Self-adaptive control method and device of industrial wastewater treatment system, medium and equipment

By using an adaptive control method and an intelligent agent to determine the processing parameters and devices, the industrial wastewater treatment process is optimized, which solves the problem of low processing efficiency in existing systems and achieves efficient industrial wastewater treatment.

CN122043965APending Publication Date: 2026-05-15BEIJING YUTAO ENVIRONMENTAL ENG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
BEIJING YUTAO ENVIRONMENTAL ENG CO LTD
Filing Date
2026-04-08
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Existing industrial wastewater treatment systems are inefficient because not all industrial wastewater needs to pass through all treatment devices, resulting in resource waste and low treatment efficiency.

Method used

By using an adaptive control method, an intelligent agent is used to determine the target processing parameters, select appropriate processing devices and relay devices, and optimize the processing flow based on preset device states and processing queues to achieve adaptive processing.

Benefits of technology

It improves the treatment efficiency of industrial wastewater treatment systems, enabling them to quickly treat different types of industrial wastewater according to user needs, thus enhancing the system's treatment capacity.

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Abstract

The invention provides a self-adaptive control method and device for an industrial wastewater treatment system, a medium and equipment, and belongs to the technical field of wastewater treatment. The method comprises the following steps: in response to a treatment request, output by a user, of target industrial wastewater, determining target treatment parameters of the target industrial wastewater; calling an intelligent agent, and determining a processing device identifier and a transfer device identifier corresponding to the target processing parameter; determining an idle processing device corresponding to the processing device identifier and an idle transfer device corresponding to the transfer device identifier in a preset device state configuration window; according to a preset device processing queue, determining a first operation relationship between the idle processing devices and a second operation relationship between the idle processing devices and the idle transfer devices, and controlling the idle processing devices and the idle transfer devices to operate; and sending the target output parameter of the target output port indicated by the device processing queue to the user.
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Description

Technical Field

[0001] This invention relates to the technical field of unmanned aerial vehicles (UAVs), and more specifically, to an adaptive control method, apparatus, medium, and equipment for an industrial wastewater treatment system. Background Technology

[0002] With increasing environmental awareness, wastewater treatment is widely used in various industries, such as medical, residential, and industrial sectors. Currently, existing industrial wastewater treatment systems are typically equipped with filtration, neutralization, and heavy metal removal devices. Industrial wastewater can be treated through these devices to meet discharge standards. However, some industrial wastewater does not require treatment through all these devices, which results in lower treatment efficiency for industrial wastewater treatment systems. Summary of the Invention

[0003] To address the aforementioned problems, the present invention aims to provide an adaptive control method, apparatus, storage medium, and electronic device for an industrial wastewater treatment system.

[0004] In a first aspect, embodiments of the present invention provide an adaptive control method for an industrial wastewater treatment system, the method comprising: In response to a user's request to treat a target industrial wastewater, the target treatment parameters for the target industrial wastewater are determined. Invoke the intelligent agent to determine the processing device identifier and relay device identifier corresponding to the target processing parameters; In the preset device status configuration window, identify the idle processing device corresponding to the processing device identifier and the idle transfer device corresponding to the transfer device identifier; Based on the preset device processing queue, determine the first operating relationship between each idle processing device and the second operating relationship between each idle processing device and each idle transfer device, and control the operation of the idle processing device and the idle transfer device. Send the target output parameters of the target output port indicated by the device processing queue to the user.

[0005] In some optional implementations, the target treatment parameters include wastewater type, treatment volume, and treatment duration; the treatment device identifier includes a filtration identifier, a neutralization treatment identifier, and a metal removal identifier; the invocation of the intelligent agent to determine the treatment device identifier and transfer device identifier corresponding to the target treatment parameters includes: Invoke the intelligent agent to determine at least some of the identifiers corresponding to the wastewater type among the filtration identifier, neutralization treatment identifier, and metal removal identifier; The intelligent agent is invoked to determine the first quantity corresponding to the at least some of the identifiers, based on the processing volume and processing time. The intelligent agent is invoked to determine the associated second number of relay device identifiers based on the at least partial identifiers under the first number, the processing volume, and the processing time.

