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Merck
CN
  • Femoral and tibial component rotation in total knee arthroplasty: methods and consequences.

Femoral and tibial component rotation in total knee arthroplasty: methods and consequences.

The bone & joint journal (2013-11-06)
R D Scott
摘要

At least four ways have been described to determine femoral component rotation, and three ways to determine tibial component rotation in total knee replacement (TKR). Each method has its advocates and each has an influence on knee kinematics and the ultimate short and long term success of TKR. Of the four femoral component methods, the author prefers rotating the femoral component in flexion to that amount that establishes a stable symmetrical flexion gap. This judgement is made after the soft tissues of the knee have been balanced in extension. Of the three tibial component methods, the author prefers rotating the tibial component into congruency with the established femoral component rotation with the knee is in extension. This yields a rotationally congruent articulation during weight-bearing and should minimise the torsional forces being transferred through a conforming tibial insert, which could lead to wear to the underside of the tibial polyethylene. Rotating platform components will compensate for any mal-rotation, but can still lead to pain if excessive tibial insert rotation causes soft-tissue impingement.

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聚乙烯, Ultra-high molecular weight, surface-modified, powder, 34-50 μm particle size
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聚乙烯, High density, melt index 12 g/10 min (190 °C/2.16kg)
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聚乙烯, Medium density
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聚乙烯, Linear low density, melt index 1.0 g/10 min (190°C/2.16kg)
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聚乙烯, High density, melt index 2.2 g/10 min (190 °C/2.16kg)
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聚乙烯, Ultra-high molecular weight, surface-modified, powder, 125 μm avg. part. size
Supelco
聚乙烯, analytical standard, suitable for gel permeation chromatography (GPC), 2,000