Copper residue recovery method and copper residue recovery system
By monitoring the start button of the copper slag recovery device, the adaptive recovery mode and parameter information were determined, which solved the problem of lag in parameter adjustment of the copper slag recovery device, realized precise control of copper slag recovery, reduced losses and improved recovery rate.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- GUIXI XINHAOTAI ENVIRONMENT PROTECTION TECH CO LTD
- Filing Date
- 2025-06-23
- Publication Date
- 2026-07-21
AI Technical Summary
The parameter adjustments of existing copper slag behind changes in operating conditions, making it difficult to adapt to copper slag recovery modes, resulting in high recovery losses and poor performance.
By monitoring the start button of the copper slag recovery device, the adaptive recovery mode and parameter information are determined, and an adaptive status analysis is performed to achieve precise control.
It improves the flexibility and adaptability of copper slag recycling, reduces recycling losses, and increases the copper slag recovery rate.
Smart Images

Figure CN120738478B_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of copper slag recycling technology, and in particular relates to a copper slag recycling method and copper slag recycling system. Background Technology
[0002] A copper slag recovery system is a complete combination of equipment and processes used to treat copper slag generated during copper smelting, thereby recovering copper and other valuable metals and properly disposing of the waste. Copper slag recovery methods refer to specific extraction techniques used to target specific metal components in the copper slag.
[0003] In related technologies, when copper slag recycling devices are used to recycle copper slag, the parameter adjustments of the copper slag recycling devices lag behind changes in operating conditions. At the same time, the specific parameters and recycling modes of the copper slag recycling devices are difficult to adapt to, which may result in the copper slag recycling devices being unable to adapt to the copper slag recycling mode and making it difficult to accurately recycle copper slag. This leads to high recycling losses, poor recycling effects, and thus unnecessary waste. Summary of the Invention
[0004] This application provides a copper slag recycling method and system, which can solve the problem that the copper slag recycling device cannot accurately recycle copper slag because the specific parameters and recycling mode of the copper slag recycling device are difficult to adapt.
[0005] In a first aspect, embodiments of this application provide a method for copper slag recycling, including: The control device detects that the start button of the copper slag recycling device has been triggered; wherein, the start button is a switch to start the copper slag recycling device; Under the condition of meeting the time requirement, the recycling mode applied to the copper slag recycling device is determined; wherein, the recycling mode refers to different recycling methods of the copper slag recycling device, and the time requirement is a preset time range; Extract parameter information of the copper slag recycling device; wherein, the parameter information is used to indicate the parameter characteristics of the copper slag recycling device, and the parameter characteristics include the numerical range and parameter type of the parameter; An adaptation state analysis is performed based on the determined recovery mode of the copper slag recovery device and the parameter characteristics indicated by the parameter information to obtain matching information; wherein, the matching information is used to indicate the degree of matching between the recovery mode of the copper slag recovery device and the parameter characteristics indicated by the parameter information. Based on the matching information, the copper slag recovery device is controlled to recover the copper slag that needs to be recovered.
[0006] The copper slag recovery method provided in this application prevents the copper slag recovery device from blindly starting the recovery mode due to unexpected signals (such as circuit interference, accidental touch, etc.) when the control device detects that the start button of the copper slag recovery device has been triggered. Under the condition of meeting time requirements, the recovery mode applied to the copper slag recovery device is determined. Different recovery modes can be determined according to time requirements, laying the foundation for improving the flexibility and adaptability of subsequent copper slag recovery work. The method extracts the parameter information of the copper slag recovery device. Based on the determined recovery mode and parameter characteristics indicated by the parameter information, an adaptation state analysis is performed to obtain matching information. Based on the matching information, the copper slag recovery device is controlled to recover the copper slag to be recovered. By extracting the parameter information of the copper slag recovery device and performing adaptation state analysis, the degree of matching between the recovery mode and parameter characteristics can be obtained, thereby achieving precise control of the copper slag recovery process. This avoids the parameter adjustment of the copper slag recovery device lagging behind changes in operating conditions. Adaptive matching can be performed according to the specific parameters and recovery mode of the copper slag recovery device, allowing the copper slag recovery device to flexibly adapt to different copper slag recovery modes, thereby reducing recovery losses and increasing the copper slag recovery rate.
[0007] Secondly, embodiments of this application provide a copper slag recycling system, comprising: A detection unit is used to control the device to detect when the start button of the copper slag recycling device is triggered; wherein, the start button is a switch to start the copper slag recycling device; A determining unit is used to determine the recycling mode applied to the copper slag recycling device under the condition of meeting the time requirement; wherein, the recycling mode is a different recycling method of the copper slag recycling device, and the time requirement is a preset time range; An extraction unit is used to extract parameter information of the copper slag recycling device; wherein, the parameter information is used to indicate the parameter characteristics of the copper slag recycling device, and the parameter characteristics include the numerical range and parameter type of the parameter; An analysis unit is used to perform an adaptation state analysis based on the determined recovery mode of the copper slag recovery device and the parameter characteristics indicated by the parameter information to obtain matching information; wherein, the matching information is used to indicate the degree of matching between the recovery mode of the copper slag recovery device and the parameter characteristics indicated by the parameter information. The control unit is used to control the copper slag recovery device to recover copper slag that needs to be recovered based on the matching information.
[0008] Thirdly, embodiments of this application provide a copper slag recycling device, including a memory, a processor, and a computer program stored in the memory and executable on the processor. When the computer program is executed by the processor, it implements the method described in any of the first aspects above.
[0009] Fourthly, embodiments of this application provide a computer program product that, when run on a copper slag recycling device, causes the copper slag recycling device to perform the copper slag recycling method described in any of the first aspects 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 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 this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0012] Figure 1 This is a schematic flowchart of a copper slag recycling method provided in an embodiment of this application; Figure 2 This is a schematic diagram of the implementation process of step S200 in a copper slag recycling method provided in an embodiment of this application; Figure 3 This is a schematic diagram of the implementation process of step S240 in a copper slag recycling method provided in an embodiment of this application; Figure 4 This is a schematic diagram of the implementation process of step S24301 in the copper slag recycling method provided in an embodiment of this application; Figure 5 This is a schematic diagram of the implementation process of step S400 in a copper slag recycling method provided in an embodiment of this application; Figure 6 This is a schematic diagram of the copper slag recycling system provided in the embodiments of this application; Figure 7 This is a schematic diagram of the control device of the copper slag recycling equipment provided in the embodiments 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] It should be understood that, when used in this application specification and the appended claims, the term "comprising" indicates the presence of the described features, integrals, steps, operations, elements and / or components, but does not exclude the presence or addition of one or more other features, integrals, steps, operations, elements, components and / or a collection thereof.
