Energy storage power supply and electric fishing gear
By designing an integrated test probe and a multi-layered waterproof ring shell structure in the energy storage power supply of electric fishing gear, the problems of complex waterproofing process and difficult fault detection in electric fishing gear energy storage power supply are solved, achieving efficient waterproofing and convenient testing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2026-03-10
AI Technical Summary
The waterproofing process of the energy storage power supply in existing electric fishing gear is complex, making it difficult to detect malfunctions during use, and the repair costs are high.
The housing design includes a top cover and a bottom cover. The test probe is integrally formed with the bottom cover. The battery assembly and control circuit board are electrically connected. The first waterproof ring is set between the top cover and the bottom cover to clamp the gap to achieve a seal. The waterproof performance is improved by flexible conductive parts and multiple waterproof rings.
This improves the waterproof performance of energy storage power supplies while allowing for non-destructive testing, thus reducing production and usage costs.
Smart Images

Figure CN223986644U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of energy storage power technology, and in particular to an energy storage power supply and an electric fishing gear. Background Technology
[0002] Energy storage power supplies, serving as the power source for electronic devices, mainly consist of a housing and the batteries and control components housed within it. Depending on the application scenario, energy storage power supplies require different levels of waterproofing. Especially in outdoor applications, such as electric fishing gear, high levels of waterproofing are essential to prevent rainwater, seawater, and other external moisture from seeping into the housing and affecting the normal operation of the batteries and control components.
[0003] However, in practical applications, the waterproofing of electric fishing gear energy storage power supplies mainly relies on a complex multi-layer adhesive application process. Specifically, the casing is completely filled with adhesive through multiple applications to ensure that the battery and control components are fully encapsulated, thus achieving a waterproof effect. Furthermore, this multi-layer adhesive application process not only increases manufacturing steps but also raises production costs. Because each application requires precise control and waiting for the adhesive to cure, production efficiency is low and manufacturing costs are high. Once the energy storage power supply malfunctions, repair and testing become extremely difficult. The traditional multi-layer adhesive application method means that the energy storage power supply can only be repaired through destructive disassembly, which not only increases repair costs but may also lead to the energy storage power supply becoming irreparable and unusable, further increasing the cost of use. Utility Model Content
[0004] This application provides an energy storage power supply and an electric fishing gear. The main technical problem it solves is that the waterproofing process of the energy storage power supply in existing electric fishing gear is complicated, and it is difficult to detect malfunctions during use.
[0005] To solve the above-mentioned technical problems, one technical solution adopted in this application is: providing an energy storage power supply, comprising: a housing having a receiving space, the housing including an upper cover and a bottom cover, the upper cover and the bottom cover being closed to form the receiving space; a test probe embedded in the bottom cover and integrally formed with the bottom cover; a battery assembly housed in the receiving space; a control circuit board disposed in the receiving space, the control circuit board being electrically connected to the battery assembly; the test probe being electrically connected to the control circuit board; and a first waterproof ring disposed between the upper cover and the bottom cover, the upper cover and the bottom cover clamping the first waterproof ring to seal the gap between the upper cover and the bottom cover.
[0006] Optionally, the energy storage power supply further includes a flexible conductive element, the two ends of which abut against the control circuit board and the test probe, respectively, and the flexible conductive element conducts electricity between the test probe and the control circuit board.
[0007] Optionally, the energy storage power supply includes a second waterproof ring, which is disposed between the inner wall of the bottom shell and the control circuit board. The second waterproof ring abuts against the inner wall of the bottom shell and the control circuit board respectively, and surrounds the flexible conductive element.
[0008] Optionally, the housing further includes a flexible control button, which is embedded in the bottom shell and integrally formed with the bottom shell. The flexible control button extends with an abutting portion that abuts against the control circuit board, and a second waterproof ring surrounds the abutting portion; and / or, the housing further includes a light guide, which is embedded in the bottom shell and integrally formed with the bottom shell. The light guide abuts against the light source of the control circuit board, and a second waterproof ring surrounds the light guide.
[0009] Optionally, the bottom shell is provided with a first groove, and the bottom shell is provided with a first receiving groove at the end of the side wall of the first groove. The first receiving groove is provided around the opening of the first groove, and the first waterproof ring is provided in the first receiving groove, with a portion of the first waterproof ring protruding from the first receiving groove. The top cover is closed on the bottom shell, forming the receiving space with the first groove, and the portion of the first waterproof ring protruding from the first receiving groove abuts against the top cover.
