Test control method and system based on polyolefin pipe anti-chlorine equipment

By acquiring and processing real-time monitoring parameter sets and preset experimental parameter sets, and generating and executing parameter adjustment instructions, the problem of low reliability in testing polyolefin pipe chlorine-resistant equipment is solved, and high-precision online monitoring and stable parameter control are achieved.

CN121916993APending Publication Date: 2026-04-24FOSHAN RIFENG NEW PIPE +2
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
FOSHAN RIFENG NEW PIPE
Filing Date
2026-01-23
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

Existing polyolefin pipe chlorine-resistant equipment lacks an online monitoring mechanism, resulting in low testing reliability and difficulty in timely obtaining test results.

Method used

By acquiring real-time monitoring parameter sets and preset experimental parameter sets, parameter adjustment instructions are generated and executed to achieve stable control of residual chlorine, pH value, ORP value and pipeline pressure value, thereby reducing test errors.

Benefits of technology

It improves the reliability of testing, enables timely monitoring and adjustment of key parameters, and reduces testing errors related to aging.

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Abstract

The invention is suitable for the technical field of test monitoring, and provides a test control method and system based on polyolefin pipe anti-chlorine equipment, and the method comprises the steps: firstly obtaining real-time monitoring parameter set information and target experiment parameter set information of target anti-chlorine equipment, and then generating and executing parameter adjustment instruction information based on the real-time monitoring parameter set information and the target experiment parameter set information. According to the system, a systematic linkage control system of experimental parameters and online monitoring of multiple core parameters can be realized, so that testers can accurately master a specific test state, the residual chlorine amount, the PH value, the ORP value and the pipeline pressure value can be stabilized in a preset reasonable range, the test error of the anti-chlorine test aging degree is remarkably reduced, and the test efficiency is improved. The reliability and consistency of test results are greatly improved, experimental data can be collected at certain intervals according to set parameters, traceable files are formed, subsequent data analysis and quality tracking are facilitated, and solid technical support and data support are provided for evaluation of the chlorine resistance of the polyolefin pipe.
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Description

Technical Field

[0001] This application relates to the technical field of testing and monitoring, and more specifically, to a testing and control method and system for chlorine-resistant equipment based on polyolefin pipes. Background Technology

[0002] Polyolefin pipes mainly refer to pipes made of polyolefin plastics such as polyethylene (PE) or polypropylene (PP). These pipes have been more widely used due to their advantages such as corrosion resistance, wear resistance, light weight and easy installation.

[0003] Currently, polyolefin pipe antichlorine equipment lacks an online monitoring mechanism for several core parameters, making it difficult for testers to obtain specific test results in a timely manner, resulting in low reliability, which needs further improvement. Summary of the Invention

[0004] Based on this, this application provides a test control method and system for polyolefin pipe chlorine-resistant equipment to solve the problem of low reliability in the prior art.

[0005] In a first aspect, embodiments of this application provide a testing and control method for a polyolefin pipe chlorine-resistant device, the method comprising: Acquire real-time monitoring parameter set information and preset target experimental parameter set information of the target chlorine-resistant equipment; Based on the real-time monitoring parameter set information and the target experimental parameter set information, parameter adjustment instruction information is generated and executed.

[0006] Compared with existing technologies, the beneficial effects are as follows: The test control method based on polyolefin pipe chlorine-resistant equipment provided in this application embodiment allows the terminal device to first acquire real-time monitoring parameter set information and preset target experimental parameter set information of the target chlorine-resistant equipment in real time. Then, based on the real-time monitoring parameter set information and the target experimental parameter set information, it accurately generates and executes parameter adjustment instruction information, thereby realizing online monitoring of multiple core parameters. This enables testers to know the specific test situation in a timely manner and stabilizes the residual chlorine content, pH value, ORP value and pipeline pressure value within a certain range, reducing the test error of aging degree in chlorine-resistant testing, greatly improving reliability, and solving the problem of low reliability in the current system to a certain extent.

[0007] Secondly, embodiments of this application provide a test and control system based on a polyolefin pipe chlorine-resistant device, the system comprising: Real-time monitoring parameter set information acquisition module: used to acquire real-time monitoring parameter set information of the target chlorine-resistant equipment and preset target experimental parameter set information; Parameter adjustment instruction information generation module: used to generate and execute parameter adjustment instruction information based on the real-time monitoring parameter set information and the target experimental parameter set information.

[0008] Thirdly, embodiments of this application provide a terminal device, including a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor executes the computer program to implement the steps of the method described in the first aspect above.