[0015] It should also be understood that the term “and / or” as used in this application specification and the appended claims means any combination of one or more of the associated listed items and all possible combinations, and includes such combinations.
[0016] As used in this application specification and the appended claims, the term "if" may be interpreted, depending on the context, as "when," "once," "in response to determination," or "in response to detection." Similarly, the phrase "if determined" or "if detected [the described condition or event]" may be interpreted, depending on the context, as meaning "once determined," "in response to determination," "once detected [the described condition or event]," or "in response to detection [the described condition or event]."
[0017] Furthermore, 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.
[0018] 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.
[0019] In related technologies, when copper slag recycling devices are used to recycle copper slag, the parameter adjustments of the copper slag recycling devices lag behind changes in operating conditions. At the same time, it is difficult to adapt and match the specific parameters and recycling modes of the copper slag recycling devices. As a result, the copper slag recycling devices may not be able to adapt to the copper slag recycling mode and make it difficult to accurately recycle copper slag, resulting in high recycling losses, poor recycling effects, and thus unnecessary waste.
[0020] To address the aforementioned issues, this application provides a copper slag recycling method and a copper slag recycling system.
[0021] In this method, when the control device detects that the start button of the copper slag recovery device has been triggered, it can prevent the copper slag recovery device from blindly starting the recovery mode due to unexpected signals (such as circuit interference, accidental touch, etc.). Under the condition of meeting time requirements, the recovery mode applied to the copper slag recovery device is determined. Different recovery modes can be determined on the copper slag recovery device according to time requirements, laying the foundation for improving the flexibility and adaptability of copper slag recovery work in the future. Parameter information of the copper slag recovery device is extracted. Based on the determined recovery mode and parameter characteristics indicated by the parameter information, an adaptation state analysis is performed to obtain matching information. Based on the matching information, the copper slag recovery device is controlled to recover the copper slag that needs to be recovered. By extracting the parameter information of the copper slag recovery device and performing adaptation state analysis, the degree of matching between the recovery mode and parameter characteristics can be obtained, thereby achieving precise control of the copper slag recovery process. This avoids the parameter adjustment of the copper slag recovery device lagging behind changes in operating conditions. Adaptive matching can be performed according to the specific parameters and recovery mode of the copper slag recovery device, allowing the copper slag recovery device to flexibly adapt to different copper slag recovery modes, thereby reducing recovery losses and improving the copper slag recovery rate.
[0022] The copper slag recycling method provided in this application embodiment can be applied to copper slag recycling equipment. In this case, the copper slag recycling equipment is the main body for executing the copper slag recycling method provided in this application embodiment. This application embodiment does not impose any restrictions on the specific type of copper slag recycling equipment.
[0023] For example, copper slag recycling equipment includes a copper slag recycling device and a control device; the copper slag recycling device and the control device are communicatively connected; the copper slag recycling device is a hardware component used to perform any one or more steps of the aforementioned copper slag recycling method. The copper slag recycling device may include mechanical components for physically or chemically treating the copper slag, such as crushers, mills, leaching devices, or electrolysis devices, etc., the specific models of which are determined by the recycling process. The control device may be a control panel or smart panel on the copper slag recycling device; it may also be a tablet computer, laptop computer, desktop computer, smart screen, computer, laptop computer, or programmable logic controller (PLC), etc., but is not limited to these.
[0024] To better understand the copper slag recycling method provided in the embodiments of this application, the specific implementation process of the copper slag recycling method provided in the embodiments of this application will be described by way of example below.
[0025] Figure 1 A schematic flowchart of a copper slag recovery method provided in an embodiment of this application is shown. The copper slag recovery method includes: S100, the control device detects that the start button of the copper slag recycling device has been triggered; the start button is the switch to start the copper slag recycling device.
[0026] It is understandable that the start button being triggered can be interpreted as the copper slag recycling device being pressed.
[0027] For example, the monitoring methods of the control device may include, but are not limited to, electrical signal monitoring, physical contact monitoring, or optical monitoring. When the start button is pressed, its internal electrical connection state changes, thereby generating an electrical signal. The control device may include one or more sensors to detect changes in this electrical signal. When a change in the electrical signal is detected, the control device can determine that the start button has been triggered and initiate the subsequent copper slag recycling process accordingly. Physical contact monitoring can use devices such as mechanical switches or pressure sensors. When the start button is pressed, the device can detect changes in physical contact or pressure and convert this change into an electrical signal or other identifiable signal form for the control device to read and respond to. Optical monitoring can utilize devices such as photoelectric sensors to identify the trigger state of the button by detecting changes in light occlusion or reflection when the start button is pressed.
[0028] S200, under the condition of meeting the time requirements, determine the recycling mode to be applied to the copper slag recycling device; wherein, the recycling mode refers to different recycling methods of the copper slag recycling device, and the time requirement is a preset time range.
[0029] It can be understood that, under the condition of meeting the time requirement, the copper slag recovery device starts timing at startup, and after accumulating to a preset time range, the time requirement is met. The time requirement is a preset time range, which can be 5 to 10 minutes, 10 to 20 minutes, or 30 to 60 minutes, etc., but is not limited to this. Under the condition of meeting the time requirement, the recovery mode of the copper slag recovery device is determined according to the different situations after the time requirement is met.
[0030] In one possible implementation, please refer to Figure 2 S200, under the condition of meeting the time requirements, determine the recycling mode to be applied to the copper slag recycling device, including: S210, if the time requirement is met but the first recycling information sent by the staff is not received, the recycling location information is obtained; wherein, the first recycling information is used to indicate the degree of processing of the copper slag to be recycled, and the recycling location information is used to indicate the location of the copper slag to be recycled.
[0031] For example, if the control device does not receive the first recycling information sent by the worker when the time requirement is met, the control device can obtain the location of the copper slag to be recycled within the task system. The task system is used to manage and allocate copper slag recycling tasks and can store various information related to copper slag recycling, including the location, type, quantity, and planned processing level of the copper slag. By obtaining the recycling location information, the task system can determine which copper slag needs to be recycled and their specific locations, providing guidance for subsequent recycling operations.
