Gaussian closure technique for a simple tank model with non-zero mean random load and elasto-plasticity

Author:

Waubke Holger1ORCID,Kasess Christian H1

Affiliation:

1. Acoustics Research Institute, Austrian Academy of Sciences, Vienna, Austria

Abstract

Previously, it was shown how the behavior of chain-like structures including hysteretic elements as described by the Bouc model under white noise excitation can be calculated using Gaussian closure. The method results in analytic expressions for the temporal evolution of the statistical moments. Using the example of a liquid-filled tank, the Gaussian closure is generalized to the case of a filtered white noise with a slowly varying intensity as may occur during earthquakes. The complexity of the model is further enhanced for a case that lacks an elastic restoring force at the hysteretic node that couples the tank model with the surface. The new tank model comprises three mechanical degrees of freedom. The first degree of freedom is the movement of mass of the tank. The second degree of freedom is the movement of the swapping mass of the fluid in the tank. The third degree of freedom is the movement of the impulsive mass that is coupled more stiffly.

Publisher

SAGE Publications

Subject

Mechanical Engineering,Geophysics,Mechanics of Materials,Acoustics and Ultrasonics,Building and Construction,Civil and Structural Engineering

Reference37 articles.

1. Bouc R. Forced vibration of mechanical systems with hysteresis. Proceedings of the Fourth Conference on Non-linear Oscillation, Prague, September 5–9 1967, 1967. (abstract).

2. On the response and dissipated energy of Bouc–Wen hysteretic model

3. Identification of Bouc–Wen hysteretic systems by a hybrid evolutionary algorithm

4. Thermodynamic admissibility of Bouc–Wen type hysteresis models

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