Mounting structure of intelligent fusion terminal

Through the installation structure of the intelligent fusion terminal, using the box device, buffer mechanism and ventilation device, the equipment stability problems caused by cumbersome installation and environmental factors are solved, and fast installation, shock absorption and buffering, and effective heat dissipation are achieved, thereby improving the stability and service life of the equipment.

CN120751641APending Publication Date: 2025-10-03JIANGSU SUYUAN JIERUI TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202511109315.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-08
Publication Date
2025-10-03

AI Technical Summary

Technical Problem

The installation process of existing intelligent fusion terminals is cumbersome, resulting in low work efficiency, and is prone to functional failure and equipment damage in vibration, displacement and high temperature environments.

Method used

An installation structure for an intelligent fusion terminal is designed, including a box device, a buffer mechanism, a protective mechanism and a ventilation device. Through components such as a sliding frame, a guide rod and a ventilation shell, rapid installation, shock absorption and buffering, effective heat dissipation and protection are achieved.

Benefits of technology

It improves installation efficiency, ensures the physical stability and functional continuity of the equipment, extends the service life of the equipment, reduces maintenance costs, and avoids failures caused by vibration, displacement and high temperature.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120751641A_ABST
    Figure CN120751641A_ABST
Patent Text Reader

Abstract

The invention discloses a mounting structure of an intelligent fusion terminal, and relates to the technical field of electromechanical equipment mounting, and the mounting structure comprises a box body device. According to the mounting structure of the intelligent fusion terminal, through the design of the box body device, the connection of one side of the buffer mechanism with the sliding frame, and the sleeving of the sliding frame on the outer side of the guide rod in the sliding groove, the effect of quickly mounting equipment is achieved, the subsequent dismounting difficulty is reduced, and the box body frame body is used for being fixed on a stable object, so that the equipment is conveniently supported; the buffering mechanism is extruded in the process that the sliding frame slides on the guide rod, so that the damping and buffering effects are achieved, the stability of the equipment in the sliding process is guaranteed, the impact pressure is relieved through the protection mechanism in the process that the equipment is subjected to external impact, and therefore damage to the equipment is reduced; and the ventilation devices are arranged on the two sides of the box body shell, and air is supplied to the interior of the equipment through the ventilation devices, so that the ventilation and heat dissipation effects are achieved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of electromechanical equipment installation, and in particular to an installation structure of an intelligent fusion terminal. Background Art

[0002] An intelligent converged terminal is a comprehensive smart device that integrates multiple functional modules and enables data exchange and control across networks (such as communications networks, the Internet of Things, and the internet) and devices (such as smart homes, sensors, and servers). Simply put, it acts like an "intelligent hub," capable of receiving and processing various types of information and linking different devices to complete collaborative tasks. It is widely used in scenarios such as homes, industry, and urban management.

[0003] During the installation process of the existing intelligent fusion terminal, the installation method is relatively cumbersome, resulting in reduced work efficiency. Therefore, a new design was developed to address this situation. Summary of the Invention

[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: an installation structure of an intelligent fusion terminal, comprising a box device, a ventilation device is fixedly connected to one side of the outside of the box device; The cam is fixedly provided with a fixing bracket on one side of the outer side of the box frame, and a slide groove is provided on the outer side of the box frame, and a guide rod is fixedly connected to the bottom of the slide groove, and a sliding rack is slidably connected to the outer side of the guide rod. A protective mechanism is fixedly connected to the outer side of the sliding rack on one side of the sliding rack, and the box shell is used for storing and placing electronic components. One side of the buffer mechanism is connected to the sliding rack, and the sliding rack is sleeved on the outer side of the guide rod inside the slide groove, so as to achieve the effect of quickly installing equipment, reducing the difficulty of subsequent disassembly, ensuring the physical stability of the terminal, avoiding functional failure due to vibration and displacement, avoiding accidental collision, adapting to the scene environment, providing targeted protection, optimizing space and layout, adapting to the needs of multi-device coordination, facilitating later operation and maintenance, and reducing maintenance costs. The outer side of the protective mechanism is fixedly connected to the box shell away from the sliding rack, and the protective mechanism plays a role in reducing impact pressure during the process of the equipment being subjected to external impact, thereby reducing damage to the equipment and protecting the equipment. It has a certain protective effect. The outer side of the box shell is fixedly connected to the box door, and the outer side of the guide rod is slidably connected to the buffer mechanism. When the sliding frame slides on the guide rod, the buffer mechanism is squeezed to play a shock-absorbing and buffering role, slowing down the descent speed of the equipment, thereby ensuring the stability of the equipment during sliding, avoiding affecting the electronic components inside the equipment, reducing wear between equipment, and extending the service life of the equipment. The two sides of the outside of the box shell are fixedly connected to the outside of the ventilation device, and ventilation devices are provided on both sides of the box shell. Air is supplied to the inside of the equipment through the ventilation device to achieve the effect of ventilation and heat dissipation. The intelligent fusion terminal will continue to generate heat during operation. If the heat cannot be dissipated in time, it will directly destroy the stability of the hardware, shorten the service life, and even cause functional failure. Through air convection, the internal heat can be efficiently discharged, and the heat transfer is actively accelerated to ensure the stability of the terminal in complex scenarios, indirectly extend the life of the hardware, reduce maintenance costs, reduce the aging rate of components, and avoid sudden failures caused by high temperature.

