Slotted guide

11236647 · 2022-02-01

Assignee

Inventors

Cpc classification

International classification

Abstract

The present disclosure concerns a slotted guide of a valve train of an internal combustion engine. The slotted guide includes two guide tracks, which cross one another in a crossing region, for guiding a switching pin of a cam follower of the valve train. The two guide tracks have an on-track region, a crossing region, and an off-track region. At least one radial projection, structured and arranged to protrude beyond the slotted guide in a radial direction, is provided in or downstream from the off-track region of at least one guide track.

Claims

1. A slotted guide, comprising: two guide tracks, structured and arranged to cross one another in a crossing region, for guiding a switching pin of a cam follower of a valve train of an internal combustion engine, wherein each of the two guide tracks has an on-track region, a crossing region, and an off-track region; and at least one radial projection, structured and arranged to protrude beyond the slotted guide in a radial direction, provided in or downstream from the off-track region of at least one guide track of the two guide tracks.

2. The slotted guide according to claim 1, wherein the at least one radial projection connects directly to the off-track region of the at least one guide track and defines an extension of the off-track region, such that an ejection of the switching pin guided therein is also possible in the case of an immersion depth, which is small or not present, in the at least one guide track.

3. The slotted guide according to claim 2, wherein a width and an axial position of the at least one radial projection corresponds to a width and an axial position of the at least one guide track, such that the switching pin can come into contact with the at least one radial projection on a front side.

4. The slotted guide according to claim 2, wherein a width of the at least one radial projection, which is arranged downstream from the off-track region, is larger than a width of the at least one guide track.

5. The slotted guide according to claim 4, wherein the at least one radial projection extends over an entire width of the slotted guide and is interrupted by maximally one of the two guide tracks.

6. The slotted guide according to claim 2, wherein the at least one radial projection is only located on at least one edge of the at least one guide track, and wherein the switching pin has a collar or a widening that comes into contact with the at least one radial projection on the at least one edge of the at least one guide track.

7. The slotted guide according to claim 1, wherein the on-track region is arranged offset to the off-track region by an angle α of 90°<α<120°.

8. The slotted guide according to claim 1, wherein the at least one radial projection extends over an angle β of 5°<β<20°.

9. The slotted guide according to claim 1, wherein a maximum depth of a respective guide track is between 10 and 15% of a maximum outer diameter of the slotted guide.

10. The slotted guide according to claim 1, wherein at least one of: the slotted guide is structured as a slotted guide sleeve, and the at least one radial projection is heat-treated or coated.

11. The slotted guide according to claim 1, wherein at least one of: the two guide tracks each have lateral edges, and a depth of the two guide tracks increases from the on-track region up to the crossing region and then decreases from the crossing region up to the off-track region.

12. A valve train for an internal combustion engine, comprising: a camshaft and at least one cam follower, wherein the at least one cam follower cooperates with the camshaft via at least two cams and is axially adjustable, a switching pin arranged in the at least one cam follower, a slotted guide arranged on the camshaft for guiding the switching pin, the slotted guide including two guide tracks structured and arranged to cross one another in a crossing region, the two guide tracks each having an on-track region, a crossing region, and an off-track region; wherein the slotted guide further includes at least one radial projection provided in or downstream from the off-track region of at least one guide track of the two guide tracks, the at least one radial projection protruding beyond the slotted guide in a radial direction; and wherein the switching pin cooperates with the two guide tracks of the slotted guide such that the at least one cam follower is adjusted between a first cam and a second cam of the at least two cams.

13. The valve train according to claim 12, wherein the slotted guide is connected in a rotationally fixed manner to the camshaft via a thermal joint seat.

