outboard motor

The outboard motor integrates a gear oil gauge and oil supply/drain passage for easy and convenient gear oil level and condition monitoring, enhancing safety and management.

JP7797863B2Active Publication Date: 2026-01-14SUZUKI MOTOR CORP
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Patent Information

Application Number
JP2021209509
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-23
Publication Date
2026-01-14
Estimated Expiration
2041-12-23

AI Technical Summary

Technical Problem

Conventional outboard motors lack a gauge for checking the gear oil level or condition, making it difficult to determine when gear oil needs to be changed, which affects navigation safety and convenience in oil management.

Method used

An outboard motor design that includes a gear oil gauge with a removable insertion mechanism and an oil supply/drain passage, allowing users to check and change gear oil easily from a single location by the motor.

Benefits of technology

Facilitates easy and smooth checking of gear oil level and condition, enabling timely changes and improving navigation safety through detailed motor management.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To enable easily and smoothly performing confirmation of level or a state of gear oil and exchange of the gear oil.SOLUTION: A lower case 5 of an outboard engine include an oil storage space R in which gear mechanisms 31, 41 are accommodated and a gear oil is stored. The outboard engine includes a gear oil gage 51 for confirming level or a state of the gear oil. The lower case 5 is provided with: a gage attachment hole 61 for attaching the gear oil gage 51; and a gage insertion unit 62 for allowing the gear oil gage 51 to be inserted into the gage attachment hole 61. In addition, the lower case 5 includes: an oil supply and discharge passage 70 for discharging the gear oil from inside the oil storage space R or supplying the gear oil into the oil storage space R; and a pump connection unit 81 for connecting the pump to the oil discharge passage 70. Furthermore, the gage insertion unit 62 and the pump connection unit 81 are arranged juxtaposed in a front to back direction on a right portion above the lower case 5.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to an outboard motor in which a gear mechanism is housed and gear oil is stored in a lower case. [Background technology]

[0002] In many outboard motors, the internal space of the lower case, located at the bottom of the outboard motor, houses a gear mechanism that transmits rotation of the drive shaft to the propeller shaft, and gear oil that lubricates the gear mechanism is stored in that internal space.

[0003] Some outboard motors have a drain bolt attached to the bottom of the lower case, allowing gear oil stored in the interior space of the lower case to be drained to the outside of the outboard motor through a mounting hole for the drain bolt, and allowing gear oil to be poured into the interior space of the lower case from the outside of the outboard motor through the mounting hole for the drain bolt. This type is common among small outboard motors. Meanwhile, some outboard motors have an oil supply / drain passage for draining gear oil stored in the interior space of the lower case to the outside of the outboard motor or for supplying gear oil from the outside of the outboard motor into the interior space, and an oil pump is connected to this oil supply / drain passage for suctioning or pouring gear oil. Medium-sized and large outboard motors have this type. Patent Documents 1 and 2 listed below describe outboard motors of the latter type. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Publication No. 2017-81372 [Patent Document 2] Japanese Patent Publication No. 2020-104573 Summary of the Invention [Problem to be solved by the invention]

[0005] Conventional outboard motors are equipped with a gauge for checking the engine oil level, but not with a gauge for checking the gear oil level or condition. If the outboard motor were equipped with a gauge for checking the gear oil level (amount remaining) or condition (specific dirtiness, etc.), checking the gear oil level or condition would be easier. This would allow the user to check on a daily basis whether the gear oil needs to be changed, allowing for more detailed outboard motor management and ultimately improving navigation safety.

[0006] Furthermore, when a user checks the condition of the gear oil using the gauge and determines that a gear oil change is necessary, it would be convenient if they could smoothly transition from checking the condition of the gear oil to changing the gear oil. It would also be convenient if they could use the gauge to check the amount of gear oil being added while pouring the gear oil into the outboard motor. To achieve this, it is desirable for the user to be able to insert and remove the gauge, connect and operate the oil pump, etc., while remaining in one location near the outboard motor, or by simply moving slightly near the outboard motor.

[0007] The present invention has been made in consideration of the problems described above, and an object of the present invention is to provide an outboard motor in which the gear oil level or condition can be checked and the gear oil can be changed easily and smoothly. [Means for solving the problem]

[0008] In order to solve the above problems, the present invention provides an outboard motor for propelling a marine vessel, comprising: a power source arranged at an upper portion of the outboard motor; a propeller shaft arranged at a lower portion of the outboard motor and having a propeller attached thereto; a drive shaft arranged between the power source and the propeller shaft and rotated by the rotational output of the power source; a gear mechanism arranged at a lower portion of the outboard motor and transmitting the rotation of the drive shaft to the propeller shaft; a lower case arranged at a lower portion of the outboard motor and having an internal space in which the gear mechanism is housed and in which gear oil for lubricating the gear mechanism is stored; a gear oil gauge for checking the level or state of the gear oil stored in the internal space; a gauge mounting hole arranged in the lower case for attaching the gear oil gauge insertably and removably to the lower case so that one end side of the gear oil gauge is immersed in the gear oil stored in the internal space; a part where the other end of the gear oil gauge inserted into the gauge mounting hole is disposed a gauge insertion portion; and an oil supply / drain passage provided in the lower case for discharging gear oil from within the internal space to the outside of the outboard motor or for supplying gear oil from the outside of the outboard motor to the internal space. A pump is connected when supplying or discharging gear oil through the oil supply / discharge passage. a pump connection portion, and the gauge insertion portion and the pump connection portion are connected to the upper portion of the lower case. In the middle of the front and rear The device is characterized in that it is arranged side by side in the front-rear direction on one side in the left-right direction. [Effects of the Invention]

[0009] According to the present invention, the level or condition of gear oil can be checked and the gear oil can be replaced easily and smoothly. [Brief explanation of the drawings]

