Environmental adaptability data analysis method and system for high-temperature superconducting magnet
By establishing a multi-field coupling model, a comprehensive evaluation of high-temperature superconducting magnets was conducted, which solved the problem of incomplete data acquisition and enabled accurate analysis and performance optimization of high-temperature superconducting magnets under different environments.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-23
- Publication Date
- 2026-03-24
AI Technical Summary
In existing technologies, the data acquisition of high-temperature superconducting magnets under different environmental conditions is not comprehensive enough, which affects the accuracy of the analysis results. Furthermore, the lack of personalized analysis for specific magnet objects results in inaccurate performance optimization schemes.
A high-temperature model, a cooling model, an electromagnetic model, a mechanical model, and a temperature model are established. By coupling these models, an environmental adaptation model for the superconducting magnet is formed for comprehensive evaluation and analysis.
This improves the accuracy and reliability of high-temperature superconducting magnet analysis under different environments, and provides a theoretical basis for optimized design and improved environmental adaptability.
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Figure CN121723701A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of superconducting magnet analysis technology, and in particular to a method and system for analyzing environmental adaptability data of high-temperature superconducting magnets. Background Technology
[0002] High-temperature superconducting magnets have wide applications in scientific research and other fields due to their advantages such as small size, high practicality, and high field strength. The critical temperature of high-temperature superconductors is usually above the liquid nitrogen temperature (77K). Compared with low-temperature superconductors, high-temperature superconductors are more stable because they have a larger specific heat capacity and a higher critical temperature, thus resulting in a larger minimum quench energy (MQE) that induces quenching in high-temperature superconductors.
[0003] However, existing technologies suffer from insufficient data acquisition for high-temperature superconducting magnets under various environmental conditions, affecting the accuracy of analysis results. Furthermore, the data processing and analysis methods are limited, such as linear regression and principal component analysis, which may not fully reflect the true performance changes of high-temperature superconducting magnets under different environmental conditions. In addition, existing technologies provide general analyses for a class of high-temperature superconducting magnets, lacking personalized analyses for specific magnet types. This results in imprecise optimization schemes for magnet performance under special environmental conditions. Therefore, providing a method and system for environmentally adaptable data analysis of high-temperature superconducting magnets is a technical problem urgently needing to be solved by those skilled in the art. Summary of the Invention
[0004] In view of this, the present invention proposes a method and system for analyzing environmental adaptability data of high-temperature superconducting magnets. The present invention comprehensively evaluates the performance of superconducting magnets in complex environments by establishing high-temperature models, cooling models, and subsequent electromagnetic, mechanical, and temperature models. By coupling these models, an environmental adaptability model of the superconducting magnet is obtained, thereby analyzing the performance of the magnet in different environments and providing a theoretical basis for optimizing the design and improving the environmental adaptability of the magnet.
[0005] To achieve the above objectives, the present invention provides the following technical solution:
[0006] A method for analyzing environmental adaptability data for high-temperature superconducting magnets, comprising:
[0007] S101: Establish a high-temperature model of a superconducting magnet under high-temperature conditions, and add corresponding material property parameters to the high-temperature model;
[0008] S102: Establish a cooling model of the superconducting magnet device in the cooling medium, and add material property parameters of the cooling medium;
[0009] S103: Establish and determine the temperature field of the environment in which the superconducting magnet is located based on the high-temperature model and the cooling model;
[0010] S104: Establish electromagnetic models, mechanical models, and temperature models corresponding to the electromagnetic field, mechanical field, and temperature field, respectively;
[0011] S105: Couple any two of the electromagnetic model corresponding to the electromagnetic field, the mechanical model corresponding to the mechanical field, and the temperature model corresponding to the temperature field to obtain the superconducting magnet environmental adaptation model.
[0012] S106: Perform environmental adaptability analysis on the superconducting magnet based on the superconducting magnet environmental adaptability model.
[0013] In some embodiments of this application, step S104 includes:
[0014] An electromagnetic model corresponding to the electromagnetic field is established based on the magnetic field strength of the environment in which the superconducting magnet is located and the critical current density of the superconducting magnet. This electromagnetic model is a three-dimensional simulation model.
