Combined wireless transceiver
By introducing heat dissipation and synchronization adjustment components into the USB XLR modular wireless transceiver, the heat dissipation problem during the operation of multiple docking stations is solved, achieving targeted heat dissipation and equipment protection, and improving heat dissipation efficiency and product lifespan.
Patent Information
- Application Number
- CN202511169672.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-20
- Publication Date
- 2025-10-31
- Estimated Expiration
- Not applicable · inactive patent
Smart Images

Figure CN120880484A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of wireless controllers, and more specifically, to a combined wireless transceiver device. Background Technology
[0002] A USB XLR wireless transceiver is a device used for wireless communication, typically for transferring data from one device to another without the need for a traditional wired connection.
[0003] The USB XLR modular wireless transceiver consists of a main control module, a wireless transceiver module, and an interface module. The interface module includes modular expansion docks, which can be used to connect wireless devices. When multiple expansion docks are working, the heat generated by the entire USB XLR modular wireless transceiver increases, affecting signal reception quality and transmission performance. Existing solutions involve adding heat dissipation holes or slots to the casing of the USB XLR modular wireless transceiver to increase the heat dissipation surface area and promote heat dissipation. However, this only dissipates a small amount of heat. For the heat generated when multiple modular expansion docks are working, it is difficult to handle the heat in a timely manner through the heat dissipation holes. Therefore, we have made an improvement and proposed a combined wireless transceiver. Summary of the Invention
[0004] The purpose of this invention is to address the problem of heat dissipation generated when single or multiple modular expansion docks are in operation.
[0005] To achieve the above-mentioned objectives, the present invention provides a USB XLR assembled wireless transceiver to improve the aforementioned problems.
[0006] The application is as follows: Includes the main body, multiple expansion docks mounted on the main body, and a shell slidably mounted on the main body, and also includes: Multiple dustproof plates are provided and are slidably mounted on the outer shell to seal the expansion dock; A heat dissipation component is mounted on the outer casing to dissipate heat from the expansion dock. Multiple synchronous adjustment components are provided, all of which are installed on the machine body and connected to the heat dissipation component and the dust cover. When a single dust cover slides out, the synchronous adjustment component drives the heat dissipation component to move to the outside of the single dust cover. When multiple dust covers slide out, the synchronous adjustment component drives the heat dissipation component to move to the center position of the multiple dust covers.
[0007] As a preferred technical solution of this application, the heat dissipation component includes a hollowed-out disk disposed on the outer shell, the hollowed-out disk having multiple strip grooves, a sliding column slidably disposed on the strip grooves, mounting plates being disposed at both ends of the sliding column, electrodes being disposed on the mounting plates, the output ends of the electrodes being connected to a drive shaft, the drive shaft being rotatably disposed on the sliding column, fan blades being disposed on the drive shaft, and circulation components being disposed on the body and outer shell to drive outside air into the body and then exhaust it to the outside.
[0008] As a preferred technical solution of this application, the circulation component includes a curved platform disposed within the body, the body having multiple discharge holes, and the outer shell having multiple filters.
[0009] As a preferred technical solution of this application, the synchronous adjustment component includes a support plate disposed on the hollow disk, a connecting plate disposed on the mounting disk, and a driving component disposed on the hollow disk to drive the fan blades to slide along the strip groove.
[0010] As a preferred technical solution of this application, the driving component includes a drive shaft rotatably mounted on a support plate, a gear mounted on the drive shaft, a rack mounted on the dustproof plate, the gear and rack meshing with each other, a collecting roller rotatably mounted on the drive shaft, the collecting roller being connected to the drive shaft via a torsion spring, a thin rope being disposed between the collecting roller and a connecting plate, one end of the thin rope being disposed on the connecting plate, the other end of the thin rope being wound around the collecting roller, the thin rope being slidably mounted on a hollowed-out disc, and a guide member being disposed on the hollowed-out disc to guide the thin rope as it slides.
