A drag sound - generating structure for a drum - type fishing reel

By designing an active force-releasing sound structure on the drum-type fishing reel, and using the friction rotation of the tick ring and the tick column to make sound, the problem of indistinguishable force-releasing alarm sound and the receiving sound in the prior art is solved, and a clear force-releasing alarm sound is achieved and the effect of not affecting the release speed is achieved.

CN115530136BActive Publication Date: 2025-06-24WEIHAI SHENGRONG OUTDOOR EQUIP CO LTD
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Patent Information

Application Number
CN202211217278.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-03
Publication Date
2025-06-24
Estimated Expiration
2042-10-03

AI Technical Summary

Technical Problem

The power discharge alarm sound of the existing drum reel cannot be accurately distinguished from the line collection sound, and the traditional passive sound structure will affect the line release speed.

Method used

An active reel force-releasing sounding structure is designed. By setting a tick ring and a tick column on the reel and the friction pressure plate, the friction rotation drives the components to rotate and generate sound, ensuring that the sound is only emitted when the force is discharged.

Benefits of technology

It realizes that the reel makes a clear tick sound when it releases force, and does not make a sound in other states, avoiding the impact on the line speed, the structure is simple and the sound is beautiful.

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Abstract

The present application discloses a drag sound - generating structure for a drum fishing reel, which includes a spool shaft and a spool rotatably arranged on the spool shaft by bearings. A ticking ring is provided on the outer flange of the side cavity of the spool at the non - power input end of the spool. A friction pressure plate A is fixedly arranged on the spool shaft. The friction pressure plate A is rotatably connected with a friction pressure plate B. A friction gasket is fixed in the side cavity of the spool, and the friction surface of the friction gasket faces the friction pressure plate B. The ticking column is relatively fixed to the friction pressure plate A. The friction pressure plate B drives the ticking column to rotate along the eccentric pin shaft on the friction pressure plate A through a push plate, thereby changing the distance between the ticking column and the ticking ring, and making a sound when the ticking column contacts the ticking ring. In the present invention, the drag sound - generating structure of the fishing reel is arranged on the spool and the friction pressure plate, which has no influence on the main gear and the main gear shaft. The relatively movable friction pressure plate A and friction pressure plate B drive the push plate to rotate when rotating, the push plate drives the fixed plate to rotate, and the fixed plate drives the ticking column to rotate to realize the drag ticking sound. It ensures that there is no ticking sound when the spool is not under force, and there is only one - direction ticking sound when the spool is under force. The structure is simple, the sound is beautiful, it is conducive to processing, and it is not easy to be damaged.
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Description

Technical Field

[0001] The present invention relates to the technical field of fishing gear, and more particularly to a drag sound - generating structure for a drum fishing reel. Background Art

[0002] When a fish is hooked, the angler rotates the crank to reel in the fishing line to catch the fish. However, if the braking force of the fishing reel is insufficient, insufficient frictional force is generated between the friction plates, resulting in slippage of the friction plates. At this time, the spool will be in the line - paying - out state, and the angler needs to be prompted to increase the braking force to ensure that the spool is in the line - reeling - in state. The most common method is to use a drag alarm sound to prompt at any time whether the braking force of the fishing reel is sufficient, so that the angler can adjust the braking force in a timely manner.

[0003] At present, drum fishing reels generally adopt a passive sound - generating structure, that is, a ratchet and pawl contact to generate a drag alarm sound. When the sound - generating switch is turned on, the pawl contacts the ratchet. At this time, whether the spool is paying out or reeling in the line, the pawl and the ratchet are in contact, and a sound will be generated. This makes it impossible for the angler to accurately determine whether this sound is a drag alarm sound or a sound during line reeling. In addition, this kind of sound - generating structure requires the sound - generating switch to be always on, which will hinder the line - paying - out speed when the fishing reel needs to pay out the line. Summary of the Invention

[0004] In order to solve the problems in the prior art that the sound always exists, it is impossible to accurately distinguish the drag alarm sound from the fishing reel line - reeling sound, and it affects the line - paying - out speed, etc., the present application provides a drag sound - generating structure for a drum fishing reel. This structure is arranged on the spool and the friction pressure plate, has no influence on the main gear and the main gear shaft, can only emit a drag alarm sound without other sounds, and its sound is beautiful, pleasant, and loud.

