Apparatus and method for forming plastic preforms into plastic containers with adjustable throttle
20230134386 · 2023-05-04
Inventors
- Benedikt HENGL (Essing, DE)
- Andreas Brunner (Aufhausen, DE)
- Dieter Finger (Neutraubling, DE)
- Markus Kulzer (Zell, DE)
- Dominik Meier (Parsberg, DE)
- Thomas Kitzinger (Regensburg, DE)
- Konrad Senn (Alteglofsheim, DE)
- Daniel VOGLER (Neutraubling, DE)
- Thomas Hoellriegl (Teublitz, DE)
- Klaus Voth (Obertraubling, DE)
- Christian Betz (Geigant, DE)
Cpc classification
B29C49/4289
PERFORMING OPERATIONS; TRANSPORTING
Y02P70/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B29C2049/7831
PERFORMING OPERATIONS; TRANSPORTING
B29C2049/7833
PERFORMING OPERATIONS; TRANSPORTING
B29C49/4284
PERFORMING OPERATIONS; TRANSPORTING
B29C49/42855
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Apparatus for forming plastic preforms into plastic containers, having a forming device which has a plurality of forming stations each having a stretching bar for stretching the plastic pre-form and an application device act upon the plastic container with a flowable medium. The forming device has at least four pressure reservoirs for the flowable medium, which each have predetermined pressures, and a valve block with at least five process valves. The application device is configured for producing a fluid connection between the valve block and a mouth region of the plastic preform in order to act upon the plastic preforms with the pressurised flowable medium, and the process valves are configured to act upon the plastic pre-forms with different pressures, wherein at least one process valve is configured for producing a connection between the plastic preform and an environment.
Claims
1. An apparatus for forming plastic preforms into plastic containers, having a forming device which has a plurality of forming stations which each have a blow mould within which the plastic preforms can be formed into the plastic containers, wherein the forming stations each have a stretching rod configured for stretching the plastic preform in its longitudinal direction and an application device configured for applying the plastic container with a flowable medium, wherein the forming device has at least four pressure reservoirs for the flowable medium, which each have predetermined pressures P1, Pi, P+, P2, wherein a pressure Pi is smaller than a pressure P+ and the pressure P+is smaller than a pressure P2, and a valve block with at least five process valves V1, Vi, V+, V2, V.sub.Ex, wherein the application device is suitable and intended to establish a fluid connection between the valve block and a mouth region of the plastic preform, to act upon the plastic preform with the pressurized flowable medium and the process valves are configured to act upon the plastic preform with different pressures, wherein at least one process valve is configured to establish a connection between the plastic container and an environment, wherein at least one throttle is arranged between the pressure reservoir P1 and the process valve V1, the flow rate of which throttle is determined by an adjustable throttle cross-section, wherein the throttle cross-section being adjustable in such a way that it is larger than 28 mm.sup.2.
2. The apparatus according to claim 1, wherein the pressure P1 is variably adjustable and is less than 8 bar and greater than 3 bar and/or the pressure P2 is variably adjustable and is greater than 16 bar.
3. The apparatus according to claim 1, wherein the pressure reservoirs and the valve block are connected via lines whose smallest cross-sections are greater than or equal to 110 mm.sup.2.
4. The apparatus according to claim 1, wherein the application device is movably mounted in the valve block.
5. The apparatus according to claim 1, wherein each forming station comprises at least one sensor configured for determining a pressure between a process valve and the plastic preform.
6. The apparatus according to claim 1, wherein the apparatus has exactly five process valves (V1, Vi, V+, V2, V.sub.Ex).
7. The apparatus according to claim 1, wherein a smallest flow cross-section of the opened process valves Vi and V+ and/or V2 and/or V.sub.Ex and/or between the process valve and the application device is greater than or equal to 150 mm.sup.2 .
8. The apparatus according to claim 1, characterised in that a stroke movement of the application device is greater than 15 mm and less than 60 mm.
9. The apparatus according to claim 1, wherein the process valves Vi and/or V+ and/or V2 and/or V.sub.Ex are pneumatically pilot-controlled at least partially compensated seat valves.
10. The apparatus according to claim 1, wherein the at least one throttle is adjustable between at least two fixed positions, wherein the adjustment is producible by a rotatable cylinder with different passage bores.
11. The apparatus according to claim 1, wherein the at least one throttle is configured to be adjusted manually, by motor or without tools.
12. The apparatus according to claim 11, wherein a volume between the throttle and the process valve is variable by adjusting the at least one throttle.
13. A method for forming plastic preforms into plastic containers, having a forming device which has a plurality of forming stations within which the plastic preforms are formed into the plastic containers, wherein the plastic preforms being stretched in the longitudinal direction by a stretching bar and being acted upon by an application device with a flowable medium and at least four pressure reservoirs being provided which have predetermined pressures P1, Pi, P+ and P2, wherein a pressure Pi is smaller than a pressure P+ and the pressure P+is smaller than a pressure P2 and a valve block with at least five process valves V1, Vi, V+, V2, V.sub.Ex is provided, wherein the application device produces a fluid connection between the valve block and a mouth region of the plastic preform, to act upon the plastic preforms with the pressurised flowable medium and the process valves act upon the plastic preforms with different pressures, wherein the pressures and switching times of the process valves are selected in such a way that an air mass which is vented into the environment per plastic container after a recycling stage is described with the formula m=x*V, wherein V describes the container volume in litres, m the air mass in grams and x a factor of the container volume as a function of the air mass, wherein 7≤x≤15.
