SEPARATING DEVICE
20210245200 · 2021-08-12
Assignee
Inventors
Cpc classification
B07B11/06
PERFORMING OPERATIONS; TRANSPORTING
B07C5/342
PERFORMING OPERATIONS; TRANSPORTING
B07B11/02
PERFORMING OPERATIONS; TRANSPORTING
B07B9/02
PERFORMING OPERATIONS; TRANSPORTING
B07C2501/0054
PERFORMING OPERATIONS; TRANSPORTING
International classification
B07B11/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A separating device for separating different material fractions out of a feed-material mixture having a flow channel, which has a slope, extends in parallel with the direction of gravity in particular in its main longitudinal extension direction and comprises an inner chamber. The separating device has a first end region, a second end region, a material inlet region intended for feeding the feed-material mixture into the inner chamber of the flow channel, an outlet through which an air stream containing a lightweight material can exit the flow channel, at least one conveying means that conveys air through the flow channel, and a cross-flow device that has a separation chamber and an air intake that leads into said chamber and through which the cross-flow device can introduce air into the separation chamber in a flow direction extending at an angle to the main longitudinal extension direction of the flow channel.
Claims
1. A separating device (1) for fractionally separating different material out of a feed-material mixture (2), comprising: a flow channel (3), which has a slope, extends in parallel with the direction of gravity in particular in its main longitudinal extension direction (Z), and comprises an inner chamber (35), a first end region and a second end region opposite the first end region; a material inlet region (34) arranged between the first end region and the second end region and intended for feeding the feed-material mixture (2) into the inner chamber (35) of the flow channel (3); an outlet (36), which is arranged above the material inlet region (2) in the first end region of the flow channel (3) and through which an air stream (5), in particular containing a lightweight material, can exit the flow channel (3); at least one conveying means (10, 42), which conveys air through the flow channel (3); and a cross-flow device (4), which is connected to the second end region of the flow channel (3) in flow communication with the flow channel (3) and has a separation chamber (44, 45, 49) and an air intake (41), which leads into said chamber and through which the cross-flow device (4) can introduce air into the separation chamber (44, 45, 49) in a flow direction extending at an angle to the main longitudinal extension direction (Z) of the flow channel (3), wherein the separation chamber (44, 45, 49) has at least one first separation region (44) positioned adjacent to the air intake (41), and a second separation region (45) positioned further away from the air intake (41) in comparison with the first separation region, wherein a separation apparatus (46) formed in particular as a baffle element is arranged between the first and the second separation region (44, 45).
2. The separation device (1) according to claim 1, wherein, beneath the material inlet region (2), the flow channel (3) has at least one, in particular adjustable air intake (31, 32, 33).
3. The separating device (1) according to claim 1, further comprising a flow-guiding surface (47) arranged in the separation chamber (44, 45, 49).
4. The separating device (1) according to claim 3, wherein the flow-guiding surface (47) is arranged such that an air stream introduced into the separation chamber (44, 45, 49) through the air intake (41) is at least in part conducted into the flow channel (3) between the flow-guiding surface (47) and the separation apparatus (46) and around the flow-guiding surface (47).
5. The separating device (1) according to claim 3, wherein the flow-guiding surface (47) is arranged above the first and the second separation region (44, 45), above the separation apparatus (46) and at least in part above the air intake (41), the flow-guiding surface (47) being arranged at a spacing from the inner wall of the separation chamber (44, 45, 49).
6. The separating device (1) according to claim 3, wherein, on its side facing away from the separation apparatus (46) or from the first and the second separation region (44, 45), the flow-guiding surface (47) forms a channel (48) together with the inner wall of the separation chamber (44, 45, 49).
7. The separating device (1) according to claim 3, wherein the flow-guiding surface has a cross section that tapers in the direction of the air intake (41).
8. The separating device (1) according to claim 1, wherein the separation apparatus (46) is movable, in particular pivotable and/or slidable, and/or rotatable, in particular at an adjustable speed and/or in an adjustable direction of rotation.
9. The separating device (1) according to claim 1, wherein, at the lower end in relation to the direction of gravity, the first separation region (44) branches at least into a first separation sub-region (44a) and a second separation sub-region (44b) separate therefrom, a first material-approaching means (44c) being arranged in the first separation region (44) and being configured to approach separated material falling into the first separation region (44).
10. The separating device (1) according to claim 9, wherein, at the lower end in relation to the direction of gravity, the second separation region (45) branches at least into a first and a second separation sub-region (45a, 45b), a second material-approaching means (45c) being arranged in the second separation region (45) and being configured to approach separated material falling into the second separation region (45).
11. The separating device (1) according to claim 10, wherein the first and/or second separation region (44, 45) comprises at least one detection means (44d, 45d), which is designed to recognize a particular material out of a substance mixture, a controller being provided, which, in response to a material portion recognized by the detection means (44d, 45d), temporarily activates the first and/or second material-approaching means (44c, 45c) to approach the recognized material portion.
12. The separating device (1) according to claim 1, wherein the air supplied to the air intake (41) is fresh air and/or treated process air taken from the outlet (36).
