Buoy and fishing device
By introducing a control unit and a wireless communication module into the float, the problem that it is difficult for the float to judge whether a fish has bitten the hook in special environments is solved, and accurate fish bite judgment and timely reminders are achieved in complex environments.
Patent Information
- Application Number
- CN202422650806.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2024-09-14
- Filing Date
- 2024-10-30
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2034-10-30
AI Technical Summary
Existing floats are difficult to accurately judge whether a fish has taken a bite under special circumstances, which may cause users to miss the fish bite information.
A float with a control unit is designed, which includes a first main control module, a first wireless communication module, a signal transceiver module and a power supply module. The float can judge whether a fish has taken the hook by changing the frequency of the wireless signal and send an alarm through a remote control.
Even at night or in noisy environments, it can accurately determine whether a fish has taken the hook, thus avoiding missing any information and providing timely reminders.
Smart Images

Figure CN223391848U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of fishing devices, and in particular to a float and a fishing device. Background Art
[0002] A float, also known as a bobber or fish float, is a widely used fishing tackle accessory. It's typically made of lightweight material and able to float on the water. Its primary function is to communicate underwater information, such as fish bites, to the angler through its changing position above the water. When a fish bites, it exerts tension on the fishing line, causing the float to exhibit various movements, such as sinking and swaying. These movements allow the angler to determine whether to reel in the line.
[0003] Currently, there are floats that can be observed by the user to determine whether a fish has taken the hook. However, if the user is fishing in a special environment such as one person operating multiple rods, at night, or in noisy conditions, they may not be able to focus on the float on the water surface and may miss the fish bite. Utility Model Content
[0004] The technical problem to be solved by the present application is to provide a float and a fishing device.
[0005] The technical solution adopted by this application to solve its technical problems is:
[0006] Construct a float, comprising:
[0007] shell;
[0008] A floating foot assembly for stabilizing the center of gravity, disposed on the housing; and
[0009] A control unit is arranged in the shell and includes a first main control module, a first wireless communication module that outputs wireless signals at a fixed frequency when on the water surface, a signal transceiver module and a power module; the first wireless communication module, the signal transceiver module and the power module are respectively electrically connected to the first main control module.
[0010] In some embodiments, the shell includes a first shell, a second shell and a mounting assembly, the first shell and the second shell are detachably connected, and the mounting assembly is detachably arranged on the first shell and / or the second shell; the floating foot assembly is arranged on the second shell, and the control unit is arranged on the shell through the mounting assembly.
[0011] In some embodiments, the first shell includes a first main body and a longitudinal drift tail portion that penetrate each other; the first main body and the drift tail portion are hollow; and the first main body is axially arranged between the drift tail portion and the second shell.
[0012] In some embodiments, the first shell and the second shell are coaxially arranged; along the extension direction of the axis, the circumferential dimensions of the first shell and the second shell gradually decrease from the ends connected to each other to the ends facing away from each other.
[0013] In some embodiments, the mounting assembly includes a mounting seat and a bracket, and the mounting seat and the bracket are axially arranged on the first shell. The control unit also includes a main control board, and the first main control module and the first wireless communication module are respectively arranged on the main control board; the main control board is axially clamped between the mounting seat and the bracket.
[0014] In some embodiments, the first shell includes a first main body and a longitudinal drift tail portion that are interconnected; the first main body and the drift tail portion are hollow; the first main body is axially arranged between the drift tail portion and the second shell;
[0015] The mounting seat and the bracket are arranged on the first body, and a portion of the bracket extends to the drift tail;
[0016] The signal transceiver module is arranged on the bracket and located at the tail of the float; the power supply module is axially arranged between the main control board and the mounting seat.
[0017] In some embodiments, the bracket is in the shape of a trumpet that penetrates along the axial direction, and includes an annular first limiting portion and a tubular first supporting portion. The first limiting portion is arranged in the first main body, one end of the first supporting portion is connected to the inner periphery of the first limiting portion, and the other end extends into the drift tail portion; the main control board is clamped axially between the first limiting portion and the mounting seat, and the signal transceiver module is installed at the end of the first supporting portion away from the first limiting portion.
[0018] In some embodiments, the floating foot assembly is axially detachably arranged at the end of the second shell away from the first shell, and includes a counterweight body, a connecting member and a rotating member; the counterweight body is detachably connected to the second shell, the connecting member is rotatably arranged on the counterweight body along the first direction, and the rotating member is rotatably arranged on the connecting member along the second direction.
