Tool for machining workpieces
09815131 · 2017-11-14
Assignee
Inventors
Cpc classification
B23D77/04
PERFORMING OPERATIONS; TRANSPORTING
Y10T407/227
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T408/885
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B23C5/2472
PERFORMING OPERATIONS; TRANSPORTING
B23D2277/068
PERFORMING OPERATIONS; TRANSPORTING
Y10T408/85995
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T408/858
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B23D77/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A reamer or similar tool comprising a cutting device having a cutting edge, a clamping device, whereby the cutting device can be clamped to the main body of the tool, an adjusting device that interacts with the cutting device, for adjusting the machining diameter of the tool, and a guiding device comprising an elongated guiding element, which interacts with an elongated guiding receptacle such that the cutting device can be guided in a sliding manner perpendicularly to the center axis during a displacement when the adjusting device is activated. The guiding element and the guiding receptacle extend perpendicularly to the center axis of the main body of the tool. The guiding device of the tool has a single guiding element and/or a single guiding receptacle, and the guiding element has an elongated elevation and the guiding receptacle has an elongated recess.
Claims
1. A tool for machining holes in workpieces, the tool comprising: a main body having a center axis; at least one cutting device having at least one geometrically determined cutting edge; a clamping device for securely clamping the cutting device to the main body of the tool; an adjusting device which interacts with the cutting device for adjusting a machining diameter of the tool, and a guiding device, the guiding device including an elongated guiding element which interacts with an elongated guiding receptacle such that the cutting device is guided in a sliding manner perpendicular to the center axis during a displacement when the adjusting device is activated, the guiding element is provided on one of the cutting device and the main body of the tool and the guiding receptacle is provided on the other of the cutting device and the main body of the tool, the guiding element and the guiding receptacle extending perpendicular to the center axis of the main body of the tool, the guiding device has at least one of a single guiding element and a single guiding receptacle, and the guiding element has an elongated elevation and the guiding receptacle has an elongated recess, wherein the cutting device has a base surface and is supported by a three-point contact on the main body of the tool in a region of the base surface, the cutting device has at least one supporting surface arranged at a distance from the at least one of the single guiding element and the single guiding receptacle, the at least one supporting surface provided in the region of the base surface which encloses an angle with the base surface and merges into the base surface via a bend, and the cutting device is supported on a contact surface on the main body by the supporting surface or the bend, wherein the supporting surface is angled with respect to the base surface such that the cutting device is only supported in a region of the bend on the contact surface.
2. The tool according to claim 1, wherein the at least one of the single guiding element and single guiding receptacle extends over at least one of a region of a width of the cutting device and the contact surface of the main body, against which the cutting device is pressed by the clamping device.
3. A tool for machining holes in workpieces, the tool comprising: a main body having a center axis; at least one cutting device having at least one geometrically determined cutting edge; a clamping device for securely clamping the cutting device to the main body of the tool; an adjusting device which interacts with the cutting device for adjusting a machining diameter of the tool, and a guiding device, the guiding device including an elongated guiding element which interacts with an elongated guiding receptacle such that the cutting device is guided in a sliding manner perpendicular to the center axis during a displacement when the adjusting device is activated, the guiding element is provided on one of the cutting device and the main body of the tool and the guiding receptacle is provided on the other of the cutting device and the main body of the tool, the guiding element and the guiding receptacle extending perpendicular to the center axis of the main body of the tool, the guiding device has at least one of a single guiding element and a single guiding receptacle, and the guiding element has an elongated elevation and the guiding receptacle has an elongated recess, wherein the cutting device has a base surface and is supported by a three-point contact on the main body of the tool in a region of the base surface, the cutting device has at least one supporting surface arranged at a distance from the at least one of the single guiding element and the single guiding receptacle, the at least one supporting surface provided in the region of the base surface which encloses an angle with the base surface and merges into the base surface via a bend, and the cutting device is supported on a contact surface on the main body by the supporting surface or the bend, wherein the at least one of the single guiding element and single guiding receptacle extends over at least one of the region of a width of the cutting device and the contact surface of the main body, against which the cutting device is pressed by the clamping device, wherein the at least one of the single guiding element and guiding receptacle extends over an entirety of the width.
