Throwing simulation charger, numerical control fishing reel thereof and charging method

By using a simulated charger to drive the electric brake device through electromagnetic induction via a drive motor and a simulated shaft, the electric brake device of the fishing reel is charged, solving the charging problem of fishing reels without charging ports and enabling multi-functional applications.

CN121890572APending Publication Date: 2026-04-21NINGBO TAKIZAWA FISHING TACKLE CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
NINGBO TAKIZAWA FISHING TACKLE CO LTD
Filing Date
2023-05-31
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing electric brake devices for fishing reels cannot charge batteries without a charging port, and the insulation requirements of existing electronic circuit devices for fishing reels prevent the installation of charging ports on the reels.

Method used

Design a throwing simulation charger that uses a drive motor and a simulation shaft to drive an electric brake device to simulate throwing. The battery of the electric brake device is charged through electromagnetic induction. Two connection methods are provided: one is through transmission via a connection hole, and the other is through electromagnetic induction between a charging magnet and the stator coil.

Benefits of technology

It enables charging of the electric brake device without opening a charging port, maintains the sealing of the fishing reel, and has multiple functions such as power bank, lighting and line spool storage, and is suitable for a variety of electric brake devices.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121890572A_ABST
    Figure CN121890572A_ABST
Patent Text Reader

Abstract

A throwing simulation charger comprises a box body, a driving motor and a power supply. An accommodating cavity and an electrical cavity are formed in the box body, and the accommodating cavity is communicated with the electrical cavity through a connecting channel; the containing cavity further comprises an installation opening located in the surface of the box body. The driving motor and the power supply form electrical communication and are both arranged in the electrical cavity; an output shaft of the driving motor is in transmission connection with a simulation shaft, the simulation shaft comprises a connecting end, and the connecting end penetrates through the connecting channel and then extends into the containing cavity; the mode of the driving motor and the simulation shaft is adopted to drive the electric brake device of the fishing reel to complete the action of simulating throwing, the battery is charged by means of induced current generated by electromagnetic reaction of the electric brake device in the throwing action, charging of the battery can be achieved, the power utilization requirement of a multifunctional module of the snub device is met, and the service life of the snub device is prolonged. There is no need to open the fishing reel, thereby ensuring the sealing performance of the fishing reel.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of fishing reel chargers, specifically to a casting simulation charger, its CNC fishing reel, and a charging method. Background Technology

[0002] A fishing reel, also known as a line reel or line winding device, or in ancient times as a fishing cart, is one of the essential fishing tackle tools for casting rod fishing. It is mainly fixed to the front of the casting rod handle for use.

[0003] In reality, during casting, the bait flies due to inertia, pulling the fishing line out of the reel's line outlet. This causes the spool to rotate and release line. The bait's flight speed decreases due to air resistance and line friction. When the speed at which the spool releases line exceeds the speed at which the line is pulled out of the reel, some line becomes trapped inside the reel, forming a float and leading to tangling. Therefore, existing fishing reels typically include a braking and deceleration device for the spool to prevent tangling during casting.

[0004] With the development of related technologies, devices that rely on electromagnetic induction to brake the spool of fishing reels have begun to appear on the market. These devices are also known as electric brakes. The structure of existing electric brake devices for fishing reels generally uses a rotor magnet connected to the spool and rotating with it, and a stator coil installed on the main body of the fishing reel. The braking of the spool is achieved by the electromagnetic induction that occurs when the two rotate relative to each other.

[0005] Chinese patent ZL201910152176.1 discloses: "A braking device for a double-bearing fishing reel. The braking device for the double-bearing fishing reel includes a drum braking section and a drum control section. The drum braking section brakes the drum via electromagnetic induction during the release of fishing line. The drum control section is configured to control the braking force of the drum braking section by switching the current generated by electromagnetic induction on and off in a predetermined first cycle and a second cycle. The drum control section includes a cycle changing section. The cycle changing section changes the first cycle for drum braking to the second cycle for drum braking. Accordingly, the braking force can be stably applied to the drum."