[0011] As a preferred technical solution of this application, the guide includes a support seat rotatably mounted on a hollowed-out disk, a transmission roller mounted on the support seat, a thin rope slidably mounted on the transmission roller, an offset column mounted on the transmission roller, and a control component for controlling the rotation of the transmission shaft mounted on the hollowed-out disk.
[0012] As a preferred technical solution of this application, the control component includes a guide block disposed on the transmission shaft, a ratchet disposed on the receiving roller, the ratchet not contacting the guide block, a mating disc slidably disposed on the guide block, a pushing post disposed on the mating disc, a pawl rotatably disposed on the pushing post, the pawl and the pushing post being connected by a torsion spring, the pawl and the ratchet cooperating with each other, a wrapping ring rotatably disposed on the mating disc, the wrapping ring not contacting the guide block, a wedge block disposed on the dustproof plate, a spring disposed on the corresponding surface of the dustproof plate and the outer shell, and a one-way component disposed on the mating disc to drive the mating disc to rotate in one direction.
[0013] As a preferred technical solution of this application, the one-way component includes a circular groove disposed on the mating disc, a plurality of elastic plates disposed on the circular groove, and the jacking column is slidably disposed on the circular groove.
[0014] As a preferred technical solution of this application, a plurality of clamping blocks are slidably arranged on the outer shell, and the plurality of clamping blocks do not contact the dustproof plate. Springs are arranged on the corresponding surfaces of the plurality of dustproof plates and the outer shell.
[0015] As a preferred technical solution of this application, the clamping block is provided with a curved block, the curved block does not contact the dustproof plate, and the dustproof plate is provided with a wedge block two, the wedge block two cooperating with the curved plate.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows: The heat dissipation and synchronization adjustment components enable the fan blades to move near a single docking station when it is in operation, providing targeted cooling for that single docking station. When multiple docking stations are in operation simultaneously, the fan blades move to the center of the multiple docking stations for targeted cooling. This reduces energy consumption and improves heat dissipation efficiency. When the dustproof plate slides out, the clamping block also slides out to protect the wireless devices, preventing damage to the docking stations caused by collisions with external objects and extending the product's lifespan.
[0017] In the scheme of this application: 1. In order to solve the problem of targeted heat dissipation when a single or multiple modular expansion docks are working in the prior art, this application achieves targeted heat dissipation by setting up heat dissipation components and synchronization adjustment components. When a single expansion dock is working, the fan blades move to the vicinity of the single expansion dock to achieve targeted heat dissipation. When multiple expansion docks are working at the same time, the fan blades move to the center of multiple expansion docks to achieve targeted heat dissipation for multiple expansion docks, thereby reducing energy consumption and improving heat dissipation efficiency. 2. By using clamping blocks, the wireless devices inserted into the expansion dock are protected, solving the problem in the prior art where external objects collide with the wireless devices, causing damage to the expansion dock. Attached Figure Description
[0018] Figure 1 A schematic diagram of the overall structure of the USB XLR assembled wireless transceiver provided in this application; Figure 2 A cross-sectional view of the casing of the USB XLR assembled wireless transceiver provided in this application. Figure 3 A cross-sectional view of the casing of the USB XLR assembled wireless transceiver provided in this application. Figure 4An exploded structural diagram of the heat dissipation component 5 and the dustproof plate 4 of the USB XLR assembled wireless transceiver provided in this application; Figure 5 A schematic diagram of the position structure of the clamping block 12 of the USB XLR assembled wireless transceiver provided in this application; Figure 6 The USB XLR assembled wireless transceiver provided in this application Figure 5 Another structural diagram; Figure 7 A schematic diagram of the location structure of the heat dissipation component 5 of the USB XLR assembled wireless transceiver provided in this application; Figure 8 An exploded view of the five-part heat dissipation assembly of the USB XLR assembled wireless transceiver provided in this application; Figure 9 An exploded structural diagram of the guide component 9 parts of the USB XLR assembled wireless transceiver provided in this application; Figure 10 A schematic diagram of the guide component 9 for the USB XLR assembled wireless transceiver device provided in this application.