[0006] In some optional implementations, the step of invoking the intelligent agent to determine the associated second number of relay device identifiers based on the at least partial identifiers under the first number, the processing volume, and the processing time includes: If at least some of the identifiers contain only the filter identifier, the agent is invoked to determine, based on the processing volume and the processing time, a second number of relay device identifiers and the output port function identifiers associated with the relay device.

[0007] In some optional implementations, the step of invoking the intelligent agent to determine the associated second number of relay device identifiers based on the at least partial identifiers under the first number, the processing volume, and the processing time includes: If the at least partial identifier includes at least one of the neutralization processing identifier and the metal removal identifier, as well as the filtering identifier, the agent is invoked to determine the associated second number of transfer device identifiers based on the third number of filtering identifiers.

[0008] In some optional implementations, determining a first operational relationship between the idle processing devices and a second operational relationship between the idle processing devices and the idle transfer devices based on a preset device processing queue, and controlling the operation of the idle processing devices and the idle transfer devices, includes: When the idle processing device is only a filtration device of the industrial wastewater treatment system, a second operating relationship between each idle processing device and each idle transfer device is determined according to a preset device processing queue, and the operation of the idle processing device and the idle transfer device is controlled.

[0009] In some optional implementations, determining a first operational relationship between the idle processing devices and a second operational relationship between the idle processing devices and the idle transfer devices based on a preset device processing queue, and controlling the operation of the idle processing devices and the idle transfer devices, includes: When the idle processing device is one of the neutralization device and the heavy metal removal device of the industrial wastewater treatment system, as well as the filtration device, a second operating relationship between each of the idle processing devices and each of the idle transfer devices is determined according to the preset device processing queue, and the operation of the idle processing device and the idle transfer device is controlled.

[0010] In some optional implementations, determining a first operational relationship between the idle processing devices and a second operational relationship between the idle processing devices and the idle transfer devices based on a preset device processing queue, and controlling the operation of the idle processing devices and the idle transfer devices, includes: When the idle processing device is a filtration device, neutralization device, and heavy metal removal device of the industrial wastewater treatment system, a first operating relationship between each idle processing device and a second operating relationship between each idle processing device and each idle transfer device are determined according to a preset device processing queue, and the operation of the idle processing device and the idle transfer device is controlled.

[0011] Secondly, embodiments of the present invention also provide an adaptive control device for an industrial wastewater treatment system, comprising: The response module is used to respond to the user's request for the treatment of the target industrial wastewater and determine the target treatment parameters of the target industrial wastewater. The calling module is used to call the intelligent agent to determine the processing device identifier and the relay device identifier corresponding to the target processing parameters; The first determining module is used to determine, in a preset device status configuration window, an idle processing device corresponding to the processing device identifier and an idle relay device corresponding to the relay device identifier; The second determining module is used to determine, according to the preset device processing queue, the first operating relationship between each idle processing device and the second operating relationship between each idle processing device and each idle transfer device, and to control the operation of the idle processing device and the idle transfer device. The sending module is used to send the target output parameters of the target output port indicated by the device processing queue to the user.

[0012] Thirdly, embodiments of the present invention also provide a computer storage medium storing computer-executable instructions for use in the adaptive control method of the industrial wastewater treatment system described in any one of the above claims.

[0013] Fourthly, embodiments of the present invention also provide an electronic device, comprising: At least one processor; and, A memory communicatively connected to the at least one processor; wherein, The memory stores instructions that can be executed by the at least one processor, which, when executed by the at least one processor, enables the at least one processor to perform the adaptive control method for the industrial wastewater treatment system described above.

