GRAIN-CLEANING MACHINE
20190193117 · 2019-06-27
Inventors
Cpc classification
B07B1/28
PERFORMING OPERATIONS; TRANSPORTING
B07B1/343
PERFORMING OPERATIONS; TRANSPORTING
B07B13/075
PERFORMING OPERATIONS; TRANSPORTING
B07B13/16
PERFORMING OPERATIONS; TRANSPORTING
International classification
B07B1/34
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention proposes a grain-cleaning machine (10) comprising an envelope (12) with an inlet opening (13), an arrangement of sieves inside the envelope (12) and a vibration system designed to cause the sieve arrangement to oscillate. The sieve arrangement comprises at least two main sieve levels (14a, 14b, 14c) arranged the one above the other, with an inclination relative to the horizontal from a high side (L1) to a low side (L2), each main sieve level (14a, 14b, 14c) comprising respective fine sieves (141) followed by respective grain sieves (142), and under each fine sieve (141) respective fine-carrying channels (143) are arranged in communication with at least one outlet (18) for residues smaller than the grains, whereas under each grain sieve (142) respective grain-carrying channels (144) are arranged in communication with at least one grain outlet (19). The sieve arrangement further comprises at least one lower sieve level (16) with respective lower grain sieves (162), and under the lower grain sieves (162) respective lower grain-carrying channels (164) are arranged in communication with at least one grain outlet (19). The lower sieve levels (16) are arranged under the respective main sieve levels (14a, 14b, 14c) with an inclination relative to the horizontal from a high side (L3) to a low side (L4), wherein the low side (L2) of each main sieve level (14a, 14b, 14c) is in communication with the high side (L3) of the respective lower sieve level (16) through a vertical passage (17), and the low side (L4) of the lower sieve level (16) is in communication with at least one of the outlets (20) for residues larger than the grains.
Claims
1. A GRAIN-CLEANING MACHINE, comprising a housing (12) having an inlet opening (13), an arrangement of sieves disposed internally of the housing (12), a vibration system configured to oscillate the arrangement of sieves, characterized by the arrangement of sieves comprises at least two main sieve levels (14a, 14b, 14c) positioned overlapping each other and having an inclination to the horizontal from a high side (L1) to a low side (L2), each main sieve level (14a, 14b, 14c) comprising a respective fine sieve (141) followed by a respective grain sieve (142), wherein a respective fine-carrying channel (143) is arranged below each fine sieve (141) in communication with at least one outlet of residues smaller than grains (18) and below each grain sieve (142) is disposed a respective grain carrying channel (144) in communication with at least one grain outlet (19), at least one lower sieve level (16) comprising a respective lower grain sieve (162), wherein a lower grain-carrying channel (164) is arranged below the lower grain sieve (162) in communication with at least one grain outlet (19), the at least one lower sieve level (16) being positioned below the main sieve levels (14a, 14b, 14c), and inclined to the horizontal from a high side (L3) to a low side (L4), wherein the low side (L2) of each main sieve level (14a, 14b, 14c) is in communication with the high side (L3) of the at least one lower sieve level (16) through a vertical passage (17) and the low side (L4) of the lower sieve level (16) is in communication with at least one outlet of residues larger than grains (20), where each fine sieve (141) has a mesh configured to allow traversal of residues smaller than grains (R<) and each grain sieve (142, 162) has a mesh configured to allow traversal of grains (G, Ge).
2. MACHINE according to claim 1, characterized by comprising a lower curtain (167) on the lower sieve level (16), the lower curtain (167) having an upper end fixed to a rod and a tail in contact with the lower grain sieve (162), said lower curtain (167) being positioned transversely so that a portion of the lower grain sieve (162) is located behind the lower curtain (167) toward the low side (L4) of the lower sieve level (16).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The invention will be better understood with the following detailed description, which will best be interpreted with the aid of the figures, namely:
[0021]
[0022]
[0023]
[0024]
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[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION
[0031] The invention proposes a grain-cleaning machine (10) comprising a housing (12) having an inlet opening (13). For example, the housing (12) may be formed by a frame (121) which receives closing plates (122), and may include ports (123) for maintenance, inspection, and cleaning of the machine (10), as desired.
