The present invention relates to a steering gear mechanism for motor vehicles, having the features of the preamble of claim 1.
For large and heavy vehicles in the so-called medium-size category, in the luxury car category, for all-terrain vehicles and for light utility vehicles, a structural form of the electrically assisted steering gear mechanism for motor vehicles is preferred in which the assistance force is introduced into the toothed rack by way of a second toothing. Steering gear mechanisms are known in which the servo drive acts on the toothed rack by means of a second steering pinion and a second toothing. Steering gear mechanisms of this kind are described in laid-open specifications
DE 10 2005 022 867 A1, DE 10 2007 004 218 A1 and WO 2006/138209 A2. Said steering gear mechanisms have a relatively large structural volume since the servo drive is provided separately adjacent to the engagement arrangement between the steering pinion and the toothed rack. In addition, the guidance of the toothed rack in the region of the steering pinion has to be kept free of play by means of a thrust piece. This bearing arrangement involves production costs and constitutes a possible source of noise in practice, this being undesirable.
DE 10 2010 027 553 A1 has disclosed a double-pinion steering gear mechanism in which the two steering pinions are arranged opposite one another on the toothed rack at an angle of 90° with respect to the toothed rack. The two steering pinions are in this case mechanically positively coupled, by means of spur gears or bevel gears, for rotation in opposite directions. Owing to the geometric arrangement of the pinions in relation to one another, it is possible for a cumbersome thrust piece of the form known to date to be dispensed with. At least one steering pinion is coupled to a servomotor which assists the steering action. The rotation of the steering shaft is in this case detected by a sensor. The disadvantage of the arrangement is that shortages in structural space arise on account of the position of the servo drive and of the sensor.
It is therefore an object of the present invention to provide a steering gear mechanism which has compact dimensions and which nevertheless provides the steering assistance forces which are required for heavy motor vehicles.
This object is achieved by a steering gear mechanism having the features of claim 1.
According to said claim, a steering gear mechanism is provided, in particular for motor vehicles, having a steering system housing in which a toothed rack is mounted in a longitudinally displaceable manner and is connected to steerable wheels for the purpose of pivoting said steerable wheels, wherein the toothed rack is provided with a first toothed segment which meshes with a first pinion of a pinion shaft, and wherein the pinion shaft is indirectly connected to a steering wheel by means of an input shaft, wherein the toothed rack has a second toothed segment which is situated opposite the first toothed segment in relation to the longitudinal axis of the toothed rack, and wherein a second pinion is provided which engages with the second toothed segment, wherein an electric motor is provided which indirectly drives the first pinion which is mechanically positively coupled to the second pinion for rotation in the opposite direction, in which steering gear mechanism the electric motor drives a gear mechanism shaft which surrounds the pinion shaft and which is connected to the pinion shaft by means of a gear mechanism. A particularly compact structural form is possible owing to this arrangement.
In one embodiment, a rotational angle sensor is provided on the input shaft and a rotational angle sensor is provided on the pinion shaft, and therefore the applied steering moment and the position of the rotor can be determined.
The gear mechanism is preferably a speed-reduction gear mechanism. The motor can therefore be of compact design with a high rotational speed and a low torque.
In a preferred embodiment, the electric motor drives the gear mechanism shaft by means of a belt drive or a gearwheel drive.
In this case, the gearwheel drive can advantageously be in the form of a bevel gear drive or a spur gear drive.
It is furthermore preferably provided that the toothed rack is arranged between the first pinion and the second pinion, wherein a plane which is spanned by the axes of rotation of the pinions intersects the longitudinal axis of the toothed rack at an angle of inclination of less than 90°. Owing to this offset arrangement of the pinions, structural space can be saved in the region of the pinions.
It is advantageous if the mechanical coupling of the two pinions is realized by means of gearwheels.
In addition, it is advantageous if the axes of rotation of the two pinions which are situated opposite one another are arranged at an acute angle in relation to one another. In this way, it is possible for the engagement between the pinion and the toothed rack to be adjusted without a thrust piece.
In this case, it is preferably provided that the toothed segments are arranged in planes which are inclined in relation to one another, correspondingly to the pinions which are arranged at an acute angle in relation to one another.
In an advantageous embodiment, that bearing of the second pinion which is remote from the drive has a bearing arrangement for adjusting the play of the engagement between the pinion and the toothed rack.
