Method and apparatus for manufacturing an integrated hull by using three-dimensional structure type fiber clothes and a three-dimensional vacuum infusion process
11760044 · 2023-09-19
Assignee
Inventors
- Chia-Yang Lu (Kaohsiung, TW)
- Kai-Lin Chen (Kaohsiung, TW)
- Chu-Sung Hung (Kaohsiung, TW)
- Yu-Lin Chan (Kaohsiung, TW)
- Ming-Wu Yang (Kaohsiung, TW)
Cpc classification
B32B5/26
PERFORMING OPERATIONS; TRANSPORTING
B63B5/00
PERFORMING OPERATIONS; TRANSPORTING
B29K2711/14
PERFORMING OPERATIONS; TRANSPORTING
B29C70/544
PERFORMING OPERATIONS; TRANSPORTING
B29C70/48
PERFORMING OPERATIONS; TRANSPORTING
B32B3/08
PERFORMING OPERATIONS; TRANSPORTING
B32B5/18
PERFORMING OPERATIONS; TRANSPORTING
B29C70/443
PERFORMING OPERATIONS; TRANSPORTING
B29C70/682
PERFORMING OPERATIONS; TRANSPORTING
B63B2231/52
PERFORMING OPERATIONS; TRANSPORTING
B32B21/10
PERFORMING OPERATIONS; TRANSPORTING
B29C70/70
PERFORMING OPERATIONS; TRANSPORTING
B32B5/245
PERFORMING OPERATIONS; TRANSPORTING
B63B73/70
PERFORMING OPERATIONS; TRANSPORTING
B29D99/0021
PERFORMING OPERATIONS; TRANSPORTING
B29C70/546
PERFORMING OPERATIONS; TRANSPORTING
B32B5/02
PERFORMING OPERATIONS; TRANSPORTING
B29C70/30
PERFORMING OPERATIONS; TRANSPORTING
B32B2250/40
PERFORMING OPERATIONS; TRANSPORTING
B32B3/30
PERFORMING OPERATIONS; TRANSPORTING
B29C70/12
PERFORMING OPERATIONS; TRANSPORTING
B29K2105/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C70/34
PERFORMING OPERATIONS; TRANSPORTING
B29C70/12
PERFORMING OPERATIONS; TRANSPORTING
B29C70/44
PERFORMING OPERATIONS; TRANSPORTING
B29C70/54
PERFORMING OPERATIONS; TRANSPORTING
B29C70/70
PERFORMING OPERATIONS; TRANSPORTING
B32B21/10
PERFORMING OPERATIONS; TRANSPORTING
B32B3/30
PERFORMING OPERATIONS; TRANSPORTING
B32B5/02
PERFORMING OPERATIONS; TRANSPORTING
B32B5/18
PERFORMING OPERATIONS; TRANSPORTING
B32B5/24
PERFORMING OPERATIONS; TRANSPORTING
B32B5/26
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for manufacturing an integrated hull by using 3D structure type fiber clothes and 3D vacuum infusion process includes: sequentially stacking at least one first fiber cloth, at least one core material and at least one second fiber cloth on a mold; deploying structural materials on the second fiber cloth; stacking the third fiber clothes to cover the structure materials and a part of the second fiber cloth, whereby the first fiber cloth, the core material, the second fiber cloth and the third fiber clothes are formed to a lamination; determining a pipe arrangement of vacuum pipes and first and second resin pipes; deploying a vacuum bag on the lamination and covering the first and second resin pipes and the vacuum pipe; executing the 3D vacuum infusion process; curing the resin; and executing a mold release process to complete an integrated hull.
