Thermal imaging monitoring equipment based on 5G
By introducing buffer pads, rubber balls, airbags, and rope cushioning systems into thermal imaging monitoring equipment, the problems of equipment being easily damaged and falling in complex environments have been solved, achieving long equipment life, stable operation, and efficient data transmission.
Patent Information
- Application Number
- CN202520269749.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-19
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2035-02-19
AI Technical Summary
Traditional thermal imaging monitoring equipment is susceptible to physical impact and corrosion damage in complex environments. It lacks drop protection, which leads to a decrease in image clarity and data reliability, a shortened service life, and easy hardware damage and data loss after a fall.
The system employs a cushioning system consisting of buffer pads, rubber balls, and airbags within the protective shell, combined with ropes and a cushioning mechanism, to absorb impact forces, protect internal components, and reduce hardware damage during a fall by using the rope and movable rod cushioning system.
It effectively protects internal components, extends equipment life, ensures image quality and data transmission stability, reduces failure and maintenance costs, lowers the risk of drop damage, and ensures the safety and stability of monitoring tasks.
Smart Images

Figure CN223727274U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to monitoring equipment technical field, concretely is a kind of thermal imaging monitoring equipment based on 5G. BACKGROUND
[0002] Under the big environment of infectious disease prevention and control, the demand for rapid and accurate monitoring of human body temperature is increasingly urgent, thermal imaging technology has been widely used in body temperature monitoring due to its non-contact, efficient and fast characteristics, however, there are some significant problems in the use of existing thermal imaging monitoring.
[0003] Traditional protection means is often limited to simple shell wrapping, in complex and changeable use environment, camera is vulnerable to physical impact from all directions, thereby seriously affecting the clarity and accuracy of imaging, for severe natural environment, traditional protection method cannot effectively block, so that the internal elements of camera are easily corroded and damaged, thereby shortening the service life of equipment, due to lack of fine protection design, it is easy to be affected by external electromagnetic interference, resulting in intermittent data transmission, which seriously affects the reliability and real-time performance of monitoring data.
[0004] Such as the announcement number for CN221127381U a kind of thermal imaging monitoring equipment, installation hole is equipped with sliding slot and the mobile fastener in the sliding slot;Two ends can be inserted into corresponding installation hole respectively, and fixed by mobile fastener, multiple safety ropes make that camera does not shake greatly in the process of disassembly due to first drop, the thermal imaging monitoring equipment described above in use, traditional protection method cannot effectively block, so that the internal elements of camera are easily corroded and damaged, thereby shortening the service life of equipment, but it still has other problems in the middle, in preventing equipment falling and buffering, traditional monitoring equipment mostly does not consider the risk of falling, hardware is easy to be seriously damaged after falling, data is easy to lose, internal structure is deformed, affect precision and performance, due to lack of effective buffering mechanism, strong impact force will directly act on the hardware structure of equipment, it can also cause important monitoring data stored in equipment to be lost, bring great difficulty to subsequent investigation and analysis work, since falling impact can cause the serious deformation of internal structure of equipment, even after repair, it is also difficult to restore to original precision and performance, thereby affecting the accuracy and reliability of monitoring data, in some special places, equipment falling can also cause secondary injury, cannot guarantee the safe and stable progress of monitoring task. UTILITY MODEL CONTENTS
[0005] The utility model discloses a purpose lies in providing a kind of thermal imaging monitoring equipment based on 5G, to solve the problem that the above background technology proposes, traditional protection mode cannot effectively block, so that the internal element of camera is extremely vulnerable to corrosion and damage, and then shorten the service life of equipment and the previous monitoring equipment mostly do not consider the risk of falling, hardware is easy to be seriously damaged after falling, data is easy to lose, internal structure is deformed, affect precision and performance problem.
[0006] To achieve the above object, the utility model provides the following technical scheme: a kind of thermal imaging monitoring equipment based on 5G, including support and the connecting shell being arranged below left end of support;The connecting shell lower end is provided with protective housing, and the left end inside protective housing is provided with human body temperature measurement binocular camera, and the right end of human body temperature measurement binocular camera is provided with terminal computer, and human body temperature measurement binocular camera and terminal computer are interconnected, the protective housing is provided with protection mechanism, and the front end of protective housing is provided with buffer gasket, and the rear end of buffer gasket is arranged at the front end of human body temperature measurement binocular camera;The first rope is fixedly installed at the lower end of the first rope, and the first rope is evenly distributed four with the connecting shell as the rotation center, the buffer housing is fixedly installed at the lower end of the first rope, the connecting shell upper end is provided with buffer mechanism, the buffer housing right side is fixedly installed with movable rod, and the movable rod is evenly distributed two with buffer housing as the center of symmetry.
