A laboratory intelligent multi-control power supply control system and a control method thereof

CN116131578BActive Publication Date: 2026-09-29CHENGDU TME SOFTWARE
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Patent Information

Application Number
CN202310138299.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-02-20
Publication Date
2026-09-29
Estimated Expiration
2043-02-20

AI Technical Summary

Technical Problem

[0003]本发明的目的在于:提供一种实验室智能多控电源控制系统及其控制方法,解决现有实验设备通过人工手动控制导致实验设备供电管理不便的问题

Benefits of technology

[0017]1、本发明中,采用集中智能电源控制,由智能电源控制终端控制具体设备接入电源的开启和关闭,包括使用移动端(手机、平板等)控制,PC端控制,大大提升了对实验设备电源控制的便捷度。

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Abstract

The application discloses a laboratory intelligent multi-control power supply control system and a control method thereof, and belongs to the technical field of laboratory power supply control, and aims to provide a laboratory intelligent multi-control power supply control system and a control method thereof, and solves the problem that existing experimental equipment is inconvenient to manage power supply through manual control. The application adopts centralized intelligent power supply control, and the opening and closing of the power supply of specific equipment are controlled by an intelligent power supply control terminal, so that the convenience of power supply control of the experimental equipment is greatly improved. Meanwhile, the power consumption of the equipment is monitored, early warning is performed on the overloading of the power consumption of the equipment, and the power consumption safety of the equipment is protected. In addition, the history record of the power consumption of the connected equipment is retained, subsequent data analysis and mining are facilitated, a weighted distribution algorithm is adopted, and the utilization rate and service life of the equipment are improved. The application is suitable for a laboratory intelligent multi-control power supply control system and a control method thereof.
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Description

Technical Field

[0001] This invention belongs to the field of laboratory power control technology, specifically relating to a laboratory intelligent multi-control power control system and its control method. Background Technology

[0002] Laboratories are places for experiments and typically house a large number of experimental devices. Traditionally, laboratory equipment is powered by electrical control panels, requiring manual control to turn the power on and off. Due to the large number of devices, this manual control method leads to chaotic and inefficient power management, and also makes it impossible to statistically analyze equipment power load and utilization rates. Summary of the Invention

[0003] The purpose of this invention is to provide a laboratory intelligent multi-control power supply control system and its control method, which solves the problem of inconvenient power supply management of existing experimental equipment due to manual control.

[0004] The technical solution adopted in this invention is as follows:

[0005] A laboratory intelligent multi-control power supply control system includes a user client, which is signal-connected to a server cluster. The server cluster is signal-connected to several intelligent power control terminals, each of which is signal-connected to several intelligent power supply boxes. Each intelligent power supply box is electrically connected to several experimental devices.

[0006] Furthermore, the intelligent power control terminal includes a mobile phone terminal, a tablet terminal, and a PC terminal.

[0007] A control method for a laboratory intelligent multi-control power supply control system includes:

[0008] (1) After the user logs in and is authorized by the intelligent power control terminal, the power supply of the experimental equipment can be remotely controlled in batches to turn on and off. The edge computing algorithm is adopted, and the intelligent power control terminal deployed in each laboratory centrally processes the signals and commands of each intelligent power box.

[0009] (2) Users can authorize the physical switch of the experimental equipment to be enabled using the intelligent power control terminal, and can control the power supply of the experimental equipment even without using the intelligent power control terminal.

[0010] (3) Users use the intelligent power control terminal to make reservations for the use of experimental equipment. The experimental equipment is linked with the access control system to automatically turn on or off the power of the corresponding experimental equipment according to the user's reservation. When allocating experimental reservations, the equipment with low utilization rate is prioritized based on the historical usage data of the equipment, and unavailable equipment is avoided. The experimental equipment is allocated by weighted round-robin.

[0011] (4) Users monitor the power consumption of experimental equipment through the intelligent power control terminal. When the power consumption of experimental equipment is detected to be overloaded, an early warning is issued to the user. At the same time, in conjunction with the signal acquisition system, the relationship between different experimental behaviors and the power consumption of experimental equipment is analyzed, and the collected data is applied to reverse the experimental process of power consumption equipment through laboratory power consumption information.

[0012] (5) Users can set the experimental equipment to run at a time through the intelligent power control terminal. The experimental equipment can be turned on or off at a time to avoid damage caused by prolonged operation.

[0013] (6) The intelligent power control terminal keeps a historical record of the power usage of the connected experimental equipment, and performs data analysis and mining in the future. It adopts a weighted allocation algorithm for the experimental equipment to improve the equipment utilization and service life.

