Material compression and portioning
An apparatus includes channel assemblies in a rotatable section, a cutting assembly, a discharge assembly, and a cleanout assembly. The channel assembly holds a bulk instance of compressible material extending through upper and lower channels of a continuous channel. The cutting assembly moves in relation to the channel assembly to isolate the upper and lower channels, severing upper and lower material portions of the bulk instance. The discharge assembly directs gas into the lower channel of a channel assembly to discharge the lower material portion from the lower channel, based on radial alignment of a conduit assembly of the channel assembly with a conduit assembly of the discharge assembly. The cleanout assembly supplies a fluid through the conduit assembly of the channel assembly, based on radially alignment of the conduit assembly of the channel assembly with a conduit assembly of the cleanout assembly.
1 . An apparatus configured to provide a portioned instance of a compressible material, the apparatus comprising:
a rotatable section configured to rotate around a central longitudinal axis, the rotatable section including a plurality of channel assemblies, the plurality of channel assemblies are spaced apart around a circumference of the rotatable section, each channel assembly of the plurality of channel assemblies including
an upper assembly defining an upper channel and a lower assembly defining a lower channel, the upper assembly defining a top opening and the lower assembly defining a bottom opening, each channel assembly configured to hold a bulk instance of the compressible material extending continuously through both the upper channel and the lower channel; and
a cutting assembly configured to be fixed in place in relation to the rotatable section, the cutting assembly defining a window including at least a first cutting edge and a second cutting edge, the cutting assembly being between the upper assembly and the lower assembly of at least one channel assembly of the plurality of channel assemblies based on rotation of the rotatable section to at least partially align the at least one channel assembly with the window, wherein
the plurality of channel assemblies includes a radially-aligned set of channel assemblies that are aligned on a same radial line extending radially from the central longitudinal axis, the radially-aligned set of channel assemblies configured to be rotated around the central longitudinal axis at a same angular rate based on rotation of the rotatable section around the central longitudinal axis, and
the first cutting edge and the second cutting edge are each configured to progressively extend in opposite radial directions between a first angular position and a second angular position, such that the first cutting edge moves transversely in a first radial direction through a first gap space of a first channel assembly within the radially-aligned set of channel assemblies and the second cutting edge moves transversely in a second radial direction through a second gap space of a second channel assembly within the radially-aligned set of channel assemblies, the first radial direction and the second radial direction being the opposite radial directions, based on the rotatable section rotating the radially-aligned set of channel assemblies around the central longitudinal axis between the first angular position and the second angular position.
2 . The apparatus of claim 1 , wherein the first cutting edge extends in a first arc and the second cutting edge extends in a second arc opposite the first cutting edge.
3 . The apparatus of claim 1 , wherein
the first cutting edge is configured to move transversely through the first gap space of the first channel assembly of the radially-aligned set of channel assemblies, the second cutting edge is configured to move transversely through the second gap space of the second channel assembly of the radially-aligned set of channel assemblies at a same rate as the first cutting edge based on the rotatable section rotating the radially-aligned set of channel assemblies around the central longitudinal axis between the first angular position and the second angular position.
4 . The apparatus of claim 1 , wherein
an angular displacement between the first cutting edge and the second cutting edge is 108 degrees.
5 . The apparatus of claim 1 , further comprising:
a first enclosure structure and a second enclosure structure each fixed in place on opposite sides of the rotatable section, the first enclosure structure and the second enclosure structure each defining separate, respective enclosures, the first enclosure structure and the second enclosure structure configured to be open to separate, respective portions of the plurality of channel assemblies that are at least partially vertically aligned with the first enclosure structure and the second enclosure structure,
wherein the apparatus is configured to rotate the rotatable section to cause the at least one channel assembly to be sequentially vertically aligned with at least one enclosure of each enclosure structure of the first enclosure structure and the second enclosure structure, such that gas is supplied through a top opening of the at least one channel assembly via the at least one enclosure of each enclosure structure.
