A battery mounting structure for a drone
By employing a combination of mounting plates, edge trim, and fasteners in the drone battery mounting structure, the problems of cumbersome disassembly and assembly and unstable connection in traditional drone battery mounting methods are solved, enabling rapid and stable battery installation and disassembly, thereby improving the operational efficiency and safety of drones.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG MINLECHENG TECH CO LTD
- Filing Date
- 2025-04-02
- Publication Date
- 2026-05-22
AI Technical Summary
Traditional drone battery installation methods are cumbersome to install and remove, have unstable connections, affect operational efficiency, and may pose safety hazards.
The design incorporates a combination of mounting plate, first edge, second edge, snap fastener, and manual disassembly fastener. The snap fastener locks the battery in place with the positioning slot, and the manual disassembly fastener provides elastic locking, enabling quick battery installation and removal. The guide baffle further enhances alignment accuracy and structural stability.
It enables quick installation and removal of batteries, ensures battery stability during installation, avoids loosening or falling off due to vibration, and improves ease of operation and connection strength.
Smart Images

Figure CN224267004U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of unmanned aerial vehicle (UAV) technology, and in particular to a UAV battery mounting structure. Background Technology
[0002] With the rapid development of drone technology, higher demands are being placed on the installation efficiency and stability of drone batteries. Traditional battery installation methods often suffer from cumbersome disassembly and assembly, unstable connections, etc., which not only affect the operating efficiency of drones, but may also pose safety hazards.
[0003] Chinese patent application CN201721663734.3 discloses a novel snap-fit battery mounting structure, including a support fixedly connected to the fuselage of a drone, a battery installed in the middle of the support, and the two ends of the battery fixedly connected to the support by snap-fits. The support includes a base plate and support plates vertically distributed at the left and right ends of the base plate, with limiting plates symmetrically arranged at the front and rear ends of the base plate; a positioning plate is vertically arranged at the top of the support plate, and a positioning hole is provided at the bottom of the positioning plate; hinge seats are symmetrically arranged at the top of the left and right sides of the battery; snap-fits are hingedly installed on the hinge seats, and the bottom of the snap-fits is positioned and connected to the positioning holes. However, the hinge seats, positioning plates, snap-fits, and positioning holes of this novel snap-fit battery mounting structure are distributed on the top of the support and the top of the battery. When the battery is installed on the support and inside the support, the structural connection is not stable and reliable enough. The battery is prone to loosening or falling off due to vibration and other reasons, which not only affects the operating efficiency of the drone, but may also pose a safety hazard. Utility Model Content
[0004] The purpose of this invention is to overcome the problems of the prior art and provide a battery mounting structure for drones.
[0005] To achieve the above objectives, the present invention adopts the following solution:
[0006] A drone battery mounting structure, applied and mounted on a battery body, includes a mounting plate and further includes:
[0007] The first edge and the second edge are respectively connected to the bottom end of the battery body and can be tightly attached to the mounting plate; the second edge has a positioning slot.
[0008] A snap-hook fastener is attached to the mounting plate and engages with the positioning slot for snap-hook positioning and limiting connection.
[0009] The fasteners are manually disassembled, and the first edge and the mounting plate are detachably connected by the manually disassembled fasteners.
[0010] Furthermore, the drone battery mounting structure also includes guide baffles; two guide baffles are connected at intervals to the mounting plate; the two sides of the battery body are adapted to be embedded in the inner side of the two guide baffles and can move away from or closer to the position of the hook fasteners.
[0011] Furthermore, the snap fastener includes a first limiting boss bolt and a first boss nut; the first limiting boss bolt is fixed to the mounting plate by the first boss nut; the first limiting boss bolt has a first limiting boss head located above the mounting plate; there is a first snap fastener limiting space between the first limiting boss head and the mounting plate; the positioning slot is embedded in the first snap fastener limiting space and is fitted onto the threaded rod of the first limiting boss bolt, and is limited to the mounting plate by the snap fastener of the first limiting boss head.
[0012] Furthermore, the drone battery mounting structure also includes a locking hook fastener; the mounting plate has a locking slot at one end near the first edge; the locking hook fastener is connected to the first edge and engages with the locking slot for hook-limiting connection.
