The present invention relates to a blower.
Conventionally, a blower which is used in a ceiling-embedded type ventilation fan or the like includes an orifice having a bellmouth-shaped inflow port (see PTL 1, for example). Hereinafter, the blower is described with reference to
PTL 1: Japanese Patent No. 3698150
In such a conventional blower, the negative pressure space formed in recessed portion 112d is disposed at a position which overlaps with impeller 113. Accordingly, blades 133 of impeller 113 are to be cut away along a curved portion 112b of recessed portion 112d and hence, there has been a drawback that a blowout port of impeller 113 is narrowed, thus lowering air blowing efficiency.
Accordingly, a blower of the present invention includes: a scroll casing having a bellmouth-shaped inflow port and an outflow port; and a centrifugal impeller and a motor disposed in the inside of the scroll casing, the motor being configured to drive the centrifugal impeller. The centrifugal impeller includes: a main plate fixed to a rotary shaft of the motor; a plurality of blades annularly disposed on the main plate; a lateral plate disposed on an outer circumference of the plurality of blades, and fixing the plurality of blades; a suction port formed on an inner circumference of the plurality of blades; and a blowout port formed on an outer circumference of the plurality of blades. The scroll casing includes: a recessed portion formed outside the lateral plate concentrically with the centrifugal impeller; an inner-circumferential flat portion disposed more on an inner circumference than the recessed portion; and an outer-circumferential flat portion disposed more on an outer circumference than the recessed portion. A bottommost surface of the recessed portion is disposed on a same plane as a lateral plate end surface of the lateral plate. Angle θa made by the inner-circumferential flat portion and a recessed portion inner surface of the recessed portion on an inner circumference is set to a value which falls within a range of 90° or more to 150° or less.
In the blower having such a configuration, extremely small vortices are generated from a connection portion between the inner-circumferential flat portion and the recessed portion inner surface of the recessed portion on an inner circumference, and the vortices cover a surface of the blower ranging from the recessed portion to a bellmouth. Accordingly, peeling of the flow of air (the flow of air along a wall surface) which flows into the blower along the bellmouth-shaped inflow port can be suppressed. Further, the generation of large turbulence caused due to peeling of the air flow can be suppressed so that turbulence of the flow which flows into the centrifugal impeller is suppressed. Further, it is possible to suppress the circulation flow where air blown out from the blowout port of the centrifugal impeller flows along a bottommost surface of the recessed portion and returns to the suction port again. Accordingly, turbulence of the flow which flows into the centrifugal impeller and noise can be suppressed. Further, there is no possibility that the blades are to be cut away due to the formation of the recessed portion, and the blowout port of the blade can be set to the same height as the suction port and hence, there is no possibility that the blowout port of the centrifugal impeller is narrowed and air blowing efficiency is lowered.
Hereinafter, exemplary embodiments of the present invention are described with reference to drawings.
Centrifugal impeller 14 has: main plate 16; a plurality of blades 17; lateral plate 18; suction port 19; and blowout port 20. In this exemplary embodiment, main plate 16 is fixed to rotary shaft 15a of motor 15. The plurality of blades 17 are annularly disposed on main plate 16. Lateral plate 18 is disposed on outer peripheries of the plurality of blades 17 and fixes the plurality of blades 17 to each other. Suction port 19 is positioned on an inner circumference of the plurality of blades 17. Blowout port 20 is positioned on an outer circumference of the plurality of blades 17, and air sucked through suction port 19 is blown out from blowout port 20.
Recessed portion 21 is formed in scroll casing 13 outside lateral plate 18 concentrically with centrifugal impeller 14, and a bottom portion of recessed portion 21 projects toward a centrifugal impeller 14 side. Scroll casing 13 has inner-circumferential flat portion 23 disposed more on an inner circumference of scroll casing 13 than recessed portion 21 and outer-circumferential flat portion 24 disposed more on an outer circumference of scroll casing 13 than recessed portion 21.
Air which flows into blower 11 through inflow port 12 shown in
As shown in
In blower 11 shown in
In the inside of scroll casing 13 shown in
In the first exemplary embodiment, a distance between recessed portion inner surface 21a of recessed portion 21 disposed on an inner circumference of scroll casing 13 shown in
In the first exemplary embodiment, angle θa is set to 90°. However, angle θa is determined based on a magnitude of a gradient set for the removal of a product from a mold in manufacturing the product using the mold and on a performance of blower 11. Angle θa is preferably set to a value which falls within a range of 90° or more to 120° or less. When angle θa is set to a value smaller than 90°, the removal of a product from the mold becomes difficult at the time of forming scroll casing 13 using a resin or the like. On the other hand, when angle θa is set to a value larger than 120°, it becomes difficult to generate extremely small vortices from the connection portion between inner-circumferential flat portion 23 and recessed portion inner surface 21a.
As shown in
In blower 11 shown in
Inner-circumferential flat portion 23 and outer-circumferential flat portion 24 shown in
In blower 11 having such a configuration, even when scroll casing 13 cannot ensure a sufficient height, the increase of a pressure loss in an air flow passage due to the projecting of recessed portion 21 toward the inside of scroll casing 13 can be suppressed to a minimum level. As a result, the lowering of air blowing efficiency of centrifugal impeller 14 can be suppressed to a minimum level so that a noise can be reduced.
In a second exemplary embodiment of the present invention, constitutional elements identical to constitutional elements in the first exemplary embodiment are given the same symbols and the detailed explanation of the identical parts is omitted, and only different parts are described.
By setting angle θb to the large angle, the generation of turbulence which occurs when an air flow which flows along bottommost surface 22 leaves bottommost surface 22 can be suppressed to a minimum level so that the increase of a noise can be suppressed.
Angle θb is determined by taking into account a balance between a noise and air blowing efficiency. Angle θb is preferably set to a value which falls within a range of 90° or more to 150° or less. The larger angle θb, the smaller the generation of turbulence of the flow separated from bottommost surface 22 becomes and hence, the increase of a noise can be suppressed. Further, the smaller angle θb, the more effectively a volume in scroll casing 13 can be made use of and hence, the deterioration of air blowing efficiency of centrifugal impeller 14 due to the increase of a pressure loss in an air flow passage of scroll casing 13 can be suppressed to a minimum level.
Further, an outer circumference of lateral plate 18 is formed of inclined surface 18a, and extension 18b of inclined surface 18a intersects with bottommost surface 22 in a cross section of centrifugal impeller 14 in the radial direction.
In blower 11 having such a configuration, air blown out from blowout port 20 flows along a profile of lateral plate 18 thus easily flowing along bottommost surface 22. As a result, the circulation flow is suppressed, and a noise can be reduced.
The blower of the present invention is useful as a blower used in a ventilation blower, air conditioning equipment or the like.
11 blower
12 inflow port
13 scroll casing
14 centrifugal impeller
15 motor
15
a rotary shaft
16 main plate
17 blade
18 lateral plate
18
a inclined surface
18
b extension
19 suction port
20 blowout port
21 recessed portion
21
a recessed portion inner surface
21
b recessed portion outer surface
22 bottommost surface
23 inner-circumferential flat portion
24 outer-circumferential flat portion
25 lateral plate end surface
26 outflow port
Number | Date | Country | Kind |
---|---|---|---|
2013-050036 | Mar 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2014/001086 | 2/28/2014 | WO | 00 |