Energy data collector
By setting up a heat dissipation mechanism on the shell surface of the energy data collector and using wind power to introduce the collector to remove heat, the problem of heat discharge of the collector under high temperature conditions is solved, effective heat management is achieved, and the normal operation of the collector is ensured.
Patent Information
- Application Number
- CN202421955207.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-13
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2034-08-13
AI Technical Summary
Existing energy data collectors are difficult to discharge heat in time under high temperature conditions, resulting in the internal devices being susceptible to overheating damage.
An energy data collector is designed, and a structure is used to set up a heat dissipation mechanism on the surface of the shell. The heat dissipation mechanism includes the main insertion, the secondary insertion, the vertical insertion pipe, the bent pipe, the fan and other components. It is introduced into the collector body through wind power, and the heat is taken away and discharged from the heat dissipation hole is accelerated. A double-place air duct structure is set to ensure that the double-channel wind power takes away heat.
It effectively solves the problem of heat discharge of the collector body under high temperature conditions, ensures that the collector body is not prone to heat damage during normal operation, and further improves the efficiency of heat discharge through the dual-channel wind structure.
Smart Images

Figure CN223007789U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of data collectors, and particularly relates to an energy data collector. Background Art
[0002] A data collector is a device used to collect data. It can be electrically connected to various sensors to collect information from the above sensors. It generally consists of structures such as a housing, a processor, an energy storage unit, and a collection unit, and has the function of on-site real-time data collection and storage; when circuit devices such as the above processor and collection unit work, they will generate a large amount of heat. Therefore, the data collector usually has structures such as heat dissipation holes to discharge the heat in a timely manner.
[0003] At present, when the energy data collector is working, it will generate a large amount of heat by itself. These heats will dissipate outward from the heat dissipation holes on the surface of the energy data collector. However, in the case where the energy data collector has a high temperature, the heat inside the housing cannot be dissipated to the outside through the heat dissipation holes in time, resulting in the internal components of the energy data collector being easily damaged by overheating. Therefore, we propose an energy data collector. Summary of the Utility Model
[0004] The main purpose of the utility model is to provide an energy data collector. A heat dissipation mechanism is arranged at the housing of the collector body. The heat dissipation mechanism is assembled into a structure that draws air into the housing at the housing of the collector body. After the fan of the heat dissipation mechanism is powered on, it sends wind into the square guide pipe. The wind passes through the air filter cotton to filter dust and then enters the collector body along the curved guide pipe and the vertical embedded pipe. The wind surges inside the collector body, and then the wind carries the heat and accelerates to be discharged from the heat dissipation holes, ensuring that the collector body is not easily damaged by heat during normal operation. Moreover, the heat dissipation mechanism is provided with a double-channel air duct structure at the housing of the collector body. The wind is introduced at both the main embedded port and the secondary embedded port, so that there can be a double-point air intake structure inside the collector body, ensuring that there are two channels of wind inside the collector body. The heat inside the collector body is taken away by the double wind and discharged from the heat dissipation holes, which can effectively solve the problems in the background art.
[0005] To achieve the above purpose, the technical solution adopted by the utility model is as follows:
[0006] An energy data collector, comprising a collector body, wherein heat dissipation holes are symmetrically formed on the surface of the housing of the collector body, and further comprising a heat dissipation mechanism, the heat dissipation mechanism including a main embedding port, a secondary embedding port, a vertical embedding pipe, a square fixing edge, a bent guiding pipe, a square guiding pipe, a concave connecting frame, a ring support, an air filter cotton and a fan. Main embedding ports and secondary embedding ports are symmetrically formed on the surface of the collector body between the heat dissipation holes, and vertical embedding pipes are inserted into the cavities of the main embedding ports and the secondary embedding ports. Square fixing edges protrude from the outer pipe wall of the vertical embedding pipes, and square fixing grooves for clamping the square fixing edges are recessed and formed on the inner wall openings of the main embedding ports and the secondary embedding ports. The upper pipe orifice of the vertical embedding pipe is connected to the square guiding pipe through the bent guiding pipe, and a concave connecting frame is fixed inside the outer pipe orifice of the square guiding pipe away from the bent guiding pipe. A ring support is fixed inside the orifice of the concave connecting frame, and an air filter cotton is placed on the surfaces of the ring support and the concave connecting frame. A fan is locked at the outer pipe orifice of the square guiding pipe through bolts.
