Intelligent building energy consumption monitoring device with heat dissipation structure

By combining autonomous filtration and a power-driven heat dissipation mechanism, the problems of dust ingress and low heat dissipation efficiency in existing energy consumption monitoring devices are solved, achieving more efficient heat dissipation and stable operation.

CN224596827UActive Publication Date: 2026-08-04NANJING CAIYA AUTOMATIC CONTROL CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NANJING CAIYA AUTOMATIC CONTROL CO LTD
Filing Date
2025-08-22
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

The existing heat dissipation methods of energy consumption monitoring devices are prone to allowing external dust to enter, making cleaning difficult and affecting heat dissipation efficiency, thus impacting the stable operation of the device.

Method used

It adopts an autonomous filtration mechanism and a powered cooling mechanism, including an autonomous filtration component, a guide filtration component, and an autonomous vibration component, combined with a powered cooling motor and cooling fan blades, to achieve autonomous filtration and powered cooling, reducing the chance of dust entering and improving heat dissipation efficiency.

Benefits of technology

It effectively reduces dust accumulation on the internal components of the energy consumption monitoring device, simplifies the cleaning process, improves heat dissipation efficiency, and enhances the stability and service life of the device.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses a kind of intelligent building energy consumption monitoring devices with heat dissipation structure, including energy consumption monitoring device ontology, autonomous filter mechanism and power heat dissipation mechanism, autonomous filter mechanism is fixedly installed in the downside of energy consumption monitoring device ontology, autonomous filter mechanism includes autonomous filter subassembly, guide filter subassembly and autonomous vibration subassembly, autonomous filter subassembly is fixedly installed in the downside of energy consumption monitoring device ontology, guide filter subassembly is fixedly installed in autonomous filter subassembly inner.The utility model discloses a kind of intelligent building energy consumption monitoring devices with heat dissipation structure, by the setting of corresponding mechanism, reduce the probability that outside dust enters energy consumption monitoring device, not only cleaning is more simple, reduce the dismounting frequency to energy consumption monitoring device, also reduce the possibility that dust covers internal components of energy consumption monitoring device, improve the heat dissipation efficiency of energy consumption monitoring device, reduce the influence to the stable operation of energy consumption monitoring device.
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Description

Technical Field

[0001] This utility model belongs to the technical field of energy consumption monitoring devices, specifically relating to an intelligent building energy consumption monitoring device with a heat dissipation structure. Background Technology

[0002] Intelligent building energy consumption monitoring devices with heat dissipation structures are core equipment for realizing "energy-saving, intelligent, and refined management" of buildings. By collecting, transmitting, analyzing, and visualizing the consumption data of various energy sources (electricity, water, gas, heat, cooling, etc.) in real time, they provide data support for building energy consumption optimization, cost control, and green operation. Their core objective is to solve problems such as "fuzzy data, low efficiency, and difficulty in tapping energy-saving potential" in traditional building energy consumption management. They are a key component of smart buildings and green buildings.

[0003] Currently, energy consumption monitoring devices are often used for energy consumption monitoring in smart buildings. Existing energy consumption monitoring devices mostly use perforations in their outer casing and airflow for heat dissipation. However, this heat dissipation method easily allows external dust to enter, which is not only difficult to clean and requires disassembly of the energy consumption monitoring device, but also easily leads to dust covering the internal components of the energy consumption monitoring device, reducing the heat dissipation efficiency of the energy consumption monitoring device and affecting its stable operation.

[0004] Therefore, in order to address the aforementioned technical problems, it is necessary to provide an intelligent building energy consumption monitoring device with a heat dissipation structure.

[0005] The information disclosed in this background section is intended only to enhance the understanding of the overall background of this utility model and should not be construed as an admission or in any way implying that the information constitutes prior art known to those skilled in the art. Utility Model Content

[0006] The purpose of this invention is to provide an intelligent building energy consumption monitoring device with a heat dissipation structure, which can solve the problem that the heat dissipation method of existing energy consumption monitoring devices easily leads to the entry of external dust into the device, making cleaning difficult and affecting the heat dissipation efficiency of the energy consumption monitoring device.

