US2017291334A1PendingUtilityA1

Method and device for the production of an optimized neck contour on preforms

Assignee: AKTAS MAHIRPriority: Sep 22, 2014Filed: Sep 21, 2015Published: Oct 12, 2017
Est. expirySep 22, 2034(~8.1 yrs left)· nominal 20-yr term from priority
Inventors:Mahir Aktas
B29B 11/14B29B 11/08B29C 45/2632B29C 45/0055B29C 45/1773B29C 45/4005B29C 49/06B29C 45/2628B29C 45/0081B29C 45/7207B29K 2101/12B29C 49/4242B29C 2045/7214B29L 2031/7158B29C 49/6445B29C 49/071B29C 2949/0715B29C 2949/0745B29C 2949/0723B29C 2949/28B29C 2949/26B29C 2949/24B29C 2949/22B29C 49/76B29C 49/6466B29C 49/42422B29C 49/42421B29C 49/6467B29C 49/6465B29C 2049/023
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Claims

Abstract

A method and device for producing an optimized neck contour on preforms below the neck which is optimal for subsequent stretch blow molding. The geometry has a significantly thinner wall thickness than the neck itself. The preform can only be produced in the injection molding tool, when axial channels are used on the point or the vanes produce the thin points on the preform during injection molding. The thin-walled geometry on the preform can be produced outside of the mold during post-cooling by embossing. The preform is there removed in a cooled receiving sleeve and is cooled in the body by intensive contact cooling while no cooling contact is made with the preform neck due to the initial position of the embossing element. Due to the reheating of the neck they can be mechanically deformed into a new geometry advantageous for blow molding and thus wall thickness can be influenced.

Claims

exact text as granted — not AI-modified
1 - 21 . (canceled) 
     
     
         22 . A method for producing preforms with an improved neck geometry beneath a threaded region or a transporting ring for a simplified subsequent blow-molding process, wherein the produced preform made of at least one thermoplastic material has a significantly thinner wall thickness in a neck region beneath the thread than in the thread itself, and the preform is provided in order to be formed into blow-molded containers, the method comprising: providing at least two channels having an increased wall thickness so that when the preform is blow molded the holding pressure is maintained, despite thin-walled regions, by the at least two channels with an increased wall thickness, or integrating at least two slides in the mold to produce the relatively thin wall thicknesses following an operation of filling the cavities and a certain process time period, or opening a mold once an outer skin of the preform has solidified following initial cooling for a shortest period of time possible; receiving the preforms from the open mold by a removal arm and cooling sleeves of the removal arm; cooling the preform stem, but not the neck region beneath the thread, by contact cooling with the cooling sleeves; and carrying out an embossing operation in which a plastically redeformable region is deformed mechanically by embossing elements, in accordance with repeatability necessary for further processing, by the plastic material being embossed by cooling, pressing and pushing operations, wherein a contour of the embossing elements is configured, in combination with a supporting pin, so that said contours are replicated in a reproducible manner on an open preform to the greatest extent following the deforming operation. 
     
     
         23 . The method according to claim  21 , including providing all of the preforms, as the preforms are being produced, with at least two ribs or channels in the thin-walled region beneath the neck. 
     
     
         24 . The method according to claim  21 ., wherein the channels for an injection-molding solution arc configured so that, in order for a holding pressure to be maintained, the plastic material in said channels does not freeze any more quickly than the plastic material in the preform neck. 
     
     
         25 . The method according to claim  21 , wherein, with embossing by pushing, displacement of the plastic material is definable freely in terms of time and is used for holding pressure, and slides produce geometrically predefined ribs in a reproducible manner at parting locations. 
     
     
         26 . The method according to claim  21 ., wherein the embossing operation displaces the plastic material axially into the cooling sleeves so that lengthening of the preform is possible. 
     
     
         27 . The method according to claim  21 , including establishing a temperature range between 90° and 150° at the preform in the region where the embossing takes place. 
     
     
         28 . The method according to claim  21 , wherein embossing elements of any desired number and size of a geometrically defined contour deform the plastic material of the neck by pulling, pressing and pushing the plastic mass until a volume between the two contours is filled with the plastic material so that the geometry and the wall thickness of the preform neck are defined in a repeatable manner. 
     
     
         29 . The method according to claim  21 , wherein the embossing operation is determinable freely in terms of time in each part of the process. 
     
     
         30 . The method according to claim  21 , including, in a multi-cavity application, individually setting an embossing force for each cavity, by mechanical or pneumatic springs for each preform, in order to ensure identical processes. 
     
     
         31 . The method according to claim  21 , wherein the embossing elements are temperature-controlled or cooled to influence the embossing operation, 
     
     
         32 . The method according to claim  21 , wherein the embossing elements preform the preform neck for specific bottle-shaped requirements, by pulling, pressing and pushing the plastic material. 
     
     
         33 . The method according to claim  21 , wherein the embossing operation is preceded by a waiting time of 1 to 20 seconds in order to stabilize heat balance in the preform neck. 
     
     
         34 . An apparatus for production of a preform with a geometry beneath a neck that is optimized for a blow-molding process, wherein the preform has a considerably thinner wall thickness in a region beneath a thread than in the thread itself, the apparatus comprising: a mold with at least one mold cavity for definitive shaping of the preforms; an injection-molding apparatus that plasticizes raw plastic material to introduce the plastic material into the cavities with the closed mold under pressure, the mold having channels or slides that ensure that a required holding pressure is maintained in the neck despite the reduced wall thickness, or the mold is responsible for the preform geometries in a first shaping step; a removal arm, which is equipped with at least one cooled cooling sleeve, equal in number to the number of cavities, for removing the preforms, the cooling-sleeve having an inner geometry that provides the preform stem, but not the region of the preform neck, with contact cooling; and an embossing apparatus that has embossing elements mounted in a radially floating manner and use a cone to deflect an axial force perpendicularly to an axis and to intensify said force to an extent for an embossing operation that deforms the neck beneath the threaded part by pulling, pressing and pushing operations, said neck being defined by a cavity between the embossing elements and a supporting pin so as to describe the contour and wall thickness of the neck in a repeatable manner. 
     
     
         35 . The apparatus according to  claim 34 , wherein the slide in the mold is also movable under closing pressure. 
     
     
         36 . The apparatus according to  claim 34 , wherein the embossing elements are produced from rigid and thermally conductive material. 
     
     
         37 . The apparatus according to  claim 34 , wherein the embossing elements are cooled or temperature-controlled. 
     
     
         38 . The apparatus according to  claim 34 , wherein the cooling sleeves are liquid-cooled. 
     
     
         39 . The apparatus according to  claim 34 , wherein the embossing elements are mounted resiliently with individually definable spring forces. 
     
     
         40 . The apparatus according to  claim 34 , wherein the embossing elements are seated in a cone that serves as a uniform force-transmitting element. 
     
     
         41 . The apparatus according to  claim 34 , wherein each cooling sleeve with embossing unit has an individual axial drive with preselectable displacement length and forces. 
     
     
         42 . The apparatus according to  claim 34 , wherein the preforms do not have a supporting ring.

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