4. The tool according to claim 1, wherein the guiding device is a single guiding element including a pin inserted into the main body of the tool or into the cutting device, a longitudinal axis of which extends perpendicular to the center axis of the main body of the tool.
5. The tool according to claim 1, wherein the at least one of the single guiding element and the single guiding receptacle has two guiding regions which are arranged at a distance from one another and extend at least to an edge of the cutting device or a contact surface of the main body of the tool.
6. The tool according to claim 1, wherein the adjusting device acts on a side surface of the cutting device, and a three-point contact is realized by two contact surfaces in a region of the base surface of the cutting device and by the adjusting device which acts on the side surface of the cutting device.
7. The tool according to claim 1, wherein the cutting device has a cutter plate which incorporates the at least one geometrically determined cutting edge and a receptacle which accommodates the at least one cutter plate.
8. The tool according to claim 7, wherein the at least one of the single guiding element and the single guiding receptacle is realized on a base surface of the receptacle, the base surface of the receptacle being the base surface of the cutting device.
9. The tool according to claim 7, wherein the cutter plate has an underside which rests on a base of a recess in the receptacle, and a top side provided with at least one clamping slot.
10. The tool according to claim 9, wherein the clamping device has a clamping claw with a clamping lip which engages in the at least one clamping slot of the cutter plate.
11. The tool according to claim 9, wherein, in an installed position, the at least one clamping slot of the cutter plate runs at an angle to an imaginary line which is perpendicular to the center axis of the main body of the tool.
12. The tool according to claim 1, wherein the tool is a fine machining tool.
13. The tool according to claim 1, wherein the tool is a reamer.
14. A tool for machining holes in workpieces, the tool comprising: a main body having a center axis; at least one cutting device having a cutting edge; a clamping device for securely clamping the cutting device to the main body of the tool; an adjusting device which interacts with the cutting device for adjusting a machining diameter of the tool, and a guiding device including an elongated guiding element which interacts with an elongated guiding receptacles such that the cutting device is guided in a sliding manner perpendicular to the center axis during a displacement when the adjusting device is activated, the guiding element is provided on one of the cutting device and the main body of the tool and the guiding receptacle is provided on the other of the cutting device and the main body of the tool, the guiding element and the guiding receptacle extending perpendicular to the center axis of the main body of the tool, wherein the cutting device has a base surface and is supported by a three-point contact on the main body of the tool in a region of the base surface, the cutting device has at least one supporting surface arranged at a distance from the at least one of the single guiding element and the single guiding receptacle, the at least one supporting surface provided in the region of the base surface which encloses an angle with the base surface and merges into the base surface via a bend, and the cutting device is supported on a contact surface on the main body by at least one of the supporting surface and the bend, wherein the guiding receptacle is a slot in the base surface and wherein the slot is semicircular and has first and second regions defining first and second guiding surfaces, respectively, the first and second guiding surfaces spaced apart from one another.
15. The tool according to claim 14, wherein the guiding device has at least one of a single guiding element and a single guiding receptacle, and the guiding element has an elongated elevation and the guiding receptacle has an elongated recess.
16. The tool according to claim 14, wherein the supporting surface slopes from the bend with respect to the base surface such that an end of the supporting surface is set back from the base surface.
17. The tool according to claim 14, wherein the at least one supporting surface and the base surface are both planar and meet at a line defined by the bend.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8)
(9) The tool head 3 has a main body 9 with a circumferential surface 11 in which the at least one cutting device 13 and at least one guiding part 15 are fitted. As a rule, a plurality of guiding parts, also referred to as guiding strip, are fitted in the main body 9, which absorb the forces introduced into the tool 1 by the cutting device 13 when a workpiece is machined and guide the tool 1 accurately in the machined hole.
(10) The basic construction of a tool shown here or a reamer is known and is therefore not discussed in more detail here.
