An integrated antenna structure for portable 4G and 5G information acquisition devices
The integrated design of the portable 4G and 5G information acquisition device antenna structure solves the problems of inconvenience in carrying and signal stability of the split design, achieving compact storage and signal optimization, and making it suitable for efficient use in the field and emergency scenarios.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BEIJING ZHI CHENG TIAN ZE NETWORK TECH
- Filing Date
- 2025-07-22
- Publication Date
- 2026-05-26
AI Technical Summary
The split antenna design of existing 4G and 5G information collection equipment makes it inconvenient to carry, takes up a lot of space, and is easy to lose, making it difficult to meet the portability requirements of field and emergency scenarios. At the same time, the signal reception and transmission stability is insufficient.
An integrated antenna structure for portable 4G and 5G information acquisition devices was designed, which integrates the antenna support structure with the portable storage mechanism. The antenna angle can be adjusted and stored through components such as hinged telescopic arms, locking mechanisms, and hydraulic struts. The storage cover provides protection, simplifies the structure and improves the integration.
It achieves compact antenna storage, reduces carrying space, lowers the risk of loss, ensures signal stability, and extends equipment life, meeting the needs of efficient carrying in field and emergency scenarios.
Smart Images

Figure CN224288555U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of signal acquisition, and in particular to an integrated antenna structure for a portable 4G and 5G information acquisition device. Background Technology
[0002] With the rapid development of 4G and 5G communication technologies, the application scenarios of information collection equipment are becoming increasingly diversified, covering multiple fields such as field operations, emergency communications, and mobile monitoring. These devices place dual demands on the performance of their antennas: on the one hand, they must possess stable signal reception and transmission capabilities to ensure the accuracy and real-time nature of information collection; on the other hand, due to the mobility of the operating environment, the antennas must meet portability requirements, facilitating easy carrying, rapid deployment, and safe storage.
[0003] Currently, the antenna structures of 4G and 5G information collection devices on the market have many limitations. Traditional antennas often adopt a split design, with the antenna body, support structure, and base being independent of each other. They need to be stored separately when carried, which not only increases the risk of component loss but also occupies more storage space, making it difficult to meet the efficient carrying needs in scenarios such as the field and emergencies. Utility Model Content
[0004] In order to solve the above-mentioned technical problems, or at least partially solve the above-mentioned technical problems, this utility model provides an integrated antenna structure for a portable 4G and 5G information acquisition device.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] This utility model discloses an integrated antenna structure for a portable 4G / 5G information acquisition device, comprising:
[0007] Antenna support structure, used to fix the antenna and adjust its angle;
[0008] Portable storage mechanism, used to support the antenna and serve as a base for the antenna when needed;
[0009] Portable storage devices include:
[0010] The support storage base has a storage cavity inside and two locking mechanisms are symmetrically arranged in the support storage base;
[0011] Two hinged telescopic arms are symmetrically arranged in two locking mechanisms, and a locking mechanism is provided at the top of each of the two hinged telescopic arms.
[0012] The support plate is fixedly connected to two locking mechanisms at the top, and the antenna support structure is set on the support plate;
[0013] The storage cover, which swings and is mounted on the support plate, is used to cover and protect the antenna support structure.
[0014] The antenna support structure includes:
[0015] A horizontal support plate is rotatably mounted on the support plate.
[0016] The antenna support plate is oscillatingly mounted on a horizontal support plate;
[0017] The antenna is fixedly mounted on the antenna support plate.
[0018] Furthermore, the locking mechanism includes:
[0019] The locking housing has a transmission groove inside and multiple through holes arranged on the outer wall of the locking housing.
[0020] An adjusting plate is fixedly installed in the transmission groove of the locking housing. One end of the hinged telescopic arm is hinged to one end of the adjusting plate. The adjusting plate is provided with a guide groove, and the guide groove and the through hole on the outer wall of the locking housing are set on the same horizontal plane.
[0021] A guide pin is provided at the other end of the articulated telescopic arm, and the guide pin is slidably disposed in the guide groove.
[0022] A positioning plate is set in the transmission groove of the locking housing. Multiple positioning holes are arranged on the positioning plate, and each positioning hole corresponds to a through hole.
[0023] Positioning pins are inserted into through holes, positioning holes, and guide grooves to fix the guide pins.
[0024] Furthermore, the support storage base is equipped with a horizontally sliding extension bracket, which is used to increase the support area of the support storage base.
[0025] Furthermore, two casters are symmetrically arranged on the outer wall of the support storage base.
