An antenna bracket
By designing an antenna bracket with multi-angle rotation function, the problem that antennas can only receive single direction signals in the prior art are solved, and multi-angle signal reception of antennas is realized, and signal reception effect is improved.
Patent Information
- Application Number
- CN202111594732.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-12-22
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2041-12-22
AI Technical Summary
In the prior art, the antenna is fixed by an antenna bracket and can only receive signals in a single direction, resulting in limitations in the antenna when receiving signals.
An antenna bracket is designed, the bracket including an antenna mounting mechanism for mounting the antenna, a first rotating mechanism and a second rotating mechanism. Through these rotating mechanisms, the antenna mounting mechanism can rotate and rotate about different central axes, so that the antenna can receive signals from multiple angles.
Through the antenna bracket rotating at multiple angles, the antenna can effectively receive multi-directional signals, improve signal reception effect, and reduce limitations when receiving signals.
Smart Images

Figure CN114300828B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of mechanical equipment, and particularly relates to an antenna bracket. Background Art
[0002] An antenna is a component used to transmit or receive electromagnetic waves in a radio device. When using electromagnetic waves to transmit information, generally, the antenna is relied on to achieve the information transmission work. For a ground antenna, it is generally installed and fixed on an antenna bracket, and the antenna bracket protects and supports the ground antenna.
[0003] In the prior art, generally, the antenna is fixed by the antenna bracket and can only receive signals in a single direction, resulting in limitations in signal reception by the antenna. Summary of the Invention
[0004] The purpose of the embodiments of the present invention is to provide an antenna bracket, which at least solves the problem that in the prior art, the antenna is fixed by the antenna bracket and can only receive signals in a single direction, resulting in limitations in signal reception by the antenna.
[0005] The embodiments of the present invention provide an antenna bracket, which includes:
[0006] An antenna mounting mechanism for mounting an antenna;
[0007] A first rotation mechanism connected to the antenna mounting mechanism, and the first rotation mechanism drives the antenna mounting mechanism to rotate around a first central axis;
[0008] A second rotation mechanism disposed between the antenna mounting mechanism and the first rotation mechanism, the second rotation mechanism is fixedly connected to the antenna mounting mechanism and rotatably connected to the first rotation mechanism in a fixed-axis manner; while the first rotation mechanism drives the antenna mounting mechanism to rotate around the first central axis, the second rotation mechanism drives the antenna mounting mechanism to rotate around a second central axis relative to the first rotation structure in a fixed-axis manner;
[0009] Wherein, the first central axis and the second central axis are different central axes.
[0010] Optionally, the antenna bracket further includes: a bracket base;
[0011] Wherein, the bracket base includes: a bracket bottom plate and a first support column and a second support column disposed on the bracket bottom plate; the first support column and the second support column are oppositely arranged, and the first rotation mechanism is respectively connected to the first support column, the second support column and the bracket bottom plate.
[0012] Optionally, the first rotation mechanism includes:
[0013] A first rotating shaft fixedly connected to the first support column for fixed-axis rotation, and a second rotating shaft fixedly connected to the second support column for fixed-axis rotation. The first rotating shaft and the second rotating shaft are oppositely arranged between the first support column and the second support column;
[0014] A swing member arranged between the first support column and the second support column. The swing member is fixedly connected to the first rotating shaft and the second rotating shaft respectively, and an arc-shaped groove is formed on the swing member;
[0015] A first slider slidably connected to the arc-shaped groove. The first slider is fixedly connected to the second rotating mechanism for fixed-axis rotation;
[0016] A third rotating shaft movably connected to the first slider;
[0017] A rotating member fixedly connected to the third rotating shaft for fixed-axis rotation;
[0018] A first driving mechanism arranged on the support base plate. The rotating member is fixedly connected to a fourth rotating shaft of the first driving mechanism;
[0019] Wherein, the first driving mechanism drives the rotating member to rotate around the central axis of the fourth rotating shaft through the fourth rotating shaft. During the rotation of the rotating member, the swing member and the antenna mounting mechanism are driven to swing around the first central axis through the third rotating shaft, the first slider and the second driving mechanism; wherein, the first central axis is the central axis of the first rotating shaft and the second rotating shaft, and the central axes of the first rotating shaft and the second rotating shaft overlap.
[0020] Optionally, a spherical structure is arranged at one end of the third rotating shaft movably connected to the first slider. A groove matching the shape of the spherical structure is formed on the first slider. The spherical structure is embedded in the groove and is slidably connected to the groove.
[0021] Optionally, the second rotating mechanism includes:
[0022] An arc-shaped rack arranged between the antenna mounting mechanism and the swing member. The arc-shaped rack is connected to the swing member, and the arc of the arc-shaped rack is the same as that of the arc-shaped groove;
[0023] A fifth rotating shaft. One end of the fifth rotating shaft is fixedly connected to the antenna mounting mechanism, the other end of the fifth rotating shaft is fixedly connected to the first slider for fixed-axis rotation, and a gear is arranged around the circumferential direction on the outer surface of the fifth rotating shaft. The gear meshes with the arc-shaped rack;
[0024] During the movement of the first slider along the arc-shaped groove, the fifth rotating shaft is driven to move along the arc-shaped groove together; during the movement of the fifth rotating shaft, under the meshing action of the gear and the arc-shaped rack, the antenna mounting mechanism is driven to rotate around the second central axis relative to the first slider; wherein, the second central axis is the central axis of the fifth rotating shaft.
[0025] Optionally, the antenna mounting mechanism includes:
[0026] A shielding cover, a first cavity for mounting an antenna is formed inside the shielding cover, and a first opening is provided on the shielding cover;
[0027] A covering member covering the first opening;
[0028] Wherein, after the antenna is mounted in the first cavity, the antenna and the covering member are arranged opposite to each other, and the antenna transmits and receives signals through the covering member.
[0029] Optionally, the antenna bracket further includes:
[0030] A dust removal brush disposed at one end of the target rotating shaft facing the antenna mounting mechanism, and the dust removal brush is attached to the outer surface of the antenna mounting mechanism;
[0031] Wherein, the target rotating shaft includes at least one of the first rotating shaft and the second rotating shaft.
