Container-filling assembly
11180356 · 2021-11-23
Assignee
Inventors
Cpc classification
B67C3/28
PERFORMING OPERATIONS; TRANSPORTING
B67C3/24
PERFORMING OPERATIONS; TRANSPORTING
B67C3/007
PERFORMING OPERATIONS; TRANSPORTING
B67B3/26
PERFORMING OPERATIONS; TRANSPORTING
B67C3/02
PERFORMING OPERATIONS; TRANSPORTING
B29C49/78
PERFORMING OPERATIONS; TRANSPORTING
International classification
B67C3/00
PERFORMING OPERATIONS; TRANSPORTING
B67C3/02
PERFORMING OPERATIONS; TRANSPORTING
B67C3/24
PERFORMING OPERATIONS; TRANSPORTING
B67B3/26
PERFORMING OPERATIONS; TRANSPORTING
Abstract
In a filling machine, a circulation line connects a filling element to a filling tank at a location for drawing beverage from the filling tank and at a location for adding beverage to the filling tank. A controller connects to a measuring system that itself connects to either or both the filling tank and the circulation line. Based in part on measurements from the measuring system, the controller controls addition of beverage components at a dosage section along the circulation line.
Claims
1. An apparatus comprising a container-filling assembly, said container-filling assembly comprising a container-filling machine that comprises filling elements, a filling tank, a circulation line, a controller, and a measuring system, wherein said filling tank feeds beverage to said filling elements, wherein said circulation line connects to said filling tank at a location for drawing beverage from said filling tank and at a location for adding beverage to said filling tank, wherein beverage-component supplies lead into a dosage section of said circulation line, wherein said controller connects to said measuring system, wherein said measuring system is connected to at least one of said filling tank and said circulation line, wherein said controller controls addition of beverage components from said beverage-component supplies into said circulation line at said dosage section at least in part based on a measurement signal received from said measuring system, and wherein said beverage-component supplies comprise a water supply and a syrup supply.
2. The apparatus of claim 1, wherein said beverage-component supply further comprises a carbon-dioxide supply that leads into said circulation line and wherein said controller controls addition of carbon dioxide into said circulation at least in part based on said measurement signal.
3. The apparatus of claim 2, further comprising a pressure-regulating pump arranged in said circulation line downstream of said carbon-dioxide supply.
4. The apparatus of claim 1, wherein said container-filling assembly lacks a buffer tank between said beverage-component supplies and said filling tank.
5. The apparatus of claim 1, wherein said measuring system comprises a first sensor system connected to said circulation line upstream of said dosage section.
6. The apparatus of claim 5, wherein said measuring system comprises a second sensor system connected downstream of said dosage section.
7. The apparatus of claim 5, further comprising a measuring circuit that branches off said circulation line, wherein said first sensor system is arranged in said measuring circuit, wherein said measuring circuit includes first and second measuring sensor systems and a measuring-circuit pump that causes a constant volumetric-flow rate within said measuring circuit, said constant volumetric-flow rate being independent of a volumetric flow rate in said circulation line, wherein said measuring circuit continuously monitors composition of said beverage.
8. The apparatus of claim 1, wherein said measuring system comprises a sensor system arranged in said filling tank.
9. The apparatus of claim 1, further comprising an output-level pump arranged in said circulation line, wherein said output-level pump delivers beverage from an inlet to an outlet of said circulation line, both of which lead into the filling tank, wherein, during operation, said output-level pump regulates delivery rate of said beverage.
10. The apparatus of claim 9, wherein said controller is configured to control said output-level pump at least in part based on said measurement signal, which is used by said controller for controlling addition of said beverage components from said beverage-component supplies into said circulation line at said dosage section.
11. The apparatus of claim 1, wherein at least one of said beverage-component supplies comprises a regulator, wherein said regulator comprises a regulated pump and a regulating valve, and wherein the regulator is controlled based at least in part on said measurement signal, which is used by said controller for controlling addition of said beverage components from said beverage-component supplies into said circulation line at said dosage section.
12. The apparatus of claim 1, wherein said controller controls flow from said filling tank to said filling elements based at least in part on said measurement signal from said measuring system.