[0009] Fourthly, embodiments of this application provide a computer-readable storage medium storing a computer program that, when executed by a processor, implements the steps of the method described in the first aspect above.

[0010] It is understood that the beneficial effects of the second to fourth aspects mentioned above can be found in the relevant descriptions in the first aspect mentioned above, and will not be repeated here. Attached Figure Description

[0011] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.

[0012] Figure 1 This is a schematic flowchart of a test control method provided in an embodiment of this application; Figure 2 This is a schematic diagram of a test process provided in an embodiment of this application; Figure 3 This is a flowchart illustrating step S200 in a test control method provided in an embodiment of this application; Figure 4 This is a schematic diagram of the first process after step S200 in a test control method provided in an embodiment of this application; Figure 5 This is a schematic diagram of the second process after step S200 in a test control method provided in an embodiment of this application; Figure 6 This is a schematic diagram of the third process after step S200 in a test control method provided in an embodiment of this application; Figure 7 This is a block diagram of a test control system provided in one embodiment of this application; Figure 8 This is a schematic diagram of a terminal device provided in an embodiment of this application. Detailed Implementation

[0013] In the following description, specific details such as particular system architectures and techniques are set forth for illustrative purposes and not for limitation, in order to provide a thorough understanding of the embodiments of this application. However, those skilled in the art will understand that this application may also be implemented in other embodiments without these specific details. In other instances, detailed descriptions of well-known systems, apparatuses, circuits, and methods have been omitted so as not to obscure the description of this application with unnecessary detail.

[0014] In the description of this application and the appended claims, the terms "first," "second," "third," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0015] References to "one embodiment" or "some embodiments" as described in this specification mean that one or more embodiments of this application include a specific feature, structure, or characteristic described in connection with that embodiment. Therefore, the phrases "in one embodiment," "in some embodiments," "in other embodiments," "in still other embodiments," etc., appearing in different parts of this specification do not necessarily refer to the same embodiment, but rather mean "one or more, but not all, embodiments," unless otherwise specifically emphasized. The terms "comprising," "including," "having," and variations thereof mean "including but not limited to," unless otherwise specifically emphasized.

[0016] To illustrate the technical solution described in this application, specific embodiments are provided below.

[0017] Please see Figure 1 , Figure 1 This is a flowchart illustrating the testing and control method for polyolefin pipe chlorine-resistant equipment provided in this embodiment. In this embodiment, the execution subject of the testing and control method is a terminal device. It is understood that the types of terminal devices include, but are not limited to, tablet computers, laptops, Ultra-Mobile Personal Computers (UMPCs), netbooks, Personal Digital Assistants (PDAs), etc. This embodiment does not impose any restrictions on the specific type of terminal device.

[0018] Please see Figure 1 The test control method provided in this application includes, but is not limited to, the following steps: In S100, real-time monitoring parameter set information of the target chlorine-resistant equipment and preset target experimental parameter set information are obtained.

[0019] Specifically, the terminal device can first acquire the real-time monitoring parameter set information of the target chlorine-resistant equipment and the preset target experimental parameter set information, thereby realizing online monitoring of multiple core parameters. Among them, the target chlorine-resistant equipment is used to describe the chlorine-resistant equipment of the polyolefin pipe to be monitored; the real-time monitoring parameter set information includes real-time residual chlorine information, real-time pH value information, real-time oxidation-reduction potential value information, and real-time pipeline pressure value information; the real-time residual chlorine information is used to describe the real-time residual chlorine amount of the target chlorine-resistant equipment; the real-time pH value information is used to describe the real-time pH value of the target chlorine-resistant equipment; the real-time oxidation-reduction potential value information is used to describe the real-time oxidation-reduction potential value of the target chlorine-resistant equipment, i.e., the ORP value; the real-time pipeline pressure value information is used to describe the real-time pipeline pressure value of the target chlorine-resistant equipment; the real-time residual chlorine information, real-time pH value information, real-time oxidation-reduction potential value information, and real-time pipeline pressure value information can all be acquired through preset sensors.

[0020] Without loss of generality, the target experimental parameter set information includes target residual chlorine range information, target pH range information, target redox potential range information, and target pipeline pressure range information; the target residual chlorine range information is used to describe the range of residual chlorine values ​​that meet the expected experimental conditions; the target pH range information is used to describe the range of pH values ​​that meet the expected experimental conditions; the target redox potential range information is used to describe the range of redox potential values ​​that meet the expected experimental conditions; and the target pipeline pressure range information is used to describe the range of pipeline pressure values ​​that meet the expected experimental conditions.

