Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/48140
Title: Analysis and optimization of a hybrid testing methodology using a small-scale set-up
Authors: VAN VUGT, Glenn 
GOUVEIA HENRIQUES, Jose 
VANDOREN, Bram 
DEGEE, Herve 
Issue Date: 2024
Source: Proceedings of 18th World Conference on Earthquake Engineering,
Abstract: Hybrid testing provides an efficient and less costly way to explore the response of structural systems to realistic dynamic or seismic loading. However, the required equipment to execute hybrid tests are high-cost tools. To get insight in the hybrid testing methodology, a small-scale setup has been developed in this project. An Arduino UNO controls the system that imposes the displacement to a linear actuator. Connecting the small-scale setup , i.e., the Arduino UNO, to a PC allows imposing a time history to the physical substructure. A load cell measures the restoring force which will be communicated to the PC by the Arduino UNO using the serial monitor. Numerical integration based on the Gravouil-Combescure scheme with Classic Lagrange Multipliers (CLM) determines the displacement for the next time step. A correction on the measured restoring forces is applied to mitigate experimental errors. This paper describes hot spots of the methodology and the results of a demonstrative experimental test using a MATLAB and Python implementation. The experiment consists of a 4 degree of freedom (DOF) numerical model combined with a 1 DOF physical specimen. The installed linear actuator only has one gearing option, which leads to a possible overshooting loop. Interesting conclusions can be drawn from the analysis of the small-scale setup in view of its future upscaling and implementation of the hybrid test method at laboratory scale. Firstly, the linear actuator requires a non-negligible amount of time to reach the imposed displacement which imposes boundary conditions in the directives. Secondly, a velocity-controlled actuator is essential in the exploitation of hybrid testing. Thirdly, the displacement tolerance influences the stability of the system. If one increases the displacement tolerance, the risk of an overshooting loop decreases. However, the accuracy might be influenced. Good balance must therefore be found between stability and accuracy.
Document URI: http://hdl.handle.net/1942/48140
Category: C2
Type: Proceedings Paper
Appears in Collections:Research publications

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