Verification Method and Device for Server Radiation Value, Chassis Jig

By installing the immersed liquid-cooled server in a preset fixture with a fan module to measure its radiation value, the complexity of radiation value measurement caused by excessive equipment size is solved, and a simplified radiation measurement process is achieved.

CN115616299BActive Publication Date: 2025-06-24INSPUR SUZHOU INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202211350587.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-31
Publication Date
2025-06-24
Estimated Expiration
2042-10-31

AI Technical Summary

Technical Problem

Due to the large volume of the immersed liquid-cooled server equipment, the radiation value measurement process is complicated.

Method used

The immersed liquid-cooled server is taken out from the container containing the coolant and installed in a preset fixture with a fan module. The radiation value of the server is measured in the storage space of the preset fixture.

Benefits of technology

The radiation measurement process of immersed liquid-cooled servers is simplified, and the use of huge heat dissipation equipment is avoided, and the measurement complexity problem caused by excessive equipment size is solved.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

An embodiment of the present application provides a method for verifying the radiation value of a server. The method includes: obtaining a first radiation value of a preset fixture, where the preset fixture is used to adjust the temperature of the server; determining that the preset fixture passes the verification when the first radiation value is less than a first threshold; obtaining a second radiation value of the server when the preset fixture passes the verification, where the second radiation value is measured when the server is in the accommodation space of the preset fixture; and determining that the radiation value of the server passes the verification when the second radiation value is less than a second threshold. Through the present application, the problem of the complex radiation value measurement process caused by the too large volume of the immersion liquid cooling server device is solved, and the effect of simplifying the radiation measurement process of the immersion liquid cooling server is achieved.
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Description

Technical Field

[0001] Embodiments of the present application relate to the field of servers, and more particularly, to a method and apparatus for verifying the radiation value of a server, and a chassis fixture. Background Art

[0002] With the accelerating process of the information age, various electronic products are constantly updated. With the advent of the cloud era, the performance requirements for servers are getting higher and higher. The demand for high-performance and high-configuration servers is increasing. Along with the continuous improvement of server performance, high-power consumption and high-power servers have gradually become the mainstream in the server market. As traditional computing servers are used more and more widely, the demand for servers in the large-scale telecommunications and Internet industries is increasing. Compared with traditional air-cooled servers, immersion liquid-cooled servers have the performance advantages of low noise and low power, and are gradually becoming a development trend in the server market. Compared with traditional air-cooled servers, liquid-cooled servers have relatively high complexity in radiation testing due to the large size of liquid-cooling equipment. Summary of the Invention

[0003] Embodiments of the present application provide a method and apparatus for verifying the radiation value of a server, and a chassis fixture, so as to at least solve the problem of the complex radiation value measurement process caused by the too large volume of immersion liquid-cooled server equipment in the related art.

[0004] According to an embodiment of the present application, a method for verifying the radiation value of a server is provided, including: obtaining a first radiation value of a preset fixture, where the preset fixture is used to adjust the temperature of the server; determining that the preset fixture passes the verification when the first radiation value is less than a first threshold; obtaining a second radiation value of the server when the preset fixture passes the verification, where the second radiation value is measured when the server is in the accommodation space of the preset fixture; and determining that the radiation value of the server passes the verification when the second radiation value is less than a second threshold.

[0005] In an exemplary embodiment, the preset fixture includes: a box body, where a front window is installed in front of the box body, a rear window is installed behind the box body, and a fan module is installed at the position of the rear window; the internal space of the box body is the accommodation space of the preset fixture for placing the server; and the fan module is used to regulate the internal temperature of the box body.

[0006] In an exemplary embodiment, obtaining the second radiation value of the server includes: measuring the second radiation value of the server when the server is in the accommodation space, where the second radiation value is measured when the preset fixture is in a preset radiation space.

[0007] In an exemplary embodiment, measuring the second radiation value of the server includes: controlling the fan module on the preset fixture to start, so as to adjust the temperature in the accommodation space to the startup temperature required by the server; starting the server, and after the server runs for a preset duration, measuring the radiation value of the liquid-cooled server to obtain the second radiation value.

