Drive shaft with insertion device for guiding cooling water
10391674 ยท 2019-08-27
Assignee
Inventors
Cpc classification
F16C2352/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23Q11/127
PERFORMING OPERATIONS; TRANSPORTING
B23Q11/1015
PERFORMING OPERATIONS; TRANSPORTING
B28D7/02
PERFORMING OPERATIONS; TRANSPORTING
F16C3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B28D7/02
PERFORMING OPERATIONS; TRANSPORTING
B23Q11/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A drive shaft for a machine tool, for example a core drilling machine, able to be connected to a drilling tool, in particular a core bit, is disclosed. The drive shaft contains a cavity which substantially extends over the whole length of the drive shaft and along the rotational axis. The cavity contains at least one inflow opening where, through the at least one inflow opening, water can be fed along the drive shaft into the drilling tool. In the drive shaft, an insertion device is provided in the cavity, through which water is guided for cooling the drive shaft, firstly, in a first direction and then in a second direction, where the water comes into direct contact with the inner side of the cavity at least in the first direction.
Claims
1. A drive shaft for a machine tool which is connectable to a drilling tool, comprising: a cavity, wherein the cavity substantially extends over an entire length of the drive shaft and along a rotational axis of the drive shaft and wherein the cavity contains an inflow opening through which water is feedable along the drive shaft into the drilling tool; and an insertion device disposed in the cavity, wherein the water is guidable through the insertion device to cool the drive shaft first in a first direction and then in a second direction, wherein the water has direct contact with an inner wall of the cavity at least in the first direction; wherein the machine tool is a core drill and wherein the drilling tool is a core bit.
2. The drive shaft according to claim 1, wherein the insertion device contains a guide element with a first surface for guiding the water in the first direction and a second surface for guiding the water in the second direction.
3. The drive shaft according to claim 2, wherein the guide element is configured as a bent flat profile and wherein the first surface has a convex shape and the second surface has a concave shape.
4. The drive shaft according to claim 2, wherein the guide element has a longitudinal fold, wherein the first surface is positioned along an outer side of the longitudinal fold, and wherein the second surface is positioned along an inner side of the longitudinal fold.
5. The drive shaft according to claim 2, wherein the guide element is configured as a tube, wherein the first surface is achieved by an outer wall of the tube and the second surface is achieved by an inner wall of the tube.
6. The drive shaft according to claim 1, wherein the guide element is configured spirally along the cavity.
7. The drive shaft according to claim 1, wherein the guide element is configured as a planar flat profile.
8. The drive shaft according to claim 1, further comprising a holding device on the insertion device, wherein the holding device is engageable in a fixing element on the cavity such that a relative motion between the insertion device and the drive shaft is prevented.
9. The drive shaft according to claim 8, wherein the holding device is a spring element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE DRAWINGS
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(27) The core drilling machine 1 essentially comprises a housing 3, an electric motor 4, a transmission 5, a drive shaft 6, a flushing head 7 and a tool holder 8. The electric motor 4, the transmission 5 and a portion of the drive shaft 6 are positioned in the housing 3.
(28) The electric motor 4 generates a torque and transmits it by means of the transmission 5 on the drive shaft 6, which is set in a rotational movement in the rotational direction R. The drive shaft 6 includes a first end 6a and a second end 6b. The first end 6a protrudes from the housing 3. The second end 6b is connected to the transmission 5 to accommodate the torque generated in the electric motor 4.
(29) The tool receptacle 8 is positioned secured against rotation on the first end 6a of the drive shaft 6. Via the tool receptacle 8, the drive shaft 6 is connected secured against rotation to the tool configured as a drill bit 2. The drill bit 2 comprises a first end 2a and a second end 2b.
(30) The flushing head 7 includes a water inlet 9, with which water W can be conveyed for cooling and flushing from a (not shown) water supply to the core drilling machine 1, the drive shaft 6 and in particular to the drill bit 2. On the first (front) end 2a of the drill bit 2, a suction device 10 is positioned, with which the rock and dust is removed from the drill bit 2 by the water in the form of drilling mud.
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(32) In
(33) At the first portion 16 of the guide member 15, a holding device 18 and a partition member 19 are provided.
(34) The holding device 18 is configured in the form of a cantilever arm. The extension arm 18 includes a first section 20 and a second section 21. The first section 20 includes a first end 20a and a second end 20b. The second section 21 also includes a first end 21a and a second end 21b. The first end 20a of the first section 20 is positioned on the second surface 15d of the first portion 16 of the guide member 15. The first section 20 thus projects substantially perpendicular from the second surface 15d. The second end 21b of the first section 20 is connected at a right angle to the first end 21a of the second section 21. The second section 21 thus extends substantially parallel to the second surface 15d of the first portion 16. At the second end 21b of the second portion 21 a stop element 22 is mounted in the form of a hemisphere. The diameter of the hemisphere 22 substantially corresponds to the diameter of the first and second through-bore 12, 13. The holding device 18 serves to position the insertion device 14 in the cavity 11 in such a manner that it is prevented from rotating. For this purpose the stop element 22 is positioned in the second through-bore 13. The second through-bore 13 thus serves as a fixing element, into which the holding device 18 and in particular the stop element 22 can be introduced. By the arrangement of the first section 20 to the second section 21, the second section 21 can be moved relative to the first section 20. The insertion device 14 is thereby resiliently mounted in the cavity 11, since the holding device 18 acts as a spring element, so that even vibration or shock cannot move the insertion device 14 from the established position within the cavity 11.
