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      Thermodynamics of Rate-independent Processes in Viscous Solids at Small Strains

      SIAM Journal on Mathematical Analysis
      Society for Industrial & Applied Mathematics (SIAM)

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          Autonomic healing of polymer composites.

          Structural polymers are susceptible to damage in the form of cracks, which form deep within the structure where detection is difficult and repair is almost impossible. Cracking leads to mechanical degradation of fibre-reinforced polymer composites; in microelectronic polymeric components it can also lead to electrical failure. Microcracking induced by thermal and mechanical fatigue is also a long-standing problem in polymer adhesives. Regardless of the application, once cracks have formed within polymeric materials, the integrity of the structure is significantly compromised. Experiments exploring the concept of self-repair have been previously reported, but the only successful crack-healing methods that have been reported so far require some form of manual intervention. Here we report a structural polymeric material with the ability to autonomically heal cracks. The material incorporates a microencapsulated healing agent that is released upon crack intrusion. Polymerization of the healing agent is then triggered by contact with an embedded catalyst, bonding the crack faces. Our fracture experiments yield as much as 75% recovery in toughness, and we expect that our approach will be applicable to other brittle materials systems (including ceramics and glasses).
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            Magnetostriction of martensite

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              Quasistatic Crack Growth in Nonlinear Elasticity

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                Author and article information

                Journal
                SIAM Journal on Mathematical Analysis
                SIAM J. Math. Anal.
                Society for Industrial & Applied Mathematics (SIAM)
                0036-1410
                1095-7154
                January 2010
                January 2010
                : 42
                : 1
                : 256-297
                Article
                10.1137/080729992
                b7fc1555-4bb0-4486-8926-e4534316f580
                © 2010
                History

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