The invention relates to a method according to the preamble of claim 1 or 3 and to a device according to the preamble of claim 8 or 10.
Methods and devices or imaging or measuring systems for imaging bottles or similar containers, in particular also for detecting the edge profile of containers where the containers are moved past a recording or measuring region of the recording or measuring system on a conveyor or conveyor belt, are known. The known measuring systems, where, by means of a CCD camera with an entocentric lens and by means of a luminescent screen, the most varied measuring methods may be realized in so-called transillumination or silhouette procedures, are, however, affected by serious imaging errors, in particular caused by a non distortion-free beam path. These imaging errors could certainly be reduced to a passable level in practice by using special lenses, for example telecentric lenses, but these types of lenses are extremely expensive and also have a greatly reduced depth of focus, calling for very precise positioning of the containers at the respective measuring and recording region of the measuring system.
It is the object of the invention to provide a method which makes possible distortion-free or substantially distortion-free detecting of the edge profile of bottles or of similar containers, reducing the construction costs of the device used as the measuring and imaging system.
This object is achieved by a method corresponding to claim 1 or 3. A device for accomplishing the method is the object of claim 8 or 10.
In the case of one embodiment of the invention, a plurality of line-shaped or strip-shaped recordings of each container moved past the measuring or recording region are generated chronologically by way of a line imaging means or a line camera, from which recordings the edge profile of the relevant bottle is then assembled. The line imaging means, in this case, are distortion-free and are preferably recordings without colour or grey content.
Where a line imaging means or a line camera is used, line images are generated, for example, parallel to a container axis, e.g. parallel to a vertical container axis, it being possible to adapt the resolution in the generated edge profile in said container axis to the respective requirements by means of the resolution of the line imaging means or of the line camera, transversely relative to the axis of the line images, i.e. e.g. transversely relative to the container axis by the number of recordings per unit time.
The individual line images are generated, for example, by means of corresponding actuation of the line imaging means or of the line camera and/or by means of corresponding actuation of the light-transmitting device. It is possible to use the edge profile created in each case from the containers for the most varied control and monitoring purposes.
In the case of a preferred embodiment of the invention, a parallel silhouette of the respective container is preferably realized on a luminescent screen or display screen with the parallel light of the at least one light-transmitting device. Said screen is preferably realized such that on its side facing the at least one optoelectric receiver (e.g. line imaging means, line camera or CCD camera), there is an image or a silhouette of the respective container, which is generated exclusively by the parallel light or the parallel light beams of said light. This means that a distortion-free and sharp-edged silhouette is obtained on the side of the luminescent screen or display screen facing the at least one optoelectric receiver. In particular, distortions caused by non parallel light beams and extraneous light hitting the luminescent screen or display screen in an inclined manner are avoided. In the simplest scenario the display screen, in this case, comprises a flat material or a film that is transparent only or substantially only to vertically incident light, for example a polarizing filter foil or directional filter foil.
The essential advantages of the invention can be summarized as follows:
Further developments, advantage and application possibilities of the invention are produced from both the following description of exemplary embodiments and from the Figures. In this case, all described and/or graphically represented features are in principle objects of the invention, either individually or in arbitrary combination, irrespective of their summary in the claims or their dependency. The content of the claims is also made a component of the description.
The invention is described in more detail below by way of
The device identified in
In principle, the device 1, by means of which or by means of the measuring and/or recording region of which the containers 2, realized as bottles, for example as PET bottles, are moved standing upright, i.e. with their container bottom oriented in the vertical direction, on a conveyor or conveyor belt 4, comprises a measuring and/or recording system with a transmitting side 5, which is provided on one longitudinal side of the conveyor belt 4 and is not entrained with said conveyor belt, and a receiving side 6. Said receiving side is provided situated opposite the transmitting side 5, vertically or transversely relative to the conveying direction of the conveyor belt 4, on the other longitudinal side of said conveyor belt or of the measuring and/or recording region and is not entrained with the conveyor belt 4 either.
In the case of the exemplary embodiment represented, the transmitting side 5 has two light-transmitting devices 7 and 8 one above the other in the vertical direction, of which the light-transmitting device 7, in the embodiment represented, is formed by a single punctiform or substantially punctiform light source 7.1 with a predetermined light spectrum and the light-transmitting device 8 is formed by a punctiform or substantially punctiform light source 8.1, which is suitable for delivering light in various spectra. The light source 8.1 is formed for this purpose by a plurality of individual light sources with associated lenses for trapping the light. The light source 7.1 and the individual light sources of the light source 8.1 are produced in each case, for example, by an LED or by a plurality of LEDs.
The light of the light source 7.1 is given the general reference 9 in
A filter 12, preferably replaceable, is provided between the light source 7.1 and the lens system 10 in the beam path of the light 9 in order, for the detecting of the edge profile, to be able to select an optimum part spectrum of the light 9 supplied by the light source 7.1., also taking ambient light into consideration, for example. Corresponding filters 13 and 14 are provided on the receiving side 6 in front of the optoelectric receiver 11. A field stop 15 with stop opening is additionally located in the beam path between the filter 12 and the lens system 10, said field stop defining the light of the light source 7.1 in such a manner that just the top region, provided with the closure 5, of each container 2 is detected, i.e. the respective bottle neck with the closure 3, by way of the parallel light 9.2 emerging from the lens system 10.
