Review of Magnetorheological Damping Systems on a Seismic Building
Abstract
:Featured Application
Abstract
1. Introduction
2. Types of Dampers on Structural Buildings
2.1. Friction Dampers
2.2. Tuned Mass Dampers
2.3. Viscous Dampers
3. Magnetorheological Dampers for Structural Buildings
3.1. Magnetorheological Fluids
3.2. Application of MR Dampers in Building Structures
4. Modeling and Control of MR Dampers for Structural Buildings
4.1. Modeling of MR Dampers
4.2. Semi-Active Controllers for MR Dampers
5. Future Research
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Model | Equation | Figure |
---|---|---|
Bingham Model | where c1 and f0 are equal to the damping coefficient and the shear friction force, respectively; and sgn () is a function of the signum. The damping force is linearly dependent on the damper speed, while the friction force depends on the velocity [177,179]. | |
Gamota and Filisko Model | where c0 is the damping coefficient of the Bingham model, and k1, k2, and c1 are the coefficients of stiffness and viscous damping, respectively, in relation to the linear solid material [179,180]. | |
Bouc-Wen Model | k1 represents the damper stiffness of the accumulator and c0 is the dashpot coefficient associated with viscous damping at higher velocities. A dashpot c1 was included in the model to produce the roll-off observed in the experimental data at a low velocity. k0 is the stiffness control at a higher velocity, and x0 is the initial displacement of the spring k1 in relation to the nominal damper force due to the battery [180]. | |
BingMax Model | where a = c/k is the quotient of the dashpot c and the spring k, and fy is the friction force on the slider [180]. | |
LuGre Model | where g(v) is the Coulomb friction and the Stribeck effect, and f(v) represents viscous friction. |
No. | Author and Year | Controller | Finding |
---|---|---|---|
1 | Zafarani and Halabian (2020) [190] | Clipped optimal with LQG control | Control of the seismic inelastic torque response of multi-story buildings. |
2 | Mohebbi et. al. (2018) [191] | H2/LQG control | Modification of H2/LQG control to optimize the control system’s performance |
3 | Zizouni et. al. (2019) [192] | Neural network control | Efficacy of neural network control on a three-story small-scale structure using the Tōhoku 2011 and Boumerdès 2003 earthquake data. |
4 | Bozorgvar and Zahrai (2019) [193] | Adaptive Neuro-Fuzzy inference system | Neuro-fuzzy optimization adapted to genetic algorithms. |
5 | Li and Liang (2018) [194] | Sliding mode control Fuzzy system | Developed a sliding mode control method based on a fuzzy system. Fuzzy logic control mitigates the chattering phenomenon. |
6 | Cesar and Barros (2017) [195] | Adaptive Neuro-Fuzzy inference system | Verified the efficacy of neuro-fuzzy controllers in reducing the responses of building structures equipped with MR dampers. |
7 | Al-Fahdawi and Barroso (2021) [196] | Adaptive Neuro-Fuzzy inference system and Simple adaptive control | Reduction of the seismic response of three-dimensional combined buildings under two-way seismic excitation with adaptive neuro-fuzzy inference system control and simple adaptive control. |
8 | Mousavi (2020) [197] | Fuzzy logic controller | Use of wavelet networks and fuzzy logic controllers to copy the inverse dynamics of MR dampers and nonlinear isolators. |
9 | Ndemanou and Nbendjo (2018) [185] | Fuzzy logic controller | Fuzzy logic controls are better than traditional controls and algorithmic controls and are critical when optimizing the response of a structure to seismic loads. |
10 | Mehrkian et. al. (2017) [186] | Fuzzy logic controller | Improving a fuzzy control system with a smart multi-objective fuzzy–genetic controller produced controls that were more effective than others. |
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Lenggana, B.W.; Ubaidillah, U.; Imaduddin, F.; Choi, S.-B.; Purwana, Y.M.; Harjana, H. Review of Magnetorheological Damping Systems on a Seismic Building. Appl. Sci. 2021, 11, 9339. https://doi.org/10.3390/app11199339
Lenggana BW, Ubaidillah U, Imaduddin F, Choi S-B, Purwana YM, Harjana H. Review of Magnetorheological Damping Systems on a Seismic Building. Applied Sciences. 2021; 11(19):9339. https://doi.org/10.3390/app11199339
Chicago/Turabian StyleLenggana, Bhre Wangsa, Ubaidillah Ubaidillah, Fitrian Imaduddin, Seung-Bok Choi, Yusep Muslih Purwana, and Harjana Harjana. 2021. "Review of Magnetorheological Damping Systems on a Seismic Building" Applied Sciences 11, no. 19: 9339. https://doi.org/10.3390/app11199339
APA StyleLenggana, B. W., Ubaidillah, U., Imaduddin, F., Choi, S.-B., Purwana, Y. M., & Harjana, H. (2021). Review of Magnetorheological Damping Systems on a Seismic Building. Applied Sciences, 11(19), 9339. https://doi.org/10.3390/app11199339