Activated carbon filter monitoring device for BIM engineering information recording
By using multiple detection heads with a linkage structure to monitor multiple points at equal intervals within the activated carbon filter, the problem of single monitoring data in existing technologies is solved, and high-precision water quality monitoring and support for BIM engineering information recording are achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-25
- Publication Date
- 2026-03-10
AI Technical Summary
Existing filter monitoring devices monitor water quality using fixed detection heads, resulting in limited data that cannot accurately reflect the water quality within activated carbon filters.
Multiple detection heads with a linkage structure are driven by translation components and telescopic arms to monitor multiple points at equal intervals within the filter tank. Combined with adjusting cylinders and scissor forks, the sliders move synchronously, ensuring that the detection heads maintain equal distances and enabling the acquisition of water quality data from multiple points.
It improves the accuracy and flexibility of monitoring, enabling the real-time acquisition of multiple water quality data points and supporting precise analysis and early warning functions for BIM engineering information records.
Smart Images

Figure CN223986110U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to sewage treatment equipment field, especially is used for BIM engineering information record's activated carbon filter monitoring device. BACKGROUND
[0002] BIM engineering information technology is the engineering data model that various relevant information of building engineering project is integrated with three -dimensional digital technology as the foundation, activated carbon filter pool is as a sewage treatment one environment, through monitoring activated carbon filter pool in water quality situation, can provide data source for BIM engineering information technology, the existing filter monitoring device such as the announcement number for CN216051673U Chinese utility model patent, disclosed a kind of total phosphorus automatic monitoring instrument, including filter pool, filter pool one side is equipped with water inlet, water inlet one side is equipped with first layer filter screen, first layer filter screen one side is equipped with second layer filter screen, first layer filter screen, second layer filter screen and filter pool junction are equipped with sliding groove, filter pool other side is equipped with digestion tank, digestion tank bottom is equipped with a plurality of heating rods, heating rod upper side is equipped with first water pump, first water pump one side is equipped with first stirring device, and first stirring device includes stirring rod, connecting plate and roller shaft, digestion tank one side inner wall is equipped with first reagent box, digestion tank one side outer wall is equipped with first motor, first motor one side is equipped with heating plate controller, digestion tank one side is equipped with detection pool, detection pool inside one corner is equipped with second water pump, second water pump one side is equipped with second stirring device, detection pool one side inner wall is equipped with second reagent box, detection pool one side outer wall is equipped with cooling machine, cooling machine one side is equipped with second motor, second motor one side is equipped with detection device, and detection device includes detection head and air cylinder, second motor below is equipped with control device.This kind of device is mainly in the fixed position of filter pool and is equipped with detection head, and filter pool is flowing, and the water body in filter pool is monitored by fixed detection head, and the data obtained is relatively single, and the condition of water quality in activated carbon filter pool cannot be accurately monitored. CONTENT OF UTILITY MODEL
[0003] The utility model is aimed at providing activated carbon filter monitoring device for BIM engineering information record.
[0004] The technical solution of this utility model is as follows: an activated carbon filter monitoring device for BIM engineering information recording, including a water quality monitor and a translation component. A main unit mounting frame is provided on the moving end of the translation component, and a detection head is connected to the working end of the water quality monitor. A guide rod frame is provided on one side of the main unit mounting frame, and an adjusting cylinder is provided on the upper end of the main unit mounting frame. Multiple sliders are provided on the guide rod frame, and a telescopic arm is provided at the lower end of each slider. The detection head is located at the telescopic end of the telescopic arm. A scissor lift is hinged to the upper end of each slider, with one end of the scissor lift connected to the guide rod frame and the other end connected to the extended end of the adjusting cylinder.
[0005] In the aforementioned activated carbon filter monitoring device for BIM engineering information recording, the guide rod frame includes a main support block disposed on one side of the main unit fixing frame, a guide rod at one end of the main support block, an auxiliary support block at one end of the guide rod, and a slider disposed on the guide rod.
[0006] In the aforementioned activated carbon filter monitoring device for BIM engineering information recording, the extended end of the adjusting cylinder is provided with a vertical rod, and the end of the vertical rod is provided with a rotatable horizontal plate; one end of the scissor lift is provided with an end piece, and the end of the end piece is provided with a fixing nail that is hinged to the horizontal plate.
