The present application relates to the field of impellers, and more particularly, to an impeller for a centrifugal fan.
In existing technologies, vanes in an impeller are arc shaped, and the vane surface is a smooth curved surface. Since the flow separation is serious on the vane surface and vortices are formed, the vanes have poor pneumatic performance and high noise.
Exemplary embodiments of the present application can solve at least some of the above problems.
According to a first aspect of the present application, the present application provides an impeller for a centrifugal fan, wherein the impeller comprises a support member and several vanes. The support member is cylindrical and has an inner wall that defines a hollow portion. The several vanes are arranged inside the hollow portion, each of the several vanes is connected with the inner wall and extends along the axial direction of the support member, and the several vanes are arranged along the circumferential direction of the support member. Here, each of the several vanes is bent and comprises a front edge, a tail edge, a convex suction surface, and a concave pressure surface, the suction surface and the pressure surface are arranged to oppose each other, and the front edge and the tail edge are arranged to oppose each other, wherein the tail edge is connected with the inner wall of the support member, and wherein several protrusions are provided on the suction surface, and the several protrusions are arranged to be close to the front edge.
According to the impeller in the above first aspect, each of the several vanes has a length direction defined along the axial direction of the support member and a width direction from the front edge to the tail edge. The several protrusions are arranged in several rows along the width direction, and the protrusions in each row are arranged in the length direction, wherein, in the width direction, protrusions in different rows are in a staggered arrangement.
According to the impeller in the above first aspect, projections of the several protrusions on a plane perpendicular to the radial direction of the support member are not overlapped.
According to the impeller in the above first aspect, all the protrusions in each row have the same shape and size.
According to the impeller in the above first aspect, each of the protrusions has a protrusion height, and the protrusion height is a distance between the highest point of the top of the protrusion and the suction surface on an axial cross section of the support member. The shape of each of the several protrusions is set to have the highest point of a top, and the highest points of the tops of all the protrusions in each row are arranged along a straight line parallel to the axial direction of the support member; a distance S between the straight line on which the highest points of the tops of the protrusions in the row farthest from the front edge are located and the straight line on which the ends of the front edge are located and a vane width W satisfy the following:
S=A×W;
where the value range of A is greater than or equal to ⅓ and smaller than or equal to ⅖.
According to the impeller in the above first aspect, in the protrusions in each row, the spacing between the highest points of the tops of two adjacent protrusions is the same.
According to the impeller in the above first aspect, the several protrusions are configured as follows: in two adjacent rows of protrusions, the protrusion height of the protrusions in the row close to the front edge is not smaller than the protrusion height of the protrusions in the row close to the tail edge.
According to the impeller in the above first aspect, the tops of the several protrusions have a lower portion located around the highest point.
According to the impeller in the above first aspect, each of the several protrusions is partially spherical, olive shaped, or teardrop shaped.
According to a second aspect of the present application, the present application provides a centrifugal fan, which comprises the above impeller.
The protrusions on the impeller of the present application can regulate the flow of a fluid immediately when the fluid contacts the vanes, and after the flow regulation, no other protrusions contact the regulated fluid again, which prevents the fluid from being disturbed again. During the flow regulation process, a large vortex in the fluid can be divided into several small vortices, the top direction of the vortices is consistent with the fluid moving direction, and the bottom direction of the vortices is opposite to the fluid moving direction. Such small vortices have smaller friction resistance, and the kinetic energy dissipated from the motion of the small vortices themselves can be partially cancelled out, thereby reducing the noise of the impeller and improving the performance of the centrifugal fan.
Features and advantages of the present application can be better understood by reading the detailed description below with reference to the accompanying drawings. In all the accompanying drawings, the same legends represent the same parts, wherein
Various implementation manners of the present application will be described below with reference to the accompanying drawings that form a part of this description. It should be understood that terms used herein to indicate directions, such as “front,” “rear,” “up,” “down,” “left,” “right,” and the like, are used to describe various example structural parts and elements of the present invention in terms of directions or positions thereof, but the use of these terms herein is merely for ease of description, and these terms are determined according to the example positions shown in the accompanying drawings. Since the embodiments disclosed by the present invention may be arranged according to different directions, these terms that indicate directions merely serve as a description, and shall not be regarded as limitations. In the accompanying drawings below, the same parts use the same legends, and similar parts use similar legends.
As shown in
In the examples of the present application, the impeller 102 is an impeller with air intake at left and right sides. A person skilled in the art can understand that, for an impeller with air intake at a single side (i.e., either the left side or the right side), only two support rings and several vanes 202 arranged between the two support rings are needed. Therefore, each vane 202 in the several vanes 202 to be described below refers to a vane 202 arranged between the first ring 221 and the second ring 222 or a vane 202 arranged between the second ring 222 and the third ring 223.
As shown in
S=A×W;
where the value range of A is greater than or equal to ⅓ and smaller than or equal to ⅖.