[0019] Figure 11 An exploded structural diagram of the guide component 9 parts of the USB XLR assembled wireless transceiver provided in this application; Figure 12 The USB XLR assembled wireless transceiver provided in this application Figure 11 Another structural diagram; Figure 13 A schematic diagram of the five-part heat dissipation assembly of the USB XLR assembled wireless transceiver provided in this application; Figure 14 This is an exploded view of the five-part heat dissipation assembly of the USB XLR assembled wireless transceiver provided in this application.
[0020] The image shows: 1. Main body; 2. Expansion dock; 3. Outer shell; 4. Dustproof plate; 5. Heat dissipation assembly; 501. Hollowed-out plate; 502. Strip groove; 503. Sliding column; 504. Mounting plate; 505. Electrode; 506. Drive shaft; 507. Fan blade; 6. Circulation component; 601. Curved platform; 602. Discharge hole; 603. Filter screen; 7. Synchronization adjustment component; 701. Support plate; 702. Connecting plate; 8. Drive component; 801. Transmission shaft; 802. Gear; 803. Rack; 804. Receiving... 805. String; 9. Guide component; 901. Support base; 902. Drive roller; 903. Offset column; 10. Control component; 1001. Guide block; 1002. Ratchet; 1003. Mating disc; 1004. Pushing column; 1005. Pawl; 1006. Wrapping ring; 1007. Wedge block one; 1008. Spring one; 11. One-way component; 1101. Circular groove; 1102. Elastic sheet; 12. Clamping block; 13. Spring two; 14. Curved surface block; 15. Wedge block two. Detailed Implementation
[0021] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of the present invention.
[0022] As described in the background art, there is a problem of targeted heat dissipation for the heat generated when multiple or a single modular expansion dock 2 are in operation.
[0023] To address this technical problem, the present invention provides a combined wireless transceiver device, which is applied in the field of wireless controllers.
[0024] For details, please refer to Figure 1 - Figure 14 The USB XLR modular wireless transceiver specifically includes a main body 1, multiple expansion docks 2 mounted on the main body 1, and a housing 3 slidably mounted on the main body 1, and also includes: Multiple dustproof plates 4 are provided and are slidably mounted on the outer shell 3 to seal the expansion dock 2 and prevent dust from entering the expansion dock 2; Heat dissipation component 5 is disposed on the outer casing 3 to dissipate heat from the expansion dock 2; Multiple synchronous adjustment components 7 are provided, all of which are installed on the body 1 and connected to the heat dissipation component 5 and the dustproof plate 4. When a single dustproof plate 4 is slid open, the synchronous adjustment component 7 drives the heat dissipation component 5 to move to the outside of the single dustproof plate 4. When multiple dustproof plates 4 are slid open, the synchronous adjustment component 7 drives the heat dissipation component 5 to move to the center position of the multiple dustproof plates 4.
[0025] The USB XLR modular wireless transceiver provided by this invention, through the heat dissipation component 5 and the synchronization adjustment component 7, enables the fan blade 507 to move near a single docking station 2 when it is working, thereby achieving targeted heat dissipation for that single docking station 2. When multiple docking stations 2 are working simultaneously, the fan blade 507 moves to the center of the multiple docking stations 2, thereby achieving targeted heat dissipation for all the docking stations 2. This reduces energy consumption and improves heat dissipation efficiency. When the dustproof plate 4 slides out, the clamping block 12 slides out to protect the wireless device, preventing damage to the docking station 2 caused by external objects colliding with the wireless device, and improving the product's service life.
[0026] To enable those skilled in the art to better understand the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings.
[0027] It should be noted that, unless otherwise specified, the embodiments and features and technical solutions in the present invention can be combined with each other.
