Electricity utilization monitoring device for Internet of Things
Through the synergistic effect of the drive parts and auxiliary parts, the problems of heat dissipation blind spots and hot air retention in the Internet of Things power monitoring device are solved, and efficient heat discharge and heat dissipation effect are achieved.
Patent Information
- Application Number
- CN202421862403.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-02
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2034-08-02
AI Technical Summary
The existing IoT power monitoring devices are prone to air supply dead corners during the heat dissipation process, which affects the heat dissipation effect. The rise of hot air causes some hot air to rise again, reducing the heat dissipation efficiency.
The drive member is used to drive the rotation of the rotating shaft and the fan blade, blow the external constant temperature air from the bottom side of the cabinet to the exhaust port, and accelerate the discharge of hot air through auxiliary parts. The drive bevel gear and transmission gear are used to mesh the transmission, and the auxiliary fan is used to rotate with the fan blade to increase the air flow speed, and the auxiliary motor drives the rotation of the auxiliary shaft and the gear, and the auxiliary fan accelerates the discharge of hot air.
It avoids the dead end of heat dissipation, quickly discharges hot air, improves heat dissipation efficiency, reduces the hot air retention time, and ensures efficient heat dissipation.
Smart Images

Figure CN223167903U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of power consumption monitoring, in particular to an Internet of Things power consumption monitoring device. Background Technique
[0002] Traditional distribution networks often require manual inspection and maintenance, which are inefficient and costly. The introduction of Internet of Things technology makes it possible to monitor and remotely control distribution equipment in real time. By installing devices such as sensors and smart meters, the operating status and power consumption of distribution equipment can be obtained in real time. Once a fault or abnormal situation occurs, the system can automatically send an alarm and notify relevant staff in time for processing, greatly improving the reliability and operating efficiency of the distribution network. Among them, the sensors and smart meters used are generally installed in the power equipment cabinets that need to be monitored for monitoring.
[0003] In the prior art, an Internet of Things power consumption monitoring device proposed in the publication number CN215009074U includes a distribution cabinet. A ventilation opening is provided on the distribution cabinet. The ventilation opening is circular. A dust-proof net is fixedly connected inside the ventilation opening. A cleaning mechanism is arranged on the dust-proof net. A support frame is fixedly connected to the distribution cabinet. A motor is fixedly installed on the support frame. A driving shaft is fixedly connected to the output shaft of the motor. The driving shaft is rotationally connected to the distribution cabinet through a bearing. A plurality of fan blades are fixedly connected to the lower end circumference of the driving shaft at equal distances. An air outlet pipe is communicated with one side of the lower end of the fan blade. A connecting sleeve is threadedly connected to the air outlet pipe. A filter screen is fixedly connected inside the connecting sleeve. The utility model prevents dust from entering the interior and at the same time ensures the heat dissipation effect.
[0004] This application mainly blows the heat to the air outlet pipe through the fan blades to discharge the heat, and dust prevention is carried out through the arranged filter screen and dust-proof net, so as to be able to dissipate heat and prevent dust. However, as is well known, hot air generally has a smaller density than cold air, resulting in hot air rising continuously. The fan blades in this application blow air downward on the top side inside the distribution cabinet and are fixed in position. At this time, it is easy to cause dead air supply areas. At the same time, after the hot air is blown down, part of the hot air is discharged, and the other part of the air rises again from the side of the distribution cabinet, thus affecting the heat dissipation effect. Content of the Utility Model
[0005] Aiming at the deficiencies existing in the prior art, the purpose of the utility model is to provide an Internet of Things power consumption monitoring device to facilitate solving the technical problems mentioned in the above background technique.
[0006] The above technical purpose of the utility model is achieved through the following technical solutions:
[0007] An Internet of Things power consumption monitoring device includes a cabinet body and a cabinet door. The cabinet door is installed at the opening of the cabinet body through hinges. A ventilation chamber is fixedly installed at the bottom end inside the cabinet body. One side of the ventilation chamber close to the cabinet door is open. Two round holes are opened on the top side of the ventilation chamber. A support plate is fixedly connected inside the round holes. A rotating shaft is arranged on the top side of the support plate. The bottom end of the rotating shaft passes through the support plate and extends into the ventilation chamber, and the rotating shaft is rotatably connected to the support plate. The top end of the rotating shaft is connected with a fan blade. A mesh cover is fixedly connected to the top side inside the round hole. A driving member is arranged inside the ventilation chamber. An auxiliary chamber is fixedly connected to the top side inside the cabinet body. An auxiliary member is arranged inside the auxiliary chamber.
[0008] In a preferred example, the present utility model can be further configured as follows: The driving member includes a driving motor. The driving motor is fixedly connected to the bottom side of the side of the cabinet body. The output end of the driving motor is connected with a driving shaft. The end of the driving shaft extends into the ventilation chamber.
