A method for providing a user optimized laboratory environment

By receiving user and laboratory information, controlling laboratory equipment, and providing real-time guidance, the problem of frequent laboratory accidents has been solved, and the laboratory environment has been optimized and safety improved.

CN113973504BActive Publication Date: 2026-01-02GT SCIEN CO LTD
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Patent Information

Application Number
CN202080017739.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Priority Date
2020-05-15
Filing Date
2020-05-27
Publication Date
2026-01-02
Estimated Expiration
2040-05-27

AI Technical Summary

Technical Problem

In the prior art, although Material Safety Data Sheets (MSDS) are provided, laboratory accidents still occur frequently, and a system is needed to optimize the laboratory environment to prevent accidents from happening.

Method used

By receiving user location and experimental information, the system acquires information about laboratory equipment and the environment from sensors, providing experimental guidance and controlling laboratory equipment, including reagent cabinets, smart tables, hazardous gas purification devices, and fume hoods, to regulate air quality and temperature.

Benefits of technology

It effectively prevents laboratory accidents, optimizes the laboratory environment, and improves user safety and health by providing accurate experimental guidance through real-time monitoring and prediction of laboratory conditions.

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Abstract

A method for providing a user optimized laboratory environment is provided. The method includes receiving user location information and user experiment information from a user terminal, receiving location information of laboratory equipment and internal environment information of a laboratory from a plurality of sensors, providing experiment guide information to a user according to the user location information, the user experiment information, the location information of laboratory equipment, and the internal environment information of the laboratory, and controlling the laboratory equipment according to the user location information, the user experiment information, the location information of laboratory equipment, and the internal environment information of the laboratory.
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Description

TECHNICAL FIELD

[0001] The present application relates to a method for providing a user-optimized laboratory environment. BACKGROUND

[0002] Recently, as the interest in environmental, health and safety (EHS) is growing in Korea and even in the world, relevant regulations are also tightening. Accordingly, research and technology development at the policy level are accelerating through the enforcement and revision of laws and regulations related to laboratories and occupational safety and health.

[0003] Although a material safety data sheet (MSDS) is provided in order to prevent accidents caused by industrial hazardous substances and to be able to respond quickly to accidents, accidents still occur frequently. Therefore, it is necessary to establish a specialized occupational safety and health data collection and processing system.

[0004] The above description is only for the background to help understand the technical spirit of the present application, and thus cannot be understood as a content corresponding to the related art known to a person skilled in the art to which the present application pertains. SUMMARY

[0005] The present application aims to provide a method for providing a user-optimized laboratory environment, which prevents accidents in a user laboratory.

[0006] According to an aspect of the present application, there is provided a method for providing a user-optimized laboratory environment, including receiving user location information and user experiment information from a user terminal, receiving location information of laboratory equipment and internal environment information of a laboratory from a plurality of sensors, providing experiment guidance information to a user according to the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory, and controlling the laboratory equipment based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory.

[0007] The receiving of the user experiment information from the user terminal can include receiving user safety level information and information about reagents used for the experiment by the user from the user terminal.

[0008] The receiving of the location information of the laboratory equipment from the plurality of sensors can include receiving location information of laboratory equipment including a reagent cabinet, a smart table, a harmful gas purification device, a fume hood, and a conditioning device from the plurality of sensors.

[0009] The receiving of the internal environment information of the laboratory from the plurality of sensors can include receiving information about air quality inside the laboratory from the plurality of sensors, including concentration of harmful gas generated inside the laboratory, concentration of high-risk and high-volatility harmful gas, and laboratory temperature information.

[0010] The providing of the experiment guidance information to the user based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory can include determining whether the user is located in the laboratory according to the user location information, and providing the user with real-time obtained internal environment information of the laboratory and predicted internal environment information of the laboratory during the experiment according to the user experiment information and the internal environment information of the laboratory.

[0011] The providing of the experiment guidance information to the user based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory can include determining whether the user is located in the laboratory according to the user location information, and providing the user with a material safety data sheet of a reagent used by the user according to the user experiment information, and providing the user with experiment guidance information for performing an experiment generating a high-risk group of harmful gases in a fume hood.

[0012] The providing of the experiment guidance information to the user based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory can include providing the user terminal with experiment guidance information according to the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory.

[0013] The providing of the experiment guidance information to the user based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory can include providing the user terminal with experiment guidance information according to the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory.