[0007] In the aforementioned activated carbon filter monitoring device for BIM engineering information recording, the main body of the detection head is provided with a fixing ring, and one side of the fixing ring is provided with a side support that is connected to the telescopic end of the telescopic arm.
[0008] In the aforementioned activated carbon filter monitoring device for BIM engineering information recording, the upper end of the slider is provided with a fixed cylinder, and a screw is provided inside the fixed cylinder. The scissor fork is hinged to the screw.
[0009] In the aforementioned activated carbon filter monitoring device for BIM engineering information recording, the main unit fixing frame and the moving end of the translation component are detachably connected.
[0010] In the aforementioned activated carbon filter monitoring device for BIM engineering information recording, the telescopic arm includes a fixed arm connected to the bottom of the slider, a belt drive component is provided on the outside of the fixed arm, and a telescopic movable arm is provided inside the fixed arm; the output end of the belt drive component is connected to a drive gear, and a rack that meshes with the drive gear is provided inside the movable arm; the detection head is located at the end of the movable arm.
[0011] Compared with the prior art, the present invention has the following advantages:
[0012] 1. In this utility model, the detection head connected to the water quality monitor is located at the end of the telescopic arm. The extension end of the adjusting cylinder extends outward and drives the scissor fork to unfold. Multiple sliders connected to the scissor fork move simultaneously, maintaining the same distance between the sliders. The extension end of the adjusting cylinder moves to a suitable position, and adjacent detection heads maintain the same distance, and then the water quality in the filter is monitored. Through the multiple detection heads set by the linkage structure, equidistant multi-point monitoring of the water in the filter can be realized, which helps to obtain multiple water quality data and improve the monitoring accuracy.
[0013] 2. The detection head is connected to the telescopic arm via a side support. The telescopic arm can move the detection head to different depths in the filter bed to monitor the water, improving the flexibility of use.
[0014] 3. The slider is slidable via a guide rod, resulting in smooth and stable sliding. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of this utility model;
[0016] Figure 2 A schematic diagram for adjusting the cylinder;
[0017] Figure 3 This is a schematic diagram of the guide rod frame;
[0018] Figure 4 This is a schematic diagram of a lateral branch;
[0019] Figure 5 This is a diagram showing the usage state of this utility model;
[0020] Figure 6 This is a schematic diagram of the telescopic arm.
[0021] Figure 7 This is a schematic diagram of the drive gear.
[0022] The markings in the attached diagram are as follows: 1-Translation assembly, 2-Main unit mounting frame, 3-Water quality monitor, 4-Detection head, 5-Guide rod frame, 6-Adjusting cylinder, 7-Slider, 8-Telescopic arm, 9-Scissor lift assembly, 10-Main support block, 11-Guide rod, 12-Auxiliary support block, 13-Vertical rod, 14-Horizontal plate, 15-End piece, 16-Fixing nail, 17-Fixing ring, 18-Side support, 19-Fixing cylinder, 20-Screw, 81-Fixing arm, 82-Belt drive assembly, 83-Moving arm, 84-Drive gear, 85-Rack. Detailed Implementation
[0023] The present invention will be further described below with reference to the accompanying drawings and embodiments, but this should not be construed as limiting the present invention.
