Seismic performance evaluation of base-isolated buildings with variations of mass and stiffness
Yıl 2025,
Cilt: 5 Sayı: 2, 520 - 533, 31.07.2025
Zeliha Tonyalı
,
Adnan Kıral
Öz
Significant investigations have been undertaken regarding base-isolated structures. However, various factors, such as substantial renovations in base-isolated buildings, the installation of heavy machinery in base-isolated hospitals, or the degradation of isolator stiffness, can lead to changes in a building's mass and stiffness over time. These alterations, often overlooked in existing literature, can affect the structure's natural period, resulting in seismic accelerations and bearing displacements that may exceed anticipated limits. This issue has not been thoroughly explored in the base isolation literature. Consequently, this study examines a nine-story isolated building whose seismic performance has been experimentally validated. The building is modelled using MATLAB platform, which is also verified by experimental findings. The results indicate that variations in mass and stiffness in base-isolated buildings can result in increased isolator bearing displacement and overall frame acceleration. Consequently, this concern highlights the need for additional vibration control measures for base-isolated buildings to prevent excessive acceleration and bearing damage.
Kaynakça
-
Kiral A, Ergün M, Tonyali Z, Artar M, Şentürk İ (2024) A case study comparing seismic retrofitting techniques for a historically significant masonry building’s minaret. Engineering Failure Analysis, 166, 108873. https://doi.org/10.1016/j.engfailanal.2024.108873
-
Zhao Y, Huang P, Long G, Yuan Y, and Sun Y (2020) Influence of fluid viscous damper on the dynamic response of suspension bridge under random traffic load. Advances in Civil Engineering, 1, 1857378. https://doi.org/10.1155/2020/1857378
-
Lin J (2022) Vibration reduction performance of structures with viscous dampers under near‐field earthquakes. Advances in Civil Engineering, 2022, 1, 1315213. https://doi.org/10.1155/2022/1315213
-
Wei L, Nie H (2022) Seismic vulnerability analysis of prefabricated concrete frame with a cam‐type response amplifying device of viscous damper. Advances in Civil Engineering, 2022, 1, 3386719. https://doi.org/10.1155/2022/3386719
-
Q. Zhang, Z.-y. Wei, J.-x. Gong, P. Yu, and Y.-q. Zhang (2018) Equivalent viscous damping ratio model for flexure critical reinforced concrete columns. Advances in Civil Engineering, 2018, 1, 5897620. https://doi.org/10.1155/2018/5897620
-
Günaydın M, Tonyali Z (2018) Dynamic response of a reinforced concrete minaret. J. Struct. Eng. Appl. Mech, 1: 2, 62-72.
-
Kiral A, Tonyali Z, Ergün M (2025) A comprehensive analysis of the ground motions of the 2023 Kahramanmaraş, Türkiye earthquakes. Earthquake and Structures, 26, 203-219, https://doi.org/10.12989/eas.2025.28.3.203
-
Idham NC (2018) Earthquake failures on buildings and the role of architect on building safety. Dimensi: Journal of Architecture and Built Environment, 45: 2, 153-164. https://doi.org/10.9744/dimensi.45.2.153-164
-
Tonyali Z, Kiral A (2024) Evaluation of Earthquake-Related Damages on the Reinforced Concrete Buildings due to the February 6, 2023, Kahramanmaras-Turkiye Earthquakes. Recep Tayyip Erdogan University Journal of Science and Engineering, 5:1, 89-114. https://doi.org/10.53501/rteufemud.1471964
-
Ivanov ML, Chow WK (2023) Structural damage observed in reinforced concrete buildings in Adiyaman during the 2023 Turkiye Kahramanmaras Earthquakes. Structures, 58, 105578. https://doi.org/10.1016/j.istruc.2023.105578
-
Li N, Zhu B, Zhang L, Kishiki S (2024) Damage analysis of a pseudoclassic reinforced concrete frame structure under the action of the Ms 6.8 Luding earthquake in China. Structures, 60, 105887. https://doi.org/10.1016/j.istruc.2024.105887
-
Tonyali Z, Yurdakul M, Sesli H (2022) Dynamic response of concentrically braced steel frames to pulse period in near-fault ground motions," Turkish Journal of Science and Technology, 17: 2, 357-373. https://doi.org/10.55525/tjst.1113021
-
Chopra AK (1995) Theory and applications to earthquake engineering, Dyn Struct.
