Laboratory equipment state monitoring method and system based on Internet of Things
By building digital twin models and bodies on cloud data platforms, combined with device information obtained by the Internet of Things, the problem of single data display in the existing technology and the need for professional interpretation is solved, and diversified display and universality of laboratory equipment status monitoring is achieved.
Patent Information
- Application Number
- CN202510473214.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-16
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2045-04-16
AI Technical Summary
In the state management of laboratory equipment, the data display method of existing cloud data platforms is single, and professional managers are required to determine the connection between status information and equipment, which affects the universality of the platform.
Obtain the appearance information, functional framework information and monitoring information of laboratory equipment through the Internet of Things, build a digital twin model on the data display body, build a digital twin, and use a human-computer interaction plug-in to display status information on the digital twin.
It provides a diverse display form of laboratory equipment status monitoring, reduces dependence on professional managers, and improves the universality and ease of use of cloud data platforms.
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Figure CN119984360A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of digital management of laboratory equipment, and in particular to a laboratory equipment status monitoring method and system based on the Internet of Things. Background Art
[0002] Laboratory equipment is an indispensable tool in research work, and it is necessary to ensure that the equipment is regularly inspected, calibrated and maintained. Laboratory equipment status management refers to the process of effectively managing and maintaining various scientific instruments, equipment and facilities in the laboratory. Its purpose is to ensure that the equipment is always in good operating condition, improve laboratory work efficiency, ensure the accuracy and reliability of experimental results, and extend the service life of the equipment.
[0003] At present, the process of managing laboratory equipment is mainly through manual maintenance and testing, and registering relevant data to follow up management. With the development of the current Internet of Things technology, various types of laboratory equipment are also managed uniformly through the Internet of Things, and managers can monitor the status information of laboratory equipment in real time on the cloud data platform. However, in the current cloud data platform, the data display method is relatively simple, and professional managers are required to determine the connection between status information and laboratory equipment, which affects the versatility of the cloud data platform. Summary of the invention
[0004] Based on this, it is necessary to provide a laboratory equipment status monitoring method and system based on the Internet of Things to address the shortcomings of the current cloud data platform, in which the data display method is relatively simple and requires professional managers to determine the connection between status information and laboratory equipment, which affects the versatility of the cloud data platform.
[0005] The present application embodiment provides a laboratory equipment status monitoring method based on the Internet of Things, comprising the steps of: Based on the Internet of Things, the appearance information, functional framework information and monitoring information of the laboratory equipment are obtained; wherein the appearance information is the appearance scanning information of the laboratory equipment, the functional framework information is the appearance scanning information of each functional module in the laboratory equipment; the monitoring information is the status monitoring information of the functional module; Constructing a first digital twin model on the first data display object according to the appearance information, and constructing a second digital twin model on the second data display object according to the functional framework information; Building a digital twin according to the first digital twin model and the second digital twin model; A status display identifier is generated according to the monitoring information, and the status display identifier is marked on the second digital twin model of the corresponding functional framework information according to the human-computer interaction plug-in.
[0006] The laboratory equipment status monitoring method based on the Internet of Things in the embodiment of the present application obtains the appearance information, functional framework information and monitoring information of the laboratory equipment based on the Internet of Things, constructs a first digital twin model based on the appearance information on the first data display body, and constructs a second digital twin model based on the functional framework information on the second data display body. A digital twin is built according to the first digital twin model and the second digital twin model, a status display identifier is generated according to the monitoring information, and the status display identifier is marked on the second digital twin model of the corresponding functional framework information according to the human-computer interaction plug-in. By visualizing the laboratory equipment as a digital twin and realizing a lightweight status display identifier display on the digital twin with a human-computer interaction plug-in, a display form and versatility of the status monitoring information of the laboratory equipment are provided.
[0007] As one of the optional embodiments, it also includes: The appearance information, functional framework information and monitoring information are stored according to a data processing model; wherein the data processing model includes a structured data body for storing the monitoring information and an unstructured data body for storing the appearance information and the functional framework information.
[0008] As one of the optional embodiments, the structured data body is stored based on a lightweight database.
[0009] As one of the optional embodiments, the process of constructing the first digital twin model on the first data display object according to the appearance information includes the steps of: A single visualization model is constructed on the first data display body according to the appearance information as the first digital twin model.
[0010] As one of the optional embodiments, the process of constructing the second digital twin model on the second data presentation body according to the functional framework information comprises the steps of: A data twin model including a first simulated dynamic interface is constructed on the second data display body according to the functional framework information as the second digital twin model.