[0007] To achieve the above objectives, the technical solution provided by a specific embodiment of this utility model is as follows:

[0008] An intelligent building energy consumption monitoring device with a heat dissipation structure includes: an energy consumption monitoring device body, an autonomous filtration mechanism, and a power cooling mechanism. The autonomous filtration mechanism is fixedly installed on the lower side of the energy consumption monitoring device body. The autonomous filtration mechanism includes an autonomous filtration component, a guide filtration component, and an autonomous vibration component. The autonomous filtration component is fixedly installed on the lower side of the energy consumption monitoring device body, the guide filtration component is fixedly installed within the autonomous filtration component, and the autonomous vibration component is fixedly installed within the autonomous filtration component. The power cooling mechanism is fixedly installed on one side of the energy consumption monitoring device body.

[0009] In one or more embodiments of this utility model, the autonomous filtering assembly includes: an autonomous filtering positioning chamber, an autonomous filtering circumferential mesh, and a pair of autonomous filtering guide rings. The autonomous filtering positioning chamber is fixedly installed on the lower side of the energy consumption monitoring device body. The autonomous filtering circumferential mesh is rotatably installed inside the autonomous filtering positioning chamber. A pair of autonomous filtering guide rings are disposed on the upper and lower sides of the autonomous filtering circumferential mesh.

[0010] In one or more embodiments of this utility model, the energy consumption monitoring device body has several pairs of evenly distributed exhaust grooves, and an autonomous filtration air intake pipe is installed between the autonomous filtration positioning chamber and the energy consumption monitoring device body. The autonomous filtration air intake pipe passes through the energy consumption monitoring device body and the autonomous filtration positioning chamber.

[0011] In one or more embodiments of this utility model, an autonomous filter bearing is installed between the autonomous filter circumferential mesh and a pair of autonomous filter guide rings, and the autonomous filter guide rings are fixedly installed with the autonomous filter positioning chamber.

[0012] In one or more embodiments of this utility model, the guiding filter assembly includes: a guiding filter mounting plate, multiple guiding filter blades, and a guiding filter positioning ring. The guiding filter mounting plate is fixedly installed inside the autonomous filter positioning chamber. The multiple guiding filter blades are fixedly installed on the outer side of the autonomous filter circumferential mesh. The guiding filter positioning ring is disposed on the outer side of the autonomous filter circumferential mesh.

[0013] In one or more embodiments of this utility model, the guide filter mounting plate is matched with the guide filter fan blade, the guide filter positioning ring is fixedly installed with the autonomous filter positioning chamber, and a guide filter bearing is installed between the guide filter positioning ring and the autonomous filter circumferential mesh.

[0014] In one or more embodiments of this utility model, the autonomous vibration assembly includes: an autonomous vibration mounting ring, an autonomous vibration support rod, an autonomous vibration ball rod, a pair of autonomous vibration impact balls, and an autonomous vibration rotary spring. The autonomous vibration mounting ring is fixedly installed within the autonomous filter positioning chamber. The autonomous vibration support rod is rotatably installed within the autonomous vibration mounting ring. The autonomous vibration ball rod is fixedly installed on the upper side of the autonomous vibration support rod and extends through it. A pair of autonomous vibration impact balls are fixedly installed within the autonomous filter circumferential mesh and match the autonomous vibration ball rod. The autonomous vibration rotary spring is installed between the autonomous vibration mounting ring and the autonomous vibration support rod.

[0015] In one or more embodiments of this utility model, the power cooling mechanism includes: a power cooling mounting chamber, a power cooling filter, a power cooling motor, and power cooling fan blades. The power cooling mounting chamber is fixedly installed on one side of the energy consumption monitoring device body and communicates with the autonomous filter positioning chamber. The power cooling filter is fixedly installed on the side of the power cooling mounting chamber away from the energy consumption monitoring device body. The power cooling motor is fixedly installed on the power cooling filter and passes through the power cooling filter. The power cooling fan blades are fixedly installed on the power cooling motor.

[0016] In one or more embodiments of this utility model, a power cooling connecting pipe is fixedly installed on one side of the power cooling installation chamber, the power cooling connecting pipe passes through the power cooling installation chamber, and the power cooling installation chamber and the autonomous filter positioning chamber are connected through the power cooling connecting pipe.

[0017] Compared with existing technologies, the intelligent building energy consumption monitoring device with heat dissipation structure of this utility model reduces the probability of external dust entering the energy consumption monitoring device through the setting of corresponding mechanisms. This not only makes cleaning simpler and reduces the number of times the energy consumption monitoring device needs to be disassembled, but also reduces the possibility of dust covering the internal components of the energy consumption monitoring device, improves the heat dissipation efficiency of the energy consumption monitoring device, and reduces the impact on the stable operation of the energy consumption monitoring device. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0019] Figure 1 This is a first part of the structural cross-sectional view of an intelligent building energy consumption monitoring device with a heat dissipation structure in one embodiment of the present invention.

