The present invention relates to variable valve mechanisms that drive a valve of an internal combustion engine and change the drive state of the valve according to the operating condition of the internal combustion engine.
A variable valve mechanism 90 of a first conventional example (Patent Document 1) shown in
A variable valve mechanism 100 of a second conventional example (Patent Document 2) shown in
[Patent Document 1] Japanese Patent Application Publication No. 2006-132378
[Patent Document 2] Japanese Patent Application Publication No. S62-203913
For example, in recent variable valve mechanisms, the first state is often used to provide desired performance, whereas the second state is often used in the Atkinson cycle in which fuel efficiency is prioritized. A high valve lift and a narrow action angle are desired in the first state, and a low valve lift and a wide action angle are desired in the second state.
In the first conventional example, the second arm 94 that is driven by the second cam 92 is coupled to the first arm 93 that is driven by the first cam 91. Accordingly, as shown in
In the second conventional example, one of the first and second input arms 103, 104 is selectively coupled to the output arm 105. Accordingly, as shown in
It is an object of the present invention to implement the configuration in which lift curves cross each other, namely the configuration in which one of first and second input arms is selectively coupled to an output arm, with two pins.
In order to achieve the above object, a variable valve mechanism of an internal combustion engine according to the present invention includes a rocker arm including a first input arm that swings when driven by a first cam, a second input arm that swings when driven by a second cam, and an output arm that is disposed between the first input arm and the second input arm and that drives a valve when swinging, and a switch device that switches an operating state of the variable valve mechanism to a first state by coupling only the first input arm out of the first and second input arms to the output arm, and switches the operating state of the variable valve mechanism to a second state by coupling only the second input arm out of the first and second input arms to the output arm. The first state is a state where the valve is driven according to a profile of the first cam, and the second state is a state where the valve is driven according to a profile of the second cam.
The variable valve mechanism of the internal combustion engine of the present invention has the following characteristics. The switch device includes two pins that are displaceably placed in the rocker arm and contact each other at their end faces, and a displacement device that switches the operating state to the first state by displacing a contact portion between the two pins to between the output arm and the second input arm, and switches the operating state to the second state by displacing the contact portion between the two pins to between the output arm and the first input arm.
According to the present invention, the configuration in which one of the first and second input arms is selectively coupled to the output arm can be implemented with the two pins.
For example, the output arm is configured in the following form, although the configuration of the output arm is not particularly limited to this.
(i) The output arm has a through hole in which an end of one of the two pins is selectively inserted. The operating state is switched from one of the first and second states to the other when the contact portion between the two pins is displaced from one side of the through hole to the other side of the through hole through the through hole.
(ii) The output arm has a projection that is selectively contacted by a side surface of the end of one of the two pins. The operating state is switched from one of the first and second states to the other when the contact portion between the two pins is displaced from one side in a lateral direction of the projection to the other side in the lateral direction of the projection by passing above or below the projection.
It is preferable that a distance from between the output arm and the first input arm to between the output arm and the second input arm in a portion where the two pins are placed (i.e., a width of the output arm) be 1 to 5 mm, although the present invention is not particularly limited to this. If the distance is larger than 5 mm, a stroke of the two pins may inevitably become too large. If the distance is smaller than 1 mm, the width (thickness) of the output arm may become too small, and sufficient strength may not be ensured. For similar reasons, the distance is more preferably 2 to 4 mm, and even more preferably 2.5 to 3.5 mm.
An embodiment of the present invention will be described below. However, the present invention is not limited to this embodiment, and the configuration and shape of each part may be modified as desired without departing from the spirit and scope of the invention.
A variable valve mechanism 1 of a first embodiment shown in
[First Cam 10]
As shown in
[Second Cam 20]
The second cam 20 is disposed on the camshaft 9a at a position next to the first cam 10 so as to project from the camshaft 9a. The second cam 20 includes a second base circle 21 and a second nose 22. The second base circle 21 has a circular shape as viewed from the side, and the second nose 22 projects from the second base circle 21. The profile of the second nose 22 crosses the profile of the first nose 12.