[0032] Optionally, the antenna bracket further includes: a dust removal mechanism;
[0033] The dust removal mechanism includes:
[0034] A first connecting member, one end of the first connecting member is fixedly connected to the bracket bottom plate, and the other end is attached to the swinging member;
[0035] A reciprocating movement mechanism, the reciprocating movement mechanism is in contact with the first connecting member;
[0036] A turntable, the turntable is sleeved on the fourth rotating shaft of the first driving mechanism and is fixedly connected to the fourth rotating shaft, at least one convex structure is provided on the side surface of the turntable, and the convex structure is in contact with the reciprocating movement mechanism;
[0037] Wherein, the first driving mechanism drives the turntable to rotate through the fourth rotating shaft. When the convex structure is in contact with the reciprocating movement mechanism, the turntable squeezes the reciprocating movement mechanism to move towards the direction close to the first connecting member, so that the reciprocating movement mechanism knocks the first connecting member, the first connecting member generates vibration and drives the swinging plate to vibrate, the vibration of the swinging plate drives the target rotating shaft to vibrate, and the vibration of the target rotating shaft drives the dust removal brush to vibrate.
[0038] Optionally, the reciprocating movement mechanism includes:
[0039] A third support column, one end of the third support column is connected to the support base plate, and the other end is arranged away from the support base plate;
[0040] A pressure rod, one end of the pressure rod passes through the third support column and abuts against the first connecting member, and the pressure rod is slidably connected to the third support column;
[0041] A pressing plate arranged at the other end of the pressure rod, and the pressing plate abuts against the convex structure on the turntable;
[0042] A first elastic member sleeved on the pressure rod, the first elastic member is arranged between the third support column and the pressing plate and is fixedly connected to the third support column and the pressing plate respectively.
[0043] Optionally, the first connecting member includes: a connecting column and a bearing plate;
[0044] Wherein, one end of the connecting column is fixedly connected to the support base plate, the other end is fixedly connected to the bearing plate, and one side surface of the bearing plate away from the first connecting member is attached to the swinging member.
[0045] Optionally, the dust removal mechanism further includes: a knocking member, and the knocking member is arranged at one end of the pressure rod facing the first connecting member;
[0046] Wherein, the contact area between the knocking member and the first connecting member is larger than the contact area between the pressure rod and the first connecting member.
[0047] Optionally, the antenna support further includes: a bird repelling mechanism, the bird repelling mechanism is arranged on a target rotating shaft, and the target rotating shaft includes at least one of the first rotating shaft and the second rotating shaft.
[0048] Optionally, the bird repelling mechanism includes:
[0049] A bird repelling support, one end of the bird repelling support is fixedly connected to the target rotating shaft, the other end is provided with a second opening, and the inside of the bird repelling support is hollow to form a second cavity;
[0050] A second slider, the second slider is arranged in the second cavity and is slidably connected to the inner side wall of the second cavity;
[0051] A bird repelling member, the bird repelling member is arranged outside the bird repelling support and is connected to one end of the second slider facing the second opening through a second connecting member;
[0052] A second elastic member is disposed in the second cavity, between the second slider and the target rotating shaft, and is fixedly connected to the sliding member and the inner wall of the second cavity opposite to the second opening respectively.
[0053] Optionally, the bird repelling mechanism further includes: a sounding body disposed at the second opening.
[0054] Optionally, the antenna bracket further includes: a rain curtain mechanism disposed between the first support column and the second support column. The rain curtain mechanism includes a rain curtain that can be extended and retracted. After the rain curtain is extended, it covers the antenna mounting mechanism.
[0055] Optionally, the rain curtain mechanism further includes:
[0056] A roller disposed on the first support column. The roller is fixedly connected to the first support column by a fixed axis rotation connection. A third elastic member is disposed between the roller and the first support column. The third elastic member is fixedly connected to the roller and the first support column respectively; one end of the rain curtain is fixedly connected to the roller;
[0057] A guide rail disposed between the first support column and the second support column;
[0058] A sliding rod disposed on the guide rail. The sliding rod is slidably connected to the guide rail. The other end of the rain curtain is fixedly connected to the sliding rod;
[0059] A second driving mechanism disposed on the second support column;
[0060] A third connecting member, one end of which is fixedly connected to the sliding rod and the other end is fixedly connected to the second driving mechanism.
[0061] Optionally, a third cavity is formed in the second support column. The second driving mechanism is disposed in the third cavity. The third connecting member extends to the outside through a through hole formed in the second support column.
[0062] In the embodiments of the present invention, through the first rotating mechanism and the second rotating mechanism in the antenna bracket, the antenna mounting mechanism is driven to rotate at multiple angles, thereby driving the antenna mounted on the antenna mounting mechanism to rotate at multiple angles. Furthermore, the antenna can achieve multi-angle signal reception, improve the signal reception effect of the antenna, and reduce the limitation of the antenna when receiving signals. BRIEF DESCRIPTION OF THE DRAWINGS
[0063] Figure 1 is a schematic structural diagram of the antenna bracket provided by the embodiments of the present invention;
[0064] Figure 2It is a schematic diagram of a partial structure of the antenna bracket provided by an embodiment of the present invention;
[0065] Figure 3 It is a cross-sectional view of the antenna mounting mechanism provided by an embodiment of the present invention;
[0066] Figure 4 It is a schematic diagram of the structure of the dust removal mechanism provided by an embodiment of the present invention;
[0067] Figure 5 It is a schematic diagram of the structure of the bird repelling mechanism provided by an embodiment of the present invention.
[0068] The description of the reference numerals is as follows:
[0069] 1. Antenna mounting mechanism; 2. Bracket bottom plate; 3. First support column; 4. Second support column; 5. First rotating shaft; 6. Second rotating shaft; 7. Swing member; 8. First slider; 9. Third rotating shaft; 10. Rotating member; 11. First driving mechanism; 12. Arc-shaped rack; 13. Fifth rotating shaft; 14. Antenna; 15. Dust removal brush; 16. First connecting member; 17. Turntable; 18. Third support column; 19. Pressing rod; 20. Pressing plate; 21. First elastic member; 22. Knocking member; 23. Bird repelling mechanism; 24. Rain curtain; 25. Roller; 26. Guide rail; 27. Slide bar; 28. Second driving mechanism; 29. Third connecting member; 30. Connecting plate; 31. Winding wheel; 31. Sixth rotating shaft;
[0070] 101. Shielding cover; 102. Covering member; 1011. First cavity; 401. Third cavity; 701. Arc-shaped groove; 901. Spherical structure; 1101. Fourth rotating shaft; 1102. First driving motor; 1301. Gear; 1601. Connecting column; 1602. Load-bearing plate; 1701. Protruding structure; 2301. Bird repelling bracket; 23011. Second opening; 2302. Second slider; 2303. Bird repelling member; 2304. Second connecting member; 2305. Second elastic member; 2306. Sound generating body; 2801. Second driving motor; 2802. Winding wheel. Detailed implementation manners
[0071] The embodiments of the present invention will be described in detail below. The examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals indicate the same or similar elements throughout, or indicate elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention and should not be construed as a limitation to the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts fall within the scope of protection of the present invention.
