A portable spectrum monitoring direction finding integrated case
By integrating functional modules and adjustable support structures within the enclosure, the problem of inconvenience in carrying existing equipment has been solved, achieving both stability and portability of portable spectrum monitoring equipment, allowing a single person to complete the monitoring task.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHINESE PEOPLES ARMED POLICE FORCE JIANGXI PROVINCIAL CORPS
- Filing Date
- 2025-07-01
- Publication Date
- 2026-08-04
AI Technical Summary
Existing spectrum monitoring equipment is large and heavy, making it inconvenient to carry and move, and requires multiple operators to carry and operate it.
A portable spectrum monitoring and direction finding integrated box was designed, which integrates all the necessary spectrum monitoring function modules into a compact and lightweight box, and provides stable support through an adjustable support structure, including a first support structure and a second support structure, to ensure the stability and portability of the device during the monitoring process.
The device is portable and easy to operate, allowing a single person to easily carry and move it, ensuring the accuracy and security of monitoring.
Smart Images

Figure CN224594684U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of integrated box technology, and in particular relates to a portable spectrum monitoring and direction finding integrated box. Background Technology
[0002] Radio spectrum is a finite and valuable natural resource, widely used in communications, broadcasting, navigation, radar, satellite communications, public safety, and military fields. With the rapid development of wireless communication technology, the demand for spectrum resources is increasing, making spectrum monitoring particularly important. The main purpose of spectrum monitoring is to ensure the effective utilization and management of spectrum resources, prevent interference, and maintain the normal operation of wireless communication systems. Spectrum monitoring systems can monitor signal activity within specific frequency bands in real time, identify illegal or unauthorized radio signals, detect and eliminate interference, optimize spectrum resource allocation, ensure regulatory compliance, and provide rapid response and support in emergencies. However, existing spectrum monitoring equipment is bulky and heavy, making it inconvenient to carry and move. Furthermore, existing equipment typically requires multiple independent components to perform different functions, such as the main unit, antenna, and power supply, thus requiring multiple operators to carry it, which is cumbersome. Utility Model Content
[0003] In view of the above situation and to overcome the shortcomings of the prior art, this utility model provides a portable spectrum monitoring and direction finding integrated box.
[0004] The technical solution adopted by this utility model is as follows: A portable spectrum monitoring and direction finding integrated box includes a protective cabinet and various functional unit modules configured inside the cabinet. The protective cabinet is equipped with adjustable support structures on both sides, including a pair of first support structures on both sides of the front of the cabinet and a pair of second support structures on both sides of the rear of the cabinet. The cabinet has corresponding accommodating chambers inside. The accommodating chambers are open at the front and back and are equipped with corresponding cabinet doors. Support partitions are set inside the accommodating chambers to separate the accommodating chambers, which are suitable for supporting and installing the corresponding functional module units.
[0005] Furthermore, the first support structure includes a sliding part and a first support part connected to the sliding part. The top wall of the cabinet has a predetermined thickness and a sliding groove adapted to the sliding part is provided along its length. The first support part performs corresponding support operations along the height direction of the cabinet.
[0006] Furthermore, the second support structure includes a crossbeam and a second support section;
[0007] One end of the crossbeam is rotatably mounted on the side of the cabinet and has a predetermined working length; the bottom of the crossbeam is provided with a locking groove suitable for accommodating the second support part along the length direction; the end of the crossbeam away from the cabinet is provided with a rotating disc base.
[0008] The second support includes a tripod, with the tops of the three support rods of the tripod hinged together to a ball joint shaft, which is rotatably positioned at the end of the locking groove away from the cabinet.
[0009] Furthermore, the supporting partition divides the accommodating chamber into multiple placement chambers, wherein a positioning component is provided in the placement chamber suitable for placing the host. The positioning component includes two positioning plates, telescopic rods respectively connected to the positioning plates, and a support spring wound around the telescopic rods. The telescopic rods are respectively fixed on two opposite inner walls of the corresponding chambers. Multiple telescopic rods can be configured on each inner wall. The telescopic rods configured on the same inner side are configured with a positioning plate at the telescopic end, and the support spring is located between the positioning plate and the corresponding inner wall.
[0010] Furthermore, the supporting partition cabinet contains two adjacent left and right chambers, each with a predetermined working length. Placement plates are arranged vertically and vertically within the left and right chambers, suitable for supporting and placing different monitoring functional components.
[0011] Furthermore, the protective cabinet is provided with hooks on its side.
[0012] The advantages of this utility model after adopting the above structure are as follows: The portable spectrum monitoring and direction-finding integrated box proposed in this utility model has a first support structure and a second support structure on both sides. These can be unfolded when needed to provide stable support for the integrated box, preventing it from tipping over or moving during monitoring, thereby ensuring the accuracy and safety of the monitoring. The first support part can slide along a sliding groove, allowing the support position to be adjusted according to actual needs, improving the flexibility of equipment use. Simultaneously, the tripod of the second support part works in conjunction with the first support part to provide stable support. The integrated box design of this device integrates all the necessary spectrum monitoring functional modules into a compact and lightweight box, greatly reducing the size and weight of the equipment, thereby improving its portability and allowing a single operator to easily carry and move it. Attached Figure Description
[0013] The accompanying drawings are provided to further understand the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation thereof.