[0014] The controlling of the laboratory equipment based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory can include controlling laboratory equipment including a harmful gas purification device, a fume hood, and a conditioning device based on laboratory internal environment information predicted according to the user experiment information and the internal environment information of the laboratory during the experiment, and adjusting air quality in the laboratory and a temperature of the laboratory.

[0015] The controlling the laboratory equipment based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory can include determining whether an experiment generating a high-risk group of harmful gas is performed in a fume hood according to the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory, controlling laboratory equipment including a harmful gas purification device, the fume hood, and a conditioning device according to the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory, and adjusting air quality in the laboratory and a temperature of the laboratory.

[0016] The controlling the laboratory equipment based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory can include determining whether an experiment generating a high-risk group of harmful gas is performed in a fume hood according to the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory, controlling laboratory equipment including a harmful gas purification device, the fume hood, and a conditioning device according to the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory, and adjusting air quality in the laboratory and a temperature of the laboratory.

[0017] The controlling the laboratory equipment based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory can include controlling a locking device of a reagent cabinet in the laboratory according to information about reagents used by the user for the experiment, and adjusting an access area of the user in the reagent cabinet.

[0018] According to another aspect of the present application, there is provided a method of providing a user with an optimized laboratory environment, including receiving user experiment information from a user terminal, retrieving reference experiment information corresponding to the user experiment information from a memory, receiving internal environment information of a laboratory from a plurality of sensors, and providing experiment guidance information to the user according to the user experiment information, the reference experiment information, and the internal environment information of the laboratory, including internal environment information of the laboratory acquired in real time and internal environment information of the laboratory predicted for each time period during the experiment.

[0019] The reference experiment information can be experiment information previously performed using the same reagents as reagents used by the user for the experiment, and the reference experiment information can be accumulated as the experiment is continuously performed.

[0020] The providing of the real-time acquired internal environment information of the laboratory and the internal environment information of the laboratory predicted at each time period during the experiment to the user based on the user experiment information, the reference experiment information and the internal environment information of the laboratory can include: analyzing the similarity between the reference experiment information and the user experiment information; and calculating and providing the internal environment information of the laboratory predicted at each time period during the experiment according to the previous internal environment information of the laboratory related to the reference experiment information and the real-time internal environment information of the laboratory.

[0021] The internal environment information of the laboratory predicted at each time period during the experiment is derived by analyzing the similarity between the reagent information contained in the user experiment information and the reagent information contained in the reference experiment information, applying the similarity to the internal environment information of the laboratory related to the reference experiment information, and then correcting the internal environment information of the laboratory by using the real-time internal environment information of the laboratory. BRIEF DESCRIPTION OF DRAWINGS

[0022] The above and other objects, features and advantages of the present application will become more apparent to those of ordinary skill in the art by describing in detail exemplary embodiments thereof with reference to the attached drawings in which:

[0023] Figure 1 is a schematic configuration diagram illustrating a system for providing a user-optimized laboratory environment according to an embodiment of the present application;

[0024] Figure 2 is a schematic diagram illustrating a configuration of a laboratory device according to an embodiment of the present application; Figure 1

[0025] Figure 3 is a flowchart illustrating a method for providing a user-optimized laboratory environment according to an embodiment of the present application;

[0026] Figure 4 is a flowchart illustrating a method for providing a user-optimized laboratory environment according to another embodiment of the present application. DETAILED DESCRIPTION

[0027] For the purpose of explanation, numerous specific details are set forth in the following description in order to provide a thorough understanding of the various embodiments. It will be apparent, however, to one skilled in the art that the various embodiments can be practiced without these specific details or with an equivalent arrangement. In other instances, well-known structures and devices are shown in block diagram form in order to avoid unnecessary obscuring of the various embodiments.

[0028] ​In the drawings, the size or relative size of layers, films, panels, regions, etc., can be exaggerated for clarity. Like reference numerals designate like elements throughout.

[0029] In this specification, when a part is referred to as being "connected" to another part, it is understood that it can be "directly connected" or "indirectly connected" via another part. However, when a part is referred to as being "directly connected" to another part, it will mean that there is no other element between the part and the other part. When the terms "at least one of X, Y and Z" and "at least one selected from the group consisting of X, Y and Z" are used, it is understood that one X, one Y, one Z, or a combination of any two or more of X, Y and Z (for example, XYZ, XYY, YZ and ZZ) are included. Here, the term "and / or" includes any one or all possible combinations of the components.

