CPE (Customer Premise Equipment) suitable for various signal receiving equipment

By designing an adjustable antenna and suspension mechanism, the CPE device solves the problem of connecting multiple signal receiving devices and avoiding antenna module interference, ensuring signal quality and device stability.

CN120880475APending Publication Date: 2025-10-31SHENZHEN HUAPU WULING TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202511065714.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-30
Publication Date
2025-10-31

AI Technical Summary

Technical Problem

Existing CPE devices cannot effectively connect to various signal receiving devices, and the antenna module is easily interfered with and damaged during movement, resulting in a decrease in signal quality.

Method used

A CPE device including an adjustable antenna mechanism and a suspension mechanism is designed. The antenna mechanism can be adjusted in the height direction, and the suspension mechanism is connected to the signal receiving device. Interference is avoided by a detachable suspension telescopic rod and sliding beam structure, ensuring that the antenna mechanism is not directly subjected to force.

Benefits of technology

This enables CPE devices to adapt to various signal receiving devices, avoids signal quality degradation caused by antenna module movement, reduces the risk of damage, and improves space utilization and connection stability.

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Abstract

The invention provides CPE equipment suitable for various signal receiving equipment. The CPE equipment comprises a machine body, an antenna mechanism and a suspension mechanism. The antenna mechanism is arranged on the top side of the machine body in the height direction and fixed to the machine body, and the distance from the top end of the antenna mechanism to the machine body in the height direction is adjustable. The suspension mechanism is arranged on the top side of the machine body in the height direction, the bottom end of the suspension mechanism is fixed to the machine body, the top end of the suspension mechanism is constructed to be connected with signal receiving equipment so as to suspend the CPE on the signal receiving equipment, and the distance between the top end of the suspension mechanism and the machine body in the height direction can be adjusted. And the maximum distance from the top end of the antenna mechanism to the machine body in the height direction is smaller than the maximum distance from the top end of the suspension mechanism to the machine body in the height direction. The CPE is suitable for being connected to various signal receiving devices, it is ensured that the orientation and height of the antenna mechanism can be adjusted without interference with the signal receiving devices and / or the suspension mechanism, and good signal quality is achieved.
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Description

Technical Field

[0001] This invention relates to the field of signal transmission equipment, and more specifically, to a CPE device suitable for installation on various signal receiving devices and capable of providing good quality signals. Background Technology

[0002] A CPE device is a signal transmission device. Compared to traditional wired signal transmission devices, CPE devices can receive wireless signals and selectively output active signals via a data cable or wireless signals via an antenna.

[0003] When wired network deployment is inconvenient, CPE devices are often used to communicate with base stations. For example, CPE devices are commonly used in scenarios such as outdoor activities and factories housing production equipment. In these scenarios, signal receiving devices, such as live streaming equipment and AGV carts, need to be moved frequently.

[0004] Due to the differences in size and shape between signal receiving devices and current CPE devices, there is currently no universal connection structure that allows CPE devices to connect to various signal receiving devices and move with them.

[0005] In addition, for CPE devices that use antenna modules to output wireless signals, it is necessary to avoid the degradation of output signal quality caused by interference from the antenna module during the adjustment of the antenna module's length and orientation by the connection mechanism and / or the signal receiving device.

[0006] In addition, it is also necessary to prevent the degradation of the antenna module's output signal quality due to factors such as impacts and vibrations during the movement of the signal receiving equipment. Summary of the Invention

[0007] In view of this, the present invention proposes a CPE device applicable to various signal receiving devices, comprising: a body; an antenna mechanism disposed on the top side of the body in the height direction and fixed to the body, wherein the distance from the top end of the antenna mechanism to the body in the height direction is adjustable; and a suspension mechanism disposed on the top side of the body in the height direction, wherein the bottom end of the suspension mechanism is fixed to the body, the top end of the suspension mechanism is configured to connect to a signal receiving device to suspend the CPE device on the signal receiving device, the distance from the top end of the suspension mechanism to the body in the height direction is adjustable, and the maximum distance from the top end of the antenna mechanism to the body in the height direction is less than the maximum distance from the top end of the suspension mechanism to the body in the height direction.