[0026] Furthermore, two hydraulic struts are symmetrically oscillating on the support plate, with the tops of the two hydraulic struts hinged to the storage cover.
[0027] Furthermore, the antenna support structure also includes:
[0028] The screw is rotatably mounted on the horizontal support plate;
[0029] The threaded slider is slidably mounted on the horizontal support plate, and the threaded slider is threadedly engaged with the screw.
[0030] The transmission plate is hinged to the threaded slider, and the other end of the transmission plate is hinged to the bottom surface of the antenna support plate.
[0031] Furthermore, two guide wheels are symmetrically rotated at both ends of the threaded slider, and the two guide wheels are rolled on the horizontal support plate.
[0032] Furthermore, the antenna support structure also includes:
[0033] The hoisting bracket is fixedly installed at the bottom of the support plate;
[0034] A gear disk is rotatably mounted at the bottom of the support plate, and the gear disk is used to drive the horizontal support plate to rotate on the support plate.
[0035] The rotary motor is fixedly mounted on the hoisting bracket. The output end of the rotary motor is equipped with a drive gear that meshes with the gear disc.
[0036] In the above technical solution, the integrated antenna structure of the portable 4G and 5G information acquisition device provided by this utility model has the following beneficial effects:
[0037] This integrated antenna structure combines the antenna support structure and portable storage mechanism into one unit. When stored, the antenna support structure can be housed within the storage cavity of the support base, and the hinged telescopic arm can also be retracted and folded in. The overall structure is compact, reducing storage space and avoiding the risk of loss due to scattered components. It is more adaptable to the efficient carrying needs of outdoor and emergency scenarios. Within the antenna support structure, the horizontal support plate can rotate on the support plate, and the antenna support plate can swing on the horizontal support plate. These two adjustments allow for flexible adjustment of the antenna angle, ensuring better alignment with the signal source and guaranteeing stable signal reception and transmission. A storage cover is provided, which can be placed on the support plate in the storage state, effectively protecting the antenna support structure and preventing damage to the antenna body and adjustment components due to collisions or compression during transportation or storage. It also reduces the intrusion of dust and moisture, delaying equipment aging and extending its service life. The portable storage mechanism not only houses the antenna support structure but also serves as the antenna base during use, combining storage and support functions. This eliminates the need for an additional base, simplifying the structure and improving the integration and practicality of the device. Attached Figure Description
[0038] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the embodiments will be briefly described below.
[0039] Figure 1 This is a schematic diagram of the structure of this utility model;
[0040] Figure 2 This is an enlarged schematic diagram of the antenna support structure;
[0041] Figure 3 This is an enlarged structural schematic diagram of the locking mechanism;
[0042] Figure 4 This is a schematic diagram of the assembly structure of the gear disk and the horizontal support plate;
[0043] The attached diagram shows the following components: 11. Support and storage base; 12. Hinged telescopic arm; 13. Support plate; 14. Storage cover; 15. Extension bracket; 16. Caster wheel; 17. Hydraulic strut; 21. Horizontal support plate; 22. Antenna support plate; 23. Antenna; 24. Screw; 25. Threaded slider; 26. Transmission plate; 27. Guide wheel; 2a. Lifting bracket; 2b. Gear disk; 2c. Rotary motor; 2d. Drive gear; 3. Locking mechanism; 31. Locking housing; 32. Adjusting plate; 33. Guide groove; 34. Guide pin; 35. Positioning plate; 36. Positioning pin. Detailed Implementation
[0044] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.
[0045] See Figure 1-4 As shown;
[0046] An integrated antenna structure for a portable 4G / 5G information acquisition device according to an embodiment of this utility model includes:
[0047] Antenna support structure, used to fix the antenna and adjust its angle;
[0048] Portable storage mechanism, used to support the antenna and serve as a base for the antenna when needed;
[0049] Portable storage devices include:
[0050] The support storage base 11 has a storage cavity inside, and two locking mechanisms 3 are symmetrically arranged in the support storage base 11.
[0051] Two hinged telescopic arms 12 are symmetrically arranged in two locking mechanisms 3, and a locking mechanism 3 is provided at the top of each of the two hinged telescopic arms 12.
[0052] The support plate 13 is fixedly connected to the two locking mechanisms 3 at the top, and the antenna support structure is set on the support plate 13.
[0053] The storage cover 14 is pivotally mounted on the support plate 13 and is used to cover and protect the antenna support structure.
