METHOD FOR MACHINING A VARIABLE-PITCH TOOTHING ON A STEERING RACK
20210008652 ยท 2021-01-14
Assignee
Inventors
- Pascal VIZIER (St Genis Laval, FR)
- Jean-Michel SANIEZ (Aulnoy lez Valenciennes, FR)
- Benoit CAMPALTO (Lyon, FR)
- Emeric RICHARD-VITTON (Lyon, FR)
- Jean-Christophe ORSET (Massieux, FR)
- Alain ISSARTEL (Doizieux, FR)
Cpc classification
B23C3/34
PERFORMING OPERATIONS; TRANSPORTING
B23C1/14
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A method for machining a toothing with variable pitch on a rack implemented by a machine tool other than a ball nose milling cutter and includes at least five axes allowing positioning the cutting tool relative to the rack, namely a first, a second and a third axis of translation, forming a three dimension space, a first axis of rotation allowing modifying a yaw position, about a yaw axis parallel to the first axis of translation, and a second axis of rotation allowing orienting a roll position about the second axis of translation, and includes at least one cutting phase during which the cutting tool is controlled in five continuous axes, by simultaneously modifying, during the same iteration, the spatial control component of each of the five axes, whereas the cutting tool rotates and is applied in contact with the surface of the tooth which is being trimmed.
Claims
1. A method for machining a toothing with variable pitch on a rack, said method being implemented by a machine tool which is provided with a rotary cutting tool other than a milling ball cutter and which comprises at least five axes allowing positioning said cutting tool relative to the rack, namely a first axis of translation, a second axis of translation and a third axis of translation, forming a three dimension space, a first axis of rotation allowing modifying a yaw position, about a yaw axis parallel to the first axis of translation, and a second axis of rotation allowing orienting a roll position about the second axis of translation, and in that said method comprises at least one cutting phase during which the cutting tool is controlled in five continuous axes by simultaneously modifying, during the same iteration, the spatial control component of each of said five axes, whereas the cutting tool rotates and is applied in contact with the surface of the tooth which is being trimmed.
2. The method according to claim 1 wherein the first axis of rotation allows modifying the yaw position of the cutting tool relative to the rack and the second axis of rotation allows orienting the roll position of the rack.
3. The method according to claim 1 wherein the first axis of rotation allows modifying the yaw position of the rack relative to the cutting tool and the second axis of rotation allows orienting the roll position of the cutting tool.
4. The method according to claim 1, wherein the tooth during trimming has a helix angle, and in that the control of the helix angle of the tooth during trimming is assigned to the first yaw axis of rotation.
5. The method according to claim 1, wherein the control of the pressure angle of the tooth during trimming is assigned to the second roll axis of rotation.
6. The method according to claim 1, wherein it includes a programming step during which, a file for controlling the machine tool is generated, by means of a computer and a software, which comprises: the coordinates of a target point of the surface to be machined along each of the first, second and third axes of translation, the yaw control setpoint of the rack along to the first axis of rotation, depending on the desired helix angle for the surface to be trimmed, and the roll control setpoint along the second axis of rotation, depending on the desired pressure angle for the surface to be trimmed.
7. The method according to claim 6, wherein the machine tool control file also comprises the coordinates of the vector normal to the surface to be machined at the considered point.
8. The method according to claim 1, wherein the cutting tool is formed by a disk milling cutter.
9. A power steering system provided with a rack having a toothing with variable pitch machined according to a method in accordance with claim 1.
Description
[0030] Other objects, features and advantages of the invention will appear in more detail on reading the following description, as well as using the appended drawings, provided for purely illustrative and non-limiting purposes, among which
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[0039]
[0040] The invention concerns a method for machining a variable-pitch toothing 1 on a rack 2.
[0041] The term machining method means a method for removing material by cutting chips by means of a movable cutting tool 3, preferably a rotary cutting tool 3 such as a milling cutter, which is driven in rotation about of its own central axis L3 to obtain the cutting effect.
[0042] The rack 2 is made by cutting a toothing 1 in a rectilinear bar, preferably a metal bar, for mechanical strength issues when using said rack.
