A device for adjusting the angle of rotation between two rotating shafts, in particular, between a drive shaft of a reciprocating-piston, internal combustion engine and a camshaft for actuating gas-exchange valves, is provided having a rotation element that is locked in rotation with the drive shaft, a rotor that is locked in rotation with the camshaft, an angle-of-rotation adjustment system and a locking device, which has at least one locking bolt mounted movably in one of the components and at least one corresponding opening in the other component, wherein the locking bolt can be displaced into and out of the opening by a spring and/or hydraulic force.
Such a class-forming device for adjusting the angle of rotation is known from DE 196 23 818 A1. In this device for adjusting the angle of rotation, the rotor has vanes and the rotation element has corresponding recesses, so that the angle of rotation can be adjusted in one direction by pressurized hydraulic fluid provided between the vanes and the rotation element on one side, while pressure applied to the opposite side causes an adjustment of the angle of rotation in the other rotational direction.
To be able to fix the rotor relative to the rotation element, for example, in the end position, a locking device is provided with a locking bolt in one component and an opening in the other component, wherein the force of a spring presses the locking bolt into the opening, while hydraulic fluid displaces the locking bolt out of the opening. This allocation of spring force and hydraulic force to the locking bolt is indeed advantageous in the proposed device, but not absolutely necessary, so that, if necessary, hydraulic force can also displace the locking bolt into the opening, while the force of a spring draws it back.
In the class-forming construction, both the region of the locking bolt interacting with the opening and also the opening have a mutually fitting, conical construction.
With this arrangement there is the problem that the locking bolt must be aligned exactly relative to the opening, so that the locking bolt fits into the opening and has a corresponding support there. If this is not the case, then there is risk of edge forces between the opening and locking bolt. This edge force also occurs for angle deviations between the axes of the opening and the locking bolt. Furthermore, there is the problem that it is difficult to detach the locking bolt from the opening, if a small cone angle is selected and there is a good fit. If a large cone angle is selected, then the locking bolt can be pushed out of the opening by rotating force. In addition, there is the problem, due to the reasons mentioned above and due to tolerance reasons, that it is practically impossible to set a clearance that is sufficiently small and lies advantageously below 0.2 degrees, so that an undesired adjustment error is generated and oscillations, especially rotational oscillations, can occur.
Therefore, the object of the invention is to construct or to improve a device for adjusting the angle of rotation in such a way that the previously described problems are overcome and a quasi-zero locking play can be achieved.
The object of the invention is met in that the contact region of the locking bolt in active connection with the opening has an outwardly curved contour. The contact region has, in particular, a spherical barrel contour.
Through this construction, it is achieved that the angular position of the locking bolt has only minor significance, because the support of the locking bolt is realized with an essentially annular form by the curved contour or spherical barrel contour. This is initially independent of the form or contour of the opening, if it is guaranteed that the dimensions between the opening cross section and the curved or spherical barrel contour are selected so that the locking bolt reaches a sufficient depth in the opening. In this way, the production tolerance and dimensional stability can also be increased.
In another construction of the invention, it is proposed that the contact region of the locking bolt, which comes into active connection with the opening, has the shape of a spherical segment between two parallel circles. Here, a shape is provided, in which the center of the sphere, from which the segment originates, is located in the direction of the support of the locking bolt, so that the radius is smaller at the end of the bolt in the direction toward the opening than the radius at the opposite end of the contact region.
The contour of the locking bolt, however, can also be constructed as a rotated paraboloid section.
Here there is the possibility of selecting the section so that it has a flatter or steeper profile according to the construction of the parabola.
Furthermore, it is important that a transition radius, which is relatively large and which is advantageously greater than 0.5 mm, is provided at the free end of the locking bolt. In this way, it is achieved that only small edge stresses and edge pressures occur when the locking bolt is not inserted completely into the opening.
In another construction of the invention, for a device, in which the opening is arranged in a cover of the rotation element, it is proposed that the opening has truncated cone-like contour in its depth extending away from the locking bolt and that the run-in phase similarly has a large transition radius, which is advantageously greater than 0.5 mm.
For the class-forming device, an opening in the cover with a conical contour is indeed known, but this is in active connection with a locking bolt, which similarly has a conical end. In the present case, the conical or tapered contours of the opening are in active connection with the curved or spherical barrel-shaped contour or with the spherical segment or with the rotated paraboloid section, so that very different relationships and other driving mechanisms are produced.
The contour of the opening in the cover, however, can also have a construction that is curved inward or can have the contour of a rotated hyperboloid section.
In this way, both the relevant locking bolt section and also the contours of the opening have contours inclined toward each other, so that a large production tolerance for the locking bolt and the borehole or also the support of the locking bolt is possible, without producing twisting, increased surface pressures, or increased rotational play. If such a locking bolt is pressed into the opening, then it is easy to see that quasi-zero locking play is produced.
Both the opening or the cover and also the locking bolt can be produced economically by a forming process, by which sufficient dimensional accuracy is achieved.
To achieve the highest possible strength both in the opening and also in the locking bolt, it is proposed that these are strengthened by self-quenching hardening processes, e.g., plasma hardening, laser hardening, and the like.
For further explanation of the invention, the drawings will be referenced, in which exemplary embodiments of the invention are shown simplified. Shown are:
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Number | Date | Country | Kind |
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102005051692.0 | Oct 2005 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP06/67284 | 10/11/2006 | WO | 00 | 5/28/2008 |