The present disclosure generally relates to harvesters, and more particularly to a compression thrower for a sugarcane harvester.
In order to transport crops from a harvester to a wagon, an elevator is commonly used that pulls a slat along a fixed floor to move the crop.
In one embodiment, a sugarcane harvester is disclosed. The sugarcane harvester comprises a basecutter configured to cut sugarcane. A feeding device is in communication with the basecutter to receive cut sugarcane. A chopping device is in communication with the feeding device. The chopping device is configured to chop the sugarcane received from the feeding device. A primary extractor is in communication with the chopping device and is configured to extract debris from the sugarcane. A receptacle is in communication with the primary extractor and is configured to receive sugarcane. A compression thrower is in communication with the receptacle. The compression thrower comprises a first belt configured to receive sugarcane from the receptacle. A compression device is configured to compress sugarcane into a mat of sugarcane against a second belt adjacent the compression device. The second belt is configured to propel the mat of sugarcane from the sugarcane harvester to a target location.
In another embodiment, a compression thrower for a sugarcane harvester having a receptacle for receiving sugarcane is disclosed. The compression thrower comprises a first belt configured to receive sugarcane from the receptacle. A compression device is configured to compress sugarcane into a mat of sugarcane against a second belt adjacent the compression device. The second belt is configured to propel the mat of sugarcane from the sugarcane harvester to a target location.
In yet another embodiment, a sugarcane harvester is disclosed. The sugarcane harvester comprises a basecutter configured to cut sugarcane. A feeding device is in communication with the basecutter to receive cut sugarcane. A chopping device is in communication with the feeding device. The chopping device is configured to chop the sugarcane received from the feeding device. A primary extractor is in communication with the chopping device and is configured to extract debris from the sugarcane. A receptacle is in communication with the primary extractor and is configured to receive sugarcane. A compression thrower is in communication with the receptacle. The compression thrower comprises a first belt configured to receive sugarcane from the receptacle. A compression device is configured to compress sugarcane into a mat of sugarcane against a second belt adjacent the compression device. The second belt is configured to propel the mat of sugarcane from the sugarcane harvester to a target location. A metering device adjacent the first belt is configured to control the flow of sugarcane. A deflector adjacent the second belt is configured to cooperate with the compression thrower to direct the mat of sugarcane to the target location.
Other features and aspects will become apparent by consideration of the detailed description and accompanying drawings.
Before any embodiments 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. Further embodiments of the invention may include any combination of features from one or more dependent claims, and such features may be incorporated, collectively or separately, into any independent claim.
The operator station 30 gives a seated or standing operator a vantage point for viewing the operation of front-mounted equipment including a topper mechanism 35 mounted to the frame 15 between right- and left-hand crop divider assemblies 40, only one of which is shown. Located just behind and inwardly of the front wheels 25 of the harvester 10, so as to be at opposite sides of a longitudinal centerline of the harvester, are right- and left-hand basecutters 45, only one of which is shown, having cutting blades located so as to overlap at the middle of the harvester 10.
Thus, during operation, the crop divider assemblies 40 straddle a row of cane stalks which pass beneath the frame 15 and are severed from the ground by the basecutters 45. The basecutters 45 deliver the stalks to the rear to a feeding device 50 that transports the cane stalks to a chopping device 55 located between and at a height above the rear drive wheels 20. The chopping device 55 cuts the cane stalks into lengths called billets which are fed into a primary extractor 60 that operates to clean unwanted material such as leaves and other crop pieces from the billets by using a fan (not shown). The billets then pass into a receptacle 65 that accumulates the billets.
A compression thrower 70 is positioned to receive billets from the receptacle 65. The compression thrower 70 is configured to form a mat of sugarcane and propel the sugarcane to a target location 75. The target location 75 may be a wagon, cart, basket, or other object or location. The compression thrower 70 includes a first belt 80. The first belt 80 may receive billets from the receptacle 65.
A metering device 85 may be positioned adjacent the first belt 80. The metering device 85 may include any known device to control the flow of sugarcane (e.g., auger, gate, paddle wheel).
A compression device 90 is positioned against a second belt 95. The second belt 95 is positioned at an angle 97 relative to a vertical axis 135 and may operate at a higher or lower speed than the first belt 80. The compression device 90 is configured to compress sugarcane billets into the mat of sugarcane. In the embodiment shown, the compression device 90 is a pressure plate 100 cooperating with the second belt 95 to compress the sugarcane.
Referring to
A deflector 110 may be positioned adjacent the second belt 95. The deflector 110 may cooperate with the compression thrower 70 to direct the mat of sugarcane to the target location 75. An angle 112 of the deflector 110 relative to the vertical axis 135 may be changed by an actuator 115 coupled to the deflector 110 and the harvester 10 to adjust the direction of the mat of sugarcane to the target location 75.
Referring to
A controller 130 is in communication with the target feedback device 125 and is configured to automatically adjust at least one of the metering device 85 to control the flow of sugarcane, the speed of the first belt 80 via a motor (e.g., hydraulic, electronic), the angle 97 of the second belt 95 relative to the vertical axis 135 (
Various features are set forth in the following claims.
Number | Name | Date | Kind |
---|---|---|---|
1459247 | Vilar Y Pazos | Jun 1923 | A |
1726043 | Scranton | Aug 1929 | A |
3325982 | Fogels | Jun 1967 | A |
3456429 | Sexton, Jr. | Jul 1969 | A |
3460324 | Tolar | Aug 1969 | A |
3690358 | Tilby | Sep 1972 | A |
3863431 | Fowler | Feb 1975 | A |
4177953 | Ribeiro Pinto | Dec 1979 | A |
4295325 | Cannavan | Oct 1981 | A |
4550552 | Stiff | Nov 1985 | A |
5031392 | Baker | Jul 1991 | A |
5235798 | Giardina | Aug 1993 | A |
5452652 | Brooks | Sep 1995 | A |
6363700 | Fowler | Apr 2002 | B1 |
7837542 | Ricketts | Nov 2010 | B1 |
7966796 | Leach et al. | Jun 2011 | B2 |
8240115 | Marchini | Aug 2012 | B2 |
8961285 | Ricketts | Feb 2015 | B2 |
20070163606 | Chojnacki et al. | Jul 2007 | A1 |
20090165433 | Jauncey et al. | Jul 2009 | A1 |
20150173298 | Jager | Jun 2015 | A1 |
Number | Date | Country |
---|---|---|
632145 | Dec 1992 | AU |
Number | Date | Country | |
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20170112058 A1 | Apr 2017 | US |