[0006] As can be seen from the solution described in the aforementioned patent, existing electric brake devices that rely on electromagnetic induction to brake the reel can control the braking force on the reel by adjusting the switching on / off of the induced current, thereby achieving multi-level control of the electric brake device. If the electric brake device only has a braking function, it does not need to be equipped with a power supply because it can generate induced current for braking itself. However, with the continuous development of technology, existing fishing reel electric brake devices have begun to have other functions, such as Bluetooth functionality. In order to power these other functional modules, the induced current generated by the brush device alone is no longer sufficient.

[0007] To address the above situation, a battery needs to be added to the electric braking device to power the functional modules, but this raises the issue of charging the battery. Furthermore, as disclosed in Chinese Patent No. ZL200410037898.6: "An electronic circuit device for fishing tackle, ensuring dimensional accuracy and insulation performance while preventing the fishing tackle from becoming too large. The reel control assembly is a component disposed on the reel body of a double-bearing fishing reel, comprising a circuit board, multiple electrical components, and a molded insulating film. The circuit board is a substrate with printed circuits on at least its surface. The numerous electrical components include a microcomputer that controls the fishing reel by a control program, which is disposed on the circuit board in an electrical connection with the printed circuits. The molded insulating film is a synthetic resin film formed by hot-melt molding, in which resin raw materials are injected into a metal mold housing the circuit board containing the electrical components, and at least a portion of the surface forming the printed circuits of the circuit board is covered together with the electrical components."

[0008] As described in the aforementioned patent, existing electronic circuit devices for fishing reels are thermoformed and sealed with resin to ensure insulation performance. This is because fishing reels are used in environments where water is present, so it is necessary to ensure that water does not enter the reel and affect the electronic circuit. Therefore, it is not feasible to open a charging port on the fishing reel to charge the battery in the electric brake device.

[0009] In order to address the situation where it is necessary to charge the electric brake device but a charging port cannot be provided on the fishing reel, we are considering developing a charger specifically for the electric brake device of the fishing reel, which can charge the battery of the electric brake device without the need for a charging port. Summary of the Invention

[0010] In order to overcome the lack of a charger in the prior art that can charge the electric brake device of a fishing reel without the need for a charging port, the present invention provides a casting simulation charger, a CNC fishing reel, and a charging method.

[0011] The technical solution of this invention to solve its technical problem is: a throwing simulation charger, comprising:

[0012] The box body has an internal cavity, and the cavity also includes a mounting port on the surface of the box body.

[0013] A drive motor is connected to the housing, and a simulated shaft is driven to the output shaft of the drive motor. The simulated shaft includes a connecting end that extends into and is located within the accommodating cavity.

[0014] A power supply is connected to the housing and is electrically connected to the drive motor.

[0015] During use, the electric brake device can be installed into the accommodating cavity through the mounting port, thereby enabling the electric brake device to cooperate with the connection end of the simulation shaft. When the drive motor starts, the simulation shaft can drive the electric brake device to perform a throwing simulation, thereby charging the battery inside the electric brake device.

[0016] One way the connecting end is to cooperate with the electric brake device is that the connecting end has a connecting hole, so that the end of the rotating shaft in the electric brake device can be inserted into the connecting hole to realize the transmission between the analog shaft and the rotating shaft. In turn, the rotation of the analog shaft can drive the rotor magnet on the rotating shaft to rotate, so that it forms an electromagnetic induction with the stator coil, thereby charging the battery of the electric brake device.

[0017] Another way to cooperate with the electric brake device is that a charging magnet is fitted on the connecting end, so that when the electric brake device removes the magnetic module and only the electric module is installed in the accommodating cavity, the connecting end of the analog shaft can be inserted into the electric module, and the charging magnet is located at the center of the stator coil. When the analog shaft rotates and drives the charging magnet to rotate, the charging magnet can replace the rotor magnet to form an electromagnetic induction with the stator coil, thereby charging the battery of the electric brake device.

[0018] Furthermore, the drive motor and power supply are arranged in a further manner. An electrical cavity is also provided inside the housing. Both the drive motor and the power supply are located inside the electrical cavity. A connecting channel connecting the housing cavity and the electrical cavity is also provided inside the housing. The connecting end of the analog shaft extends into the electrical cavity through the connecting channel.

