Mounting rack for network communication equipment

By combining wind direction and fastening structures, and utilizing the centrifugal displacement of the horizontal plate and airbag fastening, the stability problem of network communication equipment mounting brackets under strong winds was solved, achieving stable fixation of equipment and lines, and improving overall stability and lifespan.

CN121876294AActive Publication Date: 2026-04-17FUJIAN FANGHAN TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
FUJIAN FANGHAN TECHNOLOGY CO LTD
Filing Date
2026-03-23
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

The mounting brackets for existing network communication equipment lack sufficient stability under strong winds or severe weather conditions, and the connections are prone to shaking or loosening, affecting the directionality and stability of signal reception, and the fastening status cannot be dynamically adjusted.

Method used

The design combines wind-direction and fastening structures, utilizing the centrifugal displacement characteristics of the horizontal plate under wind force. Through a dual fastening method of clamping components and airbags, the support columns are automatically locked and the lines are stably fixed, enhancing the stability and wind resistance of the structure.

Benefits of technology

It effectively improves the stability and structural rigidity of the mounting frame under wind force, prevents equipment swaying and wiring loosening, balances structural stability and wiring safety, simplifies the mechanical structure and extends service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of network signal receivers, in particular to a mounting rack for network communication equipment, which comprises a first support column and a second support column for supporting a network signal receiving host, and a bearing table for supporting the network signal receiving host is fixed on the outer surface of the second support column; a wind direction structure is arranged on the top side of the second supporting stand column and comprises a supporting base and a plurality of transverse plates distributed at equal intervals, one side of each transverse plate extends into the supporting base, and a first fastening structure and a second fastening structure which are used in cooperation with the wind direction structure are arranged outside the first supporting stand column. According to the mounting frame for the network communication equipment, a supported telescopic part can be held and supported, and a holding block is forced to tightly hold a supporting stand column II from the outside through an inclined plane mechanism, so that a connecting part which possibly generates a gap due to shaking originally is locked by radial force, the friction force and the structural rigidity of the connecting part are greatly increased, and the service life of the connecting part is prolonged. The wind load is effectively resisted.
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Description

Technical Field

[0001] This application relates to the field of network signal receiver technology, and in particular to a mounting bracket for network communication equipment. Background Technology

[0002] A wireless network receiver, also known as a high-power wireless network card or a wireless network sharing device, connects to a computer's USB port and automatically searches for nearby wireless networks to enable wireless internet access. The most common standard for wireless LANs is the series of standards defined by the Industrial Internet. A wireless LAN is a local area network that uses wireless connections. It uses radio waves as the medium for data transmission, and the transmission distance is generally tens of meters. The backbone of a wireless LAN usually uses cables. Wireless LAN users access the wireless LAN through one or more wireless receivers.

[0003] A search revealed that patent document CN218473146U discloses a network signal receiver support frame that is easy to install. After the network signal receiver is installed on the ground by the mounting chassis, the reinforcement support device can provide auxiliary support for the installed network signal receiver, so that the network signal receiver can be installed on the ground more firmly and stably for use. However, the height adjustment in this application is mainly achieved through the mechanical locking of positioning bolts. In strong winds or severe weather, the connection between the column-type and tubular supports is prone to swaying or slippage due to insufficient tightening force of a single bolt. Long-term use may lead to loosening of the connection, affecting the directionality and stability of signal reception. Furthermore, it cannot dynamically adjust the tightness of the support frame according to changes in ambient wind force. When wind force increases, it cannot automatically increase the locking force on the column, nor can it effectively suppress vibrations caused by wind loads. Therefore, a mounting bracket for network communication equipment is proposed to solve the aforementioned problems. Summary of the Invention

[0004] To address the shortcomings of existing technologies and improve support stability, this application provides a mounting bracket for network communication equipment, which has advantages such as high stability and high flexibility, thus solving the problems mentioned above.

