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1. Phan, Catherine Ninh. The extended high-order sandwich panel theory.

Degree: PhD, Aerospace Engineering, 2012, Georgia Tech

A new high order theory, referred to as the Extended High-Order Sandwich Panel Theory (EHSAPT), was formulated for orthotropic sandwich beams/wide panels with a general layout. This new theory accounts for the axial, transverse normal, and shear rigidity of the core. Validation of the present theory was performed for several structural analysis problems including: static loading, static instability (global buckling and wrinkling), free vibrations (natural frequencies), and dynamic loading (blast and impact). The accuracy of the theory was assessed by comparison with elasticity solutions and with experiment. It is shown that this new theory has superior accuracy over other available computational models, especially for sandwich beams/wide panel configurations with stiffer cores. Advisors/Committee Members: Kardomateas, George A. (Committee Chair), Frostig, Yeoshua (Committee Co-Chair), Birman, Victor (Committee Member), Hodges, Dewey H. (Committee Member), Massimo, Ruzzene (Committee Member).

Subjects/Keywords: Sandwich composites; High-order theory; Sandwich construction; Sandwich construction Vibration

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APA (6th Edition):

Phan, C. N. (2012). The extended high-order sandwich panel theory. (Doctoral Dissertation). Georgia Tech. Retrieved from http://hdl.handle.net/1853/43578

Chicago Manual of Style (16th Edition):

Phan, Catherine Ninh. “The extended high-order sandwich panel theory.” 2012. Doctoral Dissertation, Georgia Tech. Accessed December 08, 2019. http://hdl.handle.net/1853/43578.

MLA Handbook (7th Edition):

Phan, Catherine Ninh. “The extended high-order sandwich panel theory.” 2012. Web. 08 Dec 2019.

Vancouver:

Phan CN. The extended high-order sandwich panel theory. [Internet] [Doctoral dissertation]. Georgia Tech; 2012. [cited 2019 Dec 08]. Available from: http://hdl.handle.net/1853/43578.

Council of Science Editors:

Phan CN. The extended high-order sandwich panel theory. [Doctoral Dissertation]. Georgia Tech; 2012. Available from: http://hdl.handle.net/1853/43578

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