The present invention relates to a fan used in, for example, a vehicle air conditioner.
Conventionally, there has been known a fan including a cylindrical impeller, and a casing with a spiral ventilation passage formed radially outside the impeller (see, for example, Patent Literature 1).
The casing includes a first side plate provided on one end side of the axial direction of the impeller; a second side plate provided on the other end side of the axial direction of the impeller, and including an air suction port; and an outer plate provided radially outside the impeller. The spiral ventilation passage is formed between the first side plate and the second side plate, and also between the outer periphery of the impeller and the outer plate.
The cross-sectional area of the flow path of the spiral ventilation passage is gradually increased from the starting end side toward the terminal end side to decrease the flow velocity of the flowing air to discharge the air from a discharge opening.
For the above-described fan, in order to gradually increase the cross-sectional area of the flow path of the spiral ventilation passage, the distance between the rotation axis of the impeller and the outer plate is gradually increased from the starting end side toward the terminal end side of the spiral ventilation passage while the dimension of the first side plate is gradually increased on one side of the rotation axis direction of the impeller. As a result, in the fan, the first side plate of the casing has a difference in level between the starting end side and the terminal end side of the spiral ventilation passage.
PTL1: Japanese Patent Application Laid-Open No. H05-195995
The above-described fan generates the circulating flow of the air flowing through the spiral ventilation passage from the terminal end side into the starting end side again. With the fan, in the case where the circulating air flows from the terminal end side into the starting end side of the spiral ventilation passage, when the air flowing along the first side plate collides with the part having the difference in level, the air flow separates from the first side plate, and therefore the turbulence of the air flow occurs in the starting end side of the spiral ventilation passage. The turbulence of the air flow in the starting end side of the spiral ventilation passage may cause the noise from the fan.
It is therefore an object of the present invention to provide a fan capable of preventing the turbulence of the circulating air flowing from the terminal end side to the starting end side of the spiral ventilation passage to improve the silence.
To achieve the object, an aspect of the present invention provides a fan including: a cylindrical impeller; and a casing configured to accommodate the impeller, and including a spiral ventilation passage formed radially outside the impeller. The casing includes: a first side plate provided on a first end side of a rotation axis direction of the impeller; a second side plate provided on a second end side of the rotation axis direction of the impeller, and including an air suction port; and an outer plate provided radially outside the impeller. In each of the first side plate and the second side plate, parts respectively corresponding to a starting end side and a terminal end side of the spiral ventilation passage, and a section corresponding to a connecting ventilation passage which extends from a terminal end portion of the spiral ventilation passage in a rotating direction of the impeller and is connected to a starting end portion of the spiral ventilation passage form a smooth surface by at least one of: connecting flat planes having a certain height; connecting inclined planes having a height gradually changed; or connecting a flat plane and an inclined plane; and a dimension of the spiral ventilation passage in the rotation axis direction of the impeller gradually decreases from the starting end portion and the terminal end portion of the spiral ventilation passage to a predetermined position between the starting end portion and the terminal end portion of the spiral ventilation passage.
By this means, the parts of each of first side plate and the first side plate corresponding to the starting end side and the terminal end side of the spiral ventilation passage, and the part corresponding to the connecting ventilation passage are coplanar with each other. Therefore, the circulating flow flowing along the first side plate and the second side plate from the terminal end side into the starting end side of the spiral ventilation passage via the connecting ventilation passage does not separate from the first side plate and the second side plate. In addition, the circulating flow having flowed along the first side plate and the second side plate and into the starting end side of the spiral ventilation passage flows along the first side plate and the second plate, and therefore is conditioned.
According to the present invention, the circulating air having flowed along the first side plate and the second side plate and entered from the terminal end side into the starting end side of the spiral ventilation passage via the connecting ventilation passage can be flowed along the first side plate and the second side plate without separating the circulating air from the first side plate and the second side plate. In this way, the circulating air having flowed along the first side plate and the second side plate and entered the starting end side of the spiral ventilation passage can be flowed along the first side plate and the second side plate, and therefore it is possible to condition the air flow. As a result, it is possible to prevent noise from being generated to improve the silence.
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As illustrated in
Each of the plurality of wings 11 is arranged so as to extend from the radially inner side toward the outer side. The outer end of each of the plurality of wings 11 is inclined with respect to the inner end in the radial direction, and the outer end bends toward a circumferential direction.
The substrate 12 is a disk-shaped member, and the outer ends of the wings 11 spaced from each other in the circumferential direction are coupled to the outer periphery of the substrate 12. The substrate 12 includes a swelling portion 12a which gradually swells toward the second end of the axial direction from the inside of the outer periphery to which the one end of each of the wings 11 is coupled to the center of the substrate 12. A concave portion is formed in one end of the axial direction of the swelling portion 12a, which gradually caves toward the second end side of the axial direction from the outer periphery to the center of the swelling portion 12a.
