Method and device for sterilising containers
The method of applying sterilizing fluid to preforms and activating it with UV-C radiation before heating addresses the inefficiencies of existing sterilization methods, ensuring thorough surface sterilization and reducing residues, thus improving container sterility.
Patent Information
- Application Number
- PCT/EP2025/053112
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-02-08
- Filing Date
- 2025-02-06
- Publication Date
- 2025-08-14
AI Technical Summary
Existing methods for sterilizing preforms before blow molding into containers are complex, costly, and inefficient, particularly in ensuring the outer surface of preforms is germ-free without introducing significant residues into the heating process.
A method involving application of a sterilizing fluid to the preform's outer surface, followed by UV-C radiation to activate and decompose the fluid before heating, using a coordinated transport and irradiation system to ensure complete surface sterilization without penetrating the interior.
Achieves efficient and safe sterilization of preform surfaces, reducing the need for extensive rinsing and minimizing sterilizing fluid residues in the heating process, thereby enhancing the sterility of the final containers.
Smart Images

Figure EP2025053112_14082025_PF_FP_ABST
Abstract
Description
[0001] Method and device for sterilizing containers
[0002] Description
[0003] The invention relates to a method and a device for forming preforms made of a thermoplastic material into containers, in which a preform is guided along a transport path through sections of a forming device. In particular, the present invention relates to a method and a device for sterilizing preforms or containers while the preform is guided through certain sections of the forming device.
[0004] The production of containers by blow molding from preforms made of a thermoplastic material, for example from PET (polyethylene terephthalate) preforms, is known. The preforms are fed to various processing stations within a blow molding machine, also referred to here as a device for forming preforms. Typically, a blow molding machine has a heating device for tempering or thermally conditioning the preforms, as well as a blowing device with
[0005] at least one blow molding station, in the area of which the previously temperature-conditioned preform is expanded into a container.
[0006] Options for tempering preforms are explained, for example, in DE 2352 926 A1. Tempering or thermal conditioning refers to heating the preform to a temperature suitable for forming and, if necessary, imprinting a temperature profile on the preform in the longitudinal and / or circumferential directions.
[0007] The expansion into the finished container takes place, for example, using a compressed gas, in particular compressed air, as a pressure medium, which is introduced into the preform to be expanded at a forming pressure. The process sequence for this type of preform expansion is explained in DE 43 40 291 A1. The basic structure of a blow molding station is described in DE 42 12 583 A1. According to a typical further processing method, the containers produced by blow molding are fed to a downstream filling device and filled there with the intended product or filling material. However, it is also possible to produce containers from preforms and simultaneously fill them with a filling material, which is supplied as a hydraulic pressure medium to expand the preform or to shape the container with a forming and filling pressure. This means that the respective preform is formed into the container simultaneously with the filling.Such methods and devices for simultaneously forming and filling preforms into containers are known in the art under the designations "FormFill" or "LiquiForm." The present invention can be advantageously applied to both of these forming methods and both types of devices for forming preforms.
[0008] Sterilization is understood here to mean, for example, a germicidal treatment using chemical sterilizing fluids. The present disclosure should be viewed from the perspective that, for example, germ-sensitive beverages must be filled under aseptic or sterile conditions in order to achieve the desired shelf life. This requires, for example, that the containers into which the beverages are filled meet these sterile conditions, i.e. are largely germ-free at least on the surfaces that come into contact with the contents. For this purpose, finished containers can be sterilized before filling or preforms can be sterilized before they are converted into containers, thereby preventing subsequent recontamination. In this way, both the preforms and later the containers produced from them can be sterilized.Sterilizing the preform has the advantage over sterilizing the container produced from it that the surface to be sterilized is much smaller, so that the amount of sterilizing fluid to be used can be smaller.
[0009] Typically, after the blow molding process, a rinsing with a sterile rinsing fluid is provided to remove traces of the sterilizing fluid from the finished container. This is described, for example, in WO2014 / 139624A1. The blow molding process itself already leads to a rinsing effect, because the blow gas used and the venting of the used blow gas contribute to the removal of the sterilizing fluid, if it is still contained in the preform before forming. A sterilizing fluid, such as hydrogen peroxide, can also decompose and is therefore no longer contained in the preform or the container.
[0010] From DE 10 2014 010 283 A1, for example, it is also known to rinse a preform with a sterilizing fluid while the preform is already in the forming station. It is also known to sterilize a preform before it reaches the forming station (WO 2010 / 020530 A1), e.g., on the way between the heating device and the forming station, or e.g., before the preform enters the heating device of a blow molding machine, or e.g., before a preform enters a blow molding machine, e.g., in the area of a feed rail for the preforms. From EP 2 588 295 A1, it is also known to sterilize a preform within the heating device.
[0011] A common procedure for sterilizing preforms, for example, is to dose hydrogen peroxide (H2O2) into the preform, heat the preform together with the dosed hydrogen peroxide in the heating device, and then blow mold a finished container. In this process, the majority of the hydrogen peroxide used decomposes into oxygen and water. It is also known to add hydrogen peroxide between the heating device and the forming device. Upon decomposition to ambient pressure, the finished container is rinsed with 25 to 30 times the bottle's volume, thus reducing any remaining hydrogen peroxide to a tolerable level.
[0012] The aforementioned methods and devices all have their own specific disadvantages and are sometimes complex and costly. The present invention aims to provide an efficient and safe method and device that, in particular, enables sterilization of the outer surface of the preform.