[0032] S220 performs macroscopic monitoring of the copper slag to be recycled based on the recycling location information and generates multiple recycling modes; among them, the recycling mode is used to indicate the method of recycling the copper slag to be recycled.
[0033] Macroscopic monitoring can be understood to include monitoring factors such as the physical state, distribution, and surrounding environment of copper slag. Through macroscopic monitoring, detailed information about the copper slag can be obtained, such as its particle size, moisture content, impurity content, and its distribution on site, including whether there is accumulation, scattering, or mixing. Furthermore, environmental factors around the copper slag, such as temperature, humidity, and wind direction, can be monitored, as these factors affect the recovery effect and efficiency. Based on the recovery location information and macroscopic monitoring results, multiple possible recovery models can be generated. A recovery model refers to the recovery method and strategy adopted for a specific copper slag situation, which may include different mechanical processing procedures, chemical processing procedures, or others. For example, for copper slag with larger particle size and lower moisture content, mechanical crushing and screening may be used; while for copper slag with smaller particle size and more impurities, chemical methods such as hydrometallurgy or electrolysis may be required for extraction. By generating multiple recovery models, more choices and flexibility can be provided for subsequent adaptive state analysis and precise control.
[0034] S230, Obtain historical recycling information; wherein, historical recycling information is used to indicate the copper slag recovery rate during a historical period, and the copper slag recovery rate is used to indicate the recycling efficiency value, and the higher the recycling efficiency value, the better the recycling effect.
[0035] For example, historical recycling information can also be obtained through a task system or database. The task system or database can store historical data on past copper slag recycling operations, including but not limited to information such as the type, quantity, treatment level, recycling time, recovery rate, and recycling mode used for the copper slag. By analyzing and comparing historical recycling information, it is possible to understand the performance of different recycling modes under similar conditions and their impact on the copper slag recovery rate.
[0036] S240 determines the recycling mode to be applied to the copper slag recycling device based on multiple recycling modes and historical recycling information.
[0037] For example, when determining the recycling mode, one can compare the expected recovery rate under different recycling modes with the actual recovery rate in historical recycling information, and select the recycling mode with the higher expected recovery rate. In addition, factors such as the cost-effectiveness of the recycling mode, its potential environmental impact, and the complexity of operation can also be considered. By comprehensively considering these factors, the most suitable recycling mode for the current copper slag recycling task can be selected.
[0038] The most suitable recycling mode is determined from multiple recycling modes based on historical recycling information.
[0039] This setup allows the selected recycling mode to achieve a higher recovery rate and efficiency under similar historical conditions, thereby optimizing the copper slag recycling process, reducing recycling losses, and improving the overall recycling effect.
[0040] In one possible implementation, please refer to Figure 3 S240, based on multiple recycling modes and historical recycling information, determines the recycling modes to be applied to the copper slag recycling device, including: S241, simulates the recycling of copper slag using multiple recycling modes to obtain multiple copper slag recovery rates.
[0041] For example, various recycling modes can include physical separation recycling, metallurgical reaction recycling, or emerging technology recycling. The simulation logic for physical separation recycling can involve simulating the copper slag crushing process using the discrete element method (DEM), establishing a crushing energy consumption-particle size distribution model, and combining this with the motion parameters (amplitude, frequency) of the vibrating screen to predict the separation efficiency of copper slag with different particle sizes, ultimately obtaining the copper slag recovery rate. Key parameters can include crushing tooth shape, screening angle, and material moisture content (affecting adhesion). The metallurgical reaction recycling mode can utilize thermodynamic software (such as FactSage software) to construct a copper slag reduction reaction model, setting the temperature (1100-1300℃), the reducing agent (coke, CO) ratio, and calculating... The equilibrium conversion rate to metallic copper is reduced, and the melt flow and heat transfer efficiency are simulated by combining the furnace structure (e.g., bubbling bed, rotary kiln). The copper slag recovery rate is obtained based on the heat transfer efficiency. An emerging technology recovery model can utilize COMSOL to construct an electromagnetic field coupling model, setting the electrostatic separation voltage (10-30kV) and magnetic separation magnetic field strength (0.5-1T), analyzing the separation paths of magnetic minerals (e.g., magnetite) and non-magnetic copper particles in the copper slag, and optimizing the composite field gradient distribution to obtain the copper slag recovery rate.
[0042] S242, determine the highest copper slag recovery rate from multiple copper slag recovery rates.
[0043] It is understandable that the highest copper slag recovery rate is determined from multiple recovery rates, and the recovery mode corresponding to the highest copper slag recovery rate is taken as the final recovery mode. By simulating recovery and comparing copper slag recovery rates, the recovery mode that performs best under given conditions can be selected, thereby ensuring the efficiency and accuracy of the copper slag recovery process.
[0044] S243, if the highest copper slag recovery rate determined from multiple copper slag recovery rates is greater than the copper slag recovery rate indicated by historical recovery information, the recovery mode corresponding to the highest copper slag recovery rate will be determined as the recovery mode applied to the copper slag recovery device.
[0045] For example, the highest copper slag recovery rate determined among multiple copper slag recovery rates is compared with the copper slag recovery rate indicated by historical recovery information. If the highest copper slag recovery rate determined among multiple copper slag recovery rates is greater than the copper slag recovery rate indicated by historical recovery information, the recovery mode corresponding to the highest copper slag recovery rate is determined as the recovery mode applied to the copper slag recovery device.
[0046] In one possible implementation, the method also includes: S24301, if the highest copper slag recovery rate determined from multiple copper slag recovery rates is less than the copper slag recovery rate indicated by historical recovery information, the recovery mode of the copper slag recovery device is generated again.
[0047] For example, the highest copper slag recovery rate determined among multiple copper slag recovery rates is compared with the copper slag recovery rate indicated by historical recovery information. If the highest copper slag recovery rate determined among multiple copper slag recovery rates is less than the copper slag recovery rate indicated by historical recovery information, the recovery mode of the copper slag recovery device is generated again.
[0048] This setup ensures that the selected recycling mode has high recycling efficiency and effectiveness under similar conditions, making the copper slag recycling device compatible with the recycling mode and avoiding the selection of poorly performing recycling modes, thus laying the foundation for subsequent analysis.
