Device and method for rapidly detecting performance of bactericide for seawater desalination

By simulating dynamic operating conditions in a seawater desalination system using a flow rate simulation tube and an injection mechanism, the problem of discrepancy between bactericide test results and actual effects in existing technologies has been solved, achieving efficient and accurate bactericide performance testing.

CN121347735AActive Publication Date: 2026-01-16QINGDAO BCTA DESALINATION CO LTD
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Patent Information

Application Number
CN202511511965.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-22
Publication Date
2026-01-16
Estimated Expiration
2045-10-22

AI Technical Summary

Technical Problem

In existing seawater desalination systems, the performance testing of bactericides cannot effectively simulate the fluid shear force, flow velocity, and agent residence time in high-pressure pipelines, resulting in a disconnect between test results and actual effects. The testing process is cumbersome and prone to large errors, making it difficult to guide accurate selection and dosage control.

Method used

Using a flow rate simulation tube, injection mechanism, and solenoid valve, the agent is injected into a dynamic environment through the injection mechanism, and water samples are collected at regular intervals with the solenoid valve to simulate the dynamic operating conditions of a seawater desalination system, thereby enabling rapid detection of the bactericide's performance.

Benefits of technology

This improves the accuracy and efficiency of bactericide performance testing, reduces human error, ensures the repeatability and consistency of each injection, and obtains a more realistic picture of the bactericide's effect in seawater desalination pipeline systems.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of seawater desalination system equipment, in particular to a seawater desalination bactericide performance rapid detection device and method, and the seawater desalination bactericide performance rapid detection device comprises a flow velocity simulation tube, a fixing mechanism arranged on the outer side of the flow velocity simulation tube, and a driving mechanism and an injection mechanism arranged in the fixing mechanism. According to the device and the method for rapidly detecting the performance of the bactericide for seawater desalination, the flow velocity simulation pipe is connected with an external water pump to reproduce fluid shear force and retention time in an actual seawater desalination system, and a water sample is collected at regular time by injecting a medicament in a dynamic environment through the injection mechanism and cooperating with an electromagnetic valve; and compared with the traditional static beaker experiment, the obtained bactericide performance data can more accurately detect the real effect of the bactericide in the actual seawater desalination pipeline system.
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Description

Technical Field

[0001] This invention relates to the field of seawater desalination system equipment technology, and more specifically, to a device and method for rapid testing of the performance of bactericides used in seawater desalination. Background Technology

[0002] During the seawater desalination process, the microorganisms abundant in the raw seawater will grow and form bioscale, which will seriously clog the reverse osmosis membrane and pipelines, leading to a decrease in water production, a surge in energy consumption and damage to equipment. Therefore, it is necessary to add bactericides for control. The core purpose of performance testing is to scientifically evaluate the sterilization efficiency, durability and compatibility with membrane materials of the bactericides. This is a key link to ensure the high efficiency and economy of the desalination plant.

[0003] Patent application CN202221400482.6 discloses a device for testing the bactericidal effect of a disinfectant. The device includes an operating table with a movable rod rotatably mounted on its upper surface. A mounting plate is fixedly connected to the upper end of the movable rod, and a conventional container, a humidifying container, and a heating container are fixedly mounted on the upper surface of the mounting plate. This simple installation structure enables the testing of the bactericidal effect of a disinfectant under different environments, improving the device's applicability and the accuracy of the test results. Its practical effect is excellent and it is worthy of promotion and use in the current market.

[0004] However, existing equipment mainly relies on static beaker tests, which are fundamentally inadequate because they cannot simulate the dynamic conditions unique to the high-pressure pipelines of seawater desalination systems, such as fluid shear force, flow velocity, and residence time of key reagents. This results in a serious disconnect between the obtained bactericide performance data and the actual effects under high-salt, high-speed flow conditions. Consequently, the test results cannot effectively guide the precise selection and dosage control of bactericides in seawater desalination projects. Furthermore, this experiment requires repeated manual injection and sampling of reagents, making the testing process cumbersome, inefficient, prone to human error, and inconsistent in data. The results obtained are difficult to accurately guide production practices.

