An intelligent self-adaptive constant temperature management system metering box

By designing an intelligent adaptive constant temperature management system in the power metering box, using the air flow generated by the fan and the automatic switching cycle mode, the detection problems caused by temperature differences in the power metering box are solved, and more uniform temperature management and higher detection accuracy are achieved.

CN119695676BActive Publication Date: 2025-05-06SHANDONG SHENGYUNHENG ELECTRIC CO LTD
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Patent Information

Application Number
CN202510195035.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-21
Publication Date
2025-05-06
Estimated Expiration
2045-02-21

AI Technical Summary

Technical Problem

The temperatures at different locations inside the power metering box may vary, resulting in the local temperature sensor being unable to detect the temperature in the box accurately in a timely and accurate manner, which will affect the normal operation and life of the power metering equipment.

Method used

An intelligent adaptive constant temperature management system metering box is designed to flow the air in the box through the air flow generated by the fan, reduce the temperature gradient, and automatically switch the internal circulation mode and the external circulation mode through the coordination of the first baffle, the solenoid, the first gear frame, the temperature sensor and the second gear frame to realize intelligent adaptive constant temperature management.

Benefits of technology

Effectively reduce the temperature gradient in the box, make the temperature more uniform, improve the timeliness and accuracy of temperature detection, and realize intelligent adaptive constant temperature management to ensure the normal operation and life of power metering equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a metering box of an intelligent adaptive constant temperature management system, which relates to the technical field of metering boxes, and comprises a box body, wherein the box body is fixedly connected with a box door symmetrically distributed along the box body, a built-in box is fixedly connected inside the box body, a U-shaped heat preservation cavity is arranged between the box body and the built-in box, the box body is fixedly connected with a heating pipe group symmetrically distributed along the box body, the inner side wall of the built-in box is fixedly connected with an electrical device, the inner top wall of the built-in box is fixedly connected with a fan, the fan is located above the electrical device, and the inner top wall of the box body is fixedly connected with a filter. The present invention can effectively make the air in the box flow through the airflow generated by the fan, thereby reducing the temperature gradient in the box, making the temperature of each part in the box more uniform, avoiding local overheating, and making the uniform hot air in the box be blown downward to the temperature sensor for detection, thereby improving the timeliness and accuracy of the detection.
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Description

Technical Field

[0001] The present invention relates to the technical field of metering boxes, and in particular to a metering box of an intelligent self-adaptive constant temperature management system. Background Art

[0002] The power meter box with intelligent adaptive constant temperature management system is designed to ensure that the power metering equipment can maintain the optimal operating temperature under various environmental conditions. This system integrates multiple sensors and control technologies to achieve accurate monitoring and automatic adjustment of the temperature inside the box.

[0003] The temperature at different locations inside the power meter box may be different, and a single local temperature sensor may not be able to detect the actual temperature of the entire box in a timely and accurate manner. In this case, the temperature control system may have lagging or inaccurate problems, which will affect the normal operation and life of the power metering equipment.

[0004] Based on the above situation, the present invention proposes a metering box of an intelligent adaptive constant temperature management system. Summary of the invention

[0005] In order to overcome the disadvantage that the temperature condition cannot be detected timely and accurately due to temperature differences, the present invention provides a metering box of an intelligent adaptive constant temperature management system.

[0006] The heat dissipation mechanism of the present invention is a heat dissipation mechanism, wherein the heat dissipation mechanism is a heat dissipation mechanism, and the heat dissipation mechanism is a heat dissipation mechanism, wherein the heat dissipation mechanism is a heat dissipation mechanism, and the heat dissipation mechanism is a heat dissipation mechanism. The adjacent first baffles are slidably connected, and a first tension spring is fixedly connected between the electromagnet and the adjacent first baffle, and the first baffle is fixedly connected to a magnetic block. When power is turned on, the electromagnet cooperates with the adjacent magnetic block through magnetic force, and the side of the box body close to the first tension spring is slidably connected to a first baffle symmetrically distributed along the box body, and the side of the box body close to the first baffle is provided with an air outlet, and the first baffle is used to block the air outlet, and the first baffle is squeezed and matched with the adjacent first baffle, and the bottom of the built-in box is provided with strip holes distributed at equal intervals, and a temperature sensor is fixedly connected to one side of the box body close to the strip holes, and the temperature sensor is located in the heat preservation chamber, and the side of the built-in box close to the filter box is slidably connected to a second baffle symmetrically distributed along the built-in box, and the first baffle is slidably connected to the adjacent second baffle through an inclined groove, and the second baffle is used to block the filter holes of the filter box.

