Screen assembly for shredding machine
09707565 ยท 2017-07-18
Inventors
Cpc classification
B02C2018/164
PERFORMING OPERATIONS; TRANSPORTING
B02C2023/165
PERFORMING OPERATIONS; TRANSPORTING
International classification
B02C23/16
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A screen for a shredder machine has a shape that avoids clogging of the materials being processed through the shredder. The screen has a pair of mounting plates that are connected to the shredder with one mounting plate attached toward the top of the rotor and the other mounting plate attached toward the bottom of the rotor and extending the entire length of the rotor. Arcuate ribs are attached to and extend between the mounting plates, and a grid is attached to the ribs.
Claims
1. A screen for a shredding machine having a rotor, comprising: a pair of mounting plates; a plurality of arcuate ribs attached substantially perpendicular to and extending between said mounting plates; and an arcuate grid comprising a plurality of structural elements surrounding a plurality of apertures, wherein said arcuate grid is attached to said plurality of arcuate ribs, wherein a first set of said plurality of structural elements extend laterally between said plurality of arcuate ribs and wherein a second set of said plurality of structural elements extend longitudinally between said laterally extending structural elements, wherein said longitudinally extending structural elements are connected to said laterally extending structural elements in a flush relationship at a plurality of intersections between said longitudinally extending structural elements and said laterally extending structural elements, wherein said plurality of structural elements have a first surface facing the rotor and a second surface facing toward said plurality of arcuate ribs, and wherein said first surface has a rounded cross-sectional shape proximate to said plurality of apertures.
2. The screen of claim 1, wherein said arcuate grid has a thickness and said plurality of structural elements have curved sides surrounding said plurality of apertures, wherein said curved sides have an effective radius of at least one half of said thickness.
3. The screen of claim 2, wherein said arcuate grid is comprised of a plurality of bars with at least one of a circular cross-section or semicircular cross-section.
4. The screen of claim 3, wherein a first set of said plurality of bars extend between said arcuate ribs and a second set of said plurality of bars are in a staggered relationship between said first set of said plurality of bars.
5. The screen of claim 3, wherein said plurality of arcuate ribs are comprised of a plurality of longitudinally spaced notches, wherein said plurality of bars are fastened to and extend between said plurality of arcuate ribs at said plurality of longitudinally spaced notches.
6. The screen of claim 2, wherein said arcuate grid is spaced from the rotor by a distance and wherein said effective radius of said curved sides is greater than said distance.
7. The screen of claim 1, wherein said arcuate grid is further comprised of a laterally extending slotted knife bed.
8. The screen of claim 1, wherein each one of said plurality of apertures has a lateral distance and a longitudinal distance between said plurality of structural elements that is less than three times a diameter of any one of said plurality of structural elements.
9. The screen of claim 1, wherein an effective diameter of any one of said plurality of structural elements relative to an average diagonal distance of said plurality of apertures between said plurality of structural elements has a ratio of less than 1:4.
10. A screen for a shredding machine having a rotor, comprising: a pair of mounting plates; a plurality of arcuate ribs attached substantially perpendicular to and extending between said mounting plates; and an arcuate grid comprising a plurality of structural elements, wherein said plurality of structural elements have a circular cross-sectional shape and surround a plurality of apertures, wherein said arcuate grid is attached to said plurality of arcuate ribs, wherein a first set of said plurality of structural elements extend laterally between said plurality of arcuate ribs and wherein a second set of said plurality of structural elements extend longitudinally between said laterally extending structural elements, wherein said longitudinally extending structural elements are connected to said laterally extending structural elements in a flush relationship at a plurality of intersections between said longitudinally extending structural elements and said laterally extending structural elements, wherein said plurality of structural elements have a first rounded surface facing the rotor and a second rounded surface facing toward said plurality of arcuate ribs.
11. The screen of claim 10, wherein said arcuate grid is further comprised of a laterally extending slotted knife bed.
12. The screen of claim 10, wherein said first set of plurality of structural elements are substantially parallel to each other between said plurality of arcuate ribs, and wherein said second set of plurality of structural elements are in a staggered relationship between said first set of plurality of structural elements.
13. The screen of claim 10 wherein each one of said plurality of apertures has a lateral distance and a longitudinal distance between said plurality of structural elements that is less than three times a diameter of any one of said plurality of structural elements.
14. The screen of claim 10, wherein an effective diameter of any one of said plurality of structural elements relative to an average diagonal distance of said plurality of apertures between said plurality of structural elements has a ratio of less than 1:4.
15. The screen of claim 10, wherein said plurality of arcuate ribs are comprised of a plurality of longitudinally spaced notches, wherein said plurality of bars are fastened to and extend between said plurality of arcuate ribs at said plurality of longitudinally spaced notches.
16. A screen for a shredding machine having a rotor, comprising: a pair of mounting plates; a plurality of arcuate ribs attached substantially perpendicular to and extending between said mounting plates, wherein said plurality of arcuate ribs have a plurality of longitudinally spaced notches; and an arcuate grid comprising a plurality of bars, wherein said plurality of bars have a circular cross-sectional shape and surround a plurality of apertures, wherein said arcuate grid is attached to said plurality of arcuate ribs, wherein a first set of said plurality of bars are attached to said plurality of arcuate ribs at said plurality of longitudinally spaced notches and extend laterally between said plurality of arcuate ribs and wherein a second set of said plurality of bars extend longitudinally between said laterally extending structural elements, wherein said longitudinally extending bars are connected to said laterally extending bars in a flush relationship at a plurality of intersections between said longitudinally extending bars and said laterally extending bars, wherein said plurality of bars have a first rounded surface facing the rotor and a second rounded surface facing toward said plurality of arcuate ribs.