[0072] The terms "first" and "second" in the description and claims of the present invention may explicitly or implicitly include one or more of such features.
[0073] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "center", "vertical", "horizontal", "inner", "outer", "clockwise", "counterclockwise", "axial direction", "circumferential direction", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention.
[0074] In the description of the present invention, it should be noted that unless otherwise clearly specified and defined, the terms "mounted", "connected", and "coupled" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or an integral connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0075] The following Figures 1 to 5 , through specific embodiments and their application scenarios, will elaborate on the antenna bracket provided by the embodiments of the present invention in detail.
[0076] The antenna bracket may include: an antenna mounting mechanism 1, a first rotating mechanism, and a second rotating mechanism.
[0077] Among them, the antenna mounting mechanism 1 is used to mount the antenna 14, that is, the antenna 14 is mounted on the antenna bracket through the antenna mounting mechanism 1.
[0078] Among them, the first rotating mechanism is connected to the antenna mounting mechanism 1, and the first rotating mechanism can drive the antenna mounting mechanism 1 to rotate around the first central axis.
[0079] Among them, the second rotating mechanism is arranged between the antenna mounting mechanism 1 and the first rotating mechanism. The second rotating mechanism is fixedly connected to the antenna mounting mechanism 1 and is rotationally connected to the first rotating mechanism about a fixed axis. While the first rotating mechanism drives the antenna mounting mechanism 1 to rotate around the first central axis, the second rotating mechanism drives the antenna mounting mechanism 1 to rotate about a fixed axis relative to the first rotating structure around the second central axis. Since the second rotating mechanism is rotationally connected to the first rotating mechanism about a fixed axis, therefore, while the first rotating mechanism drives the antenna mounting mechanism 1 to rotate, the second rotating mechanism can also rotate about a fixed axis. Also, since the second rotating mechanism is fixedly connected to the antenna mounting mechanism 1, therefore, while the second rotating mechanism rotates about a fixed axis, it can also drive the antenna mounting mechanism 1 to rotate around the second central axis.
[0080] Wherein, both the first central axis and the second central axis can be an axis passing through the center of the antenna mounting mechanism 1, or can be axes other than the axis passing through the center of the antenna mounting mechanism 1. The first central axis and the second central axis are different axes.
[0081] In the embodiment of the present invention, through the first rotating mechanism and the second rotating mechanism in the antenna bracket, the antenna mounting mechanism 1 can be driven to rotate at multiple angles, thereby driving the antenna 14 mounted on the antenna mounting mechanism 1 to rotate at multiple angles, and further enabling the antenna 14 to receive signals at multiple angles, avoiding the situation where the signal reception effect of the antenna 14 is poor at a fixed position due to external interference, and improving the signal reception effect of the antenna 14.
[0082] As an alternative embodiment, the antenna bracket provided in the embodiment of the present invention may further include: a bracket base for carrying other structures of the antenna bracket.
[0083] Wherein, the bracket base may include: a bracket bottom plate 2, a first support column 3, and a second support column 4.
[0084] As Figure 1 shown, the first support column 3 and the second support column 4 are fixedly arranged on the bracket bottom plate 2, and the first support column 3 and the second support column 4 are arranged opposite to each other. Optionally, the first support column 3 and the second support column 4 are perpendicularly arranged on the bracket bottom plate 2. Wherein, the first rotating mechanism is respectively connected to the first support column 3, the second support column 4, and the bracket bottom plate 2.
[0085] As an alternative embodiment, the first rotating mechanism provided in the embodiment of the present invention may include: a first rotating shaft 5, a second rotating shaft 6, a swinging member 7, a first slider 8, a third rotating shaft 9, a rotating member 10, and a first driving mechanism 11. The following is a more specific explanation of the first rotating structure.
[0086] As Figure 1 shown, the first rotating shaft 5 and the second rotating shaft 6 are arranged opposite to each other between the first support column 3 and the second support column 4. The first rotating shaft 5 is rotatably connected to the first support column 3 in a fixed-axis manner, the second rotating shaft 6 is rotatably connected to the second support column 4 in a fixed-axis manner, and the central axes of the first rotating shaft 5 and the second rotating shaft 6 overlap. Optionally, the first rotating shaft 5 and the second rotating shaft 6 are arranged parallel to the bracket bottom plate 2.
[0087] As Figure 1 shown, the swinging member 7 is arranged between the first support column 3 and the second support column 4 and is fixedly connected to the first rotating shaft 5 and the second rotating shaft 6 respectively. In the case where the first rotating shaft 5 and the second rotating shaft 6 rotate simultaneously, the first rotating shaft 5 and the second rotating shaft 6 can drive the swinging member 7 to rotate around the central axis of the first rotating shaft 5 and the second rotating shaft 6. As Figure 2As shown, an arc-shaped groove 701 is formed on the swing member 7, and the first slider 8 is slidably connected to the arc-shaped groove 701. In addition, the first slider 8 is also fixedly connected to the second rotating mechanism for fixed-axis rotation.
[0088] As Figure 1 shown, the first driving mechanism 11 is arranged on the support base plate 2 and includes a first driving motor 1102 and a fourth rotating shaft 1101 connected to the first driving motor 1102. One end of the rotating member 10 is fixedly connected to the fourth rotating shaft 1101. When the first driving motor 1102 drives the fourth rotating shaft 1101 to rotate, the fourth rotating shaft 1101 drives the rotating member 10 to rotate around the central axis of the fourth rotating shaft 1101. Optionally, the fourth rotating shaft 1101 is perpendicular to the support base plate 2. As Figure 2 shown, the other end of the rotating member 10 is fixedly connected to one end of the third rotating shaft 9 for fixed-axis rotation, and the other end of the third rotating shaft 9 is movably connected to the first slider 8. Optionally, the rotating member 10 extends in the horizontal direction.
[0089] Among them, the first driving mechanism 11 can drive the rotating member 10 to rotate around the central axis of the fourth rotating shaft 1101 through the fourth rotating shaft 1101. During the rotation of the rotating member 10, a force deviating from the original position can be provided to the swing member 7 through the third rotating shaft 9 and the first slider 8, and the swing member 7 is restricted by the first rotating shaft 5 and the second rotating shaft 6 and swings around the central axis of the first rotating shaft 5 and the second rotating shaft 6 (i.e., the first central axis); similarly, during the rotation of the rotating member 10, a force deviating from the original position can also be provided to the antenna mounting mechanism 1 through the third rotating shaft 9, the first slider 8 and the second rotating mechanism. Due to the connection relationship between the third rotating shaft 9, the first slider 8, the second rotating mechanism and the antenna mounting mechanism 1, the antenna mounting mechanism 1 can swing around the first central axis along with the swing member 7.