[0005] In order to achieve the above - mentioned purpose, the technical solution adopted in the present application is as follows:

[0006] A drag sound - generating structure for a drum fishing reel, including a spool shaft and a spool rotatably arranged on the spool shaft by bearings. A ticking ring is provided on the outer flange of the side cavity of the spool at the non - power input end. A friction pressure plate A is fixedly arranged on the spool shaft. The friction pressure plate A is rotatably connected to a friction pressure plate B. A friction gasket is fixed in the side cavity of the spool, and the friction surface of the friction gasket faces the friction pressure plate B. A ticking column is relatively fixed to the friction pressure plate A. The friction pressure plate B drives the ticking column to rotate along the eccentric pin shaft on the friction pressure plate A through a push plate, thereby changing the distance between the ticking column and the ticking ring. A sound is generated when the ticking column contacts the ticking ring.

[0007] More preferably, the ticking column is connected to a fixing plate through a first spring. The fixing plate is connected to the friction pressure plate A through a pin shaft. One end of the push plate is connected to the fixing plate, and the other end is connected to the friction pressure plate B.

[0008] Preferably, the ticking ring has recesses and protrusions distributed alternately on the side opposite to the ticking column.

[0009] Preferably, two symmetrically distributed first grooves and two symmetrically distributed second grooves are provided on the friction pressure plate A, and two first bosses and two second bosses are provided on the friction pressure plate B. The first bosses and the second bosses are respectively assembled in the first grooves and the second grooves, and the push plate is fixed to the first boss closest to it.

[0010] Preferably, a spring groove is provided on one side of the second groove, and the second spring is placed in the spring groove, with one end abutting against the second boss and the other end abutting against the spring groove wall.

[0011] Preferably, a third spring is provided between the friction pressure plate A and the bearing, and the third spring is sleeved on the spool shaft.

[0012] Preferably, a circular boss is provided at the center of the friction pressure plate A, and a circular center hole is provided at the center of the friction pressure plate B. The circular boss is inserted into the circular center hole to assemble the friction pressure plate A and the friction pressure plate B together.

[0013] Preferably, a gasket is provided between the friction pressure plate A and the friction pressure plate B.

[0014] Preferably, a special-shaped hole is provided at the center of the friction pressure plate A, and a flat section matching the special-shaped hole is provided on the spool shaft. To fix the friction pressure plate A and the spool shaft so that they cannot rotate relative to each other.

[0015] Preferably, 2N mounting platforms protruding towards the center of the inner cavity are provided in the side cavity of the spool. There are concave cavities between the mounting platforms. Second elastic retaining ring mounting grooves are provided on the surfaces of the mounting platforms opposite to the center of the inner cavity. N inserting protrusions are provided on the friction gasket, and the inserting protrusions are assembled in the concave cavities. The second elastic retaining ring is installed in the second elastic retaining ring mounting groove; screw holes are provided at the tops of the mounting platforms, circular holes are provided on the ticking ring, and screws pass through the circular holes on the ticking ring and are fixed in the screw holes of the mounting platforms.

[0016] The beneficial effects of the present invention are as follows: (1) The fishing reel drag sound generating mechanism is arranged on the spool and the friction pressure plate, which has no influence on the main gear and the main gear shaft and has no influence on the free rotation of the spool. (2) The relatively movable friction pressure plate A and the friction pressure plate B drive the push plate to rotate when rotating, the push plate drives the fixing plate to rotate, and the fixing plate drives the ticking column to rotate to realize the drag ticking sound. It is ensured that when the spool is not stressed, there is no ticking sound, and when the spool is stressed, only one rotation direction can emit a ticking sound, and there is no ticking sound in the other rotation direction. The structure is simple, the sound is beautiful, it is easy to process, and it is not easy to be damaged. Description of the Drawings

[0017] To more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present application. For those skilled in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0018] Figure 1 is the exploded view of the present invention.

[0019] Figure 2 is the sectional view of the present invention.

[0020] Figure 3 is the schematic diagram of the structure of the wire reel.

[0021] Figure 4 is the schematic diagram of the structure of the ticking ring.

[0022] Figure 5 and Figure 6 is the schematic diagram of the structure of the friction pressure plate A.

[0023] Figure 7 is the schematic diagram of the structure of the friction pressure plate B.

[0024] Figure 8 Schematic diagram of the friction gasket structure.

[0025] Figure 9 and Figure 10 is the schematic diagram of the structure of the fixing plate.

[0026] Figure 11 is the schematic diagram of the structure of the first spring.

[0027] Figure 12 , Figure 13 , Figure 14 , Figure 15 are schematic diagrams of the ticking post in different states.