The light of the light source 8.1 is given the general reference 16 in
Changeable filters (not shown), corresponding to the filters 12 and 13, are provided in front of the optoelectric receiver 11 also in the beam path of the parallel light 16.2, said changeable filters being adapted, with regard to their transmission characteristic, to the spectrum of the light 16 transmitted by the light source 8.1, in such a manner that the receiver-side filters are adapted, modified or changed synchronously with the change in the light spectrum of the light source 8.1. In this way, it is possible, in particular, to generate line images of the respective container 2 with different light spectra for further improving the detecting of the edge profile of the containers 2 by modifying the light spectrum of the light source 8.1 and the filters on the receiving side in a synchronized manner.
The opening in the field stop 15 or the stop opening provided at that location is once again realized such that the containers 2 are detected substantially only in a region below the closure 3 by way of the parallel light 16.2.
In principle, all optical lenses or lens systems that are suitable as collimators or for converting a diverging light beam into parallel light are suitable as lens system 10.
It has been assumed above that the optoelectric receiver 11 has at least one line camera with a cost-efficient entocentric lens and with said line camera line images of the shadow contour of the containers 2 are then taken without colour or grey scale values and then by joining these images together, the container contours are generated in the region of the closure and below the closure. In principle, however, it is also possible to provide another optoelectric receiver 11, e.g. a CCD camera with an entocentric lens, in place of a line camera.
In the case of a preferred variant, a line camera is used that does not have any corresponding lens, but just the actual recording means.
In addition, it has also been assumed above for reasons of simpler representation that the lens system 10 and the field stop 15 are provided together for both light-transmitting devices 7 and 8. Obviously, independent lens systems 10 and/or field stops 15 can be used for the devices 7 and 8.
The light source 8.1, the lens barrel 17 and the lens system 10 are once again part of the transmitting side 5 of the measuring and/or imaging system. A luminescent screen or display screen 18 is provided on the receiving side 6 situated opposite the transmitting side 5, the parallel silhouette generated by the measuring object or by the container 2 being imaged in a distortion-free manner with the parallel light 16.2 on said luminescent screen or display screen. By means of an optical system 19, for example in the form of a plano-convex lens, following the display screen in the path of the beam, and by means of the lenses, e.g. the entocentric lens of an optoelectric sensor, for example, a line camera or a CCD camera, the silhouette generated on the display screen 18 is recorded. This is effected once again preferably without colour or grey scale content, e.g. in the form of line images, from which the edge profile of the measuring object or container 2 is then put together.
The display screen 18 is preferably designed such that said screen only allows through the parallel light 16.2, i.e. vertically incident light, not however inclinedly incident light, in particular not inclinedly incident ambient light or extraneous light, which is indicated by the arrows A in
It is obvious that lens system 10 or the lenses forming said lens system and operating as a collimator are provided separately in each case for the light source 7.1 and 7.2 in order, in this manner, through the arrangement of said light sources in the focal point, to convert the diverging light 9.1 or 16.1 in each case into the parallel light 9.2 and 16.2.
The filters 13, 14 and 15 can vary depending on the design and/or application, in particular also with regard to their filtering effect and characteristics, and/or it is also possible to dispense with said filters entirely or partially.
With reference to
Once again, various modifications are also possible to the measuring device 1a. Thus, for example, the lens system 19, i.e. the plano-convex lens is only necessary when using a CCD camera 20 as optoelectric receiver, whereas when using a line imaging means as optoelectric receiver 20, the plano-convex lens 19 is not required. The filters 12, 13 and 14 can vary depending on the design and/or application and/or can be completely or partially omitted.
In a simplified schematic representation similar to
The receiving side 6 is realized in an identical or similar manner to the receiving side 6 of the measuring device 1, for example once again with the filters 13 and 14 located in the beam path of the parallel light 16.2 and the optoelectric receiver 11 connected downstream.
As is also represented in
It is obvious that different conversions are also possible once again to the measuring device 1b represented in
In a very schematic representation,
Obviously, other optical devices can be used here in place of the fibre optic 23 in order to combine the light of a plurality of individual light sources 22 to form the light source 7.1 or 8.1 located in the focal point of the lens system 10 or to couple the light of a plurality of individual light sources 22 into the focal point of the lens system 10, for example optical systems with prisms or optical elements that operate in a prism-like manner.
The punctiform light source 7.1 of the measuring device 1 is also realized, for example, in an identical manner as the light source 8.1, if said light source 7.1 also comprises a plurality of individual light sources, for example a plurality of LEDs.
The invention has been described above by way of exemplary embodiments. It is obvious that changes and conversions are possible without in any way departing from the inventive concept underlying the invention.
Number | Date | Country | Kind |
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10 2008 029 855.7 | Jun 2008 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP09/03537 | 5/19/2009 | WO | 00 | 3/7/2011 |