variable valve timing system
The variable valve timing system addresses the issue of vehicle size increase by strategically positioning the intake and exhaust housing walls to accommodate the variable valve gear and secure tool lines, ensuring compactness and maintainability.
Patent Information
- Application Number
- JP2022019257
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-02-10
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2042-02-10
AI Technical Summary
The protrusion of the cylinder head's outer wall in the vehicle width direction in existing variable valve timing systems leads to an increase in vehicle size due to interference with the body frame, particularly narrowing towards the front and exhaust side.
A variable valve timing system design where the intake-side housing wall of the cylinder head protrudes outward to accommodate the variable valve gear, while the exhaust-side housing wall is inward, allowing for tool lines for both bolts to be secured, preventing interference with the body frame and maintaining a compact vehicle size.
Ensures a tool line for fixing the cylinder head to the cylinder, prevents vehicle size increase, and maintains maintainability by securing bolts on the intake and exhaust sides, while minimizing interference with the body frame.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a variable valve timing system. [Background technology]
[0002] Variable valve timing systems that control the opening and closing timing of valves using a variable valve timing mechanism according to the engine's operating conditions are being adopted to achieve high power output, low fuel consumption, and low exhaust gas emissions. A known variable valve timing system has a variable valve timing mechanism attached to one end of the intake camshaft (see, for example, Patent Document 1). The outer wall of the cylinder head in Patent Document 1 protrudes outward in the vehicle width direction to accommodate the variable valve timing mechanism. The cylinder head is fastened to the cylinder with screws, but because a tool line cannot be secured on the outside of the protruding outer wall, bolts are installed inside the cylinder head. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Publication No. 2020-23946 Summary of the Invention [Problem to be solved by the invention]
[0004] However, in the variable valve timing system described in Patent Document 1, the outer wall of the cylinder head protrudes outward in the vehicle width direction, which causes the body frame to bulge in order to avoid interference with the cylinder head, resulting in an increase in the size of the vehicle. In particular, the body frame narrows toward the front of the vehicle, and the exhaust side, which is in front of the cylinder head, is closer to the body frame than the intake side, which is behind the cylinder head.
[0005] The present invention has been made in consideration of the above points, and has an object to provide a variable valve timing system that can ensure a tool line when fixing a cylinder head to a cylinder while suppressing an increase in the size of a vehicle. [Means for solving the problem]
[0006] A variable valve timing system according to one aspect of the present invention is a variable valve timing system for an engine in which a cylinder head on a cylinder is suspended from a body frame, and includes intake and exhaust camshafts installed on the cylinder head, and a variable valve mechanism attached to one end of the intake camshaft. When viewed from the side of the vehicle, the side on which the intake camshaft is installed is the intake side of the cylinder head, and the side on which the exhaust camshaft is installed is the exhaust side of the cylinder head, the cylinder head housing walls that cover the intake and exhaust camshafts from the sides have the exhaust side housing wall located more inward in the vehicle width direction than the intake side housing wall, a first bolt that secures the intake side of the cylinder head to the cylinder is located more inward in the vehicle width direction than the intake side housing wall, and a second bolt that secures the exhaust side of the cylinder head to the cylinder is located more outward in the vehicle width direction than the exhaust side housing wall, thereby solving the above problem. [Effects of the Invention]
[0007] According to one aspect of the variable valve timing system of the present invention, the intake-side housing wall of the cylinder head protrudes outward in the vehicle width direction to house the variable valve gear, and a tool line for tightening the first bolt is secured inside the protruding housing wall. Furthermore, the exhaust-side housing wall of the cylinder head is prevented from protruding outward, preventing interference with the body frame, and a tool line for tightening the second bolt is secured outside the restricted protrusion housing wall. Therefore, the body frame does not protrude outward in the vehicle width direction, preventing an increase in the size of the vehicle, and a tool line for fixing the cylinder head to the cylinder can be secured. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 2 is a right side view of the front part of the vehicle according to the present embodiment. [Figure 2] FIG. 2 is a right side view of the engine and its surroundings according to the present embodiment. [Figure 3] FIG. 2 is a front view of the engine and its surroundings according to the present embodiment. [Figure 4] 2A and 2B are a front view and a rear view of the oil control valve of the present embodiment. [Figure 5] FIG. 2 is a schematic diagram of an oil passage according to the present embodiment. [Figure 6] FIG. 3 is a cross-sectional view of the engine of FIG. 2 taken along line AA. [Figure 7] FIG. 3 is a cross-sectional view of the engine of FIG. 2 taken along line BB. [Figure 8] FIG. 2 is a top view of the cylinder head of the present embodiment. [Figure 9] FIG. 2 is a top view of the cylinder of the present embodiment. [Figure 10] 1 is a schematic diagram of a variable valve timing system according to an embodiment of the present invention; DETAILED DESCRIPTION OF THE INVENTION
[0009] A variable valve timing system according to one aspect of the present invention is mounted on an engine in which a cylinder head on a cylinder is suspended from a vehicle body frame. The variable valve timing system includes intake and exhaust camshafts mounted on the cylinder head and a variable valve timing device attached to one end of the intake camshaft. When the side of the cylinder head on which the intake camshaft is mounted is the intake side and the side on which the exhaust camshaft is mounted is the exhaust side, as viewed from the side of the vehicle, the cylinder head has housing walls that laterally cover the intake and exhaust camshafts, with the exhaust side housing wall positioned more inward in the vehicle width direction than the intake side housing wall. A first bolt that secures the intake side of the cylinder head to the cylinder is located more inward in the vehicle width direction than the intake side housing wall, and a second bolt that secures the exhaust side of the cylinder head to the cylinder is located more outward in the vehicle width direction than the exhaust side housing wall. As a result, the intake side housing wall of the cylinder head protrudes outward in the vehicle width direction to accommodate the variable valve timing device, and a tool line for tightening the first bolt is secured inside the protruding housing wall. Furthermore, the housing wall on the exhaust side of the cylinder head is prevented from protruding too much, preventing interference with the body frame, and a tool line for tightening the second bolt is secured on the outside of the housing wall with reduced protrusion. This prevents the body frame from bulging outward in the vehicle width direction, preventing the vehicle from becoming larger, and also ensures a tool line for fixing the cylinder head to the cylinder. [Example]
[0010] This embodiment will be described in detail below with reference to the accompanying drawings. Fig. 1 is a right side view of the front of the vehicle of this embodiment. In the following drawings, arrow FR indicates the front of the vehicle, arrow RE indicates the rear of the vehicle, arrow L indicates the left side of the vehicle, and arrow R indicates the right side of the vehicle.
