Configurable process logic configuration batch generation method and device
By generating parameter configuration tables and standard function diagrams in the nuclear power DCS system, and using automated tools to generate logic configuration diagrams in batches, the standardization and automation issues of nuclear power plant process logic configuration design are solved, improving design efficiency and quality and reducing labor costs.
Patent Information
- Application Number
- CN202111388145.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-11-22
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2041-11-22
AI Technical Summary
In the existing technology, the lack of a unified standard for the process logic configuration design of nuclear power plants leads to high design difficulty, low efficiency, difficulty in ensuring quality, high labor costs, difficulty in mutual review of designs, difficulty for designers to complete project tasks independently, and difficulty in controlling design quality and schedule.
By acquiring design inputs from different design institutes in the nuclear power DCS, parameter configuration tables and standard functional diagrams are generated. Automated tools are then used to generate logic configuration diagrams in batches, achieving standardized and automated configuration, including automatic replacement and configuration of equipment names and parameters.
It improves logic configuration efficiency, shortens design time, reduces labor costs, enhances design quality and consistency, reduces human error, and enables standardized and batch generation of designs.
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Figure CN114004108B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of nuclear power DCS, and particularly relates to a configurable process logic configuration batch generation method and device. BACKGROUND
[0002] The functional group process logic diagram is one of the most important design works of the main instrument control system project engineering design professional, and it is the carrier and means for the operating personnel of the nuclear power plant to realize the monitoring and control of the process system equipment. In the past, when the process logic configuration was performed, the process logic configuration was not standardized and classified, and the design tasks were allocated according to the personnel division of labor and the process functional group logic configuration workload. In addition, the existing logic configuration design specification is more about how to make paper marking and interface division from the design process level, and does not guide or regulate the design consistency. With the development of the third generation of nuclear power plant technology, the automation control requirements of the process system of the nuclear power plant are also significantly improved, and the automation control means such as backup power supply, sequence control, and large sequence control are increasingly used in the functional group device control logic, which invisibly puts forward higher requirements for the main instrument control designers. If the previous design process and concept are still followed, the following disadvantages will exist: first, the design difficulty is increased, the design output is not easy to control, and quality problems are caused; second, more manual work hours have to be invested for checking, which brings greater challenges to human resources and construction period; third, the designers are difficult to independently and completely complete the project tasks, which is not conducive to personnel training and ability improvement.
[0003] In the prior art, the designers manually complete the configuration of each page of the logic diagram according to the task division of the process system, and such an overly open design method has the following problems: first, for the basic logic configuration of a large number of devices and measuring points, there is a lack of a unified standard design scheme (or template), the configuration results are various, the efficiency is low, and the design quality is not easy to guarantee; second, due to the non-uniform design scheme, the design output mutual inspection work is difficult, and the design mutual inspection effect is poor; third, the traditional pure manual configuration method consumes a large amount of human cost and takes a long design period. SUMMARY
[0004] The present application aims to at least solve one of the above technical problems to some extent.
[0005] To this end, a first object of the present application is to provide a configurable process logic configuration batch generation method, which can improve the logic configuration efficiency, compress the design period, reduce the human cost, and improve the design quality.
[0006] A second object of the present application is to provide a configurable process logic configuration batch generation device.
[0007] A third object of the present application is to provide a computer device.
[0008] A fourth object of the present application is to provide a non-transitory computer-readable storage medium.
[0009] To achieve the above object, the first aspect of the present application provides a configurable process logic configuration batch generation method, comprising:
[0010] Obtaining design inputs of different process systems of different design institutes in a nuclear power DCS;
[0011] Generating a parameter configuration table corresponding to the design inputs, the parameter configuration table comprising functional parameters and logic configuration parameters;
[0012] Selecting a corresponding standard function diagram for the design inputs based on the functional parameters;
[0013] Generating a logic configuration diagram corresponding to the design inputs according to the logic configuration parameters and the standard function diagram.
[0014] Optionally, the method further comprises:
[0015] Before selecting a corresponding standard function diagram for the design inputs based on the functional parameters, refining and arranging the I&C logic drawing in the design inputs to generate the standard function diagram.