[0019] In some embodiments, the control unit further includes a light warning module that outputs light information, and the light warning module is electrically connected to the first main control module;
[0020] And / or, the control unit further includes a sensing module for determining whether the float is located in water, and the sensing module is electrically connected to the first main control module.
[0021] A fishing device is constructed, comprising a remote controller and a float as described in any of the aforementioned embodiments; the float is wirelessly connected to the remote controller to receive a signal output by the first wireless communication module and to issue an alarm when the frequency of the signal output by the first wireless communication module changes.
[0022] The implementation of this application will have at least the following beneficial effects:
[0023] By setting up a control unit, the present application can sensitively judge whether a fish has taken the bait through the signal frequency output by the first wireless communication module in cooperation with the signal transceiver module. Even in environments such as at night or in noisy conditions where it is difficult to judge the water surface conditions, accurate judgment can be achieved to avoid missing the information of fish taking the bait. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The present application will be further described below with reference to the accompanying drawings and embodiments, in which:
[0025] Figure 1 This is a schematic structural diagram of a float according to an embodiment of the present application;
[0026] Figure 2 yes Figure 1 The cross-sectional structure diagram of the float shown;
[0027] Figure 3 yes Figure 1 The circuit connection diagram of the control unit in the float shown;
[0028] Figure 4 Schematic diagram of the circuit connection of a fishing device in one embodiment of the present application. DETAILED DESCRIPTION
[0029] In order to provide a clearer understanding of the technical features, objectives, and effects of the present application, specific embodiments of the present application are now described in detail with reference to the accompanying drawings. In the following description, it should be understood that the directions or positional relationships indicated by "front," "back," "up," "down," "left," "right," "vertical," "horizontal," "bottom," "inside," "inside," and "outside" are based on the directions or positional relationships shown in some of the accompanying drawings and are constructed and operated in specific directions. They are merely for the convenience of describing the present technical solution and do not indicate that the devices or components referred to must have specific directions. Therefore, they should not be understood as limitations on the present application.
[0030] It should also be noted that, unless otherwise clearly specified and limited, terms such as "installed", "connected", "connected", "fixed", and "set" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integrated connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the internal connection of two elements or the interaction relationship between two elements. When an element is referred to as being "on" or "under" another element, the element can be "directly" or "indirectly" located on the other element, or there may be one or more intervening elements. The terms "first", "second", etc. are only for the convenience of describing the present technical solution, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first", "second", etc. may explicitly or implicitly include one or more of such features. For those of ordinary skill in the art, the specific meanings of the above terms in this application can be understood according to the specific circumstances.
[0031] In the following description, specific details such as specific system structures and techniques are provided for purposes of illustration rather than limitation to facilitate a thorough understanding of the embodiments of the present application. However, it will be apparent to those skilled in the art that the present application may be implemented in other embodiments without these specific details. In other cases, detailed descriptions of well-known systems, devices, circuits, and methods are omitted to avoid obscuring the description of the present application with unnecessary detail.
[0032] like Figures 1 to 3 As shown, the present application constructs a float 1, comprising a housing 10, a control unit 20, and a float foot assembly 30. The float foot assembly 30 is disposed on the housing 10 to provide a certain counterweight, stabilize the center of gravity of the float 1 on the water surface, and can also be connected to the fishing line. The control unit 20 is disposed within the housing 10 and is used to promptly provide the user with information about fish bites by transmitting and receiving wireless signals, preventing the user from missing information.
[0033] The control unit 20 may include a first main control module 21, a first wireless communication module 22, a signal transceiver module 23, and a power supply module 26. The first main control module 21 is used to control the normal operation of the entire control unit 20. The first wireless communication module 22 is used to output signals when above the water surface. The signal transceiver module 23 is used to convert the electrical signals generated by the first wireless communication module 22 into radio waves to facilitate signal transmission and reception. The power supply module 26 is used to provide power to the operation of the control unit 20.
[0034] The first main control module 21 is electrically connected to the first wireless communication module 22, the signal transceiver module 23, and the power module 26 respectively, and can control the first wireless communication module 22 to output a signal at a fixed frequency, and control the signal transceiver module 23 to convert the signal into a radio wave output.
[0035] It should be understood that when a fish bites the hook, its pulling force pulls the float 1 underwater. Due to the absorption and attenuation of electromagnetic waves by water, when the float 1 is pulled into the water, it can affect the electromagnetic waves output by the signal transceiver module 23. As a result, for the signal receiving end, the frequency of the signal output by it changes.
