ROTOR FOR AN EXHAUST-FAN ASSEMBLY OF AN AGRICULTURAL MACHINE
20170284414 · 2017-10-05
Inventors
Cpc classification
F04D29/54
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/329
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/384
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A01B76/00
HUMAN NECESSITIES
F04D29/545
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/541
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/668
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/325
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/54
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
One describes a rotor (1) for an exhaust-fan assembly (4) of an 5 agricultural machine, the rotor (1) comprising a central shaft (7), a first portion (31) provided with an inlet deflector (15) having a substantially elliptical profile, defining a tapered inlet end (26). The rotor, which is also provided with a set of blades (13), further comprises a second portion (29) provided with an outlet deflector (22) having a substantially elliptical profile, so that the 10 first and the second portions (31, 29) are associated to the central shaft (7). According to the invention, one provides a rotor that promotes efficient cleaning of harvested cane.
Claims
1-7. (canceled)
8. A rotor (1) for an exhaust-fan assembly (4) of an agricultural machine, the rotor (1) comprising: a central shaft (7); a first portion (31) provided with an inlet deflector (15) of substantially elliptical profile, defining a tapering inlet end (26); a second portion (29) provided with an outlet deflector (22) of substantially elliptical profile; and a set of blades (13), wherein: the first and second portions (31, 29) are associated to the central shaft (7); the set of blades (13) is associated to a turnable hub (10), the hub (10) being associated to a portion of the central shaft (7); and each blade within the set of blades (13) is associated to the hub (10) by means of a ring (17) inside the hub (10) and a support plate (19), the support plate (19) being fixed to the ring (17) and having a profile that is substantially similar to the profile of a region (16) of the blades, the region (16) being adjacent to the hub (10).
9. The rotor according to claim 8, further comprising a third portion (30) arranged between the first portion (31) and the second portion (29), the third portion (30) being provided with the turnable hub (10), the turnable hub (10) being associated to the portion of the shaft (7) by means of a movement transfer system (12).
10. The rotor according to claim 8, wherein the set of blades (13) protrude from a side surface of the turntable hub (10).
8. The rotor according to claim 8, further comprising a protective cover (24) of the turntable hub (10), the protective cover (24) being provided with openings (25) for passage of the blades (13) and support plates (19).
12. The rotor according to claim 11, further comprising an anti-vibration plate (27) arranged between each blade of the set of blades (13) and the support plate (19).
13. The rotor according to claim 8, wherein the outlet deflector (22) is fixed and the inlet deflector (15) is turnable.
14. The rotor according to claim 8, wherein a portion of the central shaft (7) is encompassed by a protective tube (8), the outlet deflector (22) being associated to the protective tube (8).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0033] The present invention will now be described in greater detail on the basis of an example of embodiment represented in the drawings. The figures show:
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[0041]
DETAILED DESCRIPTION OF THE FIGURES
[0042]
[0043] Looking from the outside, one observes that the rotor 1 comprises basically a central shaft, an inlet deflector 15, an outlet deflector 22, a hub 10, a set of blades 13 and a protective tube 8.
[0044] The central shaft 7 is fixed to the structure of the agricultural machine by means of a flange 5, this element having, preferably, but not compulsorily, a circular shape.
[0045] Further, one can see in
[0046] At its lower portion, the central shaft 7 is fixed to a bearing 9, this element comprising a structural configuration similar to the flange 5, but bipartite to facilitate the mounting thereof, the upper part of the bearing 9 being welded to the hub 8 and the lower part that protects the bearing is fixed by means of screws to this upper part.
[0047] With regard to the set of blades 13, it comprises preferably a grooved profile with trail and root angles, which facilitate the suction of air and do not cause turbulence or barriers to the air filets sucked.
[0048] The grooved configuration of the set of blades 13 forms the leading and trailing edges of the blades 13, providing high efficiency in sucking the air filets according to the movement of the central shaft 7.
[0049] Further with reference to
[0050] The tube 8 has the function of protecting the central shaft 7 from the impact of impurities present on the harvested cane, since, if this occurs, the functioning of the shaft 7 and, as a result, of the rotor 1 might be impaired.
[0051] The protective tube 8 should be preferably manufactured from a resistant material, since this element will join the flange 5, which is fixed to the machine structure, to the bearing 9, which will bear the stresses of the lower part of the shaft 7 and of the movement of the hub 10 with the blades 13. Thus, this tube 8, besides providing protection, also provides support and integrity to the rotor 1. However, one observes that this characteristic is only a preferred feature of the present invention, so that the manufacture from polymeric materials is also acceptable, as long as attention is paid to the due alterations in the fixation of the elements that are connected to the tube 8.
[0052] The rotor 1 for an exhaust-fan assembly 4 of an agricultural machine further comprises an inlet deflector 15, a hub 10 and an outlet deflector 22.
[0053] Such elements can be better viewed in
[0054] One observes that the rotor 1 is provided with a second portion 29, at which the outlet deflector 22 is proposed. The deflector 22 comprises a substantially elliptical profile and is manufactured preferably from a polymeric material. However, manufacturing the outlet deflector 22 from a metallic or plastic material is also acceptable.
[0055] The outlet deflector 22 should be fixed to the protective tube 8, and more specifically from ¼ to ½ of distance from the lower part of this element. For this purpose, conventional fixation elements, such as screws, are preferably used.
[0056] Additionally, the deflector 22 should be fixed to or supported by a support ring linked to the bearing 9, which is static, thus keeping the deflector 22 static.
[0057] Obviously this characteristic is only a preferred option of the invention, so that in an alternative embodiment the outlet deflector 22 might move together with the shaft 7.
