Hydraulic camshaft adjuster
11053820 ยท 2021-07-06
Assignee
Inventors
Cpc classification
F01L2001/34476
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2001/34466
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2250/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2001/34469
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2001/34463
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01L1/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The disclosure relates to a hydraulic camshaft adjuster for the variable adjustment of the control times of gas exchange valves of an internal combustion engine, having a stator and a rotor rotatable relative to the stator. Radially inwardly projecting webs are formed on the stator and radially outwardly projecting vanes are formed on the rotor. Between the stator and the rotor are formed several hydraulic working chambers, each of which is divided into a first working chamber and a second working chamber by a vane of the rotor. Two locking elements are inserted into the rotor for the temporary, reversibly detachable fixing of the rotor relative to the stator in a middle position. The first locking element and the second locking element can be locked in a common locking slotted guide. The disclosure also relates to a method for locking of the rotor in such a hydraulic camshaft adjuster.
Claims
1. A hydraulic camshaft adjuster for variable adjustment of control times of gas exchange valves of an internal combustion engine, the hydraulic camshaft adjuster comprising: a stator having radially inwardly projecting webs; a rotor having outwardly projecting vanes configured to be rotatable relative to the stator; a plurality of hydraulic working chambers formed between the stator and the rotor, each of the plurality of hydraulic working chambers divided into working chambers by one of the vanes of the rotor; a first locking element and a second locking element disposed in the rotor, the first and second locking elements configured to lock the rotor in a middle position relative to the stator; and, the first locking element and the second locking element configured to be locked in a common stepped locking slotted guide, the stepped locking slotted guide having: a base, a middle step, and a plateau, the middle step formed between the base and the plateau; a first stop surface in a first adjustment direction of the rotor and a second stop surface in a second adjustment direction of the rotor are formed on the middle step; and, a third stop surface in the first adjustment direction of the rotor and a fourth stop surface in the second adjustment direction of the rotor are formed on the base.
2. The hydraulic camshaft adjuster of claim 1, wherein both the first locking element and the second locking element rest against the base of the stepped locking slotted guide when the rotor is locked in the middle position.
3. The hydraulic camshaft adjuster of claim 1, wherein the stepped locking slotted guide is formed in a locking cover of the hydraulic camshaft adjuster, the locking cover configured to limit the stator and the rotor in an axial direction.
4. The hydraulic camshaft adjuster of claim 1, wherein at least one of the first or second locking elements is formed as a stepped locking element.
5. The hydraulic camshaft adjuster of claim 4, wherein: the stepped locking element comprises a cylindrical base body with a first diameter and a projection with a second diameter formed coaxially with the cylindrical base body; and, the first diameter of the cylindrical base body is larger than the second diameter of the projection.
6. The hydraulic camshaft adjuster of claim 5, wherein a first height of the middle step and a second height of the base are greater than a height of the projection.
7. The hydraulic camshaft adjuster of claim 1, wherein: in the first adjustment direction of the rotor, the first locking element is configured to rest against the third stop surface; and, in the second adjustment direction of the rotor, the second locking element is configured to rest against the stop surface.
8. The hydraulic camshaft adjuster of claim 1, wherein the first and second locking elements are each supported by a spring arranged within the rotor.
9. The hydraulic camshaft adjuster of claim 3, wherein the locking cover comprises a first locking cover and a second locking cover.
10. A method for locking the rotor of the hydraulic camshaft adjuster of claim 6, the method comprising: providing: a first stepped locking element with a first cylindrical base body and a first projection; and, the rotor in a first position so that the first stepped locking element rests on the plateau and the second locking element rests on the base; moving the rotor in the first adjustment direction to a second position so that the second locking element rests on the base, and a first circumferential bearing surface of the first stepped locking element rests on the plateau, the first circumferential bearing surface formed by a transition area between the first cylindrical base body and the first projection; moving the rotor in the first adjustment direction to a third position so that the first projection rests on the middle step, and the second locking element rests on the base; moving the rotor in the first adjustment direction to a fourth position so that the first circumferential bearing surface rests on the middle step, and the second locking element rests on the base; and, moving the rotor in the first adjustment direction to a fifth position so that the first stepped locking element and the second locking element rest on the base; and, in the second, third, fourth, and fifth positions of the rotor, the rotor is blocked from moving in the second adjustment direction by at least one of the first stepped locking element or the second locking element.
