Marine propulsion device
09896176 ยท 2018-02-20
Assignee
Inventors
- Takayoshi Suzuki (Shizuoka-ken, JP)
- Noriyoshi Hiraoka (Shizuoka-ken, JP)
- Akihiro Onoue (Shizuoka-Ken, JP)
- Atsushi Kumita (Shizuoka-Ken, JP)
- Yoshiaki Tasaka (Shizuoka-Ken, JP)
Cpc classification
B63H20/20
PERFORMING OPERATIONS; TRANSPORTING
International classification
B63H21/21
PERFORMING OPERATIONS; TRANSPORTING
B60W10/04
PERFORMING OPERATIONS; TRANSPORTING
B63H21/22
PERFORMING OPERATIONS; TRANSPORTING
B63H20/20
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A marine propulsion device includes a power source, a steering handle, and an accelerator grip that moves with respect to the steering handle. A movement region of the accelerator grip includes a forward movement rotation region, a reverse movement rotation region and an axis movement region. In the forward movement rotation region, the accelerator grip is operated to rotate so as to obtain a drive force in a forward movement direction. In the reverse movement rotation region the accelerator grip is operated to rotate so as to obtain a drive force in a reverse movement direction. The axis movement region is provided between the forward movement rotation region and the reverse movement rotation region. In the axis movement region, the accelerator grip is moved in the extensional direction of a rotation axis.
Claims
1. A marine propulsion device comprising: a power source generating a forward drive force for moving the marine propulsion device in a forward movement direction, and a reverse drive force for moving the marine propulsion device in a reverse movement direction; a steering handle that extends further forward with respect to the power source; an accelerator grip movably mounted on the steering handle, a movement region of the accelerator grip including: a forward movement rotation region where the accelerator grip is operated to rotate about a rotation axis to cause the power source to generate the forward drive force, a reverse movement rotation region where the accelerator grip is operated to rotate about the rotation axis to cause the power source to generate the reverse drive force, and an axis movement region, provided between the forward movement rotation region and the reverse movement rotation region, where the accelerator grip is moved in an extensional direction of the rotation axis; a shaft member connected to the accelerator grip, the shaft member including a first engaging portion; and a steering handle housing that supports the shaft member, the steering handle housing including a second engaging portion that engages with the first engaging portion, wherein in a state in which the first engaging portion of the shaft member and the second engaging portion of the steering handle housing engage with each other, the accelerator grip is movable to the axis movement region, the forward movement rotation region and the reverse movement rotation region, and wherein the second engaging portion includes: an axis guide portion that guides movement of the first engaging portion with respect to the steering handle in the extensional direction of the rotation axis, a forward movement rotation guide portion that is connected continuously to one edge portion of the axis guide portion and that guides rotation of the first engaging portion with respect to the steering handle about the rotation axis, and a reverse movement rotation guide portion that is connected continuously to the other edge portion of the axis guide portion and that guides rotation of the first engaging portion with respect to the steering handle about the rotation axis.
2. The marine propulsion device according to claim 1, wherein the forward movement rotation region and the reverse movement rotation region are arranged at positions different from each other in the extensional direction of the rotation axis.
3. The marine propulsion device according to claim 1, wherein the axis movement region includes a neutral region where no drive force is generated in the forward movement direction and in the reverse movement direction.
4. The marine propulsion device according to claim 1, wherein the forward movement rotation region and the reverse movement rotation region are provided at substantially a same position in the extensional direction of the rotation axis, in the forward movement rotation region, the accelerator grip moves in a first rotation direction to move away from a rotation starting point of the accelerator grip in the forward movement rotation region, in the reverse movement rotation region, the accelerator grip moves in a second rotation direction to move away from a rotation starting point of the accelerator grip in the reverse movement rotation region, the first and second rotation directions being opposite from each other, and the accelerator grip is switched from a rotationally operable state in the forward movement rotation region to a rotationally operable state in the reverse movement rotation region through the axis movement region.
5. The marine propulsion device according to claim 4, wherein the forward movement rotation region and the reverse movement rotation region are separated from each other by the axis movement region.
6. The marine propulsion device according to claim 5, wherein the axis movement region includes a neutral rotation region offset in the extensional direction of the rotation axis with respect to the forward movement rotation region and the reverse movement rotation region, the accelerator grip is switched from the rotationally operable state in the forward movement rotation region to the rotationally operable state in the reverse movement rotation region through the neutral rotation region.
