A secondary fusion type intelligent ring network box with state sensing system

CN122436839BActive Publication Date: 2026-09-04ZHEJIANG NANTENG ELECTRIC
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Patent Information

Application Number
CN202610912478.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2026-06-24
Publication Date
2026-09-04
Estimated Expiration
2046-06-24

AI Technical Summary

Technical Problem

[0005]本发明的目的在于提供一种具有状态感知系统的一二次融合型智能环网箱,以解决上述背景技术提出的问题,本发明技术方案针对现有技术解决方案过于单一的技术问题,提供了显著不同于现有技术的解决方案

Benefits of technology

[0016]1、该发明,设置有丝杆、移动块、导风壳、风琴罩、第二散热风扇、出风孔和温度传感器,通过温度传感器持续采集箱内温度数据,当检测到某一区域温度超过预设阈值时,启动同步电机带动丝杆同步转动,带动导风壳移动至该区域,使得出风孔对准热点区域,随后第二散热风扇将箱体外的冷却气流经防尘网、进风腔和导风腔吸入导风壳内部,再通过导风壳表面开设的若干组均匀分布的出风孔将冷却气流定向吹送至热点区域,实现热点区域的集中散热,解决传统固定式散热结构,导致的热量分配不均、局部过热的问题。

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Abstract

The application discloses a primary and secondary fusion type intelligent ring network box with a state sensing system and relates to the technical field of ring network boxes.The ring network box comprises a box body, a box door is rotationally connected to the front side of the box body through a hinge, air guide cavities are formed in the two sides of the rear end of the box body, a first heat dissipation fan is installed on the inner wall of the bottom end of the air guide cavity on the right side of the box body, a vertical through groove is formed on the inner wall of the box body corresponding to the left side opening of the air guide shell, the loading area in the box body is connected with the air guide cavity through the through groove, an air organ cover is installed in the through groove and located on the upper and lower ends of the left side of the air guide shell, and air outlet holes are formed in the surface of the side of the air guide shell facing the inside of the box body, so that hot air can uniformly cover the surface of the dustproof net, water vapor can be quickly evaporated, water vapor can be effectively prevented from being retained, the moisture resistance and humidity resistance of the ring network box are remarkably improved, concentrated heat dissipation of hot spot areas is realized, and the problems of uneven heat distribution and local overheating caused by the traditional fixed heat dissipation structure are solved.
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Description

Technical Field

[0001] This invention relates to the field of ring network box technology, specifically to a primary and secondary integrated intelligent ring network box with a state perception system. Background Technology

[0002] With the continuous advancement of smart grid construction, integrated primary and secondary intelligent ring main units, as key power distribution equipment at the end of the distribution network, are widely used in complex environments such as outdoor and semi-underground locations. They undertake important functions such as power distribution, fault isolation, and intelligent monitoring. Compared with traditional ring main units, integrated primary and secondary intelligent ring main units integrate a large number of components such as primary switches, electronic transformers, secondary protection and control, communication modules, and multi-parameter sensors. The high-density integration of components leads to a significant increase in the heat load inside the cabinet and a substantial increase in heat dissipation pressure.

[0003] The heat dissipation structure of existing integrated primary and secondary intelligent ring network boxes mostly adopts a fixed design, which usually relies on airflow circulation in a fixed direction to achieve overall heat dissipation inside the cabinet. Due to the differences in power and arrangement of components inside the cabinet, hot spots with high local temperatures are easily formed. The fixed heat dissipation structure is not convenient for targeted heat dissipation of these hot spots, resulting in unreasonable distribution of heat dissipation energy. At the same time, ring network boxes often operate in humid and dusty outdoor environments, making it easy for dust and moisture to accumulate on the surface of the dustproof mesh. During heat dissipation, moisture may be drawn into the ring network box, causing the components inside the ring network box to become damp.

