THREADED CUTTER FOR THE PRODUCTION OF A THREAD
20200180056 ยท 2020-06-11
Inventors
Cpc classification
B23G2200/08
PERFORMING OPERATIONS; TRANSPORTING
B23G2200/02
PERFORMING OPERATIONS; TRANSPORTING
B23G1/34
PERFORMING OPERATIONS; TRANSPORTING
B23G2200/16
PERFORMING OPERATIONS; TRANSPORTING
F16B39/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23G2210/48
PERFORMING OPERATIONS; TRANSPORTING
B23G2200/44
PERFORMING OPERATIONS; TRANSPORTING
B23G2200/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention relates to a thread milling cutter for manufacturing an internal thread, wherein the thread milling cutter has at least one section with multiple teeth, wherein a pitch is arranged between every two adjacent teeth, wherein the predominant number of pitches corresponds to a desired pitch and there is at least one pitch that deviates from the desired pitch.
The invention further relates to a method for manufacturing an external thread on a component or an internal thread in a component, wherein, in one step, a thread milling cutter according to the invention is advanced into the wall of the component and in another step, the thread milling cutter is moved along the extent of the wall once and in this way is moved in the axial direction by one lead of a thread turn.
Claims
1-16. (canceled)
17. A thread milling cutter for manufacturing a thread, the thread milling cutter comprising: at least one section with multiple teeth, wherein there are thread pitches between every two adjacent ones of the multiple teeth, wherein a predominant number of the thread pitches corresponds to a desired pitch, at least one first pitch of the thread pitches deviates from the desired pitch, wherein the thread milling cutter has at least one section with multiple teeth and a second section with multiple teeth that are arranged so that the at least one section and the second section are offset axially relative to each other.
18. The thread milling cutter according to claim 17, wherein the at least one first pitch is constructed smaller than the desired pitch.
19. The thread milling cutter according to claim 17, wherein the at least one first pitch is arranged in an area of a first ten teeth of the multiple teeth, counted starting from a free end of the thread milling cutter.
20. The thread milling cutter according to claim 17, wherein at least a first two pitches of the thread pitches, preferably at least one of a first three pitches and a first four pitches of the thread pitches, counted starting from a free end of the thread milling cutter, correspond to the desired pitch.
21. The thread milling cutter according to claim 17, wherein a first pitch of the thread pitches is arranged between a fourth tooth and a fifth tooth of the multiple teeth, counted starting from a free end of the thread milling cutter.
22. The thread milling cutter according to claim 17, wherein a deviation of the at least one first pitch from the desired pitch is approximately in a range from 2% to 20%.
23. The thread milling cutter according to claim 17, wherein a deviation of a first pitch from the desired pitch is approximately in a range of a thread backlash.
24. The thread milling cutter according to claim 17, wherein the thread milling cutter is configured for manufacturing an external thread with means that secure against loosening on a component or an internal thread with means that secure against loosening in the component, in a first step, the thread milling cutter is advanced into a wall of the component and in another step, the thread milling cutter is moved along an extent of the wall once and in this way is moved in an axial direction by a lead of a thread turn.
25. The thread milling cutter according to claim 17, wherein the thread milling cutter is configured for manufacturing an external thread with means that secure against loosening on a component, wherein, in a first step, a component is provided with a diameter that corresponds to an outer diameter of an external thread to be manufactured, and wherein, in a second step, the thread milling cutter is moved onto the component and is oriented with a longitudinal axis of the thread milling cutter parallel to a longitudinal axis of the external thread to be milled, in a third step the thread milling cutter is advanced in a radial direction into a wall of the component, and in a fourth step, the thread milling cutter is moved along an extent of the wall once and in this way is moved in an axial direction by one lead of a thread turn.
26. The thread milling cutter according to claim 17, wherein the thread milling cutter is configured for manufacturing an internal thread in a component, wherein, in a first step, a component with a hole with a diameter that corresponds to a core diameter of the internal thread to be manufactured is provided, and wherein, in a second step, a thread milling cutter is moved into the hole and is oriented with a longitudinal axis of the thread milling cutter parallel to a longitudinal axis of the internal thread to be milled, in a third step, the thread milling cutter is advanced in a radial direction into a wall of the hole, and in a fourth step, the thread milling cutter is moved along an extent of the wall once and in this way is moved in an axial direction by one lead of a thread turn.
27. The thread milling cutter according to claim 22, wherein the range is approximately 5% to 15% of the desired pitch.
28. The thread milling cutter of claim 17, wherein the at least one section with multiple teeth is arranged on a first milling cutter part and the second section with multiple teeth is arranged on a second milling cutter part, wherein the first and second milling cutter parts can be fixed relative to each other at different pitches.
29. The thread milling cutter of claim 28, wherein a spacer is arranged between the first and second milling cutter parts.
30. The thread milling cutter of claim 28, wherein at least one of the first and second milling cutter parts can be placed onto a shaft.
31. The thread milling cutter of claim 28, wherein one or more recesses run in an axial direction and are arranged on one of the first and second milling cutter parts, wherein a projection, which is arranged on the other of the one of the first and second milling parts, extends in an axial direction and engages in the one or more recesses.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
[0025] The foregoing summary, as well as the following detailed description of the preferred invention, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the preferred invention, there are shown in the drawings embodiments which are presently preferred. It should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown. In the drawings:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
DETAILED DESCRIPTION OF THE INVENTION
[0035]
[0036] Between every two adjacent teeth 12 there is a pitch, wherein the predominant number of pitches corresponds to a desired pitch P, but, according to the invention, there is at least one first pitch P1 that deviates from the desired pitch P.