[0049] In one possible implementation, please refer to Figure 4 S24301, if the highest copper slag recovery rate determined from multiple copper slag recovery rates is less than the copper slag recovery rate indicated by historical recovery information, a recovery mode for the copper slag recovery device is generated again, including: S243011 If the highest copper slag recovery rate determined from multiple copper slag recovery rates is less than the copper slag recovery rate indicated by historical recovery information, obtain the current status information of the copper slag to be recovered; wherein, the status information is used to indicate the slag type characteristics and the components contained in the copper slag to be recovered, and the slag type characteristics include ultrafine powder, high melting point, high sulfur or containing precious metals.
[0050] For example, in the copper slag recycling process, multiple copper slag recovery rates are statistically analyzed, and the highest recovery rate is compared with the copper slag recovery rates in historical recycling information. If the highest recovery rate is lower than the historical recovery rate, the current state information of the copper slag to be recycled is obtained. This state information can be obtained through physical analysis, chemical analysis, or spectroscopic analysis of the copper slag. Physical analysis can include measuring the physical properties of the copper slag, such as particle size distribution, density, and hardness; chemical analysis can determine the chemical properties of the copper slag, such as elemental composition and compound content; spectroscopic analysis can use X-ray fluorescence spectroscopy, inductively coupled plasma mass spectrometry, etc., to quickly and accurately determine the types and contents of elements in the copper slag. This state information reflects the slag type characteristics and composition of the copper slag.
[0051] S243012, based on the slag type characteristics indicated by the state information, perform phase analysis to obtain phase parameter information; among which, the phase parameter information is used to indicate the proportion of oxidized phase, sulfide phase or alloy phase.
[0052] It is understandable that phase analysis is a process of in-depth analysis of the microstructure and chemical composition of copper slag. Through this method, the distribution and proportion of different phases (such as oxide phase, sulfide phase or alloy phase) in copper slag can be understood.
[0053] For example, phase analysis methods can include X-ray diffraction (XRD), electron probe microanalysis (EPMA), or scanning electron microscopy-energy dispersive spectroscopy (SEM). XRD involves grinding the copper slag sample to a suitable particle size (generally requiring uniform and sufficiently fine particle size, e.g., less than 100 μm), placing it on the XRD instrument's sample stage, setting appropriate scanning parameters (e.g., scanning angle range, scanning speed), and automatically acquiring data. The acquired diffraction patterns are then calculated to determine the proportions of the oxide, sulfide, and alloy phases. Electron probe microanalysis involves polishing the copper slag sample to achieve a smooth surface, placing it in the EPMA instrument's sample chamber, selecting appropriate accelerating voltage and beam current parameters, and scanning the sample surface to obtain elemental surface distribution images and quantitative analysis data to determine the proportions of different phases. SEM involves pre-treating the copper slag sample (e.g., drying, fixing) before placing it on the SEM sample stage. The morphology of the sample was observed under SEM, the region of interest was selected, and elemental analysis was performed using EDS to obtain the proportions of different phases.
[0054] S243013, matching the slag type characteristics indicated by the status information with the corresponding process module; wherein, the process module is used to indicate the recovery process method capable of handling slag type characteristics including ultrafine powder, high melting point, high sulfur, or containing precious metals. For example, different process modules are matched according to the slag characteristics indicated by the status information, such as ultrafine powder, high melting point, high sulfur, or containing precious metals. For ultrafine copper slag, wet magnetic separation or flotation process modules can be used for processing; for high-melting-point copper slag, high-temperature smelting or electric furnace smelting process modules may be required; for high-sulfur copper slag, desulfurization process modules may be required; and for copper slag containing precious metals, precious metal extraction process modules may be required. Each process module includes specific equipment configurations, such as magnetic separators, flotation machines, smelting furnaces, electrolytic cells, etc., as well as corresponding operating parameters, such as temperature, pressure, time, and the type and amount of chemical reagents. The matching method can be implemented through preset matching rules or algorithms, and can be constructed based on machine learning models or data mining methods. Specifically, the slag type characteristics and composition information in the state information can be input into the matching system (which can take slag type characteristics such as ultrafine powder, high melting point, high sulfur, or precious metal content as input, and the expected corresponding process module as output, obtained through a large number of input and output training), and automatically match the process module corresponding to the slag type characteristics. During the matching process, some auxiliary tools or technologies can also be used to improve the accuracy and efficiency of the matching. For example, a database or knowledge graph of copper slag can be used to store and query relevant slag type characteristics and process module information to quickly find the matching process module.
[0055] S243014 generates a recycling mode that can be applied to the copper slag recycling device by correspondingly setting the phase parameter information and process module with the copper slag recycling device.
[0056] For example, in the process of setting up a copper slag recovery device based on phase parameter information and process modules, the phase ratio is first determined, then equipment and parameter settings are selected, and finally integrated into a recovery mode applicable to the copper slag recovery device. Determining the phase ratio can be achieved by obtaining the proportions of oxide phase, sulfide phase, and alloy phase through X-ray diffraction, electron probe microscopy, etc. For instance, if X-ray diffraction analysis shows that the copper slag contains 60% sulfide phase, 30% oxide phase, and 10% alloy phase, these proportions form the basis for subsequent settings. Next, equipment selection can be based on the process module matching the slag characteristics to choose the specific equipment for the copper slag recovery device. If the matching process module is for processing ultrafine copper slag, a suitable flotation machine must be selected; if high-temperature smelting is used to process high-melting-point copper slag, a corresponding smelting furnace, such as a flash furnace or reverberatory furnace, must be selected. Parameter settings can be based on the phase parameter information and process module requirements to set the operating parameters of the recovery device. For example, when using an oxidation roasting-flotation process module for high-sulfur copper slag, the temperature of the roasting furnace should be set according to the sulfidation phase ratio and sulfur content, which can be between 500-700℃. During the flotation process, the dosage of collectors and frothers should be determined based on the distribution and content of copper minerals in different phases. Finally, integrating information to generate a recovery model can involve integrating the selected equipment and set parameters in a reasonable order to form a complete recovery process. For example, for copper slag containing precious metals, pyrometallurgical smelting and enrichment are first used, followed by hydrometallurgical refining to purify the precious metals and copper, clearly defining the sequence and connection method of each stage, such as smelting and refining.