[0005] Preferably, the protective mechanism includes a receiving plate, an outer side of the receiving plate is fixedly connected to the outer side of the sliding frame, an outer side of the receiving plate away from the sliding frame is fixedly connected to a first spring, an outer side of the first spring away from the receiving plate is fixedly connected to a protective plate, an inner side of the protective plate is slidably connected to the outer side of the receiving plate, and an outer side of the protective plate away from the first spring is fixedly connected to the outer side of the box shell. When external pressure impacts the device, the box shell controls the protective plate to drive the first spring to slide toward the receiving plate, squeezing and contracting the first spring, thereby playing a role of shock absorption and buffering, absorbing impact energy, reducing the impact force transmission strength, absorbing energy through physical deformation, extending the impact time, protecting the core components of the device, reducing structural damage, avoiding physical damage caused by rigid collision, reducing the risk of "secondary impact", maintaining the functional stability of the device after the impact, avoiding instantaneous power outages or data loss, and ensuring the continuity of precision operations.

[0006] Preferably, the buffer mechanism includes a supporting plate, and a sliding block is fixedly connected to one side of the outer side of the supporting plate. In the process of the sliding frame sliding on the guide rod, the sliding frame squeezes the sliding block, causing the sliding block to squeeze and contract the second spring, thereby playing a shock-absorbing and buffering role, alleviating the pressure generated by equipment installation, reducing the amplitude generated during the sliding process of equipment installation, improving the stability of the equipment, avoiding excessive sliding of the equipment, preventing impact on the operation of electronic components inside the equipment, protecting the core components of the equipment, reducing structural damage, avoiding physical damage caused by rigid collision, maintaining the functional stability of the equipment after impact, avoiding instantaneous power outages or data loss, and ensuring the continuity of precision operation. The bottom of the sliding block is fixedly connected to the second spring, and the outer side of the guide rod is sleeved with the second spring, and the bottom of the supporting plate is fixedly connected to the support frame, and the supporting plate is used to support the equipment and improve the stability of the equipment. The support frame fits into the outer side of the box frame during the sliding of the components, thereby reducing the sliding and shaking range of the components and ensuring smooth sliding of the equipment.

[0007] Preferably, the ventilation device includes a ventilation shell, and an air inlet is provided at the bottom of one side of the outside of the ventilation shell. The air flows into the ventilation shell from the air inlet, and then flows along the inner side of the ventilation shell to the air outlet to enter the inside of the box shell, so as to achieve the effect of ventilation and heat dissipation. The intelligent fusion terminal will continue to generate heat during operation. If the heat cannot be dissipated in time, it will directly destroy the stability of the hardware, shorten the service life, and even cause functional failure. Through air convection, the internal heat can be efficiently discharged, and the heat transfer is actively accelerated to ensure the stability of the terminal in complex scenarios, indirectly extend the hardware life, reduce maintenance costs, reduce the aging rate of components, and avoid sudden failures caused by high temperature. An air outlet is provided at the top of the outside of the ventilation shell away from the air inlet. The air flows in the ventilation shell, and the height difference is used to separate the "solid impurities" in the air flow, reduce pipe blockage and equipment wear, and the ventilation device is arranged on both sides of the box shell to form air convection, enhance heat dissipation efficiency, enhance heat dissipation effect, balance the humidity inside and outside the box, and prevent moisture accumulation.

[0008] Preferably, the bottom of the ventilation shell is fixedly connected to a discharge shell, and the air inlet and the air outlet are arranged on the upper and lower sides of the ventilation shell to form a height difference. The impurities in the air flow are reduced by the height difference for filtering and precipitation, and the impurities flow to the side of the discharge shell, thereby achieving the effect of discharging impurities. The side of the outside of the ventilation shell close to the air outlet is fixedly connected to a composite device, and the inner side of the ventilation shell is fixedly connected to a cleaning mechanism. The air outlet is set at a high position to avoid liquid from entering during the ventilation and heat dissipation process, thereby protecting the equipment. The cleaning mechanism is used to rub the inner side of the ventilation shell to achieve the effect of cleaning impurities on the surface of the components, reduce impurity precipitation, and avoid affecting the gas flow effect.