[0007] Further, bolts are screwed between the corners of the housing of the fan and the pipe orifice of the square guiding pipe, and the fan presses the air filter cotton against the concave connecting frame and the ring support;
[0008] By adopting the above technical solution, the housing of the fan can be locked at the four corners of the pipe orifice surface of the square guiding pipe through four groups of bolts, so as to press the air filter cotton against the concave connecting frame and the ring support for pressing and fixing.
[0009] Further, the outer ring of the ring support is fixed to the inner frame wall of the concave connecting frame, and an inner ring is fixedly welded inside the outer ring of the ring support through a connecting plate;
[0010] By adopting the above technical solution, after the outer ring of the ring support is fixed inside the concave connecting frame, the outer ring is welded with the inner ring through a connecting plate to form a structure for supporting the air filter cotton.
[0011] Further, the cavity depths of the main embedding port and the secondary embedding port are the same as the pipe body length of the vertical embedding pipe, and the pipe cavities of the vertical embedding pipe, the bent guiding pipe and the square guiding pipe are interconnected;
[0012] By adopting the above technical solution, the vertical embedding pipe can be adaptively clamped in the cavities of the main embedding port and the secondary embedding port, and then the wind power of the fan can be introduced into the collector body through the vertical embedding pipe, the bent guiding pipe and the square guiding pipe.
[0013] Further, the edge size of the square fixing edge is the same as the cavity size of the square fixing groove;
[0014] By adopting the above technical solution, the square fixing edge can be adaptively clamped into the square fixing groove for positioning and clamping, and then the vertical embedding pipe can be anti - detachment clamped in the main embedding port and the secondary embedding port through the square fixing edge.
[0015] Further, the air outlet of the fan faces the pipe cavity of the square guiding pipe;
[0016] By adopting the above technical solution, the fan can blow wind into the square guide pipe after being powered on.
[0017] Compared with the prior art, the utility model has the following beneficial effects:
[0018] In the utility model, a heat dissipation mechanism is arranged at the shell of the collector body. The heat dissipation mechanism is assembled into a structure for guiding wind into the shell at the shell of the collector body. After the fan of the heat dissipation mechanism is powered on, wind is sent into the square guide pipe. After the wind filters dust through the air filter cotton, it enters the collector body along the bent guide pipe and the vertical embedded pipe. The wind surges in the collector body, and then the wind takes away heat and accelerates to discharge from the heat dissipation holes, ensuring that the collector body is not easily damaged by heat during normal operation;
[0019] And the heat dissipation mechanism is provided with a double-channel structure at the shell of the collector body. The introduction of wind at both the main embedded port and the secondary embedded port enables a double-point wind guiding structure to exist in the collector body, ensuring that there are two channels of wind in the collector body, and the heat in the collector body is taken away by the double wind and discharged from the heat dissipation holes. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a schematic diagram of the overall structure of an energy data collector of the utility model.
[0021] Figure 2 It is an exploded view of the heat dissipation mechanism of an energy data collector of the utility model.
[0022] In the figure: 1. Collector body; 2. Heat dissipation holes; 3. Heat dissipation mechanism; 4. Main embedded port; 5. Secondary embedded port; 6. Vertical embedded pipe; 7. Square fixed edge; 8. Square fixed groove; 9. Bent guide pipe; 10. Square guide pipe; 11. Concave connecting frame; 12. Ring support; 13. Air filter cotton; 14. Fan. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0023] In order to make the technical means, creative features, achieved purposes and functions of the utility model easy to understand, the utility model will be further described below in conjunction with specific embodiments.