[0057] This design allows the generated recycling model to better align with the actual characteristics and processing needs of copper slag, thereby improving the targeting and effectiveness of copper slag recycling. The generation of the recycling model fully considers the macroscopic state of the copper slag, its historical recycling performance, microscopic phase structure, and specific slag characteristics. These factors collectively determine the selection and configuration of the recycling model, contributing to the efficient and high-value utilization of copper slag resources.
[0058] In one possible implementation, please refer to Figure 2 S200, upon reaching a preset time, determines the recovery mode of the copper slag recovery device, including: S201, Receive the second recycling information sent by the staff; wherein, the second recycling information is used to indicate the degree of processing of the original copper slag by the copper slag recycling device, the original copper slag being the untreated copper slag.
[0059] It is understood that the degree of processing can include, but is not limited to, the particle size, moisture content, and impurity content of the copper slag. The second recovery information can be received through data input or uploaded files by staff on the control device. The control device can be built based on a computer or PLC (Programmable Logic Controller), with a human-machine interface, allowing staff to input relevant information or upload data files. This data or files contains detailed information about the degree of processing of the raw copper slag, such as the state of the copper slag after pretreatment steps such as crushing, screening, and drying, or the content of the target metal, the type and content of impurities, etc., in the copper slag. Additionally, the second recovery information can be obtained through on-site observation, experimental analysis, or experience-based judgment by staff. Staff can assess the degree of processing of the raw copper slag by the copper slag recovery device, such as the completion status of processes like crushing, screening, magnetic separation, flotation, and smelting.
[0060] S202, Generate a recommended recycling mode based on the second recycling information.
[0061] For example, generating a recommended recycling mode can first involve parsing the second recycling information to extract information about the degree of treatment of the original copper slag, such as the particle size distribution, moisture content, types and contents of impurities, etc., and then performing a matching analysis in conjunction with a preset recycling mode library. The recycling mode library stores a variety of recycling modes and their corresponding applicable conditions and treatment effects. By comparing the state of the copper slag in the second recycling information with the applicable conditions in the recycling mode library, recycling modes that meet the conditions are selected. The selected recycling modes are then further optimized by adjusting the equipment configuration, operating parameters, etc., in the recycling mode to ensure that the recycling mode can adapt to the characteristics of the current copper slag to the greatest extent and improve recycling efficiency and recycling quality.
[0062] This setup allows for the intelligent generation of recommended recycling modes based on the actual processing level of the copper slag, providing strong support for the optimized operation of the copper slag recycling device.
[0063] S300, extract parameter information of the copper slag recovery device; wherein, the parameter information is used to indicate the parameter characteristics of the copper slag recovery device, and the parameter characteristics include the numerical range and parameter type of the parameter.
[0064] For example, parameter information from a copper slag recycling device can be extracted through several methods. On one hand, relevant parameters can be read directly from the control panel or smart panel of the copper slag recycling device. These parameters are typically displayed in real-time during device operation, including but not limited to motor speed, temperature, and pressure. On the other hand, the data interface of the copper slag recycling device can be connected, and dedicated data acquisition software or systems can be used to monitor and record various parameters during device operation in real time. Furthermore, parameter information can be obtained by analyzing the log files or historical data of the copper slag recycling device, which typically contain records of various parameters during device operation.
[0065] S400, based on the determined recovery mode and parameter characteristics indicated by the parameter information of the copper slag recovery device, an adaptation state analysis is performed to obtain matching information; wherein, the matching information is used to indicate the degree of matching between the recovery mode and parameter characteristics indicated by the parameter information of the copper slag recovery device.
[0066] It can be understood that the adaptive state analysis of parameter characteristics can be understood as calculating the degree of matching between the recovery mode of the copper slag recovery device and the parameter characteristics indicated by the parameter information.
[0067] For example, the matching score can be determined using rule-based matching analysis or weighted comprehensive calculation. Rule-based matching analysis involves establishing matching rules based on an established evaluation index system. For instance, if the actual pulp concentration is within the ideal pulp concentration range for the flotation mode, a certain matching score is given; if it exceeds the range, points are deducted accordingly. Each index is analyzed individually according to these rules, and the matching score for each index is calculated. Weighted comprehensive calculation can be achieved by using methods such as the analytic hierarchy process (AHP) or entropy weighting to determine the weights of each evaluation index, reflecting the importance of different indicators in the overall matching degree. Based on the matching scores and weights of each index, a weighted average is used to obtain a value that comprehensively reflects the matching degree between the recovery mode and the parameter characteristics—that is, the matching degree value in the matching information.
[0068] In one possible implementation, please refer to Figure 5 S400, based on the determined recovery mode and parameter characteristics indicated by the parameter information of the copper slag recovery device, performs an adaptation state analysis to obtain matching information, including: S410, perform a first parameter deviation diagnosis on the determined recovery mode and parameter characteristics indicated by the parameter information of the copper slag recovery device to obtain first deviation information; wherein, the first deviation information is used to indicate the degree of deviation of temperature deviation and pressure deviation.
[0069] It is understandable that the first parameter deviation diagnosis is the process of determining the deviation between the recovery mode of the copper slag recovery device and the current actual operating parameters.
[0070] For example, when performing the first parameter deviation diagnosis, the ideal temperature range and ideal pressure range set by the recovery mode are determined (the ideal values can be derived from laboratory studies, historical data, or expert experience). Real-time temperature and pressure data are then acquired from the sensors or data recording system of the copper slag recovery device. These actual data are compared with the ideal values to calculate the specific values of temperature and pressure deviation, i.e., the deviation degree values in the first deviation information. These deviation degree values can be expressed as percentages, absolute differences, or standard deviations. Calculating the temperature deviation degree value: The real-time collected temperature data is compared with the determined temperature standard range. If the real-time temperature is... The lower limit of the standard temperature range is The upper limit is The degree of temperature deviation can be calculated using a formula. :when hour, ;when hour, ;when hour, Calculate the pressure deviation value. Similarly, for pressure data, let the real-time pressure be... The lower limit of the standard pressure range is The upper limit is Pressure deviation value The calculation formula is: when hour, ;when hour, ;when hour, The calculated temperature deviation value DT and pressure deviation value DP are combined to form the first deviation information.
[0071] S420, perform a second parameter deviation diagnosis on the determined recovery mode and parameter information range of the copper slag recovery device to obtain second deviation information; wherein, the second deviation information is used to indicate the degree of deviation of reagent deviation and particle size mismatch.