[0007] In one of the embodiments, the electromagnet cooperates with the adjacent magnetic block through the magnetic force of attraction.

[0008] In one of the embodiments, there is also a first guide plate symmetrically distributed along the fan, and the first guide plate is fixedly connected to the frame of the fan.

[0009] In one of the embodiments, it further includes placement racks symmetrically distributed along the built-in box, the placement racks are fixedly connected to the built-in box, and second guide plates are inserted into two of the placement racks.

[0010] In one of the embodiments, it also includes a pulling rack symmetrically distributed along the first baffle, the pulling rack is slidably connected to the adjacent heating tube group, a side of the built-in box away from the first baffle is provided with rectangular holes symmetrically distributed along the built-in box, the built-in box is rotatably connected to a second baffle symmetrically distributed along the built-in box, the pulling rack is used to pull the adjacent second baffle to rotate and open, the second baffle is used to block the adjacent rectangular hole, and a second tension spring is fixedly connected between the pulling rack and the adjacent heating tube group.

[0011] In one embodiment, a movable groove is formed on a side of the pull frame close to the adjacent second baffle plate, and the pull frame is movably connected to the adjacent second baffle plate through the movable groove.

[0012] In one embodiment, a tripod block corresponding to the puller is further included, the tripod block is fixedly connected to the corresponding puller, the heating tube group is rotatably connected to a rotating plate symmetrically distributed along the heating tube group, the rotating plate is used to block the air inlet of the heating tube group, and the rotating plate is squeezed and matched with the adjacent tripod block.

[0013] In one of the embodiments, an air guide frame is further included, wherein the air guide frame is fixedly connected to a side of the built-in box close to the temperature sensor, and the air guide frame is fixedly connected to a heat conducting plate, and the heat conducting plate is in contact with the temperature sensor.

[0014] In one of the embodiments, the built-in box is provided with inclined surfaces around one side close to the strip hole for evenly guiding the hot air flow to the air guide frame.

[0015] In one of the embodiments, screws are further included that are symmetrically distributed along the box body, the screws are threadedly connected to a side of the box body close to the first baffle, the first baffle plate and the box body are both provided with corresponding clamping holes, and the first baffle plate is fixed to the box body by driving the screws into the corresponding clamping holes.

[0016] Beneficial effect: The airflow generated by the fan of the present invention can effectively make the air in the box flow, thereby reducing the temperature gradient in the box, making the temperature of each part in the box more uniform, avoiding local overheating, and allowing the uniform hot air in the box to be blown downward to the temperature sensor for detection, thereby improving the timeliness and accuracy of the detection.

[0017] The present invention can automatically switch between the internal circulation mode and the external circulation mode according to the detection result of the temperature in the box through the cooperation of the first baffle, the electromagnet, the first baffle frame, the temperature sensor and the second baffle frame, thereby achieving the effect of intelligent adaptive constant temperature management.

[0018] The present invention uses two first left and right guide plates so that the wind blown by the fan not only blows the electrical equipment downward in the middle, but also is evenly guided to the left and right parts of the electrical equipment to achieve a uniform blowing effect. The wind blown by the fan is guided to the heat accumulation area through the second guide plate, so that the accumulated heat is blown to the temperature sensor to avoid heat accumulation.

