An energy-saving 5G wireless communication receiving and adjusting device
By designing a heat collecting wing frame, ventilation device and linkage adjustment device in the 5G wireless communication receiving equipment, all-round blowing boosting is achieved, the problem of insufficient heat dissipation of existing equipment is solved, and the heat dissipation effect and energy-saving performance of the equipment are improved.
Patent Information
- Application Number
- CN202210449848.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-04-27
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2042-04-27
AI Technical Summary
The single internal cooling device of the existing 5G wireless communication receiving device cannot meet the internal heat exchange requirements, resulting in additional equipment power consumption.
An energy-saving 5G wireless communication reception and adjustment device including a heat collecting wing frame, a receiving device, a ventilation device, a booster device and a stabilizing component is designed. The ventilation device drives the operation of the linkage adjustment device, and achieves all-round blowing and boosting, accelerates the gas circulation speed, and improves the heat dissipation effect.
It improves the internal heat dissipation effect of the equipment, saves energy and is environmentally friendly, and realizes pressurized fixation of the box by stabilizing the components, improving the shortcomings of existing devices.
Smart Images

Figure CN114828573B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the wireless communication device industry, and more particularly to an energy-saving 5G wireless communication receiving and adjusting device. Background Art
[0002] As a new type of mobile communication network, 5G not only needs to solve person-to-person communication and provide users with more immersive extreme service experiences such as augmented reality, virtual reality, and ultra-high-definition video, but also needs to solve the problems of person-to-thing and thing-to-thing communication, and meet the requirements of Internet of Things applications such as mobile healthcare, vehicle networking, smart home, industrial control, and environmental monitoring. Ultimately, 5G will penetrate into all industries and fields of the economic society and become a key new infrastructure to support the digital, networked, and intelligent transformation of the economic society.
[0003] When the existing 5G wireless communication receiving device is in use, a separate heat dissipation device needs to be set inside for heat exchange treatment. Due to the large amount of heat generated, the single heat dissipation device inside the existing 5G wireless communication receiving device cannot meet the internal heat exchange requirements, and the device power consumption is additionally increased. Therefore, to solve this problem, it is urgent to develop an energy-saving 5G wireless communication receiving and adjusting device. Summary of the Invention
[0004] The purpose of the present invention is to provide an energy-saving 5G wireless communication receiving and adjusting device to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solutions:
[0006] An energy-saving 5G wireless communication receiving and adjusting device, comprising:
[0007] A box body;
[0008] A heat collecting fin frame, which is connected to the inside of the box body and is used for the directional collection of heat inside the box body;
[0009] A receiving device, which is connected to the box body and is used for the reception and transmission of wireless signals;
[0010] A ventilation device, which is connected to the box body and is used for the export and discharge of heat inside the box body;
[0011] A pressurizing device, which is connected to the ventilation device;
[0012] A stabilizing component, one end of which is connected to the ventilation device and the other end is connected to the box body, and is used for the stable reinforcement of the external operation of the box body;
[0013] Among them, the pressurizing device includes:
[0014] The first linkage adjustment device is connected to the interior of the box body and is used to cooperate with the ventilation device to complete the pressurized lateral air blowing inside the box body.
[0015] The second linkage adjustment device is connected to the ventilation device and is used to cooperate with the ventilation device to complete the pressurized longitudinal air blowing inside the box body.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows: The device is reasonably designed. While the internal ventilation device realizes heat exchange drive, it synchronously drives the operation of the first linkage adjustment device and the second linkage adjustment device, realizes all-round internal air blowing and pressurization, speeds up the internal gas flow rate, improves the internal heat dissipation effect of the equipment, saves energy and is environmentally friendly. At the same time, it can drive the external stable component to realize the pressurized fixation of the box body, improves the deficiencies of the existing device, has high practicability and market prospects, and is suitable for large-scale promotion and use. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the internal structure of an energy-saving 5G wireless communication receiving and adjusting device in an embodiment of the present invention.
[0018] Figure 2 It is a schematic diagram of the external structure of an energy-saving 5G wireless communication receiving and adjusting device in an embodiment of the present invention.
[0019] Figure 3 It is a schematic diagram of the structure of an inclined plane body in an energy-saving 5G wireless communication receiving and adjusting device in an embodiment of the present invention.