7. The marine propulsion device according to claim 1, wherein the accelerator grip is switched from a rotationally operable state in the forward movement rotation region to a rotationally operable state in the reverse movement rotation region through the axis movement region, and the accelerator grip is switched from the rotationally operable state in the reverse movement rotation region to the rotationally operable state in the forward movement rotation region not through the axis movement region.
8. The marine propulsion device according to claim 7, wherein said movement region of the accelerator grip further includes a detour region, and the accelerator grip is switched from the rotationally operable state in the reverse movement rotation region to the rotationally operable state in the forward movement rotation region through the detour region.
9. The marine propulsion device according to claim 8, wherein the accelerator grip is switched from the rotationally operable state in the forward movement rotation region to the rotationally operable state in the reverse movement rotation region through the axis movement region.
10. The marine propulsion device according to claim 1, wherein a maximum rotational operation angle of the accelerator grip in the forward movement rotation region is larger than a maximum rotational operation angle of the accelerator grip in the reverse movement rotation region.
11. The marine propulsion device according to claim 1, wherein the axis movement region includes a neutral region where no drive force in the forward movement direction is generated and no drive force in the reverse movement direction is generated, the marine propulsion device further comprises an urging member that urges the accelerator grip so as to locate the accelerator grip in the neutral region.
12. The marine propulsion device according to claim 1, wherein the power source is an electric motor.
13. The marine propulsion device according to claim 1, wherein in the state where the first engaging portion of the shaft member and the second engaging portion of the steering handle housing engage with each other, the shaft member moves in the extensional direction of the rotation axis with respect to the steering handle housing in a first engaging region that corresponds to the axis movement region, the shaft member rotates about the rotation axis with respect to the steering handle housing in a second engaging region that corresponds to the forward movement rotation region, and the shaft member rotates about the rotation axis with respect to the steering handle housing in a third engaging region that corresponds to the reverse movement rotation region.
14. The marine propulsion device according to claim 13, wherein the second engaging region is formed on a side of the first engaging region that is opposite from a side of the first engaging region that the third engaging region is formed upon.
15. The marine propulsion device according to claim 13, wherein the second and third engaging regions are each perpendicular to the first engaging region.
16. The marine propulsion device according to claim 1, further comprising an engine control unit (ECU) that controls an operation of the power source based upon the accelerator grip so that the power source does not generate any driving force, generates the forward drive force, or generates the reverse drive force, the ECU controlling the operation based upon whether the accelerator grip is in the forward movement rotation region, the reverse movement rotation region or the axis movement region.
17. The marine propulsion device according to claim 1, wherein as viewed in the extensional direction of the rotation axis, the forward movement rotation region and the reverse movement rotation region are arranged so as to overlap each other, and in the forward movement rotation region, the accelerator grip moves in a first rotation direction to move away from a rotation starting point of the accelerator grip in the forward movement rotation region, in the reverse movement rotation region, the accelerator grip moves in a second rotation direction to move away from a rotation starting point of the accelerator grip in the reverse movement rotation region, the first and second rotation directions being opposite from each other.
18. The marine propulsion device according to claim 17, wherein as viewed in the extensional direction of the rotation axis, the forward movement rotation region and the reverse movement rotation region are arranged so as to overlap each other, and in the forward movement rotation region, the accelerator grip moves in a rotation direction to move away from a rotation starting point of the accelerator grip in the forward movement rotation region, in the reverse movement rotation region, the accelerator grip moves in the rotation direction to move away from a rotation starting point of the accelerator grip in the reverse movement rotation region.
19. A marine propulsion device comprising: a power source generating a forward drive force for moving the marine propulsion device in a forward movement direction, and a reverse drive force for moving the marine propulsion device in a reverse movement direction; an accelerator grip being rotatable about and movable along a rotation axis, a movement region of the accelerator grip including a forward movement rotation region in which the accelerator grip rotates about the rotation axis to cause the power source to generate the forward drive force, a reverse movement rotation region in which the accelerator grip rotates about the rotation axis to cause the power source to generate the reverse drive force, and an axis movement region, provided between the forward movement rotation region and the reverse movement rotation region, in which the accelerator grip moves along the rotation axis; a shaft member connected to the accelerator grip, the shaft member including a first engaging portion; and a steering handle housing that supports the shaft member, the steering handle housing including a second engaging portion that engages with the first engaging portion, wherein in a state where the first engaging portion of the shaft member and the second engaging portion of the steering handle housing engage with each other, the accelerator grip is movable to the axis movement region, the forward movement rotation region and the reverse movement rotation region, and wherein the second engaging portion includes: an axis guide portion that guides movement of the first engaging portion with respect to the steering handle in the extensional direction of the rotation axis, a forward movement rotation guide portion that is connected continuously to one edge portion of the axis guide portion and guides rotation of the first engaging portion with respect to the steering handle about the rotation axis, and a reverse movement rotation guide portion that is connected continuously to other edge portion of the axis guide portion and guides rotation of the first engaging portion with respect to the steering handle about the rotation axis.
