An intelligent pipe gallery temperature control system

Through the design of the tunnel linkage housing components and fan components, the problem of local area sealing in the intelligent tunnel temperature control system is solved, and efficient energy saving and convenient maintenance of full-area temperature control are achieved.

CN119088116BActive Publication Date: 2025-10-03SHANXI JUNHAO IND CO LTD
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Patent Information

Application Number
CN202411213799.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-31
Publication Date
2025-10-03
Estimated Expiration
2044-08-31

AI Technical Summary

Technical Problem

In the existing intelligent tunnel temperature control system, the segmented airflow guide frame causes some areas to be sealed, making it impossible to control the temperature of the entire area. The efficiency and range are poor, and the cost is high.

Method used

It adopts the pipe gallery linkage shell assembly, temperature control fan assembly, air transmission assembly and swing assembly. Through the motor-driven gear meshing and the rotation of the fan assembly, combined with the swing of the airflow guide frame and the filter separation net, effective airflow guidance and temperature control are achieved.

Benefits of technology

Effectively save energy consumption, reduce costs, expand temperature control range, improve temperature control efficiency, and facilitate system maintenance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of intelligent pipe gallery temperature control technology, and in particular to an intelligent pipe gallery temperature control system. Its technical solution includes: a pipe gallery linkage housing assembly, a temperature-adjusting fan assembly fixedly installed inside the pipe gallery linkage housing assembly, an air transmission assembly fixedly installed on one side of the pipe gallery linkage housing assembly, and a swing assembly installed inside the pipe gallery linkage housing assembly, and the pipe gallery linkage housing assembly includes a pipe gallery linkage housing. The temperature-adjusting gear valve handle of the present invention is engaged with the gear and rotates along the connection of the two-way clamping rod, turning on the switch of the temperature-adjusting fan assembly to conduct hot air or cold air toward the pipe gallery position, which is convenient for controlling the temperature in the pipe gallery, effectively saving energy consumption, reducing energy costs, and avoiding the temperature-adjusting fan assembly being in a constantly working state. At the same time, when the staff uses the motor to test and adjust the machine, the temperature-adjusting fan assembly and the swing assembly can be tested synchronously.
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Description

Technical Field

[0001] The present invention relates to the technical field of intelligent pipe gallery temperature control, and in particular to an intelligent pipe gallery temperature control system. Background Art

[0002] The Smart Corridor Temperature Control System is an intelligent system used to monitor and control the temperature inside the corridor. Its main function is to maintain a stable temperature inside the corridor, ensure the normal operation of pipeline equipment and extend its service life. The system involves multiple components such as sensors and controllers, and requires professional installation and maintenance, and the operation is relatively complicated.

[0003] In the patent document with the publication number CN210142282U, a temperature control system for the ACU cabinet of an integrated pipe corridor is disclosed, including: an air conditioner arranged in the ACU cabinet, a controller for controlling the air conditioner, and a temperature sensor arranged in the ACU cabinet; the temperature sensor is connected to the controller, and the temperature sensor is used to detect the temperature inside the ACU cabinet. The controller controls the operation of the air conditioner according to the temperature value detected by the temperature sensor, thereby effectively controlling the temperature inside the ACU cabinet of the pipe corridor, effectively ensuring the normal operation of the electronic equipment in the ACU cabinet, thereby improving the control stability of the integrated pipe corridor and facilitating the construction of smart cities.

[0004] When the above device is in use, it uses a temperature sensor to detect the temperature and controls the temperature accordingly according to the actual temperature. However, the length of the corridor is long, and a fully open airflow guide frame is set. The power requirements for the fan and the temperature-regulating fan assembly are high, resulting in a high cost for temperature control in the corridor. At the same time, the corridor uses intelligent sensing to control the temperature of local areas. In order to save costs, a segmented airflow guide frame is used. Some areas of the segmented airflow guide frame are sealed, making it impossible to control the temperature of all areas. The temperature control efficiency and control range are poor.

[0005] Therefore, this application proposes an intelligent temperature control system for the pipe gallery. Summary of the Invention

[0006] The purpose of the present invention is to propose an intelligent pipe gallery temperature control system to address the problem in the background technology that some areas of the segmented airflow guide frame are sealed, which makes it impossible to control the temperature of all areas, resulting in poor temperature control efficiency and control range.