[0011] As shown in Fig. 1, the saddle-ride type vehicle 1 is configured by mounting an engine 21, an electrical system, and various other components on a twin-spar body frame 10. The body frame 10 has a pair of main frames 12 that branch off to the left and right from a head pipe 11 and extend rearward, and a pair of down frames 13 that extend downward from the front portions of the pair of main frames 12. The pair of main frames 12 pass above the engine 21 and curve around to the rear of the engine 21. The upper and rear sides of the engine 21 are suspended by the pair of main frames 12, and the front side of the engine 21 is suspended by the pair of down frames 13.
[0012] A front fork 14 is steerably supported on the head pipe 11 via a steering shaft (not shown). A front wheel 15 is rotatably supported on the lower part of the front fork 14. A radiator (heat exchanger) 16 that dissipates heat from the coolant for the engine 21 is provided in front of the engine 21. An upper part of the radiator 16 is supported on the main frame 12 via an upper bracket 17, and a lower part of the radiator 16 is supported on the engine 21 via a lower bracket 18. A cooling fan 19 is attached to the back of the radiator 16 to draw in hot air from the radiator 16 when the vehicle is stopped, etc.
[0013] The engine 21 is an in-line four-cylinder engine with four cylinders aligned laterally, and has a crankcase 22 that houses a crankshaft (not shown). A cylinder assembly, which is made up of a stack of cylinders 25, a cylinder head 26, and a cylinder head cover 27, is attached to the top of the crankcase 22. An oil pan 28 that stores oil for lubrication and cooling is attached to the bottom of the crankcase 22. Engine covers such as a clutch cover 31 and starter gear covers 32 and 33 are attached to the left side of the crankcase 22. Multiple exhaust pipes 34 extend downward from the front of the engine 21.
[0014] The engine 21 is equipped with a hydraulically controlled variable valve timing system that controls the opening and closing timing of intake valves (not shown). A variable valve train 60 (see FIG. 9) is housed inside the cylinder head 26 and cylinder head cover 27, and an oil control valve 40 is installed on the outer surface of the cylinder 25. The variable valve train 60 and the oil control valve 40 are connected via various oil passages within the engine 21. The oil control valve 40 controls the hydraulic pressure to the variable valve train 60, and the opening and closing timing of the intake valve is changed by the hydraulic pressure to the variable valve train 60.
[0015] The cylinder head is fastened to the cylinder with bolts, but in an engine not equipped with a variable valve timing system, the bolts are installed on the outside of the cylinder head to ensure a tool line for tightening the bolts. On the other hand, in an engine equipped with a variable valve timing system, the outer wall of the cylinder head must extend outward in width to accommodate the variable valve gear, making it impossible to ensure a tool line for tightening the bolts on the outside of the cylinder head. For this reason, the bolts are usually installed on the inside of the cylinder head to ensure a tool line.
[0016] However, if the entire outer wall of the cylinder head protrudes outward in the vehicle width direction, the body frame would bulge outward in the vehicle width direction to avoid interference with the cylinder head, resulting in an increased vehicle size. In particular, the body frame narrows toward the front of the vehicle, making it easy for the exhaust side, which is in front of the cylinder head, to interfere with the body frame. Therefore, in the cylinder head 26 of this embodiment, the intake-side outer wall protrudes outward in the vehicle width direction to accommodate the variable valve mechanism 60, and the exhaust-side outer wall is prevented from protruding, thereby preventing the body frame 10 from protruding. In addition, bolts are installed on the inside of the intake-side outer wall and on the outside of the exhaust-side outer wall, ensuring a tool line for tightening the bolts.
[0017] The layout of the oil control valve will be described with reference to Figures 2 and 3. Figure 2 is a right side view of the engine and its periphery in this embodiment. Figure 3 is a front view of the engine and its periphery in this embodiment.
[0018] As shown in Figure 2, the crankcase 22 of the engine 21 has an upper and lower split structure including an upper case 23 and a lower case 24. Various shafts, such as the crankshaft, are supported on the mating surfaces of the upper case 23 and the lower case 24. An oil pan 28 is fixed to the underside of the lower case 24, and a cylinder 25 is fixed to the top surface of the upper case 23. A cylinder head 26 is fixed to the top surface of the cylinder 25, and a cylinder head cover 27 is fixed to the top surface of the cylinder head 26. The cylinder head 26 and crankcase 22 are suspended from the body frame 10.
[0019] The front portion of the body frame 10 branches into a main frame 12 and a down frame 13. The main frame 12 crosses the side of the cylinder head 26 diagonally from the top to the rear, and the down frame 13 is formed in a generally triangular shape in side view so that its front-to-rear width narrows downward. The main frame 12 covers the rear side of the cylinder head 26 from the sides, and the down frame 13 covers the front side of the cylinder head 26 from the sides. The rear side of the cylinder head 26 is suspended from a midpoint in the extension direction of the main frame 12, and the front side of the cylinder head 26 is suspended from the lower top of the down frame 13.
[0020] In a side view of the vehicle, a triangular area is formed on the side of the cylinder head 26, surrounded by the lower edge of the main frame 12, the rear edge of the down frame 13, and the underside of the cylinder head 26. The triangular area of the cylinder head 26 is exposed laterally between the main frame 12 and the down frame 13, but the triangular area is not large enough for the oil control valve 40. For this reason, the oil control valve 40 is installed on the side (outer surface) of the cylinder 25, which is below the triangular area of the cylinder head 26. The side of this cylinder 25 is formed by the outer wall of the cam chain chamber 58 (see FIG. 6).
