WO2013021618A1 - Ventilateur centrifuge - Google Patents

Ventilateur centrifuge Download PDF

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Publication number
WO2013021618A1
WO2013021618A1 PCT/JP2012/004995 JP2012004995W WO2013021618A1 WO 2013021618 A1 WO2013021618 A1 WO 2013021618A1 JP 2012004995 W JP2012004995 W JP 2012004995W WO 2013021618 A1 WO2013021618 A1 WO 2013021618A1
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WO
WIPO (PCT)
Prior art keywords
bell mouth
shroud
wall
centrifugal blower
peripheral edge
Prior art date
Application number
PCT/JP2012/004995
Other languages
English (en)
Japanese (ja)
Inventor
貴憲 永江
志明 ▲鄭▼
Original Assignee
ダイキン工業株式会社
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by ダイキン工業株式会社 filed Critical ダイキン工業株式会社
Publication of WO2013021618A1 publication Critical patent/WO2013021618A1/fr

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D29/00Details, component parts, or accessories
    • F04D29/08Sealings
    • F04D29/16Sealings between pressure and suction sides
    • F04D29/161Sealings between pressure and suction sides especially adapted for elastic fluid pumps
    • F04D29/162Sealings between pressure and suction sides especially adapted for elastic fluid pumps of a centrifugal flow wheel
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D25/00Pumping installations or systems
    • F04D25/02Units comprising pumps and their driving means
    • F04D25/08Units comprising pumps and their driving means the working fluid being air, e.g. for ventilation
    • F04D25/088Ceiling fans
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04DNON-POSITIVE-DISPLACEMENT PUMPS
    • F04D29/00Details, component parts, or accessories
    • F04D29/40Casings; Connections of working fluid
    • F04D29/42Casings; Connections of working fluid for radial or helico-centrifugal pumps
    • F04D29/4206Casings; Connections of working fluid for radial or helico-centrifugal pumps especially adapted for elastic fluid pumps
    • F04D29/4213Casings; Connections of working fluid for radial or helico-centrifugal pumps especially adapted for elastic fluid pumps suction ports