[0021] For example, please refer to Figure 2 The working process of the polyolefin pipe chlorine-resistant equipment is as follows: First, water from the main water tank is pumped out and then pressure-regulated by 12 main line pressure regulating valves. Each main line corresponds to two branch lines to precisely control the pressure of each pipeline. The regulated pressure is then transmitted to the polypropylene pipes used for testing. The polypropylene pipe testing chamber is equipped with a heating device to ensure that the temperature inside and outside the pipe remains consistent, thereby reducing errors in the degree of aging during the chlorine-resistant test. The tested water is then circulated back to the main water tank through the return water system, achieving water recycling.

[0022] In S200, parameter adjustment instructions are generated and executed based on real-time monitoring parameter set information and target experimental parameter set information.

[0023] Specifically, after the terminal device acquires the real-time monitoring parameter set information and the target experimental parameter set information, it can effectively generate and execute parameter adjustment instructions based on these information. This enables the online detection program of the chlorine-resistant equipment to form a systematic linkage, stabilizing the residual chlorine content, pH value, and ORP value within a certain range. During operation, testing personnel can remotely monitor the core parameters of the chlorine-resistant equipment at any time and make timely adjustments when the core parameters exceed the set range. It can also achieve high-precision control of pipeline pressure values, such as controlling pressure fluctuations within ±0.001 MPa or ±0.01 MPa.

[0024] Without loss of generality, the parameter adjustment instruction information includes first adjustment instruction information, second adjustment instruction information, third adjustment instruction information and fourth adjustment instruction information.

[0025] In some possible implementations, for parameters that automatically adjust for exceptions, please refer to [link / reference]. Figure 3 Step S200 includes, but is not limited to, the following steps: In S210, it is determined whether the real-time residual chlorine information is less than the minimum value of the target residual chlorine range information or greater than the maximum value of the target residual chlorine range information.

[0026] Specifically, the terminal device can determine whether the real-time residual chlorine level is less than the minimum value of the target residual chlorine level range or greater than the maximum value of the target residual chlorine level range. The minimum value of the target residual chlorine level range can be 2.5 ppm, and the maximum value of the target residual chlorine level range can be 5 ppm.

[0027] In S220, if the real-time residual chlorine level information is less than the minimum value of the target residual chlorine level range information or greater than the maximum value of the target residual chlorine level range information, then the first adjustment instruction information is generated and executed.

[0028] Specifically, if the real-time residual chlorine level is less than the minimum value of the target residual chlorine level range or greater than the maximum value of the target residual chlorine level range, the terminal device can generate and execute the first adjustment instruction information, which helps to reduce the error of the aging degree of the chlorine resistance test. The first adjustment instruction information is used to adjust the real-time residual chlorine level until the real-time residual chlorine level is greater than the minimum value of the target residual chlorine level range and less than the maximum value of the target residual chlorine level range.

[0029] In S230, it is determined whether the real-time pH value information is less than the minimum value of the target pH value range information or greater than the maximum value of the target pH value range information.

[0030] Specifically, the terminal device can determine whether the real-time pH value information is less than the minimum value of the target pH value range information or greater than the maximum value of the target pH value range information. The minimum value of the target pH value range information can be 6.5, and the maximum value of the target pH value range information can be 8.

[0031] In S240, if the real-time pH value information is less than the minimum value of the target pH value range information or greater than the maximum value of the target pH value range information, then a second adjustment instruction information is generated and executed.

[0032] Specifically, if the real-time pH value is less than the minimum value of the target pH value range or greater than the maximum value of the target pH value range, the terminal device can generate and execute a second adjustment instruction. The second adjustment instruction is used to adjust the real-time pH value until the real-time pH value is greater than the minimum value of the target pH value range and less than the maximum value of the target pH value range.

[0033] In S250, it is determined whether the real-time redox potential value information is less than the minimum value of the target redox potential value range information.

[0034] Specifically, the terminal device can determine whether the real-time redox potential value is less than the minimum value of the target redox potential range information, where the minimum value of the target redox potential range information is 825mV.

[0035] In S260, if the real-time redox potential value is less than the minimum value of the target redox potential range, a third adjustment instruction is generated and executed.

[0036] Specifically, if the real-time redox potential value is less than the minimum value of the target redox potential range, the terminal device can generate and execute a third adjustment instruction. The third adjustment instruction is used to adjust the real-time redox potential value until it is greater than the minimum value of the target redox potential range.