[0028] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0029] Example 1, please refer to Figure 1 , Figure 7 , Figure 8 , Figure 13 and Figure 14A combined wireless transceiver device includes a heat dissipation component 5 comprising a perforated plate 501 mounted on a housing 3. The perforated plate 501 has multiple perforations to save material and facilitate the entry of outside air into the housing 1. The perforated plate 501 has multiple slots 502, each pointing towards a different expansion dock 2. Sliding posts 503 are slidably mounted on the slots 502, with mounting plates 504 at both ends of each post 503. Electrodes 505 are mounted on the mounting plates 504, and the output ends of the electrodes 505 are connected to… There is a drive shaft 506, which is rotatably mounted on a sliding column 503. A fan blade 507 is mounted on the drive shaft 506. The combination of the electrode 505, the drive shaft 506, and the fan blade 507 forms a basic heat dissipation device. Through the cooperation of the sliding column 503, the mounting plate 504, and the strip groove 502, the electrode 505, the drive shaft 506, and the fan blade 507 slide along the strip groove 502 for targeted heat dissipation of the expansion dock 2. The body 1 and the outer shell 3 are equipped with circulation components 6 that drive outside air into the body 1 and then exhaust it to the outside.
[0030] The circulation component 6 includes a curved platform 601 set inside the body 1. The body 1 is provided with multiple exhaust holes 602, which are located directly below the expansion dock 2. When the air inside the body 1 is discharged from the exhaust holes 602, the exhaust of the air can carry away a large amount of heat from the expansion dock 2. Its working principle is similar to that of air cooling. The outer shell 3 is provided with multiple filters 603, which can filter dust particles in the outside air.
[0031] Example 2 further optimizes the USB XLR assembled wireless transceiver provided in Example 1. Specifically, Figure 2 , Figure 3 , Figure 4 , Figure 6 , Figure 9 , Figure 10 , Figure 11 and Figure 12 As shown, the synchronous adjustment component 7 includes a support plate 701 disposed on the hollow disk 501. When the outer shell 3 is assembled with the body, the support plate 701 can assist the outer shell 3 in guiding it during installation because the body 1 has multiple slots that cooperate with the support plate 701. The installation disk 504 is provided with a connecting plate 702, and the hollow disk 501 is provided with a driving component 8 that drives the fan blade 507 to slide along the strip groove 502.
[0032] The driving component 8 includes a drive shaft 801 rotatably mounted on a support plate 701, a gear 802 mounted on the drive shaft 801, and a rack 803 mounted on the dustproof plate 4. The gear 802 and the rack 803 mesh with each other. A receiving roller 804 is rotatably mounted on the drive shaft 801. The receiving roller 804 is connected to the drive shaft 801 by a torsion spring. A thin rope 805 is positioned between the receiving roller 804 and the connecting plate 702. The thin rope 805 is wound around the receiving roller 804, which pulls the connecting plate 702, causing the electrode 505, the drive shaft 506, and the fan blade 507 to slide along the strip groove 502 as a whole. One end of the thin rope 805 is mounted on the connecting plate 702, and the other end of the thin rope 805 is wound around the receiving roller 804. The thin rope 805 is slidably mounted on a hollowed-out disc 501. A guide 9 is provided on the hollowed-out disc 501 to guide the thin rope 805 during sliding.
[0033] The guide member 9 includes a support base 901 rotatably mounted on the hollowed-out disk 501, a transmission roller 902 mounted on the support base 901, a thin rope 805 slidably mounted on the transmission roller 902, and an offset column 903 mounted on the transmission roller 902. When the thin rope 805 is pulled by a force in a certain direction, the rotation of the support base 901 ensures that the thin rope 805 remains in a horizontal straight line with the pulling force, thus reducing the friction between the thin rope 805 and the hollowed-out disk 501 and the transmission roller 903. The offset column 903 prevents the thin rope 805 from detaching from the transmission roller 902. The hollowed-out disk 501 is equipped with a control member 10 for controlling the rotation of the transmission shaft 801.