[0016] Optionally, generating a logic configuration diagram corresponding to the design inputs according to the logic configuration parameters and the standard function diagram comprises:
[0017] Filling the logic configuration parameters of the design inputs into the corresponding standard function diagram, and generating the corresponding logic configuration diagram.
[0018] Optionally, the logic configuration parameters comprise actual device point names, and generating the corresponding logic configuration diagram comprises:
[0019] Replacing the preset device point names in the standard function diagram with the actual device point names.
[0020] Optionally, the standard function diagram comprises a parameter configuration interface, and generating the corresponding logic configuration diagram comprises:
[0021] Judging whether the parameter configuration of the standard function diagram needs to be modified;
[0022] If modification is needed, modifying the parameter configuration through the parameter configuration interface by manual or batch import;
[0023] If no modification is needed, adopting the default parameter configuration of the standard function diagram.
[0024] The configurable process logic configuration batch generation method of the embodiment of the application can improve the logic configuration efficiency, compress the design period, reduce the labor cost, and improve the design quality by obtaining design inputs of different design institutes and different process systems in a nuclear power DCS, generating a parameter configuration table corresponding to the design inputs, selecting a standard function graph corresponding to the design inputs based on the function parameters, and then generating a logic configuration graph corresponding to the design inputs according to the logic configuration parameters and the standard function graph.
[0025] To achieve the above object, the second aspect embodiment of the application provides a configurable process logic configuration batch generation device, comprising:
[0026] The obtaining module is configured to obtain design inputs of different design institutes and different process systems in a nuclear power DCS.
[0027] The conversion module is configured to generate a parameter configuration table corresponding to the design inputs, wherein the parameter configuration table comprises function parameters and logic configuration parameters.
[0028] The import module is configured to select a standard function graph corresponding to the design inputs based on the function parameters.
[0029] The generation module is configured to generate a logic configuration graph corresponding to the design inputs according to the logic configuration parameters and the standard function graph.
[0030] Optionally, the device further comprises:
[0031] The standard function graph generation module is configured to refine and arrange the I&C logic drawing in the design inputs to generate the standard function graph before selecting the standard function graph corresponding to the design inputs based on the function parameters.
[0032] Optionally, the generation module is configured to:
[0033] Fill the logic configuration parameters of the design inputs into the corresponding standard function graph, and generate the corresponding logic configuration graph.
[0034] Optionally, the logic configuration parameters comprise actual device names, and the generation module is configured to:
[0035] Replace the preset device names in the standard function graph with the actual device names.
[0036] Optionally, the standard function graph comprises a parameter configuration interface, and the generation module is configured to: judge whether the parameter configuration of the standard function graph needs to be modified; if the parameter configuration needs to be modified, modify the parameter configuration through the parameter configuration interface by manual or batch import; and if the parameter configuration does not need to be modified, adopt the default parameter configuration of the standard function graph.
[0037] The configurable process logic configuration batch generation device of the embodiment of the present application can improve the logic configuration efficiency, compress the design period, reduce the labor cost, and improve the design quality by obtaining the design input of different process systems of different design institutes in the nuclear power DCS, generating the parameter configuration table corresponding to the design input, selecting the corresponding standard function graph for the design input based on the functional parameters, and then generating the logic configuration graph corresponding to the design input according to the logic configuration parameters and the standard function graph.
[0038] To achieve the above object, the third aspect embodiment of the present application proposes a computer device, comprising a memory, a processor and a computer program stored in the memory and executable on the processor, wherein the processor executes the computer program to realize the configurable process logic configuration batch generation method according to the first aspect embodiment.
[0039] To achieve the above object, the fourth aspect embodiment of the present application further proposes a non-temporary computer readable storage medium, which stores a computer program, characterized in that the computer program is executed by the processor to realize the configurable process logic configuration batch generation method according to the first aspect embodiment.