[0028] Figure 16 is Figure 15 the schematic diagram when the spring retainer 3 and the screw 2a are not shown.

[0029] Figure 17 is the schematic diagram of the structure of the push plate.

[0030] Figure 18 is the schematic diagram of the structure of the bushing.

[0031] 1. Snap ring; 2a, 2b, 2c, 2d Screws; 3. Spring retaining plate; 4. Second spring; 5. Pusher plate; 51 First round hole; 52 Second round hole; 6. Fixed plate; 61 Fixed plate positioning post; 62 Fixed plate flange; 63 Fixed plate spring groove; 631 Arc groove section; 632 Square groove section; 7. Bush; 71 Cylindrical platform; 8. Friction pressure plate A; 81 First groove; 82 Second groove; 83 Spring groove; 84, 85 Screw holes, 86 Shaped hole, 87 Round boss; 88 First circlip mounting groove; 9. Tick column; 10. First spring; 101 Fixed ring, 102 Spring coil; 11. Gasket; 12. Friction pressure plate B; 121 First boss, 122 Second boss, 123 Round center hole, 124 Screw hole, 13. First circlip; 14. Tick ring; 141 Depression, 142 Protrusion, 143 Round hole, 144 Central cavity; 15. Second circlip; 16. Friction gasket; 161 Insertion protrusion, 162 Central cavity; 17 Third spring; 18. Bearing; 19. Reel; 191 Center hole, 192 Mounting platform, 193 Concave cavity, 194 Second circlip mounting groove, 195 Screw hole; 20. Reel shaft; 201 Flat section; 21. Pinion; 22. Main gear shaft; 23. Main gear; 24. One-way bearing; 25. Rocker arm. Detailed implementation manners

[0032] To make the objectives, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are some but not all of the embodiments of the present application. The components of the embodiments of the present application usually described and illustrated in the accompanying drawings here can be arranged and designed in various different configurations.

[0033] In the description of the present application, it should also be noted that unless otherwise clearly defined and limited, if the terms "set", "installed", "connected", "connected" are used, they should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected, indirectly connected through an intermediate medium, or the internal communication of two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific situations.

[0034] The drag sound-generating structure of the drum fishing reel of the present invention, see Figure 1 and Figure 2It includes a winding wheel shaft 20 and a winding wheel 19 rotatably arranged on the winding wheel shaft 20 by bearings 18. The winding wheel shaft 20 passes through the central hole 191 of the winding wheel 19. The winding wheel shaft 20 is provided with a pinion 21 for driving the winding wheel 19. The installation side of the pinion 21 is the power input end of the winding wheel 19, and the other end is the non-power input end of the winding wheel. A ticking ring 14 is provided on the outer flange of the side cavity of the winding wheel 19 at the non-power input end. A friction pressure plate A8 is fixedly arranged on the winding wheel shaft 20. The friction pressure plate A8 is rotatably connected with a friction pressure plate B12. A friction gasket 16 is fixed in the side cavity of the winding wheel 19. The friction surface of the friction gasket 16 faces the friction pressure plate B12. The ticking column 9 is fixedly arranged opposite to the friction pressure plate A8. The friction pressure plate B12 drives the ticking column 9 to rotate along the eccentric pin shaft on the friction pressure plate A8 through a push plate 5, thereby changing the distance between the ticking column 9 and the ticking ring 14, and making a sound when the ticking column 9 contacts the ticking ring 14.

[0035] The center of the friction pressure plate A8 is provided with a special-shaped hole 86. The winding wheel shaft 20 is provided with a flat section 201 that cooperates with the special-shaped hole 86, so that the friction pressure plate A8 and the winding wheel shaft 20 can move axially but not rotate. A snap ring 1 is installed on the winding wheel shaft 20 to fix the friction pressure plate A8. A third spring 17 is installed between the friction pressure plate A8 and the bearing 18. The third spring 17 is sleeved on the winding wheel shaft 20. When the winding wheel shaft 20 is not subjected to a pulling force to the right, the friction pressure plate B12 and the friction gasket 16 are separated under the action of the third spring 17.