[0008] In an exemplary embodiment, obtaining the first radiation value of the preset fixture includes: adjusting the power of the fan module on the preset fixture to the maximum power; when the power of the fan module reaches the maximum power, measuring the radiation value of the preset fixture to obtain the first radiation value.

[0009] In an exemplary embodiment, after obtaining the first radiation value, the method further includes: when the first radiation value is greater than the first threshold, determining that the preset fixture fails the verification.

[0010] In an exemplary embodiment, when the second radiation value is greater than the second threshold, sending indication information to the remote terminal device, where the indication information is used to indicate that the server fails the verification.

[0011] According to another embodiment of the present application, a chassis fixture is provided, including: a box body, wherein a front window is installed in front of the box body, a rear window is installed at the rear of the box body, and a fan module is installed at the position of the rear window; the box body is used to place the server; the fan module is used to regulate the temperature inside the box body.

[0012] In an exemplary embodiment, a power supply module is further provided on the box body, and the power supply module is used to supply power to the fan module and the server.

[0013] In an exemplary embodiment, the fan module is grounded.

[0014] According to still another embodiment of the present application, a verification device for the radiation value of a server is provided, including: a first acquisition module, configured to acquire the first radiation value of a preset fixture, where the preset fixture is used to adjust the temperature of the server; a first verification module, configured to determine that the preset fixture passes the verification when the first radiation value is less than the first threshold; a second acquisition module, configured to acquire the second radiation value of the server when the preset fixture passes the verification, where the second radiation value is measured when the server is in the accommodation space of the preset fixture; a second verification module, configured to determine that the radiation value of the server passes the verification when the second radiation value is less than the second threshold.

[0015] According to yet another embodiment of the present application, a computer-readable storage medium is further provided, and a computer program is stored in the computer-readable storage medium, where the computer program is configured to execute the steps in any one of the above method embodiments when running.

[0016] According to another embodiment of the present application, a computer device is further provided, including a memory and a processor. A computer program is stored in the memory, and the processor is configured to run the computer program to execute the steps in any one of the above method embodiments.

[0017] Through the present application, since the immersion liquid-cooled server is taken out of the container filled with the coolant, used as a single node of a server, installed in a jig with a fan module, and the test data obtained from the jig with the fan module installed with the liquid-cooled server node is used to complete the measurement of the radiation value, the use of the huge heat dissipation device of the immersion liquid-cooled server is avoided. Therefore, the problem of the complex radiation value measurement process caused by the too large volume of the immersion liquid-cooled server device can be solved, and the effect of simplifying the radiation measurement process of the immersion liquid-cooled server is achieved. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 is a hardware structure block diagram of a computer terminal for a method of verifying the radiation value of a server according to an embodiment of the present application;

[0019] Figure 2 is a flowchart of a method of verifying the radiation value of a server according to an embodiment of the present application;

[0020] Figure 3 is a structure block diagram of a chassis jig according to an embodiment of the present application;

[0021] Figure 4 is a structure block diagram of a device for verifying the radiation value of a server according to an embodiment of the present application. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0022] The embodiments of the present application will be described in detail below with reference to the drawings and in conjunction with the embodiments.

[0023] It should be noted that the terms "first", "second", etc. in the specification and claims of the present application and the above drawings are used to distinguish similar objects, and do not necessarily need to describe a specific order or sequence.

[0024] The method embodiments provided in the embodiments of the present application can be executed on a computer terminal or a similar computing device. Taking running on a computer terminal as an example, Figure 1 is a hardware structure block diagram of a mobile terminal for a method of verifying the radiation value of a server according to an embodiment of the present application. As Figure 1 shown, the mobile terminal may include one or more ( Figure 1Only one processor 102 is shown (the processor 102 may include, but is not limited to, a processing device such as a microprocessor MCU or a field-programmable gate array FPGA), and a memory 104 for storing data. Among them, the computer terminal may further include a transmission device 106 for communication functions and an input / output device 108. Those of ordinary skill in the art can understand that Figure 1 The structure shown is only schematic and does not limit the structure of the above mobile terminal. For example, the mobile terminal may further include more or fewer components than Figure 1 shown in, or have a different configuration from Figure 1 shown.

