Intelligent temperature and humidity monitoring device for power distribution room
By installing an air collection pipe, air intake assembly, and intelligent temperature and humidity monitoring pipe in the power distribution room, uniform mixing of air and accurate temperature and humidity detection are achieved, solving the problems of uneven detection and high energy consumption in existing technologies, and improving safety and detection accuracy.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-16
- Publication Date
- 2026-03-31
AI Technical Summary
Existing technologies cannot ensure uniform collection and detection of humidity in the air, resulting in low detection accuracy and the potential for excessive dehumidification or excessive cooling, which increases energy consumption and fire hazards.
The system employs an air collection pipe, a first air intake component, a second air intake component, and a temperature and humidity intelligent monitoring pipe. It measures temperature and humidity by mixing the air in different spaces within the power distribution room evenly. It utilizes a guide plate and a cone-shaped pipe to improve the uniformity of air mixing and prevent moisture accumulation, and uses a frustum-shaped pipe to promote air circulation.
It improves the accuracy and uniformity of temperature and humidity detection, reduces the risk of over-dehumidification and cooling, reduces energy consumption, and enhances safety.
Smart Images

Figure CN224067163U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of power distribution equipment technology, specifically a power distribution room temperature and humidity intelligent monitoring device. Background Technology
[0002] Monitoring the temperature and humidity in power distribution rooms is crucial to ensuring that these conditions meet the operational requirements of the equipment. This prevents damage to electrical equipment caused by excessively high or low temperatures and humidity, which could negatively impact the stability and safety of the entire power system. Inappropriate temperature and humidity can lead to decreased insulation performance, accelerated aging, and even serious consequences such as short circuits and fires. With advancements in technology, modern intelligent monitoring systems utilize smart electronic detection devices to monitor temperature and humidity, further enhancing the safety of power distribution rooms.
[0003] Chinese patent CN218216155U discloses a power distribution box with temperature and humidity detection function. It utilizes a humidity sensor, a first fan, a fan shroud, and a de-icing mechanism to slowly deliver air from the top to the bottom of the box. Due to the higher density of humid air, it accumulates at the bottom of the box. The humidity sensor is located on the inner bottom wall of the box, in an area with higher humidity. Therefore, the humidity measured by the sensor is higher than the average humidity level within the box, thus triggering the dehumidification mechanism in a timely manner.
[0004] However, the above-mentioned patent still has the following drawbacks. The above-mentioned patent delivers most of the humid air to the bottom to detect the accumulated high humidity air. Although it greatly improves the detection sensitivity, the overall detection uniformity is also greatly reduced. It is impossible to effectively collect and detect more locations, which can easily cause the subsequent dehumidification mechanism to over-dehumidify. This not only increases the energy consumption of the relevant dehumidification mechanism, but also makes the power distribution room more prone to fire in hot weather due to over-dehumidification. Utility Model Content
[0005] In order to overcome the shortcomings of the prior art, the present invention solves the technical problem that the prior art cannot ensure uniform collection and detection of humidity air, and further improves the accuracy of temperature and humidity detection, avoiding the secondary impact of air humidity on the detector.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a power distribution room temperature and humidity intelligent monitoring device, comprising: a power distribution room cabinet, an air collection pipe installed along the vertical direction of the power distribution room cabinet on the inner wall of the power distribution room cabinet, wherein the air collection pipe is a hollow tubular structure and the two ends of the air collection pipe are respectively facing the upper and lower tops of the power distribution room cabinet;
[0007] The first suction component and the second suction component are respectively installed at both ends of the air collection pipe, and the first suction component and the second suction component respectively draw external air into the air collection pipe from both ends of the air collection pipe.
[0008] The temperature and humidity intelligent monitoring tube is installed on the outer wall of the middle part of the air collection pipe. The temperature and humidity intelligent monitoring tube is a hollow tubular structure. A temperature sensor and a humidity sensor are installed in the temperature and humidity intelligent monitoring tube. A through hole communicating with the temperature and humidity intelligent monitoring tube is opened on the outer wall of the middle part of the air collection pipe.
[0009] Preferably, at least two guide plates are installed on the inner wall of the middle part of the air collection pipe, the guide surfaces of the two guide plates are opposite to each other, and the two guide plates extend along the through hole into the body of the temperature and humidity intelligent monitoring pipe.