[0010] Optionally, the top cover is provided with a second groove, and the top cover is provided with a second receiving groove at the end of the side wall of the second groove. The second receiving groove is provided around the opening of the second groove. The first groove and the second groove are joined to form the receiving space. The portion of the first waterproof ring protruding from the first receiving groove is inserted into the second receiving groove.
[0011] Optionally, the housing is provided with a first through hole, which communicates with the receiving space; the energy storage power supply includes an electrode assembly and a third waterproof ring, at least a portion of the electrode assembly extends into the receiving space through the first through hole, the electrode assembly is electrically connected to the battery assembly, the third waterproof ring is located in the first through hole, the inner ring of the third waterproof ring is sleeved on the electrode assembly, and the outer ring of the third waterproof ring abuts against the wall of the first through hole.
[0012] Optionally, the battery assembly includes a bracket, multiple battery cells, a connecting component, and an energy storage power management circuit board. The multiple battery cells and the energy storage power management circuit board are all disposed on the bracket. The connecting component electrically connects the multiple battery cells. The connecting component is electrically connected to the energy storage power management circuit board. The energy storage power management circuit board is electrically connected to the control circuit board.
[0013] Optionally, the bracket includes a first frame and a second frame, the first frame and the second frame are arranged vertically, along a direction perpendicular to the connection direction of the first frame and the second frame, a plurality of battery cell slots are provided on both sides of the first frame, a battery cell is disposed in a battery cell slot, and the energy storage power management circuit board is disposed on the surface of the second frame away from the first frame.
[0014] To solve the above-mentioned technical problems, another technical solution adopted in this application is: to provide an electric fishing tackle, including a rod, a launching and retrieving device and the above-mentioned energy storage power supply, wherein the rod is connected to the launching and retrieving device and the energy storage power supply is electrically connected to the launching and retrieving device.
[0015] The beneficial effects of this application embodiment are as follows: Unlike the prior art, this application embodiment provides an energy storage power supply including a housing, a test probe, a battery assembly, a control circuit board, and a first waterproof ring. The housing has a receiving space, and includes an upper cover and a bottom cover, which are closed to form the receiving space. The test probe is embedded in the bottom cover and is integrally formed with the bottom cover. The battery assembly is housed in the receiving space. The control circuit board is disposed in the receiving space and electrically connected to the battery assembly. The test probe is electrically connected to the control circuit board. The first waterproof ring is disposed between the upper cover and the bottom cover, and the upper cover and the bottom cover clamp the first waterproof ring to seal the gap between the upper cover and the bottom cover. In the above-mentioned energy storage power supply structure design, the addition of the first waterproof ring ensures the waterproof performance of the casing when the top cover and bottom shell are closed, thereby reducing the entry of external water into the casing and affecting the operation of the battery module, and improving the waterproof performance of the energy storage power supply. Furthermore, the test probe is integrally formed with the casing, which not only ensures the waterproof performance of the energy storage power supply, but also allows for testing of the energy storage power supply without disassembling it. Compared with existing energy storage power supplies that achieve waterproofing through multiple potting processes and require destructive disassembly for testing, the energy storage power supply structure of this application is simple, ensuring its waterproof performance while also providing rapid testing capabilities, thus reducing the production cost of the energy storage power supply. Attached Figure Description
[0016] To more clearly illustrate the technical solutions of the embodiments of this application, the drawings used in the embodiments of this application will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on the drawings without creative effort.
[0017] Figure 1 This is an exploded structural diagram of an energy storage power supply provided in an embodiment of this application;
[0018] Figure 2This is another exploded structural diagram of the energy storage power supply provided in the embodiments of this application;
[0019] Figure 3 This is a cross-sectional structural schematic diagram of the energy storage power supply provided in the embodiments of this application;
[0020] Figure 4 yes Figure 3 A magnified view of a portion of the central S-section;
[0021] Figure 5 This is an exploded structural diagram of the battery assembly of the energy storage power supply provided in the embodiments of this application;
[0022] Figure 6 This is an enlarged structural schematic diagram of the support structure of the energy storage power supply provided in the embodiments of this application;
[0023] Figure 7 This is a schematic diagram of the injection line of the energy storage power supply provided in the embodiments of this application.
