The present disclosure generally relates to the technical field of Variable Camshaft Timing (VCT), particularly to, a camshaft phase adjuster.
According to a current operating condition of an internal combustion engine, intake/exhaust valve timing can be controlled via adjusting a phase between the crankshaft and the camshaft, which will bring advantages such as reduction of oil consumption and decrease of harmful substances. A device adapted to adjust the phase between the crankshaft and the camshaft is known as a camshaft phase adjuster.
As shown in
In combination with
However, the existing camshaft adjuster has following problems: since the first oil holes 22 and the second oil holes 23 in the rotor are arranged in intervals along the axial direction of the rotor 2, and a sealing between the first oil holes 22 and the second oil holes 23 is required, an interval between the first oil holes 22 and the second oil holes 23 along the axial direction should be at least 3mm, which makes the rotor 2 have a large axial dimension and a great mass. Thus, the entire camshaft phase adjuster has a large axial dimension and a great mass.
Therefore, a modified camshaft phase adjuster is needed to solve above problems.
Problems solved by the present disclosure include: the rotor of an existing camshaft phase adjuster has a large axial dimension and a great mass, which makes the entire camshaft phase adjuster have a large axial dimension and a great mass.
In order to solve above recited problem, the present disclosure provides a camshaft phase adjuster including: a stator provided with a plurality of protrusions, wherein the plurality of protrusions are arranged in intervals along a circumferential direction and extend inwardly along a radial direction, and a hydraulic chamber is defined between two of the plurality of protrusions which are neighboring; a rotor rotatably disposed in the stator, wherein the rotor comprises a basic body and a plurality of blades fixed to the basic body, the basic body has a first end surface and a second end surface which face opposite directions along an axial direction, the plurality of blades are arranged in intervals along the circumferential direction and outwardly extend into the hydraulic chambers along the radial direction to divide the hydraulic chambers into first pressure chambers and second pressure chambers, respectively; wherein the basic body is provided with a plurality of first oil holes and a plurality of second oil holes, the plurality of first oil holes are arranged in intervals along the circumferential direction and located on an outer circumferential surface of the basic body, and the plurality of first oil holes penetrate through the basic body along the radial direction and communicate with the first pressure chambers, respectively; and each of the plurality of second oil holes is provided with at least two oil sub-holes, the at least two oil sub-holes comprise a first oil sub-hole and a second oil sub-hole, the first oil sub-holes extend along a radial direction of the basic body and communicate with the second pressure chambers, respectively, the first oil sub-holes and the first oil holes are located on a same plane perpendicular to a central axis of the rotor, and the second oil sub-holes penetrate through the first end surface along an axial direction of the basic body and communicate with the first oil sub-holes, respectively.
In some embodiments, each of the plurality of second oil holes is provided with two oil sub-holes which are arranged into a shape of L.
In some embodiments, the second end surface is provided with a first groove, and an axial hole of the rotor penetrates through a bottom surface of the first groove along the axial direction.
In some embodiments, the first end surface is provided with a second groove, the second oil sub-holes penetrate through a bottom surface of the second groove, and an axial hole of the rotor penetrates through the bottom surface of the second groove along the axial direction.
In some embodiments, the first oil sub-holes penetrate through the outer circumferential surface of the basic body and do not penetrate through an inner circumferential surface of the basic body.
In some embodiments, the second oil sub-holes do not penetrate through the second end surface.
In comparison with existing technology, technical solution of the present disclosure possesses following advantages:
The plurality of first oil holes and the first oil sub-holes of the plurality of second oil holes extend along a radial direction and are located on a same plane, and the second oil sub-holes of the plurality of second oil holes extend along an axial direction, which saves the spaces on the rotor along the axial direction for arranging the plurality of first oil holes or the plurality of second oil holes. Accordingly, an axial dimension of the rotor and a mass of the rotor are reduced, thus an axial dimension of the entire camshaft phase adjuster and a mass of the entire camshaft phase adjuster are reduced.
In order to make objectives, features and advantages of the present disclosure clear and be easily understood, embodiments of the present disclosure will be described in detail in conjunction with the accompanying drawings.
Referring to
The stator 3 is provided with a plurality of protrusions 31. The plurality of protrusions 31 are arranged in intervals along a circumferential direction and extend inwardly along a radial direction. A hydraulic chamber 32 is defined between two neighboring protrusions 31.
The rotor 4 is provided with a basic body 41 and a plurality of blades 42. The basic body 41 is provided with a first end surface S1, a second end surface S2 and an axial hole 414, wherein the first end surface S1 and the second end surface S2 face opposite directions along an axial direction. The plurality of blades 42 are arranged in intervals along the circumferential direction and outwardly extend into the hydraulic chambers 32 along the radial direction to divide the hydraulic chambers 32 into first pressure chambers 321 and second pressure chambers 322, respectively.
With referring to
With referring to
It should be noted that, in the technical solution of the present disclosure, as along as the first oil sub-hole 412a has one end penetrating through the outer circumferential surface of the basic body 41 and another end stopping within the basic body 41, it means that the first oil sub-hole 412a extends along the radial direction of the basic body 41, and a central axis of the first oil sub-hole 412a is not required to intersect with a central axis of the basic body 41.
Further, in the technical solution of the present disclosure, as along as the second oil sub-hole 412b has one end penetrating through the first end surface S1 of the basic body 41 and another end stopping within the basic body 41, it means that the second oil sub-hole 412b extends along the axial direction of the basic body 41, and the second oil sub-hole 412b is not required to be parallel to the central axis of the basic body 41.
In the rotor of the existing camshaft phase adjuster, the first oil hole and the second oil hole extend along the radial directions and are arranged in intervals along the axial direction. However, in the rotor of the camshaft phase adjuster provided by the present disclosure, the first oil hole and the first oil sub-hole of the second oil hole extend along the radial direction and are located on a same plane, and the second oil sub-hole of the second oil hole extends along the axial direction, which saves spaces on the rotor along the axial direction for arranging the first oil holes or the second oil holes and also saves spaces for arranging axial intervals between the first oil holes and the second oil holes. Accordingly, an axial dimension of the rotor and a mass of the rotor are reduced, thus an axial dimension of the entire camshaft phase adjuster and a mass of the entire camshaft phase adjuster are reduced.
As shown in
Further, the second oil hole 412 has an L-shaped cross section along the axial direction. In other words, if cutting the second oil hole 412 along the axial direction of the rotor 4, the cross section of the second oil hole 412 is L-shaped. In some other embodiments, the second oil hole 412 may have an x-shaped cross section along the axial direction, that is, the second oil sub-hole 412b and the first oil sub-hole 412a intersect and continue to extend along the axial direction after the intersection.
It should be noted that, in the technical solution of the present disclosure, a number of the oil sub-holes of the second oil hole 412 are not limited. For example, the second oil hole 412 may include another oil sub-hole located between the first oil sub-hole 412a and the second oil sub-hole 412b and communicates with the first oil sub-hole 412a and the second oil sub-hole 412b.
As shown in
With referring to
As shown in
When the camshaft phase adjuster is put in use, a solenoid valve (not shown in
With referring to
With referring to
Although the present disclosure has been disclosed above, but it is not limited to be so. It should be understood by those skilled in the art that various changes and modifications may be made without departing from the spirit or scope of the disclosure. Accordingly, protection scope of the present disclosure is defined by claims. CLAIMS
Number | Date | Country | Kind |
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201410773099.9 | Dec 2014 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2015/091739 | 10/12/2015 | WO | 00 |