Monitoring method and system of liquid cooling server and electronic equipment
By using the camera device and processing center for automated monitoring in the liquid-cooled server system, the problems of inefficient monitoring and poor sealing in the prior art are solved, and more efficient, safe and stable system operation is achieved.
Patent Information
- Application Number
- CN202510298471.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-13
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2045-03-13
AI Technical Summary
In the existing liquid-cooled server system, transparent windows and simple sensors are relied on for monitoring, which is inefficient, increases the work burden of operation and maintenance personnel, and has the problem of poor sealing.
The image of the target area is obtained by using the camera device, and the processing center analyzes it to judge the abnormal situation of the server and the coolant to realize automated monitoring.
It improves monitoring efficiency, reduces the work burden of operation and maintenance personnel, enhances the operating safety and stability of the system, reduces labor costs, and ensures data accuracy and real-timeness.
Smart Images

Figure CN120162216A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of liquid-cooled servers, and particularly relates to a monitoring method, system, and electronic device for liquid-cooled servers. Background Art
[0002] In recent years, with the rapid development of information technology, the demand for data centers has been increasing day by day. To meet the requirements of high-performance computing and big data processing, the traditional air-cooling method is gradually unable to adapt to the large amount of heat generated by high-density servers. Due to its high efficiency and low energy consumption, liquid-cooling technology has been widely used in the field of data centers. Especially the immersion liquid-cooling system, by completely immersing the servers in the coolant, realizes efficient thermal management and significantly improves the stability and reliability of the system. However, this closed cooling method also brings new challenges, and how to monitor the running state of the servers in real time has become an urgent problem to be solved.
[0003] In the existing immersion liquid-cooling systems in data centers, a common practice is to embed transparent glass or acrylic windows in the cabinets so that operation and maintenance personnel can directly observe the running conditions of the servers and the state of the coolant. These windows are usually located at key positions of the cabinets, such as the front door, side panels, etc., through which the working indicator lights of the servers and the basic flow conditions of the coolant can be visually seen. In addition, some advanced liquid-cooling systems are also equipped with simple sensors for monitoring parameters such as temperature and pressure, and display them to the operation and maintenance personnel through a local display. Although this method can meet the daily operation and maintenance needs to a certain extent, there are still many deficiencies in actual applications. First of all, the design of the transparent windows increases the complexity of the cabinet structure, not only increasing the manufacturing cost, but also possibly causing poor sealing due to material incompatibility, thus affecting the operation safety and stability of the liquid-cooled cabinet; secondly, the method relying on manual observation is inefficient, especially in large data centers, where operation and maintenance personnel need to frequently patrol multiple cabinets, which greatly increases the work burden. It can be seen that the immersion liquid-cooling systems in related technologies have the problem of low monitoring efficiency. Summary of the Invention
[0004] To solve the above technical problems, this application provides a monitoring method, system, and electronic device for liquid-cooled servers.
[0005] In a first aspect, the present application provides a monitoring method for a liquid-cooled server, including: obtaining a target image within a target area through an imaging device and transmitting the target image to a processing center, where the target image includes a server, an immersion cavity, and a coolant. The immersion cavity is filled with the coolant, the server is arranged to be immersed in the coolant, the immersion cavity is wrapped by a cabinet main body, and the imaging device is arranged at the top of a preset side surface of the immersion cavity; the processing center analyzes the target image to determine whether there is an abnormality in the target object, where the target object includes the server and the coolant.
[0006] By adopting the above technical solution, the imaging device is installed at the top of the preset side surface of the immersion cavity, which can comprehensively cover the target area, does not rely on manual observation, reduces the workload of operation and maintenance personnel, and especially in a large data center, greatly improves the monitoring efficiency; through image analysis, the processing center can timely detect abnormalities of the server and the coolant, such as the status of the server fault light, temperature exceeding the standard, etc., avoiding sealing problems caused by incompatible transparent window materials, enhancing the operation safety and stability of the system; the automated monitoring system replaces the traditional manual inspection, reduces the labor cost, and at the same time ensures the accuracy and real-time nature of the data, helps to better manage and maintain the efficient operation of the data center, improves the monitoring efficiency, and achieves the purpose of real-time monitoring of the liquid-cooled server and its coolant.
[0007] Optionally, the processing center analyzes the target image to determine whether there is an abnormality in the target object, including: the processing center analyzes the target image to obtain an analysis result, where the analysis result includes the status information of the server, the liquid level information of the coolant, and the height information of the server; the processing center determines whether there is an abnormality in the server according to the status information of the server, and the processing center determines whether there is an abnormality in the coolant according to the liquid level information of the coolant and the height information of the server.
[0008] By adopting the above technical solution, the processing center analyzes the target image to obtain the status information of the server, so as to accurately determine whether the server is in a normal working state; the processing center also uses the data in the target image to extract the liquid level information of the coolant and the height information of the server, and then determines whether there is an abnormality in the coolant; the monitoring method provided by this technical solution effectively improves the operation safety and reliability of the liquid-cooled system in the data center, reduces the operation and maintenance cost, and improves the work efficiency.
[0009] Optionally, the processing center determines whether there is an abnormality in the coolant according to the liquid level information of the coolant and the height information of the server, including: the processing center determines the height difference between the liquid level information of the coolant and the height information of the server; when the height difference is less than a preset height threshold, the processing center determines that there is an abnormality in the coolant.
[0010] By adopting the above technical solution, it is possible to accurately determine whether there is an abnormality in the coolant. Specifically, the processing center analyzes the target image to obtain the liquid level information of the coolant and the height information of the server, and calculates the height difference between the two. If the height difference is less than the preset height threshold, it is determined that there is an abnormality in the coolant. This process ensures that the liquid level of the coolant is within the normal range, avoiding problems such as a decrease in cooling effect or server damage caused by too low a liquid level, thereby improving the reliability and safety of the system.
[0011] Optionally, the processing center determines whether there is an abnormality in the server according to the status information of the server, including at least one of the following: when the fault lamp information of the server is in a preset state, it is determined that the server has a fault, where the status information of the server includes the fault lamp information; when it is determined according to the first temperature information of the server that the temperature of the server is greater than the first temperature threshold, it is determined that the server has an abnormality, where the first temperature information is used to represent the temperature information of a preset area inside the server, and the status information of the server includes the temperature information of the server.
[0012] By adopting the above technical solution, when the fault lamp of the server is in a preset state, the processing center can promptly identify that the server has a fault, so as to quickly respond and take measures, improving the reliability and maintenance efficiency of the system; by monitoring the temperature of a preset area inside the server and comparing it with the first temperature threshold, the processing center can quickly determine that the server has an abnormality when the server temperature exceeds the normal range, avoiding hardware damage or performance degradation caused by high temperature, and further enhancing the stability and safety of the system. This technical solution can achieve the purpose of real-time monitoring and anomaly detection of the liquid-cooled server.
