NOZZLE PISTON AND METHOD OF OPERATING SAID NOZZLE PISTON
20180326649 ยท 2018-11-15
Inventors
Cpc classification
B29C2049/4664
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A molding system for hydraulic blow molding of a container from a preform. The molding includes a pressurization unit that is configured to receive liquid molding medium from a source; a fill head unit coupled to the pressurization unit to receive the liquid molding medium therefrom; a mold assembly defining a mold cavity in the shape of the container. During forming of the container, a nozzle piston is moved from a retracted position to an extending position where the nozzle piston is engaged to inject the molding medium into the preform, thereby forming and filling the container. The fill head unit defines a receiving chamber for the liquid molding medium that maintains a constant volume during movement of the nozzle piston between the retracted and extended positions.
Claims
1. A method of operating a molding system for hydraulic blow molding of a container from a preform, the molding system including a fill head unit, the method comprising the steps of: providing a molding medium in liquid form and at a system pressure to the fill head unit; precharging the molding medium within the fill head to a precharge pressure; and injecting the molding medium from the fill head unit into the preform causing the preform to expand into the shape of the container under the influence of the molding medium.
2. The method of claim 1, wherein during the step of injecting of the molding medium into the preform, increasing the pressure of the molding medium to a pressure greater than the precharge pressure.
3. The method of claim 1, further comprising the step of holding the molding medium at the precharge pressure.
4. The method of claim 3, further comprising the step of opening an outlet of the fill head unit after the step of holding the molding medium at the precharge pressure.
5. The method of claim 1, wherein the step of precharging the molding medium is performed as a first part of a continuous increasing of the pressure of the molding medium from the fill pressure and during the step of injecting the molding medium into the preform.
6. The method of claim 1, wherein the precharge pressure is at least 3 bar.
7. The method of claim 1, wherein the precharge pressure is at least 5 bar.
8. The method of claim 1, further comprising the steps of closing an outlet of a nozzle body prior to the molding medium being provided to the fill head unit and opening the outlet after precharging the molding medium to the precharge pressure, the outlet being opened by retracting a seal pin located within the nozzle body.
9. (canceled)
10. The method of claim 1, wherein the step of injecting molding medium into the preform initially injects the molding medium at the precharge pressure.
11. The method of claim 10, further comprising the step of injecting the molding medium into the preform at a pressure greater than the precharge pressure after initially injecting the molding medium into the preform at the precharge pressure.
12. The method of claim 1, wherein the pressurization unit includes a fill piston located within a fill chamber containing the molding medium moveable between a retracted position and an extended position, and further comprising moving the fill piston to a precharge position during the precharging step.
13. The method of claim 12, wherein the precharge position is located between the retracted and extended positions.
14. The method of claim 1, wherein the precharge pressure is greater than the system pressure.
15. A molding system for hydraulic blow molding of a container from a preform, the molding system comprising: a fill head unit, the fill head unit including a pressurization unit coupled to a nozzle assembly and to a source of molding medium in liquid form, the nozzle assembly further including a nozzle body with a seal pin slideably received within the nozzle body and being moveable between an opened position and a closed position, in the closed position an outlet of the nozzle body being closed by the seal pin; a mold assembly having mold halves defining a mold cavity in the shape of the container, the mold assembly being configured to receive the preform therein; and a controller coupled to the fill head unit and configured to raise the pressure of the molding medium in the fill head unit to a precharge pressure, the controller being further configured to increase the pressure of the molding medium above the precharge pressure during injection of the molding medium into the preform.
16. The molding system of claim 15, wherein the controller is further configured to initiate injection of the molding medium into the preform at the precharge pressure and to subsequently raise the pressure of the molding medium above the precharge pressure during injection of the molding medium into the preform.
17. (canceled)
18. The molding system of claim 15, wherein the pressurization unit includes a fill piston received within a fill chamber.
19. The molding system of claim 18, wherein the fill piston is moveable between a retracted position and an extended position, the fill piston further having a precharge position located between the retracted position and the extended position.
20. The molding system of claim 18, wherein the controller is configured to cause the fill piston to be moved to and held at the precharge position.
21. The molding system of claim 18, wherein the fill piston is coupled to an actuator that moves the fill piston between its retracted position and extended position, the actuator being a servo motor.
22. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION
[0023] Referring now to the drawings, illustrated in the
[0024] The mold assembly 14 generally includes a pair of mold halves 16 that are hinged or otherwise connected so as to open and close, thereby allowing a preform 18 to be received therein. The mold halves 16 each have interior surfaces 20 that cooperate to define a mold cavity 22, which itself defines the shape of the resultant container (not shown) formed by the molding system 10.
[0025] The preform 18 is generally formed as an elongated tubular body 24 bounded by and extending between a closed end 26 and an open end 28. Adjacent to the open end 28 are a finish 30, which may be threaded, and a handling ring 32, which respectively receives a closure cap (not shown) and assists in the handling of the preform 18 and resultant container.
[0026] The fill head unit 12 is generally comprised of a housing 34 and a nozzle assembly 36. The molding medium 40, which is also the end product packaged in the resultant container, is provided to the pressurization unit 38 from a source (not shown) and from the pressurization unit 38, through an inlet 41 in the housing 34, to the nozzle assembly 36. The nozzle assembly 36 in turn injects the molding medium 40 into the preform 18 causing the preform 18 to be expanded, axially and radially, into conformity with the interior surfaces 20 defining the cavity 22.
