Adjustable compression screw press
09610747 ยท 2017-04-04
Assignee
Inventors
Cpc classification
International classification
Abstract
A variable compression screw press includes a volume displacing member which overlies the pressure housing feed flight of the screw press. In one embodiment, the volume displacing member is a shroud which may be moved in and out of the intake hopper as desired, without having to disassemble the press. In a second embodiment, the volume displacing member is a hinged gate which can be adjusted to overlie more or less of the pressure housing feed flight. In a third embodiment which may be used in cooperation with either first or second embodiment, the volume within the pressure housing feed flight is partly occupied by block elements removably mounted to the screw flighting of the pressure housing feed flight.
Claims
1. Apparatus to vary a compression ratio of a screw press having a screw with wide pitch flighting at an intake region of the screw press and narrow pitch flighting at an outlet of the screw press, comprising: a volume displacing element disposed in an intake hopper of the screw press, the volume displacing element having a curved lower end, the curved lower end conforming to a periphery of the wide pitch flighting, the screw including a feed flight disposed upstream of an entry of a cylindrical housing for the screw, the volume displacing element disposed above the feed flight, the volume displacing element being selectively moveable to span over a selected portion of the feed flight.
2. The apparatus of claim 1 wherein the volume displacing element is supported on rails on opposing sidewalls of the intake hopper, the volume displacing element includes a front wall and an opposing rear wall, the front wall spaced from the opposing rear wall and joined to the rear wall by opposing sidewalls, the volume displacing element having a top wall, volume displacing element further comprising a curved lower wall, the lower wall joining bottom ends of the sidewalls and also joining the front wall to the rear wall at respective lower ends thereof, the curved lower wall spaced apart a small distance from the periphery of the wide pitch fighting.
3. The apparatus of claim 2 wherein the volume displacing element is joined to an adjustment rod, the adjustment rod passing through an end wall of the intake hopper, the adjustment rod adapted to selectively apply forward or rearward forces to the volume displacing element to allow movement of the volume displacing element along a length of the intake hopper.
4. The apparatus of claim 1 wherein at least a first block element is mounted to the wide pitch fighting within the intake hopper.
5. The apparatus of claim 4 wherein the at least a first block element comprises a curved elongate body removably attached to a segment of a flight of the wide pitch flighting within the intake hopper, the at least a first block element abutted to a helical surface of the wide pitch flighting, the curved elongate body having a surface conforming to a helical surface of the segment of the flight of the wide pitch flighting.
6. The apparatus of claim 5 wherein the at least a first block element comprises ultra high molecular weight polyethylene.
7. The apparatus of claim 1 wherein the volume displacing element comprises a gate element, the gate element being selectively moveable to span over a desired portion of the feed flight.
8. The apparatus of claim 7 wherein an adjustment element is operative to selectively urge the gate element along the feed flight.
9. The apparatus of claim 2 wherein an adjustment element is joined to the volume displacing element to selectively cause lateral movement of the volume displacing element over the wide pitch flight.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(12) Definitions: For purposes of the disclosure and claims which follow, the following definitions shall apply:
(13) Flight shall mean one segment of screw flighting which consists of 360 degrees of the screw flighting.
(14) Pitch shall mean the length along the screw pipe which a single flight extends.
(15)
(16) Screw flighting 22 includes intake flight 25 which is located within intake hopper 52 immediately adjacent entrance 51 to screen housing 54.
(17) Intake hopper 52 provides a chute through which fibrous commodity is fed to screw 20. The pitch of intake flight 25 located within intake hopper 52, in relationship to the pitch of the final compression flight 26 near outlet 60, governs the compression ratio of the press 50. Intake flight 25 also may be referred to as pressure housing feed flight 25. All flights helically circumnavigate pipe 27 and are fixed in place thereon, typically by welding. Upstream end flight 23 is joined to upstream end 24 of intake flight 25 by a weld 29.
(18) Depending on the nature of the material to be pressed, a preferred approximate compression ratio is determined. For instance, if wet corn fiber is to be compressed, a compression ratio of approximately 7.5 is often used but variations in condition of the material may require that the ratio be different in order to maximize the separation of liquid content front the material without applying so much compressive force that the solids in the material are forced through the screen housing 54. Lower moisture solids require less energy to finish the drying process than wetter solids so maximizing liquid separation is desired before solids are moved to a thermal dryer. The present invention allows selection of varying compression ratios without reworking the pitch of any flights.