[0009] Preferably, the cleaning mechanism includes a guide rail, a connecting block slidably connected to the outer side of the guide rail, a connecting shaft fixedly connected between opposite surfaces of the connecting block, a cylindrical block rotatably connected to the outer side of the connecting shaft, and a brush fixedly connected to the outer side of the cylindrical block. The connecting block slides on the guide rail, and the connecting block controls the connecting shaft to drive the brush to rub the inner wall of the ventilation housing, thereby cleaning impurities on the inner wall of the equipment, thereby reducing impurity precipitation, avoiding excessive precipitation of impurities and dust, preventing blockage of holes in the inner wall of the equipment, and preventing the subsequent ventilation effect from being affected. The cleaned impurities are discharged outward from one side of the discharge housing.

[0010] Preferably, the composite device includes a composite shell, which guides and collects the airflow through the composite shell, reduces the dispersion of the airflow, improves the flow efficiency of the airflow, improves the internal heat dissipation efficiency of the equipment, and forces the hot air to be discharged, solves the "heat dissipation bottleneck", quickly replaces the internal air, solves the "environmental pollution" problem, and plays a certain role in moisture and condensation prevention, balances the internal and external air pressure, and protects the equipment structure and sealing. One side of the outside of the composite shell is fixedly connected to the outside of the ventilation shell, and the side of the outside of the composite shell away from the ventilation shell is fixedly connected to a ring frame, and the inner side of the ring frame is plugged into a fan, and the wind force generated by the fan is used to flush the inner wall of the ventilation shell, thereby achieving a cleaning effect, and the airflow is used to flush the surface of the brush, thereby reducing the precipitation of impurities and avoiding affecting the subsequent cleaning effect of the components.

[0011] Preferably, a grille cover is fixedly connected to the side of the composite shell outside close to the ventilation shell, and the grille cover plays a role in blocking external impurities from entering, preventing it from affecting the operation of electronic components inside the equipment, and playing a certain protective role for the equipment. A fixed frame is fixedly connected to the inner side of the grille cover. When the fan generates wind, the airflow pushes the friction mechanism to move on the receiving shaft toward the side of the grille cover, prompting the friction mechanism to dock with the holes of the grille cover, so that the wind drives the friction mechanism to rotate and rub the holes, thereby achieving the effect of cleaning foreign particles, thereby avoiding clogging of the holes and preventing affecting the airflow efficiency. The inner side of the fixed frame is fixedly connected to the receiving shaft, and the outer side of the receiving shaft is slidably connected to the friction mechanism. During the sliding process of the friction mechanism, the third spring is squeezed and contracted, and the third spring accumulates kinetic energy. When the fan stops rotating, the third spring rebounds and pushes the friction mechanism away from the holes of the grille cover, avoiding affecting the natural ventilation effect. A third spring is sleeved on the side of the receiving shaft outside close to the ventilation shell.

[0012] Preferably, the friction mechanism includes a connecting end, the inner side of the connecting end is slidingly connected to the outer side of the receiving shaft, the outer side of the connecting end is fixedly connected to a friction frame, the friction frame is made of composite material, has low density and certain structural strength, and is convenient for moving with the impact of airflow, the outer side of the friction frame is rotatably connected to a connecting shaft, the outer side of the connecting shaft is fixedly connected to a blade, and the outer side of the connecting shaft away from the blade is fixedly connected to a scraper, the wind force generated by the fan impacts the blade, and the blade drives the connecting shaft to rotate, so that the connecting shaft controls the scraper to rub the inner side of the grille cover hole, so as to achieve the effect of cleaning impurities on the inner wall of the component, avoid clogging of the inner wall of the hole after long-term operation, prevent affecting the subsequent airflow flow effect, and maintain normal operation of the equipment.

[0013] The present invention provides an installation structure for an intelligent converged terminal, which has the following beneficial effects: 1. The installation structure of the intelligent fusion terminal is designed with a box device. The box shell is used to store and place electronic components. One side of the buffer mechanism is connected to the sliding frame, and the sliding frame is placed on the outside of the guide rod inside the slide groove, so as to achieve the purpose of quickly installing the equipment, reduce the difficulty of subsequent disassembly, ensure the physical stability of the terminal, avoid functional failure due to vibration and displacement, avoid accidental collision, adapt to the scene environment, provide targeted protection, optimize space and layout, adapt to the needs of multi-device collaboration, facilitate later operation and maintenance, and reduce maintenance costs. The box frame is used to be fixed on a stable object to facilitate support for the equipment. When the sliding frame slides on the guide rod, the buffer mechanism is squeezed to play a shock-absorbing and buffering role, slowing down the descent speed of the equipment, thereby ensuring the stability of the equipment during sliding and avoiding affecting the equipment. The electronic components inside the equipment can be protected, reducing wear and tear between devices, thereby extending the service life of the equipment. Secondly, the protective mechanism can reduce the impact pressure when the equipment is subjected to external impact, thereby reducing damage to the equipment and providing a certain degree of protection for the equipment. Ventilation devices are provided on both sides of the box shell, and air is supplied to the inside of the equipment through the ventilation device to achieve the effect of ventilation and heat dissipation. The intelligent fusion terminal will continue to generate heat during operation. If the heat cannot be dissipated in time, it will directly destroy the stability of the hardware, shorten the service life, and even cause functional failure. Through air convection, the internal heat can be efficiently discharged, and the heat transfer is actively accelerated to ensure the stability of the terminal in complex scenarios, indirectly extending the life of the hardware, reducing maintenance costs, reducing the aging rate of components, and avoiding sudden failures caused by high temperature.

