Mobile communication machine room
By using sensors to detect and controllers to adjust the position of the rollers, the problem of automatic leveling of mobile communication equipment rooms in complex terrains has been solved, improving installation efficiency and equipment stability.
Patent Information
- Application Number
- CN202511382033.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2025-12-30
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing mobile communication equipment rooms are difficult to automatically level in complex terrain, resulting in uneven installation and affecting equipment stability and lifespan.
Sensors are used to detect the tilt of the main structure of the room. The controller of the supporting moving mechanism receives the sensor signals and controls the drive components to adjust the position of the rollers to achieve automatic leveling.
It enables automatic leveling of the equipment room in complex terrain, improving installation efficiency and accuracy, and ensuring equipment stability and service life.
Smart Images

Figure CN121228902A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of mobile housing technology, and in particular to a mobile communication equipment room. Background Technology
[0002] Mobile communication equipment rooms are rooms equipped with communication equipment and facilities that meet operational requirements, playing a crucial role in emergency communication support. Especially in situations where fixed equipment rooms are damaged by natural disasters such as earthquakes and floods, mobile communication equipment rooms can quickly restore network communication, ensuring communication between disaster relief command centers and affected residents. Currently, common mobile communication equipment rooms typically have fixed rollers at the bottom for rapid relocation via transport vehicles. However, this traditional structure has significant drawbacks: in complex post-disaster terrain, the uneven ground prevents the fixed rollers from adjusting to the surface, making it difficult to maintain a level position after installation. This imbalance not only affects the stability of the equipment room but also causes tilting of the internal precision communication equipment, impacting its operational stability and lifespan. Furthermore, current technology lacks an effective automatic leveling mechanism, relying entirely on manual adjustment, which is inefficient and fails to achieve ideal leveling in emergency situations. Tilting can also lead to uneven heat dissipation and uneven cable stress, further affecting the reliability and lifespan of the communication system. Summary of the Invention
[0003] The main objective of this invention is to propose a mobile communication equipment room that enables the mobile communication equipment room to automatically level and adapt to complex terrain.
[0004] To achieve the above objectives, the mobile communication equipment room proposed in this invention includes: The main body of the building has multiple mounting slots at its bottom; Multiple supporting moving mechanisms are located in the mounting slot. Each supporting moving mechanism includes a moving device and a sensor. The moving device includes a driving component and a roller. The driving component is used to drive the roller to extend or retract into the mounting slot. The sensor is used to detect the tilt degree of the main body of the house. A controller is provided to receive signals from the sensors and control the drive components according to the signals to adjust the extension positions of the rollers so that the main body of the house remains level.
[0005] In one embodiment, the mobile device includes a telescopic frame mounted on the drive shaft of the drive member, and the rollers are rotatably mounted on the bottom of the telescopic frame.
[0006] In one embodiment, the sensor is an electronic level.
[0007] In one embodiment, the sensor is a gravity sensor, and multiple sensors are provided. The sensors are located between the mounting groove and the support moving mechanism and are used to detect the gravity they bear.
[0008] In one embodiment, the moving device further includes a slider slidably disposed on the side wall of the telescopic frame, and a spring is provided between the slider and the telescopic frame. The supporting moving mechanism further includes a supporting device, which comprises: A support frame is located on one side of the telescopic frame. The support frame has a through opening, one end of the sliding member is located in the through opening, and the bottom end of the support frame is higher than the bottom end of the roller. The locking fastener is located on the side of the support frame away from the telescopic frame. One end of the locking fastener is disposed in the through-hole. The locking fastener is used to move inward to push the sliding member out of the through-hole and engage with the side wall of the mounting groove. When the telescopic frame moves downward, the support frame moves downward via the sliding member. After the controller controls the drive to keep the main body of the room horizontal, it operates the locking fastener to push the sliding member out of the opening. At this time, the locking fastener engages with the side wall of the mounting groove, and the telescopic frame retracts into the mounting groove. The main body of the room is supported by the support frame. When the room needs to be moved, the drive drives the telescopic frame to move downward, the rollers extend back below the support frame and support the main body of the room again, the sliding member extends into the opening under the action of the spring, and pushes the locking fastener back to its original position.
