An instrument device management method, server, and system
By receiving the identification information of the mobile terminal to match the instrument model and configure communication parameters, the problem of multi-type instrument management is solved, and remote management and data acquisition of various instrument terminals is realized, thereby improving the user experience.
Patent Information
- Application Number
- CN202510632113.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-16
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2045-05-16
AI Technical Summary
The prior art cannot effectively manage multiple types of instruments, especially those that do not have wireless communication functions, resulting in limited management types and quantity.
By receiving the module and instrument identification information sent by the mobile terminal, matching the corresponding instrument model, and configuring communication parameters, the communication module and instrument terminal communicate wired to obtain instrument data.
Remote management of various types of instrument terminals is realized, ensuring that various instruments can bind corresponding communication modules, conduct wired communication and obtain data, simplifying the equipment management process and improving user experience.
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Figure CN120151378B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of instrument management, and particularly relates to a method, a server, and a system for managing equipment for instruments. Background Art
[0002] In industrial production, various types of instruments are deployed at the factory site. These various types of instruments can be used to monitor and control key parameters in the production process, such as temperature, pressure, flow rate, liquid level, etc. The normal operation and data accuracy of these instruments are crucial for ensuring production efficiency, product quality, and production safety.
[0003] In the related art, it is proposed to obtain on-site data collected by each instrument through wireless communication between an intelligent monitoring terminal and each instrument. This solution requires the instruments to use the same communication protocol and the instruments themselves to have wireless communication capabilities. However, due to the diverse types of instruments used in the current industrial field, different types of instruments may use different signal transmission types, and some instruments do not have wireless communication capabilities. Therefore, in the related art, the types of instruments that can be directly remotely managed are few and cannot be applied to the management of multi-type instruments. Summary of the Invention
[0004] In view of this, the present invention provides a method, a server, and a system for managing equipment for instruments to solve or partially solve the technical problem that the prior art cannot be applied to the management of multi-type instruments.
[0005] In a first aspect, the present invention provides a method for managing equipment for instruments, including: receiving module identification information of a communication module to be bound and instrument identification information of an instrument terminal sent by a mobile terminal; matching a corresponding instrument model based on the instrument identification information and sending the instrument model to the mobile terminal, where the instrument model includes at least one signal transmission type; receiving communication parameters configured by the mobile terminal based on the instrument model, and sending the communication parameters to the communication module to be bound, so that the communication module performs wired communication with the instrument terminal based on the communication parameters and obtains instrument data, where the communication parameters include the signal transmission type for the instrument terminal and the communication module to perform wired communication; receiving the instrument data sent by the communication module and sending the instrument data to the mobile terminal.
[0006] Optionally, receiving module identification information of a communication module to be bound and instrument identification information of an instrument terminal sent by a mobile terminal includes: receiving module identification information of a communication module to be bound sent by the mobile terminal; determining whether the communication module corresponding to the module identification information has been bound to an instrument terminal. If the communication module has not been bound to an instrument terminal, controlling the mobile terminal to enter a binding interface; receiving the instrument identification information of the instrument terminal to be bound input by the mobile terminal in the binding interface.
[0007] Optionally, the instrument identification information is the instrument serial number; correspondingly, matching the corresponding instrument model based on the instrument identification information includes: confirming the product main model of the instrument terminal based on the instrument serial number; matching the corresponding instrument model according to the product main model.
[0008] Optionally, confirming the product main model of the instrument terminal based on the instrument serial number includes: matching the corresponding material code based on the instrument serial number; confirming the product main model of the instrument terminal based on the material code.
[0009] Optionally, the instrument identification information is the product model; correspondingly, matching the corresponding instrument model based on the instrument identification information includes: confirming the product main model of the instrument terminal based on the product model; matching the corresponding instrument model according to the product main model.
[0010] Optionally, receiving the communication parameters configured by the mobile terminal based on the instrument model and sending the communication parameters to the communication module to be bound includes: receiving the communication parameters configured by the mobile terminal based on the instrument model and saving the communication parameters; sending a restart instruction to the communication module; sending the saved communication parameters to the communication module after the communication module restarts.
