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Polymeric biocomposites designed as an alternative approach to synthetic bone-graft materials for use to treat orthopedic conditions combine the bulk properties of at least one polymer and particulated solid filler, with theorized tougher mechanical properties, improved biological behavior, and modified degradation mechanisms.
In addition, the mechanical properties improved with increasing the density.
In addition, the mechanical properties improved with an increasing number of layers.
Also the mechanical properties improved at a higher rate than those predicted by the rule of mixtures.
Because the pressure applied by the plunger transfers easily to the material during injection when the cross-section area of the cavity is large, the mechanical properties improved.
Among a variety of candidate materials, polymer-nanoparticle composites appear most promising for bone tissue engineering applications because of superior mechanical properties, improved durability, and surface bioactivity when compared with conventional polymers or composites.
Similar(50)
Results indicate that mechanical properties improve thanks to the progressive buildup of a pervasive network of tabular crystals filling the entire volume.
Strength, stiffness, resistance to creep and other mechanical properties improve continuously during repair, but little is known about what drives this process.
The mechanical property improved with increasing deposition time.
Particulate reinforced Al-MMCs exhibits better mechanical properties and improved wear resistance over other conventional alloys.
Compared with the recast Nafion® 212, the composite membrane shows better mechanical properties and improved dimensional stability.
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