[0032] The machine (10) further comprises a sieve arrangement disposed internally of the housing (12) and a vibration system configured to oscillate the sieve arrangement.
[0033] According to the invention, the sieve arrangement comprises at least two main sieve levels (14a, 14b, 14c) positioned overlapping each other and inclined to the horizontal from a high side (L1) to a low side (L2), each main sieve level (14a, 14b, 14c) comprising a respective fine sieve (141) followed by a respective grain sieve (142), wherein below each fine sieve (141) is arranged a respective fine-carrying channel (143) in communication with at least one outlet of residues smaller than grains (18) and below each grain sieve (142) is disposed a respective grain-carrying channel (144) in communication with at least one grain outlet (19).
[0034] The sieve arrangement further comprises at least one lower sieve level (16) comprising a respective lower grain sieve (162), wherein a lower grain-carrying channel (164) is disposed below the lower grain sieve (162) in communication with at least one grain outlet (19). The respective lower sieve level (16) is positioned below the respective main sieve levels (14a, 14b, 14c) and inclined to the horizontal from a high side (L3) to a low side (L4), the low side (L2) of each main sieve level (14a, 14b, 14c) is in communication with the high side (L3) of the respective lower sieve level (16) through a vertical passage (17) and the low side (L4) of the lower sieve level (16) is in communication with at least one outlet of residues larger than grains (20).
[0035] Further, each fine sieve (141) has a mesh configured to allow traversal of residues smaller than grains (R<) and each grain sieve (142, 162) has a mesh configured to allow traversal of grains (G, Ge).
[0036] In the embodiment shown, as best shown in
[0037] In operation, as can be seen from the schematic arrows shown in
[0038] As the mixture (M) advances, the residues smaller than grains (R<) pass through the fine sieve (141) and fall onto the fine-carrying channel (143), and are then conveyed to the outlet of residues smaller than grains (18). According to the embodiment shown, as can best be seen in
[0039] The grains (G) and the residues larger than grains (R>) proceed to the fine sieve (141) and reach the grain sieve (142). The grains (G) then pass through the grain sieve (142) and fall onto the grain-carrying channel (144), and are then conveyed to the grain outlet (19). According to the embodiment shown, as best shown in
[0040] The residues larger than grains (R>), along with the surplus grains (Ge) that failed to cross the grain sieve (142), including the grains with higher kinetic energy and/or bouncing grains, proceed over the grain sieve (142) until they reach the low side (L2) of each main sieve level (14a, 14b, 14c), and then are conveyed through the vertical passage (17) to the high side (L3) of the lower sieve level (16).
[0041] The surplus grains (Ge) and the residues larger than grains (R>) access the upper side (L3) of the lower sieve level (16), forming a layer on the lower grain sieve (162). Due to the inclination of the lower sieve level (16) and due to the oscillating movement of the sieve arrangement produced by the vibration system, the layer moves toward the low side (L4) of the lower sieve level (16). As the layer progresses, the surplus grains (Ge) pass through the lower grain sieve (162) and fall onto the lower grain-carrying channel (164), and are then conveyed to the grain outlet (19) together with the grains (G) coming from the main sieve levels (14a, 14b, 14c).
[0042] The residues larger than grains (R>) proceed over the lower grain sieve (162) until they reach the low side (L4) of the lower sieve level (16), and are then sent to the outlet of residues larger than grains (20). According to the embodiment shown, as can best be seen in
[0043] Advantageously, from the invention, the surplus grains (Ge), including the grains with higher kinetic energy and/or bouncing grains, which failed to cross the grain sieve (142) of the respective main sieve levels (14a, 14b, 14c), have the possibility of being reprocessed at the lower sieve level (16). Thereby, there is no need for the presence of a curtain on each main sieve level (14a, 14b, 14c). Thus, advantageously, the grain sieves (142) of the main sieve levels (14a, 14b, 14c) started to work at full sieving capacity, whereas in the prior-art machine the sieving area of the grain sieve located after the curtain, at each main sieve level, worked with a reduced sieving capacity. Accordingly, advantageously, the grain-cleaning machine (10) of the invention is capable of achieving a higher processing rate of the mixture of grains and residues (M), for example expressed in tons per hour, compared to the processing rate achieved by the prior-art machine, occupying an equivalent physical space.