[0013] Optionally, after the processing center analyzes the target image to obtain an analysis result, the above method further includes: transmitting the analysis result to the display screen to instruct the display screen to display the status information of the server, the liquid level information of the coolant, and the height information of the server; and when it is determined that there is an abnormality in the server or the coolant, the processing center controls the display screen to display the abnormality information.
[0014] By adopting the above technical solutions, it is possible to realize real-time monitoring of the operating status of the liquid-cooled server and the condition of the coolant, and display the relevant information on the display screen in a timely manner. Specifically: after the processing center analyzes the target image, it can extract the status information of the server and display it to the operation and maintenance personnel in real time through the display screen, enabling them to quickly understand the specific operating conditions of the server; the processing center can also obtain the liquid level information of the coolant and the height information of the server, and display them on the screen to help the operation and maintenance personnel accurately master the distribution of the coolant and the location of the server, ensuring the normal operation of the liquid-cooled system; when the processing center detects an abnormality in the server or the coolant, it will immediately control the display screen to display the corresponding abnormality information to alert the operation and maintenance personnel so as to take necessary maintenance measures and improve the reliability and security of the system.
[0015] Optionally, the above method further includes: determining whether the coolant is abnormal according to the second temperature information of the coolant, where the analysis result further includes the second temperature information; and adjusting the flow rate of the coolant in the case of determining that the coolant is abnormal.
[0016] By adopting the above technical solutions, the method can monitor the temperature change of the coolant in real time and judge whether the coolant is abnormal according to the second temperature information. Once it is detected that the temperature of the coolant exceeds the normal range, the system will automatically adjust the flow rate of the coolant to ensure that the coolant is in the best working state, thereby improving the stability and reliability of the system. Specifically, by adding the functions of dynamic monitoring and adaptive adjustment of the coolant temperature, the method effectively solves the problem of performance degradation caused by the temperature fluctuation of the coolant in the traditional liquid-cooled system, and further improves the operation efficiency and security of the data center.
[0017] In the second aspect of the present application, there is also provided a monitoring system for a liquid-cooled server for performing the method of any one of the foregoing, including: a cabinet main body, a submersion cavity, a server, a camera device and a processing center, where the cabinet main body is used to enclose the submersion cavity, and the submersion cavity is filled with a coolant; the server is arranged to be immersed in the coolant; the camera device is arranged at the top of a preset side of the submersion cavity, and the camera device is used to obtain a target image in a preset area and transmit the target image to the processing center; the processing center analyzes the target image to judge whether the target object is abnormal, where the target image includes the server, the submersion cavity and the coolant, and the target object includes the server and the coolant.
[0018] By adopting the above technical solution, the imaging device is installed at the top of a preset side surface of the immersion cavity, and can continuously acquire images within the target area and transmit them to the processing center. This can ensure that the operation and maintenance personnel can always understand the situation of the server and the coolant, and improve the monitoring efficiency. Compared with the traditional manual observation method, this system reduces the workload of the operation and maintenance personnel through automated image analysis and processing. Especially in large data centers, the inspection frequency and workload are significantly reduced. It avoids the structural complexity and poor sealing problems brought by using transparent windows, and improves the operation safety and stability of the system. The processing center can obtain the status information of the server, the liquid level information of the coolant and the height information through analyzing the target image, so as to comprehensively judge whether there is any abnormality. This multi-dimensional detection mechanism improves the reliability and accuracy of the system.
[0019] Optionally, a display screen is provided on the outer surface of the cabinet body, and the display screen is communicatively connected to the processing center. The processing center is used to analyze the target image to obtain an analysis result, where the analysis result includes the status information of the server, the liquid level information of the coolant and the height information of the server. The processing center is also used to determine whether the server is abnormal according to the status information of the server, and determine whether the coolant is abnormal according to the liquid level information of the coolant and the height information of the server. The display screen is used to display the liquid level information of the coolant, the height information of the server, the status information of the server and the target image, and when it is determined that the server is abnormal or the coolant is abnormal, the processing center controls the display screen to display abnormal information.
[0020] By adopting the above technical solution, it is possible to realize real-time monitoring of the operating status of the liquid-cooled server and the situation of the coolant. Specifically: the processing center analyzes the target image, extracts the status information of the server, the liquid level information of the coolant and the height information of the server, so as to comprehensively grasp the current situation of the server and the coolant. By judging the status information of the server to determine whether the server is running normally, it is ensured that potential problems can be discovered and handled in a timely manner. By comparing the liquid level information of the coolant and the height information of the server, it is judged whether the coolant is abnormal. The display screen displays the status information of the server, the liquid level information of the coolant and the height information of the server in real time, which is convenient for the operation and maintenance personnel to intuitively understand the system status. When it is detected that the server or the coolant is abnormal, the processing center will immediately control the display screen to display abnormal information, quickly notify the operation and maintenance personnel to take corresponding measures, and improve the reliability and safety of the system.
[0021] Optionally, the above system further includes: a backup camera and an operation and maintenance management module. The backup camera is used to capture a backup image of a preset area and transmit the backup image to the processing center. When the target image does not meet the preset conditions, the processing center analyzes the backup image to determine whether the target object is abnormal; the processing center sends the abnormal information to the operation and maintenance management module, and the operation and maintenance management module generates a target operation and maintenance dispatch order based on the abnormal information and pushes the target operation and maintenance dispatch order to the target intelligent terminal. The abnormal information includes information indicating that the server is abnormal or information indicating that the coolant is abnormal.
[0022] By adopting the above technical solution, the backup camera can provide an alternative image data source when the target image of the main camera does not meet the preset conditions, ensuring continuous monitoring of the status of the server and the coolant even when the main camera fails, and improving the fault tolerance of the system; the processing center analyzes the backup image to determine whether the target object is abnormal and sends the abnormal information to the operation and maintenance management module. This process has a high degree of automation, reduces the need for manual intervention, and improves the abnormal response speed; the operation and maintenance management module automatically generates a target operation and maintenance dispatch order based on the received abnormal information and pushes it to the designated intelligent terminal, enabling the operation and maintenance personnel to obtain specific information about the abnormal situation in a timely manner and quickly take measures for repair or adjustment, reducing the fault handling time and enhancing the operation stability of the data center. This technical solution not only enhances the robustness of the system but also significantly improves the operation and maintenance efficiency and the speed of fault handling, and is suitable for the intelligent management and maintenance of large-scale data centers.