[0090] Among them, during the rotation of the rotating member 10, the first slider 8 moves along the arc-shaped groove 701. When the first slider 8 moves from the first end of the arc-shaped groove 701 to the second end and then from the second end of the arc-shaped groove 701 to the first end, the swing member 7 and the antenna mounting mechanism 1 complete a periodic swing, that is: when the swing member 7 and the antenna mounting mechanism 1 swing from the initial position to the maximum position in the first direction, they return to the initial position direction, and after returning to the initial position, they swing from the initial position to the maximum position in the second direction, and then return to the initial position direction and return to the initial position.
[0091] Among them, the aforementioned initial position refers to the position where the swing member 7 and the antenna mounting mechanism 1 are located when they are not subjected to the force provided by the first driving mechanism 11. The aforementioned first direction refers to the clockwise or counterclockwise direction of rotation around the first central axis when looking from the first rotating shaft 5 to the second rotating shaft 6, and the aforementioned second direction is the direction opposite to the first direction.
[0092] The following takes an example to illustrate a periodic swing of the swing member 7 and the antenna mounting mechanism 1.
[0093] For example, when the swing member 7 and the antenna mounting mechanism 1 are in the initial position and the first slider 8 is at one end of the arc-shaped groove 701 Figure 1 as shown, if the first driving mechanism 11 drives the fourth rotating shaft 1101 to rotate clockwise, the swing member 7 and the antenna mounting mechanism 1 first rotate clockwise around the first central axis (when looking from the first rotating shaft 5 to the second rotating shaft 6, the clockwise and counterclockwise directions described below are the same). When the first slider 8 moves to the middle position of the arc-shaped groove 701, the swing member 7 and the antenna mounting mechanism 1 rotate clockwise around the first central axis to the maximum distance. At this time, the rotating member 10 rotates 90 degrees relative to its own initial position (the position where the rotating member 10 is located when the first driving mechanism 11 does not drive the rotating member 10 to rotate). After that, the first slider 8 continues to move towards the other end of the arc-shaped groove 701, and the swing member 7 and the antenna mounting mechanism 1 start to rotate counterclockwise around the first central axis. When the first slider 8 moves to the other end of the arc-shaped groove 701 (such as Figure 2 the position shown), the swing member 7 and the antenna mounting mechanism 1 return to the initial position. At this time, the rotating member 10 rotates 180 degrees relative to its own initial position. Then, the first slider 8 starts to move from the current position of the arc-shaped groove 701 to the other end, and the swing member 7 and the antenna mounting mechanism 1 continue to rotate counterclockwise around the first central axis from the initial position. When the first slider 8 moves to the middle position of the arc-shaped groove 701 again, the swing member 7 and the antenna mounting mechanism 1 rotate counterclockwise around the first central axis to the maximum distance. At this time, the rotating member 10 rotates 270 degrees relative to its own initial position. Finally, the first slider 8 continues to move towards the other end of the arc-shaped groove 701, and the swing member 7 and the antenna mounting mechanism 1 start to rotate clockwise around the first central axis. When the first slider 8 moves to the other end of the arc-shaped groove 701 (such as Figure 1 the position shown), the swing member 7 and the antenna mounting mechanism 1 return to the initial position again. At this time, the rotating member 10 rotates 360 degrees relative to its own initial position. Thus, the swing member 7 and the antenna mounting mechanism 1 complete a periodic swing.
[0094] In the embodiment of the present invention, by driving the antenna mounting mechanism 1 to swing around the first central axis through the first rotating mechanism, the antenna 14 mounted on the antenna mounting mechanism 1 can receive signals at multiple angles, thereby improving the signal reception effect of the antenna 14.
[0095] Optionally, a spherical structure 901 is provided at one end of the third rotating shaft 9 that is movably connected to the first slider 8. Correspondingly, a groove matching the shape of the spherical structure 901 is formed on the first slider 8. The spherical structure 901 is embedded in the groove and slidably connected to the groove, and can thus rotate within the groove. Such a structural design can improve the flexibility of the connection between the third rotating shaft 9 and the first slider 8. Optionally, the third rotating shaft 9 and the spherical structure 901 can be integrally formed, which can make the structure more solid and firm.
[0096] Optionally, as Figure 1 and Figure 2 shown, the swing member 7 has an arc-shaped structure.
[0097] Optionally, when the first central axis passes through the center of the antenna mounting mechanism 1, the first central axis is an axis passing through the center of the antenna mounting mechanism 1; otherwise, the first central axis is an axis other than the axis passing through the center of the antenna mounting mechanism 1.
[0098] As an optional embodiment, the second rotating mechanism provided in the embodiment of the present invention may include: an arc-shaped rack 12 and a fifth rotating shaft 13.
[0099] As Figure 2 shown, the arc-shaped rack 12 is disposed between the antenna mounting mechanism 1 and the swing member 7 and is connected to the swing member 7. The arc-shaped rack 12 has the same radian as the arc-shaped groove 701. One end of the fifth rotating shaft 13 is fixedly connected to the antenna mounting mechanism 1, and the other end is rotatably connected to the first slider 8 about a fixed axis. A gear 1301 is disposed around the circumferential direction on the outer surface of the fifth rotating shaft 13, and the gear 1301 meshes with the arc-shaped rack 12.
[0100] During the process of the first slider 8 sliding along the arc-shaped groove 701, the fifth rotating shaft 13 is driven to move along the arc-shaped groove 701 together. During the movement of the fifth rotating shaft 13, under the meshing action of the gear 1301 and the arc-shaped rack 12, it also rotates about its own central axis relative to the first slider 8. Also, since the antenna mounting mechanism 1 is fixedly connected to the fifth rotating shaft 13, the fifth rotating shaft 13 also drives the antenna mounting mechanism 1 to rotate about its own central axis relative to the first slider 8. At this time, the central axis of the fifth rotating shaft 13 is the second central axis.
[0101] In the embodiment of the present invention, by driving the antenna mounting mechanism 1 to rotate about the second central axis through the second rotating mechanism, the antenna 14 mounted on the antenna mounting mechanism 1 can perform multi-angle signal reception, thereby improving the signal reception effect of the antenna 14.
[0102] Optionally, as Figure 2As shown in the figure, the second rotating mechanism may further include a connecting plate 30, and the arc-shaped rack 12 is disposed on the connecting plate 30. Among them, the arc-shaped rack 12 and the connecting plate 30 may be integrally formed, and such a structure is firm and solid. Of course, they may also be two independent structures, and the arc-shaped rack 12 is fixed to the connecting plate 30.
[0103] As an alternative embodiment, as Figures 1 to 3 shown, the antenna mounting mechanism 1 provided by the embodiment of the present invention may include: a shielding cover 101 and a covering member 102.