[0010] Preferably, the airflow guiding surfaces of the two guide vanes are arc-shaped.
[0011] Preferably, the end of the temperature and humidity intelligent monitoring tube that communicates with the through hole is configured as a conical tube, the diameter of one end of the conical tube relative to the air collecting pipe is larger than the diameter of the other end, and the temperature sensor and humidity sensor are located on the side of the conical tube away from the air collecting pipe.
[0012] Preferably, the end of the temperature and humidity intelligent monitoring tube that is away from the air collecting pipe is set as an opening, and the opening is set as a frustum-shaped tube, with the bottom end of the frustum-shaped tube sloping downward along the direction away from the air collecting pipe.
[0013] Preferably, the first suction assembly includes a first motor and a first fan. The first motor is installed at the top of the air collection pipe, and the first fan is installed at the output end of the first motor. The air inlet surface of the first fan is relative to the top of the air collection pipe, and the air outlet surface of the first fan is relative to the inside of the air collection pipe.
[0014] Preferably, the second suction assembly includes a second motor and a second fan. The second motor is installed at the bottom end of the air collection pipe, and the second fan is installed at the output end of the second motor. The air inlet surface of the second fan is relative to the bottom end of the air collection pipe, and the air outlet surface of the second fan is relative to the inside of the air collection pipe.
[0015] Preferably, dustproof nets are installed at both ends of the air collection pipe.
[0016] In summary, compared with the prior art, the beneficial effects of this utility model are as follows:
[0017] (1) By setting up an air collection pipe, a first air intake component, a second air intake component and a temperature and humidity intelligent monitoring pipe, the air in different spaces in the power distribution room is collected and mixed, so that the air temperature and humidity inside the power distribution room are mixed evenly. Finally, the temperature and humidity of the whole are measured by the temperature and humidity intelligent monitoring pipe, avoiding the problem of inaccurate detection of air in one place.
[0018] (2) By setting up a baffle, the baffle can guide the air into the temperature and humidity intelligent monitoring tube, avoiding most of the air from flowing out from both ends of the air collection tube, ensuring that a sufficient amount of air is introduced into the temperature and humidity intelligent monitoring tube for temperature and humidity monitoring, thus ensuring the accuracy of monitoring.
[0019] (3) By setting up a cone tube, the air in the upper and lower parts of the air collection tube will intersect and mix along the oblique surfaces on both sides of the cone tube, thereby improving the uniformity of air mixing in the upper and lower parts, which greatly improves the detection accuracy of the subsequent temperature sensor and humidity sensor, and avoids the inaccuracy of detecting air in one area.
[0020] (4) By setting up a frustum-shaped tube, when air is discharged from the opening of the temperature and humidity intelligent monitoring tube, the bottom end of the frustum-shaped tube is tilted downward to help the air flow downward, which can greatly prevent the moisture in the air from accumulating into water at the opening of the temperature and humidity intelligent monitoring tube, thereby reducing the problem of excessive moisture affecting the inaccurate detection of the humidity sensor.
[0021] (5) By setting the air outlet of the temperature and humidity intelligent monitoring tube to an open, the first and second air intake components draw in air into the air collection pipe and then discharge it from the opening of the temperature and humidity intelligent monitoring tube, which greatly promotes the air circulation in the power distribution room. This device can not only improve the accuracy of temperature and humidity monitoring, but also play a role in cooling and dehumidifying. Attached Figure Description
[0022] Figure 1 This is a three-dimensional schematic diagram of the power distribution room in which this patent is applied.
[0023] Figure 2 This is a front view of the power distribution room in this patent application.
[0024] Figure 3 This is a three-dimensional structural diagram of this patent.
[0025] Figure 4 for Figure 3 A three-dimensional sectional view.
[0026] Figure 5 for Figure 3 The front sectional view.
[0027] Figure 6 This is a partial structural diagram of the intelligent temperature and humidity monitoring tube.
[0028] Figure 7 This is a structural diagram of the first and second suction components.
[0029] Explanation of reference numerals in the attached drawings: 1. Distribution room cabinet; 2. Air collection pipe; 21. Through hole; 22. Deflector plate; 23. Dustproof net; 24. Conical tube; 3. First suction assembly; 31. First motor; 32. First fan; 4. Second suction assembly; 41. Second motor; 42. Second fan; 5. Intelligent temperature and humidity monitoring tube; 51. Temperature sensor; 52. Humidity sensor; 53. Opening; 54. Frustum-shaped tube. Detailed Implementation
[0030] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.