[0021] A pair of plug caps 66, 67 are installed in a triangular region of the cylinder head 26 to close insertion openings for a pair of oil pipes 64, 65 (see FIG. 5), which will be described later. Because the plug caps 66, 67 avoid the body frame 10 in a side view of the vehicle, the oil pipes 64, 65 can be attached and detached via the plug caps 66, 67 even when the engine 21 is suspended from the body frame 10, improving maintainability. Because the plug caps 66, 67 are installed along the rear edge of the down frame 13, there is no need to modify the shape of the down frame 13. In this case, the plug cap 67 at the rear of the vehicle is positioned higher than the plug cap 66 at the front of the vehicle, and the plug caps 66, 67 partially overlap in the vertical direction, thereby narrowing the installation area for the plug caps 66, 67.
[0022] The oil control valve 40 is formed into a substantially cylindrical shape and includes a valve housing 41 that houses a valve spool (not shown) and a solenoid 42 that moves the valve spool back and forth. The solenoid 42 moves the valve spool back and forth, thereby switching the oil passage within the oil control valve 40. The oil control valve 40 is tilted so that its axial direction is parallel to the mating surface between the cylinder head 26 and the cylinder 25. The solenoid 42 is provided on the rear side of the valve housing 41 and is positioned higher than the valve housing 41.
[0023] Although there is a risk of contamination such as metal powder forming inside the valve housing 41, it is difficult for the contamination to get from the valve housing 41 into the solenoid 42. In other words, the oil control valve 40 is tilted so that the solenoid 42 is higher than the valve housing 41, which prevents the oil from carrying the contamination from the valve housing 41 to the solenoid 42. Because the contamination does not accumulate on the solenoid 42 side, the oil control valve 40 is prevented from being damaged by the contamination. Details of the oil control valve 40 will be described later.
[0024] Because the oil control valve 40 is installed on the outer surface of the cylinder 25, the oil control valve 40 does not interfere with the body frame 10 that suspends the cylinder head 26. Therefore, the body frame 10 does not protrude outward in the vehicle width direction, and an increase in the size of the saddle-ride type vehicle 1 is suppressed. Furthermore, because the center of gravity of the engine 21 is located in the crankcase 22, the oil control valve 40 is located close to the center of gravity of the engine 21. Therefore, transmission of vibration from the crankcase 22 to the oil control valve 40 is reduced, improving the durability of the oil control valve 40.
[0025] In a side view of the vehicle, the cylinder head 26 and cylinder 25 are fixed on both sides of the cylinder axis by first and second bolts 36a, 36b, and the cylinder 25 and crankcase 22 are fixed on both sides of the cylinder axis by third and fourth bolts 37a, 37b. In this case, the distance between the first and second bolts 36a, 36b is wider than the distance between the third and fourth bolts 37a, 37b, and the oil control valve 40 is positioned closer to the cylinder head 26. The oil control valve 40 is installed so as not to overlap these first to fourth bolts 36a, 36b, 37a, 37b.
[0026] In particular, the oil control valve 40 is positioned below the down frame 13, and a portion of the oil control valve 40 is positioned below the second bolt 36b. This eliminates the need to protrude the oil control valve 40 outward in the vehicle width direction to avoid interference between the second bolt 36b and the oil control valve 40, thereby preventing an increase in the size of the engine 21. Furthermore, by installing the oil control valve 40 in the cylinder 25, the body frame 10 is spaced from the oil control valve 40, which improves the degree of freedom in the shape of the body frame 10 and prevents the body frame 10 from bulging outward in the vehicle width direction, thereby preventing an increase in the size of the vehicle.
[0027] Starter gear covers 32, 33 that cover the starter gear (not shown) from the sides are provided below the oil control valve 40. A clutch cover 31 that covers the clutch (not shown) from the sides is provided behind the starter gear covers 32, 33. The upper part of the starter gear cover 32 protrudes toward the cylinder 25, but interference between the starter gear cover 33 and the solenoid 42 is minimized. Note that although the starter gear covers 32, 33 and the clutch cover 31 are formed as separate engine covers, the starter gear covers 32, 33 and the clutch cover 31 may also be formed as a single engine cover.
[0028] 2 and 3, the starter gear covers 32, 33 and the clutch cover 31 bulge outward in the vehicle width direction beyond the side surfaces of the cylinder 25. In a front view of the vehicle, the oil control valve 40 is positioned more inward in the vehicle width direction than the starter gear covers 32, 33, the clutch cover 31, and the down frame 13. In addition, the oil control valve 40 is positioned between the starter gear covers 32, 33 and the down frame 13. When the vehicle falls over, the oil control valve 40 is protected by the starter gear covers 32, 33, the clutch cover 31, and the down frame 13.
[0029] An oil main gallery 38 is formed in the crankcase 22, and the main gallery 38 and oil control valve 40 are connected by external piping 39. As a result, oil is supplied directly from the main gallery 38, which has a high oil pressure, to the oil control valve 40 via the external piping 39. By supplying oil from the main gallery 38 to the oil control valve 40 without passing through the oil passages in the crankcase 22, pressure loss in the oil passages is reduced and oil at a high oil pressure can be supplied to the oil control valve 40.
[0030] The external piping 39 extends from the main gallery 38 toward the front of the vehicle, wraps around the crankcase 22 from below, and extends upward. The external piping 39 is then bent toward the rear of the vehicle below the down frame 13 and connected to a valve housing 41 of an oil control valve 40. In a front view of the vehicle, the external piping 39 passes inside the starter gear covers 32, 33, the clutch cover 31, and the down frame 13 in the vehicle width direction, and is connected to the oil control valve 40 below the down frame 13. When the vehicle turns over, the external piping 39 is protected by the starter gear covers 32, 33, the clutch cover 31, and the down frame 13.
