ACOUSTIC CUTOFF BASED NOISE REDUCTION DEVICE FOR HEAT DISSIPATION FANS, AND MANUFACTURING METHOD THEREOF
20220082112 · 2022-03-17
Inventors
Cpc classification
F04D29/663
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/545
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/541
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Disclosed is a noise reduction device for heat dissipation fans, the noise reduction device being applied to a heat dissipation fan with an interference structure for rotor and stator blades, wherein the noise reduction device comprises a duct formed at an end portion of a through-flow area of the heat dissipation fan, the inner diameter D of the duct is determined by the size and the rotation speed of the heat dissipation fan, and the axial length L of the duct is determined by an acoustic cutoff condition of the heat dissipation fan.
Claims
1. A noise reduction device for heat dissipation fans, the noise reduction device being applied to a heat dissipation fan with an interference structure for rotor and stator blades, wherein the noise reduction device comprises a duct formed at an end portion of a through-flow area of the heat dissipation fan, the inner diameter D of the duct is determined by a size and a rotation speed of the heat dissipation fan, and an axial length L of the duct is determined by an acoustic cutoff condition of the heat dissipation fan.
2. The noise reduction device for heat dissipation fans of claim 1, wherein the inner diameter D of the duct is greater than or equal to a diameter of the through-flow area of the heat dissipation fan, and the inner diameter D of the duct is less than or equal to an outer frame size of the heat dissipation fan.
3. The noise reduction device for heat dissipation fans of claim 1, wherein the axial length L and the inner diameter D of the duct satisfy 0.08≤L/D≤0.48.
4. The noise reduction device for heat dissipation fans of claim 1, wherein the duct is a flow guide cover in a cylindrical shape, one end of the flow guide cover is connected to a fixing bracket, and the fixing bracket is connected to the outer frame of the heat dissipation fan.
5. The noise reduction device for heat dissipation fans of claim 4, wherein an inner wall of the flow guide cover is smooth.
6. The noise reduction device for heat dissipation fans of claim 4, wherein the inner wall of the flow guide cover is provided with a microporous structure.
7. The noise reduction device for heat dissipation fans of claim 6, wherein a pore size and a porosity of the microporous structure are determined by a noise frequency of the heat dissipation fan.
8. The noise reduction device for heat dissipation fans of claim 7, wherein the pore size of the microporous structure is no more than 1 mm, and the porosity is 1%-3%.
9. The noise reduction device for heat dissipation fans of claim 4, wherein the inner wall of the flow guide cover is provided with a recessed structure.
10. The noise reduction device for heat dissipation fans of claim 9, wherein the recessed structure is a partially ellipsoid shape formed by hollowing out the inner wall.
11. The noise reduction device for heat dissipation fans of claim 4, wherein a horn-shaped air inlet is provided at an end portion of the flow guide cover far away from the fixing bracket.
12. The noise reduction device for heat dissipation fans of claim 11, wherein the horn-shaped air inlet and the flow guide cover are formed integrally.
13. The noise reduction device for heat dissipation fans of claim 11, wherein the horn-shaped air inlet and the flow guide cover are spliced in a split manner, and a splicing place is flat and smooth.
14. The noise reduction device for heat dissipation fans of claim 1, wherein the noise reduction device is formed from a cylindrical structure which is formed by extending a flow channel end wall provided inside the outer frame of the heat dissipation fan outwards, a distance of the cylindrical structure beyond the blades of the heat dissipation fan is L, and the inner diameter of the cylindrical structure is D, where 0.08≤L/D≤0.48.
15. The noise reduction device for heat dissipation fans of claim 14, wherein an end portion of the cylindrical structure is provided with a horn mouth.
16. The noise reduction device for heat dissipation fans of claim 14, wherein the outer frame is a regular hexagon.
17. The noise reduction device for heat dissipation fans of claim 15, wherein an inner wall of the horn mouth is provided with a recessed structure.
18. A method for manufacturing a noise reduction device for heat dissipation fans, comprising the following step: manufacturing a duct structure according to the appearance of a heat dissipation fan, wherein an inner diameter of the duct structure is determined by a size and a rotation speed of the heat dissipation fan, and an axial length of the duct structure is determined by an acoustic cutoff condition.
19. The method of claim 18, wherein the duct structure is a flow guide cover in a cylindrical shape, and the flow guide cover is formed integrally with a fixing bracket and then is connected to the outer frame of the heat dissipation fan.
