journal article Sep 01, 2024

Boundary coordination algorithm for real-time hybrid test of high-speed maglev train-guideway coupling vibration

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References
51
[1]
Zhang "Development progress of China’s 600 km/h high-speed magnetic levitation train" Front Eng Manag (2022) 10.1007/s42524-022-0199-z
[2]
Yau "Vibration control of maglev vehicles traveling over a flexible guideway" J Sound Vib (2009) 10.1016/j.jsv.2008.09.030
[3]
Response of a maglev vehicle moving on a series of guideways with differential settlement

J.D. Yau

Journal of Sound and Vibration 2009 10.1016/j.jsv.2009.02.031
[4]
An iterative interacting method for dynamic analysis of the maglev train–guideway/foundation–soil system

Y.B. Yang, J.D. Yau

Engineering Structures 2011 10.1016/j.engstruct.2010.12.024
[5]
Guo "Seismic safety assessment of trains running on high-speed railway bridges with chloride-induced corroding piers" Sci China Technol Sci (2023) 10.1007/s11431-022-2193-x
[6]
Guo "Running safety assessment of trains on bridges under earthquakes based on spectral intensity theory" Int J Struct Stab Dyn (2021) 10.1142/s0219455421400083
[7]
Min "Dynamic interaction analysis of maglev-guideway system based on a 3D full vehicle model" Int J Struct Stab Dyn (2017) 10.1142/s0219455417500067
[8]
Guo "Coupling vibration analysis of high-speed maglev train-viaduct systems with control loop failure" J Cent South Univ (2022) 10.1007/s11771-022-5119-1
[9]
Wang "Dynamic analysis of a coupled system of high-speed maglev train and curved viaduct" Int J Struct Stab Dyn (2018) 10.1142/s0219455418501432
[10]
Dynamic analysis of the interactions between a low-to-medium-speed maglev train and a bridge: Field test results of two typical bridges

Xiaozhen Li, Dangxiong Wang, Dejun Liu et al.