[0014] In the solution provided by the first aspect of the present invention, the adaptive control method of the industrial wastewater treatment system provided by the present invention can respond to a user's industrial wastewater treatment request, determine the treatment parameters of the industrial wastewater, and determine and control the operation of idle treatment devices and idle transfer devices based on the intelligent agent and equipment status configuration window according to the treatment parameters, so as to realize the adaptive treatment of industrial wastewater with different treatment requirements according to the user's treatment request, and effectively improve the treatment efficiency of the industrial wastewater treatment system.

[0015] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, preferred embodiments are described below in detail with reference to the accompanying drawings. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 A flowchart of an adaptive control method for an industrial wastewater treatment system provided in an embodiment of the present invention is shown; Figure 2 A schematic diagram of the industrial wastewater treatment system provided in an embodiment of the present invention is shown; Figure 3 This invention provides a schematic diagram of the structure of an adaptive control device for an industrial wastewater treatment system according to an embodiment of the present invention. Figure 4 A schematic diagram of an electronic device for performing an adaptive control method for an industrial wastewater treatment system, provided in an embodiment of the present invention, is shown. Detailed Implementation

[0018] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," and "counterclockwise," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.

[0019] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this invention, "a plurality of" means two or more, unless otherwise explicitly specified.

[0020] In this invention, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.

[0021] An adaptive control method for an industrial wastewater treatment system is provided in this embodiment of the invention. (See also...) Figure 1 As shown, the executing entity of this method can be the control terminal of an industrial wastewater treatment system. The filtration device, neutralization device, and heavy metal removal device configured in this industrial wastewater treatment system are respectively communicatively connected to the control terminal. The method includes: Step 101: In response to the user's request for treatment of the target industrial wastewater, determine the target treatment parameters for the target industrial wastewater.

[0022] In this embodiment, the processing parameters may include wastewater type, processing volume, and processing time. Here, wastewater type may be impurity wastewater, wastewater with abnormal pH, or wastewater with excessive heavy metals. Processing volume may be the actual volume or weight of the target industrial wastewater. Processing time may be the longest time for processing the target industrial wastewater.

[0023] Step 102: Invoke the intelligent agent to determine the processing device identifier and relay device identifier corresponding to the target processing parameters.

[0024] Specifically, the target treatment parameters include wastewater type, treatment volume, and treatment duration; the treatment device identifiers include filtration identifiers, neutralization treatment identifiers, and metal removal identifiers; and step 102, "calling the intelligent agent to determine the treatment device identifiers and transfer device identifiers corresponding to the target treatment parameters," includes steps A1 to A3: Step A1: Invoke the agent to determine at least some of the identifiers corresponding to the wastewater type in the filtration identifier, neutralization treatment identifier, and metal removal identifier.

[0025] In this embodiment, the intelligent agent can be a general neural network model, which can be an optimized neural network model. By processing the wastewater type contained in the request, at least some of the identifiers corresponding to the wastewater type in the filtration identifier, neutralization treatment identifier, and metal removal identifier can be determined.

[0026] Step A2: Invoke the agent to determine the first quantity corresponding to at least some of the identifiers, based on the processing volume and processing time.

[0027] In this embodiment, the intelligent agent can determine the first quantity corresponding to at least some of the identifiers by pre-inputting the unit processing volume and unit processing time of each filter identifier, neutralization processing identifier, and metal removal identifier, given that the processing volume and processing time are fixed. For example, if the processing volume is filter identifier -300t, the unit processing volume of the filter identifier is 150t, the unit processing time is 1h, and the processing time is 1h, then there are 2 filter identifiers among the at least some identifiers.

[0028] Step A3: Invoke the intelligent agent to determine the associated second number of transfer device identifiers based on at least some of the identifiers, processing volume, and processing time under the first quantity.