[0024] Icon labels:
[0025] 1000, Energy storage power supply;
[0026] 1. Housing; 11. Receiving space; 1a. Top cover; 1a1. Second groove; 1a2. Second receiving slot; 1b. Bottom shell; 1b1. First groove; 1b2. First receiving slot; 12. Flexible control button; 13. Light guide; 14. First through hole; 15. Rotating groove; 16. Potting hole; 17. Vent hole; 18. Waterproof groove; 19. Button groove;
[0027] 2. Test probe;
[0028] 3. Battery assembly; 31. Bracket; 311. First frame; 3111. Cell slot; 312. Second frame; 32. Cell; 33. Connecting assembly; 331. First nickel sheet; 332. Second nickel sheet; 333. Third nickel sheet; 334. Protective cover; 34. Energy storage power management circuit board; 341. Plug; 35. Adhesive tape;
[0029] 4. Control circuit board; 41. Socket;
[0030] 5. First waterproof ring;
[0031] 6. Flexible conductive components;
[0032] 7. Second waterproof ring;
[0033] 8. Electrode assembly; 81. Electrode post; 811. Rotating part; 812. Conductor part; 82. Fixing bolt;
[0034] 9. Third waterproof ring;
[0035] A. Cushioning cotton;
[0036] B. Waterproof tape;
[0037] C. Decorative panels;
[0038] D. Rubber sleeve. Detailed Implementation
[0039] To facilitate understanding of this application, a more detailed description is provided below with reference to the accompanying drawings and specific embodiments. It should be noted that when an element is described as being "fixed to" another element, it can be directly on the other element, or one or more intermediate elements may exist between them. When an element is described as being "connected" to another element, it can be directly connected to the other element, or one or more intermediate elements may exist between them. The terms "vertical," "horizontal," "left," "right," and similar expressions used in this specification are for illustrative purposes only.
[0040] Unless otherwise defined, all technical and scientific terms used in this specification have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the scope of this application. The term "and / or" as used in this specification includes any and all combinations of one or more of the associated listed items.
[0041] Energy storage power supplies are crucial components used to provide power to electronic devices. However, the waterproofing requirements for energy storage power supplies vary depending on the type of electronic device. It is particularly important to note that when energy storage power supplies are used in electric fishing gear, considering the humid environment in which these devices operate and the high probability of contact with water, the waterproofing requirements for the energy storage power supply are extremely stringent. To reduce the probability of water entering the energy storage power supply casing, existing energy storage power supplies typically employ a multi-stage potting technique, repeatedly applying adhesive to the casing to completely encapsulate the components within the casing.
[0042] However, the inventors of this application found in actual production and use that the multi-potting energy storage power supply has a complicated manufacturing process and high production cost. Moreover, when the energy storage power supply fails and needs to be tested to determine the cause of the failure and repair it, it is often necessary to destructively disassemble the energy storage power supply, which makes the maintenance and use cost of the energy storage power supply too high.
[0043] Therefore, the inventors of this application provide an energy storage power supply 1000, please refer to [link / reference]. Figure 1 , Figure 2 and Figure 3The energy storage power supply 1000 includes a housing 1, a test probe 2, a battery assembly 3, a control circuit board 4, and a first waterproof ring 5. The housing 1 has a receiving space 11, including an upper cover 1a and a bottom cover 1b, which are closed to form the receiving space 11. The test probe 2 is embedded in the bottom cover 1b, and the test probe 2 and the bottom cover 1b are integrally formed to reduce the probability of external water seeping into the receiving space 11 through the gap between the test probe 2 and the bottom cover 1b. The battery assembly 3 is housed in the receiving space 11 and is used to power the energy storage power supply 1000. The connected device 00 provides power support; the control circuit board 4 is disposed in the housing space 11 and is electrically connected to the battery assembly 3. The control circuit board 4 is used to control the input and output power, output time, etc. of the battery assembly 3. The test probe 2 is electrically connected to the control circuit board 4 so that when the user needs to test the control circuit board 4, he / she can directly use the testing equipment to connect the test probe 2; the first waterproof ring 5 is disposed between the upper cover 1a and the bottom shell 1b. The upper cover 1a and the bottom shell 1b clamp the first waterproof ring 5 to seal the gap between the upper cover 1a and the bottom shell 1b. Through the above structure, the first waterproof ring 5 is clamped by the upper cover 1a and the bottom shell 1b, thus forming the waterproof structure of the energy storage power supply 1000. This reduces the probability of external water entering the containment space 11 through the gap between the upper cover 1a and the bottom shell 1b. Furthermore, the test probe 2, which is integrally formed with the bottom shell 1b, provides a detection path for users to test the control circuit board 4 and battery assembly 3 connected to the test probe 2 in the containment space 11 without compromising the waterproof performance of the energy storage power supply 1000. This improves the ease of use of the energy storage power supply 1000 and reduces the operating cost of the energy storage power supply 1000.
