• Title/Summary/Keyword: 타입3복합재용기

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Development of Optimization Code of Type 3 Composite Pressure Vessels Using Semi-geodesic algorithm (준측지궤적 알고리즘을 이용한 타입 3 복합재 압력용기의 최적설계 프로그램 개발)

  • Kang, Sang-Guk;Kim, Myung-Gon;Kim, Cheol-Ung;Kim, Chun-Gon
    • Composites Research
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    • v.21 no.1
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    • pp.1-7
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    • 2008
  • Composite vessels for high pressure gas storage are commonly used these days because of their competitive weight reduction ability maintaining strong mechanical properties. To supplement permeability of composite under high pressure, it is usually lined by metal, which is called a Type 3 vessel. However, it has many difficulties to design the Type 3 vessel because of its complex geometry, fabrication process variables, etc. In this study, therefore, GUI (graphic user interface) optimal design code for Type 3 vessels was developed based on semi-geodesic algorithm in which various factors of geometry and fabrication variables are considered and genetic algorithm for optimization. In addition, hydrogen vessels for 350/700 bar that can be applied to FCVs(fuel cell vehicles) were designed using this code for verification.

Development of Type3 Composite Cylinder for Fuel Cell Vehicle (연료전지 차량용 TYPE3 복합재 압력용기 개발)

  • Park, Ji-Sang;Cheung, Sang-Su;Chung, Jae-Han;Cho, Sung-Min;Kim, Tae-Wook
    • New & Renewable Energy
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    • v.4 no.3
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    • pp.51-57
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    • 2008
  • The objective of this study is to develop and validate a compressed hydrogen storage system for fuel cell vehicles. The type3 composite cylinder consists of full wrapped composites on a seamless aluminum liner. The key technologies, including design, analysis, and optimized fabrication process for 350bar composite cylinder, were established and verified, and the facilities for fabrication and validation testing have been constructed. Prototype cylinders were fabricated and validated through burst test and ambient cycling test in accordance with international standard.

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Development of Hydrogen Type3 composite cylinder for Fuel Cell vehicle (연료전지 차량용 TYPE3 복합재 고압용기 개발)

  • Chung, Jae-Han;Cho, Sung-Min;Kim, Tae-Wook;Park, Ji-Sang;Jeong, Sang-Su
    • 한국신재생에너지학회:학술대회논문집
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    • 2007.11a
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    • pp.165-168
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    • 2007
  • The objective of this study is to demonstrate and commercialized for on-board fuel storage system for the hydrogen fuel cell vehicles. Type3 composite cylinder is consisting of the full wrapped composites on a seamless aluminum liner. Especially, the seamless aluminum liner has been commercialized with development of fabrication through this study. The key technologies, including design, analysis and the optimized filament winding process for 350bar composite cylinder, were established and verified with design qualification test in accordance with international standard. And the facilities for fabrication and design qualification test have been constructed.

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Development of Subminiature Type 3 Composite Pressure Vessel for Cooling Unit in Electric Appliances (전자제품 쿨링 유닛용 초소형 타입 복합재 압력용기 개발)

  • Cho, Sung-Min;Lee, Seung-kuk;Moon, Jong-sam;Lyu, Sung-ki
    • Journal of the Korean Society of Manufacturing Process Engineers
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    • v.17 no.6
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    • pp.151-157
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    • 2018
  • In this study, we have developed a composite pressure vessel that is compact and can store refrigerant at high pressure to increase the refrigerant volume. The composite pressure vessel is made of aluminum-based duralumin, which has high rigidity and excellent elongation in the inner liner, considering the characteristics of products in the aerospace and defense industry, where the safety of the applied product is considered as a priority. High strength carbon fiber was applied to the outside. In order to evaluate the performance of the developed product, burst test and cycling test were carried out. In burst test, an excellent safety margin equivalent to 2.7 times the operating pressure was obtained. In cycling test, a stable failure mode in which 'pre-burst leak' occurs is proved and the soundness of the product is proved.