[0029] In this embodiment, the intelligent agent pre-sets associated transfer device identifiers and the corresponding number of transfer devices for different processing device identifiers. For example, the processing capacity is Filter Identifier - 300t, the unit processing capacity of Filter Identifier is 50t and the unit processing time is 1h, the processing device identifier is only 6 Filter Identifiers, the processing time is 1h, and the transfer device identifier can be 1.

[0030] Specifically, step A3 above, "calling the intelligent agent to determine the associated second number of transfer device identifiers based on at least some of the identifiers, processing volume, and processing time under the first quantity," includes step B1: Step B1: If at least some of the identifiers contain only filter identifiers, invoke the agent to determine the associated second number of transfer device identifiers and the output port function identifiers associated with the transfer device, based on the processing volume and processing time.

[0031] In some embodiments, such as Figure 2As shown, the unit processing capacity of the filter identifier is 50t and the unit processing time is 1h. At least some identifiers correspond only to filter devices 1a, 1b and 1c. The intelligent agent is invoked. With a processing capacity of filter identifier -150t and a processing time of 1h, the second number of transfer devices 2a and 2b are determined to be associated. The output port function identifier of transfer devices 2a and 2b is output port k1. This allows the control terminal to input industrial wastewater that only needs to be filtered through transfer device 2b to transfer device 2a through output port k1 when outputting industrial wastewater that only needs to be filtered. The output port s1 of transfer device 2a is used as the target output port indicated by the device processing queue to output the processed industrial wastewater, so as to realize the rapid processing and output of industrial wastewater that only needs to be filtered.

[0032] Specifically, step A3 above, "calling the intelligent agent to determine the associated second number of transfer device identifiers based on at least some of the identifiers, processing volume, and processing time under the first quantity," includes step C1: Step C1: If at least some of the identifiers include at least one of a neutralization processing identifier and a metal removal identifier, as well as a filtering identifier, invoke the agent to determine the associated second number of transfer device identifiers based on the third number of filtering identifiers.

[0033] In some embodiments, such as Figure 2 As shown, the unit processing capacity of the filter identifier is 50t and the unit processing time is 1h. At least some of the identifiers correspond to filter device 1a, filter device 1b, filter device 1c and neutralization device 3. The intelligent agent is invoked, and based on the third filter identifier with a quantity of 3, it can determine the associated second transfer device identifier with a quantity of 1, that is, the corresponding transfer device 2a, so as to configure the corresponding transfer device in the scenario where industrial wastewater needs to be filtered and neutralized at the same time, so that the filtered output industrial wastewater can be neutralized.

[0034] In some embodiments, such as Figure 2 As shown, the unit processing capacity of the filter identifier is 50t and the unit processing time is 1h. At least some of the identifiers correspond to filter device 1a, filter device 1b, filter device 1c and heavy metal removal device 4. The intelligent agent is invoked, and based on the third filter identifier with a quantity of 3, it can determine the associated transfer device identifier with a second quantity of 1, that is, the transfer device 2b. In order to realize the configuration of the corresponding transfer device in the scenario where industrial wastewater needs to be filtered and heavy metal removed at the same time, so that the filtered output industrial wastewater can be treated for heavy metal removal.

[0035] In some embodiments, such as Figure 2As shown, the unit processing capacity of the filter identifier is 50t and the unit processing time is 1h. At least some of the identifiers correspond to filter device 1a, filter device 1b, filter device 1c, neutralization device 3, and heavy metal removal device 4. The intelligent agent is invoked, and based on the third number of filter identifiers (3), the second number of transfer device identifiers (2) can be associated, that is, corresponding to transfer devices 2a and 2b. This enables the configuration of corresponding transfer devices in scenarios where industrial wastewater requires simultaneous filtration, neutralization, and heavy metal removal, so that the filtered output industrial wastewater can undergo neutralization and heavy metal removal treatment.

[0036] Step 103: In the preset device status configuration window, identify the idle processing device corresponding to the processing device identifier and the idle transfer device corresponding to the transfer device identifier.