[0008] The CPE device includes an antenna mechanism, which may have variable dimensions along the height direction due to operations such as rotation and extension when outputting signals. The CPE device also includes a detachable suspension mechanism. Both the suspension mechanism and the antenna mechanism are fixedly connected to the top side of the CPE device. The dimensions of the suspension mechanism in the height direction are adjustable, and the maximum distance from the suspension mechanism to the body in the height direction is greater than the maximum distance from the antenna mechanism to the body in the height direction. This configuration allows the antenna mechanism to freely adjust its dimensions along the height direction within its variable range without interfering with the suspension mechanism. Since the suspension mechanism functions to fix the body to the signal receiving device, the antenna mechanism also does not interfere with the signal receiving device along the height direction, thereby ensuring good quality of the output signal.

[0009] Furthermore, because the suspension mechanism has an adjustable dimension along the height direction, it can adapt to the construction of the antenna mechanism while maintaining a relatively small space size, improving space utilization and allowing more CPE devices to be connected in the same space.

[0010] In addition, since the antenna structure does not directly contact the signal receiving equipment, the antenna mechanism does not directly bear the force from the signal receiving equipment when situations such as impact or vibration occur. This reduces the risk of damage to the antenna mechanism and ensures that the antenna mechanism can provide a good quality signal in a variety of environments.

[0011] In one example, the suspension mechanism includes a suspension telescopic rod that is telescopic along the height direction; a sliding beam connected to the top of the suspension telescopic rod and substantially perpendicular to the suspension telescopic rod; and a plurality of suspension connectors arranged at intervals from each other along the longitudinal direction of the sliding beam on the top side of the sliding beam, fixed to the sliding beam, and configured to connect to a signal receiving device.

[0012] The suspension mechanism includes a telescopic suspension rod that allows for height-adjustable dimensions and a sliding beam with a plane perpendicular to the height direction. Multiple suspension connectors are located on the top side of the sliding beam. These multiple connectors, which connect to the signal receiving equipment, improve the connection stability of the CPE device.

[0013] In one example, the sliding beam is slidable relative to the suspension telescopic rod along its longitudinal direction.

[0014] The sliding beam is slidable relative to the suspension telescopic rod along its longitudinal direction. The suspension connector, located on the top side of the sliding beam and connected to the signal receiving device, thus allows for a greater stroke in space relative to the main body. This configuration of the CPE device allows it to accommodate a wider variety of signal receiving devices, especially those with a larger accommodating space on one side of the main body and a smaller accommodating space on the other. Furthermore, this sliding beam configuration allows for avoidance of the antenna mechanism in a plane perpendicular to the height direction, enabling flexible adjustment of the antenna mechanism and output of a high-quality signal.

[0015] In one example, the sliding beam is rotatable relative to the suspension telescopic rod about its axis.

[0016] This CPE device configuration allows for greater compatibility with a wider range of signal receiving devices, while also providing better clearance for the antenna mechanism in a plane perpendicular to the height direction, allowing for flexible adjustment of the antenna mechanism and output of high-quality signals.

[0017] In one example, the suspended telescopic rod can swing within an angle α1 about the axis of the sliding beam.

[0018] In one example, -5° < α1 < 5°.

[0019] This suspension telescopic pole design allows the unit to be supported on a part of the signal receiving equipment at an angle to the suspension assembly, or allows the suspension assembly to be fixedly connected to a part of the signal receiving equipment at an angle to the unit. This CPE configuration allows for more flexible repositioning within space, thus accommodating a wider variety of signal receiving devices.

[0020] In one example, two antenna mechanisms are located on opposite sides of the suspension mechanism.

[0021] In one example, the suspension mechanism includes two suspension connectors.

[0022] In one example, the suspended telescopic pole includes a first pneumatic component and a push rod.

[0023] In one example, each suspension connector includes a swivel base, a hinge, and a fitting piece. The bottom end of the swivel base is fixedly connected to the top side of the sliding beam, and the top end of the swivel base is hinged to the fitting piece via the hinge.

[0024] The shape of the bonding pad allows it to conform to the flat parts of the signal receiving device. With a rotating base that can rotate around its axis and a hinge that can rotate around the hinge axis, the bonding pad can flexibly change its position in space, thus adapting to signal receiving devices with various configurations.

[0025] In one example, the bonding pad includes multiple screws or multiple threaded holes.

[0026] A bonding pad, which adheres to the surface of the signal receiving device, is securely attached to the device via a connection such as a screw or threaded hole. Multiple screws or threaded holes help increase connection strength and ensure connection stability.