[0010] [Figure 1] 1 is an overall view showing an outboard motor according to an embodiment of the present invention; [Figure 2] FIG. 2 is an explanatory diagram showing the lower part of the outboard motor according to the embodiment of the present invention as viewed from the right side. [Figure 3] FIG. 2 is an explanatory diagram showing the lower part of the outboard motor according to the embodiment of the present invention as viewed from above. [Figure 4] 4 is a cross-sectional view showing the front part of the lower part of the outboard motor taken along the cutting line IV-IV in FIG. 3. [Figure 5] 4 is a cross-sectional view showing the right part of the lower part of the outboard motor taken along the cutting line VV in FIG. 3. [Figure 6] 6 is a cross-sectional view showing the lower part of the outboard motor taken along the line VI-VI in FIG. 2. [Figure 7] FIG. 2 is an external view showing a gear oil gauge in the outboard motor according to the embodiment of the present invention. [Figure 8] FIG. 2 is a perspective view showing a pump connection portion and the like in the outboard motor according to the embodiment of the present invention. [Figure 9] FIG. 2 is a perspective view showing a gear oil checking and changing portion of the outboard motor according to the embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0011] An outboard motor according to an embodiment of the present invention comprises a power source disposed at an upper portion of the outboard motor, a propeller shaft disposed at a lower portion of the outboard motor and having a propeller attached thereto, a drive shaft provided between the power source and the propeller shaft and rotated by the rotational output of the power source, a gear mechanism disposed at a lower portion of the outboard motor for transmitting the rotation of the drive shaft to the propeller shaft, and a lower case disposed at a lower portion of the outboard motor, the lower case having an internal space that houses the gear mechanism and stores gear oil for lubricating the gear mechanism.

[0012] The outboard motor of this embodiment also includes a gear oil gauge for checking the level or state of gear oil stored in the internal space of the lower case, a gauge mounting hole provided in the lower case for removably mounting the gear oil gauge into the lower case so that one end of the gear oil gauge is immersed in the gear oil stored in the internal space, and a gauge insertion portion for inserting the gear oil gauge into the gauge mounting hole.

[0013] Furthermore, the outboard motor of this embodiment is provided with an oil supply / drain passage provided in the lower case for discharging gear oil from within the internal space to the outside of the outboard motor or for supplying gear oil from the outside of the outboard motor to the internal space, and a pump connection portion for connecting an oil pump that supplies and discharges gear oil to the oil supply / drain passage.

[0014] In the outboard motor of this embodiment, the gauge insertion portion and the pump connection portion are provided side by side in the front-to-rear direction on one side of the upper portion of the lower case in the left-to-right direction.

[0015] The outboard motor of this embodiment is equipped with a gear oil gauge, which allows the user to easily check the level or condition of the gear oil stored in the interior space of the lower case. For example, the user can use the gear oil gauge to check on a daily basis whether the gear oil needs to be changed, allowing for more detailed management of the outboard motor. This improves navigation safety.

[0016] In the outboard motor of this embodiment, the gauge insertion portion and the pump connection portion are arranged side by side in the front-to-rear direction on one lateral side of the upper portion of the lower case. Therefore, a user can insert or remove the oil gear gauge, connect the oil pump, operate the oil pump, and so on while remaining in one position on one lateral side of the outboard motor, or by simply moving slightly to one lateral side of the outboard motor. This allows a user to smoothly transition from checking the gear oil condition to changing the gear oil when they determine that a gear oil change is necessary after checking the gear oil condition using the gear oil gauge. Furthermore, a user can use the gear oil gauge to check the amount of gear oil being added while pouring gear oil into the outboard motor. Thus, the outboard motor of this embodiment allows users to easily and smoothly check the gear oil level or condition and change the gear oil. [Example]

[0017] An embodiment of the outboard motor of the present invention will be described. In the embodiment, when describing the directions of up (Ud), down (Dd), front (Fd), rear (Bd), left (Ld), and right (Rd), please refer to the arrows drawn at the bottom right of Figures 1 to 6 and 8.

[0018] (Outboard motor) Fig. 1 shows an entire outboard motor 1 according to an embodiment of the present invention as seen from the right. Fig. 2 shows the lower part of the outboard motor 1 as seen from the right. Fig. 3 shows the lower part of the outboard motor 1 as seen from above. Fig. 4 shows a cross section of the lower part of the outboard motor 1 taken along section line IV-IV in Fig. 3 as seen from the left (top in Fig. 3).

[0019] An outboard motor 1 is a device for propelling a boat. As shown in Fig. 1, the outboard motor 1 of this embodiment employs a contra-rotating propeller system. The outboard motor 1 includes an engine 21 as a power source, an outer propeller shaft 22, a front propeller 23 attached to the outer propeller shaft 22, an inner propeller shaft 24 disposed inside the outer propeller shaft 22, a rear propeller 25 attached to the inner propeller shaft 24, a drive shaft 26 rotated by the rotational output of the engine 21, and an upper gear mechanism 31 and a lower gear mechanism 41 that transmit the rotation of the drive shaft 26 to the propeller shafts 22, 24. The outer propeller shaft 22 and the inner propeller shaft 24 are specific examples of "propeller shafts," and the front propeller 23 and the rear propeller 25 are specific examples of "propellers." Moreover, the upper gear mechanism 31 and the lower gear mechanism 41 are specific examples of the "gear mechanism."

[0020] The engine 21 is disposed at the top of the outboard motor 1, and the propeller shafts 22, 24 are disposed at the bottom of the outboard motor 1. The drive shaft 26 extends vertically from the engine 21 toward the bottom of the outboard motor 1. The drive shaft 26 is divided into an upper shaft portion 27, an intermediate shaft portion 28, and a lower shaft portion 29. The upper end of the upper shaft portion 27 is connected to the engine 21. The intermediate shaft portion 28 and the lower shaft portion 29 are connected by a connecting member 30. The upper gear mechanism 31 is provided between the upper shaft portion 27 and the intermediate shaft portion 28. The lower gear mechanism 41 is disposed at the bottom of the outboard motor 1.

[0021] The engine 21 is covered by the bottom cowl 2 and the top cowl 3. The upper shaft portion 27 is covered by the upper case 4. The upper gear mechanism 31, the intermediate shaft portion 28, the connecting member 30, the lower shaft portion 29, the lower gear mechanism 41, and the front portions of the propeller shafts 22, 24 are covered by the lower case 5. The lower case 5 is located below the upper case 4 and is attached to and connected to the upper case 4.