(11) The cutting device 13 has at least one geometrically determined cutting edge which is used to machine the surface of the hole. The cutting device 13 is securely clamped by means of a clamping device 17 in the main body 9 of the tool 1.
(12) With the help of an adjusting device, which is not visible in
(13) The tool 1 shown here has a guiding device 19, which comprises a guiding element 21 and is used to guide the cutting device 13 when the machining diameter of the tool 1 is adjusted so that the cutting device 13 remains in an exactly specified relative rotational position with respect to the main body 9 of the tool 1 while the diameter is adjusted.
(14)
(15) In the diagram according to
(16) In this enlarged diagram, it can be seen that the cutting device 13 has a geometrically determined cutting edge 23. This is used to remove chips from the wall of a hole.
(17) Basically, the cutting device 13 can be made in one piece and incorporate the cutting edge 23. When the cutting edge 23 wears, the complete cutting device 13 must then be replaced.
(18) Particularly preferably, it is therefore provided that the cutting device 13 is designed in two parts and has a cutter plate 25 which is accommodated in a recess 27 which is realized in a receptacle 29. In the exemplary embodiment shown here, the cutter plate 25 is hexagonal in shape and rests with its underside 31 on the bottom 33 of the recess 27. At least one clamping slot 37 is provided in its top side. With the hexagonal cutter plate 25 shown here, three clamping slots 37 arranged in the form of a star are provided as is usual with cutter plates of this kind. The contour of the recess 27 is chosen such that the cutter plate 25 is retained in the recess 29 so that it cannot rotate and is securely supported on at least two supporting surfaces which interact with corresponding side surfaces of the cutter plate 25.
(19) It can be seen from
(20) In the following, it is assumed that—as shown—the guiding element 21 is provided on the main body 9 and the guiding receptacle 39 on the cutting device 13.
(21) Here, the guiding element 21 is fitted, preferably pressed, into a contact surface 41, specifically into a slot 43 in the main body 9. However, the decisive factor is only that the guiding device 19 has an elongated guiding element on the one hand and an elongated guiding receptacle on the other. The guiding element can be realized, for example, by an elevation on the contact surface 41 which is carved out of the contact surface 41 by grinding, milling or laser cutting. Other methods for producing an elevation of this kind, wire erosion or similar, can be used here.
(22) In
(23) Adjoining the contact surface 41 is a side surface 45 which borders a recess 47 in which the cutting device 13 can be fitted in the main body 9 of the tool 1. A recess with an adjusting wedge 49, which is part of an adjusting device that is discussed in more detail below, can be seen in the side surface 45.
(24) The clamping device 17 has a known clamping claw 51 which engages with a clamping lip 53 on the top side 35 of the cutting plate 25, preferably in a clamping slot 37, such as is provided in the exemplary embodiment of the cutting plate 25 shown here.
(25)
(26)
(27)
(28) The guiding element 21 of the guiding device 19, which in the exemplary embodiment shown here is realized in the form of a pin, can be seen here.
(29) It can be seen from
(30) Here, the adjusting device 55 and the guiding device 19 are at a distance from one another—in
(31) The cutting edge 23 identified in
(32) The plan view of the cutter plate 25 chosen in
(33) In a second schematic diagram for clarifying the interaction of elements of the tool 1,
(34) It can be seen here that the cutting device 13 has an active cutting edge 23 which projects beyond the left-hand outer surface of the cutting device 13 or its receptacle 29 and can therefore engage with the surface of a hole to be machined.
(35) The guiding element 21 of the guiding device 19 can also be seen here. The diagram according to
(36) When the adjusting device 55 is activated, a compressive force acts via the adjusting wedge 49 on the side surface 59, wherein the center axis 63 of the adjusting device 55 encloses an angle with a plane in which the side surface 59 lies. This results in a force component which presses perpendicularly on the side surface 59 and the cutting device 13 in a horizontal direction to the left according to the diagram in
(37)
(38) It can also be seen here that the recess 27, which accommodates the cutter plate 25 (not shown here), is formed in the top side 67 of the receptacle 29.