[0011] In a second aspect, the present invention provides a server, including: a memory and a processor, which are communicatively connected to each other. The memory stores computer instructions, and the processor executes the computer instructions to execute the instrument device management method according to any one of the first aspects of the present invention.
[0012] In a third aspect, the present invention provides an instrument device management system, including:
[0013] A communication module, connected to the corresponding instrument terminal, for performing wired communication with the instrument terminal and obtaining instrument data;
[0014] A mobile terminal, communicatively connected to the server, for sending the module identification information of the communication module to be bound and the instrument identification information of the instrument terminal to be bound to the server, and sending the communication parameters to the server based on the communication parameters configured by the instrument model returned by the server;
[0015] A server, communicatively connected to the communication module, for executing the instrument device management method according to any one of the first aspects of the present invention.
[0016] From the above technical solutions, it can be seen that the present invention has the following advantages:
[0017] The instrument device management method of the present invention receives the module identification information of the communication module to be bound and the instrument identification information of the instrument terminal to be bound, matches the corresponding instrument model based on the instrument identification information, and the user can, on the mobile terminal, send the configured communication parameters to the communication module to be bound based on the communication parameters configured by the instrument model. After the communication module and the instrument terminal are bound, the correct communication parameters can be obtained and configured based on the communication parameters, so that various types of instrument terminals can be bound to the corresponding communication modules, and the communication module can communicate with the instrument terminal by wire and obtain instrument data, thereby realizing the remote management of various types of instrument terminals. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for use in the description of the specific embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention, and those of ordinary skill in the art can obtain other drawings based on these drawings without creative efforts.
[0019] Figure 1 is a flowchart of the instrument device management method according to an embodiment of the present invention;
[0020] Figure 2 is a schematic structural diagram of the instrument device management system according to an embodiment of the present invention;
[0021] Figure 3 is a schematic diagram of signal interaction of the instrument device management system according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0022] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the drawings in the embodiments of the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts fall within the scope of protection of the present invention.
[0023] Currently, there are various types of instruments used in industrial sites, and the communication protocols they adopt are not completely the same, and some instruments do not have wireless communication functions. The instrument management methods in the related art are only applicable to remotely manage instruments that adopt specific communication protocols and have wireless communication functions, and the types and quantities of instruments that can be managed are relatively few.
[0024] In view of this, the embodiments of the present invention provide an instrument device management method that can manage various types of instruments in industrial sites.
[0025] According to an embodiment of the present invention, an embodiment of a method for managing instrumentation equipment is provided. It should be noted that the steps shown in the flowchart of the accompanying drawings can be executed in a computer system such as a set of computer-executable instructions, and although the logical order is shown in the flowchart, in some cases, the steps shown or described can be executed in a different order than here.
[0026] In an embodiment of the present invention, a method for managing instrumentation equipment is provided. The application server 300, in combination with Figure 1 and Figure 2 as shown, the process includes the following steps:
[0027] Step S101, receiving the module identification information of the communication module to be bound and the instrument identification information of the instrument terminal to be bound sent by the mobile terminal 200.
[0028] Specifically, the mobile terminal 200 includes a smart phone, a tablet computer, a smart wearable device, etc.
[0029] The instrument terminal 400 includes but is not limited to devices such as a flow meter, a level meter, a temperature meter, a pressure meter, a composition analyzer, etc. The instrument terminal 400 is set in a specific scenario, for example, set in an industrial scenario, and is used to collect various data in the industrial field, including but not limited to process parameters such as level / liquid level, temperature, pressure, flow, and composition.
[0030] The communication module 100 obtains the data collected by the instrument terminal 400 through wired communication. Exemplarily, the signal transmission type of the wired communication between the communication module 100 and the instrument terminal 400 can be 4-20 mA or RS485.