[0022] As shown in FIGS. 2 to 4, the lower case 5 has a lower case main body 6 formed in a roughly box-like shape with an open top, and a cover member 7 that covers the top of the lower case main body 6. As shown in FIG. 4, a drive shaft insertion hole 8 is formed in the cover member 7. An upper gear chamber 9 is provided in the front upper part of the lower case 5. The drive shaft insertion hole 8 is connected to the upper gear chamber 9. A lower gear chamber 10 is provided in the front lower part of the lower case 5. A connection hole 11 is provided between the upper gear chamber 9 and the lower gear chamber 10 in the lower case 5, connecting the two chambers. A supply and discharge passage arrangement hole 12 is provided in the lower case 5 in front of the upper gear chamber 9, the lower gear chamber 10, and the connection hole 11.

[0023] An upper shaft portion 27 of the drive shaft 26 is inserted into the drive shaft insertion hole 8. The gap between the upper shaft portion 27 and the drive shaft insertion hole 8 is sealed. An upper gear mechanism 31 is housed in the upper gear chamber 9. An intermediate shaft portion 28, a lower shaft portion 29, and a coupling member 30 of the drive shaft 26 are disposed in the connecting hole 11. A lower gear mechanism 41 is housed in the lower gear chamber 10. A second supply / discharge pipe 72 and a third supply / discharge pipe 73, which are part of an oil supply / discharge passage 70 described below, are disposed in the supply / discharge passage arrangement hole 12. Gear oil that lubricates the gears and bearings of the upper gear mechanism 31 and the lower gear mechanism 41 is stored in the upper gear chamber 9, the connecting hole 11, the lower gear chamber 10, and the supply / discharge passage arrangement hole 12. Hereinafter, the space in the lower case 5 that stores gear oil, i.e., the upper gear chamber 9, the connecting hole 11, the lower gear chamber 10, and the supply / discharge passage arrangement hole 12, will be referred to as the "oil storage space R." The oil storage space R is a specific example of the "internal space."

[0024] A propeller shaft mounting hole 14 is formed in the lower case 5 rearward of the lower gear chamber 10. The front portions of the propeller shafts 22, 24 are disposed in the propeller shaft mounting hole 14. A main water intake passage 15 is provided in the lower case 5 forward of the supply / discharge passage mounting hole 12. A sub-water intake passage 16 is provided in the lower case 5 rearward of the upper gear chamber 9 and the connecting hole 11. The main water intake passage 15 and the sub-water intake passage 16 are passages through which seawater, lake water, or other water taken in through the main water intake port 17 and the sub-water intake port 18 flows. This water is used as cooling water to cool the engine 21 and other components. An exhaust passage 19 is provided in the lower case 5 rearward of the sub-water intake passage 16. The exhaust passage 19 is a passage through which exhaust gases emitted from the engine 21 are discharged to the outside of the outboard motor 1. The propeller shaft arrangement hole 14, the main water intake passage 15, the sub-water intake passage 16 and the exhaust passage 19 are separated from the oil storage space R by partitions or sealed by sealing members to prevent gear oil in the oil storage space R from leaking into any of the propeller shaft arrangement hole 14, the main water intake passage 15, the sub-water intake passage 16 and the exhaust passage 19.

[0025] The upper gear mechanism 31 housed in the upper gear chamber 9 of the lower case 5 is a mechanism that switches the rotation direction of each of the propeller shafts 22, 24 by switching the rotation direction of the intermediate shaft portion 28 relative to the upper shaft portion 27. The upper gear mechanism 31 has a reverse drive gear 32, a reverse intermediate gear 33, a reverse output gear 34, and a clutch 35.

[0026] The reverse drive gear 32, the reverse intermediate gear 33, and the reverse output gear 34 are each bevel gears, and are rotatably supported on the lower case 5 via bearings. The reverse drive gear 32 is coupled to the lower end of the upper shaft portion 27 and rotates integrally with the upper shaft portion 27. The reverse intermediate gear 33 rotates about an axis perpendicular to the axis of the upper shaft portion 27. The reverse output gear 34 rotates about the same axis as the axis of the upper shaft portion 27. The reverse drive gear 32 meshes with the reverse intermediate gear 33, and the reverse intermediate gear 33 meshes with the reverse output gear 34. The upper shaft portion 27 rotates in the forward direction due to the rotational output of the engine 21. Therefore, the reverse drive gear 32 also rotates in the forward direction. The rotation of the reverse drive gear 32 is transmitted to the reverse output gear 34 via the reverse intermediate gear 33, so that the reverse output gear 34 rotates in the opposite direction to the forward rotation of the reverse drive gear 32.

[0027] The clutch 35 is a dog clutch and is disposed between the reverse drive gear 32 and the reverse output gear 34. The clutch 35 is coupled to an upper end portion of the intermediate shaft portion 28, which passes through a through hole 36 in the reverse output gear 34 and enters between the reverse drive gear 32 and the reverse output gear 34, so that the clutch 35 is immovable in the circumferential direction relative to the intermediate shaft portion 28 but is movable in the axial direction. As a result, the clutch 35 and the intermediate shaft portion 28 rotate integrally, but the clutch 35 is movable in the vertical direction relative to the intermediate shaft portion 28. In addition, the lower end side of the intermediate shaft portion 28 passes through a through hole 36 provided in the center of the reverse output gear 34 and extends below the reverse output gear 34. The intermediate shaft portion 28 does not contact the through hole 36 and can rotate independently of the reverse output gear 34.

[0028] The clutch 35 moves up and down by operation of an actuator (not shown). When the clutch 35 moves up, a clutch pawl formed on the upper end surface of the clutch 35 engages with a clutch pawl formed on the lower end surface of the reverse drive gear 32. As a result, the forward rotation of the reverse drive gear 32 is directly transmitted to the intermediate shaft portion 28, causing the intermediate shaft portion 28 to rotate in the forward direction. On the other hand, when the clutch 35 moves down, a clutch pawl formed on the lower end surface of the clutch 35 engages with a clutch pawl formed on the upper end surface of the reverse output gear 34. As a result, the reverse rotation of the reverse output gear 34 is transmitted to the intermediate shaft portion 28, causing the intermediate shaft portion 28 to rotate in the reverse direction.