[0072] It is understandable that the second parameter deviation diagnosis is the process of determining the deviation between the recovery mode of the copper slag recovery device and the numerical range of the parameters indicated by the parameter information.
[0073] For example, when performing the second parameter deviation diagnosis, the standard dosage range of the reagents is determined based on the selected copper slag recovery mode. For instance, in the flotation recovery mode, reagents such as collectors and frothers have specific dosage ranges for copper slag of different grades and properties; for example, when processing a certain type of copper slag, the standard dosage of collector is XY kg per ton of copper slag. Different recovery modes have requirements for copper slag particle size. For gravity separation, the suitable copper slag particle size is generally within a certain range, such as 0.1-1 mm; while flotation may require a finer particle size, such as 0.01-0.1 mm. The reagent deviation is calculated as follows: Let the actual reagent dosage be A, the lower limit of the standard reagent dosage range be Amin, and the upper limit be Amax. The formula for calculating the reagent deviation degree value DA is as follows: When... when ;when Particle size mismatch calculation can be performed by comparing the actual copper slag particle size distribution with the standard particle size range, and calculating the proportion of particles exceeding the standard particle size range. Let the proportion of particles exceeding the standard particle size range be B (obtained through particle size analysis data), and the particle size mismatch deviation value DB=B. If the actual particle size is completely within the standard range, ,but The calculated drug deviation value DA and particle size mismatch deviation value DB are integrated to obtain the second deviation information.
[0074] S430, calculate the parameter fitness based on the first deviation information and the second deviation information to obtain the matching information.
[0075] For example, the first deviation information is assigned a weight of 49% and the second deviation information is assigned a weight of 51% to calculate the total weight value, and the total weight value is determined as the matching degree value indicated by the matching information.
[0076] This setup allows for precise identification of parameter deviations, ensuring the recycling mode is adapted to the characteristics and operating conditions of copper slag, thereby improving the recovery rate. It also enables real-time monitoring and diagnosis to promptly adjust abnormal parameters, guaranteeing stable equipment operation, reducing the risk of malfunctions, minimizing reagent waste and energy consumption, and lowering production costs.
[0077] The S500 is a copper slag recovery device that uses matching information to control the recovery of copper slag.
[0078] For example, by activating the copper slag recovery device, the copper slag recovery process begins. After parameter adjustment, the device operates according to the determined recovery mode and adjusted parameter settings to process the copper slag to be recovered. The parameter settings of the copper slag recovery device are adjusted based on matching information. If the matching information indicates a mismatch between the recovery mode and current parameter characteristics, such as excessively high temperature or pressure deviating from the preset range, the control system automatically adjusts the relevant parameters of the copper slag recovery device, such as lowering the heating temperature or adjusting the pressure control system. Parameter changes during the copper slag recovery process are monitored in real time. To ensure the stability and efficiency of the recovery process, various parameters during the operation of the copper slag recovery device, such as temperature, pressure, and reagent usage, are monitored in real time and compared with preset thresholds. If abnormal parameters are detected, appropriate actions are taken according to the type of abnormality. For example, if the temperature exceeds the preset range, the system will automatically adjust the heating system; if the pressure is abnormal, a safety protection mechanism may be triggered, suspending the recovery process and issuing an alarm.
[0079] This setup enables precise control of the copper slag recovery process, preventing parameter adjustments of the copper slag recovery device from lagging behind changes in operating conditions. It allows the copper slag recovery device to flexibly adapt to different copper slag recovery modes, enabling adaptive matching based on the specific parameters and recovery modes of the copper slag recovery device, thereby reducing recovery losses and increasing the copper slag recovery rate.
[0080] In one possible implementation, S500, based on matching information, controls the copper slag recovery device to recover the copper slag to be recovered, including: S501, if the matching degree between the recycling mode of the copper slag recycling device indicated by the matching information and the numerical range of the parameters indicated by the parameter information is greater than the preset matching degree value, the copper slag to be recycled is recycled in collaboration with the determined recycling mode of the copper slag recycling device.
[0081] For example, after the control device obtains the degree of matching between the recycling mode of the copper slag recycling device and the numerical range of the parameters indicated by the parameter information, it compares the degree of matching with the preset degree of matching. If the comparison result shows that the degree of matching between the recycling mode of the copper slag recycling device and the numerical range of the parameters indicated by the parameter information is greater than the preset degree of matching, the control device will use the recycling mode of the copper slag recycling device to control the copper slag recycling device to recycle the copper slag that needs to be recycled.
[0082] In one possible implementation, S500, based on matching information, controls the copper slag recovery device to recover the copper slag to be recovered, including: S510, if the matching degree between the recovery mode of the copper slag recovery device indicated by the matching information and the numerical range of the parameters indicated by the parameter information is less than the preset matching degree value, the recovery mode of the determined copper slag recovery device is locally modified according to the parameter information of the copper slag recovery device to obtain the corrected recovery mode.
[0083] For example, after the control device obtains the matching degree value between the recovery mode of the copper slag recovery device and the numerical range of the parameters indicated by the parameter information, it compares the matching degree value with a preset matching degree value. If the comparison result shows that the matching degree value between the recovery mode of the copper slag recovery device and the numerical range of the parameters indicated by the parameter information is less than the preset matching degree value, the control device will make a local adjustment to the current recovery mode to improve the matching degree. Local mode modification can be to adjust one or more parameters in the recovery mode, such as adjusting the operating parameters of the equipment, changing the amount of reagent used, or adjusting the copper slag treatment steps. The generation of the corrected recovery mode is based on the analysis of the causes of mismatch. By analyzing the specific deviation degree values provided in the first deviation information and the second deviation information, it is determined which parameters are the factors causing insufficient matching degree and then the parameters are optimized. Parameter optimization can be, for example, reducing the power output of the heating system if the temperature deviation degree value is high, or adjusting the operating parameters of the crushing or screening equipment if the particle size mismatch deviation degree value is large to obtain a more suitable copper slag particle size.
[0084] S520 is a copper slag recovery device that works in conjunction with a modified recovery mode to recover the copper slag that needs to be recovered.
[0085] For example, the modified recycling mode is obtained according to the above step S510, so the control device will recycle the copper slag that needs to be recycled based on the modified recycling mode and using the copper slag recycling device.