[0034] The control component 10 includes a guide block 1001 mounted on the drive shaft 801, a ratchet 1002 mounted on the receiving roller 804 (the ratchet 1002 does not contact the guide block 1001), a mating disc 1003 slidably mounted on the guide block 1001 (the guide block 1001 guides the sliding direction of the mating disc 1003), a push post 1004 mounted on the mating disc 1003, and a pawl 1005 rotatably mounted on the push post 1004. The pawl 1005 and the push post 1004 are connected by a torsion spring. The ratchet 1002 and the pawl 1005 engage to make the pawl 1005... 5 can only drive the ratchet 1002 to rotate in one direction. The pawl 1005 cooperates with the ratchet 1002. The mating disc 1003 is rotatably provided with a wrapping ring 1006. The wrapping ring 1006 does not contact the guide block 1001. The dustproof plate 4 is provided with a wedge block 1007. By squeezing the wrapping ring 1006 by the wedge block 1007, the pawl 1005 cooperates with the ratchet 1002, so that the ratchet 1002 rotates in one direction. The dustproof plate 4 and the corresponding surface of the outer shell 3 are provided with a spring 1008. The mating disc 1003 is provided with a one-way component 11 that drives the mating disc 1003 to rotate in one direction.
[0035] The one-way component 11 includes a circular groove 1101 provided on the mating disc 1003. A plurality of elastic plates 1102 are provided on the circular groove 1101. The elastic plates 1102 control the unidirectional sliding of the actuating column 1004. The actuating column 1004 is slidably disposed on the circular groove 1101. Through the cooperation of the elastic plates 1102, the circular groove 1101 and the actuating column 1004, the actuating column 1004 can only slide unidirectionally along the circular groove 1101.
[0036] Example 3 further optimizes the USB XLR assembled wireless transceiver provided in Example 1 or 2, specifically, as follows: Figure 5 As shown, multiple clamping blocks 12 are slidably arranged on the outer shell 3. The multiple clamping blocks 12 do not contact the dustproof plate 4. The clamping blocks 12 wrap around the wireless device, which helps to protect the interface between the wireless device and the expansion dock 2. The multiple dustproof plates 4 are provided with springs 13 on the corresponding surfaces of the outer shell 3. The elasticity of the springs 13 drives the dustproof plates 4 to reset.
[0037] A curved block 14 is provided on the clamping block 12. The curved block 14 is shaped like a truncated cone, which facilitates the air to be discharged from the discharge hole 602 along the surface of the curved block 14. The curved block 14 does not contact the dustproof plate 4. A wedge block 2 15 is provided on the dustproof plate 4. The wedge block 2 15 cooperates with the curved block 14. Because the contact part between the curved block 14 and the wedge block 2 15 is curved, the limit between the wedge block 2 15 and the curved block 14 can be released when the dustproof plate 4 is pulled down with force, which is convenient for the user.
