Claims
- 1. A filling system for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts during said production cycle, comprising:
a container handling subsystem for carrying containers to and from a filling area, a container indexing assembly for indexing containers through said filling area; a product contact subsystem for metering said liquid product into containers in said filling area, said product contact subsystem further including,
at least one filling nozzle and corresponding metering device for metering liquid through said filling nozzle into containers; a cleaning subsystem including pressurized cleaning fluid feed system for circulating cleaning fluid through said at least one filling nozzle and corresponding metering device; and a controls/utilities subsystem for coordinating operation of the container indexing assembly with the product contact subsystem, said controls/utilities subsystem periodically initiating a cleaning cycle in which supply and metered dispensing of said liquid product is stopped and pressurized cleaning fluid is circulated through said at least one filling nozzle and corresponding metering device by said cleaning subsystem.
- 2. The filling system for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts according to claim 1, wherein said cleaning subsystem further comprises a fluid reservoir for containing cleaning fluid, a pump to circulate cleaning fluid out of said fluid reservoir, a cleaning fluid supply manifold connected on one side to said fluid reservoir via said pump and selectively connectable on the other side through said at least one filling nozzle and corresponding metering device, and a cleaning fluid collection manifold selectively connectable to said at least one filling nozzle for collecting cleaning fluid circulating there through.
- 3. The filling system for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of product contact parts according to claim 2, wherein said at least one filling nozzle and corresponding metering device are subjected to a “Clean-in-Place” process by manually connecting them to said cleaning fluid supply manifold.
- 4. The filling system for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts according to claim 2, wherein the used cleaning fluid is recirculated from said fluid collection manifold back to said fluid reservoir for recycling.
- 5. The filling system for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts according to claim 1, wherein said product contact subsystem articulates said filling nozzle under control of said controls/utilities subsystem by lowering said nozzle into the necks of containers and holding said nozzle stationery during filling.
- 6. The filling system for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts according to claim 5, wherein said product contact subsystem articulates said filling nozzle under control of said controls/utilities subsystem by lowering said nozzle into the necks of containers and raising said filling nozzle in accordance with the level of the liquid during the filling cycle.
- 7. A filling system for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts during said production cycle, comprising:
a container handling subsystem for carrying containers to 2 and from a filling area, a container indexing assembly for indexing containers through said filling area; a product contact subsystem for metering said liquid product into containers in said filling area, said product contact subsystem further including,
a first set of filling nozzles and corresponding metering devices for metering liquid through said filling nozzles into the containers, and a second set of filling nozzles and corresponding metering devices for metering liquid through said filling nozzles into the containers; a cleaning subsystem for circulating cleaning fluid through a selectable one of said first or second sets of filling nozzles and corresponding metering devices; and a controls/utilities subsystem for coordinating operation of the container indexing assembly with the product contact subsystem, said controls/utilities subsystem periodically initiating a cleaning cycle in which supply and metering of liquid through one set of filling nozzles and metering devices is stopped for cleaning by said cleaning subsystem and pressurized cleaning fluid is circulated there through, while in-process metering of liquid is continued through the other set of filling nozzles and metering devices.
- 8. The filling system for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts according to claim 7, wherein said cleaning subsystem includes a fluid reservoir for containing cleaning fluid, a pump for circulating cleaning fluid out of said fluid reservoir, a cleaning fluid supply manifold connected on one side to said fluid reservoir via said pump and connectable on the other side through one of said first and second sets of filling nozzles and metering devices, and a cleaning fluid collection manifold connected to said one of the first and second sets of filling nozzles and metering devices for collecting cleaning fluid circulating there through.
- 9. The filling system for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts according to claim 8, wherein said one of the first and second sets of filling nozzles and metering devices are subjected to a “Clean-in-Place” process by manually connecting said cleaning fluid supply manifold.
- 10. The filling system for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts according to claim 8, wherein used cleaning fluid is recirculated from said fluid collection manifold back to said fluid reservoir for recycling.
