The present disclosure relates to a pulp-molded container structure, particularly a pulp-molded container structure and a molding device thereof wherein the pulp-molded container structure comprises a snap-fit section which is formed with the pulp-molded container structure integrally and coupled with a cup.
Paper cups and bowls are disposable consumables ubiquitous in our daily lives. Currently, the manufacturers considering costs of manufacturing materials and requests for distinct products have created various methods to manufacture these disposable consumables.
To manufacture a paper product with firm texture or styling or a thicker layer, a manufacturer should deposit paper pulp to a certain thickness for molding. However, the convex edges or irregular surface wrinkles, which are extruded from deposited paper pulp frequently and disfigures the aesthetic exteriors or structural strength, are common in ordinary thinner disposable paper cups or bowls made of thicker paper pulp and shaped in the conventional manufacturing process.
Furthermore, an appropriate manufacturing process based on pulp molding (also known as the pulp die molding method) developed recently is applicable to paper products with a certain thickness. However, the inside embossed or barb-like patterns which contribute to securing combination of a cup container and a paper cup are mostly disposed on the rim and/or the snap-fit section of an ordinary pulp-molded cup container and shaped on a formed container in a secondary local roll-extrusion process.
In this regard, the time cost in a secondary roll-extrusion process for rework which probably causes defects or disfigurements is indispensable to in-process containers.
To resolve the problems in the prior arts, an integrated pulp-molded container structure provided in the present disclosure is to reduce manufacturing time and costs.
According to the purpose, a pulp-molded container structure comprises a central section and a rim section which encircles the central section, accommodates an upper wall edge of an external container coupled with the pulp-molded container structure, and clamps the wall edge of the external container.
Furthermore, the rim section comprises a snap-fit section, which is downward connected with the upper wall edge of the external container, manufactured with the central section as well as the rim section integrally, and further coupled with a protrusion encircling the external container for a firm combination of the pulp-molded container structure and the external container when the rim section clamps the upper wall edge of the external container.
To manufacture the pulp-molded container structure, the present disclosure provides a molding device of a pulp-molded container structure, which comprises a first container molding die and a second container molding die, wherein the first container molding die comprises a first molding unit with a center molding part for shaping of the corresponding central section of the pulp-molded container structure and a rim molding part for shaping of the corresponding rim section of the pulp-molded container structure; the rim molding part comprises a snap-fit molding part recessed from an outer edge of the rim molding part and situated at one side far away from the center molding part for shaping of the minus degree snap-fit section of the pulp-molded container structure; the second container molding die comprises a second molding unit for shaping of a corresponding exterior profile of the pulp-molded container structure.
To manufacture the pulp-molded container structure, the present disclosure further provides a molding method of a pulp-molded container structure, which comprises immersing a first container pulp-sucking and molding die in a pulp slurry, and draining and pressing the pulp slurry to shape a raw container; then removing the raw container to a first container heating and molding die, and heating and sealing the raw container between the first container heating and molding die and the second container heating and molding die, to shape the pulp-molded container structure.
As mentioned previously, in pulp-based hot press molding steps, the elastic pulp-molded container structure features the snap-fit section which is slightly deformed for separation from the snap-fit molding part in a de-molding process and characteristic of a profile similar to that of the snap-fit molding part. As such, the snap-fit section is coupled with a protrusion extended outward from a cup rim of an external container which is to be connected to the snap-fit section at the pulp-molded container structure as required in standards of product manufacturing.
The features, content, advantages and effects of a pulp-mold container and a molding device thereof in the present disclosure are explained in embodiments and accompanying drawings which are schematic views to illustrate the patent specification but not intended to limit the scope of patent claims.
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As a pulp-molded container structure of an ordinary paper cup in which coffee is carried in the daily life, the pulp-molded container structure 1 in
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Furthermore, when the first container molding die 22 is excavated for placement of a heating rod and a thermocouple, or the first container molding die 22 is made with thermal conductive materials and is securely installed on a heating plate in the embodiment, a first container heating and molding die, which is heated directly or via thermal conduction to increase temperature of the first molding unit 220 inside and dry paper pulp, is created; on the other hand, when the second container molding die 20 is excavated for placement of a heating rod and a thermocouple, or the second container molding die 20 is made with thermal conductive materials, and is securely installed on another heating plate, a second container heating and molding die, which is heated directly or via thermal conduction to increase temperature of the second molding unit 200 inside and dry paper pulp, is created and comprises a plurality of pore channels 2021 through which the dried pulp-molded container structure 1 is sucked. It should be iterated that neither the first molding unit 220 in the first container molding die 22 nor the second molding unit 200 in the second container molding die 20 are provided with a strainer 226 inside.
