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Fracture plugging effect largely depends on the strength of fracture plugging zone, because in most cases plugging failure is caused by the strength failure of plugging zone.
These cellular level effects also translate into a significant reduction in in-vivo strength of fracture healing.
Our study reflects the biomechanical strength of fracture constructs immediately after fixation and cyclical loading simulates early, full weight bearing in a patient of this size.
Whatever the cause for the increase in strength, the observed effect of a bisphosphonate on the mechanical properties of the uninjured limb needs to be considered when reporting proportional strength of fracture repair compared with the unfractured limb, as it is often used in fracture healing studies.
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Clay minerals are known to reduce the mechanical/frictional strength of fractures, i.e. the pressure required to cause shear during hydraulic stimulation.
Flexural strength, work-of-fracture (toughness), and elastic modulus were measured vs. fiber volume fraction from 0% (CPC Control without fibers) to 60%.
Moreover, in a rat fracture model, local application of ZOL delivered from an intramedullary implant showed a significant increase in biomechanical strength of the fracture side [ 17].
Recent approaches on the design for strength of structures, fracture mechanics offer several criteria for evaluating the strength of structures including flaws [7] or adhesively bonded joints [8-14].
Results from the final multiple logistic regression model show the relative strength of wrist fracture compared with other risk factors (table 3).
LIPUS has been shown to promote healing and increase the mechanical strength of the fracture callus in clinical studies and animal models without any adverse effects (Duarte 1983; Xavier & Duarte 1983).
We utilize a modified form of damage mechanics that represents a reduction in frictional strength of preexisting fractures and faults.
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