[0037] In the present embodiment, the first pitch P1 is constructed smaller than the desired pitch P.
[0038] One embodiment of the invention provides that the first pitch P1 is arranged in the area of the first ten teeth 12, in particular, in the area of the first eight teeth 12, in the present embodiment, between the fourth tooth 12-4 and the fifth tooth 12-5, where counting starts from the free of the thread milling cutter 10, i.e., in particular, the end of the shaft 11 that is not fixed, and thus, for example, the first tooth 12-1 is arranged adjacent to the free end of the thread milling cutter 10, the second tooth 12-2 is arranged adjacent to the first tooth 12-1, and the third tooth 12-3 is arranged adjacent to the second tooth 12-2.
[0039] At least the first two pitches, preferably at least the first three or four pitches, in the present embodiment, the first three pitches, counted starting from the free end of the thread milling cutter, correspond to the desired pitch P.
[0040] The deviation of the first pitch P1 from the desired pitch P can be approximately in the range from 2% to 20%, in particular, in the range from 5% to 15%, of the desired pitch P. Here, the deviation that is optimal for a certain use case can be dependent on the material. For example, for a softer material such as aluminum, the deviation can be approximately in the range from 10% to 15%, while the deviation for a harder material such as steel can be, for example, approximately in the range from 5% to 10%.
[0041] In one preferred embodiment, the deviation of the first pitch P1 from the desired pitch P is in the range of the thread backlash.
[0042]
[0043] The embodiment shown in
[0044]
[0045]
[0046] In order to provide rotational locking means between the first milling cutter part 15 and the second milling cutter part 16 of each of the previously mentioned embodiments, one or more recesses 20a running in the axial direction are arranged on one of the two milling cutter parts 15, 16, for example, on the first milling cutter part 15, wherein a projection 20b, which is arranged on the other of the two milling cutter parts 15, 16, for example, on the second milling cutter part 16, and extends, in particular, in the axial direction, engages in these recesses (see
[0047] The thread milling cutter 10, 10, 10 is used in the following for manufacturing an external thread on a component or an internal thread in a component. In one step, the thread milling cutter 10, 10, 10 is advanced into the wall of the component and in another step, it is moved along the extent of the wall once and in this way, it is moved in the axial direction by one lead of a thread turn. In this way, merely by moving along one helical line with one winding, the entire thread can be provided in the wall, wherein the thread is also constructed without additional rework such that it has a braking effect.
[0048] If, for example, an external thread is to be manufactured on a component, in a first step, a component with a diameter that corresponds to the outer diameter of the external thread to be manufactured can be provided. Then, in a second step, the thread milling cutter 10, 10, 10 can be moved onto the component and aligned with its longitudinal axis parallel to the longitudinal axis of the external thread to be milled. In a third step, the thread milling cutter 10, 10, 10 can be advanced in the radial direction into the wall of the component, so that, in particular, for subsequent rotation of the thread milling cutter 10, 10, 10 about its own longitudinal axis, it can begin to mill the external thread at this position of the wall. In a fourth step, the thread milling cutter can be moved, in particular, with the simultaneous rotation of the thread milling cutter 10, 10, 10 about its own longitudinal axis, along the extent of the wall once and, in this way, can be moved in the axial direction by one lead of a thread turn.
[0049] If, for example, an internal thread is to be manufactured in a hole, initially, in a first step, a component with a hole with a diameter that corresponds to the core diameter of the internal thread to be manufactured can be provided. In a second step, the thread milling cutter 10, 10, 10 can be inserted into the hole, in particular, far enough that the entire length of the internal thread to be manufactured overlaps the inserted length of the thread milling cutter 10, 10, 10, and with its longitudinal axis aligned parallel to the longitudinal axis of the internal thread to be milled. In a third step, the thread milling cutter 10, 10, 10 can be advanced in the radial direction into the wall of the hole, so that, in particular, for subsequent rotation of the thread milling cutter 10, 10, 10 about its own longitudinal axis with the help of the teeth 12 of the thread milling cutter 10, it can begin to mill the internal thread at this position in the wall of the hole. In a fourth step, the thread milling cutter 10, 10, 10 can be moved, in particular, with simultaneous rotation of the thread milling cutter 10, 10, 10 about its own longitudinal axis, along the extent of the wall of the hole once and, in this way, it can be moved in the axial direction by one lead of a thread turn.
[0050] It will be appreciated by those skilled in the art that changes could be made to the embodiments described above without departing from the broad inventive concept thereof. It is understood, therefore, that this invention is not limited to the particular embodiments disclosed, but it is intended to cover modifications within the spirit and scope of the present invention as defined by the appended claims.
LIST OF REFERENCE SYMBOLS
[0051] 10, 10, 10 Thread milling cutter [0052] 11, 11, 11 Shaft [0053] 12 Tooth [0054] 12-1 First tooth [0055] 12-2 Second tooth [0056] 12-3 Third tooth [0057] 12-4 Fourth tooth [0058] 12-5 Fifth tooth [0059] 15 Milling cutter part [0060] 16 Milling cutter part [0061] 17 Spacer [0062] 18, 18 Retaining screw [0063] 18b Clamping sleeve [0064] 19 Retaining element [0065] 20a Recess [0066] 20b Projection [0067] P Desired pitch [0068] P1 First pitch