[0005] This application provides a mounting bracket for network communication equipment, which adopts the following technical solution: A mounting bracket for a network communication device includes a first support column and a second support column for supporting a network signal receiving host, wherein a receiving platform for supporting the network signal receiving host is fixed on the outer surface of the second support column. The top side of the second support column is provided with a wind direction structure, which includes a support base and several equidistant horizontal plates. One side of each of the horizontal plates extends into the interior of the support base, and a return spring is fixed on the side of each horizontal plate that extends into the interior of the support base. The support column 1 is provided with a fastening structure 1 and a fastening structure 2 for use with the wind direction structure, and a connecting component is provided between the wind direction structure and the fastening structure 1; the fastening structure 1 consists of a guide sleeve and a clamping member 1, and the guide sleeve is sleeved on the outer surface of the clamping member 1. The clamping component one includes an elastic block and a clamping block. The inner side of the guide sleeve is provided with a guide slope one, and the outer side of the elastic block is provided with a guide slope two that abuts and cooperates with the guide slope one. The clamping component one is driven by connecting the guide sleeve with the connecting component, so that the clamping block fits against the support column two. The first fastening structure further includes a fastening rod and a connecting rod used in conjunction with the second fastening structure, wherein the fastening rod is slidably connected to the guide sleeve.

[0006] Optionally: The network signal receiving host is fixed to the outer surface of the second support column by clamps and supported at the bottom by a receiving platform. The interior of the first support column is hollow. The second support column is telescopically connected to the first support column.

[0007] Optional: The support seat bearing is installed on the top side of the second support column, the support seat has an extension groove inside, the reset spring is fixed inside the extension groove, the horizontal plate is T-shaped, and one side of it is slidably connected to the extension groove.

[0008] Optionally, the connecting assembly includes a sliding ring sleeved on the outer surface of the second supporting column. The outer side of the sliding ring is hinged to a number of the horizontal plates, and a connecting rod fixed to the guide sleeve is bolted to the bottom side of the sliding ring. The horizontal plates are centrifugally displaced laterally, and the connecting assembly is used to connect with the guide sleeve to achieve lifting and adjustment.

[0009] Optionally: the connecting rod passes through the interior of the receiving platform; the clamping member also includes a fixing sleeve fixed to the outer surface of the supporting column, and the interior of the guide sleeve is hollow.

[0010] Optionally: the elastic block is fixed to the top side of the fixed sleeve, the clamping block is engaged with the elastic block, and there are multiple elastic blocks and clamping blocks, which are distributed in a ring at equal intervals.

[0011] Optionally: The second fastening structure includes a mounting platform fixed to the outer surface of the support column, a bearing seat fixed to the upper surface of the mounting platform, and a plurality of equally spaced toothed blocks fixed to the outer side of the bearing seat and engaging with the fastening rod.

[0012] Optionally, the second fastening structure further includes an abutment component and a clamping component 2 that cooperate with the first fastening structure; the abutment component and the clamping component 2 are respectively disposed on both sides of the bearing seat; The abutment assembly includes a cylinder with a chamber inside. A piston extending to the top of the cylinder is slidably disposed inside the chamber. An air supply pipe communicating with the chamber and the second clamping member is installed on the side wall of the cylinder. A linkage rod extending to the bottom of the cylinder is fixed to the bottom of the piston. The connecting rod in the first clamping member is hinged to the linkage rod and the fastening rod respectively.

[0013] Optionally: An abutment block and a buffer spring are respectively installed on the top side of the piston. The buffer spring surrounds the outside of the piston, and the cylinder is fixed to the outer wall of the guide sleeve. With the abutment block and the buffer spring, when the guide sleeve moves upward, the abutment block abuts against the bottom side of the receiving platform, which can not only achieve the buffering effect, but also drive the piston to move downward for pressurization. At the same time, since the fastening rod is slidable, the piston can also engage with the toothed block through the linkage rod when it moves downward.

[0014] Optionally, the second clamping component includes a hollow cable tube, which is detachably installed on the outer wall of the support base, and an airbag connected to the air supply pipe is embedded inside the cable tube.

[0015] In summary, this application includes at least one of the following beneficial technical effects: 1. This invention utilizes the centrifugal displacement characteristics of the horizontal plate under wind force to tightly support the telescopic parts of the support. Then, through the inclined plane mechanism, the clamping block is forced to tightly hug the second support column from the outside, so that the connection that may have gaps due to shaking is locked by radial force, thereby greatly increasing the friction and structural rigidity of the connection and effectively resisting wind load.

