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Mechanical properties,water absorption and adhesive properties of diepoxy aliphatic diluent-modified DGEBA/Cycloaliphatic amine networks on 316 L stainless steel
Affiliation:1. Institute of Physics and Chemistry, Federal University of Itajubá, Ave BPS 1303, Itajubá, 37500-903 MG, Brazil;2. Faculty of Engineering Guaratinguetá, Universidade Estadual Paulista, Ave. Dr. Ariberto Pereira da Cunha 333, Guaratinguetá, 12516-410 São Paulo, SP, Brazil;3. Paulista State University, Institute of Chemistry, Rua Francisco Degni, 55, Quitandinha, 14801-907 Araraquara, SP, Brazil;1. Institute of Macromolecular Chemistry, Academy of Sciences of the Czech Republic, Heyrovský Sq. 2, 162 06 Prague, Czech Republic;2. Dow Europe GmbH, Bachtobelstrasse 3, 8810 Horgen, Switzerland;3. Hybrid Plastics Inc., 55 W.L. Runnels Industrial Drive, Hattiesburg, MS 39401, USA;1. Department of Chemical Engineering, National Tsing Hua University, Hsinchu 30013, Taiwan;2. National Chung-Shan Institute of Science and Technology (NCSIST), Taoyuan 32557, Taiwan
Abstract:In this study, the mechanical behaviors, adhesive properties and water absorption of networks based on diglycidyl ether of bisphenol A (DGEBA) modified with diepoxy aliphatic diluent (1,4-butanediol diglycidyl ether, DGEBD) cured with cycloaliphatic amine were studied. The mechanical behaviors and adhesive properties were evaluated by compression testing and single lap-shear using 316 L stainless steel as the adherend, respectively. Water absorption was evaluated by water immersion at 37±0.2 °C. The fracture mechanisms of the networks were determined by optical microscopy. Decreases in the glass transition temperature (Tg) and the yield stress (σ) were noted with increased additive concentrations. The best mechanical performance, accompanied by slight increased adhesive strength, was obtained with 30 phr of additive. The DGEBA/4MPip network modified with 30 phr of diluent shows the best compressive behavior, adhesive strength, and lower water absorption. This behavior may relate to the lower crosslinking density resulting from the reaction mechanism, of stepwise and addition polymerization. Greater participation of cohesive fracture mechanisms was observed in the epoxy networks modified with 30 phr of additive.
Keywords:Epoxy adhesives  Lap shear  Cohesive fracture
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