[0020] Figure 2 for Figure 1 Schematic diagram of the structure at point A in the middle;

[0021] Figure 3 This is a partial structural schematic diagram of an intelligent building energy consumption monitoring device with a heat dissipation structure according to one embodiment of the present invention.

[0022] Figure 4 This is a cross-sectional view of the second part of the intelligent building energy consumption monitoring device with a heat dissipation structure in one embodiment of the present invention.

[0023] Figure 5 for Figure 4 Schematic diagram of the structure at point B;

[0024] Figure 6 for Figure 4 Schematic diagram of the structure at point C;

[0025] Figure 7 This is a perspective view of an intelligent building energy consumption monitoring device with a heat dissipation structure according to an embodiment of the present invention.

[0026] Explanation of key figure labels:

[0027] 1-Energy consumption monitoring device body; 2-Autonomous filtration mechanism; 21-Autonomous filtration component; 211-Autonomous filtration positioning chamber; 212-Autonomous filtration circumferential mesh; 213-Autonomous filtration guide ring; 214-Autonomous filtration air intake pipe; 215-Autonomous filtration bearing; 22-Guided filtration component; 221-Guided filtration mounting plate; 222-Guided filtration fan blade; 223-Guided filtration positioning ring; 224-Guided filtration bearing; 23-Autonomous vibration component; 231-Autonomous vibration mounting ring; 232-Autonomous vibration support rod; 233-Autonomous vibration ball rod; 234-Autonomous vibration impact ball; 235-Autonomous vibration rotary spring; 3-Power cooling mechanism; 31-Power cooling mounting chamber; 311-Power cooling connecting pipe; 32-Power cooling filter screen; 33-Power cooling motor; 34-Power cooling fan blade. Detailed Implementation

[0028] To enable those skilled in the art to better understand the technical solutions in this disclosure, the technical solutions in the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this disclosure, and not all embodiments. Based on the embodiments in this disclosure, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of this disclosure.

[0029] like Figures 1 to 7As shown, an intelligent building energy consumption monitoring device with a heat dissipation structure according to one embodiment of this utility model includes: an energy consumption monitoring device body 1, an autonomous filtration mechanism 2, and a power heat dissipation mechanism 3. The autonomous filtration mechanism 2 is fixedly installed on the lower side of the energy consumption monitoring device body 1. The autonomous filtration mechanism 2 includes an autonomous filtration component 21, a guide filtration component 22, and an autonomous vibration component 23. The autonomous filtration component 21 is fixedly installed on the lower side of the energy consumption monitoring device body 1, the guide filtration component 22 is fixedly installed inside the autonomous filtration component 21, and the autonomous vibration component 23 is fixedly installed inside the autonomous filtration component 21. The power heat dissipation mechanism 3 is fixedly installed on one side of the energy consumption monitoring device body 1.

[0030] The intelligent building energy consumption monitoring device with a heat dissipation structure is used as follows: Air is drawn in by the power cooling mechanism 3 and injected into the autonomous filter component 21. The air is filtered by the autonomous filter component 21 and injected into the energy consumption monitoring device body 1, increasing the air pressure inside the body 1. The air inside the energy consumption monitoring device body 1 is discharged from the exhaust duct, ensuring that only the autonomous filter component 21 enters the body 1. The air is guided by the guide filter component 22, and the airflow blowing on the guide filter component 22 drives the rotation of the autonomous filter component 21. The rotation of the autonomous filter component 21 reduces dust adhesion. The autonomous vibration component 23 causes the autonomous filter component 21 to vibrate during rotation, further reducing dust adhesion.