[0015] The critical current density of the superconducting magnet in the three-dimensional simulation model is calculated using the following formula:
[0016] ;
[0017] In the formula, H x H y H z J represents the magnetic field strength in the x, y, and z directions of the three-dimensional simulation model. x J y J z These are the corresponding critical current densities;
[0018] In the formula, It is calculated according to the following formula:
[0019] ;
[0020] In the formula, μ is the resistivity, μ0 is the free permeability, and μ r denoted as the relative permeability of the corresponding material.
[0021] In some embodiments of this application, step S105 includes:
[0022] The electromagnetic field is coupled with the temperature field, and the current density of the electromagnetic field is calculated based on the Joule heat generated in real time by the heat source in the temperature field. The magnetic field strength of the electromagnetic field under the current density is then obtained.
[0023] The electromagnetic field is coupled with the mechanical field. The first stress of the superconducting magnet is calculated based on the magnetic field strength of the electromagnetic field, and the strain of the superconducting magnet under the first stress is obtained. The current density of the superconducting tape under the strain of the superconducting magnet is also obtained. The electromagnetic field is calculated and updated based on the current density of the superconducting tape.
[0024] The temperature field is coupled with the mechanical field, the second stress is calculated based on the temperature of the temperature field, and the stress-strain is obtained. The current density under the stress-strain is obtained, the heat loss is calculated based on the current density under the stress-strain, and the real-time temperature of the superconducting magnet is calculated based on the Joule heat generated by the heat source in real time.
[0025] In some embodiments of this application, the process of establishing a cooling model of the superconducting magnet device in a cooling medium further includes:
[0026] When the superconducting magnet is cooled by conduction, a contact thermal resistance is set between the superconducting magnet and the cold head of the refrigerator to simulate the heat exchange process between the superconducting magnet and the refrigerator in actual cooling, and the cooling model is established based on the heat exchange process between the superconducting magnet and the refrigerator.
[0027] In some embodiments of this application, step S106 includes:
[0028] The performance changes of the superconducting magnet under different temperatures and cooling media conditions were analyzed based on the superconducting magnet environmental adaptation model, and the stability of the superconducting magnet under different environments was evaluated based on the analysis results; wherein,
[0029] The properties of the superconducting magnet include magnetic flux density and electrical resistance.
[0030] To achieve the above objectives, the present invention also provides an environmental adaptability data analysis system for high-temperature superconducting magnets, applied in the aforementioned environmental adaptability data analysis method for high-temperature superconducting magnets, comprising:
[0031] The first model building unit is used to build a high-temperature model of a superconducting magnet under high-temperature conditions, and to add corresponding material property parameters to the high-temperature model.
[0032] The second model building unit is used to build a cooling model of the superconducting magnet device in the cooling medium and to add material property parameters of the cooling medium.
[0033] The third model building unit is used to establish and determine the temperature field of the environment where the superconducting magnet is located based on the high temperature model and the cooling model.
[0034] The processing unit is used to establish electromagnetic models, mechanical models, and temperature models corresponding to the electromagnetic field, mechanical field, and temperature field, respectively.
[0035] The coupling unit is used to couple any two of the electromagnetic model corresponding to the electromagnetic field, the mechanical model corresponding to the mechanical field, and the temperature model corresponding to the temperature field to obtain the superconducting magnet environmental adaptation model.
[0036] The analysis unit is used to perform environmental adaptability analysis on the superconducting magnet based on the superconducting magnet environmental adaptability model.
[0037] In some embodiments of this application, the processing unit is further configured to establish an electromagnetic model corresponding to the electromagnetic field based on the magnetic field strength of the environment in which the superconducting magnet is located and the critical current density of the superconducting magnet, wherein the electromagnetic model is a three-dimensional simulation model; wherein,
[0038] The processing unit is also configured to calculate the critical current density of the superconducting magnet in the three-dimensional simulation model according to the following formula:
[0039] ;
[0040] In the formula, H x H y H z J represents the magnetic field strength in the x, y, and z directions of the three-dimensional simulation model. x J y J z These are the corresponding critical current densities;
[0041] In the formula, It is calculated according to the following formula:
[0042] ;
[0043] In the formula, μ is the resistivity, μ0 is the free permeability, and μ r denoted as the relative permeability of the corresponding material.
