Integrated communication equipment
By integrating the adjustment mechanisms of portable base stations and satellite portable stations, simplified operations and reduced fault points are achieved, solving the cumbersome networking problems in emergency scenarios and providing a solution that is easy to carry and fast for emergency communications.
Patent Information
- Application Number
- CN202422554862.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-22
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2034-10-22
AI Technical Summary
In emergency scenarios, existing technologies require the separate deployment of portable base stations and satellite portable stations, and temporary connections are required to complete local network coverage and backhaul, which is cumbersome and increases failure points.
An integrated communication device is designed to integrate the portable base station and the satellite portable station. The antenna directivity of the satellite portable station can be roughly adjusted to the star through the adjustment mechanism. The satellite portable station is electrically connected to the portable base station to simplify the operation process.
It reduces operational complexity and points of failure, and its size and weight are smaller than those of individual devices, making it easy to carry and store, and supports fast and reliable emergency rescue communications.
Smart Images

Figure CN223472355U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of communication devices, and in particular to an integrated communication device. BACKGROUND
[0002] With the development of satellite communication technology and wireless communication technology, emergency rescue communication systems become more and more important in remote areas where public networks cannot cover, and in areas where earthquakes and floods occur.
[0003] At present, the joint networking mode of completing local wireless local area coverage through a 4G or 5G portable base station and backhaul through a satellite portable station system is applied more and more widely. However, when establishing an emergency rescue communication, a portable base station and a satellite portable station need to be separately deployed, and after deployment, the satellite portable station and the portable base station need to be interconnected to complete local networking coverage and backhaul, which is relatively cumbersome to operate and increases the failure point in an emergency scenario. UTILITARIAN CONTENT
[0004] Therefore, the present application provides an integrated communication device to solve the problem that in the related art, a portable base station and a satellite portable station need to be separately deployed, and after deployment, the satellite portable station and the portable base station need to be interconnected to complete local networking coverage and backhaul, which is relatively cumbersome to operate and increases the failure point in an emergency scenario.
[0005] The present application provides an integrated communication device, comprising:
[0006] The portable base station comprises a shell, and is configured to complete local wireless local area coverage;
[0007] The adjusting mechanism is installed on the shell;
[0008] The satellite portable station is connected with the adjusting mechanism, and is electrically connected with the portable base station, and is configured to establish communication with a satellite.
[0009] In a possible implementation, the adjusting mechanism comprises a first connecting segment and a second connecting segment, one end of the first connecting segment is hinged to the shell, the other end of the first connecting segment is hinged to one end of the second connecting segment, and the other end of the second connecting segment is hinged to the satellite portable station.
[0010] In a possible implementation, the first connecting segment and the second connecting segment are both telescopic rods.
[0011] In a possible implementation, the shell is provided with a containing groove, the adjusting mechanism is at least partially located in the containing groove, the satellite portable station is located outside the containing groove, and the containing groove is configured to accommodate the adjusting mechanism.
[0012] In a possible implementation, the first connecting segment is hingedly connected to the first sliding block.
[0013] In a possible implementation, the adjusting mechanism comprises a first adjusting member and a second adjusting member.
[0014] The first adjusting member comprises a first adjusting segment and a second adjusting segment, one end of the first adjusting segment is hingedly connected to the shell, the other end of the first adjusting segment is hingedly connected to one end of the second adjusting segment, and the other end of the second adjusting segment is hingedly connected to the satellite portable station.
[0015] The second adjusting member comprises a third adjusting segment and a fourth adjusting segment, one end of the third adjusting segment is hingedly connected to the shell, the other end of the third adjusting segment is hingedly connected to one end of the fourth adjusting segment, and the other end of the fourth adjusting segment is hingedly connected to the satellite portable station.
[0016] In a possible implementation, the adjusting mechanism comprises a support rod, an electric push rod and a second sliding block, one end of the support rod is fixedly connected to the shell, the other end of the support rod is hingedly connected to the satellite portable station, one end of the support rod is fixedly connected to the shell, the other end of the support rod is hingedly connected to the second sliding block, and the second sliding block is slidingly connected to the satellite portable station.