[0040] The additional aspects and advantages of the present application will be partially given in the following description, partially will become obvious from the following description, or will be known by the practice of the present application. BRIEF DESCRIPTION OF DRAWINGS
[0041] The drawings accompanying the specification of the present application are used to provide further understanding of the present application, the illustrative embodiments of the present application and the description thereof are used to explain the present application, and do not constitute improper limitation on the present application. In the drawings:
[0042] Figure 1 is a flow chart of the configurable process logic configuration batch generation method of one embodiment of the present application;
[0043] Figure 2 is a flow chart of the configurable process logic configuration batch generation method of another embodiment of the present application;
[0044] Figure 3 is a process schematic diagram of the configurable process logic configuration of one specific embodiment of the present application;
[0045] Figure 4 is a configurable parameter replacement schematic diagram;
[0046] Figure 5 is a schematic diagram of the interface of parameter configuration;
[0047] Figure 6 is an Excel table parameter schematic diagram;
[0048] Figure 7 This is a diagram illustrating the keyword replacement function of the AutoConfig tool;
[0049] Figure 8 This is a schematic diagram of automatically generated logic configuration diagrams;
[0050] Figure 9 This is a schematic diagram of the structure of a configurable process logic configuration batch generation device according to an embodiment of this application;
[0051] Figure 10 This is a schematic diagram of the structure of a configurable process logic configuration batch generation device according to another embodiment of this application. Detailed Implementation
[0052] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.
[0053] The present application will be further described in detail below with reference to specific embodiments, which should not be construed as limiting the scope of protection claimed in the present application.
[0054] The following describes a method and apparatus for organizing and displaying multi-view functional diagrams of nuclear power DCS projects according to embodiments of this application, with reference to the accompanying drawings.
[0055] Figure 1 This is a flowchart of a configurable process logic configuration batch generation method according to an embodiment of this application, such as... Figure 1 As shown, the method includes the following steps:
[0056] S1, obtain the design inputs of different process systems from different design institutes in the nuclear power DCS.
[0057] The design input consists of design drawings from different design institutes and for different process systems. Since each design institute has its own design process and methods, the formats and other aspects vary. Therefore, it is necessary to standardize these design drawings.
[0058] S2 generates the parameter configuration table corresponding to the design input.
[0059] The parameter configuration table includes functional parameters and logical configuration parameters.
[0060] This step requires analyzing the design input to determine the parameters it contains, such as names and internal logic control relationships.
[0061] S3 selects the corresponding standard function chart for the design input based on the function parameters.
[0062] The standard function diagram is a set of typical instrument control logic diagrams for completing all process functions of a nuclear power plant, and is a set of standard "molds" highly refined and sorted from design input drawings. The standard function diagram can be corresponded to design inputs of different process systems with the same design input style or design inputs with different styles. Through application of the standard function diagram, a "de-differentiated" output result can be achieved, so that different designers can draw the same logic configuration diagram.
[0063] S4, generating a logic configuration diagram corresponding to the design input according to the logic configuration parameters and the standard function diagram.
[0064] Specifically, the logic configuration parameters of the design input can be filled into the corresponding standard function diagram, and a corresponding logic configuration diagram is generated.
[0065] The logic configuration parameters include actual device names. Therefore, when the corresponding logic configuration diagram is generated, the preset device names in the standard function diagram can be replaced with the actual device names.
[0066] In addition, the standard function diagram includes a parameter configuration interface, providing a flexible modification space for designers. Specifically, it is first determined whether the parameter configuration of the standard function diagram needs to be modified. If the parameter configuration needs to be modified, the parameter configuration is modified through the parameter configuration interface by manual or batch import; if the parameter configuration does not need to be modified, the default parameter configuration of the standard function diagram can be used.
[0067] The configurable process logic configuration batch generation method of the embodiment of the present application can improve the logic configuration efficiency, compress the design period, reduce the labor cost, and improve the design quality by obtaining design inputs of different process systems of different design institutes in a nuclear DCS, generating a parameter configuration table corresponding to the design inputs, selecting a standard function diagram corresponding to the design input based on function parameters, and then generating a logic configuration diagram corresponding to the design input according to the logic configuration parameters and the standard function diagram.
[0068] In another embodiment of the present application, as shown in Figure 2 the method further includes:
[0069] S5, before selecting a standard function diagram corresponding to the design input based on function parameters, refining and sorting the instrument control logic diagram in the design input to generate the standard function diagram.
[0070] Through pre-generation of the standard function diagram, standardized design of the logic configuration can be achieved, which can cover most of the design work, greatly reduce the labor cost, and improve the design quality.