[0013] Furthermore, the locking fastener includes a second limiting boss bolt and a second boss nut; the second limiting boss bolt is fixed to the first edge by the second boss nut; the second limiting boss bolt has a second limiting boss head located below the first edge; there is a second hook limiting space between the second limiting boss head and the first edge; the locking slot is embedded in the second hook limiting space and is fitted onto the threaded rod of the second limiting boss bolt, and is limited to the first edge by the hook of the second limiting boss head.
[0014] In one embodiment, the manually disassembly fastener is a plunger spring positioning lock pin; the first edge and the mounting plate are detachably connected by the plunger spring positioning lock pin, and the locking between the first edge and the mounting plate can be released by pulling the plunger spring positioning lock pin.
[0015] Furthermore, the plunger spring positioning locking pin includes a plunger body, a spring, a locking pin body, and a pull ring; the first edge and the mounting plate are respectively provided with a first mounting hole and a second mounting hole that can be aligned with each other; the spring is disposed in the plunger body; the locking pin body is telescopically movable in the plunger body by means of the spring; the pull ring is connected to one end of the locking pin body;
[0016] The plunger body is mounted on the second mounting hole, and the other end of the locking pin body is adapted to pass through the first mounting hole;
[0017] Alternatively, the plunger body is mounted on the first mounting hole, and the other end of the locking pin is adapted to pass through the second mounting hole.
[0018] Furthermore, the mounting plate is provided with a number of heat dissipation holes.
[0019] Furthermore, the mounting plate is made of aluminum or aluminum alloy.
[0020] In another embodiment, the manually disassembled fastener is a screw-tightening fastener; the screw-tightening fastener includes an insert bolt, a rivet nut, and a screw-tightening sleeve; a third mounting hole is provided on the first edge; the mounting plate has a fourth mounting hole corresponding to the third mounting hole and communicating with the third mounting hole; the rivet nut is riveted to the third mounting hole; the insert bolt is adapted to pass through the rivet nut and the fourth mounting hole, and is adapted to connect with the screw-tightening sleeve to lock and fix the first edge on the mounting plate.
[0021] Compared with existing technologies, this utility model has the following advantages:
[0022] 1. This utility model combines an installation plate, a first edge, a second edge, a snap-fit fastener, and a manually removable fastener. First, the snap-fit fastener locks the battery body with the positioning slot sleeve. Then, the elastic locking function of the manually removable fastener enables a detachable connection between the first edge and the installation plate. This dual combination of snap-fit fasteners and manually removable fasteners for locking the battery body allows for quick installation and removal of the battery body. Users can easily replace the battery without using tools, making the operation simple and greatly improving the efficiency of battery installation.
[0023] 2. This utility model adopts a design where the first edge and the second edge are tightly attached to the mounting plate, and the fasteners and positioning slots are closely matched to ensure the stability of the battery during installation. At the same time, the elastic locking function of the manually disassembled fasteners further enhances the connection strength between the battery body and the mounting plate, preventing the battery body from loosening or falling off due to vibration or other reasons, thus achieving a stable and reliable structure. Attached Figure Description
[0024] The present application will now be described in further detail with reference to the accompanying drawings and specific embodiments.
[0025] Figure 1 This is one of the three-dimensional structural diagrams of the drone battery mounting structure according to Embodiment 1 of this utility model.
[0026] Figure 2 This is an exploded three-dimensional structural diagram of the drone battery mounting structure according to Embodiment 1 of this utility model.
[0027] Figure 3 This is the second three-dimensional structural schematic diagram of the drone battery mounting structure according to Embodiment 1 of this utility model.
[0028] Figure 4 This is a three-dimensional structural diagram of the guide baffle of this utility model on the mounting plate.
[0029] Figure 5 This is a three-dimensional structural diagram of the hook fastener of this utility model.
[0030] Figure 6 This is a three-dimensional structural diagram of the drone battery mounting structure according to Embodiment 2 of this utility model.