[0011] As one of the optional embodiments, the process of constructing the second digital twin model on the second data presentation body according to the functional framework information further includes the steps of: Deploy a second simulated dynamic interface using the human-computer interaction plug-in on the second digital twin model.
[0012] As one of the optional embodiments, the process of constructing the second digital twin model on the second data presentation body according to the functional framework information further includes the steps of: Generate a display adjustment parameter according to the monitoring information; wherein the display adjustment parameter is used to adjust the display state of the second simulated dynamic interface.
[0013] As one of the optional embodiments, the method further includes the steps of: Human-computer interaction information is acquired and the status display mark is adjusted using the human-computer interaction plug-in.
[0014] The present application embodiment provides a laboratory equipment status monitoring device based on the Internet of Things, including: An information acquisition module, used to acquire appearance information, functional framework information and monitoring information of laboratory equipment based on the Internet of Things; wherein the appearance information is the appearance scan information of the laboratory equipment, the functional framework information is the appearance scan information of each functional module in the laboratory equipment; and the monitoring information is the status monitoring information of the functional module; A model construction module, configured to construct a first digital twin model on a first data display body according to the appearance information, and to construct a second digital twin model on a second data display body according to the functional framework information; A model combination module, used to build a digital twin according to the first digital twin model and the second digital twin model; A status display module is used to generate a status display identifier according to the monitoring information, and mark the status display identifier on the second digital twin model of the corresponding functional framework information according to the human-computer interaction plug-in.
[0015] The laboratory equipment status monitoring device based on the Internet of Things in the embodiment of the present application obtains the appearance information, functional framework information and monitoring information of the laboratory equipment based on the Internet of Things, constructs a first digital twin model based on the appearance information on the first data display body, and constructs a second digital twin model based on the functional framework information on the second data display body. A digital twin is built according to the first digital twin model and the second digital twin model, a status display mark is generated according to the monitoring information, and the status display mark is marked on the second digital twin model of the corresponding functional framework information according to the human-computer interaction plug-in. By visualizing the laboratory equipment as a digital twin and realizing a lightweight status display mark display on the digital twin with a human-computer interaction plug-in, a display form and versatility of the status monitoring information of the laboratory equipment are provided.
[0016] The present application embodiment provides a laboratory equipment status monitoring system based on the Internet of Things, including: The appearance scanning device is configured to scan the laboratory equipment to generate appearance information; and is also configured to scan each functional module in the laboratory equipment to generate functional framework information; A cloud data platform is configured to collect and monitor status monitoring information of the functional modules; The data display device is configured to execute the laboratory equipment status monitoring method based on the Internet of Things in any of the above embodiments.
[0017] The laboratory equipment status monitoring system based on the Internet of Things of the embodiment of the present application includes an appearance scanning device, a cloud data platform and a data display device. The data display device obtains the appearance information, functional framework information and monitoring information of the laboratory equipment based on the Internet of Things, constructs a first digital twin model based on the appearance information on the first data display body, and constructs a second digital twin model based on the functional framework information on the second data display body. A digital twin is built according to the first digital twin model and the second digital twin model, a status display mark is generated according to the monitoring information, and the status display mark is marked on the second digital twin model of the corresponding functional framework information according to the human-computer interaction plug-in. By visualizing the laboratory equipment as a digital twin, and realizing a lightweight status display mark display on the digital twin with a human-computer interaction plug-in, a display form and versatility of the status monitoring information of the laboratory equipment are provided. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 A flow chart of a laboratory equipment status monitoring method based on the Internet of Things according to an embodiment of an application; Figure 2 A flow chart of a laboratory equipment status monitoring method based on the Internet of Things according to a preferred embodiment; Figure 3 A schematic diagram for data storage and reading; Figure 4 A diagram of a laboratory equipment status monitoring device based on the Internet of Things according to an embodiment of an application; Figure 5 This is a module structure diagram of a laboratory equipment status monitoring system based on the Internet of Things according to an application embodiment. DETAILED DESCRIPTION
[0019] In order to better understand the purpose, technical solution and technical effect of the present invention, the present invention is further explained below in conjunction with the accompanying drawings and embodiments. At the same time, it is stated that the embodiments described below are only used to explain the present invention and are not used to limit the present invention.
[0020] The embodiment of the present application provides a laboratory equipment status monitoring method based on the Internet of Things.
