Open Access

Optimisation of the Parameters of a Vibration Damper Installed on a Historic Bridge


Cite

Frahm H. (1911). Device for damping vibrations of bodies. United States Patent. 3576–3580. FrahmH. 1911 Device for damping vibrations of bodies United States Patent. 3576–3580. Search in Google Scholar

Ormondroyd J., Den Hartog J.P. (1928). The theory of the dynamic vibration absorber. Transactions of ASME. Journal of Applied Mechanics, 50(7), 9–22. OrmondroydJ. Den HartogJ.P. 1928 The theory of the dynamic vibration absorber. Transactions of ASME Journal of Applied Mechanics 50 7 9 22 Search in Google Scholar

Dallard P., Fitzpatrick T., Flint A., Low A., Smith R.R., Willford M., Roche M. (2001). London Millennium Bridge: Pedestrian-Induced Lateral Vibration. Journal of Bridge Engineering, 6(6), 412–417. DallardP. FitzpatrickT. FlintA. LowA. SmithR.R. WillfordM. RocheM. 2001 London Millennium Bridge: Pedestrian-Induced Lateral Vibration Journal of Bridge Engineering 6 6 412 417 Search in Google Scholar

Majcher K., Wójcicki Z. (2014). Kinematically excited parametric vibration of a tall building model with a TMD. Pt. 1. Numerical analyses. Archives of Civil and Mechanical Engineering. 14(1), 204–217. MajcherK. WójcickiZ. 2014 Kinematically excited parametric vibration of a tall building model with a TMD. Pt. 1. Numerical analyses Archives of Civil and Mechanical Engineering 14 1 204 217 Search in Google Scholar

Kuras P., Ortyl Ł., Owerko T., Kocierz R., Kędzierski M., Podstolak P. (2014). Analysis of effectiveness of steel chimneys vibration dampers using surveying methods. PAK. 60(12). KurasP. OrtylŁ. OwerkoT. KocierzR. KędzierskiM. PodstolakP. 2014 Analysis of effectiveness of steel chimneys vibration dampers using surveying methods PAK 60 12 Search in Google Scholar

Shemshadi M., Karimi M., Veysi F. (2020). A simple method to design and analyze dynamic vibration absorber of pipeline structure using dimensional analysis. Hindawi Shock and Vibration. Article ID 2478371. doi.org/10.1155/2020/2478371. ShemshadiM. KarimiM. VeysiF. 2020 A simple method to design and analyze dynamic vibration absorber of pipeline structure using dimensional analysis Hindawi Shock and Vibration Article ID 2478371. doi.org/10.1155/2020/2478371. Search in Google Scholar

Christenson R. E., Hoque S. (2011). Reducing fatigue in wind-excited support structures of traffic signals with innovative vibration absorber. Transportation Research Record Journal of the Transportation Research Board, 2251(1). 16–23. doi.org/10.3141/2251-02. ChristensonR. E. HoqueS. 2011 Reducing fatigue in wind-excited support structures of traffic signals with innovative vibration absorber Transportation Research Record Journal of the Transportation Research Board 2251 1 16 23 doi.org/10.3141/2251-02. Search in Google Scholar

Nishihara O., Asami T. (2002). Closed-form solutions to the exact optimizations of dynamic vibration absorbers (minimizations of the maximum amplitude magnification factors). Transactions of ASME Journal of Vibration and Acoustics. 124(4). 576–582. doi.org/10.1115/1.1500335. NishiharaO. AsamiT. 2002 Closed-form solutions to the exact optimizations of dynamic vibration absorbers (minimizations of the maximum amplitude magnification factors) Transactions of ASME Journal of Vibration and Acoustics 124 4 576 582 doi.org/10.1115/1.1500335. Search in Google Scholar

Yang F., Sedaghati R., Esmailzadeh E., (2021). Vibration suppression of structures using tuned mass damper technology: A state-of-the-art review. Journal of Vibration and Control, 1. 1–25. doi: 10.1177/1077546320984305. YangF. SedaghatiR. EsmailzadehE. 2021 Vibration suppression of structures using tuned mass damper technology: A state-of-the-art review Journal of Vibration and Control 1 1 25 10.1177/1077546320984305 Open DOISearch in Google Scholar

Yoon G. H., Choi H., So H. (2021). Development and optimization of a resonance-based mechanical dynamic absorber structure for multiple frequencies. Journal of Low Frequency Noise. Vibration and Active Control. 40(2). 880–897. doi.org/10.1177/1461348419855533. YoonG. H. ChoiH. SoH. 2021 Development and optimization of a resonance-based mechanical dynamic absorber structure for multiple frequencies. Journal of Low Frequency Noise Vibration and Active Control 40 2 880 897 doi.org/10.1177/1461348419855533. Search in Google Scholar