[0054] The antenna support structure includes:
[0055] A horizontal support plate 21 is rotatably mounted on a support plate 13;
[0056] Antenna support plate 22 is oscillatingly mounted on horizontal support plate 21;
[0057] Antenna 23 is fixedly mounted on antenna support plate 22;
[0058] By adopting the above technical solution, when the antenna structure is needed, firstly, open the storage cover 14 so that it swings open from the support plate 13, exposing the antenna support structure; then, operate the locking mechanism 3 on the support storage base 11 to release the locking of the two hinged telescopic arms 12; subsequently, pull the two hinged telescopic arms 12 out of the storage cavity of the support storage base 11 and unfold them, adjust the length of the hinged telescopic arms 12 to raise the support plate 13 to a suitable height, and then use the locking mechanism 3 at the top of the hinged telescopic arms 12 to fix their position; after that, rotate the horizontal support plate 21 so that it rotates on the support plate 13 to a closed position. In a suitable horizontal direction, swing the antenna support plate 22 to a suitable angle on the horizontal support plate 21, so that the antenna 23 is in the optimal position for signal reception and transmission. After use, first swing the antenna support plate 22 back to the initial position of the horizontal support plate 21, and then rotate the horizontal support plate 21 back to the initial position of the support plate 13. Then, operate the locking mechanism 3 on the top of the hinge telescopic arm 12 to release the lock on the hinge telescopic arm 12, retract and fold the hinge telescopic arm 12 into the storage cavity of the support storage base 11, and lock it by the locking mechanism 3 on the support storage base 11. Finally, swing the storage cover. 14. The cover is then mounted on the support plate 13 to protect the antenna support structure. This integrated antenna structure combines the antenna support structure and the portable storage mechanism into one unit. When stored, the antenna support structure can be stored in the storage cavity of the support base, and the hinged telescopic arm can also be retracted and folded in. The overall structure is compact, reducing storage space and avoiding the risk of loss due to scattered components. It is more adaptable to the efficient carrying needs of outdoor and emergency scenarios. In the antenna support structure, the horizontal support plate can rotate on the support plate, and the antenna support plate can swing on the horizontal support plate. Through these two adjustments, the antenna can be flexibly adjusted. The angle is adjusted to better align the antenna with the signal source, ensuring stable signal reception and transmission. A storage cover is included, which can be placed on the support plate when stored, effectively protecting the antenna support structure and preventing damage to the antenna body and adjustment components from collisions and pressure during transportation or storage. It also reduces dust and moisture intrusion, slowing down equipment aging and extending its lifespan. The portable storage mechanism not only stores the antenna support structure but also serves as the antenna base during use, combining storage and support functions. This eliminates the need for an additional base, simplifying the structure and improving the device's integration and practicality.
[0059] As a preferred embodiment of the above technical solution, such as Figure 3 As shown, the locking mechanism 3 includes:
[0060] The locking housing 31 has a transmission groove inside and multiple through holes arranged on the outer wall of the locking housing 31.
[0061] The adjusting plate 32 is fixedly installed in the transmission groove of the locking housing 31. One end of the hinged telescopic arm 12 is hinged to one end of the adjusting plate 32. The adjusting plate 32 is provided with a guide groove 33. The guide groove 33 and the through hole on the outer wall of the locking housing 31 are on the same horizontal plane.
[0062] A guide pin 34 is provided at the other end of the hinged telescopic arm 12, and the guide pin 34 is slidably provided in the guide groove 33;
[0063] A positioning plate 35 is set in the transmission groove of the locking housing 31. Multiple positioning holes are arranged on the positioning plate 35, and the positioning holes correspond one-to-one with the through holes.
[0064] The positioning pin 36 is inserted into the through hole, positioning hole and guide groove 33 to fix the guide pin 34.