[0036] By providing a control unit 20, the present application can sensitively determine whether a fish has taken the hook based on the signal frequency output by the first wireless communication module 22. Even in environments such as nighttime or noisy conditions where it is difficult to judge the surface of the water, accurate judgment can be achieved to avoid missing information about a fish taking the hook.
[0037] It should be understood that the float 1 can receive the radio waves output by the signal transceiver module 23 through a corresponding signal receiving device (such as a remote control 2, etc.). During use, the float 1 is set on the water surface, and the user receives the wireless signal output by the float 1 in the water through the signal receiving device outside the water. When the frequency output by the first wireless communication module 22 changes, an alarm is issued to provide timely reminders to the user.
[0038] like Figure 1 and Figure 2 As shown, in some embodiments, the housing 10 may include a first housing 11, a second housing 12, and a mounting assembly 13. The first housing 11 and the second housing 12 are detachably connected, and the mounting assembly 13 is detachably mounted on the first housing 11 and / or the second housing 12. The floating foot assembly 30 is mounted on the second housing 12. The control unit 20 is mounted on the housing 10 via the mounting assembly 13.
[0039] By arranging the first shell 11 and the second shell 12 to be detachably connected, the assembly operation of the float 1 can be facilitated.
[0040] The first housing 11 and the second housing 12 can be coaxially arranged to ensure the stability of the center of gravity. Both can be hollow and, after being assembled together, define a hollow cavity. The mounting assembly 13 is disposed in the cavity.
[0041] The common axis of the first shell 11 and the second shell 12 is now defined as an axis M.
[0042] exist Figure 1 and 2In the illustrated embodiment, the cross-sectional profiles of the first shell 11 and the second shell 12 at various positions along the axis M, which are perpendicular to the axis M, are circular.
[0043] It should be understood that the cross-sectional profiles (circumferential dimensions) of the first and second shells 11, 12 along the axis M can vary in size and gradually change. For example, the circumferential dimensions of the first and second shells 11, 12 can gradually decrease from their connected ends to their diverging ends. The magnitude of the circumferential dimension changes of the first and second shells 11, 12 along the axis M can vary, and are not specifically limited herein.
[0044] exist Figure 1 and 2 In the illustrated embodiment, the first housing 11 includes a first main body 111 and a tail portion 112. The first main body 111 and tail portion 112 are coaxially disposed. The first main body 111 is axially located between the tail portion 112 and the second housing 12 and is shaped like a hollow cylinder with two through ends. It can be roughly hemispherical or conical.
[0045] The tail portion 112 is hollow, with one end extending through and connected to the first body 111 and the other end being closed, thereby forming a relatively closed internal chamber with the first body 111 and the second shell 12. The diameter of the tail portion 112 is much smaller than that of the first body 111, and its diameter gradually decreases from the end closest to the first body 111 to the end farther away from the first body 111 along the axis M. The tail portion 112 can be longitudinally arranged, with its length along the axis M being greater than the length of the first body 111 along the axis M. When the float 1 is placed in water, the tail portion 112 can be exposed above the water surface.
[0046] The second housing 12 is generally truncated cone-shaped or conical, with a through-hole at its large-diameter end for contact with the large-diameter end of the first body 111. The small-diameter end is closed, forming a relatively enclosed interior chamber with the first housing 11, defining a buoyancy chamber 14 for generating buoyancy. The float foot assembly 30 can be disposed at the small-diameter end of the second housing 12 and coaxially connected to its outer end to enhance the stability of the float 1 and lower its center of gravity.
[0047] In other optional embodiments, the first shell 11 and / or the second shell 12 may also have at least a partial axial section along the extension direction of the axis M, and the cross-sectional profile at each position along the axial section is the same. For example, the tail portion 112 may also be configured as a longitudinally elongated hollow structure with a constant diameter.
[0048] In some other optional embodiments, the floating foot assembly 30 may also be at least partially disposed in the second shell 12. For example, a counterweight structure for stabilizing the center of gravity may be disposed at the bottom end of the second shell 12 (away from the end of the first shell 11).
[0049] In some other optional embodiments, the cross-sectional profile of the first shell 11 and / or the second shell 12 may also be a rectangular, elliptical, polygonal or other centrally symmetrical structure.
[0050] In some other optional embodiments, the first shell 11 and / or the second shell 12 may also be configured as a non-hollow solid structure, made of low-density material to generate buoyancy.
[0051] In some embodiments, the first shell 11 and the second shell 12 are detachably connected to improve assembly convenience.