Claims
1. A method for manufacturing an integrated hull by using three-dimensional structure fiber cloths and a three-dimensional vacuum infusion process, the method comprising the steps of: providing a mold, comprising a cavity; sequentially stacking at least one layer of first fiber cloth, at least one layer of core material and at least one layer of second fiber cloth on a surface of the cavity of the mold; deploying longitudinal and transverse structural materials on the at least one layer of second fiber cloth; stacking a plurality of layers of third fiber cloths to cover the longitudinal and transverse structural materials and a part of the at least one layer of second fiber cloth, whereby the at least one layer of first fiber cloth, the at least one layer of core material, the at least one layer of second fiber cloth and the plurality of layers of third fiber cloths are stacked to form a lamination, wherein the at least one layer of first fiber cloth, the at least one layer of second fiber cloth and the plurality of layers of third fiber cloths are the three-dimensional structure fiber cloths and have an internal space of three-dimensional structure; determining a pipe arrangement of a plurality of vacuum pipes and a plurality of first resin pipes and a plurality of second resin pipes according to the lamination design and a resin flow status, wherein suction holes of the plurality of vacuum pipes are deployed at positions of two sides of the mold, injection holes of the plurality of first resin pipes are deployed at a middle position of the mold, and injection holes of the plurality of second resin pipes are deployed between the injection holes of the plurality of first resin pipes and the suction holes of the plurality of vacuum pipes; deploying a layer of vacuum bag on the lamination and covering the plurality of first resin pipes and plurality of second resin pipes and the plurality of vacuum pipes, wherein the vacuum bag completely covers the plurality layers of the third fiber cloths and seals the mold; executing the three-dimensional vacuum infusion process, wherein: the plurality of vacuum pipes are used to generate a vacuum suction force on the two sides of the mold, and the plurality of first resin pipes and plurality of second resin pipes are used to sequentially inject a resin and fill the resin in the an internal space of the lamination; curing the resin, so as to form an integrated hull that is integrated with the longitudinal and transverse structural materials in one shot; and executing a mold release process, wherein: the vacuum bag, the plurality of vacuum pipes, and the plurality of first resin pipes and plurality of second resin pipes are removed respectively, and the integrated hull is separated from the mold; wherein the longitudinal structural materials and transverse structural materials are a configuration design of longitudinal beams and transverse beams, and the longitudinal structural materials and transverse structural materials are made of polyurethane (PU) foam material; and wherein the plurality of first resin pipes first inject the resin and fill a part of the internal space of the lamination, which is located at a middle area of the lamination, and then the plurality of second resin pipes inject the resin and fill the remaining internal space of the lamination, which is located at two side areas beside the middle area of the lamination, whereby there is not any dry spot in the lamination at the middle area, wherein the middle area includes the longitudinal structural materials and transverse structural materials made of polyurethane (PU) foam material.
2. The method for manufacturing an integrated hull by using three-dimensional structure fiber cloths and a three-dimensional vacuum infusion process according to claim 1, wherein the pipe arrangement is such that the suction holes of the plurality of vacuum pipes connect to the internal space of the lamination to provide the vacuum suction force, and the injection holes of the plurality of first resin pipes and the plurality of second resin pipes connect to the internal space of the lamination, whereby the first resin pipes and the plurality of second resin pipes sequentially inject the resin.
3. The method for manufacturing an integrated hull by using three-dimensional structure fiber cloths and a three-dimensional vacuum infusion process according to claim 2, wherein when the vacuum suction force is generated on the two sides of the mold by the plurality of vacuum pipes, the at least one layer of first fiber cloth, the at least one layer of second fiber cloth and the plurality of layers of third fiber cloths still have internal space of three-dimensional structure.
4. The method for manufacturing an integrated hull by using three-dimensional structure fiber cloths and a three-dimensional vacuum infusion process according to claim 1, the method further comprising the step of: before the step of deploying the vacuum bag, deploying a vacuum consumable layer on the plurality of layers of third fiber cloths and covering the plurality of layers of the third fiber cloths.
5. The method for manufacturing an integrated hull by using three-dimensional structure fiber cloths and a three-dimensional vacuum infusion process according to claim 4, wherein the vacuum consumable layer comprises peel ply, release film and flow mesh.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(15) To make the objectives, features, and characteristics of the present disclosure clearer and easier to understand, the following gives a detailed description of related embodiments of the present disclosure with reference to the accompanying drawings.
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(24) In addition, before injecting the resin 21, the ratio of a hardener to a promoter can be determined according to the weather conditions of the day and the injection process, and the hardener and the promoter are added to the resin 21. For example, the resin 21 can use an unsaturated polyester resin (e.g., unsaturated polyester resin of Eternal Chemical Co.). The hardener can use Andonox products of united initiators Co., and the promoter can use Norox products of united initiators Co.