[0009] In a preferred example, the present utility model can be further configured as follows: The bottom ends of both rotating shafts are connected with transmission bevel gears. Two driving bevel gears are fixedly connected to the outer peripheral wall of the driving shaft. The two driving bevel gears are respectively meshed with the two transmission bevel gears.
[0010] In a preferred example, the present utility model can be further configured as follows: The auxiliary member includes an auxiliary motor. The auxiliary motor is fixedly installed on the top side of the cabinet body. The output end of the auxiliary motor is connected with an auxiliary shaft. The bottom end of the auxiliary shaft extends into the auxiliary chamber. An auxiliary gear is sleeved on the bottom end of the auxiliary shaft.
[0011] In a preferred example, the present utility model can be further configured as follows: A transmission gear is rotatably connected to the side of the auxiliary gear inside the auxiliary chamber. An auxiliary rod is fixedly connected to the top side of the transmission gear. The top end of the auxiliary rod is connected with an auxiliary fan. An air outlet is opened on the top side of the cabinet body directly above the auxiliary fan. An auxiliary net is connected to the inner peripheral wall of the air outlet.
[0012] In a preferred example, the present utility model can be further configured as follows: Sliding grooves are opened on the two side walls inside the ventilation chamber. A notch is opened on the top side of the ventilation chamber at the position of the sliding groove. A net plate is slidably installed inside the notch. The two ends of the net plate are respectively slidably connected with the two sliding grooves.
[0013] In summary, the present utility model includes at least one of the following beneficial technical effects:
[0014] 1. When the Internet of Things power consumption monitoring device is in use, the driving member drives the rotation of the rotating shaft and the fan blades, so as to blow the outside constant-temperature air from the bottom side of the cabinet body to the air outlet, thereby blowing the heat generated by the internal electrical components during use to the outside. Then, the auxiliary member is used to accelerate the rapid discharge of the hot air, improve the heat dissipation efficiency, and thus achieve the effect of avoiding dead corners during heat dissipation and being able to quickly discharge the hot air for heat dissipation;
[0015] 2. When the driving member drives the fan blades to rotate for heat dissipation, at this time, the auxiliary member drives the auxiliary shaft to rotate through the auxiliary motor. The auxiliary shaft will drive the auxiliary gear to rotate, and the auxiliary gear will drive the two meshing transmission gears to rotate, and then drive the two corresponding auxiliary fans to rotate. When the auxiliary fans rotate, they will transport the air in the cabinet body from the air outlet to the outside, so as to cooperate with the rotation of the fan blades, accelerate the air flow speed in the cabinet body, and thus quickly transport the hot air in the cabinet body to the outside, thereby reducing the residence time of the hot air in the cabinet body and improving the heat dissipation efficiency;
[0016] 3. In the Internet of Things power consumption monitoring device, the driving motor in the driving member drives the driving shaft to rotate. When the driving shaft rotates, it drives the driving bevel gear installed on the driving shaft to rotate. Two of the driving bevel gears mesh with the corresponding two transmission bevel gears. Therefore, when the driving bevel gear rotates, it will drive the meshing transmission bevel gear to rotate, and then drive the corresponding rotating shaft to rotate. Therefore, when the rotating shaft rotates, it will drive the fan blades to rotate, and finally, through the rotation of the fan blades, the outside air is sent into the cabinet body and the hot air is discharged from the cabinet body. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0018] Figure 1 It is a schematic diagram of the overall structure of an Internet of Things power consumption monitoring device of the present invention.
[0019] Figure 2 It is a schematic diagram of the dissection structure of an Internet of Things power consumption monitoring device of the present invention.
[0020] Figure 3 It is a schematic diagram of the driving member structure of an Internet of Things power consumption monitoring device of the present invention.
[0021] Figure 4Schematic diagram of the auxiliary structure of an Internet of Things power consumption monitoring device of the present utility model.
[0022] In the figure, 1, cabinet body; 2, cabinet door; 3, ventilation chamber; 4, round hole; 5, support plate; 6, rotating shaft; 7, fan blade; 8, mesh cover; 9, driving member; 10, auxiliary chamber; 11, auxiliary member; 12, driving motor; 13, driving shaft; 14, driving bevel gear; 15, driven bevel gear; 16, auxiliary motor; 17, auxiliary shaft; 18, auxiliary gear; 19, transmission gear; 20, auxiliary rod; 21, auxiliary fan; 22, air outlet; 23, auxiliary net; 24, chute; 25, notch; 26, net plate. Specific embodiments
[0023] The present utility model will be further described in detail below with reference to the accompanying drawings.