[0013] The present disclosure provides a method for forming preforms made of a thermoplastic material into containers. In this method, a preform is guided along a transport path through sections of a forming device. A sterilizing fluid is first applied to an outer surface of a preform. The sterilizing fluid can also be introduced into an interior of the preform. The application and introduction of the sterilizing fluid both occur before heating the preform in a heating device. After applying the sterilizing fluid to the outer surface of the preform, only the outer surface is irradiated with UV radiation from one or more UV lamps, preferably UV-C lamps, in order to activate the sterilizing fluid on the outer surface of the preform.This means that irradiation only occurs on the outer surface and, due to the absorption properties of the preform material, this radiation does not penetrate into the interior and therefore does not reach the sterilizing fluid inside the preform. Irradiation with UV radiation or UV-C radiation occurs in such a way that the sterilizing fluid on the outer surface essentially decomposes according to the reaction equation before the preform is heated in the heating device, i.e., before it reaches the heating section with the heating devices in the heating device. Thus, when the preform enters the heating section of the heating device, the outer surface is largely free of sterilizing fluid, and thus no significant sterilizing fluid residues are introduced into the heating section.The preform is then heated to a forming temperature in the heating section(s) within the heating device, whereby the heating activates the sterilizing fluid inside the preform. The sterilizing fluid contained inside the preform is less of a concern because the preforms are generally guided through the heating device using transport mandrels that clamp into the mouth area of the preform so that the preforms are at least partially closed in the mouth area and sterilizing fluid is prevented from escaping. The transport mandrels offer the option of sealing the preform interior from the surrounding heating device. In the methods and devices described, a transport mandrel is therefore advantageously used for transport through the heating device. Preferably, the entire outer surface of the preform is irradiated with UV-C radiation.The above process makes it possible to sterilize the preform externally before heating it in the heating device and also to remove any sterilizing fluid from the outside. This reduces or prevents the introduction of sterilizing fluid into the heating device.
[0014] The sterilizing fluid is advantageously supplied to the application device in vapor or aerosol form. The preform is advantageously at a temperature that is at or below the condensation temperature of the vapor or aerosol sterilizing fluid. In this way, the sterilizing fluid condenses on the outer and inner surfaces of the preform. The vapor or aerosol supply (through a suitable arrangement of discharge nozzles and a suitable amount of vapor / aerosol) is carried out in such a way that a sufficiently complete condensation film forms on the inside and outside of the preform. This ensures reliable coverage of the surfaces with sterilizing fluid, resulting in full-surface sterilization.
[0015] When irradiated with ultraviolet radiation, the preform is advantageously rotated around its longitudinal axis relative to the UV radiation source using a transport device. The advantage is that this avoids areas that receive less radiation than others. Alternatively, the most homogeneous illumination possible would be required across the entire circumference (and, of course, across the entire height) of the preform. If the preform is rotated around its longitudinal axis relative to the UV radiation sources, this is not necessary. Due to the rotation of the preform, it may also be sufficient to irradiate the preform from only one side.
[0016] According to a first alternative, it can be provided that the outer side of the preform is not used at all for gripping (engaging) by the transport devices. Instead, the gripping or engaging of the preform can take place inside a mouth area of the preform, as is known for transport mandrels.
[0017] According to a second alternative, the contact area on the preform can be variable. The UV radiation sources (UV-C lamps) can be arranged, for example, along a circumference, in particular a partial circumference, of at least two transfer devices, in particular two transfer wheels, namely a first and a second transfer wheel. In this configuration, the preform completes at least one partial revolution (or partial path) during irradiation on each transfer device or transfer wheel. This arrangement allows for a practical arrangement of the UV radiation sources only on one side of the transport path and following the curved circulation path of the preform, thus maintaining a constant distance.Further advantageously, between the first partial revolution on the first transfer wheel and the second partial revolution on the second transfer wheel, the area of engagement changes, such that the first transfer wheel releases the preform and the second transfer wheel grasps it. For this purpose, the transfer wheels can advantageously have suitable grippers. This ensures that areas covered or shaded by the grippers during the first partial revolution are exposed during the second partial revolution on the second transfer wheel, and vice versa. As a result, all areas of the preform are freely accessible to the UV radiation from the radiation sources, at least temporarily.
[0018] The preform can complete a partial revolution around the first transfer wheel, being held, for example, above one of its neck rings in a first gripping area. It is then transferred to a subsequent transfer wheel, where it makes another partial revolution, being held, for example, below the neck ring in a second gripping area. Furthermore, this design makes it possible to arrange the UV lamps on only one side of the transport path. By changing the gripping area, the preform is irradiated from a first side during the first partial revolution and from the opposite side during the second partial revolution. This corresponds to a rotation of 180° during the transfer.
[0019] The UV lamps can be arranged, for example, in a meandering pattern along the transport path. The arrangement of the UV lamps can, in particular, follow the circulation path (one partial circulation each) of the first and second transfer wheels. The advantage is that this extends the path and thus the exposure time within which the UV radiation acts, thus improving the overall sterilization result. This configuration can also reduce the amount of sterilizing agent or the concentration of the sterilizing agent. Furthermore, the length of the transport path during irradiation with UV-C radiation can be selected such that the desired almost complete evaporation (decomposition) of the sterilizing fluid applied to the outer surface has occurred by the time it enters the heating device.
[0020] UV lamps can also be advantageously arranged on both sides of the preforms. This can, for example, reduce the irradiation duration and / or irradiation intensity.
