The invention relates to a device for employment in a machine tool as well as to a machine tool.
Machine tools are important production devices in the manufacturing industry.
It is disadvantageous in the construction of the device 5 that by provision of the tube 12, the rotational freedom of the second unit 10 and thereby of the motor spindle 6 with respect to the first unit 9 is restricted. This is illustrated in
Therefore, the object underlying the invention is to specify a device, by which the above described problems can be avoided.
For solving this object, the invention provides a device according to claim 1 as well as a machine tool according to claim 8. Advantageous configurations or developments of the inventive idea are found in the dependent claims.
According to an embodiment of the invention, a device for employment in a machine tool is provided, including: a first unit; a second unit connected to the first unit, wherein the first unit is rotatable around a rotational axis relative to the second unit; a motor spindle connected to the second unit; a line feed-through extending along the rotational axis from the first unit into the second unit; lines extending from the interior of the first unit through the line feed-through as well as through the second unit into the motor spindle; and a line guiding device formed in the first unit and serving for guiding a part of the lines disposed in the first unit immediately in front of the line feed-through. The line guiding device is formed in a plane (or “layer”), which is oriented perpendicularly to the rotational axis. The line guiding device feeds the lines within the plane/layer upon rotation of the second unit with respect to the first unit such that twisting of the lines in the region of the line feed-through caused by the rotation is reduced or avoided.
According to an embodiment of the invention, the line guiding device is guidable back and forth by rotation of the second unit with respect to the first unit between a first state, in which the line guiding device forms an arcuate segment, and a second state, in which the line guiding device forms a spiral.
According to an embodiment of the invention, the line guiding device has a linking of guide elements rotatable relative to each other.
According to an embodiment of the invention, a first range of the lines located at an end of the line feed-through facing the second unit or in the second unit, is fixedly connected to the second unit such that a first rotation angle β of the first range of the lines with respect to the rotational axis D corresponds to a rotation angle with respect to the rotational axis D, by which the second unit is rotated with respect to the first unit, wherein the lines can freely move with respect to the first unit within the line feed-through.
According to an embodiment of the invention, a second range of the lines located at an end of the line feed-through facing the first unit or in the first unit is rotatable independently of the first rotation angle β by a second rotation angle α with respect to the rotational axis D by means of the line guiding unit, such that a difference between the first rotation angle β and the second rotation angle α corresponds to the amount of twisting of the lines 16 within the line feed-through 15. In this context, “independently” means that the line guiding device can be configured such that rotation of the second unit with respect to the first unit does not necessarily cause automatic feeding of the lines by the line guiding device and thus rotating the second range of the lines. For example, the feeding can be selectively activated upon need if large twistings are to be expected. The feeding can for example be effected such that the first rotation angle β corresponds to the second rotation angle α. Alternatively, the feeding can be effected such that the first rotation angle β is greater than the second rotation angle α if the twisting accepted thereby is still tolerable.
According to an embodiment of the invention, the lines can be fed by means of the line guiding device such that a rotation angle of the lines at an end of the line feed-through facing the first unit corresponds to a rotation angle of the lines within the second unit. Since the two effects “cancel” each other, a (relative) twisting of the lines can be avoided.
According to an embodiment of the invention, the line feed-through has a first tubular element extending along the rotational axis at the end facing the first unit, at the end of which facing away from the second unit a second tubular element is pivotably supported, wherein the orientation of the second tubular element has at least one component extending perpendicularly to the rotational axis, wherein the second tubular element is pivotably supported with respect to a plane, which extends perpendicularly to the rotational axis and through the end of the line feed-through facing the first unit, and wherein the lines extend through the first tubular element and the second tubular element.
According to an embodiment of the invention, the first tubular element, the second tubular element as well as the line guiding device are in operative connection to each other such that the second tubular element upon rotation of the second unit with respect to the first unit by an angle α, is also rotated by the angle α. Thereby, twisting of the lines within the first and the second tubular element (in particular at the interface thereof) can be avoided.
According to an embodiment of the invention, the lines have at least one of the following lines: a line for supplying lubrication for the bearings of the motor spindle, a line for conducting a temperature signal from temperature sensors of the motor spindle, a line for conducting sealing air, a line for conducting blowing air, a line for conducting cooling lubricant, a line for conducting cooling water for the motor spindle, a line for conducting hydraulic fluid for the clamping device, a line for conducting electric current for a working room lamp, a line for conducting a vibration signal from vibration sensors of the motor spindle, a line for conducting a rotary encoder signal of a rotary encoder of the motor spindle, a line for conducting electric current for a drive of the motor spindle and a grounding line for the motor spindle.
The device according to one of the above mentioned embodiments can be employed in a machine tool. In particular, the device can be mounted on a carriage of the machine tool, which is movable along a guide rail.
In the following, the invention is explained in more detail in exemplary embodiment with reference to the figures. There show:
In the figures, identical or mutually corresponding ranges, components or component groups are denoted with the same reference numbers. Furthermore, it is to be mentioned that the drawings are schematic in nature, that is do not have to be to scale.
The device 5′ has: a first unit 9; a second unit 10 connected to the first unit 9, wherein the first unit 9 is rotatable around a rotational axis D relative to the second unit 10; a motor spindle 6 rigidly connected to the second unit 10; a line feed-through 15 extending along the rotational axis D from the first unit 9 into the second unit 10; lines 16 extending from the interior of the first unit 9 through the line feed-through 16 as well as through the second unit 10 into the motor spindle 6; and a line guiding device 17 (also referred to as a cable carrier or energy carrying chain) formed in the first unit 9 and serving for guiding a part of the lines 16 disposed in the first unit 9 immediately in front of the line feed-through 15. The part of the line feed-through 15 seen in
In other words: if the motor spindle 6 rotates by mutual rotation of the first unit 9 and the second unit 10 in a direction indicated by the arrow R1, in order to arrive at the rotational state shown in
In this embodiment, the line guiding device 17 has a linking of guide elements 23 rotatable relative to each other. The guide elements 23 can mutually rotate around axes 27 oriented parallel to the rotational axis D. In this manner, the linking of the guide elements overall forms a type of cage, in which the lines 16 are provided.
