, Fan M. The torsional vibration simulation of the diesel engine crankshaft system based on multi-body dynamic model. Proceedings of the Institution of Mechanical Engineers, Part K: Journal of Multi-body Dynamics, 2021, 235(3): 443-451 doi: 10.1177/14644193211020247
    [7]
    Wang F, Xia J, Xu X, et al. Torsional vibration-considered energy management strategy for power-split hybrid electric vehicles. Journal of Cleaner Production, 2021, 296(5): 126399
    [8]
    Mitm A, Dy A, Gdlb C. Dynamical analysis of series hybrid electric vehicle powertrain with torsional vibration: Ant monotonicity and coexisting attractors. Chaos, Solitons & Fractals, 2021, 150: 1-10
    [9]
    Ni S, Guo Y, Li W, et al. Effect of advanced injection angle on diesel engine shaft torsional vibration. International Journal of Engine Research, 2020, 22(5): 1395-1420
    [10]
    Guo Y, Li W, Yu S, et al. Diesel engine torsional vibration control coupling with speed control system. Mechanical Systems and Signal Processing, 2017, 94: 1-13 doi: 10.1016/j.ymssp.2017.01.017
    [11]
    Vollberg D, Gibson P, Schultes G, et al. Smart in-cylinder pressure sensor for closed-loop combustion control. Journal of Sensors and Sensor Systems, 2022, 11: 1-13 doi: 10.5194/jsss-11-1-2022
    [12]
    Ma K, Du J, Liu Y. Nonlinear dynamic behavior analysis of closed-loop self-excited crankshaft model using improved Newmark-β method. Nonlinear Dynamics, 2023, 111: 5107-5124 doi: 10.1007/s11071-022-08100-3
    [13]
    Silva C, Manin L, Rinaldi RG, et al. Dynamics of torsional vibration damper (TVD) pulley, implementation of a rubber elastomeric behavior, simulations and experiments. Mechanism and Machine Theory, 2019, 142: 103583 doi: 10.1016/j.mechmachtheory.2019.103583
    [14]
    Zeng L, Xu Y, Huang J, et al. Dynamic characteristics analysis of a circumferential short spring dual mass flywheel with the influence of centrifugal force and friction. Symmetry, 2021, 13(8): 1-21
    [15]
    曾礼平, 黄杰, 宋立权等. 计及间隙和转矩滞回变化的双质量飞轮冲击特性及动态响应分析. 振动与冲击, 2022, 41(23): 9 (Zeng Liping, Huang Jie, Song Liquan, et al. Impact characteristics and dynamic response analysis of two-mass flywheel taking into account clearance and torque hysteresis changes. Journal of Vibration and Shock, 2022, 41(23): 9 (in Chinese)

    Zeng Liping, Huang Jie, Song Liquan, et al. Impact characteristics and dynamic response analysis of two-mass flywheel taking into account clearance and torque hysteresis changes. Journal of Vibration and Shock, 2022, 41(23): 9. (in Chinese))
    [16]
    侯高杰, 徐永晨, 张亚伟等. 改善轰鸣振动与换挡冲击的双质量飞轮优化设计. 噪声与振动控制, 2022, 42(2): 253-257 (Hou Gaojie, Xu Yongchen, Zhang Yawei, et al. Optimization design of dual-mass flywheel for improving roar vibration and shift impact. Noise and Vibration Control, 2022, 42(2): 253-257 (in Chinese)