- 11. A method for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts during said production cycle, comprising the steps of:
providing a product contact subsystem for metering said liquid product into containers via at least one set of filling nozzles and corresponding metering devices; providing a cleaning subsystem for periodically circulating cleaning fluid through said at least one set of filling nozzles and metering devices; alternately initiating either one of a production cycle during which containers are conveyed to and from a filling area and are filled by said at least one set of filling nozzles and corresponding metering devices, or a cleaning cycle by which said at least one set of filling nozzles and corresponding metering devices are cleaned by said cleaning subsystem.
- 12. The method for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts according to claim 11, wherein the step of alternately initiating said cleaning cycle further comprises manually connecting said cleaning subsystem to said at least one set of filling nozzles and corresponding metering devices.
- 13. The method for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts according to claim 12, wherein the step of alternately initiating said cleaning cycle further comprises recycling used cleaning fluid.
- 14. The method for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts according to claim 10, wherein said step of providing a product contact subsystem further comprises providing two duplicate sets of filling nozzles and corresponding metering devices; and
said step of alternately initiating either one of a production cycle or a cleaning cycle further comprises initiating a changeover cycle for reconfiguring the filling system in which one duplicate set of filling nozzles and corresponding metering devices are removed from production and are replaced by the other cleaned set.
- 15. The method for automatically filling containers with liquid product in a production cycle and for clean-in-place (CIP) cleaning of the product contact parts according to claim 14, wherein said step of alternately initiating either one of a production cycle or a cleaning cycle further comprises initiating a cleaning cycle concurrent with said production cycle by which said removed set of filling nozzles and corresponding metering devices are cleaned by said cleaning subsystem.
- 16. A filling system for automatically filling containers with liquid product in a production cycle and for clean-out-of-place (COP) cleaning of product contact parts, comprising:
a container handling subsystem for carrying containers to and from a filling area, and a container indexing assembly for indexing containers into position in said filling area, said container handling subsystem and product contact subsystem being mounted stationery on a frame; a product contact subsystem for metering liquid product into containers in said filling area, said product contact subsystem further including at least one filling nozzle and corresponding metering device for metering liquid through said filling nozzle into the containers; and a COP trolley subsystem for movably supporting said at least one filling nozzle and corresponding metering device relative to said container handling and indexing assembly frame and for shuttling said at least one filling nozzle and metering device to a cleaning site for remote cleaning; and a controls/utilities subsystem for coordinating operation of the container indexing assembly with the product contact subsystem; whereby said controls/utilities subsystem may initiate a cleaning cycle in which said at least one filling nozzle and metering device are removed from the production cycle on the COP trolley subsystem and are shuttled to said remote cleaning site for cleaning.
- 17. The filling system for automatically filling containers with liquid product in a production cycle and for clean-out-of-place (COP) cleaning of product contact parts according to claim 16, wherein all product contact parts of said product contact subsystem are supported on said COP trolley subsystem.
- 18. The filling system for automatically filling containers with liquid product in a production cycle and for clean-out-of-place (COP) cleaning of product contact parts according to claim 16, wherein said COP trolley subsystem is self-propelled.
- 19. The filling system according to claim 16, wherein said COP trolley subsystem is removably connected to the container handling and indexing assembly frame via a docking and alignment mechanism.
- 20. The filling system according to claim 19, wherein said docking and alignment mechanism further comprises an alignment rod mounted vertically on the COP trolley subsystem, and an alignment channel mounted vertically on the container handling and indexing assembly frame for receiving said alignment rod and for urging it toward bottom center of the alignment channel.
- 21. The filling system according to claim 19, wherein said docking and alignment mechanism further comprises a clamping device for rapid coupling of the COP trolley subsystem to the container handling and indexing assembly frame.
- 22. The filling system according to claim 16, further comprising a remote cleaning subsystem at said remote cleaning site for circulating cleaning fluid through said product contact subsystem when said COP trolley subsystem is stationed at the remote cleaning site.