[0037] In S270, it is determined whether the real-time pipeline pressure value information is less than the minimum value of the target pipeline pressure value range information or greater than the maximum value of the target pipeline pressure value range information.

[0038] Specifically, the terminal device can determine whether the real-time pipeline pressure value is less than the minimum value or greater than the maximum value of the target pipeline pressure value range. The minimum and maximum values ​​of the target pipeline pressure value range can be customized by the tester.

[0039] In S280, if the real-time pipeline pressure value is less than the minimum value of the target pipeline pressure value range or greater than the maximum value of the target pipeline pressure value range, then the fourth adjustment instruction information is generated and executed.

[0040] Specifically, if the real-time pipeline pressure value is less than the minimum value of the target pipeline pressure range or greater than the maximum value of the target pipeline pressure range, the terminal device can generate and execute a fourth adjustment instruction. The fourth adjustment instruction is used to adjust the real-time pipeline pressure value until it is greater than the minimum value of the target pipeline pressure range and less than the maximum value of the target pipeline pressure range.

[0041] For details on possible implementations, please refer to [link / reference needed]. Figure 4 After step S200, the method further includes, but is not limited to, the following steps: In S300, based on the preset sampling time period information, the adjustment count information corresponding to the first adjustment instruction information, the second adjustment instruction information, the third adjustment instruction information and / or the fourth adjustment instruction information is obtained.

[0042] Specifically, after the terminal device generates and executes the parameter adjustment instruction information, the terminal device can obtain the adjustment count information corresponding to the first adjustment instruction information, the second adjustment instruction information, the third adjustment instruction information, and / or the fourth adjustment instruction information based on the preset sampling time period information. The adjustment count information is used to describe the total number of adjustments made by the first adjustment instruction information, the second adjustment instruction information, the third adjustment instruction information, or the fourth adjustment instruction information within the sampling time period information. The specific duration of the sampling time period information can be customized by the tester.

[0043] In S310, total adjustment count information is generated based on the adjustment count information corresponding to the first adjustment instruction information, the second adjustment instruction information, the third adjustment instruction information and / or the fourth adjustment instruction information.

[0044] Specifically, after the terminal device obtains the adjustment count information corresponding to the first adjustment instruction information, the second adjustment instruction information, the third adjustment instruction information and / or the fourth adjustment instruction information, the terminal device can generate total adjustment count information based on the sum of the adjustment count information corresponding to the first adjustment instruction information, the second adjustment instruction information, the third adjustment instruction information and / or the fourth adjustment instruction information.

[0045] In S320, adjustment frequency information is generated based on the total number of adjustments and the sampling time period information.

[0046] Specifically, after the terminal device generates the total number of adjustments, it can generate the adjustment frequency information by dividing the total number of adjustments by the quotient of the sampling time period information.

[0047] In S330, the adjustment frequency information is compared with the preset first frequency threshold information.

[0048] Specifically, after the terminal device generates the adjustment frequency information, the terminal device can compare the adjustment frequency information with the preset first frequency threshold information, where the specific value of the first frequency threshold information can be predefined by the tester.

[0049] In S340, if the frequency adjustment information is less than or equal to the first frequency threshold information, then regular test information is generated.

[0050] Specifically, if the adjustment frequency information is less than or equal to the first frequency threshold information, it indicates that the number of times data needs to be adjusted is relatively small due to data anomalies, so the terminal device can generate regular test information.

[0051] In S350, if the adjustment frequency information is greater than the first frequency threshold information, the adjustment frequency information is compared with the preset second frequency threshold information.

[0052] Specifically, if the adjustment frequency information is greater than the first frequency threshold information, the terminal device can compare the adjustment frequency information with the preset second frequency threshold information, wherein the second frequency threshold information is greater than the first frequency threshold information, and the specific value of the second frequency threshold information can be predefined by the tester.

[0053] In S360, if the adjustment frequency information is less than or equal to the second frequency threshold information, then ordinary abnormal fluctuation information is generated.

[0054] Specifically, if the adjustment frequency information is less than or equal to the second frequency threshold information, it indicates that there are many times that data needs to be adjusted due to data anomalies, so the terminal device can generate ordinary abnormal fluctuation information.

[0055] In S370, if the adjustment frequency information is greater than the second frequency threshold information, abnormal fluctuation information is generated.

[0056] Specifically, if the adjustment frequency information is greater than the second frequency threshold information, it indicates that there are a large number of times the data needs to be adjusted due to data anomalies, so the terminal device can generate abnormal fluctuation information.

