WO2018193545A1 - プロペラファン及び空気調和装置用室外機 - Google Patents
プロペラファン及び空気調和装置用室外機 Download PDFInfo
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- WO2018193545A1 WO2018193545A1 PCT/JP2017/015699 JP2017015699W WO2018193545A1 WO 2018193545 A1 WO2018193545 A1 WO 2018193545A1 JP 2017015699 W JP2017015699 W JP 2017015699W WO 2018193545 A1 WO2018193545 A1 WO 2018193545A1
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- Prior art keywords
- blade
- propeller fan
- distance
- warp angle
- rotation axis
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D29/00—Details, component parts, or accessories
- F04D29/26—Rotors specially for elastic fluids
- F04D29/32—Rotors specially for elastic fluids for axial flow pumps
- F04D29/38—Blades
- F04D29/384—Blades characterised by form
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D29/00—Details, component parts, or accessories
- F04D29/66—Combating cavitation, whirls, noise, vibration or the like; Balancing
- F04D29/68—Combating cavitation, whirls, noise, vibration or the like; Balancing by influencing boundary layers
- F04D29/681—Combating cavitation, whirls, noise, vibration or the like; Balancing by influencing boundary layers especially adapted for elastic fluid pumps
Definitions
- the present invention relates to a propeller fan and an outdoor unit for an air conditioner including the same.
- Patent Document 1 describes a jet fan equipped with a moving blade.
- This moving blade is provided with an airfoil having a warp on one side. Further, the moving blade has a warp angle distribution such that the warp angle gradually decreases from the tip to the base.
- the present invention has been made to solve the above-described problems, and an object thereof is to provide a propeller fan and an air conditioner outdoor unit that can reduce noise.
- a propeller fan includes a shaft portion provided on a rotating shaft, and a blade provided on an outer peripheral side of the shaft portion, and the blade includes a root portion connected to the shaft portion; A first portion located on the outer peripheral side of the root portion or the root portion, the distance from the rotation axis is r1, a second portion where the distance from the rotation axis is r2 longer than r1, and A third portion that is r3 having a distance from the rotating shaft of r2 or more, and a tip portion that is located at the outer peripheral end of the blade and has an rt that is longer than r3 by the distance from the rotating shaft.
- the warp angle of the blade at the first part is ⁇ 1
- the warp angle of the blade at the second part is ⁇ 2
- the warp angle of the blade at the third part is ⁇ 3, ( ⁇ 2 ⁇ 1) / (r2 ⁇ r1)> ( ⁇ t ⁇ 3) /
- the relationship (rt ⁇ r3) ⁇ 0 is satisfied.
- the outdoor unit for an air conditioner according to the present invention includes the propeller fan according to the present invention.
- the radial flow on the suction surface side of the blade can be suppressed, the radial flow can be prevented from colliding with the blade tip vortex, and the formation of the blade tip vortex can be stabilized. Further, according to the present invention, since the leakage flow from the pressure surface side to the suction surface side of the blade can be suppressed, the formation of the blade tip vortex can be further stabilized. Therefore, according to the present invention, the noise of the propeller fan can be reduced.
- FIG. 1 is a cross-sectional view showing a schematic configuration of the propeller fan according to the present embodiment.
- FIG. 1 the radial direction cross section of the propeller fan cut
- the relative dimensional relationship and shape of each component may be different from the actual one.
- the propeller fan includes a boss 10 (an example of a shaft portion) that is provided on the rotation axis R and rotates about the rotation axis R, and a plurality of plate-like members provided on the outer peripheral side of the boss 10. 1 (only one blade 20 is shown in FIG. 1), and a motor (not shown) that rotationally drives the boss 10 and the plurality of blades 20.
- the wind direction of the wind generated by the rotation of the blade 20 is the downward direction in FIG.
- the upper surface of the blade 20 is a suction surface and the lower surface of the blade 20 is a pressure surface.
- the blade 20 has a root portion 21 connected to the boss 10 and a tip portion 22 located at the outer peripheral end of the blade 20.
- the distance from the rotation axis R to the tip portion 22 is rt.
- the blade 20 has a warp such that the suction surface side is convex and the pressure surface side is concave in the circumferential cross section shown in FIG.