[0025] The memory 104 can be used to store computer programs. For example, software programs and modules of application software, such as the computer program corresponding to the verification method of the server radiation value in the embodiments of the present application. The processor 102 executes various functional applications and data processing by running the computer program stored in the memory 104, that is, the above method is implemented. The memory 104 may include high-speed random access memory and may also include non-volatile memory, such as one or more magnetic storage devices, flash memory, or other non-volatile solid-state memories. In some instances, the memory 104 may further include a memory remotely set relative to the processor 102, and these remote memories can be connected to the mobile terminal through a network. Examples of the above network include, but are not limited to, the Internet, an enterprise intranet, a local area network, a mobile communication network, and combinations thereof.

[0026] The transmission device 106 is used to receive or send data via a network. Specific examples of the above network may include a wireless network provided by a communication provider of the computer terminal. In one instance, the transmission device 106 includes a network adapter (abbreviated as NIC), which can be connected to other network devices through a base station and thus can communicate with the Internet. In one instance, the transmission device 106 may be a radio frequency (RF) module, which is used to communicate with the Internet wirelessly.

[0027] In this embodiment, a method for verifying the server radiation value running on the above computer terminal is provided. Figure 2 It is a flowchart according to the embodiments of the present application, as Figure 2 shown, and the process includes the following steps:

[0028] Step S202, obtain the first radiation value of a preset jig, where the preset jig is used to adjust the temperature of the server;

[0029] Step S204, when the first radiation value is less than the first threshold, determine that the preset jig passes the verification;

[0030] Step S206, when the preset fixture passes the verification, obtain the second radiation value of the server, where the second radiation value is measured when the server is in the accommodation space of the preset fixture;

[0031] Step S208, when the second radiation value is less than the second threshold, determine that the radiation value of the server passes the verification.

[0032] In the related art, to evaluate the radiation interference risk of an immersion liquid-cooled server and determine whether the radiation emission exceeds the regulatory limit requirements, the entire immersion liquid-cooled device needs to be placed at the center of the turntable in the radiation test site, and the server needs to be placed in a container, and coolant is poured until the server is immersed. Finally, the server is powered on and started, the test pressure is run, and the radiation interference value of the server is scanned. Finally, it is evaluated whether the radiation interference value meets the radiation emission limit requirements.

[0033] It can be understood that in the related art, since the immersion container device of the current immersion liquid-cooled server is relatively large in volume. And according to the size of the server, different volumes of coolant need to be injected, and in the most cases, dozens or even hundreds of liters of coolant need to be injected. Therefore, in actual tests, there are the following technical drawbacks: when the volume or weight is too large, it causes great difficulties in installation, debugging, and testing on the turntable in the radiation site test. Each time the test site is changed, the coolant may be contaminated, so that impurities are incorporated into the originally insulating coolant, resulting in damage to the internal server.

[0034] However, through the method for verifying the radiation value of the server provided in the embodiments of the present application, since the immersion liquid-cooled server is taken out of the container filled with coolant, and used as a single node of the server, installed in the preset fixture with a fan module, and the test data is obtained from the fixture with a fan module installed with the liquid-cooled server node to complete the measurement of the radiation value, avoiding the use of the huge heat dissipation device of the immersion liquid-cooled server. Therefore, it can solve the problem that the radiation value measurement process is complex due to the too large volume of the immersion liquid-cooled server device, and further achieves the effect of simplifying the radiation measurement process of the immersion liquid-cooled server.

[0035] Among them, the execution subject of the above steps can be a computer terminal, but is not limited thereto.

[0036] In step S202, since the preset fixture itself also emits radiation during operation, for the accuracy of the server radiation value measurement, it is necessary to first measure the radiation value of the preset fixture;

[0037] In step S204, only when it is determined that the first radiation value of the preset jig is less than the first threshold will the next step be taken to measure the radiation value of the server, ensuring that the radiation value of the preset jig itself does not exceed the specified radiation value threshold, and the first threshold needs to be less than the radiation value threshold specified in the operation manual;

[0038] In step S206, the server is placed in the preset jig to provide a temperature environment suitable for the server to work, further improving the accuracy of radiation value measurement.

