Patent · US11241026B2 · B2 · US
Food processing system including extruder with hollow core screw assembly
- (11) Publication number
- US11241026B2
- (21) Application number
- 16/446,194
- (22) Filing date
- 2019-06-19
- (30) Priority date
- 2017-02-15
- (43) Publication date
- 2022-02-08
- (45) Date of grant
- 2022-02-08
- (51) IPC
- B01F 27/94; A23K 10/20; A23K 40/25; A23K 50/40; A23N 17/00; A23P 30/20; B29C 48/40; B29C 48/84
- (52) CPC
- A23K Fodder: 40/25, 10/20, 50/40
- A23N Machines or apparatus for treating harvested fruit, vegetables or flower bulbs in bulk, not otherwise provided for; peeling vegetables or fruit in bulk; apparatus for preparing animal feeding- stuffs: 17/002, 17/004, 17/005, 17/007
- A23P Shaping or working of foodstuffs, not fully covered by a single other subclass: 30/20
- B01F Mixing, e.g. dissolving, emulsifying or dispersing: 15/068, 2015/062, 2035/99, 2101/18, 2215/0024, 27/1143, 27/2121, 27/2122, 27/2721, 27/2722, 27/276, 27/722, 27/723, 27/726, 35/95, 7/00416, 7/00691, 7/007, 7/00808, 7/00816, 7/082, 7/085, 7/088
- B29C Shaping or joining of plastics; shaping of material in a plastic state, not otherwise provided for; after-treatment of the shaped products, e.g. repairing: 48/402, 48/845
- Y10S Technical subjects covered by former uspc cross-reference art collections [xracs] and digests: 426/805
- (73) Assignee
- Wenger Manufacturing LLC
- (72) Inventors
- LaVon Wenger; Allan C. Spellmeier; Philip B. Wiltz
- (54) Title
- Food processing system including extruder with hollow core screw assembly
- (57) Abstract
Apparatus and methods for food production including a food preconditioner (228) operable to heat and partially pre-cook food ingredients, and a twin screw extruder (20) operable to further cook the preconditioned ingredients to create final food products. The extruder (20) includes a pair of hollow core extrusion screws (50, 52, 124, 126, 190) having elongated hollow core shafts (54, 128, 130, 192) equipped with helical fighting (56, 132, 134, 194) along the lengths thereof. The fighting (132, 134, 194) is also of hollow construction which communicates with the hollow core shafts (54, 128, 130, 192). The flighting (56, 132, 134, 194) also includes forward, reverse pitch sections (64, 162, 216). The extrusion screws (50, 52, 124, 126, 190) are designed to impart high levels of thermal energy into materials being processed in the extruders (20), without adding additional moisture.
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Claims (16)
- A system for the production of food products from a mixture of food ingredients, comprising: a preconditioner including a housing having an input for receiving said mixture and a preconditioned product output, said preconditioner operable to heat and at least partially pre-cook said mixture to create said preconditioned product; and a food extruder operable to further cook said preconditioned product, comprising - an elongated barrel having an inlet for said preconditioned product, and an extruded product outlet; a restricted orifice die operably coupled with said extruded product outlet; a pair of elongated, axially rotatable, helically flighted screws within said barrel, each of said screws having an elongated shaft with a hollow core and elongated flighting extending outwardly from said shaft, at least a portion of said fighting having an internal hollow region, said hollow core in communication with said hollow region, said hollow core configured to receive heat exchange media and to pass said media into said hollow region, the fighting of the pair of screws being fully intermeshed along the lengths thereof, the pair of screws being configured for directional co-rotation; and a media delivery assembly including a pair of media delivery tubes extending from a point outside of said barrel and respectively into a corresponding one of said hollow cores.
- The system of claim 1, each of said helical screws having a first helical flighting section operable to convey said preconditioned product from said barrel inlet toward and through said extruded product outlet, and a second helical fighting section proximal to said extruded product outlet and operable to retard the flow of preconditioned product therepast, said first and second helical sections being of opposite hand.
- The system of claim 2, said second helical section being shorter than said first helical section.
- The system of claim 2, said second helical section having a pitch length smaller than the pitch length of said first helical section.
- The system of claim 2, said first helical section having a pitch length of from about 0.4-1.2 based upon the diameter of said first helical section, and said second helical section having a pitch length of from about 0.2-101 based upon the diameter of said second helical section.
