This application is based on and claims priority under 35 U.S.C. ยง 119 to Japanese Patent Application 2005-069002, filed on Mar. 11, 2005, the entire content of which is incorporated herein by reference.
This invention relates to a valve timing control apparatus, which includes a driving side rotational member synchronously rotatable with a crankshaft of an internal combustion engine, and a driven side rotational member provided coaxially with the driving side rotational member and fixed to a camshaft of the internal combustion engine at a side thereof in an axial direction.
A known valve timing control apparatus for an internal combustion engine is disclosed in U.S. Pat. No. 6,382,157B1 (see columns 5-10, FIGS. 4, 11). As illustrated in
With the configuration of the valve timing control apparatus 101 disclosed in U.S. Pat. No. 6,382,157B1, the outer rotor 105 is turned in a clockwise direction in
Further, U.S. Pat. No. 6,382,157B1 also discloses a valve timing control apparatus, which is provided with a polygonal portion 184 at an inner surface of a concave seat 183 used for seating a fixing member, by which the inner rotor 104 is fixed to the camshaft, as illustrated in
With the configuration of the valve timing control apparatus disclosed in U.S. Pat. No. 6,382,157B1, an angle of the inner rotor 104 relative to the outer rotor 105 can be held in order to prevent the inner rotor 104 from being turned in the clockwise direction in a condition where the outer rotor 105 is turned in the clockwise direction. Accordingly, the inner rotor 104 can be fixed at the most retarded angle phase relative to the outer rotor 105.
With the configuration of the valve timing control apparatus 101 disclosed in U.S. Pat. No. 6,382,157B1, the vanes 144 of the inner rotor 104 are firmly contacted with the shoes 155 of the outer rotor 105 by applying a load to the outer rotor 105 to rotate in a predetermined direction while holding the angle of the inner rotor 104 when the valve timing control apparatus 101 is mounted to the camshaft. Accordingly, the clearance between the lock member 163a and the engaging hole 163b is biased in one direction, and the assembling error caused by the clearance is thereby restrained.
Therefore, during mounting operation, the lock member 163a, the engaging hole 163b, the vanes 144 of the inner rotor 104, and the shoes 155 of the outer rotor 105 are applied with an excessive share load, which is unlikely applied to them during normal operation of the engine. Accordingly, strength of each component of the valve timing control apparatus 101 such as the lock member 163a, the vanes 144, or the like, may necessarily be increased only for the mounting operation. In consequence, the apparatus may occasionally be increased in size and weight.
A need thus exists for a valve timing control apparatus, which can be reduced in size and weight by reducing an unnecessary load applied to an inner structure thereof at the time of mounting operation relative to the camshaft.
According to an aspect of the present invention, a valve timing control apparatus includes a driving side rotational member synchronously rotatable with a crankshaft of an internal combustion engine, a driven side rotational member provided coaxially with the driving side rotational member, the driven side rotational member being fixed to a camshaft of the internal combustion engine at a first side thereof in an axial direction, and being formed with a plurality of recessed portions into which a supporting jig is insertable at a second side thereof in the axial direction, a fluid pressure chamber formed at at least one of the driving side rotational member and the driven side rotational member, a vane separating the fluid pressure chamber into an advanced angle chamber and a retarded angle chamber, a lock member restraining a displacement of a relative rotational phase between the driving side rotational member and the driven side rotational member at a predetermined lock phase, and a cover plate fixed to a side of the driving side rotational member in an axial direction, the cover plate being formed with a plurality of through holes, through which the supporting jig is insertable, at a position in which each of the plurality of through holes is overlapped with each of the plurality of recessed portions of the driven side rotational member in a condition where the relative rotational phase is restrained at the lock phase.
According to another aspect of the present invention, a valve timing control apparatus includes a driving side rotational member synchronously rotatable with a crankshaft of an internal combustion engine, a driven side rotational member provided coaxially with the driving side rotational member, the driven side rotational member being fixed to a camshaft of the internal combustion engine at a first side thereof in an axial direction, and being formed with a plurality of recessed portions into which a supporting jig is insertable at a second side thereof in the axial direction, wherein at least one of the plurality of the recessed portions serves as a positioning hole formed at a position corresponding to a positioning recessed portion formed at the internal combustion engine side in such a manner that the supporting jig is insertable therethrough, a fluid pressure chamber formed at at least one of the driving side rotational member and the driven side rotational member, and a vane separating the fluid pressure chamber into an advanced angle chamber and a retarded angle chamber.