[0014] 2. The installation structure of the intelligent fusion terminal is designed with a buffer mechanism. During the sliding of the sliding frame on the guide rod, the sliding frame squeezes the sliding block, causing the sliding block to squeeze and contract the second spring, thereby playing a role of shock absorption and buffering, reducing the pressure generated by the equipment installation, reducing the amplitude generated during the sliding process of the equipment installation, improving the stability of the equipment, avoiding excessive sliding of the equipment, preventing the operation of electronic components inside the equipment, protecting the core components of the equipment, reducing structural damage, avoiding physical damage caused by rigid collisions, maintaining the functional stability of the equipment after impact, avoiding instantaneous power outages or data loss, and ensuring the continuity of precision operations. The load-bearing plate is used to support the equipment and improve the stability of the equipment. The support frame is attached to the outside of the box frame during the sliding of the components, thereby reducing the sliding and shaking range of the components and ensuring smooth sliding of the equipment.

[0015] 3. The installation structure of the intelligent fusion terminal is designed with a ventilation device. The airflow enters the interior of the ventilation shell from the air inlet, and then flows along the inner side of the ventilation shell to the air outlet and into the interior of the box shell, thereby achieving the effect of ventilation and heat dissipation. The intelligent fusion terminal will continue to generate heat during operation. If the heat cannot be dissipated in time, it will directly destroy the stability of the hardware, shorten the service life, and even cause functional failure. Through air convection, the internal heat is efficiently discharged, and the heat transfer is actively accelerated to ensure the stability of the terminal in complex scenarios, indirectly extend the hardware life, reduce maintenance costs, reduce the aging speed of components, and avoid sudden failures caused by high temperature. Secondly, the airflow flows in the ventilation shell, and the height difference separates the air in the airflow. "Solid impurities" reduce pipe blockage and equipment wear. Ventilation devices are set on both sides of the box shell to form air convection, enhance heat dissipation efficiency, enhance heat dissipation effect, balance the humidity inside and outside the box, and prevent moisture accumulation. The air inlet and outlet are set on the upper and lower sides of the ventilation shell to form a height difference. The impurities in the air flow are reduced by the height difference for filtering and precipitation, and the impurities flow to the side of the discharge shell to achieve the effect of discharging impurities. Secondly, the air outlet is set at a high position to avoid liquid from entering during the ventilation and heat dissipation process, thereby protecting the equipment. The inner side of the ventilation shell is rubbed by the cleaning mechanism to achieve the effect of cleaning impurities on the surface of the components, reduce impurity precipitation, and avoid affecting the gas flow effect.

[0016] Fourth, the installation structure of the intelligent fusion terminal, through the composite device design, guides and collects the airflow through the composite shell, reduces the dispersion of the airflow, improves the flow efficiency of the airflow, improves the internal heat dissipation efficiency of the equipment, and plays a role in forcibly exhausting hot air, solving the "heat dissipation bottleneck", quickly replacing the internal air, and solving the "environmental pollution" problem. The problem is that it plays a certain role in preventing moisture and condensation, balancing the internal and external air pressure, and protecting the equipment structure and sealing. Secondly, the wind force generated by the fan is used to flush the inner wall of the ventilation shell, thereby achieving a cleaning effect, and the airflow is used to flush the surface of the brush, thereby reducing the precipitation of impurities and avoiding affecting the subsequent cleaning effect of the components. When the fan generates wind force, the airflow pushes the friction mechanism to move on the side of the receiving axial grille cover, prompting the friction mechanism to dock with the holes of the grille cover, so that the wind force drives the friction mechanism to rotate and rub the holes, thereby achieving the effect of cleaning impurity particles, thereby avoiding clogging of the holes and preventing the airflow efficiency from being affected. During the sliding process of the friction mechanism, the third spring is squeezed and contracted, and the third spring accumulates kinetic energy. When the fan stops rotating, the third spring rebounds and pushes the friction mechanism away from the holes of the grille cover to avoid affecting the natural ventilation effect. The grille cover plays a role in blocking the entry of external impurities, preventing it from affecting the operation of electronic components inside the equipment, and playing a certain protective role for the equipment.

