This application claim priority from Chinese Patent Application Number CN 201711023166.5, filed on Oct. 27, 2017 at the State Intellectual Property Office, China, titled “SYSTEM AND METHOD FOR THE HEAT DISSIPATION OF THE STORAGE DEVICE” the contents of which is herein incorporated by reference in its entirety.
The present disclosure relates to storage devices, and more specifically, to a system and method for heat dissipation of a storage device.
During the use of a conventional chassis that accommodates multi-row disk assemblies, a system for heat dissipation usually can meet the heat dissipation requirements when the disk assemblies operate normally. However, in some particular conditions (e.g., the fault occurs in the fans of partial disk assembly in service mode, one of PSUs in service mode and some specific system), temperature of a part of the affected disk assemblies will significantly increase while other unaffected disk assemblies will still be at a low temperature. Therefore, the requirement of improving balance cooling capability of the system and further increasing the safe operating time under certain conditions has been proposed.
Embodiments of the present disclosure provide a system and method for heat dissipation of a storage device.
In a first aspect of the present disclosure, there is provided a system for heat dissipation for a storage device. The system comprises: a guiding rail mounted in an enclosure of the storage device; a set of fans arranged on the guiding rail and being movable on the guiding rail, the set of fans being configured to dissipate heat of a disk assembly of the storage device; and a controller configured to: obtain a temperature of the disk assembly at a first time point; and in response to the temperature of at least one disk in the disk assembly exceeding a threshold temperature, perform at least one of the following: adjusting a position of at least one of the set of fans; and increasing a rotational speed of at least one of the set of fans.
In a second aspect of the present disclosure, there is provided a method for heat dissipation for a storage device. The method comprises: obtaining a temperature of a disk assembly of the storage device at a first time point; and in response to the temperature of at least one disk in the disk assembly exceeding a threshold temperature, performing at least one of the following for a set of fans: adjusting a position of at least one of the set of fans; and increasing a rotational speed of at least one of the set of fans; wherein the set of fans are arranged on a guiding rail mounted in an enclosure of the storage device and is movable on the guiding rail, the set of fans being configured to dissipate the heat of the disk assembly of the storage device.
The Summary is to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This Summary is not intended to identify key features or essential features of the present disclosure, nor is it intended to be used to limit the scope of the present disclosure.
Through the following detailed description with reference to the accompanying drawings, the above and other objectives, features, and advantages of example embodiments of the present disclosure will become more apparent. Several embodiments of the present disclosure will be illustrated by way of example but not limitation in the drawings in which:
Principle of the present disclosure will now be described with reference to some example embodiments. It is to be understood that these embodiments are described only for the purpose of illustration and help those skilled in the art to understand and implement the present disclosure, without suggesting any limitations as to the scope of the disclosure. The disclosure described herein can be implemented in various manners other than the ones described below.
As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. The term “includes” and its variants are to be read as open terms that mean “includes, but is not limited to.” The term “based on” is to be read as “based at least in part on.” The term “one embodiment” and “an embodiment” are to be read as “at least one embodiment.” The term “another embodiment” is to be read as “at least one other embodiment.” The terms “first,” “second,” and the like may refer to different or same objects. Other definitions, explicit and implicit, may be included below.
During the use of a conventional chassis that accommodates multi-row disk assemblies, a system for heat dissipation usually can meet the heat dissipation requirements when the disk assemblies operate normally. However, in some particular conditions (e.g., the fault occurs in the fans of partial disk assembly in service mode, one of PSUs in service mode and some specific system), temperature of a part of the affected disk assemblies will significantly increase while other unaffected disk assemblies will still be at a low temperature. Since the position of a conventional fan or other cooling device for cooling these components inside the chassis is fixed, targeted cooling of the internal components of the chassis that are hot or faulty cannot be performed. In this case, it is expected to improve balance cooling capability of the system and increase the safe operating time under certain conditions.
Therefore, there is provided a system for heat dissipation of a storage device in accordance with the present disclosure, which can perform adaptive cooling on assemblies inside the heating or faulted chassis, for example, by changing the position of the fan to make it closer to the heating assembly, or increasing cooling air provided in a direction towards the heating assembly etc.
In the example shown in
The fans 120 may each be configured to direct heat generated by the disk assembly 200 outside the enclosure 300 to cool the disk assembly 200, and the fans 120 are also configured to be movable on the guiding rail 110.