[0021] Figure 1 This is a flow chart of a laboratory equipment status monitoring method based on the Internet of Things according to an embodiment of an application, such as Figure 1 As shown, a laboratory equipment status monitoring method based on the Internet of Things in an application embodiment includes steps S100 to S103: S100, acquiring appearance information, functional framework information and monitoring information of laboratory equipment based on the Internet of Things; wherein the appearance information is appearance scanning information of the laboratory equipment, the functional framework information is appearance scanning information of each functional module in the laboratory equipment; and the monitoring information is status monitoring information of the functional module; S101, constructing a first digital twin model on a first data display object according to the appearance information, and constructing a second digital twin model on a second data display object according to the functional framework information; S102, building a digital twin according to the first digital twin model and the second digital twin model; S103: Generate a status display identifier according to the monitoring information, and mark the status display identifier on the second digital twin model of the corresponding functional framework information according to the human-computer interaction plug-in.
[0022] In the embodiment of the present application, the laboratory equipment and the functional module are pre-scanned for appearance, and the appearance scan information is encapsulated into appearance information and functional framework information through data. Among them, the functional module is a submodule used to realize the function in the laboratory equipment, and each functional module forms the working state of the laboratory equipment according to the operation, and its state monitoring information is the display information of the cloud data platform, which is used to characterize the working state of the laboratory equipment.
[0023] The solution of the embodiment of the present application is based on the acquisition of status monitoring information from a cloud data platform, and presents the status monitoring information in the form of another display subject.
[0024] Among them, a first digital twin model is constructed on the first data display body according to the appearance information, and a second digital twin model is constructed on the second data display body according to the functional framework information. The first digital twin model and the second digital twin model are based on different data displays, which facilitates the differentiated processing of the first digital twin model and the second digital twin model. The data display body includes a first data display body and a second data display body, including a static data display body and a dynamic data display body. The static data display body includes pictures, three-dimensional static models, charts, etc., and the dynamic data display body includes a three-dimensional dynamic model, dynamic pictures, etc.
[0025] Preferably, the first digital twin model is based on a dynamic data representation body, and the second digital twin model is based on a static data representation body, so as to reduce the amount of data processing and avoid additional data processing of the appearance information of the laboratory equipment.
[0026] A digital twin is built based on the first digital twin model and the second digital twin model to fully display the laboratory equipment. The first digital twin model and the second digital twin model can be displayed at different layers to facilitate docking with the cloud data platform.
[0027] Preferably, the status display mark of the monitoring information includes images, charts, and text. Preferably, the status display mark is based on a human-computer interaction plug-in, dynamically processes the monitoring information, and generates a dynamic status display mark. The status display mark is marked on the corresponding second digital twin model to form a corresponding intuitive display effect.
[0028] Preferably, the display of the digital twin is based on the same display platform as the cloud data platform, such as an HTML web page. Based on the limitations of HTML web pages, the data volume and image processing capabilities of the digital twin are limited. Based on this, the embodiment of the present application expands the versatility of the solution through the preferred solution.
[0029] As a preferred embodiment, Figure 2 FIG. 1 is a flow chart of a laboratory equipment status monitoring method based on the Internet of Things according to a preferred embodiment. Figure 2 As shown, a preferred embodiment of the laboratory equipment status monitoring method based on the Internet of Things also includes step S104: S104, storing the appearance information, functional framework information and monitoring information according to a data processing model; wherein the data processing model includes a structured data body for storing the monitoring information and an unstructured data body for storing the appearance information and the functional framework information.
[0030] The monitoring information is structured data, and the appearance information and the functional framework information are unstructured data. Figure 3 As shown, the appearance information and the functional framework information are stored separately through multiple unstructured data bodies 10, which facilitates the quick and direct call of information of different structural types - wherein the data display body 11 retrieves data from the unstructured data body 10, and the human-computer interaction plug-in 21 retrieves monitoring information from the structured data body 20, thereby reducing the data interference between the first digital twin model and the second digital twin model, facilitating the display of digital twins on lightweight data display bodies (such as HTML), and reducing the amount of data processing.
[0031] Preferably, Figure 3 As shown, the structured data body is stored based on a lightweight database, such as a SQLite database or a MYSQL database. The MYSQL database is preferably used to store the structured data body, which facilitates multi-threaded operation of the data display body and the human-computer interaction plug-in, and realizes lightweight data processing, reducing the overall data processing volume.