Temperature Variations of Air Pocket in Type-3 Composite Vessel during Ambient Hydraulic Cycling Test (상온 수압반복시험 시 Type 3 복합재용기 내 공기층의 온도변화)

  • Cho, Sung-min;Kim, Kwang Seok;Kim, Chang Jong;Lyu, Geun-jun;Lee, Yeon-jae;Jo, Yun Seong;Lyu, Sung-Ki
    • Journal of the Korean Society of Manufacturing Process Engineers
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    • v.14 no.5
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    • pp.120-125
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    • 2015
  • This research aims to increase the reliability and reproducibility of the ambient cycling test by properly making corrections to the test procedure. The vessel (106 L) is initially filled with 70 L of water and horizontally placed on a balance. The pressure range inside the vessel varies from 2.5 to 25.9 MPa at the frequency of 6 cycles per minute. After reviewing the results, there was a temperature difference of approximately $10^{\circ}C$ between the air pocket and the water, and the upper part of the liner faced a repeated temperature change of $40^{\circ}C$. It is possible for the aluminum liner of the composite vessel to be damaged by such a sharp change in temperature. Additionally, as a result, no pass having anything to do with the purpose of the test would occur. Therefore, it is suggested that the air pocket be completely removed.

Low-Temperature Characteristics of Type 4 Composite Pressure Vessel Liner according to Rotational Molding Temperature (타입 4 복합재 압력용기 라이너의 회전 성형 온도에 따른 저온 특성)

  • Jung, Hong-Ro;Park, Ye-Rim;Yang, Dong-Hoon;Park, Soo-Jeong;Kim, Yun-Hae
    • Composites Research
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    • v.35 no.3
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    • pp.147-152
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    • 2022
  • Low-temperature characteristics according to internal temperature conditions during rotational molding of Type 4 pressure vessel liners were studied in this paper. Since rotational molding has a sensitive effect on the formability of the liner depending on the temperature conditions, the temperature conditions for the polyamide used should be accurately set. The structural changes of polyamide as the liner material was analyzed the surface by atomic force microscope (AFM), and the crystallinity measured with a differential scanning calorimeter (DSC) is used to evaluate the change of the mechanical strength value at low temperature. In addition, the formability of the liner was confirmed by observation of the yellow index inside the liner. As a result, as the melting range of the internal temperature becomes wider, the yellow index shows a lower value, and the elongation and impact characteristics at low temperatures are improved. It was also confirmed that the structure of the polyamide was uniform and the crystallinity was high by AFM and DSC. These experimental results contribute to the improvement of characteristics at low temperatures due to changes in temperature conditions during rotational molding.

Development of a Type 4 Composite Cylinder for Self-contained Breathing Apparatus (공기호흡기용 타입 4 복합재료 용기 개발)

  • Cho, Sung-min;Kim, Da-eun;Seong, Hye-jin;Ko, Young-kyu;Kim, Hong-chul;Lee, Kang-ok;Jo, Min-sik;Lyu, Sung-ki
    • Journal of the Korean Society of Manufacturing Process Engineers
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    • v.18 no.12
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    • pp.1-6
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    • 2019
  • Aluminum liners used in cylinders are hazardous for human health. In this study, we use a plastic PA liner inside cylinders to solve this problem. Plastic PA liners are widely used in the manufacturing industry in the production of food and beverage containers. We covered the aluminum boss with a plastic liner material and wound the composite fibers over the liner material. To reinforce the dome area, we used low strength / high elongation plastic liner. To predict the performance of the developed product, we conducted structural analyses utilizing the 3D laminated solid element. We verified the soundness of the product by testing the prototype.

Optimal design of composite pressure vessel for fuel cell vehicle using genetic algorithm (유전자 알고리즘을 이용한 수소 연료 자동차용 복합재 압력용기의 최적설계)

  • Kang, Sang-Guk;Kim, Myung-Gon;Kim, Chun-Gon
    • Proceedings of the KSME Conference
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    • 2007.05a
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    • pp.23-27
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    • 2007
  • To store hydrogen with high pressure is one of key technologies in developing FCVs (fuel cell vehicles). Especially, metal lined composite structure, which is called Type 3, is expected to effectively stand highly pressurized hydrogen since it has high specific strength and stiffness as well as excellent storage ability. However, it has many difficulties to design Type 3 vessels because of their complex geometry, fabrication process variables, etc. In this study, therefore, optimal design of Type 3 vessels was performed in consideration of such actual circumstances using genetic algorithm. Additionally, detailed finite element analysis was followed for the optimal result.

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