20. The marine propulsion device according to claim 19, further comprising an engine control unit (ECU) that controls an operation of the power source based upon the accelerator grip so that the power source does not generate any driving force, generates the forward drive force, or generates the reverse drive force, the ECU controlling the operation based upon whether the accelerator grip is in the forward movement rotation region, the reverse movement rotation region or the axis movement region.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
DESCRIPTION OF THE PREFERRED EMBODIMENT
(18) Embodiments of the present invention are hereinafter described with reference to the drawings.
First Embodiment
(19) The structure of a marine propulsion device 1 according to a first embodiment of the present invention is now described with reference to
(20) As shown in
(21) The power source 2 includes a normally and reversely rotatable electric motor.
(22) An upper end of the drive shaft 3 is connected to the power source 2. A lower end of the drive shaft 3 is mounted with a pinion gear 4a described later. The drive shaft 3 is rotated about a rotation axis A1 following the drive of the power source 2.
(23) The gear portion 4 includes the pinion gear 4a and a bevel gear 4b. The pinion gear 4a and the bevel gear 4b engage with each other.
(24) The propeller shaft 5 extends in a direction orthogonal to the drive shaft 3. A back end of the propeller shaft 5 is mounted with a propeller 5a. The drive force of the drive shaft 3 is transmitted to the propeller shaft 5 through the gear portion 4 so as to rotate the propeller shaft 5 about a rotation axis A2.
(25) The ECU 6 includes a CPU, a storage portion, etc. The ECU 6 controls the operation of the power source 2 on the basis of the operation of an accelerator grip 82 performed by a user.
(26) As shown in
(27) The steering handle housing 81 is a case member that stores the shaft member 83, the neutral correction plate 85a, etc. The steering handle housing 81 includes a second engaging portion 811.
(28) The second engaging portion 811 is a groove provided in an upper side portion of the inner surface of the steering handle housing 81. As shown in
(29) As shown in
(30) As shown in
(31) As shown in
(32) The neutral correction plate 85a is a plate-like member that includes a magnet 851a in a lower end. The neutral correction plate 85a includes a hole 852a in a substantially central portion, as viewed in the direction X. The hole 852a of the neutral correction plate 85a engages with the diameter reduction portion 832 of the shaft member 83. The inner diameter of the hole 852a is smaller than those of both outside portions of the diameter reduction portion 832 of the shaft member 83. The neutral correction plate 85a is held by both the outside portions of the diameter reduction portion 832. Thus, the shaft member 83 moves in the extensional direction (direction X) of the rotation axis A3 together with the neutral correction plate 85a. The shaft member 83 moves independently of the neutral correction plate 85a in the rotation direction of the shaft member 83. In other words, rotation of the shaft member 83 does not cause rotation of the neutral correction plate 85a.
(33) The position of the magnet 851a in the extensional direction (direction X) of the rotation axis A3 of the shaft member 83 is detected by magnetic sensors 85b (851b, 852b) provided in the steering handle housing 81. The ECU 6 acquires information detected by the magnetic sensors 85b and determines the position of the accelerator grip 82 in the direction X. Specifically, when the magnetic sensor 851b in the direction X1 detects the magnet 851a, the ECU 6 determines that the accelerator grip 82 is arranged in the forward movement rotation region 910. When the magnetic sensor 852b in the direction X2 detects the magnet 851a, the ECU 6 determines that the accelerator grip 82 is arranged in the reverse movement rotation region 920. When neither the magnetic sensor 851b nor 852b detects the magnet 851a, the ECU 6 determines that the accelerator grip 81 is arranged in the axis movement region 930.