- 23. The filling system according to claim 22, wherein said remote cleaning subsystem further comprises a fluid reservoir, a pressure feed system to circulate cleaning fluid through the said product contact subsystem, a cleaning fluid supply manifold, and a cleaning fluid collection manifold.
- 24. The filling system according to claim 16, wherein said COP trolley subsystem is removably connected to the stationery frame via a docking and alignment mechanism capable of accommodating belt drive connections between a multi-station metering device drive assembly and said metering devices.
- 25. A filling system for automatically filling containers with liquid product in a production cycle and for clean-out-of-place (COP) cleaning of the product contact parts, comprising:
a container handling subsystem for carrying containers to and from a filling area, and a container indexing assembly for indexing containers into position in said filling area, said container handling subsystem and product contact subsystem being mounted stationery on a frame; a product contact subsystem for metering said liquid product into containers in said filling area, said product contact subsystem further including,
a first set of filling nozzles and corresponding metering devices for metering liquid through said filling nozzles into the containers, and a second set of filling nozzles and corresponding metering devices for metering liquid through said filling nozzles into the containers; and a COP trolley subsystem for shuttling a selectable one of said sets of filling nozzles and metering devices to the remote cleaning site for cleaning, and for shuttling the other set of filling nozzles and metering devices back to the filling area for use in said production cycle; and a controls/utilities subsystem for coordinating operation of the container indexing assembly with the product contact subsystem; whereby said controls/utilities subsystem may initiate a cleaning cycle in which a set of filling nozzles and metering devices are removed from the production cycle to the remote cleaning site via said COP trolley subsystem for cleaning while the other set of filling nozzles and metering devices are used in said production cycle.
- 26. The filling system according to claim 25, wherein said COP trolley subsystem further comprises two trolleys, one for shuttling a selectable one of said sets of filling nozzles and metering devices to the remote cleaning site for cleaning while the other shuttles the other set of filling nozzles and metering devices back to the filling area for use in said production cycle.
- 27. The filling system according to claim 26, wherein both of said COP trolleys are removably connected to the container handling and indexing assembly frame via docking and alignment mechanisms.
- 28. The filling system according to claim 27, wherein each of said docking and alignment mechanisms further comprises an alignment rod mounted vertically on the corresponding COP trolley subsystem, and an alignment channel mounted vertically on the container handling and indexing assembly frame for receiving said alignment rod and for urging it toward bottom center of the alignment channel.
- 29. The filling system according to claim 27, wherein each of said docking and alignment mechanisms further comprise a clamping device for rapid coupling of the corresponding COP trolley to the container handling and indexing assembly frame.
- 30. The filling system according to claim 26, further comprising a remote cleaning subsystem for circulating cleaning fluid through said product contact subsystem when a COP trolley is stationed at the remote cleaning site.
- 31. The filling system according to claim 30, wherein said remote cleaning subsystem further comprises a fluid reservoir, a pressure feed system to circulate cleaning fluid through the said product contact subsystem, a cleaning fluid supply manifold, and a cleaning fluid collection manifold.
- 32. A method for automatically filling containers with liquid product in a production cycle and for clean-out-of-place (COP) cleaning of product contact parts during said production cycle, comprising the steps of:
providing a product contact subsystem for metering said liquid product into containers via at least one filling nozzle and corresponding metering device; providing a remote cleaning subsystem including pressurized cleaning fluid feed system for circulating cleaning fluid through a reservoir; providing a COP trolley subsystem for shuttling said at least one filling nozzle and corresponding metering device to the remote cleaning subsystem for cleaning; alternately initiating either one of a production cycle during which containers are conveyed to and from a filling area and are filled by said at least one set of filling nozzles and corresponding metering devices, or a cleaning cycle by which said at least one set of filling nozzles and corresponding metering devices are shuttled by said COP trolley subsystem to said remote cleaning subsystem for cleaning out of place.
