Method and apparatus for blowing and filling containers with release of liquid overpressure
09744711 · 2017-08-29
Assignee
Inventors
- Guillaume Chauvin (Monthureux sur Saone, FR)
- Damien Kannengiesser (Golbey, FR)
- Johannes Zimmer (Saarbruecken, DE)
Cpc classification
B65B3/022
PERFORMING OPERATIONS; TRANSPORTING
B29C49/4289
PERFORMING OPERATIONS; TRANSPORTING
B29C2049/7834
PERFORMING OPERATIONS; TRANSPORTING
B29C49/46
PERFORMING OPERATIONS; TRANSPORTING
B29C2049/7831
PERFORMING OPERATIONS; TRANSPORTING
B29C2049/024
PERFORMING OPERATIONS; TRANSPORTING
B29C2049/4664
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C49/78
PERFORMING OPERATIONS; TRANSPORTING
B65B3/02
PERFORMING OPERATIONS; TRANSPORTING
B29C49/42
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention concerns an apparatus for blowing and filling a container (22) from a preform (16), said apparatus comprising: —a mold (12) for enclosing a preform (16), —stretching means for stretching the preform (16) placed within said mold (12), —a pressurized liquid injection circuit (18) able to inject a liquid under pressure inside said preform (16) when said preform is placed inside said mold, —injection means which are adapted to inject a predetermined volume of liquid through said liquid injection circuit (18) into the preform and to stop injection of the liquid through said circuit into the preform when a blown and filled container (22) has been obtained, stopping the injection of the liquid through the liquid injection circuit into the preform creating an overpressure of the liquid within the liquid injection circuit, characterized in that the apparatus further comprises releasing means for releasing said overpressure of the liquid within the liquid injection circuit.
Claims
1. A method of blowing and filling a container from a preform inside a filling and forming apparatus that comprises a mold and a pressurized liquid injection circuit able to inject a liquid under pressure inside the preform when the preform is placed inside the mold, the method comprising: placing a preform inside the mold; stretching the preform placed within the mold; starting an injection phase comprising injecting a predetermined volume of liquid through the liquid injection circuit into the preform; stopping the injection phase by stopping the injection of the liquid through the liquid injection circuit into the preform, creating an overpressure of liquid within the liquid injection circuit; and releasing the overpressure of liquid within the liquid injection circuit before the container is released from the mold.
2. A method of claim 1, comprising opening a valve device that is connected to the pressurized liquid injection circuit so as to release the overpressure of liquid.
3. A method according to claim 1, comprising releasing the overpressure of liquid by discharging at least some liquid through an expansion tank.
4. A method according to claim 1, wherein the stopping of the injection phase further comprises closing an injection valve device, the closing of the injection valve device enabling communication of liquid between the pressurized liquid injection circuit and at least one discharge channel through which the overpressure is released.
5. A method according to claim 4, wherein closing the injection valve device both prevents the liquid that is in the pressurized liquid injection circuit from flowing through the injection valve device for being injected into the preform, and enables liquid communication between the pressurized liquid injection circuit and the at least one discharge channel.
6. A method according to claim 4, wherein the start of the injection phase comprises opening the injection valve device so as to enable flowing of the liquid that is pushed inside the pressurized liquid injection circuit through the open injection valve device for being injected into the preform.
7. A method according to claim 1, wherein the injection phase starts after the stretching phase has started.
8. An apparatus for blowing and filling a container from a preform, the apparatus comprising: a mold for enclosing a preform; a stretching member for stretching the preform placed within the mold; a pressurized liquid injection circuit able to inject a liquid under pressure inside the preform when the preform is placed inside the mold; an injector which is adapted to inject a predetermined volume of liquid through the liquid injection circuit into the preform and to stop injection of the liquid through the circuit into the preform when a blown and filled container has been obtained, the stopping of the injection of the liquid through the liquid injection circuit into the preform creating an overpressure of liquid within the liquid injection circuit; and the apparatus comprises a releasing member for releasing the overpressure of liquid within the liquid injection circuit.
9. An apparatus according to claim 8, wherein the releasing member comprises at least one valve device that is connected to the pressurized liquid injection circuit and that is adapted to be opened so as to release the overpressure of liquid.
10. An apparatus according to claim 9, wherein the at least one valve device is designed so as to be automatically opened for a predetermined pressure of liquid.