[0017] 5. The installation structure of the intelligent fusion terminal is designed through a friction mechanism. The friction frame is made of composite materials with low density and certain structural strength, which is convenient for moving with the impact of airflow. The wind force generated by the fan impacts the blades, and the blades drive the connecting shaft to rotate, so that the connecting shaft controls the scraper to rub the inner side of the grille cover hole, so as to achieve the effect of cleaning impurities on the inner wall of the component, avoid clogging of the inner wall of the hole after long-term operation, prevent affecting the subsequent airflow flow effect, and maintain normal operation of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is a schematic diagram of the external structure of the installation structure of the intelligent fusion terminal of the present invention; Figure 2 This is a schematic diagram of the installation structure of the intelligent fusion terminal of the present invention; Figure 3 Schematic diagram of the cross-sectional structure of the box device of the present invention; Figure 4 This is a schematic diagram of the protective mechanism structure of the present invention; Figure 5 This is a schematic structural diagram of the buffer mechanism of the present invention; Figure 6 Schematic diagram of the cross-sectional structure of the ventilation device of the present invention; Figure 7 This is a schematic diagram of the cleaning mechanism structure of the present invention; Figure 8 Schematic diagram of the cross-sectional structure of the composite device of the present invention; Figure 9 It is a structural schematic diagram of the friction mechanism of the present invention.

[0019] In the figure: 1. Box device; 2. Ventilation device; 11. Box frame; 12. Fixed bracket; 13. Slide; 14. Guide rod; 15. Sliding frame; 16. Protective mechanism; 17. Box shell; 18. Buffer mechanism; 19. Box door; 161. Protective plate; 162. First spring; 163. Attachment plate; 181. Loading plate; 182. Sliding block; 183. Second spring; 184. Support frame; 21. Ventilation shell; 22. Air inlet; 23. Air outlet; 24. Material shell; 25, cleaning mechanism; 26, composite device; 251, guide rail; 252, connecting block; 253, connecting shaft; 254, cylindrical block; 255, brush; 261, composite shell; 262, grille cover; 263, annular frame; 264, fan; 265, fixed frame; 266, receiving shaft; 267, third spring; 268, friction mechanism; 2681, connecting end; 2682, friction frame; 2683, connecting shaft; 2684, blade; 2685, scraper. DETAILED DESCRIPTION

[0020] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0021] The first embodiment, as Figures 1 to 5 As shown, the present invention provides a technical solution: an installation structure of an intelligent fusion terminal, comprising a box device 1, a ventilation device 2 is fixedly connected to one side of the outside of the box device 1; The box device 1 includes a box frame 11, and a fixed bracket 12 is fixedly connected to one side of the outside of the box frame 11. A slide groove 13 is opened on the outside of the box frame 11, and a guide rod 14 is fixedly connected to the bottom of the slide groove 13. The outside of the guide rod 14 is slidably connected to a sliding frame 15, and a protective mechanism 16 is fixedly connected to one side of the outside of the sliding frame 15. The side of the outside of the protective mechanism 16 away from the sliding frame 15 is fixedly connected to a box shell 17, and a box door 19 is fixedly connected to the outside of the box shell 17. The outside of the guide rod 14 is slidably connected to a buffer mechanism 18. The two sides of the outside of the box shell 17 are fixedly connected to the outside of the ventilation device 2. The box shell 17 is used to store and place electronic components. One side of the buffer mechanism 18 is connected to the sliding frame 15, and the sliding frame 15 is placed on the outside of the guide rod 14 inside the slide groove 13, so as to achieve the purpose of quickly installing the equipment, reduce the difficulty of subsequent disassembly, ensure the physical stability of the terminal, avoid functional failure due to vibration and displacement, avoid accidental collision, adapt to the scene environment, provide targeted protection, optimize space and layout, adapt to the needs of multi-device collaboration, facilitate later operation and maintenance, and reduce maintenance costs. The box frame 11 is used to be fixed on a stable object to facilitate support for the equipment. When the sliding frame 15 slides on the guide rod 14, the buffer mechanism 18 is squeezed to play a shock-absorbing and buffering role, slowing down the descent speed of the equipment, thereby ensuring the stability of the equipment during sliding and avoiding affecting the electrical inside the equipment. Sub-components reduce wear and tear between devices, thereby extending the service life of the equipment. Secondly, the protective mechanism 16 plays a role in reducing the impact pressure when the equipment is subjected to external impact, thereby reducing damage to the equipment and having a certain protective effect on the equipment. Ventilation devices 2 are provided on both sides of the box shell 17, and air is supplied to the inside of the equipment through the ventilation device 2 to achieve the effect of ventilation and heat dissipation. The intelligent fusion terminal will continue to generate heat during operation. If the heat cannot be dissipated in time, it will directly destroy the stability of the hardware, shorten the service life, and even cause functional failure. Through air convection, the internal heat is efficiently discharged, and the heat transfer is actively accelerated to ensure the stability of the terminal in complex scenarios, indirectly extend the life of the hardware, reduce maintenance costs, reduce the aging rate of components, and avoid sudden failures caused by high temperature.