[0016] 2. This invention employs a two-stage fastening method using clamping component one and clamping component two. First, the clamping block of clamping component one is used to initially fasten the support column two. Then, the airbag of clamping component two expands to further tighten the wire harness. At the same time, the fastening rod and toothed block are used to enhance the fastening effect, which greatly improves the stability of the mounting frame under wind.

[0017] 3. In this invention, the clamping block of the fastening structure one and the support column two are tightly fastened together, which not only engages with the fastening rod of the fastening structure two, but also forms a linkage with the airbag cable, realizing the dual limiting of the support structure. It also combines the support fastening with the line fastening, avoiding the problem of line loosening and poor contact caused by equipment shaking, and taking into account both structural stability and line safety.

[0018] 4. In this invention, the buffer spring and the abutment block in the abutment component not only play a buffering role when the guide sleeve moves upward, avoiding wear caused by rigid collision of the structure, but also drive the piston to move downward through the abutment block and the receiving platform, realizing the conversion of the buffering action into the pressurizing action. No additional drive structure is required, which simplifies the overall mechanical structure and improves the service life and operational stability of the structure. Attached Figure Description

[0019] Figure 1 This is a three-dimensional view of the overall structure of this application; Figure 2 This is a quarter-section structural cross-section of this application; Figure 3 This is a cross-sectional view of the wind direction structure and connecting components of this application; Figure 4 This is a cross-sectional view of the fastening structure of this application; Figure 5 This is a structural schematic diagram of the clamping component of this application; Figure 6 This is a schematic diagram of the second fastening structure of this application; Figure 7 This is a cross-sectional view of the second fastening structure in this application; Figure 8 This is a structural rear view of the second fastening structure in this application.

[0020] Explanation of reference numerals in the attached figures: 1. Network signal receiving host; 11. Receiving platform; 2. Support column one; 3. Support column two; 4. Wind direction structure; 41. Support base; 42. Horizontal plate; 43. Extension groove; 44. Return spring; 5. Connecting assembly; 51. Sliding ring; 52. Connecting arm; 53. Connecting rod; 6. Fastening structure one; 61. Guide sleeve; 611. Guide ramp one; 62. Clamping component one; 621. Fixing sleeve; 622. Elastic block 623. Clamping block; 624. Guide ramp II; 63. Fastening rod; 64. Connecting rod; 7. Fastening structure II; 71. Mounting platform; 72. Bearing seat; 73. Abutment assembly; 731. Cylinder; 732. Chamber; 733. Piston; 734. Abutment block; 735. Buffer spring; 736. Air supply pipe; 737. Linkage rod; 74. Clamping component II; 741. Cable harness; 742. Airbag; 75. Tooth block. Detailed Implementation

[0021] The following is in conjunction with the appendix Figures 1-8 This application will be described in further detail.

[0022] Example 1, such as Figure 1 and Figure 2 As shown, this is the first embodiment of the present invention. This embodiment provides a mounting bracket for network communication equipment, which mainly consists of a first support column 2 and a second support column 3 for supporting the network signal receiving host 1. To adapt to the height requirements of different installation environments, the interior of the first support column 2 is designed as a hollow structure, and the lower end of the second support column 3 is inserted into the first support column 2, forming a telescopic connection between the two, which can flexibly adjust the overall height. Specifically, the hollow structure can reduce the overall weight of the mounting frame and reduce the installation difficulty, while also providing space for the expansion and contraction of the support column 2 3. It can also be used to pass through equipment lines, realizing the concealed arrangement of the lines and avoiding the lines being exposed to the outside environment for corrosion. In this embodiment, the network signal receiving host 1 is fixed to the outer surface of the support column 2 3 by clamps, and its bottom is stably supported by the receiving platform 11 welded or bolted to the support column 2 3.

[0023] Example 2, as Figures 2-8 As shown, this is the second embodiment of the present invention. Unlike the first embodiment, a wind direction structure 4 is installed on the top of the second supporting column 3 to sense wind direction and force. Specifically, the outside of the first supporting column 2 is also provided with a first fastening structure 6 and a second fastening structure 7 that cooperate with the wind direction structure 4. A connecting component 5 is provided between the wind direction structure 4 and the first fastening structure 6, and the connection component 5 enables linkage between them.

