Flip-flow screener machine with optimised screen bottom fastening
11198158 ยท 2021-12-14
Assignee
Inventors
- Markus Kirchner (Rheurdt, DE)
- Ernst Grubl (Versen, DE)
- Rolf Kadel (Weinheim, DE)
- Matthias Sattler (Bensheim, DE)
- Peter Palmen (Monchengladbach, DE)
Cpc classification
B07B1/485
PERFORMING OPERATIONS; TRANSPORTING
B07B1/36
PERFORMING OPERATIONS; TRANSPORTING
B07B1/4645
PERFORMING OPERATIONS; TRANSPORTING
International classification
B07B1/36
PERFORMING OPERATIONS; TRANSPORTING
B07B1/46
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A flip-flow screener machine includes a carrier frame with primary, drive-induced vibration, to which a vibrating frame is coupled in a freely oscillating manner by means of elastic transmission elements and is excited and set to vibrate secondarily by the carrier frame via said transmission elements, transverse carriers being arranged on the carrier frame and on the vibrating frame, a transverse carrier on the vibrating frame lying downstream of a transverse carrier on said carrier frame, with a flexible screen bottom being arranged between two transverse carriers and detachably secured to said transverse carriers, each of the screen bottoms including at least one undercut portion by means of which they can engage behind an undercut on the transverse carrier, and two adjacent screen bottoms abutting one another directly at their front ends.
Claims
1. A flip-flow screening machine, comprising: a carrier frame which is primarily energized by means of a drive, is configured to oscillate, and to which an oscillating frame is coupled, so as to be freely suspended, by resilient transmission elements, which oscillating frame experiences secondary energization from the carrier frame, and is caused to oscillate, by the transmission elements, wherein crossbeams are arranged on the carrier frame and on the oscillating frame, wherein a crossbeam arranged on the carrier frame is followed, in each case, by a crossbeam arranged on the oscillating frame, and a flexible screen lining is arranged between two crossbeams in each case and is releasably fastened to the crossbeams, wherein the screen linings in each case comprise at least one undercut, by which said linings engage behind an undercut on the crossbeam, and in each case the end faces of two adjacent screen linings come into direct contact with one another, and wherein the end faces of the screen linings are oversized, and the end faces of two adjacent screen linings in each case come into contact with one another in an elastically deformed manner.
2. The flip-flow screening machine according to claim 1, wherein the screen linings engage behind the undercut on the crossbeam in a form-fit manner.
3. The flip-flow screening machine according to claim 1, wherein the end faces of two adjacent screen linings in each case are elastically deformed and, together with the adjacent screen lining, form a transition region that is sealed at least with respect to the upper face of the screen linings.
4. The flip-flow screening machine according to claim 1, wherein two adjacent screen linings in each case block one another.
5. The flip-flow screening machine according to claim 1, wherein the end faces of the screen linings comprise at least one undercut, and the end faces of two adjacent screen linings in each case form a form-fit connection.
6. The flip-flow screening machine according to claim 1, wherein two adjacent screen linings in each case are positioned in a force-fit manner in a groove of the crossbeam.
7. The flip-flow screening machine according to claim 1, wherein in each case two adjacent screen linings in the transport direction of the flip-flow screening machine form a downwards step.