[0031] It should be understood that in the embodiment of the present invention, there are multiple communication modules 100 and instrument terminals 400, and one communication module 100 is correspondingly set on each instrument terminal 400. Each communication module 100 is provided with a corresponding module identification, and each instrument terminal 400 is also provided with a corresponding instrument identification. The module identification and the instrument identification are both unique, so that the module identification or the instrument identification can match the corresponding communication module 100 or instrument terminal 400. For example, both the module identification and the instrument identification adopt the serial number (Serial Number, SN) of the corresponding device.
[0032] Step S102, matching the corresponding instrument model based on the instrument identification information, and sending the instrument model to the mobile terminal 200, where the instrument model includes at least one signal transmission type.
[0033] Specifically, the instrument identification information is the instrument serial number or the instrument model.
[0034] In the background database of the server 300, an instrument model for each instrument terminal 400 is established in advance, and the corresponding relationship between the instrument model and the instrument identification information is maintained. For example, when each instrument terminal 400 is sold and shipped from the enterprise warehouse management system (Warehouse Management System, WMS), the background database stores the corresponding order code, customer code, and instrument serial number of the instrument terminal 400, and establishes an instrument model for the instrument terminal 400. Specifically, the server 300 background regularly maintains the corresponding relationship between the module identification information, the instrument identification information, and the corresponding material code. At the same time, for the communication module 100, the corresponding order code, customer code, and other information also need to be stored.
[0035] The instrument model includes the signal transmission type included in the corresponding instrument terminal 400. For different instrument terminals 400, the content of the instrument model is also different. For example, for instrument terminals 400 with multiple signal transmission types such as digital display meters and recorders, the corresponding instrument model includes 4-20 mA signal transmission type and RS485 signal transmission type. For instruments such as current collectors, the corresponding instrument model only has 4-20 mA signal transmission type.
[0036] Step S103: Receive the communication parameters configured by the mobile terminal 200 based on the instrument model, and send the communication parameters to the communication module 100 to be bound, so that the communication module 100 performs wired communication with the instrument terminal 400 based on the communication parameters and obtains instrument data. Among them, the communication parameters include the signal transmission type for the wired communication between the instrument terminal 400 and the communication module 100.
[0037] Specifically, after receiving the instrument model, the mobile terminal 200 enters the instrument configuration interface. The user configures the communication parameters in the instrument configuration interface.
[0038] Exemplarily, the instrument configuration interface includes contents such as "protocol selection", "instrument address", or "4-20 mA range", "instrument nickname", and "scene selection".
[0039] Among them, "protocol selection" is to select a signal transmission type from the instrument models sent by the server 300. For example, the instrument model of a digital display meter includes two options, 4-20 mA and RS485. The user selects one of them as the current signal transmission type according to the actual wiring.
[0040] The content of "instrument address" or "4 - 20mA range" is determined according to the current communication protocol. If the current signal transmission type is RS485 transmission mode, the instrument address is displayed, the 4 - 20mA range and unit are hidden, and the instrument address automatically obtains the default address of the selected protocol; if the current signal transmission type is 4 - 20mA communication protocol, the 4 - 20mA range is displayed, the instrument address is hidden, and continue to select the 4 - 20mA range.
[0041] In "instrument nickname", the user can name the bound instrument terminal 400 according to their own needs to distinguish each instrument terminal 400.
[0042] In "scene selection", the user can select the usage scenario of the current instrument terminal 400.
[0043] After the user configures the parameters, the communication parameters are sent to the server 300 through the mobile terminal 200.
[0044] Step S104, receive the instrument data sent by the communication module 100 and send the instrument data to the mobile terminal 200.
[0045] Specifically, after the communication module 100 receives the communication parameters, it obtains the communication signal type of the instrument terminal 400, changes the communication settings with the instrument terminal 400 according to the communication parameters, thus completing the adaptation with the instrument terminal 400, conducting wired communication with the instrument terminal 400, and obtaining the instrument data. And the instrument data is sent to the mobile terminal 200 through the server 300, and the mobile terminal 200 can display the collected data through the display screen to facilitate the management personnel to control the instrument terminal 400.
