Environment monitoring device of integrated pump room
By designing a rotatable riser and cross pipe structure in the integrated pump room, air circulation and monitoring at full angle is achieved, solving the problem of inaccurate monitoring of fixed sensor installation locations, and improving data coverage and alarm timeliness.
Patent Information
- Application Number
- CN202422254173.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-09-14
AI Technical Summary
The installation location of the sensors in the existing integrated pump room is fixed, resulting in inaccurate monitoring of air data and inability to alarm in time. Especially when problems occur in the corners of the pump room or away from the sensor area, information collection is not timely.
An air flow guide structure including a riser, a bent pipe and a transverse pipe is designed. Through the exhaust fan and integrated sensor, a 360-degree rotation air flow guide can be achieved, which can cover the air monitoring of a wider area of the pump room.
The full-angle monitoring of the air environment in the pump room is realized, the probability of missed reports is reduced, and the accuracy and timeliness of data are improved.
Smart Images

Figure CN223217467U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of pump room monitoring, in particular to an environment monitoring device for an integrated pump room. Background Art
[0002] Integrated pump rooms, also often called prefabricated pump stations or skid-mounted pump rooms, have gradually become the main facilities of pump stations in recent years due to their advantages in rapid deployment, convenient construction, modular design, standardized operations, intelligent automation improvement, and strong scalability.
[0003] In order to ensure the stability of the environment in the integrated pump room and the safety of equipment operation, it is necessary to monitor the temperature, humidity, harmful gases, air quality and other environmental conditions in the pump room. The commonly used facilities are mainly sensing equipment installed in the pump room, such as temperature sensors, humidity sensors, etc. These data are directly related to the air conditions in the pump room. The installation position of existing sensors is fixed. At the same time, the pump station is a closed space with poor ventilation, which causes defects in the monitoring of air data. The conditions near the installation location are monitored. If the equipment in a corner of the pump room overheats, or if there is a leak or flooding in an area far away from the sensor, it will not be possible to timely alarm, resulting in inaccurate information collection and untimely early warning alarms. Utility Model Content
[0004] The purpose of the utility model is to provide an environmental monitoring device for an integrated pump room, which can extract and monitor the airflow in the edge area of the pump room, so that the monitoring data can better reflect the overall environmental conditions in the pump room.
[0005] In order to achieve the above-mentioned purpose, the present invention is realized through the following technical solutions:
[0006] The environmental monitoring device of the integrated pump room includes a vertical pipe installed to rotate along the axis, the bottom end of the vertical pipe is connected to a bend with a right angle bend, the end of the bend away from the vertical pipe is connected and fixed to a horizontal pipe, the end of the horizontal pipe away from the bend is provided with an air inlet, the vertical pipe is provided with an exhaust fan for guiding gas to the top end, the outer end of the air inlet is provided with an integrated frame, and an integrated sensor is installed in the center of the integrated frame.
[0007] It also includes a complete assembly plate, below which is provided a support frame hoisted and installed therewith, on which is fixed an annular frame, in which a sleeve is rotatably installed, and the bottom of the sleeve is provided with an outer gear ring coaxial with the sleeve, and a driving gear meshing with the outer gear ring is rotatably installed on the complete assembly plate, the driving gear is driven by a motor, and the upper part of the riser is coaxially fixed in the sleeve.
[0008] The whole assembly plate is penetrated by a mounting sleeve, the upper end of the vertical pipe is penetrated by the mounting sleeve, and the vertical pipe and the mounting sleeve are rotatably sealed.
[0009] A conical cover is provided above the assembly plate. The cover is centrally arranged above the mounting sleeve. A plurality of vertical poles are provided around the cover and fixed thereto. The bottom ends of the vertical poles are fixed to the assembly plate.
[0010] A mounting rod fixedly connected to the side of the integrated frame is provided, and the length direction of the mounting rod is consistent with the length direction of the cross tube. An end of the mounting rod away from the integrated frame is provided with a mounting collar fixedly connected to the cross tube, and the mounting collar is sleeved on the cross tube, and a plurality of screws are passed through the circumference of the mounting collar.