[0031] A radiator 16 having a rectangular shape in front view is provided in front of the cylinder head 26. The radiator 16 is tilted so that its upper portion is positioned further forward than its lower portion. The radiator 16 is a round radiator that is curved in an arch shape in top view, and a cooling fan 19 is attached to the back of the radiator 16 on the oil control valve 40 side (right side) in the vehicle width direction. When viewed from the front of the vehicle, the oil control valve 40 is installed outside the radiator 16 in the vehicle width direction and below the down frame 13, so that the wind generated by traveling is less likely to be blocked by the radiator 16 and the down frame 13 in front of the oil control valve 40.
[0032] Because the oil control valve 40 is a solenoid valve, the oil control valve 40 is prone to heat generation when the solenoid 42 is energized. Therefore, the oil control valve 40 is cooled by the wind while the vehicle is running, which prevents deterioration in the operability of the variable valve mechanism 60 due to a rise in the temperature of the oil control valve 40 and the oil. As described above, the solenoid 42 is positioned on the rear side of the valve housing 41, and is separated from the radiator 16. Heat from the radiator 16 is less likely to be transmitted to the solenoid 42, which prevents a rise in temperature of the solenoid 42.
[0033] In a side view of the vehicle, the lower end of the down frame 13 is positioned on an extension line L extending from the lower end of the cooling fan 19 in the air blowing direction, and the oil control valve 40 is positioned below this extension line L. The exhaust air from the radiator 16 is less likely to hit the oil control valve 40, which prevents deterioration in the operability of the variable valve mechanism 60 caused by a rise in the temperatures of the oil control valve 40 and the oil. In addition, in a front view of the vehicle, the down frame 13 covers the solenoid 42 of the oil control valve 40, which blocks the exhaust air from the radiator 16 and prevents a rise in the temperature of the solenoid 42.
[0034] The oil control valve will be described with reference to Fig. 4. Fig. 4 shows a front view and a rear view of the oil control valve of this embodiment. Fig. 4(A) shows the front view of the oil control valve, and Fig. 4(B) shows the rear view of the oil control valve.
[0035] As shown in Figures 4(A) and 4(B), the valve housing 41 of the oil control valve 40 has a mounting plate 43 that is mounted on the side of the cylinder 25, and a cylindrical case 44 that bulges outward from the mounting plate 43. Fixing holes 45 for screwing are formed in three locations around the outer edge of the mounting plate 43 surrounding the cylindrical case 44. In addition, a supply port 46 to which the external piping 39 (see Figure 2) is connected is formed in the lower part of the mounting plate 43. A valve spool extending from the solenoid 42 is inserted into the cylindrical case 44. The destination of the oil that enters through the supply port 46 is switched by the valve spool.
[0036] An O-ring 47 is attached to the back surface of the installation plate 43, sealing the gap between the back surface of the installation plate 43 and the side surface of the cylinder 25. A supply port 46, an input port 51, an advance port 52, a retard port 53, and a drain port 54 are formed inside the O-ring 47. The supply port 46 is connected to the input port 51 through an oil passage formed in the cylinder 25. A filter 55 is installed in the input port 51, and the oil is filtered by passing through the filter 55. The input port 51 is connected to one of the advance port 52, retard port 53, and drain port 54, depending on the position of the valve spool.
[0037] When oil flows into the input port 51 from the supply port 46, the oil is filtered by the filter 55 of the input port 51 and then input into the cylindrical case 44. When the valve spool is moved by the solenoid 42, the input port 51 is connected to either the advance port 52 or the retard port 53, and the drain port 54 is connected to the other of the advance port 52 or the retard port 53. As a result, oil is supplied from the oil control valve 40 to either the advance chamber S1 or the retard chamber S2 of the variable valve mechanism 60 (see FIG. 10 ), which will be described later, and excess oil is discharged from the other of the chambers toward the oil control valve 40.
[0038] The oil passages in the engine will be described with reference to Fig. 5. Fig. 5 is a schematic diagram of the oil passages in this embodiment.
[0039] As shown in Figure 5, a cam chain chamber 58 is formed in the cylinder 25 and cylinder head 26 of the engine 21. A cam chain 59 is housed in the cam chain chamber 58, and the cam chain 59 is stretched over an intake cam sprocket 71 and an exhaust cam sprocket 81. An intake camshaft 72 is fixed to the intake cam sprocket 71, and an exhaust camshaft 82 is fixed to the exhaust cam sprocket 81. A crankshaft (not shown) is connected to the intake camshaft 72 and the exhaust camshaft 82 via the cam chain 59.
[0040] The intake camshaft 72 and the exhaust camshaft 82 are rotatably supported by a cam housing 91. The cam housing 91 is a support wall fixed to the cylinder head 26, and has an upper housing 92 that supports the upper halves of the camshafts 72, 82, and a lower housing 93 that supports the lower halves of the camshafts 72, 82. A variable valve train 60 is attached to one end of the intake camshaft 72 inside the cylinder head 26. The variable valve train 60 uses hydraulic pressure to advance or retard the intake camshaft 72, thereby changing the opening and closing timing of the intake valve (not shown).
[0041] An oil control valve 40 is installed on the outer surface (side surface) of the cylinder 25, which forms the outer wall of the cam chain chamber 58. The oil control valve 40 controls the oil pressure to the variable valve train 60. An advance passage 100 extends from an advance port 52 (see FIG. 4B) of the oil control valve 40 toward the variable valve train 60, and a retard passage 105 extends from a retard port 53 (see FIG. 4B) of the oil control valve 40 toward the variable valve train 60. Oil that advances the opening and closing timing of the intake valve flows through the advance passage 100, and oil that retards the opening and closing timing of the intake valve flows through the retard passage 105.
[0042] The advance passage 100 and retard passage 105 for hydraulic control enter the outer wall of the cam chain chamber 58 from the oil control valve 40. The advance passage 100 and retard passage 105 then flow from the cylinder 25 side toward the cylinder head 26 side, cross the cam chain chamber 58, and flow toward the variable valve mechanism 60 through the inner wall of the cam chain chamber 58. In this case, the outer wall of the cam chain chamber 58 is formed by the outer wall of the cylinder 25, the outer wall of the cylinder head 26, and the outer wall of the crankcase 22, while the inner wall of the cam chain chamber 58 is formed by the inner wall of the cylinder 25, the inner wall of the cylinder head 26, the inner wall of the crankcase 22, and the cam housing 91.
