While this invention is susceptible of embodiment in many different forms, there is shown in the drawings and will herein be described in detail one or more embodiments with the understanding that the present disclosure is to be considered as an exemplification of the principles of the invention and is not intended to limit the invention to the embodiments illustrated.
The measurement head 10 is connected via a multimode optical waveguide (not shown) to a known light source for generating light with a continuous spectrum. The optical waveguide leads to a circular-cylindrical light guide connector body 14 on the rear end side of a housing 16 of the measurement head 10, on the left in the longitudinal section in
The housing 16 of the measurement head 10 has essentially the shape of a circular cylinder, the lateral surface of which is flattened on two mutually opposite sides 20, in
In the measurement head 10, the end of the optical waveguide acts as a light exit face (not visible in the figures) which is assigned to the light source, and which extends parallel to the end side of the housing 16 of the measurement head 10.
The measurement head 10 comprises an objective 22 with chromatic aberration, which images the light exit face on a reduced scale into wavelength-dependent focal planes, on the right of the measurement head 10 in
As viewed from the light guide connector body 14, the objective 22 comprises a first lens pair 28 consisting of a planoconvex lens 30 and a planoconvex lens 32 and, at a distance therefrom, a second lens pair 34 consisting of a biconvex lens 36 and a concave-convex lens 38. The second lens pair 34 lies in the region of that end side of the measurement head 10 which faces the surface 26 to be measured, on the right in
The diameter of the objective 22 is reduced perpendicularly to its optical axis 24 in a space direction X, in accordance with the flattened sides 20 of the housing 16 of the measurement head 10. To this end, essentially parallel to the optical axis 24 of the objective 22, a part is respectively removed, for example sawed or ground off, on two mutually opposite sides of the lenses 32, 36 and 38 which originally are radially symmetric with respect to the optical axis 24, so that the lenses 30, 32, 36 and 38 respectively have flattened side faces 32a, 36a and 38a there. The lens 30 has a significantly smaller diameter than the other lenses 32, 36 and 38, and therefore needs no reduction. By removing the lateral lens parts, the aperture of the objective 22 is reduced in the corresponding lateral space direction X, i.e. extending perpendicularly to the optical axis 24, relative to the original aperture which still exists in a lateral space direction Y perpendicular thereto. In
The measurement head 10 is furthermore connected in the known way via a splitter (not shown), known from the prior art, in the optical waveguide to a spectrograph (likewise not represented). With the spectrograph, it is possible to record the spectral intensity distribution of light which is directed through the objective 22 onto the surface 26 to be measured and is reflected therefrom.
The device furthermore has an evaluation unit (not shown), which is functionally connected to the spectrograph. By the evaluation unit, a distance between the objective 22 and the surface 26 to be measured can be assigned to each wavelength at which the intensity distribution recorded by the spectrograph has a local maximum.
In
In order to measure the wall of the glass cylinder 12, the measurement heads 10 are aligned so that the width of their objectives 22 is reduced in the space direction X, in which the wall's surface 26 to be measured is straight, i.e. parallel to the axis of the glass cylinder 12. The axis of the glass cylinder 12 extends perpendicularly to the plane of the drawing in
In order to measure the wall thicknesses of the glass cylinder 12, it is guided perpendicularly to the optical axes 24 of the objectives 22 in the space direction Y, from the bottom upwards in
Instead of the objective 22, another type of optical imaging system with chromatic aberration may be provided.
Instead of the spectrograph, another optical spectral instrument may also be used, for example a spectrometer.
Instead of on both sides 20, a part of the lenses 3, 36 and 38 may also be removed only on one side.
Instead of perpendicularly to the space direction in which the width of the objective 22 is reduced, the measurement heads 10 may also be moved obliquely thereto.
Instead of a passive objective 22, for example, a manually or automatically adjustable objective may also be used.
The device is not restricted to the determination of a thickness of a wall. Rather, it may be used for determining a thickness of any layer, bounded by two surfaces, of a transparent body. This may even involve internally lying layers.
Instead of the surface 26 of a glass cylinder 12, it is also possible to measure other curved surfaces which are plane in at least one space direction, including for example bottles, cones or pyramids.
The device, in particular the measurement head 10, may also be used as a high-resolution distance sensor. It may also be configured as a scanning 3D measurement system for the contactless measurement of topographies and profiles, even of non-transparent surfaces.
The dimensions of the measurement heads 10, the measurement distances and the angles α and β indicated for the light cone 25 may be significantly greater or less than those indicated by way of example.
It is to be understood that additional embodiments of the present invention described herein may be contemplated by one of ordinary skill in the art and that the scope of the present invention is not limited to the embodiments disclosed. While specific embodiments of the present invention have been illustrated and described, numerous modifications come to mind without significantly departing from the spirit of the invention, and the scope of protection is only limited by the scope of the accompanying claims.
Number | Date | Country | Kind |
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10 2006 017 400.3 | Apr 2006 | DE | national |