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.Grain Size

Drainage

Porosity (%)

Hydraulic Conductivity (cm/hr)

Total Solids (%)

Turbidity (NTU)

Orthopedic Glazes

There are two distinct reasons why orthopedic glazes are required; to help heal and prevent or to reduce infection. First, orthopedic glazes help stabilize the fracture itself and the repair of the damaged bone by making the substrate as smooth as possible for mechanical interlock. Secondly, glazes with pore content and structure can resist biofilm colonization and any associated infection.

Biofilm resistance

Biofilms present an additional level of protection and resistance to cleansing. Biofilms are the underlying cause of B. anthracis, C. albicans, C. tropicalis, S. mutans and S. aureus infections. They can start as tiny micro-colonies on a substrate that no longer attracts the host’s immune response. These and other biofilm-forming organisms are able to resist cleaning and disinfection.

Microstructure

The only way for a porous glaze to offer a true biofilm resistance is for the pore structure of the glaze to be able to maintain a higher number of tiny interconnections between glaze particles to allow for liquid exchange and to disperse contaminants. This is why the large particle size of traditional glazes is not an advantage but a disadvantage as pore size is lost.

Sintered Glaze

Glazes are a combination of solid and molten materials that are applied to porcelain to give the porcelain its strength, resistance to chipping, and optical properties. The large particle size of these materials means the pore structure is lost and this typically makes them harder to clean, as well as harder for biofilms to colonize. Any transition from a traditional to a sintered glaze is the only way to have the required pore structure that can promote biofilm resistance.

Production

Melt/Sintering

A critical
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