Houseless fan with rotating tip ring as silencer
The stationary housing of a conventional fan assembly is replaced with a rotating tip ring. The rotating tip ring has a shaped cross-sectional profile to enhance performance and eliminate tonal noise associated with the fundamental (or blade passing) frequency and its harmonics.
The present invention relates generally to an axial flow fan and in particular to a fan impeller having improved noise characteristics.
Conventional fans typically comprise a motor and an impeller coupled to the motor. The impeller includes a hub to which a set of fan blades are attached. The hub is connected to the rotor of the motor. Existing fan designs typically include a stationary housing to house the fan. The housing is a common source of fan noise in such designs.
Every rotating fan radiates noise. Noise is function of a number of factors which include fan speed, size, and blade shape. Most of the acoustic energy reveals itself as frequencies or tones (referred to as “tonal noise”) which contain most of the acoustic power, and are thus annoying to the listener. These tonal modes are the harmonics; the first being the fundamental frequency (f, or the blade passing frequency), the second being 2f, the third is 3f, and so on. In other words, acoustic power is distributed among the harmonics, which show up as peaks in the noise spectrum.
BRIEF SUMMARY OF THE INVENTIONA fan impeller according to the present invention includes a hub having attached to it a plurality of fan blades. A ring is provided at the tips of the fan blades. The ring, which has a curved interior surface cross-sectional profile, reduces tonal noise.
An axial fan according to the present invention includes a fan impeller having fan blades radially attached to a hub and having a ring attached to tips of the fan blades. The interior wall surface of the ring is a shaped profile, where the inside diameter of the ring varies along a height dimension of the ring.
In accordance with the present invention, the fan housing is replaced by a rotating tip ring. The ring location (at the tip), its shape (circular arc extended upstream and downstream of the blade), and its function (silencer) are unique to the present invention.
An advantage of the present invention is the elimination, minimization, or otherwise reduction of noise during operation of the fan, particularly tonal noise. An axial fan according to the present invention exhibits increased performance. An axial fan according to the present invention is cheaper to produce due to a reduced parts count; i.e., there is no housing. The tip ring prevents or otherwise reduces the occurrence of fan stall.
The invention provides a rotating tip ring attached to the tip of the blades of an axial fan impeller which replaces classical housing structures, and which acts as a silencer by eliminating noise created by rotation of the impeller, particularly tonal noise. To enhance performance, an embodiment of the tip ring is constructed as a circular-arc which starts upstream of the leading edge and which ends downstream of the trailing edge.
The figures described below demonstrate the basic concept and an illustrative specific instantiation of the tip-ring structure of an impeller in accordance with the present invention.
The figures show that the tips 104a of the fan blades 104 are connected to the annular member 106. In other words, the annular member 106 is attached to the tips of the fan blades 104. This connection provides support for the fan blades 104 in addition to other benefits discussed below. The figures show that the tips 104a do not extend beyond the exterior surface of the annular member 106.
The direction of an airflow resulting during operation of the impeller 100 is shown in the figures, where the airflow enters an inlet side of the impeller and exits an outlet side. In
Similarly, the inside diameter of the ring generally increases in the downstream direction from the trailing edge 104d of the fan blades 104, which is shown in
In the particular embodiment of the present invention shown in
This construction creates a flow area that converges (a compression zone) downstream of the blade leading edge 104c and a flow area that diverges (a expansion zone) downstream of the blade trailing edge 104d. As a result of the compression of the air inflow followed by an expansion of the air outflow, the ring 106 eliminates (or otherwise reduces) tonal noise associated with the fundamental frequency and its harmonics. In other words, the ring 106 acts as a silencer, either eliminating or otherwise reducing noise, particularly tonal noise.
Returning to
As can be seen in the figure, the tip ring 106 extends upstream of the fan leading edge 104c by a non-zero amount d1 (i.e., d1>0). The tip ring 106 extends downstream of the fan trailing edge 104d by a non-zero amount d2 (i.e., d2>0). In the particular embodiment of the invention shown in
The particular embodiment of the present invention illustrated in
Referring again to
Though not important to the practice of the present invention, a brief discussion of the acoustic properties of the present invention will help with an appreciation of the novelty and advantages of the present invention.
Rotation of a conventional impeller enclosed in a stationary housing creates tonal noise associated with the blade passing frequency (BPF, f) and its higher harmonics (2f, 3f, 4f, etc). The fan acoustic profile reveals that acoustic power is concentrated at these discrete frequencies (f, 2f, 3f, etc).
Experiments revealed that removing the stationary housing of a conventional fan and replacing the impeller with a rotating impeller designed according to the present invention resulted in “taming” (removal or reduction in amplitude) of tonal noise. The fundamental frequency and higher harmonics are silenced due to sudden area expansion downstream of the ring as discussed above.
As best understood, the rotating tip-ring of the present invention creates other frequencies which interact with and eliminate tonal noise. In other words, the tip-ring acts like a silencer. By creating new frequencies, the tip ring weakens tonal modes by forcing the available acoustic power to be distributed over a broader frequency spectrum, those frequencies due to rotation PLUS those frequencies due to the rotating tip-ring. Put in another way, with a conventional impeller (absent the tip ring) the acoustic power ends up being concentrated about a discrete number of frequencies, namely the fundamental and the second and third harmonics. However, an impeller designed with the tip ring of the present invention, the generated acoustic power ends up being distributed over a large number of frequencies.