[0024] Embodiment:
[0025] Referring to Figures 1 - 4 , an Internet of Things power consumption monitoring device disclosed by the present utility model includes a cabinet body 1 and a cabinet door 2. The cabinet door 2 is installed at the opening of the cabinet body 1 through a hinge. A ventilation chamber 3 is fixedly installed at the bottom end inside the cabinet body 1. One side of the ventilation chamber 3 close to the cabinet door 2 is open. Two round holes 4 are opened on the top side of the ventilation chamber 3. A support plate 5 is fixedly connected inside the round hole 4. A rotating shaft 6 is arranged on the top side of the support plate 5. The bottom end of the rotating shaft 6 passes through the support plate 5 and extends into the ventilation chamber 3, and the rotating shaft 6 is rotatably connected with the support plate 5. The top end of the rotating shaft 6 is connected with a fan blade 7. A mesh cover 8 is fixedly connected to the top side inside the round hole 4. A driving member 9 is arranged inside the ventilation chamber 3. An auxiliary chamber 10 is fixedly connected to the top side inside the cabinet body 1. An auxiliary member 11 is arranged inside the auxiliary chamber 10.
[0026] In this embodiment, when in use, the driving member 9 drives the rotation of the two rotating shafts 6, thereby driving the rotation of the fan blades 7, and then sucking external air into the ventilation chamber 3 and delivering it into the cabinet body 1 through the two round holes 4. When sending air, the mesh cover 8 is provided for filtering dust, so as to avoid sending external dust into the cabinet body 1. The arranged auxiliary member 11 is driven synchronously with the driving member 9. When hot air rises, the cold air at the bottom blowing upward easily causes the hot air to disperse to both sides, affecting the delivery of hot air. At this time, the auxiliary member 11 sucks the air inside the cabinet body 1 into the outside, thereby accelerating the air flow speed inside the cabinet body 1, and further achieving the effect of quickly dissipating heat and reducing the residence time of hot air.
[0027] In a further preferred embodiment of the present utility model, as Figures 1 - 3As shown, the driving member 9 includes a driving motor 12, the driving motor 12 is fixedly connected to the bottom side of the cabinet body 1, the output end of the driving motor 12 is connected with a driving shaft 13, the end of the driving shaft 13 extends into the ventilation chamber 3, the bottom ends of the two rotating shafts 6 are both connected with transmission bevel gears 14, and two driving bevel gears 15 are fixedly connected to the outer peripheral wall of the driving shaft 13. The two driving bevel gears 15 are respectively meshed with the two transmission bevel gears 14.
[0028] In this embodiment, the driving motor 12 in the driving member 9 will drive the driving shaft 13 to rotate. When the driving shaft 13 rotates, it will drive the driving bevel gears 15 mounted on the driving shaft 13 to rotate. Among them, the two driving bevel gears 15 are meshed with the corresponding two transmission bevel gears 14. Therefore, when the driving bevel gears 15 rotate, they will drive the meshed transmission bevel gears 14 to rotate, and then drive the corresponding rotating shafts 6 to rotate. Therefore, when the rotating shafts 6 rotate, they will drive the fan blades 7 to rotate. Finally, the external air is sent into the cabinet body 1 through the rotation of the fan blades 7, and the hot air is discharged from the cabinet body 1.
[0029] In a further preferred embodiment of the present utility model, as Figures 1 - 4 shown, the auxiliary member 11 includes an auxiliary motor 16, the auxiliary motor 16 is fixedly installed on the top side of the cabinet body 1, the output end of the auxiliary motor 16 is connected with an auxiliary shaft 17, the bottom end of the auxiliary shaft 17 extends into the auxiliary chamber 10, an auxiliary gear 18 is sleeved on the bottom end of the auxiliary shaft 17, a transmission gear 19 is rotatably connected to the side of the auxiliary gear 18 in the auxiliary chamber 10, an auxiliary rod 20 is fixedly connected to the top side of the transmission gear 19, an auxiliary fan 21 is connected to the top end of the auxiliary rod 20, an air outlet 22 is opened on the top side of the cabinet body 1 directly above the auxiliary fan 21, and an auxiliary net 23 is connected to the inner peripheral wall of the air outlet 22.
[0030] In this embodiment, when the driving member 9 drives the fan blades 7 to rotate for heat dissipation, at this time, the auxiliary member 11 drives the auxiliary shaft 17 to rotate through the auxiliary motor 16. The auxiliary shaft 17 will drive the auxiliary gear 18 to rotate. The auxiliary gear 18 will drive the two transmission gears 19 meshed with it to rotate, and then drive the two corresponding auxiliary fans 21 to rotate. When the auxiliary fans 21 rotate, they will send the air in the cabinet body 1 out through the air outlet 22, so as to cooperate with the rotation of the fan blades 7, accelerate the air flow speed in the cabinet body 1, so that the hot air in the cabinet body 1 can be quickly transported to the outside, thereby reducing the residence time of the hot air in the cabinet body 1 and improving the heat dissipation efficiency.
