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  • Surface crack propagation in a thin soft protective layer on a massive stiffer substrate is analyzed using generalized linear elastic fracture mechanics. The growth of the initial crack is considered in both forward and sideways directions and the influence of the interface between the protective layer and massive substrate on the final crack configuration is investigated. It is shown that, depending on the elastic mismatch, the part of the crack front can be arrested at the interface protective layer/substrate and the rest of the crack grows continuously sideways only. The effective value of the stress intensity factor is used in order to predict the conditions under which the crack will propagate through the interface into the second material. Corresponding calculations have been made by finite element method.
  • Surface crack propagation in a thin soft protective layer on a massive stiffer substrate is analyzed using generalized linear elastic fracture mechanics. The growth of the initial crack is considered in both forward and sideways directions and the influence of the interface between the protective layer and massive substrate on the final crack configuration is investigated. It is shown that, depending on the elastic mismatch, the part of the crack front can be arrested at the interface protective layer/substrate and the rest of the crack grows continuously sideways only. The effective value of the stress intensity factor is used in order to predict the conditions under which the crack will propagate through the interface into the second material. Corresponding calculations have been made by finite element method. (en)
Title
  • On a critical geometry of a crack arrested at a bimaterial interface
  • On a critical geometry of a crack arrested at a bimaterial interface (en)
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  • On a critical geometry of a crack arrested at a bimaterial interface
  • On a critical geometry of a crack arrested at a bimaterial interface (en)
skos:notation
  • RIV/68081723:_____/12:00385401!RIV13-GA0-68081723
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  • I, P(GAP108/12/1560), P(GD106/09/H035)
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  • 156157
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  • RIV/68081723:_____/12:00385401
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  • fracture mechanics of an interface; generalized stress intensity factor; crack (en)
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  • [29BE4FA40FB2]
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  • Plzeň
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  • Plzeň
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  • 14th International conference Applied Mechanics 2012 - Conference proceedings
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  • Hutař, Pavel
  • Náhlík, Luboš
  • Zouhar, Michal
  • Ševčík, Martin
  • Máša, Bohuslav
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number of pages
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  • Západočeská univerzita v Plzni
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  • 978-80-261-0097-3
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