[0052] exist Figure 2 In the embodiment shown, a threaded structure is provided between the first housing 11 and the second housing 12 to achieve a detachable connection between the two. The threaded connection method can also facilitate the sealing of the two after the connection.
[0053] In some other optional embodiments, the first shell 11 and the second shell 12 can be detachably connected by providing a snap-fit structure, bolts or other connecting parts.
[0054] In some embodiments, a sealing member such as a sealing ring may be provided between the first shell 11 and the second shell 12 to improve the sealing performance after connection and prevent water from entering.
[0055] In some embodiments, the control unit 20 may further include a main control board 200. The first main control module 21 and the first wireless communication module 22 are respectively disposed on the main control board 200. The main control board 200 is disposed in the housing 10 through the mounting assembly 13.
[0056] like Figure 2 As shown, in some embodiments, the mounting assembly 13 includes a mounting base 131 and a bracket 132. The mounting base 131 and the bracket 132 are disposed on the first housing 11 along the extension direction of the axis M. The main control board 200 can be sandwiched between the mounting base 131 and the bracket 132 along the extension direction of the axis M to achieve positioning of the control unit 20 within the housing 10.
[0057] The mounting base 131 and the bracket 132 can both be mounted on the first body 111. The bracket 132 can be longitudinally arranged, with one end engaging the mounting base 131 to clamp and position the main control board 200. The other end extends from the first body 111 along the axis M to the tail portion 112 for mounting the signal transceiver module 23.
[0058] Since the tail portion 112 of the float is above the water surface when the float 1 is placed in the water, the signal transceiver module 23 is installed at the tail portion 112 using the bracket 132, thereby avoiding the problem of signal transmission and reception being interrupted due to the floating of the float 1 in the water, thereby ensuring the smoothness of signal transmission and reception.
[0059] Specifically, in Figure 2 In the illustrated embodiment, the bracket 132 is generally trumpet-shaped and includes a first stopper 1322 and a first support 1321. The trumpet-shaped bracket 132 is connected at both ends, allowing the signal transceiver module 23 to be electrically connected to the first main control module 21 via a cable through a channel extending through the center of the bracket 132. The inner diameter of the channel also facilitates mounting the signal transceiver module 23, securing it to the bracket 132 at the tail portion 112.
[0060] In some embodiments, the first stopper 1322 is disposed between the first support portion 1321 and the mounting base 131 along the axis M, and is configured to cooperate with the mounting base 131 to clamp the main control board 200. The first stopper 1322 is generally disc-shaped and annular, with the inner circumference of the annular ring connecting to the end of the first support portion 1321, forming a trumpet-shaped structure with two through-holes. The outer diameter of the first stopper 1322 can be slightly smaller than the inner diameter of the first housing 11 at the same axial position.
[0061] At least one positioning groove 1320 may be provided on the circumference of the first limiting portion 1322. At least one positioning portion 113 may be provided on the inner wall of the first housing 11. The positioning portion 113 is locked in the positioning groove 1320, and the two are interference-fitted to realize the assembly of the bracket 132 in the first housing 11.
[0062] In some embodiments, the first support portion 1321 is in the shape of a longitudinal tube, with both ends connected and a longitudinal channel formed in the middle, which can be used to install the signal transceiver module 23 and provide a routing channel for the electrically connected cables. The first support portion 1321 is coaxial with the first limit portion 1322 and the first housing 11 (axis M) to prevent the center of gravity of the float 1 from shifting.
[0063] The radial dimension of the first support portion 1321 may gradually change in the extending direction of the axis M. For example, the end connected to the first limiting portion 1322 has the largest diameter, and the end located at the tail portion 112 has the smallest diameter.
[0064] In some other optional embodiments, the radial dimensions of the first support portion 1321 at different positions along the axis M may also maintain a constant diameter, or one section may gradually change, while the other section may be set to a constant diameter.
[0065] In some embodiments, the signal transceiver module 23 is longitudinally arranged and coaxially disposed within the tail portion 112, at the end of the tail portion 112 away from the first body 111. The end of the first support portion 1321 facing away from the first limiting portion 1322 is further provided with a mounting step 1323, which is disposed on the inner wall of the tubular first support portion 1321 and is used to limit the position of the signal transceiver module 23. The signal transceiver module 23 can be inserted into the end of the first support portion 1321 and be limited in position by the mounting step 1323.
