Compact magnetic force synchronous adjusting device
By introducing a collision sound feedback mechanism of the tick groove and tick ball into the magnetic synchronous adjustment device, the problem of no real-time prompt for the resistance threshold is solved, the accuracy of resistance adjustment is improved, and real-time feedback of resistance perception is realized.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NINGBO SEASIDE FISHING TACKLE
- Filing Date
- 2025-05-27
- Publication Date
- 2026-05-15
AI Technical Summary
Common compact magnetic synchronization adjustment devices lack a dynamic resistance feedback mechanism, and there is no real-time indication of the resistance threshold during adjustment, resulting in a lack of resistance sensing and limited calibration accuracy.
A structure including a protective shell, a magnetic adjustment knob, an adjustment gear, a driven gear, a magnetic sleeve, and a tick ball is designed. By rotating the magnetic adjustment knob, the adjustment gear is driven, and the collision between the tick groove and the tick ball produces a prompting sound, thus realizing dynamic resistance feedback.
It provides real-time feedback on the resistance level, improving the accuracy of resistance adjustment and ensuring the precision of the magnet assembly adjustment.
Smart Images

Figure CN224234522U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of fishing gear technology, and in particular to a compact magnetic synchronization adjustment device. Background Technology
[0002] A fishing reel, also called a fishing line reel, line feeder, or line reel, is an essential fishing tackle for casting (sea) rod fishing. It typically consists of 11 main components: a handle, a crank arm, a reverse stop button, the main body, the reel feet, the guide reel, the line reel, the casting nut, the hook clip, the line housing, and the drag device. It is a fishing tackle fixed in front of the casting rod handle and is the main tackle for forming a casting rod fishing rig.
[0003] Common compact magnetic synchronization adjustment devices only include magnetic synchronization adjustment function, which can adjust the magnet assembly, but lack the function of indicating the resistance level. They cannot guarantee that they can provide timely prompts based on the resistance level during adjustment, which can easily lead to problems such as not being able to prompt personnel based on the resistance level when adjusting the magnet assembly, affecting the accuracy of resistance adjustment.
[0004] Therefore, in view of the lack of a dynamic resistance feedback mechanism in the above-mentioned compact magnetic synchronous adjustment device, the lack of real-time prompts for the resistance threshold during adjustment leads to a lack of resistance perception and limited calibration accuracy, there is an urgent need to design a new type of compact magnetic synchronous adjustment device. Utility Model Content
[0005] To overcome the problem that common compact magnetic synchronization adjustment devices lack a dynamic resistance feedback mechanism, resulting in a lack of resistance sensing and limited calibration accuracy due to the absence of real-time prompts for resistance thresholds during adjustment.
[0006] The technical solution of this utility model is as follows: a compact magnetic synchronous adjustment device, including a protective shell; it also includes a magnetic adjustment knob, an adjustment gear, a tick groove, a driven gear, a magnetic sleeve, and a tick ball. The magnetic adjustment knob is rotatably connected to the top of the inside of the protective shell. An adjustment gear is provided on the right side of the magnetic adjustment knob. Several tick grooves are equally spaced on the right side of the adjustment gear. A driven gear is provided inside the protective shell corresponding to the position of the adjustment gear. The driven gear meshes with the adjustment gear. A magnetic sleeve is provided on the right side of the protective shell corresponding to the position of the driven gear. A tick ball is provided on the left side of the magnetic sleeve corresponding to the position of the tick groove.
[0007] Preferably, rotating the magnetic adjustment knob drives the adjustment gear to rotate. The adjustment gear meshes with the driven gear, causing it to rotate as well. During the rotation of the adjustment gear, the tick groove rotates along the position of the tick ball. When the tick ball slides over the tick groove, it will make a ticking sound due to the collision with the tick groove. This achieves the function of dynamic resistance feedback, which solves the problem that common compact magnetic synchronous adjustment devices only include magnetic synchronous adjustment function and can adjust the magnet assembly, but lack the function of indicating the resistance level. They cannot guarantee that they can provide timely prompts based on the resistance level during adjustment, which can easily lead to the problem that the adjustment of the magnet assembly cannot provide prompts based on the resistance level, affecting the accuracy of resistance adjustment.
[0008] Preferably, a limiting boss is provided on the right side of the adjusting gear corresponding to the position of the tick groove, and a connecting piece is connected on the left side of the magnet sleeve corresponding to the position of the driven gear.
[0009] Preferably, an adjustment groove is provided on the right side of the driven gear, and an adjustment boss is provided on the left side of the connector corresponding to the position of the adjustment groove, with the adjustment boss inserted into the interior of the adjustment groove.
[0010] Preferably, a first spring is provided between the connecting member and the driven gear.
[0011] Preferably, the magnetic sleeve is provided with connecting pins around its perimeter corresponding to the positions of the protective shell.