[0024] like Figure 2 and Figure 3 As shown, the wind direction structure 4 includes a support base 41 mounted on the top side of the support column 3 via bearings, allowing the entire wind direction structure 4 to rotate freely with the wind direction. The support base 41 has multiple equidistantly distributed extension slots 43 in its radial direction, and each extension slot 43 has a T-shaped horizontal plate 42 slidably connected within it. The transverse portion of the horizontal plate 42 is located outside the support base 41 to receive wind, and one end of its vertical extension into the extension slot 43 is fixedly connected to one end of a return spring 44, the other end of which is fixed to the bottom of the extension slot 43. Under normal conditions, the horizontal plate 42 partially extends into the support base 41 under the action of the return spring 44; when exposed to wind, the horizontal plate 42 overcomes the spring force and extends outward from the support base 41.

[0025] It should be noted that the extension slot 43 provides guidance for the sliding of the horizontal plate 42. Simultaneously, a micro-generator can be installed at the connection between the bottom of the support base 41 and the second support column 3, utilizing the mechanical energy of the support base 41's rotation in the wind to generate electricity. Specifically, a stator coil is installed at the top of the second support column 3, and a permanent magnet rotor is installed at the bottom of the support base 41. Their relative rotation generates an induced current. Alternatively, a gear transmission mechanism can be used to accelerate the rotational motion of the support base 41 and drive the micro-generator. The resulting electrical energy can power the auxiliary circuit of the network signal receiving host 1, as well as the temperature, humidity, and vibration monitoring sensors installed on the equipment. It can also power nighttime warning lights, improving the tower's safety, and can be stored in a battery as a backup power source.

[0026] like Figure 3 and Figure 4As shown, the connecting assembly 5 includes a sliding ring 51 that is slidably fitted onto the outer surface of the second support column 3. A connecting arm 52 is hinged between the outer side of the sliding ring 51 and the ends of each horizontal plate 42. When the horizontal plate 42 rotates due to wind force, the rotation of the support base 41 causes the horizontal plate 42 to extend outwards centrifugally, which in turn pushes the sliding ring 51 upwards along the second support column 3 via the connecting arm 52. A connecting rod 53 is bolted to the bottom side of the sliding ring 51. This connecting rod 53 passes downwards through a pre-set through hole on the receiving platform 11 and is fixedly connected to the fastening structure 6 below. Thus, the horizontal displacement of the horizontal plate 42 is converted into the vertical lifting and lowering movement of the connecting rod 53. It should be noted that the inner wall of the sliding ring 51 is provided with a lubricating layer to reduce friction with the second support column 3 and prevent jamming during lifting and lowering.

[0027] like Figures 4-6 As shown, the fastening structure 6 mainly consists of a guide sleeve 61 and a clamping member 62. The guide sleeve 61 is a hollow sleeve, with its top fixedly connected to the connecting rod 53 and its bottom fitted around the clamping member 62. The clamping member 62 includes a fixed sleeve 621 fitted onto the top of the supporting column 2, and multiple elastic blocks 622 fixed in a ring at equal intervals to the top side of the fixed sleeve 621. Each elastic block 622 has a clamping block 623 engaged on its inner side. The lower inner side of the guide sleeve 61 is provided with a guide slope 611, and correspondingly, each elastic block 622 has a guide slope 624 on its outer side that abuts against the guide slope 611; specifically, when the connecting rod 53 moves the guide sleeve 61 downward, the guide slope 611 on the inner side of the guide sleeve 61 will press against the guide slope 624 on the elastic block 622. Due to the effect of the inclined plane, the elastic block 622 will drive the clamping block 623 to contract radially towards the center, so that the inner surface of the clamping block 623 is tightly attached to the outer wall of the support column 2 3, thereby locking the entire telescopic column and preventing it from swaying or sinking under the action of wind.

[0028] It should be noted that the guide sleeve 61 is fitted onto the outside of the elastic block 622, and can be used not only to guide the elastic block 622, but also to shield and protect the elastic block 622 and the clamping block 623. The elastic block 622 needs to be made of durable and fatigue-resistant material, and the inner side of the clamping block 623 is attached with an anti-slip rubber pad to increase the friction with the surface of the second support column 3, improve the fastening effect, and at the same time avoid direct contact between the clamping block 623 and the second support column 3, which would cause wear.

