Bulk cargo ship sewage discharge monitoring device
By introducing a mixing component and a monitoring frame into the sewage discharge device of bulk carriers, the problem of blockage caused by sewage impurities was solved, enabling real-time monitoring and remote data transmission of sewage flow and water quality, and ensuring the accuracy and real-time nature of the detection.
Patent Information
- Application Number
- CN202520584915.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-03-31
AI Technical Summary
Existing wastewater discharge monitoring devices for bulk carriers are prone to pipe blockage due to excessive impurities in the wastewater, affecting the accuracy of detection.
A device including a stirring assembly and a monitoring frame was designed. The stirring assembly crushes impurities with stirring blades, and the monitoring frame monitors sewage flow and water quality parameters in real time. Remote real-time monitoring is achieved through a data chassis to prevent clogging.
It effectively prevents pipe blockage, ensures the accuracy of sewage testing, and enables remote real-time monitoring and data transmission.
Smart Images

Figure CN223896857U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of wastewater discharge monitoring technology, specifically a wastewater discharge monitoring device for bulk carriers. Background Technology
[0002] Ship sewage treatment equipment is a device that treats ship sewage to meet discharge standards. If ship sewage is discharged directly into the water, it will pollute the water quality. Therefore, sewage is monitored during ship sewage discharge to prevent sewage that does not meet the discharge standards from being discharged into the water.
[0003] Existing wastewater discharge monitoring devices for bulk carriers suffer from excessive impurities in the wastewater and lack internal anti-clogging functions, which can easily clog the pipes, causing interference or damage to the monitoring equipment and resulting in inaccurate detection. Therefore, we propose a wastewater discharge monitoring device for bulk carriers. Utility Model Content
[0004] The purpose of this invention is to provide a wastewater discharge monitoring device for bulk carriers to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a wastewater discharge monitoring device for bulk carriers, comprising a pipe body, a frame, a stirring assembly, an adjusting assembly, and a monitoring frame. The frame is provided at the top of one side of the pipe body, the stirring assembly is provided inside the pipe body, and the adjusting assembly is provided on the side of the stirring assembly. The monitoring frame is provided on the other side of the pipe body. The stirring assembly includes a connecting end, a clamping plate, a motor, and stirring blades. The clamping plate is provided inside the connecting end, the stirring blades are provided on the side of the clamping plate, and the motor is provided at the top of the stirring blades.
[0006] Furthermore, the card plate and the connecting end are integrated, and the stirring blade and the card plate are fitted together.
[0007] Furthermore, the adjustment assembly includes a baffle and a rotating shaft, with the rotating shaft provided at the end of the baffle.
[0008] Furthermore, the baffle and the rotating shaft are meshed, and the baffle is symmetrically arranged along the tube body.
[0009] Furthermore, the frame includes a crossbeam, a sensor, a data transmission line, and a data chassis. The sensor is located at the bottom middle of the crossbeam, the data transmission line is located at the top of the crossbeam, and the data chassis is located at the top of the data transmission line.
[0010] Furthermore, the crossbeam and the tube are connected by a thread, and the sensor is connected to the crossbeam.
[0011] Furthermore, the monitoring frame is the same size as the cross frame, and the monitoring frame is compatible with the data chassis.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: Wastewater discharge is monitored by a sensor, specifically a flow sensor, which can monitor the wastewater discharge flow rate in real time. A monitoring frame is installed on the other side of the pipe, and a water quality sensor is located at the bottom of the monitoring frame, enabling real-time monitoring of the wastewater's water quality parameters. Data is transmitted to the monitoring center of the ship management department or regulatory agency via a terminal, achieving remote real-time monitoring. The pipe body is equipped with a baffle plate, which blocks large particulate impurities in the water. Combined with blade-shaped stirring blades, these impurities are crushed, preventing clogging and reducing interference that could lead to inaccurate detection.
[0013] A crossbeam is installed at the top of one side of the pipe body and is fastened on both sides. A sensor is installed in the middle of the crossbeam and connected to the pipe body. The sensor monitors the sewage discharge. The sensor is connected to a data cabinet via a data transmission line. The data can be stored in the data cabinet and then transmitted to the monitor via a terminal for immediate data access.
