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The principal strains of sheet metals and their limitations while forming can be obtained by using a strain measurement system.
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Results of simple simulations are validated against experimental evidence from studies using an optical strain measurement system.
In order to characterize precisely the strains during a triaxial path, we use a local strain measurement device composed of 7 LVDTs.
This means that using the ideal particle to calibrate a strain measurement would lead to wrong conclusions about the measurement errors.
Their characteristics are studied by using the strain measurement of one small-size uniform strength beam.
Axial and circumferential strains were measured using a displacement measurement system (compressometer extensometer) that was specifically devised for this test.
It is observed that using strain measurement along the blade it is possible to locate the matrix cracks as well as to predict density of matrix cracks.
Thus, even if the technique of Parra measures the strain as Lagrangian strain while in our protocol the measure was made using the natural strain, the mechanism used for strain measurement remains the same.
For this purpose, digital image correlation has been used as strain measurement technique to record the delamination shapes in situ testing.
Moreover, a novel approach is introduced for the detection of debonding using volume strain measurements, which takes into account the dilatational and deviatoric behavior of the neat matrix polymer and the composite.
The behaviour of bonded patches under loading was monitored using DIC full-field strain measurements.
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