[0031] The image includes:
[0032] Battery body 1, mounting plate 2, second mounting hole 21, heat dissipation hole 22, locking latch 23, fourth mounting hole 24, first edge 3, first mounting hole 31, third mounting hole 32, second edge 4, positioning latch 41, hook fastener 5, first limiting boss bolt 51, first limiting boss head 511, first boss nut 52, first hook limiting space 53, manual disassembly fastener 6, plunger spring positioning lock pin 61, plunger body 611, locking pin body 612, pull ring 613, screw fastener 62, insert bolt 621, rivet nut 622, screw sleeve 623, guide baffle 7, hook fastener 8, second limiting boss bolt 81, second limiting boss head 811, second boss nut 82, second hook limiting space 83. Detailed Implementation
[0033] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate this utility model, but are not intended to limit its scope. Example
[0034] like Figures 1 to 5As shown, a drone battery mounting structure is applied to a battery body 1, including a mounting plate 2, a first edge 3, a second edge 4, a snap fastener 5, and a manual removal fastener 6. The mounting plate 2 serves as the base platform for mounting the battery body 1, used for fixed connection to the drone body. The mounting plate 2 has several heat dissipation holes 22, which provide good heat dissipation for the battery body 1. The number and arrangement of the heat dissipation holes 22 can be reasonably set according to requirements. The mounting plate 2 is made of aluminum or aluminum alloy, which has advantages such as being lightweight, structurally stable, corrosion-resistant, and not easily rusted. The first edge 3 and the second edge 4 are respectively connected to the bottom end of the battery body 1 and can both be tightly attached to the mounting plate 2; the second edge 4 has a positioning slot 41; the snap fastener 5 is connected to the mounting plate 2 and cooperates with the positioning slot 41 for hook-locking connection, forming a preliminary fixation. The first edge 3 and the mounting plate 2 are detachably connected by the manual removal fastener 6. Users can manually remove the fastener 6 by pulling to release the locking state between the first edge 3 and the mounting plate 2, which facilitates quick installation and removal of the battery.
[0035] This drone battery mounting structure combines a mounting plate 2, a first edge 3, a second edge 4, a snap fastener 5, and a manual disassembly fastener 6. First, the snap fastener 5 is locked to the positioning slot 41. Then, the elastic locking function of the manual disassembly fastener 6 achieves a detachable connection between the first edge 3 and the mounting plate 2. This dual-combination locking method of snap fastener 5 and manual disassembly fastener 6 enables rapid installation and removal of the battery body 1. Users can easily replace the battery without tools, simplifying the operation and greatly improving battery installation efficiency. Furthermore, the tight fit between the first edge 3, the second edge 4, and the mounting plate 2, along with the tight cooperation between the snap fastener 5 and the positioning slot 41, ensures battery stability during installation. Simultaneously, the elastic locking function of the manual disassembly fastener 6 further strengthens the connection between the battery body 1 and the mounting plate 2, preventing the battery body 1 from loosening or falling off due to vibration or other reasons, achieving a stable and reliable structure.
[0036] In this embodiment, the drone battery mounting structure further includes guide baffles 7; two guide baffles 7 are spaced apart and connected to the mounting plate 2; the two sides of the battery body 1 are adapted to be embedded tightly against the inner sides of the two guide baffles 7 and can move away from or closer to the position of the hook fastener 5. By providing two guide baffles 7 on both sides of the battery body 1, the purpose is to facilitate the user to push the battery body 1 more accurately into the hook fastener 5, facilitate the accurate alignment and placement of the battery body 1, and also strengthen the plate to prevent deformation of the mounting plate 2, and enhance the overall structural stability of the drone battery mounting structure.
