The invention relates to a linear measuring device for measuring the relative position of a first machine element with respect to a second machine element. The first machine element is a base of a machine tool, for example, and the second machine element is the machine carriage which can be displaced with respect to the base.
For the exact position measurement in connection with machine tools and coordinate measuring machines, the scales, or the scale supports, are elaborately fastened, aligned parallel with the measuring direction, wherein the measuring direction is predetermined by the guide system of the machine tool or the measuring machine. A step for alignment is described in DE 199 14 311 A1 and DE 197 00 367 A1 , for example.
However, in connection with linear measuring devices, wherein the scale has been protectively arranged in a housing, these steps cannot be taken at all, or only with difficulty.
It is therefore the object of the invention to disclose a linear measuring device wherein the housing, together with the scale arranged in it, can be aligned parallel with the machine guidance device in a simple manner.
In accordance with the invention, this object is attained by means of the linear measuring device having the characteristics of claim 1.
Advantageous embodiments are recited in the dependent claims.
The invention will be explained in greater detail by means of the drawings, wherein
Encapsulated linear measuring devices will be described by means of FIGS. 1 to 5, wherein a scale 1, as well as a scanning device 2, are protectively arranged in the interior of a housing 3.
The linear measuring device in accordance with
For position measuring, the housing 3 is fastened by means of mounting elements 5, 6 on a first machine element 7, whose position in relation to a second machine element 8 is to be measured. The design of the mounting elements 5, 6 will be described later in greater detail.
For position measuring, a guide carriage 10 is fastened on the second machine element 8 with fastening means 9—in particular screws—on which the scanning device 2 for scanning the scale 1 is fastened in turn. Fastening of the guide carriage 10 on the second machine element 8 takes place rigidly in the measuring direction X and in all directions Y, Z, perpendicularly with respect to the measuring direction X.
The guide carriage 10 embraces the housing 3 on all sides, and the circumferential face of the housing constitutes a guide rail 31, along which the guide carriage 10 is guided, free of play, in the measuring direction X. The guide carriage 10 is connected to the housing 3, free of play in all directions Y, Z perpendicular with respect to the measuring direction X, by means of a spherical bushing 11. Other rolling guide devices, or also sliding guide devices, can be used in place of the spherical bushing 11.
Ring-type seals 13 for providing sealing between the guide carriage and the housing 3 are arranged on both ends of the guide carriage 10. A good seal is assured by employing encircling ring-type seals 13.
In the course of a position measurement, the guide carriage 10 is moved by the second machine element 8 in the measuring direction X, wherein the movement path is fixed by the machine guide element 12, which is only schematically represented in
To assure this alignment during measuring operations, the rigid housing 3 is fastened on the first machine element 7 by means of at least one mounting element 5, which has means 51 for the movable connection of the housing 3 in directions Y, Z perpendicularly with respect to the measuring direction X. These means can be elastic elements 51 between the mounting element 5, which can be rigidly screwed to the first machine element 7, and the housing 3, wherein these elastic elements simultaneously can constitute a seal between the housing 3 and the mounting element 5.
The mounting element 6 assures a rigid connection of the housing 3 with the first machine element 7 in the measuring direction X, but permits transverse movements in all directions Y, Z. The mounting element 5 also permits transverse deviations of the housing 3 in all directions Y, Z, but also permits a linear compensation of the housing in relation to the mounting element 5. The mounting element 6 for the fastening of the housing 3 in a manner which is rigid in the measuring direction X and can be shifted perpendicularly with respect to it, contains a spring wire 61 or a rod, which has hinges in the form of weakened points.
The scale 1 is a steel tape, which has been adhesively fastened by means of an oil layer 100 or other viscous or elastic intermediate layer on the support 4, such as described in DE 196 11 983. However, a glass scale can also be employed. The scale 1 is rigidly fastened at a location in the measuring direction X on the housing 3 and/or on the mounting element 6 for forming a fixed point.
The mounting elements 5, 6 are rigidly screwed to the first machine element 7 through bores 19. A highly accurate alignment with respect to the machine guide element 12 is not absolutely required here.