[0027] In one example, the sliding beam includes a sliding beam body, a first slide rod, and a first slider. The sliding beam body opens towards the bottom, and the first slide rod is fixed inside the sliding beam body. The bottom end of the first slider along the height direction is connected to the top end of the suspension telescopic rod along the height direction and is rotatable relative to the suspension telescopic rod. The top end of the first slider is slidably fitted onto the first slide rod.

[0028] The sliding beam can rotate relative to the suspension telescopic rod by means of a first slide rod disposed within the main body of the sliding beam and a first slider at least partially housed within the main body of the sliding beam, and the suspension telescopic rod can be allowed to move longitudinally along the sliding beam. This suspension mechanism has a simple structure, a small size at least in the vertical direction, and is easy to disassemble and replace.

[0029] In one example, the antenna mechanism includes: an antenna base disposed on the top side of the body in the height direction and fixed to the body; an antenna sliding telescopic rod connected to the antenna base and configured to extend and be telescopic along a first direction that is perpendicular to both the height direction and the longitudinal direction of the antenna base; a connector connected to both lateral sides of the antenna sliding telescopic rod; and an antenna module having a telescopic dimension in the height direction, detachably connected to the connector, and rotatable relative to the connector.

[0030] In one example, the antenna sliding telescopic rod is slidable along the longitudinal direction of the antenna base.

[0031] This antenna mechanism includes a retractable and rotatable antenna module relative to the connector. The antenna module is connected to the antenna base via a sliding telescopic rod, and then to the main body. This allows the position of the antenna module to be adjusted in a plane perpendicular to the height, enabling the antenna mechanism to avoid interference with signal receiving equipment and / or the suspension mechanism. Combined with the suspension mechanism, which is adjustable in a plane perpendicular to the height, this CPE device can accommodate a wider variety of signal receiving devices and is simple and easy to implement.

[0032] In one example, the antenna sliding telescopic rod includes a pneumatic telescopic rod and a second slider. The antenna base opens towards the top side, the second slider is fixed inside the antenna base, the first end of the second slider is connected to the pneumatic telescopic rod, and the second side of the second slider is slidably fitted onto the second slider.

[0033] The antenna module can move in a plane perpendicular to the height direction by means of a second slide bar disposed within the antenna base and a second slider at least partially housed within the antenna base. This suspension mechanism has a simple structure, a small size at least in the vertical direction, and is easy to disassemble and replace.

[0034] In one example, the antenna module includes one or more of a 3G antenna module, a 4G antenna module, a 5G Sub-6 antenna module, and a 5G millimeter-wave antenna module.

[0035] Depending on the actual usage scenario, the corresponding antenna module can be selected to provide one or more of 3G, 4G, 5G and 5G-V signals, thereby providing the required high-quality output signal according to the type of signal receiving device.

[0036] In one example, the CPE device also includes a support assembly comprising a limiting member, a buffer member, and a support base, the support assembly being connected to the bottom side of the CPE device along the height direction opposite to the top side.

[0037] This configuration of the CPE device also allows the device to be placed stably on the ground and absorbs energy from undesirable situations such as impacts and vibrations, so that the antenna mechanism can provide a high-quality output signal. Attached Figure Description

[0038] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0039] Figure 2 This is a side-view perspective view of the three-dimensional structure of the present invention;

[0040] Figure 3 This is a three-dimensional structural diagram of the antenna mechanism of the present invention;

[0041] Figure 4 This is a three-dimensional structural diagram of the suspension component of the present invention. Detailed Implementation

[0042] Numerous specific details are set forth below to provide an understanding of the structure, function, and use of the embodiments described and illustrated in the specification and figures. It is to be understood that the embodiments described and illustrated herein are non-limiting examples, and thus it will be appreciated that the particular structural and functional details disclosed herein are representative and exemplary. Variations and changes may be made to these embodiments without departing from the scope of the claims.

[0043] In the description of this invention, it should be understood that the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include the first or more of that feature. In the description of this invention, unless otherwise stated, "a plurality of" means two or more.

[0044] A CPE (Customer-premises equipment) is a portable device with a built-in SIM card that can receive wireless signals from a mobile network operator. After receiving the wireless signal, the CPE can selectively output the signal through a signal line or through a transmitter, enabling multiple devices located near the CPE to use network services.

[0045] To accommodate the requirements of various signal receiving devices, it is desirable for CPE devices to output one or more of 3G, 4G, and 5G signals. An antenna mechanism can be incorporated into the CPE device to convert the signal from the operator (typically 5G) into the type of signal required by the receiving device, and the output signal quality can be optimized by changing the antenna's position and orientation.