[0043] The outer wall and inner wall of the cylinder head 26 are connected by a pair of oil pipes 64, 65. The pair of oil pipes 64, 65 pass inside the cam chain 59 and cross the cam chain chamber 58. Because the oil pipes 64, 65 are installed detachably, the pair of oil pipes 64, 65 do not become an obstacle when assembling the cam chain 59. Because the pair of oil pipes 64, 65 are detachable, the pair of oil pipes 64, 65 can be inserted after assembling the cam chain 59 to the engine 21. This makes effective use of the dead space inside the cam chain 59.
[0044] In the outer wall of the cam chain chamber 58, the advance passage 100 and the retard passage 105 extend parallel to the cylinder axis from the outer wall of the cylinder 25 toward the outer wall of the cylinder head 26. In this case, the advance passage 100 is positioned on the front side, and the retard passage 105 is positioned on the rear side, with the retard passage 105 extending to a position higher than the advance passage 100. Between the outer wall and inner wall of the cam chain chamber 58, the advance passage 100 and the retard passage 105 extend perpendicular to the cylinder axis, passing inside the pair of oil pipes 64, 65. In this way, the pair of oil pipes 64, 65 form a crossing point of the advance passage 100 and the retard passage 105.
[0045] In the inner wall of the cam chain chamber 58, an advance passage 100 and a retard passage 105 extend parallel to the cylinder axis from the outer wall of the cylinder head 26 toward the cam housing 91. The advance passage 100 passes through the lower housing 93 and extends to a mating surface 151 between the lower housing 93 and the upper housing 92, and then passes through the mating surface 151 to connect to the advance groove 131 from the side. The retard passage 105 passes through the mating surface 152 between the cylinder head 26 and the lower housing 93 and extends to below the retard groove 132, and then passes through the lower housing 93 to connect to the retard groove 132 from below. The advance groove 131 and the retard groove 132 are connected to the variable valve train 60 via the intake camshaft 72.
[0046] In the cylinder 25 and the cylinder head 26, the advance passage 100 and the retard passage 105 are formed by a straight passage parallel to the cylinder axis and an orthogonal passage perpendicular to the straight passage. This reduces oil pressure loss in the advance passage 100 and the retard passage 105 and allows the advance passage 100 and the retard passage 105 to be easily machined into the cylinder 25 and the cylinder head 26. In the cylinder 25 and the cylinder head 26, the advance passage 100 and the retard passage 105 are aligned in parallel. This allows the advance passage 100 and the retard passage 105 to be close to each other in the front-to-rear direction, preventing the engine 21 from becoming larger.
[0047] A drain hole 109 (see FIG. 10 in particular) that connects to the drain port 54 (see FIG. 4B) of the oil control valve 40 is formed in the outer wall of the cam chain chamber 58 on the cylinder 25 side. The inner peripheral surface of the cam chain 59 is positioned below the drain hole 109, and oil is discharged from the drain hole 109 toward the cam chain 59. The oil that drops from the drain hole 109 is supplied to the cam chain 59, appropriately lubricating the meshing portions of the cam chain 59 with the intake cam sprocket 71 and the exhaust cam sprocket 81, improving the durability of the cam chain 59. In addition, no guides or complex machining are required to direct the oil toward the cam chain 59.
[0048] The installation structure of the first and second bolts will be described with reference to Figures 6 to 9. Figure 6 is a cross-sectional view of the engine of Figure 2 taken along line AA. Figure 7 is a cross-sectional view of the engine of Figure 2 taken along line BB. Figure 8 is a top view of the cylinder head of this embodiment. Figure 9 is a top view of the cylinder of this embodiment. For ease of explanation, the variable valve mechanism and camshaft are omitted from Figure 8.
[0049] 6 and 7, an intake-side camshaft 72 and an exhaust-side camshaft 82 are mounted on the cylinder head 26. In the side view of the vehicle shown in FIG. 2, the rear side of the vehicle where the intake-side camshaft 72 is mounted is the intake side of the cylinder head 26, and the front side of the vehicle where the exhaust-side camshaft 82 is mounted is the exhaust side of the cylinder head 26. As described above, the intake side, which is the rear side of the cylinder head 26, is covered from the side by the main frame 12, and the exhaust side, which is the front side of the cylinder head 26, is covered from the side by the down frame 13.
[0050] The intake-side cam sprocket 71 and the variable valve train 60 are attached to one end of the intake-side camshaft 72, and the exhaust-side cam sprocket 81 is attached to one end of the exhaust-side camshaft 82. Housing walls 35a, 35b that cover the intake-side camshaft 72 and the exhaust-side camshaft 82 from the sides are formed on one side (right side) of the cylinder head 26 and the cylinder head cover 27 in the vehicle width direction. In this case, since the variable valve train 60 cannot be attached to the exhaust-side cam sprocket 81, the exhaust-side housing wall 35b of the cylinder head 26 is located more inward in the vehicle width direction than the intake-side housing wall 35a of the cylinder head 26.
[0051] 6, on the intake side of the cylinder head 26, the housing wall 35a of the cylinder head 26 and the cylinder head cover 27 protrudes outward in the vehicle width direction to house the variable valve train 60. Although the housing wall 35a of the cylinder head 26 protrudes, the main frame 12 bulges outward in the vehicle width direction, thereby minimizing interference between the housing wall 35a of the cylinder head 26 and the main frame 12. In addition, the first bolt 36a that secures the intake side of the cylinder head 26 to the cylinder 25 is installed more inward in the vehicle width direction than the intake-side housing wall 35a, ensuring a tool line for tightening the first bolt 36a.
[0052] More specifically, the first bolt 36a is installed on the outer wall of the cam chain chamber 58 of the cylinder head 26 below the variable valve train 60. In this case, the intake-side housing wall 35a of the cylinder head 26 juts outward in the vehicle width direction, so that a seating surface for the first bolt 36a is formed on the upper part of the outer wall of the cam chain chamber 58 inside the housing wall 35a. A female thread extending vertically is formed on this seating surface, and the first bolt 36a can be tightened onto this female thread from above (see FIG. 8). Furthermore, there is no obstacle when machining the female thread into the outer wall of the cam chain chamber 58 of the cylinder head 26 from above, making the machining easier.