[0030] Although terms such as first, second, etc. can be used in this document to describe various elements, components, regions, layers and / or parts, such elements, components, regions, layers and / or parts are not limited by these terms. These terms are used to distinguish one element, component, region, layer and / or part from another element, component, region, layer and / or part. Thus, a first element, component, region, layer and / or part in one embodiment can be referred to as a second element, component, region, layer and / or part in another embodiment.

[0031] As shown, for ease of description, spatially relative terms such as "below", "beneath", "lower", "above", "upper" and the like can be used herein for describing the relationship of one element or feature to another element or feature as illustrated in the drawings. This is merely to indicate the relative position of the components in the drawings, and does not indicate absolute positions. For example, when the device in the drawings is turned over, the element or feature described as "below" or "beneath" other elements or features will be oriented "above" the other elements or features. Thus, in one embodiment, the term "below" can include upward and downward orientations. In addition, the device can be oriented in other ways (e.g., rotated 90 degrees or other orientations), and such spatially relative terms herein are interpreted accordingly.

[0032] The terms used herein are merely used to describe specific embodiments and are not intended to limit the present application. Throughout the specification, when a part "includes" a component, it means that another component can also be included without excluding the other component, unless otherwise defined. Unless otherwise defined, all terms used herein are the same as those commonly understood by those skilled in the art to which the present application pertains.

[0033] Figure 1 is a schematic configuration diagram showing a system for providing a user-optimized laboratory environment according to an embodiment of the present application.

[0034] Referring to Figure 1 The system 20 for providing a user-optimized laboratory environment includes a communication module 210, a processor 220, and a memory 230, which are connected to the user terminal 10, the sensor 30, and the laboratory equipment 40 through a network and transmit or receive all data and information required for providing a user-optimized laboratory environment to or from the user terminal 10, the sensor 30, and the laboratory equipment 40. In an embodiment, the system 20 for providing a user-optimized laboratory environment can include only the communication module 210 and the processor 220.

[0035] Although a mobile communication terminal connected to a network and capable of transmitting or receiving data is described as a representative example of the user terminal 10, the user terminal 10 is not limited to a mobile communication terminal, but can include any information communication device and include one of various terminals such as a multimedia terminal, a wired / wireless terminal, a fixed-type terminal, an Internet protocol (IP) terminal, etc. In addition, the user terminal 10 can include a mobile terminal having various mobile communication specifications such as a mobile phone, a smartphone, a desktop computer, a tablet personal computer (PC), a notebook computer, a virtual reality (VR) device, an augmented reality (AR) device, a netbook, a portable multimedia player (PMP), a mobile Internet device (MID), a server, an information communication device, etc.

[0036] As the network, various types of communication networks can be used, and for example, wireless communication methods such as wireless local area network (WLAN), Bluetooth, Wi-Fi, WiBro, worldwide interoperability for microwave access (WiMAX), high speed downlink packet access (HSDPA), etc. or wired communication methods such as Ethernet, x digital subscriber line (xDSL, asymmetric digital subscriber line (ADSL), very high speed digital subscriber loop (VDSL)), hybrid fiber coaxial cable (HFC), fiber to the curb (FTTC), fiber to the home (FTTH), etc. can be used. Meanwhile, the network is not limited to the above-described communication methods, but can include any type of communication method that is widely known or to be developed in the future in addition to the above-described communication methods. In an embodiment, the user terminal 10 and the system 20 for providing a user-optimized laboratory environment can transmit or receive data to or from each other through short-range wireless communication, for example, Bluetooth, a radio frequency (RF) wireless method, serial communication such as inter-integrated circuit (I 2 C), etc.

[0037] The sensor 30 includes a plurality of sensors that detect an internal environment of the laboratory and transmit information about the internal environment of the laboratory to the system 20 to provide a user-optimized laboratory environment. In an embodiment, the sensor 30 can include a temperature sensor, a humidity sensor, a gas sensor, a flow rate sensor, a total volatile organic compound (TVOC) concentration sensor, and a global positioning system (GPS) sensor. In an embodiment, the sensor 30 can be embedded in the laboratory equipment 40.