[0046] In practical use, CPE devices are expected to be able to connect to a variety of signal receiving devices with different structures and sizes and move with the signal receiving devices. They are also expected to avoid signal quality degradation caused by the extension and retraction or rotation limitations of the antenna mechanism.

[0047] In view of this, refer to Figures 1 to 4 The present invention provides a CPE device 1 suitable for various signal receiving devices. The CPE device 1 includes a body 2, an antenna mechanism 3, and a suspension mechanism 4.

[0048] The main body 2 includes a housing 201, a control unit (not shown), speakers 202, a display screen 203, and buttons 204. Two sets of speakers 202 are respectively disposed on the oblique sides of the housing 201. The display screen 203 and buttons 204 are disposed on the front side of the housing 201. The speakers 202, display screen 203, and buttons 204 are respectively connected to the control unit to receive user operations via the buttons 204 and correspondingly control the speakers 202 and display screen 203 to output appropriate information. Preferably, for a CPE device 1 that provides signals to multiple devices, the speakers 202 and display screen 203 can display in real time the name and number of devices connected to the CPE device 1, as well as the type and strength of the current output signal.

[0049] By way of example only, the control unit can communicate with an external display device (not shown) to transmit the type and intensity of the current output signal to the external display device.

[0050] The housing 2 also includes a grid 205 and an exhaust fan 206. The grid 205 and the exhaust fan 206 are arranged on the lateral sides of the housing 201 to provide a heat dissipation path for the control unit in operation.

[0051] The housing 2 also includes an interface group 207. The interface group 207 is detachably disposed on the rear side of the housing 201. The interface group 207 may include various interfaces. By way of example only, the interface group 207 may include a power interface 208, a crystal interface 209, and a video interface 210. The power interface 208 is adapted to receive power from an external device. Preferably, the power interface 208 receives power from a signal receiving device. The crystal interface 209 can connect to an optical fiber (not shown), enabling the housing 2 to connect to a network. The video interface 304 can connect to a device such as an external display (not shown) to display relevant information about the CPE device 1.

[0052] Antenna mechanism 3 is disposed on the top side of the body 2 along its height direction. Preferably, antenna mechanism 3 is detachably connected to body 2. Antenna mechanism 3 may include antenna base 301, antenna sliding telescopic rod 302, plug interface 303, and antenna module 307. By way of example only, antenna base 301 may include a flat bottom side to conform to the shape of the top side of body 2. Antenna base 301 can be detachably fixed to the top side of body 2 at its bottom side by fasteners such as screws. It can also be fixed to the top of body 2 by mechanisms such as plug-in members. Preferably, two antenna mechanisms 3 are symmetrically arranged on the top side of body 2.

[0053] It should be noted that the term "height direction" in this invention refers to the direction perpendicular to the top side of the body 2. Figures 1 to 4 The arrow Y+ indicates an orientation in the height direction. The top side of the component along the height direction means the side of the component closer to Y+ along the height direction, and the bottom side of the component along the height direction means the side of the component away from Y+ along the height direction.

[0054] By way of example only, the antenna base 301 opens toward its top side, and the second slide bar 304 extends longitudinally along the antenna base 301 and is disposed inside the antenna base 301. Preferably, the second slide bar 304 is fixed to the interior of the antenna base 301, thereby being restricted from rotating relative to the antenna base 301.

[0055] By way of example only, the antenna sliding telescopic rod 302 includes a pneumatic telescopic rod 305 and a second slider 306. The bottom side of the second slider 306 is disposed in the antenna base 301. Preferably, the second slider 306 is slidably fitted onto the second slide rod 304, thereby enabling movement along the longitudinal direction of the antenna base 301. The side end of the second slider 306 can be connected to one end of the pneumatic telescopic rod 305. The pneumatic telescopic rod 305 is configured to extend along a plane perpendicular to the height direction to allow its other end to extend / retract along the length direction of the pneumatic telescopic rod 305 in a plane perpendicular to the height direction. Preferably, the pneumatic telescopic rod 305 can extend and be telescopic along a first direction that is simultaneously perpendicular to the height direction and the longitudinal direction of the antenna base 301. The other end of the pneumatic telescopic rod 305 can be connected to a connector 303. Preferably, the antenna mechanism 3 includes two connectors 303, which are respectively connected to the lateral sides of the other end of the pneumatic telescopic rod 305.