14. An internal combustion engine, comprising: a valve train, the valve train including: a camshaft and at least one cam follower, wherein the at least one cam follower cooperates with the camshaft via at least two cams and is axially adjustable, a switching pin arranged in the at least one cam follower, a slotted guide arranged on the camshaft for guiding the switching pin, the slotted guide including two guide tracks structured and arranged to cross one another in a crossing region, the two guide tracks each having an on-track region, a crossing region, and an off-track region; wherein the slotted guide further includes at least one radial projection provided in or downstream from the off-track region of at least one guide track of the two guide tracks, the at least one radial projection protruding beyond the slotted guide in a radial direction; and wherein the switching pin cooperates with the two guide tracks of the slotted guide such that the at least one cam follower is adjusted between a first cam and a second cam of the at least two cams.

15. The internal combustion engine according to claim 14, wherein the slotted guide is connected in a rotationally fixed manner to the camshaft via a thermal joint seat.

16. The internal combustion engine according to claim 14, wherein the two guide tracks each have lateral edges.

17. The valve train according to claim 12, wherein the at least one radial projection is disposed on at least one edge of the at least one guide track, and wherein the switching pin has a collar or a widening that comes into contact with the at least one projection on the at least one edge of the at least one guide track.

18. The valve train according to claim 12, wherein a depth of the two guide tracks increases from the on-track region to the crossing region, and decreases from the crossing region to the off-track region.

19. The slotted guide according to claim 1, wherein the on-track region is arranged offset to the off-track region by an angle of approximately 110°.

20. The slotted guide according to claim 1, wherein the at least one radial projection extends over an angle of approximately 10°.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

(1) In each case schematically,

(2) FIG. 1 shows a valve train according to the invention of an internal combustion engine according to the invention, comprising a slotted guide according to the invention,

(3) FIG. 2 shows a sectional illustration through the slotted guide according to the invention,

(4) FIG. 3 shows a view onto a slotted guide according to the invention.

DETAILED DESCRIPTION

(5) According to FIG. 1, an internal combustion engine 1 according to the invention has a valve train 2 according to the invention, as well as a camshaft 3, on which at least one cam follower 4 is arranged, which cooperates with the camshaft 3 and which is axially adjustable, here a cam roller 5. A switching pin 6 is arranged perpendicular to a cam follower longitudinal axis 7 in the cam follower 4, wherein the switching pin 6 cooperates with a slotted guide 8 according to the invention, which is arranged on the camshaft 5 (see also FIGS. 2 and 3). Cooperating means in this case that the switching pin 6 alternately engages with a first guide track 9 and a second guide track 10 and thereby effects a longitudinal adjustment of the cam follower 4 or of the cam roller 5, respectively, in the direction of the cam follower longitudinal axis 7, whereby the cam roller 5 is rotatably arranged on a bolt 11 of the cam follower 4. By means of an axial longitudinal displacement of the cam roller 5 by guiding the switching pin 6 in the first or second guide track 9, 10, respectively, the cam follower 4 can tap cam profiles of a first cam 12 and of a second cam 12a, which is axially adjacent thereto. In particular an influencing of an inlet time or of an outlet time, respectively, of a non-illustrated inlet or outlet valve can be influenced thereby or a cylinder turn-off can be realized as well.

(6) When now looking at the slotted guide 8 according to the invention in more detail, it can be seen that the two guide tracks 9, 10 for guiding the switching pin 6 cross one another in a crossing point 13, wherein each guide track 9, 10 is limited by lateral edges 14. Each guide track 9, 10 furthermore has an on-track region 15 (see FIG. 2), a crossing region 16 located in the region of the crossing point 13, as well as an off-track region 17, wherein a depth t increases or can increase, respectively, measured radially to an axis 18 of the slotted guide 8 from the on-track region 15 to the crossing region 16, and then decreases or can decrease again, respectively, up to the off-track region 17. To now realize an ejection of the switching pin 6 from the respective guide track 9, 10 and thus a quicker switch-over of the cam tap between the cam 12 and cam 12a, at least one radial projection 19 (see FIG. 2), which protrudes beyond the slotted guide 8 in the radial direction, is provided in the off-track region 17 or downstream therefrom in the direction of rotation of at least one guide track 9, 10, whereby the switching pin 8 can be ejected more easily and more reliably even in response to an upwards movement of the cam follower 4 or of the tilt lever, respectively. For clarity, the radial projection 19 in FIG. 2 is illustrated in an exaggerated manner. In particular a reliable mode of operation of a valve train 2, which is equipped with a slotted guide 8 of this type, can be attained thereby without requiring larger structural changes or higher costs for that purpose.