[0017] In a possible implementation, the shell is provided with a key, the shell is provided with a power supply unit, the key is electrically connected to the power supply unit, and the key is configured to start or stop the integrated communication device.
[0018] In a possible implementation, the width of the satellite portable station is less than the width of the shell, and the height of the satellite portable station is less than the height of the shell.
[0019] In a possible implementation, the shell is provided with a feed port, the feed port and the adjusting mechanism are located on different sides of the shell, respectively, and the feed port is configured to connect an antenna feed line.
[0020] The integrated communication device provided by the present application includes a portable base station, an adjustment mechanism, and a portable satellite station. Local wireless local area coverage can be achieved through the portable base station. The adjustment mechanism is installed on the housing of the portable base station, the portable satellite station is connected to the adjustment mechanism, and the portable satellite station is electrically connected to the portable base station. The portable satellite station is used to establish communication with the satellite. The adjustment mechanism can be used to adjust the position of the portable satellite station relative to the portable base station so that the antenna of the portable satellite station roughly points in the direction of the satellite, thereby achieving coarse adjustment of the directivity of the portable satellite station to the satellite. Further satellite alignment is automatically completed by the portable satellite station. In this way, when establishing emergency rescue communications, there is no need to separately deploy a portable base station and a portable satellite station, and there is no need to temporarily connect the portable satellite station and the portable base station, which facilitates operation and reduces failure points. In addition, the volume of the integrated communication device is reduced compared to the total volume of a separate portable base station and a portable satellite station, and the weight of the integrated communication device is reduced compared to the total weight of a separate portable base station and a portable satellite station, making the integrated communication device more convenient to carry and store. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and, together with the description, serve to explain the principles of the present application.
[0022] Figure 1 A front view of the first integrated communication device in the storage state provided in an embodiment of the present application;
[0023] Figure 2 for Figure 1 a side view of the integrated communication device shown;
[0024] Figure 3 for Figure 1 A top view of the integrated communication device shown;
[0025] Figure 4 for Figure 1 A side view of the integrated communication device shown in the deployed state;
[0026] Figure 5 A schematic diagram of a module of an integrated communication device provided in an embodiment of the present application;
[0027] Figure 6 A side view of the second integrated communication device provided in an embodiment of the present application in an unfolded state;
[0028] Figure 7 A side view of a third integrated communication device in an expanded state provided in an embodiment of the present application;
[0029] Figure 8 This is a side view of the fourth integrated communication device in the expanded state provided in an embodiment of the present application.
[0030] Explanation of reference signs:
[0031] 100, portable base station; 110, shell; 111, antenna feeder port; 112, first sliding block; 120, satellite control module; 130, filter device; 140, power amplifier unit; 150, radio frequency unit; 160, power supply unit;
[0032] 200, adjusting mechanism; 210, first connecting section; 220, second connecting section; 230, first adjusting member; 231, first adjusting section; 232, second adjusting section; 240, second adjusting member; 241, third adjusting section; 242, fourth adjusting section; 250, support rod; 260, electric push rod; 270, second sliding block;
[0033] 300, satellite portable station.
[0034] The specific embodiments of the present application have been shown in the above drawings, and will be described in more detail hereinafter. These drawings and the written description are not intended to restrict the scope of the present application in any way, but to explain the concept of the present application to those skilled in the art by referring to specific embodiments. DETAILED DESCRIPTION
[0035] In order to make the purpose, technical solutions and advantages of the present application more clear, the technical solutions in the embodiments of the present application will be described in more detail below by referring to the drawings in the preferred embodiments of the present application. In the drawings, the same or similar reference signs represent the same or similar components or components with the same or similar functions throughout. The described embodiments are part of the embodiments of the present application, but not all the embodiments. The embodiments described below by referring to the drawings are exemplary, and are intended to explain the present application, but cannot be understood as limiting the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without making creative efforts fall within the scope of protection of the present application. The embodiments of the present application will be described in detail below by referring to the drawings.
[0036] In the description of the present application, it should be noted that unless otherwise explicitly specified and limited, the terms “mounting”, “connection”, “connecting” should be understood in a broad sense, for example, it can be fixed connection, or indirect connection through an intermediate medium, or internal communication of two elements or interaction relationship between two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0037] In the description of the present application, it should be understood that the terms "upper", "lower", "front", "back", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship based on the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.
