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The results show a decrease in the observed shielding toughness, leading to an overall reduction in the maximum toughness.
The maximum toughness of 2.14 MPa m1/2 was obtained for the optimized coating due to grain boundary strengthening.
The maximum toughness obtained was very high (impact strength more than twenty-fold that of the PBT PAr matrix).
Keeping the layer thickness ratio of about 10 and increasing the number of layers, the bending strength decreases slightly, and a maximum toughness was obtained at N≈30.
Experimental results highlight that the interface of small Mo particles (less than 5 μm) is easily fractured thus reducing the maximum toughness achieved.
Nano-rubber particles (100 nm) toughened significantly neat epoxy at all temperatures with a maximum toughness value at 20 °C and lower values on either side.
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For pure mode I loading crack growth continued far beyond the maximum fracture toughness shows that the predicted subsequent steady-state toughness is well below the maximum.
To achieve maximum composite toughness fracture mechanical properties have to be optimized by interface coating.
A maximum fracture toughness (KIC) of 3.6 MPa m1/2 and adhesion strength of 107 N were obtained with a 25 nm bilayer period.
Both networks exhibited a maximum in toughness in PBS in the composition corresponding to a Tg close to the testing temperature.
The optimum compaction condition also produces the maximum mechanical toughness, as determined by universal testing machine and maximum crystal sizes as implied by differential scanning calorimetry.
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