[0104] As Figure 3 shown, a first cavity 1011 for mounting the antenna 14 is formed inside the shielding cover 101, and a first opening is formed on the shielding cover 101. The covering member 102 covers the first opening, and the covering member 102 is movably connected to the shielding cover 101, that is, the covering member 102 is detachable. After the antenna 14 is mounted in the first cavity 1011, the antenna 14 and the covering member 102 are disposed opposite to each other, and the covering member 102 receives external signals or sends signals to the outside. Among them, the antenna 14 can be mounted in the first cavity 1011 through the first opening.
[0105] In the embodiment of the present invention, the shielding cover 101 can reduce the probability that the interference signal is received by the antenna 14. The shielding cover 101 is a surrounding structure, which can achieve signal anti-interference from multiple angles. In addition, in the embodiment of the present invention, a region (i.e., the first opening region) for the antenna 14 to receive and transmit signals is reserved on the shielding cover 101. While expanding the anti-interference range as much as possible, the antenna 14 can also receive and transmit signals normally. Further, in order to prevent foreign matters such as dust and rain from entering the first cavity 1011, a covering member 102 is provided at the first opening. The covering member 102 has no signal shielding function or a weak signal shielding function. Therefore, the antenna 14 can receive and transmit signals through the covering member 102.
[0106] Optionally, the shielding cover 101 is a spherical structure, which has a better anti-interference effect. Among them, the covering member 102 and the shielding cover 101 together form a complete spherical antenna mounting mechanism 1, that is, the arc radius of the covering member 102 is the same as the arc radius of the shielding cover 101.
[0107] Optionally, when the shielding cover 101 is a spherical structure, the surface of the swinging member 7 facing the antenna mounting mechanism 1 is adapted to the shape of the antenna mounting mechanism 1, that is, the surface of the swinging member 7 facing the antenna mounting mechanism 1 is an arc surface. The area on the connecting plate 30 where the arc-shaped rack 12 is disposed is arc-shaped.
[0108] Optionally, the material of the covering member 102 is a material such as plastic or rubber that has no shielding performance for the signal of the antenna 14 or has a weak shielding performance for the signal of the antenna 14.
[0109] As an alternative embodiment, as Figure 1 and as Figure 2 shown, the antenna bracket may further include: a dust brush 15.
[0110] The dust brush 15 is disposed at one end of the target rotating shaft facing the antenna mounting mechanism 1 and is in contact with the outer surface of the antenna mounting mechanism 1. Wherein, the target rotating shaft includes at least one of the first rotating shaft 5 and the second rotating shaft 6, that is, the dust brush 15 can be disposed on the first rotating shaft 5, can also be disposed on the second rotating shaft 6, or the dust brush 15 can be respectively disposed on the first rotating shaft 5 and the second rotating shaft 6, as Figure 1 shown.
[0111] Wherein, by the rotation of the target rotating shaft, the dust brush 15 can be driven to rotate, thereby wiping the dust on the outer surface of the antenna mounting mechanism 1 to reduce the influence of dust on the signal reception efficiency of the antenna 14. In addition, since the antenna mounting mechanism 1 can rotate around the first central axis and the second central axis to perform complex movements, the wiping range of the dust brush 15 can be increased and the wiping dead angle can be reduced.
[0112] Optionally, when the antenna mounting mechanism 1 is a spherical structure, the portion of the dust brush 15 in contact with the outer surface of the antenna mounting mechanism 1 is in an arc shape matching the shape of the antenna mounting mechanism 1, so that the dust brush 15 can better fit the surface of the antenna mounting mechanism 1, thereby achieving a better dust removal effect.
[0113] Optionally, in the case where the target rotating shaft includes the first rotating shaft 5 and the second rotating shaft 6, the dust brush 15 may include: a first dust brush disposed at one end of the first rotating shaft 5 facing the antenna mounting mechanism 1 and a second dust brush disposed at one end of the second rotating shaft 6 facing the antenna mounting mechanism 1. Providing two dust brushes can further expand the wiping range and reduce the wiping dead angle.
[0114] As an alternative embodiment, the antenna bracket may further include: a dust removal mechanism.
[0115] The dust removal mechanism may include: a first connecting member 16, a turntable 17, and a reciprocating movement mechanism.
[0116] Wherein, as Figure 1 shown, one end of the first connecting member 16 is fixedly connected to the bracket bottom plate 2, and the other end is in contact with the swinging member 7. Optionally, the first connecting member 16 can be vertically disposed on the bracket bottom plate 2. As Figure 1 and Figure 4As shown, the turntable 17 is sleeved on the fourth rotating shaft 1101 of the first driving mechanism 11 and is fixedly connected to the fourth rotating shaft 1101. At least one protruding structure 1701 is provided on the side of the turntable 17. The reciprocating mechanism abuts against the protruding structure 1701 and the first connecting member 16 respectively. Optionally, the fourth rotating shaft 1101 is vertically arranged with the bracket bottom plate 2.
[0117] Among them, the first driving mechanism 11 drives the turntable 17 to rotate through the fourth rotating shaft 1101. When the protruding structure 1701 abuts against the reciprocating mechanism, the turntable 17 squeezes the reciprocating mechanism to move toward the first connecting member 16, so that the reciprocating mechanism knocks the first connecting member 16. After being knocked by the reciprocating mechanism, the first connecting member 16 vibrates and drives the swinging member 7 to vibrate. The vibration of the swinging member 7 drives the target rotating shaft to vibrate. The vibration of the target rotating shaft finally drives the dust removal brush 15 to vibrate, so that the dust on the dust removal brush 15 is shaken off, realizing the function of automatically cleaning the dust removal brush 15.
[0118] Optionally, when the target rotating shaft includes the first rotating shaft 5 and the second rotating shaft 6, the central axis of the fourth rotating shaft 1101 can be used as the symmetry axis to symmetrically set two first connecting members 16. Correspondingly, the fourth rotating shaft 1101 can also be used as the symmetry axis to symmetrically set two reciprocating moving mechanisms. By setting multiple force application points, a better vibration effect can be achieved.
[0119] Alternatively, if Figure 1 and Figure 4 As shown, the reciprocating mechanism may include: a third supporting column 18 , a pressing rod 19 , a pressing plate 20 and a first elastic component 21 .