[0037] In this embodiment, the snap fastener 5 includes a first limiting boss bolt 51 and a first boss nut 52; the first limiting boss bolt 51 is fixed to the mounting plate 2 by the first boss nut 52; the first limiting boss bolt 51 has a first limiting boss head 511 located above the mounting plate 2; there is a first snap fastener limiting space 53 between the first limiting boss head 511 and the mounting plate 2; the positioning slot 41 is embedded in the first snap fastener limiting space 53 and is fitted onto the screw of the first limiting boss bolt 51, and is limited to the mounting plate 2 by the snap fastener of the first limiting boss head 511. The screw of the first limiting boss bolt 51 serves as a matching sleeve for the positioning slot 41. A first hook limiting space 53 is formed between the head 511 of the first limiting boss and the mounting plate 2. The head 511 of the first limiting boss then limits the second edge 4. The positioning slot 41 is embedded into the first hook limiting space 53, and the matching sleeve is then placed on the screw of the first limiting boss bolt 51. The hook of the head 511 of the first limiting boss then limits the second edge 4 on the mounting plate 2. Under the combined action of the first limiting boss bolt 51 and the mounting plate 2, and in conjunction with the manual disassembly fastener 6, the battery body 1 is locked in all directions (up, down, left, right, front, and back). The connection is stable and reliable, preventing the battery body 1 from loosening or falling off due to vibration or other reasons. Furthermore, no tools are required during installation and removal, making battery installation and replacement easy and greatly improving the efficiency of battery installation and removal.
[0038] More preferably, the drone battery mounting structure also includes a locking hook fastener 8; the mounting plate 2 has a locking slot 23 on one end near the first edge 3; the locking hook fastener 8 is connected to the first edge 3 and engages with the locking slot 23 for hook-locking connection. The locking hook fastener 8 includes a second limiting boss bolt 81 and a second boss nut 82; the second limiting boss bolt 81 is fixed to the first edge 3 by the second boss nut 82; the second limiting boss bolt 81 has a second limiting boss head 811 located below the first edge 3; a second hook-locking space 83 is provided between the second limiting boss head 811 and the first edge 3; the locking slot 23 is embedded in the second hook-locking space 83 and is fitted onto the screw of the second limiting boss bolt 81, and is locked to the first edge 3 by the hook of the second limiting boss head 811. The locking fastener 8 and the snap fastener 5 have the same or similar structure and operate on the same principle. The difference lies in the installation positions of the second limiting boss bolt 81, the second boss nut 82, and the locking slot 23. Specifically, the screw of the second limiting boss bolt 81 serves as the fitting sleeve for the locking slot 23. A second snap fastener limiting space 83 is formed between the head 811 of the second limiting boss and the first edge 3. The head 811 of the second limiting boss then limits the mounting plate 2, embedding the locking slot 23 into the second snap fastener limiting space 83. The fitting sleeve then... On the screw of the platform bolt 81, the second limiting boss head 811 is used to limit and fix the mounting plate 2 on the first edge 3. Under the combined action of the second limiting boss bolt 81 and the first edge 3, the first edge 3 is further fixed on the mounting plate 2. Combined with the manual disassembly fastener 6, the battery body 1 is limited and locked in all directions, including up, down, left, and right. The connection is stable and reliable, avoiding the loosening or falling off of the battery body 1 due to vibration or other reasons. Moreover, no tools are needed during disassembly and assembly, and the battery can be easily installed and replaced. The operation is simple and greatly improves the efficiency of battery disassembly and assembly.
[0039] In this embodiment, based on the above-described UAV battery mounting structure, the manually disassembly fastener 6 is a plunger spring positioning lock pin 61. The manually disassembly fastener 6 is a plunger spring positioning lock pin 61; the first edge 3 and the mounting plate 2 are detachably connected by the plunger spring positioning lock pin 61, and the locking between the first edge 3 and the mounting plate 2 can be released by pulling the plunger spring positioning lock pin 61. During installation, first, the battery body 1 is fitted into the space between the two guide baffles 7. Then, the battery body 1 is accurately pushed into the hook fastener 5. After the battery body 1 is installed in place, the plunger spring positioning locking pin 61 is used to lock the first edge 3 and the mounting plate 2. When it is necessary to remove the battery body 1, pull the plunger spring positioning locking pin 61 to release the lock between the first edge 3 and the mounting plate 2, and then release the lock between the second edge 4 and the mounting plate 2. Move the battery body 1 away from the hook fastener 5. At this time, move the battery body 1 out of the two guide baffles 7 and remove the battery body 1, thus removing the battery body 1 from the mounting plate 2. This method of using the plunger spring positioning locking pin 61 is simple in structure and easy to operate, allowing for easy and quick removal of the first edge 3 and the mounting plate 2 without the need for tools. At the same time, combined with the guide baffle 7, the snap fastener 5 and the locking snap fastener 8, the battery body 1 is locked in all directions (up, down, left, right, front, and back) during installation, ensuring a stable and reliable connection. This prevents the battery body 1 from loosening or falling off due to vibration or other reasons. It also enables quick installation and removal of the battery body 1, allowing users to easily replace the battery without the need for tools. The operation is simple and greatly improves the efficiency of battery installation.