- 33. The method for automatically filling containers with liquid product in a production cycle and for clean-out-of-place (COP) cleaning of the product contact parts according to claim 32, wherein the step of alternately initiating said cleaning cycle further comprises manually connecting said remote cleaning subsystem to said at least one set of filling nozzles and corresponding metering devices.
- 34. The method for automatically filling containers with liquid product in a production cycle and for clean-out-of-place (COP) cleaning of the product contact parts according to claim 33, wherein the step of alternately initiating said cleaning cycle further comprises recycling used cleaning fluid.
- 35. A method for automatically filling containers with liquid product in a production cycle and for clean-out-of-place (COP) cleaning of product contact parts during said production cycle, comprising the steps of:
providing a product contact subsystem for metering said liquid product into containers via one of two duplicate sets of filling nozzles and corresponding metering devices; providing a remote cleaning subsystem including pressurized cleaning fluid feed system for circulating cleaning fluid through a reservoir; providing a COP trolley subsystem for shuttling a selectable one of said sets of filling nozzles and corresponding metering devices to the remote cleaning subsystem for cleaning, and for shuttling the other set of filling nozzles and corresponding metering devices back to the filling area for use in said production cycle; initiating a production cycle during which containers are conveyed to and from a filling area and are filled by one of said duplicate sets of filling nozzles and corresponding metering devices; and initiating a cleaning cycle during which the other of said duplicate sets of filling nozzles and corresponding metering devices are shuttled by said COP trolley subsystem to said remote cleaning subsystem for cleaning out of place.
- 36. The method for automatically filling containers with liquid product in a production cycle and for clean-out-of-place (COP) cleaning according to claim 35, further comprising the step of recycling used cleaning fluid.
- 37. The method for automatically filling containers with liquid product in a production cycle and for clean-out-of-place (COP) cleaning according to claim 36, wherein the step of providing said COP trolley subsystem further comprises providing two trolleys, and said step of initiating a cleaning cycle further comprises initiating a changeover cycle for reconfiguring the filling system in which one of said COP trolleys shuttles a selectable one of said sets of filling nozzles and corresponding metering devices to the remote cleaning subsystem for cleaning while the other COP trolley shuttles the other set of filling nozzles and corresponding metering devices back to the filling area for use in said production cycle.
- 38. A method for automatically filling containers, comprising the steps of:
feeding a single lane of empty containers into a filling system; dividing said single incoming lane of containers into two lanes; centering said containers beneath at least two filling nozzles each positioned over a respective lane; metering a single supply of liquid to a diverter valve for dividing and directing said liquid to said at least two filling nozzles; filling both lanes of containers with a predetermined amount of liquid; and combining the two lanes of containers back into a single lane; whereby the number of containers filled per minute is increased.
- 39. The method for automatically filling containers according to claim 38 wherein said step of filling both lanes of containers further comprises filling said containers in said two lanes in an alternating fashion.
- 40. The method for automatically filling containers according to claim 39 wherein the step of filling said containers in said two lanes in an alternating fashion further comprises filling a container in one lane while removing a filled corresponding container in the other lane, repetitively, until a production run has been completed.
- 41. The method for automatically filling containers according to claim 39 wherein said filling said containers in said two lanes in an alternating fashion further comprises the steps of filling at least one container located in one lane with a predetermined amount of liquid while simultaneously indexing at least one container in a second lane into position beneath at least one filling nozzle positioned in said second lane.
- 42. A method for automatically filling containers, comprising the steps of:
feeding a single lane of empty containers into a filling system; dividing said single incoming lane of containers into two filling areas; centering said containers beneath at least two filling nozzles each positioned over a respective filling area; metering a single supply of liquid to a diverter valve assembly for directing said liquid to one of said at least two filling nozzles; filling both areas of containers with a predetermined amount of liquid; and combining the two areas of containers and discharging them from the filling system in a single lane; whereby the number of containers filled per minute is increased.
- 43. The method for automatically filling containers according to claim 42 wherein containers in said two filling areas are filled in an alternating fashion.
