This application claims the benefit of priority to Japanese Patent Application No. 2019-126056 filed on Jul. 5, 2019. The entire contents of this application are hereby incorporated herein by reference.
The present invention relates to an outboard motor.
An outboard motor includes a water intake passage and a water pump for supplying cooling water to the engine. The water pump is driven by the rotation of the drive shaft to discharge water to the water intake passage. Conventionally, as disclosed in Japan Patent Laid-open Patent Publication JP-A-2011-245936, the water pump is arranged on the drive shaft.
The drive shaft is connected to a clutch or another element such as a shifter. Therefore, in a structure in which the water pump is arranged on the drive shaft, the water pump is arranged so as to avoid other elements in a vertical direction of the outboard motor. As a result, the outboard motor becomes large in the vertical direction.
Preferred embodiments of the present invention reduce vertical dimensions of outboard motors.
According to a preferred embodiment of the present disclosure, an outboard motor includes an engine, a drive shaft, a water intake passage, and a water pump. The engine includes a crankshaft extending in a vertical direction of the outboard motor. The drive shaft is connected to the crankshaft and coaxial with the crankshaft. The water intake passage is connected to the engine. The water pump is connected to the water intake passage. The water pump includes a pump shaft. The pump shaft is eccentrically mounted with respect to the drive shaft and parallel or substantially parallel to the drive shaft. The pump shaft is rotatable according to rotation of the drive shaft.
According to a preferred embodiment of the present disclosure, an outboard motor includes an engine, a drive shaft, a propeller shaft, a shifter, a shift shaft, a water intake passage, and a water pump. The engine includes a crankshaft extending in a vertical direction of the outboard motor. The drive shaft is connected to the crankshaft and extends in the vertical direction. The propeller shaft extends in a front-rear direction of the outboard motor. The shifter includes a shift member movable between a forward position and a reverse position. The shifter switches a direction of rotation transmitted from the drive shaft to the propeller shaft between a forward direction and a reverse direction according to a position of the shift member. The shift shaft moves the shift member between the forward position and the reverse position. The water intake passage is connected to the engine. The water pump is connected to the water intake passage. The water pump includes a pump shaft. The pump shaft is located at least partially within an outer shape of the shift shaft when viewed from an axial direction of the shift shaft, and is rotatable according to the rotation of the drive shaft.
According to a preferred embodiment of the present disclosure, an outboard motor includes an engine, a first drive shaft, a first propeller shaft, a shifter, a water intake port, a water intake passage, and a water pump. The engine includes a crankshaft. The first drive shaft is connected to the crankshaft. The first propeller shaft extends in a front-rear direction of the outboard motor. The shifter switches a direction of rotation transmitted from the first drive shaft between a forward direction and a reverse direction. Water outside the outboard motor is taken in through the water intake port. The water intake passage is connected to the engine. The water pump is connected to the water intake passage. The water pump includes a pump shaft. The pump shaft is eccentrically mounted with respect to the first drive shaft, and is rotatable according to the rotation of the first drive shaft.
The above and other elements, features, steps, characteristics and advantages of the present invention will become more apparent from the following detailed description of the preferred embodiments with reference to the attached drawings.
Hereinafter, preferred embodiments will be described with reference to the drawings.
The outboard motor 1 includes a housing 14, a drive shaft 15, a propeller shaft 16, a clutch 17, a shifter 18, a shift shaft 19, and a transmission 20. The drive shaft 15, the propeller shaft 16, the clutch 17, the shifter 18, the shift shaft 19, and the transmission 20 are located in the housing 14. The housing 14 includes an upper housing 21 and a lower housing 22. The lower housing 22 is located below the upper housing 21. The drive shaft 15 is connected to the crankshaft 13. The drive shaft 15 extends in the vertical direction.
The clutch 17 is located between the upper shaft 27 and the lower shaft 28. The clutch 17 is switched between a connected state and a disconnected state. When the clutch 17 is in the connected state, the lower shaft 28 is connected to the upper shaft 27. When the clutch 17 is in the disconnected state, the lower shaft 28 is released from the upper shaft 27. For example, the clutch 17 includes a plurality of clutch disks. When the plurality of clutch disks come into contact with each other, the clutch 17 is brought into the connected state. When the plurality of clutch disks are separated from each other, the clutch 17 is brought into the disconnected state.
