Title of article :
NEAR FIELD TRANSIENT AXISYMMETRIC WAVES IN LAYERED STRUCTURES: EFFECTS OF WEAK COUPLING
Author/Authors :
C. CETINKAYA، نويسنده , , J. BROWN، نويسنده , , A. A. F. MOHAMMED، نويسنده , , A. F. VAKAKIS، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 1997
Abstract :
Axisymmetric stress wave transmission through the leading layers of layered structures of inÞnite radial but
Þnite axial extent is numerically studied by employing two di¤erent computational approaches: a technique
based on the numerical inversion of Double Integral Transformations (DIT), and a Finite Element (FE)
analysis. Considering the Þrst approach, careful selections of the limits of the numerical inversions and the
sampling rates are required in order to overcome inherent numerical instabilities associated with exponential
dichotomy. This type of numerical instability is more evident in layered media with weak coupling. In
such systems, direct multiplications of layer transfer matrices are avoided by employing a global scheme to
assemble well-conditioned global transfer matrices. Moreover, the speciÞc structure of the propagation and
attenuation zones of the structure are taken into account for increasing the e¦ciency and e¤ectiveness of the
transfer matrix manipulations. Satisfactory agreement between the DIT and FE numerical results is
observed, at least for early times. Close to the region of application of the external pressure, the FE
simulations su¤er from the discretization of the applied load, node-to-node oscillations and reßections from
ÔinÞniteÕ elements (Ôsilent boundariesÕ). Using the aforementioned numerical techniques, transient wave
transmission in two-layered systems (one with weak and one with strong interlayer coupling) is considered,
and the e¤ects of weak coupling on the wave transmission is studied. We show that at early times, weak
coupling results in stress localization in the region close to the applied pressure, a result which can have
potential application in the use of layered media as shock isolators
Keywords :
stress wave propagation , propagation zone , attenuation zone , integral transform , layered media
Journal title :
International Journal for Numerical Methods in Engineering
Journal title :
International Journal for Numerical Methods in Engineering