[0044] In some embodiments of this application, the coupling unit is further configured to couple the electromagnetic field with the temperature field, calculate the current density of the electromagnetic field based on the Joule heat generated in real time by the heat source in the temperature field, and obtain the magnetic field strength of the electromagnetic field under the current density.
[0045] The coupling unit is also used to couple the electromagnetic field with the mechanical field, calculate the first stress of the superconducting magnet based on the magnetic field strength of the electromagnetic field, obtain the strain of the superconducting magnet under the first stress, obtain the superconducting tape current density under the strain of the superconducting magnet, and calculate and update the electromagnetic field based on the superconducting tape current density.
[0046] The coupling unit is also used to couple the temperature field with the mechanical field, calculate the second stress based on the temperature of the temperature field, obtain the stress-strain, obtain the current density under the stress-strain, calculate the heat loss based on the current density under the stress-strain, and calculate the real-time temperature of the superconducting magnet based on the Joule heat generated by the heat source in real time.
[0047] In some embodiments of this application, the second model building unit is further configured to simulate the heat exchange process between the superconducting magnet and the refrigerator during actual cooling by setting a contact thermal resistance and making a heat conduction connection between the superconducting magnet and the refrigerator cold head when the superconducting magnet adopts conductive cooling, and to build the cooling model based on the heat exchange process between the superconducting magnet and the refrigerator.
[0048] In some embodiments of this application, the analysis unit is further configured to analyze the performance changes of the superconducting magnet under different temperatures and different cooling medium conditions based on the superconducting magnet environmental adaptation model, and to evaluate the stability of the superconducting magnet under different environments based on the analysis results; wherein,
[0049] The properties of the superconducting magnet include magnetic flux density and electrical resistance.
[0050] This invention provides a method and system for analyzing environmental adaptability data of high-temperature superconducting magnets. Compared with existing technologies, its advantages are as follows:
[0051] Based on the established high-temperature model, cooling model, and multi-field model coupling electromagnetic field, mechanical field, and temperature field, this invention predicts and analyzes the performance of superconducting magnets under different environments. The multi-field coupling analysis of superconducting magnets improves the accuracy and reliability of the analysis. Furthermore, it involves the heat exchange in the conduction cooling process, making the model closer to the actual working conditions and providing an important reference for the design and application of superconducting magnets. Attached Figure Description
[0052] Various other advantages and benefits will become apparent to those skilled in the art upon reading the following detailed description of preferred embodiments. The accompanying drawings are for illustrative purposes only and are not intended to limit the invention. Furthermore, the same reference numerals denote the same parts throughout the drawings. In the drawings:
[0053] Figure 1 This is a flowchart of the environmental adaptability data analysis method for high-temperature superconducting magnets according to an embodiment of the present invention;
[0054] Figure 2 This is a functional block diagram of the environmental adaptability data analysis system for high-temperature superconducting magnets according to an embodiment of the present invention. Detailed Implementation
[0055] Exemplary embodiments of the present disclosure will now be described in more detail with reference to the accompanying drawings. While exemplary embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided to enable a more thorough understanding of the present disclosure and to fully convey the scope of the disclosure to those skilled in the art. It should be noted that, unless otherwise specified, embodiments and features in the embodiments of the present invention can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0056] See Figure 1 As shown, this invention provides a method for analyzing environmental adaptability data for high-temperature superconducting magnets, comprising:
[0057] S101: Establish a high-temperature model of a superconducting magnet under high-temperature conditions, and add corresponding material property parameters to the high-temperature model;
[0058] S102: Establish a cooling model of the superconducting magnet device in the cooling medium, and add material property parameters of the cooling medium;
[0059] S103: Establish and determine the temperature field of the environment where the superconducting magnet is located based on the high temperature model and the cooling model;
[0060] S104: Establish electromagnetic, mechanical, and temperature models corresponding to electromagnetic, mechanical, and temperature fields, respectively.