[0057] In some possible implementations, to achieve the creation of traceable documents and facilitate data traceability, please refer to [link / reference needed]. Figure 5 After step S200, the method further includes, but is not limited to, the following steps: In S400, in response to the parameter adjustment command completion information, after waiting for a specified period of time, the adjusted monitoring parameter set information of the target chlorine-resistant equipment is obtained.

[0058] Specifically, in response to parameter adjustment instruction completion information, the terminal device can acquire the adjusted monitoring parameter set information of the target antichlorine device after waiting for a specified time period. The parameter adjustment instruction completion information is used to indicate the completion of the first, second, third, or fourth adjustment instruction information. The specific duration of the specified time period can be predefined by the tester, such as five minutes or ten minutes. The adjusted monitoring parameter set information is used to describe the real-time monitoring parameter set information acquired again.

[0059] In S410, traceable file information is generated based on real-time monitoring parameter set information and adjusted monitoring parameter set information.

[0060] Specifically, after the terminal device obtains the adjusted monitoring parameter set information, the terminal device can generate traceable file information based on the real-time monitoring parameter set information and the adjusted monitoring parameter set information. The traceable file information is used to describe the data set containing the real-time monitoring parameter set information and the adjusted monitoring parameter set information.

[0061] In the S420, traceable file information is uploaded to a designated terminal or cloud server.

[0062] Specifically, after the terminal device generates traceable file information, the terminal device can upload the traceable file information to a designated terminal or cloud server. The designated terminal can be the terminal corresponding to the tester.

[0063] For further information on possible implementations and to help testers better understand the specific test conditions, please refer to [link / reference]. Figure 6 After step S200, the method further includes, but is not limited to, the following steps: In S500, obtain target outlier information and historical maximum outlier information.

[0064] Specifically, the terminal device can obtain target outlier information and historical maximum outlier information. The target outlier information describes the real-time pipeline pressure value information that is outside the target pipeline pressure value range. The historical maximum outlier information describes the real-time pipeline pressure value information with the largest value in historical tests.

[0065] In S510, the target outlier information is compared with the historical maximum outlier information.

[0066] Specifically, after the terminal device obtains the target outlier information and the historical maximum outlier information, the terminal device can compare the target outlier information and the historical maximum outlier information.

[0067] In S520, if the target abnormal value information is greater than or equal to the historical maximum abnormal value information, a serious abnormal pipe pressure alert information is generated.

[0068] Specifically, if the target outlier is greater than or equal to the historical maximum outlier, it indicates a high-risk serious anomaly in the pipeline pressure. Therefore, the terminal device can generate a serious anomaly pipeline pressure alert message, which is used to remind the test personnel that there is a serious anomaly in the pipeline pressure.

[0069] The implementation principle of the test control method for polyolefin pipe chlorine-resistant equipment in this application embodiment is as follows: The terminal equipment can first obtain the real-time monitoring parameter set information and the preset target experimental parameter set information of the target chlorine-resistant equipment in real time. Then, based on the real-time monitoring parameter set information and the target experimental parameter set information, it accurately generates and executes parameter adjustment instruction information, thereby realizing online monitoring of multiple core parameters. This allows testers to know the specific test situation in a timely manner and stabilize the residual chlorine content, pH value, ORP value and pipeline pressure value within a certain range, reducing the test error of the aging degree of chlorine-resistant testing and greatly improving reliability.

[0070] It should be noted that the sequence number of each step in the above embodiments does not imply the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this application.

[0071] Embodiments of this application also provide a test and control system based on polyolefin pipe chlorine-resistant equipment. For ease of explanation, only the parts relevant to this application are shown, such as... Figure 7 As shown, the system 70 includes: Real-time monitoring parameter set information acquisition module 71: used to acquire real-time monitoring parameter set information of the target chlorine-resistant equipment and preset target experimental parameter set information; Parameter adjustment instruction information generation module 72: Used to generate and execute parameter adjustment instruction information based on real-time monitoring parameter set information and target experimental parameter set information.