[0044] It is understood that the connection methods between the upper cover 1a and the bottom shell 1b include, but are not limited to, screwing, snap-fitting, welding, etc. For example, in this embodiment, the upper cover 1a and the bottom shell 1b are screwed together to ensure that the shell 1 has sufficient structural strength to resist external forces.
[0045] It should be noted that the test probe 2 and the bottom shell 1b are integrally formed by injection molding.
[0046] Understandably, the connection methods between the test probe 2 and the control circuit board 4 include, but are not limited to: direct contact, wire connection, plug-in interface connection, conductive component connection, etc.
[0047] For example, in this embodiment, the test probe 2 and the control circuit board 4 are connected by a conductive component. Preferably, in this embodiment, please refer to... Figure 3 and Figure 4The conductive component is a flexible conductive component 6, such as conductive cotton. The two ends of the flexible conductive component 6 abut against the control circuit board 4 and the test probe 2, respectively, and the flexible conductive component 6 conducts electricity between the test probe 2 and the control circuit board 4. The use of flexible conductive element 6 enables a "hard-soft-hard" flexible connection between the test probe 2 and the control circuit board 4, ensuring the energy storage power supply 1000 maintains its shock resistance. Specifically, in the event of a drop or impact, the presence of flexible conductive element 6 between the test probe 2 and the control circuit board 4 allows the test probe 2 to move along with the bottom shell 1b during minor elastic deformation. The flexible conductive element 6 absorbs the force transmitted from the test probe 2. In contrast, a "hard-hard" contact between the test probe 2 and the control circuit board 4, where there is no deformation allowance between them during elastic deformation, can lead to loosening and increase the risk of external water entering the containment space 11 through the gap between the test probe 2 and the bottom shell 1b. The "hard-soft-hard" connection method formed by the test probe 2, flexible conductive element 6 and control circuit board 4 in this application improves the ability to resist external vibration, improves the connection stability between the test probe 2 and the bottom shell 1b, and reduces the risk of external water entering the containment space 11 through the gap between the test probe 2 and the bottom shell 1b.
[0048] Furthermore, in some embodiments, please refer to Figure 1 The energy storage power supply 1000 includes a second waterproof ring 7, which is disposed between the inner wall of the bottom shell 1b and the control circuit board 4. The second waterproof ring 7 abuts against both the inner wall of the bottom shell 1b and the control circuit board 4, and surrounds the flexible conductive element 6. The second waterproof ring 7 seals the connection gap between the control circuit board 4 and the bottom shell 1b, thereby further improving the waterproofness of the energy storage power supply 1000. Even if the integrated connection between the test probe 2 and the bottom shell 1b becomes loose during long-term use, the second waterproof ring 7 can effectively seal the containment space 11 of the energy storage power supply 1000, improving the user experience of the energy storage power supply 1000.
[0049] In some embodiments, please refer to Figure 1The housing 1 also includes a flexible control button 12, which is embedded in the bottom housing 1b and integrally formed with the bottom housing 1b to ensure that the waterproofness of the bottom housing 1b is not compromised. The flexible control button 12 extends to have an abutting part (not marked), which abuts against the control circuit board 4. The flexible control button 12 is used for the user to operate the control circuit board 4 and thereby control the working mode of the energy storage power supply 1000 according to the user's needs. The second waterproof ring 7 surrounds the abutting part to ensure that the flexible control button 12 and its abutting part are within the range of the second waterproof ring 7.
[0050] It should be noted that the flexible control button 12 and the bottom shell 1b are integrally formed by injection molding.
[0051] In some embodiments, please refer to Figure 1 The housing 1 also includes a light guide 13, which is embedded in the bottom housing 1b and integrally formed with the bottom housing 1b. The light guide 13 abuts against the light source of the control circuit board 4. The second waterproof ring 7 surrounds the light guide 13 to ensure the waterproofness of the bottom housing 1b within the encirclement of the second waterproof ring 7.