[0038] In use, the rotation of electrode 505 drives the drive shaft 506 to rotate, the drive shaft 506 drives the fan blade 507 to rotate, and the rotation of fan blade 507 drives outside air to enter the body 1 through filter screen 603. The air is discharged from the exhaust hole 602 along the curved platform 601, forming an air circulation. When fan blade 507 is in the center, the wind generated by the rotation of fan blade 507 is discharged from the exhaust hole 602 along the curved platform 601, dissipating heat from the entire expansion dock 2. When a single wireless device is inserted into the expansion dock 2, pushing the dust cover 4 upward causes it to slide open. The rack 803 on the dust cover 4 drives the gear 802 to rotate. The wedge block 1007 on the dust cover 4 presses against the wrapping ring 1006, causing the wrapping ring 1006 to slide along the drive shaft 801. The wrapping ring 1006 drives the mating disc 1003, along with the pawl 1005, to slide synchronously. The mating disc 1003 slides along the guide block 1001, causing the pawl 1005 to engage with the ratchet 1002. The gear 802 rotates, driving the drive shaft 801 to rotate. The drive shaft 801 then drives the guide block 1001, along with the mating disc 1003, to rotate. Pawl 1005 on 1003 drives ratchet 1002 to rotate, ratchet 1002 drives storage roller 804 to rotate, storage roller 804 winds up rope 805, rope 805 pulls connecting plate 702, connecting plate 702 slides along the direction of tension, and then mounting plate 504 together with sliding column 503 slides along strip groove 502, so that fan blade 507 moves to the vicinity of the working expansion dock 2, and performs targeted cooling on individual expansion dock 2. When the entire fan blade 507 moves, it will pull the remaining storage rollers 804. Since storage roller 804 is connected to drive shaft 801 by torsion spring, the remaining storage rollers 804 release rope 805. When multiple wireless devices are inserted into the expansion dock 2, multiple dustproof panels 4 need to be unfolded. When the second dustproof panel 4 is unfolded, similarly, the storage roller 804 rotates to wind up the thin rope 805, which will pull the thin rope 805 wound up by the first dustproof panel 4. The thin rope 805 wound up by the first dustproof panel 4 is pulled, causing the storage roller 804 to rotate. The ratchet 1002 on the storage roller 804 rotates synchronously. The ratchet 1002 drives the pawl 1005 together with the push post 1004 to slide along the circular groove 1101. Through the action of the elastic sheet 1102, it forms free rotation, and then the thin rope 805 wound up by the first dustproof panel 4 is released. The fan blade 507 moves along the strip groove 502 to the space between the two expansion docks to provide targeted heat dissipation for the two working expansion docks 2. This reduces energy consumption and improves heat dissipation efficiency. When the dustproof plate 4 is unfolded, the wedge-shaped block 15 on the dustproof plate 4 presses the curved block 14. The curved block 14 connects to the clamping block 12 and slides along the outer shell 3. When the wireless device is inserted into the expansion dock 2, the clamping block 12 protects the wireless device and prevents the expansion dock 2 from being damaged by dragging the wireless device.
[0039] In this invention, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, an electrical connection, or a connection that allows communication between them; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0040] Obviously, the embodiments described above are merely some embodiments of the present invention, not all embodiments. The accompanying drawings show preferred embodiments of the present invention, but do not limit the patent scope of the present invention. The present invention can be implemented in many different forms; rather, these embodiments are provided to provide a more thorough and complete understanding of the disclosure of the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing specific embodiments, or make equivalent substitutions for some of the technical features. Any equivalent structures made using the content of this specification and drawings, directly or indirectly applied to other related technical fields, are similarly within the patent protection scope of this invention.
Claims
1. A combined wireless transceiver device, comprising a main body (1), a plurality of expansion docks (2) disposed on the main body (1), and a shell (3) slidably disposed on the main body (1), characterized in that, Also includes: Multiple dustproof plates (4) are provided and are slidably mounted on the outer shell (3) to seal the expansion dock (2); A heat dissipation component (5) is provided on the outer casing (3) to dissipate heat from the expansion dock (2); Multiple synchronous adjustment components (7) are provided, all of which are installed on the body (1) and connected to the heat dissipation component (5) and the dustproof plate (4). When a single dustproof plate (4) slides out, the synchronous adjustment component (7) drives the heat dissipation component (5) to move to the outside of the single dustproof plate (4). When multiple dustproof plates (4) slide out, the synchronous adjustment component (7) drives the heat dissipation component (5) to move to the center position of the multiple dustproof plates (4).
2. The combined wireless transceiver device according to claim 1, characterized in that, The heat dissipation assembly (5) includes a hollow disk (501) disposed on the outer shell (3). The hollow disk (501) is provided with multiple strip grooves (502). A sliding column (503) is slidably disposed on the strip grooves (502). Mounting disks (504) are respectively disposed at both ends of the sliding column (503). Electrodes (505) are disposed on the mounting disks (504). The output end of the electrode (505) is connected to a drive shaft (506). The drive shaft (506) is rotatably disposed on the sliding column (503). Fan blades (507) are disposed on the drive shaft (506). A circulation component (6) is provided on the body (1) and the outer shell (3) to drive outside air into the body (1) and then exhaust it to the outside.