[0004] To address the aforementioned issues, innovative designs are urgently needed based on existing approaches. Summary of the Invention

[0005] The purpose of this invention is to provide a primary and secondary integrated intelligent ring network box with a state perception system to solve the problems mentioned in the background. The technical solution of this invention addresses the problem that the existing technical solutions are too simplistic and provides a solution that is significantly different from the existing technology.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a primary and secondary fusion intelligent ring network box with a state perception system, comprising a box body, a door rotatably connected to the front side of the box body via a hinge, air guide cavities on both sides of the rear end of the box body, a first cooling fan installed on the inner wall of the bottom end of the right air guide cavity, a heat dissipation component installed at the rear end of the box body, an air inlet cavity opened on the side of the left air guide cavity away from the first cooling fan and connected to the left air guide cavity of the box body, the air inlet cavity being connected to the outside of the box body, and a dustproof and dehumidification mechanism installed inside the air inlet cavity;

[0007] The heat dissipation assembly includes lead screws rotatably connected to the inner walls on both sides of the rear end of the housing. A movable block is sleeved on the surface of the lead screw, and an air guide shell is fixedly connected to the surface of the movable block. The left side surface of the air guide shell is tightly attached to the inner wall of the housing. A through slot is vertically opened on the inner wall of the housing corresponding to the left opening of the air guide shell. The loading area inside the housing is connected to the air guide cavity through the through slot. Bellows covers are installed at the upper and lower ends of the left side of the air guide shell in the through slot. A second cooling fan is installed on the inner wall of the left side of the air guide shell. An air outlet is opened on the side surface of the air guide shell facing the inside of the housing.

[0008] Preferably, the dustproof and dehumidification mechanism includes dehumidification chambers located on both sides of the air inlet chamber, which are connected to both sides of the air inlet chamber. A movable frame is slidably positioned within the dehumidification chamber and the air inlet chamber. Sealing rods are fixedly connected to the side ends and the middle of the movable frame, dividing it into two independent areas. Dustproof nets are installed in both independent areas. Mounting plates are fixedly connected to the inner walls of both sides of the dehumidification chamber, located behind the dustproof nets. Air guide vanes are rotatably connected to the opposing surfaces of the mounting plates. Limiting rods are provided on the side of the mounting plate away from the air guide vanes. Two sets of limiting rods are provided on the surface of the mounting plate; the left limiting rod is fixedly connected to the mounting plate, and the right limiting rod slides vertically on the surface of the mounting plate. A rotating shaft on one side of the air guide vanes extends between the two sets of limiting rods and is fixedly connected to a crossbar. The two ends of the crossbar are rotatably connected within grooves on the opposing surfaces of the two sets of limiting rods. A vibration assembly is installed on the top of the movable frame.

[0009] Preferably, the vibration assembly includes a protrusion fixedly connected to the top of the movable frame, a housing fixedly connected to the inner wall of the dehumidification chamber above the movable frame, a striking rod slidingly limited inside the housing, a spring fixedly connected to one end of the striking rod inside the housing, and the other end of the spring fixedly connected to the inner wall of the housing.

[0010] Preferably, the lead screw is driven by a synchronous motor installed on the top of the housing, the moving block is threadedly connected to the lead screw, several sets of air outlets are evenly distributed on the surface of the air guide shell, the left opening of the air outlet is set as a trumpet-shaped structure, and a temperature sensor is installed on the top surface of the air guide shell.

[0011] Preferably, the movable frame is driven by an electric push rod installed on the rear surface of the housing. When the movable frame moves into position, the sealing rod can seal the connection between the dehumidification chamber and the air inlet chamber.

[0012] Preferably, the air guide blades are evenly arranged in several groups from top to bottom on the opposite surface of the mounting plate, and a flexible brush is fixedly connected to one end of each group of air guide blades facing the dustproof net.

[0013] Preferably, the limiting rod on the right end surface of the mounting plate is driven by an electric push rod installed on the inner wall of the top of the dehumidification chamber. An air duct is installed in the cavity at the bottom of the box. The right end of the air duct is connected to the air guide cavity on the right side of the box, and the left end of the air duct is connected to the dehumidification chambers on both sides of the air inlet cavity. An air outlet is installed on the side wall at the top of the dehumidification chamber.

[0014] Preferably, five sets of protrusions are provided at the top of the movable frame, and the five sets of protrusions are configured as isosceles trapezoidal structures, with the end of the striking rod abutting against the surface of the protrusion.

[0015] Compared with the prior art, the beneficial effects of the present invention are:

[0016] 1. This invention includes a lead screw, a moving block, an air guide shell, a bellows cover, a second cooling fan, an air outlet, and a temperature sensor. The temperature sensor continuously collects temperature data inside the chamber. When the temperature in a certain area exceeds a preset threshold, a synchronous motor is activated to drive the lead screw to rotate synchronously, moving the air guide shell to that area so that the air outlet is aligned with the hot spot. Subsequently, the second cooling fan draws the cooling airflow from outside the chamber into the air guide shell through the dust filter, air inlet, and air guide cavity. The cooling airflow is then directed to the hot spot area through several evenly distributed air outlets on the surface of the air guide shell, achieving concentrated heat dissipation in the hot spot area and solving the problems of uneven heat distribution and localized overheating caused by traditional fixed heat dissipation structures.