[0021] According to a further embodiment, UV lamps can be arranged within the heating device, advantageously before the start of the heating section. If the preforms are transported on transport mandrels within the heating device, the preforms can be rotated around their own longitudinal axis relative to the UV-C lamps by means of the transport mandrels while they are moved past the UV-C lamps. It is further advantageous if the transport mandrels only engage the preforms in a clamping manner. Then the preform is not covered or shaded on its outer surface, which improves the exposure and coverage by the UV-C radiation. Advantageously, the irradiation with UV radiation or UV-C radiation can take place in at least three zones that lie one above the other in the vertical direction.Accordingly, at least one radiator can be directed at a preform mouth section, at least one radiator can be directed at a preform crown, and at least one radiator can be directed at a preform shank. If at least this three-way division exists, shadows are advantageously avoided. For example, the preform's support ring or neck ring could cast such a shadow.
[0022] The individual radiators can be precisely adjusted in their distance from the preforms, e.g., to adapt to changing preform geometries. When using longer preforms, for example, the radiation source for the preform's crown could be moved. This is a further advantage of the above-described tripartition or division into three or more zones.
[0023] The majority of UV radiation sources or UV lamps can be arranged in or on a common support. The decisive factor is the arrangement of the UV radiation sources or UV lamps and their orientation to the specified areas.
[0024] The UV lamps can advantageously be shielded. Shielding of the UV radiation can be achieved by providing a shielding enclosure that extends at least along the region of the transport path in which the UV lamps are arranged.
[0025] The enclosure can also be used to prevent volatile sterilizing fluid from escaping into the environment. The enclosure can provide a suction area for the sterilizing fluid, extending at least from the device for applying the sterilizing fluid to the end of the UV irradiation. Within this suction area, both air and volatile sterilizing fluid can be suctioned out of the enclosure, and preferably sterile air can be actively or passively supplied to compensate for the suctioned air. The present disclosure also provides a device for forming preforms made of a thermoplastic material into containers. The preform is guided downstream within the forming device along a transport path by means of at least one transport device.The device comprises, along the transport path in the downstream direction, a feed device for feeding a preform into the forming device, an application device for applying a sterilizing fluid to an outer surface of the preform and for introducing the sterilizing fluid into the interior of the preform, an irradiation device with one or more UV radiation sources for irradiating the outer surface of the preform with ultraviolet radiation, and a heating device with heating devices along a heating section for heating the preform to a forming temperature. Due to the preform material, the UV radiation does not penetrate into the interior of the preform.The device for applying sterilizing fluid, the irradiation device and the heating device are configured and coordinated with one another in such a way that in the irradiation device the sterilizing fluid on the outer surface is substantially evaporated (or decomposed) before the preform is heated in a heating section of the heating device, and during the subsequent heating of the preform to a forming temperature in the heating device, the sterilizing fluid is applied inside the preform.
[0026] The radiation source can advantageously be designed in multiple parts, particularly three parts. One or more first radiation sources (UV-C emitters) can be directed at the mouth section, one or more second radiation sources (UV-C emitters) at the shaft, and one or more radiation sources (UV-C emitters) at the tip of a preform. At least one radiation source, advantageously several or all radiation sources, can be adjustable with respect to their distance from the preform, particularly with respect to their distance from a tip of the preform. This enables adaptation to different preform geometries or preform shapes.
[0027] The transport device used to move the preform through the irradiation device is advantageously configured so that the preform rotates at least partially around its longitudinal axis relative to the radiation sources (UV-C lamps) while passing through the irradiation device. This allows irradiation to occur from only one side.
[0028] The device advantageously comprises a first and a second transfer wheel, wherein the irradiation device is arranged along a first partial circumference of the first transfer wheel and a second partial circumference of a second transfer wheel. Advantageously, the UV lamps are thus arranged along a circumference, in particular a partial circumference, of at least two transfer devices, in particular transfer wheels, namely a first and a second transfer wheel, wherein the preform completes at least one partial revolution on each transfer wheel during irradiation.
[0029] Advantageously, the first transfer device (first transfer wheel) has first grippers and the second transfer device (second transfer wheel) has second grippers, which are designed to engage different areas of the preform. Thus, between the first partial revolution on the first transfer wheel and the second partial revolution on the second transfer wheel, a re-gripping takes place such that the first transfer wheel releases the preform and the second transfer wheel grasps the preform. This ensures that areas that are covered or shaded by the grippers during the first partial revolution are exposed during the second partial revolution on the second transfer wheel and vice versa. The preform can complete a partial revolution around the first transfer wheel and is held, for example, above one of (its) neck rings. It is then transferred to a subsequent transfer wheel and makes a further partial revolution there, wherein the preform is, for example,is held below the neck ring.
[0030] The UV lamps can be arranged in a meandering pattern, following the circulation path on the first and second transfer wheels. This increases the distance covered by the UV radiation, thus improving the overall exposure time and thus the sterilization result. This design also allows for a reduction in the amount of sterilizing agent or the concentration of the sterilizing agent. In another design, the UV lamps can be arranged on both sides of the preforms. This allows for a reduction in the distance.
[0031] In one embodiment, however, UV lamps or UV-C lamps can be arranged within the heating device upstream of the heating section, i.e., upstream of the preform heating. Advantageously, the preforms are moved past the UV-C lamps on transport mandrels and further advantageously rotated around their longitudinal axes by means of the transport mandrels. The transport mandrels are advantageously designed to engage the preforms exclusively in a clamping manner. Furthermore, the UV lamps or UV-C lamps can be arranged within the heating device on both sides along the transport path of the preforms through the heating device.
