The invention relates to a method and a device for finishing toothed workpieces with a tool that is designed in the form of a circular skiving cutter and rotationally driven about a tool rotational axis by a tool spindle, wherein said tool has machining teeth that engage into tooth gaps of the workpiece in a rolling motion, wherein said workpiece is carried by a workpiece spindle that is arranged in a skewed manner relative to the tool rotational axis and rotationally driven synchronous thereto about a workpiece rotational axis, and wherein said device comprises a control, which is programmed in such a way that machining edges of the machining teeth machine the tooth flanks of the teeth of the workpiece in the direction in which the tooth flanks extend.
Various types of skiving cutters are known from the prior art. They are known, for example, from DE 2 43 514, EP 2 665 574 B1, U.S. Pat. No. 3,264,940 or EP 2 520 390 B1.
The invention is based on the objective of reducing the surface roughness of the tooth flanks of the teeth of toothed workpieces.
This objective is attained with the machining method specified in claim 1 and the device for carrying out the method characterized in claim 2. The dependent claims represent advantageous enhancements of the two coordinate claims.
The invention initially and essentially proposes to use a machining tool in the form of a smoothing tool that, except for the machining costs, is otherwise designed in the form of a circular skiving cutter. The machining teeth of the circular skiving cutter engage into the tooth gaps of the already toothed circular workpiece. The penetration depth, i.e. the machining thickness or cutting depth, is adjusted in such a way that the machining edges of the machining teeth of the tool, which in a known circular skiving cutter engage into the tooth flanks of the teeth of the circular workpiece in a cutting manner, merely perform a smoothing function. To this end, it is particularly proposed that the rounding radius of the machining edges of the inventive tool is greater than in a conventional circular skiving cutter. The rounding radius of the machining edges particularly is larger than the penetration depth of the machining edges into the surface of the tooth flank to be machined. The material of the circular workpiece has such a quality that the machining edges have a non-cutting effect. They push sections of the structures that form the roughness and protrude beyond a smoothing plane into adjacent regions that lie below the smoothing plane. The plane, along which the machining edges move, therefore lies between a first plane that extends through the peaks of the structures forming the roughness and a second plane that extends through the valleys between the structures forming the roughness. In this context, the rounding radius preferably is larger than the distance between the smoothing plane and the first plane extending through the peak contours. A center of the rounding therefore preferably lies outside the volume extending between the first plane and the second plane. The inventive method is particularly suitable for smoothing the surfaces of a workpiece that is made of a tempering steel or a nitriding steel. The tensile strength of the material of the workpieces preferably lies below 1350 N/mm2. The method is suitable for use on internal toothings or external toothings. The teeth of the machining tool may be formed by an internal toothing or an external toothing. The rounding radius of the machining edges preferably amounts to at least 50 micrometer. However, the rounding radius may also amount to at least 100 micrometer or at least 150 micrometer.
The invention is described in greater detail below with reference to the attached drawings. In these drawings:
The inventive device illustrated in
The above-described skiving cutter for producing the toothing of the circular workpiece 2 has cutting edges with a small rounding radius whereas the tool 1 in the form of a circular skiving cutter illustrated in
The two rotational axes 3, 4 are spaced apart by such a distance that the machining edge 8 merely comes in contact with the tooth flanks 9, but does not penetrate into the tooth flanks 9 in a cutting manner, during the relative screwing motion between the tool 1 and the circular workpiece 2. It is particularly proposed that the machining edges do not penetrate as far as into the deepest regions of the structures 10 of the tooth flanks 9, i.e. not up to the deepest surface sections of the roughing.
However, the machining edges 8 penetrate deeper into the surface el, which lies parallel to the tooth flank surface and is formed by the peaks of the structures 10, in order to smooth the peaks 10 of the rough tooth flanks 9 during the finishing process, in which their material is pressed into the adjacent valleys between the peaks 10.
In
The cutting edges of skiving cutters have a rounding radius of less than 20 micrometer whereas the rounding radius of the machining edges 8 has values greater than 20 micrometer. In preferred methods and devices, the rounding radius of the machining edges 8 amounts to at least 50 micrometer or at least 100 micrometer or at least 150 micrometer.
The preceding explanations serve for elucidating all inventions that are included in this application and respectively enhance the prior art independently with at least the following combinations of characteristics, wherein two, multiple or all of these combinations of characteristics may also be combined with one another, namely:
A method, which is characterized in that the machining edges (8) act upon the tooth flanks (9) in a smoothing manner without metal removal.
A device, which is characterized in that the control unit (20) is programmed in such a way, the rotational axes (3, 4) are spaced apart from one another in such a way and the machining teeth (7) are designed in such a way that the machining teeth (7) act upon the tooth flanks (9) in a smoothing manner without metal removal.
A method or a device, which are characterized in that the rounding radius (R) of the machining edges (8) is greater than the machining thickness or cutting depth (E).
A method or a device, which are characterized in that the workpiece (2) consists of a tempering steel or nitriding steel.
A method or a device, which are characterized in that the tensile strength of the material of the workpiece (2) amounts to no more than 1350 N/mm2.
A method or a device, which are characterized in that the workpiece (2) has an internal toothing or an external toothing, the tooth flanks (9) of which are smoothed by the machining edges (8).
A method or a device, which are characterized in that the machining teeth (7) are formed by an internal toothing or an external toothing.
A tool for carrying out the method, which is characterized in that the rounding radius R of the at least one machining edge 8 is greater than 50 micrometer.
All disclosed characteristics are essential to the invention (individually, but also in combination with one another). The disclosure of the associated/attached priority documents (copy of the priority application) is hereby fully incorporated into the disclosure content of this application, namely also for the purpose of integrating characteristics of these documents into claims of the present application. The characteristics of the dependent claims also characterize independent inventive enhancements of the prior art without the characteristics of a claim to which they refer, particularly for submitting divisional applications on the basis of these claims. The invention specified in each claim may additionally comprise one or more of the characteristics that were disclosed in the preceding description and, in particular, are identified by reference symbols and/or included in the list of reference symbols. The invention also concerns design variations, in which individual characteristics cited in the preceding description are not realized, particularly as far as they are obviously dispensable for the respective intended use or can be replaced with other, identically acting technical means.
2 Circular workpiece
3 Tool axis
4 Workpiece axis
7 Machining tooth
8 Machining edge
9 Tooth flank
11 Smoothed tooth flank
12 Axial feed component
13 End flank
14 Cutting face
15 Workpiece spindle
16 Driving motor
17 Tool spindle
18 Driving motor
E Machining depth
G Smoothing depth
R Peak-to-valley height
R Rounding radius
Number | Date | Country | Kind |
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10 2019 126 669.6 | Oct 2019 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2020/077191 | 9/29/2020 | WO |