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Paperback Compression-Loaded Composite Panels With Elastic Edge Restraints and Initial Prestress Book

ISBN: B08F6JZ62S

ISBN13: 9798672319827

Compression-Loaded Composite Panels With Elastic Edge Restraints and Initial Prestress

A parametric study of the effects of test-fixture-induced initial prestress and elastic edge restraints on the prebuckling and buckling responses of a compression-loaded, quasi-isotropic curved panel is presented. The numerical results were obtained by using a geometrically nonlinear finite element analysis code with high-fidelity models. The results presented show that a wide range of prebuckling and buckling behavior can be obtained by varying parameters that represent circumferential loaded-edge restraint and rotational unloaded-edge restraint provided by a test fixture and that represent the mismatch in specimen and test-fixture radii of curvature. For a certain range of parameters, the panels exhibit substantial nonlinear prebuckling deformations that yield buckling loads nearly twice the corresponding buckling load predicted by a traditional linear bifurcation buckling analysis for shallow curved panels. In contrast, the results show another range of parameters exist for which the nonlinear prebuckling deformations either do not exist or are relatively benign, and the panels exhibit buckling loads that are nearly equal to the corresponding linear bifurcation buckling load. Overall, the results should be of particular interest to scientists, engineers, and designers involved in simulating flight-hardware boundary conditions in structural verification and certification tests, involved in validating structural analysis tools, and interested in tailoring buckling performance. Hilburger, Mark W. and Nemeth, Michael P. and Riddick, Jaret C. and Thornburgh, Robert P. Langley Research Center NASA/TP-2005-213906, ARL-TR-3572, L-19162 23-376-10-30-02 COMPOSITE STRUCTURES; PRESTRESSING; COMPRESSION LOADS; PARAMETERIZATION; CURVED PANELS; CONSTRAINTS; ELASTIC PROPERTIES; AEROSPACE VEHICLES; FINITE ELEMENT METHOD; LOADS (FORCES); NONLINEARITY; SIMULATION; ISOTROPY; BOUNDARY CONDITIONS; STRUCTURAL ANALYSIS

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