[0022] The protective mechanism 16 includes a receiving plate 163. One side of the receiving plate 163 is fixedly connected to the outside of the sliding frame 15. A first spring 162 is fixedly connected to the side of the receiving plate 163 facing away from the sliding frame 15. A protective plate 161 is fixedly connected to the side of the first spring 162 facing away from the receiving plate 163. The inner side of the protective plate 161 is slidably connected to the outer side of the receiving plate 163. The side of the protective plate 161 facing away from the first spring 162 is fixedly connected to the outer side of the housing 17. When external pressure impacts the device, the housing 17 controls the protective plate 161 to slide the first spring 162 toward the receiving plate 163, compressing and contracting the first spring 162. This acts as a shock absorber, absorbing impact energy, reducing the intensity of impact force transmission, absorbing energy through physical deformation, and prolonging the impact duration. This protects the device's core components, minimizes structural damage, avoids physical damage caused by rigid collisions, reduces the risk of "secondary impacts," maintains the device's functional stability after an impact, prevents momentary power outages or data loss, and ensures the continuity of precise operations.

[0023] The buffer mechanism 18 includes a supporting plate 181, a sliding block 182 is fixedly connected to one side of the outer side of the supporting plate 181, a second spring 183 is fixedly connected to the bottom of the sliding block 182, the second spring 183 is sleeved on the outer side of the guide rod 14, and a support frame 184 is fixedly connected to the bottom of the supporting plate 181. During the sliding process of the sliding frame 15 on the guide rod 14, the sliding frame 15 squeezes the sliding block 182, causing the sliding block 182 to squeeze and contract the second spring 183, thereby playing a role of shock absorption and buffering, reducing the pressure generated by the equipment installation, reducing the amplitude generated during the sliding process of the equipment installation, improving the stability of the equipment, avoiding excessive sliding of the equipment, preventing the operation of electronic components inside the equipment from being affected, protecting the core components of the equipment, reducing structural damage, avoiding physical damage caused by rigid collisions, maintaining the functional stability of the equipment after impact, avoiding instantaneous power outages or data loss, and ensuring the continuity of precision operations. The load-bearing plate 181 is used to support the equipment and improve the stability of the equipment. The support frame 184 is attached to the outside of the box frame 11 during the sliding of the components, thereby reducing the sliding and shaking range of the components and ensuring smooth sliding of the equipment.

[0024] The second embodiment, based on the first embodiment, see Figures 6 and 7As shown, the ventilation device 2 includes a ventilation housing 21. An air inlet 22 is defined at the bottom of the exterior side of the ventilation housing 21, and an air outlet 23 is defined at the top of the exterior side of the ventilation housing 21, away from the air inlet 22. Air flows from the air inlet 22 into the ventilation housing 21, then flows along the interior side of the ventilation housing 21 toward the air outlet 23 and into the interior of the housing 17, thereby achieving ventilation and heat dissipation. The intelligent converged terminal continuously generates heat during operation. If this heat cannot be dissipated promptly, it will directly damage hardware stability, shorten service life, and even cause functional failure. Through air convection, internal heat is efficiently dissipated, actively accelerating heat transfer, ensuring terminal stability in complex scenarios, indirectly extending hardware life, reducing maintenance costs, slowing component aging, and preventing sudden failures caused by high temperatures. Furthermore, air flows through the ventilation housing 21, separating "solid impurities" in the airflow through the height difference, reducing pipe blockage and equipment wear. The ventilation device 2 is arranged on both sides of the housing 17 to create air convection, enhance heat dissipation efficiency, improve heat dissipation effects, balance humidity inside and outside the housing, and prevent moisture accumulation.

[0025] The bottom of the ventilation shell 21 is fixedly connected to the discharge shell 24, the side of the outside of the ventilation shell 21 near the air outlet 23 is fixedly connected to the composite device 26, and the inside of the ventilation shell 21 is fixedly connected to the cleaning mechanism 25. The air inlet 22 and the air outlet 23 are arranged on the upper and lower sides of the ventilation shell 21 to form a height difference. The height difference reduces the impurities in the air flow for filtration and precipitation, and makes the impurities flow to the side of the discharge shell 24, thereby achieving the effect of discharging impurities. Secondly, the air outlet 23 is set at a high position to prevent liquid from entering during the ventilation and heat dissipation process, thereby protecting the equipment. The cleaning mechanism 25 rubs the inside of the ventilation shell 21 to clean the impurities on the surface of the components, reduce the precipitation of impurities, and avoid affecting the gas flow effect.

[0026] The cleaning mechanism 25 includes a guide rail 251, with a connecting block 252 slidably connected to the outside of the guide rail 251. A connecting shaft 253 is fixedly connected between the opposing surfaces of the connecting block 252. A cylindrical block 254 is rotatably connected to the outside of the connecting shaft 253, and a brush 255 is fixedly connected to the outside of the cylindrical block 254. The connecting block 252 slides on the guide rail 251, controlling the connecting shaft 253 to drive the brush 255 to rub against the inner wall of the ventilation housing 21, thereby cleaning impurities from the inner wall of the equipment. This reduces impurity precipitation, prevents excessive accumulation of impurities and dust, and prevents clogging of the holes in the inner wall of the equipment, thereby preventing subsequent ventilation effects. Cleaned impurities are discharged outward from the side of the discharge housing 24.