[0065] In this embodiment, when it is necessary to adjust the position of the hinged telescopic arm 12, the positioning pin 36 is first pulled out from the through hole on the outer wall of the locking housing 31, the positioning hole of the positioning plate 35, and the guide groove 33 of the adjusting plate 32; at this time, the fixation of the guide pin 34 in the guide groove 33 is released. Since one end of the hinged telescopic arm 12 is hinged to one end of the adjusting plate 32, the hinged telescopic arm 12 can rotate around the hinge point, and at the same time, the guide pin 34 will slide along the guide groove 33, thereby realizing the length adjustment of the hinged telescopic arm 12; when the hinged... After the telescopic arm 12 is adjusted to the appropriate position, the guide pin 34 is in the corresponding position in the guide groove 33. At this time, the positioning pin 36 is aligned with the through hole on the outer wall of the locking housing 31 corresponding to that position, inserted into the through hole, and then passed through the corresponding positioning hole on the positioning plate 35 and the guide groove 33 in sequence until the positioning pin 36 limits and fixes the guide pin 34, preventing the guide pin 34 from continuing to slide in the guide groove 33, thereby achieving the locking of the position of the hinged telescopic arm 12; the positioning pin 36 is inserted into the through hole, positioning hole and guide groove 33 to lock the position of the telescopic arm 12. The guide pin 34 is stably fixed in the slide groove 33, thus firmly locking the position of the articulated telescopic arm 12. This multi-positioning method can effectively prevent the articulated telescopic arm 12 from accidentally sliding or displacing due to external forces during use, ensuring the stability of the antenna support structure and ensuring that the antenna 23 can stably receive and transmit signals. The outer wall of the locking shell 31 is provided with multiple through holes, and the positioning plate 35 has multiple positioning holes that correspond one-to-one with the through holes. With the sliding of the guide pin 34 in the guide groove 33, the articulated telescopic arm 12 can achieve multi-level adjustment. Users can quickly fix the articulated telescopic arm 12 in a suitable position by selecting different combinations of through holes and positioning holes according to actual needs. The operation is simple and convenient, meeting the needs of antenna height and angle adjustment in different scenarios. When stored, the articulated telescopic arm 12 can be stably retracted and fixed in the storage cavity of the support storage base 11 by the locking mechanism 3. When in use, it can be firmly supported, which is compatible with the overall integrated design and further improves the integration and practicality of the device.
[0066] As a preferred embodiment of the above technical solution, such as Figure 1 As shown, an extension bracket 15 is horizontally slidably inserted on the support storage base 11, and the extension bracket 15 is used to increase the support area of the support storage base 11.
[0067] In this embodiment, the extension bracket 15 can slide horizontally and unfold when needed, effectively increasing the support area of the support storage base 11. In unstable environments such as soft ground or sloping ground in the wild, a larger support area can reduce the pressure on the support storage base 11, reducing the possibility of it sinking into the ground or tilting, thereby enhancing the stability of the entire antenna structure and avoiding the antenna 23 shaking due to unstable support, which would affect the signal reception quality. The extension bracket 15 is installed on the support storage base 11 in a horizontal sliding insertion manner, and can be completely retracted into the support storage base 11 when not in use, without increasing the overall size and weight of the device, and without affecting the portability of the entire antenna structure. It not only meets the need for support stability in special scenarios, but also retains the core advantage of easy portability of the device, achieving a balance between functionality and portability.
[0068] As a preferred embodiment of the above technical solution, such as Figure 1 As shown, two symmetrically arranged casters 16 are provided on the outer wall of the support and storage base 11 to facilitate the movement of the entire unit when storing the antenna.
[0069] In this embodiment, although the antenna structure is compact in its stored state, it still has a certain weight. Traditional handling methods require manual lifting or dragging, which is not only laborious but may also cause the equipment to tilt or collide due to uneven force. The setting of the moving wheels 16 transforms sliding friction into rolling friction, which greatly reduces the resistance during movement. The staff can easily push the whole equipment without expending a lot of physical strength. It is especially suitable for scenarios that require frequent site changes, such as field operations and emergency communications, and improves the mobility efficiency of the equipment.
[0070] As a preferred embodiment of the above technical solution, such as Figure 1 As shown, two hydraulic struts 17 are symmetrically swaying on the support plate 13, and the tops of the two hydraulic struts 17 are hinged to the storage cover 14.
[0071] In this embodiment, the hydraulic strut 17 utilizes hydraulic principles to support and cushion the storage cover 14. When the storage cover 14 is open, it provides continuous support, eliminating the need for operators to constantly hold the cover in place and allowing it to be easily fixed at any opening angle, facilitating quick operation of the antenna support structure. When closing, the cushioning effect of the hydraulic strut 17 causes the storage cover 14 to close slowly, avoiding the need for operators to exert effort to control it due to excessively fast closing speed, thus reducing the difficulty of operation and making it particularly suitable for one-handed operation in complex environments such as the field. Traditional storage covers are prone to impacting the support plate rapidly due to gravity when closing, which may damage the storage cover or antenna support structure components. The cushioning function of the hydraulic strut 17 effectively slows down the closing speed of the storage cover 14, reducing the impact force during closing and preventing wear and deformation of components due to collision, thereby extending the service life of the equipment. At the same time, when the storage cover 14 is open, the stable support of the hydraulic strut 17 prevents the storage cover from falling accidentally, avoiding injury to operators or damage to antenna components.