[0032] The total exposure time of the UV radiation, possibly during the first and second partial cycles, can be in the order of magnitude of less than 5 seconds, preferably in the range of 1 to 2 seconds. Furthermore, the irradiation duration or exposure time can also advantageously be in the range of 0.5 to 1 second.
[0033] Ultraviolet radiation, abbreviated to UV, UV radiation, or UV light, is electromagnetic radiation in the optical frequency range (light) with shorter wavelengths than the light visible to humans. Generally, three ranges of UV radiation are distinguished: UV-A in the range from 380 nm to 315 nm, UV-B in the range from 315 nm to 280 nm, and UV-C in the range from 280 to 100 nm. The UV radiation in the context of the present disclosure is selected such that it is particularly suitable for the forced decomposition of H2O2 into H-O radicals. For this purpose, a wavelength range of 280 nm to 200 nm is particularly advantageously selected for the operation of the UV lamps. This is particularly advantageous because ozone forms below 200 nm, which must be extracted if the concentration is too high. This is preferably UV-C radiation because it is particularly suitable for the decomposition of H2O2 into HO. _To accelerate or force radicals. However, somewhat longer wavelength ranges of UV radiation are also generally considered, although their effect may then be correspondingly less. According to the present disclosure, it has been recognized, among other things, that UV radiation in the 254 nm range is not only suitable for directly killing germs, but is also particularly advantageous for activating sterilizing fluids, such as H2O2 (hydrogen peroxide). The present disclosure utilizes this finding, among other things.
[0034] Advantageously, the radiation source can be configured in at least three parts and be arranged such that at least one radiator is directed toward a mouth section of the preform, at least one radiator is directed toward a crest of the preform, and at least one radiator is directed toward a shaft of the preform. This way, shadowing can be avoided.
[0035] Further advantageously, the UV emitters can be arranged at a variable distance with respect to a dome and / or a mouth region and / or a shaft of the preform.
[0036] The irradiation device may comprise a housing. The housing may be designed as a tunnel, and the housing may be configured to shield the ultraviolet radiation from the radiation sources in a direction away from the preform.
[0037] The enclosure may include a suction device for the sterilizing fluid. The suction device for the sterilizing fluid may be located outside the enclosure. In this respect, the enclosure may be configured to keep the area enclosed by the enclosure free of volatile sterilizing fluid, preventing it from escaping to the outside.
[0038] In addition, the enclosure can be connected to a sterile air source configured for the supply or pressurization of sterile air. "Supply" is to be understood as passive, in which sterile air flows in due to the suction by the aforementioned suction device to fill the space created. "Pressurization" involves actively pumping excess pressure toward the enclosure. The disclosure is explained in more detail below using preferred embodiments and the accompanying figures. The drawings are not necessarily to scale. In the figures, identical or essentially functionally identical or similar elements are usually designated by the same reference numerals. They show:
[0039] Fig. 1 is a schematic representation of a device for treating containers under sterile conditions using the example of a treatment device for producing finished containers from preforms and
[0040] Fig. 2 is a simplified schematic representation of a section of Fig.1,
[0041] Fig. 3A, 3B each show a simplified schematic lateral view of a preform passing through the irradiation device and
[0042] Fig. 4 is a simplified schematic representation of an embodiment of a further possibility of UV irradiation of the preforms.
[0043] The illustration in Fig. 1 shows a schematic representation of a device for forming preforms 1 or containers 2. Here, in a concrete example, a device for producing containers 2 from thermally conditioned preforms 1. The device comprises a blow molding device 30, which in the embodiment shown here is a blow molding device 30 of rotating design with a forming wheel 32 and with several forming stations 31 arranged circumferentially thereon for forming the preforms 1 into containers 2. In the present exemplary embodiment, this can be a blow molding device 30 that forms the containers 2 from the preforms 1 using compressed air, or a blow molding device 30 that forms the containers 2 by introducing a liquid filling material under pressure, which is supplied as a hydraulic pressure medium for expanding the preform 1 and / or for forming the container 2.
[0044] The preforms 1 and containers 2 are transported downstream along a transport path in the following manner. Via a feed 40a, e.g. designed as a feed rail or as an air conveyor, the preforms 1 are transferred to a separating wheel 40 which rotates as indicated by arrow 400, driven by a drive (not shown). The preforms 1 are transferred by means of the separating wheel 40 to a heating device 50 which has heating devices 51 along a heating section for thermally conditioning the preforms 1. The preforms 1 are guided in the direction of rotation (transport direction) indicated by arrow 500 along the heating devices 51 or along the corresponding heating sections and then transferred to the rotationally driven transfer wheel 60 which rotates in the direction of arrow 600. From the transfer wheel 60, the preforms 1 are transferred to the blow molding device 30.Finished containers 2 are formed from the preforms 1 by means of the forming stations 31. After the finished containers 2 have been formed from the preforms 1, they are transferred to an output wheel 70, which rotates in the direction of arrow 700. The containers 2 are then transported away by means of a removal device 70a. The containers 2 can be forwarded here, for example, via further transport devices (not shown) to a device for filling the containers 2. Transporting away here therefore generally includes forwarding to the next treatment, which may consist of filling, closing, inspection, or other steps.
[0045] The preforms 1 and containers 2 can be held during transport and, if necessary, during individual treatment steps by means of transport mandrels or grippers. In a known manner (not shown), the transport of the preforms 1 through the heating device 50 can advantageously be carried out by a mandrel chain with transport mandrels connected to form an endless chain. The structure of the heating device 50 is generally known and therefore will not be described in detail here.