[0120] Among them, Figure 1 As shown, one end of the third support column 18 is connected to the support bottom plate 2, and the other end points to the swing member 7 and is arranged away from the support bottom plate 2. Optionally, the third support column 18 can be vertically arranged on the support bottom plate 2. Figure 1 As shown, one end of the pressure rod 19 passes through the third support column 18 and abuts against the first connecting member 16, and the pressure rod 19 is also slidably connected to the third support column 18. Optionally, the pressure rod 19 is arranged parallel to the bracket bottom plate 2. Figure 4 As shown, the pressing plate 20 is arranged at the other end of the pressing rod 19 and is fixedly connected to the pressing rod 19. Optionally, the pressing plate 20 is arranged vertically with the bracket bottom plate 2. Figure 1 As shown, the first elastic component 21 is sleeved on the pressure rod 19, disposed between the third support column 18 and the pressure plate 20, and fixedly connected to the third support column 18 and the pressure plate 20 respectively.
[0121] Among them, the first driving mechanism 11 drives the turntable 17 to rotate through the fourth rotating shaft 1101. When the convex structure 1701 abuts against the pressing plate 20, the turntable 17 squeezes the pressing plate 20 to move towards the first connecting member 16. When the pressing plate 20 moves towards the first connecting member 16, it drives the pressing rod 19 to move towards the first connecting member 16, and the first elastic member 21 is compressed. When the pressing rod 19 abuts against the first connecting member 16, the pressing rod 19 knocks on the first connecting member 16. After that, during the rotation of the turntable 17, when the convex structure 1701 separates from the pressing plate 20, the acting force of the turntable 17 on the pressing plate 20 disappears. Under the elastic force of the first elastic member 21, the pressing plate 20 moves away from the first connecting member 16 and drives the pressing rod 19 to move away from the first connecting member 16, reducing the acting force between the pressing rod 19 and the first connecting member 16.
[0122] In the embodiment of the present invention, through the transmission of force, the dust removal brush 15 vibrates, so that the dust on it shakes off, realizing the function of automatically cleaning the dust removal brush 15.
[0123] Optionally, as Figure 1 described, the first connecting member 16 may include: a connecting column 1601 and a bearing plate 1602.
[0124] Among them, one end of the connecting column 1601 is connected to the bracket bottom plate 2, and the other end is fixedly connected to the bearing plate 1602. The surface of the bearing plate 1602 facing away from the first connecting member 16 is attached to the swinging member 7. Through this bearing plate 1602, the acting range of the force on the swinging plate can be increased, thereby improving the vibration effect.
[0125] Optionally, as Figure 1 shown, the dust removal mechanism may further include: a knocking member 22.
[0126] Among them, the knocking member 22 is arranged at one end of the pressing rod 19 facing the first connecting member 16, and the pressing rod 19 abuts against the first connecting member 16 through the knocking member 22. Among them, the contact area between the knocking member 22 and the first connecting member 16 is larger than the contact area between the pressing rod 19 and the connecting member. Therefore, through this knocking member 22, the acting range of the force on the first connecting member 16 can be increased, thereby improving the vibration effect.
[0127] Optionally, the knocking member 22 and the pressing rod 19 may be integrally formed.
[0128] Optionally, the first connecting member 16 is attached to the position of the swinging member 7 close to the target rotating shaft, so as to reduce the force transmission distance, reduce the loss of force during the transmission process, and reduce the influence on the vibration effect.
[0129] Optionally, the first elastic member 21 may be a spring.
[0130] As an alternative embodiment, the antenna support may further include: a bird repelling mechanism 23.
[0131] Wherein, the bird repelling mechanism 23 is disposed on a target rotating shaft, and the target rotating shaft includes at least one of a first rotating shaft 5 and a second rotating shaft 6. That is, the bird repelling mechanism 23 may be disposed on the first rotating shaft 5, or may be disposed on the second rotating shaft 6, or the bird repelling mechanisms 23 may be respectively disposed on the first rotating shaft 5 and the second rotating shaft 6. The bird repelling mechanism 23 can rotate with the rotation of the target rotating shaft, thereby expanding the bird repelling range.
[0132] Optionally, the bird repelling mechanism 23 may specifically include: a bird repelling support 2301, a second slider 2302, a bird repelling member 2303, a second connecting member 2304, and a second elastic member 2305.
[0133] Wherein, as Figure 5 shown, one end of the bird repelling support 2301 is fixedly connected to the target rotating shaft, and the other end is provided with a second opening 23011. The interior of the bird repelling support 2301 is hollow to form a second cavity. The second slider 2302 is disposed in the second cavity and is slidably connected to the inner wall of the second cavity. The bird repelling member 2303 is disposed outside the bird repelling support 2301 and is connected to one end of the second slider 2302 facing the second opening 23011 through the second connecting member 2304. The second elastic member 2305 is disposed in the second cavity, between the second slider 2302 and the target rotating shaft, and is fixedly connected to the sliding member and the inner wall of the second cavity opposite to the second opening 23011 respectively.
[0134] During the rotation of the target rotating shaft, the bird repelling member 2303 can rotate with the rotation of the target rotating shaft. At the same time, the bird repelling member 2303 can also drive the second slider 2302 to move in the direction of the second opening 23011 through the second connecting member 2304. During the process of the second slider 2302 moving in the direction of the second opening 23011, the second elastic member 2305 is driven to extend in the direction of the second opening 23011. When the elongation length of the second elastic member 2305 stops changing, the second elastic member 2305 begins to contract in the direction away from the second opening 23011, and at the same time drives the second slider 2302 to move in the direction away from the second opening 23011. Among them, when the second elastic member 2305 extends in the direction of the second opening 23011, the distance between the bird repelling member 2303 and the second opening 23011 increases. Therefore, the bird repelling range of the bird repelling member 2303 can be increased, thereby better reducing the possibility of birds staying on or nesting on the antenna support.
[0135] Optionally, as Figure 5As shown, the bird repelling mechanism 23 may further include: a sounding body 2306 disposed at the second opening 23011. When the second elastic member 2305 contracts in a direction away from the second opening 23011 and drives the second slider 2302 to move in a direction away from the second opening 23011, the bird repelling member 2303 is driven by the second slider 2302 to move in the direction of the second opening 23011 and can collide with the sounding body 2306 disposed at the second opening 23011 and strike the sounding body 2306 to generate sound, thereby further improving the bird repelling efficiency.
[0136] Optionally, the second elastic member 2305 may be a spring.
[0137] Optionally, the second connecting member 2304 may be a connecting line.
[0138] Optionally, when the target rotating shaft is stationary, the second opening 23011 on the bird repelling bracket 2301 faces the bracket bottom plate 2.
[0139] As an alternative embodiment, the antenna bracket may further include: a rain curtain mechanism disposed between the first support column 3 and the second support column 4. The rain curtain mechanism may include an extendable and retractable rain curtain 24. After the rain curtain 24 extends, it shields the antenna mounting mechanism 1 to prevent the antenna mounting mechanism 1 and the antenna 14 mounted on the antenna mounting mechanism 1 from being corroded by rainwater, and extends the service life of the antenna mounting mechanism 1 and the antenna 14.