A rim 13 is a cylindrical member to which the other end portions of the wings 11 are connected to each other at intervals in the circumferential direction.
When the impeller 10 is rotated in one circumferential direction as indicated by the arrow in
As illustrated in
As illustrated in
A motor support hole 31a is formed in approximately the center of the first side plate 31 to support the electric motor 20 penetrating the motor support hole 31a.
A suction port 34 is provided in approximately the center of the second side plate 32 to allow the air to be sucked into the casing 30. In addition, a cover 32a is provided on the edge of the suction port 34 of the second side plate 32 to cover the inside and the outside of the rim 13 of the impeller 10 in the radial direction, on the second end side of the rotation axis direction of the rim 13 of the impeller 10.
As illustrated in
In addition, as illustrated in
As illustrated in
The spiral ventilation passage 36 is provided between the first side plate 31 and the second side plate 32, and also between the outer periphery of the impeller 10 and part of the outer plate 33 including the spiral portion 33a and part of the straight portion 33b on the spiral portion 33a side. As illustrated in
Moreover, a dimension H of the spiral ventilation passage 36 in the axial direction of the impeller 10 is changed between the starting end portion and the terminal end portion. That is, the dimension H of the spiral ventilation passage 36 in the rotation axial direction of the impeller 10 gradually decreases from the starting end side and the terminal end side to the predetermined position P between the starting end portion and the terminal end portion. The predetermined position P between the starting end portion and the terminal end portion of the spiral ventilation passage 36 is located at a predetermined angle θ about the rotation axis of the impeller 10, from the positon S of the inside end of the spiral portion 33a in the radial direction toward the rotating direction of the impeller 10. It is preferred that the predetermined angle θ is approximately 180 degrees.
To be more specific, the spiral ventilation passage 36 is formed between the second side plate 32 in a flat shape and the first side plate 31 having a shape where a distance from the second side plate 32 is gradually changed. The part of the first side plate 31 corresponding to the starting end portion of the spiral ventilation passage 36 is on approximately the same level as the part of first side plate 31 corresponding to the terminal end portion of the spiral ventilation passage 36. In addition, the first side plate 31 has a distance from the second side plate 32 gradually decreasing from the parts respectively corresponding to the starting end portion and the terminal end portion of the spiral ventilation passage 36 to the part corresponding to the predetermined position P between the starting end portion and the terminal end portion.
The discharge ventilation passage 37 is provided between the first side plate 31 and the second side plate 32, and also between the part of the straight portion 33b on the discharge ventilation passage 35 side and the extension portion 33d. As illustrated in
The connecting ventilation passage 38 is provided between the first side plate 31 and the second side plate 32, and also between the outer periphery of the impeller 10 and the terminal end side of the spiral ventilation passage 36. The section of the first side plate 31 corresponding to the connecting ventilation passage 38 is on approximately the same level as the starting end side and the terminal end side of the spiral ventilation passage 36. The section of the first side plate 31 corresponding to the connecting ventilation passage 38 is coplanar with the starting end side of the spiral ventilation passage 36, and is connected to the terminal end portion of the spiral ventilation passage 36 at the same height without forming a step.
With the fan 1 having the above-described configuration, when the electric motor 20 is driven to rotate the impeller 10 in one circumferential direction, the air outside the casing 30 is sucked into the casing 30 via the suction port 34 formed in the second side plate 32. The air sucked into the casing 30 via the suction port 34 flows into the impeller 10 from the second end side of the axial direction of the impeller 10 and flows radially out of the outer periphery of the impeller 10. The air flowed radially out of the outer periphery of the impeller 10 flows through the spiral ventilation passage 36 and the discharge ventilation passage 37, and then is discharged from the discharge opening 35. Meanwhile, part of the air flows from the terminal end side of the spiral ventilation passage 36 into the starting end side of the spiral ventilation passage 36 via the connecting ventilation passage 38 as a circulating flow.
In this case, the parts of the first side plate 31 respectively corresponding to the starting end portion and the terminal end portion of the spiral ventilation passage 36, and the section of the first side plate 31 corresponding to the connecting ventilation passage 38 are coplanar with each other without forming a step. Therefore, the circulating flow flowing from the terminal end side to the starting end side of the spiral ventilation passage 36 via the connecting ventilation passage 38 can circulate along the first side plate 31 without separating from the first side plate 31. Accordingly, it is possible to prevent the turbulence of the air flow in the starting end side of the spiral ventilation passage 36.