[0014] Furthermore, in step (1), the edge computing algorithm specifically involves: continuously collecting the status of the smart power box using the smart power control terminal, connecting to the server cluster using WebSocket, using a filtering algorithm to filter the raw data, storing it hierarchically, improving data transmission efficiency, reducing server cluster pressure, and enhancing user experience.

[0015] Furthermore, in step (4), the specific process of reverse-engineering the experimental process of the electrical equipment is as follows: monitor the power fluctuation signal of the experimental equipment, form a change curve according to the timeline, and at the same time, record the time node mark according to the experimental data to obtain the power consumption range of different stages of the same experiment, calculate the standard deviation of the same stage, exclude the occasional data with excessive fluctuations, and obtain the stage power consumption range value. If the power consumption of the experimental equipment exceeds the stage power consumption range value during the user's experiment, the intelligent control terminal will issue a reminder. After receiving the reminder, the experimenter will check the experimental process himself to improve the probability of experimental success.

[0016] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:

[0017] 1. In this invention, a centralized intelligent power supply control is adopted, in which the intelligent power supply control terminal controls the power supply of specific devices to be turned on and off, including control using mobile terminals (phones, tablets, etc.) and PC terminals, which greatly improves the convenience of power supply control for experimental equipment.

[0018] 2. In this invention, the power consumption of the equipment is monitored through an intelligent power control terminal, providing early warnings for situations such as overload, thus protecting the electrical safety of the equipment. For certain electrical devices, timed control can be used to prevent damage caused by prolonged on / off operation.

[0019] 3. In this invention, historical records of power usage by connected devices are maintained, facilitating subsequent data analysis and mining. A weighted allocation algorithm is used for the devices to improve utilization and extend their lifespan. Combined with a signal acquisition system, the relationship between different experimental behaviors and device power usage can be analyzed. Once a sufficient amount of data is collected, it can be used to infer the experimental progress of power-consuming equipment from laboratory power consumption information, reminding researchers to verify the experimental process and increasing the probability of experimental success. Attached Figure Description

[0020] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the embodiments will be briefly described below. It should be understood that the following drawings only show some embodiments of the present invention and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort, wherein:

[0021] Figure 1 This is a schematic diagram of the system of the present invention;

[0022] Figure 2 This is a data flow diagram of the present invention;

[0023] Figure 3 This is a timing diagram for the present invention. Detailed Implementation

[0024] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. The components of the embodiments of the present invention described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.

[0025] Therefore, the following detailed description of the embodiments of the invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the invention without inventive effort are within the scope of protection of the invention.

[0026] It should be noted that the labels and letters in the following figures represent similar items, therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.

[0027] In the description of this invention, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product of this invention is in use. They are only used for the purpose of simplifying the description of this invention and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention. In addition, the terms "first," "second," and "third," etc., are only used to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0028] Furthermore, terms such as "horizontal" and "vertical" do not imply that components must be absolutely horizontal or suspended, but rather that they can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical," and does not mean that the structure must be completely horizontal, but can be slightly tilted.

[0029] In the description of this invention, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.

[0030] A laboratory intelligent multi-control power supply control system includes a user client, which is signal-connected to a server cluster. The server cluster is signal-connected to several intelligent power control terminals, each of which is signal-connected to several intelligent power supply boxes. Each intelligent power supply box is electrically connected to several experimental devices.

[0031] Furthermore, the intelligent power control terminal includes a mobile phone terminal, a tablet terminal, and a PC terminal.

[0032] A control method for a laboratory intelligent multi-control power supply control system includes:

[0033] (1) After the user logs in and is authorized by the intelligent power control terminal, the power supply of the experimental equipment can be remotely controlled in batches to turn on and off. The edge computing algorithm is adopted, and the intelligent power control terminal deployed in each laboratory centrally processes the signals and commands of each intelligent power box.

[0034] (2) Users can authorize the physical switch of the experimental equipment to be enabled using the intelligent power control terminal, and can control the power supply of the experimental equipment even without using the intelligent power control terminal.

[0035] (3) Users use the intelligent power control terminal to make reservations for the use of experimental equipment. The experimental equipment is linked with the access control system to automatically turn on or off the power of the corresponding experimental equipment according to the user's reservation. When allocating experimental reservations, the equipment with low utilization rate is prioritized based on the historical usage data of the equipment, and unavailable equipment is avoided. The experimental equipment is allocated by weighted round-robin.

[0036] (4) Users monitor the power consumption of experimental equipment through the intelligent power control terminal. When the power consumption of experimental equipment is detected to be overloaded, an early warning is issued to the user. At the same time, in conjunction with the signal acquisition system, the relationship between different experimental behaviors and the power consumption of experimental equipment is analyzed, and the collected data is applied to reverse the experimental process of power consumption equipment through laboratory power consumption information.