[0007] The technical solution of the present invention is: an intelligent temperature control system for a pipe gallery, comprising a pipe gallery linkage housing assembly, a temperature regulating fan assembly fixedly installed inside the pipe gallery linkage housing assembly, an air transmission assembly fixedly installed on one side of the pipe gallery linkage housing assembly, and a swing assembly installed inside the pipe gallery linkage housing assembly:

[0008] The pipe gallery linkage housing assembly includes a pipe gallery linkage housing, and the inner wall of the pipe gallery linkage housing is fixedly connected to a motor via a motor clamping block;

[0009] The swing assembly includes a positioning rotating rod, which is fixedly installed on the output shaft of the motor, and a two-way clamping rod is fixedly connected to the inner wall of the pipeline gallery linkage housing. The positioning rotating rod is rotatably installed in the two-way clamping rod, and the positioning rotating rod passes through one side of the two-way clamping rod and is fixedly connected to a gear. One side of the gear is fixedly connected to an auxiliary long plate, and one side of the auxiliary long plate is slidably connected to a slide rod through a corresponding clamping block. One side of the slide rod is fixedly connected to an auxiliary fixed rod, and the auxiliary fixed rod is rotatably installed on the pipeline gallery linkage housing, and the outer side of the auxiliary fixed rod is rotatably connected to a temperature control gear valve handle, and the temperature control gear valve handle is arranged in a meshing connection state with the gear, and the temperature control gear valve handle is rotatably connected to the two-way clamping rod, and the temperature control gear valve handle passes through one end of the two-way clamping rod and is installed on the temperature control fan assembly.

[0010] Optionally, a piston sleeve is sleeved on the surface of the positioning rotating rod, and a plurality of separation grooves are provided on the surface of the piston sleeve for separation. The piston sleeve is fixedly connected with inclined blades whose number is consistent with the separation grooves, and the inclined blades are inclined.

[0011] Optionally, the corridor linkage housing assembly also includes two air flow conduction boxes, which are fixedly installed on both sides of the corridor linkage housing. The top of the corridor linkage housing is fixedly connected with a connecting lifting block for lifting, and the front and rear ends of the corridor linkage housing are fixedly connected with limiting plugs for installation on the wall.

[0012] Optionally, the air transmission component includes a filter separation net, which is fixedly mounted on the pipe gallery linkage housing, and the top of the filter separation net is fixedly connected to two arc-shaped guide blocks with limiting straight plates mounted on the top.

[0013] Optionally, the arc surfaces of the two arc guide plates are slidably connected with the same number of arc plug-in blocks, and a side arc-shaped air guide plate is slidably connected between the two arc plug-in blocks;

[0014] The swing assembly further comprises an opening block, which is fixedly connected to one side of the side arc-shaped air guide plate. A fixing plate is hingedly connected to one side of the opening block, and the fixing plate is fixedly mounted on one side of the slide rod.

[0015] Optionally, one side of the side arc-shaped air guide plate is slidably connected to a hollow plug-in tube, and two sides of the hollow plug-in tube are fixedly connected to two inclined locking spring blocks. The side arc-shaped air guide plate is located inside the arc-shaped plug-in block and is set in a swinging state due to the elastic force of the inclined locking spring block.

[0016] Optionally, a plurality of hollow ring blocks are fixedly connected to the top of the filter separation net, and the plurality of hollow ring blocks are arranged in an axially symmetrical state about the vertical center line of the filter separation net, and the same number of locking spring blocks are fixedly installed inside the plurality of hollow ring blocks.

[0017] Optionally, a plurality of evenly distributed surface temperature sensor components are fixedly connected to the surface of the tunnel linkage shell component, and the surface temperature sensor component is an infrared imager used to collect temperature field distribution information in the tunnel. An active smoke sensor component is fixedly connected to the surface of the tunnel linkage shell component, and the active smoke sensor component includes a smoke detector and an air intake component, and the air intake component is used to attract airflow to the smoke detector. The active smoke sensor component, the surface temperature sensor component and the swing component are respectively communicated through the control component.