[0017] 2. This invention includes a dehumidification chamber, a movable frame, a dustproof net, a mounting plate, guide vanes, a limiting rod, and a crossbar. When dehumidification of the dustproof net is required, an electric push rod installed at the rear of the housing pulls the movable frame to move, moving the dustproof net on one side of the movable frame into the dehumidification chamber. After the movable frame is in place, the sealing rod can close the communication channel between the dehumidification chamber and the air inlet chamber, realizing the switching and isolation between the working area and the clean area. While the movable frame moves, its top protrusion moves synchronously with the movable frame, intermittently pushing and striking the rod to achieve continuous knocking and vibration of the movable frame, causing the dust on the dustproof net to fall off. The hot airflow inside the housing passes through the first... The cooling fan enters the air duct through the air guide cavity on the right side of the enclosure, and then flows into the two dehumidification chambers. The airflow is evenly guided by the air guide blades and blows onto the surface of the dust filter. The circulating hot air inside the enclosure dries the dust filter evenly, preventing moisture retention. The air outlet at the top of the dehumidification chamber can expel the exhaust gas carrying moisture and dust from the enclosure. The precise movement of the moving frame accurately delivers the dust filter into the dehumidification chamber. With the help of the sealing rod, the chamber is isolated, allowing the hot air to be concentrated on the dust filter. Combined with the angle adjustment of the air guide blades, the hot air can evenly cover the dust filter, quickly evaporate the moisture on the surface of the dust filter, effectively prevent moisture retention, and significantly improve the moisture resistance of the ring mesh enclosure. Attached Figure Description

[0018] Figure 1This is a schematic diagram of the overall structure of the present invention;

[0019] Figure 2 This is a schematic diagram of the overall rear-end region structure of the present invention;

[0020] Figure 3 For the present invention Figure 2 Enlarged schematic diagram of the structure at point A in the middle;

[0021] Figure 4 This is a schematic cross-sectional view of the overall front structure of the present invention;

[0022] Figure 5 This is a schematic cross-sectional view of the overall side structure of the present invention;

[0023] Figure 6 For the present invention Figure 5 Enlarged schematic diagram of the structure at point B;

[0024] Figure 7 This is a partially enlarged schematic diagram of the rear-end region structure of the present invention;

[0025] Figure 8 This is a schematic diagram of the moving block and air guide shell structure of the present invention;

[0026] Figure 9 This is a schematic diagram of the wind guide blade structure of the present invention.

[0027] In the diagram: 1. Cabinet; 2. Cabinet door; 3. Air guide cavity; 4. First cooling fan; 5. Air inlet cavity; 61. Lead screw; 62. Moving block; 63. Air guide shell; 64. Bellows cover; 65. Second cooling fan; 66. Air outlet; 71. Dehumidification cavity; 72. Moving frame; 73. Dustproof net; 74. Mounting plate; 75. Air guide blades; 76. Limiting rod; 77. Crossbar; 781. Protrusion; 782. Receiving shell; 783. Striking rod; 8. Flexible brush; 9. Air duct; 10. Air outlet; 11. Temperature sensor. Detailed Implementation

[0028] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0029] Please see Figures 1-8This invention provides a technical solution for an integrated primary and secondary intelligent ring network box with a state perception system: An integrated primary and secondary intelligent ring network box with a state perception system includes a box body 1. The front side of the box body 1 is rotatably connected to a door 2 via a hinge. Air guide cavities 3 are opened on both sides of the rear end of the box body 1. A first cooling fan 4 is installed on the inner wall of the bottom end of the right air guide cavity 3 of the box body 1. A heat dissipation component is installed at the rear end of the box body 1. An air inlet cavity 5 is opened on the side of the left air guide cavity 3 of the box body 1 away from the first cooling fan 4 and is connected to the left air guide cavity 3 of the box body 1. The air inlet cavity 5 is connected to the outside of the box body 1. A dustproof and dehumidification mechanism is installed inside the air inlet cavity 5.