6 . The apparatus of claim 5 , wherein:
a lower portion of the bulk instance of the compressible material in the at least one channel assembly is configured to be severed from an upper portion of the bulk instance of the compressible material in the at least one channel assembly by one or more of the first cutting edge and the second cutting edge to produce the portioned instance;
the cutting assembly isolates the lower channel of the at least one channel assembly from the upper channel of the at least one channel assembly;
the cutting assembly is configured to isolate the lower channel of the at least one channel assembly from the upper channel of the at least one channel assembly based on the rotatable section rotating the at least one channel assembly to be at least partially vertically aligned with the first enclosure structure, such that the apparatus is configured to push compressible material into a bottom of the upper channel that is isolated from the lower channel of the at least one channel assembly based on supplying gas through the top opening of the at least one channel assembly via at least one enclosure of the first enclosure structure; and
the cutting assembly is configured to expose the lower channel of the at least one channel assembly to the upper channel of the at least one channel assembly based on the rotatable section rotating the at least one channel assembly to be at least partially vertically aligned with the second enclosure structure, such that the apparatus is configured to push the compressible material into a bottom of the lower channel that is exposed to the upper channel of the at least one channel assembly based on supplying gas through the top opening of the at least one channel assembly via at least one enclosure of the second enclosure structure.
7 . An apparatus configured to provide a portioned instance of a compressible material, the apparatus comprising:
a rotatable section configured to rotate around a central longitudinal axis, the rotatable section including a plurality of channel assemblies, the plurality of channel assemblies are spaced apart around a circumference of the rotatable section, each channel assembly of the plurality of channel assemblies including
an upper assembly defining an upper channel and a lower assembly defining a lower channel, the upper assembly defining a top opening and the lower assembly defining a bottom opening, each channel assembly configured to hold a bulk instance of the compressible material extending continuously through both the upper channel and the lower channel; and
a cutting assembly configured to be fixed in place in relation to the rotatable section, the cutting assembly defining a window including at least a first cutting edge and a second cutting edge, the cutting assembly between the upper assembly and the lower assembly of at least one channel assembly of the plurality of channel assemblies based on rotation of the rotatable section to at least partially align the at least one channel assembly with the window;
a first enclosure structure and a second enclosure structure each fixed in place on opposite sides of the rotatable section, the first enclosure structure and the second enclosure structure each defining separate, respective enclosures, the first enclosure structure and the second enclosure structure configured to be open to separate, respective portions of the plurality of channel assemblies that are at least partially vertically aligned with the first enclosure structure and the second enclosure structure, wherein
the apparatus is configured to rotate the rotatable section to cause the at least one channel assembly to be sequentially vertically aligned with at least one enclosure of each enclosure structure of the first enclosure structure and the second enclosure structure, such that gas is supplied through a top opening of the at least one channel assembly via the at least one enclosure of each enclosure structure,
the apparatus is configured to supply a first gas to an enclosure of the separate, respective enclosures of the first enclosure structure to pressurize the enclosure of the first enclosure structure to a first pressure,
the apparatus is further configured to supply a second gas to an enclosure of the separate, respective enclosures of the second enclosure structure to pressurize the enclosure of the second enclosure structure to a second pressure, and
the second pressure is greater than the first pressure.
8 . An apparatus configured to provide a portioned instance of a compressible material, the apparatus comprising:
a rotatable section configured to rotate around a central longitudinal axis, the rotatable section including a plurality of channel assemblies, the plurality of channel assemblies are spaced apart around a circumference of the rotatable section, each channel assembly of the plurality of channel assemblies including
an upper assembly defining an upper channel and a lower assembly defining a lower channel, the upper assembly defining a top opening and the lower assembly defining a bottom opening, each channel assembly configured to hold a bulk instance of the compressible material extending continuously through both the upper channel and the lower channel; and
a cutting assembly configured to be fixed in place in relation to the rotatable section, the cutting assembly defining a window including at least a first cutting edge and a second cutting edge, the cutting assembly between the upper assembly and the lower assembly of at least one channel assembly of the plurality of channel assemblies based on rotation of the rotatable section to at least partially align the at least one channel assembly with the window;
a discharge assembly fixed in relation to the rotatable section, the discharge assembly configured to supply a gas into the lower channel of the at least one channel assembly via a conduit assembly of the at least one channel assembly to discharge the portioned instance of the compressible material through the bottom opening of the at least one channel assembly, based on rotation of the rotatable section to at least partially radially align the conduit assembly of the at least one channel assembly with a conduit assembly of the discharge assembly; and
a cleanout assembly fixed in relation to the rotatable section, the cleanout assembly configured to supply at least one fluid through the conduit assembly of the at least one channel assembly via a conduit assembly of the cleanout assembly, based on rotation of the rotatable section to
radially mis-align the conduit assembly of the at least one channel assembly with the conduit assembly of the discharge assembly, and
at least partially radially align the conduit assembly of the at least one channel assembly with the conduit assembly of the cleanout assembly.