(35) The partition element 19 is substantially configured in the form of a semi-circular plate and positioned on the first surface 15c in the first portion 16 of the guide member 15 (see
(36) The first surface 15c serves to guide the water, which is conveyed for cooling and flushing into the drive shaft 6, in the first direction A, and the second surface 15d serves to guide the water in the second direction B. By means of the first surface 15c the water is conveyed to the second end 11b of the cavity 11 configured as a blind hole (direction). The water is in this case between the first surface 15c and the casing wall or inner wall 6c of the cavity 11.
(37) When the water has arrived at the second end 15b of the guide member 15, the water enters from the first surface 15c through the gap S between the second end 15b of the guide member 15 and the second end 11b of the cavity 11 to the second surface 15d. Through this gap S, the water may be diverted around the guide member 15 and pass from the first surface 15c to the second surface 15d (see curved arrow in
(38) On the second surface 15d, the water is conveyed to the first end 11a of the cavity 11 configured as a blind hole (direction B). Through the open first end 6a of the drive shaft 6, the water passes through the hollow tool receptacle 8 to the drill bit configured as a drilling tool 2.
(39) When the water is directed along the first and second surface 15c, 15d of the guide member 15, the water absorbs the heat energy of the core drill 1, and in particular of the drive shaft 6, and thus cools the core drilling machine 1 and the drive shaft 6.
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(41) The second embodiment of the insertion device 14 includes an elongated guide member 15 configured as a thin plate. The insertion device 14 includes a first end 14a and a second end 14b. The guide member 15 has a first end 15a, a second end 15b, a first surface 15c and second surface 15d. The first and the second surface 15c, 15d are arranged in parallel. The guide member 15 is configured as a planar flat profile (see
(42) On the guide member 15 according to the second embodiment, a holding device 18 and a partition element 19 are provided. The holding device 18 and the partition element 19 on the insertion device 14 according to the second embodiment correspond to the holding device 18 and the partition element 19 of the insertion device 14 according to the first embodiment.
(43) As already described above, the water is conveyed along the first surface 15c in the direction A and along the second surface 15d in the direction B before it passes out of the open first end 6a of the drive shaft 6 through the hollow tool holder 8 to the drill bit 2.
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(45) The third embodiment of the insertion device 14 includes an elongated guide member 15 configured as a thin plate. The insertion device 14 includes a first end 14a and a second end 14b, The guide member 15 has a first end 15a, a second end 15b, a first surface 15c and second surface 15d. The guide member 15 is configured as a bent flat profile, wherein the first surface 15c has a convex shape and the second surface 15d has a concave shape (cf.
(46) On the guide member 15 a holding device 18 and a partition element 19 are provided. The holding device 18 and the partition element 19 on the insertion device 14 according to the third embodiment correspond to the holding device 18 and the partition element 19 of the insertion device 14 according to the first or second embodiment.
(47) As already described above, the water is conveyed along the first surface 15c in the direction A and along the second surface 15d in the direction B before it passes out of the open first end 6a of the drive shaft 6 through the hollow tool holder 8 to the drill bit 2.
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(49) Furthermore a partition element 19, which substantially includes a first ring 23 and second ring 24, is provided on the guide member 15. The first ring 23 and second ring 24 are positioned one behind the other at the first end 14a of the insertion device 14 (see
(50) The four longitudinal ribs 15e, 15f, 15g, 15h extend from the second ring 24 along the outer side or the first surface 15c of the guide member 15 up to the second end 15d of the guide member 15. The four longitudinal ribs 15e, 15f, 15g, 15h are arranged at a uniform distance from one another.
(51) At the second end 15d of the guide member 15, the four longitudinal ribs 15e, 15f, 15g, 15h flatten radially. When the insertion device 14 is positioned in the blind hole 11 of the drive shaft 6, the four longitudinal ribs 15e, 15f, 15g, 15h extend from the first surface 15c of the guide member 15 to the inner wall of the cavity 11 configured as a blind hole. Moreover, the first ring 23 and the second ring 24 is configured such that each extends from the first surface 15c of the guide member 15 up to the inner wall of the cavity configured as a blind hole 11. By the partition element 19 configured as a first and second ring 23, 24, it is thus ensured that water can flow to the first surface 15c only in the first direction A and not in the second direction B. The four longitudinal ribs 15e, 15f, 15g, 15h provide inter alia that the insertion device 14 is stably positioned in the blind hole 11. Since according to the fourth embodiment, on the insertion device 14 no holding device is provided, which is positioned in the second through-bore 13, water can also pass through the second through-bore 13 into the cavity 11 of the drive shaft 6 as well as to the first surface 15c of the guide member 15. It should be noted that in
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(53) Furthermore, a holding device 18 and a partition element 19 are provided on the guide element 15. The holding device 18 and the partition element 19 on the insertion device 14 according to the fifth embodiment correspond to the holding device 18 and the partition element 19 of the insertion device 14 according to the first, second or third embodiment. It should be noted that in
(54) If the water which is intended for the flushing of the drill bit 2 passes through the first or second through hole 12, 13 into the cavity 11 of the drive shaft 6, the drive shaft 6 and thus the entire core drill 1 can be efficiently cooled. By guiding the water in a first direction A and a second direction B, the water is passed through the cavity 11 of the drive shaft 6 longer, whereby higher heat absorption by the water and thus efficient cooling of the drive shaft 6 and the entire core drill 1 can be produced.