[0140] Optionally, the rain curtain mechanism may further include: a roller 25, a guide rail 26, a sliding rod 27, a third connecting member 29, a third elastic member, and a second driving mechanism 28.
[0141] As Figure 1 shown, the roller 25 is disposed on the first support column 3, the third elastic member is disposed between the roller 25 and the first support column 3 and is fixedly connected to the roller 25 and the first support column 3 respectively. The guide rail 26 is disposed between the first support column 3 and the second support column 4, the sliding rod 27 is disposed on the guide rail 26 and is slidably connected to the guide rail 26. One end of the third connecting member 29 is fixedly connected to the sliding rod 27, and the other end is fixedly connected to the second driving machine. Moreover, the third connecting member 29 can move to wind around the second driving mechanism 28 or move away from the second driving mechanism 28 under the drive of the second driving mechanism 28. One end of the rain curtain 24 is fixedly connected to the roller 25, and the other end is fixedly connected to the sliding rod 27. The rain curtain 24 can be wound around the roller 25.
[0142] In the embodiment of the present invention, when the third connecting member 29 winds around the second driving mechanism 28 under the drive of the second driving mechanism 28, the third connecting member 29 drives the sliding rod 27 to move towards the second support column 4, and the sliding rod 27 drives the rain curtain 24 to extend towards the second support column 4, thereby realizing the opening of the rain curtain 24. During the process of the rain curtain 24 moving towards the second support column 4, the winding roller 25 rotates around a fixed axis in the first direction relative to the first support column 3. Under the fixed-axis rotation of the winding roller 25, a force is generated on the third elastic member to make it elongate. When the third connecting member 29 moves away from the second driving mechanism 28 under the drive of the second driving mechanism 28, under the action of the elastic force accumulated in the third elastic member before, the winding roller 25 can be driven to rotate around a fixed axis in the second direction opposite to the first direction, and then the winding roller 25 rotating around a fixed axis drives the rain curtain 24 to retract towards the first support column 3, thereby realizing the retraction of the rain curtain 24.
[0143] Optionally, a third cavity 401 is provided in the second support column 4, the second driving mechanism 28 is arranged in the third cavity 401, and the third connecting member 29 extends to the outside through a through hole provided on the second support column 4. Such a structural design can achieve the rain-proof design of the second driving mechanism 28, avoid the second driving mechanism 28 being corroded by rainwater, and extend the service life of the second driving mechanism 28.
[0144] Optionally, the second driving mechanism 28 may include: a second driving motor 2801 and a winding wheel 2802 arranged on the driving motor, and the second driving motor 2801 can drive the winding wheel 2802 to rotate clockwise or counterclockwise.
[0145] One end of the third connecting member 29 is connected to the winding wheel 2802 and is fixedly connected to the second driving mechanism 28 through the winding wheel 2802. When the second driving motor 2081 drives the winding wheel 2802 to rotate in different directions, the third connecting member 29 winds around the winding wheel 2802 or moves away from the winding wheel 2802.
[0146] Optionally, a control switch may be provided on the antenna bracket, and the control switch is electrically connected to the second driving motor 2801 of the second driving mechanism 28 for controlling the second driving motor 2801 to drive the winding wheel 2802 to rotate clockwise or counterclockwise to realize the opening and retraction of the rain curtain 24.
[0147] Optionally, the third elastic member may be a torsion spring.
[0148] Optionally, the third connecting member 29 may be a connecting line.
[0149] Optionally, the roller 25 can be fixedly rotatably connected to the first support column 3 through the sixth rotating shaft 31, that is, the sixth rotating shaft 31 is fixedly rotatably connected to the first support column 3, and the roller 25 is sleeved on the sixth rotating shaft 31 and fixedly connected to the sixth rotating shaft 31.
[0150] The above is the description of the antenna bracket provided by the embodiment of the present invention. From the foregoing, it can be seen that the antenna bracket provided by the embodiment of the present invention can achieve multi-angle signal reception, avoiding the situation where the signal reception effect of the antenna is poor at a fixed position due to external interference, and improving the signal reception effect of the antenna. In addition, the antenna mounting mechanism can enable the antenna 14 to receive and transmit signals normally while reducing signal interference. Further, the dust removal brush on the antenna bracket can wipe the dust on the surface of the antenna mounting mechanism, reducing the interference of dust on the signal reception and transmission of the antenna. And the dust removal mechanism on the antenna bracket can, through the transmission of force, remove the dust on the dust removal brush. Furthermore, the bird repelling mechanism on the antenna bracket can drive away birds and prevent them from approaching. Finally, the rain curtain mechanism of the antenna bracket can shield the antenna mounting mechanism, reducing the corrosion of rainwater on the antenna mounting mechanism and extending the service life of the antenna mounting mechanism.
[0151] In the description of this specification, the descriptions referring to terms such as "one embodiment", "some embodiments", "schematic embodiments", "examples", "specific examples", or "some examples" etc. mean that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.
[0152] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the claims and their equivalents.
Claims
1. An antenna bracket, characterized in that, it includes: An antenna mounting mechanism for mounting an antenna; A first rotating mechanism connected to the antenna mounting mechanism, and the first rotating mechanism drives the antenna mounting mechanism to rotate around a first central axis; A second rotating mechanism disposed between the antenna mounting mechanism and the first rotating mechanism, the second rotating mechanism is fixedly connected to the antenna mounting mechanism and rotatably connected to the first rotating mechanism in a fixed-axis manner; while the first rotating mechanism drives the antenna mounting mechanism to rotate around the first central axis, the second rotating mechanism drives the antenna mounting mechanism to rotate around a second central axis relative to the first rotating mechanism in a fixed-axis manner; wherein, the first central axis and the second central axis are different central axes; A bracket base; wherein, the bracket base includes: a bracket bottom plate and a first support column and a second support column disposed on the bracket bottom plate; the first support column and the second support column are oppositely arranged; A second driving mechanism disposed on the second support column; wherein, the first rotating mechanism includes: A first rotating shaft rotatably connected to the first support column in a fixed-axis manner, and a second rotating shaft rotatably connected to the second support column in a fixed-axis manner, the first rotating shaft and the second rotating shaft are oppositely arranged between the first support column and the second support column; A swing member disposed between the first support column and the second support column, the swing member is fixedly connected to the first rotating shaft and the second rotating shaft respectively, and an arc-shaped groove is formed on the swing member; A first slider slidably connected to the arc-shaped groove, and the first slider is rotatably connected to the second rotating mechanism in a fixed-axis manner; A third rotating shaft movably connected to the first slider; A rotating member rotatably connected to the third rotating shaft in a fixed-axis manner; A first driving mechanism disposed on the bracket bottom plate, and the rotating member is fixedly connected to a fourth rotating shaft of the first driving mechanism; wherein, the first central axis is the central axis of the first rotating shaft and the second rotating shaft, and the central axes of the first rotating shaft and the second rotating shaft overlap; wherein, the second rotating mechanism includes: An arc-shaped rack disposed between the antenna mounting mechanism and the swing member, the arc-shaped rack is connected to the swing member, and the arc of the arc-shaped rack is the same as that of the arc-shaped groove; A fifth rotating shaft, one end of the fifth rotating shaft is fixedly connected to the antenna mounting mechanism, the other end of the fifth rotating shaft is rotatably connected to the first slider, and a circle of gears is arranged around the circumferential direction on the outer surface of the fifth rotating shaft, and the gears are engaged with the arc-shaped rack; wherein, the second central axis is the central axis of the fifth rotating shaft.