[0053] 7, on the exhaust side of the cylinder head 26, the housing wall 35b of the cylinder head 26 and the cylinder head cover 27 does not protrude outward in the vehicle width direction. Although the down frame 13 is located close to the cylinder head 26, a distance is ensured between the down frame 13 and the housing wall 35b of the cylinder head 26, thereby suppressing interference between the housing wall 35b of the cylinder head 26 and the down frame 13. In addition, the second bolt 36b that secures the exhaust side of the cylinder head 26 to the cylinder 25 is installed outward in the vehicle width direction from the housing wall 35b on the exhaust side, ensuring a tool line for tightening the second bolt 36b.
[0054] More specifically, the second bolt 36b is installed on the outer wall of the cam chain chamber 58 that protrudes outside the cylinder head 26. In this case, the exhaust-side housing wall 35b of the cylinder head 26 is retracted inward in the vehicle width direction, so that a bearing surface for the second bolt 36b is formed on the upper part of the outer wall of the cam chain chamber 58 outside the housing wall 35b. A female thread that extends vertically is formed on this bearing surface, and the second bolt 36b can be tightened onto this female thread from above (see FIG. 8). Furthermore, there is no obstacle when machining the female thread into the outer wall of the cam chain chamber 58 of the cylinder head 26 from above, making the machining easier.
[0055] Furthermore, in a front view of the vehicle, the outer wall of the cam chain chamber 58 protrudes outward in the vehicle width direction on the exhaust side of the cylinder head 26, but the protrusion is kept to a minimum so that the second bolt 36b can be installed. The second bolt 36b is located more inward in the vehicle width direction than the intake-side housing wall 35a of the cylinder head 26, and between the exhaust-side housing wall 35b of the cylinder head 26 and the down frame 13. Therefore, even if the cylinder head 26 is suspended by the down frame 13, the exhaust-side housing wall 35b of the cylinder head 26 can be brought closer to the down frame 13, preventing the vehicle from becoming larger.
[0056] As shown in FIG. 8, the second bolt 36b is installed below the exhaust-side camshaft 82 (see FIG. 7) and further outward in the vehicle width direction than the first bolt 36a. Because the second bolt 36b is located further inward in the vehicle width direction than the intake-side housing wall 35a and the exhaust-side housing wall 35b is located further inward in the vehicle width direction than the second bolt 36b, the exhaust-side housing wall 35b can be moved closer to the vehicle width direction. In other words, the exhaust-side housing wall 35b can be recessed relatively to the intake-side housing wall 35a. By bringing the body frame 10 (see FIG. 7) closer to the exhaust-side housing wall 35b, it is possible to prevent the vehicle from becoming larger in size.
[0057] 8 and 9, the advance passage 100 and the retard passage 105 pass between the first bolt 36a and the second bolt 36b and extend from the oil control valve 40 toward the variable valve mechanism 60 (see FIG. 6). At this time, the advance passage 100 and the retard passage 105 are located on a straight line M connecting the centers of the first bolt 36a and the second bolt 36b. In this embodiment, the straight line M intersects the advance passage 100 and the retard passage 105 at a position that is off-center. As a result, the surface pressure on the mating surface 139 of the cylinder head 26 and the cylinder 25 is increased around the advance passage 100 and the retard passage 105, thereby suppressing oil leakage.
[0058] The variable valve timing system will be described with reference to Fig. 10. Fig. 10 is a schematic diagram of the variable valve timing system of this embodiment.
[0059] As shown in Figure 10, a drive gear 155 for the cam chain 59 is provided below the oil control valve 40. A crankshaft (not shown) is connected to the drive gear 155 via a gear train. The lower part of the cam chain 59 is hooked onto the drive gear 155, and the upper part of the cam chain 59 is hooked onto the intake side cam sprocket 71 and the exhaust side cam sprocket 81. When the drive gear 155 rotates and the cam chain 59 moves around, the intake side camshaft 72 rotates integrally with the intake side cam sprocket 71, and the exhaust side camshaft 82 rotates integrally with the exhaust side cam sprocket 81.
[0060] The cam chain 59 is guided by a lever guide 156 and a chain guide 157. The cam chain 59 that is sent out from the drive gear 155 to the intake side cam sprocket 71 is guided by the lever guide 156, and the cam chain 59 that is pulled from the exhaust side cam sprocket 81 to the drive gear 155 is guided by the chain guide 157. Because slack occurs in the cam chain 59 that goes from the drive gear 155 to the intake side cam sprocket 71, a chain tensioner (not shown) presses the lever guide 156 against the cam chain 59, applying tension to the cam chain 59.
[0061] The intake valve and exhaust valve are opened and closed by the rotation of the intake camshaft 72 and the exhaust camshaft 82, but the timing of opening and closing the intake valve is changed by a variable valve timing system. The variable valve timing system is provided with a variable valve train 60 that changes the relative rotational phase of the intake camshaft 72 with respect to the crankshaft. The variable valve train 60 has a case 61 fixed to the intake cam sprocket 71 and an inner rotor 62 fixed to the intake camshaft 72. The inner rotor 62 is housed inside the case 61 so as to be able to rotate relative to the crankshaft.
[0062] A case 61 of the variable valve mechanism 60 is formed with a plurality of hydraulic chambers, and a plurality of vanes 63 extend radially outward from an inner rotor 62. A vane 63 of the inner rotor 62 is housed in each hydraulic chamber of the case 61, and each hydraulic chamber is divided by the vanes 63 into an advance chamber S1 and a retard chamber S2. When the volume of the advance chamber S1 expands due to hydraulic pressure, the inner rotor 62 rotates relatively to the case 61 toward the advance side, and the intake camshaft 72 is advanced. When the volume of the retard chamber S2 expands due to hydraulic pressure, the inner rotor 62 rotates relatively to the case 61 toward the retard side, and the intake camshaft 72 is retarded.