[0037] In this embodiment, each processing device and relay device can actively report its operating status, so that the control terminal can determine the operating status of each processing device and relay device in the device status configuration window based on the operating status reported by each processing device and relay device, and determine the idle processing devices and idle relay devices that are in an idle state among all processing devices and relay devices based on the operating status of these devices.

[0038] Step 104: Based on the preset device processing queue, determine the first operating relationship between each idle processing device and the second operating relationship between each idle processing device and each idle transfer device, and control the operation of the idle processing devices and idle transfer devices.

[0039] Specifically, step 104 above, "determining the first operational relationship between each idle processing device and the second operational relationship between each idle processing device and each idle transfer device according to the preset device processing queue, and controlling the operation of the idle processing devices and idle transfer devices," includes step D1: Step D1: When the idle treatment device is only a filtration device of the industrial wastewater treatment system, determine the second operating relationship between each idle treatment device and each idle transfer device according to the preset device processing queue, and control the operation of the idle treatment device and the idle transfer device.

[0040] In some examples, such as Figure 2As shown, when the only idle processing device is the filtration device of the industrial wastewater treatment system, the idle processing devices are identified as filtration devices 1a, 1b, and 1c, and the idle transfer device is identified as transfer device 2a. Based on filtration devices 1a, 1b, and 1c, the device processing queue is set as follows: Step 1: filtration device 1a - transfer device 2a, filtration device 1b - transfer device 2a, filtration device 1c - transfer device 2a; Step 2: transfer device 2a - output port s1. The control terminal can control the operation of filtration devices 1a, 1b, 1c, transfer device, and output port s1 in sequence according to the device processing queue, so as to realize the rapid treatment and output of industrial wastewater that only needs filtration.

[0041] Specifically, step 104 above, "determining the first operational relationship between each idle processing device and the second operational relationship between each idle processing device and each idle transfer device according to the preset device processing queue, and controlling the operation of the idle processing devices and idle transfer devices," includes step E1: Step E1: When the idle treatment device is one of the neutralization device and the heavy metal removal device of the industrial wastewater treatment system, as well as the filtration device, the second operating relationship between each idle treatment device and each idle transfer device is determined according to the preset device processing queue, and the operation of the idle treatment device and the idle transfer device is controlled.

[0042] In some examples, such as Figure 2 As shown, when the idle treatment devices are the neutralization and filtration devices of the industrial wastewater treatment system, the idle treatment devices are determined to be filtration devices 1a, 1b, 1c and neutralization device 3, and the idle transfer device is transfer device 2a. Based on filtration devices 1a, 1b, 1c and neutralization device 3, the device processing queue is set as follows: Step 1: filtration device 1a - transfer device 2a, filtration device 1b - transfer device 2a, filtration device 1c - transfer device 2a, Step 2: transfer device 2a - neutralization device 3, Step 3: neutralization device 3 - output port s3. The control terminal can control the operation of filtration devices 1a, 1b, 1c, transfer device 2a, neutralization device 3 and output port s3 in sequence according to the device processing queue, so as to realize the rapid treatment and output of industrial wastewater that requires filtration and neutralization.

[0043] Specifically, step 104 above, "determining the first operational relationship between each idle processing device and the second operational relationship between each idle processing device and each idle transfer device according to the preset device processing queue, and controlling the operation of the idle processing devices and idle transfer devices," includes step F1: Step F1: When the idle processing devices are the filtration device, neutralization device and heavy metal removal device of the industrial wastewater treatment system, determine the first operating relationship between each idle processing device and the second operating relationship between each idle processing device and each idle transfer device according to the preset device processing queue, and control the operation of the idle processing devices and idle transfer devices.