Definitions

  • the present invention relates to a centrifugal blower used for an indoor unit of an air conditioner, for example.
  • a centrifugal blower is used as a blower for an indoor unit of an air conditioner.
  • this centrifugal blower when the fan motor is driven and the impeller rotates, air is sucked into the indoor unit from the suction port of the indoor unit. The sucked air is guided by the bell mouth to the air inlet of the shroud.
  • the air flow guided to the air suction port by the bell mouth is referred to as a main flow.
  • This mainstream air is sent to the outside in the radial direction by a plurality of blades arranged in the circumferential direction between the hub and the shroud, and most of the air is blown into the room through the blowout port of the indoor unit.
  • the part circulates toward the bell mouth through the space on the outer peripheral surface side of the shroud in the indoor unit, and joins the main stream again through the gap between the bell mouth and the shroud.
  • the air flow that circulates as described above and merges with the main flow through the gap is referred to as a leakage flow.
  • Patent Document 1 discloses a centrifugal blower in which a large number of grooves are provided on the outer surface of a bell mouth (fan guide) in order to suppress a decrease in fan efficiency.
  • this centrifugal blower the leakage flow that circulates through the space on the outer peripheral surface side of the shroud toward the bell mouth is introduced into the gap between the bell mouth and the shroud through the groove (paragraph number 0024 of Patent Document 1). , 0052, FIG. 5 and FIG. 6).
  • Patent Document 1 describes that since the leakage flow is guided by the groove as described above and becomes a stable flow, it is possible to suppress a decrease in the blowing performance due to the fluctuation of the leakage flow.
  • An object of the present invention is to provide a centrifugal blower that can suppress a decrease in fan efficiency due to leakage flow.
  • the centrifugal blower of the present invention includes an impeller (23) and a bell mouth (25).
  • the impeller (23) includes a shroud (19) having an air suction port (19a) that opens in a circle around the rotation shaft (13) of the fan motor (11), and a circumferential direction of the air suction port (19a). And a plurality of blades (21) arranged along.
  • the bell mouth (25) is disposed on the front side (F) in the axial direction (A) of the rotating shaft (13) with respect to the shroud (19).
  • a predetermined gap (G) is provided in the radial direction between the bell mouth (25) and the peripheral edge portion (19e) of the air suction port (19a).
  • the bell mouth (25) has a plurality of wall portions (27) arranged on the outer peripheral surface (25s) at predetermined intervals along the circumferential direction and standing from the outer peripheral surface (25s). .
  • Each wall portion (27) is parallel to the axial direction (A) and the radial direction of the bell mouth (25).
  • the radially outer portion (271) of the rear end portion (27r) of each wall portion (27) is located on the front side (F) of the radially inner portion (272).
  • FIG. 4 It is sectional drawing which shows the indoor unit provided with the centrifugal blower which concerns on 1st Embodiment of this invention. It is a bottom view which shows the positional relationship of the impeller in the said indoor unit, a heat exchanger, and a blower outlet. It is a perspective view which shows the impeller of the said centrifugal blower. It is a side view which shows the bell mouth of the said centrifugal blower. It is a top view which shows the bell mouth of the said centrifugal blower. It is the side view to which a part of FIG. 4 was expanded. It is sectional drawing to which some centrifugal fans were expanded.
  • centrifugal blower 51 and an indoor unit 31 including the centrifugal blower 51 according to an embodiment of the present invention will be described with reference to the drawings.
  • the indoor unit 31 is a ceiling-embedded cassette indoor unit.
  • the indoor unit 31 includes a substantially rectangular parallelepiped housing 33 embedded in an opening provided in the ceiling, and a decorative panel 47 attached to the lower portion of the housing 33.
  • the decorative panel 47 is slightly larger in plan view than the housing 33 and is exposed to the room in a state of covering the opening of the ceiling.
  • the decorative panel 47 has a rectangular suction grill 39 provided at the center thereof and four elongated rectangular outlets 37 provided along each side of the suction grill 39.
  • the indoor unit 31 includes a centrifugal blower (turbo fan) 51, a fan motor 11, a heat exchanger 43, a drain pan 45, an air filter 41, and the like in a housing 33.
  • Centrifugal blower 51 includes an impeller 23 and a bell mouth 25.
  • the fan motor 11 is fixed to the approximate center of the top plate of the housing 33.
  • the rotation shaft 13 of the fan motor 11 extends downward.
  • the heat exchanger 43 has a flat shape with a small thickness.
  • the heat exchanger 43 is disposed so as to surround the periphery of the impeller 23 in a state where it rises upward from a dish-shaped drain pan 45 extending along the lower end portion thereof.
  • the drain pan 45 stores water droplets generated in the heat exchanger 43. The stored water is discharged through a drainage path (not shown).
  • the air filter 41 has a size that covers the entrance of the bell mouth 25 and is provided between the bell mouth 25 and the suction grill 39 along the suction grill 39.
  • the air filter 41 captures dust in the air when the air sucked into the housing 33 from the suction grill 39 passes through the air filter 41.
  • the impeller 23 includes a hub 15, a shroud 19, and a plurality of blades 21.