[0036] In this embodiment, the ticking column 9 is connected to a fixing plate 6 through a first spring 10. The fixing plate 6 is connected to the friction pressure plate A8 through a pin shaft, that is, a screw 2b. The two ends of the push plate 5 are respectively provided with a first round hole 51 and a second round hole 52. The first round hole 51 is sleeved and matched with the positioning column 61 of the fixing plate 6 to connect the push plate 5 and the fixing plate 6. The second round hole 52 is sleeved on the cylindrical platform 71 of the shaft sleeve 7. Both sleeves can rotate relatively. The screw 2c passes through the shaft sleeve 7 and is connected to the friction pressure plate B12. The structure of the friction pressure plate A8 is as Figure 5 and Figure 6 shown. Its center is a circular convex platform 87 structure. The center of the circular convex platform 87 is provided with a special-shaped hole 86. The friction pressure plate A8 is provided with two symmetrically distributed first grooves 81 and two symmetrically distributed second grooves 82. One side of the second groove 82 is provided with a spring groove 83. The second spring 4 is placed in the spring groove 83. One end of it abuts against the second convex platform 122, and the other end abuts against the wall of the spring groove 83. A screw hole 84 is provided on the friction pressure plate A8. The screw 2a is screwed into the screw hole 84 to fix the spring retaining piece 3 on the friction pressure plate A8. The spring retaining piece 3 prevents the second spring 4 from falling out of the spring groove 83. The structure of the friction pressure plate B12 is as Figure 7As shown, its center is a circular central hole 123. The friction pressure plate B12 is also provided with two first bosses 121 and two second bosses 122. The circular boss 87 of the friction pressure plate A8 passes through the central hole of the gasket 11 and inserts into the circular central hole 123 of the friction pressure plate B12. The first elastic retaining ring 13 is fixed on the first elastic retaining ring mounting groove 88 of the friction pressure plate A8. The first boss 121 and the second boss 122 are respectively assembled in the first groove 81 and the second groove 82. A screw hole 124 is provided on the first boss 121. The screw 2c passes through the bushing 7 and is screwed into the screw hole 124 to fix the push plate 5 to the first boss 121, making it have no axial movement. During the relative rotation of the friction pressure plate A8 and the friction pressure plate B12, the first boss 121 and the second boss 122 move in the first groove 81 and the second groove 82 respectively. More preferably, a gasket 11 is provided between the friction pressure plate A8 and the friction pressure plate B12. The gasket 11 can transmit the force received by the friction pressure plate B12 from the friction gasket 16 to the friction pressure plate A8.

[0037] The structure of the fixing plate 6 is as Figure 9 and Figure 10 shown. The fixing plate 6 is provided with a fixing plate positioning post 61, a fixing plate flange 62 and a fixing plate spring groove 63. The fixing plate spring groove 63 is divided into an arc groove section 631 and a square groove section 632. The two sides of the square groove section 632 are the fixing plate flanges 62. The first spring 10 is assembled in the fixing plate spring groove 63. The fixing ring 101 of the first spring 10 is located in the arc groove section 631, and the spring ring 102 is located in the square groove section 632. The screw 2b passes through the fixing plate 6 and the fixing ring 101 on the first spring 10 and is screwed into the screw hole 85 on the friction pressure plate A8 for fixation, thereby reliably fixing the first spring 10 and the fixing plate 6 together. The end of the ticking post 9 is inserted into the spring ring 102 of the first spring 10 to be fixed to the first spring 10. The fixing plate flange 62 enables the first spring 10 and the fixing plate 6 to rotate simultaneously. The structure of the first spring 10 is as Figure 11 shown. By connecting the first spring 10 with the ticking post 9, the ticking post 9 has a certain flexibility and can cooperate with the ticking ring 14 to emit a pleasant sound.

[0038] In this embodiment, the structure of the ticking ring 14 is as Figure 4 shown. A central cavity 144 is provided in the center of the ticking ring 14. The ticking post 9 is located in the central cavity 144. The side of the ticking ring 14 opposite to the ticking post 9 has recesses 141 and protrusions 142 distributed alternately. The ticking post 9 collides with the protrusions 142 to emit a sound, and its rhythm is strong.

[0039] The structure of the wire reel 19 is as Figure 3As shown in the figure, there are 2N mounting platforms 192 protruding towards the center of the inner cavity in the side inner cavity of the spool 19. There are concave cavities 193 between the mounting platforms 192. Second elastic retaining ring mounting grooves 194 are provided on the surfaces of the mounting platforms 192 opposite to the center of the inner cavity. N inserting protrusions 161 are provided on the friction gasket 16, and the inserting protrusions 161 are assembled in the concave cavities 193. Screw holes 195 are provided at the tops of the mounting platforms 192. Round holes 143 are provided on the ticking ring 14. The screw 2d passes through the round hole 143 on the ticking ring 14 and is fixed in the screw hole 195 of the mounting platform 192. When the friction gasket 16 is assembled with the side cavity of the spool 19, the inserting protrusions 161 are placed at the positions of the concave cavities 193,

[0040] The second elastic retaining ring 15 is installed into the second elastic retaining ring mounting groove 194, so that the friction gasket 16 can be quickly assembled with the spool 19.