- the blade 20 has a predetermined warp angle distribution in the radial direction. That is, the warp angle of the blade 20 varies depending on the distance from the rotation axis R. The definition of the warp angle will be described later with reference to FIG.
- the blade 20 has a first portion P1, a second portion P2, and a third portion P3 between the root portion 21 and the tip portion 22 (including the root portion 21 itself).
- the first portion P ⁇ b> 1 is an arbitrary portion located on the outer peripheral side or the base portion 21 with respect to the base portion 21.
- the distance from the rotation axis R to the first portion P1 is r1.
- the second part P2 is located on the outer peripheral side with respect to the first part P1.
- the distance from the rotation axis R to the second portion P2 is r2 longer than the distance r1 (r1 ⁇ r2).
- the third portion P3 coincides with the second portion P2, or is located on the outer peripheral side with respect to the second portion P2.
- the third portion P3 is located on the inner peripheral side with respect to the tip portion 22.
- the distance from the rotation axis R to the third portion P3 is r3 that is not less than the distance r2 and shorter than the distance rt (r2 ⁇ r3 ⁇ rt).
- the distance r1, the distance r2, the distance r3, and the distance rt satisfy the relationship r1 ⁇ r2 ⁇ r3 ⁇ rt.
- the distance r1 and the distance rt desirably satisfy the relationship of 0.5rt ⁇ r1.
- FIG. 2 is a graph showing the relationship between the distance from the rotation axis R and the warp angle in the blade 20 of the propeller fan according to the present embodiment, that is, the distribution of the warp angle in the radial direction of the blade 20.
- the horizontal axis in FIG. 2 represents the distance from the rotation axis R
- the vertical axis represents the warp angle.
- the warp angle distribution of the blade 20 according to the present embodiment is indicated by a solid line
- the warp angle distribution of the blade of the comparative example is indicated by a broken line.
- the warp angle increases linearly as the distance from the rotation axis R increases.
- the angle of curvature at the portion where the distance from the rotation axis R is r1 is ⁇ 1
- the portion where the distance from the rotation axis R is r2 ie, , The curvature angle at the second portion P2
- the curvature angle at the portion where the distance from the rotation axis R is r3 is ⁇ 3
- the distance from the rotation axis R is rt.
- the warp angle at the part that is, the chip part 22
- ⁇ t As shown in FIG. ( ⁇ 2- ⁇ 1) / (r2-r1)> ( ⁇ t- ⁇ 3) / (rt-r3) ⁇ 0 It is formed to satisfy the relationship.
- At least a portion of the blade 20 from the first portion P1 to the tip portion 22 is convex on the suction surface side in the radial cross section shown in FIG. Curved to be concave.
- the warp angle increases monotonically and linearly as the distance from the rotation axis R increases.
- the distribution of the warp angle in each section is not limited to the examples shown in FIGS.
- the warp angle in the section from the first part P1 to the second part P2 does not necessarily increase linearly and does not necessarily increase monotonously.
- the warp angle in the section from the second part P2 to the third part P3 does not necessarily increase, and may decrease as the distance from the rotation axis R increases.
- the warp angle in the section from the third portion P3 to the tip portion 22 does not necessarily increase, and may be constant regardless of the distance from the rotation axis R.
- FIG. 3 is an explanatory diagram showing the definition of the warp angle in the blade 20 of the propeller fan according to the present embodiment.
- FIG. 3 shows a blade cross section 30 in which a three-dimensional blade cross section in which the blade 20 is cut by a cylindrical surface around the rotation axis R is developed in a two-dimensional plane.
- the left direction in FIG. 3 is the rotation direction, and the right direction is the counter-rotation direction.
- a straight line connecting the end point on the front edge 23 side and the end point on the rear edge 24 side is referred to as a chord line 25, and the length of the chord line 25 is referred to as a chord length L.
- the point Pm is the midpoint of the chord line 25.
- the blade cross section 30 has a warp in which the suction surface side is convex and the pressure surface side is concave. For this reason, the blade cross section 30 shifts from the chord line 25 to the counter-rotating direction.
- the maximum distance between the blade cross section 30 and the chord line 25 in the direction perpendicular to the chord line 25 is the blade height ⁇ d.