[0039] It should be noted that the server in the embodiments of this application refers to a liquid-cooled server.

[0040] It should be further noted that there are two types of liquid-cooled servers. One is the cold plate liquid cooling technology, that is, using the working fluid as the medium for intermediate heat transfer, transferring the heat from the hot area to a distant place for cooling. In this technology, the working liquid is separated from the object to be cooled, and the working liquid does not directly contact the electronic devices. Instead, the heat of the object to be cooled is transferred to the refrigerant through highly efficient heat conduction components such as liquid cooling plates. Therefore, the cold plate liquid cooling technology is also called indirect liquid cooling technology. This technology directly guides the coolant to the heat source. At the same time, since the specific heat of the liquid is larger than that of the air, the heat dissipation speed is much faster than that of the air. Therefore, the refrigeration efficiency is much higher than that of air cooling, which can effectively solve the heat dissipation problem of high-density servers, reduce the energy consumption of the cooling system and reduce the noise. The other is the immersion phase change liquid-cooled server. In the immersion liquid phase change cooling system, the server motherboard, central processing unit, memory and other components with large heat generation are completely immersed in the refrigerant. In the working state, each heat-generating component will generate heat, causing the temperature rise of the refrigerant. When the temperature of the refrigerant rises to the boiling point corresponding to the system pressure, the refrigerant working medium undergoes a phase change, changing from a liquid state to a gaseous state, and absorbing heat through the latent heat of vaporization to achieve heat transfer. This technology of cooling by absorbing heat through the refrigerant is the phase change liquid cooling technology. The immersion phase change liquid cooling technology directly takes away the heat by using the liquid phase change, reducing the thermal resistance of the heat transfer process. Compared with the cold plate liquid cooling, the immersion liquid cooling technology has higher heat transfer efficiency.

[0041] At the same time, in immersion liquid cooling, the refrigerant directly contacts the heat-generating devices, which can improve the heat exchange efficiency and make the device heat dissipation more uniform: adopting the full immersion method, the temperature field inside the server is more uniform and there is no leakage risk: using insulating and environmentally friendly cooling liquid, even if there is a leakage, there is no risk to the infrastructure hardware and the external environment. Lower noise: All components of the server can be cooled by liquid cooling.

[0042] The following describes steps S202 to S208 through specific embodiments.

[0043] In some embodiments of the present application, the preset fixture includes: a box body, wherein a front window is installed in front of the box body, a rear window is installed behind the box body, and a fan module is installed at the position of the rear window; the internal space of the box body is the accommodation space of the preset fixture for placing the server; the fan module is used to regulate the temperature inside the box body.

[0044] It should be noted that the size of the front window of the preset fixture should meet the requirement for the server to be placed. In an optional manner, the front window of the preset fixture is open, and the nodes of the subsequent liquid-cooled server can be installed into the chassis fixture through the front window; the fan speed in the fan module can be adjusted. It can be understood that the greater the power of the fan module is turned on, the faster the speed is. The material of the box body can be metal.

[0045] The second radiation value of the server can be obtained in the following way: when the server is in the accommodation space, measure the second radiation value of the server, wherein the second radiation value is measured when the preset fixture is in a preset radiation space.

[0046] Specifically, control the fan module on the preset fixture to start to adjust the temperature in the accommodation space to the startup temperature required by the server; start the server, and after the server runs for a preset duration, measure the radiation value of the liquid-cooled server to obtain the second radiation value.

[0047] In an actual application scenario, install the server into the preset fixture, adjust the fan module to make the temperature inside the fixture reach the startup temperature of the server, and then run the test pressure program. When the test pressure program works stably for a preset duration, for example: after 30 minutes, scan and read the radiation emission value at this time and record it.

[0048] The first radiation value of the preset fixture can be obtained in the following way: adjust the power of the fan module on the preset fixture to the maximum power; when the power of the fan module reaches the maximum power, measure the radiation value of the preset fixture to obtain the first radiation value.