9 . The apparatus of claim 8 , wherein
the cleanout assembly includes
a first conduit assembly configured to supply a first fluid through the conduit assembly of at the at least one channel assembly of the plurality of channel assemblies, based on the rotatable section rotating to at least partially radially align the conduit assembly of the at least one channel assembly with the first conduit assembly, and
a second conduit assembly configured to supply a second fluid through the conduit assembly of the at least one channel assembly, based on the rotatable section rotating to radially mis-align the conduit assembly of the at least one channel assembly with the first conduit assembly and to at least partially radially align the conduit assembly of the at least one channel assembly with the second conduit assembly, and
the first fluid and the second fluid are different fluids.
10 . The apparatus of claim 9 , wherein the first fluid is a liquid and the second fluid is a particular gas.
11 . The apparatus of claim 8 , wherein the conduit assembly of the at least one channel assembly includes
an annular conduit assembly defining an annular conduit surrounding the lower channel of the at least one channel assembly, the conduit assembly of the at least one channel assembly configured to direct the gas from the discharge assembly into the annular conduit, and
one or more bridging conduit assemblies defining one or more bridging conduits extending between the annular conduit assembly and a top end of the lower channel of the at least one channel assembly, the one or more bridging conduit assemblies configured to direct the gas from the annular conduit to the top end of the lower channel of the at least one channel assembly.
12 . The apparatus of claim 11 , wherein
the one or more bridging conduit assemblies includes a plurality of bridging conduit assemblies between the annular conduit assembly and the top end of the lower channel of the at least one channel assembly, and
the plurality of bridging conduit assemblies are spaced apart equidistantly around a circumference of the lower assembly of the at least one channel assembly.
13 . The apparatus of claim 11 , wherein
the at least one channel assembly includes a cleanout port extending from the annular conduit assembly of the lower assembly of the at least one channel assembly to an exterior of the rotatable section,
the apparatus further includes an outlet conduit that is configured to expose only the bottom opening of the at least one channel assembly, such that the cleanout port of the at least one channel assembly remains isolated from an exterior of the apparatus, based on the rotatable section rotating to at least partially align the conduit assembly of the at least one channel assembly with the conduit assembly of the discharge assembly, and
the apparatus further includes a cleanout conduit that is configured to expose both the bottom opening and the cleanout port of the at least one channel assembly based on the rotatable section rotating to at least partially align the conduit assembly of the at least one channel assembly with the cleanout assembly.
14 . The apparatus of claim 8 , wherein the cleanout assembly is configured to supply the at least one fluid to a plurality of lower assemblies simultaneously, based on simultaneous radial alignment of at least one conduit assembly of the plurality of lower assemblies with the conduit assembly of the cleanout assembly.
15 . The apparatus of claim 8 , further comprising:
an air knife assembly that is fixed in relation to the rotatable section and oriented towards the rotatable section, the air knife assembly configured to emit a stream of air in a field of view; and
a cleanout conduit that is radially aligned with the air knife assembly and is between the air knife assembly and the central longitudinal axis of the rotatable section, such that
the air knife assembly is configured to emit a stream of air radially towards the cleanout conduit to entrain and remove residue from a portion of the rotatable section that is between the air knife assembly and the cleanout conduit in the field of view of the air knife assembly, and
the cleanout conduit is configured to further direct the residue entrained in the stream of air out of the apparatus.
16 . The apparatus of claim 8 , wherein
the discharge assembly is configured to supply the gas into the lower channel to discharge the portioned instance through the bottom opening based on directing the gas through the conduit assembly of the at least one channel assembly to impinge on a lower face of the cutting assembly in the lower channel.
17 . The apparatus of claim 1 , wherein each first gap space and the second gap space are each defined between the upper assembly and the lower assembly and spaced apart from each other in a radial direction.
18 . The apparatus of claim 1 , wherein
each channel assembly includes a sheath and a spring assembly between the upper assembly and the lower assembly, and
the spring assembly configured to bias the sheath towards the lower assembly in a first biased direction.
19 . The apparatus of claim 18 , wherein
the first gap space and the second gap space are defined by the sheath and the lower assembly.
20 . The apparatus of claim 19 , wherein the cutting assembly is configured to bias the sheath in a second biased direction opposite the first biased direction such that the sheath is at least partially separated from the upper assembly to form the first gap space and the second gap space.