13. The apparatus of claim 1, wherein said container-filling machine is a rotary filling-machine and wherein said filing tank defines an annular space around an axis of said rotary filling-machine.
14. A method comprising filling containers in a container-filling assembly, said method comprising causing beverage components to be supplied into a circulation line according to a given mixing ratio until a given fill level of a filling tank is achieved, wherein supplying said beverage components comprises supplying beverage from said filling tank to a sensor system via a circulation line, based at least in part on a signal from said sensor system, continuously comparing a composition of said beverage with a reference composition, upon detecting a deviation from said reference composition, causing at least one of said beverage-component supplies to add a beverage component to said circulation line to reduce said deviation, and causing containers to be filled when a level of beverage in said filling tank has reached a desired value and a composition of said beverage is within a desired threshold of said reference composition.
15. The method of claim 14, further comprising filling said containers without using a mixer with a buffer tank between said beverage-component supplies and the filling tank.
16. The method of claim 14, further comprising using said filling tank for mixing said beverage components, thereby avoiding the need for a separate mixer with a separate buffer tank between said beverage-component supplies and the filling tank.
17. The method of claim 14, further comprising using an output-level pump arranged in said circulation line to circulate beverage through said circulation line, wherein said output-level pump delivers beverage from an inlet to an outlet of said circulation line, both of which lead into the filling tank, wherein, during operation, said output-level pump regulates delivery rate of said beverage.
18. The apparatus of claim 1, wherein said measuring system continuously provides information indicative of a composition of said beverage.
19. The apparatus of claim 2, wherein said carbon-dioxide supply comprises a carbon-dioxide source and a pressure-regulating valve that regulates flow of carbon dioxide into said circulation line and wherein said carbon-dioxide supply connects to said circulation line downstream of an output-level pump.
20. The method of claim 14, further comprising diluting said beverage in said filling tank with residual water that has been left in said filling tank as a result of condensation or a previous purging operation and adding a beverage component to compensate for said dilution of said beverage.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) The invention is described in connection with
DETAILED DESCRIPTION
(2)
(3) The filling tank 14 defines an annular space that surrounds the filling machine 12. A filling-machine controller 18 and a fill-level sensor 20 in the filling tank 14 cooperate to control the operation of the filling machine 12.
(4) A bypass valve 17 connects the filling tank 14 or the filling element 16 to a circulation line 22 that is usually guided out of the filling machine 12. An output-level pump 24 arranged in the circulation line 22 delivers beverage from an inlet 26 to an outlet 28 of the circulation line 22, both of which lead into the filling tank 14. During operation, the output-level pump 24 regulates delivery rate.
(5) Downstream of the inlet 22, a measuring circuit 23 branches off the circulation line 22. The measuring circuit 23 includes a first measuring-sensor system 32, a second measuring sensor system 36, and a measuring-circuit pump 25. The measuring-circuit pump 25 causes a constant volumetric-flow rate within the measuring circuit 23. The second measuring-sensor system 36 is arranged at the end of the circulation line 22 before its outlet 28.
(6) Some embodiments feature a third measuring sensor system arranged in the circulation line 22 immediately upstream of the beverage supply, i.e. immediately upstream of the dosage section, in order to determine the beverage composition before the supply of beverage components.
(7) As an alternative, or as an addition to the first measuring sensor system 32, some embodiments feature an optional fourth measuring sensor system that is connected to the filling tank 14 to determine the beverage composition in the filling tank.
(8) Signal lines connect the first, second, third, and fourth measuring sensor systems to the filling-machine controller 18. In some embodiments, the filling-machine controller 18 includes a separate evaluation device for the evaluation of the first, second, third, and fourth measuring sensor systems. Other embodiments feature a further separate controller in addition to the filling-machine controller 18 for controlling beverage composition.
(9) The circulation line 22 includes a dosage section, which is where it receives beverage components from various supplies of beverage components. In the illustrated example, the dosage section is where a water supply 39 introduces water, a syrup supply 41 introduces syrup, and a carbon-dioxide supply 43 introduces carbon dioxide. In the illustrated embodiment, the dosage section has the water supply 39, the syrup supply 41, and the carbon-dioxide supply 43 in a particular order. However, that order can be varied in different embodiments. In addition, not all these components are needed all the time. For example, a beverage that is not carbonated would have no need of the carbon-dioxide supply 43.