[0019] Furthermore, a connecting bearing is provided within the connecting channel, with the inner ring of the connecting bearing fitting on the circumference of the simulation shaft, while the outer ring of the connecting bearing fits on the inner wall of the connecting channel.

[0020] Further, the electrical structure of this throwing simulation charger includes a circuit board inside the electrical cavity. The drive motor and power supply are electrically connected to the circuit board to achieve electrical communication. The surface of the box is also provided with a charging port for charging the power supply and a control button for controlling the start and stop of the drive motor. The charging port and control button are also electrically connected to the circuit board.

[0021] During the use of this throwing simulation charger, in addition to charging the power source through the charging port, it can also output electrical energy from the power source when power is needed, thus enabling this throwing simulation charger to function as a charging pack.

[0022] Furthermore, the display screen of this throwing simulation charger has an additional mounting slot on one side of the box, in which a display screen is embedded, and the display screen is electrically connected to the circuit board.

[0023] During the use of this simulated charger, the display screen can show the power level of the power source and the start / stop status of the drive motor.

[0024] Furthermore, the lighting function of this throwing simulation charger is further enhanced by the fact that a light and a lighting button for controlling the light are provided on the surface of the box, and both the light and the lighting button are electrically connected to the circuit board.

[0025] During use, when using this throwing simulator at night, the lighting can be turned on via the lighting button to provide illumination.

[0026] The storage function of this throwing simulation charger is further enhanced by including a storage cover that is detachably connected to the box body. When the storage cover is connected to the box body, the storage cover blocks the installation opening, thereby isolating the accommodating cavity from the outside.

[0027] During use, when this casting simulator charger is not used for charging, the fishing reel spool can be stored in the accommodating cavity. After the storage cover is connected to the box body, the casting simulator charger becomes a spool storage box.

[0028] The present invention also includes a CNC fishing reel, which can be used with any of the above-mentioned casting simulation chargers, and includes a fishing reel body and an electric brake device connected to the fishing reel body, wherein the electric brake device includes an electric module and a magnetic module.

[0029] A magnetic module includes a rotor magnet and a rotating shaft rotatably connected to an electric module. The rotor magnet is connected to the rotating shaft and can rotate relative to the electric module under the drive of the rotating shaft. One end of the rotating shaft is connected to the electric module, and the other end is connected to the fishing reel body.

[0030] The electrical module contains an electronic control board and a battery that powers the electronic control board, as well as stator coils. The stator coils surround the rotor magnet and are electrically connected to the battery.

[0031] The magnetic module further includes a spool, on which the rotating shaft is threaded. Both ends of the rotating shaft extend from the sides of the spool, and the spool can rotate with the rotating shaft.

[0032] The electrical module further includes a side shell, the electronic control board and the battery are installed inside the side shell, and a sleeve shaft is protruding on one end of the side shell near the magnetic module. The stator coil is embedded in the sleeve shaft, and the end of the rotating shaft on which the rotor magnet is sleeved is inserted into the sleeve shaft.

[0033] The present invention also includes a charging method comprising the following steps:

[0034] Step a: Disconnect the connection between the shaft and the fishing reel body, thereby separating the electric brake device from the fishing reel body;

[0035] Step b: Determine whether the simulated shaft of the throwing simulator has a connection hole or a charging magnet.

[0036] Step c1: If the simulation shaft of the throwing simulation charger has a connection hole, then install the entire electric brake device into the receiving cavity through the mounting port on the throwing simulation charger box.

[0037] Step d1: Insert one end of the rotating shaft into the connecting hole to form a transmission connection between the rotating shaft and the simulated shaft;

[0038] Step e1: Start the drive motor of the throwing simulation charger, which drives the rotating shaft to rotate through the simulation shaft. The rotor magnet on the rotating shaft rotates accordingly and generates magnetic induction between it and the stator coil, thereby generating an induced current in the stator coil and charging the battery.

