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The double-kite arch developed in this paper is seen to have the highest failure load.
The failure load is maximized for a set of selected stacking sequences by determining the best ply angle for each stacking sequence giving the highest failure load.
The results indicated that the strengthened beam recorded the highest failure load and its mode of failure was ductile.
The results of the non-linear analyses lead to a different conclusion, with the joint design J3s, consisting in a central joint piece adhesively bonded to square-based members, showing the highest failure load.
Watanabe et al. (Watanabe et al. 2014) also performed a comparative study of the TomoFix and the Puddu plates by using cadaveric bones and reported the highest failure load for the TomoFix.
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Test results indicated that T-stiffeners performed well with higher failure load and stiffness as compared to other stiffeners.
This stress induces a favourable double state of stress in the bonding joint and a high failure load.
Noticeably, the fibre composite sandwich beams tested under asymmetrical beam shear exhibited higher failure load compared to beams tested under short beam shear.
The stacked suture had a significantly higher failure load than the parallel suture (P = 0.002).
When using double sutures, there was a significantly higher failure load than with single sutures with both the inside-out and all-inside techniques (P = 0.001; P = 0.022).
FiberWire was evaluated biomechanically for tension-band fixation of a transverse patellar fracture: Using a three-point-bend model, Wright et al. observed that a double-strand FiberWire presented a significantly higher failure load than stainless steel wire.
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