[0038] The terms "first", "second", "third" (if any) in the specification and claims of the present application and the above-mentioned drawings are used to distinguish similar objects, and do not necessarily describe a specific order or sequence.
[0039] In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion, for example, a process, method, system, product or display including a series of steps or units does not have to be limited to those steps or units clearly listed, but can include other steps or units not clearly listed or inherent to these processes, methods, products or displays.
[0040] In the prior art, the joint networking mode of completing local wireless local area coverage through 4G or 5G portable base stations and backhaul through satellite portable stations is applied more and more widely. However, when establishing emergency rescue communication, portable base stations and satellite portable stations need to be separately deployed, and after deployment, the satellite portable stations and the portable base stations need to be interconnected to complete local networking coverage and backhaul, which is relatively cumbersome to operate and increases the failure points in the emergency scene.
[0041] The satellite portable station is usually composed of an antenna system, a modem, a power amplifier and a controller, etc., can provide rich data interfaces, and can meet the bidirectional transmission of general audio, video and data. The antenna system is responsible for receiving and transmitting satellite signals, the modem realizes signal modulation and demodulation, the power amplifier is used to enhance signal strength, and the controller is used to control the working state of the device. However, the satellite portable station is large in size and heavy in weight, and is inconvenient to carry.
[0042] After repeated thinking and verification, the inventor found that if the satellite portable station is miniaturized and uses a phased array antenna, the satellite portable station can be installed on the shell of the portable base station through an adjusting mechanism, and the position of the satellite portable station relative to the portable base station can be adjusted through the adjusting mechanism to realize rough adjustment of the satellite portable station's antenna pointing to the satellite, and further automatic completion of the satellite pointing by the phased array antenna of the satellite portable station, reducing the operation proficiency requirement of the operator. The satellite portable station and the portable base station are integrated together and electrically connected to each other, so that the satellite portable station and the portable base station do not need to be separately deployed and do not need to be temporarily connected when in use, which is convenient to operate and reduces the failure points.
[0043] Therefore, the inventor designs an integrated communication device, which integrates a satellite portable station and a portable base station together and electrically connects the two, so as to facilitate the operation of an operator. An adjusting mechanism is arranged between the satellite portable station and the portable base station, so that the operator can realize coarse adjustment of the satellite portable station to the satellite.
[0044] The technical scheme of the integrated communication device provided by the embodiment of the present application is described in detail below with reference to the drawings.
[0045] Referring to Figures 1 to 4 The integrated communication device provided by the embodiment of the present application includes a portable base station 100, an adjusting mechanism 200, and a satellite portable station 300. The portable base station 100 includes a shell 110, and the portable base station 100 is configured to complete local wireless local area coverage. The adjusting mechanism 200 is installed on the shell 110. The satellite portable station 300 is connected with the adjusting mechanism 200, and the satellite portable station 300 is electrically connected with the portable base station 100. The satellite portable station 300 is configured to establish communication with a satellite.
[0046] When the portable base station 100 completes the local wireless local area coverage, the portable base station 100 can realize signal transmission between the terminal such as a mobile phone. The type of the portable base station 100 includes but is not limited to 4G LTE or 5G NR. Illustratively, the shell 110 of the portable base station 100 can be approximately a box structure, the adjusting mechanism 200 can be installed on a larger side of the shell 110, and the satellite portable station 300 can be installed on a side of the adjusting mechanism 200 away from the shell 110. Optionally, the satellite portable station 300 can be electrically connected with the portable base station 100 through a signal line.
[0047] Illustratively, the satellite portable station 300 includes an outer shell, a receiver, and a phased array antenna. The receiver and the phased array antenna are respectively installed in the inner part of the outer shell and are electrically connected with each other. The receiver is electrically connected with the portable base station, that is, the receiver and the portable base station can realize mutual transmission of signals, and the satellite portable station can establish communication with the satellite through the phased array antenna.