- an angle ⁇ formed by a perpendicular 26 to the arc tangent at the end point on the leading edge 23 side and a perpendicular 27 to the arc tangent on the trailing edge 24 side end point Becomes the angle of curvature.
- an angle ⁇ (0 ° ⁇ ⁇ 90 °) larger than 0 ° and smaller than 90 ° is a warp angle.
- the warp angle ⁇ is an angle representing the degree of warpage of the blade cross section 30. If the chord length L is constant, the blade height ⁇ d increases as the warp angle ⁇ increases. In FIG. 1, the change of the blade height ⁇ d with respect to the distance from the rotation axis R is expressed as the shape of the blade 20.
- the blade height on the outer peripheral side cannot be made sufficiently higher than the blade height on the inner peripheral side.
- the radial flow 41 (see FIG. 1) of the air on the suction side generated by the centrifugal force cannot be sufficiently suppressed.
- the radial flow 41 on the suction surface side collides with a blade tip vortex 43 formed on the suction surface side of the tip portion of the blade. Thereby, since the formation of the blade tip vortex 43 becomes unstable, the noise of the propeller fan increases.
- the amount of increase in the warp angle in the second portion P2 relative to the warp angle in the first portion P1 can be made larger than in the past. For this reason, the blade height in the second portion P2 can be made sufficiently higher than the blade height in the first portion P1. Thereby, since the radial flow 41 on the suction surface side can be suppressed, the radial flow 41 can be prevented from colliding with the blade tip vortex 43, and the formation of the blade tip vortex 43 can be stabilized. it can.
- the amount of increase in the warp angle at the tip portion 22 relative to the warp angle at the third portion P3 can be suppressed as compared with the conventional art. For this reason, the leakage flow 42 from the pressure surface side to the suction surface side can be suppressed, and the formation of the blade tip vortex 43 can be further stabilized. Therefore, the noise of the propeller fan can be reduced and the efficiency of the propeller fan can be improved.
- the distance r1 from the rotation axis R to the first portion P1 is not less than half of the distance rt from the rotation axis R to the tip portion 22 (0.5rt ⁇ r1).
- the wing 20 can have various shapes depending on wing shape parameters other than the warp angle.
- the distribution of the warp angle in the radial direction of the blade 20 is ( ⁇ 2- ⁇ 1) / (r2-r1)> ( ⁇ t- ⁇ 3) / (rt-r3) ⁇ 0
- FIG. 4 is a cross-sectional view showing a schematic configuration of a propeller fan according to a modification of the present embodiment.
- the blade 20 of the propeller fan according to this modification has a blade shape in which the outermost tip portion 22 is located on the most downstream side.
- the radial flow 41 from the inner peripheral side to the outer peripheral side tends to increase on the suction surface side.
- the distribution of the warping angle in the radial direction is ( ⁇ 2- ⁇ 1) / (r2-r1)> ( ⁇ t- ⁇ 3) / (rt-r3) ⁇ 0 It is formed to satisfy the relationship. For this reason, the increase amount of the curvature angle in the 2nd part P2 with respect to the curvature angle in the 1st part P1 can be made larger than before. Thereby, since the blade height at the second portion P2 can be sufficiently ensured with respect to the blade height at the first portion P1, the radial flow 41 on the suction surface side can be suppressed.
- the amount of increase in the warp angle at the tip portion 22 relative to the warp angle at the third portion P3 can be suppressed as compared with the prior art. For this reason, the leakage flow 42 from the pressure surface side to the suction surface side can be suppressed. Therefore, also in the propeller fan of the present modification, low noise and high efficiency can be realized as in the case of the propeller fan shown in FIG.
- the propeller fan includes the boss 10 (an example of the shaft portion) provided on the rotation shaft R and the blade 20 provided on the outer peripheral side of the boss 10. Yes.
- the wing 20 is connected to the boss 10, the root portion 21, or the outer peripheral side of the root portion 21 or the root portion 21, and the first portion P ⁇ b> 1 having a distance r ⁇ b> 1 from the rotation axis R and the rotation axis R Is located at the outer peripheral edge of the blade 20 and from the rotation axis R.