[0052] For the bottom shell 1b mentioned above, please refer to... Figure 1 The bottom shell 1b is provided with a first groove 1b1, and a first receiving groove 1b2 is provided at the end of the side wall of the first groove 1b1. The first receiving groove 1b2 surrounds the opening of the first groove 1b1. A first waterproof ring 5 is provided in the first receiving groove 1b2, and a portion of the first waterproof ring 5 protrudes from the first receiving groove 1b2. The top cover 1a is closed to the bottom shell 1b to seal the first groove 1b1 and form a receiving space 11. The portion of the first waterproof ring 5 protruding from the first receiving groove 1b2 abuts against the top cover 1a. Through the cooperation of the first receiving groove 1b2 and the first waterproof ring 5, the path length of external water entering the receiving space 11 through the gap between the first waterproof ring 5 and the bottom shell 1b is extended, thereby improving the waterproofness of the energy storage power supply 1000.
[0053] For further details, please refer to Figure 2 The upper cover 1a is provided with a second groove 1a1, and a second receiving groove 1a2 is provided at the end of the side wall of the upper cover 1a at the second groove 1a1. The second receiving groove 1a2 is arranged around the opening of the second groove 1a1. The first groove 1b1 and the second groove 1a1 are joined to form a receiving space 11. The portion of the first waterproof ring 5 protruding from the first receiving groove 1b2 is inserted into the second receiving groove 1a2. Through the cooperation of the first waterproof ring 5 and the first receiving groove 1b2 and the second receiving groove 1a2, the path length of external water entering the receiving space 11 through the gap between the first waterproof ring 5 and the upper cover 1a is further extended, thereby improving the waterproofness of the energy storage power supply 1000.
[0054] It is understood that the energy storage power supply 1000 supplies power to external devices in ways including but not limited to: wire connection, electrode connection, wireless inductive power supply, and metal contact connection. For example, in this application, the energy storage power supply 1000 supplies power to external devices using an electrode connection method.
[0055] For details, please refer to Figure 1 The housing 1 is provided with a first through hole 14, which is connected to the receiving space 11. The energy storage power supply 1000 includes an electrode assembly 8 and a third waterproof ring 9. At least a portion of the electrode assembly 8 extends into the receiving space 11 through the first through hole 14. The electrode assembly 8 is electrically connected to the battery assembly 3 and is used to provide a power supply path between the battery assembly 3 and an external device. The third waterproof ring 9 is located in the first through hole 14. The inner ring of the third waterproof ring 9 is fitted onto the electrode assembly 8, and the outer ring of the third waterproof ring 9 abuts against the hole wall of the first through hole 14, thereby enabling the third waterproof ring 9 to seal the gap between the electrode assembly 8 and the first through hole 14 and ensure the waterproofness of the energy storage power supply 1000.
[0056] It is understandable that the materials that can be used for the first waterproof ring 5, the second waterproof ring 7 and the third waterproof ring 9 mentioned above include, but are not limited to: oil-based, rubber, resin, inorganic, etc.
[0057] For electrode assembly 8 mentioned above, please refer to... Figure 1 The electrode assembly 8 includes an electrode post 81 and a fixing bolt 82. The electrode post 81 includes a rotating part 811 and a conductor part 812. The rotating part 811 and the conductor part 812 are connected. The rotating part 811 is electrically connected to the control circuit board 4, and the fixing bolt 82 screws the rotating part 811 to the control circuit board 4.
[0058] In some embodiments, the electrode assembly 8 is rotatably connected to the housing 1, and the outer surface of the housing 1 is provided with a rotating groove 15. The conductor portion 812 is accommodated in the rotating groove 15, and the conductor portion 812 is rotatable relative to the housing 1. When the conductor portion 812 is in a preset first position, the rotating portion 811 is accommodated in the rotating groove 15. When the conductor portion 812 is in a preset second position, the rotating portion 811 forms an angle with the housing 1.
[0059] Understandably, there are two of each of the following: the first through hole 14, the electrode post 81, the fixing bolt 82, and the rotating groove 15. One first through hole 14 is located on the upper cover 1a, and one electrode post 81 is connected to the control component through the first through hole 14 and fixed by the fixing bolt 82. The electrode post 81 is also housed in the rotating groove 15. The other first through hole 14 is located on the bottom shell 1b, and the other electrode post 81 is connected to the control component through the first through hole 14 and fixed by the fixing bolt 82. The other electrode post 81 is also housed in the other rotating groove 15.