[0007] Further, the protection mechanism includes an identity recognition module arranged above the rear end of the terminal computer, and the identity recognition module is interconnected with the terminal computer, and the identity recognition module is provided with a cloud server at the lower end.
[0008] Further, the cloud server is interconnected with the identity recognition module, and the terminal computer is provided with a forehead area recognition module at the front end, and the forehead area recognition module is interconnected with the terminal computer.
[0009] Further, a limiting groove is formed in the upper end inside the protective housing, and a rubber ball is arranged at the lower end of the limiting groove, and the rubber ball is evenly distributed four with the protective housing as the center of symmetry.
[0010] Further, the rubber ball is provided with a protective airbag at the lower end, and the protective airbag is evenly distributed two with the protective housing as the center of symmetry, and the protective airbag is pasted and installed on the upper end of the human body temperature measurement binocular camera at the lower end.
[0011] Further, the buffer mechanism includes an active block slidingly installed in the movable rod, and a buffer spring is arranged at the lower end right side of the active block, and the buffer spring is arranged at the outer side of the lower end of the movable rod.
[0012] Further, the lower end of the buffer spring is installed in the lower end of the buffer shell, and the second rope is fixedly installed in the lower end of the connecting shell.
[0013] Compared with the prior art, the utility model has the advantages of:
[0014] 1. When in use, the buffer gaskets on the inner walls of the protective shell on the front and back sides protect the human body temperature measuring binocular camera on the two sides, the rubber ball inside the limiting groove on the upper end of the protective shell is buffered, the rubber ball forms a shock absorption area between the protective shell and the protection air bag, the protection air bag is buffered again at the lower end of the rubber ball, the transmission of vibration can be reduced when a collision occurs, internal parts are prevented from being damaged, and the influence of external electromagnetic interference on data transmission is reduced.
[0015] Further, the monitoring work is ensured not to be disturbed, physical damage is effectively prevented, and the service life of the camera is maximally prolonged, whether it is water vapor erosion in a high temperature and high humidity environment or sand abrasion in a strong wind and sand environment, the internal elements of the camera are ensured to be intact, the stability and reliability of the image quality are effectively guaranteed, image problems caused by external interference are avoided, and clear, accurate and true image information is provided for the monitoring work.
[0016] Further, the continuity, stability and accuracy of data transmission are ensured, the efficiency and quality of data transmission are improved, data transmission errors and delays are reduced, the aging speed of the equipment is effectively slowed down, the maintenance cost and replacement frequency of the equipment are reduced, the probability of failure is reduced, the reliability and usability of the equipment are improved, the equipment can be stably operated for a long time, downtime and maintenance costs caused by failure are reduced.
[0017] 2. When the connecting shell and the protective shell fall, the buffer shell is fixed at the lower end of the first rope, the connecting shell drives the movable block through the second rope at the upper end, the movable block moves through the movable rod, the movable block extrudes the buffer spring, the buffer spring is buffered, a certain buffering performance is achieved, the impact on the safety rope is reduced, the protection of the connecting shell and the protective shell is improved, and the impact force can be effectively absorbed and dispersed, and the damage degree of hardware is reduced.
[0018] Further, the internal structure is effectively prevented from being severely deformed and displaced, the equipment is ensured to maintain basic structural integrity and functional usability after falling, the risk of data loss and damage caused by falling impact is reduced, the integrity and recoverability of important monitoring data are ensured, downtime caused by equipment falling is reduced, the safety risk during equipment operation is reduced, and the operation efficiency and quality of the entire monitoring system are improved. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1The utility model discloses a front view three-dimensional structure schematic diagram;
[0020] Figure 2 The utility model discloses a connecting shell half split three-dimensional structure schematic diagram;
[0021] Figure 3 The utility model discloses a protective shell half split three-dimensional structure schematic diagram;
[0022] Figure 4 The utility model discloses a rubber ball three-dimensional structure schematic diagram;
[0023] Figure 5 The utility model discloses a limiting groove three-dimensional structure schematic diagram;
[0024] Figure 6 The utility model discloses a buffer shell three-dimensional structure schematic diagram;
[0025] Figure 7 The utility model discloses a movable block three-dimensional structure schematic diagram.