[0040] Specifically, the plunger spring positioning locking pin 61 includes a plunger body 611, a spring, a locking pin body 612, and a pull ring 613; the first edge 3 and the mounting plate 2 are respectively provided with a first mounting hole 31 and a second mounting hole 21 that can be aligned with each other; the spring is disposed inside the plunger body 611; the locking pin body 612 is telescopically movable inside the plunger body 611 by means of the spring; the pull ring 613 is connected to one end of the locking pin body 612; the plunger body 611 is mounted on the second mounting hole 21, and the other end of the locking pin body 612 is adapted to pass through the first mounting hole 31. During installation, gently pull the pull ring 613. The spring compresses, and the locking pin 612 moves downward with the pull ring 613, aligning the first mounting hole 31 and the second mounting hole 21. Then, release the pull ring 613. Under the elastic return of the spring, the locking pin 612 returns to its original position and moves upward, passing through the first mounting hole 31. This design is simple, easy to operate, reduces the need for tools, and allows for easy and quick installation and removal between the first edge 3 and the mounting plate 2. Similarly, in another embodiment, changing the installation position of the plunger body 611 can also achieve the function of the plunger spring positioning locking pin 61, connecting the first edge 3 and the mounting plate 2. Specifically, the plunger body 611 is installed in the first mounting hole 31, and the other end of the locking pin 612 is adapted to pass through the second mounting hole 21.
[0041] The first edge 3 is also connected to the mounting plate 2 by a screw fastener 62. The number of screw fasteners 62 can be one, two, three, or other numbers, depending on the requirements. Specifically, the screw fastener 62 includes a locking bolt and a locking nut 621; the first edge 3 is provided with a third mounting hole 32; the mounting plate 2 is provided with a locking slot 23 corresponding to the third mounting hole 32 and communicating with the third mounting hole 32; the locking bolt passes through the locking slot 23 and the third mounting hole 32 and connects with the locking nut 621 to lock and fix the first edge 3 on the mounting plate 2. During installation, after the positioning bayonet 41 is connected to the hook fastener 5, the locking bayonet 23 is aligned with the third mounting hole 32. The design of the locking bayonet 23 makes it easier for the locking bolt to pass through. The locking bolt then passes through the third mounting hole 32 and matches and connects with the locking nut 621 to lock and fix the first edge 3 on the mounting plate 2, further enhancing the stability of the battery body 1 installed on the mounting plate 2. The operation is simple and the disassembly and assembly are convenient.
[0042] The disassembly and assembly principle of this utility model is as follows:
[0043] During installation, first gently pull the pull ring 613. The spring compresses, and the locking pin 612 moves downward with the pull ring 613, fitting the battery body 1 into the space between the two guide baffles 7. Then, push the battery body 1 accurately into the hook fastener 5 and the locking hook fastener 8. This is achieved by using the screw of the first limiting boss bolt 51 as a structure for the positioning slot 41 to fit into the sleeve. A first hook limiting space 53 is formed between the head 511 of the first limiting boss and the mounting plate 2. The positioning slot 41 is embedded into the first hook limiting space 53, and the fitting sleeve is fitted onto the screw of the first limiting boss bolt 51. The first limiting boss head 511 is used to hook and limit the second edge 4 on the mounting plate 2; at the same time, the screw of the second limiting boss bolt 81 is used as a structure for the locking slot 23 to be matched with the sleeve, forming a second hook limiting space 83 between the second limiting boss head 811 and the first edge 3, and the locking slot 23 is embedded into the second hook limiting space 83. Then the matching sleeve is on the screw of the second limiting boss bolt 81, and the second limiting boss head 811 is used to hook and limit the mounting plate 2 on the first edge 3, thereby further fixing the first edge 3 on the mounting plate 2.