[0072] Optionally, the real-time monitoring parameter set information includes real-time residual chlorine information, real-time pH information, real-time oxidation-reduction potential information, and real-time pipeline pressure information; the target experimental parameter set information includes target residual chlorine range information, target pH range information, target oxidation-reduction potential range information, and target pipeline pressure range information; the parameter adjustment instruction information includes first adjustment instruction information, second adjustment instruction information, third adjustment instruction information, and fourth adjustment instruction information; the above parameter adjustment instruction information generation module 72 includes: Real-time residual chlorine information judgment submodule: used to determine whether the real-time residual chlorine information is less than the minimum value of the target residual chlorine range information or greater than the maximum value of the target residual chlorine range information; First adjustment instruction information generation submodule: If the real-time residual chlorine information is less than the minimum value of the target residual chlorine range information or greater than the maximum value of the target residual chlorine range information, then generate and execute the first adjustment instruction information, wherein the first adjustment instruction information is used to adjust the real-time residual chlorine information until the real-time residual chlorine information is greater than the minimum value of the target residual chlorine range information and less than the maximum value of the target residual chlorine range information. Real-time pH value information judgment submodule: used to determine whether the real-time pH value is less than the minimum value of the target pH value range or greater than the maximum value of the target pH value range; The second adjustment instruction information generation submodule is used to generate and execute the second adjustment instruction information if the real-time pH value information is less than the minimum value of the target pH value range information or greater than the maximum value of the target pH value range information. The second adjustment instruction information is used to adjust the real-time pH value information until the real-time pH value information is greater than the minimum value of the target pH value range information and less than the maximum value of the target pH value range information. Real-time oxidation-reduction potential value information judgment submodule: used to determine whether the real-time oxidation-reduction potential value information is less than the minimum value of the target oxidation-reduction potential value range information; The third adjustment instruction information generation submodule is used to generate and execute the third adjustment instruction information if the real-time oxidation-reduction potential value information is less than the minimum value of the target oxidation-reduction potential value range information. The third adjustment instruction information is used to adjust the real-time oxidation-reduction potential value information until the real-time oxidation-reduction potential value information is greater than the minimum value of the target oxidation-reduction potential value range information and less than the maximum value of the target oxidation-reduction potential value range information. Real-time pipeline pressure value information judgment submodule: used to determine whether the real-time pipeline pressure value is less than the minimum value of the target pipeline pressure value range or greater than the maximum value of the target pipeline pressure value range; The fourth adjustment instruction information generation submodule is used to generate and execute the fourth adjustment instruction information if the real-time pipeline pressure value is less than the minimum value of the target pipeline pressure value range or greater than the maximum value of the target pipeline pressure value range. The fourth adjustment instruction information is used to adjust the real-time pipeline pressure value until the real-time pipeline pressure value is greater than the minimum value of the target pipeline pressure value range and less than the maximum value of the target pipeline pressure value range.

[0073] Optionally, the system 70 also includes: Module: Used to obtain the number of adjustments corresponding to the first adjustment instruction information, the second adjustment instruction information, the third adjustment instruction information and / or the fourth adjustment instruction information based on the preset sampling time period information; Total number of adjustments information generation module: used to generate total number of adjustments information based on the adjustment number information corresponding to the first adjustment instruction information, the second adjustment instruction information, the third adjustment instruction information and / or the fourth adjustment instruction information; Adjustment frequency information generation module: used to generate adjustment frequency information based on the total number of adjustments and the sampling time period. Adjustment frequency information first comparison module: used to compare adjustment frequency information with preset first frequency threshold information; Regular test information generation module: used to generate regular test information if the adjustment frequency information is less than or equal to the first frequency threshold information; The second comparison module for adjusting frequency information is used to compare the adjusted frequency information with the preset second frequency threshold information if the adjusted frequency information is greater than the first frequency threshold information, wherein the second frequency threshold information is greater than the first frequency threshold information. Ordinary abnormal fluctuation information generation module: used to generate ordinary abnormal fluctuation information if the adjustment frequency information is less than or equal to the second frequency threshold information; Abnormal fluctuation information generation module: Used to generate abnormal fluctuation information if the adjustment frequency information is greater than the second frequency threshold information.

[0074] Optionally, the system 70 also includes: Adjusted monitoring parameter set information acquisition module: In response to the parameter adjustment instruction completion information, after waiting for a specified period of time, it acquires the adjusted monitoring parameter set information of the target chlorine-resistant equipment. The adjusted monitoring parameter set information is used to describe the real-time monitoring parameter set information acquired again. Traceable document information generation module: used to generate traceable document information based on real-time monitoring parameter set information and adjusted monitoring parameter set information; Traceable document information upload module: used to upload traceable document information to a specified terminal or cloud server.