[0011] Compared with the prior art, the beneficial effects of the present invention are:
[0012] By rotating and installing this riser in the pump room, an airflow guide channel structure that can rotate 360 degrees can be obtained. The air flow is drawn in from the air inlet and discharged from the top of the riser, realizing the surrounding extraction of the surrounding air flow and guiding the air flow away from the installation location area to the vicinity of the installation location, thus breaking the limitation of the installation location and allowing the air data obtained by the sensor to cover the air in more areas of the pump room as much as possible. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 This is a schematic diagram of Example 1 of the present invention (the assembly plate is omitted to avoid obstruction).
[0014] Figure 2 This utility model Figure 1 Bottom view of .
[0015] Figure 3 It is a schematic diagram of embodiment 2 of the present utility model.
[0016] Reference numerals shown in the accompanying drawings:
[0017] 1. Assembly plate; 2. Support frame; 3. Ring frame; 4. Outer ring gear; 5. Drive gear; 6. Casing; 7. Vertical pipe; 8. Elbow pipe; 9. Horizontal pipe; 10. Air inlet; 11. Integrated frame; 12. Integrated sensor; 13. Mounting rod; 14. Mounting collar; 15. Mounting sleeve; 16. Cover; 17. Vertical pole. DETAILED DESCRIPTION
[0018] The present invention will be further described below with reference to specific embodiments. It should be understood that these embodiments are intended only to illustrate the present invention and are not intended to limit the scope of the present invention. Furthermore, it should be understood that after reading the contents of this invention, those skilled in the art may make various changes or modifications to the present invention, and that these equivalent forms also fall within the scope defined in this application.
[0019] Example 1:
[0020] This example adopts a modular design, including a complete assembly board 1, which is used to load other components of the device. By opening a mounting port on the pump room box, the complete assembly board 1 is installed as a whole on the top of the pump room.
[0021] A support frame 2 is hoisted on the bottom surface of the complete plate 1. The support frame 2 is two opposite L-shaped. The top of the support frame 2 is fixed on the bottom surface of the complete plate 1, and an annular frame 3 is fixed to the inner end of the support frame 2. A vertical pipe 7 is coaxially sleeved with the annular frame 3 and rotates relatively therewith. A sleeve 6 located below the complete plate 1 is fixed on the vertical pipe 7. The outer periphery of the sleeve 6 is rotatably connected to the annular frame 3 through a bearing, and the rotation stability of the vertical pipe 7, the bend pipe 8 and the cross pipe 9 is achieved. An outer gear ring 4 is fixed on the bottom side of the sleeve 6. A driving gear 5 is rotatably installed on the bottom of the complete plate 1. The driving gear 5 is engaged with the outer gear ring 4. The driving gear 5 is driven by a motor through a reducer, thereby realizing the drive and control of the rotation of the vertical pipe 7.
[0022] The bottom end of the vertical pipe 7 is connected to a bend 8, which is a 90-degree bend 8. The end of the bend 8 away from the vertical pipe 7 is connected and fixed with a cross pipe 9. The cross pipe 9 extends horizontally, and an air inlet 10 is provided at the end of the cross pipe 9 away from the bend 8. The bend 8, cross pipe 9 and vertical pipe 7 can adopt an integrally formed pipe structure or a split installation structure. An exhaust fan that guides the wind upward is installed in the vertical pipe 7, so that when the exhaust fan is turned on, the air enters from the air inlet 10 and is discharged from the top of the vertical pipe 7. When the vertical pipe 7 rotates, the cross pipe 9 swings circumferentially around the vertical pipe 7, thereby drawing air to the air inlet 10 within a range of 360 degrees.
[0023] An integrated frame 11 is provided at the outer end of the air inlet, and an integrated sensor 12 is centrally installed on the integrated frame 11. The integrated sensor 12 integrates sensors for detecting humidity, temperature, smoke, harmful gases, carbon dioxide, and air quality, and can comprehensively monitor the air environment in the pump room. A mounting rod 13 is provided on the side of the integrated frame 11, which is fixedly connected to the integrated frame 11. The mounting rod 13 extends horizontally, and the length direction of the mounting rod 13 is consistent with the length direction of the cross pipe 9. The end of the mounting rod 13 away from the integrated frame 11 is provided with a mounting collar 14 fixedly connected to the integrated frame 11. The mounting collar 14 is sleeved on the cross pipe 9, and a plurality of screws are passed through the circumference of the mounting collar 14. The inner end of the screw contacts the table of the cross pipe 9, and the screw cooperates with the mounting collar 14 to fix the mounting collar 14 on the cross pipe 9. This mounting structure can be easily disassembled and assembled, and is convenient for adjusting the relative distance between the integrated sensor 12 and the air inlet 10.
