과제정보
The research described in this paper was financially supported by the Natural Science Foundation.
참고문헌
- Banerjee, S. and Matsagar, V. (2023), "Hybrid vibration control of hospital buildings against earthquake excitations using unbonded fiber-reinforced elastomeric isolator and tuned mass damper", Build., 13(7), 1-23. https://doi.org/10.3390/buildings13071724.
- Chen, J., Chen, M.Z.Q. and Hu, Y. (2021), "Vortex-induced vibration suppression of bridges by inerter-based dynamic vibration absorbers", Shock Vib., 2021, Article ID 4431516. https://doi.org/10.1155/2021/4431516.
- D'Imperio, S., Berruti, T.M., Gastaldi, C. and Soccio, P. (2022), "Tunable vibration absorber design for a high-precision cartesian robot", Robotic., 11(5), 1-20. https://doi.org/10.3390/robotics11050103.
- Dai, K., Tang, J. and Zhang, S. (2022), "An integrated equivalent tuned-mass-inerter vibration absorber and its optimal design", Struct. Control Hlth Monit., 29(11), 1-23. https://doi.org/10.1002/stc.3089.
- Fallahpasand, S., Dardel, M., Pashai, M.H. and Daniati, H. (2015), "Investigation and optimization of nonlinear pendulum vibration absorber for horizontal vibration suppression of damped system", Struct. Des. Tall Spec. Build., 24(14), 873-893. https://doi.org/10.1002/tal.1216.
- Fan, F., Gao, Z., Bian, Y., Zhang, Y. and Cong, Q. (2022), "Nonlinear vibration control of large space antenna based on semi-active vibration absorber", Proceeding of CCMMS: China International Conference on Mechanism and Machine Science & Engineering, Yantai, August.
- Frahm, H. (1909), "Device for damping vibrations of bodies", U.S. Patent US989958A, 30 October.
- Gao, T., Li, J., Zhu, S., Yang, X. and Zhao, H. (2023), "H∞ optimization of three-element-type dynamic vibration absorber with inerter and negative stiffness based on the particle swarm algorithm", Entropy, 25(7), 1-25. https://doi.org/10.3390/e25071048.
- Huang, Z., Hua, X., Chen, Z. and Niu, H. (2019), "Optimal design of TVMD with linear and nonlinear viscous damping for SDOF systems subjected to harmonic excitation", Struct. Control Hlth. Monit., 26(10), e2413. https://doi.org/10.1002/stc.2413.
- Konar, T. and Ghosh, A.D. (2023), "Adaptive design of an overhead water tank as dynamic vibration absorber for buildings by use of a stiffness varying support arrangement", J. Vib. Eng. Technol., 11, 827-843. https://doi.org/10.1007/s42417-022-00611-y.
- Ladipo, I.L. and Muthalif, A.G.A. (2012), "Wideband vibration control in multi-degree of freedom system: Experimental verification using Labview", Eng. Procedia, 14, 1235-1243. https://doi.org/10.1016/j.proeng.2012.07.306.
- Ormondroyd, J. and Den Hartog, J.P. (1928), "Theory of the dynamic vibration absorber", Trans. ASME, 50, 9-22. https://doi.org/10.1115/1.4058553
- Reina, F. and Rose, G.D. (2016), "Active vibration absorber for automotive suspensions: A theoretical study", Int. J. Heavy Vehic. Sys., 23(1), 21-39. https://doi.org/10.1504/IJHVS.2016.074625.
- Son, L., Bur, M., Rusli, M. and Adriyan, A. (2016), "Design of double dynamic vibration absorbes for reduction of two DOF vibration system", Struct. Eng. Mech., 57(1), 161-178. https://doi.org/10.12989/sem.2016.57.1.161.
- Sun, Y., Zhou, J., Gong, D. and Ji, Y. (2022), "Study on multi-degree of freedom dynamic vibration absorber of the car body of high-speed trains", Mech. Sci., 13, 239-256. https://doi.org/10.5194/ms-13-239-2022.
- Wei, J., Liu, W., Gao, P. and Ding, Y. (2023), "An analytical dynamic model for vibration suppression of a multi-span continuous bridge by tuned mass dampers", J. Marine Sci. Eng., 11(5), 1-17. https://doi.org/10.3390/jmse11051017.
- Wu, L. and Wang, K. (2023), "Optimization design and stability analysis for a new class of inerter-based dynamic vibration absorbers with a spring of negative stiffness", J. Vib. Control, 30(3-4), 822-836. https://doi.org/10.1177/10775463231151724.
- Yoon, G.H., Choi, H. and So, H.Y. (2021), "Development and optimization of a resonance-based mechanical dynamic absorber structure for multiple frequencies", J. Low Freq. Noise Vib. Active Control, 40(2), 880-897. https://doi.org/10.1177/1461348419855533.