[0024] Example: An activated carbon filter monitoring device for BIM engineering information recording, including a water quality monitor 3 and a translation component 1, as shown in the attached diagram. Figure 1 As shown, the translation component mainly consists of a screw and a slide rail slider assembly. A main unit mounting bracket 2 is installed on the moving end of the translation component 1. The main unit mounting bracket 2 and the moving end of the translation component 1 are detachably connected, facilitating installation and disassembly of the two components and making maintenance more convenient. A detection head 4 is connected to the working end of the water quality monitor 3. In this embodiment, the water quality monitor is an inductively coupled plasma mass spectrometer (ICP-MS) to detect the content of heavy metal ions in the water and understand the adsorption and removal of heavy metals by activated carbon. The water quality monitor 3 allows for real-time monitoring of the filter's operating status, such as water quality changes and filter media performance parameters. (BIM engineering) The information recording covers comprehensive digital information from the design, construction, and operation phases of the building. Data collected by the water quality monitor 3 through its detection head, such as dynamic changes in water quality indicators, can be integrated into the BIM model. Through the visualization capabilities of BIM, this data is presented intuitively, allowing maintenance personnel to clearly understand the real-time operation of the filter. During the engineering operation and maintenance phase, comparative analysis can be performed based on the filter design parameters, construction information, and long-term accumulated data from the monitoring device recorded in the BIM model. This allows for judgment on whether the filter meets design expectations, prediction of equipment failure risks, and advance planning of maintenance schedules to ensure efficient and stable operation of the filter. When monitoring data exceeds the normal range, the system automatically issues a warning, reminding management personnel to take timely measures. Simultaneously, the specific location of the problem can be intuitively displayed through the associated model. A guide rod frame 5 is installed on one side of the main unit mounting bracket 2, as shown in the attached... Figure 3 As shown, an adjusting cylinder 6 is installed on the upper end of the main unit mounting bracket 2, as per the attached diagram. Figure 2 As shown, the adjusting cylinder is mounted on the upper plate of the main unit mounting frame via a fixing clamp; multiple sliders 7 are mounted on the guide rod frame 5. The guide rod frame 5 includes a main support block 10 located on one side of the main unit mounting frame 2, a guide rod 11 at one end of the main support block 10, an auxiliary support block 12 at one end of the guide rod 11, and sliders 7 are mounted on the guide rod 11, allowing them to slide on the guide rod. A telescopic arm 8 is mounted on the lower end of the slider 7, and a detection head 4 is located at the telescopic end of the telescopic arm 8. The detection head is connected to the water quality monitor 3 via a wiring connection; a scissor lift 9 is hinged to the upper end of the slider 7, with one end of the scissor lift 9 connected to the guide rod frame 5 and the other end connected to the extended end of the adjusting cylinder 6. The main body of the detection head 4 has a fixing ring 17, and one side of the fixing ring 17 has a side support 18 connected to the telescopic end of the telescopic arm 8, as shown in the attached diagram. Figure 4As shown, the structure is simple and easy to install. A fixing cylinder 19 is installed at the upper end of the slider 7, and a screw 20 is installed inside the fixing cylinder 19. The scissor lift 9 is sleeved on the screw 20. The scissor lift 9 is composed of multiple plates, the ends of which are hinged to form multiple quadrilaterals. The plates can rotate when sleeved on the screw, making the connection simple and installation convenient. The telescopic arm 8 includes a fixing arm 81 connected to the bottom of the slider 7, as shown in the attached figure. Figure 6 and 7 As shown, a belt drive component 82 is installed on the outer side of the fixed arm 81, and a telescopic movable arm 83 is installed inside the fixed arm 81. The output end of the belt drive component 82 is connected to a drive gear 84, and a rack 85 meshing with the drive gear 84 is installed inside the movable arm 83. The detection head 4 is located at the end of the movable arm 83. The telescopic arm can drive the detection head to monitor water quality at different depths in the filter, improving the flexibility of use. A roller is installed at the inner end of the movable arm, which rolls along the inner wall of the fixed arm. A roller that fits against the movable arm is provided at the end of the fixed arm. The two rollers can stably support the movable arm, allowing it to extend and retract stably. The belt drive component mainly consists of a motor and pulleys. The two pulleys are connected by a belt drive. The driven pulley drives the drive gear to rotate, and the drive gear meshes with the rack to push the movable arm out or in.
[0025] The extended end of the adjusting cylinder 6 is equipped with a vertical rod 13, and the end of the vertical rod 13 is connected to a rotatable horizontal plate 14; one end of the scissor lift 9 is equipped with an end piece 15, and the end of the end piece 15 is provided with a fixing pin 16 hinged to the horizontal plate 14. After the adjusting cylinder extends, the horizontal plate will drive the fixing pin to move, and the slider will move on the guide rod. At this time, the scissor lift will begin to extend outward in linkage. (See attached diagram) Figure 5 As shown in the figure, this is a schematic diagram of the installation position of this utility model next to the filter.