[0075] Optionally, the system 70 also includes: Target outlier information acquisition module: used to acquire target outlier information and historical maximum outlier information. The target outlier information is used to describe real-time pipeline pressure values ​​that are outside the target pipeline pressure value range. Target outlier information comparison module: used to compare target outlier information with historical maximum outlier information; Serious Abnormal Pipe Pressure Alert Module: This module generates a serious abnormal pipe pressure alert if the target abnormal value is greater than or equal to the historical maximum abnormal value.

[0076] It should be noted that the information interaction and execution process between the above modules are based on the same concept as the method embodiments of this application. For details on their specific functions and technical effects, please refer to the method embodiments section, which will not be repeated here.

[0077] This application also provides a terminal device, such as... Figure 8 As shown, the terminal device 80 in this embodiment includes: a processor 81, a memory 82, and a computer program 83 stored in the memory 82 and executable on the processor 81. When the processor 81 executes the computer program 83, it implements the steps described in the test control method embodiment above, for example... Figure 1 Steps S100 to S200 are shown; or, when processor 81 executes computer program 83, it implements the functions of each module in the above-described device, for example... Figure 7 The functions of modules 71 and 72 shown.

[0078] The terminal device 80 can be a desktop computer, laptop, handheld computer, cloud server, or other computing device, and includes, but is not limited to, a processor 81 and a memory 82. Those skilled in the art will understand that... Figure 8 This is merely an example of terminal device 80 and does not constitute a limitation on terminal device 80. It may include more or fewer components than shown, or combine certain components, or different components. For example, terminal device 80 may also include input / output devices, network access devices, buses, etc.

[0079] The processor 81 can be a central processing unit (CPU), or other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc.; the general-purpose processor can be a microprocessor or any conventional processor, etc.

[0080] The memory 82 can be an internal storage unit of the terminal device 80, such as a hard disk or memory of the terminal device 80. The memory 82 can also be an external storage device of the terminal device 80, such as a plug-in hard disk, smart media card (SMC), secure digital (SD) card, flash card, etc., equipped on the terminal device 80. Furthermore, the memory 82 can include both internal storage units and external storage devices of the terminal device 80. The memory 82 can also store computer program 83 and other programs and data required by the terminal device 80. The memory 82 can also be used to temporarily store data that has been output or will be output.

[0081] One embodiment of this application also provides a computer-readable storage medium storing a computer program that, when executed by a processor, can implement the steps of the various method embodiments described above. The computer program includes computer program code, which may be in the form of source code, object code, executable file, or some intermediate form. The computer-readable medium may include any entity or device capable of carrying computer program code, a recording medium, a USB flash drive, a portable hard drive, a magnetic disk, an optical disk, a computer memory, a read-only memory (ROM), a random access memory (RAM), an electrical carrier signal, a telecommunication signal, and a software distribution medium, etc.

[0082] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the methods, principles and structures of this application should be covered within the scope of protection of this application.

Claims

1. A test and control method for chlorine-resistant equipment based on polyolefin pipes, characterized in that, The method includes: Acquire real-time monitoring parameter set information and preset target experimental parameter set information of the target chlorine-resistant equipment; Based on the real-time monitoring parameter set information and the target experimental parameter set information, parameter adjustment instruction information is generated and executed.

2. The method according to claim 1, characterized in that, The real-time monitoring parameter set information includes real-time residual chlorine information, real-time pH information, real-time oxidation-reduction potential information, and real-time pipeline pressure information. The target experimental parameter set information includes target residual chlorine range information, target pH range information, target oxidation-reduction potential range information, and target pipeline pressure range information. The parameter adjustment instruction information includes first adjustment instruction information, second adjustment instruction information, third adjustment instruction information, and fourth adjustment instruction information. The step of generating and executing parameter adjustment instruction information based on the real-time monitoring parameter set information and the target experimental parameter set information includes: Determine whether the real-time residual chlorine information is less than the minimum value of the target residual chlorine range information or greater than the maximum value of the target residual chlorine range information; If the real-time residual chlorine information is less than the minimum value of the target residual chlorine range information or greater than the maximum value of the target residual chlorine range information, then the first adjustment instruction information is generated and executed. The first adjustment instruction information is used to adjust the real-time residual chlorine information until the real-time residual chlorine information is greater than the minimum value of the target residual chlorine range information and less than the maximum value of the target residual chlorine range information. Determine whether the real-time pH value information is less than the minimum value of the target pH value range information or greater than the maximum value of the target pH value range information; If the real-time pH value information is less than the minimum value of the target pH value range information or greater than the maximum value of the target pH value range information, then the second adjustment instruction information is generated and executed. The second adjustment instruction information is used to adjust the real-time pH value information until the real-time pH value information is greater than the minimum value of the target pH value range information and less than the maximum value of the target pH value range information. Determine whether the real-time redox potential value is less than the minimum value of the target redox potential range; If the real-time redox potential value is less than the minimum value of the target redox potential range, then the third adjustment instruction is generated and executed. The third adjustment instruction is used to adjust the real-time redox potential value until the real-time redox potential value is greater than the minimum value of the target redox potential range and less than the maximum value of the target redox potential range. Determine whether the real-time pipeline pressure value is less than the minimum value of the target pipeline pressure value range or greater than the maximum value of the target pipeline pressure value range. If the real-time pipeline pressure value is less than the minimum value of the target pipeline pressure range information or greater than the maximum value of the target pipeline pressure range information, then the fourth adjustment instruction information is generated and executed. The fourth adjustment instruction information is used to adjust the real-time pipeline pressure value information until the real-time pipeline pressure value information is greater than the minimum value of the target pipeline pressure range information and less than the maximum value of the target pipeline pressure range information.