[0009] In one embodiment, the sidewall of the mounting groove is provided with a plurality of locking grooves, and the locking device includes: An insertion part extends into the through-hole; Two locking parts are provided on both sides of the insertion part. The side walls of the two locking parts are provided with locking protrusions. The locking protrusions are used to insert into the locking groove when the locking fastener moves inward, so that the support frame is connected to the inner side of the mounting groove.
[0010] In one embodiment, the top of the support frame is provided with a baffle, the side of which is flush with one side of the support frame, and the baffle is used to stop the sliding member.
[0011] In one embodiment, one end of the locking protrusion is a bevel; the opening edge of the through-hole facing the support frame is provided with a guide bevel.
[0012] In one embodiment, the main body of the house is assembled from multiple prefabricated panels, which have a three-layer structure: the inner and outer layers are color steel insulation panels, and the middle layer is a concrete panel.
[0013] In one embodiment, the bottom surface of the support frame is provided with a removable pad; The removable pad has anti-slip texture on the bottom, or The removable pad is a flexible pad, or The removable pad has a ground stake at the bottom.
[0014] This application provides a mobile communication equipment room that uses sensors to detect the tilt of the main body of the room and a controller to control the drive components to adjust the position of the extended rollers to keep the main body of the room level. This solves the problem that traditional mobile equipment rooms are difficult to level in complex terrain and has the advantages of automatic leveling and adaptability to complex terrain. Attached Figure Description
[0015] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0016] Figure 1 A three-dimensional structural schematic diagram of an embodiment of the mobile communication equipment room provided by the present invention; Figure 2 An enlarged schematic diagram of another embodiment of a mobile communication equipment room; Figure 3 This is an enlarged schematic diagram of part A; Figure 4 An exploded view of the supporting moving mechanism; Figure 5 A schematic diagram of one embodiment of the removable pad; Figure 6 A schematic diagram of another embodiment of the removable pad; Figure 7 This is a structural schematic diagram of another embodiment of the removable pad.
[0017] Explanation of icon numbers: 1000. Mobile communication equipment room; 1. Main body of the room; 11. Mounting slot; 12. Locking slot; 2. Supporting moving mechanism; 21. Moving device; 211. Driving component; 212. Roller; 213. Telescopic frame; 214. Sliding component; 215. Spring; 22. Supporting device; 221. Support frame; 222. Locking fastener; 2221. Locking protrusion; 223. Baffle; 23. Removable pad; 231. Anti-slip texture; 232. Flexible pad; 233. Ground nail.
[0018] The realization of the objective, functional features and advantages of the present invention will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.
[0020] It should be noted that if the embodiments of the present invention involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicators will also change accordingly.
[0021] Furthermore, if the embodiments of this invention involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. If the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this invention.
[0022] Please see Figures 1 to 4 This application discloses a mobile communication equipment room 1000, which includes a main body 1, multiple supporting moving mechanisms 2, and a controller (not shown). Multiple mounting slots 11 are formed at the bottom of the main body 1. The supporting moving mechanisms 2 are located within the mounting slots 11 and include moving devices 21 and sensors (not shown). The moving devices 21 include a drive component 211 and rollers 212. The drive component 211 drives the rollers 212 to extend or retract into the mounting slots 11, and the sensors detect the tilt degree of the main body 1. The controller receives signals from the sensors and controls the drive component 211 according to the signals to adjust the extension position of each roller 212, keeping the main body 1 horizontal.
[0023] The moving device 21 can use a hydraulic cylinder or a pneumatic cylinder as the driving component 211, which drives the rollers 212 to move up and down through a transmission mechanism. The rollers 212 can be omnidirectional wheels or fixed wheels, and their material can be metal or high-strength plastic. The sensor can be an electronic level or a gravity sensor to monitor the level status of the main body 1 of the room in real time. The controller can be a PLC or an embedded system, which processes the sensor signals through a preset algorithm and outputs control commands. The number and distribution of the mounting slots 11 can be optimized according to the size and weight of the room, and a symmetrical arrangement is usually adopted to ensure stability.
