Signal transmitting and receiving device
By using photovoltaic modules in the signal transceiver device to power the signal transceiver parts, the problems of power supply difficulties and installation difficulties caused by power cable connection in the prior art are solved, and convenient power supply methods and long-term normal operation are achieved.
Patent Information
- Application Number
- PCT/CN2024/143694
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-01-08
- Filing Date
- 2024-12-30
- Publication Date
- 2025-07-17
AI Technical Summary
Existing signal transceiver devices need to be connected to external power supply through power cables, which makes it difficult to supply power in some environments and is difficult to install.
The photovoltaic module is used to supply power to the signal transmitter and receiver. The maximum ground height of the photovoltaic module is less than or equal to the minimum ground height of the signal transmitter and receiver to ensure that the photovoltaic module does not hinder the signal reception and transmission of the signal transmitter and receiver, and powers the signal transmitter and receiver through the photovoltaic module.
It reduces the installation difficulty of the signal transceiver device, improves the convenience of use, and realizes a power supply method without the need for additional power cables to ensure the long-term normal operation of the signal transceiver device.
Smart Images

Figure CN2024143694_17072025_PF_FP_ABST
Abstract
Description
Signal transceiver
[0001] This application claims priority to the Chinese patent application filed with the China Patent Office on January 8, 2024, with application number 202420053678.5 and invention name “Signal Transceiver Device”, the entire contents of which are incorporated by reference into this application. Technical Field
[0002] The present application relates to the technical field of signal transceiver devices, and in particular to a signal transceiver device. Background Art
[0003] Existing signal transceivers typically require a power cable to connect to an external power source to power the device. However, under certain conditions, the connection between the power cable and the external power source is affected by environmental factors, making the power cable difficult to install. This can lead to power difficulties for the signal transceiver, making installation of the device difficult. Summary of the Invention
[0004] The present application provides a signal transceiver device to solve the problem of power supply difficulty in the signal transceiver device.
[0005] The present application provides a signal transceiver device, comprising a signal transceiver module and a photovoltaic module. The signal transceiver module comprises a fixing member and a signal transceiver body. The signal transceiver body comprises a housing and a signal transceiver component, wherein the housing is mounted on the fixing member and the signal transceiver component is housed within the housing. The photovoltaic module is mounted on the fixing member, wherein the maximum height of the photovoltaic module above the ground is less than or equal to the minimum height of the signal transceiver component above the ground, and the photovoltaic module is used to power the signal transceiver component.
[0006] In some embodiments, the signal transceiver device also includes a supporting bracket, a first connecting member and a second connecting member; the supporting bracket is installed on the fixing member, and a first connecting hole and a second connecting hole are provided on the supporting bracket; the photovoltaic module is located at the end of the supporting bracket away from the fixing member, and a connecting ear is provided on the photovoltaic module, and a third connecting hole and a plurality of adjustment holes are provided on the connecting ear, and the distance between each adjustment hole and the third connecting hole is the same as the distance between the first connecting hole and the second connecting hole; the first connecting member is passed through the first connecting hole and the third connecting hole; the second connecting member is passed through the second connecting hole and one of the adjustment holes.
[0007] In some embodiments, the photovoltaic module includes a mounting bracket, a shell and a photovoltaic panel, the photovoltaic panel is mounted on the shell, the mounting bracket is connected to the side of the shell away from the photovoltaic panel, the connecting ear is connected to the side of the mounting bracket away from the shell, the shell is provided with a protrusion toward the side away from the photovoltaic panel, and a cable interface is provided on the side of the protrusion close to the ground.
[0008] In some embodiments, a connection interface is provided on the side of the housing close to the ground, and the signal transceiver body also includes a connection cable, which is respectively connected to the cable interface and the connection interface, and the part of the connection cable close to the cable interface is located on the side of the cable interface close to the ground.
[0009] In some embodiments, a cable channel is provided on the fixing member, the connection interface is located in the cable channel, a cable through hole connected to the cable channel is provided on the side wall of the fixing member, and the connection cable is passed through the cable channel and the cable through hole.
[0010] In some embodiments, the support bracket is provided with a cable slot at a position corresponding to the cable through hole, and the connecting cable is passed through the cable slot.