According to still another aspect of the present invention, a method for mounting a valve timing control apparatus relative to an internal combustion engine, the valve timing control apparatus including a driving side rotational member synchronously rotatable with a crankshaft of the internal combustion engine, a driven side rotational member provided coaxially with the driving side rotational member and fixed to a camshaft of the internal combustion engine at a first side thereof in an axial direction, a fluid pressure chamber formed at at least one of the driving side rotational member and the driven side rotational member, a vane separating the fluid pressure chamber into an advanced angle chamber and a retarded angle chamber, a lock member restraining a displacement of a relative rotational phase between the driving side rotational member and the driven side rotational member at a predetermined lock phase, and a cover plate fixed to a side of the driving side rotational member in an axial direction, the method includes the steps of temporarily engaging the driven side rotational member with the camshaft of the internal combustion engine, restraining the displacement of the relative rotational phase between the driving side rotational member and the driven side rotational member at the lock phase by means of the lock member, inserting a plurality of insert portions of a supporting jig into a plurality of recessed portions formed at a second side of the driven side rotational member in the axial direction through a plurality of through holes formed at the cover plate, and fixing the driven side rotational member relative to the camshaft in a condition where the supporting jig is held and a rotation thereof is prevented.
The foregoing and additional features and characteristics of the present invention will become more apparent from the following detailed description considered with reference to the accompanying drawings, wherein:
A first embodiment of the present invention will be explained hereinbelow with reference to
As illustrated in
The inner rotor 4 is integrally fixed to an end portion of the camshaft 3, which configures a rotational axis of a cam for controlling an opening and closing operation of an exhaust valve of the engine 2. As illustrated in
On this occasion, the camshaft 3 is rotatably connected to a cylinder head 24 of the engine 2 in such a manner that the engaging convex portion 31 formed at the end portion of the camshaft 3 is protruded from the cylinder head 24. Further, a head cover 25 is provided above the cylinder head 24 in such a manner to sandwich the camshaft 3.
The outer rotor 5 is relatively rotatable with the inner rotor 4 within a range of a predetermined relative rotational phase. A rear plate 51 is attached to the outer rotor 5 at a first side in an axial direction thereof to which the camshaft 3 is connected, and a cover plate 52 is attached to the outer rotor 5 at a second side in the axial direction thereof positioned at an another side against the surface to which the camshaft 3 is connected. According to the embodiment of the present invention, the cover plate 52 includes a female screw portion (i.e., a second female screw portion) into which a bolt (i.e., a second bolt) 53 serving as the fixing member is screwed as illustrated in
The outer rotor 5 is integrally provided with a timing sprocket (i.e., a second timing sprocket) 54 at an outer circumference thereof. The timing chain 21 winds around the second timing sprocket 54 of the outer rotor 5, the first timing sprocket 23 fixed to the camshaft provided at the inlet side of the engine 2, and a crankshaft sprocket 27 fixed to an end portion of the crankshaft 22 protruded from a cylinder block 26 of the engine 2. Accordingly, the outer rotor 5 is synchronously rotatable with the crankshaft 22 of the engine 2. The timing chain 21 is guided by means of guide rails 28a and 28b, and is applied with an appropriate tensile force by means of a tension adjusting device 28c provided at a first guide rail 28a.