[0031] Please see Figure 1-2 This utility model proposes an intelligent monitoring device for temperature and humidity in a power distribution room. It can be installed inside a power distribution room cabinet 1 to intelligently monitor the temperature and humidity of the cabinet. When the intelligent monitoring device detects that the temperature or humidity does not meet the expected range, relevant personnel can adjust the temperature or humidity of the cabinet 1 using temperature and humidity control equipment to bring it to a normal and safe range (existing temperature and humidity control equipment will not be described in detail here).
[0032] Currently, most existing temperature and humidity monitoring devices, when monitoring the temperature and humidity of the air inside the power distribution room cabinet 1, often only monitor the air in one area, resulting in problems such as collecting temperature or humidity data that are too high or too low. For example, existing temperature and humidity monitoring devices only detect the high-humidity air deposited at the bottom of the power distribution room cabinet 1, resulting in excessively high humidity data. This leads to over-dehumidification by the related humidity control equipment, which, in hot weather, makes the area inside the power distribution room cabinet 1 too dry, increasing the fire hazard and the energy consumption of the humidity control equipment. Similarly, existing temperature and humidity monitoring devices only monitor the area with densely packed electronic components inside the power distribution room cabinet 1, resulting in excessively high temperature data. This leads to excessive cooling by the related temperature control equipment, further increasing the energy consumption of the equipment. The intelligent monitoring device of this application, however, can collect and mix the air from different spaces within the power distribution room cabinet 1, ensuring a uniform temperature and humidity distribution. Finally, the intelligent temperature and humidity monitoring device measures the overall accurate temperature and humidity.
[0033] Please see Figure 3-5The intelligent temperature and humidity monitoring device for power distribution rooms can include an air collection pipe 2, a first suction component 3, a second suction component 4, and an intelligent temperature and humidity monitoring tube 5. The first suction component 3 and the second suction component 4 can respectively draw air from the upper and lower parts of the power distribution room cabinet 1 into the air collection pipe 2, so that the air in the upper and lower spaces of the power distribution room cabinet 1 can be evenly mixed within the air collection pipe 2, thereby uniformly distributing the air temperature and humidity inside the power distribution room cabinet 1. Finally, the air in the air collection pipe 2 enters the intelligent temperature and humidity monitoring tube 5, where the intelligent temperature and humidity monitoring device can accurately monitor the air temperature and humidity, greatly improving the accuracy of temperature and humidity monitoring.
[0034] Please see Figure 4 To facilitate the intake of air from the upper and lower parts of the distribution room cabinet 1 into the air manifold 2, the air manifold 2 can be configured as a hollow tubular structure. It is installed vertically along the inner wall of the distribution room cabinet 1, with both ends facing the upper and lower tops of the cabinet. This allows air from the upper and lower parts to enter the hollow tubular structure of the air manifold 2 from both ends. Of course, the tubular structure of the air manifold 2 can be a cylindrical tube, a cuboid tube, or other irregularly shaped tube; the specific design can be based on the actual spatial structure within the distribution room cabinet 1 and is not limited here.
[0035] Please see Figure 5 Furthermore, a first suction component 3 and a second suction component 4 can be installed at both ends of the air collection pipe 2, respectively. The first suction component 3 and the second suction component 4 can then draw external air into the air collection pipe 2 from both ends, allowing the air from the upper and lower parts of the distribution room cabinet 1 to be collected and mixed within the air collection pipe 2. This ensures uniform temperature and humidity distribution inside the distribution room cabinet 1, ultimately enabling accurate measurement of the overall temperature and humidity. Simultaneously, after drawing air into the air collection pipe 2, the first suction component 3 and the second suction component 4 discharge it from the intelligent temperature and humidity monitoring pipe 5, significantly promoting air circulation within the distribution room cabinet 1 and achieving cooling and dehumidification.
[0036] Please see Figure 7 It should be noted that the first suction assembly 3 may include a first motor 31 and a first fan 32. The first motor 31 may be installed at the top of the air collecting pipe 2, and the first fan 32 may be installed at the output end of the first motor 31. Furthermore, the air inlet surface of the first fan 32 may be positioned relative to the top of the air collecting pipe 2, and the air outlet surface of the first fan 32 may be relative to the interior of the air collecting pipe 2. Thus, when the first motor 31 is started, the first fan 32 draws external air from one side of the top of the air collecting pipe 2 into the air collecting pipe 2.