[0027] The third embodiment, based on the first and second embodiments, see Figures 8 and 9As shown, composite device 26 includes a composite housing 261. One side of composite housing 261 is fixedly connected to the outside of ventilation housing 21. An annular frame 263 is fixedly connected to the side of composite housing 261 away from ventilation housing 21. A fan 264 is plugged into the inner side of annular frame 263. Composite housing 261 guides and collects airflow, reduces air dispersion, improves airflow efficiency, and improves internal heat dissipation efficiency of the device. It forces hot air out, resolves the "heat dissipation bottleneck," quickly replaces internal air, and solves the "environmental pollution" problem. It also provides a certain degree of moisture and condensation resistance, balances internal and external air pressure, and protects the device structure and sealing. Secondly, the wind force generated by fan 264 flushes the inner wall of ventilation housing 21, thereby achieving a cleaning effect. The airflow also flushes the surface of brush 255, thereby reducing impurity precipitation and avoiding affecting the subsequent cleaning effect of components.

[0028] A grille cover 262 is fixedly connected to the side of the composite shell 261 outside the ventilation shell 21, a fixing frame 265 is fixedly connected to the inner side of the grille cover 262, a receiving shaft 266 is fixedly connected to the inner side of the fixing frame 265, a friction mechanism 268 is slidably connected to the outer side of the receiving shaft 266, and a third spring 267 is sleeved on the side of the receiving shaft 266 outside the ventilation shell 21. When the fan 264 generates wind, the airflow pushes the friction mechanism 268 to move on the receiving shaft 266 toward the side of the grille cover 262, prompting the friction mechanism 268 to dock with the holes of the grille cover 262, so that the wind drives the friction mechanism 268 to rotate and rub the holes, thereby achieving the effect of cleaning foreign particles, thereby avoiding clogging of the holes and preventing the air flow efficiency from being affected. During the sliding process of the friction mechanism 268, the third spring 267 is squeezed and contracted, and the third spring 267 accumulates kinetic energy. When the fan 264 stops rotating, the third spring 267 rebounds and pushes the friction mechanism 268 away from the holes of the grille cover 262 to avoid affecting the natural ventilation effect. The grille cover 262 plays a role in blocking the entry of external impurities, preventing it from affecting the operation of the electronic components inside the equipment, and playing a certain protective role for the equipment.

[0029] Friction mechanism 268 includes a connecting end 2681, the inner side of which is slidably connected to the outer side of receiving shaft 266. A friction frame 2682 is fixedly connected to the outer side of connecting end 2681. A connecting shaft 2683 is rotatably connected to the outer side of friction frame 2682. A paddle 2684 is fixedly connected to the outer side of connecting shaft 2683. A scraper 2685 is fixedly connected to the outer side of connecting shaft 2683, away from paddle 2684. Friction frame 2682 is made of a composite material with low density and a certain structural strength, allowing it to move with the impact of airflow. The wind force generated by fan 264 impacts paddle 2684, which drives connecting shaft 2683 to rotate, causing connecting shaft 2683 to control scraper 2685 to rub the inner side of the grille cover 262 holes. This cleans impurities from the inner wall of the component, preventing blockage of the inner wall after prolonged operation, preventing subsequent airflow from being affected, and maintaining normal operation of the equipment.

[0030] When in use, the box shell 17 is used to store and place electronic components. One side of the buffer mechanism 18 is connected to the sliding frame 15, and the sliding frame 15 is placed on the outside of the guide rod 14 inside the slide groove 13, so as to achieve the purpose of quickly installing the equipment, reduce the difficulty of subsequent disassembly, ensure the physical stability of the terminal, avoid functional failure due to vibration and displacement, avoid accidental collision, adapt to the scene environment, provide targeted protection, optimize space and layout, adapt to the needs of multi-device collaboration, facilitate later operation and maintenance, and reduce maintenance costs. The box frame 11 is used to be fixed on a stable object to facilitate support for the equipment. When the sliding frame 15 slides on the guide rod 14, the buffer mechanism 18 is squeezed to play a shock-absorbing and buffering role, slowing down the descent speed of the equipment, thereby ensuring the stability of the equipment during sliding and avoiding affecting the internal structure of the equipment. electronic components, reducing wear and tear between devices, thereby extending the service life of the equipment. Secondly, the protective mechanism 16 plays a role in reducing the impact pressure when the equipment is subjected to external impact, thereby reducing damage to the equipment and having a certain protective effect on the equipment. Ventilation devices 2 are provided on both sides of the box shell 17, and air is supplied to the inside of the equipment through the ventilation device 2 to achieve the effect of ventilation and heat dissipation. The intelligent fusion terminal will continue to generate heat during operation. If the heat cannot be dissipated in time, it will directly destroy the stability of the hardware, shorten the service life, and even cause functional failure. Through air convection, the internal heat is efficiently discharged, and the heat transfer is actively accelerated to ensure the stability of the terminal in complex scenarios, indirectly extend the life of the hardware, reduce maintenance costs, reduce the aging rate of components, and avoid sudden failures caused by high temperature.