[0029] like Figure 4 , Figures 6-8As shown, to achieve synchronous protection of equipment cables, fastening structure one 6 also includes a fastening rod 63 and a connecting rod 64. The fastening rod 63 is longitudinally slidably disposed inside the guide sleeve 61. Fastening structure two 7 includes a mounting platform 71 fixed to the outer surface of the support column one 2, and a bearing seat 72 fixed to the upper surface of the mounting platform 71. A row of equally spaced toothed blocks 75 is fixed to the outer side of the bearing seat 72. Fastening structure two 7 also includes an abutment component 73 and a clamping component two 74, respectively disposed on both sides of the bearing seat 72.

[0030] like Figure 7 and Figure 8 As shown, the abutment assembly 73 includes a cylinder 731 fixed to the outer wall of the guide sleeve 61. A sealed chamber 732 is formed inside the cylinder 731. A piston 733 is slidably disposed within the chamber 732. The top of the piston 733 extends upward beyond the cylinder 731 and is fitted with an abutment block 734. Specifically, a buffer spring 735 is fitted onto the portion of the piston 733 located outside the cylinder 731. It should be noted that a linkage rod 737 extending downward beyond the cylinder 731 is fixed to the bottom side of the piston 733. The two ends of the connecting rod 64 are hinged to the ends of the linkage rod 737 and the fastening rod 63, respectively. A gas delivery pipe 736 is installed on the side wall of the cylinder 731. One end of the gas delivery pipe 736 communicates with the chamber 732, and the other end communicates with the clamping member 74. Furthermore, a valve connected to the gas delivery pipe 736 is also installed on the side wall of the cylinder 731 for regulating gas delivery. The gas supply pipe 736 can be a flexible hose so that it can be adjusted for height by using the guide sleeve 61.

[0031] like Figure 7 and Figure 8 As shown, the clamping component 74 includes a hollow cable tray 741 detachably mounted on the outer wall of the support 72 for threading the cable of the network signal receiving host 1. An air bladder 742, communicating with the air supply pipe 736, is embedded inside the cable tray 741. When the guide sleeve 61 moves upward, it causes the entire abutment assembly 73 to move downward. First, the abutment block 734 at the top of the piston 733 contacts and abuts against the bottom side of the upper support platform 11. As the guide sleeve 61 continues to move downward, the abutment block 734 is pressed against, forcing the piston 733 to slide downward relative to the cylinder 731, compressing the air in the chamber 732 and simultaneously compressing the buffer spring 735. Compressed air enters the air bladder 742 through the air supply pipe 736, causing it to expand and gently clamp the cable inside the cable tray 741. At the same time, due to the linkage of the connecting rod 64, the piston 733 moves down and pulls the connecting rod 64 through the linkage rod 737. The other end of the connecting rod 64 pushes the fastening rod 63 to slide horizontally inside the guide sleeve 61, so that the end of the fastening rod 63 is engaged between the corresponding toothed blocks 75 on the bearing seat 72, forming an auxiliary locking and positioning, which further enhances the stability and reliability of the entire structure when subjected to strong winds. When the wind force decreases and the guide sleeve 61 moves downward to its reset position, the abutment block 734 disengages from the receiving platform 11. Under the elastic force of the buffer spring 735, the piston 733 resets upward, creating negative pressure in the chamber 732. This negative pressure draws air back from the airbag 742 through the air supply pipe 736, causing the airbag 742 to contract and release the cable. Simultaneously, the connecting rod 64 also drives the fastening rod 63 to disengage from the toothed block 75, and the entire system returns to its initial state.

[0032] It should be noted that the abutment block 734 is made of rubber and is bolted to the top side of the piston 733 to abut against the bottom side of the receiving platform 11. The buffer spring 735 is made of metal and surrounds the outside of the piston 733. When the guide sleeve 61 moves upward, it drives the cylinder 731 to move upward synchronously. The abutment block 734 abuts against the bottom side of the receiving platform 11, and the buffer spring 735 contracts to play a buffering role, avoiding rigid collision between the guide sleeve 61 and the receiving platform 11.

