SEPARATOR FOR A GRINDING MACHINE
20230097461 ยท 2023-03-30
Inventors
Cpc classification
B02C18/302
PERFORMING OPERATIONS; TRANSPORTING
B02C23/10
PERFORMING OPERATIONS; TRANSPORTING
B02C18/30
PERFORMING OPERATIONS; TRANSPORTING
B02C23/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B02C18/30
PERFORMING OPERATIONS; TRANSPORTING
B02C23/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A grinding machine for grinding foodstuffs, such as meat or the like, includes an orifice plate at the outlet of a grinding head. The orifice plate has collection passages that discharge a mixture of soft material and hard material through the orifice plate. A separator assembly is positioned downstream of the orifice plate for separating the soft material from the hard material. The separator assembly includes a separator chamber that receives the mixture of soft material and hard material, in combination with a rotatable separator screw positioned within the separator chamber. Rotation of the separator screw functions to separate the soft material from the hard material. Soft material is discharged through perforations in the separator chamber and hard material is discharged through a discharge of the separator chamber.
Claims
1. A machine comprising: a grinder which receives meat and bone through an inlet, the grinder including a plurality of grinding openings for grinding the meat and bone into material which does not contain bone and discharging the material which does not contain bone therethrough, and one or more collection passages for discharging a mixture of meat and bone therethrough; an advancement member for advancing the meat and bone through the grinder; a separator downstream of the grinder, the separator receiving the mixture of meat and bone from the collection passages through an inlet opening, wherein the separator is coupled the grinder and the inlet opening of the separator does not cover the grinding openings of the grinder such that the material which does not contain bone is discharged to an exterior of the grinding machine, the separator including a plurality of openings for grinding the mixture of meat and bone received from the grinder into material which does not contain bone and discharging the material which does not contain bone from the separator therethrough, and an outlet passage for discharging material containing bone therethrough; and an advancement member for advancing the meat and bone through the separator.
2. The machine of claim 1, wherein each advancement member is rotatable.
3. The machine of claim 1, wherein the grinder includes a housing and a plate connected to the housing, the plate having the grinding openings and the one or more collection passages provided therethrough.
4. The grinding machine of claim 2, wherein the one or more collection passages are provided at a center of the plate.
5. The grinding machine of claim 2, further comprising a knife proximate to the plate and within the grinder.
6. The grinding machine of claim 1, further comprising a knife within the grinder.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] Various exemplary embodiments of the subject matter disclosed herein are illustrated in the accompanying drawings in which like reference numerals represent like parts throughout, and in which:
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DETAILED DESCRIPTION
[0023] The various features and advantageous details of the subject matter disclosed herein are explained more fully with reference to the non-limiting embodiments described in detail in the following description.
[0024] The present invention is directed to a separator assembly 10 that can be coupled to a discharge or outlet end of a grinding machine, such as grinding machine 12. As generally known in the art, grinding machine 12 has a hopper 14 and a grinding arrangement shown generally at 16. In a manner as is known, grinding arrangement 16 includes a housing or head 18 which includes a mounting ring 20 that secures and orifice plate 32 within an opening or discharge outlet in the downstream end of grinding head 18. With reference to
[0025] The knife holder 28 is located adjacent an inner grinding surface of orifice plate 32, which is secured in the open end of head 18 by mounting ring 20. The knife inserts bear against the inner grinding surface of orifice plate 32. In accordance with known construction, the end of head 18 is provided with a series of external threads 38, and mounting ring 20 includes a series of internal threads 40 adapted to engage the external threads 38 of head 18. Mounting ring 34 further includes an opening 42 defining an inner lip 44. While a threaded connection between mounting ring 34 and head 18 is shown, it is understood that mounting ring 34 and head 18 may be secured together in any other satisfactory manner.
[0026] A center pin 52 has its inner end located within a central bore 54 formed in the end of feed screw 26, and the outer end of center pin 52 extends through a central passage 56 formed in a central hub area of knife holder 28 and through the center of a bushing 58. In a manner to be explained, center pin 52 has a construction that is modified from that of a typical center pin, in order to accommodate the components of separator assembly 10. Bushing 58 supports center pin 52, and thereby the outer end of feed screw 26. In a manner to be explained, bushing 58 also functions to support certain components of the separator assembly 10 relative to orifice plate 32. The center pin 52 is non-rotatably secured to feed screw 26, such as by means of recessed keyways (not shown) on center pin 52 that correspond to keys (not shown) on the hub of knife holder 28, although it is understood that any other satisfactory engagement structure may be employed for ensuring that center pin 52 rotates with feed screw 26. Accordingly, rotation of feed screw 26 functions to rotate both center pin 52 and knife assembly 60, consisting of knife holder 28 and the knife inserts supported by the arms 30a-30f of knife holder 28. Bushing 58 and orifice plate 32 remain stationary, and rotatably support the end of center pin 52.