  • the hub 15 is fixed to the lower end portion of the rotating shaft 13 of the fan motor 11.
  • the hub 15 has a circular shape centered on the rotation shaft 13 in plan view.
  • the shroud 19 is disposed to face the front side F in the axial direction A of the rotary shaft 13 with respect to the hub 15. As shown in FIG. 2, the shroud 19 has an air suction port 19 a that opens in a circular shape around the rotation shaft 13 in a bottom view. The outer diameter of the shroud 19 becomes larger toward the rear side R.
  • the plurality of blades 21 are arranged between the hub 15 and the shroud 19 at a predetermined interval along the circumferential direction of the air suction port 19a.
  • the front F end of each blade 21 is joined to the inner surface of the shroud 19.
  • the end of the rear side R of each blade 21 is joined to the hub 15.
  • Each blade 21 is a backward blade that is inclined in the direction opposite to the rotation direction (backward) with respect to the radial direction of the hub 15.
  • the bell mouth 25 is disposed opposite to the shroud 19 on the front side F in the axial direction A.
  • the bell mouth 25 includes a bell mouth main body 251 and a flange portion 252 projecting from the periphery of the front side F of the bell mouth main body 251 around the bell mouth main body 251.
  • the bell mouth main body 251 has a through hole 25a penetrating in the front-rear direction.
  • the outer peripheral surface 25s of the bell mouth main body 251 has a curved shape that decreases as the outer diameter increases toward the rear side R.
  • a part of the rear side R of the bell mouth main body 251 is provided from the air suction port 19a with a predetermined gap G between the peripheral portion 19e of the air suction port 19a. It is inserted in the shroud 19. Thereby, the bell mouth 25 can guide the air sucked toward the rear side R through the through hole 25 a to the air suction port 19 a of the shroud 19.
  • the bell mouth 25 has a plurality of wall portions 27 arranged on the outer peripheral surface 25s of the bell mouth main body 251 at predetermined intervals along the circumferential direction.
  • Each wall 27 is erected from the outer peripheral surface 25 s of the bell mouth 25.
  • Each wall 27 extends along the outer peripheral surface 25s from the front side F toward the rear side R so as to be parallel to the axial direction A and parallel to the radial direction of the bell mouth 25.
  • each wall portion 27 is provided at a position separated from the shroud 19.
  • the bell mouth 25 has a plurality of air flow paths 253 surrounded on three sides by adjacent wall portions 27, 27 and an outer peripheral surface 25s.
  • the air flow path 253 extends in a direction along the curved shape of the outer peripheral surface of the bell mouth 25.
  • the portion on the shroud 19 side is generally oriented in the direction along the axial direction A. Both side portions and the bottom portion of the air flow path 253 are surrounded by the adjacent wall portion 27 and the outer peripheral surface 25 s of the bell mouth 25.
  • the inlet and outlet of the air flow path 253 that is, the inlet where the leakage flow (swirl flow) flows into the air flow path 253 and the outlet where the leakage flow flows out of the air flow path 253 are opened in the flow direction of the leakage flow. There is no provision for blocking these entrances and exits. Therefore, the leakage flow is reliably guided to the inlet of the air flow path 253 between the wall portions 27 and guided in the air flow path 253 from the front side F toward the rear side R.
  • each wall 27 has a standing height Hf at the front end 27f that is higher than a standing height Hr at the rear end 27r.
  • the standing height Hr and the standing height Hf are not particularly limited.
  • the standing height Hr is about 1 mm to 10 mm, and the standing height Hf is about 3 mm to 20 mm. it can.
  • each wall portion 27 is located on the front side F with respect to the radially inner portion 272.
  • An end surface of the rear end portion 27r in each wall portion 27 is an inclined surface inclined with respect to the axial direction A. This inclined surface gradually decreases as the standing height from the outer peripheral surface 25s goes to the rear side R.
  • each wall portion 27 extends toward the shroud side (rear side R).
  • the rear end 27r of each wall 27 is located at a position facing the gap G provided between the bell mouth 25 and the peripheral edge 19e in the front-rear direction.
  • a radially inner portion 272 in the rear end portion 27r of each wall portion 27 faces the peripheral edge portion 19e in the radial direction.
  • a portion 271 on the outer side in the radial direction of the rear end portion 27 r is located on the inner side in the radial direction with respect to the peripheral edge portion 19 e of the shroud 19.
  • a radially outer portion 271 of the rear end 27r is located on the front side F with respect to the peripheral edge 19e.
  • the peripheral edge portion 19e of the air suction port 19a is an inclined surface inclined with respect to the axial direction A.
  • the inclined surface of the peripheral edge portion 19e is provided so as to face the inclined surface of the rear side end portion 27r of the wall portion 27.
  • the front end (radially inner portion 272) of the rear end portion 27r of each wall portion 27 is provided at a position substantially opposite to the front end (front end) of the peripheral edge portion 19e at the end portion of the front side F of the shroud 19 in the radial direction.
  • Both the inclined surface of the peripheral edge portion 19e and the inclined surface of the end portion 27s of the wall portion 27 are inclined so that the rear side R is positioned more radially inward than the front side F.