-
Aydogdu HH, Demir C, Kahraman T, Ilki A (2023) Evaluation of rapid seismic safety assessment methods on a substandard reinforced concrete building stock in Istanbul. Structures, 56, 104962. https://doi.org/10.1016/j.istruc.2023.104962
-
Stepinac M, Bedon C, Funari MF, Kišiček T, Hancilar U (2024) Assessment, Reconstruction and Decision Procedures for the Preservation of Existing Structures after Earthquakes," ed: MDPI-Multidisciplinary Digital Publishing Institute.
-
Impollonia N, Palmeri A (2018) Seismic performance of buildings retrofitted with nonlinear viscous dampers and adjacent reaction towers. Earthquake Engineering & Structural Dynamics, 47: 5, 1329-1351. https://doi.org/10.1002/eqe.3020
-
Palmeri A (2006) Correlation coefficients for structures with viscoelastic dampers. Engineering Structures, 28: 8, 1197-1208. https://doi.org/10.1016/j.engstruct.2005.12.015
-
Ates S, Kahya V, Yurdakul M, Adanur S (2013) Damages on reinforced concrete buildings due to consecutive earthquakes in Van. Soil Dynamics and Earthquake Engineering, 53, 109-118. https://doi.org/10.1016/j.soildyn.2013.06.006
-
Altunişik AC, Arslan ME, Kahya V, Aslan B, Sezdirmez T, Dok G, Kirtel O, Öztürk H, Sunca F, Baltaci A, "Field observations and damage evaluation in reinforced concrete buildings after the February 6th, 2023, Kahramanmaraş–Türkiye Earthquakes," Journal of Earthquake and Tsunami, 17: 06, 2350024. https://doi.org/10.1142/S1793431123500240
-
Wong KK (2008) Seismic energy dissipation of inelastic structures with tuned mass dampers. Journal of engineering mechanics, 134: 2, 163-172. https://doi.org/10.1061/(ASCE)0733-9399(2008)134:2(163
-
Kiral A, Gurbuz A (2024) Using supplemental linear viscous dampers for experimentally verified base-isolated building: Case study. Journal of Structural Engineering & Applied Mechanics (Online), 7: 1. https://doi.org/10.31462/jseam.2024.01034050
-
Sesli H, Tonyali Z, Yurdakul M (2022) An investigation on seismically isolated buildings in near-fault region. Journal of Innovative Engineering and Natural Science, 2: 2, 47-65. https://doi.org/10.29228/JIENS.63395
-
Kiral A, Garcia R, Petkovski M, Hajirasouliha I (2024) Seismic performance assessment of steel buildings equipped with a new semi-active displacement-dependent viscous damper. Journal of Earthquake and Tsunami. https://doi.org/10.1142/s1793431124500222
-
Shang Q, Wang T, Li J (2019) Seismic fragility of flexible pipeline connections in a base isolated medical building. Earthquake Engineering and Engineering Vibration, 18, 903-916. https://doi.org/10.1007/s11803-019-0542-5
-
Almajhali KYM (2023) Review on passive energy dissipation devices and techniques of installation for high rise building structures. Structures. 51, 1019-1029. https://doi.org/10.1016/j.istruc.2023.03.025
-
Ijmulwar SS, Patro SK (2024) Seismic design of reinforced concrete buildings equipped with viscous dampers using simplified performance-based approach. Structures, 61, 106020. https://doi.org/10.1016/j.istruc.2024.106020
-
A Moslehi Tabar , Domenico DD, Dindari H (2021) Seismic rehabilitation of steel arch bridges using nonlinear viscous dampers: Application to a case study. Practice Periodical on Structural Design and Construction, 26, 3, 04021012, https://doi.org/10.1061/(ASCE)SC.1943-5576.0000576
-
A Moslehi Tabar, Domenico DD (2020) Nonlinear response spectrum analysis of structures equipped with nonlinear power law viscous dampers. Engineering Structures, 219, 110857. https://doi.org/10.1016/j.engstruct.2020.110857
-
Kiral A, Gurbuz A, Ustabas I (2024) The seismic response evaluation of an existing multi-span reinforced concrete highway bridge in the presence of linear and nonlinear viscous dampers. Arabian Journal for Science and Engineering, 1-19. https://doi.org/10.1007/s13369-024-09265-2
-
Seo J, Hu LW (2016) Seismic response and performance evaluation of self-centering lrb isolators installed on the cbf building under NF ground motions. Sustainability. 8: 2, 109, 2016. https://www.mdpi.com/2071-1050/8/2/109
-
Kiral A, Tonyali Z. (2025) The effect of LRB stiffness changes with and without supplemental viscous dampers on seismic responses of an experimentally verified MDOF building. Sigma J. Eng. Nat. Sci., 43: 1, 301-315. doi: https://doi.org/10.14744/sigma.2024.00104
-
Kiral A, Tonyali Z. (2024) Seismic response control of buildings using viscous-based devices," in modern approaches to traffic safety and sound insulation: BIDGE Publications, ch. 4, pp. 70-111.