[0005] In view of this, we propose a rapid testing device and method for the performance of bactericides used in seawater desalination. Summary of the Invention

[0006] The purpose of this invention is to provide a device and method for rapid testing of the performance of bactericides used in seawater desalination. The device injects the agent into a dynamic environment through an injection mechanism and collects water samples at regular intervals using a solenoid valve, thereby solving the problems mentioned in the background art.

[0007] To achieve the above objectives, the present invention provides the following technical solution: A rapid testing device for the performance of bactericides used in seawater desalination includes a flow rate simulation tube, a fixing mechanism located on its outer side, a drive mechanism located inside the fixing mechanism, and an injection mechanism. The driving mechanism includes a motor, a rotating shaft driven by the motor, a rotating cylinder that rotates with the rotating shaft, a circular plate that slides inside the rotating cylinder, several test tubes placed inside the circular plate, and a first electric push rod set above the circular plate. A one-way liquid valve is provided at the mouth of the test tube. After the motor starts, it drives the rotating shaft to rotate the rotating cylinder at a fixed distance. The first electric push rod controls the circular plate to move up and down inside the rotating cylinder to adjust the position of the bottom end of the test tube. The injection mechanism includes a second electric push rod, a rack and piston plate driven by the push rod, an injection tube sleeved on the outside of the piston plate, rod teeth meshing with the rack, and a stirring rod disposed below the rod teeth. The injection tube includes an injection tube body, an inner concave tube disposed therein, and a circular plug that slides inside the inner concave tube. The outer wall of the inner concave tube has several annular grooves. After the bottom of the test tube is pressed down and the circular plug is inserted into the inner concave tube, the second electric push rod drives the rack and piston plate to move to the left, and the bactericide in the test tube is drawn into the injection tube body. When the piston plate moves to the right, the bactericide is injected into the flow rate simulation tube. At the same time, the rack meshes with the rod teeth, driving the stirring rod to mix the bactericide with seawater.

[0008] In the technical solution of the present invention, the flow rate simulation tube includes a mixing tube, an outer pipe fixedly connected to the left and right ends of the mixing tube by bolts, a sampling tube with a flange connected to the bottom surface of the right outer pipe, and a solenoid valve with a flange connected to the outside of the sampling tube.

[0009] In the technical solution of the present invention, the fixing mechanism includes a support frame welded to the outside of the mixing pipe, a partition plate welded to the inner wall of the support frame, and lifting lugs welded to the outer walls of the left and right ends of the support frame. A through groove is provided on the right side of the support frame.

[0010] In the technical solution of the present invention, the motor is fixedly connected to the top surface of the support frame by bolts, one end of the rotating shaft is coaxially connected to the output shaft of the motor and the other end is rotatably connected to the top surface of the partition, the rotating cylinder is rotatably connected to the top surface of the partition, the test tube is clamped and fixed inside the circular plate, the first electric push rod is fixedly connected to the top surface inside the support frame by screws, and its telescopic rod end is rotatably connected to the inside of the circular plate.

[0011] In the technical solution of the present invention, the driving mechanism further includes a shaft tooth that is snapped and fixed to the bottom end of the rotating shaft and a ring tooth that is snapped and fixed to the outer wall of the rotating cylinder and meshes with the shaft tooth. A plurality of sliding grooves are provided on the inner wall of the rotating cylinder, and an arc-shaped slider that is adapted to the sliding groove is integrally formed on the outer wall of the circular plate.

[0012] In the technical solution of the present invention, the second electric actuator is fixedly connected to the inner wall of the support frame by bolts, and a crossbar is snapped and fixed at the end of the telescopic rod of the second electric actuator. A sliding rod is snapped between the crossbar and the piston plate, and the rack is snapped to the outer wall of the crossbar and slidably connected to the inside of the through groove.

[0013] In the technical solution of the present invention, the injection tube further includes a ring disposed on the inner wall of the injection tube body and an upper convex tube and a lower convex tube integrally formed at the upper and lower ends of the injection tube body. The concave tube is welded to the inside of the upper convex tube, and the bottom end of the lower convex tube extends into the inside of the mixing tube and is provided with a one-way drain valve at its opening.