Proceedings of the Institution of Mechanical Engin... 2018 10.1177/0954409718758502
[11]
Xu "High-speed running maglev trains interacting with elastic transitional viaducts" Eng Struct (2019) 10.1016/j.engstruct.2019.01.012
[13]
Zeng "Dynamic responses of different types of guideway structures on shanghai low-speed maglev test line" CICTP 2014: Safe Smart Sustain Multimodal Transp Syst (2014) 10.1061/9780784413623.120
[14]
Wang "Optimization of horizontally curved track in the alignment design of a high-speed maglev line" Struct Infrastruct Eng (2020) 10.1080/15732479.2019.1680708
[15]
Ding "Structure and control design of levitation electromagnet for electromagnetic suspension medium-speed maglev train" J Vib Control: JVC (2019) 10.1177/1077546318813405
[16]
Li M., Luo S., Ma W., et al. Experimental and numerical investigations of the dynamic responses of low and medium speed maglev train-track-bridge coupled system.. Vehicle System Dynamics.
[17]
Suzuki "A study of maglev vehicle dynamics using a reduced-scale vehicle model experiment apparatus" J Mech Syst Transp Logist (2010) 10.1299/jmtl.3.196
[18]
Nakashima "Integration techniques for substructure pseudo dynamic test" 4th U S Natl Conf Earthq Eng (1990)
[19]
Wang "Real-time hybrid simulation of multi-story structures installed with tuned liquid damper" Struct Control Health Monit (2016) 10.1002/stc.1822
[20]
Dion "Real-time dynamic substructuring testing of a bridge equipped with friction-based seismic isolators" J Bridge Eng (2012) 10.1061/(asce)be.1943-5592.0000199
[21]
Jiang "Real-time hybrid simulation of a complex bridge model with MR dampers using the convolution integral method" Smart Mater Struct (2013) 10.1088/0964-1726/22/10/105008
[22]
Anthiny "Large-scale real-time hybrid simulation for evaluation of advanced damping system performance" J Struct Eng (2014)
[23]
Guo "Rotational friction damper’s performance for controlling seismic response of high speed railway bridge-track system" Comput Model Eng Sci (2019)
[24]
Abbiati "Hybrid simulation of a multi-span RC viaduct with plain bars and sliding bearings" Earthq Eng Struct Dyn (2015) 10.1002/eqe.2580
[25]
Guo "Real-time hybrid test of high-speed train-track-bridge interactions using the moving load convolution integral method" Eng Struct (2020)
[26]
Najafi "Validation of model-based real-time hybrid simulation for a lightly damped and highly nonlinear structural system" J Appl Comput Mech (2020)
[27]
Guo "Moving safety evaluation of high-speed train on post-earthquake bridge utilizing real-time hybrid test" J Earthq Eng (2022)
[28]
Gu "A novel moving load integration method for real-time hybrid shaking table test of high-speed maglev vehicle–bridge interaction system" Int J Struct Stab Dyn (2022) 10.1142/s0219455422410139
[29]
Tian "Shaking-table substructure test using a MDOF boundary-coordinating device" Earthq Eng Struct Dyn (2022) 10.1002/eqe.3741
[30]
Horiuchi "Real-time hybrid experimental system with actuator delay compensation and its application to a piping system with energy absorber" Earthq Eng Struct Dyn (1999) 10.1002/(sici)1096-9845(199910)28:10<1121::aid-eqe858>3.0.co;2-o
[31]
Horiuchi T., Inoue M., Konno T. Development of a real-time hybrid experimental system using a shaking table[C]//, 2000, New Zealand.
[32]
Chang "A family of noniterative integration methods with desired numerical dissipation" Int J Numer Methods Eng (2014) 10.1002/nme.4720
[33]
Lu "Improvement of real-time hybrid simulation using parallel finite- element program" J Earthq Eng (2020) 10.1080/13632469.2018.1469442
[34]
Zhou "Recursive predictive optimal control algorithm for real-time hybrid simulation of vehicle–bridge coupling system" Int J Struct Stab Dyn (2022) 10.1142/s0219455422410115
[35]
Najafi "Hybrid simulation with multiple actuators: a state-of-the-art review" Eng Struct (2023) 10.1016/j.engstruct.2022.115284
[36]
Najafi M.A. Multi-axial real-time hybrid simulation framework for testing nonlinear structure systems with multiple boundary interfaces, 2021.
[37]
Abbiati "A global sensitivity analysis framework for hybrid simulation" Mech Syst Signal Process (2021) 10.1016/j.ymssp.2020.106997
[38]
Najafi "Multiaxial real-time hybrid simulation for substructuring with multiple boundary points" J Struct Eng (2021) 10.1061/(asce)st.1943-541x.0003138
[39]
Fermandois "Model-based framework for multi-axial real-time hybrid simulation testing" Earthq Eng Eng Vib (2017) 10.1007/s11803-017-0407-8
[40]
Shao "Adaptive compound control for the real‐time hybrid simulation of high‐speed railway train–bridge coupling vibration" Struct Control Health Monit (2021) 10.1002/stc.2816
[41]
Adaptive time series compensator for delay compensation of servo‐hydraulic actuator systems for real‐time hybrid simulation

Yunbyeong Chae, Karim Kazemibidokhti, James M. Ricles

Earthquake Engineering &amp; Structural Dynamics 2013 10.1002/eqe.2294
[42]
Zhu "Simulation of large-scale numerical substructure in real-time dynamic hybrid testing" Earthq Eng Eng Vib (2014) 10.1007/s11803-014-0266-5
[43]
Ding "Development of new electromagnetic suspension–based high‐speed Maglev vehicles in China: historical and recent progress in the field of dynamical simulation" Int J Mech Syst Dyn (2023) 10.1002/msd2.12069
[44]
Ahmadizadeh "Compensation of actuator delay and dynamics for real-time hybrid structural simulation" Earthq Eng Struct Dyn (2008) 10.1002/eqe.743
[45]
Zeng "Performance study of model predictive control with reference prediction for real-time hybrid simulation" J Vib Control (2023)
[46]
Yang (2004)
[47]
(1996)
[48]
Yang "Mathematical programming for piecewise linear regression analysis" Expert Syst Appl (2016) 10.1016/j.eswa.2015.08.034
[49]
Shi "Robust continuous piecewise linear regression model with multiple change points" J Supercomput (2020) 10.1007/s11227-018-2597-x
[50]
McZgee "Piecewise regression" J Am Stat Assoc (1970) 10.1080/01621459.1970.10481147

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Published
Sep 01, 2024
Vol/Issue
314
Pages
118355
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Yang Wang, Wei Guo, Xin Liang, et al. (2024). Boundary coordination algorithm for real-time hybrid test of high-speed maglev train-guideway coupling vibration. Engineering Structures, 314, 118355. https://doi.org/10.1016/j.engstruct.2024.118355