(10) The water supply 39 includes a water vessel 38 and a water-supply pump 44 arranged in the circulation line 22 that pumps water from the water vessel 38 into the circulation line 22. In some embodiments, the water-supply pump 44 is a centrifugal pump. The water supply 39 connects to the circulation line 22 at a point that makes it the first supplier of material downstream of the measuring circuit 23 in the direction of flow.
(11) The syrup supply 41 comprises a syrup container 40, a syrup supply pump 48, and a syrup regulating valve 50 that connects to the circulation line 22 and regulates flow of syrup into the circulation line 22. In some examples, the syrup supply 41 enters the circulation line 22 downstream of the water supply 39.
(12) The carbon dioxide supply 43 includes a carbon-dioxide source 42 and a pressure-regulating valve 52 that regulates flow of carbon dioxide into the circulation line 22. The carbon dioxide supply connects to the circulation line 22 between the output-level pump 24 and a pressure regulating pump 54, with the pressure regulating pump 54 preferably also being controlled by the filling-machine controller 18.
(13) The circulation line 22 also comprises an output regulating-valve 55 that preferably is also controlled by the filling-machine controller 18.
(14) The filling-machine controller 18 controls all control and regulating devices, such as metering pumps, regulating valves, feed pumps, and pressure regulating valves are controlled by the filling-machine controller 18 as a function of the output signals of the measuring sensor systems and if applicable, the output signals of the fill level sensor 20.
(15) Some embodiments omit one or more of the four measuring sensor systems and the fill level sensor 20. One preferred embodiment omits all but the second measuring sensor system 36 downstream of the dosage section.
(16) The manner order in which the beverage components, the water supply 39, the syrup supply 41, and carbon-dioxide supply 43 into the circulation line 22, enter the circulation line 22 can be changed as well. It is also possible to arrange a valve and pump set, a valve set, or a pump set in one or more of the water supply 39, the syrup supply 41, and the carbon-dioxide supply 43. As used herein, a “set” can have more than one element. Thus, the pump set can have plural pumps, the valve set can have plural valves, and the valve and pump set can have plural pumps and valves.
(17) The carbon-dioxide supply 4 is only necessary for carbonated beverages. The circulation line 22 with the associated beverage component supplies, the pumps, and the valves defines integrated mixing device of the container-filling assembly that dispenses with the need to have a buffer tank.
(18) Operation begins with switching on the feed pump and adding the various beverage components to the circulation line 22 according to a given mixing ratio. This causes the fill level in the filling tank 14 to gradually rise.
(19) During operation, the inlet 26 continuously draws beverage from the filling tank 14 and the outlet 29 continuously returns beverage to the filling tank 14. As a result, the composition of the beverage upstream of where the beverage components enter the circulation line 22 changes continuously. The third measuring sensor system continuously measures this composition.
(20) Similarly, the composition of beverage downstream of where beverage components enter the circulation line 22 also changes continuously. The second measuring sensor system 36 continuously measures this composition. As a result, it is possible to obtain both up-to-date information obtained about the composition of the beverage composition in the filling tank 14 and also information about the change in beverage composition as a result of having added beverage components.
(21) The first measuring sensor system 32 in the measuring circuit 23 indicates the composition of the beverage components in the filling tank 14. Alternatively, the optional fourth measuring sensor system in the filling tank 14 determines this composition. This makes it possible to set the composition of the beverage to a desired mixing ratio and a desired carbon dioxide content from the beginning while the current conditions inside the filling tank are continuously taken into consideration by circulating the beverage out of the filling tank 14. As a result, it is possible to achieve the desired beverage composition from the beginning of the filling operation and without the use of a separate mixer with a buffer tank.
(22) A container-filling assembly described above is easy to clean and contains fewer components than previously known systems. This makes it efficient and more cost-effective. Furthermore it is possible more quickly to realize a desired composition of the beverage and to verify changes in the composition of the beverage by individually controlling the water supply 39, the syrup supply 41 and the carbon-dioxide supply 43.
(23) The invention is not confined to the depicted embodiment but is capable of any variation within the protective scope of the following claims.