[0012] Preferably, a second spring is fitted around the connecting pin, with the left end of the second spring connected to the protective shell.
[0013] Preferably, the left side of the magnet sleeve has three sliding pins at equal intervals corresponding to the position of the protective shell, and the sliding pins are slidably connected to the protective shell. The right side of the magnet sleeve has a take-up sleeve.
[0014] The beneficial effects of this utility model are:
[0015] 1. The magnetic adjustment knob drives the adjustment gear and the driven gear to mesh and transmit power. During the rotation of the gear, the tick groove periodically touches the tick ball. The mechanical collision sound frequency signal provides real-time feedback to adjust the resistance threshold, forming an acoustic prompting mechanism for dynamic resistance perception. Attached Figure Description
[0016] Figure 1 The diagram shown is a schematic left-side view of the overall structure of the compact magnetic synchronization adjustment device of this utility model.
[0017] Figure 2 The diagram shown is a right-side view of the overall structure of the compact magnetic synchronization adjustment device of this utility model.
[0018] Figure 3The diagram shown is a structural schematic of the connector of the compact magnetic synchronization adjustment device of this utility model.
[0019] Figure 4 The diagram shown is a schematic representation of the driven gear structure of the compact magnetic synchronization adjustment device of this utility model.
[0020] Figure 5 The diagram shown is a schematic of the magnetic adjustment knob structure of the compact magnetic synchronization adjustment device of this utility model.
[0021] Explanation of reference numerals in the attached drawings: 1. Protective shell; 2. Magnetic adjustment knob; 3. Adjustment gear; 4. Tick groove; 5. Limiting boss; 6. Driven gear; 7. Adjustment groove; 8. Connector; 9. Adjustment boss; 10. First spring; 11. Magnet sleeve; 12. Tick ball; 13. Connecting pin; 14. Second spring; 15. Sliding pin; 16. Take-up sleeve. Detailed Implementation
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0023] Please see Figures 1-5 This utility model provides an embodiment of a compact magnetic synchronous adjustment device, including a protective shell 1; it also includes a magnetic adjustment knob 2, an adjustment gear 3, a tick groove 4, a driven gear 6, a magnetic sleeve 11, and a tick ball 12. The magnetic adjustment knob 2 is rotatably connected to the top of the interior of the protective shell 1. An adjustment gear 3 is located on the right side of the magnetic adjustment knob 2, and several tick grooves 4 are evenly spaced on the right side of the adjustment gear 3. A driven gear 6 is located inside the protective shell 1 corresponding to the position of the adjustment gear 3, and the driven gear 6 meshes with the adjustment gear 3. A magnetic sleeve 11 is located on the right side of the protective shell 1 corresponding to the position of the driven gear 6, and a tick ball 12 is located on the left side of the magnetic sleeve 11 corresponding to the position of the tick groove 4. By rotating the magnetic adjustment knob 2... The adjusting gear 3 is driven to rotate, and the adjusting gear 3 rotates through meshing with the driven gear 6. During the rotation of the adjusting gear 3, the tick groove 4 will rotate along the position of the tick ball 12. When the tick ball 12 slides over the tick groove 4, it will make a ticking sound due to the collision with the tick groove 4, thus realizing the function of dynamic resistance feedback. This solves the problem that common compact magnetic synchronous adjustment devices only include magnetic synchronous adjustment function, which can adjust the magnetic steel component, but lack the function of indicating the resistance magnitude. It cannot guarantee that it can provide timely prompts based on the resistance magnitude during adjustment, which is prone to the problem that it cannot prompt personnel based on the resistance magnitude when adjusting the magnetic steel component, thus affecting the accuracy of resistance adjustment.
[0024] Please see Figures 2-5In this embodiment, a connecting pin 13 is provided around the periphery of the magnetic sleeve 11 corresponding to the position of the protective shell 1. A second spring 14 is fitted around the periphery of the connecting pin 13. The left end of the second spring 14 is connected to the protective shell 1. Three sliding pins 15 are provided at equal intervals on the left side of the magnetic sleeve 11 corresponding to the position of the protective shell 1. The sliding pins 15 are slidably connected to the protective shell 1. A take-up sleeve 16 is provided on the right side of the magnetic sleeve 11. By rotating the magnetic force adjustment knob 2, the adjustment gear 3 is driven to rotate. The adjustment gear 3 rotates by meshing with the driven gear 6. During the rotation of the adjustment gear 3, the tick groove 4 will rotate along the position of the tick ball 12. When the tick ball 12 slides over the tick groove 4, it will make a ticking sound due to the collision with the tick groove 4. This realizes the function of dynamic resistance feedback and prevents the problem of not being able to prompt personnel according to the resistance during adjustment when adjusting the magnetic component, which affects the accuracy of resistance adjustment.