[0011] In some embodiments, the support bracket includes a first support portion and two second support portions, the first support portion is connected between the two second support portions, the first support portion is connected to the fixing member, the second support portion is connected to the connecting ear at one end away from the first support portion, and the connecting cable is located between the two second support portions.
[0012] In some embodiments, the support bracket further includes a limiting member, the limiting member is connected between the second supporting parts, and the limiting member is fixedly connected to the connecting cable.
[0013] In some embodiments, the mounting bracket is provided with an avoidance opening that avoids the protrusion.
[0014] In some embodiments, the height of the connection interface from the ground is greater than or equal to the height of the cable interface from the ground, and the length of the connection cable is greater than the distance between the cable interface and the connection interface.
[0015] In some embodiments, the portion of the connecting cable between the cable through hole and the cable interface is arranged in a curved and drooping shape.
[0016] In some embodiments, the photovoltaic module further includes an indicator structure, which is mounted on a side of the housing away from the mounting bracket, and an extension direction of the indicator structure is perpendicular to an extension plane of the photovoltaic panel.
[0017] In some embodiments, the housing includes an energy storage component.
[0018] In some embodiments, the plurality of adjustment holes are arranged at intervals; or, the plurality of adjustment holes are connected to form an adjustment slot.
[0019] In some embodiments, a first mounting hole is provided on the fixing member, a second mounting hole is provided on the supporting bracket, and the signal transceiver device further includes a third connecting member, which is passed through one of the first mounting hole and the second mounting hole; the first mounting hole is set to one, or the first mounting hole is set to multiple, and at least some of the multiple first mounting holes are arranged along the circumferential direction of the fixing member.
[0020] In some embodiments, the maximum height above the ground is the distance between the end of the photovoltaic module farthest from the ground and the connection between the fixing member and the ground along the axial direction of the fixing member, and the minimum height above the ground is the distance between the end of the signal transceiver closest to the ground and the connection between the fixing member and the ground along the axial direction of the fixing member, and the axial direction of the fixing member is the Z-axis direction.
[0021] In some embodiments, the signal transceiver module is installed on a walking device, the fixing member is fixedly connected to the walking device, and the signal transceiver body is installed on a side of the fixing member away from the walking device.
[0022] In some embodiments, the fixing member is fixedly connected to the body of the walking device, and the signal transceiver body is installed at an end of the fixing member away from the body.
[0023] In some embodiments, the maximum height above the ground is the distance between the end of the photovoltaic module farthest from the ground and the connection between the fixing member and the walking device along the axial direction of the fixing member, and the minimum height above the ground is the distance between the end of the signal transceiver closest to the ground and the connection between the fixing member and the walking device along the axial direction of the fixing member.
[0024] In some embodiments, the signal transceiver device further includes an angle indicator.
[0025] In the signal transceiver device provided in the present application, based on the photovoltaic module installed on the fixing part, the maximum height of the photovoltaic module from the ground is less than or equal to the minimum height of the signal transceiver from the ground, and the photovoltaic module is used to power the signal transceiver, so that the photovoltaic module can power the signal transceiver without hindering the signal transceiver from receiving and sending signals, so that the signal transceiver does not need to be connected to the external power supply with an additional power cable, which greatly reduces the installation difficulty of the signal transceiver and improves the convenience of use of the signal transceiver. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative labor.
[0027] FIG1 is a schematic structural diagram of a signal transceiver provided in an embodiment of the present application at one viewing angle.
[0028] FIG2 is an exploded diagram of a signal transceiver device provided in an embodiment of the present application.
[0029] FIG3 is a schematic structural diagram of a photovoltaic module provided in some embodiments of the present application.
[0030] FIG4 is a cross-sectional view of a signal transceiver device provided in an embodiment of the present application.
[0031] FIG5 is a schematic structural diagram of the signal transceiver provided in an embodiment of the present application from another perspective.
[0032] FIG6 is a schematic structural diagram of a photovoltaic module provided in some other embodiments of the present application.