[0072] As a preferred embodiment of the above technical solution, such as Figure 2 As shown, the antenna support structure also includes:
[0073] Screw 24 is rotatably mounted on horizontal support plate 21;
[0074] The threaded slider 25 is slidably mounted on the horizontal support plate 21, and the threaded slider 25 is threadedly engaged with the screw 24.
[0075] The transmission plate 26 is hinged to the threaded slider 25, and the other end of the transmission plate 26 is hinged to the bottom end face of the antenna support plate 22.
[0076] In this embodiment, when it is necessary to adjust the angle of the antenna support plate 22 to optimize the signal receiving direction of the antenna 23, the operator rotates the screw 24 mounted on the horizontal support plate 21. Since the threaded slider 25 is threadedly engaged with the screw 24 and slidably mounted on the horizontal support plate 21, the rotation of the screw 24 will cause the threaded slider 25 to slide linearly along the horizontal support plate 21. As the threaded slider 25 slides, the transmission plate 26 hinged to it will change angle: if the threaded slider 25 slides towards the hinge point of the antenna support plate 22, the transmission plate 26 will push the antenna support plate 22 upwards, causing the antenna support plate 22 to swing upwards around its hinge point with the horizontal support plate 21, increasing the tilt angle of the antenna 23; if the threaded slider 25 slides away from the hinge point, the transmission plate 26 will pull the antenna support plate 22 downwards, causing the antenna support plate 22 to swing downwards, decreasing the tilt angle of the antenna 23. When the antenna support plate 22... After adjusting to the desired angle, stop rotating the screw 24. Utilizing the self-locking characteristic of the threaded connection, the position of the threaded slider 25 is fixed, thereby stabilizing the antenna support plate 22 at that angle via the transmission plate 26. During the angle fixing process, due to the self-locking function of the threaded connection between the screw 24 and the threaded slider 25, the position of the threaded slider 25 remains unchanged after the screw 24 stops rotating. The supporting force of the transmission plate 26 on the antenna support plate 22 is stable, thus firmly locking the angle of the antenna support plate 22 and ensuring that the antenna 23 will not shift due to vibration or external force during operation. The operator only needs to rotate the screw 24 to complete the angle adjustment without directly bending the antenna support plate 22. This significantly reduces the difficulty of operation, especially when the antenna 23 is large or installed at a high position. The labor-saving characteristic of the screw drive makes the adjustment process easier, allowing for quick optimization of the antenna angle even in physically demanding scenarios such as field operations.
[0077] As a preferred embodiment of the above technical solution, such as Figure 2 As shown, the threaded slider 25 has two guide wheels 27 symmetrically rotated at both ends, and the two guide wheels 27 are rolled on the horizontal support plate 21;
[0078] In this embodiment, when a traditional threaded slider slides on a horizontal support plate, there is sliding friction between the two, which is relatively large and may cause the adjustment process to get stuck. Especially after long-term use, wear will increase friction and affect the smoothness of adjustment. However, the two guide wheels 27 convert sliding friction into rolling friction. The coefficient of rolling friction is much smaller than the coefficient of sliding friction, which greatly reduces the resistance when the threaded slider 25 slides, making it easier and smoother for the operator to turn the screw 24 to adjust the angle of the antenna support plate 22.
[0079] As a preferred embodiment of the above technical solution, such as Figure 4 As shown, the antenna support structure also includes:
[0080] The hoisting bracket 2a is fixedly installed at the bottom of the support plate 13;
[0081] The gear disk 2b is rotatably mounted at the bottom of the support plate 13. The gear disk 2b is used to drive the horizontal support plate 21 to rotate on the support plate 13.
[0082] A rotary motor 2c is fixedly mounted on a hoisting bracket 2a. The output end of the rotary motor 2c is provided with a drive gear 2d, which meshes with a gear disk 2b.