[0026] The working principle of this utility model is as follows: The translation component 1 supports the main unit mounting frame 2, providing a foundation for the movement of the entire device and facilitating monitoring operations at different locations. A water quality monitor 3 is installed on the main unit mounting frame 2, with a detection head 4 connected to one end for acquiring water quality data. A guide rod frame 5 is installed on one side of the main unit mounting frame 2, and has multiple sliders 7 that can slide on the guide rod 11. The lower end of each slider 7 is connected to a telescopic arm. The detection head 4 is located at the end of the telescopic arm 8. The telescopic arm allows the detection head to be moved to different depths within the filter bed for water monitoring, improving the flexibility of use. When it is necessary to monitor the water quality in the activated carbon filter bed, the extended end of the adjusting cylinder 6 extends outward, driving... The vertical rod and horizontal plate connected to it move; during the movement of the horizontal plate 14, the end piece 15 of one end of the scissor lift 9 is pushed by the fixing nail 16, so that the scissor lift 9 unfolds. Since the other end of the scissor lift 9 is connected to the guide rod frame 5 and is hinged to the upper end of multiple sliders 7, when the scissor lift 9 unfolds, it drives multiple sliders 7 to move simultaneously on the guide rod 11, and the sliders 7 maintain the same distance. When the extension end of the adjusting cylinder 6 moves to the appropriate position, the adjacent detection heads maintain the same distance. At this time, multiple detection heads monitor the water at different positions in the filter at the same time. The multiple water quality data obtained are transmitted to the water quality monitoring instrument through the line, thereby obtaining the overall water quality of the filter.
Claims
1. A device for monitoring a granular activated carbon filter for BIM engineering information recording, comprising a water quality monitor (3), characterized in that: Also include the translation component (1), the mobile end of the translation component (1) is equipped with host fixed frame (2), the working end of water quality monitor (3) is connected with detection head (4); The side of the host fixed frame (2) is equipped with guide rod frame (5), and the upper end of the host fixed frame (2) is equipped with adjusting cylinder (6); The guide rod frame (5) is equipped with a plurality of sliding blocks (7), and the lower end of the sliding block (7) is equipped with telescopic arm (8), and the detection head (4) is arranged at the telescopic end of telescopic arm (8); The upper end of the sliding block (7) is hinged with scissor piece (9), one end of scissor piece (9) is connected with guide rod frame (5), and the other end of scissor piece (9) is connected with the extension end of adjusting cylinder (6).
2. The activated carbon filter monitoring device for BIM engineering information recording according to claim 1, characterized in that: The guide rod frame (5) includes a main support block (10) arranged on one side of the host fixed frame (2), one end of the main support block (10) is provided with a guide rod (11), one end of the guide rod (11) is provided with an auxiliary support block (12), and the sliding block (7) is arranged on the guide rod (11).
3. The activated carbon filter monitoring device for BIM engineering information recording of claim 1, wherein: The extension end of the adjusting cylinder (6) is provided with a vertical rod (13), and the end of the vertical rod (13) is provided with a rotatable horizontal plate (14); One end of the scissor piece (9) is provided with an end piece (15), and the end of the end piece (15) is provided with a fixed nail (16) hinged with the horizontal plate (14).
4. The activated carbon filter monitoring device for BIM engineering information recording of claim 1, wherein: The main body of the detection head (4) is provided with a fixed ring (17), and one side of the fixed ring (17) is provided with a side branch (18) connected with the telescopic end of the telescopic arm (8).
5. The activated carbon filter monitoring device for BIM engineering information recording of claim 1, wherein: The upper end of the sliding block (7) is provided with a fixed cylinder (19), and the fixed cylinder (19) is provided with a screw (20), and the scissor piece (9) is hinged with the screw (20).
6. The activated carbon filter monitoring device for BIM engineering information recording of claim 1, wherein: The host fixed frame (2) and the mobile end of the translation component (1) are detachably connected.
7. The activated carbon filter monitoring device for BIM engineering information record of claim 1, wherein: The telescopic arm (8) includes a fixed arm (81) connected with the bottom of the sliding block (7), a belt transmission member (82) is arranged on the outer side of the fixed arm (81), and a telescopic movable arm (83) is arranged in the fixed arm (81); The output end of the belt transmission member (82) is connected with a driving gear (84), and the movable arm (83) is provided with a rack (85) engaged with the driving gear (84); The detection head (4) is arranged at the end of the movable arm (83).
Citation Information
Patent Citations
Automatic total phosphorus monitor
CN216051673U