[0029] The intermediate shaft portion 28 and the lower shaft portion 29 are disposed coaxially with the upper shaft portion 27. The intermediate shaft portion 28 and the lower shaft portion 29 are connected by a connecting member 30 and rotate integrally. The intermediate shaft portion 28 and the lower shaft portion 29 integrated in this manner are rotatably supported in a connecting hole 11 in the lower case 5 via a bearing.

[0030] The lower gear mechanism 41, housed in the lower gear chamber 10 of the lower case 5, connects the lower end of the lower shaft portion 29 to the front ends of the propeller shafts 22, 24. The lower gear mechanism 41 includes a main drive gear 42, a front driven gear 43, and a rear driven gear 44. The main drive gear 42, the front driven gear 43, and the rear driven gear 44 are each bevel gears. The main drive gear 42 is coupled to the lower end of the lower shaft portion 29 and rotates integrally with the lower shaft portion 29. The front driven gear 43 and the rear driven gear 44 are disposed in front of and behind the main drive gear 42, respectively, and mesh with the main drive gear 42. The front driven gear 43 and the rear driven gear 44 are rotatably supported by the lower case body 6 via bearings. In addition, the front driven gear 43 is coupled to the front end of the inner propeller shaft 24, so that the front driven gear 43 and the inner propeller shaft 24 rotate integrally. In addition, the rear driven gear 44 is coupled to the front end of the outer propeller shaft 22, so that the rear driven gear 44 and the outer propeller shaft 22 rotate integrally.

[0031] When the main drive gear 42 rotates integrally with the lower shaft portion 29, the rotation is transmitted to the front driven gear 43 and the rear driven gear 44, respectively. As a result, the inner propeller shaft 24 and the outer propeller shaft 22 each rotate. At this time, the inner propeller shaft 24 and the outer propeller shaft 22 rotate in opposite directions. As the inner propeller shaft 24 and the outer propeller shaft 22 rotate, the rear propeller 25 and the front propeller 23 each rotate. Furthermore, when the forward rotation of the upper shaft portion 27 is transmitted by the clutch 35 to the propeller shafts 22, 24 via the intermediate shaft portion 28, the lower shaft portion 29, the lower gear mechanism 41, etc., the propellers 23, 25 generate thrust that moves the vessel forward. In addition, when the clutch 35 transmits the reverse rotation of the reverse output gear 34 to each propeller shaft 22, 24 via the intermediate shaft portion 28, the lower shaft portion 29, the lower gear mechanism 41, etc., the propellers 23, 25 generate a thrust force that moves the vessel backward.

[0032] The outboard motor 1 is also equipped with a cooling water pump 45. The cooling water pump 45 is a device that draws in water such as seawater or lake water through the main intake channel 15 and the sub-intake channel 16 and supplies the drawn-in water as cooling water to the engine 21 and other components in order to cool the engine 21 and other components. As shown in FIG. 4 , the cooling water pump 45 is disposed on the outer periphery of the upper shaft portion 27 and is driven by the rotation of the upper shaft portion 27. The cooling water pump 45 is also attached to the cover member 7 of the lower case 5.

[0033] As shown in Fig. 2, an anti-cavitation plate 46 that suppresses air from being drawn into the propellers 23, 25 is provided at the upper rear portion of the lower case body 6. As shown in Fig. 1, a clamp bracket 47 that mounts the outboard motor 1 to the transom of the boat is provided at the front of the upper case 4 of the outboard motor 1. Although not shown, the outboard motor 1 is also equipped with a tilt / trim device that allows the outboard motor 1 to tilt (tilt and trim) in the fore-and-aft direction relative to the clamp bracket 47. The tilt / trim device is equipped with a hydraulic or electric actuator that changes the tilt angle (tilt and trim angle) of the outboard motor 1.

[0034] (gear oil gauge) Figure 5 shows a cross section of the lower part of the outboard motor 1 taken along section line VV in Figure 3, as viewed from the rear (left side in Figure 3). Figure 6 shows a cross section of the lower part of the outboard motor 1 taken along section line VI-VI in Figure 2, as viewed from above. Figure 7 shows a gear oil gauge 51.

[0035] As shown in Figure 5, the outboard motor 1 has a gear oil gauge 51, a gauge mounting hole 61, and a gauge insertion portion 62. The gear oil gauge 51 is a device for checking the level (amount of stored oil) or condition (degree of contamination, etc.) of gear oil stored in the oil storage space R. The gauge mounting hole 61 is a hole for attaching the gear oil gauge 51 to the lower case 5 so that it can be inserted and removed. The gauge insertion portion 62 is a portion for inserting the gear oil gauge 51 into the gauge mounting hole 61.

[0036] As shown in FIG. 7 , the gear oil gauge 51 includes a gauge body 52, a plug 53, a magnet 56, and a mark 57. The gauge body 52 is formed, for example, from a metal material in the shape of a long, thin rod. The gauge body 52 is capable of elastic deformation. Specifically, when the gear oil gauge 51 is attached to the gauge mounting hole 61, the gear oil gauge 51 bends as shown in FIG. 5 . When the gear oil gauge 51 is removed from the gauge mounting hole 61, the gear oil gauge 51 straightens as shown in FIG. 7 . The gauge body 52 is, for example, an elastic metal wire. The length of the gauge body 52 is set to a predetermined length so that the lower end portion of the gauge body 52 is immersed in the gear oil stored in the oil storage space R when the gear oil gauge 51 is attached to the gauge mounting hole 61 with an appropriate amount of gear oil stored in the oil storage space R.