[0060] For battery component 3 mentioned above, please refer to... Figure 5 The battery assembly 3 includes a bracket 31, multiple battery cells 32, a connecting component 33, and an energy storage power management circuit board 34. The multiple battery cells 32 and the energy storage power management circuit board 34 are all mounted on the bracket 31. The connecting component 33 electrically connects the multiple battery cells 32. The connecting component 33 is electrically connected to the energy storage power management circuit board 34. The energy storage power management circuit board 34 is electrically connected to the control circuit board 4.
[0061] For the connection component 33 mentioned above, please refer to Figure 5 The connection component 33 includes a first nickel sheet 331, a second nickel sheet 332 and a third nickel sheet 333. The first nickel sheet 331 is used to connect the positive terminals of multiple battery cells 32 in series, the second nickel sheet 332 is used to connect the negative terminals of multiple battery cells 32 in series, and the third nickel sheet 333 is used to electrically connect the battery cells 32 to the energy storage power management circuit board 34.
[0062] In some embodiments, the connection assembly 33 further includes a protective cover 334, which covers a portion of the positive electrode position of the battery cell 32 to provide protection for the positive electrode portion of the battery cell 32.
[0063] For further details, please refer to Figure 5 and Figure 6 The support 31 includes a first frame 311 and a second frame 312. The first frame 311 and the second frame 312 are arranged vertically. Along the direction perpendicular to the connection between the first frame 311 and the second frame 312, a plurality of cell slots 3111 are provided on both sides of the first frame 311. A cell 32 is disposed in a cell slot 3111. By arranging a plurality of cell slots 3111, the cells 32 are arranged closely on both sides of the first frame 311, reducing the occupancy rate of multiple cells 32 in the housing space 11. The energy storage power management circuit board 34 is disposed on the surface of the second frame 312 away from the first frame 311, so as to further reduce the occupancy rate of the battery assembly 3 in the housing space 11.
[0064] It should be noted that after multiple battery cells 32 are installed on the bracket 31, in order to reduce the shaking of the battery cells 32 within the receiving space 11, adhesive tape 35 is used in some embodiments to wrap and wrap the battery cells 32 with the bracket 31. The adhesive tape 35 can be made of materials including, but not limited to: glass fiber, BOPP (biaxially oriented polypropylene film), PET (high-temperature resistant polyester film), PI (polyimide film), and Nomex (meta-aramid or aramid 1313), etc. For example, in this embodiment, glass fiber adhesive tape is used for the adhesive tape 35.
[0065] It is understood that the electrical connection methods between the energy storage power management circuit board 34 and the control circuit board 4 include, but are not limited to, plug-in assembly connection, direct wire connection, and contact connection. For example, in this embodiment, a plug-in assembly connection method is used.
[0066] Specifically, the energy storage power management circuit board 34 is equipped with a plug 341, and the control circuit board 4 is equipped with a socket 41. The plug 341 is inserted into the socket 41, thereby enabling the energy storage power 1000 management circuit and the control circuit board 4 to form a quick-install connection structure. This connection method also means that if either the energy storage power management circuit board 34 or the control circuit board 4 is damaged, only the damaged one needs to be replaced. Compared to the technical solution of integrating the energy storage power management circuit board 34 and the control circuit board 4 into a single circuit board, the maintenance and usage costs of this application are lower. Furthermore, this configuration facilitates the assembly of the energy storage power 1000.
[0067] In some embodiments, in order to further reduce the shaking of the battery assembly 3 within the housing space 11, the energy storage power supply 1000 also includes a cushioning cotton A, which is placed between the battery assembly 3 and the inner wall of the housing 1 to absorb the vibration of the energy storage power supply 1000 under external forces.
[0068] In some embodiments, please refer to Figure 1 The housing 1 is provided with a potting hole 16 and a vent 17, both of which are located on the upper cover 1a and communicate with the receiving space 11. The potting hole 16 and the vent 17 are both located on the side of the housing 1 closest to the energy storage power management circuit board 34 and the control circuit board 4, so that the energy storage power management circuit board 34 and the control circuit board 4 can be preferentially covered during the potting operation. Furthermore, to ensure the potting effect, the vent 17 is located further away from the energy storage power management circuit board 34 and the control circuit board 4 than the potting hole 16.
[0069] For further details, please refer to Figure 7 During the potting operation, the energy storage power supply 1000 is placed at an angle, so that the side with the energy storage power management circuit board 34 and the control circuit board 4 is closer to the ground. During potting, it is only necessary to make the glue in the receiving space 11 reach the potting line L as shown in the figure, thus saving the amount of glue used for potting.