[0033] Explanation of the main figure marks: signal transceiver device 100; signal transceiver module 10; fixing part 11; first mounting hole 111; cable through hole 112; cable channel 113; signal transceiver main body 12; shell 121; signal transceiver part 122; accommodating cavity 123; connection interface 124; support bracket 20; first support part 21; second mounting hole 211; card slot 212; second support part 22; first connection hole 221; second connection hole 222; material reduction hole 223; photovoltaic module 30; mounting bracket 31; connection ear 311; third connection hole 3111; adjustment hole 3112; avoidance opening 312; shell 32; protrusion 321; side wall surface 3211; rear wall surface 3212; cable interface 322; photovoltaic panel 33; indication structure 34; first connection part 41; second connection part 42; third connection part 43; connection cable 50.
[0034] The following specific implementation methods will further illustrate the present application in conjunction with the above-mentioned drawings. DETAILED DESCRIPTION
[0035] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments in this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.
[0036] References herein to "embodiments" or "implementations" mean that a particular feature, structure, or characteristic described in connection with the embodiments or implementations may be included in at least one embodiment of the present application. The appearance of such phrases in various places in the specification does not necessarily refer to the same embodiment, nor do they constitute independent or alternative embodiments that are mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.
[0037] It should be noted that the terms used in the specification, claims, and drawings of this application are intended only to describe specific embodiments and are not intended to limit this application. The terms "first," "second," and so on, used in the specification, claims, and drawings of this application are used to distinguish between different objects, not to describe a specific order.
[0038] Please refer to Figure 1, which is a structural schematic diagram of a signal transceiver device 100 provided in an embodiment of the present application at one viewing angle; Figure 2 is an exploded view of the signal transceiver device 100 provided in an embodiment of the present application. The signal transceiver device 100 includes a signal transceiver module 10 and a photovoltaic module 30. The signal transceiver module 10 includes a fixing member 11 and a signal transceiver body 12. The signal transceiver body 12 includes a shell 121 and a signal transceiver 122. The shell 121 is mounted on the fixing member 11. A receiving cavity 123 is provided in the shell 121. The signal transceiver 122 is received in the receiving cavity 123 of the shell 121. The photovoltaic module 30 is mounted on the fixing member 11. The maximum height of the photovoltaic module 30 from the ground is less than or equal to the minimum height of the signal transceiver 122 from the ground. The photovoltaic module 30 is used to supply power to the signal transceiver 122. Among them, the fixing member 11 can be configured as a column structure. The signal transceiver module 10 can be installed on the ground, the fixing part 11 is used to be installed on the ground, and the signal transceiver body 12 is installed at the end of the fixing part 11 away from the ground. The maximum height of the photovoltaic module 30 from the ground can refer to the distance between the end of the photovoltaic module 30 farthest from the ground and the connection between the fixing part 11 and the ground along the axial direction of the fixing part 11. The minimum height of the signal transceiver 122 from the ground can refer to the distance between the end of the signal transceiver 122 closest to the ground and the connection between the fixing part 11 and the ground along the axial direction of the fixing part 11. In this application, for a clearer description, the Z-axis direction is defined as the axial direction of the fixing part 11.
[0039] Among them, the signal transceiver 122 can receive signals on the side away from the ground and send signals toward the side away from the ground. The maximum height of the photovoltaic module 30 from the ground in this embodiment is less than or equal to the minimum height of the signal transceiver 122 from the ground, which can prevent the photovoltaic module 30 from blocking the signal, so that the photovoltaic module 30 can power the signal transceiver 122 without hindering the signal transceiver 122 from receiving and sending signals. As a result, the signal transceiver device 100 does not need to be connected to an external power supply with an additional power cable, which greatly reduces the installation difficulty of the signal transceiver device 100 and improves the convenience of using the signal transceiver device 100. Among them, the signal transceiver module 10 can be configured as an RTK locator, an antenna, etc. The signal transceiver module 10 has low working energy consumption, so the signal transceiver module 10 can be powered by the photovoltaic module 30 to achieve long-term normal operation.
[0040] In some embodiments, the signal transceiver module 10 can also be installed on a walking device, the fixing part 11 is fixedly connected to the walking device, and the signal transceiver body 12 is installed on the side of the fixing part 11 away from the walking device. The walking device can be configured as a four-wheeled walking robot, a lawn mowing device, a harvesting device, etc. The fixing part 11 is fixedly connected to the body of the walking device, and the signal transceiver body 12 is installed at the end of the fixing part 11 away from the body. Among them, the maximum ground clearance of the photovoltaic module 30 may refer to the distance between the end of the photovoltaic module 30 farthest from the ground and the connection between the fixing part 11 and the walking device along the axial direction of the fixing part 11. The minimum ground clearance of the signal transceiver 122 may refer to the distance between the end of the signal transceiver 122 closest to the ground and the connection between the fixing part 11 and the walking device along the axial direction of the fixing part 11.
