RECIPROCATING MECHANISM FOR SPINNING REEL AND SPINNING REEL HAVING THE SAME
20220204308 · 2022-06-30
Assignee
Inventors
Cpc classification
B65H54/2812
PERFORMING OPERATIONS; TRANSPORTING
B65H75/30
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A reciprocating mechanism for a spinning reel includes a first gear, a second gear, a slider, and an annular elastic body. The first gear is configured to rotate in accordance with rotation of a handle shaft. The second gear includes a gear body configured to mesh with the first gear and a boss protruding from the gear body. The slider has an engagement groove where the boss engages. The slider is configured to move a spool shaft in a front-rear direction as the boss moves along the engagement groove. The annular elastic body is attached to the boss so as to contact an open end of the engagement groove.
Claims
1. A reciprocating mechanism for a spinning reel, comprising: a first gear configured to rotate in accordance with rotation of a handle shaft; a second gear including a gear body configured to mesh with the first gear and a boss protruding from the gear body; a slider having an engagement groove where the boss engages, the slider configured to move a spool shaft in a front-rear direction as the boss moves along the engagement groove; and an annular elastic body attached to the boss so as to contact an open end of the engagement groove.
2. The reciprocating mechanism for a spinning reel according to claim 1, wherein the annular elastic body is interposed between the open end of the engagement groove and the gear body.
3. The reciprocating mechanism for a spinning reel according to claim 1, wherein the open end of the engagement groove has a maximum distance in the front-rear direction, the maximum distance being larger than a distance between wall surfaces of the engagement groove in the front-rear direction at where a tip of the boss is positioned in the engagement groove.
4. The reciprocating mechanism for a spinning reel according to claim 1, wherein the engagement groove includes an engagement recess portion where a tip of the boss is positioned, and a wide portion wider than the engagement recess portion, the annular elastic body contacting the wide portion.
5. The reciprocating mechanism for a spinning reel according to claim 4, wherein the wide portion is an inclined surface.
6. The reciprocating mechanism for a spinning reel according to claim 4, wherein the wide portion is a stepped portion.
7. The reciprocating mechanism for a spinning reel according to claim 4, wherein during movement of the boss along the engagement groove, the annular elastic body is compressed by the wide portion of the engagement groove while being supported by the boss and the gear body.
8. The reciprocating mechanism for a spinning reel according to claim 1, wherein the boss is columnar or truncated cone in shape.
9. The reciprocating mechanism for a spinning reel according to claim 1, wherein the engagement groove has a curved shape.
10. A spinning reel comprising: a reel body; a handle shaft rotatably supported by the reel body; a spool shaft supported movably with respect to the reel body in a front-rear direction; and a reciprocating mechanism according to claim 1, the reciprocating mechanism configured to move the spool shaft in accordance with rotation of the handle shaft in the front-rear direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
DETAILED DESCRIPTION
[0024] As shown in
[0025] As shown in
[0026] The rotor 7 is used to wind a fishing line around the spool 11. As shown in
[0027] A fishing line is wound around the spool 11. The spool 11 is configured to be movable integrally with a spool shaft 9. For example, the spool 11 is attached to the tip of the spool shaft 9. As shown in
[0028] As shown in
[0029] The drive shaft 21 has a drive axis X2. For example, the drive shaft 21 is cylindrical in shape. The handle shaft 6 is detachably attached in the inner peripheral portion of the drive shaft 21. The handle shaft 6 is rotatably supported by the reel body 3.
[0030] The drive gear 23 is used to rotate the rotor 7. The drive gear 23 is mounted on the drive shaft 21. The drive gear 23 meshes with the pinion gear 17. The sliding gear 31 is used to move the spool shaft 9. The sliding gear 31 is mounted on the drive shaft 21 and spaced apart from the drive gear 23. The spool shaft 9 and a guide shaft 34 described later are arranged between the drive gear 23 and the sliding gear 31. The sliding gear 31 meshes with a cam gear 33 (an example of the second gear) described later.
[0031] The drive gear 23 and the sliding gear 31 rotate in accordance with the rotation of the handle 5 (handle shaft 6). Rotation of the drive gear 23 and the sliding gear 31 causes the pinion gear 17 and the cam gear 33 to rotate.
[0032] The oscillating mechanism 30 moves the spool shaft 9 in the front-rear direction in accordance with the rotation of the handle shaft 6. As shown in
[0033] The sliding gear 31 constitutes the drive body 13 as described above. The cam gear 33 is used to move the slider 35 in the front-rear direction. The cam gear 33 includes a gear body 33a and a boss 33b. The gear body 33a is supported by the reel body 3 rotatably around an axis X3 that is parallel to the drive axis X2. The gear body 33a meshes with the sliding gear 31.
[0034] The boss 33b protrudes from the gear body 33a. For example, the boss 33b protrudes from the gear body 33a in a direction in which the drive axis X2 extends. The boss 33b engages with an engagement groove 37 of the slider 35, which will be described later.
[0035] The boss 33b moves along the engagement groove 37 in accordance with the rotation of the gear body 33a while being positioned inside the engagement groove 37. The boss 33b is columnar in shape. In the present embodiment, the boss 33b is columnar as an example, but the boss 33b may be in a truncated cone shape.
[0036] The guide shaft 34 is used to guide the slider 35 in the front-rear direction. The guide shaft 34 is disposed above the spool shaft 9. The guide shaft 34 is arranged parallel to the spool shaft 9 (the spool axis X1) and is fixed to the reel body 3.
