Measuring non-spherical optical surfaces.
1The Victorian College of Optometry, University of Melbourne, Victoria, Australia. c.woods@optometry.unimelb.edu.au
Summary
A videokeratoscope accurately measures the asphericity (p-value) of complex contact lens surfaces, outperforming an optical microspherometer for this specific measurement. Both instruments accurately measure vertex radius.
Area of Science:
- Ophthalmic optics
- Contact lens technology
- Optical metrology
Background:
- Emerging lens designs for presbyopia utilize novel constructions for varifocal optics.
- Many designs incorporate aspheric surfaces with defined p-values.
- Manufacturer-quoted back optic zone radii are often nominal, complicating lens verification.
Purpose of the Study:
- To evaluate the accuracy and bias of a videokeratoscope and an optical microspherometer in verifying complex concave contact lens surfaces.
- To determine which instrument is more suitable for measuring the asphericity (p-value) of these surfaces.
Main Methods:
- Fifty-four concave test surfaces with known vertex curvatures and p-values were manufactured.
- Measurements were taken using both a videokeratoscope and an optical microspherometer.
Main Results:
- The optical microspherometer provided accurate vertex radius measurements but showed poor accuracy and bias for p-value verification.
- The videokeratoscope demonstrated high accuracy for vertex radius measurements, with some bias.
- The videokeratoscope was highly accurate in describing the p-value, though bias was present.
Conclusions:
- A videokeratoscope is preferred over an optical microspherometer for accurately determining the asphericity of concave optical surfaces.
- Both instruments exhibit high accuracy in measuring the vertex radius of concave surfaces.
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