[0071] The following will be described in detail with a specific embodiment.
[0072] The method of the embodiment is applied to the field of nuclear power instrument control design, and is a configuration method of automatic, standardized, batched and configurable process logic diagram of a nuclear power instrument control system project. The method can quickly and accurately complete the configuration of the functional group process logic diagram, effectively avoid human errors, improve work efficiency and compress the work cycle.
[0073] The application can solve two "unification" problems through the application of the automatic tool. First, the configuration scheme of the same process logic of different systems is unified, a concept of standard function diagram is formed, a set of configuration logic diagram library is established to meet the drawing format requirements of the automatic tool of the application, and a standardized design concept is constructed. The application realizes automatic replacement of the general name of the standard function diagram through the automatic tool, replaces the parameter name corresponding to the actual functional group process logic diagram, and thus completes the basic configuration of a page of process logic diagram. In addition, the number of replaced parameters is configurable. In addition, through the combination of the data table (Excel format) and the automatic tool, batch generation of the process logic diagram can be realized, which is not only accurate and efficient, but also effectively improves the design quality.
[0074] The application establishes a mapping relationship between the automatic tool developed by itself and the standardized mold of VISIO software, and builds a set of standard function diagram set with the characteristics of clear algorithm block connection and reasonable layout of logic page algorithm block for each process configuration scheme (about 200 kinds). In actual application, the automatic tool establishes a one-to-one correspondence between the specific equipment filled in the engineering database (Excel table) and the standard function diagram, and finally generates a highly unified form and complete and reliable content of the subsystem process logic diagram.
[0075] The core of the application is that the basic configuration diagram (element) accounting for about 70% of the nuclear power plant process logic configuration diagram, which has similar or even repeated content, is standardized and normalized, and has the conditions for automatic and batch application. Then, the automatic tool is used to apply these configuration diagrams (elements) with large proportion but repetition to the instrument control system design covering hundreds of process systems and tens of thousands of pages of logic diagrams, which provides an effective method for quickly, efficiently, uniformly, completely, automatically and batchly completing the process logic configuration diagram.
[0076] A specific configuration process schematic diagram is shown in Figure 3 .
[0077] According to the configurable standard logic configuration batch generation requirements, the following parts are included.
[0078] S31, design input.
[0079] The design input of different design institutes is analyzed.
[0080] S32, parameter configuration table.
[0081] By filling in the design input parameters and the like, a corresponding parameter configuration table is generated.
[0082] S33, standard function diagram.
[0083] The standard function diagram is a collection of typical instrument control logic diagrams for completing all process functions of a nuclear power plant, and is a set of standard "molds" highly refined and sorted from design input drawings. For different process systems of the same design input style or different design inputs of different styles, a corresponding relationship can be established with the standard function diagram. Through the application of the standard function diagram, a "de-differentiated" output result can be achieved, so that different designers can draw the same logic configuration diagram.
[0084] S34, importing configuration tool through importing tool.
[0085] S35, configuration tool automatically generates design output.
[0086] When generating the design output, the point name can be configured and the parameter can be configured.
[0087] The standard function diagram is a "mold" of the logic configuration diagram, and the specific measurement point or device point name and internal parameters need to be filled in when applied. As shown in Figure 4 All signal names related to device names in the standard function diagram will be uniformly replaced according to the actual point name (the T70AAANN_AANNN field is uniformly replaced by T70JNB10_AA102, where A represents a letter and N represents a number).
[0088] For different devices, the internal parameters of the instrument control function block are not the same, and need to be flexibly configured according to the process function requirements. As shown in Figure 5 The standard function diagram provides an interface for parameter configuration for the designer, which can be manually modified or batch imported and modified; for parameters that do not need to be modified, the default value preset by the standard function diagram is used.
[0089] The configuration tool used in this embodiment is IComposer, and the standardization and automated logic diagram configuration is realized by using the special automation tool IComposer. The generation steps consist of three parts.
[0090] Step_1: Import the standard function diagram into the automation tool IComposer specified directory, which can be understood as importing the "mold" into the mold library.
[0091] Step_2-1: By filling in the database Excel table, configure the internal parameter information of the device point, and import the table into the automation tool IComposer before generating the final logical configuration drawing.