(34) A pair of urging members 86 are provided. The pair of urging members 86 hold an upper portion of the neutral correction plate 85a therebetween from both sides in the direction X. The urging members 86 urge the neutral correction plate 85a so as to locate the accelerator grip 82 in a neutral region 930n (see
(35) The rotation angle detecting sensor 87 is arranged in the vicinity of an end of the shaft member 83 in the direction X2. The end of the shaft member 83 in the direction X2 is rotatably inserted into the rotation angle detecting sensor 87. The rotation angle detecting sensor 87 detects the rotation angle of the shaft member 83 when the accelerator grip 82 is rotationally operated. The ECU 6 acquires information detected by the rotation angle detecting sensor 87 and determines the rotational operation angle of the accelerator grip 82.
(36) An emergency stop cord 881 is pulled to remove a clip 882 such that the emergency stop switch 88 brings the marine propulsion device 1 to an emergency stop.
(37) The accelerator grip 82 is now described in detail.
(38) As shown in
(39) The movement region 900 of the accelerator grip 82 includes the axis movement region 930 provided between the forward movement rotation region 910 and the reverse movement rotation region 920, where the accelerator grip 82 is moved in the extensional direction (direction X) of the rotation axis A3. The axis movement region 930 is the neutral region 930n where no drive force in the forward movement direction or in the reverse movement direction is generated. The forward movement rotation region 910 and the reverse movement rotation region 920 are separated from each other by the axis movement region 930. The rotation direction of the accelerator grip 82 is changed such that the normal rotation and the reverse rotation of the electric motor (see
(40) The forward movement rotation region 910 and the reverse movement rotation region 920 are arranged at positions different from each other in the extensional direction of the rotation axis A3. Specifically, the forward movement rotation region 910 is connected to the vicinity of an end of the axis movement region 930 in the direction X1, and the reverse movement rotation region 920 is connected to the vicinity of an end of the axis movement region 930 in the direction X2. The forward movement rotation region 910 and the reverse movement rotation region 920 are arranged to hold the axis movement region 930 therebetween. The forward movement rotation region 910 and the reverse movement rotation region 920 are arranged not to overlap each other, as viewed in the extensional direction of the rotation axis A3. The rotation direction of the accelerator grip 82 is opposite in the forward movement rotation region 910 and the reverse movement rotation region 920. That is, as illustrated in
(41) As shown in
(42) The shaft member 83 (see
(43) As shown in
(44) The accelerator grip 82 rotates in the direction Y2 by a maximum rotational operation angle f at which a maximum output is generated during forward movement in the forward movement rotation region 910. At this time, the ECU 6 determines that the accelerator grip 82 is arranged in the forward movement rotation region 910 on the basis of information about the magnet 851a of the neutral correction plate 85a detected by the magnetic sensor 851b. Then, the first engaging portion 833 of the shaft member 83 comes into contact with the stopper 811a (see
(45) The maximum rotational operation angle f of the accelerator grip 82 in the forward movement rotation region 910 is larger than the maximum rotational operation angle r of the accelerator grip 82 in the reverse movement rotation region 920. In other words, the accelerator grip 82 has the maximum amount of rotation different in the direction Y2 and the direction Y1. At the maximum rotational operation angles f and r of the accelerator grip 82, the rotation directions of the power source 2 are opposite to each other, but the generated outputs are the same.
(46) As shown in
(47) As shown in
(48) According to the first embodiment, the following effects are obtained.
(49) According to the first embodiment, as hereinabove described, the movement region 900 of the accelerator grip 82 includes the axis movement region 930 where the accelerator grip 82 is moved in the extensional direction of the rotation axis A3 between the forward movement rotation region 910 and the reverse movement rotation region 920. Thus, the accelerator grip 82 is switched from the rotationally operable state in one of the forward movement rotation region 910 and the reverse movement rotation region 920 to the rotationally operable state in the other of the forward movement rotation region 910 and the reverse movement rotation region 920 through the axis movement region 930, unlike the structure in which it is necessary to release the engaging state when the accelerator grip 82 is switched from the rotationally operable state in one of the forward movement rotation region 910 and the reverse movement rotation region 920 to the rotationally operable state in the other of the forward movement rotation region 910 and the reverse movement rotation region 920. In this case, complication of an operation of switching the rotation region of the accelerator grip 82 is significantly reduced or prevented, and the user smoothly performs the operation of switching the rotation region of the accelerator grip 82 while recognizing that the rotation region of the accelerator grip 82 is switched. Consequently, the operability is improved when the user switches the rotation region of the accelerator grip 82. Furthermore, the marine propulsion device 1 is configured as hereinabove described, whereby when the accelerator grip 82 is switched from the rotationally operable state in one of the forward movement rotation region 910 and the reverse movement rotation region 920 to the rotationally operable state in the other of the forward movement rotation region 910 and the reverse movement rotation region 920, restriction of the posture of the user (restriction of a gripped position of the accelerator grip 82) is significantly reduced when the user operates the accelerator grip 82, unlike the structure in which it is necessary for the user to grip a position of the accelerator grip 82 where the engaging state is released.