Soltani P., Deraemaeker A. (2021). Pendulum tuned mass dampers and tuned mass dampers: Analogy and optimum parameters for various combinations of response and excitation parameters. Journal of Vibration and Control, 28(15–16), 2004–2019. doi.org/10.1177/10775463211003414. SoltaniP. DeraemaekerA. 2021 Pendulum tuned mass dampers and tuned mass dampers: Analogy and optimum parameters for various combinations of response and excitation parameters Journal of Vibration and Control 28 15–16 2004 2019 doi.org/10.1177/10775463211003414. Search in Google Scholar

Leimeister, M.; Kolios, A.; Collu, M. (2021). Development of a Framework for Wind Turbine Design and Optimization. Modelling, 2, 105–128. doi.org/10.3390/modelling2010006. LeimeisterM. KoliosA. ColluM. 2021 Development of a Framework for Wind Turbine Design and Optimization Modelling 2 105 128 doi.org/10.3390/modelling2010006. Search in Google Scholar

Du Y., Zou T., Pang F., Hu C., Ma Y., Li H. (2023). Design method for distributed dynamic vibration absorbers of stiffened plate under different boundary constraints. Thin-Walled Structures. 185. 110494. doi.org/10.1016/j.tws.2022.110494. DuY. ZouT. PangF. HuC. MaY. LiH. 2023 Design method for distributed dynamic vibration absorbers of stiffened plate under different boundary constraints Thin-Walled Structures 185 110494 doi.org/10.1016/j.tws.2022.110494. Search in Google Scholar

Contento A., Di Egidio A., Pagliaro S. (2022). Dynamic and seismic protection of rigid-block-like structures with Combined Dynamic Mass Absorbers. Engineering Structures. 272. doi.org/10.1016/j.engstruct.2022.114999. ContentoA. Di EgidioA. PagliaroS. 2022 Dynamic and seismic protection of rigid-block-like structures with Combined Dynamic Mass Absorbers Engineering Structures 272 doi.org/10.1016/j.engstruct.2022.114999. Search in Google Scholar

Grosel J., Podwórna M. (2021). Optimisation of absorber parameters in the case of stochastic vibrations in a bridge with a deck platform for servicing pipelines. Studia Geotechnica et Mechanica, 43, 1–9. DOI:10.2478/sgem-2021-0030. GroselJ. PodwórnaM. 2021 Optimisation of absorber parameters in the case of stochastic vibrations in a bridge with a deck platform for servicing pipelines Studia Geotechnica et Mechanica 43 1 9 10.2478/sgem-2021-0030 Open DOISearch in Google Scholar

Nasr, A., Mrad, C., Nasri, R. (2022). Explicit Formulas for Optimal Parameters of Friction Dynamic Vibration Absorber Attached to a Damped System Under Various Excitations. Journal of Vibration Engineering & Technology. doi.org/10.1007/s42417-022-00560-6. NasrA. MradC. NasriR. 2022 Explicit Formulas for Optimal Parameters of Friction Dynamic Vibration Absorber Attached to a Damped System Under Various Excitations Journal of Vibration Engineering & Technology doi.org/10.1007/s42417-022-00560-6. Search in Google Scholar

Podwórna M., Śniady P., Grosel J. (2021). Random vibrations of a structure modified by damped absorbers. Probabilistic Engineering Mechanics. 66. doi.org/10.1016/j.probengmech.2021.103151. PodwórnaM. ŚniadyP. GroselJ. 2021 Random vibrations of a structure modified by damped absorbers Probabilistic Engineering Mechanics 66 doi.org/10.1016/j.probengmech.2021.103151. Search in Google Scholar

Barredo E., Larios J.G.M., Mayen J., Flores-Hernandez A.A., Colin J. (2019). Optimal design for high-performance passive dynamic vibration absorbers under random vibration. Engineering Structures 2019. 195. 469–489. doi.org/10.1016/j.engstruct.2019.05.105. BarredoE. LariosJ.G.M. MayenJ. Flores-HernandezA.A. ColinJ. 2019 Optimal design for high-performance passive dynamic vibration absorbers under random vibration Engineering Structures 2019 195 469 489 doi.org/10.1016/j.engstruct.2019.05.105. Search in Google Scholar