According to the embodiment of the present invention, when the crankshaft 22 is rotary driven, a rotational power is transmitted to the second timing sprocket 54 through the timing chain 21, and the outer rotor 5 is rotary driven in a rotational direction S illustrated in
As illustrated in
The inner rotor 4 is formed with vane grooves 44a at a part of an outer circumferential portion facing the fluid pressure chamber 61. A vane 44, which separates the fluid pressure chamber 61 into a retarded angle chamber 61a and an advanced angle chamber 61b in a relative rotational direction (a direction of arrows S1 and S2 in
The retarded angle chamber 61a of the fluid pressure chamber 61 communicates with a retarded angle passage 62a formed at the inner rotor 4, the advanced angle chamber 61b communicates with an advanced angle passage 62b formed at the inner rotor 4, and the both of the retarded and advanced angle passages 62a and 62b are connected to a fluid pressure circuit (not shown). By supplying or discharging working oil, pumped from an oil pan 29 by means of an oil pump through the fluid pressure circuit, relative to one of or both of the retarded angle chamber 62a and the advanced angle chamber 62b, a biasing force is generated. The biasing force displaces a relative rotational phase between the inner rotor 4 and the outer rotor 5 (i.e., a relative rotational phase) in a retarded direction S1 (a displace direction of a relative position of the vane 44 indicated by the arrow S1 in
Further, between the outer rotor 5 and the inner rotor 4, a lock mechanism 63 is provided, which can restrain a displacement of the relative rotational phase between the inner rotor 4 and the outer rotor 5 at a predetermined lock phase (a phase illustrated in
The lock member 63a is guided through a guide groove 56 provided at the outer rotor 5, and is slidable along the guide groove 56 in the radial direction of the outer rotor 5. A spring (i.e., a second spring) 63c biases the lock member 63a inwardly in the radial direction. Then the lock member 63a protrudes into the lock chamber 63b provided at the outer circumference of the inner rotor 4, and the displacement of the relative rotational phase is thereby prevented. Therefore, the relative rotational phase is restrained at the lock phase. On this occasion, the lock phase is normally set for obtaining a smooth startability of the engine. According to the embodiment of the present invention, the lock phase is set in the vicinity of a most advanced angle phase of the relative rotational phase. In contrast, the lock member 63a is retracted from the lock chamber 63b by supplying the working oil into the lock chamber 63b through the lock passage 62c from the fluid pressure circuit (not shown). More particularly, when the lock chamber 63b is filled with the working oil, because of a pressure of the working oil in the lock chamber 63b, a biasing force is generated for biasing the lock member 63a outwardly in the radial direction of the outer rotor 5. In a condition where the biasing force, generated by the pressure of the working oil, becomes greater degree than the biasing force of the second spring 63c, the lock member 63a is retracted from the lock chamber 63b and comes into a state in which the displacement of the relative rotational phase between the inner rotor 4 and the outer rotor 5 is allowed.
As illustrated in
With the configuration of the valve timing control apparatus 1, the surface 45 of the inner rotor 4 is formed with plural supporting recessed portions 46 into which the supporting jig 7 is insertable. Further, the cover plate 52 fixed to the outer rotor 5 is formed with plural through holes (i.e., first through hole) 57 through which the supporting jig 7 is insertable. Each first through hole 57 is positioned in such a manner to overlap with corresponding supporting recessed portion 46 in a condition where the relative rotational phase is at the lock phase.
As illustrated in
As illustrated in
As illustrated in
A mounting operation of the valve timing control apparatus 1 relative to the engine 2 according to the embodiment of the present invention is explained hereinafter.
First, the inner rotor 4 of the valve timing control apparatus 1 is temporarily engaged with the end portion of the camshaft 3 by means of the first bolt 32 as illustrated in
Next, the timing chain 21 winds around the second timing sprocket 54 provided at the outer rotor 5 of the valve timing control apparatus 1, the first timing sprocket 23 fixed to the camshaft provided at the inlet side of the engine 2, and the crankshaft sprocket 27 as illustrated in
Next, the insert portion 71 of the supporting jig 7 is inserted into the supporting recessed portion 46 of the inner rotor 4 and the first through hole 57 of the cover plate 52 as illustrated in
According to the embodiment of the present invention, the relative rotational phase between the inner rotor 4 and the outer rotor 5 is restrained at the lock phase when the valve timing control apparatus 1 is temporally engaged with the camshaft 3. In a condition where the relative rotational phase is not restrained at the lock phase caused by an error in operation, the supporting recessed portion 46 and the first through hole 57 are not overlapped with each other. On this occasion, the insert portion 71 of the supporting jig 7 is inserted only into the first through hole 57. More particularly, the insert portion 71 of the supporting jig 7 cannot be inserted until a condition in which the stepped portion 74 of the supporting jig 7 is contacted with the surface 52a of the cover plate 52. Accordingly, a worker can easily be known that the relative rotational phase between the inner rotor 4 and the outer rotor 5 is not at the lock phase, and the operation error can thereby be prevented.
A second embodiment of the present invention will be explained hereinbelow with reference to
As well as the first embodiment of the present invention, three supporting recessed portions 46 are formed at the surface 45 of the inner rotor 4 in the circumferential direction in such a manner to separate from each other as illustrated in
According to the second embodiment of the present invention, the rear plate 51 is formed with a through hole (i.e., a second through hole) 51a through which the supporting jig 7 is insertable. The rear plate 51 is fixed to the outer rotor 5 at the first side in the axial direction of the inner rotor 4. The second through hole 51 a is positioned in such a manner to overlap with the positioning hole 47 in a condition where the relative rotational phase is at the lock phase. As well as the first through hole 57 formed at the cover plate 52, the second through hole 51a includes a substantially circular cross section. Further, the second through hole 51a includes the diameter w2 larger than the diameter w1 of the supporting recessed portion 46 to some degree.