-
Haque MN, Zisan MB, Bhuiyan AR (2013) Seismic response analysis of base isolated building: Effect of lead rubber bearing characteristics. Malaysian Journal of Civil Engineering, 25: 2, 154-167. https://doi.org/10.11113/mjce.v25.15849
-
Jangid RS, Kelly JM (2001) Base isolation for near‐fault motions. Earthquake engineering & structural dynamics, 30: 5, 691-707. https://doi.org/10.1002/eqe.31
-
Providakis CP (2008) Effect of LRB isolators and supplemental viscous dampers on seismic isolated buildings under near-fault excitations. Engineering structures, 30: 5, 1187-1198. https://doi.org/10.1016/j.engstruct.2007.07.020
-
Clark PW (1996) Experimental studies of the ultimate behavior of seismically-isolated structures. PhD Thesis, University of California, Berkeley.
-
Kitayama S, Constantinou MC, (2022) Performance evaluation of seismically isolated buildings near active faults. Earthquake Engineering & Structural Dynamics, 51: 5, 1017-1037. https://doi.org/10.1002/eqe.3602
-
Whittaker AS, Sollogoub P, Kim MK (2018) Seismic isolation of nuclear power plants: Past, present and future. Nuclear Engineering and Design, 338, 290-299. https://doi.org/10.1016/j.nucengdes.2018.07.025
-
Sarebanha A, Mosqueda G, Kim MK, Kim JH (2018) Seismic response of base isolated nuclear power plants considering impact to moat walls," Nuclear Engineering and Design, 328, 58-72. https://doi.org/10.1016/j.nucengdes.2017.12.021
-
Chen P, Wang B, Zhang Z, Li T, Dai K (2023) A generalized model of lead rubber bearing considering large strain stiffening and degradation. Engineering Structures, 275, 115264. https://doi.org/10.1016/j.engstruct.2022.115264
-
Li Y, Ma Y, Zhao G, Liu R (2023) Study on the basic performance deterioration law and the application of lead rubber bearings under the alternation of aging and seawater erosion. Buildings 13: 2, 360. https://doi.org/10.3390/buildings13020360
-
Darwish AQ, Bhandari M (2022) Vibration response reduction of seismic forces using lead rubber bearing isolators in composite buildings. Journal of Vibration Engineering & Technologies, 10: 4, 1309-1324, https://doi.org/10.1007/s42417-022-00447-6
-
Hu LW, Response of seismically isolated steel frame buildings with sustainable lead-rubber bearing (LRB) isolator devices subjected to near-fault (NF) ground motions. Sustainability, 7: 1, 111-137. https://www.mdpi.com/2071-1050/7/1/111
-
E. Özer (2022) Geleneksel ve taban izolatörlü betonarme binaların sismik davranışlarının karşılaştırılması (In Turkish), Ms Thesis, Civil Engineering, Pamukkale University.
-
Shin TM, Lee BC (2023) Seismic response effect on base-isolated rigid structures by mass eccentricity in nuclear plants. Applied Sciences, 13: 24, 13330. https://doi.org/10.3390/app132413330
-
MATLAB-R, https://it.mathworks.com/help/matlab/. Accessed Feb 2024, 2018a.
-
Kohiyama M, Omura M, Takahashi M, Yoshida O, Nakatsuka K. (2019) Update of control parameters for semi‐actively controlled base‐isolated building to improve seismic performance. Japan Architectural Review, 2:3, 226-237. https://doi.org/10.1002/2475-8876.12090
-
Dan M, Kohiyama M (2013) System identification and control improvement of a semi-active-controlled base-isolated building using the records of the 2011 Great East Japan earthquake. in In 11th International Conference on Structural Safety and Reliability, ICOSSAR, 3841-3847.