[0070] In some embodiments, the energy storage power supply 1000 further includes a waterproof sticker B, which covers the glue-filling hole 16 and the vent hole 17. The waterproof sticker B is used to seal the glue-filling hole 16 and the vent hole 17 to reduce the probability of external water entering the containment space 11 through the glue-filling hole 16 and the vent hole 17. In some embodiments, the waterproof sticker B can also change color depending on whether it is wetted by water. Specifically, when the waterproof sticker B is not wetted by water, the color of the waterproof sticker B does not change; when the waterproof sticker B is wetted by water, the color of the waterproof sticker B changes significantly, so that the user can judge whether the energy storage power supply 1000 is at risk of short circuit based on the color change of the waterproof sticker B. This reduces the probability of damage to the energy storage power supply 1000.
[0071] Furthermore, the outer surface of the housing 1 is provided with a waterproof groove 18 and a button groove 19. The waterproof sticker B is housed in the waterproof groove 18 and is flush with the outer surface of the housing 1. The button groove 19 contains a decorative panel C, which is also flush with the outer surface of the housing 1. The decorative panel C has marking holes that correspond one-to-one with the flexible control button 12, the test probe 2, and the light guide 13. Text or graphic indicators are provided near each marking hole to allow users to intuitively view the functions of each part and to guide the user.
[0072] In some embodiments, the energy storage power supply 1000 further includes a rubber sleeve D, which is fitted onto the outer surface of the housing 1, and the rubber sleeve D has a plurality of clearance holes for exposing the electrode assembly 8, the waterproof sticker B and the decorative panel C.
[0073] In this application, the energy storage power supply 1000 includes a housing 1, a test probe 2, a battery assembly 3, a control circuit board 4, and a first waterproof ring 5. The housing 1 is provided with a receiving space 11, and the housing 1 includes an upper cover 1a and a bottom cover 1b, which are closed to form the receiving space 11. The test probe 2 is embedded in the bottom cover 1b, and the test probe 2 and the bottom cover 1b are integrally formed to reduce the probability of external water seeping into the receiving space 11 from the gap between the test probe 2 and the bottom cover 1b. The battery assembly 3 is housed in the receiving space 11, and the battery assembly 3 is used to connect the energy storage power supply 1000 to the battery assembly 1000. The connected device 000 provides power support; the control circuit board 4 is disposed in the housing space 11 and is electrically connected to the battery assembly 3. The control circuit board 4 is used to control the input and output power, output time, etc. of the battery assembly 3. The test probe 2 is electrically connected to the control circuit board 4 so that when the user needs to test the control circuit board 4, he / she can directly use the testing equipment to connect the test probe 2; the first waterproof ring 5 is disposed between the upper cover 1a and the bottom shell 1b. The upper cover 1a and the bottom shell 1b clamp the first waterproof ring 5 to seal the gap between the upper cover 1a and the bottom shell 1b. Through the above structure, the first waterproof ring 5 is clamped by the upper cover 1a and the bottom shell 1b, thus forming the waterproof structure of the energy storage power supply 1000. This reduces the probability of external water entering the containment space 11 through the gap between the upper cover 1a and the bottom shell 1b. Furthermore, the test probe 2, which is integrally formed with the bottom shell 1b, provides a detection path for users to test the control circuit board 4 and battery assembly 3 connected to the test probe 2 in the containment space 11 without compromising the waterproof performance of the energy storage power supply 1000. This improves the ease of use of the energy storage power supply 1000 and reduces the operating cost of the energy storage power supply 1000.
[0074] This application also provides embodiments of electronic devices, specifically, embodiments of electric fishing gear. The electric fishing gear includes a rod, a launching and retrieving device, and the aforementioned energy storage power supply 1000. The rod is connected to the launching and retrieving device, and the energy storage power supply 1000 is electrically connected to the launching and retrieving device. For details regarding the structure and function of the energy storage power supply 1000, please refer to the above embodiments; further details will not be repeated here.
[0075] It should be noted that while preferred embodiments of this application are provided in the specification and accompanying drawings, this application can be implemented in many different forms and is not limited to the embodiments described herein. These embodiments are not intended to impose additional limitations on the content of this application; their purpose is to provide a more thorough and comprehensive understanding of the disclosure of this application. Furthermore, the above-described technical features can be combined with each other to form various embodiments not listed above, all of which are considered to be within the scope of this application's specification. Moreover, those skilled in the art can make improvements or modifications based on the above description, and all such improvements and modifications should fall within the protection scope of the appended claims.