As illustrated in
According to the second embodiment of the present invention, the positioning recessed portion 81 is formed at the cylinder head 24 of the engine 2 as illustrated in
The supporting jig 7 according to the second embodiment of the present invention includes a similar structure to the supporting jig 7 of the first embodiment of the present invention. According to the second embodiment of the present invention, one of the three insert portions 71, which is insertable into the positioning hole 47, is configured longer than other two insert portions 71 so as to reach the positioning recessed portion 81 formed at the engine 2 side. More particularly, a length d4 of the longer insert potion 71 is longer than a total length of the depth d2 of the first through hole 57 of the cover plate 52, a thickness d5 of the inner rotor 4, a depth d6 of the second through hole 51a of the rear plate 51, and a space d7 between the rear plate 51 and the cylinder head 24 of the engine 2 (d2+d5+d6+d7), and is shorter than a total length of d2, d5, d6, d7 and a depth d8 of the positioning recessed portion 81 (d2+d5+d6+d7+d8). In other words, d2+d5+d6+d7<d4<d2+d5+d6+d7+d8. Other than the aforementioned structure, supporting jig 7 of the second embodiment of the present invention includes a similar structure to that of the first embodiment of the present invention
According to the second embodiment of the present invention, a positional relation between the positioning hole 47 and the positioning recessed portion 81 is set to satisfy the following conditions. With the configuration of the valve timing control apparatus 1 according to the second embodiment of the present invention, the inner rotor 4 and the outer rotor 5 are restrained at the lock phase by means of the lock member 63a, and are held by means of the supporting jig 7 by inserting the insert portion 71 thereof into the positioning recessed portion 81 through the positioning hole 47 and by inserting the insert portions 71 into the supporting recessed portions 46. Further, the crankshaft 22 is fixed by means of a fixing pin, or the like. On this occasion, the positional relation between the positioning hole 47 and the positioning recessed portion 81 is defined so that the second timing sprocket 54 of the outer rotor 5 is appropriately engaged with the timing chain 21.
With the configuration of the valve timing control apparatus 1 according to the second embodiment of the present invention, the inner rotor 4 can be fixed to the camshaft 3 before the timing chain 21 is wound around. More particularly, as illustrated in
According to the embodiments of the present invention, the valve timing control apparatus 1 includes the lock mechanism 63 having the lock member 63a. Alternatively, or in addition, the valve timing control apparatus 1 may include the lock mechanism 63 without the lock member 63a. However, in this case, the positional relation between the positioning hole 47 and the positioning recessed portion 81 is defined to satisfy the conditions similar to the aforementioned embodiments in a condition where the inner rotor 4 and the outer rotor 5 are restrained at, for example, a most advanced angle phase or the most retarded angle phase.
According to the embodiments of the present invention, one of the plural supporting recessed portions 46 serves as the positioning hole 47. Alternatively, or in addition, more than one supporting recessed portions 46 or all supporting recessed portions 46 may serve as the positioning hole 47. On this occasion, alternatively, or in addition, the positioning recessed portion 81 at the engine 2 side may be provided at the head cover 25, or the like. Further, depending on a structure of the engine 2, the positioning recessed portion 81 may be provided at the cylinder block 26.
According to the embodiments of the present invention, the supporting recessed portions 46 and the first through holes 57 are formed at a predetermined circumference in regular intervals as illustrated in
A third embodiment of the present invention will be explained hereinbelow with reference to
According to the embodiments of the present invention, three supporting recessed portions 46 of the inner rotor 4 are formed in the circumferential direction in such a manner to separate from each other. However, the number of the supporting recessed portions 46 is not limited thereto. The present invention is applicable as long as more than one supporting recessed portions 46 are provided in such a manner that the supporting recessed portions 46 are not interference with the vane 44, the lock member 63a, or the like. According to the embodiments of the present invention, the timing chain 21 is provided serving as the power transmission member. However, the present invention is not limited thereto. Alternatively, or in addition, a timing belt, or the like, may be provided serving as the power transmission member. According to the embodiments of the present invention, the valve timing control apparatus 1 is mounted to the camshaft 3 provided at the exhaust side of the engine 2. However, the present invention is not limited thereto. Alternatively, or in addition, the valve timing control apparatus 1 may be mounted to the camshaft provided at the inlet side of the engine 2. Further, alternatively, or in addition, the valve timing control apparatus 1 may be mounted to both camshafts provided at the exhausted side of the engine 2 and the inlet side of the engine 2. According to the embodiments of the present invention, the lock member 63a is configured to protrude from the outer rotor 5 toward the inner rotor 4. However, the present invention is not limited thereto. Alternatively, or in addition, the lock member 63a may be configured to protrude from the inner rotor 4 toward the outer rotor 5. According to the embodiments of the present invention, the lock member 63a includes a substantially flat plate. However, the present invention is not limited thereto. Alternatively, or in addition, the lock member 63a may include various shapes such as a substantially pin shape, or the like.