[0083] In this embodiment, when it is necessary to adjust the rotation angle of the horizontal support plate 21 on the support plate 13, the rotary motor 2c, which is fixedly installed on the hoisting bracket 2a, is started. The output end of the rotary motor 2c rotates, driving the drive gear 2d connected to it to rotate synchronously. Since the drive gear 2d meshes with the gear disk 2b rotatably set at the bottom of the support plate 13, the rotation of the drive gear 2d will drive the gear disk 2b to rotate. The gear disk 2b is used to drive the horizontal support plate 21 to rotate, so the rotation of the gear disk 2b will drive the horizontal support plate 21 to rotate accordingly on the support plate 13, thereby realizing the adjustment of the horizontal angle of the antenna 23. When the horizontal support plate 21 rotates to the required angle, the rotary motor 2c is turned off, the drive gear 2d stops rotating, and the gear disk 2b and the horizontal support plate 21 also stop rotating, remaining at that angle position. Power is provided by the rotary motor 2c, and the horizontal support plate 21 is driven to rotate through the meshing transmission of the drive gear 2d and the gear disk 2b, realizing the automatic adjustment of the horizontal angle. The operator only needs to control the start, stop and direction of the rotary motor to easily complete the angle adjustment, greatly improving the operating efficiency.
[0084] The above are all preferred embodiments of this utility model, and are not intended to limit the scope of protection of this utility model. Therefore, all equivalent changes made to the structure, shape and principle of this utility model should be covered within the scope of protection of this utility model.
Claims
1. An integrated antenna structure for a portable 4G / 5G information acquisition device, characterized in that, include: Antenna support structure, used to fix the antenna and adjust its angle; Portable storage mechanism, used to support the antenna and serve as a base for the antenna when needed; The portable storage mechanism includes: A support storage base is provided inside the support storage base, and two locking mechanisms are symmetrically arranged in the support storage base; Two articulated telescopic arms are symmetrically arranged in two locking mechanisms, and a locking mechanism is provided at the top of each of the two articulated telescopic arms. A support plate is fixedly connected to the two locking mechanisms at the top, and the antenna support structure is disposed on the support plate; A storage cover, which is swayed and mounted on the support plate, is used to cover and protect the antenna support structure; The antenna support structure includes: A horizontal support plate is rotatably mounted on the support plate; The antenna support plate is sway-mounted on the horizontal support plate; The antenna is fixedly mounted on the antenna support plate.
2. The integrated antenna structure of the portable 4G / 5G information acquisition device as described in claim 1, characterized in that, The locking mechanism includes: A locking housing, wherein a transmission groove is provided inside the locking housing and a plurality of through holes are arranged on the outer side wall of the locking housing; An adjusting plate is fixedly installed in the transmission groove of the locking shell. One end of the hinged telescopic arm is hinged to one end of the adjusting plate. A guide groove is provided on the adjusting plate. The guide groove and the through hole on the outer wall of the locking shell are arranged on the same horizontal plane. A guide pin is provided at the other end of the articulated telescopic arm, and the guide pin is slidably disposed in the guide groove; A positioning plate is disposed in the transmission groove of the locking housing. The positioning plate is provided with a plurality of positioning holes arranged in a row, and the positioning holes correspond one-to-one with the through holes. The positioning pin is inserted into the through hole, positioning hole and guide groove to fix the guide pin.
3. The integrated antenna structure of the portable 4G / 5G information acquisition device as described in claim 1, characterized in that, An extension bracket is horizontally slidably inserted into the support storage base, and the extension bracket is used to increase the support area of the support storage base.
4. The integrated antenna structure of the portable 4G / 5G information acquisition device as described in claim 1, characterized in that, Two casters are symmetrically arranged on the outer wall of the support and storage base.
5. The integrated antenna structure of the portable 4G / 5G information acquisition device as described in claim 1, characterized in that, Two hydraulic struts are symmetrically swinging on the support plate, and the tops of the two hydraulic struts are hinged to the storage cover.
6. The integrated antenna structure of the portable 4G / 5G information acquisition device as described in claim 1, characterized in that, The antenna support structure also includes: The screw is rotatably mounted on the horizontal support plate; A threaded slider is slidably mounted on the horizontal support plate, and the threaded slider is threadedly engaged with the screw. The transmission plate is hinged to the threaded slider, and the other end of the transmission plate is hinged to the bottom end face of the antenna support plate.
7. The integrated antenna structure of the portable 4G / 5G information acquisition device as described in claim 6, characterized in that, The threaded slider has two guide wheels that are symmetrically rotated at both ends, and the two guide wheels are rolled on the horizontal support plate.
8. The integrated antenna structure of the portable 4G / 5G information acquisition device as described in claim 1, characterized in that, The antenna support structure also includes: A hoisting bracket is fixedly installed at the bottom of the support plate; A gear disk is rotatably mounted at the bottom of the support plate, and the gear disk is used to drive the horizontal support plate to rotate on the support plate. A rotary motor is fixedly mounted on the hoisting bracket. The output end of the rotary motor is provided with a drive gear, which meshes with the gear disc.