[0037] The plug 53 is a member that has the function of fastening the gear oil gauge 51 in the gauge insertion portion 62 and the function of closing the gauge insertion hole 63 provided in the gauge insertion portion 62. The plug 53 is made of, for example, resin or rubber. The plug 53 is fixed to the upper end of the gauge body 52. ​​A knob 54 is provided on the top of the plug 53. An O-ring 55 made of rubber or the like is provided on the outer periphery of the plug 53.

[0038] Magnet 56 is a magnet for attracting iron powder in the gear oil stored in oil storage space R. Iron powder may be dispersed in the gear oil due to an abnormality in gear mechanisms 31, 41, etc. In that case, the iron powder will adhere to magnet 56. The state of adhesion of the iron powder can indicate that an abnormality has occurred in gear mechanisms 31, 41, etc. Magnet 56 is provided at the bottom end of gauge body 52. ​​When gear oil gauge 51 is attached to gauge mounting hole 61 with the appropriate amount of gear oil stored in oil storage space R, magnet 56 will be immersed in the gear oil stored in oil storage space R.

[0039] The mark 57 is a mark that functions as a scale for measuring the level of gear oil stored in the oil storage space R. The mark 57 is formed into a spherical shape, for example, from metal or resin. For example, the mark 57 has a hole formed therein, and the gauge body 52 passes through the hole. The mark 57 is also fixed to the gauge body 52. ​​In this embodiment, two marks 57 are provided on the gauge body 52. ​​Each mark 57 is disposed at a predetermined position on the gauge body 52 between the plug 53 and the magnet 56. A distance D1 between the bottom end of the gauge body 52 and the lower mark 57, and a distance D2 between the bottom end of the gauge body 52 and the upper mark 57 are each set to a predetermined value.

[0040] As shown in FIG. 3, the gauge mounting hole 61 is provided in the right portion (one side portion in the left-right direction) of the upper portion of the lower case main body 6. As shown in FIG. 2, the gauge mounting hole 61 is provided in the middle portion of the lower case main body 6 in the front-rear direction, specifically, behind the drive shaft 26 when viewed from the side of the outboard motor 1. As shown in FIG. 5, the gauge mounting hole 61 is an elongated hole having a diameter large enough to allow the gauge body 52, magnet 56, and mark 57 of the gear oil gauge 51 to pass through. The gauge mounting hole 61 extends in the up-down direction and is inclined in the left-right direction so that the lower end of the gauge mounting hole 61 is located to the left of the upper end of the gauge mounting hole 61. The upper end of the gauge mounting hole 61 opens to the top surface of the lower case main body 6. The lower end of the gauge mounting hole 61 opens to the inner surface of the lower case main body 6 facing the oil storage space R and communicates with the oil storage space R.

[0041] The gauge insertion portion 62 guides the gear oil gauge 51 into the gauge mounting hole 61 and also functions as a seat that secures the gear oil gauge 51 in the gauge mounting hole 61. Like the gauge mounting hole 61, the gauge insertion portion 62 is provided in the middle of the upper right part of the lower case main body 6 in the front-to-rear direction (rear of the drive shaft 26). The gauge insertion portion 62 is provided in the cover member 7 of the lower case 5 and protrudes upward from the cover member 7. The gauge insertion portion 62 is formed, for example, in a cylindrical shape having an axis that extends in the vertical direction, and a gauge insertion hole 63 is formed in the center of the gauge insertion portion 62. The gauge insertion hole 63 penetrates the gauge insertion portion 62 and the cover member 7 in the vertical direction. The gauge insertion portion 62 is located above the upper end of the gauge mounting hole 61, and the gauge insertion hole 63 is in communication with the gauge mounting hole 61. The diameter of the gauge insertion hole 63 is set, for example, to be equal to or greater than the diameter of the gauge mounting hole 61. The diameter of the gauge insertion hole 63 is set so that the plug 53 of the gear oil gauge 51 can be inserted into the gauge insertion hole 63 .

[0042] As shown in FIG. 5 , the gear oil gauge 51 is attached to the gauge mounting hole 61 by inserting the gauge body 52, starting from the bottom end, into the gauge insertion hole 63 and then the gauge mounting hole 61. The gear oil gauge 51 is attached to the gauge mounting hole 61 with the gauge body 52 bent. The gear oil gauge 51 is secured to the gauge insertion portion 62 by fitting the plug 53 into the gauge insertion hole 63 from above. That is, when the plug 53 is fitted into the gauge insertion hole 63, the O-ring 55 is pressed between the plug 53 and the inner surface of the gauge insertion hole 63 and comes into strong contact with the inner surface of the gauge insertion hole 63. This prevents the plug 53 from slipping out of the gauge insertion hole 63, and secures the gear oil gauge 51 in the gauge insertion portion 62. The O-ring 55 comes into contact with the inner surface of the gauge insertion hole 63, creating a seal between the plug 53 and the gauge insertion hole 63. Furthermore, when the gear oil gauge 51 is attached to the gauge mounting hole 61 in this manner, the lower end portion of the gauge body 52 and the magnet 56 protrude from the lower end of the gauge mounting hole 61 and enter the oil storage space R. When an appropriate amount of gear oil is stored in the oil storage space R, the lower end portion of the gauge body 52 and the magnet 56 are immersed in the gear oil stored in the oil storage space R. Furthermore, as shown in FIG. 6 , the lower end portion of the gauge body 52 and the magnet 56 are immersed in the gear oil at a position in the oil storage space R to the right rear of the upper gear chamber 9.

[0043] L1 in Fig. 5 indicates the gear oil level (oil surface position) when the appropriate amount of gear oil is stored in the oil storage space R and the inclination angle of the outboard motor 1 with respect to the horizontal is 0 degrees. At this time, the gear oil level L1 is located, for example, between two marks 57 on the gear oil gauge 51 attached to the gauge mounting hole 61. L2 in Fig. 5 indicates the gear oil level when the appropriate amount of gear oil is stored in the oil storage space R and the inclination angle of the outboard motor 1 with respect to the horizontal is a predetermined inclination angle for suctioning or injecting gear oil. At this time, the gear oil level L2 is located, for example, between the lower mark 57 and the magnet 56 on the gear oil gauge 51 attached to the gauge mounting hole 61.