[0041] The signal transceiver 100 also includes a support bracket 20. The support bracket 20 is mounted on a fixing member 11. The photovoltaic module 30 is located at an end of the support bracket 20 that is away from the fixing member 11. The signal transceiver 100 also includes a first connector 41 and a second connector 42 for fixing the photovoltaic module 30 to the support bracket. The mounting angle of the photovoltaic module 30 relative to the support bracket 20 is adjustable.
[0042] Specifically, the support bracket 20 is provided with a first connection hole 221 and a second connection hole 222. The first connection hole 221 and the second connection hole 222 can be arranged at intervals. In some embodiments, the first connection hole 221 and the second connection hole 222 can be arranged in a connected manner. For example, the first connection hole 221 and the second connection hole 222 can be connected to form an oblong hole, and the first connection member 41 and the second connection member 42 are respectively located at the two ends of the length direction of the oblong hole. A connection ear 311 is provided on the photovoltaic module 30. A third connection hole 3111 and a plurality of adjustment holes 3112 are provided on the connection ear 311. The distance between each adjustment hole 3112 and the third connection hole 3111 is the same as the distance between the first connection hole 221 and the second connection hole 222. The plurality of adjustment holes 3112 can be arranged in a ring around the third connection hole 3111.
[0043] The first connecting member 41 is inserted into the first connecting hole 221 and the third connecting hole 3111. The second connecting member 42 is inserted into the second connecting hole 222 and one of the adjustment holes 3112. When the photovoltaic module 30 is installed on the support bracket 20, the installation angle of the photovoltaic module 30 relative to the support bracket 20 can be adjusted by inserting the second connecting member 42 into different adjustment holes 3112, so that the photovoltaic module 30 has different inclination angles relative to the ground. This can adjust the angle between the photovoltaic module 30 and sunlight so that sunlight shines vertically or approximately vertically on the photovoltaic module 30, thereby improving the power generation efficiency of the photovoltaic module 30. In some embodiments, the maximum height of the photovoltaic module 30 above the ground is less than or equal to the minimum height of the housing 121 above the ground to avoid interference with the housing 121 when adjusting the inclination angle of the photovoltaic module 30.
[0044] When the inclination angle of the photovoltaic module 30 relative to the ground needs to be adjusted, the first connecting member 41 can be first inserted into the first connecting hole 221 and the third connecting hole 3111. At this time, the photovoltaic module 30 can rotate relative to the support bracket 20 with the first connecting member 41 as the rotation axis. Then, the photovoltaic module 30 is rotated, and the second connecting member 42 is inserted into the second connecting hole 222 and the adjustment hole 3112 closest to the second connecting hole 222 when sunlight is perpendicular to the photovoltaic module 30. The first connecting member 41 and the second connecting member 42 are used to fix the photovoltaic module 30 relative to the support bracket 20, thereby achieving the installation of the photovoltaic module 30 on the support bracket 20. The first connecting member 41 and the second connecting member 42 can be configured as bolts. The first connecting member 41 and the second connecting member 42 are used to fix the photovoltaic module 30 to the support bracket 20. In some embodiments, after the adjustment hole 3112 is selected, the first connecting member 41 is inserted into the first connecting hole 221 and the third connecting hole 3111 , and the second connecting member 42 is inserted into the second connecting hole 222 and the selected adjustment hole 3112 .
[0045] The plurality of adjustment holes 3112 can be spaced apart so that, after the second connector 42 is inserted through the second connection hole 222 and the adjustment hole 3112, the photovoltaic module 30 is fixed relative to the support bracket 20, facilitating tightening of the second connector 42. The number of adjustment holes 3112 can be specifically set based on the actual needs of the signal transceiver device 100 and is not specifically limited in this application.
