Guide Carriage Having Deformation Sensor on Track Element
20190113074 ยท 2019-04-18
Inventors
Cpc classification
F16C29/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C41/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C29/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C29/0609
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C29/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A guide carriage includes a main body, a separate track element connected to the main body, at least one carriage track, at least one deformation sensor, an evaluating device, and at least one row of endlessly revolving roller elements that roll off on an associated carriage track in a load-transmitting manner. The carriage track extends parallel to a longitudinal axis, and is positioned on the track element. The track element has at least one self-supporting section not supported on the main body and located at one end of the track element along the direction of the longitudinal axis. The at least one deformation sensor is connected to the evaluating device, positioned in a region of a respective self-supporting section of the track element, and configured to measure a deformation of the respective one of the at least one self-supporting sections of the track element.
Claims
1. A guide carriage for use with an elongate guide rail, comprising: a main body; a track element connected to the main body, and including at least one self-supporting portion located at a respective end of the track element as viewed in a direction of a longitudinal axis, wherein the at least one self-supporting portion is not supported on the main body; at least one carriage track positioned on the track element and extending parallel to the longitudinal axis; at least one row of endlessly circulating rolling bodies configured to roll in a load-transmitting manner on an associated one of the at least one carriage track; an evaluation device; and at least one deformation sensor positioned on the guide carriage in a region of a respective one of the at least one associated self-supporting portions, wherein the at least one deformation sensor is configured to measure a deformation of the respective self-supporting portion of the track element, and wherein the at least one deformation sensor is connected to the evaluation device.
2. The guide carriage as claimed in claim 1, wherein: the at least one deformation sensor includes at least one of a strain gauge and a piezoelectric film, and the at least one of the strain gauge and piezoelectric film is fixed to the track element in the region of the respective self-supporting portion, on a side of the track element directed away from the at least one carriage track.
3. The guide carriage as claimed in claim 1, wherein the at least one deformation sensor includes a proximity sensor configured to measure a spacing between the respective self-supporting portion of the track element and the main body.
4. The guide carriage as claimed in claim 3, wherein the proximity sensor is fastened on the main body or on the track element.
5. The guide carriage as claimed in claim 1, further comprising: a distance sensor configured to sense a measuring scale located on the guide rail, and to determine a relative positioning between the guide carriage and the guide rail with reference to the sensed measuring scale, wherein the distance sensor is connected to the evaluation device.
6. The guide carriage as claimed in claim 1, wherein: the guide carriage includes at least two deformation sensors; the track element includes at least two self-supporting portions located at opposite ends of the track element from each other, as seen in the direction of the longitudinal axis, and at least one of the at least one carriage track of the track element is assigned two of the at least two deformation sensors positioned at opposite ends of the track element from each other, as seen in the direction of the longitudinal axis.
7. A method of operating a guide carriage, comprising: measuring, using two deformation sensors a deformation of two self-supporting portions of a track element of a guide carriage, which are assigned to a carriage track, wherein: the two self-supporting portions of the track element are located at opposite ends of the track element from each other, as viewed in a direction of a longitudinal axis; the guide carriage further includes a main body; the two self-supporting portions of the track element are not supported on the main body; the guide carriage further includes at least one carriage track positioned on the track element and extending parallel to the longitudinal axis; the guide carriage further includes at least one row of endlessly circulating roller bodies configured to roll in a load-transmitting manner on an associated one of the at least one carriage track; and the two deformation sensors are each positioned on the guide carriage in a region of a respective one of the two self-supporting portions of the track element, and are connected to an evaluation device; determining, with reference to the measured deformation, first individual loads acting on rolling bodies from amongst the at least one row of roller bodies which are critical for the measured deformation; determining, with reference to the first individual loads on the critical roller bodies, second individual loads acting on rolling bodies located between the critical rolling bodies; and determining, with reference to the first individual loads and to the second individual loads, a first total load.
8. The method as claimed in claim 7, wherein: the guide carriage includes a plurality of rows of rolling bodies; and the method further comprises: determining a respective first total load for each of the plurality of rows of rolling bodies calculating, with reference to the determined the first total loads, a second total load, wherein the first total loads are added vectorially, with reference to a pressure angle associated with each row of the plurality of rows of rolling bodies.
9. The method as claimed in claim 8, further comprising: measuring a distance covered by the guide carriage; and determining, with reference to the distance covered and to at least one of the first total loads and the second total load, a remaining service life of the guide carriage.