[0044] After the battery body 1 is installed in place, the plunger spring positioning locking pin 61 is used to lock the first edge 3 and the mounting plate 2. At this time, the first mounting hole 31 and the second mounting hole 21 are aligned with each other. Then, the pull ring 613 is released. Under the elastic reset action of the spring, the locking pin 612 resets and moves upward, passing through the first mounting hole 31, and the first edge 3 is stably installed on the mounting plate 2.
[0045] When it is necessary to remove the battery body 1, simply pull the plunger spring positioning locking pin 61 to release the locking between the first edge 3 and the mounting plate 2, and then release the locking between the first edge 3 and the second edge 4 and the mounting plate 2 respectively. Move the battery body 1 away from the hook fastener 5 and the locking hook fastener 8. At this time, move the battery body 1 out of the two guide baffles 7 and remove the battery body 1 to achieve the removal of the battery body 1 from the mounting plate 2. Example
[0046] In this embodiment 2, as Figure 2 and Figure 6As shown, the drone battery mounting structure in this embodiment is basically the same as that in Embodiment 1, except that the plunger spring positioning locking pin 61 and the locking hook fastener 8 are replaced with a screw-tightening fastener 62. The manually disassembly fastener 6 is a screw-tightening fastener 62; the screw-tightening fastener 62 includes an insert bolt 621, a rivet nut 622 and a screw-tightening sleeve 623; a third mounting hole 32 is provided on the first edge 3; the mounting plate 2 is provided with a fourth mounting hole 24 corresponding to the position of the third mounting hole 32 and communicating with the third mounting hole 32; the rivet nut 622 is riveted to the third mounting hole 32; the insert bolt 621 is adapted to pass through the rivet nut 622 and the fourth mounting hole 24, and is adapted to connect with the screw-tightening sleeve 623 to lock and fix the first edge 3 on the mounting plate 2. During installation, after the positioning bayonet 41 is connected to the hook fastener 5, the insert bolt 621 is manually inserted through the rivet nut 622 and the third mounting hole 32, and connected to the screw sleeve 623. Without the use of tools, the first edge 3 can be detachably connected to the mounting plate 2, realizing the quick installation and removal of the battery body 1. Users can easily replace the battery without the use of tools. The operation is simple and greatly improves the efficiency of battery installation.
[0047] In summary, this utility model embodiment provides a drone battery mounting structure, which has the following advantages:
[0048] 1. By combining the mounting plate 2, the first edge 3, the second edge 4, the snap fastener 5, and the manual disassembly fastener 6, the snap fastener 5 is first locked to the sleeve of the positioning slot 41, and then the elastic locking function of the manual disassembly fastener 6 is used to achieve a detachable connection between the first edge 3 and the mounting plate 2. In this way, the battery body 1 is locked by a combination of snap fastener 5 and manual disassembly fastener 6, which realizes the quick installation and removal of the battery body 1. Users can easily replace the battery without the need for tools. The operation is simple and greatly improves the efficiency of battery installation.
[0049] Second, the design of the first edge 3 and the second edge 4 being tightly attached to the mounting plate 2, as well as the tight cooperation between the hook fastener 5 and the positioning bayonet 41, ensures the stability of the battery during installation. At the same time, the elastic locking function of the manual disassembly fastener 6 further enhances the connection strength between the battery body 1 and the mounting plate 2, preventing the battery body 1 from loosening or falling off due to vibration or other reasons, thus achieving a stable and reliable structure.
[0050] Third, by setting two guide baffles 7 on both sides of the battery body 1, the purpose is to make it easier for the user to push the battery body 1 into the hook fastener 5 more accurately, so as to facilitate the accurate alignment and placement of the battery body 1. It can also strengthen the plate to prevent the mounting plate 2 from deforming and enhance the overall structural stability of the drone battery mounting structure.