13. The separating device (1) according to claim 1, wherein the outlet (36) is connected to a line (8) in which a separator (9), the at least one conveying means (10) and a filtering means (11) are connected in series in the flow direction.
14. The separating device (1) according to claim 13, further comprising a return line (16) leading to the air intake (41) that branches off from the line (8).
15. The separating device (1) according to claim 14, wherein the branch of the return line (16) is positioned either between the at least one conveying means (10) and the filtering means (12) or downstream of the filtering means (12) in the flow direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The invention will now be explained in more detail with reference to
[0024] The drawings show different embodiments of the separating device according to the invention.
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0032] The separating device 1 according to the invention shown in
[0033] Optionally, an air intake 31, 32, 33 can be provided at a plurality of points, through which intake additional air can be sucked in from the exterior. An air intake of this kind can be provided with an actuatable valve such that the suction volume can be varied.
[0034] A separation chamber is connected at the lower end of the flow channel 3, said chamber being part of a cross-flow device 4 and comprising a plurality of portions 44, 45, 49. A channel 41 is charged with air by means of a fan 42 and, in the example shown, said air is blown into the separation chamber transversely, in particular perpendicularly, to the vertical direction Z or the main longitudinal extension direction of the flow channel 3. The air volume to be blown in can be varied by means of a valve or frequency changer 43. Optionally, a further air intake 33 can also be provided here above the channel 41, said further air intake sucking air into the region 49 of the separation chamber immediately upstream of the beginning of the flow channel 3.
[0035] Adjacently to the channel 41, a first separation region 44 is present in the separation chamber. Spatially separated therefrom by means of a separation apparatus 46 is a further separation region 45. In the example shown, the separation apparatus 46 is formed as a partition that can be pivoted in the direction of the arrow P2, or extended or shortened in the direction of the arrow P1.
[0036] The device 1 according to the invention functions as follows: As described above, the air stream 5 is generated in the flow channel 3 by means of a fan, a material mixture 2 being fed to the material inlet region 34 and being sucked into the interior 35 of the flow channel 3 due to the air stream. Lighter objects in the material stream 2 are entrained by the upwardly directed flow and reach the outlet 36, whereas heavier portions fall downwards in the direction of the separation chamber under gravity. Here, they reach the region 49 of the separation chamber. Since a cross-flow is blown into the separation chamber at that location by means of the fan 42 and the channel 41, the portions of the material mixture that are present in the region 49 are captured due to the cross-flow and thrown in the direction of the separation apparatus 46. In the process, the harder and/or heavier portions bounce off the separation apparatus 46 and fall into the region 44, from where they can be removed via the outlet 6. The lighter and/or softer portions that are captured by the cross-flow and are accelerated over the separation apparatus 46 by the air stream or entrained thereby reach the region 45 therebehind and can be removed via the outlet 7. By changing the position of the separation apparatus 46 in the separation chamber, a fine adjustment can be carried out to ensure that the correct portions land in the correct separation region 44, 45. In an advantageous embodiment, the inflow direction of the cross-flow can be varied by making the fan pivot along with the channel 41, for example.
[0037] Due to the upward flow of air occurring in the flow channel 3, the falling portions from the material mixture 2 are also braked to different extents in their downward movement depending on their density. This allows for considerably more effective separation in the separation chamber, since the falling portions have lower kinetic energy compared with a freefall, and can thus be deflected more effectively by means of the cross-flow through the channel 41.
[0038] The device shown in
[0039] By way of example,
[0040] It is also possible, however, to use an air-recirculation mode or partial air-recirculation mode, in which at least some portions of the cleaned air are not removed from the line 8 but rather are fed back into the region of the air intake 41 (in this case the fan is optional). This version is shown in an embodiment in
[0041]
[0042] In this case, the two separation portions 44 and 45 are again split into respective separation sub-portions 44a and 44b on one side and 45a and 45b on the other side. In this way, materials that reach the separation regions 44 and 45 can be separated from one another one more time and collected in corresponding outlets 6, 6′ and 7′, 7. The material falling into the regions 44 and 45 is recorded by means of detectors 44d and 45d, respectively. The detectors 44d and 45d can preferably be designed such as to be able to recognize particular materials (e.g. plastics material, wood) out of a material stream. For example, the detectors can be those based on NIR technology. By means of a controller (not shown), detected portions can then be blown, in a targeted manner, by means of material-approaching means, which can be small air nozzles, transversely to the falling direction and then brought into the corresponding separation sub-portions 44a and 45a.
[0043] Of course, it is not necessary for every separation portion 44 and 45 to have corresponding separation sub-portions; it is equally sufficient for just one of the separation portions to have this additional division.
[0044] Lastly,
[0045] By means of the second air intake 41′, a further cross-flow is generated, which ensures that corresponding portions reach the region 45, where they can then be removed at 7. Portions from the separation region 44 can be removed at 6, and portions from the separation region 44′ can accordingly be removed at 6′.
[0046] It goes without saying that this embodiment of the separating device according to the invention can be combined in any manner with the other separating devices according to
[0047] By means of the device according to the invention, material mixtures can be split into different fractions, the device according to the invention being particularly suitable for separating out inert, organic matter-containing fractions and lightweight fractions from a material stream.