COOLING SYSTEM FOR STREAMLINED AIRFLOW
20180003192 ยท 2018-01-04
Inventors
- Chao-Jung CHEN (Taoyuan City, TW)
- Yu-Nien HUANG (Taoyuan City, TW)
- Ching-Yu CHEN (Taoyuan City, TW)
- Tsung-Ta LI (Taoyuan City, TW)
Cpc classification
F04D29/542
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20736
ELECTRICITY
F04D29/325
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20727
ELECTRICITY
International classification
F04D29/54
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20
ELECTRICITY
F04D29/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A cooling system includes a fan and a system component. The fan includes a plurality of fan blades and configured to rotate in a fan direction. The system component is located downstream of the fan, and includes a cutout for passing of airflow from the fan, and a bridge spanning the cutout. The bridge includes a center section and at least one arm section extending from the center section to an edge of the cutout along a curved path offset towards the fan direction.
Claims
1. A system for providing streamlined airflow, comprising: a fan comprising a plurality of fan blades and configured to rotate in a fan direction; and a system component located downstream of the fan, comprising a cutout for passing of airflow from the fan, and a bridge spanning the cutout, wherein the bridge comprises: a center section; and at least one arm section extending from the center section to an edge of the cutout along a curved path offset towards the fan direction;
2. The system of claim 1, further comprising a spinner faring that extends from the center section of the system component.
3. The system of claim 1, further comprising a reverse blade faring extends from each of the at least one arm section.
4. The system of claim 1, wherein each of the plurality of fan blades comprises a leading fan edge facing towards the fan direction and a trailing fan edge facing against the fan direction, wherein each of the at least one arm section comprises a leading arm edge facing the fan direction and a trailing arm edge facing against the fan direction.
5. The system of claim 4, wherein the leading arm edge follows a convex path from the center section to the edge of the cutout.
6. The system of claim 4, wherein the trailing arm edge follows a concave path from the center section to the edge of the cutout.
7. The system of claim 4, wherein the leading arm edge and trailing arm edge have an approximately equivalent shape.
8. The system of claim 4, wherein the leading arm edge of each of the at least one arm section is shaped such that, during rotation of the fan in the fan direction, a first tangent line of the leading arm edge and a second tangent line of the trailing fan edge of any of the plurality of fan blades intersect at an angle that is between 75 degrees and 105 degrees for a majority of rotational positions of the fan.
9. The system of claim 8, wherein the majority of rotational positions of the fan comprise at least 75 percent of rotational positions of the fan.
10. The system of claim 8, wherein the angle is approximately 90 degrees.
11. The system of claim 8, wherein the angle is between 83 degrees and 97 degrees.
12. The system of claim 1, wherein the center section is circular shaped.
13. The system of claim 1, wherein the center section is substantially aligned with a center fan section.
14. The system of claim 1, wherein each of the at least one arm section is equivalent shape.
15. The system of claim 1, wherein the at least one arm section comprises a single arm section.
16. The system of claim 1, wherein the at least one arm section comprises two arm sections that extend from opposite sides of the center section.
17. The system of claim 1, wherein the at least one arm section comprises three or more arm sections.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] These and other sample aspects of the present technology will be described in the detailed description and the appended claims that follow, and in the accompanying drawings, wherein:
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
DETAILED DESCRIPTION
[0018] The subject disclosure provides cooling systems for improved airflow. Various aspects of the present technology are described with reference to the drawings. In the following description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of one or more aspects. It is evident, however, that the present technology can be practiced without these specific details. In other instances, well-known structures and devices are shown in block diagram form in order to facilitate describing these aspects.
[0019] Various server chassis designs are used to accommodate a large number of hard disk drives, motherboards, and fans. The various server chassis designs often places particular computer modules in different positions in the server chassis to improve airflow and cooling. A component that lies downstream of a fan will impede airflow. The disclosure provides a cooling system that lessens the impedance of airflow downstream of fans. The cooling system can be applied in a computer system, such as a server chassis, or in other devices.
[0020]
[0021] The fan 110 is configured to move air towards and through the system component 120. For example the fan 110 can be a standard fan, which is commonly square shaped and one of 80 mm, 92 mm, 320 mm, 340 mm, 200 mm, or 230 mm in width and length. Typically, when larger fans are used, few fans and less rotation speed are needed to produce an equivalent amount of airflow as compared to using smaller fans.