[0031] like Figures 1 to 3As shown, the autonomous filtration assembly 21 includes: an autonomous filtration positioning chamber 211, an autonomous filtration circumferential mesh 212, and a pair of autonomous filtration guide rings 213. The autonomous filtration positioning chamber 211 is fixedly installed on the lower side of the energy consumption monitoring device body 1. The autonomous filtration positioning chamber 211 can guide air and provide a corresponding channel for air circulation. Since the power cooling mechanism 3 generates a large amount of air, after deducting the air injected into the energy consumption monitoring device body 1, the excess air can be directly discharged through the autonomous filtration positioning chamber 211. When the air is directly discharged from the autonomous filtration positioning chamber 211, it can carry away the dust in the autonomous filtration positioning chamber 211, so that the dust will not accumulate in the autonomous filtration positioning chamber 211. This can improve the cleanliness of the autonomous filtration positioning chamber 211, reduce the filtration pressure of the autonomous filtration circumferential mesh 212 on the air, extend the service life of the autonomous filtration circumferential mesh 212, and improve the filtration effect of the autonomous filtration circumferential mesh 212. The self-filtering circumferential mesh 212 is rotatably installed inside the self-filtering positioning chamber 211. The self-filtering circumferential mesh 212 can filter the circulating air and the air entering the energy consumption monitoring device body 1. While ensuring that the energy consumption monitoring device body 1 maintains a high air pressure, it can also reduce the amount of dust entering the energy consumption monitoring device body 1, reduce the cleaning difficulty of the energy consumption monitoring device body 1, improve the service life of the energy consumption monitoring device body 1, reduce the coverage of electronic components inside the energy consumption monitoring device body 1 by dust, improve the heat dissipation efficiency of the energy consumption monitoring device body 1, and reduce the impact on the stable operation of the energy consumption monitoring device body 1. A pair of self-filtering guide rings 213 are set on the upper and lower sides of the self-filtering circumferential mesh 212. The self-filtering guide rings 213 can position the self-filtering circumferential mesh 212, improve the stability of the self-filtering circumferential mesh 212, reduce the probability of the self-filtering circumferential mesh 212 tilting, and simultaneously reduce the probability of deformation of the self-filtering circumferential mesh 212, so that the self-filtering circumferential mesh 212 can filter the air better and make the rotation of the self-filtering circumferential mesh 212 smoother.

[0032] like Figures 1 to 5As shown, the energy consumption monitoring device body 1 has several pairs of evenly distributed exhaust slots, providing a channel for air to escape from the body 1 and a pathway for heat dissipation, thus improving the operational stability of the energy consumption monitoring device body 1. An autonomous filtration intake pipe 214 is installed between the autonomous filtration positioning chamber 211 and the energy consumption monitoring device body 1, connecting the energy consumption monitoring device body 1 and the autonomous filtration positioning chamber 211, allowing the air in the autonomous filtration positioning chamber 211 to pass through the autonomous filtration system. The air intake pipe 214 enters the energy consumption monitoring device body 1, providing air for heat dissipation and allowing air to exchange heat with the energy consumption monitoring device body 1. The self-filtering air intake pipe 214 runs through the energy consumption monitoring device body 1 and the self-filtering positioning chamber 211, facilitating the connection between the energy consumption monitoring device body 1 and the self-filtering positioning chamber 211. This allows the energy consumption monitoring device body 1 and the self-filtering positioning chamber 211 to be connected via the self-filtering air intake pipe 214, enabling air from the self-filtering positioning chamber 211 to enter the energy consumption monitoring device body 1.

[0033] like Figures 1 to 6 As shown, self-filtering bearings 215 are installed between the self-filtering circumferential mesh 212 and the pair of self-filtering guide rings 213, reducing the friction between them and minimizing frictional damage. This, in turn, extends their service life. The self-filtering guide rings 213 are fixedly installed in the self-filtering positioning chamber 211. This fixed installation improves the stability of the self-filtering guide rings 213, reduces the likelihood of them detaching, and decreases the chance of them shaking. This allows the self-filtering guide rings 213 to better guide the self-filtering circumferential mesh 212, enabling it to rotate more stably.

[0034] like Figures 1 to 4As shown, the guide filter assembly 22 includes: a guide filter mounting plate 221, multiple guide filter blades 222, and a guide filter positioning ring 223. The guide filter mounting plate 221 is fixedly installed inside the self-filtering positioning chamber 211. The guide filter mounting plate 221 guides the air, allowing it to contact the guide filter blades 222. This air movement drives the guide filter blades 222, causing the self-filtering circumferential mesh 212 to rotate. This rotation reduces dust adhesion to the self-filtering circumferential mesh 212. The multiple guide filter blades 222 are fixedly installed on the outside of the self-filtering circumferential mesh 212. The guide filter blades 222 drive the rotation of the self-filtering circumferential mesh 212, preventing air from constantly contacting only one side of the self-filtering circumferential mesh 212 and reducing the likelihood of clogging. The guide filter positioning ring 223 is set on the outside of the self-filtering circumferential mesh 212. The guide filter positioning ring 223 can improve the stability of the self-filtering circumferential mesh 212, reduce the probability of deformation of the self-filtering circumferential mesh 212, and make the rotation of the self-filtering circumferential mesh 212 smoother.

