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Title: | Elastic-plastic stress analysis of unidirectionally reinforced symmetric thermoplastic laminated beams loaded by bending moment |
Authors: | Çallıoğlu, Hasan Aksoy, Sami Uludağ Üniversitesi/Mühendislik Fakültesi/Makine Mühendisliği Bölümü. Ülkü, Sedat Korkmaz, Behiye 6701921191 6603043481 |
Keywords: | Materials science Elastic-plastic stress analysis Residual stresses Laminated beam Thermoplastic composites Analytical solution Residual-stresses Mechanical-properties Composite Deformation Fibers Bending moments Bonding Composite beams and girders Elasticity Elastoplasticity Hardening Laminated composites Plastic flow; Stress analysis Thermoplastics Plastic boundaries Transverse displacement Unidirectionally reinforced symmetric thermoplastic laminated beams Fiber reinforced plastics |
Issue Date: | Jan-2004 |
Publisher: | Sage Publi̇cati̇ons |
Citation: | Çallıoğlu, H. vd. (2004). “Elastic-plastic stress analysis of unidirectionally reinforced symmetric thermoplastic laminated beams loaded by bending moment”. Journal of Thermoplastic Composite Materials, 17(1), 77-97. |
Abstract: | Elastic-plastic stress analysis is carried out on steel fiber reinforced thermoplastic matrix laminated beams loaded by bending moment. The beam is composed of four orthotropic layers, perfectly bonded and symmetrically arranged with respect to the x-axis. The orientation angles are chosen as (90 degrees/0 degrees)(s), (30 degrees/-30 degrees)(s), (45 degrees/-45 degrees)(s) and (60 degrees/-60 degrees)(s). The composite material is assumed to be linearly hardening, sigma(x) residual stress component is found to be highest at the upper and lower surfaces. However, when the applied bending moment is increased, the plastic region is further expanded towards middle plane from the upper and lower surfaces of the beam and so a, residual stress component is found to be highest at the elastic and plastic boundaries. The plastic flow is obtained to be maximum at the upper and lower surfaces for (30 degrees/-30 degrees)(s) orientation. The transverse displacement is obtained to be highest at the free end for (90 degrees/0 degrees)(s) orientation. |
URI: | https://doi.org/10.1177/0892705704035408 https://journals.sagepub.com/doi/10.1177/0892705704035408 http://hdl.handle.net/11452/34984 |
ISSN: | 0892-7057 |
Appears in Collections: | Scopus Web of Science |
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