17. The screen of claim 16 wherein each one of said plurality of apertures has a lateral distance and a longitudinal distance between said plurality of bars that is less than three times a diameter of any one of said plurality of bars.
18. The screen of claim 16, wherein an effective diameter of any one of said plurality of bars relative to an average diagonal distance of said plurality of apertures between said plurality of bars has a ratio of less than 1:4.
19. The screen of claim 16, wherein said first set of said plurality of bars are substantially parallel to each other between said plurality of arcuate ribs, and wherein said second set of said plurality of bars are in a staggered relationship between said first set of said plurality of bars.
20. The screen of claim 16, wherein said arcuate grid is further comprised of a laterally extending slotted knife bed.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will become more fully understood from the detailed description and the accompanying drawings.
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(11) Generally, the invention is an improved screen 100 that is installed on a shredding machine 110 in close proximity to the shredder's rotor 120 and which has a shape that avoids clogging of the materials being processed through the shredder. The screen has a pair of mounting plates 12 that are connected to the shredder with one mounting plate attached toward the top of the rotor and the other mounting plate attached toward the bottom of the rotor and extending the entire length of the rotor. Arcuate ribs 14 are attached to and extend between the mounting plates, and a grid 16 is attached to the ribs.
(12) The grid 14 has lateral 32 and longitudinal 34 structural elements which surround and form the apertures 20 through which the material passes when it is ground down between the rotor 120 and the structural elements 18. Accordingly, the grid serves as a sieve with the apertures defining the sieve size. The lateral structural elements 32 extend between the ribs and are spaced apart from each other from the top mounting plate to the bottom mounting plate. The longitudinal structural elements 34 extend between and are connected to the lateral structural elements. The structural elements intersect with each other and are flush 50 with each other at the points of intersection 36. The grid has a first surface facing the rotor 38 and a second surface facing toward the arcuate ribs 40, and all of the structural elements that form the first surface have a rounded cross-sectional shape 38A proximate to the apertures 20. According to the present invention 10, the rounded 38A sides of the structural elements around the apertures or orifices minimize sharp edges in the screen which could catch material as it passes between the rotor and the grid. Additionally, the flush 50 connections between the points of intersections avoid discontinuities which could also catch material as it is passing through the apertures.
(13) In comparison with prior art screens, examples of which is shown in
(14) As particularly shown in
(15) When the screen is installed on the shredder machine, the inner facing surfaces of the rods 38 are in close proximity to the rotor. The distance between the outermost knife tip of the cutters on the rotor and the innermost surface of the screen is less than one-half inch and can be approximately 5/16 for rods having a diameter of one inch (1) with an outer rotor diameter that is a little over one foot (1). The size of the apertures 42 and 44 in the embodiments shown in
(16) In the embodiments shown in
(17) Generally, the curved cross-sectional shape of the structural elements around the apertures in the grid provides a convex rounded surface which prevents the materials being processed from catching on sharp edges, particularly at the edges of apertures and in the corners of intersecting structural elements. One benefit of the screen design according to the present invention is that it does not get clogged with material so there is less wear and tear on the screen and the cutters on the rotor so there is less maintenance. Additionally, the shredder machine can operate closer to its maximum capacity without overheating the gearbox. For example, for a particular machine processing a particular material with prior art screens, the maximum production rate could be limited to 1,500 lb per hour whereas the improved screens of the present invention can permit production rates of 4,500 lb per hour or more for the same machine and the same material. Also, the structural elements forming the grid have enough strength that when there is some materials that may initially block one of the apertures, the screen does not tear apart and the shredder blades ultimately chop the material into pieces that fit through the apertures. With prior art screens that have the sharp edges around the apertures, the lower production rates would still require more frequent replacement of the screens and the cutters on the rotors would be dulled sooner as compared with screens with curved-side apertures according to the present invention. In comparison, the screen of the present invention allows the shredder to operate at a much higher production rate and does not need to be replaced as often as the known screens with sharp-edged apertures, and the cutters on the rotors are not dulled as quickly as with the prior art screens.
(18) Accordingly, the unique rounded shape 38A of the structural elements around the apertures in the shredder screen according to the present invention yields unexpected results by increasing the throughput capability of the shredder as compared with traditional shredder screens that clog and must be run with lower production rates. Additionally, the inventive shredder screen reduces the downtime for maintenance and the associated costs of maintenance as compared with traditional shredder screens.
(19) As shown in
(20) The features of the present invention can be applied to many existing screen designs. For example, as shown in
(21) The embodiments were chosen and described to best explain the principles of the invention and its practical application to persons who are skilled in the art. As various modifications could be made to the exemplary embodiments, as described above with reference to the corresponding illustrations, without departing from the scope of the invention, it is intended that all matter contained in the foregoing description and shown in the accompanying drawings shall be interpreted as illustrative rather than limiting. Thus, the breadth and scope of the present invention should not be limited by any of the above-described exemplary embodiments, but should be defined only in accordance with the following claims appended hereto and their equivalents.