[0061] S105: Couple any two of the electromagnetic model corresponding to the electromagnetic field, the mechanical model corresponding to the mechanical field, and the temperature model corresponding to the temperature field to obtain the superconducting magnet environmental adaptation model.
[0062] S106: Environmental adaptability analysis of superconducting magnets based on the superconducting magnet environmental adaptability model.
[0063] In one specific embodiment of this application, step S104 includes:
[0064] An electromagnetic model corresponding to the electromagnetic field is established based on the magnetic field strength of the environment in which the superconducting magnet is located and the critical current density of the superconducting magnet. This electromagnetic model is a three-dimensional simulation model.
[0065] The critical current density of the superconducting magnet in the three-dimensional simulation model is calculated using the following formula:
[0066] ;
[0067] In the formula, H x H y H z J represents the magnetic field strength in the x, y, and z directions of the three-dimensional simulation model. x J y J z These are the corresponding critical current densities;
[0068] In the formula, It is calculated according to the following formula:
[0069] ;
[0070] In the formula, μ is the resistivity, μ0 is the free permeability, and μ r denoted as the relative permeability of the corresponding material.
[0071] In one specific embodiment of this application, step S105 includes:
[0072] The electromagnetic field is coupled with the temperature field. The current density of the electromagnetic field is calculated based on the Joule heat generated in real time by the heat source in the temperature field, and the magnetic field strength of the electromagnetic field under the current density is obtained.
[0073] The electromagnetic field is coupled with the mechanical field. The first stress of the superconducting magnet is calculated based on the magnetic field strength of the electromagnetic field, and the strain of the superconducting magnet under the first stress is obtained. The current density of the superconducting tape under the strain of the superconducting magnet is also obtained. The electromagnetic field is calculated and updated based on the current density of the superconducting tape.
[0074] The temperature field is coupled with the mechanical field. The second stress is calculated based on the temperature of the temperature field, and the stress-strain is obtained. The current density under stress-strain is also obtained. The heat loss is calculated based on the current density under stress-strain, and the real-time temperature of the superconducting magnet is calculated based on the Joule heat generated by the heat source in real time.
[0075] In one specific embodiment of this application, when establishing a cooling model of the superconducting magnet device in a cooling medium, the following steps are also included:
[0076] When superconducting magnets are cooled by conduction, a contact thermal resistance is set between the superconducting magnet and the cold head of the refrigerator to simulate the heat exchange process between the superconducting magnet and the refrigerator in actual cooling. A cooling model is then established based on the heat exchange process between the superconducting magnet and the refrigerator.
[0077] In one specific embodiment of this application, step S106 includes:
[0078] The performance changes of superconducting magnets under different temperatures and cooling media were analyzed based on the superconducting magnet environmental adaptation model, and the stability of superconducting magnets under different environments was evaluated based on the analysis results; among them,
[0079] The properties of a superconducting magnet include its magnetic flux density and electrical resistance.
[0080] Based on the same technical concept, see [reference] Figure 2 As shown, the present invention also provides a data analysis system for environmental adaptability of high-temperature superconducting magnets, applied in the data analysis method for environmental adaptability of high-temperature superconducting magnets, comprising:
[0081] The first model building unit is used to build a high-temperature model of a superconducting magnet under high-temperature conditions and to add corresponding material property parameters to the high-temperature model.
[0082] The second model building unit is used to build a cooling model of the superconducting magnet device in the cooling medium and to add material property parameters of the cooling medium.
[0083] The third model building unit is used to establish the temperature field of the environment where the superconducting magnet is located based on the high temperature model and the cooling model.
[0084] The processing unit is used to establish electromagnetic models, mechanical models, and temperature models corresponding to electromagnetic fields, mechanical fields, and temperature fields, respectively.
[0085] The coupling unit is used to couple any two of the electromagnetic model corresponding to the electromagnetic field, the mechanical model corresponding to the mechanical field, and the temperature model corresponding to the temperature field to obtain the superconducting magnet environmental adaptation model.