  • the end portions are formed of the inclined surfaces, the rear end portion 27r of the wall portion 27 can be extended to a position facing the peripheral edge portion 19e of the shroud 19 or the vicinity thereof.
  • each wall portion 27 may be formed integrally with the bell mouth main body 251 by sheet metal processing, resin molding, or the like, and each wall portion 27 formed separately from the bell mouth main body 251 is formed as the bell mouth main body. It may be manufactured by bonding to H.251.
  • the air of the mainstream S guided to the air suction port 19a of the shroud 19 by the bell mouth body 251 of the bell mouth 25 is mainly in the vicinity of the air suction port 19a. In the direction along the axial direction A.
  • the leakage flow M1 is caused by the shroud 19 rotating in the rotation direction K in the vicinity of the air suction port 19a as indicated by the broken arrow M1. Influenced by air flow to K. For this reason, the leakage flow M1 flows in a direction inclined in the rotational direction K with respect to the axial direction A. Therefore, when this leakage flow M1 merges with the main flow S, the flow of the main flow S is disturbed by the leakage flow M1, so that the blowing sound increases and the fan efficiency decreases.
  • the leakage flow M is an air flow surrounded by the adjacent wall portion 27 and the outer peripheral surface 25 s of the bell mouth main body 251. It is guided to the rear side R along the path 253 (see FIG. 6), and passes through the gap G (the gap between the end portion of the rear side R of the bell mouth main body 251 and the end portion of the front side F of the shroud 19).
  • the leakage flow M that has passed through the air flow path 253 and the gap G is corrected so that the flow direction approaches the axial direction A as compared with the conventional case. Accordingly, interference between the leakage flow M and the main flow S when the leakage flow M joins the main flow S is suppressed.
  • FIG. 9 is an enlarged side view of the bell mouth 25 in the centrifugal blower 51 according to the second embodiment of the present invention.
  • FIG. 10 is an enlarged cross-sectional view of a part of the centrifugal blower 51 according to the second embodiment.
  • FIG. 11 is an enlarged cross-sectional view of a part of the centrifugal blower 51 according to the second embodiment.
  • the configuration of the wall portion 27 provided in the bell mouth 25 is different from that of the first embodiment, and the configuration other than the wall portion 27 is the same as that of the first embodiment. is there. Therefore, hereinafter, the wall portion 27 of the bell mouth 25 will be described, and the other components will be denoted by the same reference numerals as those of the first embodiment and description thereof will be omitted.
  • the bell mouth 25 has a plurality of wall portions 27 that are arranged on the outer peripheral surface 25s at predetermined intervals along the circumferential direction and are erected from the outer peripheral surface 25s. .
  • Each wall portion 27 is parallel to the axial direction A and the radial direction of the bell mouth 25.
  • the radially outer portion 271 is located on the front side F with respect to the radially inner portion 272.
  • Each wall portion 27 is provided at a position separated from the shroud 19.
  • Each wall portion 27 extends toward the shroud 19 side (rear side R).
  • the rear end 27r of each wall 27 is located at a position facing the gap G provided between the bell mouth 25 and the peripheral edge 19e in the front-rear direction.
  • the rear end portion 27r of each wall portion 27 faces the peripheral edge portion 19e in the radial direction.
  • the radially inner portion 272 in the rear end portion 27r of each wall portion 27 is opposed to the radially outer portion of the peripheral edge portion 19e in the radial direction.
  • a portion 271 on the outer side in the radial direction of the rear end portion 27 r is located on the inner side in the radial direction with respect to the peripheral edge portion 19 e of the shroud 19.
  • a radially outer portion 271 of the rear end 27r is located on the front side F with respect to the peripheral edge 19e.
  • a concave curved surface 273 that is recessed in a direction away from the peripheral edge portion 19e is provided at the rear end portion 27r of each wall portion 27 in the second embodiment.
  • the concave curved surface 273 is smoothly curved from the radially inner portion 272 to the radially outer portion 271.
  • the concave curved surface 273 is curved in an arc shape in a cross section shown in FIGS. 10 and 11 (a cross section when the centrifugal blower 51 is cut along a plane including the center of the rotating shaft 13).
  • the entire end surface of the rear end portion 27r is a concave curved surface 273, but the present invention is not limited to this.
  • the end surface of the rear end portion 27r may be configured by a combination of a concave curved surface 273 and, for example, an inclined surface.
  • the end surface of the rear end portion 27r in the end surface of the rear end portion 27r, only a part of the radially inner portion 272 is an inclined surface and the remaining most portion is a concave curved surface 273.
  • a convex curved surface 191 facing the concave curved surface 273 of the rear end portion 27 r is provided on the peripheral edge portion 19 e of the air suction port 19 a of the shroud 19.
  • the position and shape of the concave curved surface 273 can be determined as follows, for example.
  • the position and shape of the concave curved surface 273 provided on the end surface of the rear end 27r are, for example, points on the peripheral edge 19e (for example, points on the convex curved surface 191) in the cross section shown in FIG. 11 (cross section including the center of the rotating shaft 13). ) Based on an arcuate curve such as an arc or an elliptical arc.