[0044] In some examples, such as Figure 2 As shown, when the idle treatment units are the neutralization unit, heavy metal removal unit, and filtration unit of the industrial wastewater treatment system, the idle treatment units are determined to be filtration unit 1a, filtration unit 1b, filtration unit 1c, neutralization unit 3, and heavy metal removal unit 4, and the idle transfer unit is transfer unit 2a. Based on filtration unit 1a, filtration unit 1b, filtration unit 1c, neutralization unit 3, and heavy metal removal unit 4, the unit processing queue is set as step 1: filtration unit 1a - transfer unit 2a, filtration unit 1b - transfer unit 2a, filtration unit 1c - transfer unit 2a. Device 2a, step 2: transfer device 2a - neutralization device 3, step 3: neutralization device 3 - output port k2, step 4: output port k2 - heavy metal removal device 4, step 5: heavy metal removal device 4 - output port s4. The control terminal can control the operation of filter device 1a, filter device 1b, filter device 1c, transfer device 2a, neutralization device 3, output port k2, heavy metal removal device and output port s4 in sequence according to the processing queue of the device, so as to realize the rapid treatment and output of industrial wastewater that requires filtration, neutralization and heavy metal removal.

[0045] Step 105: Send the target output parameters of the target output port indicated by the device processing queue to the user.

[0046] In this embodiment, the target output parameters can be the final output quantity and the final output end time of the industrial wastewater treatment system.

[0047] This invention provides an adaptive control method for an industrial wastewater treatment system. This method responds to a user's request for industrial wastewater treatment, determines the treatment parameters for the wastewater, and uses these parameters, along with an intelligent agent and equipment status configuration window, to determine and control the operation of idle treatment devices and idle transfer devices. This allows for adaptive treatment of industrial wastewater with different treatment needs based on the user's request, effectively improving the treatment efficiency of the industrial wastewater treatment system.

[0048] The above describes in detail the adaptive control method and process of an industrial wastewater treatment system. This method can also be implemented using a corresponding device, the structure and function of which will be described in detail below.

[0049] Based on the same inventive concept, embodiments of the present invention also provide an adaptive control device for an industrial wastewater treatment system, see [link to relevant documentation]. Figure 3 As shown, the device includes: The response module 310 is used to respond to the user's request for the treatment of the target industrial wastewater and determine the target treatment parameters of the target industrial wastewater. The calling module 320 is used to call the intelligent agent and determine the processing device identifier and relay device identifier corresponding to the target processing parameters; The first determining module 330 is used to determine, in a preset device status configuration window, an idle processing device corresponding to a processing device identifier and an idle transfer device corresponding to a transfer device identifier. The second determining module 340 is used to determine the first operating relationship between each idle processing device and the second operating relationship between each idle processing device and each idle transfer device according to the preset device processing queue, and to control the operation of the idle processing devices and the idle transfer devices. The transmitting module 350 is used to transmit the target output parameters of the target output port of the device processing queue to the user.

[0050] In some optional implementations, the calling module 320 is further configured to call an intelligent agent to determine at least some of the identifiers corresponding to the wastewater type in the filtration identifier, neutralization treatment identifier, and metal removal identifier; call the intelligent agent to determine a first quantity corresponding to the at least some identifiers based on the processing volume and processing time; and call the intelligent agent to determine a second quantity of transfer device identifiers based on the at least some identifiers under the first quantity, the processing volume, and the processing time.

[0051] In some alternative implementations, the calling module 320 is also configured to, when at least some of the identifiers contain only filter identifiers, call the agent to determine, based on the processing volume and processing time, a second number of relay device identifiers and the output port function identifiers associated with the relay device.

[0052] In some alternative implementations, the invocation module 320 is further configured to invoke the agent to determine, based on a third number of filter identifiers, an associated second number of transfer device identifiers, if at least some of the identifiers include at least one of a neutralization processing identifier and a metal removal identifier, as well as a filtering identifier.

[0053] In some optional embodiments, the second determining module 340 is further configured to determine a second operating relationship between each idle processing device and each idle transfer device according to a preset device processing queue, and control the operation of the idle processing devices and idle transfer devices, when the idle processing device is only a filtration device of an industrial wastewater treatment system.