[0037] Please see Figure 7 It should also be noted that the second suction assembly 4 may include a second motor 41 and a second fan 42. The second motor 41 can be installed at the bottom of the air collection pipe 2, and the second fan 42 can be installed at the output end of the second motor 41. The air inlet surface of the second fan 42 can be set relative to the bottom of the air collection pipe 2, and the air outlet surface of the second fan 42 can be set relative to the inside of the air collection pipe 2. Thus, when the second motor 41 is started, the second fan 42 draws external air from one side of the bottom of the air collection pipe 2 into the air collection pipe 2. In summary, the first suction assembly 3 and the second suction assembly 4 can respectively draw air from the upper and lower spaces outside the air collection pipe 2 into the air collection pipe 2 for uniform mixing. After the air in the air collection pipe 2 enters the temperature and humidity intelligent monitoring tube 5, the temperature and humidity intelligent monitoring device can accurately monitor the temperature and humidity of the uniformly mixed air, greatly improving the accuracy of temperature and humidity monitoring.
[0038] Please see Figure 5-6 It is important to understand that the intelligent temperature and humidity monitoring tube 5 can be installed on the outer wall of the middle section of the air collection pipe 2, and is designed as a hollow tubular structure. Simultaneously, a through hole 21 communicating with the intelligent temperature and humidity monitoring tube 5 can be opened on the outer wall of the middle section of the air collection pipe 2. This allows air from the upper and lower areas of the distribution room cabinet 1 to be evenly mixed within the air collection pipe 2 before entering the intelligent temperature and humidity monitoring tube 5 for temperature and humidity monitoring. Further explanation is needed regarding the intelligent temperature and humidity monitoring devices installed in the intelligent temperature and humidity monitoring tube 5, which may include a temperature sensor 51 and a humidity sensor 52. The temperature sensor 51 monitors the temperature of the air entering the intelligent temperature and humidity monitoring tube 5, and the temperature sensor 52 monitors the humidity of the air entering the intelligent temperature and humidity monitoring tube 5. It should be noted that the temperature sensor 51 and humidity sensor 52 are existing technologies and will not be elaborated upon here. These temperature sensor 51 and humidity sensor 52 detect the temperature and humidity of the evenly mixed air in the upper and lower areas within the intelligent temperature and humidity monitoring tube 5, which can greatly improve the accuracy of temperature and humidity monitoring.
[0039] Please see Figure 4-5Regarding the air collection pipe 2, it should be noted that at least two guide plates 22 can be installed on the inner wall of the middle section of the air collection pipe 2, with the guide surfaces of the two guide plates 22 facing away from each other, and the two guide plates 22 extending along the through holes 21 into the temperature and humidity intelligent monitoring pipe body 5. Thus, when the air drawn in by the first suction assembly 3 enters the air collection pipe 2 and flows downward along the upper part of the air collection pipe 2, it will be guided by the corresponding guide plate 22 into the temperature and humidity intelligent monitoring pipe body 5, preventing most of the air from flowing downward from the bottom of the air collection pipe 2, ensuring that a sufficient amount of air is introduced into the temperature and humidity intelligent monitoring pipe body 5 for temperature and humidity monitoring, thus ensuring monitoring accuracy. Similarly, when the air drawn in by the second suction assembly 4 enters the air collection pipe 2 and flows upward along the lower part of the air collection pipe 2, it will be guided by the corresponding guide plate 22 into the temperature and humidity intelligent monitoring pipe body 5, preventing most of the air from flowing upward from the top of the air collection pipe 2, ensuring that a sufficient amount of air is introduced into the temperature and humidity intelligent monitoring pipe body 5 for temperature and humidity monitoring, thus ensuring monitoring accuracy.
[0040] Please see Figure 4-5 More specifically, the airflow guiding surfaces of the two guide vanes 22 can preferably be set to an arc shape. The arc-shaped guiding surface can smoothly guide air from the air collection pipe 2 into the temperature and humidity intelligent monitoring tube 5. For example, a V-shaped bend in the guiding surface can easily cause moisture in the air to accumulate at the bend, reducing the effect of uniform air mixing. This arc-shaped guiding surface can improve the air mixing effect, thereby improving the temperature and humidity monitoring effect of the temperature sensor 51 and the humidity sensor 52.