[0039] Step c2: If a charging magnet is fitted on the simulation shaft of the throwing simulation charger, then disconnect the connection between the shaft and the electric module, thereby separating the electric module and the magnetic module from each other;

[0040] Step d2: Install the electric module separately into the receiving cavity through the mounting port on the throwing simulation charger box. During the installation process, align the stator coil on the electric module with the charging magnet on the simulation shaft so that the stator coil can surround the charging magnetic ring after the electric module is installed into the receiving cavity.

[0041] Step e2: Start the drive motor of the throwing simulation charger, which drives the rotating shaft to rotate through the simulation shaft. The charging magnet on the simulation shaft rotates accordingly and generates magnetic induction between it and the stator coil, thereby generating an induced current in the stator coil and charging the battery.

[0042] The beneficial effects of this invention are as follows:

[0043] 1. The electric brake device of the fishing reel is driven by a drive motor and a simulated shaft to simulate casting. The battery is charged by the induced current generated by the electromagnetic reaction of the electric brake device during the casting action, without the need to open a charging port on the electric brake device or the fishing reel to rely on an external power source. This can not only meet the power requirements of the multi-functional module of the electric brake device, but also ensure the sealing of the fishing reel without opening an opening on it.

[0044] 2. The design has two schemes that can simulate casting using the electric brake device of the fishing reel, making this casting simulation charger applicable to more models and types of electric brake devices, and also able to meet various customer needs.

[0045] 3. In addition to serving as a charger for the electric brake device of fishing reels, this casting simulator charger also functions as a power bank, a light, and a line spool storage box, which can cope with various unexpected situations that users may encounter while fishing. Attached Figure Description

[0046] Figure 1 This is a schematic diagram of the structure of the simulated charger in Embodiment 1 of the present invention.

[0047] Figure 2 This is a schematic diagram of the explosion of the simulated charger being thrown in Embodiment 1 of the present invention.

[0048] Figure 3 This is a cross-sectional view of the simulated charger being thrown in Embodiment 1 of the present invention.

[0049] Figure 4 This is a schematic diagram of the structure of the CNC fishing reel in this invention.

[0050] Figure 5 This is a schematic diagram of the structure of the CNC fishing reel electric brake device in this invention.

[0051] Figure 6 This is an exploded schematic diagram of the CNC fishing reel electric brake device in this invention.

[0052] Figure 7 This is a schematic diagram of the interaction between the simulated charger and the CNC fishing reel electric brake device during charging in Embodiment 1 of the present invention.

[0053] Figure 8 This is an explosion diagram of the simulated charger and CNC fishing reel electric brake device during charging, according to Embodiment 1 of the present invention.

[0054] Figure 9 This is a cross-sectional view of the charging simulation charger and the CNC fishing reel electric brake device in Embodiment 1 of the present invention.

[0055] Figure 10 This is a schematic diagram of the structure of the simulated charger in Embodiment 2 of the present invention.

[0056] Figure 11 This is a schematic diagram of the explosion of the simulated charger being thrown in Embodiment 2 of the present invention.

[0057] Figure 12 This is a cross-sectional view of the simulated charger being thrown in Embodiment 2 of the present invention.

[0058] Figure 13 This is a schematic diagram of the interaction between the simulated charger and the CNC fishing reel electric brake device during charging, according to Embodiment 2 of the present invention.

[0059] Figure 14 This is an explosion diagram of the simulated charger and CNC fishing reel electric brake device during charging, according to Embodiment 2 of the present invention.

[0060] Figure 15 This is a cross-sectional view of the charging simulation charger and the CNC fishing reel electric brake device in Embodiment 2 of the present invention.

