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Extending prosthesis longevity through tribological understanding

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... manufacturers Implantation angle Correlation to in vivo data Roughness values Low/high wear samples Self-polishing Tribology Lubrication regime Analysis ... – PowerPoint PPT presentation

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Title: Extending prosthesis longevity through tribological understanding


1
Extending prosthesis longevity through
tribological understanding
  • James Lord
  • Dr Tom Joyce

2
Contents
  • What are hip prostheses?
  • Types
  • Metal-on-polyethylene vs. metal-on-metal
  • Wear
  • My work
  • Linear and volumetric wear
  • Surface characterisation
  • Analyses of important factors
  • Whats next?
  • Questions

3
What are hip prostheses?
  • Attempts to replace the damaged hip joint with
    long-lasting biocompatible materials
  • Reduce pain and restore function
  • Can be traced back 120 years
  • Traditionally metal-on-polyethylene articulation
  • More recent shift to metal-on-metal articulation

4
Types of hip prosthesis
  • Total hip replacement
  • Hip resurfacing

5
Metal-on-polyethylene
  • Charnley 1960s 1970s
  • Survivorship can be around 80 after 20 years
  • Reported cases of early failures
  • Failures greater in younger patients
  • Kim, 2003
  • Polyethylene debris linked to osteolysis

6
Metal-on-metal
  • MoM shown to produce smaller particles and less
    overall volumetric wear than MoP
  • Machinability
  • Generally good short-term results
  • Treacy et al, 2005 98 at 5 years
  • Khan et al, 2009 95.7 at 8 years
  • Long-term studies less common

7
Metal-on-metal
  • Still many reported cases of early failure
  • Fracture
  • Infection
  • Metal debris

8
Wear
  • Bearing surfaces
  • Many potential factors
  • Manufacturing
  • Surgical
  • Patient
  • Creates debris
  • Osteolysis
  • Metallosis

9
My work
  • Extending prosthesis longevity through a
    reduction in wear
  • Study of 150 retrieved components
  • Volumetric wear of retrieved components
  • Wear characterisation
  • Influencing factors
  • Manufacturing
  • Surgical
  • Patient

10
Volumetric wear
  • Co-ordinate measuring machine recommended by
    international standards
  • Measures 3-dimensional Cartesian co-ordinates
  • Ruby-tipped contact stylus
  • 72 line scans 2000 measured points
  • Self-centring scans
  • Some analysis

11
Volumetric wear
  • Co-ordinate data from CMM
  • Linear wear depths calculated
  • Wear volumes calculated
  • From 0.71 - 134.22mm3
  • Wear rates from 0.02 - 5.77mm3/month

12
Validation
Gravimetric wear volume (mm3) Calculated wear volume (mm3) Difference ()
Unworn 0 0 -
1st volume removal 5.89 5.78 1.87
2nd volume removal 12.09 11.99 0.83
13
Volumetric wear
  • Surface coloured according to linear wear depth
  • Histogram of depths

14
Surface characterisation
  • Interferometry - occurs on the nanometre scale
  • Areas of interest informed by Matlab analysis

15
Qualitative characterisation
16
Qualitative characterisation
17
Qualitative characterisation
18
Quantitative characterisation
  • Unworn surface
  • Ra 0.019µm
  • Rms 0.039µm
  • Transition zone
  • Ra 0.028µm
  • Rms 0.063µm
  • Wear scar
  • Ra 0.200µm
  • Rms 0.280µm

19
Analysis Wear volumes
20
Analysis Failure mode
21
Analysis - Manufacturer
22
Analysis - Manufacturer
23
Analysis Implantation angle
24
Analysis In vivo data
25
Analysis
  • Wear volumes/rates
  • Failure modes
  • Different manufacturers
  • Implantation angle
  • Correlation to in vivo data
  • Roughness values
  • Low/high wear samples
  • Self-polishing
  • Tribology
  • Lubrication regime

26
Whats next?
  • Data collection
  • Full data sets for current samples
  • New samples
  • Statistical analysis
  • Significant factors affecting wear
  • Roughness values
  • Other prostheses

27
Questions?
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