(50) According to the first embodiment, the forward movement rotation region 910 and the reverse movement rotation region 920 are arranged at the positions different from each other in the extensional direction of the rotation axis A3. Thus, the forward movement rotation region 910 and the reverse movement rotation region 920 are arranged separately in the extensional direction of the rotation axis A3, and hence the user easily recognizes the forward movement rotation region 910 and the reverse movement rotation region 920 on the basis of a difference in the position in the extensional direction of the rotation axis A3.
(51) According to the first embodiment, the forward movement rotation region 910 and the reverse movement rotation region 920 are arranged not to overlap each other, as viewed in the extensional direction of the rotation axis A3. The rotation direction of the accelerator grip 82 is set to be opposite in the forward movement rotation region 910 and the reverse movement rotation region 920. Thus, the user more easily recognizes the forward movement rotation region 910 and the reverse movement rotation region 920, unlike the case where the rotation direction of the accelerator grip 82 is the same in the forward movement rotation region 910 and the reverse movement rotation region 920. Furthermore, the user more easily recognizes the forward movement rotation region 910 and the reverse movement rotation region 920 on the basis of a difference in the position about the rotation axis A3.
(52) According to the first embodiment, the neutral region 930n where no drive force in the forward movement direction or in the reverse movement direction is generated is provided in the axis movement region 930. Thus, unless the accelerator grip 82 passes through the neutral region 930n, the accelerator grip 82 does not rotate from one of the forward movement rotation region 910 and the reverse movement rotation region 920 into the other of the forward movement rotation region 910 and the reverse movement rotation region 920. Consequently, complication of the operation of switching the rotation region of the accelerator grip 82 is significantly reduced or prevented, and the user smoothly performs the operation of switching the rotation region of the accelerator grip 82 while recognizing that a state of forward movement drive or reverse movement drive switches to a state of opposite drive. Furthermore, the extra load on the power source is significantly reduced or prevented when the state of forward movement drive or reverse movement drive switches to the state of opposite drive.
(53) According to the first embodiment, the forward movement rotation region 910 and the reverse movement rotation region 920 are separated from each other by the axis movement region 930. Thus, even when the forward movement rotation region 910 and the reverse movement rotation region 920 are not arranged separately in the extensional direction of the rotation axis A3, the user more easily recognizes the forward movement rotation region 910 and the reverse movement rotation region 920 by the separation of the forward movement rotation region 910 from the reverse movement rotation region 920 by the axis movement region 930.
(54) According to the first embodiment, the maximum rotational operation angle f of the accelerator grip 82 in the forward movement rotation region 910 is larger than the maximum rotational operation angle r of the accelerator grip 82 in the reverse movement rotation region 920. Thus, the user easily recognizes whether the accelerator grip 82 has rotated into the forward movement rotation region 910 or the reverse movement rotation region 920 and easily finely adjusts an output for forward movement.
(55) According to the first embodiment, the urging members 86 are provided to urge the accelerator grip 82 so as to locate the accelerator grip 82 in the neutral region 930n. Thus, the accelerator grip 82 is located in the neutral region 930n even when the user releases his/her hand from the accelerator grip 82 in the case where the power source generates no output in the forward movement rotation region 910 and the reverse movement rotation region 920.
(56) According to the first embodiment, the power source 2 including the electric motor is provided. Thus, in the marine propulsion device 1 in which the power source 2 includes the electric motor, complication of the operation of switching the rotation region of the accelerator grip 82 is significantly reduced or prevented, and the user smoothly performs the operation of switching the rotation region of the accelerator grip 82 while recognizing that the rotation region of the accelerator grip 82 is switched.