11. An apparatus according to claim 9, wherein the at least one valve device is a controlled valve.
12. An apparatus according to claim 8, wherein the releasing member comprises an expansion tank that is connected to the pressurized liquid injection circuit.
13. An apparatus according to claim 8, wherein the injector comprises an injection valve device that includes at least one discharge channel and that is suitable for moving between an open and a closed position, the open position being such that it allows the liquid that is injected through the pressurized liquid injection circuit to flow through the open injection valve device for being injected into the preform, the at least one discharge channel not being in communication with the pressurized liquid injection circuit, the closed position being such that it does no longer allow the liquid to flow though the closed injection valve device and it enables communication between the pressurized liquid injection circuit and the at least one discharge channel for the release of the overpressure therethrough.
14. An apparatus according to claim 13, wherein the injection valve device is suitable for moving along a longitudinal axis between the open and closed position and the pressurized liquid injection circuit is connected to the injection valve device transversally relative to the longitudinal axis.
15. An apparatus according to claim 13, wherein the injection valve device is a piston device.
16. An apparatus according to claim 13, wherein the injector comprises an injection head that is arranged above the mold and in sealing engagement therewith, the injection valve device being mounted within the injection head.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the present invention will now be described, by way of example only, with reference to the accompanying figures in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DETAILED DESCRIPTION OF THE INVENTION
(11)
(12) These preforms may be made of thermoplastic polymer.
(13) Apparatus 10 comprises a mould 12 for enclosing a preform.
(14) Mould 12 is for example a two-part mould of which the two parts 12a, 12b define an inner cavity 14 when assembled together.
(15) As represented in
(16) The shape of the cavity corresponds to the shape of the achieved container and it will be wholly occupied by the formed container at the end of the blowing and filling method.
(17) It is to be noted that mould 12 may alternatively be composed of more than two parts depending on the manufacturing process.
(18) For instance, a third part (base mould) may be added at the bottom of the mould so as to constitute at least a part of the inner cavity bottom.
(19) Apparatus 10 further comprises a pressurized liquid injection circuit 18 and injection means for injecting a liquid into preform 16.
(20) Injection means comprise an injection head 20 which comes into a sealing contact (for liquid tightness purpose) with mould 12 and preform 16.
(21)
(22) Mould 12 encloses a blown and filled container 22 (here, for example, a bottle filled with water) that has been obtained from preform 16 through the blowing and filling method.
(23) The injection head comprises an injection valve device 24 that includes an injection nozzle 28 mounted within an inner housing 26.
(24) Injection head 20 is substantially cylindrical in shape as partially illustrated in
(25) Injection valve device 24, and more particularly injection nozzle 28, is moveable along a longitudinal axis A between an injection position (open position) allowing liquid to be injected into the preform and a rest position (closed position) in which the injection nozzle 28 rests against an inner surface 26a of the injection head in a sealing engagement so as to prevent any flow of liquid from the injection head into the preform.
(26) Longitudinal axis A is here the vertical axis along which injection head 20 and mould 12 are substantially aligned.
(27) Axis A is a symmetry axis to container 22.
(28) As represented in
(29) In the open position injection nozzle 28 is in an upper position at a distance from the inner surface 26a. This upper position is not represented in the drawing for the sake of clarity but it is located above a transverse channel 30 (represented in dotted lines) that is provided in a peripheral wall 32 of injection head 20.
(30) This feed channel is connected to pressurized liquid injection circuit 18.
(31) Moving the injection nozzle 28 away from inner surface 26a and above channel 30 makes it possible for the liquid that is in the circuit 18 to flow from channel 30 to the preform (in
(32)
(33) Injection valve device 24 is an injection piston device that is operated thanks to a fluid, e.g. air. Other fluids may be used alternatively.
(34) Fluid-operated piston device 24 comprises a piston 34 that is sliding longitudinally (along axis A) within a cylindrical housing 36 and a rod 35 provided with injection nozzle 28 at its end.
(35) Fluid is supplied to piston device 24 by a fluid supply system (not represented in the drawing) which comprises controlling means (not represented) for controlling the supply of fluid to piston device 24.
(36) The control of the fluid supply enables appropriate upward and downward movements of injection nozzle 28 along axis A so as to occupy either open or closed position.