[0019] When the first baffle is opened in the external circulation mode of the present invention, the pull frame pulls the second baffle to swing toward the side close to the insulation chamber through the movable groove, so that the high-temperature gas can be discharged from the bottom of the built-in box as well as from the rectangular holes on the left and right sides of the lower part of the built-in box, thereby accelerating the discharge of the high-temperature gas.

[0020] When the pull frame is pulled in the external circulation mode, the pull frame drives the tripod block to move upward, so that the tripod block no longer squeezes the rotating plate. Under the action of gravity, adjacent rotating plates swing downward until they contact each other. The high-temperature airflow does not enter the heating tube group for heating, but is directly discharged outside the box.

[0021] The present invention transfers heat to the temperature sensor evenly and stably through the air guide frame and the heat conduction plate, thereby improving the stability and accuracy of detection. At the same time, the air guide frame is used to protect the temperature sensor to prevent dust in the hot air flow from blowing onto the temperature sensor, thereby avoiding affecting the detection function of the temperature sensor.

[0022] When the present invention is in external circulation mode, the first baffle is limited by screws so that the first baffle remains in an open state, and the external circulation mode is maintained for a period of time to avoid the first baffle being continuously opened and closed due to temperature instability at high temperature. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.

[0024] Figure 2 It is a schematic diagram of the structure of the first baffle, the electromagnet, the first tension spring and other components of the present invention.

[0025] Figure 3 It is a three-dimensional structural schematic diagram of the fan, filter box, first baffle and other components of the present invention.

[0026] Figure 4 It is a three-dimensional structural schematic diagram of components such as the built-in box, the first baffle plate and the second baffle frame of the present invention.

[0027] Figure 5 It is a three-dimensional structural schematic diagram of the first guide plate, the placement rack, the second guide plate and other components of the present invention.

[0028] Figure 6 It is a three-dimensional structural schematic diagram of the first baffle, the pulling frame, the second baffle and other components of the present invention.

[0029] Figure 7 It is a three-dimensional structural schematic diagram of the components such as the tension frame, the second baffle plate and the second tension spring of the present invention.

[0030] Figure 8 It is a three-dimensional structural schematic diagram of the components such as the pulling frame, the tripod block and the rotating plate of the present invention.

[0031] Fig. 9 The figure is a three-dimensional structural schematic diagram of the heating tube group, the tripod block and the rotating plate of the present invention.

[0032] Fig.10 It is a three-dimensional structural schematic diagram of components such as a built-in box, a temperature sensor and an air guide frame of the present invention.

[0033] Fig.11 It is a schematic diagram of the three-dimensional structure of the temperature sensor, the air guide frame and the heat conduction plate separated according to the present invention.

[0034] Fig.12 It is a three-dimensional structural schematic diagram of the box body, the first baffle and the screws of the present invention.

[0035] Markings in the figure are: 1-box body, 2-box door, 3-built-in box, 301-heating tube group, 4-electrical equipment, 5-fan, 6-filter box, 7-first baffle, 8-electromagnet, 9-first tension spring, 10-magnetic block, 11-first baffle frame, 12-temperature sensor, 13-second baffle frame, 14-first guide plate, 15-placing frame, 16-second guide plate, 17-pull frame, 18-second baffle, 19-second tension spring, 20-trip block, 21-rotating plate, 22-air guide frame, 221-inclined surface, 23-heat conduction plate, 24-screw, 25-card hole. DETAILED DESCRIPTION

[0036] The present invention is further described in detail below in conjunction with the accompanying drawings and specific embodiments, but the protection scope and application scope of the present invention are not limited.

