The present disclosure relates to high angle conveyors and more specifically, to pressing assemblies for high angle conveyors.
In one aspect, the disclosure provides a high angle conveyor including a frame, a first conveyor belt, a second conveyor belt, and a pressing assembly configured to press the first conveyor belt toward the second conveyor belt. The pressing assembly includes a bracket pivotally coupled to the frame, a roller support pivotally coupled to the bracket at a pivot joint, a plurality of rollers coupled to the roller support, the plurality of rollers configured to engage the first conveyor belt, and a deflector configured to inhibit contact between the first conveyor belt and the pivot joint.
In some embodiments, the plurality of rollers includes a first roller and a second roller, and in some embodiments the pivot joint is positioned between the first roller and the second roller.
In some embodiments, the pressing assembly includes a plurality of linkages rotatably supporting the plurality of rollers, and in some embodiments, the deflector is configured to inhibit contact between the first conveyor belt and each of the plurality of linkages.
In some embodiments, the high angle conveyor includes a spring configured to bias the plurality of rollers into engagement with the first conveyor belt.
In some embodiments, the deflector includes a deflector roller support extending from the roller support toward the first conveyor belt and a deflector roller rotatably coupled to the deflector roller support.
In some embodiments, the deflector includes a plurality of deflector roller supports extending from the roller support toward the first conveyor belt and a plurality of deflector rollers, each deflector roller of the plurality of deflector rollers rotatably coupled to a respective deflector roller support of the plurality of deflector roller supports.
In some embodiments, the deflector includes a curved plate.
In some embodiments, the curved plate is made of metal.
In some embodiments, the curved plate is made of ultra-high molecular weight polyethylene.
In some embodiments, the curved plate at least partially surrounds the pivot joint.
In some embodiments, the deflector includes a plurality of sliding blocks made of a low friction material.
In some embodiments, the deflector is configured to engage the first conveyor belt in response to a lump of material being conveyed past the pressing assembly.
The disclosure provides, in another aspect, a pressing assembly for a conveyor having a first conveyor belt and a second conveyor belt. The pressing assembly includes a roller support, a linkage coupled to the roller support, a roller rotatably coupled to the linkage, the roller configured to engage the first conveyor belt to press the first conveyor belt toward the second conveyor belt, and a deflector engageable with the first conveyor belt to inhibit contact between the first conveyor belt and the linkage.
In some embodiments, the deflector includes a curved plate coupled to the roller support.
In some embodiments, the deflector includes a deflector roller.
In some embodiments, the first conveyor is slidable along the deflector to inhibit contact between the first conveyor belt and the linkage.
In some embodiments, the deflector is made of a low friction material.
In some embodiments, the deflector is removably coupled to the roller support.
The disclosure provides, in another aspect, a high angle conveyor including a frame, a first conveyor belt, a second conveyor belt, and a pressing assembly configured to press the first conveyor belt toward the second conveyor belt. The pressing assembly includes a bracket pivotally coupled to the frame, a roller support pivotally coupled to the bracket at a pivot joint, a linkage coupled to the roller support, a roller coupled to the linkage, the roller configured to engage the first conveyor belt, and a deflector configured to inhibit the first conveyor belt from contacting the linkage and the pivot joint when a lump of material is conveyed past the pressing assembly.
In some embodiments, the deflector is positioned between the pivot joint and the linkage.
Other aspects of the disclosure will become apparent by consideration of the detailed description and accompanying drawings.
Before any embodiments of the disclosure are explained in detail, it is to be understood that the disclosure is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The disclosure is capable of other embodiments and of being practiced or of being carried out in various ways.
With reference to
With reference to
With reference to
With continued reference to
Each of the pressing assemblies 26 further includes a spring support 106 coupled to the frame 14. A spring 130 is included in each of the pressing assemblies 26 and is positioned between the bracket 86 and the frame 14. In the illustrated embodiment, the spring 130 is positioned between the bracket 86 and the spring support 106. The spring 130 urges the bracket 86 and the pressing rollers 98 toward the upper conveyor belt 22 (i.e., toward the upper conveying belt portion 70 and away from the spring support 106) such that the pressing assembly 26 biases the upper conveyor belt 22 toward the lower conveyor belt 18, securing the material 30 therebetween.
Further details regarding the structure and operation of an exemplary high angle conveyor can be found in U.S. Pat. No. 4,609,097 to Continental Conveyor and Equipment Company, Inc., and in U.S. Pat. No. 9,884,729, to Joy MM Delaware, Inc., the entire contents of which are hereby incorporated by reference.
As long as high angle conveyors operate within the manufacturer's specified capabilities, high angle conveyors functions properly and according to design. However, problems operating high angle conveyors may arise when the high angle conveyor is loaded beyond its designed capacity (i.e., outside the specified capabilities). For example, in some instances a large object that exceeds the maximum lump size limits is placed between the upper and lower conveyor belts 18, 22. For example, as illustrated in
Referring to
The pressing assembly 26A further includes deflector 111A positioned between the pressing rollers 98A in the belt travel direction. The deflector 111A is engageable with the upper conveyor belt 22 in the event of a large amount of material 30 or a large object passing underneath the pressing assembly 26A. In particular, the deflector 111A is configured to inhibit the upper conveyor belt 22 from snagging or tearing on the linkages 102A and/or the pivot joint 95A. In the illustrated embodiment, the deflector 111A includes deflector rollers (or simply “rollers”) 113A rotatably supported by deflector mounts (or simply “mounts”) 115A that extend downward from an underside of the roller support 94A. In the illustrated embodiment, the deflector 111A includes two rollers 113A and two corresponding mounts 115A, which are positioned on opposite sides of the pivot joint 95A with respect to the belt travel direction. Illustrated in
During ordinary operation, the deflector 111A remains spaced from the upper conveyor belt 22 as the belt 22 travels under the pressing assembly 26A. However, in the event that a sufficiently large lump of material 30 is being transported (
Referring to
Illustrated in
During ordinary operation, the deflector 111B remains spaced from the upper conveyor belt 22 as the belt 22 travels under the pressing assembly 26B. However, in the event that a sufficiently large lump of material 30 is being transported (
Referring to
Illustrated in
During ordinary operation, the deflector 111C remains spaced from the upper conveyor belt 22 as the belt 22 travels under the pressing assembly 26C. However, in the event that a sufficiently large lump of material 30 is being transported (
Referring to
Illustrated in
During ordinary operation, the deflector 111D remains spaced from the upper conveyor belt 22 as the belt 22 travels under the pressing assembly 26D. However, in the event that a sufficiently large lump of material 30 is being transported (
Various features of the invention are set forth in the following claims.
This application claims priority to U.S. Provisional Patent Application No. 62/698,609, filed on Jul. 16, 2018, the entire content of which is incorporated herein by reference.
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