[0086] This configuration, through localized mode modifications, allows the recycling system to flexibly respond to various operating conditions, further enhancing the flexibility and adaptability of copper slag recycling. During the copper slag recycling process, it not only enables intelligent recommendation and adaptive adjustment of the recycling mode but also effectively avoids low recycling efficiency and energy waste caused by parameter deviations.
[0087] It should be understood 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.
[0088] Corresponding to the copper slag recycling method described in the above embodiments, this application also provides a copper slag recycling system, wherein each unit of the system can realize each step of the copper slag recycling method. Figure 6A structural block diagram of the copper slag recycling system provided in the embodiments of this application is shown. For ease of explanation, only the parts related to the embodiments of this application are shown.
[0089] Reference Figure 6 The copper slag recycling system includes: The detection unit is used by the control device to detect when the start button of the copper slag recycling device is triggered; the start button is the switch to start the copper slag recycling device. The determining unit is used to determine the recycling mode applied to the copper slag recycling device under the condition of meeting the time requirements; wherein, the recycling mode refers to different recycling methods of the copper slag recycling device, and the time requirement is a preset time range; The extraction unit is used to extract parameter information of the copper slag recovery device; wherein, the parameter information is used to indicate the parameter characteristics of the copper slag recovery device, and the parameter characteristics include the numerical range and parameter type of the parameter; The analysis unit is used to perform an adaptation state analysis based on the determined recovery mode and parameter characteristics indicated by the parameter information of the copper slag recovery device to obtain matching information; wherein, the matching information is used to indicate the degree of matching between the recovery mode and parameter characteristics indicated by the parameter information of the copper slag recovery device. The control unit is used to control the copper slag recovery device to recover the copper slag that needs to be recovered based on the matching information.
[0090] It should be noted that the information interaction and execution process between the above systems / units 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, and they will not be repeated here.
[0091] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the above-described division of functional units and modules is merely an example. In practical applications, the above functions can be assigned to different functional units and modules as needed, that is, the internal structure of the system can be divided into different functional units or modules to complete all or part of the functions described above. The functional units and modules in the embodiments can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software functional unit. Furthermore, the specific names of the functional units and modules are only for easy differentiation and are not intended to limit the scope of protection of this application. The specific working process of the units and modules in the above system can be referred to the corresponding process in the foregoing method embodiments, and will not be repeated here.
[0092] This application also provides a copper slag recycling device. Figure 7This is a schematic diagram of the structure of a control device provided in an embodiment of this application. Figure 7 As shown, the control device of this embodiment includes: at least one processor 60 ( Figure 7 Only one is shown in the image), at least one memory 61 ( Figure 7 (Only one is shown in the diagram) and a computer program 62 stored in the at least one memory 61 and executable on the at least one processor 60, wherein when the processor 60 executes the computer program 62, it causes the control device 6 to perform the steps in any of the above copper slag recycling method embodiments, or causes the control device 6 to perform the functions of each module / unit in the above system embodiments.
[0093] For example, the computer program 62 may be divided into one or more modules / units, which are stored in the memory 61 and executed by the processor 60 to complete this application. The one or more modules / units may be a series of computer program instruction segments capable of performing a specific function, which describe the execution process of the computer program 62 in the control device 6.
[0094] The control device 6 can be a desktop computer, laptop, or other computing device. The control device 6 may include, but is not limited to, a processor 60 and a memory 61. Those skilled in the art will understand that... Figure 7 This is merely an example of control device 6 and does not constitute a limitation on control device 6. It may include more or fewer components than shown, or combine certain components, or different components, such as input / output devices, network access devices, buses, etc.
[0095] The processor 60 can be a Central Processing Unit (CPU), or it can be 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.
[0096] In some embodiments, the memory 61 may be an internal storage unit of the control device 6, such as a hard disk or memory of the control device 6. In other embodiments, the memory 61 may be an external storage device of the control device 6, such as a plug-in hard disk, smart media card (SMC), secure digital (SD) card, flash card, etc., equipped on the control device 6. Furthermore, the memory 61 may include both internal storage units and external storage devices of the control device 6. The memory 61 is used to store operating systems, applications, bootloaders, data, and other programs, such as the program code of computer programs. The memory 61 can also be used to temporarily store data that has been output or will be output.
[0097] This application also provides a computer-readable storage medium storing a computer program that, when executed by a processor, implements the steps in any of the above method embodiments.
[0098] This application provides a computer program product that, when run on a copper slag recycling device, enables the copper slag recycling device to perform the steps described in any of the above method embodiments.
[0099] If the integrated unit is implemented as a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, all or part of the processes in the methods of the above embodiments of this application can be implemented by a computer program instructing related hardware. The computer program can be stored in a computer-readable storage medium, and when executed by a processor, it can implement the steps of the various method embodiments described above. The computer program includes computer program code, which can be in the form of source code, object code, executable files, or certain intermediate forms. The computer-readable medium can include at least: any entity or device capable of carrying computer program code to copper slag recycling equipment, recording media, computer memory, read-only memory (ROM), random access memory (RAM), electrical carrier signals, telecommunication signals, and software distribution media. Examples include USB flash drives, portable hard drives, magnetic disks, or optical disks. In some jurisdictions, according to legislation and patent practice, computer-readable media cannot be electrical carrier signals or telecommunication signals.
[0100] In the above embodiments, the descriptions of each embodiment have different focuses. For parts that are not described in detail or recorded in a certain embodiment, please refer to the relevant descriptions of other embodiments.
[0101] Those skilled in the art will recognize that the units and algorithm steps of the various examples described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are implemented in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.
[0102] In the embodiments provided in this application, it should be understood that the disclosed copper slag recycling system, equipment, and method can be implemented in other ways. For example, the copper slag recycling system and equipment embodiments described above are merely illustrative. For instance, the division of modules or units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be an indirect coupling or communication connection through some interfaces, devices, or units, and may be electrical, mechanical, or other forms.
[0103] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.
[0104] The above-described embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application, and should all be included within the protection scope of this application.