Seismic performance evaluation of base-isolated buildings with variations of mass and stiffness
Yıl 2025,
Cilt: 5 Sayı: 2, 520 - 533, 31.07.2025
Zeliha Tonyalı
,
Adnan Kıral
Öz
Significant investigations have been undertaken regarding base-isolated structures. However, various factors, such as substantial renovations in base-isolated buildings, the installation of heavy machinery in base-isolated hospitals, or the degradation of isolator stiffness, can lead to changes in a building's mass and stiffness over time. These alterations, often overlooked in existing literature, can affect the structure's natural period, resulting in seismic accelerations and bearing displacements that may exceed anticipated limits. This issue has not been thoroughly explored in the base isolation literature. Consequently, this study examines a nine-story isolated building whose seismic performance has been experimentally validated. The building is modelled using MATLAB platform, which is also verified by experimental findings. The results indicate that variations in mass and stiffness in base-isolated buildings can result in increased isolator bearing displacement and overall frame acceleration. Consequently, this concern highlights the need for additional vibration control measures for base-isolated buildings to prevent excessive acceleration and bearing damage.
Etik Beyan
The authors declare no conflict of interest.
Destekleyen Kurum
The authors declare no funding received.
Teşekkür
The second author would like to thank Professor Masayuki Kohiyama for providing the numerical data for this study during a visit to Keio University in Japan in 2019.
Kaynakça
-
Kiral A, Ergün M, Tonyali Z, Artar M, Şentürk İ (2024) A case study comparing seismic retrofitting techniques for a historically significant masonry building’s minaret. Engineering Failure Analysis, 166, 108873. https://doi.org/10.1016/j.engfailanal.2024.108873
-
Zhao Y, Huang P, Long G, Yuan Y, and Sun Y (2020) Influence of fluid viscous damper on the dynamic response of suspension bridge under random traffic load. Advances in Civil Engineering, 1, 1857378. https://doi.org/10.1155/2020/1857378
-
Lin J (2022) Vibration reduction performance of structures with viscous dampers under near‐field earthquakes. Advances in Civil Engineering, 2022, 1, 1315213. https://doi.org/10.1155/2022/1315213
-
Wei L, Nie H (2022) Seismic vulnerability analysis of prefabricated concrete frame with a cam‐type response amplifying device of viscous damper. Advances in Civil Engineering, 2022, 1, 3386719. https://doi.org/10.1155/2022/3386719
-
Q. Zhang, Z.-y. Wei, J.-x. Gong, P. Yu, and Y.-q. Zhang (2018) Equivalent viscous damping ratio model for flexure critical reinforced concrete columns. Advances in Civil Engineering, 2018, 1, 5897620. https://doi.org/10.1155/2018/5897620
-
Günaydın M, Tonyali Z (2018) Dynamic response of a reinforced concrete minaret. J. Struct. Eng. Appl. Mech, 1: 2, 62-72.
-
Kiral A, Tonyali Z, Ergün M (2025) A comprehensive analysis of the ground motions of the 2023 Kahramanmaraş, Türkiye earthquakes. Earthquake and Structures, 26, 203-219, https://doi.org/10.12989/eas.2025.28.3.203
-
Idham NC (2018) Earthquake failures on buildings and the role of architect on building safety. Dimensi: Journal of Architecture and Built Environment, 45: 2, 153-164. https://doi.org/10.9744/dimensi.45.2.153-164
-
Tonyali Z, Kiral A (2024) Evaluation of Earthquake-Related Damages on the Reinforced Concrete Buildings due to the February 6, 2023, Kahramanmaras-Turkiye Earthquakes. Recep Tayyip Erdogan University Journal of Science and Engineering, 5:1, 89-114. https://doi.org/10.53501/rteufemud.1471964
-
Ivanov ML, Chow WK (2023) Structural damage observed in reinforced concrete buildings in Adiyaman during the 2023 Turkiye Kahramanmaras Earthquakes. Structures, 58, 105578. https://doi.org/10.1016/j.istruc.2023.105578
-
Li N, Zhu B, Zhang L, Kishiki S (2024) Damage analysis of a pseudoclassic reinforced concrete frame structure under the action of the Ms 6.8 Luding earthquake in China. Structures, 60, 105887. https://doi.org/10.1016/j.istruc.2024.105887
-
Tonyali Z, Yurdakul M, Sesli H (2022) Dynamic response of concentrically braced steel frames to pulse period in near-fault ground motions," Turkish Journal of Science and Technology, 17: 2, 357-373. https://doi.org/10.55525/tjst.1113021
-
Chopra AK (1995) Theory and applications to earthquake engineering, Dyn Struct.