[0024] This technical solution uses sensors to detect the tilt of the main structure 1, and the controller dynamically adjusts the extension position of each roller 212 based on the detection results, thereby automatically adjusting the levelness of the main structure 1. Compared to the fixed roller 212 design in existing technologies, this solution can adapt to uneven installation sites, ensuring the levelness of the equipment room after installation. Specifically, when a tilt is detected on one side, the controller will control the roller 212 on that side to extend or retract appropriately, compensating for uneven ground by changing the support height. This design avoids the tediousness of manual adjustment, improves installation efficiency and accuracy, and is particularly suitable for scenarios requiring rapid deployment, such as post-disaster emergency communication restoration. The automatic adjustment function is achieved through mechatronics design, ensuring both adjustment accuracy and improved system reliability.
[0025] Please see Figures 1 to 4 Furthermore, this application also proposes that the mobile device 21 includes a telescopic frame 213, which is mounted on the drive shaft of the drive member 211, and a roller 212 is rotatably mounted on the bottom of the telescopic frame 213.
[0026] Furthermore, this application also proposes that the sensor is an electronic level.
[0027] An electronic level is a precision instrument used to measure the horizontal state of an object. It detects the tilt angle through built-in electronic components and outputs an electrical signal. In this solution, the electronic level is installed on the main body 1 of the room to monitor the overall horizontal state of the room in real time. In specific implementation, the electronic level can be a model using different sensing principles, such as capacitive, inductive, or electrolyte-based. The preferred installation location is at the bottom center of the main body 1, secured with bolts or embedded in the wall.
[0028] This technical solution employs an electronic level as a detection device to accurately sense the tilt state of the equipment room after installation. When the equipment room is placed on uneven ground, the electronic level can detect the tilt angle and direction in real time and feed the data back to the controller. Based on this data, the controller performs differentiated extension and retraction control on the drive components 211 of each supporting moving mechanism 2, allowing the rollers 212 to adjust their extension length accordingly, thereby quickly achieving overall leveling of the equipment room. Compared to traditional mechanical levels, electronic levels have the advantages of fast response speed, high measurement accuracy, and strong anti-interference ability, making them particularly suitable for use in complex environments such as disaster sites. This solution effectively solves the problem of leveling the mobile communication equipment room 1000 when installed on uneven ground, ensuring the stable placement of equipment inside the equipment room.
[0029] Furthermore, this application also proposes that the sensor is a gravity sensor, and multiple sensors are provided. The sensors are located between the mounting groove 11 and the support moving mechanism 2, and are used to detect the gravity they bear.
[0030] Specifically, the gravity sensor detects the degree of tilt of the main body 1 by measuring the pressure distribution between the mounting groove 11 and the supporting moving mechanism 2. As a preferred embodiment, the gravity sensor can be a piezoresistive or capacitive sensor, and its detection signal is transmitted to the controller via an electrical signal. Furthermore, the sensors can be evenly distributed in the four corner areas of the mounting groove 11 to improve detection accuracy. Thus, when the main body 1 tilts due to uneven ground, the gravity sensors at different locations will detect different pressure values, and the controller can then calculate the tilt angle and direction.
[0031] To address this, the technical solution utilizes a multi-point arrangement of gravity sensors to more accurately perceive the stress state of each area of the main structure 1, thus providing a more reliable data basis for adjusting the extension position of the rollers 212. Compared to a single electronic level, the gravity sensors directly measure the actual stress on the supporting structure, avoiding measurement deviations caused by mechanical vibration or installation errors. In specific implementation, the sensor's signal processing module can integrate temperature compensation to eliminate the influence of ambient temperature changes on the measurement results. Furthermore, a buffer pad can be placed between the sensor and the mounting groove 11 to prevent mechanical impact from damaging the sensing element.
[0032] Please see Figures 1 to 4Furthermore, this application also proposes that the mobile communication equipment room 1000 includes a sliding member 214 and a support device 22. The sliding member 214 is slidably disposed on the side wall of the telescopic frame 213, and a spring 215 is provided between the sliding member 214 and the telescopic frame 213. The support device 22 includes a support frame 221 and a locking device 222. The support frame 221 is located on one side of the telescopic frame 213 and has a through-hole. One end of the sliding member 214 is disposed in the through-hole, and the bottom end of the support frame 221 is higher than the bottom end of the roller 212. The locking device 222 is located on the side of the support frame 221 away from the telescopic frame 213. One end of the locking device 222 is disposed in the through-hole, and the locking device 222 is used to move inward to push the sliding member 214 out of the through-hole and engage with the side wall of the mounting groove 11.