  • the distance from the point on the peripheral edge portion 19e to the concave curved surface 273 is determined in consideration of, for example, the range of mounting errors in manufacturing the bell mouth 25, the range of rotational runout of the impeller 23, and the safety allowance.
  • the concave curved surface 273 may be a concave curved surface that is recessed in the direction away from the peripheral edge portion 19e, and does not necessarily have to be an arcuate curve such as an accurate arc or elliptical arc.
  • FIG. 12 is a graph showing the relationship between the air volume and the blowing sound
  • FIG. 13 is a graph showing the relationship between the air volume and the motor input.
  • FIG. 14 is an enlarged cross-sectional view of a part of a centrifugal blower according to a third embodiment of the present invention.
  • the configuration of the wall portion 27 provided in the bell mouth 25 is different from that of the first embodiment, and the configuration other than the wall portion 27 is the same as that of the first embodiment. is there. Therefore, hereinafter, the wall portion 27 of the bell mouth 25 will be described, and the other components will be denoted by the same reference numerals as those of the first embodiment and description thereof will be omitted.
  • the bell mouth 25 has a plurality of wall portions 27 which are arranged on the outer peripheral surface 25s at predetermined intervals along the circumferential direction and are erected from the outer peripheral surface 25s.
  • Each wall portion 27 is parallel to the axial direction A and the radial direction of the bell mouth 25.
  • Each wall portion 27 is provided at a position separated from the shroud 19.
  • Each wall portion 27 extends toward the shroud 19 side (rear side R).
  • the rear end 27r of each wall 27 is located at a position facing the gap G provided between the bell mouth 25 and the peripheral edge 19e in the front-rear direction.
  • the end surface 274 of the rear end 27r preferably extends to a position in the vicinity of the peripheral edge 19e of the shroud 19.
  • the position in the vicinity of the peripheral edge portion 19e is determined based on the rotation of the impeller 23 in consideration of the range of mounting errors in manufacturing the bell mouth 25, the range of rotational runout of the impeller 23, and the safety allowance.
  • a position where contact between the rear end portion 27r and the peripheral edge portion 19e of the shroud 19 can be avoided is determined.
  • the position in the vicinity of the peripheral edge portion 19e is preferably a position where the distance between the end surface 274 and the peripheral edge portion 19e is the shortest while avoiding contact between the end surface 274 and the peripheral edge portion 19e as described above.
  • the end face of the rear end 27r is perpendicular to the axial direction A. Further, the peripheral edge portion 19 e of the shroud 19 extends in an annular shape in a direction perpendicular to the axial direction A. A portion 271 on the outer side in the radial direction of the rear end portion 27 r is located on the inner side in the radial direction with respect to the peripheral edge portion 19 e of the shroud 19. The end surface 274 of the rear side end portion 27r is located on the front side F with respect to the peripheral edge portion 19e.
  • FIG. 15 is a graph showing the relationship between air volume and motor input. This graph shows the characteristics of the indoor unit 31 including the centrifugal blower 51 according to the third embodiment and the characteristics of the indoor unit including the bell mouth of the reference example in which the wall portion 27 is not provided.
  • the motor input is reduced in the third embodiment compared to the reference example.
  • the motor input required in order to obtain the same air volume as a reference example is small compared with a reference example. Therefore, in the third embodiment, it is considered that the amount of leakage flow is smaller than that in the reference example.
  • the wall portion 27 becomes a resistance to the leakage flow, and the amount of the leakage flow can be reduced. Moreover, since the direction of the leakage flow can be made closer to the direction of the main flow, it is possible to suppress the main flow from being disturbed when the leakage flow joins the main flow. Thereby, the fall of fan efficiency can be suppressed.
  • the wall portion 27 can catch a large amount of leakage flow at the front end portion 27f having a large standing height and guide it to the air flow path 253, while the wall portion 27 has a small standing height.
  • contact with the peripheral edge portion 19e of the air suction port 19a of the shroud 19 can be suppressed.
  • the standing height from the outer peripheral surface 25s of each wall 27 gradually increases from the rear end 27r toward the front end 27f. That is, since the standing height of each wall 27 changes smoothly, the air flow in the air flow path 253 becomes smooth.
  • each wall 27 has a radially outer portion 271 located on the front side F of the radially inner portion 272. Contact between the wall portion 27 and the shroud 19 can be suppressed.
  • each wall 27 extends toward the rear side R up to a position where the rear end 27r is opposed to the peripheral edge 19e in the radial direction.
  • the distance (clearance) between the wall portion 27 and the shroud 19 in the front-rear direction can be further reduced.
  • the resistance when the leakage flow flows into the gap G between the bell mouth 25 and the shroud 19 is further increased, and the amount of the leakage flow is further reduced.
  • each wall 27 since each wall 27 extends to a position where the rear end 27r is opposed to the peripheral edge 19e in the radial direction, each wall 27 does not leak until just before the leakage flows into the gap G. Can be rectified. Thereby, the rectification effect of the leakage flow can be further enhanced.
