Literature DB >> 9590635

Effect of locking mechanism on fluid and particle flow through modular acetabular components.

C Khalily1, M G Tanner, V G Williams, L A Whiteside.   

Abstract

Six modular acetabular components were evaluated to determine whether screw holes in the metal shell offer a route for fluid and debris into the acetabular bone stock. A 56-mm acetabular shell for each trial was mounted to a sealed chamber and loaded at a 25 degrees angle under axial loads of 270-2,700 N and +/- 2.5-N-m torsional load. Polystyrene microspheres (average diameter, 0.5 microm) were placed in double-deionized water at 300 mmH2O pressure in a sealed chamber above the component. The only channel between the fluid above and the collecting chamber below was through the cup-liner interface and 1 screw hole. Fluid and debris in the collecting chamber were harvested after 1,000,000 cycles. The collected sample was filtered through a 0.2-microm-pore filter and analyzed under electron microscopy for evidence of microspheres. Water and polystyrene microspheres were isolated in the collecting chamber for all trials except the Reflection cup (Smith & Nephew Orthopaedics, Memphis, TN) with a screw hole cover and the Micro-Seal cup (Whiteside Biomechanics, St. Louis, MO) with a peripheral seal. A screw placed in the screw hole of the Reflection cup failed to seal the interface. The peripheral seal around the rim of the Micro-Seal polyethylene prevented fluid and particle flow between the metal shell and polyethylene liner.

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Year:  1998        PMID: 9590635     DOI: 10.1016/s0883-5403(98)90169-3

Source DB:  PubMed          Journal:  J Arthroplasty        ISSN: 0883-5403            Impact factor:   4.757


  1 in total

1.  Backside Wear Analysis of Retrieved Acetabular Liners with a Press-Fit Locking Mechanism in Comparison to Wear Simulation In Vitro.

Authors:  Ana Laura Puente Reyna; Marcus Jäger; Thilo Floerkemeier; Sven Frecher; Karl-Stefan Delank; Christoph Schilling; Thomas M Grupp
Journal:  Biomed Res Int       Date:  2016-09-19       Impact factor: 3.411

  1 in total

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