[0066] In other optional embodiments, the first support portion 1321 may also be in the shape of a longitudinally elongated rod, column, plate, or other shapes. When the first support portion 1321 is configured as a tube, it may also be configured as a polygonal tube, an irregular tube, or other shapes. The first support portion 1321 may also be configured as a non-longitudinal structure. For example, the first support portion 1321 may be configured as a plurality of stoppers protruding from the tail portion 112 to limit the position of the signal transceiver module 23.
[0067] In some other optional embodiments, the bracket 132 may be partially located in the second housing 12 and partially located in the first housing 11. For example, the first limiting portion 1322 is fixed in the second housing 12, and the longitudinal first supporting portion 1321 extends from the second housing 12 to the tail portion 112 of the first housing 11.
[0068] In other optional embodiments, the first limiting portion 1322 can be assembled with the first housing 11 by providing a connecting structure such as bolts, or by an integral molding process. The positioning groove 1320 can also be provided on the first housing 11, and the positioning portion 113 can be correspondingly provided on the first limiting portion 1322. The number of positioning portions 113 and positioning grooves 1320 can also be three, four, or more, and can be spaced apart around the circumference of the first housing 11 and the first support portion 1321.
[0069] In some other optional embodiments, the bracket 132 may be assembled in the first housing 11 by connecting the first limiting portion 1322 to the first housing 11. For example, the first limiting portion 1322 may be connected to the inner periphery of the drift tail 112.
[0070] In some other optional embodiments, the shape of the first limiting portion 1322 may also be polygonal, irregular, etc. The size of the first limiting portion 1322 may also be adapted to the inner circumference size of the first housing 11 at the corresponding position.
[0071] In some embodiments, the mounting base 131 may include a second support portion 1311 and a second stop portion 1312. The second support portion 1311 is disc-shaped and fixed to the end of the first body 111 away from the tail portion 112. Its outer diameter matches the inner circumference of the end of the first body 111. There are two second stop portions 1312, spaced apart and projecting from the end surface of the second support portion 1311 facing the bracket 132. These stop portions 1312 cooperate with the first stop portion 1322 of the bracket 132 to limit the position of the main control board 200.
[0072] Among them, the second support part 1311 and the first main body 111 can be assembled with each other through interference fit, or by setting a connecting structure such as bolts, or by one-piece molding and other processes, which are not specifically limited here.
[0073] The power module 26 can be placed on the second support portion 1311 and located between the main control board 200 and the second support portion 1311 in the extending direction of the axis M.
[0074] In some other optional embodiments, the power module 26 may also be placed directly on the main control board 200 and located between the main control board 200 and the bracket 132 in the extension direction of the axis M.
[0075] In other optional embodiments, the second support portion 1311 may also be in a rectangular, polygonal, elliptical, multi-faceted, mesh-like, or other shapes that can provide support. Alternatively, the second support portion 1311 may be configured as a plurality of support lugs disposed around the first body 111 to provide support at multiple points for the power module 26.
[0076] In some other optional embodiments, the position of the second support portion 1311 on the first body 111 can be flexibly adjusted by the size of the bracket 132 and the components of the control unit 20. The second support portion 1311 can also be provided on the second body 121.
[0077] In some other optional embodiments, the second supporting portion 1311 and the second limiting portion 1312 may also be configured as two structures spaced apart from each other and respectively fixed on the first body 111 .
[0078] In some embodiments, the second housing 12 may include a second main body 121 and an assembly portion 122. The second main body 121 is cylindrical with both ends extending therethrough, and one end is detachably connected to the first housing 11. The assembly portion 122 is disposed at the end of the second main body 121 facing away from the first housing 11, and seals the end of the second main body 121, thereby forming a closed chamber within the first housing 11 and the second housing 12 to generate buoyancy.
[0079] exist Figure 2 In the embodiment shown, the mounting base 131 and the second shell 12 define the buoyancy chamber 14. The space defined by the mounting base 131 and the first shell 11 can be mainly used to install the control unit 20.
[0080] By using the mounting base 131 to separate the space defined by the first and second housings 11 and 12, the control unit 20 can be effectively positioned near the top of the float 1, facilitating signal transmission and reception. The buoyancy chamber 14 is positioned between the control unit 20 and the float foot assembly 30 along the axis M, thereby generating buoyancy while also preventing the float 1 from becoming unstable due to the buoyancy chamber 14 being too low, given the stable center of gravity of the float foot assembly 30.
[0081] In some embodiments, the floating foot assembly 30 is detachably mounted on the assembly portion 122 and includes a counterweight 31, a connector 32, and a rotating member 33. The counterweight 31 is detachably connected to the assembly portion 122, the connector 32 is rotatably mounted on the counterweight 31 along a first direction, and the rotating member 33 is rotatably mounted on the connector 32 along a second direction.
