The disclosure of Japanese Patent Application No. 2014-130118 filed on Jun. 25, 2014 including the specification, drawings and abstract is incorporated herein by reference in its entirety.
1. Field of the Invention
The present invention relates to a camshaft bearing structure that rotatably supports a camshaft.
2. Description of Related Art
Japanese Patent Application Publication No, 2011-241700 (JP 2011-241700 A) discloses one example of a bearing structure for an intake camshaft or exhaust camshaft. As shown in
When the cylinder head 103 is deformed by heat from exhaust gas, the cylinder head 103 is deformed such that an upper part thereof gradually rises toward a lateral side 106 of the cylinder head 103 as shown in
In particular, in the vicinity of the exhaust camshaft, the cylinder head tends to become very hot because of heat from the exhaust gas and therefore undergoes a large degree of thermal deformation. Thus, seizure as described above is likely to occur. The present invention provides a camshaft bearing structure in which deformation of the cylinder head does not lead to significant deformation of the journal hole.
A bearing structure for a camshaft according to one aspect of the present invention includes a bearing part that includes a cylinder head, a cam cap, and a positioning member. The cam cap is assembled to an upper part of the cylinder head.
The cylinder head and the cam cap define a journal hole. The cylinder head and the cam cap are configured to rotatably support the camshaft in the journal hole. The positioning member determines the position where the cylinder head and the cam cap are assembled to each other. The positioning member is press-fitted into the cylinder head and the cam cap. In the bearing part for the camshaft, the positioning member is provided only in an inner part, which is a part of the bearing part between an axis of the camshaft and a center of an upper part of the cylinder head.
Regarding the bearing structure, in the bearing part for the camshaft, the positioning member may not be provided in an outer part, which may be a part of the bearing part on the opposite side of the inner part with respect to the axis of the camshaft.
Regarding the bearing structure, when the upper part of the cylinder head is deformed, the cylinder head may be displaced toward a lateral side of the cylinder head relative to the cam cap in the outer part of the bearing part.
The bearing structure may further include a bolt. The cam cap may have a bolt hole, the cam cap and the cylinder head may be secured to each other by the bolt, and a clearance may be provided between the bolt and a wall surface of the bolt hole.
Regarding the bearing structure, the camshaft may be an exhaust camshaft.
The bearing part for an exhaust camshaft tends to become very hot because of heat from exhaust gas and therefore tends to undergo a large degree of thermal deformation. According to the above configuration, the cam cap is not restrained by a positioning member in the outer part of the bearing part for the exhaust camshaft. Thus, when the cylinder head is deformed such that an upper part thereof gradually rises toward a lateral side of the cylinder head due to heat from exhaust gas, the cylinder head is displaced relative to the cam cap in the outer part. Thus, compared to the case where the cam cap is restrained by positioning members, the semi-circular arch-shaped portion of the cam cap that surrounds the journal hole undergoes a smaller degree of deformation and the resulting deformation of the journal hole will be smaller. As a result, deformation of the cylinder head does not lead to significant deformation of the journal hole.
Features, advantages, and technical and industrial significance of exemplary embodiments of the invention will be described below with reference to the accompanying drawings, in which like numerals denote like elements, and wherein:
One embodiment of a camshaft bearing structure is hereinafter described with reference to
The configuration of the bearing part 4 for the exhaust camshaft 2 is next described with reference to
As shown in
In the part of the bearing part 4 between the axis L of the camshaft 2 and a center 13 of an upper part of the cylinder head 5 (which is hereinafter referred to as “inner part 14”), the bolt hole 11 that is formed through the cam cap 6 (which is hereinafter referred to also as “bolt hole 111”) has, at its lower end, a large diameter portion 112 that has a diameter larger than that of the upper end thereof.
Screw holes 15 into which bolts are threaded are provided at locations opposed to the bolt holes 11 in an upper part of the cylinder head 5. A large diameter portion 151 with the same shape as the large diameter portion 112 is formed at a location opposed to the large diameter portions 112 by increasing the diameter of an upper part of the corresponding screw hole 15. A pin ring 16 as a positioning member that determines the position where the cylinder head 5 and the cam cap 6 are assembled to each other is press-fitted into the large diameter portion 112 and the large diameter portion 151. The pin ring 16 has a cylindrical shape, and has an inside diameter that is generally the same as the outside diameter of the bolts 12. The bolt 12 that is inserted through the bolt hole 111 extends through the pin ring 16 and threaded into the corresponding screw hole 15 of the cylinder head 5.
In the bearing part 4, the pin ring 16 is not provided in the part on the opposite side of the inner part 14 with respect to the axis L of the camshaft 2, in other words, the part closer to the lateral side 17 of the cylinder head 5 (which is hereinafter referred to as “outer part 18”).
The function and effect of this embodiment are next described with reference to
In this embodiment, the pin ring 16 is not provided in the outer part 18, which undergoes a larger degree of deformation, and the pin ring 16 is provided only in the inner part 14 in the bearing part 4. In other words, the portion of the cam cap 6 in the outer part 18 is not restrained by the pin ring 16. Thus, when the cylinder head 5 is deformed such that an upper part thereof gradually rises toward the lateral side 17 due to heat from exhaust gas or assembling using the head bolts 9, the cylinder head 5 is displaced toward the lateral side 17 relative to the cam cap 6 in the outer part 18 of the bearing part 4 as indicated by black circles that are shown in
The above embodiment may be implemented with any of the following modifications. While the journal hole 1 for the exhaust camshaft 2 and the journal hole 1 for the intake camshaft 3 are formed by one cam cap 6, each journal hole 1 may be formed by a dedicated cam cap.
The cylinder head 5 may be constituted of a cylinder head main body and a cam housing that is secured to an upper part of the cylinder head main body, and the cam cap 6 may be assembled to an upper part of the cam housing.
While an arrangement in which the pin ring 16 is provided only in the inner part 14 of the bearing part 4 is applied to both the bearing part 4 for the exhaust camshaft 2 and the bearing part 4 for the intake camshaft 3, this arrangement may be applied only to the bearing part 4 for the exhaust camshaft 2.
While description is made of an example in which the pin rings 16 are used as the positioning members in the above embodiment, the pins 105, which are employed in the bearing structure of the related art, for example, may be employed as the positioning members.
Number | Date | Country | Kind |
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2014-130118 | Jun 2014 | JP | national |