[0027] As understood in the art, the head 18 is generally tubular and thus includes an axial bore 68 in which feed screw 26 is rotatably mounted. Bore 68 is typically provided with flutes 70 for controlling the flow of material through head 18, i.e. for preventing material from simply rotating with feed screw and for providing a downstream flow path to prevent backpressure from pushing material back into hopper 14. Also as is known, the dimension of flutes 70 may vary along the flute length to produce different effects. Head 18 may have an increased diameter at its downstream end. Flutes 70 may be primarily located adjacent or along this increased diameter area. Flutes 70 may be dimensioned to move material more efficiently across the transition area between the main body of head 18 and the increased diameter area of head 18.
[0028] Referring to
[0029] In some instances, pieces of hard material, such as bone or gristle, which may be too large to pass through grinding openings 74, will be present along with the soft, useable material. These pieces, which are not cut by the action of the knife inserts against plate 32, are pushed toward inner section 76 of plate 32 by the rotating action of knife assembly 60, where the pieces of hard material can be removed from the primary ground material stream through collection passages 78. Collection passages 78 are large relative to grinding openings 74, and may be generally triangular, though it is understood that collection passages 78 may have any configuration as desired. Each of collection passages 78 may be provided with a ramped entryway 80 opening onto the surface of orifice plate 32. Ramped entryways 80 may be provided on both sides of plate 32, which may be double sided so as to extend the lifetime of use of plate 32.
[0030] Inevitably, the hard material that passes through collection passages 78 carries with it a certain amount of usable soft material. This mixture of soft and hard material passes through collection passages 78 of orifice plate 32 to the separator assembly 10, where it can be subjected to a secondary grinding and/or separation process to maximize ground material output. While it is advantageous to have separated as much usable soft material as possible from the hard material before it passes through the orifice plate 32, nevertheless, in most instances, good, usable soft material is carried with the hard material through the collection passages 78. In the past, conventional grinding machines have simply collected the hard material together with the soft material and treated them both as waste. The separator assembly 10 of the present invention, however, is designed to separate the usable soft material from the hard material that passes through the collection passages 78 of the orifice plate 32, deliver the soft material to an appropriate outlet, and pass the hard material to a discharge or collection arrangement.
[0031] Referring to
[0032] In the illustrated embodiment, the support 84 is in the form of a generally reverse C-shaped member including a pair of legs 86 that are connected together by an outer bridge section 88. The inner ends of legs 86 are adapted to be secured to the structure of grinding head 18, such as to the outwardly facing annular surface defined by mounting ring 20. Representatively, the inner ends of legs 86 may be secured to mounting ring 20 by welding, although it is understood that any other satisfactory arrangement may be employed. Support 84 provides an open configuration downstream of orifice plate 32, in that support 84 does not obstruct the discharge of material from the downstream surface of orifice plate 32. In addition, while support 84 is shown as a reverse C-shaped member, it is understood that support 84 may have any other satisfactory configuration.
[0033] At the center of bridge section 88, support 84 includes a support area shown generally at 90. Support area 90 functions to engage and support the outer end of separator chamber 64. In the illustrated embodiment, the support area 90 includes an annular lip 92 which defines a recess that faces orifice plate 32. The end of separator chamber 64 has a reduced diameter area 94 defining a shoulder that is received within the recess defined by the lip 92, which functions to securely engage and retain separator chamber 64 between support area 90 and orifice plate
[0034] 32. With this arrangement, separator chamber 64 is engaged to between orifice plate 32 and support area 90 in a manner that prevents axial movement of separator chamber 64.
[0035] The separator chamber 64 of separator assembly 10 is in the form of a generally elongated and tubular body that tapers or narrows from an intake end 96 at the downstream surface of orifice plate 32 to a discharge end 98 that interfaces with the support area 90 of support 84 as noted above. The separator passage 66 of separator chamber 64 is configured to allow the separator screw 62 to be passed through the separator chamber 64 and coupled to the feed screw 26, so that the separator screw 62 rotates with the feed screw 26. It is understood, however, that the separator screw 62 could be directly coupled to the feed screw 26 or coupled using a suitable coupler.
[0036] In the illustrated embodiment as best shown in
[0037] The intake end 96 of separator chamber 64 is formed with spiral flutes 83. Similarly, the discharge and 98 of separator chamber 64 is provided with spiral flutes 85. The spiral flutes 83 cooperate with separator screw 62 to provide positive engagement and downstream advancement of the material as it passes through inlet volume 82 at the upstream end of separator chamber 64. Likewise, the spiral flutes 85 at the downstream end of separator chamber passage 66 provide positive engagement and downstream advancement of the material as it is discharged from separator chamber 66.
