1. Technical Field
The present invention relates to a method and an apparatus for producing bottle-type synthetic resin containers, and, in particular, provides a production technology that allows crystallization step for the neck portion of such container to be performed in a short time.
2. Prior Art
In bottle-type synthetic resin containers, in order to improve the heat resistance and durability at the neck portion of the container, it is known to heat and crystallize the neck portion of the corresponding perform. As opposed to the body portion of the container in which molecules are oriented by biaxial stretching blow molding to preserve transparency, the neck portion subjected to crystallization treatment has a crystal structure in which sphaeritcs are grown to undergo devitrification into white or milky-white color. A method for producing such bottle-type container is more fully disclosed, e.g., in U.S. Pat. No. 4,375,442.
Crystallization of synthetic resin occurs when the resin is heated under a temperature condition not lower than its glass transition temperature. Generally, in the case of polyethylene terephthalate (PET) resin, crystallization is carried out by heating the neck portion of the preform to a temperature not lower than approximately 120° C. for a predetermined duration and, it is possible to increase the crystallizing speed when heating is performed within a temperature range of approximately 170° C. to 190° C.
However, in the conventional crystallizing process, because the temperature of the neck portion of the preform is elevated immediately after starting the beating to the above-mentioned crystallizing temperature range gradually, a relatively long time is required until crystallization starts, thereby imposing a limitation to improve the productivity.
The present invention has been conceived in view of the above-mentioned problems, and it is a primary object of the present invention to provide a production technology for bottle-type synthetic resin containers, wherein crystallization step for the neck portion of the container can be carried out in a relatively short time.
To this end, according to the present invention, there is provided a method for producing bottle-type synthetic resin containers, including a heat treatment step for heating and crystallizing a neck portion of a perform corresponding to a neck portion of a container, wherein said heat treatment step comprises a first stage in which said neck portion of the perform is temporarily heated to a temperature below a melting point of the synthetic resin, and a second stage in which said neck portion is subsequently maintained at a temperature within a range in which crystallization of the synthetic resin is promoted.
The present invention further provides an apparatus for producing bottle-type synthetic resin containers, comprising a heat treatment means for heating and crystallizing a neck portion of a perform corresponding to a neck portion of a container, wherein said heat treatment means is operated in a first stage so that said neck portion of the perform is temporarily heated to a temperature below a melting point of the synthetic resin, and in a second stage so that said neck portion is subsequently maintained at a temperature within a range in which crystallization of the synthetic resin is promoted.
Thus, according to the present invention, upon production of bottle-type synthetic resin containers, wherein the neck portion of a preform is heated and crystallized, the neck portion of the perform is temporarily heated to a temperature below a melting point of the synthetic resin, e.g., approximately 200° C. to 230° C. in the case of polyethylene-terephthalate resin, and is subsequently maintained at a temperature within a range in which crystallization of the synthetic resin is promoted, e.g., approximately 170° C. to 195° C. in the case of polyethylene-terephthalate resin. Therefore, it is possible to shorten the time required for reaching a temperature range in which crystallization is promoted with a stable environmental temperature state of the neck portion, and, hence to shorten the time required for the crystallization treatment of the neck portion, thereby allowing a significant improvement in productivity.
For carrying out the present invention, it is preferred that the heat treatment step is performed by a heater having a heating output that is controlled to a relatively high level in the first stage of the heat treatment, and to a relatively low level in the second stage. In this instance, it is readily possible to realize an optimum temperature control for crystallizing the neck portion in a relatively short time, by a control of the heating output of the heater.
In the second stage of the heat treatment, it is preferred that air shower is applied to an outer surface at the neck portion of the preform, in the second stage of the heat treatment. In this instance, in addition to the heating output control of the heater, the temperature of the neck portion in the second stage can be readily maintained to an optimum value by a flow rate control of the air from the air nozzle, thereby allowing minimization of the loss time.
Upon application of air shower, it is preferred to prevent flow of air into the neck portion of the preform by a shield that covers an opening of the neck portion. In this instance, it is possible to reduce the temperature difference between the outer and inner surfaces of the neck portion, thereby suppressing formation of wrinkles or the like surface defects in the opening of the neck portion.
The present invention will be more fully explained below with reference to preferred embodiment shown in the accompanying drawings.