An exemplary embodiment of the present invention will be described in greater detail below with reference to the drawings, in which:
The twisting of the torsion bar 3 is, as illustrated in
The electric motor 1 which is arranged next to the input shaft 2 has a rotor and a stator. In this case, the rotor is realized with a permanent magnet and the stationary stator comprises coils which are driven with a time delay by an electronic circuit in order to allow a rotating field which produces a torque on the permanently excited rotor to be generated. The rotor indirectly drives a gear mechanism 19 by means of a gear mechanism shaft 20 which is connected in a rotationally fixed manner. The rotor is preferably connected to the gear mechanism shaft 20 by means of a belt drive 21 (
The gear mechanism shaft 20 is hollow and the pinion shaft 6 passes through said gear mechanism shaft with play. The gear mechanism 19 is coaxial and in the form of a speed-reduction gear mechanism, and therefore the output rotation speed of the gear mechanism shaft 20 of the gear mechanism 19 is reduced and, at the same time, the torque on the pinion shaft 6 which is connected to a driver disk of the gear mechanism 19 is increased.
The driver disk, not illustrated here, has a concentric bearing seat for a first gearwheel 23. The first gearwheel 23 is connected in a rotationally fixed manner to the driver disk and to the pinion shaft 4 which passes through, and therefore the driver disk indirectly drives the pinion shaft 4. In addition, the first gearwheel 23 meshes with a second gearwheel 24, which surrounds a second pinion 25 at an end which is close to the drive in a rotationally fixed manner. The pinion shaft 4 has, at its end which is remote from the drive, a first pinion 26 which is mechanically positively coupled to the second pinion 25 by means of the two gearwheels 23, 24 at those ends of said pinions which are close to the drive, for rotation in opposite directions.
In a further embodiment, the second pinion has, at the bearing which is remote from the drive, a bearing arrangement with two sleeves, wherein the outer sleeve forms a guide and the inner sleeve forms a sliding piece. The sliding piece is arranged such that it can be displaced along oblique guide surfaces, and therefore, during displacement of the sliding piece, the pinion can be advanced toward the engagement arrangement between the pinion and the toothed rack. For preloading and adjusting the play, a spring is provided between the sleeves and the closure cover, which is in the form of an adjustment screw.
The speed-reducing gear mechanism is particularly preferably in the form of a cycloid gear mechanism.
In another embodiment, it is conceivable for the coaxial gear mechanism to be in the form of a planetary gear mechanism or in the form of a strain wave gear mechanism.
Furthermore, in one embodiment, it is provided that the axes of rotation of the two pinions which are situated opposite one another are arranged at an acute angle in relation to one another, and the two toothed rack segments which are situated opposite one another on the toothed rack with respect to the longitudinal axis are arranged in planes which are inclined in relation to one another, because, in this way, freedom from play of the meshing engagements can be achieved by virtue of the toothed rack being preloaded into the enclosed angle.
In another embodiment, it is preferably provided that the pinions have an offset in relation to one another in the longitudinal direction of the toothed rack, and therefore structural space can be saved while maintaining the same coupling width of the pinions.
In the case of the steering gear mechanism according to the invention, if a steering movement occurs at the steering wheel, the torsion bar detects rotation of the steering shaft in relation to the pinion shaft. The signal which is triggered as a result of this controls the electric motor, which drives the pinion shaft by means of the gear mechanism which is driven by the rotor by means of a belt drive or gearwheel drive. The coaxial gear mechanism transmits the reduced output rotational speed of the gear mechanism shaft to the active first pinion. Owing to the positive mechanical coupling of the first pinion to the second pinion, the toothed rack is driven, from opposite sides, so as to perform a longitudinal displacement, this resulting in pivoting of the steered wheels. The steering assistance force which is generated by the servomotor is therefore introduced into the toothed rack by means of two pinions.
Owing to the construction of the torque sensor and the arrangement of the gear mechanism around the shaft, the servo drive is of highly compact design.
Furthermore, a thrust piece can be dispensed with owing to the arrangement of the pinions in relation to the toothed rack.
The steering gear mechanism according to the invention has preferred compact dimensions, and nevertheless provides the steering assistance forces which are required for heavy motor vehicles.
1 Electric motor
2 Input shaft
3 Torsion bar
4 Pinion shaft
5 Bore
6 Recess
7 First shoulder
8 Second shoulder
9 Third shoulder
10 Needle-roller bearing
11 First projection
12 Second projection
13 Rotational angle sensor
14 Rotational angle sensor
15 Magnet ring
16 Magnet ring
17 Sensor element
18 Sensor element
19 Gear mechanism
20 Gear mechanism shaft
21 Belt drive
22 Gearwheel drive
23 First gearwheel
24 Second gearwheel
25 Second pinion
26 First pinion
27 Toothed rack
28 Toothed rack segment
29 Toothed rack segment
30 Longitudinal axis
Number | Date | Country | Kind |
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10 2013 010 360.6 | Jun 2013 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2014/001653 | 6/18/2014 | WO | 00 |