10. The guide carriage as claimed in claim 6, wherein the evaluation device configured to: measure, using the two deformation sensors of the assigned carriage track, a deformation of the at least two self-supporting portions; determine, with reference to the measured deformation, first individual loads acting on rolling bodies from amongst the at least one row of roller bodies which are critical for the measured deformation; determine, with reference to the first individual loads on the critical roller bodies, second individual loads acting on rolling bodies located between the critical rolling bodies; and determine, with reference to the first individual loads and to the second individual loads, a first total load.
11. The method as claimed in claim 8, wherein the guide carriage includes four rows of rolling bodies.
Description
[0017] The invention will be explained in more detail hereinbelow with reference to the accompanying drawings, in which:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026] The guide carriage 20 comprises a main body 30, which consists preferably of unhardened steel. A separate end cap 50, consisting preferably of plastic, is fastened at each of the two opposite ends of the main body 30, as seen in the direction of the longitudinal axis 11. A distance-measuring device 70 comprising a distance sensor 73, constructed for example in accordance with EP 1 164 358 B1, may be fastened on one of the end caps 50. The distance sensor 73 can have at least one transmitter coil and at least one receiver coil, which are arranged such that the inductive coupling between the receiver coil and the transmitter coil is dependent on the positioning of the distance sensor 73 relative to the measuring scale 71. The distance sensor 73 is connected to an evaluation device 24, which has preferably at least one analog/digital converter and at least one digital data-processing component, for example a microprocessor or an FPGA. The evaluation device 24 can be arranged within the distance-measuring device 70.
[0027]
[0028]
[0029] The track element 40 consists preferably of hardened steel, wherein it butts in a load-transmitting manner against the main body 30 along an abutment portion 32. It can butt here directly against the main body 30, wherein it is pushed against the abutment portion 32, and retained there in a frictionally fitting manner, by the prestressing force of the rolling bodies 21. It is also conceivable, however, for the track element 40 to be connected integrally, for example adhesively bonded, to the main body 30. A recess 31 is provided on the main body 30 at each of the two opposite ends of the track element 40, as seen in the direction of the longitudinal axis 11, and therefore the track element 40 has a self-supporting portion 41 there, which does not butt against the main body 30. As an alternative, or in addition, a comparable recess (not illustrated) can be provided on the track element 40. It is further conceivable for the track insert 40 to project beyond the main body 30, in the direction of the longitudinal axis 11, in order to form the self-supporting portion.
[0030] In the region of the self-supporting portion, which is the subject matter of EP 1 443 229 B1, the track insert 40 is bent by the force of the rolling bodies 21. It has been found here that this bending is caused predominantly by the critical rolling body, which is denoted by reference sign 22 in
[0031]
[0032] Instead of the strain gauge 61, it is also possible to use a piezoelectric film. Within the context of the present inventions, a piezoelectric film can also measure static loading of the guide carriage, as long as the latter is moving. The moving rolling bodies then give rise to expansion and/or compression of the piezoelectric film, said expansion and/or compression changing over time, and this therefore supplies a suitable measuring voltage.
[0033]
[0034]
[0035]
[0036] In
[0037] The angle between the pressure lines 25 and the symmetry plane 14 of the linear roller bearing 10 is referred to as the pressure angle 23. It is required within the context of calculating the second total load.
[0038]
LIST OF REFERENCE SIGNS
[0039] 10 Linear roller bearing (first embodiment) [0040] 10 Linear roller bearing (fourth embodiment) [0041] 11 Longitudinal axis [0042] 12 Guide rail [0043] 13 Rail track [0044] 14 Symmetry plane [0045] 20 Guide carriage [0046] 21 Rolling body [0047] 22 Critical rolling body [0048] 23 Pressure angle [0049] 24 Evaluation device [0050] 25 Pressure line [0051] 30 Main body [0052] 31 Recess [0053] 32 Abutment portion [0054] 33 Return channel [0055] 40 Track element [0056] 41 Self-supporting portion [0057] 42 Carriage track [0058] 50 End cap [0059] 51 Deflecting channel [0060] 60 Deformation sensor (first embodiment) [0061] 60 Deformation sensor (second embodiment) [0062] 60 Deformation sensor (third embodiment) [0063] 61 Strain gauge [0064] 62 Proximity sensor [0065] 70 Distance-measuring device [0066] 71 Measuring scale [0067] 72 Marking [0068] 73 Distance sensor