- the second portion P2 is r2 longer than r1 and the second portion P2 is r3, the distance from the rotation axis R is r3.
- a chip portion 22 having a distance rt longer than r3.
- the warp angle of the blade 20 in the first part P1 is ⁇ 1
- the warp angle of the blade 20 in the second part P2 is ⁇ 2
- the warp angle of the blade 20 in the third part P3 is ⁇ 3
- the tip part 22 When the warp angle of the wing 20 is ⁇ t, ( ⁇ 2- ⁇ 1) / (r2-r1)> ( ⁇ t- ⁇ 3) / (rt-r3) ⁇ 0
- the relationship is satisfied.
- the radial flow 41 on the suction surface side can be suppressed, and the leakage flow 42 from the pressure surface side to the suction surface side can be suppressed. Therefore, noise reduction and high efficiency of the propeller fan can be realized.
- the warp angle of the blade 20 between the first portion P1 and the second portion P2 increases as the distance from the rotation axis R increases, and the third portion The warp angle of the blade 20 between P3 and the tip portion 22 increases or remains constant as the distance from the rotation axis R increases.
- the warpage angle on the outer peripheral side can be made larger than that on the inner peripheral side in the entire region between the first portion P1 and the second portion P2. Therefore, the radial flow 41 on the suction surface side can be more reliably suppressed. Further, according to this configuration, the warpage angle on the outer peripheral side can be made equal to or greater than that on the inner peripheral side in the entire region between the third portion P3 and the chip portion 22. Therefore, the leakage flow 42 from the pressure surface side to the suction surface side can be more reliably suppressed.
- the warp angle of the blade 20 between the third portion P3 and the tip portion 22 changes linearly or increases as the distance from the rotation axis R increases. It is.
- the warp angle between the third portion P3 and the tip portion 22 changes linearly or is constant, excessive pressure increase on the outer peripheral side of the blade 20 and the blade 20 It is possible to prevent an abrupt increase in the warp angle at the outer peripheral edge. Therefore, the leakage flow 42 from the pressure surface side to the suction surface side can be more reliably suppressed.
- FIG. 5 is a cross-sectional view showing a schematic configuration of the propeller fan according to the present embodiment.
- FIG. 6 is a graph showing the relationship between the distance from the rotation axis R and the warp angle in the blade 20 of the propeller fan according to the present embodiment, that is, the distribution of the warp angle in the radial direction of the blade 20.
- symbol is attached
- the warp angle distribution of the blade 20 is appropriately defined in the entire region between the first portion P1 and the tip portion 22. Therefore, according to the present embodiment, the effect of suppressing the radial flow 41 or the effect of suppressing the leakage flow 42 is obtained in the entire region between the first portion P1 and the tip portion 22.
- FIG. 7 is a cross-sectional view showing a schematic configuration of the propeller fan according to the present embodiment.
- FIG. 8 is a graph showing the relationship between the distance from the rotation axis R and the warp angle in the blade 20 of the propeller fan according to the present embodiment, that is, the distribution of the warp angle in the radial direction of the blade 20.
- symbol is attached
- the blade tip vortex 43 has a width of about 0.1 times the distance rt from the rotation axis R to the tip portion 22. For this reason, when the relationship r3 ⁇ 0.9 ⁇ rt is satisfied, the third portion P3 is located on the inner peripheral side of the blade tip vortex 43. Therefore, according to the present embodiment, the same effect as in the first embodiment can be obtained while suppressing the influence of the blade tip vortex 43.
- FIG. 9 is a cross-sectional view showing a schematic configuration of the propeller fan according to the present embodiment.
- FIG. 10 is a graph showing the relationship between the distance from the rotation axis R and the warp angle in the blade 20 of the propeller fan according to the present embodiment, that is, the distribution of the warp angle in the radial direction of the blade 20.
- symbol is attached
- the propeller fan according to the present embodiment is convex toward the low warp angle side when the relationship between the distance from the rotation axis R and the warp angle of the blade 20 is represented in a graph.
- the portion is configured to exist at least at a part between the first portion P1 and the second portion P2.