[0023] In the third aspect of the present application, an electronic device is further provided, including a memory and a processor. A computer program is stored on the memory, and when the processor executes the program, the method steps of any one of the above are implemented.
[0024] In the fourth aspect of the present application, a computer-readable storage medium is further provided. The computer-readable storage medium stores instructions, and when the instructions are executed, the method steps of any one of the above are executed.
[0025] In summary, one or more technical solutions provided in the present application have at least the following technical effects or advantages: 1. The automated monitoring system replaces the traditional manual inspection, reduces the labor cost, and at the same time ensures the accuracy and real-time nature of the data, contributing to better management and maintenance of the efficient operation of the data center, achieving the effect of improving the monitoring efficiency; 2. Avoids the sealing problems caused by the incompatibility of the transparent window material, enhancing the operation safety and stability of the system; 3. Effectively improves the operation safety and reliability of the liquid cooling system in the data center, reduces the operation and maintenance cost, and improves the work efficiency; 4. It can achieve real-time monitoring of the operating status of the liquid-cooled server and the condition of the coolant, and display relevant information on the display screen in a timely manner to remind the operation and maintenance personnel; 5. By adding the functions of dynamic monitoring and adaptive adjustment of the coolant temperature, it effectively solves the problem of performance degradation caused by coolant temperature fluctuations in traditional liquid cooling systems, and further improves the operation efficiency and security of the data center. Description of the Drawings
[0026] Figure 1 is a flowchart of a monitoring method for a liquid-cooled server provided by an embodiment of the present application; Figure 2 is a framework diagram of a monitoring system for a liquid-cooled server provided by an embodiment of the present application; Figure 3 is an example diagram of an immersion liquid-cooled cabinet provided by an embodiment of the present application; Figure 4 is a schematic structural diagram of an electronic device disclosed in an embodiment of the present application.
[0027] Description of the reference numerals: 400 - electronic device; 401 - processor; 402 - communication bus; 403 - user interface; 404 - network interface; 405 - memory. Detailed Embodiments
[0028] In order to enable those skilled in the art to better understand the technical solutions in this specification, the technical solutions in the embodiments of this specification will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of this specification. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all of the embodiments.
[0029] In the description of the embodiments of the present application, words such as "for example" or "for illustration" are used to represent examples, illustrations or explanations. Any embodiment or design solution described as "for example" or "for illustration" in the embodiments of the present application should not be construed as being more preferred or having more advantages than other embodiments or design solutions. Exactly speaking, the use of words such as "for example" or "for illustration" is intended to present relevant concepts in a specific manner.
[0030] In the description of the embodiments of the present application, the meaning of the term "a plurality" refers to two or more. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance or implicitly indicating the technical features indicated. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. The terms "include", "comprise", "have" and their variants all mean "including but not limited to", unless otherwise specifically emphasized in other ways.
[0031] The following will describe embodiments of the present application with reference to the accompanying drawings. Figures 1-4 Describe embodiments of the present application.
[0032] The present application provides a monitoring method for a liquid-cooled server. Referring to Figure 1 , Figure 1 FIG. is a flowchart of a monitoring method for a liquid-cooled server provided by an embodiment of the present application. The method includes: Step S101: Obtain a target image within a target area through an imaging device and transmit the target image to a processing center. Among them, the target image includes a server, an immersion cavity, and a coolant. The immersion cavity is filled with the coolant. The server is arranged to be immersed in the coolant. The immersion cavity is wrapped by a cabinet body. The imaging device is arranged at the top of a preset side of the immersion cavity; Step S102: The processing center analyzes the target image to determine whether there is an abnormality in the target object. Among them, the target object includes the server and the coolant.
[0033] Through the above steps, the imaging device is installed at the top of the preset side of the immersion cavity, which can comprehensively cover the target area, without relying on manual observation, reducing the workload of operation and maintenance personnel. Especially in large data centers, the monitoring efficiency is greatly improved; through image analysis, the processing center can timely detect abnormalities of the server and the coolant, such as the status of the server fault light, temperature exceeding the standard, etc., avoiding sealing problems caused by incompatible transparent window materials, enhancing the operation safety and stability of the system; the automated monitoring system replaces the traditional manual patrol, reducing the labor cost, while ensuring the accuracy and real-time nature of the data, helping to better manage and maintain the efficient operation of the data center, improving the monitoring efficiency, and achieving the purpose of real-time monitoring of the liquid-cooled server and its coolant.
[0034] The target images within the target area are acquired by a camera device and transmitted to a processing center for analysis. Here, the target area refers to the area containing the server, the immersion chamber, and the coolant. The server is immersed in the coolant within the immersion chamber, and the immersion chamber is wrapped by the cabinet body. The camera device is specifically arranged at the top of a preset side of the immersion chamber so as to be able to capture clear images within this area. After receiving these images, the processing center will analyze them to determine whether there are any abnormalities in the server and the coolant. In the related art, it mainly relies on manual observation of the states of the server and the coolant through a transparent window, which is not only inefficient but also places a great burden on the operation and maintenance personnel in large data centers. The method of this embodiment avoids the use of the transparent window, thus simplifying the cabinet structure, reducing costs, and reducing potential risks that may be caused by material problems. Through automated monitoring, the monitoring efficiency is greatly improved. This embodiment can, through automated monitoring and image processing technology, monitor the states of the server and the coolant in real time and accurately, greatly improving the monitoring efficiency and accuracy; in addition, through real-time monitoring and abnormality judgment, potential problems can be discovered and processed in a timely manner, thereby enhancing the stability and reliability of the liquid-cooled server.
[0035] In an alternative embodiment, the processing center analyzes the target images to determine whether there are any abnormalities in the target objects, including: the processing center analyzes the target images to obtain an analysis result, where the analysis result includes the status information of the server, the liquid level information of the coolant, and the height information of the server; the processing center determines whether there is an abnormality in the server according to the status information of the server, and the processing center determines whether there is an abnormality in the coolant according to the liquid level information of the coolant and the height information of the server.
[0036] In the above embodiment, the processing center analyzes the target images to obtain the status information of the server (such as fault lamp information, temperature information), thereby accurately determining whether the server is in a normal working state. Once it is detected that the fault lamp is in a preset state or the internal temperature exceeds the set threshold, the abnormal situation existing in the server can be quickly identified, and measures can be taken in a timely manner to avoid the expansion of potential problems; the processing center also uses the data in the target images to extract the liquid level information of the coolant and the height information of the server, and then determines whether there is an abnormality in the coolant. For example, calculate the height difference between the two. When the height difference is lower than the preset threshold, it indicates that there may be a leakage or other abnormal conditions in the coolant, and immediate attention and inspection are required to ensure the effectiveness of the cooling system; the monitoring method provided by this embodiment effectively improves the safety and reliability of the operation of the liquid-cooled system in the data center, reduces the operation and maintenance costs, and improves the work efficiency.