  • the rear end 27r is provided with a concave curved surface 273 that is recessed in a direction away from the peripheral edge 19e, for example, the peripheral edge 19e compared to the case where the rear end 27r is flat, for example. It is easy to secure the distance.
  • the convex curved surface 191 of the peripheral edge portion 19e is provided at a position facing the concave curved surface 273 of the rear side end portion 27r, contact between the rear side end portion 27r and the peripheral edge portion 19e is avoided.
  • the distance between the rear end portion 27r and the peripheral edge portion 19e can be reduced by bringing the rear end portion 27r closer to the peripheral edge portion 19e.
  • the standing height of each wall portion is gradually increased from the rear side to the front side
  • the standing height is changed from the rear side to the front side. May be increased step by step.
  • the said standing height of each wall part may be constant from the rear side to the front side, and may decrease toward the front side from the rear side.
  • each wall part was provided in the position facing the peripheral part of a shroud in a radial direction. It is not limited. The rear end portion of each wall portion may be provided in front of the peripheral portion of the shroud.
  • peripheral part 19e is the convex curve 191
  • the peripheral part 19e does not necessarily need to be the convex curve 191, For example, even if it is a plane perpendicular
  • centrifugal blower was used for the indoor unit of the air conditioning apparatus as an example, it can be used for other purposes.
  • the centrifugal blower according to the present invention includes an impeller (23) and a bell mouth (25).
  • the impeller (23) includes a shroud (19) having an air suction port (19a) that opens in a circle around the rotation shaft (13) of the fan motor (11), and a circumferential direction of the air suction port (19a). And a plurality of blades (21) arranged along.
  • the bell mouth (25) is disposed on the front side (F) in the axial direction (A) of the rotating shaft (13) with respect to the shroud (19).
  • a predetermined gap (G) is provided in the radial direction between the bell mouth (25) and the peripheral edge portion (19e) of the air suction port (19a).
  • the bell mouth (25) has a plurality of wall portions (27) arranged on the outer peripheral surface (25s) at predetermined intervals along the circumferential direction and standing from the outer peripheral surface (25s). .
  • Each wall portion (27) is parallel to the axial direction (A) and the radial direction of the bell mouth (25).
  • the radially outer portion (271) of the rear end portion (27r) of each wall portion (27) is located on the front side (F) of the radially inner portion (272).
  • the wall portion (27) serves as a resistance to leakage flow, and the amount of leakage flow can be reduced. Moreover, since the direction of the leakage flow can be made closer to the direction of the main flow, it is possible to suppress the main flow from being disturbed when the leakage flow joins the main flow. Thereby, the fall of fan efficiency can be suppressed. Specifically, it is as follows.
  • the mainstream air guided to the air inlet (19a) of the shroud (19) by the bell mouth (25) is mainly in the axial direction of the rotating shaft (13) in the vicinity of the air inlet (19a) ( It flows in the direction along A).
  • the leakage flow in the conventional centrifugal blower is affected by the air flow in the rotation direction caused by the rotation of the shroud (19), and therefore the rotation with respect to the axial direction (A) of the rotation shaft (13). It flows in a direction inclined to the direction.
  • the directions of the main flow and the leakage flow are greatly different. Therefore, when the leakage flow merges with the main flow, the main flow is disturbed by the leakage flow, leading to a decrease in fan efficiency.
  • the plurality of wall portions (27) are erected from the outer peripheral surface (25s) of the bell mouth (25) in a posture parallel to the axial direction (A) and the radial direction. That is, the air flow path (253) sandwiched between adjacent wall portions (27) is oriented in the direction along the axial direction (A).
  • the air flow path (253) is a space in which both sides and the bottom are surrounded by the adjacent wall portion (27) and the outer peripheral surface (25s) of the bell mouth (25).
  • the air flow path (253) The inlet and outlet of the leakage flow to the open are open and unobstructed. Therefore, since the leakage flow can be reliably guided and circulated in the air flow path (253) between the wall portions (27), an excellent effect of guiding the leakage flow can be obtained.
  • the leakage flow passes through the air flow path (253) between the wall portions (27).
  • the flow direction is corrected in the axial direction (A) by the air flow path (253). Therefore, compared with the case where the wall (27) is not provided, the resistance received when air flows through the gap (G) increases. Thereby, the quantity of the leakage flow branched from the main flow can be reduced.
  • the flow direction of the leakage flow rectified by the air flow path (253) is close to the axial direction (A) which is the main flow direction. Accordingly, when the leakage flow merges with the main flow in the vicinity of the air suction port (19a), the degree of interference of the leakage flow with the main flow is reduced. Therefore, it is possible to suppress a decrease in fan efficiency due to the leakage flow.
  • each wall portion (27) is located on the front side (F) of the radially inner portion (272).