[0014] In the technical solution of the present invention, the round plug is slidably connected to the inside of the concave tube, and a spring is welded between the inner top surface of the round plug and the bottom surface of the concave tube. The elastic force provided by the spring pushes the round plug to move upward.

[0015] In the technical solution of the present invention, the rod teeth are snapped and fixed to the top end of the central shaft of the stirring rod, and the stirring rod is rotatably connected to the inside of the mixing tube.

[0016] On the other hand, the present invention also provides a rapid testing method for the performance of bactericides used in water desalination, comprising the following steps: S1. First, connect the external pipe to the external water pump through a pipe, and control the flow rate through the water pump to simulate the flow rate of seawater in the pipe, ensuring that it is the same as the flow rate of seawater in the seawater desalination system. S2. Next, the first electric actuator in the control drive mechanism pushes the circular plate down inside the rotating cylinder, inserts the bottom end of the test tube directly above the convex tube into the concave tube, squeezes the circular plug down, and connects the test tube with the internal space of the injection tube through the annular groove. S3. Subsequently, the second electric actuator drives the slide bar and rack to move to the left synchronously through the crossbar. At this time, the piston plate moves to the left in the injection tube body, and after the bactericide in the test tube is drawn into the injection tube body, the second electric actuator controls the crossbar to return to its original position, and injects the bactericide into the mixing tube through the lower convex tube. At the same time, the rack meshes with the rod teeth, driving the stirring rod to rotate and mix the bactericide with the seawater. S4. After that, the first electric push rod pushes the circular plate to reset. After the motor starts, it drives the rotating shaft to rotate. The rotating cylinder is driven to rotate through the meshing of the shaft teeth and the ring teeth, and then the next test tube is moved to the top of the convex tube and then stops. S5. Based on the seawater flow rate, the solenoid valve is activated at regular intervals to draw a quantitative amount of seawater mixed with disinfectant from the sampling tube as a sample for testing. The above operation is repeated to obtain multiple sets of samples in batches.

[0017] Compared with the prior art, the beneficial effects of the present invention are: 1. The device and method for rapid testing of the performance of bactericides for seawater desalination use a flow velocity simulation tube connected to an external water pump to reproduce the fluid shear force and residence time in an actual seawater desalination system. The agent is injected into the system in a dynamic environment through an injection mechanism, and water samples are collected at regular intervals using a solenoid valve. This allows the obtained bactericide performance data to more accurately detect the real effect of the agent in the actual seawater desalination pipeline system compared to traditional static beaker experiments.

[0018] 2. This device and method for rapid testing of the performance of bactericides used in seawater desalination involves a motor-driven rotating drum that rotates at a fixed distance. A first electric actuator controls the raising and lowering of a circular plate, allowing multiple test tubes pre-filled with different concentrations or types of bactericides to be sequentially pressed into an injection tube. A second electric actuator then drives a piston plate to draw in the bactericide and inject it into a flow path. Mixing is enhanced by driving a stirring rod, replacing the cumbersome and inefficient manual injection operation. This not only improves testing efficiency and avoids human error but also ensures the repeatability and consistency of each injection, enabling rapid and batch acquisition of parallel experimental data under different conditions. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a cross-sectional schematic diagram of the flow velocity simulation tube in this invention; Figure 3 This is a cross-sectional schematic diagram of the fixing mechanism in this invention; Figure 4 This is one of the structural schematic diagrams of the drive mechanism in this invention; Figure 5 This is the second schematic diagram of the drive mechanism in this invention; Figure 6 This is a schematic diagram of the rotating cylinder in this invention; Figure 7 This is a schematic diagram of the circular plate in this invention; Figure 8 This is a cross-sectional schematic diagram of the injection mechanism in this invention; Figure 9 This is a cross-sectional schematic diagram of the injection tube structure in this invention; Explanation of reference numerals in the attached figures: 100. Flow rate simulation tube; 110. Mixing tube; 120. External connecting tube; 130. Sampling tube; 140. Solenoid valve; 200. Fixing mechanism; 210. Support frame; 211. Through groove; 220. Partition plate; 230. Lifting lug; 300. Drive mechanism; 310. Motor; 320. Rotating shaft; 330. Shaft gear; 340. Ring gear; 350. Rotating cylinder; 351. Slide groove; 360. Circular plate; 361. Arc-shaped slider; 370. Test tube; 380. First electric actuator; 400. Injection mechanism; 410. Second electric actuator; 420. Crossbar; 430. Slide bar; 440. Rack; 450. Piston plate; 460. Injection tube; 461. Injection tube body; 462. Ring; 463. Upper convex tube; 464. Lower convex tube; 465. Concave tube; 4650. Ring groove; 466. Circular plug; 467. Spring; 470. Rod teeth; 480. Stirring rod. Detailed Implementation