- FIG. 11 is a graph showing the relationship between the distance from the rotation axis R and the warp angle in the blade 20 of the propeller fan according to the modification of the present embodiment.
- the propeller fan according to this modification has a portion that protrudes toward the low warp angle side at least partly between the first portion P1 and the second portion P2, and the rotation axis R.
- the warp angle of the wing 20 changes smoothly with respect to the distance from. According to this modification, it is possible to obtain the same effect as the configuration shown in FIG. 9 and FIG. 10 while preventing the formation of wrinkles on the blade surface of the blade 20.
- FIG. 12 is a schematic diagram showing a schematic configuration of the air conditioner outdoor unit according to the present embodiment.
- the lower part in FIG. 12 represents the front side of the outdoor unit, and the upper part in FIG. 12 represents the rear side of the outdoor unit.
- the outdoor unit for an air conditioner includes a box-shaped casing 110. Ventilation holes 115 through which air flows into the housing 110 from the outside are formed on the back surface and one side surface of the housing 110.
- An opening 116 that allows air to flow out from the inside of the housing 110 to the outside and a cylindrical bell mouth 117 that guides air inside the housing 110 to the opening 116 are formed on the front surface of the housing 110.
- a blowing grill 130 is attached to the front surface of the housing 110 so as to cover the opening 116.
- the interior of the housing 110 is partitioned into a machine room 113 and a fan room 112 by a partition plate 111.
- the machine room 113 accommodates a compressor 114, a refrigerant pipe, an electrical component box, and the like.
- the fan chamber 112 accommodates the propeller fan 120 according to any of the first to fourth embodiments and the heat exchanger 121 to which air is supplied by the propeller fan 120.
- the propeller fan 120 includes a boss 10 and a blade 20 and a motor 122 that rotationally drives the boss 10 and the blade 20 about the rotation axis R.
- the propeller fan 120 is disposed downstream of the heat exchanger 121 in the air flow.
- the heat exchanger 121 performs heat exchange between the refrigerant circulating inside and the air blown by the propeller fan 120.
- the heat exchanger 121 constitutes a refrigeration cycle together with the compressor 114 and a load-side heat exchanger (not shown).
- the heat exchanger 121 has an L-shaped cross-sectional shape as a whole.
- the heat exchanger 121 is disposed along the back surface and one side surface of the housing 110 in which the ventilation holes 115 are respectively formed.
- a cross fin type fin-and-tube heat exchanger including a plurality of fins and a heat transfer tube in which a refrigerant flows is used.
- low noise and high efficiency of the propeller fan 120 can be realized as in any of the first to fourth embodiments.
- the present invention is not limited to the above embodiment, and various modifications can be made.
- the propeller fan provided with the boss 10 is taken as an example, but the present invention can also be applied to a bossless type propeller fan not provided with the boss.
- the bossless type propeller fan includes a cylindrical shaft portion, a plurality of blades provided on the outer peripheral side of the shaft portion, and two blades adjacent to each other in the circumferential direction provided adjacent to the shaft portion. And a plate-like connecting portion for connecting the two.
- the bossless type propeller fan has an integrated wing in which a plurality of wings are integrated via a plate-like connecting portion.