[0056] The connector 303 can receive different types of antenna modules 307. By way of example only, the antenna module 307 includes one or more of a 3G antenna module, a 4G antenna module, a 5G Sub-6 antenna module, and a 5G millimeter-wave antenna module. Thus, the antenna module 307 can provide signal receiving devices with one or more of 3G, 4G, 5G, and 5G-A signals to meet the signal type and strength requirements of different signal receiving devices. Depending on the actual situation, the antenna modules 307 connected to the same connector 303 can be the same or different. By way of example only, the antenna module 307 is detachably connected to the connector 303 and rotatable relative to the connector 303. Preferably, the antenna module 307 is telescopic along its length.

[0057] In the antenna mechanism 3 described above, the antenna module 307 is movable relative to the antenna base 301 in a plane perpendicular to the height direction, that is, movable in the first direction and longitudinally in the antenna base 301. The antenna module 307 is also capable of rotating relative to the antenna base 301 along the axis of the connector 303 and / or extending and / or retracting along the height direction of the antenna module 307. The antenna mechanism 3 therefore has a variable dimension in the height direction.

[0058] To avoid interference with the antenna mechanism 3 and to have the smallest possible size for connection to the signal receiving device, the suspension mechanism 4 is configured to be adjustable in the height direction. The suspension mechanism 4 includes a suspension base 401, a suspension telescopic rod 402, a sliding beam 406, and a plurality of suspension connectors 408.

[0059] The suspension mechanism 4 is connected to the top side of the body 2 at the bottom end of the suspension base 401. Preferably, the suspension base 401 is fixed to the body 2. Preferably, the antenna mechanism 3 is connected to the top side of the body 2 at the antenna base 301, and the suspension mechanism 4 is connected to the top side of the body 2 at the suspension base 401. The antenna base 301 and the suspension base 401 can be connected to each other first, and then connected together to the top side of the body 2. In this way, it can be ensured that the antenna mechanism 3 and the suspension mechanism 4 do not interfere with each other, at least when the dimensions in the height direction have not been adjusted, while simplifying the assembly and disassembly operations.

[0060] By way of example only, the suspension base 401 is a flat plate element adapted to the top shape of the body 2 / antenna base 301. The suspension base 401 can be detachably fixed to the top side of the corresponding element by fasteners such as screws, and may also include plug-in components as described above.

[0061] By way of example only, the suspension telescopic rod 402 includes a pneumatic component 403, a push rod 404, and a first slider 405. The fixed end of the pneumatic component 403 is connected to the top side of the suspension base 401, and the output end of the pneumatic component 403 is connected to the push rod 404 to allow the push rod 404 to be movable in the height direction. The first slider 405 is fixed to the top end of the push rod 404. Preferably, the first slider 405 is rotatable relative to the push rod 404. The suspension telescopic rod 402 extends in the height direction and therefore has a height-adjustable dimension.

[0062] A sliding beam 406 is connected to the top end of the suspension telescopic rod 402, and the sliding beam 406 is configured to be substantially perpendicular to the suspension telescopic rod 402. By way of example only, the sliding beam 406 opens toward its bottom side, and a first sliding rod 407 extends longitudinally along the sliding beam 406 and is disposed inside the sliding beam 406. Preferably, the first sliding rod 304 is fixed to the interior of the sliding beam 406, thereby restricting rotation relative to the sliding beam 406.

[0063] Optionally, the first slider 405 is connected to the bottom side of the sliding beam 406. Preferably, the first slider 405 is sleeved on the first slide rod 407. Preferably, the first slider 405 is slidably sleeved on the first slide rod 407, thereby allowing the sliding beam 406 to move longitudinally relative to the suspension telescopic rod 402. Since the first slider 405 is rotatable relative to the push rod 404, the sliding beam 406 is also rotatable relative to the suspension telescopic rod 402. As an alternative embodiment, the first slider 405 and the push rod 404 can be configured to be relatively fixed, and both can rotate together relative to the pneumatic component 403 and the suspension base 401. Therefore, the sliding beam 406 can rotate relative to the suspension base 401.

[0064] By way of example only, a gap extending along the length direction exists between the first slide rod 407 and the sliding beam 406. This dimensional arrangement allows the first slider 405, fitted onto the first slide rod 407, to swing within a certain angle relative to the axis of the first slide rod 407. Thus, the body 2 can swing within a certain angle relative to the sliding beam 406, allowing the body 2 to be housed in various orientations within the signal receiving device, thereby making it suitable for connection to various signal receiving devices. Preferably, the body 2 can swing within the range α1 relative to the sliding beam 406, where -5° < α1 < 5°.