[0058] The hub 10 is associated to the shaft 7 and, more precisely, to a lower portion thereof. Additionally, the set of blades 13 of the rotor 1 is fixed to the hub 10. The way to fix the blades 13 to the hub 10 will be better described latter in this specification.
[0059] In the preferred embodiment, the hub 10 is involved by protective cover 24 of preferably plastic or metallic material, the cover 24 being responsible for protecting the elements arranged inside the hub 10 from the impurities existing on the harvested cane.
[0060] Additionally, the hub 10 is associated to the inlet deflector 15 of the rotor 1, as shown in
[0061] The inlet deflector 15 is arranged at a first portion 31 of the rotor 1. Further, in this preferred embodiment, the deflector 15 is fixed to the hub 10 by means of conventional fixation elements, as for example screws.
[0062] Having an elliptical profile, the inlet deflector 15 is further provided with a tapering inlet end 26. Said end 26 is configured as an “attack point”, thus enabling uniform flow of the air filets sucked by the set of blades 13. The elliptical profile of the deflector 15 does not cause barriers or turbulence to the displacement of the air, thus being a deflector with anti-vortex effect.
[0063] This is an important feature of the proposed rotor 1, since the air flow that moves in the first portion 31 is a “dirty” air, that is, it is full of mineral and vegetable impurities. Thus, the occurrence of barriers or turbulence in this region will certainly impair the efficiency of the exhaust-fan assembly 4.
[0064] As to the material of the inlet deflector 15, this is preferably a plastic material, but the use of metallic deflectors is also an acceptable proposal.
[0065] Regardless of the material used, the elliptical profile of the inlet deflector 15 and the configuration of the tapering inlet end 26 are essential characteristics of the present invention, which should be kept with a view to enable efficient functioning of the rotor 1.
[0066] One the main components that integrate the rotor 1 proposed in the present invention have been described, the elements that enable movement of the hub 10 and, as a result, of the set of blades 13 and of the inlet deflector 15 will be described later.
[0067] As an aid,
[0068] In this figure, one can see that the hub 10 and, consequently, its protective cover 24 (
[0069] The association between the set of blades 13 and the hub 10 is made by means of a ring 17 arranged inside the hub 10. Further, a support plate 19 for the blades 13 is fixed to the ring 17, said support plate 19 also protruding through the openings 25 of the hub 10.
[0070] Preferably, the fixation of the support plate 19 to the ring 17 is made by a soldering process.
[0071] Additionally, the support plate 19 has a profile similar to the profile of a region 16 of the blades 13, said region 16 being configured as a region adjacent to the hub 10. The profile of the region 16 of the set of blades 13 in this preferred embodiment of the present invention can be observed in
[0072] Further, one observes that the blade 13 comprises a plurality of orifices 32 for correct fixation thereof to the support plate 19.
[0073] Although the support plate 19 is not shown in
[0074] It should be pointed out that the profile of the region 16, as shown in
[0075] With reference to the sectional representation (
[0076] The function of the plate 27 is to establish correct balance between the support plate 19 and the blades 13, so as to prevent vibrations during the operation of the rotor 1.
[0077] Although the use of the anti-vibration plate 27 is recommendable, this is only a preferred feature of the rotor 1 described herein.
[0078] The movement of the set of blades 13 due to the driving of the shaft 7 takes place by movement transfer means 12. In this preferred embodiment, the actuation of the shaft takes place by means of a key. Alternatively, grooved actuation would also be acceptable.
[0079] In operation, the hub 10 and the inlet deflector 15 move from the actuation of the shaft 7. As a result, the outlet deflector 22 remains fixed, since, as mentioned, this element is fixed to the protection tube 8 and linked by means of an internal ring to the bearing 9, this element remaining static.
[0080] In an alternative configuration, the outlet deflector 22 might also configure a turning element of the rotor 1. In this way, the fixation of the upper part to the protection tube 8 should be dismissed, and the fixation to the lower part made directly to the hub 10.
[0081] Further, the set of blades 13 should move counterclockwise, thus sucking the air existing in the exhaust-fan assembly 4.
[0082] For a better understanding of the invention,
[0083] During the harvesting and, as a result, during the operation of the rotor 1, the impurities present on the harvested cane arranged in the central region of the exhaust-fan 4 are sucked by the set of blades 13 and slide smoothly over the inlet deflector 15 from the tapering inlet end 26.
[0084] Later, the air flow passes, either in contact with or close to the protective cover 24 of the hub 10 and is carried by the set of blades 13 from the grooved profile of the latter.
[0085] The air containing impurities that already have velocity and precision sufficient to be expelled from the exhaust-fan assembly without coming into contact with the blades 13 slide over the outlet deflector 22 without any blockage or turbulence.
[0086] It is important to point out that the exhaust-fan assembly 4 as shown in
[0087]
[0088] With regard to
[0089] The rotor 1 proposed herein, by means of the structural configuration of its outlet deflector 22 and inlet deflector 15, provided with the tapering inlet end 26, provides a much more efficient cleaning of the harvested cane if compared with the rotors known from the prior art.
[0090] Specifically with regard to the inlet deflector 15 and the tapering end 26,o the configuration of such elements prevents the formation of a barrier to the flow of air sucked, as well as the occurrence of turbulence in the exhaust-fan assembly 4.
[0091] Further, the elliptical profile of the inlet deflector 15, of the protective cover 24 and of the outlet deflector 22 guarantee a smooth displacement of the air flow and in a region quite close to these components, thus guaranteeing an excellent quality in the cleaning of the cane.
[0092] A preferred example of embodiment having been described, one should understand that the scope of the present invention embraces other possible variations, being limited only by the contents of the accompanying claims, which include the possible equivalents.