[0031] In a further preferred embodiment of the present utility model, as Figures 1 - 3As shown in the figure, chutes 24 are formed on two side walls inside the ventilation bin 3. An indentation 25 is formed at the top side of the ventilation bin 3 at the position of the chutes 24. A net plate 26 is slidably installed in the indentation 25. Two ends of the net plate 26 are respectively slidably connected to the two chutes 24.
[0032] In this embodiment, the provided chutes 24 and indentation 25 can slide the two ends of the net plate 26 into the two chutes 24 when installing the net plate 26. The indentation 25 is used to avoid the net plate 26. When there is a lot of dust on the net plate 26, it can be directly pumped upwards, so that the net plate 26 can be quickly removed for cleaning. At the same time, the net plate 26 can filter most of the dust when external air enters the cabinet 1, avoiding excessive dust in the cabinet 1 from affecting the use of internal electrical components.
[0033] In addition, the provided net cover 8, auxiliary net 23, and net plate 26 are all filter nets, which are used for dust filtration in the device, avoiding dust from falling into the cabinet 1 from the outside and avoiding dust from entering the cabinet during air extraction; among them, the provided auxiliary cover is of a mesh structure.
[0034] The embodiments of this specific implementation manner are all preferred embodiments of the present invention, and do not limit the protection scope of the present invention accordingly. Therefore, all equivalent changes made according to the structure, shape, and principle of the present invention should be covered within the protection scope of the present invention.
Claims
1. An Internet of Things power consumption monitoring device, comprising a cabinet body (1) and a cabinet door (2), wherein the cabinet door (2) is installed at the opening of the cabinet body (1) through a hinge, and is characterized in that, At the bottom end inside the cabinet body (1), a ventilation chamber (3) is fixedly installed. One side of the ventilation chamber (3) close to the cabinet door (2) is open. Two round holes (4) are opened on the top side of the ventilation chamber (3). A support plate (5) is fixedly connected inside the round holes (4). On the top side of the support plate (5), a rotating shaft (6) is arranged. The bottom end of the rotating shaft (6) passes through the support plate (5) and extends into the ventilation chamber (3), and the rotating shaft (6) is rotatably connected with the support plate (5). The top end of the rotating shaft (6) is connected with a fan blade (7). A wire mesh cover (8) is fixedly connected to the top side inside the round holes (4). A driving member (9) is arranged inside the ventilation chamber (3). On the top side inside the cabinet body (1), an auxiliary chamber (10) is fixedly connected. An auxiliary member (11) is arranged inside the auxiliary chamber (10).
2. The IoT power consumption monitoring device according to claim 1, wherein, The driving member (9) includes a driving motor (12). The driving motor (12) is fixedly connected to the bottom side of the side of the cabinet body (1). The output end of the driving motor (12) is connected with a driving shaft (13). The end of the driving shaft (13) extends into the ventilation chamber (3).
3. An Internet of Things power consumption monitoring device according to claim 2, characterized in that, The bottom ends of the two rotating shafts (6) are both connected with transmission bevel gears (14). Two driving bevel gears (15) are fixedly connected to the outer peripheral wall of the driving shaft (13). The two driving bevel gears (15) are respectively meshed with the two transmission bevel gears (14).
4. The Internet of Things electricity consumption monitoring device according to claim 3, characterized in that: The auxiliary member (11) includes an auxiliary motor (16). The auxiliary motor (16) is fixedly installed on the top side of the cabinet body (1). The output end of the auxiliary motor (16) is connected with an auxiliary shaft (17). The bottom end of the auxiliary shaft (17) extends into the auxiliary chamber (10). An auxiliary gear (18) is sleeved on the bottom end of the auxiliary shaft (17).
5. An Internet of Things power consumption monitoring device according to claim 4, characterized in that, A transmission gear (19) is rotatably connected to the side of the auxiliary gear (18) inside the auxiliary chamber (10). An auxiliary rod (20) is fixedly connected to the top side of the transmission gear (19). The top end of the auxiliary rod (20) is connected with an auxiliary fan (21). An air outlet (22) is opened on the top side of the cabinet body (1) directly above the auxiliary fan (21). An auxiliary net (23) is connected to the inner peripheral wall of the air outlet (22).
6. An Internet of Things power consumption monitoring device according to claim 5, characterized in that, Chutes (24) are opened on the two side walls inside the ventilation chamber (3). A notch (25) is opened on the top side of the ventilation chamber (3) at the position of the chutes (24). A net plate (26) is slidably installed inside the notch (25). The two ends of the net plate (26) are respectively slidably connected with the two chutes (24).
Citation Information
Patent Citations
Electricity utilization monitoring device for Internet of Things
CN215009074U