[0030] The heat dissipation assembly includes a lead screw 61 rotatably connected to the inner walls of both sides of the rear end of the housing 1. A movable block 62 is fitted on the surface of the lead screw 61. An air guide shell 63 is fixedly connected to the surface of the movable block 62. The left side surface of the air guide shell 63 is tightly attached to the inner wall of the housing 1. A through slot is vertically opened on the inner wall of the housing 1 corresponding to the left opening of the air guide shell 63. The loading area inside the housing 1 is connected to the air guide cavity 3 through the through slot. Bellows covers 64 are installed at the upper and lower ends of the left side of the air guide shell 63 in the through slot. A second cooling fan 65 is installed on the left inner wall of the air guide shell 63. An air outlet 66 is opened on the side surface of the air guide shell 63 facing the interior of the housing 1. The lead screw 61 is driven by a synchronous motor installed on the top of the housing 1. The movable block 62 is threadedly connected to the lead screw 61. Several sets of air outlets 66 are evenly opened on the surface of the air guide shell 63. The left opening of the air outlet 66 is set as a trumpet-shaped structure. A temperature sensor 11 is installed on the top surface of the air guide shell 63.

[0031] Driven by the rotation of the lead screw 61, the moving block 62 moves up and down at a constant speed along the lead screw 61, thereby driving the air guide shell 63 to move synchronously until the air outlet 66 on the surface of the air guide shell 63 is aligned with the hot spot area, completing the precise positioning of the heat dissipation component. After the air guide shell 63 moves into place, the second cooling fan 65 on the inner wall of the left side of the air guide shell 63 starts, drawing the cooling airflow from the left air guide cavity 3 into the air guide shell 63, and then directing the cooling airflow to the hot spot area through several sets of evenly distributed air outlets 66 opened on the inner surface of the housing 1.

[0032] In one embodiment of the present invention, the dustproof and dehumidification mechanism includes dehumidification chambers 71 located on both sides of the air inlet chamber 5. The dehumidification chambers 71 are connected to both sides of the air inlet chamber 5. A movable frame 72 is slidably limited inside the dehumidification chambers 71 and the air inlet chamber 5. A sealing rod is fixedly connected to the side end and the middle of the movable frame 72. The sealing rod divides the movable frame 72 into two independent areas. A dustproof net 73 is installed in the two independent areas. An installation plate 74 is fixedly connected to the inner wall of both sides of the dehumidification chamber 71 and to the area behind the dustproof net 73. A guide vane 75 is rotatably connected to the opposite surface of the installation plate 74. A limiting rod 76 is provided on the side surface of the mounting plate 74 away from the air guide blade 75. Two sets of limiting rods 76 are provided on the surface of the mounting plate 74. The left limiting rod 76 is fixedly connected to the mounting plate 74, and the right limiting rod 76 is vertically limited and slidable on the surface of the mounting plate 74. The rotating shaft on one side of the air guide blade 75 extends between the two sets of limiting rods 76 and is fixedly connected to a crossbar 77. The two ends of the crossbar 77 are located in the grooves opened on the opposite surfaces of the two sets of limiting rods 76 and are rotatably connected to the limiting rod 76 on the right surface of the mounting plate 74. The crossbar 77 is driven by an electric push rod installed on the inner wall of the top of the dehumidification chamber 71.

[0033] An air duct 9 is installed in the cavity at the bottom of the housing 1. The right end of the air duct 9 is connected to the air guide cavity 3 on the right side of the housing 1. The left end of the air duct 9 is connected to the dehumidification cavities 71 on both sides of the air inlet cavity 5. An air outlet 10 is installed on the top side wall of the dehumidification cavity 71. Several sets of air guide blades 75 are evenly arranged from top to bottom on the opposite surface of the mounting plate 74. A flexible brush 8 is fixedly connected to one end of the several sets of air guide blades 75 facing the dustproof net 73. The moving frame 72 is driven by an electric push rod installed on the rear surface of the housing 1. When the moving frame 72 moves into place, the sealing rod can seal the connection between the dehumidification cavity 71 and the air inlet cavity 5. A vibration component is installed on the top of the moving frame 72.

[0034] The electric push rod pulls the moving frame 72 to move horizontally along the limiting track between the air inlet cavity 5 and the dehumidification cavity 71, accurately sending the dustproof net 73 on one side of the surface of the moving frame 72 into the dehumidification cavity 71, while the dustproof net 73 on the other side remains in the air inlet cavity 5 for continued protection. When the moving frame 72 moves to the preset position, the sealing rods on its side and middle are simultaneously in place, sealing the connection between the dehumidification cavity 71 and the air inlet cavity 5, and isolating the air intake filtration working area from the dehumidification and cleaning area of ​​the dustproof net 73.