[0061] Numbered components in the diagram: 1. Housing; 1.1. Receiving cavity; 1.1.1. Mounting port; 1.2. Electrical cavity; 1.3. Connection channel; 1.4. Mounting slot; 2. Drive motor; 3. Power supply; 4. Simulation shaft; 4.1. Connection end; 4.1.1. Connection hole; 4.1.2. Locking pin slot; 5. Connecting bearing; 6. Circuit board; 7. Charging port; 8. Control button; 9. Display screen; 10. Lighting; 11. 11. Lighting button; 12. Storage cover; 13. Charging magnet; 101. Fishing reel body; 102. Electric brake device; 102.1. Electric module; 102.2. Magnetic module; 103. Electronic control board; 103.1. Bluetooth module; 104. Battery; 105. Stator coil; 106. Side shell; 106.1. Sleeve shaft; 107. Rotor magnet; 108. Shaft; 109. Pin shaft; 110. Reel. Detailed Implementation

[0062] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0063] It should be understood that although the terms upper, middle, lower, top, one end, etc., appear in this document to describe various elements, these elements are not limited by these terms. These terms are only used to distinguish the elements from each other for ease of understanding, and are not used to define any directional or sequential restrictions.

[0064] Example 1

[0065] Reference Figures 1 to 3 As shown, a throwing simulation charger includes a housing 1, a drive motor 2, and a power supply 3. The housing 1 has an internal accommodating cavity 1.1 and an electrical cavity 1.2, which are connected by a connecting channel 1.3. The accommodating cavity 1.1 also includes a mounting port 1.1.1 on the surface of the housing 1. The drive motor 2 and the power supply 3 are electrically connected and are both located in the electrical cavity 1.2. A simulation shaft 4 is driven and connected to the output shaft of the drive motor 2. The simulation shaft 4 includes a connecting end 4.1, which extends into the accommodating cavity 1.1 after passing through the connecting channel 1.3.

[0066] In this embodiment, a connection hole 4.1.1 is provided on the connection end 4.1, so that the end of the rotating shaft 108 in the electric brake device 102 can be inserted into the connection hole 4.1.1 to realize the transmission between the simulation shaft 4 and the rotating shaft 108. In turn, the rotation of the simulation shaft 4 can drive the rotor magnet 107 on the rotating shaft 108 to rotate, so that it forms an electromagnetic induction with the stator coil 105, thereby charging the battery 104 of the electric brake device 102.

[0067] In this embodiment, a plurality of locking grooves 4.1.2 are provided on the end face of the connecting end 4.1 around the connecting hole 4.1.1. The locking grooves 4.1.2 can form a locking engagement with the pin 109 passing through the rotating shaft 108 of the electric brake device 102, thereby making the transmission between the simulated shaft 4 and the rotating shaft 108 more stable.

[0068] In this embodiment, a connecting bearing 5 is also provided in the connecting channel 1.3. The inner ring of the connecting bearing 5 is fitted on the periphery of the simulation shaft 4, while the outer ring of the connecting bearing 5 is fitted on the inner wall of the connecting channel 1.3.

[0069] In this embodiment, a circuit board 6 is also provided inside the electrical cavity 1.2. The drive motor 2 and the power supply 3 are both electrically connected to the circuit board 6 to achieve electrical communication. The surface of the housing 1 is also provided with a charging port 7 that can charge the power supply 3 and a control button 8 that can control the start and stop of the drive motor 2. The charging port 7 and the control button 8 are also electrically connected to the circuit board 6.

[0070] In this embodiment of the throwing simulation charger, in addition to charging the power supply 3 through the charging port 7, the power supply 3 can also output electrical energy from the power supply 3 through the charging port 7 when power is needed, so that this throwing simulation charger has the function of a charging pack.

[0071] In this embodiment, a mounting slot 1.4 is provided on one side of the box body 1, and a display screen 9 is embedded in the mounting slot 1.4. The display screen 9 is electrically connected to the circuit board 6.

[0072] During the use of the simulated charger in this embodiment, the display screen 9 can display the power level of the power supply 3 and the start / stop status of the drive motor 2.

[0073] In this embodiment, a lighting lamp 10 and a lighting button 11 for controlling the lighting lamp 10 are also provided on the surface of the box body 1. The lighting lamp 10 and the lighting button 11 are both electrically connected to the circuit board 6.

[0074] In the use of the throwing simulation charger in this embodiment, when used at night, the lighting lamp 10 can be turned on by the lighting button 11 to provide illumination.