[0020] Figure 4 It is Figure 1 a partial structural schematic diagram at A in
[0021] In the figure: 1 - box body, 2 - receiving device, 3 - ventilation device, 4 - pressurization device, 5 - first linkage adjustment device, 6 - second linkage adjustment device, 7 - stable component, 101 - heat collecting fin frame, 201 - first driving member, 202 - connecting frame, 203 - receiver, 301 - rack bin, 302 - fixing frame, 303 - blade, 304 - second driving member, 305 - inclined plane body, 306 - communication groove, 501 - first limiting rack bin, 502 - limiting groove, 503 - first elastic member, 504 - positioning frame, 505 - first transmission frame, 506 - second transmission frame, 507 - fixed shaft frame, 508 - first linkage plate frame, 601 - second limiting rack bin, 602 - second elastic member, 603 - third transmission frame, 604 - rack, 605 - second linkage plate frame, 606 - half gear, 701 - positioning groove frame, 702 - communication bin, 703 - control member, 704 - positioning frame, 705 - third elastic member. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0022] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0023] An energy-saving 5G wireless communication receiving and adjusting device. In one embodiment of the present invention, as Figure 1 and Figure 2 shown, it includes: a box body 1; a heat collecting fin frame 101, which is connected to the inside of the box body 1 and is used for the directional collection of heat inside the box body 1; a receiving device 2, which is connected to the box body 1 and is used for the reception and transmission of wireless signals; a ventilation device 3, which is connected to the box body 1 and is used for the export and emission of heat inside the box body 1; a pressurizing device 4, which is connected to the ventilation device 3; a stabilizing component 7, one end of which is connected to the ventilation device 3 and the other end is connected to the box body 1, and is used for the stable reinforcement of the operation outside the box body 1; wherein, the pressurizing device 4 includes: a first linkage adjusting device 5, which is connected to the inside of the box body 1 and is used to cooperate with the ventilation device 3 to complete the pressurized horizontal air blowing inside the box body 1; a second linkage adjusting device 6, which is connected to the ventilation device 3 and is used to cooperate with the ventilation device 3 to complete the pressurized vertical air blowing inside the box body 1.
[0024] In one embodiment of the present invention:
[0025] As Figure 1 and Figure 2 shown, the receiving device 2 includes: a first driving member 201, which is connected to the box body 1; the first driving member 201 is selected as an electric rotating shaft; a connecting frame 202, which is connected to the first driving member 201; a receiver 203, which is connected to the end of the connecting frame 202 away from the first driving member 201;
[0026] Circuit equipment coupled with the receiver 203 is installed inside the box body 1. Driven by the first driving member 201, it can cooperate with the connecting frame 202 to adjust the receiving angle of the external receiver 203;
[0027] In this application, the first driving member 201 is not limited to an electric roller shaft. Other devices such as a linear motor, an electric cylinder, or a pneumatic cylinder can also be used, as long as the angle adjustment of the receiver 203 can be achieved, and no specific limitation is made here.
[0028] In one embodiment of the present invention:
[0029] As shown Figure 1 in the figure, the ventilation device 3 includes: a rack bin 301, the rack bin 301 is connected to the box body 1; a fixed rack 302, the fixed rack 302 is installed inside the rack bin 301; a second driving member 304, the second driving member 304 penetrates through both sides of the box body 1 and is connected to the fixed rack 302; the second driving member 304 is selected as an electric roller; a plurality of blades 303, the plurality of blades 303 are connected to the second driving member 304;
[0030] The rack bin 301 is internally communicated with the box body 1. Driven by the second driving member 304, a plurality of blades 303 arranged inside the rack bin 301 can be driven to rotate, so as to form a negative pressure inside the rack bin 301 and the box body 1, and directionally absorb and export the heat generated by the internal electrical equipment;
[0031] In this application, the second driving member 304 is not limited to an electric roller. A linear motor, an electric cylinder or a cylinder drive, etc. can also be used, as long as the rotation adjustment of the blade 303 can be realized, and no specific limitation is made here.
[0032] In an embodiment of the present invention:
[0033] As shown Figure 1 and Figure 3 in the figure, the ventilation device 3 further includes: an inclined plane body 305, the inclined plane body 305 is sleeved outside the second driving member 304 and is used for driving the movement of the first linkage adjustment device 5;
[0034] The inclined plane bodies 305 on both sides are arranged in a mirror image, and a communication groove 306 is arranged inside the inclined plane body 305. When the second driving member 304 rotates, the inclined plane bodies 305 on both sides can be driven to rotate synchronously, so as to drive the first linkage adjustment device 5 in contact therewith.