[Rocker Arm 29]
As shown in
As shown in
The second input arm 40 is swingably supported at its rear end by the rocker shaft 9b. The second input arm 40 swings when driven by the second cam 20. The second input arm 40 has a second roller 44 attached to its tip end so that the second roller 44 contacts the second cam 20 and can rotate via a second shaft 42 and a bearing 43.
The output arm 50 is formed by a base portion 56 and a tip portion 57 and has a T-shape as viewed in plan. The base portion 56 has an elongated shape that is long in the longitudinal direction, and is interposed between the first input arm 30 and the second input arm 40. The tip portion 57 extends from the tip end of the base portion 56 toward both sides in the lateral direction. The output arm 50 is swingably supported at the rear end of the base portion 56 by the rocker shaft 9b. When the output arm 50 swings, the output arm 50 drives the two valves 7, namely the right and left valves 7, with the tip portion 57. A first lost motion spring 53 and a second lost motion spring 54 are attached to the side surfaces of the base portion 56 of the output arm 50. The first lost motion spring 53 is a spring that causes the first input arm 30 to swing relative to the output arm 50 when in a second state. The first lost motion spring 53 biases the first input arm 30 toward the first cam 10. The second lost motion spring 54 is a spring that causes the second input arm 40 to swing relative to the output arm 50 when in a first state. The second lost motion spring 54 biases the second input arm 40 toward the second cam 20.
[Switch Device 60]
The switch device 60 is a device that switches the operating state of the variable valve mechanism 1 between the first and second states. The first state is the state where only the first input arm 30 out of the first and second input arms 30, 40 is coupled to the output arm 50 to drive the valves 7 according to the profile of the first cam 10. The second state is the state where only the second input arm 40 out of the first and second input arms 30, 40 is coupled to the output arm 50 to drive the valves 7 according to the profile of the second cam 20. The switch device 60 includes a first hole 63, a second hole 64, a through hole 65, a first pin 61, a second pin 62, and a displacement device 71.
The first hole 63 is a bottomed cylindrical hole formed in the first shaft 31 and opens toward the output arm 50. The second hole 64 is a bottomed cylindrical hole formed in the second shaft 42 and opens toward the output arm 50. The through hole 65 is a hole formed in the output arm 50 and opens toward the first input arm 30 and the second input arm 40.
The first pin 61 is displaceably placed in the first hole 63. The second pin 62 is displaceably placed in the second hole 64. These two pins 61, 62 are in contact with each other at their end faces. An end of one of the two pins 61, 62 is selectively inserted in the through hole 65.
The displacement device 71 includes a hydraulic chamber 74, an oil passage 75, and a return spring 73. The hydraulic chamber 74 is located in the second hole 64 and hydraulically presses the second pin 62 toward the first input arm 30. The oil passage 75 is an oil passage that supplies oil to the hydraulic chamber 74. The oil passage 75 extends from a cylinder head to the hydraulic chamber 74 through the rocker shaft 9b and the second input arm 40. The return spring 73 is disposed in the first hole 63 and elastically biases the first pin 61 toward the second input arm 40.
As shown in
Specifically, the operating state of the variable valve mechanism 1 is switched from one of the first and second states to the other when the contact portion T between the two pins 61, 62 is displaced from one side of the through hole 65 to the other side of the through hole 65 through the through hole 65. The length L of the through hole 65 (i.e., the distance from between the output arm 50 and the first input arm 30 to between the output arm 50 and the second input arm 40) is about 3 mm. The stroke of the two pins 61, 62 and the contact portion T is approximately the same as the length L of the through hole 65 (to be exact, slightly larger than the length L of the through hole 65).
As shown in
The present invention has the following effects.
[A] In the first state, the second input arm 40 is decoupled from the output arm 50. In the second state, the first input arm 30 is decoupled from the output arm 50. Accordingly, the first lift curve C1 and the second lift curve C2 can be made to cross each other as described above. Improved flexibility in design of the lift curves C1, C2 can thus be achieved, which leads to improved fuel efficiency.
[B] The configuration in which one of the first and second input arms 30, 40 is selectively coupled to the output arm 50 can be implemented with the two pins 61, 62. This can reduce the number of components and simplify the variable valve mechanism 1, and can also reduce the lateral dimension of the rocker arm 29.
Number | Date | Country | Kind |
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2016-156586 | Aug 2016 | JP | national |