Multi-volute sirocco fan
10247199 ยท 2019-04-02
Assignee
Inventors
Cpc classification
F05D2260/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/33
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/4246
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Disclosed is a multi-volute sirocco fan (multiblade fan). The present invention relates to a multi-volute sirocco fan configured to discharge fluid into several directions while using one motor and one fan. The sirocco fan according to the present invention comprises: a driving motor; a fan connected to a rotation shaft of the driving motor to thus be rotated therewith, the fan having a plurality of vanes arranged and installed in a cylindrical shape along the circumferential direction thereof; and at least two stacked volutes in the center of which the fan is arranged and installed and which guide the fluid while the cross-sectional area formed by the upper and lower surfaces, side surfaces thereof and the outer circumferential surface of the fan is linearly increased.
Claims
1. A multi-volute sirocco fan, comprising: a driving motor; a fan connected to a rotation shaft of the driving motor to be rotated therewith, and having a plurality of vanes arranged and installed in a cylindrical shape along a circumferential direction thereof; and at least two stacked volutes in a center of which the fan is arranged and installed and which guide a fluid while a cross-sectional area thereof formed by upper and lower surfaces, side surfaces thereof and an outer circumferential surface of the fan is linearly increased; and wherein a plurality of diameter reduction protruding portions of which diameters are reduced and which protrude are provided at an upper surface central introduction port of a lower one of the volutes, and a plurality of diameter reduction grooves of which diameters are reduced and which protrude and then are bent to form grooves therein are provided at a lower surface central introduction port of an upper one of the volutes, and when the upper and lower volutes are coupled, ends of the diameter reduction protruding portions are fitted and coupled to the diameter reduction grooves.
2. The multi-volute sirocco fan of claim 1, wherein a lower surface of a lowermost one of the volutes is closed.
3. The multi-volute sirocco fan of claim 1, wherein a rounded guide for guiding the fluid is provided at an end of an upper surface central introduction port of an uppermost one of the volutes.
4. The multi-volute sirocco fan of claim 1, wherein the volutes are stacked, and then contact surfaces thereof are welded and fixed.
5. The multi-volute sirocco fan of claim 1, wherein a plurality of protruding portions are provided at the lower surface central introduction port of the upper one of the volutes, and bent and assembled so as to cover an end of a central introduction port of an upper surface of the lower volute while the upper volute is stacked with the lower volute.
6. The multi-volute sirocco fan of claim 1, wherein a height of each of the volutes is provided to be different from each other.
Description
DESCRIPTION OF DRAWINGS
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MODES OF THE INVENTION
(10) Objects, characteristics and advantages of the present invention will be more apparent from the following detailed description. Hereinafter, preferred embodiments will be described in detail with reference to the accompanying drawings.
(11) As illustrated in
(12) Referring to
(13) The fluid is introduced through central introduction ports 21a and 23a of the second volute 20, and then discharged along the volutes 10 and 20 to each of the discharge ports 10a and 20a by the fan 30.
(14)
(15) The fan 30 includes upper and lower rims 32 and 33, and a plurality of vanes 31 which are installed between the upper and lower rims 32 and 33. Such a fan 30 is a typical fan. Of course, a height of the fan 30 is similar to a height formed by stacking the first and second volutes 10 and 20.
(16) A part of the fan 30 is inserted into the second volute 20 through the lower central introduction port 23a, and a lower plate 23 of the second volute 20 is stacked so as to be in close contact with an upper plate 10 of the first volute 10.
(17) An important point is that the central introduction ports 21a, 23a and 11a of the first and second volutes 10 and 20 and a center of the fan 30 should be located on the same axis, regardless of directions to which the discharge ports 10a and 20a of the first and second volutes 10 and 20 are directed.
(18) As illustrated in
(19) A rounded guide 21b which is bent in a streamline shape to guide the fluid is provided at an end of the central introduction port 21a of the upper plate 21 of the second volute 20. Accordingly, a vortex phenomenon which occurs at a corner part is reduced, and thus the fluid introduced into the central introduction port 21a may be smoothly introduced into the fan 30.