[0033] Combined with appendix Figures 1-8 The working principle of the above embodiments is as follows: In use, the network signal receiver 1 is fixed to the support column 2 3 by clamps, and the bottom support is provided by the receiving platform 11. The support column 2 3 is inserted into the hollow support column 1 2, and the two can be telescopically connected to adapt to different installation height requirements; When the wind blows, the multiple equidistant horizontal plates 42 will be pushed by the wind. Since one side of the horizontal plate 42 extends into the support base 41 and can slide, they will overcome the elastic force of the return spring 44 and extend outward from the support base 41. The stronger the wind, the greater the contraction of the horizontal plate 42. Since the network signal receiving host 1 is fixed to the second support column 3, the connection between the second support column 3 and the first support column 2 is subjected to the most severe force. The horizontal displacement of the horizontal plate 42 is converted into a vertical driving force through the connecting component 5. When the horizontal plate 42 is displaced, the sliding ring 51 is pushed upward along the support column 2 3 through the connecting arm 52. The connecting rod 53 fixed at the bottom of the sliding ring 51 passes through the receiving platform 11 and transmits the downward force to the fastening structure 1 6 below. The connecting rod 53 is fixedly connected to the guide sleeve 61. The guide sleeve 61 is pulled upward. The guide slope 1 611 on the inner side of the guide sleeve 61 abuts against the guide slope 2 624 on the outer side of the elastic block 622 on the clamping member 1 62. During the downward movement of the guide sleeve 61, the squeezing action of the slope will drive multiple ring-shaped equidistantly distributed elastic blocks 622 to contract towards the center, thereby causing the clamping block 623 that is engaged with it to tightly adhere to the outer surface of the support column 2 3. This achieves automatic locking of the originally freely retractable support column 2 3 under the action of wind, preventing it from shaking or displacing. At the same time, the movement of fastening structure 6 will also trigger fastening structure 7, activating the second layer of protection. As the guide sleeve 61 moves upward, the fastening rod 63, which is slidably connected to it, will drive the abutment component 73 in fastening structure 7 through the transmission of the connecting rod 64. The linkage rod 737 of the abutment component 73 is pulled, causing the piston 733 to move downward in the chamber 732 of the cylinder 731, compressing the air in the chamber 732. The compressed air is delivered to the airbag 742 of the clamping component 74 through the air pipe 736. The airbag 742 inflates, thereby gently clamping the cable passing through it, preventing the cable from loosening or falling off due to equipment shaking. In addition, when the piston 733 moves down to perform pressurization, since the fastening rod 63 is slidable, the piston 733 can also engage with the toothed block 75 through the linkage rod 737, which, together with the clamping block 623, further improves the stability effect. When the wind force decreases or disappears, the horizontal plate 42 returns to its original position under the elastic force of the return spring 44, causing the guide sleeve 61 to move upward through the connecting assembly 5. The upward movement of the guide sleeve 61 releases the pressure on the elastic block 622, and the clamping block 623 loosens. At the same time, in the abutment assembly 73, the compressed buffer spring 735 pushes the piston 733 upward to reset, creating a negative pressure in the chamber 732. This negative pressure draws air back from the airbag 742 through the air supply pipe 736, causing the airbag 742 to contract, releasing the clamping of the cable, and the entire device returns to the standby state.

[0034] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A mounting rack for network communication equipment comprising a support column one (2) and a support column two (3) for supporting a network signal receiving host (1), characterized in that: The outer surface of the second support column (3) is fixed with a support platform (11) that supports the network signal receiving host (1). The top side of the second support column (3) is provided with a wind direction structure (4). The wind direction structure (4) includes a support base (41) and several horizontal plates (42) distributed at equal intervals. One side of each of the horizontal plates (42) extends into the interior of the support base (41), and a return spring (44) is fixed on the side of each horizontal plate (42) extending into the interior of the support base (41). The support column (2) is provided with a fastening structure (6) and a fastening structure (7) for use with the wind direction structure (4), and a connecting component (5) is provided between the wind direction structure (4) and the fastening structure (6); the fastening structure (6) consists of a guide sleeve (61) and a clamping member (62), and the guide sleeve (61) is fitted on the outer surface of the clamping member (62); The first clamping component (62) includes an elastic block (622) and a clamping block (623). The inner side of the guide sleeve (61) is provided with a guide slope (611), and the outer side of the elastic block (622) is provided with a guide slope (624) that abuts against the guide slope (611). The clamping component (62) is driven by connecting the guide sleeve (61) and the connecting component (5), so that the clamping block (623) fits against the second supporting column (3). The first fastening structure (6) further includes a fastening rod (63) and a connecting rod (64) used in conjunction with the second fastening structure (7), wherein the fastening rod (63) is slidably connected to the guide sleeve (61).