[0075] In this embodiment, a storage cover 12 is also included that is detachably connected to the box body 1. When the storage cover 12 is connected to the box body 1, the storage cover 12 blocks the mounting port 1.1.1, thereby isolating the accommodating cavity 1.1 from the outside.

[0076] In the casting simulation charging process of this embodiment, when the casting simulation charger is not used for charging, the fishing reel spool 110 can be stored in the accommodating cavity 1.1, and after the storage cover 12 is connected to the box body 1, the casting simulation charger becomes a spool 110 storage box.

[0077] Reference Figures 4 to 6The embodiment shown also includes a CNC fishing reel, which includes a fishing reel body 101 and an electric brake device 102 connected to the fishing reel body 101. The electric brake device 102 further includes an electric module 102.1 and a magnetic module 102.2. The magnetic module 102.2 includes a rotor magnet 107 and a rotating shaft 108 rotatably connected to the electric module 102.1. The rotor magnet 107 is connected to the rotating shaft 108 and can be driven by the rotating shaft 108. The lower part rotates relative to the electric module 102.1. One end of the rotating shaft 108 is connected to the electric module 102.1, and the other end is connected to the fishing reel body 101. The electric module 102.1 is provided with an electric control board 103, a battery 104 that supplies power to the electric control board 103, and a stator coil 105. The stator coil 105 surrounds the rotor magnet 107 and is electrically connected to the battery 104.

[0078] In this embodiment, the electronic control board 103 includes a Bluetooth module 103.1.

[0079] In this embodiment, a pin 109 is threaded through one end of the rotating shaft 108 that is used to connect with the fishing reel body 101.

[0080] In this embodiment, the magnetic module 102.2 further includes a spool 110, on which the rotating shaft 108 is threaded. Both ends of the rotating shaft 108 extend from both sides of the spool 110, and the spool 110 can rotate with the rotating shaft 108.

[0081] In this embodiment, the electrical module 102.1 further includes a side shell 106. The electronic control board 103 and the battery 104 are both installed inside the side shell 106. A sleeve shaft 106.1 is also protruding from one end of the side shell 106 near the magnetic module 102.2. The stator coil 105 is embedded in the sleeve shaft 106.1, and one end of the rotating shaft 108 on which the rotor magnet 107 is sleeved is inserted into the sleeve shaft 106.1.

[0082] Reference Figures 7 to 9 The embodiment shown also includes a charging method, comprising the following steps:

[0083] Step a: Disconnect the connection between the shaft 108 and the fishing reel body 101, thereby separating the electric brake device 102 from the fishing reel body 101;

[0084] Step b: Determine whether the simulation shaft 4 of the throwing simulation charger has a connection hole 4.1.1 or a charging magnet 13 is fitted on it;

[0085] Step c1: If the simulation shaft 4 of the throwing simulation charger is provided with a connection hole 4.1.1, then the entire electric brake device 102 is installed into the receiving cavity 1.1 through the mounting port 1.1.1 on the throwing simulation charger box 1;

[0086] Step d1: Insert one end of the rotating shaft 108 into the connecting hole 4.1.1 to form a transmission connection between the rotating shaft 108 and the simulated shaft 4;

[0087] Step e1: Start the drive motor 2 of the throwing simulation charger, which drives the rotating shaft 108 to rotate through the simulation shaft 4. The rotor magnet 107 on the rotating shaft 108 rotates accordingly and generates magnetic induction between it and the stator coil 105, thereby generating an induced current in the stator coil 105 and charging the battery 104.

[0088] The advantages of this embodiment are: the casting simulation charger can drive the electric brake device of the CNC fishing reel to perform a simulated casting action, so that it can charge the battery by relying on the induced current generated by itself. Therefore, there is no need to open a charging port on the surface of the CNC fishing reel; and when installing the electric brake device onto the casting simulation charger, it is only necessary to align the shaft with the connection hole and plug it in, which is very convenient and quick.

