REDUCTION OF PLAY OF A WORM GEAR OF AN ELECTROMECHANICAL POWER STEERING SYSTEM BY MEANS OF A BIMETAL SPRING
20200207407 ยท 2020-07-02
Assignee
Inventors
Cpc classification
F16H2057/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2057/0213
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62D5/0409
PERFORMING OPERATIONS; TRANSPORTING
F16H2057/0224
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2057/127
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B62D5/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A worm gear for an electromechanical power steering system of a motor vehicle, includes a worm shaft that meshes with a worm wheel. The worm wheel and the worm shaft are arranged together in a gear housing. An eccentric lever and a bimetallic spring that is operatively connected to the eccentric lever are configured to compensate for a temperature-related play in the engagement between the worm wheel and the worm shaft.
Claims
1.-10. (canceled)
11. A worm gear for an electromechanical power steering system of a motor vehicle, comprising: a gear housing; a worm wheel; a worm shaft that meshes with the worm wheel via a worm drive; the worm wheel and the worm shaft arranged together in the gear housing; an eccentric lever; and a bimetallic spring that is operatively connected to the eccentric lever, the bimetallic spring and eccentric lever configured to compensate for a temperature-related play in the engagement between the worm wheel and the worm shaft.
12. The worm gear of claim 11 wherein the eccentric lever is part of a pivot bearing configured to adjust the engagement between the worm shaft and the worm wheel.
13. The worm gear of claim 11 wherein the bimetallic spring is spiral-shaped and is arranged on a tappet which is mounted non-rotatably in the gear housing.
14. The worm gear of claim 11 comprising a wedge element provided between the gear housing and the bimetallic spring, said wedge element braced against a stop pin on the gear housing, wherein the wedge element is arranged between the gear housing and the eccentric lever, such that the eccentric lever is movable toward the worm wheel or away from the worm wheel by moving the wedge element.
15. The worm gear of claim 14 wherein the bimetallic spring and the wedge element are configured such that an area of the wedge element with a lesser thickness is arranged in the area of the eccentric lever at higher temperatures, and an area of the wedge element with a greater thickness is arranged in the area of the eccentric lever at lower temperatures.
16. The worm gear of claim 12 wherein the bimetallic spring is configured to pretension the pivot bearing and rests on a protrusion of the eccentric lever with a first, free end.
17. The worm gear of claim 11 wherein the eccentric lever and the bimetallic spring are arranged in a separate housing.
18. The worm gear of claim 17 wherein the bimetallic spring is spiral-shaped and is arranged on a spring holder, which is received in a first opening of the eccentric lever, wherein the spring holder is supported in the separate housing, and wherein a second opening, which is smaller than the first opening, is provided in a tapered area of the eccentric lever for receiving a tappet on which the bimetallic spring rests with a first, free end and which is arranged parallel to the spring holder.
19. The worm gear of claim 17 wherein a stop of the eccentric lever is implemented via a stop pin or directly on a pivot lever of a pivot bearing.
20. An electromechanical power steering system comprising the worm gear of claim 11 and further comprising an electric servo motor configured to drive the worm shaft that meshes with the worm wheel arranged on a steering shaft via the worm drive, wherein the worm wheel is operatively connected with an input shaft of a steering gear, and wherein the worm shaft and the steering shaft are mounted rotatably together in a gear housing.
Description
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[0027] A first embodiment of the invention is shown in
[0028] The preload between the worm shaft 2 and the worm wheel 4 is created by a drop-shaped eccentric lever 7 arranged at the end of the worm shaft 2 that is located away from the motor, which lever is connected with the housing 6 by means of the bearing 8. The eccentric lever 7 comprises a first opening 9 in an area with a larger radius, which extends along the worm shaft axis A, which opening receives a rolling bearing 10 arranged at the end of the worm shaft 2 that is located away from the motor. The rolling bearing 10, which is in the form of a ball bearing, rotatably supports the worm shaft 2 and rests in a corresponding bearing seat of the eccentric lever 7 with its outer race. A second opening 11 is provided in the eccentric lever 7 in a tapered area, or an area with a smaller radius, for receiving a pin 12 of the bearing 8, which pin is arranged parallel to the worm shaft 2, whereby the eccentric lever 7 is supported at the housing 6 such that it can pivot about a pivot axis. The second opening 11 therein is designed smaller than the first opening 9. The first opening 9 is at least three times the size of the second opening 11. Herein, a coil spring 13 or a leg spring, which reacts to tensile loads, concentrically surrounds the pin 12 and engages with a notch 72 on the eccentric lever 7 by means of a hook 14, which notch lies approximately in the plane of the worm wheel 4. Due to the tensile load of the coil spring 13, the eccentric lever 7, which is supported such that it can pivot, is limited in its range of motion and an elastic preload of the worm shaft 2 against the worm wheel 4 is achieved. A bimetallic spring 16 seated on a tappet 15 is arranged between the eccentric lever 7 and a housing cover 17 of the housing 6, as shown in
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[0031] Another embodiment of the invention is shown in