[0086] The analysis unit is used to perform environmental adaptability analysis on superconducting magnets based on the superconducting magnet environmental adaptability model.
[0087] In one specific embodiment of this application, the processing unit is further configured to establish an electromagnetic model corresponding to the electromagnetic field based on the magnetic field strength of the environment in which the superconducting magnet is located and the critical current density of the superconducting magnet. The electromagnetic model is a three-dimensional simulation model.
[0088] The processing unit is also used to calculate the critical current density of the superconducting magnet in the three-dimensional simulation model according to the following formula:
[0089] ;
[0090] In the formula, H x H y H zJ represents the magnetic field strength in the x, y, and z directions of the three-dimensional simulation model. x J y J z These are the corresponding critical current densities;
[0091] In the formula, It is calculated according to the following formula:
[0092] ;
[0093] In the formula, μ is the resistivity, μ0 is the free permeability, and μ r denoted as the relative permeability of the corresponding material.
[0094] In one specific embodiment of this application, the coupling unit is further used to couple the electromagnetic field with the temperature field, calculate the current density of the electromagnetic field based on the Joule heat generated in real time by the heat source in the temperature field, and obtain the magnetic field strength of the electromagnetic field under the current density.
[0095] The coupling unit is also used to couple the electromagnetic field with the mechanical field, calculate the first stress of the superconducting magnet based on the magnetic field strength of the electromagnetic field, obtain the strain of the superconducting magnet under the first stress, obtain the superconducting tape current density under the strain of the superconducting magnet, and calculate and update the electromagnetic field based on the superconducting tape current density.
[0096] The coupling unit is also used to couple the temperature field with the mechanical field, calculate the second stress based on the temperature of the temperature field, obtain the stress-strain, obtain the current density under stress-strain, calculate the heat loss based on the current density under stress-strain, and calculate the real-time temperature of the superconducting magnet based on the Joule heat generated by the heat source in real time.
[0097] In one specific embodiment of this application, the second model building unit is further used to simulate the heat exchange process between the superconducting magnet and the refrigerator during actual cooling by setting a contact thermal resistance and making a heat conduction connection between the superconducting magnet and the refrigerator cold head when the superconducting magnet adopts conductive cooling, and to build a cooling model based on the heat exchange process between the superconducting magnet and the refrigerator.
[0098] In one specific embodiment of this application, the analysis unit is further configured to analyze the performance changes of the superconducting magnet under different temperatures and different cooling media conditions based on the superconducting magnet environmental adaptation model, and to evaluate the stability of the superconducting magnet under different environments based on the analysis results; wherein,
[0099] The properties of a superconducting magnet include its magnetic flux density and electrical resistance.
[0100] In summary, this invention predicts and analyzes the performance of superconducting magnets under different environments based on the established high-temperature model, cooling model, and multi-field model that couples electromagnetic, mechanical, and temperature fields. The combination of multi-field coupling analysis of superconducting magnets improves the accuracy and reliability of the analysis. Furthermore, it involves heat exchange in the conduction cooling process, making the model closer to actual working conditions, and provides an important reference for the design and application of superconducting magnets.
[0101] Those skilled in the art will understand that embodiments of this application can be provided as methods, systems, or computer program goods. Therefore, this application can take the form of a completely hardware embodiment, a completely software embodiment, or an embodiment combining software and hardware aspects. Furthermore, this application can take the form of a computer program goods embodied on one or more computer-usable storage media (including, but not limited to, disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.
[0102] This application is described with reference to flowchart illustrations and / or block diagrams of methods, apparatus (systems), and computer program goods according to embodiments of this application. It will be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, special-purpose computer, embedded processor, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, generate instructions for implementing the flowchart... Figure 1 One or more processes and / or boxes Figure 1 A device that provides the functions specified in one or more boxes.
[0103] These computer program instructions may also be stored in a computer-readable storage medium that can direct a computer or other programmable data processing device to function in a particular manner, such that the instructions stored in the computer-readable storage medium produce an article of manufacture including instruction means, which are implemented in a process Figure 1 One or more processes and / or boxes Figure 1 The function specified in one or more boxes.