[0037] Extract the status information of the server, the liquid level information of the coolant, and the height information of the server from the target image through image analysis, and determine whether there are abnormalities in the server and the coolant based on this information. The processing center analyzes the target image obtained by the imaging device, and extracts feature information related to the operating status of the server (such as indicator light color, blinking frequency, power consumption, etc.) and the coolant status (such as liquid level height, color change, etc.); determine whether there are abnormalities in the server according to the status information of the server, and combine the liquid level information of the coolant and the height information of the server to determine whether the coolant is within the normal range. For example, if the liquid level is too low or too high, it may indicate coolant leakage or excess, thus determining that there is an abnormality in the coolant. In the prior art, the monitoring of the liquid cooling system mainly relies on window observation or simple sensor monitoring. Window observation is inefficient and prone to missing details, while sensor monitoring can only provide limited parameters (such as temperature, pressure), which cannot comprehensively reflect the system status and is also difficult to intuitively reflect the liquid level change of the coolant and the operating status of the server. In this embodiment, through image analysis technology, the status information of the server, the liquid level information of the coolant, and the height information of the server can be obtained simultaneously, realizing comprehensive monitoring of the liquid cooling system. Compared with the single window observation or limited sensor monitoring in the prior art, it provides richer monitoring information; image analysis technology can process the image information obtained by the imaging device in real time and quickly determine whether there are abnormalities. Compared with manual inspection, it can achieve automatic monitoring, greatly improving the monitoring efficiency and real-time performance. Through real-time and comprehensive monitoring, abnormalities in the server and the coolant can be discovered and processed in a timely manner, avoiding system downtime caused by abnormal coolant liquid level or server failure, thereby enhancing the stability and reliability of the liquid cooling system.
[0038] In an alternative embodiment, the processing center determines whether there is an abnormality in the coolant according to the liquid level information of the coolant and the height information of the server, including: the processing center determines the height difference between the liquid level information of the coolant and the height information of the server; when the height difference is less than a preset height threshold, the processing center determines that there is an abnormality in the coolant.
[0039] In the above embodiment, it is possible to accurately determine whether there is an abnormality in the coolant. Specifically, the processing center analyzes the target image to obtain the liquid level information of the coolant and the height information of the server, and calculates the height difference between the two. If the height difference is less than the preset height threshold, it is determined that there is an abnormality in the coolant. This process ensures that the liquid level of the coolant is within the normal range, avoiding problems such as reduced cooling effect or server damage caused by too low liquid level, thereby improving the reliability and safety of the system.
[0040] The processing center first calculates the height difference between the liquid level information of the coolant and the height information of the server in the coolant. This height difference reflects the degree to which the server is submerged in the coolant. Then, the processing center compares this height difference with a preset height threshold. If the height difference is less than the preset height threshold, it means that the server is not sufficiently submerged in the coolant or the coolant level is too low, and the processing center will determine that there is an abnormality in the coolant. By combining image processing technology with the judgment based on the height difference, this method can provide more accurate coolant liquid level information, reducing false alarms or missed alarms caused by sensor errors; by monitoring the immersion state of the server in the coolant in real time, this method can promptly detect and handle overheating problems caused by insufficient coolant, thereby enhancing the reliability of server thermal management; by introducing the comparison between the height difference and the preset height threshold, this method achieves a more intelligent abnormality judgment, improving the accuracy and adaptability of abnormality judgment. Through this embodiment, the height difference can be calculated in real time, and the coolant state can be dynamically monitored. Once an abnormality is detected, the processing center can immediately issue an alarm to remind the operation and maintenance personnel to handle it in a timely manner, thereby reducing system failures caused by insufficient coolant liquid level.
[0041] In an optional embodiment, the processing center determines whether there is an abnormality in the server according to the status information of the server, including at least one of the following: when the fault lamp information of the server is in a preset state, it is determined that the server has a fault, where the status information of the server includes the fault lamp information; when it is determined according to the first temperature information of the server that the temperature of the server is greater than the first temperature threshold, it is determined that the server has an abnormality, where the first temperature information is used to represent the temperature information of a preset area inside the server, and the status information of the server includes the temperature information of the server.
[0042] In the above embodiment, when the fault lamp of the server is in a preset state, the processing center can promptly identify that the server has a fault, so as to respond quickly and take measures, improving the reliability and maintenance efficiency of the system; by monitoring the temperature of a preset area inside the server and comparing it with the first temperature threshold, the processing center can quickly determine that the server has an abnormality when the server temperature exceeds the normal range, avoiding hardware damage or performance degradation caused by high temperature, and further enhancing the stability and security of the system. This embodiment can achieve the purpose of real-time monitoring and abnormality detection of the liquid-cooled server.
[0043] The processing center determines the operating status of the server by analyzing the status information of the server, including fault lamp information, temperature information, etc. If the fault lamp information of the server presents a preset status (such as being on), the processing center determines that the server has a fault; in addition, the processing center also compares the temperature information (the first temperature information) in a preset area inside the server with a preset first temperature threshold. If the temperature exceeds the threshold, it is determined that the server is abnormal. By combining the fault lamp information and the temperature information for judgment, the abnormal status of the server can be identified more accurately, avoiding misjudgment by a single indicator; by analyzing the status information of the server in real time, the operating status of the server can be dynamically monitored, and an alarm can be issued immediately when an abnormality occurs. Through automated monitoring and abnormality judgment, this method can reduce the manual inspection frequency of operation and maintenance personnel, reduce the operation and maintenance cost, and improve the operation and maintenance efficiency at the same time. In addition, timely and accurate fault detection also helps to reduce the maintenance cost and data loss risk caused by faults.
[0044] In an optional embodiment, after the processing center analyzes the target image to obtain an analysis result, the above method further includes: transmitting the analysis result to a display screen to instruct the display screen to display the status information of the server, the liquid level information of the coolant, and the height information of the server; and when it is determined that the server is abnormal or the coolant is abnormal, the processing center controls the display screen to display abnormal information.
[0045] In the above embodiment, it is possible to realize real-time monitoring of the operating status of the liquid-cooled server and the situation of the coolant, and display the relevant information on the display screen in a timely manner. Specifically: after the processing center analyzes the target image, it can extract the status information of the server (such as fault lamp information, temperature information, etc.), and display it to the operation and maintenance personnel in real time through the display screen, enabling them to quickly understand the specific operating conditions of the server; the processing center can also obtain the liquid level information of the coolant and the height information of the server, and display them on the screen to help the operation and maintenance personnel accurately master the distribution of the coolant and the location of the server, ensuring the normal operation of the liquid-cooled system; when the processing center detects that the server is abnormal (such as the fault lamp is on, the temperature is too high) or the coolant is abnormal (such as the liquid level is too low, the height difference is lower than the threshold), it will immediately control the display screen to display the corresponding abnormal information, achieving the effect of reminding the operation and maintenance personnel to take necessary maintenance measures to improve the reliability and security of the system.