[0046] For the continuous conveyance of the preforms 1 or containers 2 along a transport path through the overall device of Figure 1, the aforementioned rotational movements of the aforementioned wheels 40, 60, 70, the blow molding device 30, and the heating device 50 are coordinated with one another, e.g., by synchronization and / or a common drive. The transport path of the preforms 1 or containers 2 is defined by the transport path along a partial circumference of the transfer wheels 40, 60, 70, along a partial circumference of the blow molding device 30, and along a partial circulation area of the mandrel chain.The sequence of spaced-apart preforms 1 and containers 2 illustrated in Figure 1, starting from the separating wheel 40, passing through the heating device 50, then passing through the transfer wheel 60, continuing through the blow molding device 30, while the preforms 1 are transformed into finished containers 2 on the forming wheel 32, continuing onto the discharge wheel 70, and finally ending at the discharge device 70a, corresponds to this transport path through the illustrated overall arrangement. In the context of the present disclosure, the separating wheel 40, the transfer wheel 60, and the discharge wheel 70 are generally referred to as "transfer devices" or "transfer wheels."
[0047] The forming stations 31 of the blow molding device 30, for example, consist of multi-part outer molds, against whose inner contours the preforms 1 are expanded by means of compressed air or filling material. A machine housing 37a, 37b is indicated by dotted lines.
[0048] There is a control unit 20 of the forming device 30. This control unit 20 could also control the heating device 50 or other control functions of the overall device. However, it is also conceivable that additional control units could be provided to perform these additional control functions.
[0049] According to one embodiment, sterilizing fluid for sterilizing the preforms 1 is introduced into the interior of the preform 1 before or upon entry into the heating device 50. Within the scope of the present disclosure, the application of the sterilizing fluid to an outer surface of the preform 1 and, if appropriate, the introduction of the sterilizing fluid into the interior can take place, for example, within a loading device 43 not shown in detail in Fig. 1. This is shown in more detail in Fig. 2. The preform 1 can be at least partially and / or temporarily closed after the introduction of the sterilizing fluid into the interior, e.g., by a transport mandrel that guides the preform through the heating device 50. In any case, the preform is exposed to the sterilizing fluid in the loading device 43 before the heating device, i.e.The preforms 1 pass through the loading device 43 before they enter the heating device.
[0050] After sterilization, the preforms 1 are preferably rinsed with a sterile fluid. The rinsing fluid can be sterile air, for example. Inert gases, such as nitrogen or carbon dioxide (also referred to as carbon dioxide), can also be used as a rinsing fluid. One possible rinsing fluid could also be steam. The rinsing fluid is advantageously selected with regard to the subsequent filling material, which may be used for forming. In the case of a carbonized filling material, carbon dioxide, for example, could be a preferred rinsing fluid. The rinsing fluid is generally gaseous, i.e. a rinsing gas. The rinsing step is preferably carried out after the preforms have left the heating device or immediately before or upon leaving the heating device.
[0051] Fig. 2 is a simplified schematic representation of a section of Fig. 1. Here, the separating wheel 40 is divided into a first transfer wheel 40-1 and a second transfer wheel 40-2. In addition, a device for applying sterilizer fluid 43 is shown or arranged between the feed 40a for the preforms 1 and the first transfer wheel 40-1. An irradiation device 100 is provided along the transport path of the preforms 1, which is defined, among other things, by the transfer wheels 40-1 and 40-2. This irradiation device
[0052] 100 has a plurality of radiation sources 101. These radiation sources
[0053] 101 emit UV radiation and particularly preferably UV-C radiation. Furthermore, in the context of the present disclosure, the radiation sources or UV emitters are preferably understood as UV-C emitters. In the present context, UV-C emitters are emitters that have a particularly strong emission in a wavelength range from 200 nm to 280 nm, and more advantageously also at 254 nm. The term UV-C emitter encompasses all common types of emitters, such as diodes, i.e., light-emitting diodes such as LEDs (Light Emitting Diodes), mercury vapor lamps, excimer lamps, and others.
[0054] It is advantageous if the preforms 1 are rotated about their longitudinal axis during transport through the irradiation device 100. This allows the UV radiation to impinge as evenly as possible on the entire outer surface of the preform 1. In certain embodiments, the radiation sources 101 can then be provided on only one side of the transport path, thus reducing the number of required radiation sources and the complexity of the arrangement.
[0055] In the embodiment shown here with two transfer wheels 40-1 and 40-2, the preform 1 follows a first partial revolution TU 1 of the first transfer wheel 40-1 and then a second partial revolution TU2 of the second transfer wheel 40-2. This results in a meandering transport path for the preforms 1. The length of the transport path through the irradiation device 100, i.e. the time during which the preforms 1 are exposed to irradiation, can be selected such that as much of the sterilizing fluid on the outer surface as possible is activated by the radiation sources (preferably UV-C lamps) and has thus already disintegrated or disappeared before entering the heating device 50.
[0056] The radiation sources 101 are preferably designed as UV-C lamps and distributed along the transport path. The irradiation device 100 (and with it the radiation sources 101) thus follows, in a curved manner, a first partial revolution of the preforms 1 around the first transfer wheel 40-1 and a second partial revolution of the preforms 1 around the second transfer wheel 40-2. The distance between the radiation sources and the preforms guided along them preferably remains constant.
