• bem analysis of crack onset and propagation along fiber–matrix interface under transverse tension using a linear elastic–brittle interface model

    جزئیات بیشتر مقاله
    • تاریخ ارائه: 1390/01/01
    • تاریخ انتشار در تی پی بین: 1390/01/01
    • تعداد بازدید: 663
    • تعداد پرسش و پاسخ ها: 0
    • شماره تماس دبیرخانه رویداد: -
     the behavior of the fiber–matrix interface under transverse tension is studied by means of a new linear elastic–brittle interface model. similar models, also called weak or imperfect interface models, are frequently applied to describe the behavior of adhesively bonded joints. the interface is modeled by a continuous distribution of linear-elastic springs which simulates the presence of a thin adhesive layer (interphase). in the present work a new linear elastic–brittle constitutive law for the continuous distribution of springs is introduced. in this law the normal and tangential stresses across the undamaged interface are, respectively, proportional to the relative normal and tangential displacements. this model not only allows for the study of crack growth but also for the study of crack onset. an important feature of this law is that it takes into account the variation of the fracture toughness with the fracture mode mixity of a crack growing along the interface between bonded solids, in agreement with previous experimental results. the present linear elastic–brittle interface model is implemented in a 2d boundary element method (bem) code to carry out micromechanical analysis of the fiber–matrix interface failure in fiber-reinforced composite materials. it is considered that the behavior of the fiber–matrix interphase can be modeled by the present model although, strictly speaking, there is usually no intermediate material between fiber and matrix. a linear-elastic isotropic behavior of both fiber and matrix is assumed, the fiber being stiffer than the matrix. the failure mechanism of an isolated fiber under transverse tension, i.e., the onset and growth of the fiber–matrix interface crack, is studied. the present model shows that failure along the interface initiates with an abrupt onset of a partial debonding between the fiber and the matrix, caused by presence of the maximum radial stress at the interface, and this debonding further develops as a crack growing along the interface.

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