[0018] Compared with the prior art, the present invention has the following beneficial technical effects:

[0019] 1. The handle of the thermostatic gear valve engages with the gear and rotates along the connection of the two-way clamping rod, turning on the switch of the thermostatic fan assembly to conduct hot air or cold air toward the pipe gallery, which is convenient for controlling the temperature in the pipe gallery, effectively saving energy consumption, reducing energy costs, and avoiding the thermostatic fan assembly being in a constant working state. At the same time, when the staff uses the motor to test and adjust the machine, the thermostatic fan assembly and the swing assembly can be tested synchronously;

[0020] 2. The opening block drives the arc-shaped insert to slide up and down along the arc-shaped surface of the arc-shaped guide plate, and then the airflow conducted by the tilted fan blades and the temperature-regulating fan assembly swings along the position of the air guide holes of the side arc-shaped guide plate due to the swing of the side arc-shaped guide plate, causing the airflow to swing left and right, thereby expanding the temperature control efficiency of the areas on both sides directly below the pipe gallery and saving temperature control costs;

[0021] 3. When the downwardly inclined side of the side arc-shaped air guide plate swings upward, the elastic force of the locking spring block impacts the side arc-shaped air guide plate, and the side arc-shaped air guide plate drives the hollow plug-in tube to swing up and down through the inclined locking spring block, thereby swinging the dust in the hole of the side arc-shaped air guide plate down. The fallen dust is stored on the filter separation net, which is convenient for the staff to clean later and convenient for the staff to maintain the pipe gallery control system. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 A schematic structural diagram of the intelligent pipe gallery temperature control system of the present invention is given;

[0023] Figure 2 A schematic structural diagram of the pipe gallery linkage housing of the present invention is given;

[0024] Figure 3 The present invention Figure 2 A partial enlarged view of the middle part;

[0025] Figure 4 A schematic structural diagram of the inclined fan blade of the present invention is given;

[0026] Figure 5 The present invention Figure 4 A partial enlarged view of point B in the middle;

[0027] Figure 6 A schematic structural diagram of the slide rod of the present invention is given;

[0028] Figure 7 The present invention Figure 6 A partial enlarged view of point C in the middle;

[0029] Figure 8 A structural schematic diagram of the perforated block of the present invention is given.

[0030] Reference numerals: 1. Pipe gallery linkage housing assembly; 101. Pipe gallery linkage housing; 102. Air flow conduction box; 103. Connecting hanger block; 104. Limiting column; 105. Motor clamping block; 106. Motor; 2. Swing assembly; 201. Positioning rotating rod; 202. Piston sleeve; 203. Bidirectional clamping rod; 204. Auxiliary fixed rod; 205. Slide rod; 206. Corresponding clamping block; 207. Auxiliary long plate; 208, temperature control gear valve handle; 209, gear; 210, tilted fan blade; 211, fixed plate; 212, opening block; 3, air transmission component; 301, filter separation net; 302, locking spring block; 303, hollow ring block; 304, arc-shaped guide plate; 305, side arc-shaped air guide plate; 306, arc-shaped plug-in block; 307, hollow plug-in cylinder; 308, tilted locking spring block. DETAILED DESCRIPTION

[0031] The technical solution of the present invention is further described below with reference to the accompanying drawings and specific embodiments.

[0032] Example 1

[0033] like Figure 1 - Figure 6 As shown, the present invention proposes an intelligent temperature control system for a pipe gallery, comprising a pipe gallery linkage housing component 1, a temperature-regulating fan component fixedly installed inside the pipe gallery linkage housing component 1, an air transmission component 3 fixedly installed on one side of the pipe gallery linkage housing component 1, and a swing component 2 installed inside the pipe gallery linkage housing component 1. The temperature-regulating fan component controls whether the fan distributes hot air or cold air according to the actual temperature condition of the pipe gallery:

[0034] The pipe gallery linkage housing assembly 1 includes a pipe gallery linkage housing 101 , the inner wall of which is fixedly connected to a motor 106 via a motor clamping block 105 ;