[0065] Multiple suspension connectors 408 are connected to the top side of the sliding beam 406 for contact with the signal receiving device. Preferably, the suspension mechanism 4 includes two suspension connectors 408 arranged at intervals from each other along the longitudinal direction of the sliding beam 406. Each suspension connector 408 includes a swivel base 409, a hinge 410, and a mating piece 411.

[0066] A rotating base 409 is connected to the top side of a sliding beam 406. The rotating base 409 allows rotation relative to the sliding beam 406 along its axis. A hinge 410 is connected to the top end of the rotating base 409 and to a mating piece 411 at the other end. The hinge 410 allows the mating piece 411 to rotate relative to the rotating base 409 within a certain stroke along its axis. The mating piece 411 can rotate flexibly in space relative to the sliding beam 406 to accommodate the construction and size of various signal receiving devices.

[0067] The bonding piece 411 is suitable for bonding to the flat surface of various signal receiving devices. By way of example only, the bonding piece 411 is a flat element including four screws for mating with corresponding parts of the signal receiving device. Compared to the top side of the body 2 or the top side of the sliding beam 406, the bonding piece 411 has a smaller size to achieve connection and fixation in a smaller structure while being able to bond to the plane of the signal receiving device.

[0068] Depending on the actual usage, the position of the first slider 405 can be adjusted along the length of the first slide bar 407, and the pneumatic component 403 can be used to push / retract the push rod 404 along the height direction, thereby pushing / retracting the sliding beam 406 in the vertical direction. This allows the suspension height, suspension angle, and suspension position of the bonding piece 411 in space to be flexibly adjustable. Thus, the bonding piece 411 and the suspension mechanism 4 including the bonding piece 411 can avoid the antenna mechanism 3 during connection to the signal receiving device, especially avoiding the antenna module 307 whose position and orientation need to be adjusted. The antenna module 307, thus configured, is allowed to flexibly change position in space to provide high-quality signals to various signal receiving devices. To ensure that the suspension mechanism 4 can still avoid the antenna mechanism 3 under extreme conditions, the maximum dimension of the antenna mechanism 3 along the height direction to the body 2 is smaller than the maximum dimension of the suspension mechanism 4 along the height direction to the body 2.

[0069] In this embodiment, the CPE device 1 further includes a support assembly 5. The support assembly 5 includes a limiting member 501, a buffer member 502, and a support base 503. The buffer member 502 is disposed on the top side of the limiting member 501, and the support base 503 is disposed on the top side of the buffer member 502. The buffer member 502 can be an impact-resistant element such as a shock-absorbing spring. The support assembly 1 allows the user to easily place the CPE device 1 on the ground and reduces the impact of shocks on the CPE device 1, ensuring that the antenna mechanism 3 provides a good quality output signal.

[0070] The working principle of this CPE device 1, applicable to various signal receiving devices, is as follows: Based on the type of signal that the CPE device 1 needs to output, the antenna mechanism 3 is connected to the top side of the body 2, and the required type of antenna module 307 is inserted into the connector 6. Depending on the structure and size of the signal receiving device, it is determined whether one or more of the support assembly 1 and the suspension mechanism 4 should be connected to the body 2. If the body 2 is suitable for support on a flat surface, the support assembly 1 is connected to the bottom side of the body 2, and the limiting member 101, which mates with the plane, is placed on the plane. If the body 2 needs to enhance the output signal, the orientation and position of the antenna module 307 are set according to the environment where the CPE device 1 is located, and the positions of the second slider 404 and the second telescopic mechanism in the antenna mechanism 3, as well as the angle of the antenna module 307 relative to the connector 303, are adjusted accordingly to provide the output signal in the preferred direction. If the CPE device 1 needs to be suspended for connection to a signal receiving device, the suspension mechanism 4 is connected to the top side of the body 2. The position and angle of the fitting piece 411 and the sliding beam 406 are adjusted according to the required structure of the antenna mechanism 3, ensuring that the CPE device 1 connected to multiple signal receiving devices does not affect the signal quality output by the antenna mechanism 3. Simultaneously, it ensures that the suspension mechanism 4 always avoids the antenna mechanism 3, especially the antenna module 307, under any usage conditions, thereby ensuring a good signal quality output. This configuration of the suspension mechanism 4 also ensures flexible and adaptable positions and a minimal space size while achieving the aforementioned avoidance.

