METHOD FOR CONVERTING A DESIGN OF AN ORIGINAL PREFORM AND A RELATED MOLD STACK FOR THE MOLDING THEREOF
20170334125 · 2017-11-23
Assignee
Inventors
Cpc classification
B29C49/4242
PERFORMING OPERATIONS; TRANSPORTING
B29C49/071
PERFORMING OPERATIONS; TRANSPORTING
B29C49/4289
PERFORMING OPERATIONS; TRANSPORTING
B29C49/30
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/078
PERFORMING OPERATIONS; TRANSPORTING
B29B11/14
PERFORMING OPERATIONS; TRANSPORTING
B29C45/2673
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/0715
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Disclosed herein, amongst other things, is a method for converting a design of an original preform that is blow moldable to form a container into a converted preform having less molding material that is blow moldable to form the same container. The method includes retaining a neck finish and body of the original preform on the converted preform. The method further includes replacing the original base of the original preform with a converted base having an outer base surface that joins with an outer body surface of the body at an base split-line of the original base and that fits offset within an outer body surface of the original base, whereby the converted preform has a reduced total length, disregarding any gate vestige that may be formed thereon, relative to a total length of the original preform.
Claims
1. A method (600) for converting a design of an original preform (100) that is blow moldable to form a container into a converted preform (300, 400) having less molding material that is blow moldable to form the same container, the original preform (100) having a hollow tubular body that includes a neck finish (102) at an open end thereof, an original base (106) at a closed end thereof and a body (104) arranged between the neck finish (102) and the original base (106), wherein the neck finish (102) is configured to retain, in use, a closure thereon, and the body (104) and the original base (106) are blow moldable to form corresponding parts of the container, the method comprising: retaining (610) the neck finish (102) and the body (104) of the original preform (100) on the converted preform (300, 400); and replacing (620) the original base (106) of the original preform (100) with a converted base (306, 406) having an outer base surface (307, 407) that joins with an outer body surface (103) of the body (104) at a base split line (S1) of the original base (106) and that fits offset within an original outer body surface (107) of the original base (106), whereby the converted preform (300, 400) has a reduced total length (RTL), disregarding any gate vestige (308, 408) that may be formed thereon, relative to a total length (TL) of the original preform (100).
2. The method (600) of claim 1, wherein: the outer base surface (307, 407), disregarding any gate vestige (308, 408) that may be formed thereon, is defined to intersect with a longitudinal axis (X) of the converted preform (300, 400) at a point (1) that is offset by a distance (0) of about 0.05 to 0.25 mm from a further point (NI) where the original base (106), disregarding any gate vestige (108) that may be formed thereon, intersects the longitudinal axis of the original preform (100).
3. The method (600) of claim 1, wherein: the replacing (620) of the original base (106) further includes maintaining an inner base surface (105) thereof on the converted base (306, 406) that joins with an inner body surface (101) of the body (104), whereby the converted base (306, 406) has a reduced bottom wall thickness (RBWT) relative to a bottom wall thickness (BWT) of the original base (106).
4. The method (600) of claim 3, wherein: replacing (620) the original base (106) further includes defining the outer base surface (307, 407) of the converted base (306, 406) having compound surfaces (307A, 307B, 307C, 407A, 407B, 407C) of different curvature.
5. The method (600) of claim 4, wherein: the outer base surface (307, 407) of the converted base (306, 406) replaces a hemispherical outer base surface of the original base (106).
6. The method (600) of claim 4, wherein: the outer base surface (307, 407) is defined similar to an elliptic paraboloid.
7. The method (600) of claim 4, wherein: the outer base surface (307, 407) joins to the outer body surface (103) at an intersection or are tangent.
8. The method (600) of claim 4, wherein: the outer base surface (307, 407) of the converted base (306, 406) is selected to define a thinnest bottom wall thickness (TBWT) along a central region thereof.
9. A method (700) for converting a mold stack (520) for molding an original preform (100) that is blow moldable to form a container into a converted mold stack (520′) for molding a converted preform (300, 400) having less molding material that is blow moldable to form the same container, wherein the mold stack (520) includes a core assembly (522), neck rings (526), a cavity insert (528) and a gate insert (530) that are configured to cooperate together to define a molding cavity (532) for molding the original preform (100) having a hollow tubular body that includes a neck finish (102) at an open end thereof, an original base (106) at a closed end thereof and a body (104) arranged between the neck finish (102) and the original base (106), wherein the neck finish (102) is configured to retain, in use, a closure thereon, and the body (104) and the original base (106) are blow moldable to form corresponding parts of the container, the method comprising: retaining (710) the core assembly (521), at least in part, the neck rings (526) and the cavity insert (528) that together define the same neck finish (102) and the body (104) of the original preform (100) on the converted preform (300, 400); and replacing (720) the gate insert (530) of the mold stack (520) with a conversion gate insert (530′) to define a converted base (306, 406) on the converted preform (300, 400) having an outer base surface (307, 407) that joins with an outer body surface (103) of the body (104) at a base split line (S1) of the original base (106) and that fits offset within an original outer body surface (107) of the original base (106), whereby the converted preform (300, 400) has a reduced total length (RTL), disregarding any gate vestige (308, 408) that may be formed thereon, relative to a total length (TL) of the original preform (100).