[0054] In some optional embodiments, the second determining module 340 is further configured to, in the case that the idle processing device is one of the neutralization device and the heavy metal removal device and the filtration device of the industrial wastewater treatment system, determine a second operating relationship between each idle processing device and each idle transfer device according to a preset device processing queue, and control the operation of the idle processing device and the idle transfer device.

[0055] In some optional embodiments, the second determining module 340 is further configured to, when the idle processing device is a filtration device, neutralization device, and heavy metal removal device of an industrial wastewater treatment system, determine a first operating relationship between each idle processing device and a second operating relationship between each idle processing device and each idle transfer device according to a preset device processing queue, and control the operation of the idle processing device and the idle transfer device.

[0056] This invention also provides a computer storage medium storing computer-executable instructions, including a program for executing the adaptive control method of the above-described industrial wastewater treatment system. The computer-executable instructions can execute the method in any of the above-described method embodiments.

[0057] The computer storage medium can be any available medium or data storage device that a computer can access, including but not limited to magnetic storage (e.g., floppy disk, hard disk, magnetic tape, magneto-optical disk (MO)), optical storage (e.g., CD, DVD, BD, HVD), and semiconductor storage (e.g., ROM, EPROM, EEPROM, non-volatile memory (NAND FLASH), solid-state drive (SSD)).

[0058] Figure 3 A structural block diagram of an electronic device according to another embodiment of the present invention is shown. The electronic device 1100 may be a host server with computing capabilities, a personal computer (PC), or a portable computer or terminal, etc. The specific embodiments of the present invention do not limit the specific implementation of the electronic device.

[0059] The electronic device 1100 includes at least one processor 1110, a communications interface 1120, a memory array 1130, and a bus 1140. The processor 1110, the communications interface 1120, and the memory 1130 communicate with each other via the bus 1140.

[0060] The communication interface 1120 is used to communicate with network elements, including, for example, virtual machine management centers and shared storage.

[0061] Processor 1110 is used to execute programs. Processor 1110 may be a central processing unit (CPU), an application-specific integrated circuit (ASIC), or one or more integrated circuits configured to implement embodiments of the present invention.

[0062] Memory 1130 is used for executable instructions. Memory 1130 may include high-speed RAM and may also include non-volatile memory, such as at least one disk storage device. Memory 1130 may also be a memory array. Memory 1130 may also be divided into blocks, and the blocks may be combined into virtual volumes according to certain rules. The instructions stored in memory 1130 can be executed by processor 1110 to enable processor 1110 to execute the adaptive control method of the industrial wastewater treatment system in any of the above method embodiments.

[0063] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.

Claims

1. An adaptive control method for an industrial wastewater treatment system, characterized in that, The method includes: In response to a user's request to treat a target industrial wastewater, the target treatment parameters for the target industrial wastewater are determined. Invoke the intelligent agent to determine the processing device identifier and relay device identifier corresponding to the target processing parameters; In the preset device status configuration window, identify the idle processing device corresponding to the processing device identifier and the idle transfer device corresponding to the transfer device identifier; Based on the preset device processing queue, determine the first operating relationship between each idle processing device and the second operating relationship between each idle processing device and each idle transfer device, and control the operation of the idle processing device and the idle transfer device. Send the target output parameters of the target output port indicated by the device processing queue to the user.

2. The method according to claim 1, characterized in that, The target treatment parameters include wastewater type, treatment volume, and treatment duration; the treatment device identification includes filtration identification, neutralization treatment identification, and metal removal identification. The invoking agent determines the processing device identifier and relay device identifier corresponding to the target processing parameters, including: Invoke the intelligent agent to determine at least some of the identifiers corresponding to the wastewater type among the filtration identifier, neutralization treatment identifier, and metal removal identifier; The intelligent agent is invoked to determine the first quantity corresponding to the at least some of the identifiers, based on the processing volume and processing time. The intelligent agent is invoked to determine the associated second number of relay device identifiers based on the at least partial identifiers under the first number, the processing volume, and the processing time.