[0020] The technical solutions of this invention will now be clearly and completely described with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this invention, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this invention without creative effort are within the scope of protection of this invention.

[0021] Please see Figures 1-2 As shown, this embodiment provides the following technical solution: A rapid testing device for the performance of bactericides used in seawater desalination includes a flow rate simulation tube 100, a fixing mechanism 200 disposed on its outer side, a driving mechanism 300 disposed inside the fixing mechanism 200, and an injection mechanism 400.

[0022] Specifically, the flow rate simulation tube 100 includes a mixing tube 110, an outer pipe 120 fixedly connected to the left and right ends of the mixing tube 110 by bolts, a sampling tube 130 with a flange connected to the bottom of the right outer pipe 120, and a solenoid valve 140 with a flange connected to the outside of the sampling tube 130.

[0023] Furthermore, the mixing tube 110 provides space for mixing seawater and disinfectant, and the outer tube 120 is used to discharge seawater after it enters the mixing tube 110. After the solenoid valve 140 is activated, the seawater mixed with disinfectant can be drawn out from the sampling tube 130 as a test sample. This setting simulates the dynamic injection of disinfectant in a seawater desalination system within the mixing tube 110, making the obtained disinfectant performance data more realistic and effective.

[0024] Please see Figures 1-3 As shown, in this embodiment, the fixing mechanism 200 includes a support frame 210 welded to the outside of the mixing pipe 110, a partition plate 220 welded to the inner wall of the support frame 210, and lifting lugs 230 welded to the outer walls of the left and right ends of the support frame 210. A through groove 211 is provided on the right side of the support frame 210. Furthermore, the support frame 210 and the partition 220 are used to provide a fixed area for the drive mechanism 300 and the injection mechanism 400, and the lug 230 is used to fix the support frame 210 to the external bracket. This arrangement, through the through groove 211 on the support frame 210 and the partition 220, ensures that the mixing stage of the bactericide and seawater can proceed smoothly.

[0025] Please see Figures 4-7As shown, in this embodiment, the driving mechanism 300 includes a motor 310, a rotating shaft 320 driven by the motor 310, a rotating cylinder 350 that rotates with the rotating shaft 320, a circular plate 360 ​​that slides inside the rotating cylinder 350, a plurality of test tubes 370 placed inside the circular plate 360, and a first electric push rod 380 disposed above the circular plate 360. A one-way liquid valve is provided at the opening of the test tube 370. After the motor 310 is started, it drives the rotating shaft 320 to drive the rotating cylinder 350 to rotate at a fixed distance.

[0026] Specifically, the motor 310 is fixedly connected to the top surface of the support frame 210 by bolts, one end of the rotating shaft 320 is coaxially connected to the output shaft of the motor 310, and the other end is rotatably connected to the top surface of the partition plate 220, the rotating cylinder 350 is rotatably connected to the top surface of the partition plate 220, the test tube 370 is snapped and fixed inside the circular plate 360, and the first electric push rod 380 is fixedly connected to the top surface inside the support frame 210 by screws, and its telescopic rod end is rotatably connected to the inside of the circular plate 360.

[0027] Furthermore, the drive mechanism 300 also includes a shaft tooth 330 that is snapped and fixed to the bottom end of the rotating shaft 320 and a ring tooth 340 that is snapped and fixed to the outer wall of the rotating cylinder 350 and meshes with the shaft tooth 330. A plurality of sliding grooves 351 are provided on the inner wall of the rotating cylinder 350, and an arc-shaped slider 361 that is adapted to the sliding grooves 351 is integrally formed on the outer wall of the circular plate 360 ​​to ensure the stability of the circular plate 360 ​​when it moves.