10. The method (700) of claim 9, wherein: the outer base surface (307, 407), disregarding any gate vestige (308, 408) that may be formed thereon, is defined to intersect with a longitudinal axis (X) of the converted preform (300, 400) at a point (I) that is offset by a distance (0) of about 0.05 to 0.25 mm from a further point (NI) where the original base (106), disregarding any gate vestige (108) that may be formed thereon, intersects the longitudinal axis of the original preform (100).
11. The method (700) of claim 9, wherein: the core assembly (521) defines an inner base surface (105) of the original base (106) on the converted base (306, 406) that joins with an inner body surface (101) of the body (104), whereby the converted base (306, 406) has a reduced bottom wall thickness (RBWT) relative to a bottom wall thickness (BWT) of the original base (106).
12. The method (600) of claim 11, wherein: the conversion gate insert (530′) defines the outer base surface (307, 407) of the converted base (306, 406) having compound surfaces (307A, 307B, 307C, 407A, 407B, 407C) of different curvature.
13. The method (600) of claim 12, wherein: the outer base surface (307, 407) is defined similar to an elliptic paraboloid.
14. The method (600) of claim 12, wherein: the outer base surface (307, 407) of the converted base (306, 406) replaces a hemispherical outer base surface of the original base (106).
15. The method (600) of claim 12, wherein: the outer base surface (307, 407) joins to the outer body surface (103) at an intersection or are tangent.
16. The method (600) of claim 12, wherein: the outer base surface (307, 407) of the converted base (306, 406) is selected to define a thinnest bottom wall thickness (TBWT) along a central region thereof.
Description
DESCRIPTION OF THE DRAWINGS
[0009] The non-limiting embodiments will be more fully appreciated by reference to the accompanying drawings, in which:
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[0017] The drawings are not necessarily to scale and may be illustrated by phantom lines, diagrammatic representations and fragmentary views. In certain instances, details that are not necessary for an understanding of the embodiments or that render other details difficult to perceive may have been omitted.
DETAILED DESCRIPTION OF THE NON-LIMITING EMBODIMENT(S)
[0018] Reference will now be made in detail to various non-limiting embodiment(s) of a method for converting a design of an original preform into a converted preform and a related method for converting a mold stack for the molding thereof. It should be understood that other non-limiting embodiment(s), modifications and equivalents will be evident to one of ordinary skill in the art in view of the non-limiting embodiment(s) disclosed herein and that these variants should be considered to be within scope of the appended claims.
[0019] Furthermore, it will be recognized by one of ordinary skill in the art that certain structural and operational details of the non-limiting embodiment(s) discussed hereafter may be modified or omitted (i.e. non-essential) altogether. In other instances, well known methods, procedures, and components have not been described in detail.
[0020] With reference to
[0021] In so doing the outer base surface 307, 407, disregarding any gate vestige 308, 408 that may be formed thereon, may be defined to intersect with a longitudinal axis X of the converted preform 300, 400 at a point I that is offset by a distance O from a further point NI where the original base 106, disregarding any gate vestige 108 that may be formed thereon, intersects the longitudinal axis X of the original preform 100. The distance O of the offset may, for example, be selected to be within the range about 0.05 to 0.25 mm without significantly changing affecting the blow molding of the container base (not shown).
[0022] The method 600 may further include maintaining an inner base surface 105 thereof on the converted base 306, 406 that joins with an inner body surface 101 of the body 104, whereby the converted base 306, 406 has a reduced bottom wall thickness RBWT relative to a bottom wall thickness BWT of the original base 106.
[0023] That being said, in an alternative embodiment, not shown, the inner base surface may also be redefined to vary the amount and/or distribution of molding material in the converted base.
[0024] The operation of replacing the original base 106 may further include one or more other known methods to reduce the amount of molding material in the converted base 306, 406. For example, the replacing the original base 106 may include replacing a typical hemispherical outer surface 107 of the original base 106 by defining the outer base surface 307, 407 of the converted base 306, 406 to include compound surfaces 307A, 307B, 307C, 407A, 407B, 407C of different curvature. The foregoing may be selected to define a shape that is generally an elliptic paraboloid. The compound surfaces 307A, 307B, 307C, 407A, 407B, 407C may be furthermore selected to define a thinnest bottom wall thickness TBWT along a central region thereof.
[0025] With reference to
[0026] The conversion gate insert 530′ may be configured to define a gate vestige 308 (
[0027] It is noted that the foregoing has outlined some of the more pertinent non-limiting embodiments. It will be clear to those skilled in the art that modifications to the disclosed non-limiting embodiment(s) can be effected without departing from the spirit and scope thereof. As such, the described non-limiting embodiment(s) ought to be considered to be merely illustrative of some of the more prominent features and applications. Other beneficial results can be realized by applying the non-limiting embodiments in a different manner or modifying them in ways known to those familiar with the art. This includes the mixing and matching of features, elements and/or functions between various non-limiting embodiment(s) is expressly contemplated herein so that one of ordinary skill in the art would appreciate from this disclosure that features, elements and/or functions of one embodiment may be incorporated into another embodiment as appropriate, unless described otherwise, above. Although the description is made for particular arrangements and methods, the intent and concept thereof may be suitable and applicable to other arrangements and applications.