According to the present invention, bottle-type containers made of crystalline thermoplastic synthetic resin, such as polyethylene terephthalate resin, are produced by using a preform that corresponds to the container, subjecting the body portion of the preform to a biaxial stretching blow molding within a mold, and heating and thereby crystallizing the neck portion of the preform. Such a production method is more fully described in the above-mentioned U.S. Pat. No. 4,375,442, the disclosure of which is herein incorporated by reference.
As shown in
The crystallization treatment of the neck portion 11 of the preform 10 is carried out by a heat treatment device 20 as shown in
With the heat-treatment device 20 shown in
According to the present invention, as shown by the solid line Ta in
In contrast, it has been a conventional practice that, as shown by the imaginary line Tb in
To be more specific, when the preform 10 is comprised of polyethylene terephthalate resin, according to the present invention, the surface temperature T of the neck portion 11 is temporarily elevated in the first stage from the starting time of the heating (t=0 to t1), to a temperature T3≅220° C. that is immediately below the melting point, and then lowered to a temperature range R between T2≅190° C. and T1≅170° C. (T1≦T≦T2) in which crystallization of the synthetic resin can be effectively promoted, and maintained in such temperature range R. To this end, for example, it is preferred to control the heating output of the heater by the controller 24 to a relatively high level in the first stage (i.e., in the case of a heater having a maximum output of 2 kW, approximately 95% of the maximum output), and to a relatively low level in the second stage (i.e., in the case of a heater having a maximum output of 2 kW, approximately 70% of the maximum output). In this instance, it is readily possible to realize an optimum temperature control for crystallizing the neck portion 11 in a relatively short time, by a control of the heating output of the heater 22 by means of the controller 24. Incidentally, instead of changing the heating output of the heater 22 in a stepwise manner across the first stage to the second stage, it may be changed in a continuous manner.
In the second stage of crystallization treatment, in order to stably maintain the surface temperature T of the neck portion 11 within the above-mentioned temperature range R, in addition to the control of the heating output of the heater 22, air shower may be ejected from the air nozzle 23 and applied to the outer surface 11a of the neck portion 11. In this instance, since the shield 25 covers the opening 14 of the neck portion 11, it is possible to prevent air from flowing into the neck portion 11 and to reduce the temperature difference between the outer surface 11a and the inner surface 11b of the neck portion 11, thereby suppressing formation of wrinkles or the like surface defects in the opening 14 of the neck portion 11.
It has been experimentally confirmed in connection with preforms made of polyethylene terephthalate resin that, when the operations of the heater 22 and the air nozzle 23 are adequately controlled, the time required for crystallization of the neck portion 11 can be reduced by an amount up to approximately 30%, as compared with the above-mentioned prior art.
It will be appreciated from the foregoing description that the present invention provides a novel production technology for bottle-type synthetic resin containers, wherein crystallization step for the neck portion of the container can be carried out in a relatively short time.
It is needless to say that the present invention is not limited to the above-explained embodiment, and may be carried out with various modifications. Thus, for example, while the neck portion 11 has been explained as being subjected to crystallization before the biaxial stretching blow molding of the preform 10, in the above-explained embodiment, the neck portion 11 may be subjected to crystallization after the biaxial stretching blow molding of the preform 10.
Number | Date | Country | Kind |
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2001-199130 | Jun 2001 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP02/06516 | 6/27/2002 | WO | 00 | 8/3/2004 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO03/002333 | 1/9/2003 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3562372 | Schjeldahl et al. | Feb 1971 | A |
3889039 | Wainer | Jun 1975 | A |
4318882 | Agrawal et al. | Mar 1982 | A |
4375442 | Ota et al. | Mar 1983 | A |
4476084 | Takada et al. | Oct 1984 | A |
4836971 | Denis et al. | Jun 1989 | A |
4846656 | Denis et al. | Jul 1989 | A |
4933135 | Horwege et al. | Jun 1990 | A |
5540868 | Stouffer et al. | Jul 1996 | A |
5614145 | O'Kane | Mar 1997 | A |
6168740 | Koch et al. | Jan 2001 | B1 |
Number | Date | Country |
---|---|---|
A2 0 868 989 | Oct 1998 | EP |
A 60-927 | Jan 1985 | JP |
A 61-79627 | Apr 1986 | JP |
A-02-034321 | Feb 1990 | JP |
A-02-209219 | Aug 1990 | JP |
A 9-239852 | Sep 1997 | JP |
A-11-235751 | Aug 1999 | JP |
Number | Date | Country | |
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20040251579 A1 | Dec 2004 | US |