  • the contact between each wall (27) and the shroud (19) can be suppressed. Specifically, it is as follows. That is, there is a concern that the wall portion (27) may come into contact with the shroud (19) when the mounting error in manufacturing the bell mouth (25) or the vibration during rotation of the impeller (23) increases.
  • the radially outer portion (271), that is, the shroud (19) side portion (271) is the radially inner portion ( By being located in front (F) of 272), the contact between each wall (27) and the shroud (19) is suppressed.
  • each wall portion (27) extends toward the rear side (R), and the rear end portion (27r) of each wall portion (27) is connected to the bell mouth (25) and the peripheral edge portion (19e).
  • interval (G) provided between these can be employ
  • each wall portion (27) may be opposed to the peripheral edge portion (19e) in the radial direction.
  • the distance (clearance) between the wall portions (27) and the shroud (19) in the front-rear direction can be further reduced.
  • the resistance when the leakage flow flows into the gap (G) between the bell mouth (25) and the shroud (19) is further increased, and the amount of the leakage flow is further reduced.
  • each wall part (27) is extended to the position where a rear side edge part (27r) opposes a radial direction with respect to a peripheral part (19e), each wall part (27) has a leak flow in the said clearance gap.
  • the leakage flow can be rectified until just before flowing into (G). Thereby, the rectification effect of the leakage flow can be further enhanced.
  • the rear end portion (27r) is provided with a concave curved surface (273) that is recessed in a direction away from the peripheral edge portion (19e).
  • the rear end portion (27r) is provided with a concave curved surface (273) that is recessed in a direction away from the peripheral edge portion (19e), so that the rear end portion (27r) is a flat surface, for example. It is easier to secure a distance from the peripheral edge (19e) than
  • the peripheral edge portion (19e) is provided with a convex curved surface (191) facing the concave curved surface (273) of the rear end portion (27r).
  • the convex curved surface (191) of the peripheral edge portion (19e) is provided at a position facing the concave curved surface (273) of the rear side end portion (27r), the rear side end portion (27r ) And the peripheral edge portion (19e), the rear end portion (27r) is brought closer to the peripheral edge portion (19e), and the distance between the rear end portion (27r) and the peripheral edge portion (19e) is made smaller. can do.
  • the impeller (23) includes a shroud (19) having an air suction port (19a) that opens in a circle around the rotation shaft (13) of the fan motor (11), and a circumferential direction of the air suction port (19a). And a plurality of blades (21) arranged along.
  • the bell mouth (25) is disposed on the front side (F) in the axial direction of the rotating shaft (13) with respect to the shroud (19).
  • a predetermined gap (G) is provided in the radial direction between the rear side (R) portion of the bell mouth (25) in the axial direction and the peripheral portion (19e) of the air suction port (19a). Yes.
  • the bell mouth (25) has a plurality of wall portions (27) arranged on the outer peripheral surface (25s) at predetermined intervals along the circumferential direction and standing from the outer peripheral surface (25s). .
  • Each wall portion (27) is parallel to the axial direction and the radial direction of the bell mouth (25).
  • Each wall portion (27) extends toward the rear side (R), and the rear end portion (27r) of each wall portion (27) includes the bell mouth (25) and the peripheral edge portion (19e). It opposes in the front-back direction with respect to the gap (G) provided between them.
  • the end surface of the rear end portion (27) is perpendicular to the axial direction.
  • the bell mouth (25) similarly to the centrifugal blower described in (1), the bell mouth (25) has the plurality of wall portions (27), so that the wall portion (27) is resistant to leakage flow.
  • the amount of leakage flow can be reduced.
  • the direction of the leakage flow can be made closer to the direction of the main flow, it is possible to suppress the main flow from being disturbed when the leakage flow joins the main flow. Thereby, the fall of fan efficiency can be suppressed.
  • the rear end portion (27r) reaches a position facing the gap (G) provided between the bell mouth (25) and the peripheral edge portion (19e) in the front-rear direction.
  • Each wall (27) extends toward the rear side (R). Thereby, the distance (clearance) of each wall part (27) and the shroud (19) in the front-back direction can be made small. By reducing the clearance, the resistance when the leakage flow flows into the gap (G) between the bell mouth (25) and the shroud (19) increases, and the amount of leakage flow is reduced.
  • each wall part (27) is extended to the position where a rear side edge part (27r) opposes the said clearance gap (G) in the front-back direction, the rectification effect of the leak flow which flows in into the said clearance gap (G) Can be increased.
  • each wall part (27) when extending each wall part (27) to the position where a rear side edge part (27r) opposes the said clearance gap (G) in the front-back direction as mentioned above, the rear side of each wall part (27) There is a possibility of contact between the end (27r) and the peripheral edge (19e) of the shroud (19).
  • the end surface of the rear side end portion (27) is formed to be perpendicular to the axial direction. That is, in this configuration, the end surface of the rear end portion (27) is parallel to a plane including a circular locus drawn by the peripheral portion (19e) of the shroud (19) when the impeller (13) rotates. Contact between the end surface of the rear end portion (27) and the peripheral edge portion (19e) is suppressed.