[0048] It is worth mentioning that whether the existing satellite portable station can provide stable and high-quality signal reception and transmission depends on the performance parameters of the antenna. Generally, the antenna is required to have high gain, low sidelobe, and wide beam, etc. The antenna system of the satellite portable station has three forms of full automation, semi-automation, and manual operation, which is generally composed of a detachable antenna surface, a feeder support arm, etc. The gain of the satellite receiving antenna is one of the important parameters, and the gain is related to the aperture. The larger the aperture, the higher the gain, the stronger the signal, and the higher the reception quality. When the minimum equivalent aperture is 0.5 meters, the received signal can meet the normal communication.
[0049] The embodiment provides a satellite portable station 300 of an integrated communication device, which adopts a phased array antenna, the size of the phased array antenna can be 240mm*180mm*20mm, and the equivalent aperture can be about 0.1 meter; the satellite portable station 300 can realize effective reduction of the volume while ensuring the quality of the received signal compared with the antenna system of the existing satellite portable station.
[0050] The antenna of the existing satellite portable station adopts a detachable and splicable antenna surface, which needs to be spliced and assembled on site and manually pointed to the satellite by an operator, and therefore the operator needs to have certain operation and proficiency. The integrated communication device provided in the application only needs to adjust the adjusting mechanism 200 to adjust the position of the satellite portable station 300 relative to the satellite portable station to realize rough adjustment of the pointing direction of the antenna of the satellite portable station 300 to the satellite, and further pointing to the satellite is automatically completed by the phased array antenna of the satellite portable station 300, so that the operation is simple and the operator can easily point to the satellite, and the proficiency requirement of the operator is reduced.
[0051] Optionally, the integrated communication device can adopt IP65 protection design and wide-temperature design to be suitable for different regional applications.
[0052] The integrated communication device provided in the embodiment includes a portable base station 100, an adjusting mechanism 200 and a satellite portable station 300, and local wireless local coverage can be realized through the portable base station 100. The adjusting mechanism 200 is installed on the shell 110 of the portable base station 100, the satellite portable station 300 is connected with the adjusting mechanism 200, and the satellite portable station 300 is electrically connected with the portable base station 100. The satellite portable station 300 is used to establish communication with a satellite, that is, the satellite portable station 300 can realize the function of the satellite portable station. The position of the satellite portable station 300 relative to the portable base station 100 can be adjusted through the adjusting mechanism 200, so that the antenna surface of the satellite portable station 300 is roughly pointed to the satellite direction, rough adjustment of the pointing direction of the satellite portable station 300 to the satellite is realized, and further pointing to the satellite is automatically completed by the satellite portable station 300. In this way, the portable base station 100 and the satellite portable station do not need to be separately deployed when the emergency rescue communication is established, and the satellite portable station 300 and the portable base station 100 do not need to be temporarily connected, which is convenient for operation and reduces the failure points. In addition, the volume of the integrated communication device is reduced compared with the total volume of the separate portable base station 100 and the satellite portable station 300, the weight of the integrated communication device is reduced compared with the total weight of the separate portable base station 100 and the satellite portable station 300, the storage volume is reduced, and the integrated communication device is more convenient to carry and store.
[0053] In addition, compared with the existing satellite portable station, the satellite portable station 300 has smaller volume and power consumption, so that the power consumption of the integrated communication device is smaller. The integrated communication device provided in the embodiment has wireless base station function and satellite communication function, supports full-automatic satellite tracking and local 4G or 5G wireless coverage, meets the communication transmission requirements of automatic, real-time and rapid response of equipment state and equipment support requirements, realizes accurate distribution of equipment support resources, and remote support of equipment support technology.
[0054] In one embodiment, as shown in Figure 3 and Figure 4 The adjusting mechanism 200 includes a first connecting section 210 and a second connecting section 220. One end of the first connecting section 210 is hinged to the shell 110, the other end of the first connecting section 210 is hinged to one end of the second connecting section 220, and the other end of the second connecting section 220 is hinged to the satellite portable station 300.
[0055] Optionally, a first mounting seat can be arranged on the side of the larger side of the shell 110, one end of the first connecting section 210 can be hinged to the first mounting seat through a shaft pin, and the other end of the first connecting section 210 can be hinged to the second connecting section 220 through a shaft pin. A second mounting seat can be arranged on the satellite portable station 300, and the end of the second connecting section 220 away from the first connecting section 210 can be hinged to the second mounting seat through a shaft pin. In other embodiments, the first connecting section 210 and the shell 110, the first connecting section 210 and the second connecting section 220, and the second connecting section 220 and the satellite portable station 300 can also be connected through universal joints respectively, which is not limited herein.