[0089] Example 2

[0090] Reference Figures 10 to 12 As shown, the difference between this embodiment and the first embodiment described above is that a charging magnet 13 is sleeved on the connecting end 4.1, so that when the electric brake device 102 removes the magnetic module 102.2 and only the electric module 102.1 is installed in the accommodating cavity 1.1, the connecting end 4.1 of the analog shaft 4 can be inserted into the electric module 102.1, and the charging magnet 13 is located at the center of the stator coil 105. When the analog shaft 4 rotates and drives the charging magnet 13 to rotate, the charging magnet 13 can replace the rotor magnet 107 to form an electromagnetic induction with the stator coil 105, thereby charging the battery 104 of the electric brake device 102.

[0091] In this embodiment, the remaining structures of the casting simulation charger and the CNC fishing reel are consistent with those in Embodiment 1 above, and will not be described again here.

[0092] Reference Figures 13 to 15 The embodiment also includes a charging method, comprising the following steps:

[0093] Step a: Disconnect the connection between the shaft 108 and the fishing reel body 101, thereby separating the electric brake device 102 from the fishing reel body 101;

[0094] Step b: Determine whether the simulation shaft 4 of the throwing simulation charger has a connection hole 4.1.1 or a charging magnet 13 is fitted on it;

[0095] Step c2: If a charging magnet 13 is fitted on the simulation shaft 4 of the throwing simulation charger, then disconnect the connection between the rotating shaft 108 and the electric module 102.1, thereby separating the electric module 102.1 and the magnetic module 102.2 from each other;

[0096] Step d2: Install the electrical module 102.1 separately into the receiving cavity 1.1 through the mounting port 1.1.1 on the simulated charger box 1. During the installation process, align the stator coil 105 on the electrical module 102.1 with the charging magnet 13 on the simulated shaft 4 so that the stator coil 105 can surround the charging magnetic ring after the electrical module 102.1 is installed into the receiving cavity 1.1.

[0097] Step e2: Start the drive motor 2 of the throwing simulation charger, which drives the rotating shaft 108 to rotate through the simulation shaft 4. The charging magnet 13 on the simulation shaft 4 rotates accordingly and generates a magnetic induction phenomenon between it and the stator coil 105, thereby generating an induced current in the stator coil 105 and charging the battery 104.

[0098] The advantages of this embodiment are as follows: Compared with the first embodiment above, this embodiment can charge the electric brake device of the CNC fishing reel while the charger is smaller in size. Furthermore, by saving a transmission step, the energy loss during the energy transfer process is reduced, thus improving the charging efficiency.

[0099] This specific embodiment is merely an explanation of the present invention and is not intended to limit the invention. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but such modifications are protected by patent law as long as they are within the scope of the claims of the present invention.

Claims

1. A throwing simulation charger, characterized in that, include: The box body (1) has an internal cavity (1.1) and the cavity (1.1) also includes an installation port (1.1.1) located on the surface of the box body (1); A drive motor (2) is connected to the housing (1), and a simulated shaft (4) is connected to the output shaft of the drive motor (2). The simulated shaft (4) includes a connecting end (4.1), which extends into and is located in the accommodating cavity (1.1). A power supply (3) is connected to the housing (1), and the power supply (3) is electrically connected to the drive motor (2).

2. The throwing simulation charger according to claim 1, characterized in that: The connecting end (4.1) is provided with a connecting hole (4.1.1).

3. The throwing simulation charger according to claim 1, characterized in that: A charging magnet (13) is fitted onto the connecting end (4.1).

4. A throwing simulation charger according to claim 1, characterized in that: An electrical cavity (1.2) is also provided inside the housing (1). The drive motor (2) and the power supply (3) are both located inside the electrical cavity (1.2). A connecting channel (1.3) connecting the accommodating cavity (1.1) and the electrical cavity (1.2) is also provided inside the housing (1). The connecting end (4.1) of the analog shaft (4) extends into the electrical cavity (1.2) through the connecting channel (1.3).

5. A throwing simulation charger according to claim 4, characterized in that: The electrical cavity (1.2) is also equipped with a circuit board (6). The drive motor (2) and the power supply (3) are electrically connected to the circuit board (6) to achieve electrical connection. The surface of the box (1) is also equipped with a charging port (7) that can charge the power supply (3) and a control button (8) that can control the start and stop of the drive motor (2). The charging port (7) and the control button (8) are also electrically connected to the circuit board (6).