[0033] Specifically, the sliding member 214 can be a slider or a sliding rod structure, and its sliding connection with the telescopic frame 213 can be a guide rail fit or a bushing fit. The spring 215 can be a compression spring or a torsion spring, used to provide the elastic force for the sliding member 214 to return to its original position. The opening shape of the support frame 221 can be circular, square, or other polygonal, and its dimensions must ensure that the sliding member 214 can slide smoothly. The locking device 222 can be operated manually by pushing and pulling or by an additional drive mechanism. As a preferred embodiment, the locking device 222 can be equipped with an operating handle for easy manual operation.
[0034] Therefore, the working principle of this technical solution is as follows: When the telescopic frame 213 moves downward, the support frame 221 is driven downward through the sliding member 214. After the controller adjusts the main body 1 of the room to a horizontal position, the operating fastener 222 pushes the sliding member 214 out of the opening and engages with the side wall of the mounting groove 11. At this time, the support frame 221 independently supports the main body 1 of the room. When movement is required, the telescopic frame 213 moves downward again, causing the roller 212 to contact the ground, and the sliding member 214 automatically resets under the action of the spring 215. This solution solves the problem of inconvenient switching between mobile and fixed states of the computer room in the prior art. It achieves reliable switching between the two states through a mechanical linkage structure, avoids the tedious operation of manual adjustment, and improves the deployment efficiency of the computer room.
[0035] Please see Figures 1 to 4 Furthermore, this application also proposes that the sidewall of the mounting groove 11 is provided with multiple locking grooves 12, and the locking member 222 includes an insertion part and two locking parts. The insertion part extends into the through-hole, and the two locking parts are located on both sides of the insertion part. The sidewalls of the two locking parts are provided with locking protrusions 2221. The locking protrusions 2221 are used to insert into the locking grooves 12 when the locking member 222 moves inward, so that the support frame 221 is connected to the inner side of the mounting groove 11.
[0036] Specifically, the insertion portion of the locking member 222 is designed as a columnar structure that matches the shape of the through-hole, ensuring smooth axial movement within the through-hole. Two locking portions are symmetrically distributed on both sides of the insertion portion and can be manufactured using a one-piece molding or separate assembly method. The cross-sectional shape of the locking protrusion 2221 is preferably trapezoidal or semi-circular, with its length direction aligned with the movement direction of the locking member 222. The locking grooves 12 are arrayed on the sidewalls of the mounting groove 11, with the groove spacing matching the spacing of the locking protrusions 2221. As a preferred embodiment, the surface of the locking protrusion 2221 can be provided with anti-slip textures 231 to enhance friction.
[0037] Therefore, this technical solution achieves rapid fixation of the support frame 221 through a mechanical interlocking structure. When the locking element 222 moves inward under control, the locking protrusion 2221 engages with the locking groove 12. This design allows for tool-free operation and quick unlocking when the computer room needs to be moved. In particular, the array-type locking groove 12 design allows for selection of different fixing positions at different heights according to the flatness of the ground, and together with the leveling adjustment system, it can ensure the installation stability of the computer room under different terrain conditions.
[0038] Please see Figures 1 to 4 Furthermore, this application also proposes that the top of the support frame 221 is provided with a baffle 223, the side of the baffle 223 is flush with one side of the support frame 221, and the baffle 223 is used to stop the sliding member 214.
[0039] Specifically, the baffle 223 is a plate-shaped structure made of metal or engineering plastic, and is vertically installed on the top edge of the support frame 221 by welding or bolting. The installation method of aligning the baffle 223 with the side of the support frame 221 can be achieved using laser calibration positioning to ensure that the inner plane of the baffle 223 is coplanar with the side of the support frame 221. In a preferred embodiment, the baffle 223 has a height of 5-8 cm and a thickness of 1-2 cm, and its top can be provided with a rubber buffer layer to prevent rigid collision with the sliding member 214. During the retraction of the telescopic frame 213, when the sliding member 214 slides along the side wall of the telescopic frame 213 to its highest position, the baffle 223 effectively prevents the sliding member 214 from continuing to move, thereby ensuring that the sliding member 214 accurately stops at the predetermined position of the opening.