[0022] The fan 110 includes a plurality of fan blades 112 (e.g., four fan blades 112 are shown). The fan 110 includes a center fan section 114 by which each of the plurality of fan blades 112 are attached. When in operation, the center fan section 114 and the fan blades 112 rotate either clockwise or counter-clockwise. The fan 110 can be powered by an electric motor (not shown) connected to the center section 114. The fan blades 112 can be implemented in a wide variety of shapes and sizes. For example, each of the fan blades 112 may have a flat planar shape or a curved planar shape. However, the present disclosure contemplates that any size or shape can be used for fan blades 112.
[0023] Each of the fan blades 112 are attached to the center fan section 114 at an angle that allows the fan blade to move air towards the system component 120 when the fan 110 is rotated during operation.
[0024] The system component 120 is located downstream of the fan 110. The system component 120 is any object that acts as an obstacle to airflow from the fan 110. For example, the system component 120 can be a printed circuit board (PCB) that provides connections between various components of a server chassis. The system component 120 includes a cutout to allow air to flow past the system component 120 from the fan 110. The system component 120 includes a bridge 122 that spans the cutout. The bridge 122 specifically acts as an obstacle to the airflow from the fan 110.
[0025]
[0026] The fan 110 in the example cooling system 100 shown includes two rotors that are located in-line with each other, but similar principles apply to single rotor fans. Each rotor includes a plurality of fan blades 112 and a center fan section 114. The fan 110 draws airflow in 210 and through 220 the system component 120
[0027] The system component 120 is located downstream of the fan 110. The system component 120 includes a bridge 122 that spans the cutout. The bridge 122 specifically acts as an obstacle to the airflow from the fan 110. The bridge 122 causes turbulent airflow on both sides of the bridge 122 that reduces total airflow 220 through the system component 120.
[0028]
[0029] The fan section 340 includes one or more fans 342 that move air through the server system 300 from the fan section 340 in the direction towards the motherboard section 360. The fans 342 cause air to be pulled through the midplane board 350 to the motherboard section 360.
[0030] The motherboard section 360 includes one or more motherboards 362. Each motherboard 362 (also known as mainboard, system board, planar board, or logic board) is a main printed circuit board (PCB) found in computers and other expandable systems. The motherboard 362 holds and allows communication between many electronic components (not shown) of a computer system, such as the central processing unit (CPU) and memory, and provides connectors for other peripherals.
[0031] The midplane board 350 is located between the fan section 340 and the motherboard section. The midplane board 350 provides connections to the one or more motherboards 362. In some aspects, the midplane board 350 is arranged parallel to the front panel 310. In some aspects, the midplane board 350 is a printed circuit board (PCB) that includes hot pluggable connectors that allow insertion of each of the motherboards 362. The midplane board 350 connects to the backplane board 330 to allow communication between the motherboards 362 and the storage devices 322 and to provide the motherboards 362 with power. The midplane board 350 includes at least one cutout 354 for allowing air to flow from the fan section 340 to the motherboard section 360. The each cutout 354 of midplane board 350 includes a bridge (not shown). The midplane board 350 is an example of the system component 122 that obstructs airflow as described in
[0032] However, while components can be arranged in a server chassis to improve airflow, the typical cutout shapes implemented in a server chassis introduce turbulence and impede efficient airflow. Therefore, the present disclosure contemplates utilizing particular shapes of the cutouts and bridges that are configured to increase airflow from each of the fans into a server chassis. This is illustrated below with respect to
[0033]
[0034] The fan 410 is configured to move air towards and through the system component 420. For example the fan 410 can be a standard fan, which is commonly square shaped and one of 80 mm, 92 mm, 320 mm, 340 mm, 200 mm, or 230 mm in width and length. Typically, when larger fans are used, fewer fans and lower rotational speeds are needed to produce an equivalent amount of airflow as compared to using smaller fans.
[0035] The fan 410 includes a plurality of fan blades 412 (e.g., four fan blades 412 are shown). The fan 410 includes a center fan section 414 to which each of the plurality of fan blades 412 are attached. When in operation, the fan 410 rotates the center section 414 and the fan blades 412 in a fan direction of either a clockwise or counter-clockwise direction. For example, the fan direction can be counter-clockwise as shown in
[0036] The fan 410 is powered by an electric motor (not shown) connected to the center fan section 414. The fan blades 412 are available in a wide variety of shapes and sizes. For example, each of the fan blades 412 may have a flat planar shape or a curved planar shape. However, the present disclosure contemplates that other shapes can be used as well.