(7) Different embodiments are to be differentiated thereby, for example one, in the case of which the radial projection 19 connects directly to the off-track region 17 of at least one guide track 9, 10, so that the projection 19 represents an extension of the off-track region 17, whereby an ejection of the switching pin 6, which is guided in the guide track 9, 10, is possible even in the case of an immersion depth, which is small or not available, in the corresponding guide track 9, 10.

(8) It can be provided thereby that a width a width and an axial position of the at least one radial projection 19 corresponds to a width and to an axial position of at least one guide track 9, 10, so that the switching pin 6, which is guided in the guide track 9, 10, can come into contact with the projection on the front side. The radial projection 19 is thus arranged so as to be essentially aligned with the respective guide track 9, 10 in the circumferential direction.

(9) In the alternative, it can also be provided that a width of the radial projection 19 downstream from the off-track region 17 is larger than the width of the corresponding guide track 9, 10. In this region, the radial depth t of the guide track is already negative. In this region, the radial projection 19 even extends in alignment with the edges 14. The radial projection 19 can thereby extend over the entire width of the slotted guide 8 and can be interrupted by maximally one guide track 9, 10, so that the number of the resulting undercuts is minimized.

(10) In the alternative, a radial projection 19 (see FIG. 3) is provided on an edge 14 of the guide track 9, 10 in the off-track region 17, via which the pin 6 is supported via a corresponding shoulder 20 (see FIG. 1) and can thus be ejected better. The radial projection 19 thus emerges from the actual switching gate in the radial direction, whereby an ejection contour can be increased or extended, respectively. This in particular also provides for a reliable and secure ejection of the switching pin 6 from the respective guide track 9, 10 in response to an upwards movement of a tilt lever or of the cam follower 4, respectively. The radial projection 19 can thereby be provided on only a single edge 14 or on at least two edges 14 of the respective ejection region 17. The radial projection 19 can be heat-treated or coated, in particular by means of electron beam hardening, laser hardening or a nitriding process.

(11) When looking at FIG. 2 more closely, it can be seen that the on-track region 15 is arranged offset to the off-track region 17 by and angle α of 90°<α<120°, in particular by an angle α of approx. 110°. According to a further advantageous embodiment of the solution according to the invention, the radial projection 19 extends over an angle β of between 5° and 20°, in particular over an angle β of approx. 10°. A reliable ejection of the switching pin 20 can be attained thereby on the one hand, without creating an excessive imbalance of the camshaft 3 by means of a material application, which is larger and longer in the circumferential direction.

(12) A maximum depth t.sub.max (measured in the radial direction) of a guide track 9, 10 is thereby between 10 and 15% of a maximum outer diameter D of the slotted guide 8, whereby a material reduction and thus a reduction of the weight can be attained on the one hand, and a reliable guidance of the switching pin 6 in the respective guide track 9, 10 can be effected on the other hand.

(13) As illustrated according to FIGS. 1 to 3, the slotted guide 8 is formed as slotted guide sleeve and is thus able to be fixed to the camshaft 3, for example by means of a thermal joining process and a shrink fit resulting therefrom. It goes without saying that further fixing options are also conceivable.

(14) As a whole, a reliable ejection of the switching pin 6 from the guide track 9, 10 can be made possible by means of the slotted guide 8 according to the invention, even in response to an upwards movement of the tilt lever or of the cam follower 4, respectively, whereby in particular an ejection of the switching pin 6 in the case of a brake cam profile, in the case of which the cam follower 4, together with switching pin 6, is already in an upwards movement, immediately downstream from the profile switchover, are ensured. This is not possible without problems with current slotted guides, which are known from the prior art.