[0024] Such as Figure 1-2As shown in the figure, an energy data collector includes a collector body 1. Heat dissipation holes 2 are symmetrically formed on the surface of the housing of the collector body 1. It further includes a heat dissipation mechanism 3. The heat dissipation mechanism 3 includes a main embedding port 4, a secondary embedding port 5, a vertical embedding pipe 6, a square fixing edge 7, a bent guiding pipe 9, a square guiding pipe 10, a concave connecting frame 11, a ring bracket 12, an air filter cotton 13 and a blower 14. Main embedding ports 4 and secondary embedding ports 5 are symmetrically formed on the surface of the collector body 1 between the heat dissipation holes 2. And vertical embedding pipes 6 are inserted into the cavities of the main embedding ports 4 and the secondary embedding ports 5. Square fixing edges 7 protrude from the outer pipe wall of the vertical embedding pipes 6. Square fixing grooves 8 for clamping the square fixing edges 7 are recessed on the inner wall openings of the main embedding ports 4 and the secondary embedding ports 5. The upper pipe openings of the vertical embedding pipes 6 are connected to the square guiding pipe 10 through the bent guiding pipe 9. And a concave connecting frame 11 is fixed inside the outer pipe opening of the square guiding pipe 10 away from the bent guiding pipe 9. A ring bracket 12 is fixed inside the frame opening of the concave connecting frame 11. And an air filter cotton 13 is placed on the surfaces of the ring bracket 12 and the concave connecting frame 11. A blower 14 is locked to the outer pipe opening of the square guiding pipe 10 through bolts.
[0025] Wherein, bolts are screwed between the housing of the blower 14 and the four corners of the pipe opening of the square guiding pipe 10, and the blower 14 presses the air filter cotton 13 against the concave connecting frame 11 and the ring bracket 12;
[0026] By adopting the above technical solution, the housing of the blower 14 can be locked at the four corners of the pipe opening surface of the square guiding pipe 10 through four groups of bolts, so as to press the air filter cotton 13 against the concave connecting frame 11 and the ring bracket 12 for clamping.
[0027] Wherein, the outer ring of the ring bracket 12 is fixed to the inner frame wall of the concave connecting frame 11, and the inner ring is fixedly welded through a connecting plate inside the outer ring of the ring bracket 12;
[0028] By adopting the above technical solution, after the outer ring of the ring bracket 12 is fixed inside the concave connecting frame 11, the outer ring is welded to the inner ring through a connecting plate to form a structure for supporting the air filter cotton 13.
[0029] Wherein, the cavity depths of the main embedding port 4 and the secondary embedding port 5 are the same as the pipe body lengths of the vertical embedding pipes 6, and the pipe cavities of the vertical embedding pipes 6 communicate with the pipe cavities of the bent guiding pipe 9 and the square guiding pipe 10;
[0030] By adopting the above technical solution, the vertical embedding pipes 6 can be adaptively clamped in the cavities of the main embedding port 4 and the secondary embedding port 5, and then the wind force of the blower 14 can be introduced into the collector body 1 from the vertical embedding pipes 6, the bent guiding pipe 9 and the square guiding pipe 10.
[0031] Wherein, the edge dimensions of the square fixing edge 7 are the same as the cavity dimensions of the square fixing groove 8;
[0032] By adopting the above technical solution, the square fixed edge 7 can be adapted and snapped into the square fixed groove 8 for positioning and snap-fitting, and then the vertical embedded pipe 6 can be anti-disengagement snap-fitted in the main embedding port 4 and the secondary embedding port 5 through the square fixed edge 7.
[0033] Among them, the air outlet of the blower 14 faces the lumen of the square guiding pipe 10;
[0034] By adopting the above technical solution, the blower 14 can blow wind into the square guiding pipe 10 after being powered on.