[0028] Furthermore, after the motor 310 starts, it drives the rotating shaft 320 to rotate, and drives the rotating cylinder 350 to rotate through the meshing of the shaft gear 330 and the ring gear 340. The next test tube 370 is then moved to the top of the upper convex tube 463 and then stopped. The first electric push rod 380 controls the circular plate 360 ​​to move up and down inside the rotating cylinder 350 to adjust the bottom position of the test tube 370. This setting realizes the automatic cyclic switching and precise positioning of multiple test tube bactericides, thereby achieving serialized batch testing.

[0029] Please see Figures 1-9 As shown, in this embodiment, the injection mechanism 400 includes a second electric push rod 410, a rack 440 and a piston plate 450 driven by the second electric push rod 410, an injection tube 460 sleeved on the outside of the piston plate 450, a rod tooth 470 meshing with the rack 440, and a stirring rod 480 disposed below the rod tooth 470.

[0030] Specifically, the injection tube 460 includes an injection tube body 461, a concave tube 465 disposed therein, and a round plug 466 sliding in the concave tube 465. The outer wall of the concave tube 465 is provided with several annular grooves 4650. After the bottom end of the test tube 370 presses down to insert the round plug 466 into the concave tube 465, the second electric push rod 410 drives the rack 440 and the piston plate 450 to move to the left, and the bactericide in the test tube 370 is drawn into the injection tube body 461. When the piston plate 450 moves to the right, it injects the bactericide into the flow rate simulation tube 100. At the same time, the rack 440 engages the rod teeth 470, driving the stirring rod 480 to mix the bactericide with seawater.

[0031] Furthermore, the second electric actuator 410 is fixedly connected to the inner wall of the support frame 210 by bolts, and the end of the telescopic rod of the second electric actuator 410 is fixedly connected to a crossbar 420. A slide bar 430 is connected between the crossbar 420 and the piston plate 450, and the rack 440 is connected to the outer wall of the crossbar 420 and slidably connected to the inside of the through groove 211.

[0032] Furthermore, the injection tube 460 also includes a ring 462 disposed on the inner wall of the injection tube body 461, and an upper convex tube 463 and a lower convex tube 464 integrally formed at the upper and lower ends of the injection tube body 461. The concave tube 465 is welded to the inside of the upper convex tube 463, and the bottom end of the lower convex tube 464 extends into the inside of the mixing tube 110 and is provided with a one-way drain valve at its opening.

[0033] Furthermore, the round plug 466 is slidably connected to the inside of the concave tube 465. A spring 467 is welded between the top surface of the round plug 466 and the bottom surface of the concave tube 465. The elastic force provided by the spring 467 pushes the round plug 466 upward to provide conditions for the round plug 466 to reset through the elastic force. The bottom surface of the round plug 466 has a space for the spring 467 to retract.

[0034] Furthermore, the rod tooth 470 is snapped and fixed to the top of the central shaft of the stirring rod 480, and the stirring rod 480 is rotatably connected to the inside of the mixing tube 110.

[0035] Furthermore, the second electric actuator 410 drives the slide bar 430 and rack 440 to move to the left synchronously via the crossbar 420. At this time, the piston plate 450 moves to the left in the injection tube 461, drawing the disinfectant from the test tube 370 into the injection tube 461. Then, the second electric actuator 410 controls the crossbar 420 to return to its original position, injecting the disinfectant into the mixing tube 110 through the lower convex tube 464. Simultaneously, the rack 440 engages the rod teeth 470, driving the stirring rod 480 to rotate and mix the disinfectant with the seawater. This setting replaces the cumbersome and inefficient manual injection operation, improves testing efficiency, avoids human error, and ensures the repeatability and consistency of each injection.