[0037] Embodiment 1: An intelligent adaptive constant temperature management system meter box, such as Figure 1-Figure 4As shown, it includes a box body 1, a box door 2 symmetrically distributed along the box body 1 is fixedly connected to the front side of the box body 1, a built-in box 3 is fixedly connected inside the box body 1, a U-shaped insulation cavity is arranged between the box body 1 and the built-in box 3 for constant temperature management, a heating pipe group 301 symmetrically distributed along the box body 1 is fixedly connected to the inner wall of the box body 1, the heating pipe group 301 is located in the insulation cavity, an electrical device 4 is fixedly connected to the rear side wall in the built-in box 3, a fan 5 is fixedly connected to the inner top wall of the built-in box 3, the fan 5 is located above the electrical device 4, a filter box 6 is fixedly connected to the inner top wall of the box body 1, the filter box 6 is located in the insulation cavity, an air inlet is opened on the top of the box body 1, a first baffle 7 symmetrically distributed along the box body 1 is slidably connected to the top of the box body 1, the first baffle 7 is used to block the air inlet, an electromagnet 8 symmetrically distributed along the box body 1 is fixedly connected to the top of the box body 1, the electromagnet 8 and the adjacent The first baffle plate 7 is slidably connected, and a first tension spring 9 is fixedly connected between the electromagnet 8 and the adjacent first baffle plate 7. A magnetic block 10 is fixedly connected to the first baffle plate 7. When power is turned on, the electromagnet 8 cooperates with the adjacent magnetic block 10 through the magnetic force of attraction. The upper part of the box body 1 is slidably connected along the up and down direction with a first baffle frame 11 symmetrically distributed along the left and right sides of the box body 1. Air outlets are opened on the upper parts of the left and right sides of the box body 1. The first baffle frame 11 is used to block the adjacent air outlets. The first baffle frame 11 is squeezed and matched with the adjacent first baffle plate 7. The bottom of the built-in box 3 is provided with strip holes distributed at equal intervals. A temperature sensor 12 is fixedly connected to the bottom wall of the box body 1. The temperature sensor 12 is located in the insulation chamber. The left and right sides of the upper part of the built-in box 3 are slidably connected with the second baffle frame 13 along the up and down direction. The first baffle plate 7 is slidably connected to the adjacent second baffle frame 13 through an inclined groove, and the second baffle frame 13 is used to block the filter holes of the filter box 6.

[0038] This is an intelligent adaptive constant temperature management system metering box. When the electrical equipment 4 is running, heat will be generated in the built-in box 3, and the fan 5 will be started. The fan 5 will blow downward the heat generated by the electrical equipment 4 when it is working, and the hot air will be concentrated and blown downward to the temperature sensor 12 for detection.

[0039] In the above process, when the temperature sensor 12 detects that the temperature is lower than the preset value, the temperature sensor 12 controls the electromagnet 8 through the control module to not be energized. At this time, the first baffle 7 blocks the air inlet of the box body 1, the first baffle 11 blocks the air outlet of the box body 1, and the second baffle 13 opens the filter holes of the insulation chamber and the filter box 6. In this way, the airflow blown to the temperature sensor 12 passes upward through the heating tube group 301 for heating and heating. The heated airflow continues to flow upward along the insulation chamber between the box body 1 and the built-in box 3 to the filter box 6. After the filter box 6 filters the airflow, the fan 5 blows the airflow downward to the electrical equipment 4. The cycle is repeated to achieve internal circulation at low temperatures to achieve the insulation effect.

[0040] In the above process, when the temperature sensor 12 detects that the temperature is higher than the preset value, the temperature sensor 12 controls the electromagnet 8 to be energized through the control module. At this time, under the action of the magnetic force of attraction, the magnetic block 10 drives the first baffle 7 to slide to the side away from each other, so that the air inlet of the box body 1 is opened, the first tension spring 9 is stretched, and the end of the first baffle 7 squeezes the first baffle frame 11 to slide upward, so that the air outlet of the box body 1 is opened. At the same time, the rear side of the first baffle 7 squeezes the second baffle frame 13 to slide upward through the inclined groove, so that the second baffle frame 13 closes the insulation chamber and the filter hole of the filter box 6. In this way, the airflow blown to the temperature sensor 12 is finally discharged through the air outlet of the box body 1, and the cycle is repeated to achieve external circulation at high temperature to achieve the insulation effect.