[0104] These computer program instructions may also be loaded onto a computer or other programmable data processing equipment to cause a series of operational steps to be performed on the computer or other programmable equipment to produce a computer-implemented process, thereby providing instructions that execute on the computer or other programmable equipment for implementing the process. Figure 1 One or more processes and / or boxes Figure 1 The steps of the function specified in one or more boxes.
[0105] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit it. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that modifications or equivalent substitutions can still be made to the specific implementation of the present invention. Any modifications or equivalent substitutions that do not depart from the spirit and scope of the present invention should be covered within the scope of protection of the claims of the present invention.
Claims
1. A method for analyzing environmental adaptability data of high-temperature superconducting magnets, characterized in that, include: S101: Establish a high-temperature model of a superconducting magnet under high-temperature conditions, and add corresponding material property parameters to the high-temperature model; S102: Establish a cooling model of the superconducting magnet device in the cooling medium, and add material property parameters of the cooling medium; S103: Establish and determine the temperature field of the environment in which the superconducting magnet is located based on the high-temperature model and the cooling model; S104: Establish electromagnetic models, mechanical models, and temperature models corresponding to the electromagnetic field, mechanical field, and temperature field, respectively; S105: Couple any two of the electromagnetic model corresponding to the electromagnetic field, the mechanical model corresponding to the mechanical field, and the temperature model corresponding to the temperature field to obtain the superconducting magnet environmental adaptation model. S106: Perform environmental adaptability analysis on the superconducting magnet based on the superconducting magnet environmental adaptability model.
2. The method for analyzing environmental adaptability data of high-temperature superconducting magnets according to claim 1, characterized in that, Step S104 includes: An electromagnetic model corresponding to the electromagnetic field is established based on the magnetic field strength of the environment in which the superconducting magnet is located and the critical current density of the superconducting magnet. This electromagnetic model is a three-dimensional simulation model. The critical current density of the superconducting magnet in the three-dimensional simulation model is calculated using the following formula: ; In the formula, H x H y H z J represents the magnetic field strength in the x, y, and z directions of the three-dimensional simulation model. x J y J z These are the corresponding critical current densities; In the formula, It is calculated according to the following formula: ; In the formula, μ is the resistivity, μ0 is the free permeability, and μ r denoted as the relative permeability of the corresponding material.
3. The method for analyzing environmental adaptability data of high-temperature superconducting magnets according to claim 1, characterized in that, Step S105 includes: The electromagnetic field is coupled with the temperature field, and the current density of the electromagnetic field is calculated based on the Joule heat generated in real time by the heat source in the temperature field. The magnetic field strength of the electromagnetic field under the current density is then obtained. The electromagnetic field is coupled with the mechanical field. The first stress of the superconducting magnet is calculated based on the magnetic field strength of the electromagnetic field, and the strain of the superconducting magnet under the first stress is obtained. The current density of the superconducting tape under the strain of the superconducting magnet is also obtained. The electromagnetic field is calculated and updated based on the current density of the superconducting tape. The temperature field is coupled with the mechanical field, the second stress is calculated based on the temperature of the temperature field, and the stress-strain is obtained. The current density under the stress-strain is obtained, the heat loss is calculated based on the current density under the stress-strain, and the real-time temperature of the superconducting magnet is calculated based on the Joule heat generated by the heat source in real time.
4. The method for analyzing environmental adaptability data of high-temperature superconducting magnets according to claim 2, characterized in that, The process of establishing a cooling model of the superconducting magnet device in a cooling medium also includes: When the superconducting magnet is cooled by conduction, a contact thermal resistance is set between the superconducting magnet and the cold head of the refrigerator to simulate the heat exchange process between the superconducting magnet and the refrigerator in actual cooling, and the cooling model is established based on the heat exchange process between the superconducting magnet and the refrigerator.