[0038] The laboratory equipment 40 is controlled by the system 20 that provides a user-optimized laboratory environment to provide a user with an optimized laboratory environment. In an embodiment, the laboratory equipment 40 can include a reagent cabinet, a smart table, a harmful gas purification device, a fume hood, and a conditioning device.

[0039] The system 20 that provides a user-optimized laboratory environment includes a communication module 210 for communicating with the user terminal 10, the sensor 30, and the laboratory equipment 40 through a network, a processor 220, and a memory 230 for storing reference experiment information.

[0040] The communication module 210 is connected to the user terminal 10, the sensor 30, and the laboratory equipment 40 through a network to transmit or receive all data and information required to provide a user-optimized laboratory environment. In an embodiment, the communication module 210 can include at least one of a mobile communication module, a wireless Internet module, and a short-range communication module.

[0041] The processor 220 receives user location information and user experiment information from the user terminal 10, receives location information of the laboratory equipment and internal environment information of the laboratory from the sensor 30, and then provides experiment guidance information to the user through the communication module 210 according to the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory. In an embodiment, the processor 220 can provide the experiment guidance information to the user terminal 10. In another embodiment, the processor 220 can provide the experiment guidance information to the laboratory equipment 40. In addition, the processor 220 controls the laboratory equipment 40 according to the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory.

[0042] The memory 230 is configured to store all data and information required to provide a user-optimized laboratory environment. In an embodiment, the memory 230 can be configured to store reference experiment information.

[0043] Figure 2 is a schematic view illustrating a configuration of a laboratory equipment in a laboratory according to an embodiment of the present application. Figure 1

[0044] Reference Figure 2 ​, the laboratory equipment 40 can include a reagent cabinet 410, a smart table 420, a harmful gas purification device 430, a fume hood 440, and a conditioning device 450.

[0045] The reagent cabinet 410 is a device for storing reagents required for experiments. The system 20 for providing a user-optimized laboratory environment can control a locking device of the reagent cabinet 410 or adjust an access area in the reagent cabinet 410.

[0046] The smart table 420 is a device in which a user mainly performs experiments, and can include a display. In an embodiment, experiment guide information can be provided to the user through the display of the smart table 420.

[0047] The harmful gas purification device 430 is a device for purifying harmful gases detected by a sensor in a laboratory using a filter, and can be controlled by the system 20 for providing a user-optimized laboratory environment.

[0048] The fume hood 440 is a device for protecting a user from exposure to volatile chemicals, and provides protection functions against fire, chemical reactions, odors, and leaks, and discharges dust, smoke, and harmful gases in a laboratory. In an embodiment, the fume hood 440 can be controlled by the system 20 for providing a user-optimized laboratory environment.

[0049] The conditioning device 450 is a device for conditioning air quality in a laboratory, and can include an air conditioning device and a ventilation system. In an embodiment, the conditioning device 450 can be controlled by the system 20 for providing a user-optimized laboratory environment.

[0050] Figure 3 is a flowchart illustrating a method for providing a user-optimized laboratory environment according to an embodiment of the present application.

[0051] Referring to Figure 3 The system for providing a user-optimized laboratory environment receives user location information and user experiment information from a user terminal (S10). In an embodiment, the system for providing a user-optimized laboratory environment can receive user safety level information and information about reagents used by a user for experiments from a user terminal.

[0052] The system for providing a user-optimized laboratory environment receives location information of laboratory equipment and internal environment information of a laboratory from a plurality of sensors (S20). In an embodiment, the system for providing a user-optimized laboratory environment can receive location information of laboratory equipment including a reagent cabinet, a smart table, a harmful gas purification device, a fume hood, and a conditioning device from a plurality of sensors. In another embodiment, the system for providing a user-optimized laboratory environment can receive information about air quality inside a laboratory, including concentrations of harmful gases generated inside the laboratory and concentrations of high-risk and highly volatile harmful gases, and laboratory temperature information, from a plurality of sensors.

[0053] The system for providing a user with an optimized laboratory environment provides experiment guidance information to the user based on user location information, user experiment information, location information of laboratory equipment, and internal environment information of the laboratory (S30). In an embodiment, the system for providing a user with an optimized laboratory environment can determine whether the user is located in the laboratory based on the user location information, and provide the user with internal environment information of the laboratory acquired in real time and internal environment information of the laboratory predicted during an experiment based on the user experiment information and the internal environment information of the laboratory. In another embodiment, the system for providing a user with an optimized laboratory environment can determine whether the user is located in the laboratory based on the user location information, provide the user with a material safety data sheet of a reagent used by the user based on the user experiment information, and provide experiment guidance information so that an experiment generating a high-risk group of harmful gases is performed in a fume hood.