The distance between the straight line on which the highest points of the tops of the protrusions 311 in the first row are located and the straight line on which on which the highest points of the tops of the protrusions 311 in the second row are located is the distance S1, and the distance between the straight line on which the highest points of the tops of the protrusions 311 in the second row are located and the straight line on which on which the highest points of the tops of the protrusions 311 in the third row are located is the distance S2. The distance S, the distance S1, and the distance S2 satisfy the following:
S1=B×S, S2=1/2(S−S1);
where the value range of B is greater than or equal to ¼ and smaller than or equal to ⅓.
The protrusion height H is a distance between the highest point of the top of each protrusion 311 and the suction surface 305. The protrusions 311 in each have the same protrusion height H. Here, the protrusions 311 that are the closest to the front edge 301 are the first row, and the protrusion height of each protrusion 311 in the first row is H1. The protrusion height of each protrusion 311 in the second row is H2. The protrusion height of each protrusion 311 in the third row is H3. The several protrusions 311 are configured as follows: in two adjacent rows of protrusions 311, the protrusion height of the protrusions 311 in the row close to the front edge 301 is not smaller than the protrusion height of the protrusions 311 in the row close to the tail edge 302. In other words, in two adjacent rows of protrusions 311, the protrusion height of the protrusions 311 in the row close to the front edge 301 is greater than or equal to the protrusion height of the protrusions 311 in the row close to the tail edge 302. The protrusion height of the protrusions 311 arranged to be close to the tail edge 302 should not exceed the protrusion height of the protrusions 311 in the row close to the front edge 301, which can prevent the protrusions 311 from generating an additional vortex.
As an example, the protrusion height H1, the protrusion height H2, and the protrusion height H3 satisfy the following:
H1≤0.25 mm; H2=C×H1; H3=D×H2;
where the value range of C is greater than or equal to 0.9 and smaller than or equal to 1, and the value range of D is greater than or equal to 0.9 and smaller than or equal to 1.
As described above, the protrusions 311 may be of a variety of shapes, such as partially spherical, olive shaped, or teardrop shaped. As the first embodiment, the protrusions 311 shown in
D1=E×W; D2=F×D1; D3=G×D2;
where the value range of E is greater than or equal to 0.06 and smaller than or equal to 0.08, the value range of F is greater than or equal to 0.9 and smaller than or equal to 1, and the value range of G is greater than or equal to 0.9 and smaller than or equal to 1.
In addition, for protrusions 311 in the same row, the protrusions 311 are arranged evenly at an interval along the length direction of the vane 202. The spacing between the highest points of the tops of two adjacent protrusions 311 is M. The spacing M satisfies the following:
M=4×D1.
R1=K1×W; L1=K2×W; R2=K3×W; L2=K4×W;
where the value range of K1 is greater than or equal to 0.5 and smaller than or equal to 1.2, the value range of K2 is greater than or equal to 0.07 and smaller than or equal to 0.09, the value range of K3 is greater than 0 and smaller than or equal to 0.04, and the value range of K4 is greater than 0.05 and smaller than or equal to 0.07.
In addition, for protrusions 311 in the same row, the protrusions 311 are arranged evenly at an interval along the length direction of the vane 202. The spacing between the highest points of the tops of two adjacent protrusions 311 is M. The spacing M satisfies the following:
M=8×(R1−L1).
R1=J1×W; R2=J2×W; L2=J3×W;
where the value range of J1 is greater than or equal to 0.04 and smaller than or equal to 0.05, the value range of J2 is greater than or equal to 0.3 and smaller than or equal to 0.52, and the value range of J3 is greater than or equal to 0.05 and smaller than or equal to 0.07.
In addition, for protrusions 311 in the same row, the protrusions 311 are arranged evenly at an interval along the length direction of the vane 202. The spacing between the highest points of the tops of two adjacent protrusions 311 is M. The spacing M satisfies the following:
M=8×R1.
In addition, compared with the arrangement of the protrusions at other positions of a vane, the protrusions arranged to be close to the front edge 301 can regulate the flow of a fluid immediately when the fluid contacts the vanes, and after the flow regulation, no other protrusions contact the regulated fluid again, which prevents the fluid from being disturbed again. During the flow regulation process, a large vortex in the fluid can be divided into several small vortices, the top direction of the vortices (close to the front edge 301) is consistent with the fluid moving direction, and the bottom direction thereof (close to the tail edge 302) is opposite to the fluid moving direction. Such small vortices have smaller friction resistance, and the kinetic energy dissipated from the motion of the small vortices themselves can be partially cancelled out, thereby reducing the noise of the impeller and improving the performance of the centrifugal fan.
It should be noted that, although the protrusions being arranged in three rows is illustrated in the present application, any number of rows of the protrusions shall all fall within the protection scope of the present application.
Only some features of the present application are illustrated and described herein, and a person skilled in the art may carry out a variety of improvements and variations. Therefore, it should be understood that the appended claims are intended to encompass all the above-described improvements and variations that fall within the substantive spirit and scope of the present application.
Number | Date | Country | Kind |
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202110197735.8 | Feb 2021 | CN | national |