[0035] The swing assembly 2 includes a positioning rod 201, which is fixedly mounted on the output shaft of the motor 106. A two-way clamping rod 203 is fixedly connected to the inner wall of the pipe gallery linkage housing 101. The positioning rod 201 is rotatably mounted in the two-way clamping rod 203. The positioning rod 201 passes through one side of the two-way clamping rod 203 and is fixedly connected to a gear 209. One side of the gear 209 is fixedly connected to an auxiliary long plate 207. One side of the auxiliary long plate 207 is fixedly connected to the auxiliary long plate 207. The corresponding clamping block 206 is slidably connected to a slide rod 205, one side of the slide rod 205 is fixedly connected to an auxiliary fixed rod 204, the auxiliary fixed rod 204 is rotatably mounted on the pipe gallery linkage housing 101, the outer side of the auxiliary fixed rod 204 is rotatably connected to a temperature regulating gear valve handle 208, the temperature regulating gear valve handle 208 is meshed with the gear 209, the temperature regulating gear valve handle 208 is rotatably connected to the two-way clamping rod 203, and the temperature regulating gear valve handle 208 passes through the two-way clamping rod One end of the holding rod 203 is installed on the temperature control fan assembly, and the motor 106 drives the positioning rotating rod 201 to rotate. The positioning rotating rod 201 drives the gear 209 to rotate along the inner wall of the two-way clamping rod 203, and the gear 209 drives the auxiliary long plate 207 to rotate. The auxiliary long plate 207 slides on the slide rod 205, and the auxiliary long plate 207 squeezes the surface of the slide rod 205. The slide rod 205 swings left and right along the connection of the corridor linkage shell 101. At the same time, the temperature control gear valve handle 208 engages with the gear 209 and rotates along the connection of the two-way clamping rod 203, turning on the switch of the temperature control fan assembly to conduct hot air or cold air to the corridor position, which is convenient for controlling the temperature in the corridor, effectively saving energy consumption, reducing energy costs, and avoiding the temperature control fan assembly being in a constantly working state. At the same time, when the staff uses the motor 106 to test and adjust the machine, the temperature control fan assembly and the swing assembly 2 can be tested synchronously.

[0036] In this embodiment, the surface of the positioning rotating rod 201 is sleeved with a piston sleeve 202, and the surface of the piston sleeve 202 is provided with a plurality of separation grooves for separation. The piston sleeve 202 is fixedly connected with inclined blades 210 whose number is the same as the separation grooves, and the inclined blades 210 are inclined. The separation grooves are used to separate each inclined blade 210, which is convenient for conducting airflow to different positions of the same pipeline corridor. At the same time, the inclined shape of the inclined blades 210 facilitates the conduction of airflow to the bottom.

[0037] Example 2

[0038] like Figure 1 - Figure 6As shown, based on Example 1, the corridor linkage housing assembly 1 also includes two air flow conduction boxes 102, which are fixedly installed on both sides of the corridor linkage housing 101. The top of the corridor linkage housing 101 is fixedly connected with a connecting lifting block 103 for lifting, and the front and rear ends of the corridor linkage housing 101 are fixedly connected with limiting plugs 104 for installation on the wall. The air flow conduction box 102 is used to connect with other air flow conduction boxes 102 to connect a group of corridor linkage housings 101 and distribute them above the corridor. The air transfer assembly 3 includes a filter separation net 301, which is fixedly installed on the corridor linkage housing 101. The top of the filter separation net 301 is fixedly connected with two arc-shaped guide blocks 304 with limiting straight plates installed on the top.

[0039] In this embodiment, the arc surfaces of the two arc guide plates 304 are slidably connected with the same number of arc plug blocks 306, and the side arc air guide plate 305 is slidably connected between the two arc plug blocks 306;

[0040] The swing assembly 2 also includes an opening block 212, which is fixedly connected to one side of the side arc-shaped air guide plate 305. A fixed plate 211 is hinged on one side of the opening block 212. The fixed plate 211 is fixedly installed on one side of the slide rod 205. A hollow plug-in cylinder 307 is slidably connected to one side of the side arc-shaped air guide plate 305. Two inclined locking spring blocks 308 are fixedly connected on both sides of the hollow plug-in cylinder 307. The side arc-shaped air guide plate 305 is located inside the arc-shaped plug-in block 306 by the elastic force of the inclined locking spring block 308 and is set in a swinging state. The slide rod 205 drives the opening block 212 to swing synchronously in a cycle through the fixed plate 211, the fixed plate 211 drives the opening block 212 to deflect, and the opening block 212 drives the arc plug block 306 to slide up and down along the arc surface of the arc guide plate 304, thereby tilting the fan blades 210 and the air flow conducted by the temperature control fan assembly. Due to the swing of the side arc guide plate 305, the air flow guide is swung left and right along the position of the air guide hole of the side arc guide plate 305, thereby expanding the temperature control efficiency of the areas on both sides directly below the pipe gallery and saving temperature control costs.