[0037] (5) Users can set the experimental equipment to run at a time through the intelligent power control terminal. The experimental equipment can be turned on or off at a time to avoid damage caused by prolonged operation.

[0038] (6) The intelligent power control terminal keeps a historical record of the power usage of the connected experimental equipment, and performs data analysis and mining in the future. It adopts a weighted allocation algorithm for the experimental equipment to improve the equipment utilization and service life.

[0039] Furthermore, in step (1), the edge computing algorithm specifically involves: continuously collecting the status of the smart power box using the smart power control terminal, connecting to the server cluster using WebSocket, using a filtering algorithm to filter the raw data, storing it hierarchically, improving data transmission efficiency, reducing server cluster pressure, and enhancing user experience.

[0040] Furthermore, in step (4), the specific process of reverse-engineering the experimental process of the electrical equipment is as follows: monitor the power fluctuation signal of the experimental equipment, form a change curve according to the timeline, and at the same time, record the time node mark according to the experimental data to obtain the power consumption range of different stages of the same experiment, calculate the standard deviation of the same stage, exclude the occasional data with excessive fluctuations, and obtain the stage power consumption range value. If the power consumption of the experimental equipment exceeds the stage power consumption range value during the user's experiment, the intelligent control terminal will issue a reminder. After receiving the reminder, the experimenter will check the experimental process himself to improve the probability of experimental success.

[0041] In its implementation, this invention employs centralized intelligent power control. An intelligent power control terminal controls the on / off switching of power to specific devices, including control via mobile devices (phones, tablets, etc.) and PCs, significantly improving the convenience of power control for experimental equipment. Simultaneously, the intelligent power control terminal monitors equipment power consumption, providing early warnings of overload conditions and protecting equipment power safety. For certain devices, timed control can be implemented to prevent damage caused by prolonged on / off cycles. Furthermore, historical records of power usage by connected devices are maintained, facilitating subsequent data analysis and mining. A weighted allocation algorithm is used to improve equipment utilization and extend equipment lifespan. Combined with a signal acquisition system, the relationship between different experimental behaviors and equipment power consumption can be analyzed. Once a sufficient amount of data is collected, it can be used to infer the experimental progress of equipment using laboratory power consumption information, reminding researchers to verify the experimental process and increasing the probability of experimental success.

[0042] Example 1

[0043] A laboratory intelligent multi-control power supply control system includes a user client, which is signal-connected to a server cluster. The server cluster is signal-connected to several intelligent power control terminals, each of which is signal-connected to several intelligent power supply boxes. Each intelligent power supply box is electrically connected to several experimental devices.

[0044] Example 2

[0045] Based on Example 1, the intelligent power control terminal includes a mobile phone terminal, a tablet terminal, and a PC terminal.

[0046] Example 3

[0047] A control method for a laboratory intelligent multi-control power supply control system includes:

[0048] (1) After the user logs in and is authorized by the intelligent power control terminal, the power supply of the experimental equipment can be remotely controlled in batches to turn on and off. The edge computing algorithm is adopted, and the intelligent power control terminal deployed in each laboratory centrally processes the signals and commands of each intelligent power box.

[0049] (2) Users can authorize the physical switch of the experimental equipment to be enabled using the intelligent power control terminal, and can control the power supply of the experimental equipment even without using the intelligent power control terminal.

[0050] (3) Users use the intelligent power control terminal to make reservations for the use of experimental equipment. The experimental equipment is linked with the access control system to automatically turn on or off the power of the corresponding experimental equipment according to the user's reservation. When allocating experimental reservations, the equipment with low utilization rate is prioritized based on the historical usage data of the equipment, and unavailable equipment is avoided. The experimental equipment is allocated by weighted round-robin.

[0051] (4) Users monitor the power consumption of experimental equipment through the intelligent power control terminal. When the power consumption of experimental equipment is detected to be overloaded, an early warning is issued to the user. At the same time, in conjunction with the signal acquisition system, the relationship between different experimental behaviors and the power consumption of experimental equipment is analyzed, and the collected data is applied to reverse the experimental process of power consumption equipment through laboratory power consumption information.

[0052] (5) Users can set the experimental equipment to run at a time through the intelligent power control terminal. The experimental equipment can be turned on or off at a time to avoid damage caused by prolonged operation.

[0053] (6) The intelligent power control terminal keeps a historical record of the power usage of the connected experimental equipment, and performs data analysis and mining in the future. It adopts a weighted allocation algorithm for the experimental equipment to improve the equipment utilization and service life.