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Abstract
Description
本発明の実施の形態1に係るプロペラファンについて説明する。プロペラファンは、例えば、空気調和装置又は換気装置などに用いられるものである。図1は、本実施の形態に係るプロペラファンの概略構成を示す断面図である。図1では、回転軸Rを含む平面で切断されたプロペラファンの径方向断面を示している。なお、図1を含む以下の図面では、各構成部材の相対的な寸法の関係や形状等が実際のものとは異なる場合がある。
(θ2-θ1)/(r2-r1)>(θt-θ3)/(rt-r3)≧0
の関係を満たすように形成されている。
(θ2-θ1)/(r2-r1)>(θt-θ3)/(rt-r3)≧0
の関係を満たすことにより、翼形状に関わらず、上記と同様の効果が相対的に得られる。
(θ2-θ1)/(r2-r1)>(θt-θ3)/(rt-r3)≧0
の関係を満たすように形成されている。このため、第1部分P1での反り角に対する第2部分P2での反り角の増加量を従来よりも大きくすることができる。これにより、第2部分P2での翼高さを第1部分P1での翼高さに対して十分に確保できるため、負圧面側の径方向流れ41を抑制することができる。
(θ2-θ1)/(r2-r1)>(θt-θ3)/(rt-r3)≧0
の関係が満たされる。
本発明の実施の形態2に係るプロペラファンについて説明する。図5は、本実施の形態に係るプロペラファンの概略構成を示す断面図である。図6は、本実施の形態に係るプロペラファンの翼20における回転軸Rからの距離と反り角との関係、すなわち翼20の径方向における反り角の分布を示すグラフである。なお、実施の形態1と同一の機能及び作用を有する構成要素については、同一の符号を付してその説明を省略する。図5及び図6に示すように、本実施の形態に係るプロペラファンは、第2部分P2と第3部分P3とが一致するように構成されている。すなわち、本実施の形態に係るプロペラファンは、r2=r3の関係が満たされるとともにθ2=θ3の関係が満たされるように構成されている。
本発明の実施の形態3に係るプロペラファンについて説明する。図7は、本実施の形態に係るプロペラファンの概略構成を示す断面図である。図8は、本実施の形態に係るプロペラファンの翼20における回転軸Rからの距離と反り角との関係、すなわち翼20の径方向における反り角の分布を示すグラフである。なお、実施の形態1と同一の機能及び作用を有する構成要素については、同一の符号を付してその説明を省略する。図7及び図8に示すように、本実施の形態に係るプロペラファンは、r2≦r3≦0.9×rt(例えば、r2≦r3=0.9×rt)の関係が満たされるように構成されている。
本発明の実施の形態4に係るプロペラファンについて説明する。図9は、本実施の形態に係るプロペラファンの概略構成を示す断面図である。図10は、本実施の形態に係るプロペラファンの翼20における回転軸Rからの距離と反り角との関係、すなわち翼20の径方向における反り角の分布を示すグラフである。なお、実施の形態1と同一の機能及び作用を有する構成要素については、同一の符号を付してその説明を省略する。図9及び図10に示すように、本実施の形態に係るプロペラファンは、回転軸Rからの距離と翼20の反り角との関係をグラフに表したとき、低反り角側に凸となる部分が第1部分P1と第2部分P2との間の少なくとも一部に存在するように構成されている。
本発明の実施の形態5に係る空気調和装置用室外機について説明する。図12は、本実施の形態に係る空気調和装置用室外機の概略構成を示す模式図である。図12中の下方は室外機の正面側を表しており、図12中の上方は室外機の背面側を表している。図12に示すように、空気調和装置用室外機は、箱形形状の筐体110を備えている。筐体110の背面及び一方の側面には、外部から筐体110の内部に空気を流入させる通風孔115が形成されている。筐体110の前面には、筐体110の内部から外部に空気を流出させる開口部116と、筐体110の内部の空気を開口部116に案内する円筒状のベルマウス117と、が形成されている。筐体110の前面には、開口部116を覆うように吹出グリル130が取り付けられている。
例えば、上記実施の形態では、ボス10を備えたプロペラファンを例に挙げたが、本発明は、ボスを備えないボスレス型のプロペラファンにも適用できる。ボスレス型のプロペラファンは、筒状の軸部と、軸部の外周側に設けられた複数の翼と、軸部に隣接して設けられ複数の翼のうち周方向に隣り合う2つの翼同士を連結する板状の連結部と、を備えている。すなわち、ボスレス型のプロペラファンは、複数の翼が板状の連結部を介して一体化した一体翼を有している。
Claims (7)
- 回転軸上に設けられた軸部と、
前記軸部の外周側に設けられた翼と、を備え、
前記翼は、
前記軸部に接続された付け根部と、
前記付け根部又は前記付け根部よりも外周側に位置し、前記回転軸からの距離がr1となる第1部分と、
前記回転軸からの距離がr1よりも長いr2となる第2部分と、
前記回転軸からの距離がr2以上であるr3となる第3部分と、
前記翼の外周端に位置し、前記回転軸からの距離がr3よりも長いrtとなるチップ部と、を有しており、
前記第1部分での前記翼の反り角をθ1とし、前記第2部分での前記翼の反り角をθ2とし、前記第3部分での前記翼の反り角をθ3とし、前記チップ部での前記翼の反り角をθtとしたとき、
(θ2-θ1)/(r2-r1)>(θt-θ3)/(rt-r3)≧0
の関係が満たされるプロペラファン。 - 前記第1部分と前記第2部分との間での前記翼の反り角は、前記回転軸からの距離の増加に従って増加しており、