[0035] In an embodiment of the present invention:
[0036] As shown Figure 1As shown, the first linkage adjustment device 5 includes: a first limit frame bin 501, which is connected to the second linkage adjustment device 6; a limit groove 502, which is arranged inside the first limit frame bin 501; a first elastic member 503, which is installed inside the limit groove 502; the first elastic member 503 is a spring; a positioning frame 504, which passes through the limit groove 502 and is connected to the first elastic member 503; a first transmission frame 505, which is connected to the positioning frame 504; a second transmission frame 506, one end of which is connected to the first transmission frame 505 and the other end of which abuts against the inclined surface body 305, and is used to cooperate with the inclined surface body 305 to complete the movement transmission of the first transmission frame 505; a fixed shaft frame 507, which is connected to the box body 1; a first linkage plate frame 508, which is connected to the fixed shaft frame 507 through penetration, and the outer end of which is movably connected to the end of the first transmission frame 505 away from the positioning frame 504;
[0037] When the inclined surface body 305 rotates, the external inclined surface abuts against the second transmission frame 506, so as to cooperate with the second transmission frame 506 and the first elastic member 503 to drive the first transmission frame 505 to move horizontally, realizing the air blowing and pressurization of the top of the box body 1. At the same time, under the cooperation of the fixed shaft frame 507, the first linkage plate frame 508 at the bottom is driven to swing and adjust around the fixed shaft frame 507 as the axis, realizing the horizontal air blowing and pressurization of the bottom of the box body 1.
[0038] In an embodiment of the present invention:
[0039] As Figure 1 and Figure 4 As shown, the second linkage adjustment device 6 includes: a second limit frame bin 601, which is connected to the inside of the box body 1; a second elastic member 602, which is fixedly connected to the inside of the second limit frame bin 601; the second elastic member 602 is a spring; a third transmission frame 603, which is connected to the second elastic member 602; a rack 604, which is arranged outside the third transmission frame 603; a semi-gear 606, which is sleeved outside the second driving member 304; a second linkage plate frame 605, which is installed on the side of the third transmission frame 603 away from the second elastic member 602;
[0040] When the second driving member 304 rotates, it can drive the outer sleeve on the half gear 606 to rotate. The half gear 606 intermittently engages with the outer rack 604 of the third transmission frame 603, and cooperates with the second elastic member 602 inside the second limiting frame 601 to realize the longitudinal reciprocating movement of the third transmission frame 603 and the second linkage plate frame 605 at the bottom, thereby realizing the longitudinal blasting and pressurization inside the box body 1, and cooperating with the first linkage adjustment device 5 to complete the large-scale blasting and pressurization inside the box body 1, further increasing the internal air circulation speed and improving the heat dissipation effect.
[0041] In one embodiment of the present invention:
[0042] like Figure 1 and Figure 2 As shown, the stabilizing assembly 7 includes: a positioning slot frame 701, the positioning slot frame 701 is connected to the box body 1; at least two connecting chambers 702, the connecting chamber 702 is connected to the frame chamber 301; a control member 703, the control member 703 is connected to the connecting chamber 702; the control member 703 is a solenoid valve; a third elastic member 705, the third elastic member 705 is installed inside the connecting chamber 702; the third elastic member 705 is a spring; a positioning frame 704, the positioning frame 704 is connected to the third elastic member 705;
[0043] When the internal second driving member 304 is running, a certain vibration will be generated, which will affect the connection stability and operation stability of the internal components. At the same time, the control member 703 is turned on, and part of the gas inside the shelf bin 301 is introduced into the inside of the connecting bins 702 on both sides, driving the positioning frames 704 on both sides to move outward and insert into the positioning slot frames 701 on both sides, so as to further balance the vibration effect generated by the second driving member 304, and then the control member 703 is closed, and all the gas inside the shelf bin 301 is led out to the outside through the outer slot body of the shelf bin 301 (not shown in the figure);
[0044] In the present application, the control element 703 is not limited to a solenoid valve device, and can also be controlled by a manual valve, as long as the connectivity adjustment of the connecting chamber 702 can be achieved, and no specific limitation is made here.
[0045] The working principle of the present invention is as follows: In specific applications, the device is installed outdoors. Circuit devices coupled to the receiver 203 are installed inside the box body 1. Driven by the first driving member 201, it can cooperate with the connecting frame 202 to adjust the receiving angle of the external receiver 203. The rack bin 301 is communicated with the inside of the box body 1. Driven by the second driving member 304, it can drive a plurality of blades 303 arranged inside the rack bin 301 to rotate, forming a negative pressure inside the rack bin 301 and the box body 1, and directionally absorbing and discharging the heat generated by the internal electrical equipment. The two inclined bodies 305 are arranged mirror-symmetrically, and a communication groove 306 is arranged inside the inclined body 305. When the second driving member 304 rotates, it can drive the two inclined bodies 305 to rotate synchronously, thereby driving the first linkage adjustment device 5 in contact with it. When the inclined body 305 rotates, the external inclined surface abuts against the second transmission frame 506, thereby cooperating with the second transmission frame 506 and the first elastic member 503 to drive the first transmission frame 505 to move horizontally, realizing the air blowing and pressurization of the top of the box body 1. At the same time, under the cooperation of the fixed shaft frame 507, it drives the bottom first linkage plate frame 508 to swing and adjust with the fixed shaft frame 507 as the axis, realizing the horizontal air blowing and pressurization of the bottom of the box body 1;
[0046] When the second driving member 304 rotates, it can drive the externally sleeved semi-gear 606 to rotate. The semi-gear 606 intermittently meshes with the external rack 604 of the third transmission frame 603, and cooperates with the second elastic member 602 inside the second limit rack bin 601 to realize the longitudinal reciprocating movement of the third transmission frame 603 and the bottom second linkage plate frame 605, realizing the longitudinal air blowing and pressurization inside the box body 1. Cooperating with the first linkage adjustment device 5, it completes the large-range air blowing and pressurization inside the box body 1, further improving the internal air circulation speed and the heat dissipation effect. When the internal second driving member 304 operates, it will generate certain vibrations, affecting the connection stability and operation stability of the internal components. At the same time, when the control member 703 is turned on, part of the gas inside the rack bin 301 is introduced into the two communicating bins 702 on both sides, driving the two positioning frames 704 to move outward and insert into the two positioning groove frames 701 on both sides, further balancing the vibration influence generated by the second driving member 304. Then, the control member 703 is turned off, and all the gas inside the rack bin 301 is discharged to the outside through the outer groove body (not shown in the figure) of the rack bin 301.