- 44. The method for automatically filling containers according to claim 43 wherein said alternating fashion further comprises the steps of filling at least one container located in one area with said predetermined amount of liquid while simultaneously at least one container in a second area is indexed into position, centered beneath at least one filling nozzle positioned in said second area, and said at least one filling nozzle in said second area is moved into a position to begin filling said at least one container in said second area.
- 45. A method for automatically filling containers, comprising the steps of:
feeding two lanes of empty containers into a filling system; centering said containers beneath at least two filling nozzles each positioned over a respective lane; metering a single supply of liquid to a diverter valve assembly for directing said liquid to one of said at least two filling nozzles; filling both lanes of containers with a predetermined amount of liquid; and combining the two lanes of containers into a single lane; whereby the number of containers filled per minute is increased.
- 46. The method for automatically filling containers according to claim 45 wherein containers in said two lanes are filled in an alternating fashion.
- 47. The method for automatically filling containers according to claim 46 wherein said step of filling at least one container located in one area with said predetermined amount of liquid while simultaneously at least one container in a second area is indexed into position, centered beneath at least one filling nozzle positioned in said second area, and said at least one filling nozzle in said second area is moved into a position to begin filling said at least one container in said second area.
- 48. A method for semi-automatically filling containers, comprising the steps of:
placing empty containers into two filling areas of a filling system; centering said containers beneath at least two filling nozzles each positioned over a respective filling area; metering a single supply of liquid to a diverter valve assembly for directing said liquid to one of said at least two filling nozzles; and filling both areas of containers with a predetermined amount of liquid; whereby the number of containers filled per minute is increased.
- 49. The method for automatically filling containers according to claim 48 wherein containers in said two filling areas are filled in an alternating fashion.
- 50. The method for automatically filling containers according to claim 49 wherein said alternating fashion further comprises the steps of filling at least one container located in one area with said predetermined amount of liquid while simultaneously at least one container is placed in position in a second area, centered beneath at least one filling nozzle positioned in said second area, and said at least one filling nozzle in said second area is moved into a position to begin filling said at least one container in said second area.
- 51. A filling system for semi-automatically filling containers with liquid product, comprising:
a container handling subsystem in which an operator places said containers for filling, said container handling subsystem further comprising a dual-area container body/nozzle alignment assembly; at least two nozzle support subsystems for supporting at least two nozzles during the filling process; a product contact subsystem for metering said liquid product into said containers in said dual-area alignment assembly, said product contact subsystem further comprising at least two articulated filling nozzles, at least one metering device for metering liquid, and at least one diverter valve assembly for directing the metered liquid output from said at least one metering device to said at least two filling nozzles; and a controls/utilities subsystem for coordinating operation of said container handling subsystem and said at least two nozzle support subsystems with said product contact subsystem.
- 52. The filling system for semi-automatically filling containers according to claim 51, wherein said diverter valve assembly alternately directs liquids to one of two filling nozzles.
- 53. The method for automatically filling containers according to claim 51, wherein said step of centering said containers further comprises centering at least two moving containers in respective lanes beneath corresponding moving filling nozzles, and tracking said containers with said filling nozzles as required while metering liquid.
- 54. The method for automatically filling containers according to claim 53, wherein the step of centering at least two moving containers in respective lanes beneath corresponding moving filling nozzles further comprises articulating said filling nozzles a long both horizontal and vertical axes of motion.
- 55. A method for automatically filling containers, comprising the steps of:
feeding a single lane of empty containers into a filling system; dividing said single incoming lane of containers into two lanes; centering said containers beneath at least two filling nozzles each positioned over a respective lane; metering a single supply of liquid to a diverter valve for directing said liquid to one of said at least two filling nozzles; filling both lanes of containers with a predetermined amount of liquid; and combining the two lanes of containers back into a single lane; whereby the number of containers filled per minute is increased.
- 56. The method for automatically filling containers according to claim 55 wherein containers in said two lanes are filled in an alternating fashion.
