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These laminates were successfully designed to have maximum apparent fracture toughnesses of 10.5 and 18.0 MPa m1/2.
Investigation of the effects of the relative thickness of the layers and of the number of layers revealed that the maximum crack shielding and the maximum apparent fracture toughness were achieved in three-layer composites with the thickness of the compression layer constituting one-half of the specimen height with an edge crack extending to the first interface.
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The measured apparent fracture toughness of laminates showed a significant increase over the monolith SiC ceramics.
The maximum apparent density is observed at water solid ratio of 0.16.
This paper analyses the capacity of the Line Method to provide evaluations of the apparent fracture toughness, which is the fracture resistance exhibited by materials in notched conditions.
The apparent fracture toughness of laminates was measured and based on the estimated fracture toughness values, a threshold stress was calculated.
The switched domains induce incompatible strain near the flaw and consequently change the apparent fracture toughness.
Moreover, the apparent fracture toughness has been reasonably predicted through the Theory of Critical Distances.
Effect of various design parameters on the crack bridging length and apparent fracture toughness are investigated using this model.
This unique layered architecture could benefit significant improvements in the work of fracture and the apparent fracture toughness of the composite.
The apparent fracture toughness of the FeB/Fe2B interface varied between 3.56 and 4.45 MPa √m.
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