[0057] Along the transfer wheels 40-1 and 40-2, the preforms are held by grippers 44 (44-1 and 44-2). These grippers 44-1, 44-2 can grip the preforms 1 preferably above or below a neck ring 6 (see Fig. 3). Between the first transfer wheel 40-1 and the second transfer wheel 40-2, a transfer takes place from the grippers 44-1 of the first transfer wheel 40-1 to the grippers 44-2 of the second transfer wheel 40-2. During the transfer, a re-gripping is provided such that the grippers 44-1 of the first transfer wheel 40-1 grip the preform 1 at a first gripping area and the grippers 44-2 of the second transfer wheel 40-2 grip the preform 1 at a second gripping area, wherein the first gripping area is different from the second gripping area and the two gripping areas advantageously do not overlap.This ensures that the areas in which the grippers 44-1 or 44-2 cover or shade the outer surface of the preform in one of the gripping areas also receive sufficient UV-C radiation.
[0058] Alternatively, the preforms 1 can be guided along the first and / or second transfer wheels 40-1 and 40-2 and through the irradiation device 100 with transport mandrels which clamp only in the mouth region 3 (cf. Fig. 3) of the preforms 1.
[0059] A housing 110 is provided along the transport path between the application device 43 for the sterilizing fluid and the end of the irradiation device 100. This housing preferably also extends along the application device 43, thus also serving as the housing for the application device 43. However, a housing for the application device 43 can also be directly adjacent to the housing 110. In this respect, in one possible embodiment, the irradiation device 100 could also extend at least slightly into the application device 43, such that the irradiation with UV-C radiation takes place as soon as possible after the sterilizing fluid has been applied to the outer surface of the preforms 1.
[0060] Figures 3A and 3B each show a simplified schematic lateral representation of a preform 1 passing through the irradiation device 110. Figure 3A shows the preform 1 during a first partial revolution TU1 around the first transfer wheel 40-1. The preform 1 comprises three regions, namely the mouth region 3, the shaft 4 (also side or lateral region), and the tip 5. The preform 1 also has a neck ring 6. During the first partial revolution TU1 around the first transfer wheel 40-1, the preform 1 is held above the neck ring 6 by a first gripper 44-1 (indicated by dashed lines). In addition, the preform 1 is irradiated from the outside with UV-C radiation by the UV radiation sources or UV-C radiators 101-1, 101-2, 101-3, and 101-4. Optionally, additional radiators 101-5, 101-6 can also be provided, which expose the preform 1 to UV-C radiation from the opposite side.On the outer surface, in particular on the areas of the mouth section 3, shaft 4 and tip 5, and of course also on the neck ring 6, there is condensed sterilizing fluid that is activated by the UV-C radiation. During the first and second partial circulation TU1, TU2, the sterilizing fluid gradually evaporates (through activation and decomposition). Figure 3B shows the preform 1 during the second partial circulation TU2 around the second transfer wheel 40-2. The second gripper 44-2 of the second transfer wheel 40-2 now engages below the neck ring 6. As a result, areas covered and shaded by the first gripper 40-1 from the first partial circulation TU1 are released and can be reached by the UV-C radiation during the second partial circulation TU2. The condensed sterilizing fluid located there is thereby activated.In addition, the preform 1 has rotated approximately 180° around its own longitudinal axis LA (as shown below) relative to the UV-C lamps 101-1, 101-2, and 101-3 by being gripped (transferred) from the first transfer wheel 40-1 to the second transfer wheel 40-2. Thus, the preform 1 now receives UV radiation on the other side. This enables a one-sided arrangement of the UV radiation sources along the transport path. Preferably, however, the preform 1 is rotated around its longitudinal axis (LA) on at least one partial circuit TU1, TU2, more preferably on both partial circuits TU1, TU2, with the advantages mentioned in the general description. Optionally, additional UV-C lamps 101-5 and 101-6 can also be provided during the second partial cycle TU2, which irradiate the preform 1 from the opposite side, so that during one or both partial cycles, both sides are irradiated with UV-C radiation.
[0061] The housing 110 can be attached laterally or comprehensively and is either closed off from one side by the respective transfer wheel 40-1, 40-2 or continued on the side of the respective transfer wheel 40-1, 40-2. The housing 110 can also extend at least partially beneath the preform 1, at least as a support for a UV lamp 101-4 on the top.
[0062] The enclosure 110 is designed to shield UV radiation in a direction away from the preform 1 and, if applicable, the transfer wheels 40-1 and 40-2, and to prevent the evaporating sterilizing fluid from escaping. The sterilizing fluid is extracted by the suction devices 120 described herein. Sterile air can be supplied passively or actively to the enclosure 110 by sterile air sources.
[0063] The radiators 101-1, 101-2, 101-3, 101-4, 101-5, and 101-6 are mounted at variable spacing and positions. This is illustrated by the arrows P. This allows for different preform geometries to be accommodated. The radiators 101-1, 101-2, 101-3, 101-4, 101-5, and 101-6 can advantageously all be arranged or attached to a single support.
[0064] In one embodiment, the preforms 1 run into the heating device 50 after irradiation with UV radiation. Alternatively or additionally, the irradiation can continue into the heating device or take place within the heating device 50, but upstream of the heating section 51 or upstream of the heating devices that heat the preforms. A film of sterilizing fluid is then still present on the inner surface of the preforms 1. The outer surface of the preform is essentially free of sterilizing fluid at this time. Due to the heating of the preforms in the heating device or the heating section, the activation and decomposition of the sterilizing fluid takes place inside the preforms 1, so that the sterilization of the inner region of the preform only takes place in the heating device or in the heating section.The UV lamps 101-1, 101-2, 101-3, 101-4, 101-5, 101-6 do not reach this inner film because the material of the preform 1 is not penetrated by this UV radiation.