[0035] After being evenly distributed through the air duct 9, the hot airflow simultaneously enters the two dehumidification chambers 71. The hot airflow entering the dehumidification chamber 71 is first dispersed into multiple uniform airflows under the guidance of the air guide vanes 75, and then blows steadily onto the surface of the dustproof net 73 located in the dehumidification chamber 71. The temperature advantage of the circulating hot air in the cabinet is used to heat and evaporate the water vapor on the surface of the dustproof net 73, thereby achieving automatic air drying of the dustproof net 73.

[0036] In one embodiment of the present invention, the vibration assembly includes a protrusion 781 fixedly connected to the top of the movable frame 72. A housing 782 is fixedly connected to the inner wall of the dehumidification chamber 71 above the movable frame 72. A striking rod 783 is slidably limited inside the housing 782. A spring is fixedly connected to one end of the striking rod 783 inside the housing 782. The other end of the spring is fixedly connected to the inner wall of the housing 782. Five sets of protrusions 781 are arranged at the top of the movable frame 72. The five sets of protrusions 781 are configured as isosceles trapezoidal structures. The end of the striking rod 783 abuts against the surface of the protrusions 781.

[0037] As the movable frame 72 moves, the five sets of isosceles trapezoidal protrusions 781 fixed at its top also move horizontally. During the displacement, the protrusions 781 intermittently push the striking rod 783 that limits the sliding inside the housing 782. When the protrusions 781 push the striking rod 783, the striking rod 783 retracts into the housing 782 and compresses its internal spring to store elastic potential energy. When the protrusions 781 move away from the end of the striking rod 783, the spring releases the elastic potential energy and pushes the striking rod 783 to quickly return to its original position. The end of the striking rod 783 strikes the top of the movable frame 72, generating a uniform and slight vibration. This vibration is synchronously transmitted through the movable frame 72 to the dustproof net 73 fixed on it, causing the dust and ash adhering to the surface of the dustproof net 73 to fall off under the action of vibration.

[0038] Working principle: When the temperature sensor 11 detects that the temperature in a certain area exceeds the preset threshold, the synchronous motor installed on the top of the control box 1 drives the lead screw 61, which is rotatably connected to the inner walls on both sides of the rear end of the control box 1, to rotate synchronously. Since the moving block 62 and the lead screw 61 are threadedly connected, under the driving force of the rotation of the lead screw 61, the moving block 62 moves up and down at a constant speed along the lead screw 61, thereby driving the air guide shell 63 to move synchronously until the air outlet 66 on the surface of the air guide shell 63 is aligned with the hot spot area, completing the precise positioning of the heat dissipation component. After the air guide shell 63 moves into place, the second cooling fan 65 on the inner wall of the left side of the air guide shell 63 starts, drawing the cooling airflow in the left air guide cavity 3 into the air guide shell 63, and then through the air guide shell 63 towards Several sets of evenly distributed air outlets 66 are opened on the inner surface of the housing 1 to direct the cooling airflow to the hot spot area. The left opening of the air outlet 66 is set as a trumpet-shaped structure, which can effectively expand the airflow range, so that the cooling airflow can act more efficiently on the surface of the heat-generating components in the hot spot area, quickly remove the locally accumulated heat, and achieve concentrated heat dissipation in the hot spot area. The bellows cover 64 installed at the upper and lower ends of the left side of the air guide shell 63 in the through slot will expand and contract synchronously with the up and down movement of the air guide shell 63, always tightly fitting the air guide shell 63 and the inner wall of the housing 1, achieving full sealing of the through slot, ensuring that the cooling airflow can be blown to the hot spot area through the air outlet 66 without air leakage, and ensuring stable heat dissipation efficiency.