- 57. A method for automatically filling containers, comprising the steps of:
feeding a single lane of empty containers into a filling system; dividing said single incoming lane of containers into two filling areas; centering said containers beneath at least two filling nozzles each positioned over a respective filling area; metering a single supply of liquid to a diverter valve for directing said liquid to one of said at least two filling nozzles; filling both areas of containers with a predetermined amount of liquid; and combining the two areas of containers and discharging them from the filling system in a single lane; whereby the number of containers filled per minute is increased.
- 58. The method for automatically filling containers according to claim 57 wherein containers in said two filling areas are filled in an alternating fashion.
- 59. A filling system for automatically filling containers with liquid product, comprising:
a container handling subsystem for carrying a plurality of containers to and from a filling area; a container indexing assembly for indexing containers through said filling area; a product contact subsystem for metering said liquid product into containers in said filling area, said product contact subsystem further including;
a plurality of filling nozzles; a nozzle support subsystem for supporting said nozzles during the filling process; at least one metering device for metering liquid; and a diverter valve assembly for directing the metered liquid output from the metering device into one of said filling nozzles; and a controls/utilities subsystem connected to the container handling subsystem and the container indexing assembly for coordinating operation with the product contact subsystem.
- 60. The filling system for automatically filling containers according to claim 59, wherein said container handling subsystem further comprises;
a lane dividing mechanism for directing a single lane of incoming containers into one of two lanes for passage through the filling area; a dual-lane conveyor assembly for transporting the containers through the filling area; and a lane combining assembly at the termination of the dual-lane conveyor assembly for combining the containers leaving the filling area in two lanes into a single lane before they exit the filling system.
- 61. The filling system for automatically filling containers according to claim 60, wherein said lane dividing mechanism is a pivoting gate assembly.
- 62. The filling system for automatically filling containers according to claim 60, wherein said lane combining assembly further comprises a set of angled guide rails.
- 63. The filling system for automatically filling containers according to claim 59, wherein said container handling subsystem further comprises a single-lane conveyor assembly for transporting the containers through the filling area.
- 64. The filling system for automatically filling containers according to claim 63, wherein said plurality of filling nozzles are arranged inline, and said diverter valve assembly directs the metered liquid output from the metering device into one of said filling nozzles in a first filling area, and alternately to another filling nozzle in a second filling area.
- 65. The filling system for automatically filling containers according to claim 59, wherein said nozzle support subsystem further comprises at least one nozzle/container alignment mechanism for centering neck openings of the containers relative to the nozzles as the nozzles enter the containers.
- 66. The filling system for automatically filling containers according to claim 65, wherein said at least one nozzle/container alignment mechanism further comprises a container locator wielding an inverted cone-shaped orifice below the tip of the nozzle for contacting and aligning the neck of the container.
- 67. The filling system for automatically filling containers according to claim 65, wherein said at least one nozzle/container alignment mechanism further comprises a container locator wielding a V-shaped profile for contacting and aligning the neck of the container.
- 68. The filling system for automatically filling containers according to claim 59, wherein said metering device is any one from among the group comprising a rotary gear pump, a rotary lobe pump, a peristaltic pump, a diaphragm pump, a double-ended piston pump, a flow meter, and a time/pressure filling head.
- 69. The filling system for automatically filling containers according to claim 59, wherein said diverter valve assembly alternately directs liquid to one of two filling nozzles.
- 70. The filling system for automatically filling containers according to claim 69, wherein said diverter valve assembly further comprises a general purpose, three-way solenoid valve.
- 71. The filling system for automatically filling containers according to claim 69, wherein said diverter valve assembly further comprises one of a Y- or T-shaped connector and general purpose, two-way solenoid valve integral to said filling nozzles.
- 72. The filling system for automatically filling containers according to claim 69, wherein said diverter valve assembly further comprises one of a Y- or T-shaped connector and a pinch clamp integral to said filling nozzles.
- 73. The filling system for automatically filling containers according to claim 59, wherein said nozzle support subsystem comprises at least one bottom up mechanism for maintaining a proper relative position between said plurality of filling nozzles and said plurality of empty containers in said container handling subsystem during a filling cycle.