[0041] Example 3

[0042] like Figure 6 - Figure 8As shown, based on the above-mentioned embodiment 1 or 2, the top of the filter separation net 301 is fixedly connected with a plurality of hollow ring blocks 303, and the plurality of hollow ring blocks 303 are arranged in an axially symmetrical state about the vertical center line of the filter separation net 301. The same number of positioning spring blocks 302 are fixedly installed inside the plurality of hollow ring blocks 303. When the side arc-shaped air guide plate 305 and the arc-shaped plug-in block 306 swing up and down along the arc surface of the arc-shaped guide plate 304, the side arc-shaped air guide plate 305 is affected by the swinging position, causing the side arc-shaped air guide plate 305 to slide inside the hollow plug-in cylinder 307 along the inside of the arc-shaped plug-in block 306 under the limit of the hollow plug-in cylinder 307. The side arc-shaped air guide plate 305 is in a row, and at the same time, the downwardly inclined side of the side arc-shaped air guide plate 305 contacts the locking spring block 302, and the locking spring block 302 is compressed along the hollow ring block 303. When the downwardly inclined side of the side arc-shaped air guide plate 305 swings upward, the elastic force of the locking spring block 302 impacts the side arc-shaped air guide plate 305, and the side arc-shaped air guide plate 305 drives the hollow plug-in cylinder 307 to swing up and down through the inclined locking spring block 308, thereby shaking off the dust in the hole of the side arc-shaped air guide plate 305, and the fallen dust is stored on the filter separation net 301, which is convenient for the staff to clean later and convenient for the staff to maintain the pipe gallery control system.

[0043] In this embodiment, a plurality of evenly distributed surface temperature sensor components are fixedly connected to the surface of the tunnel linkage housing component 1. The surface temperature sensor component is an infrared imager used to collect temperature field distribution information in the tunnel. An active smoke sensor component is fixedly connected to the surface of the tunnel linkage housing component 1. The active smoke sensor component includes a smoke detector and an air intake component. The air intake component is used to attract airflow to the smoke detector. The active smoke sensor component, the surface temperature sensor component and the swing component 2 are respectively communicated through the control component. The smoke detector senses the smoke concentration information in the airflow and transmits it to the control component. The control component is used to receive the temperature field distribution information and the smoke concentration information for data processing, and at the same time transmits the control signal to the swing component 2, so that the swing component 2 performs temperature control according to the temperature of the local position and the smoke concentration condition, thereby increasing the airflow dynamics in the tunnel, so that the tunnel maintains a specified temperature state.

[0044] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0045] The above specific embodiments are merely several optional embodiments of the present invention. Based on the technical solutions of the present invention and the relevant inspirations of the above embodiments, those skilled in the art may make various alternative improvements and combinations to the above specific embodiments.

Claims

1. A smart pipe gallery temperature control system, comprising a pipe gallery linkage housing assembly (1), a temperature control fan assembly fixedly installed inside the pipe gallery linkage housing assembly (1), an air transmission assembly (3) fixedly installed on one side of the pipe gallery linkage housing assembly (1), and a swing assembly (2) installed inside the pipe gallery linkage housing assembly (1), characterized in that: The pipe gallery linkage housing assembly (1) comprises a pipe gallery linkage housing (101), wherein the inner wall of the pipe gallery linkage housing (101) is fixedly connected to a motor (106) via a motor clamping block (105); The swing assembly (2) includes a positioning rotating rod (201), the positioning rotating rod (201) is fixedly mounted on the output shaft of the motor (106), a bidirectional clamping rod (203) is fixedly connected to the inner wall of the pipe gallery linkage housing (101), the positioning rotating rod (201) is rotatably mounted in the bidirectional clamping rod (203), the positioning rotating rod (201) passes through one side of the bidirectional clamping rod (203) and is fixedly connected to a gear (209), one side of the gear (209) is fixedly connected to an auxiliary long plate (207), one side of the auxiliary long plate (207) is connected to the corresponding clamping block (20 6) A slide rod (205) is slidably connected, and an auxiliary fixed rod (204) is fixedly connected to one side of the slide rod (205). The auxiliary fixed rod (204) is rotatably installed on the pipe gallery linkage housing (101). The outer side of the auxiliary fixed rod (204) is rotatably connected to a temperature-regulating gear valve handle (208). The temperature-regulating gear valve handle (208) is arranged in a meshing connection state with the gear (209). The temperature-regulating gear valve handle (208) is rotatably connected to the two-way clamping rod (203). The temperature-regulating gear valve handle (208) passes through one end of the two-way clamping rod (203) and is installed on the temperature-regulating fan assembly.