-
Aydogdu HH, Demir C, Kahraman T, Ilki A (2023) Evaluation of rapid seismic safety assessment methods on a substandard reinforced concrete building stock in Istanbul. Structures, 56, 104962. https://doi.org/10.1016/j.istruc.2023.104962
-
Stepinac M, Bedon C, Funari MF, Kišiček T, Hancilar U (2024) Assessment, Reconstruction and Decision Procedures for the Preservation of Existing Structures after Earthquakes," ed: MDPI-Multidisciplinary Digital Publishing Institute.
-
Impollonia N, Palmeri A (2018) Seismic performance of buildings retrofitted with nonlinear viscous dampers and adjacent reaction towers. Earthquake Engineering & Structural Dynamics, 47: 5, 1329-1351. https://doi.org/10.1002/eqe.3020
-
Palmeri A (2006) Correlation coefficients for structures with viscoelastic dampers. Engineering Structures, 28: 8, 1197-1208. https://doi.org/10.1016/j.engstruct.2005.12.015
-
Ates S, Kahya V, Yurdakul M, Adanur S (2013) Damages on reinforced concrete buildings due to consecutive earthquakes in Van. Soil Dynamics and Earthquake Engineering, 53, 109-118. https://doi.org/10.1016/j.soildyn.2013.06.006
-
Altunişik AC, Arslan ME, Kahya V, Aslan B, Sezdirmez T, Dok G, Kirtel O, Öztürk H, Sunca F, Baltaci A, "Field observations and damage evaluation in reinforced concrete buildings after the February 6th, 2023, Kahramanmaraş–Türkiye Earthquakes," Journal of Earthquake and Tsunami, 17: 06, 2350024. https://doi.org/10.1142/S1793431123500240
-
Wong KK (2008) Seismic energy dissipation of inelastic structures with tuned mass dampers. Journal of engineering mechanics, 134: 2, 163-172. https://doi.org/10.1061/(ASCE)0733-9399(2008)134:2(163
-
Kiral A, Gurbuz A (2024) Using supplemental linear viscous dampers for experimentally verified base-isolated building: Case study. Journal of Structural Engineering & Applied Mechanics (Online), 7: 1. https://doi.org/10.31462/jseam.2024.01034050
-
Sesli H, Tonyali Z, Yurdakul M (2022) An investigation on seismically isolated buildings in near-fault region. Journal of Innovative Engineering and Natural Science, 2: 2, 47-65. https://doi.org/10.29228/JIENS.63395
-
Kiral A, Garcia R, Petkovski M, Hajirasouliha I (2024) Seismic performance assessment of steel buildings equipped with a new semi-active displacement-dependent viscous damper. Journal of Earthquake and Tsunami. https://doi.org/10.1142/s1793431124500222
-
Shang Q, Wang T, Li J (2019) Seismic fragility of flexible pipeline connections in a base isolated medical building. Earthquake Engineering and Engineering Vibration, 18, 903-916. https://doi.org/10.1007/s11803-019-0542-5
-
Almajhali KYM (2023) Review on passive energy dissipation devices and techniques of installation for high rise building structures. Structures. 51, 1019-1029. https://doi.org/10.1016/j.istruc.2023.03.025
-
Ijmulwar SS, Patro SK (2024) Seismic design of reinforced concrete buildings equipped with viscous dampers using simplified performance-based approach. Structures, 61, 106020. https://doi.org/10.1016/j.istruc.2024.106020
-
A Moslehi Tabar , Domenico DD, Dindari H (2021) Seismic rehabilitation of steel arch bridges using nonlinear viscous dampers: Application to a case study. Practice Periodical on Structural Design and Construction, 26, 3, 04021012, https://doi.org/10.1061/(ASCE)SC.1943-5576.0000576
-
A Moslehi Tabar, Domenico DD (2020) Nonlinear response spectrum analysis of structures equipped with nonlinear power law viscous dampers. Engineering Structures, 219, 110857. https://doi.org/10.1016/j.engstruct.2020.110857
-
Kiral A, Gurbuz A, Ustabas I (2024) The seismic response evaluation of an existing multi-span reinforced concrete highway bridge in the presence of linear and nonlinear viscous dampers. Arabian Journal for Science and Engineering, 1-19. https://doi.org/10.1007/s13369-024-09265-2
-
Seo J, Hu LW (2016) Seismic response and performance evaluation of self-centering lrb isolators installed on the cbf building under NF ground motions. Sustainability. 8: 2, 109, 2016. https://www.mdpi.com/2071-1050/8/2/109
-
Kiral A, Tonyali Z. (2025) The effect of LRB stiffness changes with and without supplemental viscous dampers on seismic responses of an experimentally verified MDOF building. Sigma J. Eng. Nat. Sci., 43: 1, 301-315. doi: https://doi.org/10.14744/sigma.2024.00104
-
Kiral A, Tonyali Z. (2024) Seismic response control of buildings using viscous-based devices," in modern approaches to traffic safety and sound insulation: BIDGE Publications, ch. 4, pp. 70-111.