[0049] In an actual application scenario, the chassis fixture needs to be placed alone in the radiation emission test site, turn the fan module to the maximum speed, scan and read the radiation emission value at this time and record it to obtain the first radiation value.

[0050] After obtaining the first radiation value, it is necessary to check whether the first radiation value is greater than the first threshold. In the case of the first radiation value, it is determined that the preset fixture fails the verification.

[0051] When the preset fixture fails to pass the verification, a warning message can be sent to a remote terminal device. The warning message is used to indicate that the preset fixture has failed the verification. The warning methods include, but are not limited to, pop-up windows, alarm sounds, etc.

[0052] In an actual application scenario, according to the data of the read radiation emission value (the first radiation value), it is compared with the specified radiation value threshold. If the threshold requirement is met and the margin reaches 6 dB or more, it is considered that the chassis fixture meets the radiation emission requirements, and the radiation interference emission risk assessment of the immersion liquid-cooled server can be passed, and the next step can be continued. If the radiation emission requirements are not met, the radiation interference performance of the preset fixture is rectified, and after rectification, it is verified again until it can meet the test use.

[0053] The rectification method is to reduce the radiation value of the preset fixture. In an optional method, the fan module can be grounded. In another optional method, a radiation shield can be used to shield the fan module.

[0054] In some embodiments of the present application, when the second radiation value is greater than the second threshold, an indication message is sent to a remote terminal device, and the indication message is used to indicate that the server has failed the verification.

[0055] In an actual application scenario, according to the data of the read radiation emission value (the second radiation value), it is compared with the specified radiation value threshold. If the threshold requirement is met, it is determined that the radiation emission interference risk of the server is low. If the limit requirement is exceeded, it is evaluated that the radiation interference risk of the immersion liquid-cooled server is relatively high. It is necessary to rectify the nodes of the immersion liquid-cooled server. The rectification method is similar to that of the preset fixture and will not be elaborated here.

[0056] Through the description of the above embodiments, those skilled in the art can clearly understand that the method according to the above embodiments can be implemented by means of software plus a necessary general hardware platform. Of course, it can also be implemented by hardware, but in many cases, the former is a better implementation method. Based on such an understanding, the technical solution of the present application, in essence, or the part that contributes to the prior art, can be embodied in the form of a software product. The computer software product is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disc), and includes several instructions to enable a terminal device (which can be a mobile phone, computer, server, or network device, etc.) to execute the methods described in various embodiments of the present application.

[0057] The above verification method for the server radiation value takes out the immersion liquid-cooled server from the container filled with coolant by using the chassis fixture provided in the embodiment of the present application, makes it a single node of the server, installs it in the fixture with a fan module, and obtains the test data from the fixture with the fan module installed with the liquid-cooled server node, thereby completing the measurement of the radiation value. It avoids using the huge heat dissipation equipment of the immersion liquid-cooled server. Therefore, it can solve the problem of the complex radiation value measurement process caused by the too large volume of the immersion liquid-cooled server equipment, and further achieves the effect of simplifying the radiation measurement process of the immersion liquid-cooled server.

[0058] In this embodiment, a chassis fixture is further provided, as Figure 3 shown, including: a box body 10. Among them, a front window 20 is installed in front of the box body, a rear window 30 is installed at the rear of the box body, and a fan module 40 is installed at the position of the rear window; the box body 10 is used to place the server; the fan module 40 is used to regulate the temperature inside the box body.

[0059] In an optional manner, a fixture power supply module 50 is further provided on the box body 10, and the fixture power supply module 50 is used to supply power to the fan module 40 and the server.

[0060] In order to reduce the radiation value of the chassis fixture, the fan module 40 can be grounded.

[0061] The immersion liquid-cooled server is taken out from the container filled with coolant by using the chassis fixture provided in the embodiment of the present application, makes it a single node of the server, installs it in the fixture with a fan module, and obtains the test data from the fixture with the fan module installed with the liquid-cooled server node, thereby completing the measurement of the radiation value. It avoids using the huge heat dissipation equipment of the immersion liquid-cooled server. Therefore, it can solve the problem of the complex radiation value measurement process caused by the too large volume of the immersion liquid-cooled server equipment, and further achieves the effect of simplifying the radiation measurement process of the immersion liquid-cooled server.

