Axial or diagonal fan with trip edge on the rotor blade
09803649 · 2017-10-31
Assignee
Inventors
Cpc classification
F04D29/681
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/306
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/384
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
An axial- or diagonal-fan has a fan wheel (34) having profiled rotor blades (32). Each blade has a suction or intake side (46), a portion located forward, with respect to the rotation direction (36), and having a leading edge (44), and a portion located rearward, with respect to the rotation direction (36), and having a trailing edge (92). Between said portions, on the intake side (46) of the respective rotor blade (32), a trip or separation edge (66) is provided, said trip edge having an S-shaped contour in a meridian cross-section.
Claims
1. An axial- or diagonal-blower with an electric motor with a stator (118) and a rotor (120), a fan wheel (30), and a housing formed with a fanwheel-facing generally cylindrical inner surface (110), the electric motor being arranged in said housing, said fan wheel (30) comprising an annular fan wheel hub (34), secured to said rotor (120) and, together with the generally cylindrical inner surface (110), defining an annular air passage opening therebetween; a plurality of individual profiled fan rotor blades (32), each extending radially from a root (70) at said hub (34) to a blade outer tip arranged in said annular air passage opening; said profiled fan blades (32) each having an intake side (46), a portion located, with respect to rotation direction (36), forward and having a leading edge (44), a portion located, with respect to rotation direction (36), rearward, and having a trailing edge (92); between which portions a trip edge (66) is located, which, between said root and said tip, has an S-shaped contour, said contour extending, from a radially inner portion of said fan rotor blade to a radially outer portion (78) thereof, inside a band (B) measured, starting from said leading edge (44), within a range from 30% to 100% of the width (L) of the fan blade (32), said trip edge running from said radially inner portion of the fan rotor blade to said radially outer portion of the fan rotor blade.
2. The blower of claim 1, wherein said band (B) is defined by a pair of boundary lines (100, 102); a line (101) runs, radially with respect to the fan wheel hub (34), across each respective rotor blade (32); and said pair of boundary lines enclose an angle (a) which is in a range between 0° and 30° relative to the radially running line (101).
3. The blower of claim 1, wherein the trip edge (66) is implemented as a step on a suction side (46) of the respective rotor blade (32).
4. The blower of claim 1, wherein the trip edge (66) runs from said radially inner portion of each blade into said radially outer portion thereof, adjacent a blade surface portion which, during fan operation, is contiguous with a detachment zone (45) formed abutting said blade, and wherein the trip edge (66) describes over its radial extent an alternatingly-curved course.
5. The blower of claim 4, wherein the alternatingly-curved course of the trip edge (66) extends, on its radially inner portion, to a region (68) of the respective rotor blade (32) which lies, with reference to the circumferential width dimension, in the middle of the blade.
6. The blower of claim 4, wherein the alternatingly-curved course of the trip edge (66) extends, on its radially inner portion, to a region (68) of the respective rotor blade (32) which lies between the trailing edge (92) thereof and a region which is, with reference to the circumferential dimension, in the middle of the blade.
7. The blower of claim 4, wherein the trip edge (66) runs at a distance (DS) from the contour of the detachment zone (45) and, at least over most of its length, outside of said detachment zone (45).
8. A blower according to claim 7, wherein a distance (DS) of the contour from the detachment zone (45) is one to two percent of the diameter (D) of the fan wheel (34).
Description
BRIEF FIGURE DESCRIPTION
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) The fan wheel 30 has, in this exemplary embodiment, five profiled fan blades 32, which are connected to a hub 34. The rotation direction of fan wheel 30 is designated 36 and, in this example, runs clockwise, when one observes fan wheel 30 by looking in the direction of arrow 38.
(8) Hub 34 has openings or pockets 40, into which, during balancing, balance or compensating weights can be inserted, insofar as any imbalance has been found.