[0014] The tube body is equipped with a baffle plate inside, which is used to block large particulate impurities in the water. If there are too many impurities, they can easily clog the tube body. Therefore, a stirring blade is installed to match the baffle plate. The stirring blade is blade-shaped and is rotated by a top motor to crush the impurities, thus achieving the advantage of preventing clogging. This also facilitates the detection of water quality by the downstream water quality monitoring frame and reduces interference that could lead to inaccurate detection. Attached Figure Description
[0015] Figure 1 This is a partial three-dimensional structural diagram of the present invention;
[0016] Figure 2 This is a partial top view of the internal structure of this utility model;
[0017] Figure 3 This is a cross-sectional structural diagram of the stirring assembly of this utility model.
[0018] In the diagram: 1. Pipe body; 2. Frame; 201. Horizontal frame; 202. Sensor; 203. Data transmission line; 204. Data chassis; 3. Stirring assembly; 301. Connection end; 302. Plate; 303. Motor; 304. Stirring blade; 4. Adjustment assembly; 401. Baffle; 402. Rotary shaft; 5. Monitoring frame. Detailed Implementation
[0019] like Figure 1-2As shown, a wastewater discharge monitoring device for bulk carriers includes a pipe body 1, a frame 2, a stirring assembly 3, an adjusting assembly 4, and a monitoring frame 5. The frame 2 is located at the top of one side of the pipe body 1, the stirring assembly 3 is located inside the pipe body 1, and the adjusting assembly 4 is located on the side of the stirring assembly 3. The monitoring frame 5 is located on the other side of the pipe body 1. The adjusting assembly 4 includes a baffle 401 and a rotating shaft 402, and the rotating shaft 402 is located at the end of the baffle 401. The baffle 401 and the rotating shaft 402 are meshed together, and the baffle 401 is symmetrically arranged along the pipe body 1. The rotating shaft 402 is located on the pipe body. Both sides of the inner wall of component 1 are simultaneously engaged with baffle 401, and the rotating shaft 402 is rotated by the top drive motor, thereby driving the baffle 401 to adjust its angle. Since the sewage flow rate is monitored by the front-end sensor 202, the middle adjustment baffle 401 is set to control the drainage flow rate and avoid excessive water flow impact that could damage the subsequent mixing component 3. The frame 2 includes a crossbeam 201, a sensor 202, a data transmission line 203, and a data chassis 204. The sensor 202 is set at the bottom middle part of the crossbeam 201, and the data transmission line 203 is set at the top of the crossbeam 201. Furthermore, a data housing 204 is installed at the top of the data transmission line 203. The crossbeam 201 is threadedly connected to the pipe body 1, and the sensor 202 is connected to the crossbeam 201. The crossbeam 201 is installed at the top of one side of the pipe body 1 and is installed by fasteners on both sides. The sensor 202 is installed in the middle of the crossbeam 201 and is connected to the pipe body 1. The sensor 202 monitors the sewage discharge. The sensor 202 is connected to the data housing 204 by the data transmission line 203, and the data can be stored in the data housing 204. The data is then transmitted to the monitor via a terminal. To facilitate immediate data access, the monitoring frame 5 is the same size as the cross frame 201, and the monitoring frame 5 is compatible with the data cabinet 204. The monitoring frame 5 is located on the other side of the pipe body 1. Through the online monitoring equipment installed on the sewage discharge pipe body 1, the key parameters of sewage discharge are monitored in real time. The sensor 202 is a flow sensor that can monitor the sewage discharge flow rate in real time, while the bottom of the monitoring frame 5 is a water quality sensor that can monitor the water quality parameters of the sewage in real time. Then, the data is transmitted to the monitoring center of the ship management department or regulatory agency through the data cabinet 204 to achieve remote real-time monitoring.