[0082] By providing the counterweight 31, the center of gravity of the float 1 can be lowered, achieving the effect of a tumbler in water.
[0083] In some embodiments, the counterweight 31 cooperates with the structure of the housing 10 to ensure that the tail portion 112 of the float 1 swings less than or equal to 30 degrees during use, thereby preventing the float from swinging below the water surface. This configuration can prevent the frequency of the wireless signal from changing when a fish has not yet taken the bait.
[0084] By detachably connecting the float foot assembly 30 to the assembly portion 122, the float foot assembly 30 can be flexibly replaced according to specific usage conditions to correspond to the use of counterweights 31 of different weights. By providing different counterweights 31 and using buoyancy chambers 14 of different sizes, different buoyancy can be achieved to correspond to the hooking of different types of bait.
[0085] By arranging the connecting member 32 and the rotating member 33 to be rotatably connected at different angles, the rotating member 33 can be rotated at all angles relative to the counterweight 31. During use, the rotating member 33 is connected to the fishing line to ensure flexible rotation in the water to adapt to different water flow conditions, allowing the fishing line to more naturally adjust its direction in the water with the movement of the water and prevent the fishing line from tangling.
[0086] exist Figure 2 In the illustrated embodiment, the assembly portion 122 is concave and, when connected to the second body 121, forms an assembly groove that is recessed into the buoyancy chamber 14. The counterweight 31 is assembled into the assembly groove formed in the concave portion 122, and the two are detachably connected by bolts.
[0087] The connecting member 32 is rotatably connected to the counterweight 31 via a rotating shaft 34. The axial direction of the rotating shaft 34 is perpendicular to the axis M. The rotating member 33 is cylindrical and inserted into the rotating shaft hole of the connecting member 32 as a rotating shaft, rotating along its own axis. The rotating member 33 is arranged on the connecting member 32 so that its axis coincides with the axis M. Therefore, the first direction is perpendicular to the second direction.
[0088] In some other optional embodiments, the connecting member 32 can also be configured as a rotating shaft, rotated along its own axis, and inserted into the counterweight body 31. The rotating member 33 can also be rotatably connected to the connecting member 32 by configuring a rotating shaft.
[0089] In some other optional embodiments, the assembly portion 122 may also be provided in an outwardly convex shape, and the counterweight body 31 may be protruded on the outer wall of the assembly portion 122 .
[0090] In some other optional embodiments, threads may be provided on the surface of the concave assembly portion 122, and corresponding threads may be provided on the counterweight body 31. Through the threaded connection between the two, a detachable connection between the two is achieved.
[0091] In some other optional embodiments, the first direction and the second direction may not be perpendicular to each other. The first direction and the second direction may not be perpendicular or parallel to the extension direction of the axis M.
[0092] It should be understood that the first main body 111 and the floating tail portion 112 of the first shell 11, and / or the second main body 121 and the assembly portion 122 of the second shell 12, and / or the first supporting portion 1321 and the first limiting portion 1322 of the bracket 132 and other partial structures can be fixed to each other through one-piece molding, welding and other processes, and no specific limitations are made here.
[0093] In some embodiments, the first wireless communication module 22 may be an existing wireless communication module such as Bluetooth, WiFi, etc. The operating frequency band of the first wireless communication module 22 may be selected as 2.4 GHz, etc.
[0094] In some embodiments, the signal transceiver module 23 can be implemented using existing signal transceiver products such as antennas.
[0095] exist Figure 3 In the illustrated embodiment, the first main control module 21 can control the first wireless communication module 22 to output a wireless signal via the signal transceiver module 23 at a frequency of five times per second, indicating that the float 1 is normally floating on the water surface. If the float 1 is dragged into the water by a fish, the wireless signal output by the signal transceiver module 23 will be attenuated by the water, affecting the signal reception by the signal receiving device. For example, if the user does not receive the relevant wireless signal through the signal receiving device within two seconds, the frequency change of the signal output can be used to determine that the float 1 has been dragged into the water.
[0096] In some embodiments, the control unit 20 may further include a sensing module 24 , which is electrically connected to the first main control module 21 and is used to determine whether the float 1 is located in the water.