[0038] The separator screw 62 includes helical pressure flights 87 that extend along its length. The diameter of the helical pressure flights 87 decreases from the intake end 96 to the discharge end 98. In this regard, the diameters of the pressure flights 87 decrease along the length of the separator screw 62 to match the taper of the passage 66 defined by the wall of the separator chamber 64, shown at 97. A series of discharge perforations or openings 99 are formed in the wall 97 of the separator chamber 64. The discharge openings 99 are formed in a perforation or hole zone of the separator chamber 64 located between the intake end 96 and the discharge end 98, and are designed to pass soft material from the passage 66 of the separator chamber 64 to the exterior of the separator chamber 64. The openings 99 are located between the spiral flutes 83 at the intake and 96 and the spiral flutes 85 at the discharge and 98 of separator chamber 64. The separator chamber wall 97 defines a smooth inner surface within the perforation or whole zone of the separator chamber 64.
[0039] The pressure flights 87 serve two primary functions. First, the flights 87 advance the mixture of soft and hard material from the collection cavity 88 toward the discharge end 98 through the passage 66 of the separator chamber 64. Second, the flights 87 force the mixture of soft and hard material against the inner surface of the wall 97 of the separator chamber 64. As the separator screw 62 is rotated, flow of the mixture of soft and hard material through the passage 66 is restricted by the tapered inner surface of the wall 97. This restriction functions to separate the soft material from the hard material, and the pressure within the passage 66 of the separator chamber 64 functions to force the separated soft material through the discharge openings 99 in the wall 97. Moreover, since the separator chamber 64 is tapered, a shearing force applied to the mixture of soft and hard material by rotation of separator screw 62 remains relatively constant as it travels along the length of the separator chamber passage 66. As a result, a continuous shearing force is applied to the hard material even as it is reduced in size as it is forced through passage 66.
[0040] At the discharge and of the separator chamber 64, the passage 66 defined by the separator chamber 64 communicates with an outlet passage 100 that extends through support area 90 of support 84. In the illustrated embodiment, the outlet passage 100 is in the form of a constant diameter passage that extends from the downstream end of support area 90 to the upstream end, with the downstream end having a diameter that corresponds to the diameter of separator chamber passage 66 at discharge and 98. It is understood, however, that outlet passage 100 may flare outwardly in an upstream-to-downstream direction so as to relieve pressure when the hard material is discharged from separator chamber passage 66, to effectively release the hard material so that it can be propelled through outlet passage 100 to a collection arrangement, which may be a receptacle or a discharge conduit in a manner as is known.
[0041] Referring to
[0042] Referring to
[0043] An adjustment arrangement 124 is engaged with the downstream end of separator screw 62 in order to enable adjustment in the axial position of separator screw 62 within passage 66 defined by separator chamber 64. In this manner, the clearance between separator screw pressure flights 87 and the inner surface of separator chamber wall 97 can be adjusted to accommodate different material characteristics. Adjustment arrangement 124 includes a threaded adjustment member 126, which may generally be in the form of a bolt having a head 128 and a shank 130 that is threaded throughout its length, in combination with a spacer or sleeve 132 and a locking member 134, which may be in the form of a lock nut that is engageable with the threads of adjustment member 126. As shown in
[0044] Locking member 134 is engaged with the threads of adjustment member shank 130 and is located toward head 128. Shank 130 of adjustment member 126 extends through sleeve 132 and is engaged with internal threads 118 at the downstream end of axial passage 114 in separator screw 62. In operation, the end of adjustment member shank 130 is engaged with the facing end of extension section 110 of centering pin 52, and the inner end of sleeve 132 is engaged with the downstream end of separator screw 62. Locking member 134 is rotatably advanced into engagement with the outer or downstream end of sleeve 132, which thus prevents rotation of adjustment member 126 and locks the axial position of separator screw 62. When it is desired to change the axial position of separator screw 62 so as to adjust the spacing between pressure fights 87 and the inner surface of separator chamber wall 97, locking member 134 is moved toward head 128 so as to enable adjustment member 126 to be rotated. The user then rotates adjustment member 126 using head 128, and engagement between separator screw threads 118 and the threads of shank 130 function to change the axial position of separator screw 62. Relative axial movement between separator screw 62 and drive pin 52 is accommodated by slots 120 in the inner end of separator screw 62. Once the desired axial position of separator screw 62 is attained, sleeve 132 is advanced inwardly so that its inner end is engaged with the end of separator screw 62, and locking member 134 is again advanced into engagement with the outer end of sleeve 132 so as to secure the axial position of separator screw 62.
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[0046] It should be understood that the invention is not limited in its application to the details of construction and arrangements of the components set forth herein. Variations and modifications of the foregoing are within the scope of the present invention. It also being understood that the invention disclosed and defined herein extends to all alternative combinations of two or more of the individual features mentioned or evident from the text and/or drawings. All of these different combinations constitute various alternative aspects of the present invention. The embodiments described herein explain the best modes known for practicing the invention and will enable others skilled in the art to utilize the invention.