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(27) In addition, the present disclosure further provides an apparatus for manufacturing an integrated hull by using three-dimensional structure type fiber clothes and a three-dimensional vacuum infusion process. The apparatus includes: a mold, wherein at least one layer of first fiber cloth, at least one layer of core material and at least one layer of second fiber cloth are stacked sequentially on the surface of a cavity of the mold, longitudinal and transverse structural materials are deployed on the second fiber cloth, the third fiber clothes are stacked to cover the longitudinal and transverse structural materials and a part of the second fiber cloth, whereby the first fiber cloth, the core material, the second fiber cloth and the third fiber clothes are formed to a lamination, wherein the first fiber cloth, the core material, the second fiber cloth and the third fiber clothes are three-dimensional structure type fiber clothes and have internal space of three-dimensional structure; vacuum pipes, wherein suction holes of the vacuum pipes are deployed at positions of two sides of the mold; first and second resin pipes, wherein injection holes of the first resin pipes are deployed at a middle position of the mold, and injection holes of the second resin pipes are deployed between the injection holes of the first resin pipes and the suction holes of the vacuum pipes; a layer of vacuum bag deployed on the lamination and covering the first and second resin pipes and the vacuum pipe, wherein a laying range of the vacuum bag can completely cover a laying range of the third fiber clothes and seal the mold; and a three-dimensional vacuum infusion device, wherein the vacuum pipes are used to generate a vacuum suction force on the two sides of the mold, and the first and second resin pipes are used to sequentially inject a resin and fill the resin in the internal space of the lamination, the resin is cured, so as to form an integrated hull that is integrated with the longitudinal and transverse structural materials in one shot.
(28) The present disclosure is characterized in that: the three-dimensional vacuum infusion process of the manufacturing method of the integrated hull of the present disclosure is to use the pressure difference between the atmosphere and the vacuum to allow the resin to flow into the mold, fill the internal space of the lamination, and cover the longitudinal and transverse structural materials, thereby greatly avoiding the volatilization of volatile organic compounds in the conventional hand lay-up process; moreover, the present disclosure can increase the fiber content, reduce the amount of resin, and then reduce the weight. Compared with the conventional manufacturing method of the boat hull, which still adopts the hand lay-up process (the structural materials are bonded on the boat hull body by the secondary bonding manner) after the vacuum infusion process, the manufacturing method of the integrated hull of the present disclosure can avoid the secondary bonding manner of the structural material, thereby avoiding the risk of bond failure of the structural material and the poor structural performance of a boat hull, and can shorten the production period.
(29) Compared with the conventional manufacturing method of the boat hull, which still adopts the hand lay-up process has: First, the manufacturing process greatly reduces the volatilization of organic solvents by about 85%, and reduces environmental pollution. Second, the longitudinal and transverse structural materials of the integrated hull are integrally formed by the vacuum infusion, and the integrated hull can increase the structural strength by about 40%. Third, the longitudinal and transverse structural materials of the integrated hull that are integrally formed by the vacuum infusion can reduce the chance of the secondary bonding, thereby reducing the weight of the finished boat hull product by about 8%. Fourth, the original materials (e.g., fiber clothes and core material) of the manufacturing method are deployed together with the structural materials to form a vacuum infusion, so surface materials (e.g., fiber clothes) and core material can be perfectly bonded. Fifth, according to the resin flow status and the pipe arrangement, the fiber content of the finished boat shell can be increased to about 65%. Sixth, the automatic three-dimensional vacuum infusion device monitors all parameters throughout the vacuum infusion process, to ensure stable high-quality finished boat shell products.
(30) In conclusion, it is only a description of preferred implementations or embodiments of the technical means adopted by the present disclosure to resolve the problem, and are not intended to limit the scope of patent implementation of the present disclosure. That is, all variations and modifications that are consistent with the meaning of the scope of the claims of the present disclosure, or made according to the scope of the claims of the present disclosure, are covered by the scope of the claims of the present disclosure.