In addition, the dimension H of the spiral ventilation passage 36 in the direction of the rotation axis of the impeller 10 decreases gradually from the starting end side and the terminal end side of the spiral ventilation passage 36 toward the predetermined position P between the starting end portion and the terminal end portion. Moreover, the dimension of the spiral ventilation passage 36 in the radial direction of the impeller 10 gradually increases in the rotating direction of the impeller 10. In this way, the dimension H of the spiral ventilation passage 36 gradually decreases to the predetermined position P, while the dimension of the spiral ventilation passage 36 gradually increases in the radial direction. Therefore, it is possible to prevent an increase in the flow velocity of the circulating flow flowing along the first side plate 31 and into the starting end side of the spiral ventilation passage 36. In addition, the dimension H of the spiral ventilation passage 36 gradually increases from the predetermined position P toward the terminal end side of the spiral ventilation passage 36 while the dimension of the spiral ventilation passage 36 in the radial direction gradually increases. Therefore, it is possible to gradually decrease the flow velocity of the circulating flow flowing to the predetermined position P of the spiral ventilation passage 36 along the first side plate 31 to condition the flow, and consequently to prevent the turbulence of the air flow.
As described above, the fan 1 according to the embodiment has the configuration where a section of the first side plate 31 including the parts respectively corresponding to the starting end side and the terminal end side of the spiral ventilation passage 36 and the part corresponding to the connecting ventilation passage 38 which extends from the terminal end portion of the spiral ventilation passage 36 in the rotating direction of the impeller 10 and is connected to the starting end portion of the spiral ventilation passage 36 is formed by connecting inclined planes having a height gradually changed. The dimension H of the spiral ventilation passage 36 in the direction of the rotation axis of the impeller 10 gradually decreases from the starting end portion and the terminal end portion of the spiral ventilation passage 36 to the predetermined position P between the starting end portion and the terminal end portion of the spiral ventilation passage 36.
By this means, the circulating air having flowed along the first side plate 31 and entered the starting end side from the terminal end side of the spiral ventilation passage 36 via the connecting ventilation passage 38 can be flowed along the first side plate 31 without separating the circulating air from the first side plate 31. In this way, the circulating air having flowed along the first side plate 31 and entered the starting end side of the spiral ventilation passage 36 can be flowed along the first side plate 31, and therefore can be conditioned. As a result, it is possible to prevent noise from being generated to improve the silence.
In addition, the spiral ventilation passage 36 is formed between the flat second side plate 32 and the first side plate 31 having a shape where a distance from the second side plate 32 is gradually changed.
Therefore, the second side plate 32 is formed in a simple shape, and consequently it is possible to reduce the production cost.
The predetermined position P between the starting end side and the terminal end side of the spiral ventilation passage 36 is located at an angle of 180 degrees about the rotation axis of the impeller 10, from the starting end portion to the terminal end portion of the spiral ventilation passage 36.
By this means, it is possible to ensure that the circulating flow having flowed along the first side plate 31 and entered the stating end side of the spiral ventilation passage 36 flows along the first side plate 31.
Here, the above-described embodiment may be applicable to an air conditioner used in buildings or a fan device such as a ventilator, as well as a fan device for a vehicle air conditioner.
In addition, with the above-described embodiment, the spiral ventilation passage 36 and the connecting ventilation passage 38 are formed between the second side plate 32 formed in a flat shape and the first side plate 31 having a shape where a distance from the second side plate 32 is gradually changed. However, this is by no means limiting. For example, the spiral ventilation passage 36 and the connecting ventilation passage 38 may be formed between the first side plate formed in a flat shape and the second side plate having a shape where a distance from the first side plate is gradually changed. Alternatively, the spiral ventilation passage and the connecting ventilation passage may be formed between the first side plate and the second side plate each of which has a height gradually changed in the rotation axis direction of the impeller.
Moreover, with the above-described embodiment, the section of the first side plate 31 corresponding to the connecting ventilation passage 38 is coplanar with the starting end side of the spiral ventilation passage 36, and is connected to the terminal end portion of the spiral ventilation passage 36 at the same height. However, this is by no means limiting as long as the parts of the first side plate 31 respectively corresponding to the starting end side and the terminal end side of the spiral ventilation passage 36 and the section of the first side plate 31 corresponding to the connecting ventilation passage 38 are connected to make a smooth surface without forming a step. In this case, a smooth surface may be formed by connected flat planes having the same height, connected inclined planes having a height gradually changed, or a combination of a flat plane and an inclined plane.
1 fan, 10 impeller, 30 casing, 31 first side plate, 32 second side plate, 33 outer plate, 34 suction port, 36 spiral ventilation passage, 38 connecting ventilation passage
Number | Date | Country | Kind |
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2018-034824 | Feb 2018 | JP | national |
2018-190787 | Oct 2018 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2019/005634 | 2/15/2019 | WO | 00 |