2. The intelligent pipe gallery temperature control system according to claim 1 is characterized in that: The surface of the positioning rotating rod (201) is sleeved with a piston sleeve (202), and the surface of the piston sleeve (202) is provided with a plurality of separation grooves for separation. The piston sleeve (202) is fixedly connected with inclined blades (210) whose number is consistent with the separation grooves, and the inclined blades (210) are inclined.

3. The intelligent pipe gallery temperature control system according to claim 1 is characterized in that: The pipe gallery linkage housing assembly (1) further comprises two airflow conduction boxes (102), the two airflow conduction boxes (102) being fixedly mounted on both sides of the pipe gallery linkage housing (101), the top end of the pipe gallery linkage housing (101) being fixedly connected to a connecting hanging block (103) for lifting, and the front and rear ends of the pipe gallery linkage housing (101) being fixedly connected to limiting plug posts (104) for mounting on a wall.

4. The intelligent pipe gallery temperature control system according to claim 1 is characterized in that: The air transmission component (3) comprises a filter separation net (301), the filter separation net (301) being fixedly mounted on the pipe gallery linkage housing (101), and the top end of the filter separation net (301) being fixedly connected to two arc-shaped guide blocks (304) with limiting straight plates mounted on the top ends.

5. The intelligent pipe gallery temperature control system according to claim 4 is characterized in that: The arc surfaces of the two arc-shaped guide plates (304) are slidably connected to the same number of arc-shaped insert blocks (306), and a side arc-shaped wind guide plate (305) is slidably connected between the two arc-shaped insert blocks (306); The swing assembly (2) further comprises an opening block (212), wherein the opening block (212) is fixedly connected to one side of the side arc-shaped air guide plate (305), and a fixing plate (211) is hingedly connected to one side of the opening block (212), and the fixing plate (211) is fixedly mounted on one side of the slide rod (205).

6. The intelligent pipe gallery temperature control system according to claim 5 is characterized in that: One side of the side arc-shaped air guide plate (305) is slidably connected to a hollow plug-in cylinder (307), and two sides of the hollow plug-in cylinder (307) are fixedly connected to two inclined locking spring blocks (308). The side arc-shaped air guide plate (305) is located inside the arc-shaped plug-in block (306) in a swinging state due to the elastic force of the inclined locking spring blocks (308).

7. The intelligent pipe gallery temperature control system according to claim 6 is characterized in that: A plurality of hollow ring blocks (303) are fixedly connected to the top of the filter separation net (301), and the plurality of hollow ring blocks (303) are arranged in an axisymmetric state with respect to the vertical center line of the filter separation net (301). The same number of latching spring blocks (302) are fixedly installed inside the plurality of hollow ring blocks (303).

8. The intelligent pipe gallery temperature control system according to claim 1 is characterized in that: The surface of the pipe gallery linkage type housing component (1) is fixedly connected to a plurality of evenly distributed surface temperature sensing components, the surface temperature sensing components are used as infrared imagers for collecting temperature field distribution information in the pipe gallery, the surface of the pipe gallery linkage type housing component (1) is fixedly connected to an active smoke sensing component, the active smoke sensing component includes a smoke detector and an air suction component, the air suction component is used to attract air flow to the smoke detector, and the active smoke sensing component, the surface temperature sensing component and the swing component (2) are respectively communicated through a control component.

Citation Information

Patent Citations

  • Comprehensive pipe gallery ACU cabinet temperature control system

    CN210142282U

  • Automatic alarm device for underground comprehensive pipe gallery

    CN214475407U

  • Intelligent pipe gallery capable of collecting data

    CN218673746U