[0041] In summary, the airflow generated by the fan 5 of the present invention can effectively make the air in the box flow, thereby reducing the temperature gradient in the box, making the temperature of each part in the box more uniform, avoiding local overheating, and allowing the uniform hot air in the box to be blown downward to the temperature sensor 12 for detection, thereby improving the timeliness and accuracy of the detection.

[0042] The present invention can automatically switch between the internal circulation mode and the external circulation mode according to the detection result of the temperature in the box through the cooperation of the first baffle plate 7, the electromagnet 8, the first baffle frame 11, the temperature sensor 12 and the second baffle frame 13, thereby achieving the effect of intelligent adaptive constant temperature management.

[0043] Embodiment 2: Based on embodiment 1, Figure 5 As shown, it also includes a first guide plate 14 symmetrically distributed along the fan 5, the first guide plate 14 is fixedly connected to the frame of the fan 5, and the inner wall of the built-in box 3 is fixedly connected to a placement rack 15 symmetrically distributed along the built-in box 3. There are eight placement racks 15 in total, and the second guide plates 16 are inserted into the left and right two placement racks 15.

[0044] Through the two left and right first guide plates 14, the wind blown by the fan 5 will not only blow directly downward to the electrical equipment 4 in the middle, but will also be evenly guided to the left and right parts of the electrical equipment 4 to achieve the effect of uniform blowing. According to the position of the heat accumulation area, the second guide plate 16 is placed on the placement rack 15 in the corresponding area. The wind blown by the fan 5 is guided to the heat accumulation area through the second guide plate 16, so that the accumulated heat is blown to the temperature sensor 12 to avoid heat accumulation.

[0045] like Figure 6 and Figure 7As shown, it also includes a pulling rack 17 symmetrically distributed along the front and back of the first blocking rack 11, the pulling rack 17 is slidably connected to the adjacent heating tube group 301, the lower side of the built-in box 3 is provided with rectangular holes symmetrically distributed along the left and right of the built-in box 3, the built-in box 3 is rotatably connected to a second baffle 18 symmetrically distributed along the left and right of the built-in box 3, the second baffle 18 is used to block the adjacent rectangular holes, the lower side of the pulling rack 17 is provided with a movable groove, the pulling rack 17 is movably connected to the adjacent second baffle 18 through the movable groove, and a second tension spring 19 is fixedly connected between the pulling rack 17 and the adjacent heating tube group 301.

[0046] When the internal circulation mode is in progress, the second baffle 18 blocks the rectangular hole at the bottom of the built-in box 3. When the external circulation mode is in progress, the first baffle 11 drives the pull frame 17 to slide upward, the second tension spring 19 is stretched, and the pull frame 17 pulls the second baffle 18 to swing toward the side close to the insulation chamber through the movable groove, so that the high-temperature gas can be discharged from the bottom of the built-in box 3 as well as from the rectangular holes on the left and right sides of the lower part of the built-in box 3, thereby accelerating the discharge of the high-temperature gas.

[0047] like Figure 8 and Fig. 9 As shown, it also includes a tripod block 20 corresponding to the pull frame 17, the tripod block 20 is fixedly connected to the corresponding pull frame 17, the heating tube group 301 is rotatably connected to a rotating plate 21 symmetrically distributed along the heating tube group 301, the rotating plate 21 is used to block the air inlet of the heating tube group 301, and the rotating plate 21 is squeezed and matched with the adjacent tripod block 20.

[0048] When the internal circulation mode is in progress, the tripod block 20 opens the rotating plate 21, so that the airflow can pass through the heating tube group 301 upward for heating. When the external circulation mode is in progress, the pull frame 17 drives the tripod block 20 to move upward, so that the tripod block 20 no longer squeezes the rotating plate 21. Under the action of gravity, the adjacent rotating plates 21 swing downward to contact each other, so that the bottom of the heating tube group 301 is closed. In this way, in the external circulation mode, the high-temperature airflow will not enter the heating tube group 301 for heating, but will be directly discharged out of the box.