11. The method of claim 10, wherein: in the second position of the rotor, the rotor is blocked from moving in the second adjustment direction by the first projection and the second stop surface of the middle step; in the third position of the rotor, the rotor is blocked from moving in the second adjustment direction by the first cylindrical base body and the second stop surface; in the fourth position of the rotor, the rotor is blocked from moving in the second adjustment direction by the first projection and the fourth stop surface of the base; and, in the fifth position of the rotor, the rotor is blocked from moving in the second adjustment direction by the first cylindrical base body and the fourth stop surface.
12. The method of claim 11, wherein in the fifth position of the rotor, the rotor is blocked from moving in the first adjustment direction by the second locking element.
13. A method for locking a rotor to a stator of a hydraulic camshaft adjuster, comprising: providing the hydraulic camshaft adjuster, the hydraulic camshaft adjuster having: a plurality of working chambers formed between outwardly projecting vanes of the rotor and radially inwardly projecting webs of the stator; and, a first locking element and a second locking element disposed in the rotor, the first and second locking elements configured to lock the rotor in a middle position relative to the stator; and, the first locking element and the second locking element configured to be locked in a common stepped locking slotted guide, the stepped locking slotted guide having a base, a middle step, and a plateau, the middle step formed between the base and the plateau; providing the rotor in a first position so that the first and second locking elements rest on the plateau of the stepped locking slotted guide; moving the rotor in a first adjustment direction to a second position so that the first locking element rests on the middle step of the stepped locking slotted guide; moving the rotor in the first adjustment direction to a third position so that the first locking element rests on the base; moving the rotor in the first adjustment direction to a fourth position so that the second locking element rests on the middle step and the first locking element rests on the base; moving the rotor in the first adjustment direction to a fifth position so that both the first and second locking elements rest on the base; and, in the second, third, fourth, and fifth positions of the rotor, the rotor is blocked from moving in a second adjustment direction by at least one of the first or second locking elements.
14. The method of claim 13, wherein: in the second position of the rotor, the rotor is blocked from moving in the second adjustment direction by the first locking element and a first stop surface of the middle step; in the third position of the rotor, the rotor is blocked from moving in the second adjustment direction by the first locking element and a second stop surface of the base; in the fourth position of the rotor, the rotor is blocked from moving in the second adjustment direction by the second locking element and the first stop surface; and, in the fifth position of the rotor, the rotor is blocked from moving in the second adjustment direction by the second locking element and the second stop surface.
15. The method of claim 13, wherein the middle step is wider than the base.
16. The method of claim 13, further comprising: providing the rotor in a sixth position so that the first and second locking elements rest on the plateau of the stepped locking slotted guide; moving the rotor in the second adjustment direction to a seventh position so that the second locking element rests on the middle step of the stepped locking slotted guide; moving the rotor in the second adjustment direction to an eighth position so that the second locking element rests on the base; moving the rotor in the second adjustment direction to a ninth position so that the first locking element rests on the middle step and the second locking element rests on the base; and, moving the rotor in the second adjustment direction to a tenth position so that both the first and second locking elements rest on the base; and, in the seventh, eighth, ninth, and tenth positions of the rotor, the rotor is blocked from moving in the first adjustment direction by at least one of the first or second locking elements.