[0046] Referring to FIG. 3 , in some embodiments, multiple adjustment holes 3112 may be interconnected to form an adjustment slot. The second connector 42 is slidably disposed within the adjustment slot. During installation of the photovoltaic module 30, the adjustment slot allows for stepless adjustment of the rotation angle of the photovoltaic module 30, thereby facilitating rotation of the photovoltaic module 30 to a position perpendicular or approximately perpendicular to sunlight.
[0047] Please refer to Figures 1, 2, 4 and 5 together. The photovoltaic module 30 includes a mounting bracket 31, a shell 32 and a photovoltaic panel 33. The photovoltaic panel 33 is mounted on the shell 32. The mounting bracket 31 is connected to the side of the shell 32 away from the photovoltaic panel 33. The connecting ear 311 is connected to the side of the mounting bracket 31 away from the shell 32 and extends in a direction away from the shell 32. The mounting bracket 31 is used to fix the shell 32 to the support bracket 20. Among them, the shell 32 can be configured as a non-metallic shell, thereby reducing the overall mass of the photovoltaic module 30. The mounting bracket 31 can be configured as a rigid bracket to improve the connection stability between the shell 32 and the support bracket 20. In some embodiments, the shell 32 can also be configured as a metal shell.
[0048] The photovoltaic module 30 also includes an energy storage device disposed within the housing 32. The energy storage device is used to store the electrical energy generated by the photovoltaic panel 33 and to power the signal transceiver module 10, thereby improving the operating stability of the signal transceiver device 100. In good lighting conditions, the energy storage device can store excess electrical energy. In poor lighting conditions, such as at night or on cloudy days, the energy storage device can continuously power the signal transceiver module 10, allowing the signal transceiver module 10 to continue operating normally.
[0049] The shell 32 is provided with a protrusion 321 on the side facing away from the photovoltaic panel 33. The protrusion 321 forms a receiving space in the shell 32, and the energy storage component is received at a position of the shell 32 corresponding to the protrusion 321. The protrusion 321 is provided with a cable interface 322 on the side close to the ground, so that the opening of the cable interface 322 faces the direction close to the ground. In this way, when external moisture flows down from the shell 32, it can prevent moisture from entering the cable interface 322, thereby improving the waterproof performance of the cable interface 322. The protrusion 321 may include a side wall surface 3211 connected to the surface of the side of the shell 32 away from the photovoltaic panel 33 and a rear wall surface 3212 connected to the side of the side wall surface 3211 away from the shell 32. The cable interface 322 can be provided at a position of the side wall surface 3211 close to the ground, or the cable interface 322 can be provided on the rear wall surface 3212.
[0050] The mounting bracket 31 can be configured as a frame-shaped structure. A clearance opening 312 is provided in the mounting bracket 31 to avoid the protrusion 321. This reduces the weight of the mounting bracket 31 and thus reduces the weight of the photovoltaic module 30. The protrusion 321 is located within the clearance opening 312, and the mounting bracket 31 is arranged around the protrusion 321.
[0051] The signal transceiver device 100 also includes a connecting cable 50. The connecting cable 50 is used to achieve electrical connection between the photovoltaic module 30 and the signal transceiver body 12, so as to enable the photovoltaic module 30 to supply power to the signal transceiver 122. A connecting interface 124 is provided on the side of the housing 121 close to the ground. The height of the connecting interface 124 from the ground is greater than or equal to the height of the cable interface 322 from the ground. The connecting cable 50 is connected to the cable interface 322 and the connecting interface 124 respectively. Among them, the part of the connecting cable 50 close to the cable interface 322 is located on the side of the cable interface 322 close to the ground. Specifically, the length of the connecting cable 50 is greater than the distance between the cable interface 322 and the connecting interface 124, so as to facilitate the connection of the connecting cable 50 to the cable interface 322 and the connecting interface 124. The part of the connecting cable 50 between the connecting interface 124 and the cable interface 322 is bent and drooped, and the height of the lowest point of the connecting cable 50 from the ground is less than the height of the cable interface 322 from the ground. In this way, when there is moisture on the connecting cable 50 and the moisture slides down the connecting cable 50, the moisture will flow to the lowest point of the connecting cable 50, and due to inertia, the moisture can slide down the connecting cable 50 by itself, thereby preventing the moisture from flowing to the cable interface 322 and preventing the connecting cable 50 from short-circuiting at the cable interface 322.