[0046] After the processing center completes the analysis of the target image, it will transmit the analysis results (including the status information of the server, the liquid level information of the coolant, and the height information of the server) to the display screen so that the operation and maintenance personnel can intuitively understand the current status of the server and the situation of the coolant. When the processing center determines that there is an abnormality in the server or the coolant, it will further control the display screen to display the relevant abnormality information to remind the operation and maintenance personnel to take measures in a timely manner. In the existing data center or server room management system, although the status of the server and the situation of the coolant can be monitored, this information often appears in the form of numbers or codes, lacking intuitiveness and being unfavorable for the operation and maintenance personnel to quickly understand and respond. Due to the lack of intuitive information display and timely abnormality notification, the operation and maintenance personnel may need to spend more time and effort to search for and locate problems when dealing with server and coolant problems. In this embodiment, by displaying the analysis results graphically on the display screen, the operation and maintenance personnel can intuitively understand the status of the server and the situation of the coolant, improving the readability and comprehensibility of the information. When the processing center determines that there is an abnormality in the server or the coolant, the abnormality information is immediately displayed through the display screen, ensuring that the operation and maintenance personnel can quickly notice and take corresponding measures, reducing the risk caused by delayed response; through intuitive information display and timely abnormality notification, the operation and maintenance personnel can locate and solve server and coolant problems faster, improving the operation and maintenance efficiency and the stability of the server; through the intuitive display screen to show the system status and abnormality information, a more friendly operation interface is provided for the operation and maintenance personnel, enhancing the operation and maintenance experience. Optionally, in practical applications, the display screen can also directly display the target image captured by the camera device in real time. In practical applications, when an abnormality is determined, a warning prompt message can be generated in a timely manner or an alarm signal can be issued.
[0047] In an alternative embodiment, the above method further includes: determining whether there is an abnormality in the coolant according to the second temperature information of the coolant, where the analysis result further includes the second temperature information; and adjusting the flow rate of the coolant in the case of determining that there is an abnormality in the coolant.
[0048] In the above embodiment, the method can monitor the temperature change of the coolant in real time and determine whether there is an abnormality in the coolant according to the second temperature information. Once it is detected that the temperature of the coolant exceeds the normal range, the system will automatically adjust the flow rate of the coolant to ensure that the coolant is in the best working state, thereby improving the stability and reliability of the system. Specifically, by adding the dynamic monitoring and adaptive adjustment function of the coolant temperature, the method effectively solves the problem of performance degradation caused by the temperature fluctuation of the coolant in the traditional liquid cooling system, and further improves the operation efficiency and safety of the data center.
[0049] This embodiment introduces a new dimension for judging whether there is an abnormality in the coolant based on the second temperature information of the coolant, and takes corresponding adjustment measures after confirming the abnormality, that is, adjusting the flow rate of the coolant. Specifically, in the analysis result obtained by the processing center from analyzing the target image, in addition to including the status information of the server, the liquid level information of the coolant, and the height information of the server, it also includes the second temperature information of the coolant. This temperature information is used to evaluate whether the working state of the coolant is normal. When the processing center determines that there is an abnormality in the coolant based on this temperature information, it will automatically adjust the flow rate of the coolant in order to restore the normal working state of the coolant or alleviate the abnormal condition, so as to optimize the cooling effect or prevent the system from overheating. By introducing the second temperature information of the coolant as the basis for judging abnormalities, this method improves the monitoring accuracy of the coolant state, helps to detect and handle potential cooling efficiency problems in a timely manner. After confirming the abnormality of the coolant, by automatically adjusting the flow rate of the coolant, this method provides a more flexible and dynamic abnormality response mechanism, which helps to quickly restore the normal working state of the system and reduce the risk of server overheating caused by coolant abnormalities.
[0050] This application also provides a monitoring system for a liquid-cooled server, which is used to execute the monitoring method of the liquid-cooled server in any of the foregoing embodiments, such as Figure 2 shown, Figure 2 FIG. is a framework diagram of a monitoring system for a liquid-cooled server provided by an embodiment of this application. The system includes: a cabinet main body, an immersion cavity, a server, a camera device, and a processing center. Among them, The cabinet main body is used to wrap the immersion cavity, and the immersion cavity is filled with coolant; the server is arranged to be immersed in the coolant; the camera device is arranged at the top of a preset side of the immersion cavity. The camera device is used to obtain a target image within a preset area and transmit the target image to the processing center; the processing center analyzes the target image to judge whether there is an abnormality in the target object. Among them, the target image includes the server, the immersion cavity, and the coolant, and the target object includes the server and the coolant.
[0051] In the above embodiments, the imaging device is installed at the top of a preset side of the immersion cavity, and can continuously acquire images within the target area and transmit them to the processing center. This can ensure that the operation and maintenance personnel can always understand the situation of the server and the coolant, improving the monitoring efficiency. Compared with the traditional manual observation method, this system reduces the workload of the operation and maintenance personnel through automated image analysis and processing. Especially in large data centers, the inspection frequency and workload are significantly reduced. It avoids the structural complexity and poor sealing problems caused by using transparent windows, improving the operation safety and stability of the system. The processing center can analyze the target images to obtain the status information of the server, the liquid level information and height information of the coolant, so as to comprehensively judge whether there are abnormalities. This multi-dimensional detection mechanism improves the reliability and accuracy of the system. Once an abnormal situation is detected, the processing center can immediately take measures, such as adjusting the flow rate of the coolant or displaying abnormal information, and promptly notify the operation and maintenance personnel for handling, effectively preventing potential problems from deteriorating further.
[0052] The image information inside the liquid-cooled server system is acquired by the imaging device and the image is transmitted to the processing center for analysis to determine whether there are abnormalities in the server and the coolant. The main components of the system include: a cabinet body for enclosing the immersion cavity, providing structural support and a sealed environment; an immersion cavity filled with coolant, in which the server is immersed, and heat dissipation is achieved by the direct contact between the coolant and the server components; a server immersed in the coolant, absorbing heat through the coolant and dissipating heat through circulation; an imaging device installed at the top of a preset side of the immersion cavity, used to acquire a target image containing the server and the coolant and transmit the image to the processing center; the processing center judges whether there are abnormalities by analyzing the server status information (such as fault lights, temperature information) and coolant status information (such as liquid level, temperature) in the image. The monitoring system of this embodiment captures target images through the imaging device and transmits them to the processing center for analysis. This system can achieve comprehensive monitoring of the server and the coolant, including information such as the status of the server, the liquid level of the coolant, the temperature, and the height of the server in the coolant. This non-contact monitoring method avoids the errors and interferences that may be brought by physical sensors, improving the accuracy and reliability of the monitoring data.