The extent of feeding the lines 16 can turn out differently: thus, the feeding of the lines 16 can be effected such that twisting of the lines 16 in a region between the end 22 of the line guiding device 17 and an input 25 of the line feed-through 15 is accepted to a certain extent; in this case, the feeding can turn out slightly less than the rotation of the second unit 10 with respect to the first unit 9. If twisting of the lines 16 is to be completely avoided, thus, the feeding of the line guiding device 17 should correspond to the rotation of the second unit 10 with respect to the first unit 9.
In order to prevent the line guiding device 17 from moving in uncontrolled manner within the first device 9 upon rotation of the second unit 10 with respect to the first unit 9, in this embodiment, a belt 24 is provided, which has an arcuate shape, to the inside of which the line guiding device 17 clings in the unrolled state (that is in the arcuate state).
In
If the second unit 10 rotates with respect to the first unit 9 along the sectional plane 11, the lines 16 rotate with the second unit due to their attachment to the second unit 10. Thereby, the lines 16 also rotate within the feed-through 15 relative to the first unit 9. In order to prevent twisting of the lines 16 within the feed-through 15 by this rotation, according to the invention, an upper range 45 of the lines 16 (located above the feed-through 15) is at least partially fed with the rotation of the second unit 10. The feeding of the lines 16 can for example be effected by pivoting the second tubular element 26 (in which the lines 16 extend) with respect to the first unit 9 (parallel to the sectional plane 11), as shown in
The feed-through 15 can have a first tubular element 41 at its end facing the first unit 9 (schematically indicated by dashed lines), the lower end 42 of which is fixedly connected to the first unit 9 and on the upper end 43 of which the second tubular element 26 is pivotably supported. Herein, the second tubular element 26 is supported such that a part 44 of the second tubular element 26 extending perpendicularly to the rotational axis D is pivoted in a plane extending perpendicularly to the rotational axis D. The first tubular element 41 can be omitted, if appropriate.
In
The lines 16 guided by the line guiding device 17 can for example have the following lines: a line for supplying lubrication for the bearings of the motor spindle 6, a line for conducting a temperature signal from temperature sensors of the motor spindle 6, a line for conducting sealing air, a line for conducting blowing air, a line for conducting cooling lubricant, a line for conducting cooling water for the motor spindle 6, a line for conducting hydraulic fluid (for example for a clamping device in the motor spindle 6), a line for conducting electric current for a working room lamp, a line for conducting a vibration signal from vibration sensors of the motor spindle 6, a line for conducting a rotary encoder signal of a rotary encoder of the motor spindle 6, a line for conducting electric current for a drive of the motor spindle 6 and a grounding line for the motor spindle 6. Lines for other purposes can also be employed.
The embodiments of the device 5′ shown in
Number | Date | Country | Kind |
---|---|---|---|
20 2011 108 153 U | Nov 2011 | DE | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/EP2012/073134 | 11/20/2012 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2013/076097 | 5/30/2013 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
4069741 | Ewertowski | Jan 1978 | A |
4652190 | Corsi | Mar 1987 | A |
4793203 | Staggl | Dec 1988 | A |
5391026 | Wu | Feb 1995 | A |
5533846 | Geissler | Jul 1996 | A |
5697270 | Link | Dec 1997 | A |
5813283 | Chen | Sep 1998 | A |
20040134050 | Geissler | Jul 2004 | A1 |
20050212193 | Omori et al. | Sep 2005 | A1 |
20100266358 | Hiramoto | Oct 2010 | A1 |
20100322734 | Tatsuda | Dec 2010 | A1 |
20110058913 | Brieden | Mar 2011 | A1 |
Number | Date | Country |
---|---|---|
1111182 | Nov 1995 | CN |
27 27 434 | Oct 1978 | DE |
4320649 | Jan 1995 | DE |
195 04 369 | Aug 1996 | DE |
10 2006 011 568 | Sep 2007 | DE |
60 2005 003 253 | Sep 2008 | DE |
0 664 176 | Jul 1995 | EP |
EP 1405691 | Apr 2004 | FR |
A-60-167728 | Aug 1985 | JP |
A-61-121846 | Jun 1986 | JP |
07001206 | Jan 1995 | JP |
A-2001-198749 | Jul 2001 | JP |
A-2002-273630 | Sep 2002 | JP |
2009262274 | Nov 2009 | JP |
DE 19833959 | Feb 2000 | TW |
WO 9215416 | Sep 1992 | WO |
Entry |
---|
JP 07-001206 Machine Translation, pp. 3-5, Mar. 30, 2016. |
Dec. 24, 2014 Office Action Issued in Chinese Application No. 201280057052.1. |
International Search Report issued in International Application No. PCT/EP2012/073134 mailed Jan. 7, 2013. |
International Preliminary Report on Patentability issued in International Application No. PCT/EP2012/073134 issued May 27, 2014. |
Sep. 17, 2015 Office Action issued in Chinese Patent Application No. 201280057052.1. |
Mar. 10, 2016 Office Action issued in Chinese Patent Application No. 201280057052.1. |
Number | Date | Country | |
---|---|---|---|
20140300065 A1 | Oct 2014 | US |