- The system of claim 1, said flighting portion presenting a pair of opposed, spaced apart wall segments extending outwardly from said shaft and having a helical transition area between the opposed wall segments, said transition area being open throughout the length and width thereof to afford unobstructed communication between said hollow region and said hollow core.
- The system of claim 1, said flighting portion having an internal helical groove along the length thereof and presenting an inner wall, with a series of spaced apart apertures through said inner wall communicating said helical groove with said hollow core.
- A twin screw processing device operable to create a food product from a mixture of food ingredients, said device comprising: an elongated barrel having a material inlet for said mixture and a processed material outlet, there being a restricted orifice die operably coupled with said processed material outlet; a pair of elongated, axially rotatable, helical screws within said barrel, each of said screws having an elongated shaft with a hollow core, and elongated helical fighting extending outwardly from said shaft, said elongated shaft hollow core configured to receive heat exchange media, said helical screws configured for driven, directional co-rotation; and a media delivery assembly including a pair of media delivery tubes extending from a point outside of said barrel and respectively into a corresponding one of said elongated shaft hollow cores, and structure coupled with said delivery tubes permitting introduction of media to said tubes for delivery into said elongated shaft hollow cores, each of said helical screws having a first helical fighting section with a pitch length D 1 of from about 0.4-1.2 based upon the diameter of the first helical fighting section and operable to convey material from said material inlet toward and through said processed material outlet, and a second helical flighting section proximal to said processed material outlet and operable to retard the flow of material therepast, said first and second helical fighting sections being of opposite hand, said second helical fighting section being shorter than said first helical fighting section and having a pitch length smaller than the pitch length of said first helical fighting section, said first and second helical fighting sections being fully intermeshed along the lengths thereof, and at least a portion of said first helical flighting section having a hollow helical area along the length of said first helical fighting section portion, said helical area being open along at least a part of the length thereof, said helical area being in communication with said hollow internal region and said elongated shaft hollow core, said intermeshed, co-rotating helical screws and said pitch lengths D 1 being configured, upon rotation of said helical screws, to increase shear conditions within said barrel, to generate a temperature of at least about 90° C., and to create a pressure level within the barrel of from about 200-600 psi, during processing of said mixture.
- The processing device of claim 8 said structure comprising a pair of rotary unions respectively and operably secured to a corresponding delivery tube.
- The processing device of claim 8, said portion of said fighting section having a pair of opposed, spaced apart wall segments extending outwardly from said shaft with a hollow helical area between the opposed wall segments, said wall segments having a helical transition area between the opposed wall segments, said transition area being open throughout the length and width thereof to afford unobstructed communication between said screw section hollow internal region and said elongated shaft hollow core.
- The processing device of claim 10, said transition area including an inner wall with a series of spaced apart apertures through said inner wall communicating said helical groove with said elongated shaft hollow core.
- The processing device of claim 8, the thickness of said shaft being substantially equal to the thickness of said helical flighting section.
- The processing device of claim 8 said first screw section being of unitary, cast construction.
- The processing device of claim 8, each of said media delivery tubes extending substantially the full length of said fighting sections.
- The processing device of claim 8, the flight depths of said first helical flighting section and said second helical flighting section being substantially equal.
- The processing device of claim 8, said pitch lengths D 1 being from about 0.5-1.0.
Description
The present invention is broadly concerned with high thermal transfer, twin screw processing devices (e.g., extruders), which can be used in the production of comestible products having high meat contents. More particularly, the invention is concerned with such devices, as well as the twin screws therein, which provide very high thermal energy inputs without the need for direct injection of steam into the materials being processed. This is obtained by unique, hollow core, high thermal transfer screw designs which are equipped with steam injection apparatus for indirect heating of materials during processing thereof.
Many pet foods are produced using extrusion technology, where in mixtures containing grains, starches, fats, and other ingredients are initially preconditioned to heat and partially cook the mixtures, followed by processing through a single or twin screw extruder. Preconditioning involves passage of the initially dry mixture into an elongated housing where it is mixed with injected steam and/or water, making the mixture better conditioned for downstream extrusion. During extrusion, it is common to inject still further quantities of steam and/or water into the mixture during passage through the extruder barrel. For many product recipes, this existing technology is satisfactory. However, in recent years, producers have sought to incorporate greater and greater quantities of fresh meat into the feed recipes. At relatively low levels of meat addition, the traditional extrusion processing technologies are suitable.