[0097] It should be understood that during the use of the float 1, a power on / off function can be set. When it is in the power-on state, the first main control module 21 controls the other modules. If the float 1 is in the power-on state but not placed in the water, and there are various situations such as the signal receiving device being disconnected due to the distance between the float 1 and the output wireless signal being affected by other environmental factors, resulting in the signal receiving device receiving frequency being unstable, the signal receiving device may also misjudge the frequency change of the signal output and output an alarm signal to the user.
[0098] The present application is provided with a sensing module 24, which can sense whether the float 1 is in water and output a sensing signal to the first main control module 21. The first main control module 21 can be connected to the signal receiving device through the first wireless communication module 22 for wireless communication only when the float 1 is in water, so that the signal receiving device sends an alarm signal when the output frequency of the first wireless communication module 22 changes.
[0099] When the float 1 is not in water, even if the float 1 is in the turned-on state, even if the first wireless communication module 22 has achieved wireless communication connection with the signal receiving device, even if the signal frequency output by the first wireless communication module 22 has changed, the signal receiving device will not issue an alarm to avoid false alarms.
[0100] It should be understood that the sensing module 24 can be implemented by using an existing capacitance sensor. The capacitance sensor can determine whether the float 1 is in water based on the difference in capacitance value in water or in air.
[0101] The sensing module 24 can be disposed on the main control board 200 or at other locations within the housing 10 .
[0102] like Figure 3 As shown, in some embodiments, the control unit 20 further includes a light warning module 25 , which is electrically connected to the first main control module 21 and is configured to output light display information to visually remind the user.
[0103] By setting up the light warning module 25, the position of the float 1 in the water can be quickly indicated to the user, especially in poorly lit environments such as at night, on cloudy days, or when fishing at a long distance, so that the user can find the position change of the float 1 in time and avoid missing the fish bite due to vision problems.
[0104] The light warning module 25 can be disposed on the inner or outer wall of the first main body 111 or the tail portion 112 of the first housing 11 , which is not specifically limited herein.
[0105] In some embodiments, the light warning module 25 can also be implemented using existing technologies such as LED lights.
[0106] like Figure 4 As shown, the present application also constructs a fishing device, which may include a remote controller 2 and a float 1 according to any of the aforementioned embodiments. The remote controller 2 may be wirelessly connected to the float 1 to send an alarm signal when the float 1 is dragged into the water by a fish, thereby promptly notifying the user that the fish has taken the hook.
[0107] The remote control 2 may include a second main control module 201, a second wireless communication module 202, and an alarm module 203. The second main control module 201 is electrically connected to the second wireless communication module 202 and the alarm module 203, respectively. The second wireless communication module 202 is wirelessly connected to the first wireless communication module 22 and can receive wireless signals output by the first wireless communication module 22. The second main control module 201 is configured to control the second wireless communication module 202 to receive wireless signals and, when the frequency of the signal received by the second wireless communication module 202 changes, control the alarm module 203 to issue an alarm message, thereby promptly notifying the user of a fish bite.
[0108] It should be understood that the second wireless communication module 202 and the alarm module 203 can also be obtained by using existing technologies, which are not specifically limited here.
[0109] It should be understood that the "signal frequency changes" of the wireless signal output by the first wireless communication module 22 can be any signal that is not output at a fixed frequency (e.g., Figure 4 In the embodiment shown, any signal output (five times per second) is considered to have changed in frequency. For example, if the fixed frequency is five times per second, any frequency less than five times per second is considered to have changed in frequency. Alternatively, the frequency of the signal output may be considered to have changed only when the frequency of the signal drops below a certain specific frequency. For example, if the fixed frequency is five times per second and the specific frequency is twice per second, the frequency is considered to have changed only when no signal is received for two seconds or the frequency is less than two seconds each time. This is not specifically limited here.
[0110] It should be understood that the alarm signal output by the alarm module 203 can be a light signal (such as lighting, flashing, etc.), a display signal (such as a display screen outputting text prompt content, etc.), a sound signal (such as a horn sound, a specific voice prompt, etc.), or a combination of any two or three of the above signal types, which is not specifically limited here.
[0111] By providing the alarm module 202 with timely output of alarm information, the potential deficiency of the user in observing the water surface during fishing can be compensated. In situations such as long-distance fishing, poor lighting, complex waters, multiple fishing rods, or distracted fishing, even if it is difficult to directly observe the float 1 on the water surface, the alarm module 203 can still accurately grasp the fish bite information.