In the example shown in
The system for heat dissipation 100 in the example shown in
The first fan 1201 in
As a stepper motor, the electric motor 130 is configured to drive the first fan 1201 when the signal connector 140 receives a signal, to change the position of the first fan 1201 or increase the rotational speed of the first fan 1201. The signal connector 140 may be, for example, an electrical line connected to a backplate (not shown) etc. By connecting to the backplate, the signal connector 140 may receive the signal from the baseboard management controller, so as to adjust position and/or rotational speed of the first fan 1201. In other words, the received signal may indicate the step number of movement by the electric motor 130 of the first fan 1201. The movement process executed by the electric motor 130 of the first fan 1201 in response to receiving the control signal will be described in details below.
Besides, the received signal may also indicate increasing rotational speed of the first fan 1201.
As shown in
To further describe position and function of the anti-collision component between two adjacent fans (such as the first fan 1201 and the second fan 1202),
As described above, the motor 130 of the first fan 1201 may drive, based on the received signal, the first fan 1201 to change the position of the first fan 1201. Examples in this aspect will be described below by continuing taking the first fan 1201 as the example with reference to
In the example shown by
At 610, the controller obtains the temperature of the disk assembly 200 at a first time point. The temperature is obtained, for example, by polling the temperature of the disk assembly 200.
At 620, the controller determines whether at least one disk has a temperature exceeding a threshold temperature. If at least one disk (e.g., disk 210 in
In the example shown in
In some embodiments, the controller adjusts the position of the first fan 1201 may include the controller drives the electric motor 130 mounted on the first fan 1201 by transmitting the control signal to the first fan 1201, such that the first fan 1201 is driven towards the at least one disk (e.g., disk 210 in
In some embodiments, if there is no disk in the disk assembly 200 has a temperature exceeding a threshold temperature, back to 610, the controller obtains the temperature of the disk assembly at a further time point.
Additionally or alternatively, in some embodiments, after obtaining the temperature of the disk assembly at 610, if the controller determines that a plurality of disk assemblies (e.g., more than one disk assembly) have the temperatures exceeding the threshold temperature, the rotational speed of at least one of, at least a part of or full of the set of fans 120 can be increased.
At 710, the controller determines, based on the position of the at least one disk having the temperature exceeding the threshold, a fan to be moved from the set of fans. The disk/disks having the temperature exceeding the threshold may be, for example, determined at 620 of the method 600 and the determination process will not be repeated here.
According to embodiments of the present disclosure, the fan to be moved may be determined from a set of fans in various ways. The embodiment of determination will be described below by means of the example of
It should be understood that the fan to be moved may include one or more fans, for example, selecting a fan closest to the disk 210 on the right side, e.g., the first fan 1201, or selecting a fan closest to the disk 210 on the left side, such as the third fan 1203. Both the fan closest to the disk 210 on the right side and the fan closest to the disk 210 on the left side may be selected as the fans to be moved if needs, to move them simultaneously.
Once the fan to be moved is determined, at 720, the controller determines the position of the first fan 1201 and a distance of the first fan 1201 to other adjacent fans in the movement direction.
As described above, the first fan 1201 is the fan closest to the disk 210 on the right side, which means the first fan 1201 should be moved to the left (in a direction 820 of
After the distance d is determined, at 730, the controller determines whether the distanced exceeds a movement distance of the first fan 1201. If the controller determines that the distance d exceeds a movement distance of the first fan 1201, at 740, the first fan 1201 is moved. If the controller determines that the distanced does not exceeds a movement distance of the first fan 1201, at 750, the rotational speed of the first fan 1201 is increased.
If the fan closest to the disk 210 on the left side, e.g., the third fan 1203, is selected as the fan to be moved, a distance of the third fan 1203 to its adjacent fans in the direction 810 will be determined. The rest actions are identical to the above procedure.
Since the process in which the motor 130 is mounted on the first fan 1201 to drive the movement of the first fan 1201 in response to the control signal has been described by taking the first fan 1201 as the example, no further description is provided in this section.
Although not shown in the flowchart 700 of
Various embodiments of the present disclosure have been described above and the above description is only exemplary rather than exhaustive and is not limited to the embodiments of the present disclosure. Many modifications and alterations, without deviating from the scope and spirit of the explained various embodiments, are obvious for those skilled in the art. The selection of terms in the text aims to best explain principles and actual applications of each embodiment and technical improvements made in the market by each embodiment, or enable other ordinary skilled in the art to understand embodiments of the present disclosure.
Number | Date | Country | Kind |
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201711023166.5 | Oct 2017 | CN | national |