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  2. List of orthopedic implants - Wikipedia

    en.wikipedia.org/wiki/List_of_orthopedic_implants

    Orthopedic implant example seen with X-ray. An orthopedic implant is a medical device manufactured to replace a missing joint or bone, or to support a damaged bone. [1] The medical implant is mainly fabricated using stainless steel and titanium alloys for strength and the plastic coating that is done on it acts as an artificial cartilage. [2]

  3. Hip replacement - Wikipedia

    en.wikipedia.org/wiki/Hip_replacement

    D019644. MedlinePlus. 002975. [edit on Wikidata] Hip replacement is a surgical procedure in which the hip joint is replaced by a prosthetic implant, that is, a hip prosthesis. [1] Hip replacement surgery can be performed as a total replacement or a hemi/semi (half) replacement.

  4. Joint replacement - Wikipedia

    en.wikipedia.org/wiki/Joint_replacement

    Some ceramic materials commonly used in joint replacement are alumina (Al 2 O 3), zirconia (ZrO 2), silica (SiO 2), hydroxyapatite (Ca 10 (PO 4) 6 (OH) 2), titanium nitride (TiN), silicon nitride (Si 3 N 4). A combination of titanium and titanium carbide is a very hard ceramic material often used in components of arthroplasties due to the ...

  5. Inside Patrick Kane’s hip resurfacing surgery — and why it’s ...

    www.aol.com/inside-patrick-kane-hip-resurfacing...

    When the two metal surfaces rub against one another in the joint, it can create metal ions. Some people have reactions to those ions, which can loosen the implant and cause tissue damage around ...

  6. New hip replacement tool could transform surgery

    www.aol.com/news/hip-replacement-tool-could...

    Professor Sohini Kar-Narayan said: "It has been a truly exciting journey so far in designing and developing a novel force sensing technology in my lab with a fantastic and dedicated team ...

  7. Titanium biocompatibility - Wikipedia

    en.wikipedia.org/wiki/Titanium_biocompatibility

    Biocompatibility. Titanium is considered the most biocompatible metal due to its resistance to corrosion from bodily fluids, bio-inertness, capacity for osseointegration, and high fatigue limit. Titanium's ability to withstand the harsh bodily environment is a result of the protective oxide film that forms naturally in the presence of oxygen.

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