[0047] In summary, while the internal ventilation device 3 of the present device realizes heat exchange drive, it simultaneously drives the first linkage adjustment device 5 and the second linkage adjustment device 6 to operate, realizing all-round air blowing and pressurization inside, accelerating the internal gas circulation speed, improving the internal heat dissipation effect of the equipment, saving energy and being environmentally friendly. At the same time, it can drive the external stability component 7 to realize the pressurization and fixation of the box body 1.
[0048] In addition, it should be understood that although this specification is described in terms of embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. An energy-saving 5G wireless communication receiving and adjusting device, characterized in that, it includes: a box body; a heat collecting fin frame, which is connected to the inside of the box body and is used for the directional collection of heat inside the box body; a receiving device, which is connected to the box body and is used for the receiving and transmission of wireless signals; a ventilation device, which is connected to the box body and is used for the export and discharge of heat inside the box body; a pressurizing device, which is connected to the ventilation device; a stabilizing component, one end of which is connected to the ventilation device and the other end is connected to the box body, and is used for the stable reinforcement of the operation outside the box body; wherein, the pressurizing device includes: a first linkage adjusting device, which is connected to the inside of the box body and is used to cooperate with the ventilation device to complete the pressurized lateral air blowing inside the box body; a second linkage adjusting device, which is connected to the ventilation device and is used to cooperate with the ventilation device to complete the pressurized longitudinal air blowing inside the box body; the first linkage adjusting device includes: a first limit frame bin, which is connected to the second linkage adjusting device; a limit groove, which is arranged inside the first limit frame bin; a first elastic member, which is installed inside the limit groove; a positioning frame, which penetrates the limit groove and is connected to the first elastic member; a first transmission frame, which is connected to the positioning frame; a second transmission frame, one end of which is connected to the first transmission frame and the other end is in contact with an inclined plane body, and is used to cooperate with the inclined plane body to complete the moving transmission of the first transmission frame; a fixed shaft frame, which is connected to the box body; a first linkage plate frame, which is connected to the fixed shaft frame through penetration, and the outer end is movably connected to the end of the first transmission frame away from the positioning frame; the second linkage adjusting device includes: a second limit frame bin, which is connected to the inside of the box body; a second elastic member, which is fixedly connected to the inside of the second limit frame bin; a third transmission frame, which is connected to the second elastic member; a rack, which is arranged outside the third transmission frame; a half gear, which is sleeved outside the second driving member; a second linkage plate frame, which is installed on the side of the third transmission frame away from the second elastic member.
2. The energy-saving 5G wireless communication receiving and adjusting device according to claim 1, characterized in that, the receiving device includes: a first driving member, which is connected to the box body; a connecting frame, which is connected to the first driving member; a receiver, which is connected to the end of the connecting frame away from the first driving member.
3. The energy-saving 5G wireless communication receiving and adjusting device according to claim 1, characterized in that, the ventilation device includes: a bin, which is connected to the box body; a fixed frame, which is installed inside the bin; a second driving member, which penetrates through both sides of the box body and is connected to the fixed frame; a plurality of blades, which are connected to the second driving member.
4. The energy-saving 5G wireless communication receiving and adjusting device according to claim 3, characterized in that, the ventilation device further includes: Inclined plane body, which is sleeved outside the second driving member and is used for the movement drive of the first linkage adjustment device.
5. The energy-saving 5G wireless communication receiving adjustment device according to claim 3, characterized in that the stabilizing assembly includes: a positioning groove frame, which is connected to the box body; at least two communicating bins, which are connected to the rack bin; a control member, which is connected to the communicating bin.
Citation Information
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