[0062] It should be noted that compared with ordinary air-cooled servers, the most important feature of immersion liquid-cooled servers is to solve the heat dissipation problem during the operation of the server by means of flowing coolant. Therefore, compared with ordinary air-cooled servers, its most important feature is that the fans and heat sinks of various chips are cancelled. There are no differences in the remaining motherboard and system components, such as hard disks, CPUs, memories, etc. At the same time, since the data and other functions it needs to complete are the same as those of ordinary air-cooled servers, therefore, its system link and topology are the same as those of ordinary air-cooled servers except for the current part of the fan.

[0063] Thus, an immersion liquid-cooled server can be regarded as an ordinary air-cooled server. After removing the fan link and the radiator of the chip, it is placed in a large container filled with coolant, and the container can realize the circulating flow of the internal coolant, thus replacing the fan and the radiator and solving the heat dissipation problem during the operation of the server.

[0064] In an actual application scenario, a chassis fixture is used. This fixture meets the following requirements: the size of the chassis fixture meets the requirement of loading the nodes of the liquid-cooled server; the front window of the chassis fixture is open, and the nodes of the subsequent liquid-cooled server can be installed into the chassis fixture through the front window; the rear window of the chassis fixture is designed with a fan module, and the fan speed can be adjusted.

[0065] The specific operation steps are as follows: Place the chassis fixture alone in the radiation emission test site, turn the fan module to the maximum speed, scan and read the radiation emission value at this time, and record it as the first radiation value of the data; According to the first radiation value of the read radiation emission data, compare it with the regulatory limit. If it meets the limit requirement and is smaller than the regulatory limit, it is considered that the chassis fixture meets the radiation emission requirement, and the radiation interference emission risk assessment of the immersion liquid-cooled server can be passed, and the next step can be continued. If it does not meet the radiation emission requirement, rectify the radiation interference performance of the chassis fixture, and verify it again after rectification until it can meet the test use; Install the nodes of the immersion liquid-cooled server into the chassis fixture, adjust the fan module so that it can be powered on normally and run the test pressure program. After the test pressure program works stably for 30 minutes, scan and read the radiation emission value, and record it as the second radiation value; According to the second radiation value of the read radiation emission data, compare it with the regulatory limit. If it meets the limit requirement, it is determined that the radiation emission interference risk of the immersion liquid-cooled server is low. If it exceeds the limit requirement, it is evaluated that the radiation interference risk of the immersion liquid-cooled server is relatively high. It is necessary to rectify the nodes of the immersion liquid-cooled server until the verification passes.

[0066] In this embodiment, a verification device for the radiation value of a server is also provided. This device is used to implement the above-mentioned embodiments and preferred implementation manners, and those that have been described will not be repeated. As used below, the term "module" can be a combination of software and / or hardware that can achieve a predetermined function. Although the devices described in the following embodiments are preferably implemented in software, implementation in hardware, or a combination of software and hardware is also possible and contemplated.

[0067] Figure 4 is a structural block diagram of a verification device for the radiation value of a server according to an embodiment of the present application, as Figure 4 shown, the device includes:

[0068] The first acquisition module 80 is configured to acquire a first radiation value of a preset fixture, where the preset fixture is used to adjust the temperature of the server; the first verification module 82 is configured to determine that the preset fixture passes the verification when the first radiation value is less than a first threshold; the second acquisition module 84 is configured to acquire a second radiation value of the server when the preset fixture passes the verification, where the second radiation value is measured when the server is in the accommodation space of the preset fixture; the second verification module 86 is configured to determine that the radiation value of the server passes the verification when the second radiation value is less than a second threshold.

[0069] The first acquisition module 80 includes: a first acquisition sub-module and a first transmission sub-module; the first acquisition sub-module is configured to adjust the power of the fan module on the preset fixture to the maximum power; when the power of the fan module reaches the maximum power, measure the radiation value of the air-cooled fixture to obtain the first radiation value.

[0070] The first transmission sub-module is configured to determine that the preset fixture fails to pass the verification when the first radiation value is greater than the first threshold after obtaining the first radiation value.