[0092] Specifically as shown in Figure 6 , the parameters can include start time, stop time, device type, etc.
[0093] Step_2-2: Open the AutoConfig tool of the automation tool IComposer, and on the basis of selecting the resource file and standard function diagram address, select the list of measurement points and device points (MEL / VEL / SL) and the name of the replacement keyword AAANN_AANNN that needs to be replaced.
[0094] Specifically as shown in Figure 7 .
[0095] Step_3: After completing the import of the database and AutoConfig configuration, click the "Generate" button, and the tool will automatically generate a logical configuration drawing, completing the automation and batch configuration work.
[0096] Specifically as shown in Figure 8 .
[0097] The configurable parameter standardized process logic batch configuration method provided in the application can effectively improve the design quality and efficiency, greatly compress the design time, and reduce the labor cost.
[0098] 1: Use of standard function diagram
[0099] Before use: The input drawing needs to be designed manually page by page, even if the design input format is consistent and the scheme is consistent, the purpose of unified scheme can only be achieved by copying and pasting, but the process cannot avoid the quality risk introduced by human error. In addition, all design details need to be checked, but due to the large amount of review work, it is difficult to achieve the expected effect.
[0100] After use: The standard function diagram brings standardized design, which makes it possible to systematically improve the design quality. According to statistics, standardized design can cover 70% of the design work, and its use can greatly reduce labor costs.
[0101] 2: Configurable parameters
[0102] Before use: The configuration of the point name needs to be filled in manually, and some projects have experienced spelling errors of the point name due to the complexity of the coding standard. In addition, the internal parameter filling cannot be associated with the database, even if the parameter information in the database and the logical diagram is the same, it also needs to be filled in repeatedly. This not only consumes manpower, but also is prone to errors and has quality risks.
[0103] After use: tabular processing of roll call and parameters, realizing the automation and uniqueness of parameter processing. In addition, the design of configurable parameters makes the logical configuration and parameter filling independent of each other, laying a good foundation for overall and optimized design process, and creating conditions for automation and batch design.
[0104] 3: Introduction of automation tools
[0105] Before use: manual configuration, design output form varies from person to person, cannot be unified, lacks standardization; in addition, the design input of repeated functions needs to be converted one by one, the design efficiency is low, and the probability of human error is large; even if some auxiliary tools are used, the overall design quality cannot be improved because the tools are fragmented.
[0106] After use: the design output form is highly unified, and the effect of de-differentiation is obvious; batch generation of process logic diagrams greatly improves design efficiency, and the labor input is reduced by more than 50% compared with before use; in addition, the automatic tool can easily complete the quantitative processing of data, such as the statistics of personnel workload, the error prompt generated after the automatic tool is compiled, and the design version archiving, etc., which greatly improves the design environment of process logic diagrams.
[0107] The present application is a good practice of design process optimization and design scheme innovation, which greatly reduces the quality risks that may be introduced in the current manual configuration process; at the same time, the use of standard function diagrams also greatly eliminates the influence of individual differences of designers on the design output form and quality; in addition, through the automatic replacement of roll call and the automatic import of internal parameters of equipment, the "assembly line" operation is realized, which improves the design quality, compresses the design period, and reduces the labor cost while overall planning the design scheme.
[0108] In order to realize the above-mentioned embodiments, the present application further proposes a configurable process logic configuration batch generation device.
[0109] Figure 9 It is a structural schematic diagram of the configurable process logic configuration batch generation device of an embodiment of the present application.
[0110] As shown in Figure 9 , the device includes an acquisition module 91, a conversion module 92, an import module 93, and a generation module 94.
[0111] The acquisition module 91 is used to acquire the design input of different design institutes and different process systems in the nuclear DCS.
[0112] The conversion module 92 is used to generate a parameter configuration table corresponding to the design input, and the parameter configuration table includes functional parameters and logic configuration parameters.
[0113] Import module 93 is used to select the corresponding standard function chart for the design input based on the function parameters.
[0114] The generation module 94 is used to generate the logic configuration diagram corresponding to the design input based on the logic configuration parameters and the standard function diagram.