[0049] Embodiment 3: Based on embodiment 2, Fig.10 and Fig.11 As shown, it also includes an air guide frame 22, which is fixedly connected to the bottom side of the built-in box 3. The built-in box 3 is provided with inclined surfaces 221 on all sides near the strip hole. The inclined surfaces 221 are used to evenly guide the hot air flow to the air guide frame 22. The air guide frame 22 is fixedly connected to a heat conducting plate 23, and the heat conducting plate 23 is in contact with the temperature sensor 12.

[0050] The hot air flow blown downward by the fan 5 is evenly guided along the inclined surface 221 to the four sides of the air guide frame 22, and the air guide frame 22 then transfers the heat evenly to the heat conducting plate 23, and the heat conducting plate 23 then transfers the heat evenly and stably to the temperature sensor 12. In this way, the temperature sensor 12 can detect the temperature in the box more stably, further improving the accuracy of the detection. At the same time, the temperature sensor 12 is protected by the air guide frame 22 to prevent dust in the hot air flow from blowing onto the temperature sensor 12, thereby avoiding affecting the detection function of the temperature sensor 12.

[0051] like Fig.12 As shown, it also includes screws 24 symmetrically distributed along the box body 1. The screws 24 are threadedly connected to the top side of the box body 1. The first baffle plate 7 and the box body 1 are both provided with corresponding clamping holes 25. The first baffle plate 7 is fixed to the box body 1 by driving the screws 24 into the corresponding clamping holes 25.

[0052] When the external circulation mode is turned on and the first baffle 7 is opened, the card hole 25 on the first baffle 7 is aligned with the card hole 25 on the box body 1. At this time, the screw 24 on the box body 1 can be unscrewed and the screw 24 can be screwed into the card hole 25 to limit the first baffle 7 so that the first baffle 7 remains in an open state and the external circulation mode is maintained for a period of time to avoid the first baffle 7 from constantly opening and closing due to temperature instability at high temperatures.

[0053] The embodiments of the present invention are described in detail above with reference to the accompanying drawings, but the present invention is not limited to the above embodiments, and various changes can be made within the knowledge scope of those skilled in the art without departing from the spirit of the present invention.

Claims

1. An intelligent adaptive constant temperature management system metering box, characterized in that: The invention comprises a box body (1), the box body (1) being fixedly connected to a box door (2) symmetrically distributed along the box body (1), a built-in box (3) being fixedly connected inside the box body (1), a U-shaped heat preservation cavity being arranged between the box body (1) and the built-in box (3), the box body (1) being fixedly connected to a heating pipe group (301) symmetrically distributed along the box body (1), the heating pipe group (301) being located in the heat preservation cavity, an electrical device (4) being fixedly connected to the inner side wall of the built-in box (3), a fan (5) being fixedly connected to the inner top wall of the built-in box (3), the fan (5) Located above the electrical equipment (4), the inner top wall of the box body (1) is fixedly connected to a filter box (6), the filter box (6) is located in the heat preservation chamber, the box body (1) has an air inlet on one side close to the filter box (6), the box body (1) has a first baffle (7) symmetrically distributed along the box body (1) slidably connected to one side close to the air inlet, the first baffle (7) is used to block the air inlet, the box body (1) has an electromagnet (8) symmetrically distributed along the box body (1) fixedly connected to one side close to the first baffle (7), the electromagnet (8) and the adjacent first baffle The first baffle plate (7) is slidably connected, a first tension spring (9) is fixedly connected between the electromagnet (8) and the adjacent first baffle plate (7), and the first baffle plate (7) is fixedly connected with a magnetic block (10). When power is turned on, the electromagnet (8) and the adjacent magnetic block (10) cooperate through magnetic force. A first baffle frame (11) symmetrically distributed along the box body (1) is slidably connected to a side of the box body (1) close to the first tension spring (9). An air outlet is opened on a side of the box body (1) close to the first baffle frame (11). The first baffle frame (11) is used to block the air outlet. The first baffle frame (11) 11) is extruded and matched with the adjacent first baffle (7), the bottom of the built-in box (3) is provided with strip holes distributed at equal intervals, a temperature sensor (12) is fixedly connected to a side of the box body (1) close to the strip holes, and the temperature sensor (12) is located in the heat preservation chamber, and a second baffle (13) symmetrically distributed along the built-in box (3) is slidably connected to a side of the built-in box (3) close to the filter box (6), and the first baffle (7) is slidably connected to the adjacent second baffle (13) through an inclined groove, and the second baffle (13) is used to block the filter holes of the filter box (6).