20. The method of claim 18, wherein the duct structure is formed by extending a flow channel end wall inside the outer frame of the heat dissipation fan outwards.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0043] In the figures: 1—heat dissipation fan, 2—noise reduction device, 3—short tube flow guide cover, 31—microporous structure, 32—horn-shaped air inlet, 4—fixing bracket, 41—sealing ring, 42—rubber pad, 5—outer frame of fan, 6—flow channel end wall, 7—fan blade, 8—horn mouth, 81—recessed structure.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0044] Preferred embodiments of this application will be introduced below with reference to the accompanying drawings of the specification, such that the technical content can be clearly and easily understood. This application can be embodied through embodiments of many different forms, and the protection scope of this application is not limited to the embodiments mentioned herein.
[0045] In the drawings, components with the same structure are denoted by the same numeral, and components with similar structures or functions are denoted by similar numerals. The size and thickness of each component are randomly shown in the drawings, and this application does not limit the size and thickness of each component. In order to make the illustration clearer, a thickness of a component is appropriately exaggerated in some places of the drawings.
[0046] This application provides a noise reduction device for suppressing the noise of a heat dissipation fan, which comprises a duct formed at an end portion of a through-flow area of the heat dissipation fan. The duct may be formed from an additional component added to the heat dissipation fan, or may be formed by modifying the outer frame of the heat dissipation fan. The inner diameter of the duct is determined by the size and the rotation speed of the heat dissipation fan, and the axial length is determined by an acoustic cutoff condition of the heat dissipation fan, such that the duct can inhibit the axial propagation of circumferential acoustic modes for the aerodynamic noise generated by the heat dissipation fan, and achieve the purpose of noise reduction.
Embodiment 1
[0047] As shown in
[0048] The short tube flow guide cover 3 is cylindrical and runs through from top to bottom, and has a certain diameter and wall thickness. For the heat dissipation fan 1 with an obvious interference structure for rotor and stator blades, it will generate circumferential acoustic modes regularly and propagate them into a free field in a rotating manner. The short tube flow guide cover 3 is equivalent to a section of duct, which has an obvious cutoff effect on this kind of rotating circumferential acoustic modes. The cutoff effect is directly related to the inner diameter D of the flow guide cover 3 and the rotation speed of the fan, and the cutoff result is related to the axial length L of the flow guide cover 3.
[0049] As shown in
[0050] According to the cutoff condition
for circumferential acoustic modes, where Ω=942.48 rad/s is the rotation angular velocity of rotor blades, r.sub.0=0.065 m is the tube wall radius, c=344 m/s is the sound speed, n=1, 2, 3, . . . is the number of harmonics of the blade passing frequency, and B=7 is the number of rotor blades, it can be derived that the number of circumferential acoustic modes satisfying the cutoff condition is |m|<n (n≤3) and these modes can be propagated along the duct, while modes that do not satisfy this condition are attenuated exponentially. Variation curves of the magnitude of a propagation factor e.sup.(jωt−|k.sup.
[0051] As shown in
[0052] Specifically, when in use, a noise reduction device is firstly made according to the appearance of a fan with an interference structure for rotor and stator blades, wherein the inner diameter D of the short tube flow guide cover is determined by the size and the rotation speed of the fan, and the axial length L of the flow guide cover is determined by an acoustic cutoff condition; and then the noise reduction device is installed at the upstream and downstream of the through-flow area of the fan, and the short tube flow guide cover is tightly fitted to the fan with the fixing bracket.
Embodiment 2
[0053] As shown in
Embodiment 3
[0054] On the basis of Embodiment 1, a recessed structure may be provided on the inner wall of the short tube flow guide cover 3, and the recessed structure may refer to a recessed structure 81 shown in
Embodiment 4
[0055] In this embodiment, the application of multiple heat dissipation fans 1 connected in series and parallel does not change the principle and action mode of the duct cutoff. This application can also be applied to complex fan arrangements. It should be noted that the structural strength is ensured after installation, and the natural frequency avoids the blade passing frequency and harmonic frequencies to avoid resonance.
Embodiment 5
[0056] The noise reduction device in Embodiments 1 to 3 is formed from a duct part which is formed by adding an additional part to the heat dissipation fan, and the duct part may be an independent part separated from the heat dissipation fan. However, this embodiment provides an example in which a noise reduction device is directly formed on the outer frame of the heat dissipation fan.
[0057] As shown in
[0058] The end portion of the flow channel end wall 6 located at the upstream of the through-flow area of the heat dissipation fan is set as a horn mouth 8, which improves the air intake effect and helps to reduce noise.
Embodiment 6
[0059] This embodiment is an improvement on the basis of Embodiment 5. As shown in
Embodiment 7
[0060] This embodiment is an improvement on the basis of Embodiment 5. As shown in
[0061] Preferred specific embodiments of this application are described in detail above. It should be understood that, a person of ordinary skill in the art can make various modifications and variations according to the concept of this application without creative efforts. Therefore, all technical solutions that can be obtained by those skilled in the art through logical analysis, reasoning or limited experiments based on the concept of the present application and the prior art should fall within the scope of protection defined by the claims.