[0056] Optionally, the second connecting section 220 can be connected to the middle of the side of the satellite portable station 300 facing the shell 110, so as to ensure that the adjusting mechanism 200 can reliably support the satellite portable station 300.
[0057] In the embodiment, the operator can adjust the position of the satellite portable station 300 relative to the portable base station 100 by rotating the first connecting section 210, the second connecting section 220 and the satellite portable station 300, so as to realize the coarse adjustment of the satellite portable station 300 to the satellite.
[0058] In one possible implementation, the first connecting section 210 and the second connecting section 220 are both telescopic rods.
[0059] For example, the first connecting section 210 and the second connecting section 220 each include two cylinders that are sleeved with each other, and the length of the connecting section can be adjusted by adjusting the relative position of the two cylinders. Optionally, the length of the connecting section can be self-locked through the damping between the two cylinders.
[0060] In this structure, the lengths of the first connecting segment 210 and the second connecting segment 220 can be elongated or shortened as needed, which increases the position adjustment range of the satellite portable station 300 and is beneficial to improve the satellite pointing accuracy of the satellite portable station 300.
[0061] In a possible implementation, the shell 110 is provided with a containing groove, and the adjustment mechanism 200 is at least partially located in the containing groove. The satellite portable station 300 is located outside the containing groove, and the containing groove is configured to contain the adjustment mechanism 200.
[0062] When the integrated communication device is carried or stored, the integrated communication device can be in a storage state; when the integrated communication device is in use, the integrated communication device can be in an unfolded state. For example, the first mounting seat can be mounted in the interior of the containing groove, and when the integrated communication device is in the storage state, the adjustment mechanism 200 can be located in the interior of the containing groove, and at this time, the satellite portable station 300 can be parallel to the side wall of the shell 110. When the integrated communication device is in the unfolded state, the end of the adjustment mechanism 200 connected with the satellite portable station 300 extends out of the containing groove.
[0063] By arranging the containing groove to contain the adjustment mechanism 200, when the integrated communication device is carried or stored, the adjustment mechanism 200 is not easily damaged by knocking, and it is ensured that the satellite portable station 300 can reliably point to the satellite.
[0064] Optionally, as shown in Figure 6 The first connecting segment 210 is hinged to the first sliding block 112 at an end away from the second connecting segment 220.
[0065] In a possible implementation, the shell 110 can be provided with a sliding rail, and the first sliding block 112 is in sliding connection with the sliding rail, so as to slide the first sliding block 112 on the shell 110. For example, the first sliding block 112 can slide on the shell 110 in the height direction or the width direction of the shell 110. Optionally, after the first sliding block 112 is slid to a preset position relative to the shell 110, a fastener can be used to fix the first sliding block 112 to the shell 110.
[0066] In this structure, the position of the adjustment mechanism 200 and the satellite portable station 300 relative to the portable base station 100 can be adjusted through the first sliding block 112, and the position of the satellite portable station 300 can be finely adjusted during the storage or transportation of the integrated communication device, so that the satellite portable station 300 is not easily damaged by knocking.
[0067] In a possible implementation, as shown in Figure 7 The adjustment mechanism 200 includes a first adjustment member 230 and a second adjustment member 240.
[0068] The first adjusting member 230 comprises a first adjusting segment 231 and a second adjusting segment 232, one end of the first adjusting segment 231 is hinged to the shell 110, the other end of the first adjusting segment 231 is hinged to one end of the second adjusting segment 232, the other end of the second adjusting segment 232 is hinged to the satellite portable station 300;
[0069] The second adjusting member 240 comprises a third adjusting segment 241 and a fourth adjusting segment 242, one end of the third adjusting segment 241 is hinged to the shell 110, the other end of the third adjusting segment 241 is hinged to one end of the fourth adjusting segment 242, the other end of the fourth adjusting segment 242 is hinged to the satellite portable station 300.