[0046] The instrument device management method of the embodiment of the present invention, by receiving the module identification information of the communication module 100 to be bound and the instrument identification information of the instrument terminal 400 to be bound sent by the mobile terminal 200, matching the corresponding instrument model based on the instrument identification information, and sending the instrument model to the mobile terminal 200, wherein the instrument model includes at least one signal transmission type, receiving the communication parameters configured by the mobile terminal 200 based on the instrument model, and sending the communication parameters to the communication module 100 to be bound, so that the communication module 100 is configured based on the communication parameters, thereby being able to conduct wired communication with the instrument terminal 400 and obtain the instrument data, and finally sending the instrument data sent by the communication module 100 to the mobile terminal 200. Based on the present invention, various types of instrument terminals 400 can be bound to the corresponding communication module 100. After the communication module 100 and the instrument terminal 400 are bound, the correct communication parameters can be obtained, and wired communication with the instrument terminal 400 can be conducted and the instrument data can be obtained, thereby realizing the remote management of various types of instrument terminals 400.
[0047] In some embodiments, in step S101, receiving the module identification information of the communication module 100 to be bound and the meter identification information of the meter terminal 400 to be bound sent by the mobile terminal 200, including:
[0048] Step S1011, receiving the module identification information of the communication module 100 to be bound sent by the mobile terminal 200.
[0049] Specifically, the module identification information is the module serial number. The input method of the module identification information can be barcode scanning input or manual input.
[0050] In an example, the module identification information is set on the communication module 100 in the form of a two-dimensional code, and the mobile terminal 200 scans the two-dimensional code on the communication module 100 to obtain the module identification information and sends it to the server 300.
[0051] Step S1012, determining whether the communication module corresponding to the module identification information has been bound to the meter terminal 400. If the communication module has not been bound to the meter terminal 400, controlling the mobile terminal 200 to enter the binding interface.
[0052] Specifically, all the module identification information of the communication modules 100 is stored in the background database of the server 300 in advance. After the server 300 determines that the module identification information belongs to the module identification information existing in the background database and the communication module 100 corresponding to the module identification information has not been bound to the meter terminal 400, the user interface of the mobile terminal 200 is jumped to the binding interface. If the server 300 cannot find the module identification information in the background database, an error message prompt is returned.
[0053] Step S1013, receiving the meter identification information of the meter terminal 400 to be bound input by the mobile terminal 200 in the binding interface.
[0054] Specifically, the meter identification information is the meter serial number. The input method of the meter identification information can be barcode scanning input or manual input.
[0055] For example, the user can scan the two-dimensional code on the meter terminal 400 through the mobile terminal 200 or find the meter serial number on the meter terminal 400 and manually input it.
[0056] After the mobile terminal 200 obtains the meter identification information, it sends the meter identification information to the server 300.
[0057] In the embodiment of the present invention, the server 300 determines whether the communication module 100 has been bound to the meter terminal 400, and intelligently guides the mobile terminal 200 to enter the binding interface. The user does not need to manually check the binding status of the communication module 100, and the system automatically guides the user to complete the binding operation, simplifying the operation process of device management and improving the user experience.
[0058] In some embodiments, the instrument identification information is the instrument serial number; correspondingly, in step S102, matching the corresponding instrument model based on the instrument identification information includes:
[0059] Step a1, confirming the main product model of the instrument terminal 400 based on the instrument serial number.
[0060] Among them, step a1 includes:
[0061] Matching the corresponding material code based on the instrument serial number; confirming the main product model of the instrument terminal 400 based on the material code.
[0062] Specifically, the corresponding relationship between the instrument serial number and the material code is maintained in the background database in advance, each instrument serial number corresponds to a material code, and the data in the background database is updated regularly.
[0063] Among them, the corresponding relationship between the instrument serial number and the material code can be obtained through the enterprise warehouse management system. In one example, the corresponding relationship between the instrument serial number and the material code is obtained from the enterprise warehouse management system at a fixed time every day, and the data in the database is updated to ensure data accuracy.