[0035] It should be noted that the present utility model is an energy data collector. A heat dissipation mechanism 3 is provided at the housing of the collector body 1. After the main embedding port 4 and the secondary embedding port 5 of the heat dissipation mechanism 3 are provided, the vertical embedded pipe 6 can be snap-fitted in the main embedding port 4 and the secondary embedding port 5. Then, the vertical embedded pipe 6 is snap-fitted into the square fixed groove 8 of the main embedding port 4 and the secondary embedding port 5 through the square fixed edge 7 for positioning and snap-fitting. The air filter cotton 13 can be placed at the concave connection frame 11 in the square guiding pipe 10. Then, the blower 14 can be locked to the square guiding pipe 10 through bolts. The blower 14 is connected to an external power source or connected to the power connection end of the collector body 1 for simultaneous power connection. When the collector body 1 generates heat during power-on operation, the blower 14 can rotate to send wind into the square guiding pipe 10. After the wind at the square guiding pipe 10 is filtered by the air filter cotton 13 to remove dust, the wind enters the collector body 1 along the bent guiding pipe 9 and the vertical embedded pipe 6. After the wind enters the collector body 1, the wind surges in the collector body 1 and then accelerates and discharges from the heat dissipation holes 2 with the heat, ensuring that the collector body 1 is not easily damaged by heat during normal operation.
[0036] It should be noted that the present utility model is an energy data collector. The components in the present utility model are all components known to those skilled in the art, and their structures and principles can all be known by those skilled in the art through technical manuals or obtained through conventional experimental methods.
[0037] The above shows and describes the basic principles, main features and advantages of the present utility model. Those skilled in the art of this industry should understand that the present utility model is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principles of the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the present utility model claimed. The scope of protection claimed by the present utility model is defined by the appended claims and their equivalents.
Claims
1. An energy data collector, comprising a collector body (1), wherein the shell surface of the collector body (1) is symmetrically provided with heat dissipation holes (2), characterized in that: The heat dissipation device also comprises a heat dissipation mechanism (3), wherein the heat dissipation mechanism (3) comprises a main embedded opening (4), a secondary embedded opening (5), a vertical embedded pipe (6), a square fixed edge (7), a curved lead pipe (9), a square lead pipe (10), a concave frame (11), a ring bracket (12), air filter cotton (13) and a fan (14); the main embedded opening (4) and the secondary embedded opening (5) are symmetrically provided on the surface of the collector body (1) between the heat dissipation holes (2); the vertical embedded pipe (6) is inserted into the cavity of the main embedded opening (4) and the secondary embedded opening (5); the outer tube wall of the vertical embedded pipe (6) is protruded with a square fixed edge (7); The inner opening walls of the main embedded opening (4) and the auxiliary embedded opening (5) are recessed with square fixed grooves (8) for clamping the square fixed edges (7); the upper pipe opening of the vertical embedded pipe (6) is connected to the square lead pipe (10) through a bend pipe (9); and a concave frame (11) is fixed inside the outer pipe opening of the square lead pipe (10) away from the bend pipe (9); a ring bracket (12) is fixed inside the frame opening of the concave frame (11); and air filter cotton (13) is placed on the surfaces of the ring bracket (12) and the concave frame (11); and a fan (14) is locked at the outer pipe opening of the square lead pipe (10) by bolts.
2. An energy data collector according to claim 1, characterized in that: Bolts are screwed between the housing of the fan (14) and the four corners of the pipe opening of the square lead pipe (10), and the fan (14) presses the air filter cotton (13) against the concave frame (11) and the ring bracket (12).
3. The energy data collector according to claim 1, characterized in that: The outer ring of the ring bracket (12) is fixed to the inner frame wall of the concave frame (11), and the inner ring of the outer ring of the ring bracket (12) is fixed by welding a connecting plate.
4. The energy data collector according to claim 1, characterized in that: The depth of the main embedded opening (4) and the auxiliary embedded opening (5) is the same as the length of the tube body of the vertical embedded tube (6), and the tube lumens of the vertical embedded tube (6) and the curved guide tube (9) and the square guide tube (10) are interconnected.
5. The energy data collector according to claim 1, characterized in that: The prism size of the square fixed prism (7) is the same as the groove cavity size of the square fixed groove (8).
6. The energy data collector according to claim 1, characterized in that: The air outlet of the fan (14) faces the tube cavity of the square lead tube (10).