Citations (66)
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- US2027185A
- US2321185A
- US2458068A
- US2753159A
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- US3255814A
- US3386131A
- US3191229A
- US3143768A
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- US3776529A
- US3802670A
- US3856278A
- US4040768A
- US4183674A
- US4393983A
- US4372734A
- FR2477429A1
- US4425962A
- US4856580A
- US5074057A
- US5417492A
- US5120559A
- WO1993014921A1
- US5431927A
- US5372418A
- US5410984A
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- US5887972A
- US6170168B1
- US5718508A
- US5863197A
- US6099159A
- US6105490A
- US20030021860A1
- US20040234641A1
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- US20090213681A1
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- US20140027095A1
- US9321190B2
- US20150131399A1
- US20150181907A1
- US20180229197A1
- US10555547B2
- US20190075822A1
- US20200120970A1
- US20210068424A1
Record as JSON
{
"publication_number": "US11241026B2",
"country": "US",
"kind": "B2",
"title": "Food processing system including extruder with hollow core screw assembly",
"abstract": "Apparatus and methods for food production including a food preconditioner (228) operable to heat and partially pre-cook food ingredients, and a twin screw extruder (20) operable to further cook the preconditioned ingredients to create final food products. The extruder (20) includes a pair of hollow core extrusion screws (50, 52, 124, 126, 190) having elongated hollow core shafts (54, 128, 130, 192) equipped with helical fighting (56, 132, 134, 194) along the lengths thereof. The fighting (132, 134, 194) is also of hollow construction which communicates with the hollow core shafts (54, 128, 130, 192). The flighting (56, 132, 134, 194) also includes forward, reverse pitch sections (64, 162, 216). The extrusion screws (50, 52, 124, 126, 190) are designed to impart high levels of thermal energy into materials being processed in the extruders (20), without adding additional moisture.",
"claims": [
"1. A system for the production of food products from a mixture of food ingredients, comprising: a preconditioner including a housing having an input for receiving said mixture and a preconditioned product output, said preconditioner operable to heat and at least partially pre-cook said mixture to create said preconditioned product; and a food extruder operable to further cook said preconditioned product, comprising - an elongated barrel having an inlet for said preconditioned product, and an extruded product outlet; a restricted orifice die operably coupled with said extruded product outlet; a pair of elongated, axially rotatable, helically flighted screws within said barrel, each of said screws having an elongated shaft with a hollow core and elongated flighting extending outwardly from said shaft, at least a portion of said fighting having an internal hollow region, said hollow core in communication with said hollow region, said hollow core configured to receive heat exchange media and to pass said media into said hollow region, the fighting of the pair of screws being fully intermeshed along the lengths thereof, the pair of screws being configured for directional co-rotation; and a media delivery assembly including a pair of media delivery tubes extending from a point outside of said barrel and respectively into a corresponding one of said hollow cores.",
"2. The system of claim 1, each of said helical screws having a first helical flighting section operable to convey said preconditioned product from said barrel inlet toward and through said extruded product outlet, and a second helical fighting section proximal to said extruded product outlet and operable to retard the flow of preconditioned product therepast, said first and second helical sections being of opposite hand.",
"3. The system of claim 2, said second helical section being shorter than said first helical section.",
"4. The system of claim 2, said second helical section having a pitch length smaller than the pitch length of said first helical section.",
"5. The system of claim 2, said first helical section having a pitch length of from about 0.4-1.2 based upon the diameter of said first helical section, and said second helical section having a pitch length of from about 0.2-101 based upon the diameter of said second helical section.",
"6. The system of claim 1, said flighting portion presenting a pair of opposed, spaced apart wall segments extending outwardly from said shaft and having a helical transition area between the opposed wall segments, said transition area being open throughout the length and width thereof to afford unobstructed communication between said hollow region and said hollow core.",
"7. The system of claim 1, said flighting portion having an internal helical groove along the length thereof and presenting an inner wall, with a series of spaced apart apertures through said inner wall communicating said helical groove with said hollow core.",
"8. A twin screw processing device operable to create a food product from a mixture of food ingredients, said device comprising: an elongated barrel having a material inlet for said mixture and a processed material outlet, there being a restricted orifice die operably coupled with said processed material outlet; a pair of elongated, axially rotatable, helical screws within said barrel, each of said screws having an elongated shaft with a hollow core, and elongated helical fighting extending outwardly from said shaft, said elongated shaft hollow core configured to receive heat exchange media, said helical screws configured for driven, directional co-rotation; and a media delivery assembly including a pair of media delivery tubes extending from a point outside of said barrel and respectively into a corresponding one of said elongated shaft hollow cores, and structure coupled