[0063] The variable valve train 60 is operated by hydraulic pressure from the oil control valve 40. Oil is supplied to the oil control valve 40 from the main gallery 38 (see FIG. 2) through external piping 39. Depending on the communication state between the ports of the oil control valve 40, the destination of the oil supplied from the oil control valve 40 is switched between the advance chamber S1 and the retard chamber S2 of the variable valve train 60. Oil is supplied to the advance chamber S1 from the oil control valve 40 through an advance passage 100, and oil is supplied to the retard chamber S2 from the oil control valve 40 through a retard passage 105.
[0064] As described above, the advance passage 100 and the retard passage 105 traverse the cam chain chamber 58 (see FIG. 7 ), and the oil pipes 64, 65 are used to traverse the cam chain chamber 58. The oil pipes 64, 65 are installed inside the cam chain 59 between the lever guide 156 and the chain guide 157. The oil pipes 64, 65 are lined up in the front and rear with a space between them in the vertical direction, which narrows the installation area for the oil pipes 64, 65 and allows the oil pipes 64, 65 to be installed inside the cam chain 59 with ample space between them. Even when the cam chain 59 is pushed in by the lever guide 156, the cam chain 59 does not interfere with the oil pipes 64, 65.
[0065] As described above, according to this embodiment, the intake-side housing wall 35a of the cylinder head 26 protrudes outward in the vehicle width direction to house the variable valve mechanism 60, and a tool line for tightening the first bolt 36a is secured inside the protruding housing wall 35a. Furthermore, the exhaust-side housing wall 35b of the cylinder head 26 is prevented from protruding outward, preventing interference with the body frame 10, and a tool line for tightening the second bolt 36b is secured outside the housing wall 35b with reduced protrusion. Therefore, the body frame 10 does not protrude outward in the vehicle width direction, preventing an increase in the size of the vehicle, and a tool line for fixing the cylinder head 26 to the cylinder 25 can be secured.
[0066] In this embodiment, an in-line four-cylinder engine is used as an example of the engine, but the type of engine is not particularly limited.
[0067] In addition, in this embodiment, a twin-spar frame is used as an example of the body frame, but the type of body frame is not particularly limited as long as it is a body frame capable of suspending a cylinder head. For example, the body frame may be a cradle frame.
[0068] Furthermore, in this embodiment, the oil control valve is installed on the right side of the engine, but the oil control valve may be installed on the left side of the engine.
[0069] Furthermore, in this embodiment, a solenoid valve is used as an example of the oil control valve, but the type of oil control valve is not particularly limited as long as it is a valve that can control the oil pressure for the variable valve mechanism.
[0070] Furthermore, in this embodiment, the oil control valve and the main gallery are connected by external piping, but the oil control valve and the main gallery may also be connected by an oil passage within the engine.
[0071] In this embodiment, the cross passage of the cam chain chamber is formed by a detachable oil pipe, but the cross passage of the cam chain chamber may be formed in any manner that allows oil to move between the inner and outer walls of the cam chain chamber. For example, the cross passage may be formed by protruding one of the inner and outer walls of the cylinder head toward the other.
[0072] In this embodiment, the second bolt is positioned outward in the vehicle width direction from the first bolt, and the line connecting the centers of the first bolt and the second bolt is inclined, but the first bolt and the second bolt may be positioned at the same position in the vehicle width direction. In this case, the line connecting the centers of the first bolt and the second bolt may cross the centers of the advance passage and the retard passage, or the line connecting the centers of the first bolt and the second bolt may cross a position deviated from the centers of the advance passage and the retard passage.
[0073] Furthermore, in this embodiment, the advance passage and the retard passage are positioned on the line connecting the centers of the first bolt and the second bolt, but if the advance passage and the retard passage are positioned between the first bolt and the second bolt, the surface pressure on the mating surfaces of the cylinder head and the cylinder can be sufficiently increased.
[0074] In this embodiment, the first bolt and the second bolt are formed to be the same size, but the second bolt may be formed to be larger than the first bolt. By increasing the size of the second bolt, the surface pressure between the mating surfaces of the cylinder head and the cylinder can be increased.
[0075] In addition, in this embodiment, the advance passage and the retard passage are partially formed parallel to each other, but if the engine is large enough, the advance passage and the retard passage may be formed non-parallel to each other as a whole.
[0076] In addition, in this embodiment, the oil control valve is installed so as not to overlap the second bolt on the outer surface of the cylinder, but the oil control valve may overlap the second bolt as long as the oil control valve does not protrude excessively from the outer surface of the engine.
[0077] Furthermore, in this embodiment, the oil pipe and the plug cap are formed as separate bodies, but the oil pipe and the plug cap may be formed as one body.
[0078] Furthermore, in this embodiment, the external piping is positioned more inward in the vehicle width direction than the engine cover and the down frame, but the external piping may also be positioned more outward in the vehicle width direction than the engine cover and the down frame.
[0079] In addition, in this embodiment, the area surrounded by the lower surfaces of the main frame, down frame, and cylinder head is formed into a substantially triangular shape, but the shape of the area surrounded by the lower surfaces of the main frame, down frame, and cylinder head is not particularly limited.
[0080] Furthermore, the variable valve timing system is not limited to the illustrated saddle-ride type vehicle, and may be employed in other types of saddle-ride type vehicles. A saddle-ride type vehicle is not limited to all vehicles in which a rider sits astride a seat, but also includes small scooter-type vehicles in which a rider does not sit astride a seat.