(37) Reverting to
(38) Stretching means comprise a stretch rod 38 which is in a sliding connection with the injection nozzle 28.
(39) In
(40) The stretch rod 38 of
(41) Actuating means for actuating rod 38 have not been represented for the sake of clarity.
(42) Apparatus 10 comprises a valve device 40 that enables flowing of liquid through circuit 18 when opened and prevents liquid from flowing through the valve device and downstream thereof when closed.
(43) Valve device 40 is actuated upon command.
(44) Liquid to be injected into the preform, e.g. water, is supplied from a source of liquid S which feeds said liquid to a pump device 42 of apparatus 10.
(45) Pump device 42 is located upstream of valve device 40.
(46) Such a pump device is suitable for delivering a constant pressure, e.g. between 3 and 7 bars.
(47) Pump device 42 is suitable for providing a predetermined volume of liquid and pushing or injecting it through liquid injection circuit 18. Pump device 42 is part of the injection means of apparatus 10 and acts as liquid pushing means.
(48) As further represented in
(49) This valve acts as a discharge valve in order to protect the pump device, for instance when the liquid pressure is building up or if there is no container being manufactured.
(50) Apparatus 10 comprises a duct 46 that is connected to pump device 42 at one end and to injection head 20 at the opposite end. Valve device 40 is mounted onto duct 46. It is to be noted that duct 46 is part of liquid injection circuit 18.
(51) In a variant embodiment illustrated in dotted lines in
(52) Pushing means 52 are here represented by a piston device that is able to displace a predetermined volume of liquid through liquid injection circuit 18 and, more particularly, duct 46.
(53) It is to be noted that any other means that are capable of displacing a volume of liquid may be alternatively used.
(54) Apparatus 10 also comprises a valve device 60 that is connected to liquid injection circuit 18 and here, more particularly, to duct 46.
(55) As represented in
(56) In the course of performance of the blowing and filling method according to an embodiment of the invention, the stretch rod 38 is actuated during a stretching phase whereas valve device 40 is in a closed position, thereby preventing liquid from being injected into preform 16.
(57) Stretch rod 38 is downwardly engaged into the open end of the preform 16 so as to come into contact with the closed bottom end thereof. The stretch rod is then further actuated to push the closed end downwardly and stretch the preform accordingly in a controlled manner.
(58) After a predetermined period of time has elapsed after the start of the stretching phase, the injection phase starts for injecting the liquid into the preform both for forming the container and filling it.
(59) The injection phase starts with the opening of valve device 40 and operation of pump device 42 (or, alternatively, piston device 52). Actuation of valve device 40 may be controlled through a processor or a computer or manually.
(60) Also injection nozzle 28 is actuated to be raised in its upper position (open position).
(61) Pump device 42 (or piston device 52) is operated in a controlled manner so that liquid is pushed or injected through liquid injection circuit 18 and injection head 20 to preform 16 (for being injected thereinto) in accordance with a predetermined injection or filling curve.
(62)
(63) A curve referred to as (a) represents the desired theoretical curve of liquid injection over the time. This curve comprises a first portion in which the volume of liquid increases and a second flat portion in which the volume has reached a maximum value and is kept constant.
(64) This liquid injection causes together with the movement of the stretch rod expansion of the preform 16 until coming into contact with the inner walls of the mould. The final stage of the container is thus achieved (
(65) At the beginning of the injection phase valve device 60 is in a closed position.
(66) As represented in
(67) By appropriately controlling the timing of the injection phase the injection nozzle 28 is actuated to be lowered for closing the liquid injection valve and pump device 42 (or piston device 52) is commanded to stop pushing or injecting liquid through circuit 18.
(68) The additional volume of liquid pushed or injected into circuit 18 and, therefore duct 46, results in an increase in pressure (pressure in excess) within circuit 18 due to closing of injection nozzle 28.
(69) In order to avoid a back pressure phenomenon within circuit 18 valve device 60 is commanded, by a processor or a computer or manually, to be open at an appropriate time relative to the
(70) Thus, the volume of liquid in excess within duct 46 is discharged through valve device 60 so as to release the overpressure of liquid. The discharged liquid may then be recovered and recycled in this process.
(71) Valve device 60 acts, therefore, as releasing means that enable release of a liquid overpressure (at the end of the injection phase) outside the liquid injection circuit.