(57) According to the first embodiment, the shaft member 83 moves in the extensional direction of the rotation axis A3 with respect to the steering handle housing 81 in the first engaging region 930a that corresponds to the axis movement region 930 in the state where the first engaging portion 833 of the shaft member 83 and the second engaging portion 811 of the steering handle housing 81 engage with each other. Furthermore, the shaft member 83 rotates about the rotation axis A3 with respect to the steering handle housing 81 in the second engaging region 910a that corresponds to the forward movement rotation region 910 and the third engaging region 920a that corresponds to the reverse movement rotation region 920. Thus, the accelerator grip 82 rotates and axially moves in the state where the first engaging portion 833 of the shaft member 83 and the second engaging portion 811 of the steering handle housing 81 engage with each other, and hence the first engaging portion 833 of the shaft member 83 is guided by the second engaging portion 811 of the steering handle housing 81 and is moved to a prescribed position. Consequently, the accelerator grip 82 is accurately operated.
Second Embodiment
(58) The structure of a marine propulsion device 200 according to a second embodiment of the present invention is now described with reference to
(59) In the second embodiment, the marine propulsion device 200 in which a forward movement rotation region 910 and a reverse movement rotation region 920 overlap each other, as viewed in the extensional direction of a rotation axis A3 is described, unlike the first embodiment in which the forward movement rotation region 910 and the reverse movement rotation region 920 do not overlap each other, as viewed in the extensional direction of the rotation axis A3. Portions of the marine propulsion device 200 similar to those of the marine propulsion device 1 according to the aforementioned first embodiment are denoted by the same reference numerals, to omit the description.
(60) As shown in
(61) As shown in
(62) More specifically, the shaft member 83 (see
(63) According to the second embodiment, the following effects are obtained.
(64) According to the second embodiment, the marine propulsion device 200 is configured as hereinabove described, whereby complication of an operation of switching the rotation region of the accelerator grip 82 is significantly reduced or prevented, and a user smoothly performs the operation of switching the rotation region of the accelerator grip 82 while recognizing that the rotation region of the accelerator grip 82 is switched, similarly to the first embodiment. Furthermore, restriction of the posture of the user is significantly reduced when the user operates the accelerator grip 82.
(65) According to the second embodiment, the forward movement rotation region 910 and the reverse movement rotation region 920 are arranged to overlap each other, as viewed in the extensional direction of the rotation axis A3. The rotation direction of the accelerator grip 82 is set to be the same in the forward movement rotation region 910 and the reverse movement rotation region 920. Thus, a space (rotation angle range) where the forward movement rotation region 910 and the reverse movement rotation region 920 are arranged is reduced in size, as viewed in the extensional direction of the rotation axis A3, unlike the case where the rotation direction of the accelerator grip 82 is opposite in the forward movement rotation region 910 and the reverse movement rotation region 920.
(66) The remaining effects of the second embodiment are similar to those of the aforementioned first embodiment.
Third Embodiment
(67) The structure of a marine propulsion device 300 according to a third embodiment of the present invention is now described with reference to
(68) In the third embodiment, the marine propulsion device 300 in which a forward movement rotation region 910 and a reverse movement rotation region 920 are provided at the same positions in the extensional direction of a rotation axis A3 is described, unlike the first embodiment in which the forward movement rotation region 910 and the reverse movement rotation region 920 are provided at the positions different from each other in the extensional direction of the rotation axis A3. Portions of the marine propulsion device 300 similar to those of the marine propulsion device 1 according to the aforementioned first embodiment are denoted by the same reference numerals, to omit the description.
(69) As shown in
(70) As shown in
(71) The forward movement rotation region 910 and the reverse movement rotation region 920 are arranged at the same positions in the extensional direction of the rotation axis A3. The forward movement rotation region 910 and the reverse movement rotation region 920 are arranged not to overlap each other, as viewed in the extensional direction of the rotation axis A3. The rotation direction of the accelerator grip 82 is opposite in the forward movement rotation region 910 and the reverse movement rotation region 920.
(72) The accelerator grip 82 is switched from a rotationally operable state in the forward movement rotation region 910 to a rotationally operable state in the reverse movement rotation region 920 through the axis movement region 930, and is switched from the rotationally operable state in the reverse movement rotation region 920 to the rotationally operable state in the forward movement rotation region 910 through the axis movement region 930. Specifically, the accelerator grip 82 is switched from the rotationally operable state in the forward movement rotation region 910 to the rotationally operable state in the reverse movement rotation region 920 through the neutral rotation region 930i, and is switched from the rotationally operable state in the reverse movement rotation region 920 to the rotationally operable state in the forward movement rotation region 910 through the neutral rotation region 930i. Thus, a user operates the accelerator grip 82 while sequentially confirming the movement region where the accelerator grip 82 is arranged.
(73) According to the third embodiment, the following effects are obtained.