(9) Since the rotor blades 32 are substantially identical and have the same or similar angular spacings from each other, it suffices to describe one of the rotor blades 32, which is shown at bottom left in
(10) The rotor blades 32 have influx edges (leading edges) 44 which here are slightly sickle-shaped. The upper surfaces, visible in
(11) As shown in
(12) The form of trip edge 66 is, in the ideal case, matched to the contour of the detachment zone at the design point of the fan. It describes a curve parallel to the contour of the detachment area with a spacing DS approximating 1 to 2% of the diameter D of the fan wheel. This is necessary, in order to achieve effectiveness in the operating states which deviate from the design point. In general, the trip edge 66 thus has the form of an alternatingly-curved curve, as illustrated in
(13) For purposes of explanation, reference is made to
(14) From point A onward, profile 33old is surrounded by a suddenly thicker, non-contacting and uncoordinated flow 82. The adjacent flow 84 perceives the profile 33old of rotor blade 32 as substantially thicker, since this is actually the case. The blade channels 50 of the blower, i.e. its effective transmitting cross-section, are thereby narrowed, and the air output (the delivered volumetric flow) drops.
(15) In order to avoid this problem, or to at least reduce it, according to
(16) The fact, that the boundary layer is newly provided, enroute, with kinetic energy, displaces its energetic equilibrium into a stable region, and the flow detachment is displaced into a downstream-lying zone. This lengthens the effective region of the rotor blade, and guides the flow corresponding to its exit contour over the apparatus. Since, in the entire operating range of the blower, nearly optimal flows occur, the noise energy emitted by the blower drops, in the regions either side of the design point, i.e. deviating from the point at which the blower was designed to operate.
(17) In
(18) The trip edge 66 should be provided a short distance before the detachment zone 45 (
(19) The trailing edge 92 can be scalloped. This advantageous configuration has no influence upon the trip edge 66. It serves to reduce noise generation in the region of the trailing edge 92.
(20)
(21)
(22)
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(24) In the bearing tube 114, the shaft (not visible in
(25)
(26) Steps S1 through S4 have the following content:
(27) S1=Step 1: configuration of the fan for a defined operating point (delivery quantity, pressure, rotation speed) S2=Step 2: specification of the detachment zone 45 S3=Step 3: specification of the form of edge 69 (dashed line) which borders on the detachment zone S4=Step 4: Safety margin DS defines a final form of the trip edge.
(28) In
(29) In
(30) The detachment zone 45 has a boundary 69, shown in
(31) The trip edge 66 has the form of an alternatingly-curved curve and runs generally parallel to the boundary of detachment zone 45.
(32) In this manner, the implementation of the invention becomes very simple, and can possibly be substantially automated; when plastic is used in the manufacture of the fan wheel, the trip edge can be made, for example, by injection molding.
(33) The figures and the description disclose an axial- or diagonal-blower with a fan wheel 30 equipped with rotor blades 32, each having an intake side 46, a portion located forward, with reference to the rotation direction and having a leading edge 44, and a portion located rearward, with reference to the rotation direction and having a trailing edge 92, between which edges a trip edge 66 is located, having in meridian section an S-shaped contour, the contour falling within a band B which, measured from the leading edge 44, falls within a range of 30% to 100% of the length L of the rotor blade 32.
(34) Preferably, the band B is defined by boundary lines 100, 102 which include an angle α surrounding a line 101 extending radially with respect to the fan wheel 30, the magnitude of the angle falling between about 0° and about 30° relative to this line 101.
(35) Preferably, the trip edge 66 is configured as a step on the suction or intake side 46 of the respective rotor blade 32.
(36) Preferably, trip edge 66 runs from the radially inner side of a rotor blade 32, on its suction side 46, in the direction of the radially outer side of this rotor blade.
(37) Preferably, trip edge 66 runs approximately in the form of a length-stretched S from the radially inner side of a rotor blade 32 to the radially outer side of this rotor blade 32.
(38) Preferably, the length-stretched S of the trip edge 66 extends, on its radially inner portion, to a region 68 of the respective rotor blade 32 which lies, with reference to the circumferential dimension, in the middle of the blade.
(39) Preferably, the length-stretched S extends, on its radially outer portion, to a region of rotor blade 32 which falls between the blade's trailing edge 92 and a region of blade 32 which, with reference to the circumferential dimension, lies in the middle.
(40) Preferably, trip edge 66 runs mostly at a spacing DS from the contour of the detachment zone 45 and,
(41) at least over most of its length, outside of detachment zone 45.
(42) Preferably, the magnitude of spacing DS from the contour of detachment zone 45 approximates one to two percent of the diameter D of the fan wheel 34.
(43) Naturally, within the scope of the present invention, many variations and modifications are possible.