The second drive shaft 26 is located below the first drive shaft 25. The second drive shaft 26 is coaxial with the first drive shaft 25. The second drive shaft 26 is connected to the first drive shaft 25 via the shifter 18. Specifically, the second drive shaft 26 is connected to the lower shaft 28 of the first drive shaft 25 via the shifter 18.
The shifter 18 is located between the first drive shaft 25 and the second drive shaft 26. The shifter 18 is located in the upper housing 21. The shifter 18 switches the direction of rotation transmitted from the first drive shaft 25 to the second drive shaft 26 between a forward direction and a reverse direction.
The first gear 31 is coaxial with the first drive shaft 25. The first gear 31 is rotatable relative to the first drive shaft 25. The second gear 32 is coaxial with the second drive shaft 26. The second gear 32 is rotatable relative to the second drive shaft 26. The third gear 33 is connected to the first gear 31 and the second gear 32. The third gear 33 reverses the rotation of the first gear 31 and transmits the rotation to the second gear 32. For example, the first to third gears 31 to 33 are bevel gears. However, the first to third gears 31 to 33 are not limited to bevel gears, but may be other types of gears. The first gear 31 meshes with the third gear 33. The third gear 33 meshes with the second gear 32.
The shift member 34 is movable in the axial direction of the second drive shaft 26. That is, the shift member 34 is movable in the vertical direction. The shift member 34 is connected to the shift shaft 19. The shift shaft 19 extends in the vertical direction. The shift shaft 19 may be connected to an actuator (not illustrated). The actuator may be, for example, an electric motor. The shift shaft 19 may be driven by an actuator according to a shift operation by an operator. Alternatively, the shift shaft 19 may be connected to a shift cable. The shift shaft 19 may be driven by the shift cable according to a shift operation by an operator.
The shift shaft 19 is located forward of the first drive shaft 25 and the second drive shaft 26. The shift shaft 19 moves the shift member 34 between a forward position, a reverse position, and a neutral position. For example, the shift shaft 19 includes a cam mechanism (not illustrated). As the shift shaft 19 rotates in one direction around the axis of the shift shaft 19, the cam mechanism raises the shift member 34. As the shift shaft 19 rotates in the other direction around the axis of the shift shaft 19, the cam mechanism lowers the shift member 34.
The first to third clutches 35 to 37 are dog clutches, for example. However, the first to third clutches 35 to 37 are not limited to dog clutches, but may be other types of clutches. The first clutch 35 is connected to the shift member 34. When the shift member 34 is in the forward position illustrated in
The second clutch 36 is connected to the second shift member 34 via a movable shaft 38. When the shift member 34 is in the neutral position illustrated in
The second propeller shaft 42 is coaxial with the first propeller shaft 41. The first propeller shaft 41 includes a hole 45 extending in the front-rear direction. The hole 45 of the first propeller shaft 41 extends through the first propeller shaft 41 in the axial direction of the first propeller shaft 41. The second propeller shaft 42 is inserted into the hole 45 of the first propeller shaft 41. The second propeller shaft 42 projects forward from the first propeller shaft 41. The second propeller shaft 42 projects rearward from the first propeller shaft 41.
The transmission 20 transmits the rotation of the second drive shaft 26 to the first propeller shaft 41 and the second propeller shaft 42. The transmission 20 includes a first bevel gear 46, a second bevel gear 47, and a third bevel gear 48. The first bevel gear 46 is fixed to the second drive shaft 26. The second bevel gear 47 meshes with the first bevel gear 46. The second bevel gear 47 is fixed to the first propeller shaft 41. The third bevel gear 48 meshes with the first bevel gear 46. The third bevel gear 48 is fixed to the second propeller shaft 42. The third bevel gear 48 transmits the rotation of the first bevel gear 46 to the second propeller shaft 42 in a direction opposite to the direction of the first propeller shaft 41. Therefore, the first propeller shaft 41 and the second propeller shaft 42 rotate in directions opposite to each other. The fins of the second propeller 44 are twisted in a direction opposite to the fins of the first propeller 43. Therefore, when the first propeller shaft 41 and the second propeller shaft 42 rotate in directions opposite to each other, the first propeller shaft 41 and the second propeller shaft 42 generate a propulsive force in the same direction.