[0037] The slider 35 is used to move the spool shaft in the front-back direction. The slider 35 includes a slider body 36 and the engagement groove 37. The slider body 36 is fixed to the rear end of the spool shaft 9. The guide shaft 34 is inserted into the slider body 36. The slider body 36 moves along the guide shaft 34 in the front-rear direction.
[0038] The engagement groove 37 is disposed in the slider body 36. The boss 33b is positioned in the engagement groove 37. For example, in a state where the slider body 36 is attached to the spool shaft 9 and the guide shaft 34, the engagement groove 37 extends upward from the spool shaft 9. The engagement groove 37 is curved in shape when viewed from the handle 5 side (as shown in
[0039] As shown in
[0040] The engagement recess portion 38 is defined by a bottom surface 38a and wall surfaces 38b surrounding the bottom surface 38a. The engagement recess portion 38 has a first end 38c1, a second end 38c2, and a middle portion 38c3 between the first end 38c1 and the second end 38c2. At the first end 38c1 and the second end 38c2, the wall surfaces 38b surrounds the bottom 38a. At the middle portion 38c3, a pair of wall surfaces 38b are arranged to face each other.
[0041] The wide portion 39 constitutes the open end of the engagement groove 37. The base end portion of the boss 33b is positioned in the wide portion 39. The O-ring 40 contacts the wide portion 39. The wide portion 39 is wider than the engagement recess portion 38. In the present embodiment, the wide portion 39 is an inclined surface extending outward from the boundary 38d of the engagement recess portion 38 (see
[0042] For example, as shown in
[0043] Here, the maximum spacing D1 and the spacing between wall surfaces D2 are defined on a plane orthogonal to the bottom surface 38a and parallel to the spool axis X1. The plane preferably crosses the middle portion 38c3 of the engagement groove 37.
[0044] The maximum spacing D1 is measured at the part of the cam gear 33 closest to the gear body 33a on the wide portion 39 (the inclined surface). The spacing between wall surfaces D2 is measured at a pair of the wall surfaces 38b facing each other in the engaging recess portion 38. The spacing between wall surfaces D2 may be interpreted as the maximum wall spacing in the engaging recess portion 38.
[0045] The O-ring 40 is used to reduce the collision between the boss 33b and the engagement groove 37. As shown in
[0046] Note that
[0047] Specifically, as shown in
[0048] In the oscillating mechanism 30, when the sliding gear 31 rotates in accordance with the rotation of the handle shaft 6, the cam gear 33 rotates. The rotation of the cam gear 33 causes the boss 33b of the cam gear 33 to move along the engagement recess portion 38 of the slider 35. With the movement, the O-ring 40 slides with the wide portion 39 of the slider 35 while being in contact with the wide portion 39 of the slider 35. As the oscillating mechanism 30 operates in this way, the slider 35 moves the spool shaft 9 in the front-rear direction while being guided by the guide shaft 34.
[0049] The spinning reel 1 described above has the following features.
[0050] In the oscillating mechanism 30 of the spinning reel 1, the boss 33b moves along the engagement groove 37 (the engagement recess portion 38) in a state where the O-ring 40 mounted on the boss 33b of the cam gear 33 is in contact with the wide portion 39 of the engagement groove 37 in the slider 35. With this configuration, the collision between the boss 33b of the cam gear 33 and the engagement groove 37 of the slider 35 can be reduced.
[0051] Further, in the oscillating mechanism 30 of the spinning reel 1, the O-ring 40 contacts the outer peripheral surface of the boss 33b, the gear body 33a, and the wide portion 39 of the engagement groove 37. In this state, when the boss 33b moves along the engagement groove 37 (the engagement recess portion 38), the O-ring 40 is compressed by the wide portion 39 of the engagement groove 37 while being supported by the outer peripheral surface of the boss 33b and the gear body 33a. As a result, the O-ring 40 can be stably compressed.
[0052] Further, in the oscillating mechanism 30 of the spinning reel 1, the maximum spacing D1 in the wide portion 39 in the front-rear direction is larger than the spacing between wall surfaces D2 of the engaging recess portion 38 in the front-rear direction. Thus, the O-ring 40 can be preferably in contact with the wide portion 39 of the engagement groove 37.
[0053] Further, in the oscillating mechanism 30 of the spinning reel 1, since the engagement groove 37 has the wide portion 39, the O-ring 40 can be preferably brought into contact with the wide portion 39 of the engagement groove 37.
[0054] Furthermore, in the oscillating mechanism 30 of the spinning reel 1, since the boss 33b is in a columnar or truncated cone shape, the boss 33b can smoothly move inside the engagement groove 37.
Other Embodiments
[0055] In the above embodiment, an example is shown in which the wide portion 39 of the engagement groove 37 is an inclined surface. Instead, as shown in
[0056] As shown in
[0057] The present invention is applicable to reciprocating mechanisms in spinning reels.
REFERENCE SIGNS LIST
[0058] 1 Spinning reel [0059] 3 Reel body [0060] 7 Rotor [0061] 9 Spool shaft [0062] 13 Drive body [0063] 21 Drive shaft [0064] 23 Drive gear [0065] 31 Sliding gear [0066] 33 Cam gear [0067] 33a Gear body [0068] 33b Boss [0069] 35 Slider [0070] 37 Engagement groove [0071] 38 Engagement recess [0072] 39 Wide portion [0073] O-ring [0074] D1 Maximum spacing [0075] D2 Spacing between wall surfaces