(20) Like the second volute 20, the first volute 10 includes the upper and lower plates 11 and 13, and a side plate 12, and the discharge port 10a is provided at a last portion thereof. However, the central introduction port 11a is formed at the upper plate 11, but the lower plate 13 is closed, and a through-hole 13a is formed at only a center thereof so that the rotation shaft M1 passes therethrough.
(21) As illustrated in
(22) The first and second volutes 10 and 20 are assembled and stacked in a desired angle, and then contact surfaces thereof may be welded and fixed.
(23) After the installation, when it is applied to a system in which a direction thereof is not changed, the welding is preferable for use.
(24) Referring to
(25) Here, the vanes 31 is fixed by the upper and lower rims 32 and 33, formed in a cylindrical shape, and connected and fixed to the rotation shaft M1 by a plurality of spokes. The spokes are omitted to prevent complexity of the drawing.
(26) As described above, when the driving motor M is rotated, the fan 30 starts to be rotated. Then, external air is introduced into the central introduction port 21a of the second volute 21 due to a hydraulic pressure generated by the vanes 31, and the introduced air is accelerated along the paths of the first and second volutes 10 and 20, and then discharged through each of the discharge ports 10a and 20a.
(27) Therefore, the fluid introduced into one introduction port 21a may be discharged into different directions without an energy loss.
(28)
(29) Of course, in the case in which, instead of the two volutes, a plurality of volutes are used, the directions of the discharge ports may be set more variously.
(30) Meanwhile, referring to
(31) Referring to
(32) That is, the diameter reduction grooves 23b are formed at an angular interval of 90 degrees, and thus two diameter reduction grooves 23b are provided at the lower plate of the second volute 20, and the diameter reduction protruding portions 11b are also formed at an angular interval of 90 degrees, and thus two diameter reduction protruding portions 11b are provided at the upper plate 11 of the first volute 10. Therefore, when the diameter reduction grooves 23b are rotated so as not to interfere with the diameter reduction protruding portions 11b, and then the first and second volutes 10 and 20 comes in close contact with each other, the lower plate 23 of the second volute 20 is in close contact with the upper plate 11 of the first volute 10, and the diameter reduction grooves 23b are slightly inserted into the first volute 10.
(33) In this state, when one of the first and second volutes 10 and 20 is rotated, the diameter reduction protruding portions 11b are inserted into the diameter reduction grooves 23b, and thus an assembling operation is performed. Of course, a disassembling operation may be reversely performed.
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(35) In this embodiment, since the first and second volutes 10 and 20 have an assemblable structure, there is an advantage that discharge ports 10a and 20a of the first and second volutes 10 and 20 may be frequently changed at various angles.
(36) Of course, an operation of the sirocco fan is the same as that of the sirocco fan according to the first embodiment.
(37) Meanwhile, referring to
(38) When comparing with the first embodiment, the present embodiment is different from the first embodiment in that the plurality of protruding portions 23b are formed at the central introduction port 23a of a lower plate 23 of the second volute 20.
(39) Therefore, when the second volute 20 is aligned with and fitted to the first volute 10, the protruding portions 23b slightly protrude to an inside through the lower central introduction port 11a (referring to
(40) In this state, when ends of the protruding portions 23b are bent, a state illustrated in
(41) The third embodiment in which the first and second volutes 10 and 20 are fixed using the protruding portions 23b has a very simple structure, and also has an advantage that the assembling operation is easily performed. Of course, in this case, the first and second volutes 10 and 20 are fixed, and thus it is impossible to control the directions of the discharge ports 10a and 20a.
(42) Meanwhile, as illustrated in
(43) Like this, when the heights of the first and second volutes 10 and 20 are formed to be different from each other, and thus discharge cross-sectional areas thereof are different from each other, an amount of the fluid to be discharged is also different.
(44) Referring to
(45) Like this, by controlling the height of each of the volutes 10 and 20, the amount of the fluid discharged in different directions from each other may also be adjusted.
(46) Although a few embodiments of the present invention have been shown and described, it would be appreciated by those skilled in the art that changes may be made in these embodiments without departing from the principles and spirit of the invention, the scope of which is defined in the claims and their equivalents.
INDUSTRIAL APPLICABILITY
(47) The sirocco fan according to the present invention can be used in various air conditioner systems or the like in which the fluid is moved.