OPTICAL LINEAR ENCODER
20180073899 ยท 2018-03-15
Assignee
Inventors
Cpc classification
G01D5/58
PHYSICS
International classification
Abstract
An optical linear encoder for measuring distance includes a housing with a glass bar having precision gratings; a reading head body which moves along the housing in a measuring direction; and a carriage which is coupled to the reading head body rigidly in the measuring direction while allowing for minor movements in lateral directions. The carriage includes a scanning reticle guided along the glass bar by the carriage at a constant gap from the glass bar; a photo electronic sensor array which reads variations in intensity of the collimated light passing through both scanning reticle and glass bar, and a light source and a beam forming optics, with the beam forming being performed by an off-axis reflector.
Claims
1. An optical linear encoder for measuring distance and comprising: a) a housing with a glass bar where glass bar has precision gratings; b) a reading head body which moves along the housing in measuring direction; and c) a carriage which is coupled to the reading head body rigidly in measuring direction while allowing for minor movements in lateral directions; wherein said carriage comprises: i) a scanning reticle guided along the glass bar by the carriage at a constant gap from the glass bar; ii) a photo electronic sensor array which reads variations in intensity of the collimated light passing through both scanning reticle and glass bar; iii) a light source and iv) beam forming optics comprising an off-axis reflector and effective for forming a light beam using said off-axis reflector.
2. An optical linear encoder according to claim 1, wherein said off-axis reflector has a parabolic or spherical shape.
3. An optical linear encoder of a claim 1, wherein said a light source is a Surface Mounted (SMT) Light Emitting Diode or Bare Chip Light Emitting Diode.
4. An optical linear encoder according to claim 1, wherein said a light source is of a type as close to point source as possible and having the smallest emitting area.
5. An optical linear encoder according to claim 1, wherein said light source located outside of the output beam path.
6. An optical linear encoder according to claim 1, wherein said off-axis reflector produced by injection molding and vacuum deposition of reflective material on the front (concave) side.
7. An optical linear encoder according to claim 1, wherein said off-axis reflector produced by casting from transparent epoxy and metalizing the back (convex) side.
8. An optical linear encoder according to claim 1, wherein said off-axis reflector produced as a separate part and attached to the carriage by means of fasteners or adhesives.
9. An optical linear encoder according to claim 6, wherein said reflecting surface of the off-axis reflector produced by injection molding as an integral part of the carriage.
10. An optical linear encoder according to claim 1, wherein photoelectric sensors are grouped together in close proximity.
11. An optical linear encoder according to claim 1, wherein reflector is made out of transparent resin and a reflective surface formed by applying a reflective layer to the outer, convex side.
12. An optical linear encoder according to claim 1, wherein light is delivered from the light source to the focal point of a reflector by means of a flexible fiber optical cable.
13. An optical linear encoder according to claim 12, wherein light source is located inside of a reader head body.
14. An optical linear encoder, comprising: a) a housing with a glass bar where glass bar has precision gratings; b) a reading head body which moves along the housing in measuring direction; c) a carriage which is coupled to the reading head body rigidly in measuring direction while allowing for minor movements in lateral directions; wherein said carriage comprises: i) a scanning reticle guided along the glass bar by the carriage at a constant gap from the glass bar; ii) a photo electronic sensor array which reads variations in intensity of the collimated light passing through both scanning reticle and glass bar; iii) a light source effective for providing light to the photo electronic sensor array; iv) beam forming optics effective for directing light from the light source along a light path to the photo electronic sensor array; wherein said light source is positioned outside said light path so that light reflected by the beam forming optics does not pass over the light source when travelling along the light path.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0053] For the purposes of promoting an understanding of the principles of the invention, reference will now be made to certain embodiments and specific language will be used to describe the same. It will nevertheless be understood that no limitation of the scope of the invention is thereby intended, with such alterations and modifications to the illustrated device being contemplated as would normally occur to one skilled in the art to which the invention relates.
[0054] As indicated above, one aspect of the present invention provides an optical linear encoder for measuring distance and comprising: [0055] a) a housing with a glass bar where glass bar has precision gratings; [0056] b) a reading head body which moves along the housing in measuring direction; and [0057] c) a carriage which is coupled to the reading head body rigidly in measuring direction while allowing for minor movements in lateral directions.
[0058] The carriage preferably comprises: [0059] i) a scanning reticle guided along the glass bar by the carriage at a constant gap from the glass bar; [0060] ii) a photo electronic sensor array which reads variations in intensity of the collimated light passing through both scanning reticle and glass bar; [0061] iii) a light source and [0062] iv) beam forming optics comprising an off-axis reflector, and effective for forming a light beam using said off-axis reflector.
[0063] More particularly pointing out and distinctly describing various aspects of the present invention, it is to be appreciated that glass has to have a certain width for incremental/absolute grating tracks, and it is beneficial to space some of the optical components in a direction parallel to the glass width instead of perpendicular to it. By utilizing an off-axis reflector, the distance between the reflector and a scanning reticle or glass bar can be greatly reduced and the light source can be placed in more convenient location for a better optimization of the space inside of encoder housing
[0064] As light source and its wiring lies outside of the collimated beam path, no dark zones are created and no scattered light harms the performance, no special antireflective treatments necessary for circuit board containing light source. Reflector size and corresponding light power can be reduced while achieving the same light intensity at the sensors.
[0065] Additionally, the present invention provides the advantage of low manufacturing cost without new capital investment. Reflectors can be produced on vacuum metallization equipment already used and readily available at optical encoder manufacturing facilities.
[0066] Another embodiment utilizes a transparent epoxy resin mirror which is metalized on the outer convex side. Using an off-axis reflector allows all optical surfaces to be formed by mold in a single shot. In comparison, on-axis reflector produced by this method would have to utilize an additional light transmitting base member, as pouring epoxy from the output beam window side would create imperfections from shrinkage and severely increase beam divergence
[0067] Another embodiment utilizes a fiber optical cable to deliver light to the focal point of the off-axis reflector. As even state of the art LED light sources are <40% efficient, large amount of energy is being converted into heat. Having a heat source in a close proximity to graduations adversary affects accuracy due-to effects of thermal expansion on the scanning reticle. Removing a major heat source from the tight enclosed space and placing it further away, preferably inside of the reader head body, effectively solves this issue.
[0068] The most preferred embodiments of the present invention are illustrated in the accompanying drawings.
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[0073] Such an arrangement allows for a very compact design, as light source and associated wiring are placed right next to the reflector and not behind the optics as would have to be done in case of using collimating lens. This allows one to utilize an available space for the placement of light source and therefore reduces the encoder dimension in a direction perpendicular to the glass bar. Preferred method of manufacturing reflector would be injection molding followed by vapor deposition of a reflective material.
[0074] The beam forming optics of
[0075] Even further reduction in size can be achieved, as shown on
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[0079] While the invention has been illustrated and described in detail in the drawings and foregoing description, the same is to be considered as illustrative and not restrictive in character, it being understood that only certain preferred embodiments have been shown and described, and that all changes and modifications that come within the spirit of the invention are desired to be protected.
[0080] Additionally, it is to be appreciated that the present invention may comprise or consist essentially of any or all of the described or illustrated elements. Further, any or all of the features, elements, and/or embodiments disclosed herein may be combined with any or all of the other features, elements, and/or embodiments disclosed herein to provide an invention that comprises or consists essentially of such features, elements, and/or embodiments.
[0081] The grammatical device and/or (such as in A and/or B) is used in this disclosure to mean A alone, or B alone, or both A and B.