(74) According to the third embodiment, the marine propulsion device 300 is configured as hereinabove described, whereby complication of an operation of switching the rotation region of the accelerator grip 82 is significantly reduced or prevented, and the user smoothly performs the operation of switching the rotation region of the accelerator grip 82 while recognizing that the rotation region of the accelerator grip 82 is switched, similarly to the first embodiment. Furthermore, restriction of the posture of the user is significantly reduced when the user operates the accelerator grip 82.
(75) According to the third embodiment, the forward movement rotation region 910 and the reverse movement rotation region 920 are provided at substantially the same positions in the extensional direction of the rotation axis A3. The rotation direction of the accelerator grip 82 is set to be opposite in the forward movement rotation region 910 and the reverse movement rotation region 920. Furthermore, the accelerator grip 82 is switched from the rotationally operable state in the forward movement rotation region 910 to the rotationally operable state in the reverse movement rotation region 920 through the axis movement region 930. Thus, even when the forward movement rotation region 910 and the reverse movement rotation region 920 are not arranged separately in the extensional direction of the rotation axis A3, the user easily recognizes the forward movement rotation region 910 and the reverse movement rotation region 920 by setting the rotation direction of the accelerator grip 82 to be opposite in the forward movement rotation region 910 and the reverse movement rotation region 920. Furthermore, unlike the case where the forward movement rotation region 910 and the reverse movement rotation region 920 of the accelerator grip 82 are arranged separately in the extensional direction of the rotation axis A3, a space (the length in the extensional direction of the rotation axis A3) where the forward movement rotation region 910 and the reverse movement rotation region 920 are arranged is reduced in size in the plan view.
(76) According to the third embodiment, the accelerator grip 82 is switched from the rotationally operable state in the forward movement rotation region 910 to the rotationally operable state in the reverse movement rotation region 920 through the neutral rotation region 930i offset in the extensional direction of the rotation axis A3 with respect to the forward movement rotation region 910 and the reverse movement rotation region 920. Thus, complication of the operation of switching the rotation region of the accelerator grip 82 is significantly reduced or prevented, and the user smoothly performs the operation of switching the rotation region of the accelerator grip 82 while recognizing that the accelerator grip 82 is switched from the rotationally operable state in the forward movement rotation region 910 to the rotationally operable state in the reverse movement rotation region 920 through the neutral rotation region 930i.
(77) The remaining effects of the third embodiment are similar to those of the aforementioned first embodiment.
Fourth Embodiment
(78) The structure of a marine propulsion device 400 according to a fourth embodiment of the present invention is now described with reference to
(79) In the fourth embodiment, the marine propulsion device 400 in which an accelerator grip 82 goes through an axis movement region 930 or a detour region 940 when switched from a rotationally operable state in a reverse movement rotation region 920 to a rotationally operable state in a forward movement rotation region 910 is described, unlike the first embodiment in which the accelerator grip 82 goes through the axis movement region 930 when switched from the rotationally operable state in the reverse movement rotation region 920 to the rotationally operable state in the forward movement rotation region 910. Portions of the marine propulsion device 400 similar to those of the marine propulsion device 1 according to the aforementioned first embodiment are denoted by the same reference numerals, to omit the description.
(80) As shown in
(81) As shown in
(82) The detour region 940 is a region where the accelerator grip 82 moves from a position Ps3 rotated by a maximum rotational operation angle f in the reverse movement rotation region 920 to a rotation starting point Ps1 in the forward movement rotation region 910. The accelerator grip 82 is switched from the rotationally operable state in the reverse movement rotation region 920 to the rotationally operable state in the forward movement rotation region 910 through either the axis movement region 930 or the detour region 940.
(83) According to the fourth embodiment, the ratchet mechanism 820 is provided such that the accelerator grip 82 does not move from the rotation staring point Ps1 (see
(84) According to the fourth embodiment, the following effects are obtained.
(85) According to the fourth embodiment, the marine propulsion device 400 is configured as hereinabove described, whereby complication of an operation of switching the rotation region of the accelerator grip 82 is significantly reduced or prevented, and a user smoothly performs the operation of switching the rotation region of the accelerator grip 82 while recognizing that the rotation region of the accelerator grip 82 is switched, similarly to the first embodiment. Furthermore, restriction of the posture of the user is significantly reduced when the user operates the accelerator grip 82.