(39) The guiding receptacle 39 of the guiding device 19, which here is in the form of slot 71 in the base surface 69, can be seen in this diagram. Here, the slot 71 is semicircular in shape and has two guiding regions which lie at a distance from one another and are formed as guiding surfaces 73 and 75, which are separate from one another—viewed in the axial direction of the slot 71—as a depression is made in the slot 71 which cuts the base of the slot 71 so that this surface is not continuous but includes the two guide surfaces 73 and 75 which are arranged at a distance from one another.
(40) The guiding surfaces 73 and 75 extend over a region of the width of the cutting device 13 or the base surface 69 and preferably lie at the ends of the slot 71 so that, viewed in the longitudinal direction of the slot 71, this results in guiding surfaces 73 and 75 which lie as far out as possible so that the cutting device 13 is particularly well secured against tilting when the active cutting edge 23 is radially adjusted.
(41) Particularly preferably, the cutting device 13 or, here, its receptacle 29, has a supporting surface 79 provided in the region of the base surface 69 which encloses an angle with the base surface 69 and merges into the base surface 69 via a bend 81. In doing so, the supporting surface 79 in the diagram chosen in
(42) In the region of the base surface 69, two supporting regions of the cutting device 13 are therefore realized in the region of the guiding receptacle 39: it is supported by means of the guiding surfaces 73 and 75 on the guiding element 21 (not shown here). In the fitted state, the cutting device 13 is additionally supported on the contact surface 41 on the main body 9 of the tool 1 by means of the supporting surface 79, which is shown in
(43) In a modified exemplary embodiment of the cutting device 13, it is provided that, in the region of the bend 81, the supporting surface 79 is angled with respect to the base surface 69 such that, in the clamped state of the cutting device 13, a three-point contact is realized in the following manner:
(44) The cutting device 13 is supported in the region of its guiding receptacle 39, in particular with the two guiding surfaces 73 and 75, on the guiding element 21, in addition the bend 81 rests on the contact surface 41 on the main body 9 of the tool 1 such that the bend 81 forms the third point of the three-point contact. The supporting surface 79 is angled with respect to the base surface 69 in such a way that, in this exemplary embodiment, it no longer rests on the contact surface 41 on the main body 9 of the tool 1.
(45) A further three-point contact results from the following:
(46) The cutting device 13 rests with its guiding receptacle 39, in particular with the two guiding surfaces 73 and 75, on the guiding element 21 (not shown here) which, as explained with regard to the preceding figures, is in the form of a pin. This therefore results here in two contact surfaces of the cutting device 13. If these, as can be seen from
(47)
(48) The cutting device 13, which preferably comprises the receptacle 29 and a cutter plate 25, is securely clamped by the clamping device 17 to the main body 9 of the tool 1 (not shown here), wherein, in this diagram, the clamping device 17 has not been finally activated so that the clamping device 13 is not yet clamped. The guiding device 19 with the guiding element 21, which runs perpendicular into the plane of the drawing of
(49) Preferably, it is provided that the guiding element 21 has a curved outer surface 85, preferably in the form of a circular arch, which projects beyond the mounting surface 41 depicted in
(50) Preferably, it is provided that the guiding receptacle 39 is smaller than the guiding element 21, that is to say the radius of curvature of the inner surface 87 is less than the radius of curvature of the outer surface 85. As a result, the guiding receptacle 39 lies against the guiding element with two contact surfaces 89 and 91, wherein the contact surfaces 89 and 91 are more or less linear and run perpendicular to the plane of the diagram of
(51) The inner surface 87 of the guiding receptacle 39 can also be realized by a prism or similar, in particular also in that the slot 71 is V-shaped and is sufficiently large that the guiding element 21 rests more or less linearly on the V-shaped aligned surfaces of a slot 71 of this kind and, as a result, contact surfaces, which then likewise run perpendicular to the plane of the diagram of
(52) Basically, it is also possible to realize the guiding element 21 in the form of an elongated polygonal element so that, with an appropriate inner surface of a guiding receptacle 39, a plurality of contact surfaces are formed at a distance from one another.