Claims
1. An energy storage power supply, characterized by, The energy storage power supply comprises: a housing provided with a receiving space, the housing comprising an upper cover and a bottom shell, the upper cover and the bottom shell being combined to form the receiving space; a test probe embedded in the bottom shell and integrally formed with the bottom shell; a battery assembly accommodated in the receiving space; a control circuit board arranged in the receiving space, the control circuit board being electrically connected with the battery assembly, and the test probe being electrically connected with the control circuit board; a first waterproof ring arranged between the upper cover and the bottom shell, the upper cover and the bottom shell clamping the first waterproof ring to seal the gap between the upper cover and the bottom shell.
2. The energy storage power supply according to claim 1, wherein the energy storage power supply further comprises a flexible conductive piece, two ends of the flexible conductive piece abutting against the control circuit board and the test probe respectively, and the flexible conductive piece conducting the test probe and the control circuit board.
3. The energy storage power supply according to claim 2, wherein the energy storage power supply comprises a second waterproof ring, the second waterproof ring being arranged between the inner wall of the bottom shell and the control circuit board, the second waterproof ring abutting against the inner wall of the bottom shell and the control circuit board respectively, and the second waterproof ring surrounding the flexible conductive piece.
4. The energy storage power supply according to claim 3, wherein the housing further comprises a flexible control button, the flexible control button being embedded in the bottom shell and integrally formed with the bottom shell, the flexible control button extending a abutting portion, the abutting portion abutting against the control circuit board, and the second waterproof ring surrounding the abutting portion; and / or the housing further comprises a light guide piece, the light guide piece being embedded in the bottom shell and integrally formed with the bottom shell, the light guide piece abutting against a light source of the control circuit board, and the second waterproof ring surrounding the light guide piece.
5. The energy storage power supply according to claim 1, wherein the bottom shell is provided with a first recess, the bottom shell is provided with a first accommodating groove at the end of the side wall of the first recess, the first accommodating groove is arranged around the slot opening of the first recess, the first waterproof ring is arranged in the first accommodating groove, and part of the first waterproof ring protrudes out of the first accommodating groove; the upper cover is combined with the bottom shell to close the first recess to form the receiving space, and the part of the first waterproof ring protruding out of the first accommodating groove abuts against the upper cover.
6. The energy storage power supply according to claim 5, wherein the upper cover is provided with a second recess, the upper cover is provided with a second accommodating groove at the end of the side wall of the second recess, the second accommodating groove is arranged around the slot opening of the second recess, the first recess and the second recess are butted to form the receiving space, and the part of the first waterproof ring protruding out of the first accommodating groove is inserted into the second accommodating groove.
7. The energy storage power supply according to claim 1, wherein the housing is provided with a first through hole, the first through hole and the receiving space being in communication. The energy storage power supply comprises an electrode assembly and a third waterproof ring, at least a part of the electrode assembly extends into the accommodating space from the first through hole, the electrode assembly is electrically connected with the battery assembly, the third waterproof ring is located in the first through hole, an inner ring of the third waterproof ring is sleeved on the electrode assembly, and an outer ring of the third waterproof ring abuts against a hole wall of the first through hole. 8.The energy storage power supply of any one of claims 1-7, wherein, The battery assembly comprises a support, a plurality of battery cells, a connecting assembly and an energy storage power management circuit board, the plurality of battery cells and the energy storage power management circuit board are arranged on the support, the connecting assembly electrically connects the plurality of battery cells, the connecting assembly is electrically connected with the energy storage power management circuit board, and the energy storage power management circuit board is electrically connected with the control circuit board. 9.The energy storage power supply of claim 8, wherein, The support comprises a first frame body and a second frame body, the first frame body and the second frame body are arranged vertically, a plurality of battery cell grooves are arranged on both sides of the first frame body along a direction perpendicular to the connecting direction of the first frame body and the second frame body, one battery cell is arranged in one battery cell groove, and the energy storage power management circuit board is arranged on a surface of the second frame body away from the first frame body.
10. An electric fishing tackle, characterized in that The energy storage power supply comprises a rod body, a storage and release device and the energy storage power supply of any one of claims 1-9, the rod body is connected with the storage and release device, and the energy storage power supply is electrically connected with the storage and release device.