3. The method according to claim 2, characterized in that, The invocation of the intelligent agent, based on the at least partial identifiers under the first quantity, the processing volume, and the processing time, determines the associated second quantity of relay device identifiers, including: If at least some of the identifiers contain only the filter identifier, the agent is invoked to determine, based on the processing volume and the processing time, a second number of relay device identifiers and the output port function identifiers associated with the relay device.

4. The method according to claim 2, characterized in that, The invocation of the intelligent agent, based on the at least partial identifiers under the first quantity, the processing volume, and the processing time, determines the associated second quantity of relay device identifiers, including: If the at least partial identifier includes at least one of the neutralization processing identifier and the metal removal identifier, as well as the filtering identifier, the agent is invoked to determine the associated second number of transfer device identifiers based on the third number of filtering identifiers.

5. The method according to claim 2, characterized in that, The step of determining a first operational relationship between each idle processing device and a second operational relationship between each idle processing device and each idle transfer device according to a preset device processing queue, and controlling the operation of the idle processing devices and idle transfer devices, includes: When the idle processing device is only a filtration device of the industrial wastewater treatment system, a second operating relationship between each idle processing device and each idle transfer device is determined according to a preset device processing queue, and the operation of the idle processing device and the idle transfer device is controlled.

6. The method according to claim 2, characterized in that, The step of determining a first operational relationship between each idle processing device and a second operational relationship between each idle processing device and each idle transfer device according to a preset device processing queue, and controlling the operation of the idle processing devices and idle transfer devices, includes: When the idle processing device is one of the neutralization device and the heavy metal removal device of the industrial wastewater treatment system, as well as the filtration device, a second operating relationship between each of the idle processing devices and each of the idle transfer devices is determined according to the preset device processing queue, and the operation of the idle processing device and the idle transfer device is controlled.

7. The method according to claim 2, characterized in that, The step of determining a first operational relationship between each idle processing device and a second operational relationship between each idle processing device and each idle transfer device according to a preset device processing queue, and controlling the operation of the idle processing devices and idle transfer devices, includes: When the idle processing device is a filtration device, neutralization device, and heavy metal removal device of the industrial wastewater treatment system, a first operating relationship between each idle processing device and a second operating relationship between each idle processing device and each idle transfer device are determined according to a preset device processing queue, and the operation of the idle processing device and the idle transfer device is controlled.

8. An adaptive control device for an industrial wastewater treatment system, characterized in that, include: The response module is used to respond to the user's request for the treatment of the target industrial wastewater and determine the target treatment parameters of the target industrial wastewater. The calling module is used to call the intelligent agent to determine the processing device identifier and the relay device identifier corresponding to the target processing parameters; The first determining module is used to determine, in a preset device status configuration window, an idle processing device corresponding to the processing device identifier and an idle relay device corresponding to the relay device identifier; The second determining module is used to determine, according to the preset device processing queue, the first operating relationship between each idle processing device and the second operating relationship between each idle processing device and each idle transfer device, and to control the operation of the idle processing device and the idle transfer device. The sending module is used to send the target output parameters of the target output port indicated by the device processing queue to the user.

9. A computer storage medium, characterized in that, The computer storage medium stores computer-executable instructions for executing the adaptive control method of the industrial wastewater treatment system according to any one of claims 1 to 7.

10. An electronic device, characterized in that, include: At least one processor; as well as, A memory communicatively connected to the at least one processor; wherein, The memory stores instructions that can be executed by the at least one processor, which, when executed by the at least one processor, enables the at least one processor to perform the adaptive control method for the industrial wastewater treatment system according to any one of claims 1 to 7.