[0041] The pinion gear 21 and the spool shaft 20 are connected by a flat shaft, that is, the spool shaft 20 is set to be flat at the installation section of the pinion gear 21, the hole of the pinion gear 21 is set to be a flat hole, and the pinion gear 21 and the spool shaft 20 rotate together. The main gear 23 and the main gear shaft 22 are also connected by a flat shaft, the main gear shaft 22 and the rocker arm 25 are connected by a flat shaft, and the one-way bearing 24 is fixed. Therefore, under the action of the one-way bearing 24, the rocker arm 25, the main gear shaft 22, and the main gear 23 can only rotate counterclockwise, and the pinion gear 21 and the spool shaft 20 can only rotate clockwise. The friction gasket 16 is fixed on the spool 19 through the second elastic retaining ring 15, the ticking ring 14 is fixed on the spool 19 through the screw 2d, and the spool 19 is installed on the spool shaft 20 through the bearing 18. Therefore, the ticking ring 14 and the friction gasket 16 can freely rotate counterclockwise and clockwise on the spool shaft 20 together with the spool 19.

[0042] The drag sound generating structure of the drum type fishing reel of the present invention is specifically used as follows:

[0043] State 1: When no pulling force is applied to the right side of the spool shaft 20, under the action of the third spring 17, the friction pressure plate B12 is separated from the friction gasket 16. At this time, the spool 19 is not stressed and can rotate freely. The second boss 122 on the friction pressure plate B12 is in the Figure 16 position under the action of the first spring 4. At this time, the push plate 5 drives the fixed plate 6 to rotate to the Figure 16 state, so that the ticking column 9 and the ticking ring 14 are not in contact. Therefore, no ticking sound will be emitted whether the spool 19 rotates counterclockwise or clockwise. This state is the free rotation state of the drum type fishing reel with no friction on the spool 19.

[0044] State 2: When the spool shaft 20 is pulled to the right and the pulling force reaches a certain level, the friction pressure plate B12 will contact the friction gasket 16, and at this time, a frictional force will be generated between the friction pressure plate B12 and the friction gasket 16. Since the spool shaft 20 can only rotate clockwise, when the spool 19 rotates counterclockwise, under the action of the frictional force, the spool 19 will drive the friction pressure plate B12 to rotate counterclockwise simultaneously through the friction gasket 16. At this time, the second boss 122 will compress the second spring 4, and the first boss 121 will rotate towards the counterclockwise edge of the first groove 81. At the same time, the first boss 121 will drive the push plate 5 fixed on it to rotate, and the push plate 5 will drive the fixing plate 6 fixed on the friction pressure plate A8 to rotate around the pin shaft, that is, the screw 2b. The fixing plate 6 will drive the first spring 10 to rotate around the screw 2b, and at the same time drive the ticking column 9 fixed on the first spring 10 to rotate. When the spool 19 continues to rotate counterclockwise, the friction pressure plate B12 will stop rotating due to the first boss 121 contacting the counterclockwise edge of the first groove 81 of the friction pressure plate A8 and enter Figure 14 the position. The spool 19 drives the friction gasket 16 to continue rotating. Since the ticking ring 14 is fixed on the spool 19, the ticking ring 14 will also continue to rotate. At this time, the tip of the ticking column 9 will sequentially touch the protrusions 142 of the ticking ring 14 under the action of the first spring 10, Figure 12 and Figure 13 states, thus emitting a ticking sound. This state is the line-out state of the drum fishing reel after being subjected to the frictional force.

[0045] State 3: When the rocker arm 25 is rotated in State 2, the rocker arm 25 will drive the main gear shaft 22, the main gear 23, the pinion gear 21, the spool shaft 20 and the friction pressure plate A8 to rotate simultaneously. Due to the action of the frictional force, the friction pressure plate A8 will drive the gasket 11, the friction pressure plate B12, the friction gasket 16 and the spool 19 to rotate clockwise simultaneously. At this time, the ticking column 9 and the ticking ring 14 move simultaneously, and there is no relative rotation between the two, so no ticking sound will be emitted. This state is the line-winding state of the drum fishing reel after being subjected to the frictional force.