[0026] In the drawing: 1, support;2, connecting shell;3, protective shell;4, human temperature measurement binocular camera;5, terminal computer;6, buffer gasket;7, first rope;8, buffer shell;9, movable rod;10, identity identification module;11, cloud server;12, forehead area identification module;13, limiting groove;14, rubber ball;15, protection air bag;16, movable block;17, buffer spring;18, second rope. DETAILED DESCRIPTION
[0027] The technical scheme in the embodiments of the utility model will be described clearly and completely below in conjunction with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the ordinary skill in the art without creative labor belong to the range of the utility model protection.
[0028] Embodiment one: please refer to Figures 1-7The utility model provides following technical scheme: a kind of thermal imaging monitoring equipment based on 5G, including support 1 and the connecting shell 2 being arranged in the left end below support 1;Connecting shell 2 lower end is provided with protective housing 3, and the left end inside protective housing 3 is provided with human body temperature measurement binocular camera 4, and human body temperature measurement binocular camera 4 right end is provided with terminal computer 5, and human body temperature measurement binocular camera 4 and terminal computer 5 are interconnected, protective housing 3 inside is provided with protection mechanism, and the front end of protective housing 3 is provided with buffer gasket 6, and buffer gasket 6 rear end is arranged in the front end of human body temperature measurement binocular camera 4;Support 1 lower end is provided with first rope 7, and first rope 7 is evenly distributed four with connecting shell 2 as the center of rotation, and the lower end of first rope 7 is fixedly installed with buffer shell 8, and the upper end of connecting shell 2 is provided with buffer mechanism, and the right side inside buffer shell 8 is fixedly installed with movable rod 9, and movable rod 9 is evenly distributed two with buffer shell 8 as the center of symmetry, protection mechanism includes identity recognition module 10 being arranged above the rear end of terminal computer 5, and identity recognition module 10 and terminal computer 5 are interconnected, and identity recognition module 10 lower end is provided with cloud server 11, and cloud server 11 and identity recognition module 10 are interconnected, and forehead area identification module 12 is arranged in the front end of terminal computer 5, and forehead area identification module 12 and terminal computer 5 are interconnected, and the upper end inside protective housing 3 is provided with limiting groove 13, and limiting groove 13 lower end is provided with rubber ball 14, and rubber ball 14 is evenly distributed four with protective housing 3 as the center of symmetry, and rubber ball 14 lower end is provided with protection air bag 15, and protection air bag 15 is evenly distributed two with protective housing 3 as the center of symmetry, and protection air bag 15 lower end is pasted and installed on the upper end of human body temperature measurement binocular camera 4.
[0029] Data is collected by human body temperature measurement binocular camera 4, and then data is transmitted to terminal computer 5, and terminal computer 5 is transmitted to forehead area identification module 12 to analyze human body temperature, and data is transmitted to identity recognition module 10 and cloud server 11 to analyze identity;When using, buffer gasket 6 of the front and back sides of the inner wall of protective housing 3 protects both sides of human body temperature measurement binocular camera 4, rubber ball 14 inside the limiting groove 13 of the upper end of protective housing 3 buffers, rubber ball 14 forms a damping area between protective housing 3 and protection air bag 15, and protection air bag 15 further buffers at the lower end of rubber ball 14, which can reduce the transmission of vibration when colliding, avoid damaging internal parts, to protect human body temperature measurement binocular camera 4.
[0030] The buffering mechanism comprises a movable block 16 slidingly installed in the middle of the movable rod 9, a buffering spring 17 arranged at the lower right side of the movable block 16, the buffering spring 17 arranged outside the lower end of the movable rod 9, the buffering spring 17 installed inside the lower end of the buffering shell 8, a second rope 18 fixedly installed at the lower end of the movable block 16, and the second rope 18 fixedly installed at the lower end of the connecting shell 2.
[0031] When the connecting shell 2 and the protective shell 3 fall, the buffering shell 8 at the fixed lower end of the first rope 7 is driven by the second rope 18 at the upper end of the connecting shell 2, the movable block 16 is moved through the movable rod 9, the movable block 16 presses the buffering spring 17, the buffering spring 17 buffers, a certain buffering performance is achieved, the impact on the safety rope is reduced, and the protection of the connecting shell 2 and the protective shell 3 is improved.