2. The mounting rack for network communication equipment according to claim 1, wherein: The network signal receiving host (1) is fixed to the outer surface of the second support column (3) by clamps and the bottom is supported by the receiving platform (11). The interior of the first support column (2) is hollow. The second support column (3) is telescopically connected to the first support column (2).

3. The mounting rack for network communication equipment of claim 1, wherein: The support base (41) is mounted on the top side of the support column (3). An extension groove (43) is provided inside the support base (41). The reset spring (44) is fixed inside the extension groove (43). The horizontal plate (42) is T-shaped and one side of it is slidably connected to the extension groove (43).

4. The mounting bracket for a network communication device according to claim 1, characterized in that: The connecting component (5) includes a sliding ring (51) sleeved on the outer surface of the second support column (3). The outer side of the sliding ring (51) is hinged to a number of the horizontal plates (42) with connecting arms (52). The bottom side of the sliding ring (51) is bolted with a connecting rod (53) fixed to the guide sleeve (61). The horizontal plate (42) is centrifugally displaced laterally, and the connecting component (5) is connected to the guide sleeve (61) to achieve lifting and adjustment.

5. A mounting bracket for a network communication device according to claim 4, characterized in that: The connecting rod (53) passes through the interior of the receiving platform (11); the clamping member (62) also includes a fixing sleeve (621) fixed to the outer surface of the supporting column (2), and the interior of the guide sleeve (61) is hollow.

6. A mounting bracket for a network communication device according to claim 5, characterized in that: The elastic block (622) is fixed to the top side of the fixed sleeve (621), and the clamping block (623) is engaged with the elastic block (622). There are multiple elastic blocks (622) and clamping blocks (623), and the multiple elastic blocks (622) are distributed in a ring at equal intervals.

7. The mounting bracket for a network communication device according to claim 1, characterized in that: The second fastening structure (7) includes a mounting platform (71) fixed to the outer surface of the support column (2). A bearing seat (72) is fixed on the upper surface of the mounting platform (71). Several toothed blocks (75) are fixed on the outer side of the bearing seat (72) and are equidistantly distributed and engaged with the fastening rod (63).

8. A mounting bracket for a network communication device according to claim 7, characterized in that: The second fastening structure (7) further includes an abutting component (73) and a clamping component (74) that cooperate with the first fastening structure (6); the abutting component (73) and the clamping component (74) are respectively disposed on both sides of the bearing seat (72); The abutment assembly (73) includes a cylinder (731), inside which a chamber (732) is provided. Inside the chamber (732), a piston (733) extending to the top side of the cylinder (731) is slidably disposed. An air supply pipe (736) communicating with the chamber (732) and the second clamping member (74) is installed on the side wall of the cylinder (731). A linkage rod (737) extending to the bottom side of the piston (733) is fixed. The connecting rod (64) in the first clamping member (62) is hinged to the linkage rod (737) and the fastening rod (63) respectively.

9. A mounting bracket for a network communication device according to claim 8, characterized in that: The piston (733) is equipped with an abutment block (734) and a buffer spring (735) on its top side. The buffer spring (735) surrounds the outside of the piston (733). The cylinder (731) is fixed on the outer wall of the guide sleeve (61). With the abutment block (734) and the buffer spring (735) in place, when the guide sleeve (61) moves upward, the abutment block (734) abuts against the bottom side of the receiving platform (11). This not only achieves a buffering effect but also drives the piston (733) to move downward for pressurization. At the same time, since the fastening rod (63) is slidably set, the piston (733) can also engage with the toothed block (75) through the linkage rod (737) when it moves downward.

10. A mounting bracket for a network communication device according to claim 8, characterized in that: The second clamping component (74) includes a hollow wire tube (741), which is detachably installed on the outer wall of the support base (72). An airbag (742) communicating with the air supply pipe (736) is embedded inside the wire tube (741).

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