But if the first container molding die 22 and the second container molding die 20 are applied on a plastic container manufacturing process, the pore channels (2021, 2204) on the first and second container molding die (20, 22), and the strainer 226 will be no more needed, due to the pore channels (2021, 2204) are arranged for providing suction to absorb pulp fibers when external air is inhaled, and the strainer 226 is installed for isolating pulp fibers, to make no pulp fibers get across the strainer 226. In the case of above, the plastic container has no fibers to allow the strainer 226 isolating or the pore channels (2021, 2204) absorbing, therefore, the first container molding die 22 and the second container molding die 20 cannot be utilized on the plastic container manufacturing process.
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Step S801: the first molding unit is covered with pulp slurry when the first container pulp-sucking and molding die is immersed in pulp slurry.
Step S802: the first container pulp-sucking and molding die is removed from pulp slurry and excessive water, which is included in pulp slurry deposited on the first molding unit and unused in a manufacturing process, is drained from the pore channels and the strainer.
Step S803: the second container pulp-sucking and molding die is driven to fit into the first container pulp-sucking and molding die so that a raw container featuring a profile similar to that of a desired pulp-molded container structure is shaped with dehydrated paper pulp adhered to and matching the strainer on the first molding unit.
Step S804: the raw container is sucked by the second container pulp-sucking and molding die through the pore channels for separation from the first container pulp-sucking and molding die in a de-molding process.
Step S805: the raw container is held in the first container heating and molding die with which the second container pulp-sucking and molding die is coupled.
Step S806: the second container heating and molding die is driven to fit into the first container heating and molding die completely for sealing the raw container between the first and second container heating and molding dies.
Step S807: the raw container is heated and dried by the first container heating and molding die as well as the second container heating and molding die and totally dehydrated for shaping of the pulp-molded container structure.
Step S808: the pulp-molded container structure is sucked by the second container heating and molding die for separation.
According to a manufacturing process from step S801 to step S808, a pulp-molded container structure is shaped. Particularly, shaping 500 kg/m3 to 700 kg/m3 density, and 0.5 mm to 1.2 mm thickness of the pulp-molded container structure.
An alternative manufacturing process different from that of the above embodiment is introduced in the present disclosure. In the alternative embodiment, the profile of a first molding unit (a second molding unit) in a container pulp-sucking and molding die (as well as a container heating and molding die) is exchanged to the profile of a second molding unit (a first molding unit). When a molding unit to shape an exterior profile of a pulp-molded container structure is first immersed in pulp slurry and driven to fit into another molding unit which is used to shape an interior profile of a snap-fit section on the pulp-molded container structure, a pulp-molded container structure featuring an identical profile can be created with two dies at reversed positions.
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After the second container molding die 20 immersed in pulp slurry, the second molding unit 200 is covered with pulp slurry, and by the way of draining the pulp slurry by the pore channels 2021 and the strainer on the second container molding die 20, driving the first container molding die 22 to fit into the second container molding die 20 to shape the desired pulp-molded container structure with dehydrated paper pulp, and absorbing the raw container by the first container molding die 22 to process a de-molding process and heating process etc. thus, the pulp-molded container structure 1 and the snap-fit 14 can be also shaped through afore-molding-process.
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In the one of embodiment (e.g. bowl container), the snap-fit 14 is formed on the inner surface of the annular rim section 12 of the bowl container 1, for engaging with the protrusion 300 on the peripheral of the bowl 3.
The another embodiment (e.g. box container) is similar with the bowl container embodiment of above, the snap-fit 14 can be also formed on the inner surface of the annular rim section 12 of the box container 1, for engaging with the protrusion 300 on the peripheral of the box 3.
Therefore, the pulp-molded container structure 1 in the present invention can be utilized for various containers, but is not limited in the aforementioned embodiments.
In summary, a pulp-molded container structure and a molding device thereof for once-and-for-all die molding of a snap-fit section in the patent application, which are innovative work in technical ideas and features several effects in contrast to conventional molded containers, meets novelty and non-obviousness for patentability.
Number | Date | Country | Kind |
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105130752 | Sep 2016 | TW | national |
The present application is a continuation in part of U.S. patent application Ser. No. 15/595,893 filed on May 15, 2017 which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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Parent | 15595893 | May 2017 | US |
Child | 16594018 | US |