[0014] Figure 1 This is a schematic diagram of the overall structure of a portable spectrum monitoring and direction finding integrated box proposed in this utility model;
[0015] Figure 2 This is a schematic diagram of the unfolded adjustable support structure of a portable spectrum monitoring and direction finding integrated box proposed in this utility model;
[0016] Figure 3This is a schematic diagram of the front internal structure of the protective cabinet of a portable spectrum monitoring and direction finding integrated box proposed in this utility model;
[0017] Figure 4 This is a schematic diagram of the internal rear structure of the protective cabinet of a portable spectrum monitoring and direction finding integrated box proposed in this utility model.
[0018] In the attached diagram: 1. Protective cabinet body; 2. First support structure; 3. Second support structure; 4. Cabinet door; 5. Support partition; 6. Sliding part; 7. First support part; 8. Crossbeam; 9. Engaging groove; 10. Rotating base; 11. Tripod; 12. Ball joint shaft; 13. Positioning plate; 14. Support spring; 15. Telescopic rod; 16. Left chamber; 17. Right chamber; 18. Hook; 19. Cable management plate; 20. Velcro cable ties. Detailed Implementation
[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.
[0020] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0021] like Figures 1-4As shown, a portable spectrum monitoring and direction finding integrated box includes a protective cabinet 1 and various functional module units configured inside the cabinet. The protective cabinet 1 has corresponding accommodating chambers suitable for separating and installing the corresponding functional module units. The front and rear sides of the protective cabinet 1 are open and equipped with corresponding cabinet doors 4. Adjustable support structures are configured on both sides of the cabinet, including a pair of first support structures 2 located on both sides of the front of the cabinet and a pair of second support structures 3 located on both sides of the rear of the cabinet. Both the first support structures 2 and the second support structures 3 can be stored in the corresponding side of the protective cabinet 1. The bottom of the protective cabinet 1 is equipped with casters to facilitate the overall movement of the device. When moved to the corresponding working position, the first support structures 2 and the second support structures 3 are opened to locate the position of the cabinet and set up the corresponding antenna to prevent the cabinet from tipping over.
[0022] In some preferred embodiments, the top wall of the protective cabinet 1 has a predetermined thickness, and a sliding groove is provided at its front along the length direction. The first support structure 2 includes a sliding part 6 that can slide along the sliding groove and a first support part 7 that operates along the height direction of the cabinet. The sliding part 6 has a predetermined operating length. When it is fully inserted into the sliding groove, the first support part 7 fits against the corresponding side wall of the cabinet. When it slides out of the sliding groove for a corresponding length, the support position of the first support part 7 can be adjusted along the length direction of the cabinet to improve the flexibility of the device during use.
[0023] In some preferred embodiments, the second support structure 3 includes a crossbeam 8 and a second support portion disposed at the rotating end of the crossbeam 8. One end of the crossbeam 8 is rotatably disposed at a corresponding position on the side of the cabinet via a pivot. The crossbeam 8 has a predetermined working length. When rotating to the side of the cabinet, it can fit against the side of the cabinet. When rotating upward, it can be supported by the second support portion. The bottom of the crossbeam 8 along its length direction is provided with a locking groove 9 suitable for accommodating the second support portion. The second support portion includes a tripod 11. The tripod 11 serves as a support function component. The top ends of the three support rods of the tripod 11 are hinged to a ball joint shaft 12. The ball joint shaft 12 is rotatably disposed at the end of the locking groove 9 away from the cabinet. When storing, the three support rods of the tripod 11 can be locked into the locking groove 9.
[0024] Furthermore, the crossbeam 8 has a disc base at the end furthest from the cabinet, which is suitable for mounting an antenna.
[0025] In some preferred embodiments, a support partition 5 is provided inside the cabinet, which divides the internal accommodating chamber of the cabinet into multiple placement chambers. A positioning assembly is provided in the chamber where the main unit is placed, including two positioning plates 13, telescopic rods 15 connected to the positioning plates 13, and support springs 14 wound around the telescopic rods 15. The telescopic rods 15 are fixed to two opposing inner walls of the corresponding chambers. Multiple telescopic rods 15 can be configured on each inner wall. The telescopic rods 15 configured on the same inner side have a positioning plate 13 at their telescopic ends. The support springs 14 are located between the positioning plates 13 and the corresponding inner walls. When the main unit is placed in the chamber, the positioning plates 13 are extended to both sides, compressing the support springs 14 and applying a reverse force to the positioning plates 13. The telescopic rods 15 are multi-section telescopic rods 15, with predetermined damping values between the multi-section sleeves. The positioning plates 13 clamp the corresponding main unit, and the entire device provides protection for the main unit when it moves.
[0026] Among them, the supporting partition 5 can divide the interior of the cabinet into two adjacent left chambers 16 and right chambers 17. The two chambers have a predetermined working length, and the left and right chambers 17 are respectively equipped with placement plates at intervals, which are suitable for carrying and placing different monitoring function components.