[0064] The prefix part before the material code "-" belongs to the main product model. The mobile terminal 200 obtains the corresponding material code according to the instrument serial number, and obtains the corresponding main product model through the prefix of the material code.
[0065] Step a2, matching the corresponding instrument model according to the main product model.
[0066] Specifically, the instrument models of each instrument main model are established in the database in advance, and the instrument models are matched according to the instrument main model after obtaining the instrument main model. One instrument model is established for each instrument main model, rather than one instrument model for each instrument terminal 400, which can reduce the number of instrument model settings.
[0067] In the embodiments of the present invention, by matching the material code with the instrument serial number and further obtaining the main product model, the corresponding relationship between the instrument serial number and the material code can be directly obtained from the enterprise warehouse management system, the data acquisition is convenient, and the instrument model is directly matched with the main product model, and there is no need to maintain the corresponding relationship between each instrument terminal 400 and the instrument model, which can reduce the data maintenance cost.
[0068] In some embodiments, the instrument identification information is the product model; correspondingly, in step S102, matching the corresponding instrument model based on the instrument identification information includes:
[0069] Step b1, confirming the main product model of the instrument terminal 400 based on the product model.
[0070] Step b2, match the corresponding instrument model according to the main product model.
[0071] Specifically, in addition to obtaining the instrument model based on the instrument serial number, it is also allowed to use the product model as the instrument identification information. The product model is directly marked on the instrument terminal 400, and the user obtains the product model through the instrument terminal 400.
[0072] The corresponding main product model can be obtained according to the product model. For example, if the product model is "WSU200", the corresponding main product model is "WSU".
[0073] Directly confirming the main product model based on the product model and obtaining the instrument model can eliminate the step of matching the material code and simplify the process of obtaining the instrument model. Moreover, in some cases, the product model may be easier to obtain or more representative. In this way, the device can be conveniently incorporated into the management system, expanding the scope of application of the management method for instrument devices.
[0074] In some embodiments, in step S103, receive the communication parameters configured by the mobile terminal 200 based on the instrument model and send the communication parameters to the communication module 100 to be bound, including:
[0075] Step S1031, receive the communication parameters configured by the mobile terminal 200 based on the instrument model and save the communication parameters.
[0076] Step S1032, send a restart instruction to the communication module 100.
[0077] Step S1033, send the saved communication parameters to the communication module 100 after the communication module 100 restarts.
[0078] Specifically, after the mobile terminal 200 configures the communication parameters of the instrument terminal 400 and the communication module 100 to be bound, it sends the communication parameters to the server 300. After the server 300 saves the communication parameters, it sends a restart instruction to the communication module 100. After the communication module 100 restarts, it sends a communication request to the server 300. When the communication module 100 initially establishes a communication connection with the server 300, the server 300 sends the communication parameters to the communication module 100. After receiving the communication parameters, the communication module 100 changes its own communication settings to adapt to the bound instrument terminal 400, so as to be able to obtain the acquisition data of the instrument terminal 400 through wired communication.
[0079] In the embodiment of the present invention, the parameters are saved after receiving the communication parameters configured by the mobile terminal 200 and sent after the communication module 100 restarts, which can solve the possible configuration errors or failures of the communication module 100 and enhance the stability of the system.
[0080] An embodiment of the present invention further provides a server 300, including: a memory and a processor, which are communicatively connected to each other. The memory stores computer instructions, and the processor executes the computer instructions to execute the instrument device management method in any of the above embodiments.
[0081] The processor may be a central processing unit, a network processor, or a combination thereof. Among them, the processor may further include a hardware chip. The above hardware chip may be an application-specific integrated circuit, a programmable logic device, or a combination thereof. The above programmable logic device may be a complex programmable logic device, a field programmable gate array, a general array logic, or any combination thereof.
[0082] Wherein, the memory stores instructions executable by at least one processor, so that at least one processor executes the method shown in the above embodiment.
