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The propagation behavior will be analyzed in Section 4.
Moreover, the propagation behavior of hydraulic fracture in multilayered formations has also been studied.
First, IP layer performance is the direct reflection of the radio propagation behavior.
The differences are more pronounced in the crack propagation behavior after the initiation point.
Our finding reveals two types of wave propagation behavior depending on the vapor mass fraction.
The crack propagation behavior of the induction hardened axle is studied based on the fracture mechanics.
This suggests the possibility of manipulating the wave propagation behavior through proper design of materials.
The results show crack propagation behavior is highly dependent on the variations of the failure parameters.
This progressive propagation behavior caused strain heterogeneity, which increased after each reactivation event.
For testing the accuracy of our numerical method, propagation behavior of a single hydraulic fracture is simulated.
The isotropic propagation behavior of other two (qP, qT) waves is not affected by the presence this stress-induced anisotropy. .
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