[0032] In the description of the utility model, it is to be explained that, unless there are explicit provisions and limitations, the terms "connected", "connected" should be understood broadly, for example, it can be fixed connection, can also be detachable connection, or integrally connected, can be mechanical connection, can also be electrical connection, can be directly connected, also can be indirectly connected through intermediate medium. For ordinary skilled in the art, the specific meaning of the above terms in the utility model can be understood according to specific circumstances.
[0033] Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement to part of the technical features, and any modification, equivalent replacement, improvement, etc. within the spirit and principles of the utility model should be included in the protection scope of the utility model.
Claims
1. A 5G-based thermal imaging monitoring device, comprising a support (1) and a connecting shell (2) arranged below the left end of the support (1); characterized in that The lower end of the connecting shell (2) is provided with a protective shell (3), the left end of the protective shell (3) is provided with a human body temperature measurement binocular camera (4), and the right end of the human body temperature measurement binocular camera (4) is provided with a terminal computer (5), and the human body temperature measurement binocular camera (4) and the terminal computer (5) are connected with each other, the protective shell (3) is provided with a protection mechanism, and the front end of the protective shell (3) is provided with a buffer gasket (6), and the rear end of the buffer gasket (6) is arranged at the front end of the human body temperature measurement binocular camera (4); The lower end of the connecting shell (2) is provided with a protective shell (3), the left end of the protective shell (3) is provided with a human body temperature measurement binocular camera (4), and the right end of the human body temperature measurement binocular camera (4) is provided with a terminal computer (5), and the human body temperature measurement binocular camera (4) and the terminal computer (5) are connected with each other, the protective shell (3) is provided with a protection mechanism, and the front end of the protective shell (3) is provided with a buffer gasket (6), and the rear end of the buffer gasket (6) is arranged at the front end of the human body temperature measurement binocular camera (4); 2. The 5G-based thermal imaging monitoring device of claim 1, wherein: The lower end of the connecting shell (2) is provided with a protective shell (3), the left end of the protective shell (3) is provided with a human body temperature measurement binocular camera (4), and the right end of the human body temperature measurement binocular camera (4) is provided with a terminal computer (5), and the human body temperature measurement binocular camera (4) and the terminal computer (5) are connected with each other, the protective shell (3) is provided with a protection mechanism, and the front end of the protective shell (3) is provided with a buffer gasket (6), and the rear end of the buffer gasket (6) is arranged at the front end of the human body temperature measurement binocular camera (4); 3. The 5G-based thermal imaging monitoring device of claim 2, wherein: The protection mechanism comprises an identity recognition module (10) arranged above the rear end of the terminal computer (5), and the identity recognition module (10) and the terminal computer (5) are connected with each other, and the identity recognition module (10) is arranged below the terminal computer (5).
4. The 5G-based thermal imaging monitoring device of claim 3, wherein: The cloud server (11) and the identity recognition module (10) are connected with each other, and the forehead area recognition module (12) is arranged at the front end of the terminal computer (5) and connected with the terminal computer (5).
5. The 5G-based thermal imaging monitoring device of claim 4, wherein: The inside of the protective shell (3) is provided with a limiting groove (13) at the upper end, and the lower end of the limiting groove (13) is provided with a rubber ball (14), and the rubber ball (14) is evenly distributed around the protective shell (3).
6. The 5G-based thermal imaging monitoring device of claim 1, wherein: The lower end of the connecting shell (2) is provided with a protective shell (3), the left end of the protective shell (3) is provided with a human body temperature measurement binocular camera (4), and the right end of the human body temperature measurement binocular camera (4) is provided with a terminal computer (5), and the human body temperature measurement binocular camera (4) and the terminal computer (5) are connected with each other, the protective shell (3) is provided with a protection mechanism, and the front end of the protective shell (3) is provided with a buffer gasket (6), and the rear end of the buffer gasket (6) is arranged at the front end of the human body temperature measurement binocular camera (4); 7. The 5G-based thermal imaging monitoring device of claim 6, wherein: The buffer mechanism comprises a movable block (16) slidably mounted in the movable rod (9), a buffer spring (17) arranged at the lower end of the movable rod (9) and the right side of the lower end of the movable block (16). The lower end of the buffer spring (17) is mounted in the lower end of the buffer shell (8), the lower end of the movable block (16) is fixedly provided with a second rope (18), and the lower end of the second rope (18) is fixedly arranged at the lower end of the connecting shell (2).
Citation Information
Patent Citations
Thermal imaging monitoring equipment
CN221127381U