    Hou Gaojie, Xu Yongchen, Zhang Yawei, et al. Optimization Design of Dual-mass Flywheel for Improving Roar Vibration and Shift Impact. Noise and Vibration Control, 2022(002): 042. (in Chinese))
    [17]
    Zhou Y, Shi X, Rao W, et al. Feasibility study of single-mass flywheels with centrifugal pendulum vibration absorbers in vehicles with dual-clutch transmissions. Journal of Vibration and Control, 2022, 29(13-14): 3213-3226
    [18]
    Gomez ER, Sjostrand J, Kari L. Torsional vibrations in heavy-truck powertrains with flywheel attached centrifugal pendulum vibration absorbers. Mechanism and Machine Theory, 2022, 167: 104547 doi: 10.1016/j.mechmachtheory.2021.104547
    [19]
    Manchi V, Sujatha C. Torsional vibration reduction of rotating shafts for multiple orders using centrifugal double pendulum vibration absorber. Applied Acoustics, 2021, 174: 107768 doi: 10.1016/j.apacoust.2020.107768
    [20]
    Vakakis AF, Manevitch LI, Gendelman O, et al. Dynamics of linear discrete systems connected to local, essentially non-linear attachments. Journal of Sound and Vibration, 2003, 264(3): 559-577 doi: 10.1016/S0022-460X(02)01207-5
    [21]
    He MX, Tang Y, Ding Q. Dynamic analysis and optimization of a cantilevered beam with both the acoustic black hole and the nonlinear energy sink. Journal of Intelligent Material Systems and Structures, 2022, 33: 70-83 doi: 10.1177/1045389X211011679
    [22]
    Zhao Y, Du J. Vibration suppression and dynamic behavior analysis of an axially loaded beam with NES and nonlinear elastic supports. Journal of Vibration and Control, 2023, 29: 844-857 doi: 10.1177/10775463211053455
    [23]
    Aghayari J, Bab S, Safarpour P, et al. A novel modal vibration reduction of a disk-blades of a turbine using nonlinear energy sinks on the disk. Mechanism and Machine Theory, 2021, 155: 104048 doi: 10.1016/j.mechmachtheory.2020.104048
    [24]
    Yao G, Qiao Y. Vibration suppression and energy absorption of plates in subsonic airflow using an energy harvester enhanced nonlinear energy sink. Journal of Vibration and Control, 2023, 29: 2301-2315 doi: 10.1177/10775463221077779
    [25]
    Cao Y, Yao H, Li H, et al. Torsional vibration dynamics of a gear-shafting system attaching a nonlinear energy sink. Mechanical Systems and Signal Processing, 2022, 176: 1091752
    [26]
    Guo C, AL-Shudeifat MA, Vakakis AF, et al. Vibration reduction in unbalanced hollow rotor systems with nonlinear energy sinks. Nonlinear Dynamics, 2015, 79: 527-538 doi: 10.1007/s11071-014-1684-7
    [27]
    Bab S, Najafi M, Sola JF, et al. Annihilation of non-stationary vibration of a gas turbine rotor system under rub-impact effect using a nonlinear absorber. Mechanism and Machine Theory, 2019, 139: 379-406 doi: 10.1016/j.mechmachtheory.2019.05.005
    [28]
    Ahmadabadi ZN. Nonlinear energy transfer from an engine crankshaft to an essentially nonlinear attachment. Journal of Sound and Vibration, 2018, 443: 139-154
    [29]
    Haris A, Motato E, Theodossiades S, et al. A study on torsional vibration attenuation in automotive drivetrains using absorbers with smooth and non-smooth nonlinearities. Applied Mathematical Modelling, 2016, 46: 674-690
    [30]
    Haris A, Alevras P, Mohammadpour M, et al. Design and validation of a nonlinear vibration absorber to attenuate torsional oscillations of propulsion systems. Nonlinear Dynamics, 2020, 100(1): 33-49 doi: 10.1007/s11071-020-05502-z
    [31]
    李文东. 发动机曲轴系扭转振动分析与配置优化. [硕士论文]. 上海: 上海海洋大学, 2022

    Li Wendong. Torsional vibration analysis and configuration optimization of engine crankshaft system. [Master Thesis]. Shanghai: Shanghai Ocean University, 2022 (in Chinese))
    [32]
    倪世威. 考虑扭振与喷油提前角耦合的柴油机振动特性研究. [博士论文]. 哈尔滨: 哈尔滨工程大学, 2021

    Ni Shiwei. The research of diesel engine vibration characteristics of considering the coupling between torsional vibration and advanced injection angle. [PhD Thesis]. Harbin: Harbin Engineering University, 2021 (in Chinese))
    [33]
    Alnahhal W, Aref A. Numerical evaluation of dynamic response by using modified Newmark’s method. Jordan Journal of Civil Engineering, 2019, 13(1): 30-43
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