[0070] The first adjusting segment 231 and the third adjusting segment 241 can rotate relative to the shell 110 respectively, the second adjusting segment 232 can rotate relative to the first adjusting segment 231, the fourth adjusting segment 242 can rotate relative to the third adjusting segment 241, and the second adjusting segment 232 and the fourth adjusting segment 242 can rotate relative to the satellite portable station 300 respectively.
[0071] Figure 7 It is shown that the first adjusting member 230 and the second adjusting member 240 can be arranged at intervals along the height direction of the shell 110, and the operator is not easy to interfere between the first adjusting member 230 and the second adjusting member 240 when operating the adjusting mechanism 200.
[0072] With the structure, the position of the satellite portable station 300 relative to the portable base station 100 can be adjusted by the first adjusting member 230 and the second adjusting member 240, so as to realize the coarse satellite alignment of the antenna of the satellite portable station 300, and meanwhile, the first adjusting member 230 and the second adjusting member 240 have high reliability in supporting the satellite portable station 300, and the position of the satellite portable station 300 is not easy to change after the antenna of the satellite portable station 300 is aligned, which is beneficial to ensuring the communication between the satellite portable station 300 and the satellite.
[0073] Optionally, as shown in Figure 8 The adjusting mechanism 200 comprises a supporting rod 250, an electric push rod 260 and a second sliding block 270, one end of the supporting rod 250 is fixedly connected to the shell 110, the other end of the supporting rod 250 is hinged to the satellite portable station 300, one end of the supporting rod 250 is fixedly connected to the shell 110, the other end of the supporting rod 250 is hinged to the second sliding block 270, and the second sliding block 270 is slidingly connected to the satellite portable station 300.
[0074] Optionally, as shown in Figure 8As shown, the support rod 250 and the electric push rod 260 can be arranged at intervals along the height direction of the shell 110, and neither of the support rod 250 and the electric push rod 260 can rotate relative to the shell 110. The second sliding block 270 can be slidingly installed on the shell of the satellite portable station 300 along the height direction of the satellite portable station 300. It can be understood that the length of the electric push rod 260 can be controlled as needed. By controlling the length of the electric push rod 260, the satellite portable station 300 is rotated away from one end of the portable base station 100 relative to the support rod 250, so as to realize coarse pointing of the antenna of the satellite portable station 300. The electric push rod 260 is hinged to the second sliding block 270 on the satellite portable station 300, which can avoid interference between the electric push rod 260 and the satellite portable station 300 when the electric push rod 260 is elongated or shortened.
[0075] Optionally, as shown in Figure 5 As shown, the shell 110 is provided with a key, and the shell 110 is provided with a power supply unit 160, the key is electrically connected with the power supply unit 160, and the key is configured to start or shut down the integrated communication device.
[0076] The power supply unit 160 can supply power to the integrated communication device. In a possible implementation, the key and the adjusting mechanism 200 are located on different sides of the shell 110, so that the satellite portable station 300 on the adjusting mechanism 200 does not hinder the operator from pressing the key.
[0077] With this structure, the satellite portable station 300 and the portable base station 100 are integrated together, and the operator can realize one-key start and shutdown by pressing the key, which is convenient for establishing emergency rescue communication.
[0078] As shown in Figure 5 The portable base station 100 further includes a satellite control module 120, a filter device 130, a power amplifier unit 140 and a radio frequency unit 150 which are respectively installed inside the shell 110.
[0079] Optionally, the integrated communication device can further include a battery which is detachably installed on the shell 110 of the portable base station 100. When the battery is installed on the shell 110, the battery is electrically connected with the power supply unit 160. The battery can supply power to the integrated communication device, that is, the integrated communication device can be externally connected with the battery for power supply, so as to ensure the endurance time of task execution.
[0080] As shown in Figures 1-3 As shown, the width of the satellite portable station 300 is less than the width of the shell 110, and the height of the satellite portable station 300 is less than the height of the shell 110.
[0081] Figures 1-3It is shown that by setting the position of the adjusting mechanism 200 on the shell 110 and the position of the satellite portable station 300 connected with the adjusting mechanism 200, the edge of the shell 110 can be beyond the edge of the satellite portable station 300, so that the edge of the satellite portable station 300 is not easy to be bumped, which is beneficial to ensure the service life of the integrated communication device.