(53) Finally,
(54) The clamping device 17 exerts a force which acts perpendicularly on the top side of the cutting device 13, here the top side 35 of the cutter plate 25, via the clamping claw 51 and via the clamping lip 53, such that the cutting device 13 is pressed against the contact surface 41 shown in
(55) From the comments relating to
(56) In this regard, reference is again made to
(57) The geometrically determined cutting edge 23 has two regions, specifically a first region which slopes in the feed direction, specifically in the direction of the center axis 7 of the tool 1, when the tool 1 is advanced as indicated by a double arrow D during the machining of a hole in a workpiece. This first region is referred to as major cutting edge H.
(58) The cutting edge 23 has a second region adjoining the major cutting edge H, which slopes in the opposite direction to the feed direction indicated by the double arrow D in the direction of the center axis 7 (not shown in
(59) The slope of the minor cutting edge N with respect to the imaginary horizontal is described as taper. The definition of major and minor cutting edge and of taper is basically known and is therefore not discussed in more detail here.
(60) With the tool 1 according to the disclosure, the taper is defined with the cutter plate 25 arranged in a fixed rotational relationship in the receptacle 29 in a defined rotational position. It is therefore indeed possible to design the recess 27, which essentially has an inner contour which corresponds to the outer contour of the cutter plate 25, such that the cutter plate 25 is also arranged in a different position than that shown in
(61) As the cutting device 13, that is to say the receptacle 29, due to the accurate guiding by the guiding device 19, does not carry out any tilting movement whatsoever when an adjusting force is applied by the adjusting device 55, a once specified taper of the minor cutting edge N of the cutting edge 23 is also retained when adjusting and readjusting the hole diameter of the tool 1.
(62) It can be seen here that any play in the region of the guiding device 19 is removed by pressing the guiding receptacle 39 onto the guiding element 21, thus enabling the diameter to be adjusted without any tilting, wherein tilting is also reliably avoided when the cutting device 13 is loaded during the deployment of the tool 1.
(63) If a cutter plate 25 is worn in all its corner regions, it can easily be replaced. If a new identical cutter plate 25 is fitted into the receptacle 29, the once specified taper is retained at all times.
(64) In doing so, it is also possible to use different receptacles with differently oriented recesses in which identical cutter plates can be fitted. Different tapers can be specified for each receptacle as a result of the different orientation of the recess.
(65) The cutting device 13 explained here is also characterized in that, when a cutting edge 23 wears, the whole cutting device 13 does not have to be replaced but only a part thereof, specifically the cutter plate 25 fitted in a recess 27 of the receptacle 29.
(66) If the receptacle 29 should be damaged if the cutter plate 25 breaks, then, as a rule, the main body 9 of the tool 1 remains intact, so that, in this case, only the replacement of the cutter plate 25 and the receptacle 29 is required in order to be able to use the tool 1 once more.
(67) A significant aspect with the tool 1, which has been explained here with reference to
(68) Three-point contacts are mentioned several times in the present description. This implies that the cutting device 13 is supported in the region of these three-point contacts, specifically in the above-mentioned regions. The support can also be linear, for example in the region of the guide surfaces 73 and 75. This also applies to the exemplary embodiment in which the cutting device 13 is supported by means of the supporting surface 79 on the contact surface 41 of the main body 9. In particular, this applies in the case where the supporting surface 79 is angled with respect to the base surface 69 to such an extent that the cutting device 13 is only supported in the region of the bend 81 on the contact surface 41.
(69) It is therefore not a prerequisite for achieving the advantages described here that an ideal point contact is actually realized.
(70) The foregoing description of the embodiments has been provided for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure. Individual elements or features of a particular embodiment are generally not limited to that particular embodiment, but, where applicable, are interchangeable and can be used in a selected embodiment, even if not specifically shown or described. The same may also be varied in many ways. Such variations are not to be regarded as a departure from the disclosure, and all such modifications are intended to be included within the scope of the disclosure.