[0052] In some embodiments, a cable channel 113 is provided on the fixing member 11. The connection interface 124 is located in the cable channel 113 to prevent external moisture from entering the connection interface 124. A cable through-hole 112 connected to the cable channel 113 is provided on the side wall of the fixing member 11. The connecting cable 50 is passed through the cable channel 113 and the cable through-hole 112. The portion of the connecting cable 50 between the cable through-hole 112 and the cable interface 322 is curved and drooped, so that when external moisture falls on the connecting cable 50, it can slide along the connecting cable 50 to the lowest point of the connecting cable 50, thereby preventing moisture from entering the cable through-hole 112 and the cable interface 322.
[0053] The support bracket 20 is connected to the side wall of the fixing member 11. A card slot 212 is provided at the position of the support bracket 20 corresponding to the cable through hole 112. The connecting cable 50 is passed through the card slot 212, and the card slot 212 is used to limit the connecting cable 50 to reduce the shaking of the connecting cable 50 under external disturbances, so as to avoid the problem of loose connection between the connecting cable 50 and the connecting interface 124 and the cable interface 322, thereby improving the working stability of the signal transceiver device 100. In some embodiments, the support bracket 20 also includes a limiting member, which is connected between the two second support parts 22. The limiting member is fixedly connected to the connecting cable 50 and is used to fix and limit the connecting cable 50 to reduce the shaking of the connecting cable 50 under external disturbances.
[0054] The fixing member 11 has a first mounting hole 111. The support bracket 20 has a second mounting hole 211. The signal transceiver device 100 also includes a third connecting member 43. The third connecting member 43 is inserted into the first mounting hole 111 and the second mounting hole 211. The third connecting member 43 is used to securely connect the support bracket 20 to the fixing member 11. The third connecting member 43 can be configured as a bolt.
[0055] In some embodiments, the number of first mounting holes 111 can be one, and the number of second mounting holes 211 can be one. In some embodiments, the number of first mounting holes 111 can be multiple. At least some of the multiple first mounting holes 111 are arranged along the circumferential direction of the fixing member 11. The multiple first mounting holes 111 can include multiple hole groups, each hole group including at least one first mounting hole 111. The first mounting holes 111 in each hole group are arranged along the axial direction of the fixing member 11. The multiple hole groups are arranged along the circumferential direction of the fixing member 11. When there are multiple first mounting holes 111 in a hole group, the number of second mounting holes 211 can correspond to the number of first mounting holes 111 in the hole group. The number of third connecting members 43 corresponds to the number of second mounting holes 211. The multiple hole groups are arranged along the circumferential direction of the fixing member 11. When mounting the support bracket 20 on the fixture 11, the third connector 43 can be used to align the second mounting holes 211 with different hole groups to adjust the azimuth of the support bracket 20 relative to the fixture 11, thereby facilitating adjustment of the angle between the photovoltaic module 30 and sunlight. Multiple first mounting holes 111 can be provided in each hole group to enhance the stability of the connection between the support bracket 20 and the fixture 11 and prevent the support bracket 20 from shaking.
[0056] In some embodiments, the number of first mounting holes 111 in the hole group can be set to multiple, the number of second mounting holes 211 is less than the number of first mounting holes 111 in the hole group, and the number of third connecting members 43 corresponds to the number of second mounting holes 211. In this way, the third connecting member 43 is used to make the second mounting holes 211 cooperate with different first mounting holes 111 in a single hole group to adjust the connection position of the support bracket 20 on the fixing member 11 along the axial direction of the fixing member 11, that is, to adjust the height of the support bracket 20 from the ground, thereby adjusting the height of the photovoltaic module 30 from the ground.
[0057] The support bracket 20 includes a first support portion 21 and a second support portion 22. A second mounting hole 211 is provided on the first support portion 21. The first support portion 21 is used to connect to the fixing part 11 of the signal transceiver module 10. The second support portion 22 is connected to the first support portion 21. One end of the second support portion 22 away from the first support portion 21 is connected to the connecting ear 311. The second support portion 22 is tilted relative to the first support portion 21 in a direction away from the ground, so that the pressure of the photovoltaic module 30 on the second support portion 22 is more distributed to the extension direction of the second support portion 22, thereby improving the support stability of the second support portion 22 on the photovoltaic module 30. A material reduction hole 223 is provided on the second support portion 22 to reduce the weight of the second support portion 22, which is conducive to the lightweight design of the signal transceiver device 100.