[0024] This device can drive the horizontal pipe 9 to rotate circumferentially around the vertical pipe 7 through the rotation of the vertical pipe 7, thereby extracting circumferential air within a 360-degree angle range. On the one hand, it can achieve air circulation and promote air circulation inside the pump room. More importantly, it can achieve full-angle air extraction, allowing the gas in the pump room to flow toward the air inlet 10 of the horizontal pipe 9, so that the airflow in the corner of the pump room can also be as close to the air inlet 10 as possible. The airflow entering the air inlet 10 will first pass through the integrated sensor 12 located at the air inlet 10. This breaks the limitation of the installation position. The air data obtained by the sensor can cover the air in more areas of the pump room as much as possible.
[0025] Based on the above structure, by directly installing the whole assembly board 1 on the top of the box in the pump room, it is possible to capture the air conditions in the surrounding area of the pump room while driving the edge airflow to flow toward the device, and obtain comprehensive detection data, thereby better reflecting the environmental conditions in the pump room and greatly reducing the probability of missed reports.
[0026] Example 2:
[0027] In this example, the riser 7 and the manifold 1 are set to penetrate each other. When the manifold 1 is installed on the top of the pump room, the top end of the riser 7 is also located outside the pump room.
[0028] The manifold 1 is penetrated by a mounting sleeve 15, the top of which protrudes from the top surface of the manifold 1 and is waterproof. The mounting sleeve 15 is a circular pipe sleeve, fixed and penetrates the manifold 1. The upper portion of the riser 7 penetrates the mounting sleeve 15 and is sealed and rotatably connected to the mounting sleeve 15, so that the top of the riser 7 is set above the manifold 1 and the bottom of the riser 7 is located below the manifold 1. A conical cover 16 is provided above the manifold 1. The cover 16 is centrally arranged above the mounting sleeve 15. A plurality of vertical rods 17 are fixed to the circumference of the cover 16, and the bottom ends of the vertical rods 17 are fixed to the manifold 1. This facilitates shielding the top pipe opening of the riser 7.
[0029] Based on this example, the air in the pump room can be extracted when the exhaust fan is started. While monitoring, the air inside and outside the pump room can also be circulated, promoting air convection in the pump room and optimizing the air environment in the pump room.
Claims
1. The environmental monitoring device of the integrated pump room is characterized by: It includes a vertical pipe installed for rotation along the axis, the bottom end of the vertical pipe is connected to a bend with a right angle bend, the end of the bend away from the vertical pipe is connected and fixed to a horizontal pipe, the end of the horizontal pipe away from the bend is provided with an air inlet, the vertical pipe is provided with an exhaust fan for guiding gas to the top, the outer end of the air inlet is provided with an integrated frame, and an integrated sensor is installed in the center of the integrated frame.
2. The environmental monitoring device for the integrated pump room according to claim 1 is characterized in that: It also includes a complete assembly plate, below which is provided a support frame hoisted and installed therewith, on which is fixed an annular frame, in which a sleeve is rotatably installed, and the bottom of the sleeve is provided with an outer gear ring coaxial with the sleeve, and a driving gear meshing with the outer gear ring is rotatably installed on the complete assembly plate, the driving gear is driven by a motor, and the upper part of the riser is coaxially fixed in the sleeve.
3. The environmental monitoring device for the integrated pump room according to claim 2, characterized in that: The whole assembly plate is penetrated by a mounting sleeve, the upper end of the vertical pipe is penetrated by the mounting sleeve, and the vertical pipe and the mounting sleeve are rotatably sealed.
4. The environmental monitoring device for the integrated pump room according to claim 3 is characterized in that: A conical cover is provided above the assembly plate. The cover is centrally arranged above the mounting sleeve. A plurality of vertical poles are provided around the cover and fixed thereto. The bottom ends of the vertical poles are fixed to the assembly plate.
5. The environmental monitoring device for an integrated pump room according to claim 1, characterized in that: A mounting rod fixedly connected to the side of the integrated frame is provided, and the length direction of the mounting rod is consistent with the length direction of the cross tube. An end of the mounting rod away from the integrated frame is provided with a mounting collar fixedly connected to the cross tube, and the mounting collar is sleeved on the cross tube, and a plurality of screws are passed through the circumference of the mounting collar.