[0043] The toothing 1 has a variable pitch P1, that is to say that the interval P1 which axially separates two successive teeth 4 varies according to the position and the curvature of said teeth 4 along the longitudinal axis L2 of the rack 2.
[0044] This allows in particular varying the gear ratio depending on the considered meshing area.
[0045] Thus, in the example of a steering mechanism 5 for a vehicle, such as that illustrated in
[0046] According to the invention, the method is implemented by a machine tool 11 which is provided with a rotary cutting tool 3, other than a milling ball cutter.
[0047] Advantageously, this type of cutting tool 3, which is non-spherical, and more particularly forming a disc about the central axis L3, allows obtaining a higher efficiency than that of a milling ball cutter, in terms of amount of material removed per tool revolution, and therefore per time unit.
[0048] Generally, the metal-removal rate is calculated using the following formula:
Q=(Ap AeVf)/1000.
[0049] Where Ap is an axial depth of one pass in mm, Ae is a radial depth of one pass in mm and Vf is the tool feed speed in mm/min.
[0050] Thus, the following results are obtained under the current cutting conditions: [0051] Disc: Q=14.73 cm.sup.3/min [0052] Ball 6: Q=0.84 cm.sup.3/min [0053] Ball 4: Q=0.273 cm.sup.3/min [0054] Ball 2: Q=0.049 cm.sup.3/min
[0055] Preferably, the cutting tool 3 is formed by a disk milling cutter, such as that represented in
[0056] A disk milling cutter is in the form of a circular disc, wider radially than thick axially (vis--vis the central axis L3), and whose perimeter is lined with cutting teeth 12, commonly called inserts.
[0057] According to the invention, and as illustrated in
[0058] Preferably, the first translation axis Z is vertical relative to a turntable 13 on which the rack 2 is fastened, the other two axes Y, X being horizontal, that is to say parallel to the plane of the turntable 13.
[0059] These translation axes X, Y, Z are for example be materialized by rectilinear motorized translation tables, for example translation tables with ball screws or with linear bearing rails.
[0060] The three dimension space X, Y, Z advantageously defines the machine coordinate system associated with the frame of the machine tool 11.
[0061] According to a first embodiment, the first axis of rotation C allows modifying the yaw position of the cutting tool 3 relative to the rack 2 and the second axis of rotation B allows orienting the roll position of the rack.
[0062] According to a second embodiment, the first axis of rotation C allows modifying the yaw position of the rack 2 relative to the cutting tool 3 and the second axis of rotation B allows orienting the roll position of the cutting tool.
[0063] For clarity reasons in the remainder of the description, we will refer to the second embodiment.
[0064] Preferably, the position of the rack 2 about the first yaw axis of rotation C, Z13, also called the yaw orientation, will be made by means of a turntable 13 centered on the axis Z13 and mounted on the frame of the machine tool 11.
[0065] Preferably, the rack 2 will be fastened on said turntable 13 by means of a flange 14 with jaws 15, 16.
[0066] The roll orientation B is carried out by tilting the tool head 17 of the machine, and consequently the central axis L3 of the cutting tool 3, pivotally about the second axis of translation Y.
[0067] According to the invention, the method comprises at least one cutting phase during which the cutting tool 3 is controlled in five continuous axes, by simultaneously modifying, during the same iteration, the spatial control component of each of said five axes X, Y, Z, B, C, while the cutting tool 3 rotates and is applied (continuously) in contact with the surface of the tooth 4 which is being trimmed.
[0068] The continuous operating consists in modifying during the same iteration, and therefore almost simultaneously, on the one hand, the position of the tool head 17, and therefore of the cutting tool 3, on each of the axes of translation X, Y, Z, thus actuating a specific translational displacement on each of the three motorized axes of translation X, Y, Z, and on the other hand, the yaw and roll orientation of the tool head 17, and therefore of the cutting tool 3, on each of the corresponding axes of rotation C, B, by actuating a specific rotational displacement on each of these two motorized yaw C and roll B axes of rotation.
[0069] Advantageously, the position setpoint, respectively the orientation setpoint, specific to each of the five axes X, Y, Z, B, C is thus refreshed and modified at each iteration, repeatedly during a plurality of successive iterations, and this so as to permanently reposition, and without jerking, the cutting tool 3, without it being necessary to interrupt the rotation of the cutting tool 3 on its central axis L3 or to remove the cutting tool 3 from the surface of the tooth 4 to be machined, and so as to properly orient the cutting edge of the cutting tool 3 depending on the vector normal to the surface to be machined, at the considered (spatial) point, at each considered moment.