[0053] In an optional embodiment, a display screen is provided on the outer surface of the cabinet body. The display screen is communicatively connected to the processing center. The processing center is configured to analyze a target image to obtain an analysis result, where the analysis result includes the status information of the server, the liquid level information of the coolant, and the height information of the server. The processing center is further configured to determine whether the server is abnormal based on the status information of the server, and determine whether the coolant is abnormal based on the liquid level information of the coolant and the height information of the server. The display screen is configured to display the liquid level information of the coolant, the height information of the server, the status information of the server, and the target image, and when it is determined that the server is abnormal or the coolant is abnormal, the processing center controls the display screen to display abnormal information.
[0054] In the above embodiment, it is possible to achieve real-time monitoring of the operating status of the liquid-cooled server and the condition of the coolant. Specifically: The processing center analyzes the target image, extracts the status information of the server, the liquid level information of the coolant, and the height information of the server, so as to comprehensively grasp the current conditions of the server and the coolant. By judging the status information of the server, it is determined whether the server is running normally to ensure timely discovery and handling of potential problems. By comparing the liquid level information of the coolant and the height information of the server, it is judged whether the coolant is abnormal. The display screen displays the status information of the server, the liquid level information of the coolant, and the height information of the server in real time, facilitating the operation and maintenance personnel to intuitively understand the system status. When it is detected that the server or the coolant is abnormal, the processing center immediately controls the display screen to display abnormal information, quickly notifying the operation and maintenance personnel to take corresponding measures, improving the reliability and security of the system.
[0055] The processing center is not only responsible for analyzing the target image captured by the imaging device to obtain the status information of the server, the liquid level information of the coolant, and the height information of the server, but also responsible for judging whether the server and the coolant are abnormal based on this information. Once an abnormality is detected, the processing center will control the display screen to display relevant abnormal information. At the same time, the display screen will also continuously display the liquid level information of the coolant, the height information of the server, the status information of the server, and the target image, providing comprehensive monitoring and visualization support for the operation and maintenance personnel. By setting a display screen on the outer surface of the cabinet body and displaying the analysis results and abnormal information of the processing center on the display screen in real time, the system realizes the intuitive display of information, enabling the operation and maintenance personnel to clearly understand the status of the server and the condition of the coolant at a glance, improving the readability and understandability of the information. Through the intuitive information display and timely abnormal notification, the operation and maintenance personnel can locate and solve the problems of the server and the coolant faster, improving the operation and maintenance efficiency and the stability of the server. For the operation and maintenance personnel, the intuitive information display and timely abnormal notification can greatly reduce their work pressure and improve work satisfaction and efficiency.
[0056] In an optional embodiment, the above system further includes: a backup camera and an operation and maintenance management module. The backup camera is used to capture a backup image of a preset area and transmit the backup image to the processing center. When the target image does not meet the preset conditions, the processing center analyzes the backup image to determine whether there is an abnormality in the target object. The processing center sends the abnormality information to the operation and maintenance management module, and the operation and maintenance management module generates a target operation and maintenance dispatch order based on the abnormality information and pushes the target operation and maintenance dispatch order to the target intelligent terminal. The abnormality information includes information indicating that the server is abnormal or the coolant is abnormal.
[0057] In the above embodiment, the backup camera can provide an alternative image data source when the target image of the main camera does not meet the preset conditions (such as poor image quality, limited field of view, etc.), ensuring continuous monitoring of the server and coolant status even when the main camera fails, improving the fault tolerance of the system. The processing center analyzes the backup image to determine whether there is an abnormality in the target object and sends the abnormality information to the operation and maintenance management module. This process has a high degree of automation, reducing the need for manual intervention and improving the abnormal response speed. The operation and maintenance management module automatically generates a target operation and maintenance dispatch order based on the received abnormality information and pushes it to the designated intelligent terminal, enabling the operation and maintenance personnel to obtain specific information about the abnormal situation in a timely manner and quickly take measures for repair or adjustment, reducing the fault handling time and enhancing the operation stability of the data center. This embodiment not only improves the robustness of the system but also significantly increases the operation and maintenance efficiency and the speed of fault handling, and is suitable for the intelligent management and maintenance of large-scale data centers.
[0058] This embodiment introduces a backup camera and an operation and maintenance management module. The backup camera, as a redundancy of the main imaging device, can provide a backup image for the processing center to analyze when the target image captured by the main imaging device does not meet the preset conditions (such as blurred image, missing information, etc.). The operation and maintenance management module is responsible for receiving the abnormality information sent by the processing center and generating an operation and maintenance dispatch order based on this information, and pushing it to the intelligent terminal responsible for operation and maintenance so that the operation and maintenance personnel can handle the abnormality in a timely manner. By introducing the backup camera, the system can automatically switch to the image provided by the backup camera for analysis when the main imaging device fails or the captured image does not meet the preset conditions, thus ensuring the continuity and accuracy of the monitoring data and improving the reliability of the monitoring system. The operation and maintenance management module can automatically receive the abnormality information sent by the processing center and generate an operation and maintenance dispatch order based on this information, and push it to the intelligent terminal responsible for operation and maintenance. This automated response process reduces manual intervention, improves the response speed and processing efficiency. The operation and maintenance management module can intelligently allocate operation and maintenance resources according to the urgency and importance of the abnormality information, ensuring that the operation and maintenance personnel can give priority to handling critical abnormalities and improving the overall operation and maintenance efficiency.
[0059] The above system further includes a light strip, which is arranged around the top of the inner wall of the immersion cavity. The light strip is used to supplement light for the camera device during shooting, enhancing the shooting effect. The light strip can be used for lighting inside the cabinet.
[0060] The system can also provide a user interface, allowing operation and maintenance personnel to access the monitoring screen through a mobile device or other networked devices and receive warning information from the system.
[0061] It should be noted that when the system provided in the above embodiment realizes its functions, only the division of the above function modules is used for illustration. In actual applications, the above functions can be allocated to different function modules according to needs, that is, the internal structure of the device is divided into different function modules to complete all or part of the functions described above. In addition, the system and method embodiments provided in the above embodiment belong to the same concept. For the specific implementation process, please refer to the method embodiment, which will not be elaborated here.
[0062] Obviously, the above-described embodiments are only a part of the embodiments of the present application, rather than all embodiments. The present application will be specifically described below in conjunction with specific embodiments.