[0044] The user can pull out the gear oil gauge 51 from the gauge mounting hole 61 and the gauge insertion portion 62 by grasping and pulling the knob 54 provided on the plug 53 of the gear oil gauge 51. Thereafter, the user can check the level and condition of the gear oil stored in the oil storage space R by looking at the gear oil adhering to the lower end portion of the gauge body 52. ​​In addition, the user can check whether any abnormalities have occurred in the gear mechanisms 31, 41, etc. by looking at the condition of the iron powder adhering to the magnet 56.

[0045] (oil supply / drain passage) As shown in Figures 2 to 4, the outboard motor 1 has an oil supply / drain passage 70 and a pump connection part 81. The oil supply / drain passage 70 is a passage for discharging gear oil from the oil storage space R to the outside of the outboard motor 1, or for supplying gear oil from the outside of the outboard motor 1 to the oil storage space R. The pump connection part 81 is a part for connecting an oil pump that supplies and discharges gear oil to the oil supply / drain passage 70.

[0046] As shown in Fig. 3, the pump connection part 81 is provided on the right side of the upper part of the lower case 5. As shown in Fig. 2, the pump connection part 81 is provided in the middle of the lower case 5 in the fore-and-aft direction, specifically, rearward of the drive shaft 26 when viewed from the side of the outboard motor 1. The pump connection part 81 is provided forward of the gauge insertion part 62. In other words, the gauge insertion part 62 and the pump connection part 81 are provided side by side in the fore-and-aft direction on the right side of the upper part of the lower case 5.

[0047] FIG. 8 shows a portion of the lower case 5 where a pump connection portion 81 is provided. As shown in FIG. 8, the pump connection portion 81 is provided on the cover member 7 of the lower case 5 and protrudes upward from the cover member 7. An oil supply / drain hole 82 is formed in the pump connection portion 81. One end of the oil supply / drain hole 82 opens to the top surface of the pump connection portion 81, and the other end of the oil supply / drain hole 82 opens to the front surface of the pump connection portion 81. The oil supply / drain hole 82 is closed by a plug 83 attached from above. The plug 83 is made of, for example, resin or rubber, and a knob 84 is provided on the top of the plug 83. An O-ring 85 made of rubber or the like is provided on the outer periphery of the plug 83.

[0048] As shown in FIGS. 2 to 4 , the oil supply / discharge passage 70 includes a first supply / discharge pipe 71, a second supply / discharge pipe 72, and a third supply / discharge pipe 73. As shown in FIGS. 2 and 3 , the first supply / discharge pipe 71 is located above the right front portion of the cover member 7 of the lower case 5. The first supply / discharge pipe 71 is formed, for example, by a flexible hose or tube, or a curved pipe as shown in FIGS. 2 and 3 . The first supply / discharge pipe 71 extends substantially in the front-to-rear direction, and the rear end of the first supply / discharge pipe 71 is connected to the front end of an oil supply / discharge hole 82 that opens in the front face of the pump connection portion 81. The front end of the first supply / discharge pipe 71 is connected to the upper end of the second supply / discharge pipe 72 that is located in a supply / discharge passage introduction hole 87 formed in the right portion of the front end of the cover member 7 of the lower case 5. The supply / discharge passage introduction hole 87 is a hole that introduces the oil supply / discharge passage 70 into the lower case 5 and penetrates the cover member 7 in the vertical direction.

[0049] As shown in Fig. 4, the second supply and discharge pipe 72 is disposed at an upper portion within the supply and discharge passage arrangement hole 12 of the lower case 5. The second supply and discharge pipe 72 is formed, for example, by a flexible hose or tube, or a curved pipe as shown in Fig. 4, and extends in the vertical direction. As described above, the upper end of the second supply and discharge pipe 72 is disposed within the supply and discharge passage introduction hole 87 and is connected to the front end of the first supply and discharge pipe 71. The gap between the upper end of the second supply and discharge pipe 72 and the supply and discharge passage introduction hole 87 is sealed.

[0050] The third supply and exhaust pipe 73 is disposed in the lower part of the supply and exhaust passage arrangement hole 12 in the lower case 5. The third supply and exhaust pipe 73 is formed of, for example, a metal or resin pipe, and extends linearly in the vertical direction.

[0051] A vertically intermediate portion of the third supply and exhaust pipe 73 is supported on the wall of the supply and exhaust passage arrangement hole 12 by a supply and exhaust pipe support member 76 provided in the lower case 5. In addition, a lower end portion of the third supply and exhaust pipe 73 is inserted into and supported by a support hole 77 provided in the bottom of the supply and exhaust passage arrangement hole 12 in the lower case body 6.

[0052] The upper end of the third supply / discharge pipe 73 is connected to the lower end of the second supply / discharge pipe 72 via a connecting tube 75. An oil inlet / outlet 74 is provided on the peripheral wall of the lower end of the third supply / discharge pipe 73 where it protrudes from the support hole 77. The lower end of the third supply / discharge pipe 73, where the oil inlet / outlet 74 is provided, is located in the lower front corner of the oil storage space R. When gear oil is sucked from the oil storage space R and discharged to the outside of the outboard motor 1, or when gear oil is poured into the oil storage space R from the outside of the outboard motor 1, the tilt / trim device provided on the outboard motor 1 is operated to tilt the outboard motor 1 forward by a predetermined angle (for example, approximately 4 to 15 degrees from the horizontal). When the outboard motor 1 is tilted forward by the predetermined angle, the lower front corner of the oil storage space R is at the lowest position in the oil storage space R.