[0035] like Figures 1 to 2 As shown, the guide filter mounting plate 221 is matched with the guide filter blade 222. The guide filter mounting plate 221 guides the air and drives the guide filter blade 222 to rotate, providing the corresponding power for the rotation of the guide filter blade 222. The guide filter positioning ring 223 is fixedly installed with the self-filter positioning chamber 211, which can effectively improve the stability of the guide filter positioning ring 223, reduce the probability of the guide filter positioning ring 223 shaking, and reduce the probability of the guide filter positioning ring 223 detaching, further improving the stability of the self-filter circumferential mesh 212. A guide filter bearing 224 is installed between the guide filter positioning ring 223 and the self-filter circumferential mesh 212, reducing the friction between the guide filter positioning ring 223 and the self-filter circumferential mesh 212, and improving the service life of the guide filter positioning ring 223 and the self-filter circumferential mesh 212.

[0036] like Figures 1 to 3As shown, the autonomous vibration assembly 23 includes: an autonomous vibration mounting ring 231, an autonomous vibration support rod 232, an autonomous vibration ball rod 233, a pair of autonomous vibration impact balls 234, and an autonomous vibration rotary spring 235. The autonomous vibration mounting ring 231 is fixedly installed within the autonomous filter positioning chamber 211. The mounting ring 231 positions the autonomous vibration support rod 232, improving its stability. Simultaneously, it provides space for the installation of the autonomous vibration rotary spring 235, enhancing its stability. The autonomous vibration support rod 232 is rotatably mounted within the mounting ring 231. It supports the autonomous vibration ball rod 233, providing a central axis for its rotation. Furthermore, the support rod 232 applies pressure to the rotary spring 235, allowing it to return to its original position. The self-vibrating ball rod 233 is fixedly installed on the upper side of the self-vibrating support rod 232 and passes through the self-vibrating support rod 232. It can collide with the self-vibrating impact ball 234, causing the self-filtering circumferential mesh 212 to vibrate, thereby improving the self-cleaning ability of the self-filtering circumferential mesh 212 and reducing the probability of dust adhesion on the surface of the self-filtering circumferential mesh 212. A pair of self-vibrating impact balls 234 are fixedly installed inside the self-filtering circumferential mesh 212 and are matched with the self-vibrating ball rod 233. The self-vibrating rotation spring 235 is installed between the self-vibrating mounting ring 231 and the self-vibrating support rod 232, which can rotate the self-vibrating support rod 232 back to the position before impact.

[0037] like Figures 1 to 5 As shown, the power cooling mechanism 3 includes: a power cooling mounting chamber 31, a power cooling filter 32, a power cooling motor 33, and power cooling fan blades 34. The power cooling mounting chamber 31 is fixedly installed on one side of the energy consumption monitoring device body 1 and is connected to the self-filtering positioning chamber 211. The power cooling mounting chamber 31 can accommodate the power cooling fan blades 34, providing sufficient space for their installation. The power cooling filter 32 is fixedly installed on the side of the power cooling mounting chamber 31 away from the energy consumption monitoring device body 1. The power cooling filter 32 not only performs simple air filtration but also provides a suitable position for the installation of the power cooling motor 33, reducing the likelihood of the motor shaking and improving its stability. The power cooling motor 33 is fixedly installed on the power cooling filter 32 and extends through it. The power cooling motor 33 drives the rotation of the power cooling fan blades 34, providing the necessary power for their rotation and making it more controllable. The power cooling fan blade 34 is fixedly mounted on the power cooling motor 33.

[0038] like Figures 1 to 4 As shown, a power cooling connecting pipe 311 is fixedly installed on one side of the power cooling installation chamber 31, connecting the power cooling installation chamber 31 and the autonomous filter positioning chamber 211. The power cooling connecting pipe 311 passes through the power cooling installation chamber 31, and the power cooling installation chamber 31 and the autonomous filter positioning chamber 211 are connected through the power cooling connecting pipe 311.