6. A throwing simulation charger according to claim 5, characterized in that: The box (1) is provided with an installation slot (1.4) on one side, and a display screen (9) is embedded in the installation slot (1.4). The display screen (9) is electrically connected to the circuit board (6).

7. A throwing simulation charger according to claim 5, characterized in that: The surface of the box (1) is also provided with a lighting lamp (10) and a lighting button (11) for controlling the lighting lamp (10), and the lighting lamp (10) and the lighting button (11) are electrically connected to the circuit board (6).

8. A throwing simulation charger according to claim 1, characterized in that: It also includes a storage cover (12) that is detachably connected to the box body (1). When the storage cover (12) is connected to the box body (1), the storage cover (12) blocks the mounting port (1.1.1), thereby isolating the accommodating cavity (1.1) from the outside.

9. A CNC fishing reel, characterized in that: It is capable of using any one of the above claims 1-8 casting simulation charger, and it includes a fishing reel body (101) and an electric brake device (102) connected to the fishing reel body (101), the electric brake device (102) further including an electric module (102.1) and a magnetic module (102.2); The magnetic module (102.2) includes a rotor magnet (107) and a rotating shaft (108) rotatably connected to the electric module (102.1). The rotor magnet (107) is connected to the rotating shaft (108) and can rotate relative to the electric module (102.1) under the drive of the rotating shaft (108). One end of the rotating shaft (108) is connected to the electric module (102.1), and the other end is connected to the fishing reel body (101). An electrical module (102.1) is provided therein, including an electrical control board (103) and a battery (104) for powering the electrical control board (103), as well as a stator coil (105), which surrounds the rotor magnet (107) and is electrically connected to the battery (104).

10. A charging method, characterized in that, Includes the following steps: Step a: Disconnect the connection between the shaft (108) and the fishing reel body (101) to separate the electric brake device (102) from the fishing reel body (101); Step b: Determine whether the simulation shaft (4) of the throwing simulation charger has a connection hole (4.1.1) or a charging magnet (13) is fitted on it; Step c1: If a connection hole (4.1.1) is provided on the simulation shaft (4) of the throwing simulation charger, then the entire electric brake device (102) is installed into the receiving cavity (1.1) through the mounting port (1.1.1) on the throwing simulation charger box (1); Step d1: Insert one end of the rotating shaft (108) into the connecting hole (4.1.1) to form a transmission connection between the rotating shaft (108) and the simulated shaft (4); Step e1: Start the drive motor (2) of the throwing simulation charger, thereby driving the rotating shaft (108) to rotate through the simulation shaft (4). The rotor magnet (107) on the rotating shaft (108) rotates accordingly and magnetic induction occurs between it and the stator coil (105), thereby generating an induced current in the stator coil (105) and charging the battery (104). Step c2: If a charging magnet (13) is fitted on the analog shaft (4) of the throwing analog charger, then disconnect the connection between the rotating shaft (108) and the electric module (102.1), thereby separating the electric module (102.1) and the magnetic module (102.2) from each other; Step d2: Install the electrical module (102.1) separately into the receiving cavity (1.1) through the mounting port (1.1.1) on the throwing simulation charger box (1). During the installation process, align the stator coil (105) on the electrical module (102.1) with the charging magnet (13) on the simulation shaft (4) so ​​that the stator coil (105) can surround the charging magnetic ring after the electrical module (102.1) is installed into the receiving cavity (1.1). Step e2: Start the drive motor (2) of the throwing simulation charger, thereby driving the rotating shaft (108) to rotate through the simulation shaft (4). The charging magnet (13) on the simulation shaft (4) rotates accordingly and generates magnetic induction between it and the stator coil (105), thereby generating an induced current in the stator coil (105) and charging the battery (104).

Citation Information

Patent Citations

  • Electronic circuit device of fishing articles

    CN100539834C

  • Braking device for dual-bearing fishing reel

    CN110432236A