[0083] The memory may include a program storage area and a data storage area. Among them, the program storage area may store an operating system and application programs required for at least one function; the data storage area may store data created according to the use of the mobile terminal 200, etc. In addition, the memory may include a high-speed random access memory, and may also include a non-transitory memory, such as at least one disk storage device, a flash memory device, or other non-transitory solid-state storage devices. In some alternative embodiments, the memory may optionally include a memory remotely set relative to the processor, and these remote memories may be connected to the mobile terminal 200 through a network. Examples of the above network include but are not limited to the Internet, an enterprise intranet, a local area network, a mobile communication network, and combinations thereof.
[0084] The memory may include a volatile memory, such as a random access memory; the memory may also include a non-volatile memory, such as a flash memory, a hard disk, or a solid-state drive; the memory may also include a combination of the above types of memories.
[0085] Combined Figure 2 and Figure 3 As shown, an embodiment of the present invention further provides an instrument device management system, including:
[0086] A communication module 100, connected to the corresponding instrument terminal 400, for performing wired communication with the instrument terminal 400 and obtaining instrument data;
[0087] A mobile terminal 200, communicatively connected to the server 300, for sending the module identification information of the communication module 100 to be bound and the instrument identification information of the instrument terminal 400 to be bound to the server 300, and based on the communication parameters configured by the instrument model returned by the server 300, sending the communication parameters to the server 300;
[0088] The server 300 is communicatively connected to the communication module 100 and is used to execute the instrument device management method in any of the above embodiments.
[0089] The usage process of the instrument device management system according to the embodiment of the present invention is as follows:
[0090] The user installs the communication module 100 on the instrument terminal 400 and wires the communication module 100 and the instrument terminal 400 based on the wired communication method of the instrument terminal 400;
[0091] When performing device binding, the user scans the QR code on the communication module 100 through the mobile terminal 200 to obtain the module identification information and uploads the module QR code to the server 300. After the server 300 confirms that the module identification information is correct, it instructs the mobile terminal 200 to enter the instrument binding window;
[0092] The user scans the code or manually enters the instrument serial number or instrument model on the label of the instrument terminal 400 through the mobile terminal 200 and sends the instrument serial number or instrument model to the server 300;
[0093] If the mobile terminal 200 sends an instrument serial number, the server 300 obtains the corresponding material code according to the instrument serial number, obtains the corresponding product main model through the material code prefix, and then obtains the instrument model according to the product main model. If successfully obtained, it instructs the mobile terminal 200 to enter the instrument configuration page. If the acquisition fails, it prompts "Unrecognizable, please contact the customer service!"; If the mobile terminal 200 sends an instrument model, the server 300 obtains the corresponding product main model according to the product model, and then obtains the instrument model according to the product main model. If successfully obtained, it instructs the mobile terminal 200 to enter the instrument configuration page. If the acquisition fails, it prompts "Unrecognizable, please contact the customer service!";
[0094] The user configures contents such as "protocol selection", "instrument address", or "4 - 20mA range", "instrument nickname", and "scene selection" in the instrument model through the mobile terminal 200, and sends the communication parameters to the server 300 after confirming the communication parameters;
[0095] After receiving the communication parameters, the server 300 sends the communication parameters to the communication module 100 and instructs the communication module 100 to restart;
[0096] After the communication module 100 is started up, it changes the communication settings with the instrument terminal 400 based on the communication parameters, thereby completing the adaptation with the instrument terminal 400 and completing the binding between the communication module 100 and the instrument terminal 400;
[0097] After binding, the communication module 100 and the meter terminal 400 conduct wired communication to obtain meter data, and send the meter data to the server 300, and the server 300 sends the meter data to the mobile terminal 200.