[0115] The generation module 94 is used to fill the logic configuration parameters of the design input into the corresponding standard function diagram and generate the corresponding logic configuration diagram.
[0116] The logic configuration parameters include the actual device names. The generation module 94 is used to replace the preset device names in the standard function diagram with the actual device names.
[0117] The standard function chart includes a parameter configuration interface. The generation module 94 is used to determine whether the parameter configuration of the standard function chart needs to be modified. If it needs to be modified, the parameter configuration is modified through the parameter configuration interface by manual or batch import. If it does not need to be modified, the default parameter configuration of the standard function chart is used.
[0118] In another embodiment, such as Figure 10 As shown, the device also includes an integration module 95.
[0119] The integration module 95 is used to refine and organize the instrumentation and control logic diagram in the design input before selecting the corresponding standard function diagram based on the functional parameters, so as to generate the standard function diagram.
[0120] It should be understood that the configurable process logic configuration batch generation device of this embodiment is consistent with the description of the configurable process logic configuration batch generation method of the first aspect embodiment, and will not be repeated here.
[0121] The configurable process logic configuration batch generation device of this application obtains the design inputs of different process systems from different design institutes in the nuclear power DCS, generates parameter configuration tables corresponding to the design inputs, selects the corresponding standard function diagrams for the design inputs based on the functional parameters, and then generates the logic configuration diagrams corresponding to the design inputs according to the logic configuration parameters and the standard function diagrams. This can improve logic configuration efficiency, shorten the design period, reduce labor costs, and improve design quality.
[0122] To implement the above embodiments, this application also proposes a computer device.
[0123] The computer device includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, it implements a configurable process logic configuration batch generation method as described in the first aspect embodiment.
[0124] To achieve the above-mentioned embodiments, the application further provides a non-transitory computer readable storage medium.
[0125] The non-transitory computer readable storage medium has a computer program stored thereon, and the computer program is executed by a processor to implement the configurable process logic configuration batch generation method according to the first aspect.
[0126] It should be noted that, in this document, the terms such as first and second are merely used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply that there is any such actual relationship or order between these entities or operations. Moreover, the terms "include", "contain" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such a process, method, article or device. Without more limitations, the element defined by the statement "including a" does not exclude the presence of another identical element in the process, method, article or device including the element.
[0127] The logic and / or steps represented in the flowchart or otherwise described herein, for example, can be considered a list of executable instructions for implementing logic functions, and can be embodied in any computer-readable medium for use by an instruction execution system, apparatus, or device, such as a computer-based system, a processor- based system, or other system that can fetch the instructions from the instruction execution system, apparatus, or device and execute the instructions, or in conjunction with such an instruction execution system, apparatus, or device. For the purposes of this specification, a "computer-readable medium" can be any apparatus that can contain, store, communicate, propagate, or transport the program for use by or in connection with the instruction execution system, apparatus, or device. More specific examples (a non-exhaustive list) of the computer-readable medium include the following: an electrical connection having one or more wires (electrical apparatus), a portable computer diskette (magnetic apparatus), a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or Flash memory), an optical fiber (optical apparatus), and a portable compact disc read-only memory (CDROM). In addition, the computer-readable medium can even be paper or other suitable medium on which the program can be printed, as the program can be electronically obtained, for example, by optical scanning of the paper or other medium, followed by electronic conversion of the optical scanning into the program, and then storing the program in computer memory if necessary. The computer program product can include a computer program that can be loaded onto a computer or other programmable instruction execution device to cause a series of operations to be performed on the computer or other programmable instruction execution device to generate and display a graphical user interface as set forth in the claims.
[0128] It should be understood that portions of the present application can be realized with hardware, software, firmware or a combination thereof. In the foregoing embodiments, a plurality of steps or methods can be realized as software or firmware to be executed by a suitable instruction executing system. For example, if realized with hardware, and as in another embodiment, any one or a combination of the following technologies known in the art can be used: discrete logic circuitry having logic gates for implementing logic functions upon an application of data signals, application specific integrated circuits having appropriate combinational logic gates, programmable gate arrays (PGA), field programmable gate arrays (FPGA), and the like.