[0065] Fig. 4 shows a simplified representation of a further embodiment for the irradiation of the preforms 1. In this embodiment, in addition to or alternatively to the irradiation shown in Fig. 3A and / or 3B, the preforms 1 are irradiated with UV-C radiators 101-1 to 101-7 within the heating device 50 up to shortly before the heating section 51, i.e. up to shortly before the actual heating of the preforms 1. In this case, the UV irradiation can advantageously occur from two sides, since the preforms 1 move in a straight line. This two-sided irradiation is illustrated in Figs. 2 and 3 by the additional radiators 101-5, 101-6 and 101-7 shown in dashed lines. Within the heating device 50, the preforms 1 can advantageously be transported using transport mandrels 45. These engage in a clamping manner in the interior (mouth region 3) of the preforms 1.By means of the transport mandrel 45, the preform 1 can be advantageously rotated about its longitudinal axis during irradiation with UV-C radiation.
[0066] In some embodiments, the transport mandrels 45 can be used to extract the sterilizing fluid and / or supply sterile air. Such transport mandrels 45 could advantageously be provided, for example, to remove the sterilizing fluid at the end of the transport through the heating device 50 and replace it with sterile air or an inert gas, e.g., through a purging process. In an alternative embodiment, the transport mandrels 45 can also be limited to partially or completely sealing the preform interior from the environment.
[0067] List of reference symbols
[0068] 1 preform
[0069] 2 finished containers
[0070] 3 Mouth area of the preform
[0071] 4 Preform shaft
[0072] 5 Preform top
[0073] 11 Mouth section of the preform
[0074] 20 Control unit
[0075] 30 Blowing device
[0076] 31 forming stations
[0077] 32 forming wheel
[0078] 37a, 37b Housing walls
[0079] 40 Transfer wheel / separation wheel
[0080] 40-1 first transfer wheel, first transfer device
[0081] 40-2 second transfer wheel, second transfer device
[0082] 40a feeder
[0083] 43 Application device for sterilizing fluid
[0084] 44 grippers
[0085] 45 Transport mandrel
[0086] 50 Heating device / Temperature control device
[0087] 51 Heating section or heating devices along a heating section
[0088] 60 third transfer wheel
[0089] 70 Output wheel (fourth transfer wheel)
[0090] 100 irradiation device
[0091] 101 U V radiation source / U V emitter / U VC emitter
[0092] 101-1 UV-C lamp on the mouth area
[0093] 101-2 UV-C lamp on the shaft
[0094] 101-3UV-C lamps on the summit
[0095] 101-4 UV-C lamps on the summit
[0096] 101-5 UV-C lamp
[0097] 101-6 UV-C lamp
[0098] 110 Enclosure
[0099] 120 Suction device for sterilizing fluid
[0100] 130 Sterile air source
[0101] 300 Direction of rotation of the forming wheel of the blowing device
[0102] 400 Direction of rotation of the separating wheel
[0103] 500 Direction of rotation of the transport chain within the heating device
[0104] 600 Direction of rotation of the transfer wheel
[0105] 700 Direction of rotation of the output wheel
[0106] P Adjustment options for the UV-C lamps
[0107] ST Start of sterilization (supply of sterilizing fluid)
Claims
1. A method for forming preforms (1) made of a thermoplastic material into containers (2), in which a preform (1) is guided along a transport path through sections of a forming device, the method comprising the following steps: applying a sterilizing fluid to an outer surface of a preform (1) and introducing a sterilizing fluid into an interior space (1) of the preform (1) before heating the preform (1) in a heating device, subsequently irradiating only the outer region of the preform (1) with a UV radiation source (101, 101-1, 101-2, 101-3), preferably a UV-C radiation source, to activate the sterilizing fluid on the outer surface of the preform (1), such that the sterilizing fluid on the outer surface is substantially evaporated before heating the preform (1) in the heating device,and subsequently heating the preform (1) to a forming temperature in the heating device, wherein the heating activates the sterilizing fluid inside the preform.
2. Method according to claim 1, wherein the sterilizing fluid is supplied in vapor or aerosol form and the preform (1) is at a temperature during this supply which is below the condensation temperature of the vapor or aerosol-form sterilizing fluid, so that the sterilizing fluid precipitates on the surfaces of the preform (1) as condensate, wherein the vapor is supplied in such a way that a largely complete condensation film is formed on the outside and optionally inside of the preform (1).
3. Method according to claim 1 or 2, wherein the preform is rotated about its longitudinal axis relative to the UV radiation source (101, 101-1, 101-2, 101-3, 101-4, 101-5, 101-6, 101-7) during irradiation with ultraviolet radiation by means of a transport device (40, 40-1, 40-2, 44, 45).
4. Method according to one of the preceding claims, wherein the irradiation of the preform (1) with the UV radiation source (101, 101-1, 101-2, 101-3) takes place along a meandering transport path, namely during a first partial revolution (TU1) of the preform around a first transfer wheel (40-1) and during a second partial revolution (TU2) around a second transfer wheel (40-2), wherein preferably between the first partial revolution (TU1) around the first transfer wheel (40-1) and the second partial revolution (TU2) around the second transfer wheel (40-2) a change in the gripping region on the preform (1) takes place such that the first gripping region and the second gripping region on the preform are different, in particular have no overlap of gripping surfaces.