[0054] According to an embodiment of the present application, the system for providing a user with an optimized laboratory environment can provide experiment guidance information to a user terminal based on user location information, user experiment information, location information of laboratory equipment, and internal environment information of the laboratory. In an embodiment, the system for providing a user with an optimized laboratory environment can provide experiment guidance information through a display of a smart desk in the laboratory based on user location information, user experiment information, location information of laboratory equipment, and internal environment information of the laboratory.

[0055] The system for providing a user with an optimized laboratory environment controls laboratory equipment based on user location information, user experiment information, location information of laboratory equipment, and internal environment information of the laboratory (S40). In an embodiment, the system for providing a user with an optimized laboratory environment can control laboratory equipment including a harmful gas purification device, a fume hood, and a conditioning device based on internal environment information of the laboratory predicted during an experiment based on user experiment information and internal environment information of the laboratory, to adjust air quality in the laboratory and a temperature of the laboratory. In an embodiment, the system for providing a user with an optimized laboratory environment can determine whether an experiment generating a high-risk group of harmful gases is performed in a fume hood based on user location information, user experiment information, location information of laboratory equipment, and internal environment information of the laboratory, and can control laboratory equipment including a harmful gas purification device, a fume hood, and a conditioning device based on user location information, user experiment information, location information of laboratory equipment, and internal environment information of the laboratory, to adjust air quality in the laboratory and a temperature of the laboratory.

[0056] According to an embodiment of the present application, a system for providing a user with an optimized laboratory environment can determine whether an experiment that generates a high-risk group of harmful gases is performed in a fume hood using user location information and location information of the fume hood, and can control laboratory equipment including a harmful gas purifying device, a fume hood, and a conditioning device based on internal environment information of the laboratory to adjust air quality and temperature in the laboratory. In an embodiment, the system for providing a user with an optimized laboratory environment can control a locking device of a reagent cabinet in the laboratory based on information about reagents used by the user for an experiment to adjust an access area of the user in the reagent cabinet.

[0057] Figure 4 FIG. 1 is a flowchart illustrating a method for providing a user with an optimized laboratory environment according to another embodiment of the present application.

[0058] Referring to Figure 4 , a system for providing a user with an optimized laboratory environment receives user experiment information from a user terminal (S100) and retrieves reference experiment information corresponding to the user experiment information from a storage (S200). In an embodiment, the reference experiment information is information about an experiment that was previously performed using the same reagents as those used by the user for the present experiment, and can be accumulated as the present experiment is continuously performed.

[0059] The system for providing a user with an optimized laboratory environment receives internal environment information of the laboratory from a plurality of sensors (S300), and provides the user with experiment guidance information including internal environment information of the laboratory that is acquired in real time and internal environment information of the laboratory that is predicted for each time period during the experiment based on the user experiment information, the reference experiment information, and the internal environment information of the laboratory (S400). In an embodiment, the system for providing a user with an optimized laboratory environment can analyze similarity between the reference experiment information and the user experiment information, and calculate and provide internal environment information of the laboratory that is predicted for each time period during the experiment based on previous internal environment information of the laboratory related to the reference experiment information and real-time internal environment information of the laboratory. In an embodiment, by analyzing similarity between reagent information included in the user experiment information and reagent information included in the reference experiment information, applying the similarity to previous internal environment information of the laboratory related to the reference experiment information, and then correcting internal environment information of the laboratory using real-time internal environment information of the laboratory, internal environment information of the laboratory that is predicted for each time period during the experiment can be derived.

[0060] According to an embodiment of the present application as described above, a method for providing a user with an optimized laboratory environment according to an embodiment of the present application can prevent accidents in a user's laboratory by controlling laboratory equipment based on user information and laboratory environment information. Furthermore, by providing the user with internal environment information of the laboratory that is predicted during the experiment, the user's laboratory safety and health activities can be contributed to.

[0061] While the application has been described with reference to particular details of construction, specific embodiments and specific examples, it is not intended that these details limit the application, which can be practiced with variations understood to be within the scope of the application. It is intended that the application encompass all such variations as fall within the scope of the appended claims.