-
Haque MN, Zisan MB, Bhuiyan AR (2013) Seismic response analysis of base isolated building: Effect of lead rubber bearing characteristics. Malaysian Journal of Civil Engineering, 25: 2, 154-167. https://doi.org/10.11113/mjce.v25.15849
-
Jangid RS, Kelly JM (2001) Base isolation for near‐fault motions. Earthquake engineering & structural dynamics, 30: 5, 691-707. https://doi.org/10.1002/eqe.31
-
Providakis CP (2008) Effect of LRB isolators and supplemental viscous dampers on seismic isolated buildings under near-fault excitations. Engineering structures, 30: 5, 1187-1198. https://doi.org/10.1016/j.engstruct.2007.07.020
-
Clark PW (1996) Experimental studies of the ultimate behavior of seismically-isolated structures. PhD Thesis, University of California, Berkeley.
-
Kitayama S, Constantinou MC, (2022) Performance evaluation of seismically isolated buildings near active faults. Earthquake Engineering & Structural Dynamics, 51: 5, 1017-1037. https://doi.org/10.1002/eqe.3602
-
Whittaker AS, Sollogoub P, Kim MK (2018) Seismic isolation of nuclear power plants: Past, present and future. Nuclear Engineering and Design, 338, 290-299. https://doi.org/10.1016/j.nucengdes.2018.07.025
-
Sarebanha A, Mosqueda G, Kim MK, Kim JH (2018) Seismic response of base isolated nuclear power plants considering impact to moat walls," Nuclear Engineering and Design, 328, 58-72. https://doi.org/10.1016/j.nucengdes.2017.12.021
-
Chen P, Wang B, Zhang Z, Li T, Dai K (2023) A generalized model of lead rubber bearing considering large strain stiffening and degradation. Engineering Structures, 275, 115264. https://doi.org/10.1016/j.engstruct.2022.115264
-
Li Y, Ma Y, Zhao G, Liu R (2023) Study on the basic performance deterioration law and the application of lead rubber bearings under the alternation of aging and seawater erosion. Buildings 13: 2, 360. https://doi.org/10.3390/buildings13020360
-
Darwish AQ, Bhandari M (2022) Vibration response reduction of seismic forces using lead rubber bearing isolators in composite buildings. Journal of Vibration Engineering & Technologies, 10: 4, 1309-1324, https://doi.org/10.1007/s42417-022-00447-6
-
Hu LW, Response of seismically isolated steel frame buildings with sustainable lead-rubber bearing (LRB) isolator devices subjected to near-fault (NF) ground motions. Sustainability, 7: 1, 111-137. https://www.mdpi.com/2071-1050/7/1/111
-
E. Özer (2022) Geleneksel ve taban izolatörlü betonarme binaların sismik davranışlarının karşılaştırılması (In Turkish), Ms Thesis, Civil Engineering, Pamukkale University.
-
Shin TM, Lee BC (2023) Seismic response effect on base-isolated rigid structures by mass eccentricity in nuclear plants. Applied Sciences, 13: 24, 13330. https://doi.org/10.3390/app132413330
-
MATLAB-R, https://it.mathworks.com/help/matlab/. Accessed Feb 2024, 2018a.
-
Kohiyama M, Omura M, Takahashi M, Yoshida O, Nakatsuka K. (2019) Update of control parameters for semi‐actively controlled base‐isolated building to improve seismic performance. Japan Architectural Review, 2:3, 226-237. https://doi.org/10.1002/2475-8876.12090
-
Dan M, Kohiyama M (2013) System identification and control improvement of a semi-active-controlled base-isolated building using the records of the 2011 Great East Japan earthquake. in In 11th International Conference on Structural Safety and Reliability, ICOSSAR, 3841-3847.