3. The method according to claim 2, characterized in that, After generating and executing parameter adjustment instruction information based on the real-time monitoring parameter set information and the target experimental parameter set information, the method further includes: Based on the preset sampling time period information, obtain the adjustment count information corresponding to the first adjustment instruction information, the second adjustment instruction information, the third adjustment instruction information and / or the fourth adjustment instruction information; Based on the adjustment count information corresponding to the first adjustment instruction information, the second adjustment instruction information, the third adjustment instruction information and / or the fourth adjustment instruction information, generate total adjustment count information; Based on the total number of adjustments and the sampling time period information, adjustment frequency information is generated; Compare the adjustment frequency information with the preset first frequency threshold information; If the adjustment frequency information is less than or equal to the first frequency threshold information, then regular test information is generated; If the adjustment frequency information is greater than the first frequency threshold information, then the adjustment frequency information is compared with the preset second frequency threshold information, wherein the second frequency threshold information is greater than the first frequency threshold information; If the adjustment frequency information is less than or equal to the second frequency threshold information, then ordinary abnormal fluctuation information is generated; If the adjustment frequency information is greater than the second frequency threshold information, abnormal fluctuation information is generated.

4. The method according to claim 2, characterized in that, After generating and executing parameter adjustment instruction information based on the real-time monitoring parameter set information and the target experimental parameter set information, the method further includes: In response to the parameter adjustment instruction completion information, after waiting for a specified period of time, the adjusted monitoring parameter set information of the target chlorine-resistant equipment is obtained, wherein the adjusted monitoring parameter set information is used to describe the real-time monitoring parameter set information obtained again; Based on the real-time monitoring parameter set information and the adjusted monitoring parameter set information, generate traceable file information; Upload the traceable file information to the designated terminal or cloud server.

5. The method according to claim 2, characterized in that, After generating and executing parameter adjustment instruction information based on the real-time monitoring parameter set information and the target experimental parameter set information, the method further includes: Obtain target outlier information and historical maximum outlier information, wherein the target outlier information is used to describe real-time pipeline pressure value information that is outside the target pipeline pressure value range; Compare the target outlier information with the historical maximum outlier information; If the target abnormal value information is greater than or equal to the historical maximum abnormal value information, a serious abnormal pipe pressure alert information is generated.

6. A test and control system based on chlorine-resistant equipment for polyolefin pipes, characterized in that, The system includes: Real-time monitoring parameter set information acquisition module: used to acquire real-time monitoring parameter set information of the target chlorine-resistant equipment and preset target experimental parameter set information; Parameter adjustment instruction information generation module: used to generate and execute parameter adjustment instruction information based on the real-time monitoring parameter set information and the target experimental parameter set information.

7. The system according to claim 6, characterized in that, The system also includes: Target outlier information acquisition module: used to acquire target outlier information and historical maximum outlier information, wherein the target outlier information is used to describe real-time pipeline pressure value information located outside the target pipeline pressure value range; Target outlier information comparison module: used to compare the target outlier information with the historical maximum outlier information; Serious Abnormal Pipe Pressure Alert Module: Used to generate serious abnormal pipe pressure alert information if the target abnormal value information is greater than or equal to the historical maximum abnormal value information.

8. A terminal device, comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that, When the processor executes the computer program, it implements the steps of the method as described in any one of claims 1 to 5.

9. A computer-readable storage medium storing a computer program, characterized in that, When the computer program is executed by a processor, it implements the steps of the method as described in any one of claims 1 to 5.