[0062] Accordingly, the spirit and scope of the application are not to be limited by the specific details and embodiments described herein, but are to be given to the full scope of the appended claims and their equivalents.

Claims

1. A method for providing a user with an optimized laboratory environment, the method comprising: receiving user location information and user experiment information from a user terminal; determining whether the user is in a laboratory based on the user location information; receiving location information of laboratory equipment and internal environment information of the laboratory from a plurality of sensors; generating experiment guidance information to the user based on the user location information, the user experiment information, the location information of laboratory equipment, and the internal environment information of the laboratory; and controlling the laboratory equipment based on the user location information, the user experiment information, the location information of laboratory equipment, and the internal environment information of the laboratory, wherein the laboratory equipment comprises at least one of a reagent cabinet, a smart table, a hazardous gas purification device, a fume hood for protecting the user from exposure to volatile chemicals, and a conditioning device, wherein the experiment guidance information comprises a material safety data sheet of a reagent used by the user, and wherein the experiment guidance information is generated to instruct the experiment in the fume hood when a high-risk group of hazardous gases is generated in the experiment based on the user experiment information. The receiving of the user experiment information from the user terminal comprises:

2. The method of claim 1, wherein, receiving user safety level information and information about a reagent used by the user for the experiment from the user terminal. The receiving of the internal environment information of the laboratory from the plurality of sensors comprises:

3. The method of claim 1, wherein, receiving information about air quality inside the laboratory from the plurality of sensors, including concentration of hazardous gases generated inside the laboratory, concentration of high-risk and high-volatility hazardous gases, and laboratory temperature information. The generating of the experiment guidance information to the user based on the user location information, the user experiment information, the location information of laboratory equipment, and the internal environment information of the laboratory comprises:

4. The method of claim 1, wherein, providing the user with real-time obtained internal environment information of the laboratory and predicted internal environment information of the laboratory during the experiment based on the user experiment information and the internal environment information of the laboratory. The generating of the experiment guidance information to the user based on the user location information, the user experiment information, the location information of laboratory equipment, and the internal environment information of the laboratory comprises:

5. The method of claim 1, wherein, providing the user with the material safety data sheet of the reagent used by the user based on the user experiment information; and providing the user with the experiment guidance information so as to perform the experiment generating the high-risk group of hazardous gases in the fume hood. The generating of the experiment guidance information to the user based on the user location information, the user experiment information, the location information of laboratory equipment, and the internal environment information of the laboratory comprises:

6. The method of claim 1, wherein, providing the user terminal with experiment guidance information based on the user location information, the user experiment information, the location information of laboratory equipment, and the internal environment information of the laboratory. ​ 7. The method of claim 1, wherein, generating experiment guidance information to the user based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory, including: providing experiment guidance information through a display of the smart table in the laboratory based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory.

8. The method of claim 1, wherein, controlling the laboratory equipment based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory, including: controlling the laboratory equipment including the harmful gas purification device, the fume hood, and the conditioning equipment based on the internal environment information of the laboratory predicted based on the user experiment information and the internal environment information of the laboratory during the experiment; and adjusting the air quality in the laboratory and the temperature of the laboratory.

9. The method of claim 1, wherein, controlling the laboratory equipment based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory, including: determining whether the experiment generating the high-risk group harmful gas is performed in the fume hood based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory equipment; controlling the laboratory equipment including the harmful gas purification device, the fume hood, and the conditioning equipment based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory; and adjusting the air quality in the laboratory and the temperature of the laboratory.

10. The method of claim 1, wherein, controlling the laboratory equipment based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory, including: determining whether the experiment generating the high-risk group harmful gas is performed in the fume hood using the user location information and the location information of the fume hood; controlling the laboratory equipment including the harmful gas purification device, the fume hood, and the conditioning equipment based on the internal environment information of the laboratory; and adjusting the air quality in the laboratory and the temperature of the laboratory.

11. The method of claim 1, wherein, controlling the laboratory equipment based on the user location information, the user experiment information, the location information of the laboratory equipment, and the internal environment information of the laboratory, including: controlling a locking device of the reagent cabinet in the laboratory based on information about reagents used by the user for the experiment; and adjusting the access area of the user in the reagent cabinet.

Citation Information

Patent Citations

  • Intelligent monitoring system for laboratory environment

    CN108153212A