[0040] Therefore, this technical solution solves the problem of inaccurate positioning of the sliding member 214 when the supporting moving mechanism 2 is in the retracted state by adding a baffle 223 structure. When the telescopic frame 213 retracts upward, the sliding member 214 slides along the side wall of the telescopic frame 213 under the action of the spring 215. The baffle 223 can accurately limit the final position of the sliding member 214, ensuring the alignment accuracy of the sliding member 214 with the through-hole. Compared with the structure without baffle 223, this design eliminates the overshoot phenomenon of the sliding member 214 caused by inertia, allowing the locking fastener 222 to more reliably complete the engagement operation with the mounting slot 11, and improving the stability of the support state of the computer room.
[0041] Please see Figure 4 Furthermore, this application also proposes that one end of the locking protrusion 2221 is set as an inclined surface.
[0042] The beveled design of the locking protrusion 2221 allows for smoother insertion into the locking groove 12 when the locking fastener 222 moves inward. Specifically, the bevel can be located at the front end of the locking protrusion 2221, and its inclination angle can be adjusted according to actual needs, for example, using an inclination angle of 30° to 60°. As a preferred embodiment, the bevel can be configured as a single-sided bevel or a double-sided bevel, with the double-sided bevel design further reducing insertion resistance. In addition, the surface of the bevel can be polished or coated with a lubricating material to reduce frictional resistance.
[0043] This technical solution, by optimizing the structural design of the locking protrusion 2221, solves the potential jamming problem that may occur when the locking fastener 222 is inserted into the locking groove 12 in the prior art. The inclined surface design allows the locking fastener 222 to engage with the locking groove 12 more smoothly during movement, reducing the difficulty of operation and improving the reliability of the connection process. Compared with the prior art, this design not only simplifies the operation process but also enhances the connection stability between the support frame 221 and the side wall of the mounting groove 11, thereby better ensuring the horizontal adjustment function of the communication equipment room.
[0044] Furthermore, a guide slope is provided on the edge of the opening facing the support frame 221.
[0045] Please see Figures 3 to 7 Furthermore, this application also proposes that the bottom surface of the support frame 221 is provided with a removable pad 23; the bottom of the removable pad 23 is provided with anti-slip texture 231, or the removable pad 23 is a flexible pad 232, or the bottom of the removable pad 23 is provided with a ground nail 233.
[0046] The detachable pad 23 is fixed to the bottom surface of the support frame 221 by threaded connection, snap-on connection, or magnetic attraction. The anti-slip texture 231 can adopt a diamond, wave, or dot matrix pattern, with a texture depth of 1-3mm. The flexible pad 232 is made of rubber, silicone, or polyurethane material, with a thickness of 5-15mm. The ground stake 233 is a conical metal structure, 100-200mm in length, with 3-6 stakes arranged in a circumferential array. The top of the ground stake 233 has a threaded interface for connection with the pad body.
[0047] This solution utilizes a detachable pad 23 to achieve three functions adaptable to different ground surfaces: anti-slip texture 231 enhances friction on concrete surfaces; a flexible pad 232 absorbs the impact of unevenness on gravel surfaces; and ground stakes 233 secure soft soil. Once the support frame 221 is leveled, the corresponding pad is installed according to the ground type, thus solving the problem of unstable support caused by complex ground conditions at natural disaster sites. Compared to fixed support structures, the detachable design allows for quick switching of support modes when the equipment room is moved, avoiding the need for repeated adjustments to the support mechanism due to changes in terrain.
[0048] Furthermore, the main structure of the building is assembled from multiple precast panels, which have a three-layer structure: the inner and outer layers are color steel insulation panels, and the middle layer is a concrete slab. Specifically, the inner and outer layers are 75mm thick polyurethane core color steel insulation panels, and the middle layer is an 80mm thick reinforced concrete precast slab.
[0049] Polyurethane core material (thermal conductivity not greater than 0.021 W / (mK)) exhibits outstanding thermal insulation performance compared to other insulation materials such as glass wool (thermal conductivity 0.037 W / (mK)) and rock wool (thermal conductivity 0.045 W / (mK)). From the above comparison, it can be concluded that under the same external environmental conditions and with the same insulation material thickness, the thermal conductivity of glass wool is more than 1.76 times that of polyurethane, and the thermal conductivity of rock wool is more than 2.14 times that of polyurethane. The three-layer structure brings the total wall thickness to 264 mm. External heat sources are filtered through two layers of color steel insulation panels, precast concrete slabs (thermal conductivity 1.28 W / (mK)), and air (thermal conductivity 0.023 W / (mK)), resulting in very little heat entering the equipment room. This significantly reduces the operating time of air conditioning, achieving excellent energy-saving and emission-reduction effects.