[0129] It should be noted that in the description of the present application, the description of the terms "one embodiment", "some embodiments", "an example", "a specific example", or "some examples" etc. means that the particular feature, structure, material or characteristic being described is included in at least one embodiment or example of the present application. The illustrative appearances of the above terms in various places in the specification are not necessarily referring to the same embodiment or example. Moreover, the particular features, structures, materials, or characteristics can be combined in any suitable manner in one or more embodiments or examples. Furthermore, the description given above of any particular aspects, embodiments, examples, or implementations are not intended to be complete descriptions of all conceivable aspects, embodiments, examples or implementations nor are they intended to be complete lists of features. Rather, the description is intended to highlight aspects, embodiments, examples and implementations of the present application. Also, many modifications, additions and substitutions can be made to the aspects, embodiments, examples and implementations described and concepts of the present application can be employed in combinations other than the ones described. Accordingly, the scope of the present application is not intended to be limited to the above descriptions but rather is intended to be defined by the following claims.
Claims
1. A configurable process logic configuration batch generation method, characterized in that, The method comprises the following steps: Obtaining design inputs of different design institutes and different process systems in a nuclear power DCS; Generating a parameter configuration table corresponding to the design inputs, wherein the parameter configuration table comprises functional parameters and logic configuration parameters; Selecting a standard function diagram corresponding to the design inputs based on the functional parameters, wherein the functional parameters comprise at least one of start-up time, stop time and device type; Generating a logic configuration diagram corresponding to the design inputs according to the logic configuration parameters and the standard function diagram; Generating a logic configuration diagram corresponding to the design inputs according to the logic configuration parameters and the standard function diagram comprises: Filling the logic configuration parameters of the design inputs into the corresponding standard function diagram, and generating the corresponding logic configuration diagram; The logic configuration parameters comprise actual device names, and generating the corresponding logic configuration diagram comprises: Replacing preset device names in the standard function diagram with actual device names; The standard function diagram comprises a parameter configuration interface, and generating the corresponding logic configuration diagram comprises: Judging whether the parameter configuration of the standard function diagram needs to be modified; If the parameter configuration needs to be modified, modifying the parameter configuration through the parameter configuration interface by manual or batch import; If the parameter configuration does not need to be modified, adopting the default parameter configuration of the standard function diagram; Establishing a one-to-one correspondence between actual device names filled in an engineering database and the standard function diagram by an automatic tool, and generating a logic configuration diagram.
2. The method of claim 1, wherein, Before selecting a standard function diagram corresponding to the design inputs based on the functional parameters, the method further comprises: Refining and arranging I&C logic drawings in the design inputs to generate the standard function diagram.
3. A configurable process logic configuration batch generation device, characterized by, The method comprises: An obtaining module, configured to obtain design inputs of different design institutes and different process systems in a nuclear power DCS; A conversion module, configured to generate a parameter configuration table corresponding to the design inputs, wherein the parameter configuration table comprises functional parameters and logic configuration parameters; An import module, configured to select a standard function diagram corresponding to the design inputs based on the functional parameters, wherein the functional parameters comprise at least one of start-up time, stop time and device type; A generation module, configured to generate a logic configuration diagram corresponding to the design inputs according to the logic configuration parameters and the standard function diagram; The generation module is configured to: Fill the logic configuration parameters of the design inputs into the corresponding standard function diagram, and generate the corresponding logic configuration diagram; The logic configuration parameters comprise actual device names, and the generation module is configured to: Replace preset device names in the standard function diagram with actual device names; The standard function diagram comprises a parameter configuration interface, and the generation module is configured to: Judge whether the parameter configuration of the standard function diagram needs to be modified; If the parameter configuration needs to be modified, modify the parameter configuration through the parameter configuration interface by manual or batch import; If the parameter configuration does not need to be modified, adopt the default parameter configuration of the standard function diagram; Establish a one-to-one correspondence between actual device names filled in an engineering database and the standard function diagram by an automatic tool, and generate a logic configuration diagram.
4. The apparatus of claim 3, wherein, The device further comprises: An integration module is configured to refine and organize the I&C logic drawings in the design input to generate the standard function diagrams before selecting the corresponding standard function diagrams for the design input based on the function parameters.
Citation Information
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Method for automatically converting functional diagram of digital instrument control system into configuration file
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