[0071] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.

Claims

1. A CPE device, characterized in that, include: Organism; An antenna mechanism is located on the top side of the body in the height direction and fixed to the body. The distance from the top of the antenna mechanism to the body in the height direction is adjustable. as well as A suspension mechanism is provided on the top side of the body in the height direction. The bottom end of the suspension mechanism is fixed to the body. The top end of the suspension mechanism is configured to connect to a signal receiving device to suspend the CPE device on the signal receiving device. The distance from the top end of the suspension mechanism to the body in the height direction is adjustable. The maximum distance from the top end of the antenna mechanism to the body in the height direction is less than the maximum distance from the top end of the suspension mechanism to the body in the height direction.

2. The CPE equipment according to claim 1, characterized in that, The suspension mechanism includes: A suspended telescopic pole is provided, which can extend and retract along the stated height direction; A sliding beam, connected to the top of the suspension telescopic rod, is substantially perpendicular to the suspension telescopic rod; and Multiple suspension connectors are arranged at intervals along the longitudinal direction of the sliding beam on the top side of the sliding beam, fixed to the sliding beam, and configured to connect to the signal receiving device.

3. The CPE equipment according to claim 2, characterized in that, The sliding beam is slidable relative to the suspension telescopic rod along its longitudinal direction.

4. The CPE equipment according to claim 2 or 3, characterized in that, The sliding beam is rotatable relative to the suspension telescopic rod about its axis.

5. The CPE device according to claim 4, characterized in that, The suspended telescopic rod can swing within an angle α1 around the axis of the sliding beam.

6. The CPE equipment according to claim 5, characterized in that, -5°<α1<5°。 7. The CPE device according to claim 4, characterized in that, The two antenna mechanisms are located on opposite sides of the suspension mechanism.

8. The CPE device according to claim 7, characterized in that, The suspension mechanism includes two suspension connectors.

9. The CPE equipment according to claim 2, characterized in that, The suspended telescopic rod includes a first pneumatic component and a push rod.

10. The CPE device according to claim 2, characterized in that, Each suspension connector includes a swivel base, a hinge, and a fitting piece. The bottom end of the swivel base is fixedly connected to the top side of the sliding beam, and the top end of the swivel base is hinged to the fitting piece via the hinge.

11. The CPE device according to claim 10, characterized in that, The bonding pad includes multiple screws or multiple threaded holes.

12. The CPE device according to claim 4, characterized in that, The sliding beam includes a sliding beam body, a first sliding rod, and a first slider. The sliding beam body opens towards the bottom, and the first sliding rod is fixed inside the sliding beam body. The bottom end of the first slider along the height direction is connected to the top end of the suspension telescopic rod along the height direction and is rotatable relative to the suspension telescopic rod. The top end of the first slider along the height direction is slidably sleeved on the first sliding rod.

13. The CPE equipment according to claim 1, characterized in that, The antenna mechanism includes: The antenna base is located on the top side of the body in the height direction and fixed to the body; An antenna sliding telescopic rod is connected to the antenna base and configured to extend and retract along a first direction that is simultaneously perpendicular to the height direction and the longitudinal direction of the antenna base; The connector is connected to both sides of the sliding telescopic rod of the antenna; The antenna module has a retractable dimension along the height direction, is detachably connected to the connector, and is rotatable relative to the connector.

14. The CPE device according to claim 13, characterized in that, The antenna sliding telescopic rod can slide along the longitudinal direction of the antenna base.

15. The CPE device according to claim 13 or 14, characterized in that, The antenna sliding telescopic rod includes a pneumatic telescopic rod and a second slider. The antenna base opens towards the top side, and the second slider is fixed inside the antenna base. The first end of the second slider is connected to the pneumatic telescopic rod, and the second side of the second slider is slidably sleeved on the second slider.

16. The CPE device according to claim 13 or 14, characterized in that, The antenna module includes one or more of the following: 3G antenna module, 4G antenna module, 5G Sub-6 antenna module, and 5G millimeter wave antenna module.

17. The CPE equipment according to claim 1, characterized in that, The CPE device further includes a support assembly, which includes a limiting member, a buffer member, and a support base. The support assembly is connected to the bottom side of the CPE device along the height direction opposite to the top side.