[0025] Please see Figures 1-5 In this embodiment, a limiting boss 5 is provided on the right side of the adjusting gear 3 corresponding to the position of the tick groove 4. A connector 8 is connected to the left side of the magnet sleeve 11 corresponding to the position of the driven gear 6. An adjusting groove 7 is provided on the right side of the driven gear 6. An adjusting boss 9 is provided on the left side of the connector 8 corresponding to the position of the adjusting groove 7. The adjusting boss 9 is inserted into the interior of the adjusting groove 7. A first spring 10 is provided between the connector 8 and the driven gear 6. When the driven gear 6 rotates, it drives the adjusting groove 7 to rotate. When the adjusting groove 7 rotates, it pushes the adjusting boss 9 to move to the right. The adjusting boss 9 pushes the magnet sleeve 11 to move to the right through the connector 8, thereby adjusting the position of the magnet assembly.
[0026] During operation, rotating the magnetic adjustment knob 2 drives the adjustment gear 3 to rotate. The adjustment gear 3 meshes with the driven gear 6, causing it to rotate. When the driven gear 6 rotates, it drives the adjustment groove 7 to rotate. When the adjustment groove 7 rotates, it pushes the adjustment boss 9 to move to the right. The adjustment boss 9 pushes the magnet sleeve 11 to move to the right through the connector 8, thereby adjusting the position of the magnet assembly. During the rotation of the adjustment gear 3, the tick groove 4 rotates along the position of the tick ball 12. When the tick ball 12 slides over the tick groove 4, it will make a ticking sound due to the collision with the tick groove 4, thus realizing the function of dynamic resistance feedback.
[0027] Through the above steps, rotating the magnetic adjustment knob 2 drives the adjustment gear 3 to rotate. The adjustment gear 3 meshes with the driven gear 6, causing it to rotate. During the rotation of the adjustment gear 3, the tick groove 4 rotates along the position of the tick ball 12. When the tick ball 12 slides over the tick groove 4, it will make a ticking sound due to the collision with the tick groove 4. This realizes the function of dynamic resistance feedback, which solves the problem that common compact magnetic synchronous adjustment devices only include magnetic synchronous adjustment function and can adjust the magnet assembly, but lack the function of indicating the resistance magnitude. They cannot guarantee that they can provide timely prompts based on the resistance magnitude during adjustment, which easily leads to the problem that they cannot provide prompts to personnel based on the resistance magnitude when adjusting the magnet assembly, affecting the accuracy of resistance adjustment.
Claims
1. A compact magnetic synchronization adjustment device, comprising a protective housing (1); characterized in that: It also includes a magnetic adjustment knob (2), an adjustment gear (3), a tick groove (4), a driven gear (6), a magnetic sleeve (11), and a tick ball (12). The top of the inside of the protective shell (1) is rotatably connected to the magnetic adjustment knob (2). An adjustment gear (3) is provided on the right side of the magnetic adjustment knob (2). Several tick grooves (4) are opened at equal intervals on the right side of the adjustment gear (3). A driven gear (6) is provided inside the protective shell (1) at the position corresponding to the adjustment gear (3). The driven gear (6) meshes with the adjustment gear (3). A magnetic sleeve (11) is provided on the right side of the protective shell (1) at the position corresponding to the driven gear (6). A tick ball (12) is provided on the left side of the magnetic sleeve (11) at the position corresponding to the tick groove (4).
2. The compact magnetic synchronization adjustment device according to claim 1, characterized in that: A limiting boss (5) is provided on the right side of the adjusting gear (3) corresponding to the position of the tick groove (4), and a connector (8) is connected on the left side of the magnet sleeve (11) corresponding to the position of the driven gear (6).
3. The compact magnetic synchronization adjustment device according to claim 2, characterized in that: An adjustment groove (7) is provided on the right side of the driven gear (6), and an adjustment boss (9) is provided on the left side of the connector (8) corresponding to the position of the adjustment groove (7). The adjustment boss (9) is inserted into the interior of the adjustment groove (7).
4. The compact magnetic synchronization adjustment device according to claim 3, characterized in that: A first spring (10) is provided between the connecting member (8) and the driven gear (6).
5. The compact magnetic synchronization adjustment device according to claim 1, characterized in that: Connecting pins (13) are provided around the magnetic sleeve (11) at positions corresponding to the protective shell (1).
6. The compact magnetic synchronization adjustment device according to claim 5, characterized in that: The connecting pin (13) is surrounded by a second spring (14), the left end of which is connected to the protective shell (1).
7. The compact magnetic synchronization adjustment device according to claim 1, characterized in that: Three sliding pins (15) are equally spaced on the left side of the magnetic steel sleeve (11) corresponding to the position of the protective shell (1). The sliding pins (15) are slidably connected to the protective shell (1). A take-up sleeve (16) is provided on the right side of the magnetic steel sleeve (11).