The scale 1 is provided with an opto-electrically scannable measuring structure 110 for a highly accurate position measurement which, for forming position-dependent scanning signals, is scanned by a light source and a light- sensitive detector unit.
In place of incident light scanning represented in
The elastic seal 24 can be replaced by a cover tape 26. This cover tape 26 represented in
A modified linear guide device is represented in
The housing 2 is tube-shaped and has a circular-cylindrical circumferential area 31. The scale 1, which can be scanned opto-electrically, is fastened in the interior of the housing 3 and preferably is a linearly rigid pre-curved steel tape, matched to the curvature of the inner wall 32, if required, and is fastened, adhering directly to the inner wall 32 of the housing 3 via an oil film 100. The measuring structure 110 of the scale 1 is scanned by the scanning device 2, which is fastened on the second machine element 8, rigid in all directions X, Y, Z, by means of the guide carriage 10. For scanning through the housing 3, the latter is transparent to the scanning light beam, at least in the circumferential scanning area A. Thus, the housing 3 can be embodied to be transparent over the entire circumference or, as represented in
Guidance of the guide carriage 10 with the scanning device 2 takes place rigidly in directions Y, Z perpendicularly with respect to the measuring direction X, at the exterior circumference 31 of the housing 3, or at a separate guide rail rigidly assigned to the housing 3. The guide carriage 10 can be rigidly fastened on the second machine element 8 in the measuring direction X and in all directions perpendicularly with respect to the measuring direction X.
The housing 3, for example a glass tube—in particular a viscoplastic glass tube or a plastic tube, is embodied to be rigid and is fastened on the first machine element 7 by means of the mounting elements 5, 6. Both mounting elements 5, 6 maintain the housing 3 so it can be deflected perpendicularly with respect to the measuring direction X. The scale 1 is fastened, rigid in the measuring direction X, on a mounting element 6 for its definite fixation on the first machine element 7, to which end a spring wire 61 is again used, or a rod with joints, spaced apart in particular in the measuring direction X, in the form of weakened points.
For compensating an erroneous alignment between the machine guide element 12 and the scale 1 during measuring operations, a further step in accordance with the invention is also advantageous. In this case the connecting means 51, 61 between the rigid housing 3 and the mounting elements 5, 6 are constituted by the housing 30 itself in that the latter is designed to have low flexural strength. This embodiment is represented in principle in
The guide rail is again constituted by the exterior face 31 of the housing 30 itself. It is alternatively possible to rigidly assign its own guide rail of low flexural strength to the housing 30. Again, the guide carriage 10 has been connected with the guide rail 31, free of play in the directions Y, Z perpendicularly with respect to the measuring direction X. The housing 30 advantageously has a circular-cylindrical circumferential area 31, which is embraced on all sides by the guide carriage 10 and wherein the circumferential area is used as the guide area 31. The guide carriage 10 has been connected with the guide rail 31, free of play in the directions Y, Z perpendicularly with respect to the measuring direction X. The scanning device 2 is rigidly fastened on the guide carriage 10, and the latter is fastened in turn on the second machine element 3, again rigid in all directions X, Y, Z. It is assured by means of the housing 20 of low flexural strength, which for example can be made of plastic, that during measuring operations it can be deflected perpendicularly with respect to the measuring direction X, at least in the guide area, and therefore in the scanning area, so that in the course of a movement of the guide carriage 10 perpendicularly with respect to the measuring direction X, the housing 30 is taken along in this direction. One of the housing ends can be rigidly fastened on the first machine element 7 by means of a mounting element 6, and the other end can be fastened, linearly movable, on the first machine element 7 by means of a further mounting element 5.
The scale arrangements, scanning principles and designs of the guide elements explained in connection with FIGS. 1 to 8 can also be used with the example in accordance with
In connection with all examples it is possible for the guide carriage 10 to be seated on the guide rail 31, rotatable around the longitudinal axis D of the housing 3, 30. This rotary degree of freedom can be alternatively created in that the housing 3, 30 is seated in the mounting elements 5, 6, rotatable around this longitudinal axis D.
Number | Date | Country | Kind |
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102 36 381.1 | Aug 2002 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP03/06845 | 6/27/2003 | WO | 10/3/2005 |