(19) Referring now additionally to
(20) Gate 10 extends between first sidewall 53 and opposing second sidewall 55 of intake hopper 52. Its lower arched end 16 generally conforms to the circular periphery 21 of flighting 22 and is disposed over flight 25. Adjusting rod 14 extends through downstream end wall 57 of intake hopper 52 and is longitudinally moveable to change the angle of gate 10 to restrict more or less of the material volume flowing into flight 25. Other structures to vary the incline and span of gate 10 may be used.
(21) The location of lower end 16 over flight 25 defines the effective feed area. Covering more of flight 25 with gate 10 decreases the compression ratio of press 50.
(22) Therefore, it can be appreciated that variation of the compression ratio of screw press 50 can be controlled by insertion or withdrawal of control rod 14 through downstream end wall 57 and by selective horizontal positioning of shield 12, thereby moving hinge 28 and the upper end 18 of gate 10.
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(24) Screw flighting 122 includes pressure housing feed flight 125 which is located within intake hopper 152 immediately adjacent the free end 130 of screw tube 128 which is located upstream from entrance 151 to screen housing 54. The downstream end 129 of pressure housing feed flight 125 terminates at the free end 128 of screw tube 130.
(25) Intake hopper 152 receives commodity which is intended to be compressed, including fibrous commodity to be fed to screw 120. The pitch of pressure housing feed flight 125 located within intake hopper 152, in relationship to the pitch of the final compression flight 126 near outlet 160, governs the compression ratio of the press 150. All flights of screw 120 helically circumnavigate pipe 127 and are fixed in place thereon, typically by welding. Upstream end flight 123 is joined to pressure housing feed flight 125 and the upstream end 131 thereof.
(26) Depending on the nature and condition of the material to be pressed, a preferred approximate compression ratio is determined. For instance, variations in condition of the material may require that the ratio be somewhat altered in order to maximize the separation of liquid content from the material without applying so much compressive force that the solids in the material are forced through the screen housing 54. The preferred embodiment of
(27) The location of bottom end 117 of front wall 114 of shroud member 110 over pressure housing feed flight 125 defines the effective feed area. Covering more of pressure housing feed flight 125 with shroud 110 decreases the compression ratio of press 150.
(28) Therefore, it can be appreciated that variation of the compression ratio of screw press 150 can be controlled by insertion or withdrawal of control rod 14 through downstream end wall 57 and by selective horizontal positioning of shroud member 110.
(29) Referring, now particularly to
(30) It can be observed that shroud member 110 can be moved to any location from its fully retracted position as illustrated in
(31) Shroud member 110 may overlie none of the pressure housing feed flight 125 or as much as approximately thirty percent of the space over pressure housing feed flight 125.
(32) In practice, the volume displacing shroud member 110 will be used to fine tune the compression ratio of screw press 150 to maximize its compression efficiency for any batch of fibrous commodity being compressed. For instance, in the case of some fibrous materials, a nominal compression ratio of 7.5 may be appropriate but for some batches of those materials, that compression ratio may be excessive causing fiber to be extruded through the screen housing 154. In that case dewatering of the materials may be better accomplished if the ratio is reduced by, for instance, fifteen to thirty percent. The variable positioning of shroud member 110 permits the compression ratio of a given screw press to be reduced in continuous proportions and not necessarily incrementally.
(33) Referring particularly to
(34) Shroud member 110 includes side grooves 134, 136 on each sidewall 116, 118 which may receive rails 144, 146 which are mounted to each sidewall 153, 155 of intake hopper 152. Suitable bearing elements 142 may be installed on rails 144, 146 or within grooves 134, 136 to facilitate the sliding of the volume displacing shroud member 110 along the rails 144, 146. The location of the volume displacing shroud member 110 within intake hopper 152 may be adjusted by use of a threaded rod 180 having a hand wheel 182 thereon to facilitate its rotation. Threaded rod 180 is attached to shroud member 110 and passes through a nut 184 mounted to downstream end wall 157 so that rotation of threaded rod 180 will effect lateral movement of shroud member 110. Rotation of the hand wheel 182 allows the shroud member 110 to be moved further into intake hopper 152 or alternatively to be backed out of any blockage of the pressure housing feed flight 125.
(35) Referring now particularly to
(36) While the present invention has been particularly shown and described with reference to exemplary embodiments thereof it should be understood by those of ordinary skill in the art that various changes, substitutions and alterations can be made herein without departing from the scope of the invention as defined by appended claims and their equivalents. The invention can be better understood by reference to the following claims. For purpose of claim interpretation, the transitional phrases including and having are intended to be synonymous with the transitional phrase comprising.