MACHINE TOOL
20200070290 ยท 2020-03-05
Inventors
Cpc classification
B23Q1/4857
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The machine tool according to the invention comprises a workpiece support (16) that is held so as to be pivotable about an A-axis. In doing so, the workpiece support (16) is held asymmetrically to the extent that it is connected only on one side to a rotary positioner (27). However, both sides are held on the slides (25, 26), each being connected to a linear drive (30, 34). The slide (26) without rotary drive runs only on one guide rail (24), whereas the slide (25) with the rotary positioner (27) runs on two guide rails (22, 23). In view of the Z-acceleration, the workpiece support (16) is guided symmetrically. The result is a compact and still highly robust machine concept.
Claims
1. A machine tool (10) for 5-axis machining, comprising: a machine frame (11) on which are arranged a first linear guide (20) parallel to to a second linear guide (21), wherein the first linear guide (20) comprises a first guide rail (23) and a first slide (25) and the second linear guide (21) comprises a second guide rail (24) and a second slide (26) guided thereon; first and second linear drives (30, 34) which are arranged outside of the first and second linear guides (20, 21) so that the first and second guide rails (23, 24) are arranged between the first linear drive (30) and the second linear drive (34); a workpiece support (16) that is connected, via a first rolling bearing (28), to the first slide (25) and, via a second rolling bearing (29), to the second slide (26), wherein the second slide is separate from the first slide (25); and a rotary positioner (27) which is arranged on or in the first slide (25) and is connected to the workpiece support (16).
2. The machine tool according to claim 1, further comprising a third linear guide (19) parallel to the first and second linear guides (20, 21), said third linear guide comprising a third guide rail (22) on which the first slide (25) is additionally guided, wherein the first linear drive (30) is arranged between one of the first or the second linear guides (20) and the third linear guide (19).
3. The machine tool according to claim 2, wherein the first slide (25) is arranged so as to bridge of the first, second, and third guide rails (22, 23).
4. The machine tool according to claim 2, that wherein the first slide is arranged so as to bridge the first linear drive (30) located between the first and third guide rails (22, 23).
5. The machine tool according to claim 2, wherein the second slide (26) is connected to the second guide rail (24) and the second linear drive (34).
6. The machine tool according to claim 1, wherein the workpiece support (16) is supported in a freely rotatable manner on the second slide (26).
7. The machine tool according to claim 1, wherein the machine frame (11) supports a guide arrangement for a working spindle (12) that is configured to accommodate a tool for machining a workpiece.
8. The machine tool according to claim 7, wherein the guide arrangement is configured to move the working spindle (12) in at least two spatial directions (x, y) relative to the workpiece support (16).
9. The machine tool according to claim 1, wherein the first and second linear drives (30, 34) have different maximum driving forces.
10. The machine tool according to claim 9, wherein a quotient of the maximum driving force of the respective first and second linear drives (30, 34) and an inert mass connected to the respective first and second slides (25, 26) is as same for both the first and second linear drives (30, 34).
11. The machine tool according to claim 2, wherein the first slide (25) connects the first and the third guide rails (19, 23, 22) to each other in a torque-proof manner.
12. The machine tool according to claim 1, wherein the first and second rolling bearings (28, 29) define an axis of rotation (A) for the workpiece support (16), said axis being oriented horizontally.
13. The machine tool according to claim 12, wherein the workpiece support (16) supports a rotary table (17) that has an axis of rotation (B), said axis being oriented at a right angle with respect to the axis of rotation (A) of the workpiece support (16).
14. The machine tool according to claim 1, wherein each of the first and second linear drives (30, 34) is provided with a position detecting arrangement (37, 38, 39, 40) and are synchronously controlled by a common control device (33).
15. The machine tool according to claim 14, wherein the position detecting arrangement (37, 38, 39, 40) comprises linear sensors for detecting a position of the first and second slides (25, 26).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Additional details of advantageous embodiments of the invention are the subject matter of the claims or the corresponding description and the drawings. They show in
[0023]
[0024]
DETAILED DESCRIPTION
[0025]
[0026] The working spindle 12 is provided with a rotary drive device in order to drive the tool in a rotating manner about an axis of rotation 14 or also be able to hold said tool in a specified rotary position.
[0027] The working spindle 12 is supported by a slide 15 that belongs to a positioning device by means of which the working spindle 12 can be moved at least in one direction, preferably in two directions X and Y that preferably are oriented at a right angle with respect to the axis of rotation 14. For example, these are a horizontal direction X and a vertical direction Y.
[0028] For the accommodation of the workpiece there is provided a workpiece support 16 that, in a 4-axis machine, may be designed directly for the accommodation of the workpiece, and, referring to 5-axis machine depicted by
[0029] For the support and controlled movement of the workpiece support 16, there is provided a positioning device 18 that comprises at least twoin the present exemplary embodiment threeguide devices 19, 20, 21. The guide device 19 is optional, i.e., it may also be omitted in a simplified embodiment. With the exception of this fact, the description hereinafter applies analogously to this simplified embodiment.
[0030] Respectively one guide rail 22, 23, 24 belongs to the positioning devices 19, 20 21, as is particularly obvious from
[0031] The distance between the first guide rail 22 and the second guide rail 23 is preferably less than the distance between the second guide rail 23 and the third guide rail 24. Between the second guide rail 23 and the third guide rail 24, there is preferably arranged a not specifically illustrated chips channel that is disposed to receive and remove of chips that occur in the course of chip machining the workpiece.