[0081] As described above, the variable valve timing system of this embodiment is a variable valve timing system for an engine (21) in which a cylinder head (26) on a cylinder (25) is suspended from a body frame (10), and includes intake and exhaust camshafts (72, 82) installed in the cylinder head, and a variable valve gear (60) attached to one end of the intake camshaft. When, in a side view of the vehicle, the side on which the intake camshaft is installed is the intake side of the cylinder head, and the side on which the exhaust camshaft is installed is the exhaust side of the cylinder head, the exhaust-side housing wall (35b) of the cylinder head that covers the intake and exhaust camshafts from the sides is located inward in the vehicle width direction relative to the intake-side housing wall (35a). The first bolt (36a) that secures the intake side of the cylinder head to the cylinder is located inward in the vehicle width direction relative to the intake-side housing wall, and the second bolt (36b) that secures the exhaust side of the cylinder head to the cylinder is located outward in the vehicle width direction relative to the exhaust-side housing wall. With this configuration, the intake-side housing wall of the cylinder head protrudes outward in the vehicle width direction to house the variable valve mechanism, and a tool line for tightening the first bolt is secured inside the protruding housing wall. Furthermore, the exhaust-side housing wall of the cylinder head is prevented from protruding outward, preventing interference with the body frame, and a tool line for tightening the second bolt is secured outside the restricted protrusion housing wall. Therefore, the body frame does not protrude outward in the vehicle width direction, preventing an increase in the size of the vehicle, and a tool line for fixing the cylinder head to the cylinder can be secured.
[0082] In the variable valve timing system of this embodiment, the second bolt is installed below the exhaust camshaft and laterally outboard of the first bolt. This configuration allows the exhaust-side housing wall to be positioned laterally inward, and the body frame to be positioned closer to the exhaust-side housing wall, preventing the vehicle from becoming larger.
[0083] In the variable valve timing system of this embodiment, the vehicle body frame has a main frame (12) that covers the intake side of the cylinder head from the side, and a down frame (13) that covers the exhaust side of the cylinder head from the side, and when viewed from the front of the vehicle, the second bolt is located on the inner side of the intake side housing wall in the vehicle width direction, between the exhaust side housing wall and the down frame. With this configuration, even if the cylinder head is suspended by the down frame, the exhaust side housing wall of the down frame can be brought closer to the cylinder head, preventing the vehicle from becoming larger.
[0084] The variable valve timing system of this embodiment includes an oil control valve (40) that controls the hydraulic pressure for the variable valve gear, and the oil control valve is installed on the outer wall of the cylinder, with a portion of the oil control valve located below the second bolt. With this configuration, there is no need to protrude the oil control valve outward in the vehicle width direction to avoid interference between the second bolt and the oil control valve, thereby preventing an increase in the size of the engine. Furthermore, by installing the oil control valve in the cylinder, the body frame is separated from the oil control valve, which increases the degree of freedom in the shape of the body frame and prevents the body frame from bulging outward in the vehicle width direction, thereby preventing an increase in the size of the vehicle.
[0085] The variable valve timing system of this embodiment is provided with an oil control valve that controls the oil pressure for the variable valve train, and an oil passage (100, 105) for oil pressure control passes between the first bolt and the second bolt from the oil control valve to the variable valve train. With this configuration, it is possible to increase the surface pressure of the mating surfaces of the cylinder and the cylinder head around the oil passage, thereby suppressing oil leakage.
[0086] In the variable valve timing system of this embodiment, the oil passage is located on a line (M) connecting the centers of the first bolt and the second bolt. This configuration allows for increased surface pressure on the mating surfaces of the cylinder and cylinder head around the oil passage.
[0087] Although the present embodiment has been described, other embodiments may be made by combining the above-described embodiments and modifications in whole or in part.
[0088] Furthermore, the technology of the present invention is not limited to the above-described embodiments, and various changes, substitutions, and modifications may be made without departing from the spirit of the technical idea. Furthermore, if the technical idea can be realized in a different way due to technological advances or other derived technologies, it may be implemented using that method. Therefore, the claims cover all embodiments that may fall within the scope of the technical idea. [Explanation of symbols]
[0089] 10: Body frame 12: Mainframe 13: Down frame 21: Engine 25: Cylinder 26: Cylinder head 35a: Intake side housing wall 35b: Exhaust side housing wall 36a: First bolt 36b: Second bolt 40: Oil control valve 60: Variable valve train 72: Intake camshaft 82: Exhaust camshaft 100: Advance passage (oil passage) 105: Retard passage (oil passage) 139:Mating surface
Claims
1. A variable valve timing system for an engine in which a cylinder head on a cylinder is suspended from a vehicle body frame, Intake and exhaust camshafts installed in the cylinder head; a variable valve mechanism attached to one end of the intake camshaft, When the side on which the intake-side camshaft is installed is defined as the intake side of the cylinder head and the side on which the exhaust-side camshaft is installed is defined as the exhaust side of the cylinder head in a side view of the vehicle, the housing wall of the cylinder head that covers the intake-side and exhaust-side camshafts from the sides is located such that the exhaust-side housing wall is located more inward in the vehicle width direction than the intake-side housing wall, a first bolt that fixes the intake side of the cylinder head to the cylinder is installed inward in the vehicle width direction from the intake side housing wall, a second bolt for fixing the exhaust side of the cylinder head to the cylinder is disposed on the outer side of the exhaust side housing wall in the vehicle width direction;
2. 2. The variable valve timing system according to claim 1, wherein the second bolt is installed below the exhaust camshaft and outward of the first bolt in the vehicle width direction.
3. the vehicle body frame includes a main frame that covers an intake side of the cylinder head from a side, and a down frame that covers an exhaust side of the cylinder head from a side, 3. The variable valve timing system according to claim 1, wherein, in a front view of the vehicle, the second bolt is located more inward in the vehicle width direction than the intake-side housing wall and between the exhaust-side housing wall and the down frame.
4. an oil control valve for controlling hydraulic pressure for the variable valve mechanism; The oil control valve is installed on the outer wall of the cylinder, 4. The variable valve timing system according to claim 1, wherein a portion of the oil control valve is located below the second bolt.
5. an oil control valve for controlling hydraulic pressure for the variable valve mechanism; 4. The variable valve timing system according to claim 1, wherein an oil passage for hydraulic control passes between the first bolt and the second bolt and leads from the oil control valve to the variable valve operating device.
6. 6. The variable valve timing system according to claim 5, wherein the oil passage is located on a straight line connecting the centers of the first bolt and the second bolt.
Citation Information
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