- 74. The filling system for automatically filling containers according to claim 59, wherein said nozzle support subsystem comprises at least one locate fill mechanism for maintaining a proper relative position between said plurality of filling nozzles and said plurality of empty containers in said container handling subsystem during a filling cycle.
- 75. The filling system for automatically filling containers according to claim 59, wherein said nozzle support subsystem comprises at least one static nozzle bracket for maintaining a proper relative position between said plurality of filling nozzles and said plurality of empty containers in said container handling subsystem during a filling cycle.
- 76. The filling system for automatically filling containers according to claim 59, wherein said nozzle support subsystem comprises a walking beam assembly for maintaining a proper relative position between said plurality of filling nozzles and said plurality of empty containers in said two conveyor lanes during a filling cycle.
- 77. A filling system for automatically filling containers with liquid product, comprising:
a container handling subsystem for carrying a plurality of containers to and from a filling area; a container indexing assembly for indexing containers through said filling area; a product contact subsystem for metering said liquid product into containers in said filling area, said product contact subsystem further including;
a plurality of filling nozzles; a nozzle support subsystem for supporting said nozzles during the filling process, said nozzle support subsystem including a walking beam assembly for maintaining a proper relative position between said plurality of filling nozzles and said plurality of empty containers in said two conveyor lanes during a filling cycle, and at least one metering device for metering liquid; and a controls/utilities subsystem connected to the container handling subsystem and the container indexing assembly for coordinating operation with the product contact subsystem.
- 78. The system for automatically filling containers according to claim 77, wherein said walking beam assembly further comprises a walking beam, a horizontal motion drive mechanism for articulating said filling nozzles along a horizontal axis of motion, and a vertical motion drive mechanism for articulating said filling nozzles along a vertical axis of motion.
- 79. The system for automatically filling containers according to claim 78, wherein each of said horizontal motion drive mechanism and vertical motion drive mechanism further comprises a servo motor.
- 80. The system for automatically filling containers according to claim 79, wherein the horizontal motion servo motor provides encoder feedback data to the control subsystem for tracking the horizontal velocity and position of the nozzles along the walking beam to the containers carried beneath on the indexing mechanism.
- 81. The system for automatically filling containers according to claim 78, wherein horizontal motion generated by the horizontal motion servo motor is translated to the nozzles by linear bearings.
- 82. A method for automatically filling containers, comprising the steps of:
feeding empty containers into a filling system; centering empty containers beneath corresponding moving filling nozzles, metering a supply of liquid to said filling nozzles; tracking said containers with said filling nozzles while metering liquid; and filling said containers with a predetermined amount of liquid.
- 83. The method for automatically filling containers according to claim 82, wherein the step of centering said empty containers beneath corresponding moving filling nozzles further comprises articulating said filling nozzles along both horizontal and vertical axes of motion.
- 84. A method for automatically filling containers, comprising the steps of:
feeding empty containers into a filling system; dividing said incoming lane of containers into two lanes; centering at least two moving containers in respective lanes beneath corresponding moving filling nozzles, metering a supply of liquid to said at least two filling nozzles; tracking said containers with said filling nozzles as required while metering liquid; filling both lanes of containers with a predetermined amount of liquid; and combining the two lanes of containers back into a single lane; whereby the number of containers filled per minute is increased.
- 85. The method for automatically filling containers according to claim 84, wherein the step of centering at least two moving containers in respective lanes beneath corresponding moving filling nozzles further comprises articulating said filling nozzles along both horizontal and vertical axes of motion.
- 86. An apparatus for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices, comprising:
a metering device/multi-station drive subsystem for metering liquid product; a product collection receptacle/load cell subsystem for weighing liquid product dispensed by said metering device/multi-station drive subsystem; a nozzle support subsystem for moving nozzles of the metering device/multi-station drive subsystem between a normal operating position and a fill volume calibration position; a controls/utilities subsystem including a programmable logic control device electrically connected to each of said metering device/multi-station drive subsystem, product collection receptacle/load cell subsystem and nozzle support subsystem for controlling the operation of the automatic calibration and set-up system.