[0044] In the embodiment shown, as can be seen in
[0045] A machine (10) configured with an upper sieve level (22), in operation, as can be seen from the schematic arrows shown in
[0046] Preferably, a lower curtain (167) is disposed over the lower sieve level (16), the lower curtain (167) having an upper end attached to a rod and a tail in contact with the lower grain sieve (162). The lower curtain (167) is positioned transversely so that a portion of the lower grain sieve (162) is located behind the lower curtain (167) toward the low side (L4). The lower curtain (167) acts as a barrier for surplus grains (Ge), including those with higher kinetic energy and/or bouncing grains, so that they are contained and accommodated over the lower grain sieve (162) so as to be able to pass through said lower grain sieve (162), rather than being unduly discarded through the outlet of residues larger than grains (20).
[0047] Preferably, upon the upper sieve level (22), when the machine (10) is configured therewith, there is disposed an upper curtain (227) having an upper end attached to a rod and a tail in contact with the course sieve (222). The upper curtain (227) is positioned transversely so that a portion of the coarse sieve (222) is located behind the upper curtain (227) toward the low side (L6). The upper curtain (227) acts as a barrier to the mixture of grains and residues (M), including grains (G) with higher kinetic energy and/or bouncing grains, so that they are contained and accommodated on the coarse sieve (222), so as to be able to pass through said coarse sieve (222) rather than being unduly discarded through the outlet of coarse residues larger than grains (21).
[0048] Preferably, between each fine sieve (141) and the respective fine-carrying channel (143) is disposed a respective fine ball retaining plate (149), which retains a plurality of fine balls (31). Preferably, between each grain sieve (142) and the respective grain-carrying channel (144) is disposed a respective grain ball retaining plate (148), which retains a plurality of grain balls (32). Preferably, between the lower grain sieve (162) and the respective lower grain-carrying channel (164) is disposed a respective lower grain ball retaining plate (169), which retains a plurality of lower grain balls (33). Preferably, when the machine (10) is configured with the upper sieve level (22), a respective coarse ball retaining plate (229) is disposed between the coarse sieve (222) and the respective mixture-carrying channel (228), which retains a plurality of coarse balls (34). Each plate (149, 148, 169, 229) has a mesh of holes, for example squares, of suitable dimensions to retain the corresponding balls (31, 32, 33, 34), and at the same time to allow traversal of material that has already passed through the corresponding sieve (141, 142, 162, 222). In operation, due to the oscillating movement of the sieve arrangement produced by the vibration system, the balls (31, 32, 33, 34) bounce and collide with the corresponding sieves (141, 142, 162, 222), preventing any residues (R<, R>, RG) or grains (G, Ge) to become stuck in certain holes of the mesh of the corresponding sieves (141, 142, 162, 222), which could unduly interrupt the flow of material through the sieves (141, 142, 162, 222).
[0049] For example, each sieve (141, 142, 162, 222) and the respective retaining plate (149, 148, 169, 229) may be manufactured so as to form an assembly, for example screwed and/or welded. Assemblies formed by sieves, retaining plates, and balls are known in the prior art.
[0050] For example, for a machine (10) configured for soybean cleaning, each fine sieve (141) may have a mesh having a plurality of holes with a diameter of 3 mm, each grain sieve (142) and each lower grain sieve (162) may have a mesh having a plurality of holes with a diameter of 9 mm, and each coarse sieve (222) may have a mesh having a plurality of oblong holes measuring 16 mm35 mm.
[0051] The machine (10) comprises a vibration system configured to oscillate the sieve arrangement. Different vibration systems employed in a grain-cleaning machine that uses grain size separation by sieves are already known in the prior art. In particular, the vibration system used in the depicted embodiment is known in the prior art. As best shown in
[0052] Naturally, the machine (10) of the invention could be configured with other known vibration systems. In case the machine (10) is configured asymmetrically, which would be equivalent to a half machine in relation to the embodiment shown, and when a vibration system equivalent to that described above is used, the flywheel (54) must be secured in a central position relative to the dimensions of the half machine.
[0053] The preferred or alternate embodiments described herein are not to be construed as limiting the present invention to structural forms, but there may be constructive variations which are equivalent without, however, departing from the scope of protection of the invention.