(86) According to the fourth embodiment, the accelerator grip 82 is switched from the rotationally operable state in the forward movement rotation region 910 to the rotationally operable state in the reverse movement rotation region 920 through the axis movement region 930, and is switched from the rotationally operable state in the reverse movement rotation region 920 to the rotationally operable state in the forward movement rotation region 910 not through the axis movement region 930 but through the detour region 940. Thus, complication of the operation of switching the rotation region of the accelerator grip 82 from the forward movement rotation region 910 to the reverse movement rotation region 920 is significantly reduced or prevented, and the user smoothly performs the operation of switching the rotation region of the accelerator grip 82. Furthermore, the accelerator grip 82 is easily switched from the rotationally operable state in the reverse movement rotation region 920 to the rotationally operable state in the forward movement rotation region 910 without a complicated operation.
(87) The remaining effects of the fourth embodiment are similar to those of the aforementioned first embodiment.
(88) The embodiments disclosed this time must be considered as illustrative in all points and not restrictive. The range of the present invention is shown not by the above description of the embodiments but by the scope of claims for patent, and all modifications within the meaning and range equivalent to the scope of claims for patent are further included.
(89) For example, while the power source according to the present invention is the electric motor in each of the aforementioned first to fourth embodiments, the present invention is not restricted to this. According to the present invention, the power source may alternatively be an engine.
(90) While both the forward movement rotation region 910 and the reverse movement rotation region 920 are connected to the vicinities of the ends of the axis movement region 930 in the direction X in each of the aforementioned first to fourth embodiments, the present invention is not restricted to this. According to the present invention, so far as the axis movement region is provided between the forward movement rotation region and the reverse movement rotation region, both the forward movement rotation region and the reverse movement rotation region may not be connected to the vicinities of the ends of the axis movement region in the direction X, or only one of the forward movement rotation region and the reverse movement rotation region may be connected to the vicinity of the end of the axis movement region in the direction X.
(91) While the maximum rotational operation angle f of the accelerator grip 82 in the forward movement rotation region 910 is larger than the maximum rotational operation angle r of the accelerator grip 82 in the reverse movement rotation region 920 in each of the aforementioned first to fourth embodiments, the present invention is not restricted to this. According to the present invention, the maximum rotational operation angle of the accelerator grip in the forward movement rotation region may alternatively be equal to the maximum rotational operation angle of the accelerator grip in the reverse movement rotation region (the maximum amount of rotation in the direction Y2 may alternatively be equal to the maximum amount of rotation in the direction Y1).
(92) In the case where the maximum rotational operation angle of the accelerator grip in the forward movement rotation region is equal to the maximum rotational operation angle of the accelerator grip in the reverse movement rotation region, the following structure may be possible. Specifically, the response characteristics of the output (torque) generated by the power source may be different according to the rotational operation angle of the accelerator grip in the case of rotating the accelerator grip in the direction Y2 and in the case of rotating the accelerator grip in the direction Y1. More specifically, the amount of torque generated from the power source that has a non-linear relationship with the rotation angle of the accelerator grip may be different in in the case of rotating the accelerator grip in the direction Y2 and in the case of rotating the accelerator grip in the direction Y1, as shown in a graph (a graph showing the relationship between the rotational operation angle of the accelerator grip and the torque generated from the power source according to the rotational operation angle of the accelerator grip) in
(93) While the neutral rotation region 930i is provided at the position offset in the extensional direction of the rotation axis A3 with respect to the forward movement rotation region 910 and the reverse movement rotation region 920 in the aforementioned third embodiment, the present invention is not restricted to this. According to the present invention, no neutral rotation region may be provided at the position offset in the extensional direction of the rotation axis with respect to the forward movement rotation region and the reverse movement rotation region.
(94) While the accelerator grip 82 is not switched from the rotationally operable state in the forward movement rotation region 910 to the rotationally operable state in the reverse movement rotation region 920 unless the accelerator grip 82 goes through the axis movement region 930, and the accelerator grip 82 is switched from the rotationally operable state in the reverse movement rotation region 920 to the rotationally operable state in the forward movement rotation region 910 without going through the axis movement region 930 if the accelerator grip 82 goes through the detour region 940 in the aforementioned fourth embodiment, the present invention is not restricted to this. According to the present invention, the accelerator grip may not be switched from the rotationally operable state in the reverse movement rotation region to the rotationally operable state in the forward movement rotation region unless the accelerator grip goes through the axis movement region, and the accelerator grip may be switched from the rotationally operable state in the forward movement rotation region to the rotationally operable state in the reverse movement rotation region without going through the axis movement region if the accelerator grip goes through the detour region.