[0070] This continuous five-axis control advantageously allows making possible the trimming of the left surfaces of the teeth 4 by a non-spherical cutting tool 3, with high efficiency, and which will always stick to the surface to be trimmed, on (in contact with) which said cutting tool 3 is displaced.
[0071] It should be noted that the five axes described above are sufficient for the implementation of the method.
[0072] This being the case, a machine tool 11 could be provided having more axes, and in particular six axes, given that, among these six axes, there are the five axes above, and that said five axes are actuated continuously.
[0073] Advantageously, the modification of the relative attitude of the cutting tool 3 relative to the rack 2, as permitted and monitored by the first yaw axis of rotation C and the second roll axis of rotation B, allows adapting the cutting operation, at any time, to the helix angle (yaw C) to the pressure angle (roll B) and which one wishes to impart to the flank of the tooth 4 at the considered instant and point.
[0074] Thus, according to a preferred feature which can constitute a full-fledged invention, regardless in particular of the type of used cutting tool 3, the tooth 4 during trimming has a helix angle , and the control of the helix angle of the tooth 4 during trimming is assigned to the first yaw axis of rotation C.
[0075] By adjusting and modifying in real time the spatial controlling component of the first yaw axis of rotation C, that is to say the yaw orientation setpoint, of the yaw axis of rotation C, herein of the turntable 13, the orientation setpoint is also modified along the axes X and Y. Thus, the spatial configuration of the cutting tool 3 is adapted to the desired helix angle at the considered point of the surface of the tooth 4, at the considered moment.
[0076] Similarly, according to a preferred feature which may constitute a full-fledged invention, the control of the pressure angle of the tooth 4 during trimming is assigned to the second roll axis of rotation B.
[0077] By adjusting and modifying in real time the spatial control component of the second roll axis of rotation B, that is to say the tilting orientation setpoint of the tool head 17, the orientation setpoint is also modified along the first yaw axis of rotation C and therefore the setpoint is also modified along the three axes of translation X, Y, Z. Thus, the spatial configuration of the cutting tool 3 is adapted to the desired pressure angle at the considered point of the surface of the tooth 4, at the considered instant.
[0078] Particularly preferably, both the helix angle is managed by means of the first yaw axis of rotation C, Z13 and, distinctly, the pressure angle by means of the second roll axis of rotation B.
[0079] Preferably, the method includes a programming step during which a file for controlling the machine tool 11 is generated, by means of a computer, and a Computer Aided Manufacturing (CAM) software, which comprises: the coordinates (x, y, z) of a target point of the surface to be machined according to each of the first, second and third translation axes X, Y, Z, the setpoint for controlling the rack 2, herein more particularly the yaw orientation setpoint of the turntable 13, according to the first axis of rotation C, depending on the helix angle desired for the surface to be trimmed, and the roll control instruction according to the second axis of rotation B, depending on the pressure angle desired for the surface to be trimmed.
[0080] In another embodiment, the file for controlling the machine tool 11 also comprises the coordinates (Nx, Ny, Nz) of the vector normal to the surface to be machined at the considered point.
[0081] Thus, it will be possible to easily automate, by means of a control file having a simple and relatively compact structure, the production of the rack 2, as well as the possible changes in production range (by simply recompiling, at each change of range , a new controlling file from the corresponding new CAD data).
[0082] Moreover, the invention will concern as such the use of a machine tool 11 with five continuous axes X, Y, Z, B, C provided with a rotary cutting tool 3 other than a milling ball cutter for machining a toothing 1 with variable pitch P1 on a rack 2, and more particularly on a steering rack 2.
[0083] The invention also concerns an assisted steering system provided with a rack 2 obtained according to the method of the invention, as well as a vehicle equipped with such a power steering system.
[0084] Of course, the invention is in no way limited to the sole variants described above, those skilled in the art being in particular in position to isolate or freely combine together the aforementioned features, or to substitute them with an equivalent.