[0020] like Figure 3As shown, a wastewater discharge monitoring device for bulk carriers includes a stirring assembly 3 comprising a connecting end 301, a clamping plate 302, a motor 303, and a stirring blade 304. The connecting end 301 has a clamping plate 302 inside, and the stirring blade 304 is arranged on the side of the clamping plate 302. The motor 303 is arranged at the top of the stirring blade 304. The clamping plate 302 and the connecting end 301 are integrated, and the stirring blade 304 cooperates with the clamping plate 302. The pipe body 1 has a clamping plate 302 inside, which is used to block large particulate impurities in the water. If there are too many impurities, they can easily clog the pipe body 1. Therefore, the stirring blade 304, which is blade-shaped, is matched with the clamping plate 302. It is rotated by the top motor 303 to crush the impurities, achieving the advantage of preventing clogging. This facilitates the detection by the water quality monitoring frame 5 at the rear and reduces interference that could lead to inaccurate detection.
[0021] Working principle: First, the bulk carrier discharges sewage through pipe 1. A crossbeam 201 is installed at the top of one side of pipe 1. At the same time, a sensor 202 is installed in the middle of the crossbeam 201 and connected to pipe 1. The sewage discharge is monitored by the sensor 202. The sensor 202 is a flow sensor and can monitor the sewage discharge flow rate in real time. The monitoring frame 5 is installed on the other side of pipe 1, and the bottom of the monitoring frame 5 is a water quality sensor, which can monitor the water quality parameters of the sewage in real time.
[0022] Sensor 202 is connected to data chassis 204 via data transmission line 203. It can store data in data chassis 204 and then transmit the data to the monitoring center of ship management department or regulatory agency through terminal to realize remote real-time monitoring.
[0023] Since the rotating shaft 402 is set on both sides of the inner wall of the tube 1, and the rotating shaft 402 is rotated by the top drive motor, the baffle 401 is adjusted in angle to control the drainage flow rate and avoid excessive water flow impact that could damage the subsequent stirring component 3.
[0024] Finally, the inside of the tube 1 is equipped with a baffle plate 302, which is used to block large particulate impurities in the water. Together with the blade-shaped stirring blade 304, the impurities are crushed to prevent clogging and reduce interference that could lead to inaccurate detection.
[0025] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A wastewater discharge monitoring device for bulk carriers, comprising a pipe body (1), a frame (2), a stirring assembly (3), an adjusting assembly (4), and a monitoring frame (5), characterized in that: A frame (2) is provided at the top of one side of the tube (1), a stirring assembly (3) is provided inside the tube (1), and an adjustment assembly (4) is provided on the side of the stirring assembly (3). A monitoring frame (5) is provided on the other side of the tube (1). The stirring assembly (3) includes a connecting end (301), a clamping plate (302), a motor (303), and a stirring blade (304). A clamping plate (302) is provided inside the connecting end (301), a stirring blade (304) is provided on the side of the clamping plate (302), and a motor (303) is provided at the top of the stirring blade (304).
2. The wastewater discharge monitoring device for bulk carriers according to claim 1, characterized in that: The card plate (302) and the connecting end (301) are integrated, and the stirring blade (304) is matched with the card plate (302).
3. The wastewater discharge monitoring device for bulk carriers according to claim 1, characterized in that: The adjustment component (4) includes a baffle (401) and a rotating shaft (402), and the end of the baffle (401) is provided with the rotating shaft (402).
4. The wastewater discharge monitoring device for bulk carriers according to claim 3, characterized in that: The baffle (401) and the rotating shaft (402) are meshed together, and the baffle (401) is symmetrically arranged along the tube body (1).
5. A wastewater discharge monitoring device for bulk carriers according to claim 1, characterized in that: The frame (2) includes a crossbeam (201), a sensor (202), a data transmission line (203), and a data chassis (204). The sensor (202) is located at the bottom middle part of the crossbeam (201), the data transmission line (203) is located at the top top of the crossbeam (201), and the data chassis (204) is located at the top top of the data transmission line (203).
6. A wastewater discharge monitoring device for bulk carriers according to claim 5, characterized in that: The crossbar (201) is threadedly connected to the tube (1), and the sensor (202) is connected to the crossbar (201).
7. A wastewater discharge monitoring device for bulk carriers according to claim 5, characterized in that: The monitoring frame (5) is the same size as the cross frame (201), and the monitoring frame (5) is compatible with the data chassis (204).