[0050] The above description is merely an exemplary embodiment of the present invention and does not limit the patent scope of the present invention. Any equivalent structural transformations made using the contents of the present invention specification and drawings under the technical concept of the present invention, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present invention.
Claims
1. A mobile communications shelter, characterized by The mobile communication room comprises: a room body, a plurality of installation slots being formed in the bottom of the room body; a plurality of support moving mechanisms, the support moving mechanisms being located in the installation slots, the support moving mechanisms comprising a moving device and a sensor, the moving device comprising a driving member and a roller, the driving member being used to drive the roller to extend out of or retract into the installation slots, the sensor being used to detect the degree of inclination of the room body; a controller, the controller being used to receive the signal of the sensor and control the driving member to adjust the extending position of each roller according to the signal so as to keep the room body horizontal.
2. The mobile communications hut of claim 1, wherein, The moving device comprises a telescopic frame, the telescopic frame being arranged on the driving shaft of the driving member, and the roller being rotatably arranged at the bottom of the telescopic frame.
3. The mobile communications hut of claim 1, wherein, The sensor is an electronic level.
4. The mobile communications hut of claim 1, wherein, The sensor is a gravity sensor, a plurality of sensors being arranged, the sensors being located between the installation slots and the support moving mechanisms and being used to detect the gravity borne.
5. The mobile communications hut of claim 2, wherein, The moving device further comprises a sliding member, the sliding member being slidably arranged on the side wall of the telescopic frame, a spring being arranged between the sliding member and the telescopic frame, and the support moving mechanism further comprising a support device, the support device comprising: a support frame, the support frame being located on one side of the telescopic frame, the support frame being provided with a through opening, one end of the sliding member being arranged in the through opening, and the bottom end of the support frame being higher than the bottom end of the roller; a locking member, the locking member being located on the side of the support frame away from the telescopic frame, one end of the locking member being arranged in the through opening, and the locking member being used to move inwardly to push the sliding member out of the through opening and to be engaged with the side wall of the installation slot; wherein, when the telescopic frame moves downwardly, the support frame is driven by the sliding member to move downwardly, after the controller controls the driving member to keep the room body horizontal, the locking member is operated to push the sliding member out of the through opening, at this time, the locking member is engaged with the side wall of the installation slot, the telescopic frame is retracted into the installation slot, the room body is supported by the support frame, when the room needs to be moved, the driving member drives the telescopic frame to move downwardly, the roller is re-extended below the support frame and re-supports the room body, the sliding member is extended into the through opening under the action of the spring and pushes the locking member back to the original position.
6. The mobile communications hut of claim 5, wherein, The side wall of the installation slot is provided with a plurality of locking grooves, and the locking member comprises: an insertion part, the insertion part extending into the through opening; two locking parts, the two locking parts being arranged on the two sides of the insertion part, the side wall of the two locking parts being provided with locking protrusions, the locking protrusions being used to be inserted into the locking grooves when the locking member moves inwardly, so as to complete the connection between the support frame and the inner side of the installation slot.
7. The mobile communications hut of claim 6, wherein, The top of the support frame is provided with a baffle, the side surface of the baffle being flush with one side of the support frame, and the baffle being used to stop the sliding member.
8. The mobile communications hut of claim 6, wherein, One end of the locking protrusion is a bevel; the opening edge of the side of the through opening facing the support frame is provided with a guide bevel.
9. The mobile communications hut of claim 1, wherein, The house body is installed by splicing a plurality of prefabricated plates, the prefabricated plates are three-layer structures, the inner and outer layers are color steel heat insulation plates, and the middle layer is a concrete plate.
10. The mobile communications hut of any of claims 5 to 9, wherein, The bottom surface of the support frame is provided with a detachable pad; The bottom of the detachable pad is provided with anti-skid lines, or The detachable pad is a flexible pad, or The bottom of the detachable pad is provided with ground nails.