Claims
1. A method for recovering copper slag, characterized in that, include: The control device detects that the start button of the copper slag recycling device has been triggered; wherein, the start button is a switch to start the copper slag recycling device; Under the condition of meeting the time requirement, the recycling mode applied to the copper slag recycling device is determined; wherein, the recycling mode refers to different recycling methods of the copper slag recycling device, and the time requirement is a preset time range; Extract parameter information of the copper slag recycling device; wherein, the parameter information is used to indicate the parameter characteristics of the copper slag recycling device, and the parameter characteristics include the numerical range and parameter type of the parameter; An adaptation state analysis is performed based on the determined recovery mode of the copper slag recovery device and the parameter characteristics indicated by the parameter information to obtain matching information; wherein, the matching information is used to indicate the degree of matching between the recovery mode of the copper slag recovery device and the parameter characteristics indicated by the parameter information. Based on the matching information, the copper slag recovery device is controlled to recover the copper slag that needs to be recovered. The step of determining the recycling mode applied to the copper slag recycling device under the condition of meeting the time requirements includes: If the time requirement is met but the first recycling information is not received from the staff, the recycling location information is obtained; wherein, the first recycling information is used to indicate the degree of processing of the copper slag to be recycled, and the recycling location information is used to indicate the location of the copper slag to be recycled; Based on the recycling location information, the copper slag to be recycled is macroscopically monitored to generate multiple recycling modes; wherein, the recycling mode is used to indicate the method of recycling the copper slag to be recycled; Obtain historical recycling information; wherein, the historical recycling information is used to indicate the copper slag recovery rate during a historical period, the copper slag recovery rate is used to indicate the recycling efficiency value, and the higher the recycling efficiency value, the better the recycling effect; The recycling mode applied to the copper slag recycling device is determined based on the various recycling modes and the historical recycling information. The determination of the recycling mode applied to the copper slag recycling device based on multiple recycling modes and historical recycling information includes: The copper slag to be recycled was simulated using various recycling modes to obtain multiple copper slag recovery rates; The highest copper slag recovery rate is determined from among the multiple copper slag recovery rates; If the highest copper slag recovery rate determined from multiple copper slag recovery rates is greater than the copper slag recovery rate indicated by the historical recovery information, the recovery mode corresponding to the highest copper slag recovery rate is determined as the recovery mode applied to the copper slag recovery device. The method further includes: If the highest copper slag recovery rate determined from multiple copper slag recovery rates is less than the copper slag recovery rate indicated by the historical recovery information, the recovery mode of the copper slag recovery device is generated again. If the highest copper slag recovery rate determined from multiple copper slag recovery rates is less than the copper slag recovery rate indicated by the historical recovery information, the recovery mode of the copper slag recovery device is generated again, including: If the highest copper slag recovery rate determined from multiple copper slag recovery rates is less than the copper slag recovery rate indicated by the historical recovery information, the current status information of the copper slag to be recovered is obtained; wherein, the status information is used to indicate the slag type characteristics and the components contained in the copper slag to be recovered, and the slag type characteristics include ultrafine powder, high melting point, high sulfur or containing precious metals; Phase analysis is performed based on the slag characteristics indicated by the state information to obtain phase parameter information; wherein, the phase parameter information is used to indicate the proportion of oxidized phase, sulfide phase or alloy phase; The slag type characteristics indicated by the status information are matched with the corresponding process module; wherein, the process module is used to indicate a recycling process method capable of handling the slag type characteristics including ultrafine powder, high melting point, high sulfur or precious metals; Based on the phase parameter information and the corresponding settings of the process module and the copper slag recycling device, a recycling mode that can be applied to the copper slag recycling device is generated. Upon reaching a preset time, the recovery mode of the copper slag recovery device is determined, including: The system receives a second recycling message from staff; wherein the second recycling message is used to indicate the degree of processing of the raw copper slag by the copper slag recycling device, and the raw copper slag is untreated copper slag. A recommended recycling model is generated based on the second recycling information.
2. The copper slag recovery method as described in claim 1, characterized in that, The adaptive state analysis, based on the determined recovery mode of the copper slag recovery device and the parameter characteristics indicated by the parameter information, yields matching information, including: A first parameter deviation diagnosis is performed on the determined recovery mode and parameter characteristics indicated by the parameter information of the copper slag recovery device to obtain first deviation information; wherein, the first deviation information is used to indicate the degree of deviation of temperature deviation and pressure deviation. A second parameter deviation diagnosis is performed on the determined recovery mode of the copper slag recovery device and the numerical range of the parameters indicated by the parameter information to obtain second deviation information; wherein, the second deviation information is used to indicate the degree of deviation of reagent deviation and particle size mismatch. The matching information is obtained by calculating the parameter fitness based on the first deviation information and the second deviation information.
3. The copper slag recovery method as described in claim 1, characterized in that, The step of controlling the copper slag recovery device to recover copper slag based on the matching information includes: If the degree of matching between the recycling mode of the copper slag recycling device indicated by the matching information and the numerical range of the parameters indicated by the parameter information is greater than a preset matching degree value, the copper slag to be recycled is recycled in collaboration with the determined recycling mode of the copper slag recycling device.
4. The copper slag recovery method as described in claim 1, characterized in that, The step of controlling the copper slag recovery device to recover copper slag based on the matching information includes: If the degree of matching between the recycling mode of the copper slag recycling device indicated by the matching information and the numerical range of the parameters indicated by the parameter information is less than a preset degree of matching, the determined recycling mode of the copper slag recycling device will be partially modified according to the parameter information of the copper slag recycling device to obtain a modified recycling mode. The copper slag to be recovered is recovered in collaboration with the modified recovery mode and the copper slag recovery device.
5. A copper slag recycling system, characterized in that, For implementing the copper slag recovery method according to any one of claims 1 to 4, the copper slag recovery system comprises: A detection unit is used to control the device to detect when the start button of the copper slag recycling device is triggered; wherein, the start button is a switch to start the copper slag recycling device; A determining unit is used to determine the recycling mode applied to the copper slag recycling device under the condition of meeting the time requirement; wherein, the recycling mode is a different recycling method of the copper slag recycling device, and the time requirement is a preset time range; An extraction unit is used to extract parameter information of the copper slag recycling device; wherein, the parameter information is used to indicate the parameter characteristics of the copper slag recycling device, and the parameter characteristics include the numerical range and parameter type of the parameter; An analysis unit is used to perform an adaptation state analysis based on the determined recovery mode of the copper slag recovery device and the parameter characteristics indicated by the parameter information to obtain matching information; wherein, the matching information is used to indicate the degree of matching between the recovery mode of the copper slag recovery device and the parameter characteristics indicated by the parameter information. The control unit is used to control the copper slag recovery device to recover copper slag that needs to be recovered based on the matching information.