[0027] Specifically, multiple host chambers, microwave antenna compartments, handheld compartments, handheld handle compartments, and handheld antenna compartments can be formed in the left chamber 16; multiple battery compartments, charger compartments, Beidou compartments, microwave and UHF cable compartments, and microwave cable compartments can be formed in the right chamber 17. The upper rear part of both chambers is open, forming a wiring area for internal equipment, suitable for wiring. Cable management boards 19 are set in the lower rear part of the left and right chambers 17. Multiple sets of Velcro cable ties 20 are set on the cable management boards 19. Cables can be managed in a top-to-bottom order and bundled using the Velcro cable ties 20. The cables can be divided into UHF lateral antenna fixing area, UHF monitoring antenna fixing area, and HF antenna fixing area. In addition, antenna fixing slots and antenna fixing seats can be configured at the bottom of the left and right chambers 17 to position the corresponding cables and antennas.
[0028] Preferably, the left chamber 16 has a width of 400mm and consists of, from top to bottom, a computer drawer, two main unit compartments, a microwave antenna compartment, a handheld device compartment, a handheld device antenna compartment, a handheld device handle compartment, and a handheld device antenna compartment, with heights of 100mm, 200mm, 200mm, 260mm, 110mm, 100mm, 30mm, and 200mm respectively.
[0029] The right chamber 17 is 200mm wide and consists of, from top to bottom, a computer power supply compartment, a battery compartment, a charger compartment, a battery compartment, a charger compartment, a shortwave / ultra-shortwave cable compartment, and a microwave cable compartment, with heights of 100mm, 100mm, 100mm, 100mm, 100mm, 300mm, and 300mm respectively.
[0030] In some preferred embodiments, the protective cabinet 1 is provided with a hook 18 on its side to facilitate lifting and moving of the equipment.
[0031] The specific usage is as follows: Various monitoring functional modules are placed in their respective chambers, and the related cables are organized and separated. When monitoring is required, the device is moved to the corresponding monitoring position, the first support 7 is pulled to a suitable position for support, the crossbeam 8 is raised, and the second support 7 is released, working in conjunction with the first support 7 to support the entire device. The corresponding antenna can be mounted on the crossbeam 8 and the extended portion of the sliding part 6 of the first support structure 2. Then, each functional module is activated to perform the corresponding monitoring.
[0032] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions, and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents. In summary, if those skilled in the art, inspired by this invention, design similar structural methods and embodiments without departing from the inventive spirit of the present invention, such designs should fall within the protection scope of the present invention. Each component of this application can be driven by a corresponding external motor; this is prior art and will not be described in detail here.
Claims
1. A portable spectrum monitoring direction finding integrated case, characterized by: The device includes a protective cabinet and various functional unit modules configured inside the cabinet. The protective cabinet has adjustable support structures on both sides, including a pair of first support structures on both sides of the front of the cabinet and a pair of second support structures on both sides of the rear of the cabinet. The cabinet has corresponding receiving chambers inside. The receiving chambers are open at the front and back and are equipped with corresponding cabinet doors. Support partitions are set inside the receiving chambers to separate them, which are suitable for supporting and installing the corresponding functional module units.
2. The portable spectrum monitoring direction finding integrated case of claim 1, wherein: The first support structure includes a sliding part and a first support part connected to the sliding part. The top wall of the cabinet has a predetermined thickness and a sliding groove adapted to the sliding part is provided along its length. The first support part performs corresponding support operations along the height direction of the cabinet.
3. The portable spectrum monitoring and direction finding integrated box according to claim 1, characterized in that, The second support structure includes: A crossbeam, one end of which is rotatably mounted on the side of the cabinet and has a predetermined working length; the bottom of the crossbeam is provided with a locking groove along its length to accommodate a second support; a disc rotating base is provided at the end of the crossbeam away from the cabinet. The second support includes a tripod, the tops of the three support rods of the tripod are hinged together with a ball joint shaft, which is rotatably positioned at the end of the locking groove away from the cabinet.
4. The portable spectrum monitoring direction finding integrated case of claim 1, wherein: The supporting partition divides the accommodating chamber into multiple placement chambers. A positioning component is installed in the placement chamber suitable for placing the main unit. The positioning component includes two positioning plates, telescopic rods connected to the positioning plates respectively, and a support spring wound around the telescopic rods. The telescopic rods are respectively fixed on two opposite inner walls of the corresponding chambers. Multiple telescopic rods can be configured on each inner wall. The telescopic rods configured on the same inner side are equipped with positioning plates at their telescopic ends, and the support springs are located between the positioning plates and the corresponding inner walls.
5. The portable spectrum monitoring direction finding integrated case of claim 1, wherein: The supporting partition divider cabinet contains two adjacent left and right chambers. The two chambers have a predetermined working length, and each chamber is equipped with a placement plate spaced vertically, which is suitable for carrying and placing different monitoring function components.
6. The portable spectrum monitoring direction finding integrated case of claim 1, wherein: The protective cabinet is equipped with hooks on its side.