[0058] There are two second support parts 22. The first support part 21 is connected between the two second support parts 22. The connecting cable 50 is located between the two second support parts 22. The two second support parts 22 can limit and protect the connecting cable 50, reduce the shaking of the connecting cable 50 under external disturbances, and prevent foreign objects such as external branches from falling on the connecting cable 50, thereby preventing the connection between the connecting cable 50 and the connecting interface 124 and the cable interface 322 from loosening. The two second support parts 22 are respectively tilted relative to the first support part 21, and the tilt directions of the two second support parts 22 are opposite to each other. The two second support parts 22 are arranged in an "eight" shape. In this way, the overall stability of the support bracket 20 can be improved, the support bracket 20 can be prevented from being deformed when the photovoltaic module 30 is affected by external forces, and the support stability of the support bracket 20 for the photovoltaic module 30 can be improved.
[0059] Referring to Figure 6 , in some embodiments, the photovoltaic module 30 further includes an indicator structure 34. The indicator structure 34 is used to indicate the degree of perpendicularity between sunlight and the plane extending from the photovoltaic panel 33, thereby facilitating adjustment of the tilt angle of the photovoltaic module 30. The indicator structure 34 is mounted on the side of the housing 32 away from the mounting bracket 31. The indicator structure 34 extends perpendicular to the plane extending from the photovoltaic panel 33. The indicator structure 34 can be configured as an indicator post. The photovoltaic panel 33 can be configured as a flat plate. When sunlight strikes the photovoltaic module 30, the indicator structure 34 casts a shadow on the side of the housing 32 away from the mounting bracket 31. As the tilt angle of the photovoltaic module 30 is adjusted, the length of the shadow cast by the indicator structure 34 changes. The shadow length of the indicator structure 34 can be used to determine the angle between the photovoltaic panel 33 and sunlight. For example, when the indicator structure 34 does not cast a shadow on the housing 32, the sunlight is perpendicular to the photovoltaic panel 33.
[0060] In some embodiments, the signal transceiver 100 further includes an angle indicator for indicating the tilt angle of the photovoltaic module 30 relative to the horizontal plane of the ground. For example, the angle indicator may include an angle scale and a pointer. One of the support bracket 20 and the connecting ear 311 is provided with an angle scale, and the other is provided with a pointer. When the photovoltaic module 30 rotates relative to the support bracket 20, the pointer can indicate the angle value on the angle scale.
[0061] The above are only specific embodiments of the present application, but the scope of protection of the present application is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in this application, and such modifications or substitutions should be included in the scope of protection of this application. Therefore, the scope of protection of this application should be based on the scope of protection of the claims.
Claims
1. A signal transceiver device, wherein, Comprising: A signal transceiver module, the signal transceiver module includes a fixing member and a signal transceiver main body, the signal transceiver main body includes a housing and a signal transceiver component, the housing is mounted on the fixing member, and the signal transceiver component is received in the housing; A photovoltaic module, mounted on the fixing member, the maximum ground clearance of the photovoltaic module is less than or equal to the minimum ground clearance of the signal transceiver component, and the photovoltaic module is used to supply power to the signal transceiver component.
2. The signal transceiver device according to claim 1, wherein The signal transceiver device further includes a support bracket, a first connecting member, and a second connecting member; the support bracket is mounted on the fixing member, and the support bracket is provided with a first connecting hole and a second connecting hole; the photovoltaic module is located at one end of the support bracket away from the fixing member, the photovoltaic module is provided with a connecting ear, and the connecting ear is provided with a third connecting hole and a plurality of adjusting holes, and the distance between each adjusting hole and the third connecting hole is the same as the distance between the first connecting hole and the second connecting hole; the first connecting member passes through the first connecting hole and the third connecting hole; the second connecting member passes through the second connecting hole and one of the adjusting holes.
