TY - GEN
T1 - Compensation technique for simulation of floor response spectra
AU - Reinhorn, A. M.
AU - Ryu, K. P.
AU - Maddaloni, G.
AU - Cimellaro, G. P.
N1 - Publisher Copyright:
© 2011 EUCENTRE. All rights reserved.
PY - 2011/11/22
Y1 - 2011/11/22
N2 - Among experimental techniques used to test the response of structures and to verify their seismic performance, the shake table testing allows to reproduce the conditions of true effects of earthquake ground motions in order to challenge complex model structures and systems. However, producing the dynamic signals is usually an imperfect task, due to the dynamics of the shake table and of the specimen, even though closed-loop control in a shake table system is used to reduce these errors and obtain the best fidelity reproduction. Furthermore, because of the dynamic amplifications in the specimen, the signal recorded at desired locations could be completely different from the expected effect of shake table motion. This paper focuses on the development of practical shake table simulations using additional „open loop‟ feedforward compensation in form of inverse transfer functions (i.e. the ratio of the output structural response to an input base motion in the frequency domain) in order to obtain an acceptable reproduction of desired acceleration histories at specific locations in the specimen. As the first step, a global feedforward procedure is reformulated for the compensation of the table motion distortions due to the servo-hydraulic system. Subsequently, the same concept is extended to the table-structure system to adjust the shake table input in order to achieve a desired response spectrum at any floor of the specimen. Implementations show how such a method can be used in any experimental facility.
AB - Among experimental techniques used to test the response of structures and to verify their seismic performance, the shake table testing allows to reproduce the conditions of true effects of earthquake ground motions in order to challenge complex model structures and systems. However, producing the dynamic signals is usually an imperfect task, due to the dynamics of the shake table and of the specimen, even though closed-loop control in a shake table system is used to reduce these errors and obtain the best fidelity reproduction. Furthermore, because of the dynamic amplifications in the specimen, the signal recorded at desired locations could be completely different from the expected effect of shake table motion. This paper focuses on the development of practical shake table simulations using additional „open loop‟ feedforward compensation in form of inverse transfer functions (i.e. the ratio of the output structural response to an input base motion in the frequency domain) in order to obtain an acceptable reproduction of desired acceleration histories at specific locations in the specimen. As the first step, a global feedforward procedure is reformulated for the compensation of the table motion distortions due to the servo-hydraulic system. Subsequently, the same concept is extended to the table-structure system to adjust the shake table input in order to achieve a desired response spectrum at any floor of the specimen. Implementations show how such a method can be used in any experimental facility.
KW - Desired and achieved motion
KW - Drive motion
KW - Open loop compensation
KW - Shake table simulation
KW - Transfer function
UR - https://www.scopus.com/pages/publications/85071148070
M3 - Conference contribution
AN - SCOPUS:85071148070
T3 - International Conference on Advances in Experimental Structural Engineering
BT - Proceedings of the 2nd EFAST Workshop and 4AESE International Conference
PB - EUCENTRE
T2 - 2nd EFAST Workshop and 4th International Conference on Advances in Experimental Structural Engineering, AESE 2011
Y2 - 29 June 2011 through 30 June 2011
ER -