5. Method according to one of the preceding claims, wherein irradiation of the preforms (1) with UV-C radiation takes place within the heating device (50) by UV-C radiators (101-1, 101-2, 101-3, 101-4, 101-5, 101-6, 101-7), but before a heating section (51), namely before heating, in particular wherein the preforms (1) are rotated about their longitudinal axis relative to the UV-C radiators (101-1, 101-2, 101-3, 101-4, 101-5, 101-6, 101-7) during irradiation within the heating device (50).
6. Method according to one of the preceding claims, wherein the UV radiation source (101, 101-1, 101-2, 101-3) is constructed in several parts, in particular at least three parts, wherein at least one UV emitter (100-1) is directed onto a mouth section (3) of the preform (1) and at least one UV emitter (100-3) is directed onto a dome (5) of the preform and / or at least one UV emitter (100-2) is directed onto a lateral region, in particular a shaft (4) of the preform (1).
7. Method according to one of the preceding claims, wherein the irradiation with UV radiation takes place within a shielding housing (110) which extends at least from the point of application of sterilizing fluid to the end of the irradiation with UV radiation, has a suction device and is configured to shield the UV radiation and to suck out volatile sterilizing fluid.
8. A device for forming preforms (1) made of a thermoplastic material into containers (2), wherein the preforms (1) are guided downstream within the device for forming along a transport path by means of at least one transport device (40-1, 40-2, 44-1, 44-2, 45), and wherein the device comprises the following along the transport path in the downstream direction: a feed device (40a) for feeding a preform (1) into the device for forming, an application device (43) for applying a sterilizing fluid to an outer surface (3, 4, 5) of the preform (1) and for introducing the sterilizing fluid into the interior of the preform (1), an irradiation device (100) with one or more UV radiation sources (101, 101-1, 101-2, 101-3, 101-4, 101-5, 101-6, 101-7), in particular with UV-C radiation sources, for irradiating the outer surface (3, 4, 5) of the preform (1) with UV radiation,a heating device (50) with heating devices (51) along a heating section for heating the preform (1) to a forming temperature, wherein the application device (43), the irradiation device (100) and the heating device (50) are arranged and coordinated with one another in such a way that in the irradiation device (100) only the sterilizing fluid located on the outer surface (3, 4, 5) of the preform (1) is activated and has essentially evaporated before the preform (1) enters the heating device (50), and in the heating device (50) the sterilizing fluid inside the preform (1) is activated.
9. Device according to claim 8, wherein the transport device is designed such that the preform (1) performs a rotation about its own longitudinal axis (LA) relative to the UV radiation source (101, 101-1, 101-2, 101-3, 101-4, 101-5, 101-6, 101-7) during the irradiation with the UV radiation source (101, 101-1, 101-2, 101-3, 101-4, 101-5, 101-6, 101-7).
10. Device according to claim 8 or 9, wherein the device comprises a first and a second transport device (40-1, 40-2), in particular a first and a second transfer wheel, wherein the UV radiation source (101, 101-1, 101-2, 101-3, 101-4, 101-5, 101-6) is arranged along the meandering transport path, in particular a first section (TU1) along following the first transport device (40-1) and following a second section (TU2) along the second transport device (40-2), such that the distance between the UV radiation sources (101, 101-1, 101-2, 101-3, 101-4, 101-5, 101-6) and the preform remains substantially the same.
11. Device according to claim 10, wherein the first transport device (40-1) has first grippers (44-1) and is set up to grip the preform (1) with the first grippers (44-1) at a first gripping area during the first partial section (TU1) and the second transport device (40-2) has second grippers (44-2) and is set up to grip the preform (1) with the second grippers (44-2) at a second gripping area during the second partial section (TU2), wherein the first gripping area is different from the second gripping area, in particular wherein the gripping areas do not overlap.
12. Device according to one of claims 8 to 11, wherein UV-C radiators (101-1, 101-2, 101-3, 101-4, 101-5, 101-6, 101-7) are arranged within the heating device (50) and before entering a heating section (51), in particular on both sides of the preforms (1).
13. Device according to claim 8 to 12, wherein the UV radiation source (101, 101-1, 101-2, 101-3) of the irradiation device (100) is constructed in several parts and comprises at least one UV radiation source (101-1) which is directed towards a mouth section (3) of the preform (1), and at least one UV radiation source (101-3) which is directed towards a dome (5) of the preform (1), and at least one UV radiation source (101-2) which is directed towards a shaft (4) of the preform (1), in particular wherein at least one of the radiation sources (101-1, 101-2, 101-3) is adjustable with regard to its distance from the preform (1), in particular with regard to its distance from the dome (5) of the preform (1).
14. Device according to one of claims 8 to 13, wherein the irradiation device (100) has a housing (110), in particular a housing Solution (110) designed as a tunnel, wherein the housing (100) is configured to shield the ultraviolet radiation of the UV radiation sources (101, 101-1, 101-2, 101-3) in a direction facing away from the preform (1).
15. The device according to claim 14, wherein the housing (110) comprises a suction device (120) for volatile sterilizing fluid, which is configured to suction volatile sterilizing fluid from the housing (110).
16. Device according to claim 15, wherein the device comprises a sterile air source (130) which is connected to the housing (110) and is arranged for the subsequent flow or supply of sterile air.
Citation Information
Patent Citations
Process and blow molding machine for the blow molding production of at least partially sterile containers
DE102014010283A1
METHOD AND DEVICE FOR HEATING A PLASTIC WORKPIECE
DE2352926A1
device for blow molding
DE4212583A1
multiple use of blown air
DE4340291A1
Method and device for sterilizing preforms
EP2588295A1