[0063] The embodiment of the present application provides a method and system for online status monitoring of a liquid-cooled immersion system. Through the method of image monitoring by an in-cabinet monitoring camera, the picture is transmitted to an external screen of this cabinet or other computer room devices for intuitive display. Image processing technology can also be associated to identify and supervise the status of the server indicator lights, and connect to the subsequent operation and maintenance management system, reducing the structural complexity of the original immersion cabinet. At the same time, due to the application of image digitization, the data relevance of the operation and maintenance cloud service of the liquid-cooled device is also improved, providing a solid foundation for subsequent intelligent operation and maintenance and unattended computer room services.
[0064] In the embodiment of the present application, the liquid-cooled cabinet mainly consists of a cabinet body, an internal monitoring camera, a light strip, an external display screen, etc. Figure 3 This is an example diagram of an immersion liquid-cooled cabinet provided by the embodiment of the present application. The monitoring camera is built into the cabinet, such as Figure 3 the wide-angle camera shown in (A) in the figure. The wide-angle camera conducts full-area monitoring. Figure 3Figure (B) is an example diagram after the top of the cabinet body is covered. The main function of the cabinet body is to wrap and carry the immersion cavity, guide rails, movable supports, liquid inlet and outlet pipelines, and video monitoring system. There is no need to design a transparent viewing window on the cabinet body panel and the top cover. The operation status of the servers in the immersion cavity is monitored through the video monitoring system, including the running status of the servers, fault lights, the status of the coolant, etc. One or more wide-angle cameras can be set on the side of the top of the immersion cavity, and the monitoring images can be uploaded to the display screen outside the cabinet through data or the image data can be transmitted to the dynamic environment monitoring system for centralized processing. The cameras inside the cabinet body need to be installed with redundant backups to improve reliability. The video monitoring data can be uploaded to the cabinet body display screen, the dynamic environment monitoring system or the operation and maintenance supervision system through relevant protocols and interfaces. The monitoring images can be associated with image analysis technology to identify and supervise the server status, and connect to the operation and maintenance system for subsequent operation and maintenance dispatching.
[0065] In the embodiment of the present application, the liquid-cooled cabinet can be associated with the integrated application of terminal devices outside the cabinet or outside the computer room or the dynamic environment monitoring system to remotely retrieve the image data in a specific cavity. It can also match relevant image processing technologies according to the image data to identify the server status and associate with the operation and maintenance management system for supervision.
[0066] Compared with the related technologies, the embodiment of the present application has at least the following technical effects: 1) The original transparent viewing window design of the cabinet body can be cancelled, the structure is simpler, the processing cost of the immersion cavity is reduced, and the durability and reliability of the cabinet body are improved; 2) It can match the operation and maintenance concept of an unattended computer room for 24 hours, and use the digital technology of monitoring images to realize cloud intelligent operation and maintenance; 3) It can be combined with centralized cloud monitoring and the dynamic environment operation and maintenance system for supervision. Installing a video monitoring system in the cabinet can observe and supervise the operation status of the servers in the immersion cavity more timely; 4) It can be combined with a decentralized intelligent terminal supervision mode, and the operation and maintenance personnel can remotely obtain the images inside the cabinet online and formulate relevant operation and maintenance plans in a timely manner.
[0067] The present application also provides a computer-readable storage medium, in which instructions are stored. When the instructions are executed, the method steps described in any one of the above are executed.
[0068] In an exemplary embodiment, the above computer-readable storage medium may include, but is not limited to: USB flash drives, read-only memories (ROM for short), random access memories (RAM for short), mobile hard disks, magnetic disks, or optical discs and other media that can store computer programs.
[0069] The present application also discloses an electronic device. As Figure 4 shown, Figure 4It is a schematic structural diagram of an electronic device disclosed in an embodiment of the present application. The electronic device 400 may include: at least one processor 401, at least one communication bus 402, a user interface 403, at least one network interface 404, and a memory 405.
[0070] Among them, the communication bus 402 is used to realize the connection and communication between these components.
[0071] Among them, the user interface 403 may include a display screen (Display) and a camera (Camera). Optionally, the user interface 403 may further include a standard wired interface and a wireless interface.
[0072] Among them, the network interface 404 may optionally include a standard wired interface and a wireless interface (such as a WI-FI interface).
[0073] Among them, the processor 401 may include one or more processing cores. The processor 401 connects various parts within the entire electronic device (such as a server) through various interfaces and lines. By running or executing instructions, programs, code sets, or instruction sets stored in the memory 405, and by calling the data stored in the memory 405, it executes various functions of the server and processes data. Optionally, the processor 401 may be implemented in at least one hardware form of digital signal processing (DSP), field-programmable gate array (FPGA), or programmable logic array (PLA). The processor 401 may integrate one or several combinations of a central processing unit (CPU), a graphics processing unit (GPU), and a modem, etc. Among them, the CPU mainly processes the operating system, user interface, and application programs, etc.; the GPU is responsible for the rendering and drawing of the content to be displayed on the display screen; the modem is used to process wireless communication. It can be understood that the above modem may not be integrated into the processor 401 and may be implemented separately by a single chip.
[0074] Among them, the memory 405 may include a Random Access Memory (RAM), or may also include a Read-Only Memory. Optionally, the memory 405 includes a non-transitory computer-readable storage medium. The memory 405 can be used to store instructions, programs, codes, code sets or instruction sets. The memory 405 may include a program storage area and a data storage area. Among them, the program storage area may store instructions for implementing an operating system, instructions for at least one function (such as a touch function, a sound playback function, an image playback function, etc.), instructions for implementing the above-mentioned method embodiments, etc.; the data storage area may store data involved in the above-mentioned method embodiments. Optionally, the memory 405 may also be at least one storage device located far from the aforementioned processor 401. Refer to Figure 4 , the memory 405 as a computer storage medium may include an operating system, a network communication module, a user interface module, and an application program of a monitoring method for a liquid-cooled server.
[0075] In Figure 4 In the electronic device 400 shown, the user interface 403 is mainly used to provide an input interface for the user to obtain user input data; and the processor 401 can be used to call an application program of a monitoring method for a liquid-cooled server stored in the memory 405. When executed by one or more processors 401, the electronic device 400 is caused to execute the method as described in one or more of the above embodiments. It should be noted that for the foregoing method embodiments, for the sake of simple description, they are all expressed as a series of action combinations. However, those skilled in the art should know that the present application is not limited by the described action sequence, because according to the present application, certain steps can be performed in other sequences or simultaneously. Secondly, those skilled in the art should also know that the embodiments described in the specification are all preferred embodiments, and the actions and modules involved are not necessarily required by the present application.