8. A flip-flow screening machine, comprising: a carrier frame which is primarily energized by means of a drive, is configured to oscillate, and to which an oscillating frame is coupled, so as to be freely suspended, by resilient transmission elements, which oscillating frame experiences secondary energization from the carrier frame, and is caused to oscillate, by the transmission elements, wherein crossbeams are arranged on the carrier frame and on the oscillating frame, wherein a crossbeam arranged on the carrier frame is followed, in each case, by a crossbeam arranged on the oscillating frame, and a flexible screen lining is arranged between two crossbeams in each case and is releasably fastened to the crossbeams, wherein the screen linings in each case comprise at least one undercut, by which said linings engage behind an undercut on the crossbeam, and in each case the end faces of two adjacent screen linings come into direct contact with one another, and wherein the first screen lining of a pair of successive screen linings overlaps the following screen lining in the transport direction of the flip-flow screening machine.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A plurality of embodiments of the invention are shown in the figures and will be explained in the following. In the figures:
(2)
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DETAILED DESCRIPTION OF THE INVENTION
(7) In the figures, identical components and modules are provided with identical reference signs. The drawings in
(8) A series of first crossbeams 11 are fastened to the carrier frame 10. The crossbeams 21 of the oscillating frame 20 are fastened on the oscillating frame 20, freely suspended on the carrier frame 10, between the first crossbeams 11 of the carrier frame 10 in each case. First crossbeams 11 of the carrier frame 10 and second crossbeams 21 of the oscillating frame 20 are thus arranged in the flip-flow screening machine so as to alternate. Screen linings 30 are arranged between the crossbeams 11, 21, which screen linings are in each case fastened to the crossbeams. The fastening of the screen linings 30 to the crossbeams is explained below, with reference to the embodiments according to
(9) In
(10)
(11)
(12) The system I is formed by the carrier frame 10. The carrier frame 10 is primarily energized, such that the crossbeams 11 fixed to the carrier frame move according to the ellipse 12. The primary energization of the carrier frame 10 is achieved by means of two unbalanced shafts, wherein the two unbalanced shafts have different centers of gravity. The inclination of the ellipse 12 with respect to the horizontal is selected by the relative positioning of the centers of gravity of the two unbalanced shafts with respect to one another.
(13) The system II, which is formed by the oscillating frame, is coupled to the system I, in the form of the carrier frame 10, in a freely suspended manner by means of the transmission elements. The oscillation of the carrier frame 10, as shown by the ellipses 12, causes the oscillating frame to oscillate, as shown by the ellipses 22. This means that the crossbeams 21 that are arranged on the oscillating frame perform a movement corresponding to the ellipses 22. The different movement of the oscillating frame with respect to the carrier frame 10 stretches and compresses the screen linings 30, with the result that screened material applied to the screen linings 30 is accelerated rapidly and thereby processed. The screened material is transported in the direction of the transport direction 27, from the feed 25 to the discharge 26 of the flip-flow screening machine. As can be seen in
(14) Setting the main direction of the ellipse 22 so as to be at an angle, with respect to the transport direction 27, greatly increases the acceleration of the screened material on the screen linings 30. As a result, the transport capacity of the screened material in the transport direction 27 can be increased, such that the setting angle of the oscillating frame with respect to the horizontal can be reduced compared with conventional screening machines. This reduction in the setting angle with respect to the horizontal reduces the installation height of the flip-flow screening machine.
(15) Two embodiments of the fastening of the screen linings 30 to the crossbeams 11, 21 is shown in
(16)
(17) The screen linings 31, 32 each comprise an undercut 36, 37. The screen linings 31, 32 engage behind the crossbeams 11 by means of said undercuts 36, 37. As can be seen in
(18) The crossbeam 11 is formed for example by an open U-shaped profile, and comprises inwardly facing undercuts, wherein each of the two undercuts of the crossbeam 11 interacts with one undercut 36, 37, in each case, of the two screen linings 31, 32, and forms a form-fit connection.
(19) The fact that, in the embodiment shown, the end faces of the screen linings have a projection in a height range of 50%, which causes the screen linings 31, 32 to come into contact with one another in an elastically deformed manner in the contact region 33, results in sealing of the gap 34 with respect to the upper face. At the same time, the elastic deformation causes the screen linings to be clamped against one another in the portion 33, and to thus rest and be clamped in the gap of the crossbeam 11 in both a form-fit and a force-fit manner.
(20)
(21) The crossbeam 11 is formed by an open U-shaped profile, and comprises inwardly facing undercuts, wherein each of the two undercuts of the crossbeam 11 interacts with one undercut, in each case, of the two screen linings 31, 32, and forms a form-fit connection.
(22) The transport direction in
(23) The crossbeam of the carrier frame and the crossbeam of the oscillating frame are arranged in succession in the transport direction, so as to alternate in each case. The relative movement of the oscillating frame with respect to the carrier frame causes the screen linings to be alternately stretched and compressed, and for the screened material, to be processed, to be accelerated thereby.