14. The method according to claim 12, wherein the application device is raised before the pressure in the valve block falls below an overpressure of 0.1 bar.
15. The method according to claim 12, wherein switching times of the process valves are selected so that a pressure rise time t90 from the moment of switching Pi to reaching 90% of P2 is higher than 180 ms.
16. The method according to claim 12, wherein the pressure P1 is variably adjusted and is preferably less than 8 bar and greater than 3 bar and/or the pressure P2 is variably adjusted and is preferably greater than 16 bar.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0071] Further advantages and embodiments can be seen in the attached drawings. In the drawings:
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DETAILED DESCRIPTION OF THE INVENTION
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[0088] The arrows A show that the pressure released in the first (upper) relief phase is used to apply a subsequent plastic container in the next lower pressure stage Pi and the pressure released in the second (middle) relief phase is used to apply the subsequent plastic container in pressure stage P1. Accordingly, the relief pressure of a preceding container of a higher pressure stage is preferably used to feed the blowing air consumption of the following container in the next lower pressure stage. New compressed air is (idealised) only supplied when pressure P2 is applied. This compressed air then passes through the pressure stages in stages, in different containers and is then vented at the last container (lower relief phase).
[0089] The third (lower) relief phase should be as small as possible with regard to pressure and energy consumption, but it must also be higher than the pressure P1, as otherwise it would not be possible to recycle the air without an additional compression unit.
[0090]
[0091] It can also be seen again that the relief pressures PE, are used to apply a next lower pressure stage. The additional pressure stage P+ can significantly reduce the last relief phase and thus reduce compressed air consumption.
[0092] The reference sign P1.sub.base identifies the lowest pressure after the first pressure boost when pressure P1 is applied.
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[0094] The time t90 characterises the moment when the pressure P1 is applied until 90% of the pressure P2 is reached. This time should preferably be as short as possible.
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[0098] The silencer 15 and the valve V.sub.Ex are arranged on different sides of the valve body 52 of the valve block 50, so that the axes of the silencer 15 and the valve VEX are at a 90° angle to each other. The compressed air must therefore be diverted, which leads in particular to a high flow path of the air. The reference sign 12 indicates a pilot air supply for the valve.
[0099]
[0100] The left-hand illustration of
[0101] In this embodiment, the valve piston 21 and in particular the hollow piston is designed in such a way that it is actively kept closed via control air and opens when the load is relieved. The compressed air then flows through the kidney-shaped outlet openings 18 and the valve piston 21 into the silencer 15 and is supplied to the environment via the latter.
[0102] In this illustration, the process chamber 19 is closed against the outlet via the valve VEX and a control air chamber (not shown) for the control air supply is pressurised so that the valve VEX is actively kept closed.
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[0107] Unlike in
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[0111] The reference sign 65 indicates a drive, such as a motor, by means of which the throttles 60, 62 can be moved along the piston rod 70. The reference sign 66 indicates a compressed air supply line for the valve block 50.
[0112] The arrangement of the throttles 60, 62 shown in
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[0114] The applicant reserves the right to claim all features disclosed in the application documents as essential to the invention, provided they are individually or in combination new compared to the prior art. Furthermore, it is pointed out that the individual figures also describe features which may be advantageous in themselves. The skilled person immediately recognises that a certain feature described in a figure can also be advantageous without adopting further features from this figure. Furthermore, the skilled person recognises that advantages can also result from a combination of several features shown in individual figures or in different figures.
LIST OF REFERENCE SIGNS
[0115] 10 plastic container [0116] 12 control air supply [0117] 15 silencer [0118] 18 outlet opening [0119] 19 process room [0120] 20 valve seat, sealing device [0121] 21 valve piston [0122] 50 valve block [0123] 52 valve body [0124] 60 throttle [0125] 62 throttle [0126] 65 drive [0127] 66 compressed air supply line [0128] 68 air volume [0129] 69 air volume [0130] 70 piston rod [0131] 100 diagram [0132] 110 diagram [0133] 120 diagram [0134] 130 state of the art pressure curve [0135] 140 pressure curve according to the apparatus/method of the invention [0136] A arrow [0137] T.sub.R dead space [0138] L air flow [0139] R arrow [0140] P1 pressure P1, pre-blowing pressure [0141] Pi pressure Pi, intermediate stage [0142] P+ pressure P+, intermediate stage [0143] P2 pressure P2, finish blowing pressure [0144] PEX relief pressure [0145] V1 process valve [0146] Vi process valve [0147] V+ process valve [0148] V2 process valve [0149] VEX process valve