[0046] The design of the drag sound-generating structure of the drum fishing reel of the present invention is reasonable. When the friction pressure plate B12 is not in contact with the friction gasket 16, the spool 19 is not subjected to the frictional force and can rotate freely. At this time, there is no ticking sound in both the counterclockwise and clockwise directions. When the friction pressure plate B12 is in contact with the friction gasket 16, the spool 19 is subjected to the frictional force. When the line-out pulling force is greater than the frictional force, relative rotation occurs between the friction pressure plate B12 and the friction gasket 16, causing the friction pressure plate B12 to enter the sound-generating position and generating a ticking sound; when the line-out pulling force is less than the frictional force, no relative rotation occurs between the friction pressure plate B12 and the friction gasket 16, the friction pressure plate B12 does not enter the sound-generating position, and no ticking sound can be generated.

[0047] The present invention adopts an active friction rotation sound - generating structure, sets the sound - generating components on the spool and the friction pressure plate, and drives the components to rotate by using rotational friction to generate sound, enabling the drum fishing reel to emit a stable drag alarm sound and not emit sound in other states.

[0048] The above are only the preferred embodiments of the present application and are not used to limit the present application. For those skilled in the art, various changes and modifications can be made to the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included within the protection scope of the present application.

Claims

1. A drag sound - generating structure of a drum fishing reel, characterized in that: It includes a wire winding wheel shaft and a wire winding wheel rotatably arranged on the wire winding wheel shaft by bearings. A ticking ring is provided on the outer flange of the side cavity of the wire winding wheel at the non-power input end of the wire winding wheel. A friction pressure plate A is fixedly provided on the wire winding wheel shaft. The friction pressure plate A is rotatably connected with a friction pressure plate B. A friction gasket is fixed in the side cavity of the wire winding wheel, and the friction surface of the friction gasket faces the friction pressure plate B. The ticking column is relatively fixed with the friction pressure plate A. The friction pressure plate B drives the ticking column to rotate along the eccentric pin shaft on the friction pressure plate A through a push plate, so as to change the distance between the ticking column and the ticking ring, and a sound is generated when the ticking column contacts the ticking ring. The relative side of the ticking ring and the ticking column has recesses and protrusions distributed alternately. The ticking column is connected with a fixing plate through a first spring. The fixing plate is connected with the friction pressure plate A through a pin shaft. One end of the push plate is connected with the fixing plate, and the other end is connected with the friction pressure plate B. Two symmetrically distributed first grooves and two symmetrically distributed second grooves are provided on the friction pressure plate A. Two first bosses and two second bosses are provided on the friction pressure plate B. The first bosses and the second bosses are respectively assembled in the first grooves and the second grooves. The push plate is fixed with the first boss closer to it. A spring groove is provided on one side of the second groove. A second spring is placed in the spring groove. One end of the second spring abuts against the second boss, and the other end abuts against the wall of the spring groove. A third spring is provided between the friction pressure plate A and the bearing. The third spring is sleeved on the wire winding wheel shaft.

2. The drag sound generating structure of a drum fishing reel according to claim 1, wherein: A circular boss is provided at the center of the friction pressure plate A, and a circular center hole is provided at the center of the friction pressure plate B. The circular boss is inserted into the circular center hole, so as to assemble the friction pressure plate A and the friction pressure plate B together.

3. The drag sound generating structure of a drum fishing reel according to claim 2, characterized in that: A gasket is provided between the friction pressure plate A and the friction pressure plate B.

4. A drag sound - generating structure of a drum - type fishing reel according to claim 1, characterized in that: A special-shaped hole is provided at the center of the friction pressure plate A, and a flat section matching the special-shaped hole is provided on the wire winding wheel shaft.

5. A drag sound generating structure of a drum fishing reel according to claim 1, characterized in that: 2N installation platforms protruding towards the center of the inner cavity are provided in the side cavity of the wire winding wheel. There are concave cavities between the installation platforms. Second elastic retaining ring installation grooves are provided on the surfaces of the installation platforms opposite to the center of the inner cavity. N plugging protrusions are provided on the friction gasket. The plugging protrusions are assembled in the concave cavities. The second elastic retaining ring is installed in the second elastic retaining ring installation grooves. Screw holes are provided at the tops of the installation platforms, and round holes are provided on the ticking ring. Screws pass through the round holes on the ticking ring and are fixed in the screw holes of the installation platforms.

Citation Information

Patent Citations

  • Fishing ship thread guide

    CN203407379U

  • Fishing reel force release alarm mechanism

    CN211091441U