2. The intelligent adaptive constant temperature management system metering box according to claim 1, characterized in that: The electromagnet (8) cooperates with the adjacent magnetic block (10) through a mutually attractive magnetic force.

3. An intelligent adaptive constant temperature management system metering box as claimed in claim 2, characterized in that: It also includes a first guide plate (14) symmetrically distributed along the fan (5), wherein the first guide plate (14) is fixedly connected to the frame of the fan (5).

4. An intelligent adaptive constant temperature management system metering box as claimed in claim 3, characterized in that: It also includes placement racks (15) symmetrically distributed along the built-in box (3), the placement racks (15) being fixedly connected to the built-in box (3), wherein two of the placement racks (15) are plugged with second guide plates (16).

5. The intelligent adaptive constant temperature management system metering box according to claim 4, characterized in that: The invention also comprises a pull frame (17) symmetrically distributed along the first baffle frame (11), the pull frame (17) being slidably connected to the adjacent heating tube group (301), a side of the built-in box (3) away from the first baffle frame (11) being provided with rectangular holes symmetrically distributed along the built-in box (3), the built-in box (3) being rotatably connected to a second baffle plate (18) symmetrically distributed along the built-in box (3), the pull frame (17) being used to pull the adjacent second baffle plate (18) to rotate and open, the second baffle plate (18) being used to block the adjacent rectangular hole, and a second tension spring (19) being fixedly connected between the pull frame (17) and the adjacent heating tube group (301).

6. An intelligent adaptive constant temperature management system metering box as claimed in claim 5, characterized in that: A movable groove is formed on one side of the pull frame (17) close to the adjacent second baffle plate (18), and the pull frame (17) and the adjacent second baffle plate (18) are movably connected via the movable groove.

7. An intelligent adaptive constant temperature management system metering box as claimed in claim 6, characterized in that: It also includes a tripod block (20) corresponding to the pull frame (17), the tripod block (20) being fixedly connected to the corresponding pull frame (17), the heating tube group (301) being rotatably connected to a rotating plate (21) symmetrically distributed along the heating tube group (301), the rotating plate (21) being used to block the air inlet of the heating tube group (301), and the rotating plate (21) being pressed and matched with the adjacent tripod block (20).

8. An intelligent adaptive constant temperature management system metering box as claimed in claim 7, characterized in that: It also includes an air guide frame (22), the air guide frame (22) being fixedly connected to a side of the built-in box (3) close to the temperature sensor (12), the air guide frame (22) being fixedly connected to a heat conduction plate (23), the heat conduction plate (23) being in contact with the temperature sensor (12).

9. An intelligent adaptive constant temperature management system metering box as claimed in claim 8, characterized in that: The built-in box (3) is provided with inclined surfaces (221) on all sides of the side close to the strip-shaped hole for evenly directing the hot air flow to the air guide frame (22).

10. An intelligent self-adaptive constant temperature management system metering box as claimed in claim 9, characterized in that: It also includes screws (24) symmetrically distributed along the box body (1), the screws (24) being threadedly connected to a side of the box body (1) close to the first baffle (7), the first baffle (7) and the box body (1) both having corresponding clamping holes (25), and the first baffle (7) being fixed to the box body (1) by driving the screws (24) into the corresponding clamping holes (25).

Citation Information

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