[0036] The present invention provides a rapid testing method for the performance of a bactericide used in seawater desalination, comprising the following steps: S1. First, connect the external pipe 120 to the external water pump through a pipe, and control the flow rate through the water pump to simulate the flow rate of seawater in the pipe 100, so as to ensure that it is the same as the flow rate of seawater in the seawater desalination system. S2. Next, the first electric push rod 380 in the control drive mechanism 300 pushes the circular plate 360 ​​to move down in the rotating cylinder 350, inserts the bottom end of the test tube 370 directly above the upper convex tube 463 into the concave tube 465, squeezes the round plug 466 to move down, and connects the test tube 370 with the internal space of the injection tube body 461 through the annular groove 4650. S3. Subsequently, the second electric actuator 410 drives the slide bar 430 and rack 440 to move to the left synchronously via the crossbar 420. At this time, the piston plate 450 moves to the left in the injection tube 461, drawing the disinfectant in the test tube 370 into the injection tube 461. Then, the second electric actuator 410 controls the crossbar 420 to return to its original position, and injects the disinfectant into the mixing tube 110 through the lower convex tube 464. At the same time, the rack 440 engages the rod teeth 470, driving the stirring rod 480 to rotate and mix the disinfectant with seawater. S4. After that, the first electric push rod 380 pushes the circular plate 360 ​​to reset. After the motor 310 starts, it drives the rotating shaft 320 to rotate. Through the engagement of the shaft tooth 330 with the ring tooth 340, it drives the rotating cylinder 350 to rotate and moves the next test tube 370 to directly above the upper convex tube 463 before stopping. S5. Based on the seawater flow rate, the solenoid valve 140 is activated at regular intervals, and a quantitative amount of seawater mixed with disinfectant is drawn out from the sampling tube 130 as a sample for testing. The above operation is repeated to obtain multiple sets of samples in batches.

[0037] The foregoing description of specific exemplary embodiments of the invention is for illustrative and explanatory purposes. These descriptions are not intended to limit the invention to the precise forms disclosed, and it will be apparent that many changes and variations can be made in accordance with the foregoing teachings. The exemplary embodiments were chosen and described in order to explain the specific principles of the invention and its practical application, thereby enabling those skilled in the art to implement and utilize various different exemplary embodiments of the invention, as well as various different choices and variations. The scope of the invention is intended to be defined by the specification and its equivalents.

Claims

1. A device for rapid detection of the performance of a bactericide for seawater desalination, characterized in that it comprises: The application relates to a flow rate simulation device. The driving mechanism comprises a motor, a rotating shaft driven by the motor, a rotating cylinder rotating with the rotating shaft, a circular plate sliding in the rotating cylinder, a plurality of test tubes arranged in the circular plate, and a first electric push rod arranged above the circular plate; a one-way liquid valve is arranged at the mouth of the test tube; the motor drives the rotating shaft to rotate at a fixed distance after being started; the first electric push rod controls the circular plate to move up and down in the rotating cylinder, and the position of the bottom end of the test tube is adjusted. The injection mechanism comprises a second electric push rod, a rack and a piston plate driven by the second electric push rod, an injection pipe sleeved outside the piston plate, a rack tooth engaged with the rack, and a stirring rod arranged below the rack tooth. The injection pipe comprises an injection pipe body, an inner recessed pipe arranged in the injection pipe body, and a circular plug sliding in the inner recessed pipe; a plurality of ring grooves are formed in the outer wall of the inner recessed pipe; after the circular plug is inserted into the inner recessed pipe by pressing the bottom end of the test tube, the second electric push rod drives the rack and the piston plate to move leftwards, the bactericide in the test tube is drawn into the injection pipe body, the piston plate moves rightwards to inject the bactericide into the flow rate simulation pipe, meanwhile, the rack engages with the rack tooth to drive the stirring rod to mix the bactericide with seawater.

2. The apparatus for rapid detection of the performance of a germicide for seawater desalination according to claim 1, characterized in that: The flow rate simulation pipe comprises a mixing pipe, outer connecting pipes fixedly connected to the left and right ends of the mixing pipe through bolts, a sampling pipe flange-connected to the bottom surface of the right outer connecting pipe, and an electromagnetic valve flange-connected to the outer side of the sampling pipe.

3. The apparatus for rapid detection of the performance of a germicide for seawater desalination according to claim 2, characterized in that: The fixing mechanism comprises a support frame welded to the outer side of the mixing pipe, a partition plate welded to the inner wall of the support frame, and lifting lugs welded to the outer walls of the left and right ends of the support frame; a through groove is formed in the right side of the support frame.