[0082] As shown in Figure 5 In a possible implementation, the shell 110 is provided with a feed port 111. The feed port 111 and the adjusting mechanism 200 are respectively located at different sides of the shell 110, and the feed port 111 is configured to be connected with an antenna feed line.
[0083] The feed port 111 can be arranged at the top end of the shell 110 as shown in Figure 5 The portable base station 100 can be provided with an antenna, which can be an omnidirectional or directional antenna. After the antenna feed line is connected with the antenna and the feed port 111 respectively, the portable base station 100 can send signals to a terminal or receive signals from the terminal through the radio frequency unit 150 and the antenna.
[0084] By arranging the feed port 111 and the adjusting mechanism 200 at different sides of the shell 110 respectively, interference between the antenna feed line and the satellite portable station 300 can be avoided, and it is ensured that the integrated communication device can reliably establish emergency rescue communication.
[0085] Finally, it should be noted that: the above embodiments are only used to illustrate the technical solutions of the present application, and not to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that they can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement for part or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present application.
Claims
1. An integrated communication device, characterized by The utility model relates to a portable base station (100) including a housing (110), the portable base station (100) is configured to complete local wireless LAN coverage, an adjusting mechanism (200) is installed on the housing (110), a satellite portable station (300) is connected with the adjusting mechanism (200), the satellite portable station (300) is electrically connected with the portable base station (100), and the satellite portable station (300) is configured to establish communication with a satellite. The adjusting mechanism (200) includes a first connecting section (210) and a second connecting section (220), one end of the first connecting section (210) is hinged to the housing (110), the other end of the first connecting section (210) is hinged to one end of the second connecting section (220), and the other end of the second connecting section (220) is hinged to the satellite portable station (300). The first connecting section (210) and the second connecting section (220) are both telescopic rods. The housing (110) is provided with a containing groove, the adjusting mechanism (200) is at least partially located in the containing groove, the satellite portable station (300) is located outside the containing groove, and the containing groove is configured to accommodate the adjusting mechanism (200).
2. The integrated communication device of claim 1, wherein, A first sliding block (112) is slidingly installed on the housing (110), and one end of the first connecting section (210) away from the second connecting section (220) is hinged to the first sliding block (112).
3. The integrated communication device of claim 2, wherein, The adjusting mechanism (200) includes a first adjusting member (230) and a second adjusting member (240).
4. The integrated communication device of claim 2, wherein, The first adjusting member (230) includes a first adjusting section (231) and a second adjusting section (232), one end of the first adjusting section (231) is hinged to the housing (110), the other end of the first adjusting section (231) is hinged to one end of the second adjusting section (232), and the other end of the second adjusting section (232) is hinged to the satellite portable station (300).
5. The integrated communication device of claim 2, wherein, The second adjusting member (240) includes a third adjusting section (241) and a fourth adjusting section (242), one end of the third adjusting section (241) is hinged to the housing (110), the other end of the third adjusting section (241) is hinged to one end of the fourth adjusting section (242), and the other end of the fourth adjusting section (242) is hinged to the satellite portable station (300).
6. The integrated communication device of claim 1, wherein, The adjusting mechanism (200) includes a support rod (250), an electric push rod (260), and a second sliding block (270), one end of the support rod (250) is fixedly connected to the housing (110), the other end of the support rod (250) is hinged to the second sliding block (270), and the second sliding block (270) is slidingly connected to the satellite portable station (300). The housing (110) is provided with a key, the housing is provided with a power supply unit (160), the key is electrically connected to the power supply unit (160), and the key is configured to start or turn off the integrated communication device. 7. The integrated communication device of claim 1, wherein, 8. The integrated communication device of claim 1, wherein, 9. The integrated communication device according to any of claims 1-7, wherein, The satellite portable station (300) is smaller in width and height than the shell (110).
10. The integrated communication device according to any of claims 1-7, wherein, The shell (110) is provided with a feed port (111), and the feed port (111) and the adjusting mechanism (200) are located on different sides of the shell (110), respectively. The feed port (111) is configured to be connected with an antenna feed line.