[0112] It can be understood that the above embodiments only express some implementation methods of the present application, and their descriptions are relatively specific and detailed, but they cannot be understood as limiting the scope of the patent of the present application. It should be pointed out that for ordinary technicians in this field, without departing from the concept of the present application, the above embodiments or technical features can be freely combined, and several deformations and improvements can be made, which all fall within the scope of protection of the present application, that is, the embodiments described in "some embodiments" can be freely combined with any of the above and below embodiments; therefore, all equivalent changes and modifications made to the scope of the claims of the present application should fall within the scope of coverage of the claims of the present application.
Claims
1. A float, characterized in that: include: Housing (10); A floating foot assembly (30) for stabilizing the center of gravity is provided on the housing (10); as well as A control unit (20) is arranged in the housing (10), comprising a first main control module (21), a first wireless communication module (22) that outputs wireless signals at a fixed frequency when on the water surface, a signal transceiver module (23), and a power module (26); the first wireless communication module (22), the signal transceiver module (23), and the power module (26) are electrically connected to the first main control module (21), respectively.
2. The float according to claim 1, characterized in that The housing (10) comprises a first housing (11), a second housing (12) and a mounting assembly (13); the first housing (11) and the second housing (12) are detachably connected; the mounting assembly (13) is detachably arranged on the first housing (11) and / or the second housing (12); the floating foot assembly (30) is arranged on the second housing (12); and the control unit (20) is arranged on the housing (10) via the mounting assembly (13).
3. The float according to claim 2, characterized in that: The first shell (11) comprises a first main body (111) and a longitudinal floating tail (112) which are interconnected; the first main body (111) and the floating tail (112) are hollow; and the first main body (111) is axially arranged between the floating tail (112) and the second shell (12).
4. The float according to claim 2, characterized in that: The first shell (11) and the second shell (12) are coaxially arranged; along the extension direction of the axis, the circumferential dimensions of the first shell (11) and the second shell (12) gradually decrease from the ends connected to each other to the ends facing away from each other.
5. The float according to claim 2, characterized in that: The mounting assembly (13) comprises a mounting seat (131) and a bracket (132), wherein the mounting seat (131) and the bracket (132) are axially arranged on the first housing (11); the control unit (20) further comprises a main control board (200), wherein the first main control module (21) and the first wireless communication module (22) are respectively arranged on the main control board (200); and the main control board (200) is axially sandwiched between the mounting seat (131) and the bracket (132).
6. The float according to claim 5, characterized in that: The first shell (11) comprises a first main body (111) and a longitudinal floating tail (112) that are interconnected; the first main body (111) and the floating tail (112) are hollow; the first main body (111) is axially arranged between the floating tail (112) and the second shell (12); The mounting seat (131) and the bracket (132) are arranged on the first main body (111), and a portion of the bracket (132) extends to the floating tail portion (112); the signal transceiver module (23) is arranged on the bracket (132) and is located at the floating tail portion (112); and the power supply module (26) is axially arranged between the main control board (200) and the mounting seat (131).
7. The float according to claim 6, characterized in that: The bracket (132) is in the shape of a trumpet that is axially continuous, and includes an annular first limiting portion (1322) and a tubular first supporting portion (1321). The first limiting portion (1322) is arranged in the first main body (111), and one end of the first supporting portion (1321) is connected to the inner periphery of the first limiting portion (1322), and the other end extends into the drift tail portion (112); the main control board (200) is axially clamped between the first limiting portion (1322) and the mounting seat (131), and the signal transceiver module (23) is installed at the end of the first supporting portion (1321) away from the first limiting portion (1322).
8. The float according to claim 2, characterized in that: The floating foot assembly (30) is detachably arranged at the end of the second shell (12) away from the first shell (11) along the axial direction, and includes a counterweight body (31), a connecting member (32) and a rotating member (33); the counterweight body (31) is detachably connected to the second shell (12), the connecting member (32) is rotatably arranged on the counterweight body (31) along a first direction, and the rotating member (33) is rotatably arranged on the connecting member (32) along a second direction.
9. The float according to any one of claims 1 to 8, characterized in that: The control unit (20) further comprises a light warning module (25) for outputting light information, and the light warning module (25) is electrically connected to the first main control module (21); And / or, the control unit (20) further comprises a sensing module (24) for determining whether the float (1) is located in water, and the sensing module (24) is electrically connected to the first main control module (21).
10. A fishing device, characterized in that: It comprises a remote controller (2) and a float (1) as claimed in any one of claims 1 to 9; the float (1) is wirelessly connected to the remote controller (2) to receive a signal output by the first wireless communication module (22), and issues an alarm when the frequency of the signal output by the first wireless communication module (22) changes.