[0053] After tilting the outboard motor 1 forward by the predetermined tilt angle, the user can connect an oil pump to the pump connector 81, which allows the oil pump to suck up the gear oil stored in the oil storage space R and discharge it outside the outboard motor 1. At this time, the gear oil stored in the oil storage space R flows into the third supply and discharge pipe 73 from the oil inlet / outlet 74 of the third supply and discharge pipe 73, and then flows sequentially through the third supply and discharge pipe 73, the second supply and discharge pipe 72, the first supply and discharge pipe 71, and the oil supply and discharge hole 82, before being discharged outside the outboard motor 1. Furthermore, after draining the gear oil from the oil storage space R, the user can connect the oil pump to the pump connector 81 while tilting the outboard motor 1 forward, and use the oil pump to fill new gear oil into the oil storage space R from outside the outboard motor 1. At this time, the gear oil discharged from the oil pump into the oil supply and drain hole 82 flows sequentially through the oil supply and drain hole 82, the first supply and drain pipe 71, the second supply and drain pipe 72, and the third supply and drain pipe 73, and flows into the oil storage space R through the oil inlet / outlet 74.

[0054] 2, a small hole communicating with the oil storage space R is provided in the upper right surface of the lower case 5 near the pump connection portion 81 (below the gauge insertion portion 62 in this embodiment), and a bolt 88 is attached to close the small hole. The bolt 88 is removed to let air into the oil storage space R through the small hole when sucking out gear oil stored in the oil storage space R, or to release air from the oil storage space R through the small hole when injecting gear oil into the oil storage space R.

[0055] (Gauge insertion and pump connection placement) Figure 9 shows the gear oil checking and changing section 91. The gear oil checking and changing section 91 is a part of the outboard motor 1 that the user accesses when checking the level or condition of the gear oil stored in the oil storage space R or when changing the gear oil in the oil storage space R. As shown in Figure 1, the gear oil checking and changing section 91 is provided in the middle of the front-to-rear direction on the right part of the lower part of the upper case 4. As shown in Figure 9, the gear oil checking and changing section 91 is a recess formed by recessing the outer wall surface of the middle of the front-to-rear direction on the right part of the lower part of the upper case 4 to the left (inward in the left-to-right direction).

[0056] The gauge insertion portion 62 and the pump connection portion 81 are aligned in the front-rear direction and arranged adjacent to each other within the gear oil checking and replacement portion 91. More specifically, two insertion holes 92 are aligned in the front-rear direction in the bottom wall of the gear oil checking and replacement portion 91, and the upper end portions of the gauge insertion portion 62 and the pump connection portion 81, which are provided in the cover member 7 of the lower case 5, pass through these two insertion holes 92 and protrude into the gear oil checking and replacement portion 91. In addition, the plug 53 of the gear oil gauge 51, which is attached to the gauge insertion hole 63 of the gauge insertion portion 62, and the plug 83, which is attached to the oil supply / drain hole 82 of the pump connection portion 81, are positioned within the gear oil checking and replacement portion 91.

[0057] When checking the level or condition of the gear oil stored in the oil storage space R, the user can access the gear oil checking and replacing part 91, pinch the knob 54 of the plug 53 in the gear oil checking and replacing part 91, pull out the gear oil gauge 51 from the gauge insertion part 62, and check the level or condition of the gear oil. Furthermore, when changing the gear oil in the oil storage space R, the user can access the gear oil checking and replacing part 91, pinch the knob 84 of the plug 83 in the gear oil checking and replacing part 91, remove the plug 83 from the pump connection part 81, and connect the oil pump to the pump connection part 81.

[0058] As described above, the outboard motor 1 according to the embodiment of the present invention is equipped with the gear oil gauge 51. Therefore, by using the gear oil gauge 51, the user can easily check the level or condition of the gear oil stored in the oil storage space R. For example, the user can use the gear oil gauge 51 to check on a daily basis whether the gear oil needs to be changed, allowing for more detailed management of the outboard motor 1. This improves the safety of navigation.

[0059] In the outboard motor 1 of this embodiment, the gauge insertion portion 62 and the pump connection portion 81 are arranged side by side in the front-to-rear direction on the right side of the upper part of the lower case 5. Therefore, a user can insert or remove the gear oil gauge 51, connect the oil pump, operate the oil pump, and so on while remaining in one position on the right side of the outboard motor 1, or by simply moving slightly to the right side of the outboard motor 1. For example, a user can remove the gear oil gauge 51 from the gauge insertion portion 62, check the gear oil on the gear oil gauge 51, and check the condition of the gear oil stored in the oil storage space R. If the user determines that the gear oil needs to be changed, the user can then connect the oil pump to the pump connection portion 81 and operate the oil pump to suck the oil from the oil storage space R and discharge it outside the outboard motor 1. With the outboard motor 1 of this embodiment, these operations can be performed sequentially from one position on the right side of the outboard motor 1. After the oil in the oil storage space R has been drained outside the outboard motor 1, the user connects an oil pump to the pump connection part 81 and uses the oil pump to inject new gear oil into the oil storage space R. With the outboard motor 1 of this embodiment, the user can stay in one place on the right side of the outboard motor 1 and check the amount of gear oil injected using the gear oil gauge 51 while injecting the gear oil. In this way, with the outboard motor 1 of this embodiment, checking the condition of the gear oil and changing the gear oil can be done easily and smoothly.

[0060] Furthermore, according to the outboard motor 1 of this embodiment, the gauge insertion portion 62 and the pump connection portion 81 are arranged adjacent to each other in the fore-and-aft direction, which makes it even easier to check the condition of the gear oil and to change the gear oil.

[0061] In the outboard motor 1 of this embodiment, the gauge insertion portion 62 and the pump connection portion 81 are located within a gear oil checking and changing portion 91 provided in the middle of the lower right section of the upper case 4 in the longitudinal direction. This allows the user to easily access the gauge insertion portion 62 when checking the gear oil level or condition, and to easily access the pump connection portion 81 when changing the gear oil. Unlike the outboard motor described in Patent Document 1, there is no need to remove the outboard motor case to change the gear oil. In addition, with the outboard motor 1 of this embodiment, the gauge insertion portion 62 and the pump connection portion 81 are located within the gear oil checking and changing portion 91 provided in the middle of the lower right section of the upper case 4 in the longitudinal direction, so that the gear oil can be changed even when the outboard motor 1 is mounted on a boat.

[0062] As shown in FIG. 1, the gear oil checking and changing section 91 is located in an easily visible position on the outboard motor 1, and both the gauge insertion section 62 and the pump connection section 81 are located together within the gear oil checking and changing section 91, making it easy for the user to remember and unlikely to forget where the gauge insertion section 62 and the pump connection section 81 are located on the outboard motor 1.