Laurentiu M., Agathoklis G. (2014). Optimal design of novel tuned mass-damper-inerter (TMDI) passive vibration control configuration for stochastically support-excited structural systems, Probabilistic Engineering Mechanics. 38. 156–164. doi.org/10.1016/j.probengmech.2014.03.007. LaurentiuM. AgathoklisG. 2014 Optimal design of novel tuned mass-damper-inerter (TMDI) passive vibration control configuration for stochastically support-excited structural systems Probabilistic Engineering Mechanics 38 156 164 doi.org/10.1016/j.probengmech.2014.03.007. Search in Google Scholar

Shum K.M. (2015). Tuned vibration absorbers with nonlinear viscous damping for damped structures under random load. Journal of Sound and Vibrations, 346, 70–80. doi.org/10.1016/j.jsv.2015.02.003. ShumK.M. 2015 Tuned vibration absorbers with nonlinear viscous damping for damped structures under random load Journal of Sound and Vibrations 346 70 80 doi.org/10.1016/j.jsv.2015.02.003. Search in Google Scholar

Javidialesaadi A., Wierschem N.E. (2018). Optimal design of rotational inertial double tuned mass dampers under random excitation, Engineering Structures. 165. 412–421. doi.org/10.1016/j.engstruct.2018.03.033. JavidialesaadiA. WierschemN.E. 2018 Optimal design of rotational inertial double tuned mass dampers under random excitation Engineering Structures 165 412 421 doi.org/10.1016/j.engstruct.2018.03.033. Search in Google Scholar

Martins L. A., Lara Molina F. A., Koroishi E. H., Cavalini A. Ap. Jr. (2020). Optimal design of a dynamic vibration absorber with uncertainties, Journal of Vibration Engineering & Technologies, 8, 133–140. doi.org/10.1007/s42417-019-00084-6. MartinsL. A. Lara MolinaF. A. KoroishiE. H. CavaliniA. Ap.Jr. 2020 Optimal design of a dynamic vibration absorber with uncertainties Journal of Vibration Engineering & Technologies 8 133 140 doi.org/10.1007/s42417-019-00084-6. Search in Google Scholar

Silva A.G., Cavalini A. A. Jr., Steffen V. Jr. (2016). Fuzzy robust design of dynamic vibration absorbers. Hindawi Shock and Vibration. Volume 2016. Article ID 2081518. doi.org/10.1155/2016/2081518. SilvaA.G. CavaliniA. A.Jr. SteffenV.Jr. 2016 Fuzzy robust design of dynamic vibration absorbers Hindawi Shock and Vibration 2016 Article ID 2081518. doi.org/10.1155/2016/2081518. Search in Google Scholar

Śniady P. (2020). Fundamentals of stochastic structure dynamics (in Polish), Oficyna Wydawnicza Politechniki Wrocławskiej. ŚniadyP. 2020 Fundamentals of stochastic structure dynamics (in Polish) Oficyna Wydawnicza Politechniki Wrocławskiej Search in Google Scholar

Wolfram Mathematica 13. Wolfram Research ©Copyright 1988–2023. Wolfram Mathematica 13. Wolfram Research ©Copyright 1988–2023 Search in Google Scholar

Langer J. (1980). Dynamics of structures (in Polish). Wydawnictwo Politechniki Wrocławskiej. LangerJ. 1980 Dynamics of structures (in Polish) Wydawnictwo Politechniki Wrocławskiej Search in Google Scholar

Mielczarek M., Nowogońska B. (2021). Technical problems in the renovation of historic bridges. Case study – road bridge in Cigacice. Civil and Environmental Engineering Reports, 31(1). 70–78. DOI: 10.2478/ceer-2021-0005. MielczarekM. NowogońskaB. 2021 Technical problems in the renovation of historic bridges. Case study – road bridge in Cigacice Civil and Environmental Engineering Reports 31 1 70 78 10.2478/ceer-2021-0005 Open DOISearch in Google Scholar

Dawczyński S., Brol J. (2016). Laboratory tests of old reinforced concrete precast bridge beams. Architecture, Civil Engineering, Environment, 9(2). 57–63. https://doi.org/10.21307/acee-2016-022. DawczyńskiS. BrolJ. 2016 Laboratory tests of old reinforced concrete precast bridge beams Architecture, Civil Engineering, Environment 9 2 57 63 https://doi.org/10.21307/acee-2016-022. Search in Google Scholar

Bajad, M.N. (2022). Analytical approach for damping model. Asian Journal of Civil Engineering. https://doi.org/10.1007/s42107-022-00491-3. BajadM.N. 2022 Analytical approach for damping model Asian Journal of Civil Engineering https://doi.org/10.1007/s42107-022-00491-3. Search in Google Scholar

eISSN:
2720-6947
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Architecture and Design, Architecture, Architects, Buildings