3. The signal transceiver device according to claim 2, wherein, The photovoltaic module includes a mounting bracket, a housing, and a photovoltaic panel, the photovoltaic panel is mounted on the housing, the mounting bracket is connected to the side of the housing away from the photovoltaic panel, the connecting ear is connected to the side of the mounting bracket away from the housing, the housing protrudes with a protruding portion on the side facing away from the photovoltaic panel, and a cable interface is provided on the side of the protruding portion close to the ground.
4. The signal transceiver device according to claim 3, wherein, A connecting interface is provided on the side of the housing close to the ground, the signal transceiver main body further includes a connecting cable, the connecting cable is respectively connected to the cable interface and the connecting interface, and the part of the connecting cable close to the cable interface is located on the side of the cable interface close to the ground.
5. The signal transceiver device according to claim 4, wherein, A cable channel is provided on the fixing member, the connecting interface is located in the cable channel, a cable through hole communicating with the cable channel is provided on the side wall of the fixing member, and the connecting cable passes through the cable channel and the cable through hole.
6. The signal transceiver device according to claim 5, wherein, A card slot is provided on the support bracket corresponding to the position of the cable through hole, and the connecting cable is arranged in the card slot.
7. The signal transceiver device according to claim 4, wherein The support bracket includes a first support portion and two second support portions, the first support portion is connected between the two second support portions, the first support portion is connected to the fixing member, and one end of the second support portion away from the first support portion is connected to the connecting ear, and the connecting cable is located between the two second support portions.
8. The signal transceiver device according to claim 7, wherein, The support bracket further includes a limiting member, the limiting member is connected between the second support portions, and the limiting member is fixedly connected to the connecting cable.
9. The signal transceiver device according to claim 3, wherein, An avoidance opening for avoiding the protruding portion is provided in the mounting bracket.
10. The signal transceiver device according to claim 4, wherein, The ground clearance of the connecting interface is greater than or equal to the ground clearance of the cable interface, and the length of the connecting cable is greater than the distance between the cable interface and the connecting interface.
11. The signal transceiver device according to claim 5, wherein, The part of the connecting cable between the cable through hole and the cable interface is arranged in a curved and drooping shape.
12. The signal transceiver device according to claim 3, wherein, The photovoltaic module further includes an indicating structure, which is installed on a side of the housing away from the mounting bracket, and an extending direction of the indicating structure is perpendicular to an extending plane of the photovoltaic panel.
13. The signal transceiver device according to claim 3, wherein, The housing includes an energy storage component.
14. The signal transceiver device according to claim 2, wherein, The plurality of adjustment holes are arranged at intervals; alternatively, the plurality of adjustment holes are connected to form an adjustment slot.
15. The signal transceiver device according to claim 2, wherein, A first mounting hole is formed in the fixing member, a second mounting hole is formed in the support bracket, and the signal transceiver further includes a third connecting member, and the third connecting member passes through the first mounting hole and the second mounting hole. The first mounting hole is provided as one, or the first mounting hole is provided as a plurality, and at least a part of the plurality of first mounting holes are arranged along a circumferential direction of the fixing member.
16. The signal transceiver device according to claim 1, wherein The maximum ground clearance is a distance between the end of the photovoltaic module farthest from the ground and a connection between the fixing member and the ground along an axial direction of the fixing member, and the minimum ground clearance is a distance between the end of the signal transceiver closest to the ground and a connection between the fixing member and the ground along the axial direction of the fixing member, and the axial direction of the fixing member is the Z-axis direction.
17. The signal transceiver device according to claim 1, wherein, The signal transceiver module is installed on a mobile device, the fixing member is fixedly connected to the mobile device, and the signal transceiver main body is installed on a side of the fixing member away from the mobile device.
18. The signal transceiver device according to claim 1, wherein, The fixing member is fixedly connected to the body of the mobile device, and the signal transceiver main body is installed at an end of the fixing member away from the body.
19. The signal transceiver device according to claim 17 or 18, wherein, The maximum ground clearance is a distance between the end of the photovoltaic module farthest from the ground and a connection between the fixing member and the mobile device along an axial direction of the fixing member, and the minimum ground clearance is a distance between the end of the signal transceiver closest to the ground and a connection between the fixing member and the mobile device along the axial direction of the fixing member.
20. The signal transceiver device according to claim 1, wherein, The signal transceiver further includes an angle indicating member.
Citation Information
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