[0071] The second acquisition module 84 includes: a second acquisition sub-module and a second transmission sub-module; where the second acquisition sub-module is configured to control the fan module on the preset fixture to start to adjust the temperature in the accommodation space to the startup temperature required by the server; start the server, and after the server runs for a preset duration, measure the radiation value of the server to obtain the second radiation value, where the preset fixture includes: a box body, where a front window is installed in the front of the box body, a rear window is installed in the rear of the box body, and a fan module is installed at the position of the rear window; the internal space of the box body is the accommodation space of the preset fixture for placing the server; the fan module is used to regulate the internal temperature of the box body.

[0072] The second transmission sub-module is configured to send an indication message to a remote terminal device when the second radiation value is greater than the second threshold, where the indication message is used to indicate that the server fails to pass the verification.

[0073] The second acquisition sub-module includes a measurement unit, and the measurement unit is configured to control the fan module on the preset fixture to start to adjust the temperature in the accommodation space to the startup temperature required by the server; start the server, and after the server runs for a preset duration, measure the radiation value of the server to obtain the second radiation value.

[0074] The above verification device for the server radiation value takes out the immersion liquid-cooled server from the container filled with the coolant by using the chassis fixture provided in the embodiment of the present application, makes it a single node of a server, installs it in the fixture with a fan module, and uses the test data obtained from the fixture with the fan module installed with the liquid-cooled server node to complete the measurement of the radiation value, avoiding the use of the huge heat dissipation device of the immersion liquid-cooled server. Therefore, it can solve the problem of the complex radiation value measurement process caused by the too large volume of the immersion liquid-cooled server device, and further achieves the effect of simplifying the radiation measurement process of the immersion liquid-cooled server.

[0075] It should be noted that the above-mentioned various modules can be implemented by software or hardware. For the latter, it can be achieved in the following ways, but not limited to this: the above-mentioned modules are all located in the same processor; or, the above-mentioned various modules are respectively located in different processors in any combination form.

[0076] The embodiment of the present application also provides a computer-readable storage medium, in which a computer program is stored. Among them, the computer program is set to execute the steps in any one of the above method embodiments when running.

[0077] The above computer-readable storage medium stores the verification method for the server radiation value. By using the chassis fixture provided in the embodiment of the present application, the immersion liquid-cooled server is taken out from the container filled with the coolant, making it a single node of a server, installed in the fixture with a fan module, and using the test data obtained from the fixture with the fan module installed with the liquid-cooled server node to complete the measurement of the radiation value, avoiding the use of the huge heat dissipation device of the immersion liquid-cooled server. Therefore, it can solve the problem of the complex radiation value measurement process caused by the too large volume of the immersion liquid-cooled server device, and further achieves the effect of simplifying the radiation measurement process of the immersion liquid-cooled server.

[0078] In an exemplary embodiment, the above computer-readable storage medium may include, but is not limited to: USB flash drive, read-only memory (ROM for short), random access memory (RAM for short), mobile hard disk, magnetic disk or optical disc and other various media that can store computer programs.

[0079] The embodiment of the present application also provides a computer device, including a memory and a processor. A computer program is stored in the memory, and the processor is set to run the computer program to execute the steps in any one of the above method embodiments.

[0080] The above verification method for the server radiation value executed by the computer device takes out the immersion liquid-cooled server from the container filled with the coolant by using the chassis fixture provided in the embodiments of the present application, makes it a single node of a server, installs it in the fixture with a fan module, and uses the test data obtained from the fixture with the fan module installed with the liquid-cooled server node to complete the measurement of the radiation value, avoiding the use of the huge heat dissipation device of the immersion liquid-cooled server. Therefore, it can solve the problem of the complex radiation value measurement process caused by the too large volume of the immersion liquid-cooled server device, and further achieves the effect of simplifying the radiation measurement process of the immersion liquid-cooled server.

[0081] In an exemplary embodiment, the above computer device may further include a transmission device and an input / output device, wherein the transmission device is connected to the above processor, and the input / output device is connected to the above processor.

[0082] Specific examples in this embodiment may refer to the examples described in the above embodiments and exemplary embodiments, and will not be repeated here.