[0027] More specifically, the nozzle assembly 36 includes a nozzle piston 42 slideably received within a bore 44, preferably defined by a cylindrical side wall extending longitudinally within the housing 34. Extending from a shank 45 of the nozzle piston 42 is an enlarged portion or head 46. The head 46 is in surface-to-surface sealing engagement with the bore 44 and results in a receiving chamber 48 being defined within the housing 34, between the bore 44 and shank 45. The previously mentioned molding medium 40 is provided into this receiving chamber 48 from the pressurization unit 38. Optionally, the molding medium 40 may be continuously circulated through the receiving chamber 48 via an outlet 50, also provided through the housing 34, so as to better regulate the temperature of the blowing medium 48.
[0028] During operation, the molding system 10 begins a molding cycle with the nozzle assembly 36 in a retracted position, retracted by its associated actuator 52, where it is disengaged from the preform 18. This actuator 52, and the other actuators discussed herein, may be any of the well-known types of actuators used for this purpose. Additionally, a seal pin 54, shown in phantom, is in a closed position within the nozzle piston 42 and sealingly engages the nozzle piston 42 at an outlet 56 thereof preventing the discharging of the blowing medium 40 through the outlet 56. The molding medium 40 is provided from the receiving chamber 48 into a discharge chamber 58 defined in the head 46 of the nozzle piston 42 and in communication with the outlet 56. To provide the molding medium 40 from the receiving chamber 48 to the discharge chamber 58, a series of ports 60 are formed through the wall of the nozzle piston 42, in a transition portion 62 between the shank 45 and the head 46. The ports 60 are preferrably equidistantly spaced about transition portion 62 of the nozzle piston 42.
[0029] The seal pin 54 is slidable received within the nozzle piston 42 and its movement is effectuated by an actuator 64. This sliding movement operates to reciprocate the seal pin 54 between a closed position and an opened position, the closed position being shown in the various figures. In the closed position, and as noted above, the end of the seal pin 54 engages the nozzle piston 42 to close off the outlet 58. A stretch rod 66 may be provided as part of the nozzle assembly 36 so as to extend through the seal pin 54 and move between a retracted position and an extended position, which is effectuated by another actuator 68. In its extended position, the stretch rod 66 is advanced such that the tip 70 of the stretch rod 66 extends into the body 24 of the preform 18.
[0030] The pressurization unit 38 may be any means by which the molding medium 40 can be pressurized during molding. As such, the pressurization unit 38 may be a high-pressure pump, a piston and cylinder arrangement, or any other mechanism/arrangement that will allow the pressure of the molding medium 40 to be increased to a pressure suitable for molding of the preform 18 into a container.
[0031] Once the pressurization unit 38, receiving chamber 48 and discharge chamber 58 have been filled with the molding medium 40, an inlet valve (not shown) to the pressurization unit 38 is closed, constraining the molding medium 40 within the fill head unit 12. Generally around the time that the inlet valve is closed, the nozzle piston 42 and seal pin 54 are advanced together such that the end of the nozzle piston 42 engages with the upper surfaces of the preform 18 and/or the upper surfaces of the mold assembly 14.
[0032] The features of the molding system 10 according to the present invention, as thus far described, are generally conventional and commonly provided in known constructions. One such known construction is illustrated in
[0033] Referring further to
[0034] As the nozzle assembly 36 is extended or advanced, as seen in
[0035] To overcome these drawbacks, a fill head unit incorporating the principles of the present invention has a receiving chamber that does not vary in volume as the nozzle assembly is advanced, or retracted, during the hydraulic blow molding cycle. The fill head unit 12 of
[0036] Referring now to
[0037] Constructed in this manner, the receiving chamber 48 is a recess formed in the nozzle piston 42 and defined by the cylindrical inner surface of the bore 44 of the housing 34 and exterior surfaces of the nozzle piston 42 between the leading and trailing heads 46, 76. In the illustrated construction, these exterior surfaces of the nozzle piston 42 are the surfaces of the leading and trailing transition portions 62, 78 and the surface of the shank 45. Since the surfaces of the nozzle piston 42 that define the receiving chamber 48 move with the nozzle piston 42 as it is advanced and retracted during the hydraulic blow molding cycle, the receiving chamber 48 discreetly moves within the housing 34 with the nozzle piston 42. In other words, the receiving chamber 48 as a whole moves with the nozzle piston 42 and is fixed in its position relative the nozzle piston 42. As denoted in
[0038] Once the nozzle assembly 36 is engaged with the preform 18 and/or the mold assembly 14, the seal pin 54 is retracted and disengaged from the outlet 56 of the nozzle piston 42. Generally at the same time, the pressurization unit 38 increases the pressure within fill head unit 12 causing the molding medium 40 to be injected into the preform 18, simultaneously forming and filling the resulting container.
[0039] Once the resultant container has been formed and filled, the seal pin 54 is extended and again moved into its closed position. The nozzle assembly 36 is then retracted in the field container can be removed from the mold assembly 14. Upon transferring of a new preform 18 into the mold assembly, they hydraulic blow molding cycle is ready to repeat.
[0040] As a person skilled in the art will readily appreciate, the above description is meant as an illustration of implementation of the principles this invention. This description is not intended to limit the scope or application of this invention in that the invention is susceptible to modification, variation and change, without departing from spirit of this invention, as defined in the following claims.