[0063] The gear oil checking and changing section 91 is a recess formed by recessing the outer wall surface of the upper case 4, and the gauge insertion section 62 and the pump connection section 81 are disposed within this recessed gear oil checking and changing section 91. This prevents running water or foreign objects from hitting the gauge insertion section 62 or the pump connection section 81 while the boat is sailing.

[0064] Furthermore, in the outboard motor 1 of this embodiment, the gear oil gauge 51 is attached to the lower case 5 in a bent state. Therefore, the gear oil gauge 51 can be attached to a small area of ​​the lower case 5 with its lower end immersed in the gear oil stored in the oil storage space R. Therefore, the gear oil gauge 51 can be attached to the lower case 5 without significantly changing the layout of other parts provided in the lower case 5.

[0065] Furthermore, in the outboard motor 1 of this embodiment, the lower end of the oil supply / discharge passage 70, specifically the lower end of the third supply / discharge pipe 73, is located in the lower front corner of the oil storage space R. As described above, the lower front corner of the oil storage space R is the lowest position in the oil storage space R when the outboard motor 1 is tilted forward by a predetermined angle. Therefore, by sucking out the gear oil in the oil storage space R with the outboard motor 1 tilted forward by the predetermined angle, it is possible to suck out almost all of the gear oil in the oil storage space R and discharge it outside the outboard motor 1.

[0066] In the above embodiment, the gear oil gauge 51, gauge mounting hole 61, gauge insertion portion 62, pump connection portion 81, etc. are provided on the upper right side of the lower case 5, but they may also be provided on the upper left side of the lower case 5. Also, in the above embodiment, the gear oil checking and changing portion 91 is provided on the lower side of the upper case 4, but it may also be provided on the upper side of the lower case 5. Also, in the above embodiment, the gauge insertion portion 62 and the pump connection portion 81 are provided adjacent to each other, but they do not have to be adjacent to each other. For example, another component may be provided between the gauge insertion portion 62 and the pump connection portion 81. Also, the present invention is not limited to contra-rotating propeller outboard motors, but can be applied to various other outboard motors.

[0067] Furthermore, the present invention may be modified as appropriate within the scope of the claims and the spirit or concept of the invention as can be read from the entire specification, and outboard motors incorporating such modifications are also included within the technical concept of the present invention. [Explanation of symbols]

[0068] 1 outboard motor 5 Lower case R Oil storage space (internal space) 21 Engine (power source) 22 outer propeller shaft (propeller shaft) 23 Front propeller (propeller) 24 Inner propeller shaft (propeller shaft) 25 Rear propeller (propeller) 26 Drive shaft 31 Upper gear mechanism (gear mechanism) 41 Lower gear mechanism (gear mechanism) 51 Gear oil gauge 61 Gauge mounting hole 62 Gauge insertion part 70 Oil supply and drainage passage 81 Pump connection 91 Gear oil check and replacement area (recess)

Claims

1. An outboard motor for propelling a boat, a power source disposed on top of the outboard motor; a propeller shaft disposed at a lower portion of the outboard motor and having a propeller attached thereto; a drive shaft provided between the power source and the propeller shaft and rotated by the rotational output of the power source; a gear mechanism disposed at a lower portion of the outboard motor and configured to transmit rotation of the drive shaft to the propeller shaft; a lower case disposed below the outboard motor, the lower case accommodating the gear mechanism and having an internal space in which gear oil for lubricating the gear mechanism is stored; a gear oil gauge for checking the level or condition of gear oil stored in the internal space; a gauge mounting hole provided in the lower case for mounting the gear oil gauge so that one end of the gauge is immersed in the gear oil stored in the internal space; and a gauge insertion portion for inserting the gear oil gauge into the gauge mounting hole, the other end of the gear oil gauge inserted into the gauge mounting hole being disposed therein; an oil supply / drain passage provided in the lower case for discharging gear oil from within the internal space to the outside of the outboard motor or for supplying gear oil from the outside of the outboard motor to the internal space; a pump connection portion for connecting a pump when supplying or discharging gear oil through the oil supply / discharge passage, The gauge insertion portion and the pump connection portion are provided side by side in the fore-and-aft direction on one side of a middle portion in the fore-and-aft direction of the upper portion of the lower case.

2. An outboard motor as described in Claim 1, characterized in that the gauge mounting hole extends downward while sloping from one side portion of the left-right direction of the middle part of the upper part of the lower case in the fore-and-aft direction toward the center of the left-right direction of the lower case.

3. The gauge insertion section is formed with a gauge insertion hole that extends vertically, has an upper end that opens upward, and a lower end that communicates with the gauge mounting hole, 3. The outboard motor according to claim 2, wherein the gear oil gauge is inserted into the gauge insertion hole and the gauge mounting hole in a bent state so that an upper portion of the gear oil gauge extends vertically and a lower portion of the gear oil gauge extends downward while inclining from a lower end of the upper portion of the gear oil gauge toward the center of the lower case in the left-right direction.

4. A recess is provided by recessing an outer wall surface of one of the left and right sides of the lower part of the upper case connected to the lower case, or an outer wall surface of one of the left and right sides of the upper part of the lower case, inward in the left and right direction; an opening of the recessed portion is open to the outside of the outboard motor; the gauge insert and the pump connection are disposed within the recess; The gauge insertion portion has a gauge insertion hole formed therein, the one end of which opens into the recess and the other end of which communicates with the gauge mounting hole, an oil supply / drain hole having one end that opens into the recess and the other end that is connected to the oil supply / drain passage; a first plug is attached to an opening on one end side of the gauge insertion hole; a second plug is attached to an opening on one end side of the oil supply / drain hole; 3. An outboard motor according to claim 1, wherein the first plug and the second plug are arranged side by side in the front-to-rear direction within the recess.

5. 5. An outboard motor according to claim 1, wherein a lower end of the oil supply / drain passage is located at a lower front corner of the interior space.

Citation Information

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