[0076] In the above embodiments, the descriptions of the respective embodiments have their own emphases. For parts not detailed in a certain embodiment, reference can be made to the relevant descriptions of other embodiments.
[0077] In several embodiments provided in the present application, it should be understood that the disclosed device or system can be implemented in other ways. For example, the device or system embodiments described above are merely illustrative. For example, the division of units is only a logical function division. In actual implementation, there may be other division methods. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the displayed or discussed couplings or direct couplings or communication connections to each other can be through some service interfaces. The indirect couplings or communication connections of devices or units can be in electrical or other forms.
[0078] The units described as separate components may or may not be physically separated. The components shown as units may or may not be physical units, that is, they can be located in one place or distributed to multiple network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0079] In addition, the functional units in each embodiment of the present application can be integrated in a processing unit, or each unit can exist physically alone, or two or more units can be integrated in one unit. The above-mentioned integrated units can be implemented in the form of hardware or in the form of software functional units.
[0080] If the integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable memory. Based on this understanding, the technical solution of the present application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a memory and includes several instructions to enable a computer device (which can be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the methods in each embodiment of the present application. And the aforementioned memory includes: various media such as USB flash drives, mobile hard disks, magnetic disks, or optical discs that can store program codes.
[0081] The above are only exemplary embodiments of the present disclosure and cannot be used to limit the scope of the present disclosure. That is, any equivalent changes and modifications made in accordance with the teachings of the present disclosure still fall within the scope covered by the present disclosure. Those skilled in the art will easily think of other implementation schemes of the present disclosure after considering the disclosure of the specification.
[0082] The present application aims to cover any variations, uses, or adaptive changes of the present disclosure, which follow the general principles of the present disclosure and include common general knowledge or conventional technical means in the technical field not recorded in the present disclosure.
Claims
1. A method for monitoring a liquid cooling server, characterized in that: include: A target image in a target area is acquired by a camera device, and the target image is transmitted to a processing center, wherein the target image includes a server, an immersion cavity and a coolant, the immersion cavity is filled with the coolant, the server is configured to be immersed in the coolant, the immersion cavity is wrapped by a cabinet body, and the camera device is disposed on the top of a preset side of the immersion cavity; The processing center analyzes the target image to determine whether there is an abnormality in a target object, wherein the target object includes the server and the coolant.
2. The method according to claim 1, characterized in that The processing center analyzes the target image to determine whether the target object has an abnormality, including: The processing center analyzes the target image to obtain an analysis result, wherein the analysis result includes status information of the server, liquid level information of the coolant, and height information of the server; The processing center determines whether the server is abnormal according to the status information of the server, and the processing center determines whether the coolant is abnormal according to the liquid level information of the coolant and the height information of the server.
3. The method according to claim 2, characterized in that The processing center determines whether there is an abnormality in the coolant according to the liquid level information of the coolant and the height information of the server, including: The processing center determines a height difference between the liquid level information of the coolant and the height information of the server; When the height difference is less than a preset height threshold, the processing center determines that there is an abnormality in the coolant.
4. The method according to claim 2, characterized in that: The processing center determines whether the server is abnormal according to the status information of the server, including at least one of the following: When the fault light information of the server is in a preset state, determining that the server has a fault, wherein the state information of the server includes the fault light information; When it is determined based on first temperature information of the server that the temperature of the server is greater than a first temperature threshold, it is determined that an abnormality exists in the server, wherein the first temperature information is used to represent temperature information of a preset area inside the server, and the status information of the server includes the temperature information of the server.
5. The method according to claim 2, characterized in that: After the processing center analyzes the target image to obtain an analysis result, the method further includes: Transmitting the analysis result to a display screen to instruct the display screen to display the status information of the server, the liquid level information of the coolant, and the height information of the server; And when it is determined that there is an abnormality in the server or the coolant, the processing center controls the display screen to display abnormal information.
6. The method according to claim 2, characterized in that The method further comprises: Determine whether the coolant is abnormal according to second temperature information of the coolant, wherein the analysis result also includes the second temperature information; When it is determined that the coolant is abnormal, the flow rate of the coolant is adjusted.
7. A monitoring system for a liquid cooling server, characterized in that: The method for executing any one of claims 1 to 6 comprises: a cabinet body, an immersion chamber, a server, a camera device and a processing center, wherein: The cabinet body is used to wrap the immersion cavity, and the immersion cavity is filled with cooling liquid; The server is configured to be immersed in the coolant; The camera device is arranged on the top of the preset side of the immersion chamber, and is used to obtain a target image in a preset area and transmit the target image to the processing center; The processing center analyzes the target image to determine whether there is an abnormality in the target object, wherein the target image includes the server, the immersion chamber and the coolant, and the target object includes the server and the coolant.
8. The system according to claim 7, characterized in that The outer surface of the cabinet body is provided with a display screen, and the display screen is communicatively connected with the processing center, wherein: The processing center is used to analyze the target image to obtain an analysis result, wherein the analysis result includes the status information of the server, the liquid level information of the coolant and the height information of the server; The processing center is further used to determine whether the server is abnormal according to the status information of the server, and to determine whether the coolant is abnormal according to the liquid level information of the coolant and the height information of the server; The display screen is used to display the liquid level information of the coolant, the height information of the server, the status information of the server and the target image, and when it is determined that there is an abnormality in the server or the coolant, the processing center controls the display screen to display the abnormality information.
9. The system according to claim 8, characterized in that The system also includes: a backup camera and an operation and maintenance management module, wherein: The backup camera is used to capture the preset area to obtain a backup image, and transmit the backup image to the processing center. When the target image does not meet the preset conditions, the processing center analyzes the backup image to determine whether the target object has an abnormality. The processing center sends the abnormal information to the operation and maintenance management module. The operation and maintenance management module generates a target operation and maintenance dispatch based on the abnormal information and pushes the target operation and maintenance dispatch to the target intelligent terminal. The abnormal information includes information that there is an abnormality in the server or information that there is an abnormality in the coolant.
10. An electronic device comprising a memory and a processor, wherein a computer program is stored in the memory, wherein: When the processor executes the program, the method according to any one of claims 1 to 6 is implemented.
Citation Information
Patent Citations
Liquid cooling heat dissipation device, control method and electronic equipment
CN112578878A
Immersed server protection method and system, electronic equipment and medium
CN115794516A
Server monitoring system, server monitoring method, device and storage medium
CN116600085A
Server liquid cooling system fault detection method and system based on image processing
CN118331809A
Monitoring method and system of immersed liquid cooling system
CN118397532A
Cited By
High-power single-phase immersion liquid cooling data center cabinet
CN120529567A