4. The apparatus for rapid detection of the performance of a germicide for seawater desalination according to claim 3, characterized in that: The motor is fixedly connected to the top surface of the support frame through bolts; one end of the rotating shaft is coaxially connected to the output shaft of the motor, and the other end is rotatably connected to the top surface of the partition plate; the rotating cylinder is rotatably connected to the top surface of the partition plate; the test tube is clamped and fixed in the inner part of the circular plate; the first electric push rod is fixedly connected to the inner top surface of the support frame through a screw; and the end part of the telescopic rod of the first electric push rod is rotatably connected to the inner part of the circular plate.

5. The apparatus for rapid detection of the performance of a germicide for seawater desalination according to claim 4, characterized in that: The driving mechanism further comprises shaft teeth clamped and fixed to the bottom end of the rotating shaft, and ring teeth clamped and fixed to the outer wall of the rotating cylinder and engaged with the shaft teeth; a plurality of sliding grooves are formed in the inner wall of the rotating cylinder; and the outer wall of the circular plate is integrally formed with arc-shaped sliding blocks matched with the sliding grooves.

6. The apparatus for rapid detection of the performance of a germicide for seawater desalination according to claim 5, characterized in that: The second electric push rod is fixedly connected to the inner wall of the support frame through bolts; a cross rod is clamped and fixed to the end part of the telescopic rod of the second electric push rod; a sliding rod is clamped between the cross rod and the piston plate; and the rack is clamped to the outer wall of the cross rod and slidingly connected to the inner part of the through groove.

7. The apparatus for rapid detection of the performance of a germicide for seawater desalination according to claim 6, characterized in that: The injection pipe further comprises a circular ring arranged on the inner wall of the injection pipe body, and upper and lower convex pipes integrally formed on the upper and lower ends of the injection pipe body; the inner recessed pipe is welded to the inner part of the upper convex pipe; the bottom end of the lower convex pipe extends into the inner part of the mixing pipe, and a one-way liquid discharge valve is arranged at the mouth of the lower convex pipe.

8. The apparatus for rapid detection of the performance of a germicide for seawater desalination according to claim 7, characterized in that: The circular plug is slidingly connected to the inner part of the inner recessed pipe; a spring is welded between the inner top surface of the circular plug and the bottom surface of the inner recessed pipe; and the spring provides an elastic force to push the circular plug to move upwards.

9. The apparatus for rapid detection of the performance of a germicide for seawater desalination according to claim 8, characterized in that: The rack tooth is clamped and fixed to the top end of the central shaft of the stirring rod, and the stirring rod is rotatably connected to the inner part of the mixing pipe.

10. The method for rapidly detecting the performance of a bactericide for seawater desalination according to claim 9, characterized in that: The application further relates to a method for simulating the flow rate of seawater. S1, first, the external pipe and external water pump through the pipeline communication, and through the pump control flow rate simulation pipe seawater flow rate, ensure that the same with the seawater desalination system seawater flow rate; S2, then, control the first electric push rod drive mechanism to push the plate in the rotating cylinder down, the test tube bottom end above the convex tube, inserted into the inner tube, extrusion round plug down, through the ring groove test tube and injection pipe body space connected; S3, then, control the second electric push rod through the horizontal bar with rack synchronous left slide, at this time, the piston plate in the injection pipe body left, the test tube into the injection pipe body after the bactericide, the second electric push rod control horizontal bar reset, and the bactericide from the lower convex tube into the mixing pipe inside, while the rack gear bar teeth, drive stirring rod rotation and bactericide and seawater mixing; S4, after, the first electric push rod push plate reset, motor start, drive the rotating shaft rotation, through the shaft gear mesh ring gear drive rotating cylinder rotation, and the next tube test tube to the convex tube above stop; S5, according to the flow rate of seawater, solenoid valve timing start, and the mixed bactericide seawater from the sampling tube to draw out quantitative seawater as sample for detection, the follow-up repeat the above operation, batch acquisition of multiple samples can.

Citation Information

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