前記第3部分と前記チップ部との間での前記翼の反り角は、前記回転軸からの距離の増加に従って増加しているか又は一定である請求項1に記載のプロペラファン。 - r2=r3の関係が満たされる請求項1又は請求項2に記載のプロペラファン。
- r3≦0.9×rtの関係が満たされる請求項1~請求項3のいずれか一項に記載のプロペラファン。
- 前記回転軸からの距離と前記翼の反り角との関係をグラフに表したとき、低反り角側に凸となる部分が前記第1部分と前記第2部分との間の少なくとも一部に存在する請求項1~請求項4のいずれか一項に記載のプロペラファン。
- 前記第3部分と前記チップ部との間での前記翼の反り角は、前記回転軸からの距離の増加に従って線形的に変化しているか又は一定である請求項1~請求項5のいずれか一項に記載のプロペラファン。
- 請求項1~請求項6のいずれか一項に記載のプロペラファンを備えた空気調和装置用室外機。
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|---|---|---|---|
| US16/484,109 US11149743B2 (en) | 2017-04-19 | 2017-04-19 | Propeller fan and outdoor unit for air-conditioning apparatus |
| JP2019513136A JP6827531B2 (ja) | 2017-04-19 | 2017-04-19 | プロペラファン及び空気調和装置用室外機 |
| ES17906046T ES2879301T3 (es) | 2017-04-19 | 2017-04-19 | Ventilador de hélice y unidad exterior de dispositivo de aire acondicionado |
| PCT/JP2017/015699 WO2018193545A1 (ja) | 2017-04-19 | 2017-04-19 | プロペラファン及び空気調和装置用室外機 |
| CN201780089547.5A CN110506164B (zh) | 2017-04-19 | 2017-04-19 | 螺旋桨式风扇及空调装置用室外机 |
| AU2017410135A AU2017410135B2 (en) | 2017-04-19 | 2017-04-19 | Propeller fan and outdoor unit for air-conditioning apparatus |
| EP17906046.2A EP3613994B1 (en) | 2017-04-19 | 2017-04-19 | Propeller fan and air-conditioning device outdoor unit |
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| PCT/JP2017/015699 WO2018193545A1 (ja) | 2017-04-19 | 2017-04-19 | プロペラファン及び空気調和装置用室外機 |
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| CN110848173A (zh) * | 2019-12-18 | 2020-02-28 | 珠海格力电器股份有限公司 | 送风装置 |
| US20220325905A1 (en) * | 2021-04-07 | 2022-10-13 | Rheem Manufacturing Company | Air handling unit and fan therefor |
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| DE102013018690A1 (de) * | 2013-11-08 | 2015-05-13 | Uts Biogastechnik Gmbh | Rühreinrichtung für einen Fermenter einer Biogasanlage und Verfahren zur Herstellung einer Rühreinrichtung |
| EP3816454A4 (en) * | 2018-05-09 | 2022-01-26 | York Guangzhou Air Conditioning and Refrigeration Co., Ltd. | BLADE AND AXIAL FLOW IMPELLER WITH USE THEREOF |
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| CN110506164B (zh) | 2021-07-13 |
| AU2017410135B2 (en) | 2020-06-11 |
| EP3613994B1 (en) | 2021-05-26 |
| CN110506164A (zh) | 2019-11-26 |
| JPWO2018193545A1 (ja) | 2019-12-12 |
| EP3613994A1 (en) | 2020-02-26 |
| US11149743B2 (en) | 2021-10-19 |
| JP6827531B2 (ja) | 2021-02-10 |
| AU2017410135A1 (en) | 2019-10-10 |
| ES2879301T3 (es) | 2021-11-22 |
| US20200040906A1 (en) | 2020-02-06 |
| EP3613994A4 (en) | 2020-04-22 |
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