[0039] When moisture remains on the surface of the dust filter 73 and dehumidification is required, the electric push rod installed at the rear of the housing 1 pulls the moving frame 72 horizontally along the limiting track between the air inlet cavity 5 and the dehumidification cavity 71. This precisely delivers the dust filter 73 on one side of the moving frame 72 into the dehumidification cavity 71, while the dust filter 73 on the other side remains in the air inlet cavity 5 for continued protection. When the moving frame 72 moves to the preset position, the sealing rods on its side and middle simultaneously take place, sealing the connection between the dehumidification cavity 71 and the air inlet cavity 5, thus isolating the air intake filtration working area from the dehumidification and cleaning area of ​​the dust filter 73. Simultaneously, the five sets of isosceles trapezoids fixed at the top of the moving frame 72... The protrusion 781 moves horizontally along with the object, intermittently pushing the striking rod 783, which is limited and slides inside the housing 782, during the displacement. When the protrusion 781 pushes the striking rod 783, the striking rod 783 retracts into the housing 782 and compresses its internal spring to store elastic potential energy. When the protrusion 781 moves away from the end of the striking rod 783, the spring releases the elastic potential energy, pushing the striking rod 783 to quickly return to its original position. The end of the striking rod 783 strikes the top of the moving frame 72, generating a uniform and slight vibration. This vibration is synchronously transmitted through the moving frame 72 to the dustproof net 73 fixedly installed on it, causing the dust and ash adhering to the surface of the dustproof net 73 to be removed under the action of vibration. Simultaneously, the first cooling fan 4 at the bottom of the right-side air guide cavity 3 of the cabinet 1 continues to operate, drawing hot air from the cabinet 1 into the right-side air guide cavity 3 and into the air duct 9 in the bottom cavity of the cabinet 1. After being evenly distributed by the air duct 9, the hot air enters the two dehumidification chambers 71. The hot air entering the dehumidification chambers 71 is first dispersed into multiple uniform airflows under the guidance of the air guide blades 75, and blows steadily onto the surface of the dustproof net 73 located in the dehumidification chamber 71. The temperature advantage of the circulating hot air in the cabinet is used to heat and evaporate the water vapor on the surface of the dustproof net 73, realizing the automatic drying of the dustproof net 73. At the same time, the electric push rod on the inner wall of the top of the dehumidification chamber 71 is activated simultaneously, driving the surface of the mounting plate 74. The right-end limiting rod 76 slides vertically. Since the rotating shaft on one side of the guide vane 75 extends between the two sets of limiting rods 76 and is fixedly connected to the crossbar 77, and the two ends of the crossbar 77 are embedded in the grooves on the opposite surfaces of the two sets of limiting rods 76 and can rotate freely, when the right-end limiting rod 76 moves up and down, it will drive the guide vane 75 to deflect around its own rotating shaft through the crossbar 77. On the one hand, it can use the flexible brush 8 to remove the residual dust on the surface of the dustproof net 73, and on the other hand, it can brush away the water vapor attached to the surface of the dustproof net 73, accelerate the water vapor evaporation rate, and finally carry the water vapor exhaust gas evaporated from the dustproof net 73. Under the push of the airflow, it is discharged outside the box 1 through the air outlet 10 on the top side wall of the dehumidification chamber 71.

[0040] To further illustrate the technical means and effects adopted by the present invention in order to achieve the intended purpose, the following detailed description is provided in conjunction with the accompanying drawings and preferred embodiments, based on the specific implementation methods, structures, features and effects of the present invention.

[0041] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention in any way. Although the present invention has been disclosed above with reference to preferred embodiments, it is not intended to limit the present invention. Any person skilled in the art can make some modifications or alterations to the above-disclosed technical content to create equivalent embodiments without departing from the scope of the present invention. Any simple modifications, equivalent changes and alterations made to the above embodiments based on the technical essence of the present invention without departing from the scope of the present invention shall still fall within the scope of the present invention.