[0041] Please see Figure 5 It should be noted that dustproof nets 23 can be installed at both ends of the air collection pipe 2. When the first suction assembly 3 and the second suction assembly 4 draw air from the upper and lower spaces outside the air collection pipe 2 into the air collection pipe 2, a lot of large dust particles will be brought in. The dustproof nets 23 can block the large dust particles and prevent them from entering the temperature and humidity intelligent monitoring tube 5 from the air collection pipe 2, thereby reducing the risk that the temperature sensor 51 and humidity sensor 52 will be covered by large dust particles and affect the detection accuracy.
[0042] Please see Figure 5It should be further explained that, in order to improve the mixing effect of the upper and lower parts of the air in the air collection pipe 2, the end of the temperature and humidity intelligent monitoring tube 5 connected to the through hole 21 can be set as a conical tube 24, and the diameter of one end of the conical tube 24 relative to the air collection pipe 2 can be set to be larger than the diameter of the other end. At the same time, the temperature sensor 51 and the humidity sensor 52 can be set on the side of the conical tube 24 away from the air collection pipe 2. Thus, when the air in the upper and lower parts of the air in the air collection pipe 2 enters the temperature and humidity intelligent monitoring tube 5, it will first pass through the conical tube 24. Since the two sides of the conical tube 24 are inclined surfaces that gradually narrow towards the temperature and humidity intelligent monitoring tube 5, the air in the upper and lower parts will intersect and mix again along the two inclined surfaces, improving the mixing uniformity of the air in the upper and lower parts, thereby greatly improving the detection accuracy of the subsequent temperature sensor 51 and humidity sensor 52, and avoiding the inaccuracy of detecting the air in one area.
[0043] Please see Figure 5 It should be understood that the end of the temperature and humidity intelligent monitoring tube 5 away from the air collection pipe 2 can be set as an opening 53. After the first suction component 3 and the second suction component 4 draw in air into the air collection pipe 2, the air is discharged from the opening 53 of the temperature and humidity intelligent monitoring tube 5, which greatly promotes the air circulation in the power distribution room cabinet 1. This allows the device to not only improve the accuracy of temperature and humidity monitoring, but also play a role in cooling and dehumidifying.
[0044] Please see Figure 5 Furthermore, the opening 53 can be configured as a frustum-shaped tube 54, and the bottom end of the frustum-shaped tube 54 can be inclined downwards in the direction away from the air collecting pipe 2. Thus, when air is discharged from the opening 53 of the temperature and humidity intelligent monitoring tube 5, the downward inclination of the bottom end of the frustum-shaped tube 54 helps the air flow downwards, greatly preventing moisture in the air from accumulating into water at the opening 53, thereby reducing the problem of excessive moisture affecting the inaccurate detection of the humidity sensor 52. For example, if the opening 53 is set as a flat surface or inclined upwards, moisture is easily accumulating into water at the opening 53 of the temperature and humidity intelligent monitoring tube 5, causing the humidity sensor 52 to detect excessively high humidity data. This could trigger excessive dehumidification by related humidity control equipment, which, in hot weather, would make the electrical room cabinet 1 too dry, increasing the fire hazard and energy consumption of the equipment. Therefore, this frustum-shaped tube 54 can greatly improve detection accuracy.
[0045] In summary, the intelligent temperature and humidity monitoring device for power distribution rooms of this invention can be installed inside the power distribution room cabinet 1 to achieve intelligent monitoring of the temperature and humidity of the power distribution room cabinet 1. It can collect and mix air from different spaces within the power distribution room cabinet 1, ensuring uniform temperature and humidity distribution inside the cabinet 1. The temperature and humidity are then detected by the temperature sensor 51 and humidity sensor 52 in the intelligent temperature and humidity monitoring tube 5, greatly improving the accuracy of air temperature and humidity monitoring and avoiding the problem of excessive dehumidification.
[0046] The specification and claims use certain terms to refer to specific components. Those skilled in the art will understand that hardware manufacturers may use different names to refer to the same component. This specification and claims do not distinguish components based on differences in name, but rather on differences in function. The term "comprising" throughout the specification and claims is an open-ended term and should be interpreted as "comprising but not limited to." "Approximately" means that within an acceptable margin of error, those skilled in the art can solve the technical problem and substantially achieve the technical effect within a certain margin of error.