(72) By displacing a greater of volume of liquid during the injection phase and discharging this extra amount of liquid through valve device 60 (discharge valve) it is therefore made possible to attain the flat portion of the curve (a) in
(73)
(74) Apparatus 100 differs from apparatus 10 of
(75) Controlled valve 102 performs the same function as valve device 60, i.e. it releases the liquid overpressure outside the pressurized liquid injection circuit.
(76) Controlled valve 102, therefore, behaves as a discharge valve.
(77) Controlled valve 102 releases the overpressure of liquid automatically once the predetermined volume of liquid has been injected into the preform/container and a predetermined liquid pressure level has been reached within the liquid injection circuit.
(78) Controlled valve 102 may have been pre-set accordingly through appropriate settings beforehand so as to open depending on the amount of liquid pressure within the circuit.
(79) Alternatively, controlled valve 102 may be actuated based on a pressure switch.
(80)
(81) Apparatus 110 differs from apparatus 10 by an expansion tank 112 which replaces valve device 60. All the other elements of system 110 are identical to those of apparatus 10 and bear the same references.
(82) Expansion tank 112 performs the same function as valve device 60, i.e. it releases the liquid overpressure outside the liquid injection circuit and, therefore, discharges the latter from this pressure in excess as soon as the pressure within the liquid injection circuit 18 has reached a predetermined value or level (threshold).
(83)
(84) Apparatus 120 is almost identical to
(85) Apparatus 120 comprises a modified injection head 122 with a new injection valve device arrangement 124.
(86) The enclosure or casing in which injection valve device 124 is installed is the same as that described with reference to
(87) More particularly, the injection nozzle 126 of injection valve device 124 forms a body at the upper part 126a of which a discharge channel 128 is provided.
(88) The lower part 126b of the body remains the same as that of injection nozzle 28 in
(89) As represented in
(90) Discharge channel 128 forms a bend between its two opposite ends. The bend illustrated in
(91) In
(92) It is to be noted that several discharge channels may be used instead of a single one in order to augment the flow rate. As represented in
(93) When the injection phase terminates, injection nozzle 126 is commanded to be lowered in the lower closed position of
(94) Also pump device 42 is commanded to stop pushing or injecting a volume of liquid into the liquid injection circuit 18.
(95) Thus, the injection nozzle 126 occupies the axial position represented in
(96) In this axial position the discharge channel 128 is facing feed channel 30 which is connected to duct 46. Thus, a communication is established between channel 30 and discharge channel 128 so as to enable circulation of liquid through the latter. This discharge of liquid enables release of the liquid overpressure that is present within liquid injection circuit 18.
(97) Liquid discharge is evacuated from top of the injection nozzle with a view to being recovered and possibly recycled.
(98) Liquid discharge stops naturally when the pressure within the container is at the atmospheric pressure if the discharge channel or circuit is vented to the atmospheric pressure.
(99) The location of discharge channel 128 is adjusted along the height or axial extension of the injection nozzle body (axis A) so as to provide efficient release of the liquid overpressure.
(100) In a variant embodiment, discharge channel 128 may be disposed in a lower position, i.e. its lateral opening end 128a may be lowered, which lengthens the channel. Its curvature may be the same as that illustrated in
(101) By way of example, the diameter of this channel is 6 mm.
(102) More generally, the diameter may lie between 4 mm and 8 mm.
(103) The apparatus according to the invention is particularly suitable for manufacturing lightweight thermoplastic polymer containers.
(104) Lightweight preforms may be defined with respect to the graph of
(105) This graph illustrates the typical weight of a preform or container body expressed in grams (g) as a function of the volume of the latter expressed in centilitres (cl.).
(106) The lightweight preforms or containers are located below the curve C.
(107) In the present embodiment, the container which is being blown and filled is a bottle filled with still water.
(108) However, other containers may be envisaged as well as other liquids.
(109) Other graphs may be easily obtained by the person skilled in the art for defining lightweight containers intended to be filled with other liquids.
(110) It should be understood that various changes and modifications to the presently preferred embodiments described herein will be apparent to those skilled in the art. Such changes and modifications can be made without departing from the spirit and scope of the present invention and without diminishing its attendant advantages. It is therefore intended that such changes and modifications be covered by the appended claims.