[0032] The human-computer interaction plug-in uses tools and components that can be interactively experienced on a Web interface. Preferably, the human-computer interaction plug-in completes the writing of the status display logo through JavaScript, and uses HTML and CSS to realize the display of the status display logo.
[0033] like Figure 2 As shown, the process of constructing a first digital twin model on the first data display body according to the appearance information in step S101 includes step S200: S200: construct a single visualization model based on the appearance information on the first data display object as the first digital twin model.
[0034] Among them, the first digital twin model is a single visualization model, which does not have the ability of dynamic display and data interactive display, and is displayed as a bottom-level fixed display on the first data display body.
[0035] Preferably, if Figure 2 As shown, the process of constructing the second digital twin model on the second data display body according to the functional framework information in step S101 includes step S201: S201, constructing a data twin model including a first simulated dynamic interface on a second data display body according to the functional framework information as the second digital twin model.
[0036] On the basis of the first digital twin model that is fixedly displayed, another part of the digital twin body is simulated by the first simulation dynamic interface to simulate the appearance information of the functional module, including two-dimensional model simulation or three-dimensional model simulation, and dynamic actions are given to the two-dimensional model simulation or three-dimensional model simulation. Among them, the dynamic action is related to the monitoring information corresponding to the state display identifier, for example, the parameter change is displayed on the first simulation dynamic interface as the simulated parameter change of the second digital twin model.
[0037] Preferably, if Figure 2 As shown, the process of constructing the second digital twin model on the second data display body according to the functional framework information in step S101 includes step S202: S202, deploying a second simulated dynamic interface using the human-computer interaction plug-in on the second digital twin model.
[0038] The second simulated dynamic interface deployed by the human-computer interaction plug-in is used to adjust according to the display adjustment parameters. The data source and display layer of the first simulated dynamic interface and the second simulated dynamic interface are different. The first simulated dynamic interface is generated according to the preset information of the digital twin of the data display body, and the second simulated dynamic interface is generated by the human-computer interaction plug-in.
[0039] Preferably, Figure 2 As shown, the process of constructing the second digital twin model on the second data display body according to the functional framework information in step S101 includes step S203: S203, generating display adjustment parameters according to the monitoring information; wherein the display adjustment parameters are used to adjust the display state of the second simulated dynamic interface.
[0040] The monitoring information of the structured data body is introduced into the human-computer interaction plug-in, and data processing is performed to generate display adjustment parameters. The display state of the second simulation dynamic interface is adjusted according to the display adjustment parameters. Taking HTML and CSS as an example, the display state of the laboratory equipment function module represented by the display adjustment parameters is the "button is clicked" of the function module. The code in the second simulation dynamic interface is as follows: <!DOCTYPE html> <meta charset="UTF-8"> <meta name="viewport" content="width=device-width, initial-scale=1.0"> <title> Human-computer interaction example< / title> <style>.button {padding: 10px 20px;background-color: #007BFF;color: white;border: none;cursor: pointer;}.button:hover {background-color: #0056b3;}< / style> <button class="button" onclick="alert('按钮被点击了')"> Click Me< / button> On the basis of the digital twin, especially on the dynamic changes of the second digital twin model, the second simulated dynamic interface is used to further enrich the visual changes in the digital display of the functional module, that is, according to the user's interaction in the human-computer interaction plug-in, it is further displayed on the digital twin of the functional module.
[0041] Similarly, on the second digital twin model, the monitoring information generates a status display mark as a top-level layer, which is marked on the second digital twin model of the corresponding functional framework information. Through the status display mark, the user can intuitively determine the state changes of the second digital twin model, that is, the state information changes of the functional modules of the corresponding laboratory equipment, and intuitively realize status monitoring.
[0042] In the preferred embodiment of the present application, through the combination of structured data body, data display body and human-computer interaction plug-in, a lightweight digital twin display of laboratory equipment status monitoring is realized, which can adapt to the monitoring conditions of various laboratory equipment, and use lightweight data to calculate load and storage load, which is easy to deploy and maintain. Based on this, the status monitoring means of laboratory equipment are enriched.
[0043] The laboratory equipment status monitoring method based on the Internet of Things in the embodiment of the present application obtains the appearance information, functional framework information and monitoring information of the laboratory equipment based on the Internet of Things, constructs a first digital twin model based on the appearance information on the first data display body, and constructs a second digital twin model based on the functional framework information on the second data display body. A digital twin is built according to the first digital twin model and the second digital twin model, a status display identifier is generated according to the monitoring information, and the status display identifier is marked on the second digital twin model of the corresponding functional framework information according to the human-computer interaction plug-in. By visualizing the laboratory equipment as a digital twin and realizing a lightweight status display identifier display on the digital twin with a human-computer interaction plug-in, a display form and versatility of the status monitoring information of the laboratory equipment are provided.