[0047] It should be noted that the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a product or system comprising a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a product or system. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the product or system that includes said element.
[0048] The foregoing description illustrates and describes several preferred embodiments of this application. However, as previously stated, it should be understood that this application is not limited to the forms disclosed herein and should not be construed as excluding other embodiments. It can be used in various other combinations, modifications, and environments, and can be altered within the scope of the application concept described herein through the foregoing teachings or techniques or knowledge in related fields. Any modifications and variations made by those skilled in the art that do not depart from the spirit and scope of this application should be within the protection scope of the appended claims.
Claims
1. A power distribution room temperature and humidity intelligent monitoring device, characterized in that, The utility model relates to a kind of air collection pipe and temperature and humidity intelligent monitoring pipe body for power distribution room, including: Power distribution room cabinet (1), air collection pipe (2) is installed to the inner wall of power distribution room cabinet (1) along the vertical direction of the power distribution room cabinet (1), the air collection pipe (2) is hollow tubular structure, and the two ends of the air collection pipe (2) are respectively towards the upper and lower top of power distribution room cabinet (1); First suction component (3) and second suction component (4) are respectively installed in the two ends of the air collection pipe (2), and the first suction component (3) and second suction component (4) are respectively by the two ends of air collection pipe (2) to suck external air into air collection pipe (2); Temperature and humidity intelligent monitoring pipe body (5) is installed on the middle outer wall of the air collection pipe (2), and the temperature and humidity intelligent monitoring pipe body (5) is hollow tubular structure, temperature sensor (51) and humidity sensor (52) are installed in the temperature and humidity intelligent monitoring pipe body (5), and the middle outer wall of the air collection pipe (2) is provided with through hole (21) communicated with temperature and humidity intelligent monitoring pipe body (5).
2. The power distribution room temperature and humidity intelligent monitoring device according to claim 1, characterized in that, At least two guide plates (22) are installed on the middle inner wall of the air collection pipe (2), the guide surfaces of two guide plates (22) are opposite, and two guide plates (22) are respectively extended into temperature and humidity intelligent monitoring pipe body (5) along through hole (21).
3. The power distribution room temperature and humidity intelligent monitoring device according to claim 2, characterized in that, The guide surfaces of two guide plates (22) relative to airflow are arc-shaped.
4. The power distribution room temperature and humidity intelligent monitoring device according to claim 1, characterized in that, The end of the temperature and humidity intelligent monitoring pipe body (5) communicated with through hole (21) is provided as a conical pipe (24), the diameter of the conical pipe (24) relative to one end of the air collection pipe (2) is greater than the diameter of the other end, and the temperature sensor (51) and humidity sensor (52) are arranged on the side of the conical pipe (24) away from the air collection pipe (2).
5. The power distribution room temperature and humidity intelligent monitoring device according to claim 1, characterized in that, The end of the temperature and humidity intelligent monitoring pipe body (5) away from the air collection pipe (2) is provided as an opening (53), and the opening (53) is provided as a prismatic frustum pipe (54), the bottom end of the prismatic frustum pipe (54) is inclined downward along the direction away from the air collection pipe (2).
6. The power distribution room temperature and humidity intelligent monitoring device according to claim 1, characterized in that, The first suction component (3) includes a first motor (31) and a first fan (32), the first motor (31) is installed at the top end of the air collection pipe (2), the first fan (32) is installed at the output end of the first motor (31), and the air inlet surface of the first fan (32) is relative to the top end of the air collection pipe (2), and the air outlet surface of the first fan (32) is relative to the inside of the air collection pipe (2).
7. The power distribution room temperature and humidity intelligent monitoring device according to claim 1, characterized in that, The second suction component (4) includes a second motor (41) and a second fan (42), the second motor (41) is installed at the bottom end of the air collection pipe (2), the second fan (42) is installed at the output end of the second motor (41), and the air inlet surface of the second fan (42) is relative to the bottom end of the air collection pipe (2), and the air outlet surface of the second fan (42) is relative to the inside of the air collection pipe (2).
8. The power distribution room temperature and humidity intelligent monitoring device according to claim 1, characterized in that, Dustproof net (23) is installed at the two ends of the air collection pipe (2).
Citation Information
Patent Citations
Distribution box with temperature and humidity detection function
CN218216155U