2. The antenna bracket according to claim 1, characterized in that, One end of the third rotating shaft movably connected to the first slider is provided with a spherical structure, a groove matching the shape of the spherical structure is formed on the first slider, and the spherical structure is embedded in the groove and slidably connected to the groove.
3. The antenna bracket according to claim 1, characterized in that, The antenna mounting mechanism includes: A shielding cover, a first cavity for mounting an antenna is formed inside the shielding cover, and a first opening is formed on the shielding cover; A covering member covering the first opening; wherein, after the antenna is mounted in the first cavity, the antenna and the covering member are oppositely arranged, and the antenna receives and transmits signals through the covering member.
4. The antenna bracket according to claim 1, characterized in that, The antenna bracket further includes: A dust removal brush is disposed at one end of the target rotating shaft facing the antenna mounting mechanism, the dust removal brush is in contact with the outer surface of the antenna mounting mechanism; Wherein, the target rotation axis includes: at least one of the first rotation axis and the second rotation axis.
5. The antenna support according to claim 4, It is characterized in that The antenna bracket also includes: a dust removal mechanism; The dust removal mechanism comprises: A first connecting member, one end of which is fixedly connected to the bracket bottom plate, and the other end of which is in contact with the swinging member; a reciprocating mechanism, the reciprocating mechanism abutting against the first connecting member; A rotating disk, the rotating disk is sleeved on the fourth rotating shaft of the first driving mechanism and is fixedly connected to the fourth rotating shaft, and at least one protruding structure is provided on the side of the rotating disk, and the protruding structure abuts against the reciprocating movement mechanism; Among them, the first driving mechanism drives the turntable to rotate through the fourth rotating shaft, and when the protruding structure abuts against the reciprocating mechanism, the turntable squeezes the reciprocating mechanism to move toward the direction close to the first connecting member, so that the reciprocating mechanism knocks the first connecting member, the first connecting member vibrates and drives the swinging member to vibrate, the vibration of the swinging member drives the target rotating shaft to vibrate, and the vibration of the target rotating shaft drives the dust removal brush to vibrate.
6. The antenna support according to claim 5, It is characterized in that The reciprocating mechanism comprises: A third support column, one end of which is connected to the support bottom plate, and the other end of which is arranged away from the support bottom plate; A pressure rod, one end of which passes through the third support column and abuts against the first connecting member, and the pressure rod is slidably connected to the third support column; A pressing plate is arranged at the other end of the pressing rod, and the pressing plate abuts against the raised structure on the rotating disk; A first elastic component is sleeved on the pressure rod, wherein the first elastic component is arranged between the third support column and the pressure plate, and is fixedly connected to the third support column and the pressure plate respectively.
7. The antenna support according to claim 6, It is characterized in that The first connecting member includes: a connecting column and a bearing plate; Among them, one end of the connecting column is fixedly connected to the bracket bottom plate, and the other end is fixedly connected to the load-bearing plate, and the side surface of the load-bearing plate facing away from the first connecting member is in contact with the swinging member.
8. The antenna support according to claim 7, It is characterized in that The dust removal mechanism further includes: a knocking member, the knocking member being arranged at one end of the pressure rod facing the first connecting member; Wherein, the contact area between the knocking member and the first connecting member is larger than the contact area between the pressure rod and the first connecting member.
9. The antenna support according to claim 1, It is characterized in that The antenna bracket further includes a bird-repelling mechanism, wherein the bird-repelling mechanism is disposed on a target rotating shaft, and the target rotating shaft includes at least one of the first rotating shaft and the second rotating shaft.
10. The antenna support according to claim 9, It is characterized in that The bird-repelling mechanism comprises: A bird repelling bracket, one end of the bird repelling bracket is fixedly connected to the target rotating shaft, the other end is provided with a second opening, and the inside of the bird repelling bracket is hollow to form a second cavity; A second slider, the second slider is arranged in the second cavity and is slidably connected to the inner side wall of the second cavity; A bird repelling member, the bird repelling member is arranged outside the bird repelling bracket and is connected to one end of the second slider facing the second opening through a second connecting member; A second elastic member, the second elastic member is arranged in the second cavity, located between the second slider and the target rotating shaft, and is fixedly connected to the second slider and the inner wall of the second cavity opposite to the second opening respectively.
11. The antenna bracket according to claim 10, wherein, the bird repelling mechanism further includes: a sounding body arranged at the second opening.
12. The antenna bracket according to claim 1, wherein, the antenna bracket further includes: a rain curtain mechanism arranged between the first support column and the second support column, the rain curtain mechanism includes a rain curtain that can be stretched and contracted, and after the rain curtain is stretched, it covers the antenna mounting mechanism.
13. The antenna bracket according to claim 12, wherein, the rain curtain mechanism further includes: a roller arranged on the first support column, the roller is fixedly connected to the first support column in a fixed-axis rotation manner, a third elastic member is arranged between the roller and the first support column, and the third elastic member is fixedly connected to the roller and the first support column respectively; one end of the rain curtain is fixedly connected to the roller; a guide rail arranged between the first support column and the second support column; a sliding rod arranged on the guide rail, the sliding rod is slidably connected to the guide rail, and the other end of the rain curtain is fixedly connected to the sliding rod; a third connecting member, one end of the third connecting member is fixedly connected to the sliding rod, and the other end is fixedly connected to the second driving mechanism.
14. The antenna bracket according to claim 13, wherein, a third cavity is formed inside the second support column, the second driving mechanism is arranged in the third cavity, and the third connecting member extends to the outside through a through hole formed on the second support column.
Citation Information
Patent Citations
Electronic communication antenna support capable of reducing signal interference
CN114361765A