[0044] The laboratory equipment status monitoring method based on the Internet of Things in the embodiment of the present application can be run on corresponding computer equipment and establish data interaction with a cloud data platform.
[0045] As the virtual execution subject of the computer device, Figure 4 FIG. 1 is a diagram of a laboratory equipment status monitoring device based on the Internet of Things according to an embodiment of an application, such as Figure 4 As shown, a laboratory equipment status monitoring device based on the Internet of Things of an application embodiment includes: The information acquisition module 100 is used to acquire the appearance information, functional framework information and monitoring information of the laboratory equipment based on the Internet of Things; wherein the appearance information is the appearance scanning information of the laboratory equipment, the functional framework information is the appearance scanning information of each functional module in the laboratory equipment; and the monitoring information is the status monitoring information of the functional module; A model construction module 101 is used to construct a first digital twin model on a first data display body according to the appearance information, and to construct a second digital twin model on a second data display body according to the functional framework information; A model combination module 102, configured to build a digital twin according to the first digital twin model and the second digital twin model; The status display module 103 is used to generate a status display identifier according to the monitoring information, and mark the status display identifier on the second digital twin model of the corresponding functional framework information according to the human-computer interaction plug-in.
[0046] The laboratory equipment status monitoring device based on the Internet of Things in the embodiment of the present application obtains the appearance information, functional framework information and monitoring information of the laboratory equipment based on the Internet of Things, constructs a first digital twin model based on the appearance information on the first data display body, and constructs a second digital twin model based on the functional framework information on the second data display body. A digital twin is built according to the first digital twin model and the second digital twin model, a status display mark is generated according to the monitoring information, and the status display mark is marked on the second digital twin model of the corresponding functional framework information according to the human-computer interaction plug-in. By visualizing the laboratory equipment as a digital twin and realizing a lightweight status display mark display on the digital twin with a human-computer interaction plug-in, a display form and versatility of the status monitoring information of the laboratory equipment are provided.
[0047] On the whole side of laboratory equipment, the embodiment of the present application provides a laboratory equipment status monitoring system based on the Internet of Things. Figure 5 FIG. 1 is a module structure diagram of a laboratory equipment status monitoring system based on the Internet of Things according to an embodiment of an application, such as Figure 5 As shown, a laboratory equipment status monitoring system based on the Internet of Things according to an embodiment of the application includes: The appearance scanning device 1000 is configured to scan the laboratory equipment and generate appearance information; it is also configured to scan each functional module in the laboratory equipment and generate functional framework information; The cloud data platform 1001 is configured to collect and monitor the status monitoring information of the functional modules; The data display device 1002 is configured to execute the laboratory equipment status monitoring method based on the Internet of Things in any of the above embodiments.
[0048] Before the virtual body of the laboratory equipment is constructed, the relevant personnel can scan the laboratory equipment and each functional module in the laboratory equipment with the appearance scanning device 1000. Taking the laboratory equipment as a pressure and temperature measurement and calibration instrument as an example, the functional modules include a pressure measuring instrument, a temperature measuring instrument and a data display instrument.
[0049] The data display device 1002 is preferably a smart device, including a computer, a laptop or a smart phone. Since the preferred embodiment of the present application can be implemented based on HTML, the data display device 1002 can be implemented using a mobile smart device, such as a smart phone. Through the human-computer interaction plug-in on the mobile side, the status monitoring of the laboratory equipment can be completed in a portable and intuitive manner.
[0050] The laboratory equipment status monitoring system based on the Internet of Things of the embodiment of the present application includes an appearance scanning device, a cloud data platform and a data display device. The data display device obtains the appearance information, functional framework information and monitoring information of the laboratory equipment based on the Internet of Things, constructs a first digital twin model based on the appearance information on the first data display body, and constructs a second digital twin model based on the functional framework information on the second data display body. A digital twin is built according to the first digital twin model and the second digital twin model, a status display mark is generated according to the monitoring information, and the status display mark is marked on the second digital twin model of the corresponding functional framework information according to the human-computer interaction plug-in. By visualizing the laboratory equipment as a digital twin, and realizing a lightweight status display mark display on the digital twin with a human-computer interaction plug-in, a display form and versatility of the status monitoring information of the laboratory equipment are provided.