[0031] Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without making creative efforts should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention shall be implemented in accordance with conventional means in the field unless otherwise specified or limited.

Claims

1. An installation structure of an intelligent fusion terminal, characterized in that: It comprises a box device (1), wherein a ventilation device (2) is fixedly connected to one side of the outside of the box device (1); The box device (1) comprises a box frame (11), a fixed bracket (12) is fixedly connected to one side of the outside of the box frame (11), a slide groove (13) is provided on the outside of the box frame (11), a guide rod (14) is fixedly connected to the bottom of the slide groove (13), a sliding frame (15) is slidably connected to the outside of the guide rod (14), a protective mechanism (16) is fixedly connected to one side of the outside of the sliding frame (15), a box shell (17) is fixedly connected to the side of the outside of the protective mechanism (16) away from the sliding frame (15), a box door (19) is fixedly connected to the outside of the box shell (17), a buffer mechanism (18) is slidably connected to the outside of the guide rod (14), and both sides of the outside of the box shell (17) are fixedly connected to the outside of the ventilation device (2).

2. The installation structure of the intelligent converged terminal according to claim 1, characterized in that: The protective mechanism (16) includes a receiving plate (163), an outer side of the receiving plate (163) is fixedly connected to the outer side of the sliding frame (15), an outer side of the receiving plate (163) away from the sliding frame (15) is fixedly connected to a first spring (162), an outer side of the first spring (162) away from the receiving plate (163) is fixedly connected to a protective plate (161), an inner side of the protective plate (161) is slidably connected to the outer side of the receiving plate (163), and an outer side of the protective plate (161) away from the first spring (162) is fixedly connected to the outer side of the box shell (17).

3. The installation structure of the intelligent converged terminal according to claim 1, characterized in that: The buffer mechanism (18) comprises a supporting plate (181), a sliding block (182) is fixedly connected to one side of the outside of the supporting plate (181), a second spring (183) is fixedly connected to the bottom of the sliding block (182), the second spring (183) is sleeved on the outside of the guide rod (14), and a support frame (184) is fixedly connected to the bottom of the supporting plate (181).

4. The installation structure of the intelligent converged terminal according to claim 1, characterized in that: The ventilation device (2) comprises a ventilation shell (21), an air inlet (22) is provided at the bottom of an external side of the ventilation shell (21), and an air outlet (23) is provided at the top of an external side of the ventilation shell (21) away from the air inlet (22).

5. The installation structure of the intelligent converged terminal according to claim 4, characterized in that: The bottom of the ventilation shell (21) is fixedly connected to a discharge shell (24), the outside of the ventilation shell (21) near the air outlet (23) is fixedly connected to a composite device (26), and the inside of the ventilation shell (21) is fixedly connected to a cleaning mechanism (25).

6. The installation structure of the intelligent converged terminal according to claim 5, characterized in that: The cleaning mechanism (25) comprises a guide rail (251), the outer side of the guide rail (251) is slidably connected to a connecting block (252), a connecting shaft (253) is fixedly connected between opposite surfaces of the connecting block (252), the outer side of the connecting shaft (253) is rotatably connected to a columnar block (254), and the outer side of the columnar block (254) is fixedly connected to a brush (255).

7. The installation structure of the intelligent converged terminal according to claim 5, characterized in that: The composite device (26) comprises a composite shell (261), one side of the outside of the composite shell (261) is fixedly connected to the outside of the ventilation shell (21), an annular frame (263) is fixedly connected to the side of the outside of the composite shell (261) away from the ventilation shell (21), and a fan (264) is plugged into the inside of the annular frame (263).

8. The installation structure of the intelligent converged terminal according to claim 7, characterized in that: A grille cover (262) is fixedly connected to the side of the composite shell (261) close to the ventilation shell (21), a fixing frame (265) is fixedly connected to the inside of the grille cover (262), a receiving shaft (266) is fixedly connected to the inside of the fixing frame (265), a friction mechanism (268) is slidably connected to the outside of the receiving shaft (266), and a third spring (267) is sleeved on the side of the receiving shaft (266) close to the ventilation shell (21).

9. The installation structure of the intelligent converged terminal according to claim 8, characterized in that: The friction mechanism (268) includes a connecting end (2681), the inner side of the connecting end (2681) is slidably connected to the outer side of the receiving shaft (266), the outer side of the connecting end (2681) is fixedly connected to a friction frame (2682), the outer side of the friction frame (2682) is rotatably connected to a connecting shaft (2683), one side of the outside of the connecting shaft (2683) is fixedly connected to a paddle (2684), and the side of the outside of the connecting shaft (2683) away from the paddle (2684) is fixedly connected to a scraper (2685).