[0039] It will be apparent to those skilled in the art that this disclosure is not limited to the details of the exemplary embodiments described above, and that this disclosure can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of this disclosure is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this disclosure. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0040] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. An intelligent building energy consumption monitoring device with a heat dissipation structure, characterized in that, include: Energy consumption monitoring device body; An autonomous filtration mechanism is fixedly installed on the lower side of the energy consumption monitoring device body. The autonomous filtration mechanism includes an autonomous filtration component, a guide filtration component, and an autonomous vibration component. The autonomous filtration component is fixedly installed on the lower side of the energy consumption monitoring device body, the guide filtration component is fixedly installed inside the autonomous filtration component, and the autonomous vibration component is fixedly installed inside the autonomous filtration component. The power cooling mechanism is fixedly installed on one side of the energy consumption monitoring device body.

2. The intelligent building energy consumption monitoring device with a heat dissipation structure according to claim 1, characterized in that, The autonomous filtering component includes: An autonomous filtering and positioning chamber is fixedly installed on the lower side of the energy consumption monitoring device body; An autonomous filter circumferential mesh is rotatably installed inside the autonomous filter positioning chamber; A pair of self-filtering guide rings are disposed on the upper and lower sides of the self-filtering circumferential mesh.

3. The intelligent building energy consumption monitoring device with a heat dissipation structure according to claim 2, characterized in that, The energy consumption monitoring device body has several pairs of evenly distributed exhaust slots. An autonomous filtration air intake pipe is installed between the autonomous filtration positioning chamber and the energy consumption monitoring device body. The autonomous filtration air intake pipe runs through the energy consumption monitoring device body and the autonomous filtration positioning chamber.

4. The intelligent building energy consumption monitoring device with a heat dissipation structure according to claim 2, characterized in that, An autonomous filter bearing is installed between the autonomous filter circumferential mesh and a pair of autonomous filter guide rings, and the autonomous filter guide rings are fixedly installed with the autonomous filter positioning chamber.

5. The intelligent building energy consumption monitoring device with a heat dissipation structure according to claim 2, characterized in that, The guided filtering component includes: A guide filter mounting plate is fixedly installed inside the autonomous filter positioning chamber; Multiple guide filter blades are fixedly installed on the outer side of the self-filtering circumferential mesh; A guide filter positioning ring is positioned on the outer side of the autonomous filter circumferential mesh.

6. The intelligent building energy consumption monitoring device with a heat dissipation structure according to claim 5, characterized in that, The guide filter mounting plate is matched with the guide filter fan blades, the guide filter positioning ring is fixedly installed with the autonomous filter positioning chamber, and a guide filter bearing is installed between the guide filter positioning ring and the autonomous filter circumferential mesh.

7. The intelligent building energy consumption monitoring device with a heat dissipation structure according to claim 2, characterized in that, The autonomous vibration component includes: An autonomous vibration mounting ring is fixedly installed inside the autonomous filter positioning chamber; An autonomous vibration support rod is rotatably mounted inside the autonomous vibration mounting ring; An autonomous vibration ball rod is fixedly installed on the upper side of the autonomous vibration support rod and extends through the autonomous vibration support rod; A pair of autonomously vibrating impact balls are fixedly installed inside the autonomous filter circumferential mesh and are matched with the autonomously vibrating ball rod; An autonomous vibration rotary spring is installed between the autonomous vibration mounting ring and the autonomous vibration support rod.

8. The intelligent building energy consumption monitoring device with a heat dissipation structure according to claim 1, characterized in that, The power cooling mechanism includes: The power cooling installation compartment is fixedly installed on one side of the energy consumption monitoring device body and is connected to the autonomous filter positioning compartment. The power cooling filter is fixedly installed on the side of the power cooling installation compartment away from the energy consumption monitoring device body; A power cooling motor is fixedly installed on the power cooling filter screen and passes through the power cooling filter screen; The power cooling fan blades are fixedly installed on the power cooling motor.

9. The intelligent building energy consumption monitoring device with a heat dissipation structure according to claim 8, characterized in that, A power cooling connecting pipe is fixedly installed on one side of the power cooling installation compartment.

10. The intelligent building energy consumption monitoring device with a heat dissipation structure according to claim 9, characterized in that, The power cooling connecting pipe runs through the power cooling installation compartment, and the power cooling installation compartment and the autonomous filter positioning compartment are connected by the power cooling connecting pipe.