[0051] The above description is only a preferred embodiment of this application. It should be noted that for those skilled in the art, several improvements and substitutions can be made without departing from the technical principles of this application, and these improvements and substitutions should also be considered within the scope of protection of this application.
Claims
1. A battery mounting structure for a drone, applied and mounted on a battery body, comprising a mounting plate, characterized in that, Also includes: The first edge and the second edge are respectively connected to the bottom end of the battery body and can be tightly attached to the mounting plate; the second edge has a positioning slot. A snap-hook fastener is attached to the mounting plate and engages with the positioning slot for snap-hook positioning and limiting connection. The fasteners are manually disassembled, and the first edge and the mounting plate are detachably connected by the manually disassembled fasteners.
2. The UAV battery mounting structure according to claim 1, characterized in that, It also includes guide baffles; two guide baffles are connected at intervals on the mounting plate; the two sides of the battery body are adapted to be embedded in close contact with the inner sides of the two guide baffles and can move away from or closer to the position of the hook fastener.
3. The UAV battery mounting structure according to claim 1, characterized in that, The snap fastener includes a first limiting boss bolt and a first boss nut; the first limiting boss bolt is fixed to the mounting plate by the first boss nut; the first limiting boss bolt has a first limiting boss head located above the mounting plate; there is a first snap-hook limiting space between the first limiting boss head and the mounting plate; the positioning slot is embedded in the first snap-hook limiting space and is fitted onto the threaded rod of the first limiting boss bolt, and is limited to the mounting plate by the snap-hook of the first limiting boss head.
4. The UAV battery mounting structure according to claim 3, characterized in that, It also includes a locking hook fastener; the mounting plate has a locking slot at one end near the first edge; the locking hook fastener is connected to the first edge and engages with the locking slot for hook-limiting connection.
5. The UAV battery mounting structure according to claim 4, characterized in that, The locking fastener includes a second limiting boss bolt and a second boss nut; the second limiting boss bolt is fixed to the first edge by the second boss nut; the second limiting boss bolt has a second limiting boss head located below the first edge; there is a second hook limiting space between the second limiting boss head and the first edge; the locking slot is embedded in the second hook limiting space and is fitted onto the thread of the second limiting boss bolt, and is limited to the first edge by the hook of the second limiting boss head.
6. The UAV battery mounting structure according to claim 1, characterized in that, The manually disassembly fastener is a plunger spring positioning lock pin; the first edge and the mounting plate are detachably connected by the plunger spring positioning lock pin, and the locking between the first edge and the mounting plate can be released by pulling the plunger spring positioning lock pin.
7. The UAV battery mounting structure according to claim 6, characterized in that, The plunger spring positioning locking pin includes a plunger body, a spring, a locking pin body, and a pull ring; the first edge and the mounting plate are respectively provided with a first mounting hole and a second mounting hole that can be aligned with each other; the spring is disposed in the plunger body; the locking pin body is telescopically mounted in the plunger body by means of the spring; the pull ring is connected to one end of the locking pin body; The plunger body is mounted on the second mounting hole, and the other end of the locking pin body is adapted to pass through the first mounting hole; Alternatively, the plunger body is mounted on the first mounting hole, and the other end of the locking pin is adapted to pass through the second mounting hole.
8. The UAV battery mounting structure according to claim 1, characterized in that, The mounting plate is provided with several heat dissipation holes.
9. The UAV battery mounting structure according to claim 1, characterized in that, The mounting plate is made of aluminum or aluminum alloy.
10. The UAV battery mounting structure according to any one of claims 1 to 3, characterized in that, The manually disassembled fastener is a screw-tightening fastener; the screw-tightening fastener includes an insert bolt, a rivet nut, and a screw sleeve; a third mounting hole is provided on the first edge; the mounting plate is provided with a fourth mounting hole corresponding to the third mounting hole and communicating with the third mounting hole; the rivet nut is riveted to the third mounting hole; the insert bolt is adapted to pass through the rivet nut and the fourth mounting hole, and is adapted to connect with the screw sleeve to lock and fix the first edge on the mounting plate.