American Journal of Mechanical Engineering
ISSN (Print): 2328-4102 ISSN (Online): 2328-4110 Website: https://www.sciepub.com/journal/ajme Editor-in-chief: Kambiz Ebrahimi, Dr. SRINIVASA VENKATESHAPPA CHIKKOL
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American Journal of Mechanical Engineering. 2015, 3(5), 155-160
DOI: 10.12691/ajme-3-5-3
Open AccessArticle

Prediction of Yielding Onset and Spread Pattern in Functionally Graded Thick-Walled Cylindrical Vessel Subjected to Thermo-Mechanical Loading

Mahsa Ghanbari1 and Fatemeh Farhatnia1,

1Mechanical Engineering department of Khomeinishahr Branch, Islamic Azad University, Isfahan, Iran

Pub. Date: October 31, 2015

Cite this paper:
Mahsa Ghanbari and Fatemeh Farhatnia. Prediction of Yielding Onset and Spread Pattern in Functionally Graded Thick-Walled Cylindrical Vessel Subjected to Thermo-Mechanical Loading. American Journal of Mechanical Engineering. 2015; 3(5):155-160. doi: 10.12691/ajme-3-5-3

Abstract

This research is concerned with the prediction of yield behavior of functionally graded (FG) thick-walled cylindrical pressure vessel under the combination of internal pressure and temperature gradient. In order to obtain the yield onset location and plastic growth zone, we applied Von-Mises yield criteria besides Prantle-Reuss flow rule in plane strain condition. This approach results in defining new formulation in order to determine the elastic limit pressure. In such cases as internal pressure with /without thermal gradient, the start and the spread of plastic zone are predicted. Moreover, the distributions of stress components are obtained along with the radial direction in elastic and plastic regions. The analysis results show that both FG power index and temperature gradient influence the commencement of plastic deformation. Using the appropriate choice of the FG parameters and the specified thermal gradient, the plastic zone can commence simultaneously from inside, outside or intermediate radius.

Keywords:
thermo-elastoplastic analysis pressure cylindrical vessel von-mises yield criterion functionally graded material

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