3. The combined wireless transceiver device according to claim 2, characterized in that, The circulation component (6) includes a curved platform (601) disposed in the body (1), the body (1) is provided with a plurality of discharge holes (602), and the outer shell (3) is provided with a plurality of filters (603).
4. The combined wireless transceiver device according to claim 3, characterized in that, The synchronous adjustment component (7) includes a support plate (701) disposed on the hollow disk (501), a connecting plate (702) disposed on the mounting disk (504), and a driving component (8) disposed on the hollow disk (501) to drive the fan blade (507) to slide along the strip groove (502).
5. A combined wireless transceiver device according to claim 4, characterized in that, The driving component (8) includes a drive shaft (801) rotatably mounted on a support plate (701), a gear (802) mounted on the drive shaft (801), a rack (803) mounted on the dustproof plate (4), the gear (802) and the rack (803) meshing with each other, a collecting roller (804) rotatably mounted on the drive shaft (801), the collecting roller (804) and the drive shaft (801) being connected by a torsion spring, a thin rope (805) being mounted between the collecting roller (804) and the connecting plate (702), one end of the thin rope (805) being mounted on the connecting plate (702), the other end of the thin rope (805) being wound around the collecting roller (804), the thin rope (805) being slidably mounted on a hollow disc (501), and a guide (9) being mounted on the hollow disc (501) to guide the thin rope (805) when it slides.
6. A combined wireless transceiver device according to claim 5, characterized in that, The guide (9) includes a support base (901) rotatably mounted on the hollow disk (501), a transmission roller (902) mounted on the support base (901), a thin rope (805) slidably mounted on the transmission roller (902), an offset column (903) mounted on the transmission roller (902), and a control component (10) for controlling the rotation of the transmission shaft (801) mounted on the hollow disk (501).
7. A combined wireless transceiver device according to claim 6, characterized in that, The control component (10) includes a guide block (1001) mounted on the drive shaft (801), a ratchet (1002) mounted on the receiving roller (804), the ratchet (1002) not contacting the guide block (1001), a mating disc (1003) slidably mounted on the guide block (1001), a top-moving post (1004) mounted on the mating disc (1003), and a pawl (1005) rotatably mounted on the top-moving post (1004). The pawl (1005) interacts with the top-moving post (1004). The components are connected by a torsion spring. The pawl (1005) and the ratchet (1002) cooperate with each other. A wrapping ring (1006) is rotatably provided on the mating disc (1003). The wrapping ring (1006) does not contact the guide block (1001). A wedge block (1007) is provided on the dustproof plate (4). A spring (1008) is provided on the corresponding surface of the dustproof plate (4) and the outer shell (3). A one-way component (11) is provided on the mating disc (1003) to drive the mating disc (1003) to rotate in one direction.
8. A combined wireless transceiver device according to claim 7, characterized in that, The one-way component (11) includes a circular groove (1101) provided on the mating plate (1003), and a plurality of elastic plates (1102) are provided on the circular groove (1101). The jacking column (1004) is slidably disposed on the circular groove (1101).
9. A combined wireless transceiver device according to claim 8, characterized in that, Multiple clamping blocks (12) are slidably arranged on the outer shell (3). The multiple clamping blocks (12) do not contact the dustproof plate (4). Springs (13) are arranged on the corresponding surfaces of the multiple dustproof plates (4) and the outer shell (3).
10. A combined wireless transceiver device according to claim 9, characterized in that, The clamping block (12) is provided with a curved block (14), which does not contact the dustproof plate (4). The dustproof plate (4) is provided with a wedge block (15), which cooperates with the curved plate.