Claims

1. A primary and secondary integrated intelligent ring network box with a state perception system, comprising a box body (1), characterized in that: The front side of the box (1) is connected to the door (2) by a hinge. The rear end of the box (1) is provided with air ducts (3) on both sides. The bottom inner wall of the right air duct (3) of the box (1) is equipped with a first cooling fan (4). The rear end of the box (1) is equipped with a heat dissipation component. The left air duct (3) of the box (1) is provided with an air inlet (5) on the side away from the first cooling fan (4), and is connected to the left air duct (3) of the box (1). The air inlet (5) is connected to the outside of the box (1). The air inlet (5) is equipped with a dustproof and dehumidification mechanism. The heat dissipation assembly includes a lead screw (61) rotatably connected to the inner walls of both sides of the rear end of the housing (1). A movable block (62) is sleeved on the surface of the lead screw (61). A guide shell (63) is fixedly connected to the surface of the movable block (62). The left side surface of the guide shell (63) is tightly attached to the inner wall of the housing (1). A through slot is vertically opened on the inner wall of the housing (1) corresponding to the left opening of the guide shell (63). The loading area inside the housing (1) is connected to the air guide cavity (3) through the through slot. A bellows cover (64) is installed at the upper and lower ends of the left side of the guide shell (63) in the through slot. A second cooling fan (65) is installed on the inner wall of the left side of the guide shell (63). An air outlet (66) is opened on the side surface of the guide shell (63) facing the inside of the housing (1). The dustproof and dehumidification mechanism includes dehumidification chambers (71) on both sides of the air inlet chamber (5). The dehumidification chambers (71) are connected to both sides of the air inlet chamber (5). A movable frame (72) is slidably limited inside the dehumidification chambers (71) and the air inlet chamber (5). A sealing rod is fixedly connected to the side end and the middle of the movable frame (72). The sealing rod divides the movable frame (72) into two independent areas. A dustproof net (73) is installed in the two independent areas. An installation plate (74) is fixedly connected to the inner wall of both sides of the dehumidification chamber (71) and located behind the dustproof net (73). A guide is rotatably connected to the opposite surface of the installation plate (74). The wind blade (75) has a limiting rod (76) on the side of the mounting plate (74) away from the wind guide blade (75). There are two sets of limiting rods (76) on the surface of the mounting plate (74). The left limiting rod (76) is fixedly connected to the mounting plate (74), and the right limiting rod (76) is vertically limited and slidable on the surface of the mounting plate (74). The rotating shaft on one side of the wind guide blade (75) extends between the two sets of limiting rods (76) and is fixedly connected to a crossbar (77). The two ends of the crossbar (77) are rotatably connected in the grooves opened on the opposite surfaces of the two sets of limiting rods (76). A vibration component is installed on the top of the moving frame (72).

2. The primary and secondary integrated intelligent ring network box with a state perception system according to claim 1, characterized in that: The vibration assembly includes a protrusion (781) fixedly connected to the top of the movable frame (72). A housing (782) is fixedly connected above the movable frame (72) on the inner wall of the dehumidification chamber (71). A striking rod (783) is slidably limited inside the housing (782). A spring is fixedly connected to one end of the striking rod (783) inside the housing (782), and the other end of the spring is fixedly connected to the inner wall of the housing (782).

3. The primary and secondary integrated intelligent ring network box with a state perception system according to claim 1, characterized in that: The lead screw (61) is driven by a synchronous motor installed on the top of the housing (1). The moving block (62) is threadedly connected to the lead screw (61). Several sets of air outlets (66) are evenly opened on the surface of the air guide shell (63). The left side opening of the air outlet (66) is set as a trumpet-shaped structure. A temperature sensor (11) is installed on the top surface of the air guide shell (63).

4. The primary and secondary integrated intelligent ring network box with a state perception system according to claim 1, characterized in that: The movable frame (72) is driven by an electric push rod installed on the rear surface of the housing (1). When the movable frame (72) moves into place, the sealing rod can seal the connection between the dehumidification chamber (71) and the air inlet chamber (5).

5. The primary and secondary integrated intelligent ring network box with a state perception system according to claim 1, characterized in that: The air guide blades (75) are evenly arranged in several groups from top to bottom on the opposite surface of the mounting plate (74), and a flexible brush (8) is fixedly connected to one end of the air guide blades (75) facing the dustproof net (73).

6. The primary and secondary integrated intelligent ring network box with a state perception system according to claim 1, characterized in that: The limiting rod (76) on the right end surface of the mounting plate (74) is driven by an electric push rod installed on the inner wall of the top of the dehumidification chamber (71). An air duct (9) is installed in the bottom cavity of the box (1). The right end of the air duct (9) is connected to the air guide cavity (3) on the right side of the box (1). The left end of the air duct (9) is connected to the dehumidification chambers (71) on both sides of the air inlet cavity (5). An air outlet (10) is installed on the top side wall of the dehumidification chamber (71).

7. A primary and secondary integrated intelligent ring network box with a state perception system according to claim 2, characterized in that: Five sets of protrusions (781) are provided on the top of the movable frame (72). The five sets of protrusions (781) are configured as isosceles trapezoidal structures, and the end of the striking rod (783) abuts against the surface of the protrusions (781).

Citation Information

Patent Citations

  • Outdoor ring main unit with good dehumidification effect and use method thereof

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