[0098] In the meter device management system according to the embodiment of the present invention, by receiving the module identification information of the communication module 100 to be bound and the meter identification information of the meter terminal 400 to be bound sent by the mobile terminal 200, matching the corresponding meter model based on the meter identification information, and sending the meter model to the mobile terminal 200, wherein the meter model includes at least one signal transmission type, receiving the communication parameters configured by the mobile terminal 200 based on the meter model, and sending the communication parameters to the communication module 100 to be bound, so that the communication module 100 is configured based on the communication parameters, so as to be able to conduct wired communication with the meter terminal 400 and obtain meter data, and finally sending the meter data sent by the communication module 100 to the mobile terminal 200. Based on the present invention, various types of meter terminals 400 can be bound to the corresponding communication module 100. After the communication module 100 and the meter terminal 400 are bound, correct communication parameters can be obtained, and wired communication with the meter terminal 400 can be conducted to obtain meter data, thereby realizing remote management of various types of meter terminals 400.
[0099] Although the embodiments of the present invention have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations fall within the scope defined by the appended claims.
Claims
1. A method for managing instrumentation equipment, characterized in that, Including: Receiving the module identification information of the communication module to be bound and the meter identification information of the meter terminal to be bound sent by the mobile terminal; Matching a corresponding meter model based on the meter identification information, and sending the meter model to the mobile terminal, where the meter model includes at least one signal transmission type; Receiving the communication parameters configured by the mobile terminal based on the meter model, and sending the communication parameters to the communication module to be bound, so that the communication module performs wired communication with the meter terminal based on the communication parameters and obtains meter data, where the communication parameters include the signal transmission type for the wired communication between the meter terminal and the communication module; Receiving the meter data sent by the communication module and sending the meter data to the mobile terminal.
2. The method for managing instrumentation equipment according to claim 1, wherein, The receiving the module identification information of the communication module to be bound and the meter identification information of the meter terminal to be bound sent by the mobile terminal includes: Receiving the module identification information of the communication module to be bound sent by the mobile terminal; Judging whether the communication module corresponding to the module identification information has been bound to a meter terminal. If the communication module has not been bound to a meter terminal, controlling the mobile terminal to enter the binding interface; Receiving the meter identification information of the meter terminal to be bound input by the mobile terminal in the binding interface.
3. The instrument device management method according to claim 1, wherein The meter identification information is the meter serial number; Correspondingly, the matching a corresponding meter model based on the meter identification information includes: Confirming the main product model of the meter terminal based on the meter serial number; Matching a corresponding meter model according to the main product model.
4. The instrument device management method according to claim 3, characterized in that, The confirming the main product model of the meter terminal based on the meter serial number includes: Matching a corresponding material code based on the meter serial number; Confirming the main product model of the meter terminal based on the material code.
5. The instrument device management method according to claim 1, wherein The meter identification information is the product model; Correspondingly, the matching a corresponding meter model based on the meter identification information includes: Confirming the main product model of the meter terminal based on the product model; Matching a corresponding meter model according to the main product model.
6. The instrument equipment management method according to claim 1, wherein, The receiving the communication parameters configured by the mobile terminal based on the meter model and sending the communication parameters to the communication module to be bound includes: Receiving the communication parameters configured by the mobile terminal based on the meter model and saving the communication parameters; Sending a restart instruction to the communication module; After the communication module restarts, sending the saved communication parameters to the communication module.
7. A server, characterized in that, Including: A memory and a processor, which are communicatively connected to each other. The memory stores computer instructions, and the processor executes the computer instructions to execute the meter device management method according to any one of claims 1 to 6.
8. An instrument device management system, characterized in that, Including: A communication module, connected to the corresponding meter terminal, for performing wired communication with the meter terminal and obtaining meter data; A mobile terminal, communicatively connected to a server, is configured to send the module identification information of the communication module to be bound and the meter identification information of the meter terminal to be bound to the server, and send the communication parameters based on the communication parameters configured for the meter model returned by the server to the server. The server, communicatively connected to the communication module, is configured to execute the meter device management method according to any one of claims 1 to 6.
Citation Information
Patent Citations
Method and device used for binding mobile terminal with intelligent household electrical appliance
CN105357629A
Control method and device for measuring instrument
CN110335369A