The tip ring of the present invention also enhances performance, enabling the fan to capture more flow and to produce more pressure (relative to a fan without tip ring but with stationary housing) more efficiently. The tip ring also hinders stall.
While the above provides a detailed description of various embodiments of the invention, many alternatives, modifications, and equivalents are possible. Therefore, the above description should not be taken as limiting the scope of the invention, which is defined by the appended claims.
Claims
1. A fan impeller for an axial fan comprising:
- a hub;
- a plurality of fan blades disposed about the hub; and
- a band disposed circumferentially about the fan blades and attached to the fan blades at respective tips of the fan blades, the ring having a thickness dimension measured between an inlet side of the ring and an outlet side of the ring, the thickness dimension exceeding the axial chord dimension of the fan blades,
- the inside diameter of the ring varying from the inlet side thereof to the outlet side thereof and having a minimum inside diameter measurement at a location downstream of the inlet side of thereof and upstream of the outlet side thereof,
- wherein the inside diameter measurement of the ring at the inlet side thereof exceeds the minimum inside diameter measurement,
- wherein the inside diameter measurement of the ring at the outlet side thereof exceeds the minimum inside diameter measurement.
2. The impeller of claim 1 wherein the inside diameter measurement of the ring at the inlet side thereof is substantially equal to the inside diameter measurement of the ring at the outlet side thereof.
3. The impeller of claim 1 wherein the inlet side of the ring extends beyond leading edges of the fan blades in the upstream direction and the outlet side of the ring extends beyond trailing edges of the fan blades in the downstream direction.
4. The impeller of claim 1 wherein air enters the inlet side of the ring and the air exits the outlet side of the ring when the impeller is made to spin.
5. A fan impeller for an axial fan comprising:
- a hub;
- a plurality of fan blades radially disposed about the hub and connected to the hub; and
- an annulus attached to tips of the fan blades, wherein an inside diameter of the annulus from a location between an inlet face of the annulus and an outlet face of the annulus increases in the direction toward the inlet face and also increases in the direction toward the outlet face.
6. The impeller of claim 5 wherein the inside diameter of the annulus at the inlet face is substantially equal to the inside diameter of the annulus at the outlet face.
7. The impeller of claim 5 wherein the measurement between the outlet face and the inlet face exceeds the axial chord dimension of the fan blades.
8. The impeller of claim 5 wherein the inlet face of the annulus extends beyond leading edges of the fan blades in the upstream direction and the outlet face of the annulus extends beyond trailing edges of the fan blades in the downstream direction.
9. An axial fan comprising an impeller, the impeller comprising a plurality of blades disposed about a hub and an impeller ring attached at tips of the blades, the impeller ring having a compression zone at the inlet side thereof wherein a flow of air entering the inlet side is subject to compression, the impeller ring having an expansion zone at the outlet side thereof wherein the flow of air exiting the outlet side expands.
10. The fan of claim 9 wherein the impeller ring has a thickness measurement that exceeds the axial chord measurement of the blades.
11. The fan of claim 9 wherein the impeller ring has a minimum inside diameter at a location downstream of leading edges of the blades and upstream of trailing edges of the blades.
12. The fan of claim 9 wherein an inlet face of the impeller ring extends beyond leading edges of the blades, wherein an outlet face of the impeller ring extends beyond trailing edges of the blades.
13. The fan of claim 9 wherein the inner surface of the impeller ring has an arcuate profile.
14. An axial fan comprising a hub and a plurality of fan blades disposed about the hub, the impeller further comprising a tip ring encircling the fan blades and attached to respective tips of the fan blades, the tip ring having an inlet zone on an inlet side thereof and an outlet zone on an outlet side thereof, wherein air that enters the inlet zone when the impeller is made to spin is subject to compression, wherein air that exits the outlet zone when the impeller is made to spin expands.
15. The fan of claim 14 wherein the tip ring has a thickness measurement that exceeds the axial chord measurement of the fan blades.
16. The fan of claim 14 wherein the fan ring has a minimum inside diameter at a location downstream of leading edges of the fan blades and upstream of trailing edges of the blades.
17. The fan of claim 14 wherein an inlet face of the tip ring extends beyond leading edges of the fan blades, wherein an outlet face of the tip ring extends beyond trailing edges of the fan blades.
18. The fan of claim 14 wherein the inner surface of the tip ring has an arcuate profile, or an angulated profile, or a segmented profile.
19. A method for a fan comprising:
- rotating an impeller of the fan;
- during rotation of the impeller, confining an incoming flow of air to within a region about equal to a diameter of the impeller;
- further during rotation of the impeller, compressing the incoming flow of air in an inlet region of the impeller; and
- further during rotation of the impeller, expanding an outflow of air at an outlet region of the impeller.
20. The method of claim 19 wherein the step of confining includes providing a ring about tips of blades of the impeller.
21. The method of claim 20 wherein the ring has a minimum inside diameter at an inner distance between an inlet face of the ring and an outlet face of the ring.
22. The method of claim 20 wherein an inlet face of the ring extends beyond leading edges of the blades, wherein an outlet face of the ring extends beyond trailing edges of the blades.
Type: Application
Filed: Dec 10, 2007
Publication Date: Jun 11, 2009
Applicant: Minebea Co., Ltd. (Tokyo)
Inventors: Yousef M. Jarrah (Casa Grande, AZ), Thang D. Nguyen (Scottsdale, AZ), Hanson C. Situ (Gilbert, AZ)
Application Number: 11/953,765
International Classification: F01D 5/22 (20060101);