As illustrated in
As illustrated in
The water pump 53 discharges water from the first passage 55 to the second passage 56. The water pump 53 is located in the upper housing 21. The water pump 53 is located forward of the first drive shaft 25 and the second drive shaft 26. At least a portion of the water pump 53 is located at the same height as the shifter 18. The water pump 53 is located forward of the shifter 18. The water pump 53 is located below the clutch 17.
As illustrated in
The pump shaft 59 extends in the vertical direction.
The shift shaft 19 passes through the water pump 53. The pump shaft 59 is coaxial with the shift shaft 19. Specifically, the pump shaft 59 has a pipe shape. The pump shaft 59 includes a hole 64 extending in the axial direction of the shift shaft 19. The shift shaft 19 is inserted into the hole 64 of the pump shaft 59.
The discharge port 63 is located forward of the shift shaft 19. Therefore, the water intake passage 52 is connected to the water pump 53 at a position forward of the shift shaft 19. In a plan view of the outboard motor 1, the discharge port 63 is located on the center line C1 of the outboard motor 1. The impeller 60 is located in the main body case 62. The impeller 60 is fixed to the pump shaft 59. The impeller 60 rotates according to the rotation of the pump shaft 59. Thus, water is sucked into the pump case 58 through the suction port 61 and is discharged from the discharge port 63. The water discharged from the discharge port 63 is supplied to the engine 11 through the second passage 56.
The gearing 54 is connected to the first drive shaft 25 and the pump shaft 59. The gearing 54 transmits the rotation of the first drive shaft 25 to the pump shaft 59. The gearing 54 is located above the shifter 18. The gearing 54 is located below the clutch 17.
As illustrated in
The second pump gear 66 is fixed to the pump shaft 59. The second pump gear 66 is located above the main body case 62. The second pump gear 66 meshes with the first pump gear 65. The rotation of the first drive shaft 25 is transmitted to the pump shaft 59 via the first pump gear 65 and the second pump gear 66. Thus, the pump shaft 59 rotates according to the rotation of the drive shaft 15.
In the outboard motor 1 according to the preferred embodiments described above, the pump shaft 59 is eccentrically mounted with respect to the drive shaft 15. Therefore, the water pump 53 is able to be located at a lower position than the structure in which the water pump 53 is located on the drive shaft 15. Thus, the outboard motor 1 is able to be downsized in the vertical direction. Further, by disposing the water pump 53 at a lower position, the distance between the water intake port 51 and the water pump 53 is reduced. Thus, a decrease in the water absorption capacity of the water pump 53 is significantly reduced.
In the outboard motor 1 according to the preferred embodiments described above, the pump shaft 59 is coaxial with the shift shaft 19. Therefore, the water pump 53 is able to be located at a lower position than the structure in which the water pump 53 is located on the drive shaft 15. This makes it possible to reduce the size of the outboard motor 1 in the vertical direction while significantly decreasing the water absorption capacity of the water pump 53. Further, the outboard motor 1 is able to be reduced in size as compared with a structure in which the water pump 53 is located so as to avoid the shift shaft 19.
In the above-described preferred embodiments, the drive shaft 15 is coaxial with the crankshaft 13. However, the drive shaft 15 does not have to be coaxial with the crankshaft 13. For example, as illustrated in
In the above-described preferred embodiments, the pump shaft 59 is coaxial with the shift shaft 19. However, the pump shaft 59 may be eccentrically mounted with respect to the shift shaft 19. For example, the pump shaft 59 may be eccentrically mounted with respect to the shift shaft 19 in the front-rear direction. Alternatively, the pump shaft 59 may be eccentrically mounted with respect to the shift shaft 19 in the left-right direction of the outboard motor 1. As illustrated in
In the above-described preferred embodiments, the outboard motor 1 includes two propellers. However, as illustrated in
While preferred embodiments of the present invention have been described above, it is to be understood that variations and modifications will be apparent to those skilled in the art without departing from the scope and spirit of the present invention. The scope of the present invention, therefore, is to be determined solely by the following claims.
Number | Date | Country | Kind |
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2019-126056 | Jul 2019 | JP | national |