[0051] The technical features of the above embodiments may be combined arbitrarily. To make the description concise, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0052] The above embodiments only express several implementation methods of the present invention, and the descriptions thereof are relatively specific and detailed, but they cannot be understood as limiting the scope of the invention patent. It should be pointed out that, for those of ordinary skill in the art, several variations and improvements can be made without departing from the concept of the present invention, and these all belong to the protection scope of the present invention. Therefore, the protection scope of the patent of the present invention shall be subject to the attached claims.
Claims
1. A laboratory equipment status monitoring method based on the Internet of Things, characterized in that: include: Based on the Internet of Things, the appearance information, functional framework information and monitoring information of the laboratory equipment are obtained; wherein the appearance information is the appearance scanning information of the laboratory equipment, the functional framework information is the appearance scanning information of each functional module in the laboratory equipment; the monitoring information is the status monitoring information of the functional module; Constructing a first digital twin model on the first data display object according to the appearance information, and constructing a second digital twin model on the second data display object according to the functional framework information; Building a digital twin according to the first digital twin model and the second digital twin model; A status display identifier is generated according to the monitoring information, and the status display identifier is marked on the second digital twin model of the corresponding functional framework information according to the human-computer interaction plug-in.
2. The method for monitoring laboratory equipment status based on the Internet of Things according to claim 1, characterized in that: Also includes: The appearance information, functional framework information and monitoring information are stored according to a data processing model; wherein the data processing model includes a structured data body for storing the monitoring information and an unstructured data body for storing the appearance information and the functional framework information.
3. The method for monitoring laboratory equipment status based on the Internet of Things according to claim 2, characterized in that: The structured data body is stored based on a lightweight database.
4. The method for monitoring laboratory equipment status based on the Internet of Things according to claim 1, characterized in that: The process of constructing a first digital twin model on a first data display object according to the appearance information comprises the steps of: A single visualization model is constructed on the first data display body according to the appearance information as the first digital twin model.
5. The method for monitoring laboratory equipment status based on the Internet of Things according to claim 1, characterized in that: The process of constructing the second digital twin model on the second data display body according to the functional framework information comprises the steps of: A data twin model including a first simulated dynamic interface is constructed on the second data display body according to the functional framework information as the second digital twin model.
6. The method for monitoring laboratory equipment status based on the Internet of Things according to claim 5, characterized in that: The process of constructing the second digital twin model on the second data display body according to the functional framework information further includes the steps of: Deploy a second simulated dynamic interface using the human-computer interaction plug-in on the second digital twin model.
7. The method for monitoring laboratory equipment status based on the Internet of Things according to claim 6, characterized in that: The process of constructing the second digital twin model on the second data display body according to the functional framework information further includes the steps of: Generate a display adjustment parameter according to the monitoring information; wherein the display adjustment parameter is used to adjust the display state of the second simulated dynamic interface.
8. The method for monitoring laboratory equipment status based on the Internet of Things according to claim 1, characterized in that: Also includes the steps: Human-computer interaction information is acquired and the status display mark is adjusted using the human-computer interaction plug-in.
9. A laboratory equipment status monitoring device based on the Internet of Things, characterized in that: include: An information acquisition module, used to acquire appearance information, functional framework information and monitoring information of laboratory equipment based on the Internet of Things; wherein the appearance information is the appearance scan information of the laboratory equipment, the functional framework information is the appearance scan information of each functional module in the laboratory equipment; and the monitoring information is the status monitoring information of the functional module; A model construction module, configured to construct a first digital twin model on a first data display body according to the appearance information, and to construct a second digital twin model on a second data display body according to the functional framework information; A model combination module, used to build a digital twin according to the first digital twin model and the second digital twin model; A status display module is used to generate a status display identifier according to the monitoring information, and mark the status display identifier on the second digital twin model of the corresponding functional framework information according to the human-computer interaction plug-in.
10. A laboratory equipment status monitoring system based on the Internet of Things, characterized in that: include: An appearance scanning device is configured to scan laboratory equipment to generate appearance information; It is also configured to scan various functional modules in the laboratory equipment and generate functional framework information; A cloud data platform is configured to collect and monitor status monitoring information of the functional modules; The data display device is configured to execute the laboratory equipment status monitoring method based on the Internet of Things as described in any one of claims 1 to 8.
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