Abstract

L'invention porte sur un ventilateur centrifuge (51) qui comporte un rotor (23) et une bouche en forme de cloche (25). La bouche en forme de cloche (25) présente des parois (27) sur sa surface périphérique extérieure (25s), et les parois (27) sont disposées à intervalles prédéterminés dans la direction circonférentielle et elles se dressent sur la surface périphérique extérieure (25s). Les parois (27) sont parallèles à la fois à la direction axiale (A) et à la direction radiale de la bouche en forme de cloche (25). Les extrémités arrière (27r) des parois (27) sont parallèles au bord périphérique (19e) de l'ouverture d'aspiration d'air (19a) d'une enveloppe (19). Les parties extérieures (271) formées dans la direction radiale des extrémités arrière (27r) des parois (27) sont placées plus loin vers le côté avant (F) que les parties intérieures (272) formées radialement sur elles.
PCT/JP2012/004995 2011-08-10 2012-08-06 Ventilateur centrifuge WO2013021618A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2011-175269 2011-08-10
JP2011175269A JP5195983B2 (ja) 2011-08-10 2011-08-10 遠心送風機

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WO2013021618A1 true WO2013021618A1 (fr) 2013-02-14

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WO (1) WO2013021618A1 (fr)

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CN106438490A (zh) * 2015-06-08 2017-02-22 约翰逊控制技术公司 风机进气口再循环导流叶片
CN117287417A (zh) * 2023-11-27 2023-12-26 珠海格力电器股份有限公司 风叶组件及空调机组

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JP6369684B2 (ja) * 2014-10-10 2018-08-08 株式会社富士通ゼネラル 天井埋込型空気調和機
CN212407084U (zh) * 2020-05-14 2021-01-26 中山市鸿茂大青节能科技有限公司 吊扇

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JPH084684A (ja) * 1994-06-17 1996-01-09 Mitsubishi Heavy Ind Ltd 遠心ファン
JPH09126193A (ja) * 1995-10-31 1997-05-13 Denso Corp 遠心式送風機
JPH102299A (ja) * 1996-06-14 1998-01-06 Matsushita Refrig Co Ltd 遠心送風機
JP2001003899A (ja) * 1999-06-23 2001-01-09 Daikin Ind Ltd 送風機及びこれを用いた空気調和機並びに空気清浄機
JP2008138536A (ja) * 2006-11-30 2008-06-19 Matsushita Electric Ind Co Ltd 遠心送風機
JP2008144679A (ja) * 2006-12-11 2008-06-26 Sanden Corp 遠心式多翼送風機
JP2010019262A (ja) * 2009-10-19 2010-01-28 Daikin Ind Ltd 送風機及びこれを用いた空気調和機並びに空気清浄機
WO2011099286A1 (fr) * 2010-02-10 2011-08-18 ダイキン工業株式会社 Ventilateur centrifuge

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Publication number Priority date Publication date Assignee Title
JPH084684A (ja) * 1994-06-17 1996-01-09 Mitsubishi Heavy Ind Ltd 遠心ファン
JPH09126193A (ja) * 1995-10-31 1997-05-13 Denso Corp 遠心式送風機
JPH102299A (ja) * 1996-06-14 1998-01-06 Matsushita Refrig Co Ltd 遠心送風機
JP2001003899A (ja) * 1999-06-23 2001-01-09 Daikin Ind Ltd 送風機及びこれを用いた空気調和機並びに空気清浄機
JP2008138536A (ja) * 2006-11-30 2008-06-19 Matsushita Electric Ind Co Ltd 遠心送風機
JP2008144679A (ja) * 2006-12-11 2008-06-26 Sanden Corp 遠心式多翼送風機
JP2010019262A (ja) * 2009-10-19 2010-01-28 Daikin Ind Ltd 送風機及びこれを用いた空気調和機並びに空気清浄機
WO2011099286A1 (fr) * 2010-02-10 2011-08-18 ダイキン工業株式会社 Ventilateur centrifuge

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106438490A (zh) * 2015-06-08 2017-02-22 约翰逊控制技术公司 风机进气口再循环导流叶片
CN106438490B (zh) * 2015-06-08 2019-11-12 刘氏控股有限责任公司 风机进气口再循环导流叶片
CN117287417A (zh) * 2023-11-27 2023-12-26 珠海格力电器股份有限公司 风叶组件及空调机组

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