[0083] Obviously, those skilled in the art should understand that the above-mentioned modules or steps of the present application can be implemented by a general computing device. They can be concentrated on a single computing device or distributed on a network composed of multiple computing devices. They can be implemented by program codes executable by the computing device, so that they can be stored in a storage device and executed by the computing device. And in some cases, the steps shown or described can be executed in a different order from here, or they can be separately made into individual integrated circuit modules, or multiple modules or steps among them can be made into a single integrated circuit module to implement. In this way, the present application is not limited to any specific combination of hardware and software.

[0084] The above is only the preferred embodiment of the present application and is not used to limit the present application. For those skilled in the art, the present application can have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the principle of the present application shall be included in the protection scope of the present application.

Claims

1. A method for verifying the radiation value of a server, characterized in that Including: Obtain a first radiation value of a preset jig, where the preset jig is used to adjust the temperature of the server; When the first radiation value is less than a first threshold, determine that the preset jig passes the verification; When the preset jig passes the verification, obtain a second radiation value of the server, where the second radiation value is measured when the server is in the accommodation space of the preset jig; When the second radiation value is less than a second threshold, determine that the radiation value of the server passes the verification; Wherein, the preset jig includes: a box body, a front window is installed in front of the box body, a rear window is installed at the rear of the box body, and a fan module is installed at the position of the rear window; the internal space of the box body is the accommodation space of the preset jig for placing the server; the fan module is used to regulate the temperature inside the box body; obtaining the first radiation value of the preset jig includes: adjusting the power of the fan module on the preset jig to the maximum power; when the power of the fan module reaches the maximum power, measuring the radiation value of the preset jig to obtain the first radiation value.

2. The method according to claim 1, characterized in that The obtaining the second radiation value of the server includes: When the server is in the accommodation space, measuring the second radiation value of the server, where the second radiation value is measured when the preset jig is in a preset radiation space.

3. The method according to claim 2, wherein Measuring the second radiation value of the server includes: Controlling the fan module on the preset jig to start to adjust the temperature in the accommodation space to the startup temperature required by the server; Starting the server, and after the server runs for a preset duration, measuring the radiation value of the server to obtain the second radiation value.

4. The method according to claim 1, characterized in that After obtaining the first radiation value, the method further includes: When the first radiation value is greater than the first threshold, determine that the preset jig fails to pass the verification.

5. The method according to claim 1, characterized in that, When the second radiation value is greater than the second threshold, send an indication message to a remote terminal device, where the indication message is used to indicate that the server fails to pass the verification.

6. A verification device for the radiation value of a server, characterized in that, Including: A first obtaining module, configured to obtain a first radiation value of a preset jig, where the preset jig is used to adjust the temperature of the server; A first verification module, configured to determine that the preset jig passes the verification when the first radiation value is less than a first threshold; A second obtaining module, configured to obtain a second radiation value of the server when the preset jig passes the verification, where the second radiation value is measured when the server is in the accommodation space of the preset jig; A second verification module, configured to determine that the radiation value of the server passes the verification when the second radiation value is less than a second threshold; Among them, the preset jig includes: a box body, wherein a front window is installed in front of the box body, a rear window is installed behind the box body, and a fan module is installed at the position of the rear window; the internal space of the box body is the accommodation space of the preset jig for placing the server; the fan module is used to regulate the temperature inside the box body; a first acquisition module, including: a first acquisition sub-module, which is used to adjust the power of the fan module on the preset jig to the maximum power; when the power of the fan module reaches the maximum power, measure the radiation value of the preset jig to obtain the first radiation value.

7. A computer device, characterized in that, It includes a memory and a processor, and the processor is used to run a program. Among them, when the program runs, it executes the verification method of the server radiation value described in any one of claims 1 to 5.

8. A non-volatile storage medium, characterized in that, The non-volatile storage medium includes a stored program. Among them, when the program runs, it controls the device where the non-volatile storage medium is located to execute the verification method of the server radiation value described in any one of claims 1 to 5.

Citation Information

Patent Citations

  • Novel edge server architecture

    CN210864530U