Published 1993 | Version v1
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Predicting the response of high damping rubber bearings using simplified models and finite element analysis

  • 1. Tun Abdul Razak Research Centre, MRPRA, Brickendonbury (United Kingdom)

Description

The International Atomic Energy Agency has initiated a co-ordinated research programme on implementation of base-isolation for nuclear structures. This paper discusses two areas relevant to modelling elastomeric base-isolators. These are the use of simplified models to predict the response of isolated structures to earthquake inputs and finite element analysis for calculating the stress distributions within the isolators. In the former, a curvilinear hysteretic model of the high damping natural rubber able to accommodate the stiffening of the rubber at large shear deflections is presented. Its predictions of structural accelerations and bearing displacement produced by design earthquakes and those above the design level are compared with those using a linear spring and dashpot model. A comparison has been made between two finite element analyses using MARC and ABAQUS of the force-deformation behaviour of a single disc of rubber bonded on both sides. The disc was loaded both in compression and shear. Two forms of strain energy functions were used namely Mooney-RivIin and Ogden. The agreement between MARC and ABAQUS for the Mooney-Rivlin model for the material was very good. This was not however the case for the Ogden model and a difference of 25% in the maximum vertical deflection of the disc under 200kN load was observed. The need for a 'benchmark' problem is identified. This could be used to establish the accuracy of the finite element solvers. A problem based on the work of Rivlin on the force-deformation behaviour of cylinder of rubber under torsion is nominated. An appraisal of strain energy functions based on Mooney-RivIin formulations is carried out. It is shown that even for a five term series the strain energy function is incapable of catering for the rapid change of modulus at small strains both for simple and pure shear modes of deformation. This function models tension/compression data much better. The work identifies the need for evaluating other forms of strain energy functions. (author)

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Part of:
Intercomparison of analysis methods for seismically isolated nuclear structures. Part 1: Advanced test data and numerical methods. Working material

Additional details

Publishing Information

Imprint Title
Intercomparison of analysis methods for seismically isolated nuclear structures. Part 1: Advanced test data and numerical methods. Working material
Imprint Pagination
210 p.
Journal Page Range
p. 135-157
Report number
IWGFR--94

Conference

Title
Advanced test data and numerical methods
Acronym
1. research coordination meeting on intercomparison of analysis methods for seismically isolated nuclear structures. Part 1
Dates
27-31 May 1996
Place
St. Petersburg (Russian Federation)

INIS

Country of Publication
International Atomic Energy Agency (IAEA)
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
33022465
Subject category
S22: GENERAL STUDIES OF NUCLEAR REACTORS;
Resource subtype / Literary indicator
Conference
Descriptors DEI
A CODES; ACCURACY; BENCHMARKS; COMPARATIVE EVALUATIONS; COORDINATED RESEARCH PROGRAMS; EARTHQUAKES; FINITE ELEMENT METHOD; FUNCTIONAL MODELS; IAEA; M CODES; MECHANICAL TESTS; RUBBERS; SEISMIC ISOLATION
Descriptors DEC
CALCULATION METHODS; COMPUTER CODES; ELASTOMERS; EVALUATION; INTERNATIONAL ORGANIZATIONS; MATERIALS TESTING; NUMERICAL SOLUTION; ORGANIC COMPOUNDS; ORGANIC POLYMERS; POLYMERS; RESEARCH PROGRAMS; SEISMIC EVENTS; TESTING

Optional Information

Notes
9 refs, 16 figs, 2 tabs
Secondary number(s)
IAEA-RC--624