[0032] The first slide 25 supports the rotary device (
[0033] The linear guides 19, 20 are associated with a first linear drive 30 that may be configured as a spindle drive, for example. For example, the linear drive 30 is configured as a threaded spindle drive with a threaded spindle 31 that is associated with a drive motor 32. The latter rotates the threaded spindle 31 for longitudinally positioning the first slide 25 along the two guide rails 22, 23. A machine control 33 is disposed for the controlled actuation of the motor 32.
[0034] The third linear guide 21 is associated with a second linear drive 34 that also comprises a threaded spindle 35 and a drive motor 36 for driving the threaded spindle 35 in a rotating manner. The threaded spindle 35 that is arranged parallel to the threaded spindle 31 and, other than that, also parallel to the guide rails 22, 23, 24, may have the same diameter or, as preferred, also a smaller diameter than the threaded spindle 31. The drive motor of the threaded spindle 35 may display a smaller maximum torque than the drive motor 32. Preferably, the two linear drives 30, 34 are the same in view of acceleration and tracking error. To do so, the ratio of maximum drive torque of the drive motor 32 and the mass of the slide 25, as well as the components supported by it, in particular the rotary positioner 27, are essentially the same as the ratio of maximum torque of the drive motor 36 and the second slide 26. When the masses are allocated to the drives for forming the aforementioned ratios, the first slide 25 is allocated half of the mass of the workpiece support 16 and, optionally, the rotary table 17. The other half of the mass of the workpiece support 16 and, optionally, the rotary table 17 is allocated to the slide 26.
[0035] Both drive motors 32, 36 may be provided with a rotary encoder 37, 38 that is connected to the machine control 33 in order to allow a control of the rotary motion of the respective drive motor 32, 36. Furthermore, the first linear drive 30, as well as the second linear drive 34, may be provided with a linear distance measuring device 39, 40 that precisely determines the linear position of the slides 25 and 26, respectively, and delivers the measured values to the machine control 33.
[0036] The machine tool 10 described so far operates as follows:
[0037] During operation, the control device 33 controls the drive motors 32, 36 for the linear positioning of the two slide 25, 26, as well as the rotary positioner 27 in order to define the angular position of the workpiece support 16. Furthermore, the machine control 33 is provided with the rotary table 17 as well as the not specifically illustrated positioning device for the slide 15 and the rotary drive device for the machine spindle 12 in order to control all axes of the machine tool 10 consistent with the specified program. In doing so, the drive motors 32, 36 can be actuated synchronously in such a manner that both slides 25, 26 move synchronously in Z-direction and are positioned as desired. In doing so, the control is set up to avoid mutual tracking between the slides 25, 16 and thus a tilting moment load of the rolling bearing 28, 29. This applies to the acceleration and deceleration phases, as well as, in particular, in the event of a machine crash in whichas a consequence of a tool fracture, programming error or other harmful factors of influencea collision is noted between the tool or working spindle 12 and the workpiece or workpiece support 16 or the rotary table 17. In the event of such a crash situation, particularly strong forces are introduced in particular also in Z-direction. These are transmitted by both rolling bearings 28, 29 as almost only a radial bearing load on the two slides 25, 26. This load is largely non-damaging to suitable radial bearings. The two slides 25, 26 and the connected linear drives 30, 34 receive the force essentially symmetrically and thus transmit it in a non-damaging manner to the base frame.
[0038] The machine tool according to the invention comprises a workpiece support 16 that is held so as to be pivotable about an A-axis. In doing so, the workpiece support 16 is held asymmetrically to the extent that it is connected only on one side to a rotary positioner 27. However, both sides are held on the slides 25, 26, each being connected to a linear drive 30, 34. The slide 26 without rotary drive runs only on one guide rail 24, whereas the slide 25 with the rotary positioner 27 runs on two guide rails 22, 23.
[0039] In view of the Z-acceleration, the workpiece support 16 is guided symmetrically. This means that the quotient of effective driving force and mass connected to the respective linear drive is (substantially) the same for both linear drives. The result is a compact and still highly robust machine concept.
LIST OF SIGNS:
[0040] 10 Machine tool [0041] 11 Base frame [0042] 12 Working spindle [0043] 13 Tool receptacle [0044] 14 Axis of rotation [0045] 15 Slide [0046] 16 Workpiece support [0047] 17 Rotary table [0048] 18 Positioning device [0049] 19 First linear guide [0050] 20 Second linear guide [0051] 21 Third linear guide [0052] 22 First guide rail [0053] 23 Second guide rail [0054] 24 Third guide rail [0055] 25 First slide [0056] 26 Second slide [0057] 27 Rotary positioner [0058] 28 Rolling bearing of the slide 25 [0059] 29 Rolling bearing of the slide 26 [0060] 30 First linear drive [0061] 31 First threaded spindle [0062] 32 Drive motor of the threaded spindle 32 [0063] 33 Machine control [0064] 34 Second linear drive [0065] 35 Second threaded spindle [0066] 36 Drive motor of the threaded spindle 35 [0067] 37 First rotary encoder [0068] 38 Second rotary encoder [0069] 39 Linear distance measuring device [0070] 40 Linear distance measuring device