with said delivery tubes permitting introduction of media to said tubes for delivery into said elongated shaft hollow cores, each of said helical screws having a first helical fighting section with a pitch length D 1 of from about 0.4-1.2 based upon the diameter of the first helical fighting section and operable to convey material from said material inlet toward and through said processed material outlet, and a second helical flighting section proximal to said processed material outlet and operable to retard the flow of material therepast, said first and second helical fighting sections being of opposite hand, said second helical fighting section being shorter than said first helical fighting section and having a pitch length smaller than the pitch length of said first helical fighting section, said first and second helical fighting sections being fully intermeshed along the lengths thereof, and at least a portion of said first helical flighting section having a hollow helical area along the length of said first helical fighting section portion, said helical area being open along at least a part of the length thereof, said helical area being in communication with said hollow internal region and said elongated shaft hollow core, said intermeshed, co-rotating helical screws and said pitch lengths D 1 being configured, upon rotation of said helical screws, to increase shear conditions within said barrel, to generate a temperature of at least about 90° C., and to create a pressure level within the barrel of from about 200-600 psi, during processing of said mixture.",
"9. The processing device of claim 8 said structure comprising a pair of rotary unions respectively and operably secured to a corresponding delivery tube.",
"10. The processing device of claim 8, said portion of said fighting section having a pair of opposed, spaced apart wall segments extending outwardly from said shaft with a hollow helical area between the opposed wall segments, said wall segments having a helical transition area between the opposed wall segments, said transition area being open throughout the length and width thereof to afford unobstructed communication between said screw section hollow internal region and said elongated shaft hollow core.",
"11. The processing device of claim 10, said transition area including an inner wall with a series of spaced apart apertures through said inner wall communicating said helical groove with said elongated shaft hollow core.",
"12. The processing device of claim 8, the thickness of said shaft being substantially equal to the thickness of said helical flighting section.",
"13. The processing device of claim 8 said first screw section being of unitary, cast construction.",
"14. The processing device of claim 8, each of said media delivery tubes extending substantially the full length of said fighting sections.",
"15. The processing device of claim 8, the flight depths of said first helical flighting section and said second helical flighting section being substantially equal.",
"16. The processing device of claim 8, said pitch lengths D 1 being from about 0.5-1.0."
],
"description_excerpt": "The present invention is broadly concerned with high thermal transfer, twin screw processing devices (e.g., extruders), which can be used in the production of comestible products having high meat contents. More particularly, the invention is concerned with such devices, as well as the twin screws therein, which provide very high thermal energy inputs without the need for direct injection of steam into the materials being processed. This is obtained by unique, hollow core, high thermal transfer screw designs which are equipped with steam injection apparatus for indirect heating of materials during processing thereof.\n\nMany pet foods are produced using extrusion technology, where in mixtures containing grains, starches, fats, and other ingredients are initially preconditioned to heat and partially cook the mixtures, followed by processing through a single or twin screw extruder. Preconditioning involves passage of the initially dry mixture into an elongated housing where it is mixed with injected steam and/or water, making the mixture better conditioned for downstream extrusion. During extrusion, it is common to inject still further quantities of steam and/or water into the mixture during passage through the extruder barrel. For many product recipes, this existing technology is satisfactory. However, in recent years, producers have sought to incorporate greater and greater quantities of fresh meat into the feed recipes. At relatively low levels of meat addition, the traditional extrusion processing technologies are suitable.",
"cpc": [
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"ipc": [
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"assignees": [
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"inventors": [
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"filing_date": "2019-06-19",
"publication_date": "2022-02-08",
"grant_date": "2022-02-08",
"priority_date": "2017-02-15",
"application_number": "US-201916446194-A",
"family_id": "63106026",
"cited_by_count": 6,
"citations": [
"US2733898A",
"US2027185A",
"US2321185A",
"US2458068A",
"US2753159A",
"US2722716A",
"US2883163A",
"US3020025A",
"US3255814A",
"US3386131A",
"US3191229A",
"US3143768A",
"US3259374A",
"US3285330A",
"US3386708A",
"US3426838A",
"US3486740A",
"US3500901A",
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"US6105490A",
"US20030021860A1",
"US20040234641A1",
"US20050220979A1",
"US20090213681A1",
"US8444828B2",
"US9045693B2",
"US9004152B2",
"US20140027095A1",
"US9321190B2",
"US20150131399A1",
"US20150181907A1",
"US20180229197A1",
"US10555547B2",
"US20190075822A1",
"US20200120970A1",
"US20210068424A1"
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}
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