[0037] Each fan blade 412 includes a leading fan edge 415 facing towards the fan direction and a trailing fan edge 416 facing against the fan direction. Each of the fan blades 412 are attached to the center fan section 414 at a blade angle (i.e., blade angle in relation to an axle of rotation of the fan) that allows the fan blade to move air towards the system component 420 when the fan 410 is rotated during operation.
[0038] The system component 420 is located downstream of the fan 410. The system component 420 is any object that acts as an obstacle to airflow from the fan 410. For example, the system component 420 can be a printed circuit board (PCB) that provides connections between various components of a server chassis. The system component 420 includes a cutout to allow air to flow past the system component 420 from the fan 410.
[0039] The system component 420 includes a bridge 422 that spans the cutout. The bridge 422 specifically acts as an obstacle to the airflow from the fan 410. The bridge 422 includes a center section 428 and at least one arm section 422 (two arm sections are shown). In some implementations, there may be three or more arm sections 422.
[0040] In some implementations, the center section 428 is circular shaped. The center section 428 may be aligned with the center fan section 414.
[0041] Each arm section 422 extends in a curved path from the center section 428 to an edge 430 of the cutout. Each arm section 422 is connected to the center section 428 and offset towards the fan direction. That is, for the counter-clockwise fan direction shown, each arm section 422 is offset counter-clockwise from the center section 428 as shown in
[0042] Each arm section includes a leading arm edge 424 and a trailing arm edge 426. The leading arm edge 424 faces the fan direction and the trailing arm edge 426 faces against the fan direction.
[0043] In some implementations, the leading arm edge 424 follows a convex path from the center section 428 to the edge 430 of the cutout. In some implementations, the trailing arm edge 426 follows a concave path from the center section 428 to the edge 430 of the cutout. In some implementations, wherein the leading arm edge 424 and trailing arm edge 426 have an approximately equivalent shape.
[0044] In some implementations, the leading arm edge 424 of each arm section 422 is shaped such that, during rotation of the fan 410 in the fan direction, a first tangent line of the leading arm edge 424 and a second tangent line of the trailing fan edge 416 of any of the fan blades 412 intersect at an angle 430 that is approximately 90 degrees (e.g., between 75 degrees and 105 degrees) for a majority of rotational positions of the fan 410, as shown in
[0045] In some implementations, the majority of rotational positions of the fan 410 include at least 75 percent of rotational positions of the fan. In some implementations, the angle 430 is between 83 degrees and 97 degrees.
[0046]
[0047]
[0048] The spinner faring 528 is a part of or an addition to the center section of the system component 520. In some implementations, the spinner faring 528 is cone shaped. In some implementations, the spinner faring 528 has a shape of a tear drop tail. It is understood that the spinner faring 528 can be of any shape that decreases turbulent airflow downstream of the center section of the system component 520.
[0049] Each reverse blade faring 522 is a part of or an addition to each arm section of the system component 520. In some implementations, each reverse blade faring 522 622 has a cross-section shaped as a curved wedge.
[0050] Each of the fan blades 512 are attached to the center fan section at a blade angle (i.e., blade angle in relation to an axle of rotation of the fan) that allows the fan blade to move air towards the system component 520 when the fan 510 is rotated (e.g., clockwise as shown in
[0051]
[0052] The spinner faring 628 is a part of or an addition to the center section of the system component 620. In some implementations, the spinner faring 628 is cone shaped. In some implementations, the spinner faring has a shape of a tear drop tail. It is understood that the spinner faring can be of any shape that decreases turbulent airflow downstream of the center section of the system component 620. In some implementations, a part of the spinner faring extends from the center section of the system component 620 towards the center fan section of the fan 610.
[0053] Each reverse blade faring 622 is a part of or an addition to each arm section of the system component 620. In some implementations, each reverse blade faring 622 has a cross-section shaped as a double convex.
[0054] Each of the fan blades 612 are attached to the center fan section at a blade angle (i.e., blade angle in relation to an axle of rotation of the fan) that allows the fan blade to move air towards the system component 620 when the fan 610 is rotated (e.g., clockwise as shown in
[0055] The previous description of the disclosure is provided to enable any person skilled in the art to make or use the disclosure. Various modifications to the disclosure will be readily apparent to those skilled in the art, and the generic principles defined herein can be applied to other variations without departing from the scope of the disclosure. Thus, the disclosure is not intended to be limited to the examples and designs described herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.