17. The method of claim 16, wherein: in the seventh position of the rotor, the rotor is blocked from moving in the first adjustment direction by the second locking element and a third stop surface of the middle step; in the eighth position of the rotor, the rotor is blocked from moving in the first adjustment direction by the second locking element and a fourth stop surface of the base; in the ninth position of the rotor, the rotor is blocked from moving in the first adjustment direction by the first locking element and the third stop surface; and, in the tenth position of the rotor, the rotor is blocked from moving in the first adjustment direction by the first locking element and the fourth stop surface.
18. A hydraulic camshaft adjuster for variable adjustment of control times of gas exchange valves of an internal combustion engine, the hydraulic camshaft adjuster comprising: a stator having radially inwardly projecting webs; a rotor having outwardly projecting vanes configured to be rotatable relative to the stator; a plurality of hydraulic working chambers formed between the stator and the rotor, each of the plurality of hydraulic working chambers divided into working chambers by one of the vanes of the rotor; a first locking element and a second locking element disposed in the rotor, the first and second locking elements configured to lock the rotor in a middle position relative to the stator; and, the first locking element and the second locking element configured to be locked in a common stepped locking slotted guide, the stepped locking slotted guide having: a base, a middle step, and a plateau; the middle step formed at each of a first end and a second end of the stepped locking slotted guide between the base and the plateau.
19. The hydraulic camshaft adjuster of claim 18, wherein: in a first rotor position, the first and second locking elements rest on the plateau; and, when the rotor is moved in a first adjustment direction from the first rotor position to a second rotor position, the first locking element rests on a first middle step arranged at the first end of the stepped locking slotted guide and the second locking element rests on the plateau; and, in a third rotor position, the first and second locking elements rest on the plateau; and, when the rotor is moved in a second adjustment direction from the third rotor position to a fourth rotor position, the second locking element rests on a second middle step arranged at the second end of the stepped locking slotted guide and the first locking element rests on the plateau.
20. The hydraulic camshaft adjuster of claim 18, further comprising a first locking cover configured to form the plateau of the stepped locking slotted guide, and a second locking cover configured to form the base of the stepped locking slotted guide.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the following, the disclosure is explained by means of different embodiments with reference to the attached figures. Identical components or components with the same function are marked with the same reference symbols. Herein:
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE EMBODIMENTS
(5)
(6)
(7)
(8) In summary, it can be stated that with a hydraulic camshaft adjuster 1 according to the disclosure, it is possible to lock the two locking elements 11, 12 in a common locking slotted guide 10. This reduces the production costs for both the locking cover 13 and the rotor 3, since only one C-channel is required for the pressure medium supply of the locking slotted guide 10, thus saving one C-channel on the rotor 3.
REFERENCE CHARACTERS
(9) 1 Hydraulic camshaft adjuster
(10) 2 Stator
(11) 3 Rotor
(12) 4 Web
(13) 5 Vane
(14) 6 Workspace
(15) 9 Drive gearing
(16) 10 Locking slotted guide
(17) 11 First locking element
(18) 12 Second locking element
(19) 13 Locking cover
(20) 14 Stepped locking element
(21) 15 Base body (of the first locking element)
(22) 16 Projection (of the first locking element)
(23) 17 Base body (of the second locking element)
(24) 18 Projection (of the second locking element)
(25) 19 Plateau of the locking slotted guide
(26) 20 Middle step of the locking slotted guide
(27) 21 Base of the locking slotted guide
(28) 22 Stop surface (in the advanced direction)
(29) 23 Stop surface (in the retarded direction)
(30) 24 Stop surface (in the advanced direction)
(31) 25 Stop surface (in the retarded direction)
(32) 26 Bearing surface (on the first locking element)
(33) 27 Bearing surface (on the second locking element)
(34) 28 First locking cover
(35) 29 Second locking cover
(36) D.sub.1 Diameter of the cylindrical base body
(37) D.sub.2 Diameter of the projection
(38) H Projection height
(39) T.sub.1 Height of the middle step
(40) T.sub.2 Height of the base