5. The method for analyzing environmental adaptability data of high-temperature superconducting magnets according to claim 1, characterized in that, Step S106 includes: The performance changes of the superconducting magnet under different temperatures and cooling media conditions were analyzed based on the superconducting magnet environmental adaptation model, and the stability of the superconducting magnet under different environments was evaluated based on the analysis results; wherein, The properties of the superconducting magnet include magnetic flux density and electrical resistance.
6. A data analysis system for environmental adaptability of high-temperature superconducting magnets, applied in the data analysis method for environmental adaptability of high-temperature superconducting magnets as described in any one of claims 1-5, characterized in that, include: The first model building unit is used to build a high-temperature model of a superconducting magnet under high-temperature conditions, and to add corresponding material property parameters to the high-temperature model. The second model building unit is used to build a cooling model of the superconducting magnet device in the cooling medium and to add material property parameters of the cooling medium. The third model building unit is used to establish and determine the temperature field of the environment where the superconducting magnet is located based on the high temperature model and the cooling model. The processing unit is used to establish electromagnetic models, mechanical models, and temperature models corresponding to the electromagnetic field, mechanical field, and temperature field, respectively. The coupling unit is used to couple any two of the electromagnetic model corresponding to the electromagnetic field, the mechanical model corresponding to the mechanical field, and the temperature model corresponding to the temperature field to obtain the superconducting magnet environmental adaptation model. The analysis unit is used to perform environmental adaptability analysis on the superconducting magnet based on the superconducting magnet environmental adaptability model.
7. The environmental adaptability data analysis system for high-temperature superconducting magnets according to claim 6, characterized in that, The processing unit is further configured to establish an electromagnetic model corresponding to the electromagnetic field based on the magnetic field strength of the environment in which the superconducting magnet is located and the critical current density of the superconducting magnet. This electromagnetic model is a three-dimensional simulation model. The processing unit is also configured to calculate the critical current density of the superconducting magnet in the three-dimensional simulation model according to the following formula: ; In the formula, H x H y H z J represents the magnetic field strength in the x, y, and z directions of the three-dimensional simulation model. x J y J z These are the corresponding critical current densities; In the formula, It is calculated according to the following formula: ; In the formula, μ is the resistivity, μ0 is the free permeability, and μ r denoted as the relative permeability of the corresponding material.
8. The environmental adaptability data analysis system for high-temperature superconducting magnets according to claim 6, characterized in that, The coupling unit is also used to couple the electromagnetic field with the temperature field, calculate the current density of the electromagnetic field based on the Joule heat generated in real time by the heat source in the temperature field, and obtain the magnetic field strength of the electromagnetic field under the current density. The coupling unit is also used to couple the electromagnetic field with the mechanical field, calculate the first stress of the superconducting magnet based on the magnetic field strength of the electromagnetic field, obtain the strain of the superconducting magnet under the first stress, obtain the superconducting tape current density under the strain of the superconducting magnet, and calculate and update the electromagnetic field based on the superconducting tape current density. The coupling unit is also used to couple the temperature field with the mechanical field, calculate the second stress based on the temperature of the temperature field, obtain the stress-strain, obtain the current density under the stress-strain, calculate the heat loss based on the current density under the stress-strain, and calculate the real-time temperature of the superconducting magnet based on the Joule heat generated by the heat source in real time.
9. The environmental adaptability data analysis system for high-temperature superconducting magnets according to claim 7, characterized in that, The second model building unit is also used to simulate the heat exchange process between the superconducting magnet and the refrigerator during actual cooling by setting a contact thermal resistance and making a heat conduction connection between the superconducting magnet and the refrigerator cold head when the superconducting magnet adopts conductive cooling, and to build the cooling model based on the heat exchange process between the superconducting magnet and the refrigerator.
10. The environmental adaptability data analysis system for high-temperature superconducting magnets according to claim 6, characterized in that, The analysis unit is also used to analyze the performance changes of the superconducting magnet under different temperatures and different cooling media conditions based on the superconducting magnet environmental adaptation model, and to evaluate the stability of the superconducting magnet under different environments based on the analysis results; wherein, The properties of the superconducting magnet include magnetic flux density and electrical resistance.