- 87. The apparatus for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 86, wherein said product collection receptacle/load cell subsystem further comprises a collection receptacle, a level sensor removably attached to said receptacle, and means for emptying said receptacle.
- 88. The apparatus for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 87, wherein said product collection receptacle/load cell subsystem further comprises a load cell to which said receptacle is removably attached.
- 89. The apparatus for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 87, wherein said emptying means further comprise a receptacle liner that is manually removed and replaced.
- 90. The apparatus for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 87, wherein said emptying means further comprise a drain port and drain line connected to a pump.
- 91. The apparatus for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 90, wherein said pump is a peristaltic pump.
- 92. The apparatus for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 87, wherein said emptying means further comprise a vacuum nozzle, a vacuum tank, a vacuum line running from said nozzle to said tank, and a pump to forcibly draw the contents of said receptacle into said tank.
- 93. The apparatus for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 92, wherein said pump is a vacuum pump.
- 94. The apparatus for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 92, wherein said pump is a peristaltic pump.
- 95. The apparatus for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 86, wherein said nozzle support subsystem is manually cycled between a normal operating position and a fill volume calibration position.
- 96. The apparatus for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 86, wherein said nozzle support subsystem is automatically cycled between a normal operating position and a fill volume calibration position.
- 97. A method for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices, comprising the steps of prime/air purging liquid product into a receptacle and emptying of the receptacle.
- 98. The method for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 97, wherein said step of emptying of the receptacle further comprises manual emptying of the receptacle.
- 99. The method for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 97, wherein said step of emptying of the receptacle further comprises gravity draining of the receptacle into a residual tank.
- 98. The method for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 97, wherein said step of emptying of the receptacle further comprises forced draining of the receptacle into a residual tank.
- 99. The method for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 97, further comprising the step of metering device calibration.
- 100. The method for automatic calibration and set-up, between production runs, of a liquid filling system's plurality of metering devices according to claim 97, further comprising the step of periodic fill weight verification.
- 101. A nozzle for filling liquid product into containers, comprising:
a product inlet connection for receiving liquid from a metering device; a nozzle tip assembly capable of being cycled between a plurality of operating positions to control the flow of said liquid through said nozzle; and a nozzle tip actuating mechanism for controlling the position of said nozzle tip assembly, said nozzle tip actuating mechanism further comprising a first air cylinder for operating said nozzle tip assembly between fully open and fully closed operating positions, a second air cylinder for selectively opposing said operation of said first air cylinder to provide at least one intermediate, partially open operating position, and an adjustment device for adjusting a point of opposition between said first and said second air cylinders to selectively adjust said partially open operating position.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application derives priority from, and is commonly assigned with, the following provisional applications:
[0002] Serial Number 60/245,300, filed Nov. 3, 2000, entitled “Clean-Out-of-Place (COP)” Liquid Filling System,
[0003] Serial Number 60/267,927, filed Feb. 12, 2001, entitled Liquid Filling System with Diverter Valve,
[0004] Serial Number 60/268,521, filed Feb. 14, 2001, entitled “Clean-In-Place (CIP)” Liquid Filling System,
[0005] Serial Number 60/316,528, filed Aug. 31, 2001, entitled Dual-Lane Walking Beam Liquid Filling System, and
[0006] Serial Number 60/316,536, filed Aug. 31, 2001, entitled System to Automate the Set-up, Calibration, and Fill Weight Verification Functions Performed on a Liquid Filling Machine.
Provisional Applications (5)
|
Number |
Date |
Country |
|
60245300 |
Nov 2000 |
US |
|
60267927 |
Feb 2001 |
US |
|
60268521 |
Feb 2001 |
US |
|
60316528 |
Aug 2001 |
US |
|
60316536 |
Aug 2001 |
US |