With the configuration of the valve timing control apparatus according to the embodiments of the present invention, the driven side rotational member can be directly supported by means of the supporting jig by inserting the supporting jig into the plural recessed portions formed at the driven side rotational member through the first through holes of the cover plate in a condition where the relative rotational phase between the driven side rotational member and the driving side rotational member is restrained by means of the lock member. Accordingly, the inner structure of the valve timing control apparatus such as the lock member, the vane, or the like, can be prevented from being applied with the excessive load at the time of fixation of the driven side rotational member relative to the camshaft by means of the fixing member such as the bolt, or the like. In consequence, the inner structure of the valve timing control apparatus is not required to excessively increase in strength. Further, the valve timing control apparatus can thereby be reduced in size and weight.
At the time of the fixation of the driven side rotational member relative to the camshaft, the relative rotational phase between the driven side rotational member and the driving side rotational member is required to be restrained at the predetermined phase. According to the embodiments of the present invention, the through hole of the cover plate and the recessed portion of the driven side rotational member are not overlapped in a condition where the relative rotational phase between the driven side rotational member and the driving side rotational member is not restrained at the lock phase by means of the lock member. In such a condition, the supporting jig cannot be inserted into the recessed portion formed at the driven side rotational member. Accordingly, the relative rotational phase between the driven side rotational member and the driving side rotational member can be firmly restrained at the lock phase at the time of the fixation of the driven side rotational member relative to the camshaft. In consequence, the error in operation can be prevented.
With the configuration of the valve timing control apparatus according to the embodiments of the present invention, the driven side rotational member can be positioned with sufficient accuracy relative to the operating components of the internal combustion engine side such as the camshaft, the cylinder head, the cylinder block, or the like, by inserting the supporting jig into the positioning recessed portion formed at the internal combustion engine side through the positioning hole formed at the driven side rotational member. Accordingly, a positioning relation between the crankshaft and the driving side rotational member also becomes highly precise. In consequence, the operating components such as the power transmission member for synchronously rotating the crankshaft and the driving side rotational member can be assembled without difficulty.
At the time of the fixation of the driven side rotational member relative to the camshaft, the relative rotational phase between the driven side rotational member and the driving side rotational member is required to be restrained at the predetermined phase. According to the embodiments of the present invention, the through hole of the cover plate and the recessed portion of the driven side rotational member are not overlapped in a condition where the relative rotational phase between the driven side rotational member and the driving side rotational member is not restrained at the lock phase by means of the lock member. In such a condition, the supporting jig cannot be inserted into the recessed portion formed at the driven side rotational member. Accordingly, the relative rotational phase between the driven side rotational member and the driving side rotational member can be firmly restrained at the lock phase at the time of the fixation of the driven side rotational member relative to the camshaft. In consequence, the error in operation can be prevented.
The principles, preferred embodiment and mode of operation of the present invention have been described in the foregoing specification. However, the invention which is. intended to be protected is not to be construed as limited to the particular embodiment disclosed. Further, the embodiment described herein are to be regarded as illustrative rather than restrictive. Variations and changes may be made by others, and equivalents employed, without departing from the spirit of the present invention. Accordingly, it is expressly intended that all such variations, changes and equivalents which fall within the spirit and scope of the present invention as defined in the claims, be embraced thereby.
Number | Date | Country | Kind |
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2005-069002 | Mar 2005 | JP | national |
Number | Name | Date | Kind |
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6994062 | Kawai et al. | Feb 2006 | B2 |
7246581 | Suga et al. | Jul 2007 | B2 |
Number | Date | Country |
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2002-227620 | Jan 2001 | JP |
Number | Date | Country | |
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20060201464 A1 | Sep 2006 | US |