[0054] Example 4

[0055] Based on the above embodiments, in step (1), the edge computing algorithm is as follows: continuously collect the status of the smart power box using the smart power control terminal, connect to the server cluster using WebSocket, use a filtering algorithm to filter the raw data, store it in a hierarchical manner, improve data transmission efficiency, reduce the pressure on the server cluster, and enhance the user experience.

[0056] Example 5

[0057] Based on the above embodiments, the specific process of reverse-engineering the experimental process of the power equipment in step (4) is as follows: monitor the power fluctuation signal of the experimental equipment, form a change curve according to the timeline, and at the same time, record the time node mark according to the experimental data to obtain the power consumption range of different stages of the same experiment, calculate the standard deviation of the same stage, exclude the occasional data with excessive fluctuations, and obtain the stage power consumption range value. If the power consumption of the experimental equipment exceeds the stage power consumption range value during the user's experiment, the intelligent control terminal will issue a reminder. After receiving the reminder, the experimenter will check the experimental process himself to improve the probability of experimental success.

[0058] The above description constitutes an embodiment of the present invention. The foregoing descriptions are preferred embodiments of the present invention. Unless there is a clear contradiction or a prerequisite for a particular preferred embodiment, the preferred embodiments can be arbitrarily combined and used. The embodiments and specific parameters described are merely for clearly illustrating the verification process of the invention and are not intended to limit the scope of patent protection of the present invention. The scope of patent protection of the present invention is still determined by its claims. Similarly, any equivalent structural changes made based on the description and drawings of the present invention should also be included within the scope of protection of the present invention.

Claims

1. A control method for a laboratory intelligent multi-control power supply control system, characterized in that, The laboratory intelligent multi-control power supply control system includes a user client, which is signal-connected to a server cluster. The server cluster is signal-connected to several intelligent power supply control terminals, each of which is signal-connected to several intelligent power supply boxes. Each intelligent power supply box is electrically connected to several experimental devices. The intelligent power supply control terminals include mobile phones, tablets, and PCs. The method steps include: (1) After the user logs in and is authorized by the intelligent power control terminal, the power supply of the experimental equipment can be remotely controlled in batches to turn on and off. The edge computing algorithm is adopted, and the intelligent power control terminal deployed in each laboratory centrally processes the signals and commands of each intelligent power box. (2) Users can authorize the physical switch of the experimental equipment to be enabled using the intelligent power control terminal, and can control the power supply of the experimental equipment even without using the intelligent power control terminal; (3) Users use the intelligent power control terminal to make reservations for the use of experimental equipment. The experimental equipment is linked with the access control system to automatically turn on or off the power of the corresponding experimental equipment according to the user's reservation. When allocating experimental reservations, the equipment with low usage rate is allocated first according to the historical usage data of the equipment, and unavailable equipment is avoided. The experimental equipment is allocated by weighted round-robin. (4) Users monitor the power consumption of experimental equipment through the intelligent power control terminal. When the power consumption of experimental equipment is detected to be overloaded, an early warning is issued to the user. At the same time, in conjunction with the signal acquisition system, the relationship between different experimental behaviors and the power consumption of experimental equipment is analyzed, and the collected data is applied to reverse the experimental process of power consumption equipment through laboratory power consumption information. The specific process of reverse the experimental process of power consumption equipment is as follows: monitor the power fluctuation signal of experimental equipment, form a change curve according to the time line, and at the same time, according to the experimental data record time node mark, obtain the power consumption range of different stages of the same experiment, calculate the standard deviation of the same stage, exclude the occasional data with excessive fluctuation, and obtain the stage power consumption range value. If the power consumption of experimental equipment exceeds the stage power consumption range value during the user's experiment, the intelligent control terminal will issue a reminder. After receiving the reminder, the experimenter will check the experimental process himself to improve the probability of experimental success. (5) Users can set the experimental equipment to run on a timer via the intelligent power control terminal. The experimental equipment can be turned on or off at set times to avoid damage caused by prolonged on / off operation. (6) The intelligent power control terminal keeps a historical record of the power usage of the connected experimental equipment, and performs data analysis and mining in the future. It adopts a weighted allocation algorithm for the experimental equipment to improve the equipment utilization and service life.

2. The control method of the laboratory intelligent multi-control power supply control system according to claim 1, characterized in that, In step (1), the edge computing algorithm specifically involves: continuously collecting the status of the smart power box using the smart power control terminal, connecting to the server cluster using WebSocket, filtering the raw data using a filtering algorithm, storing it hierarchically, improving data transmission efficiency, reducing the pressure on the server cluster, and enhancing the user experience.

Citation Information

Patent Citations

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