• Title/Summary/Keyword: 하이브리드복합재료

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The Influence of Volume Fraction and Fiber Orientation of CERP Layer on Flexural properties of A17075/CFRP Multi-Layered Hybrid Laminate Material (Al Shee/CFRP 다적층 하이브리드 복합재료의 굴곡강도에 미치는 카본섬유 체적률 및 배열방향 영향)

  • Yoo Jae-hwan
    • Journal of the Korean Society of Safety
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    • v.19 no.4 s.68
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    • pp.31-35
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    • 2004
  • The A17075/CFRP multi-layered hybrid laminate material consists of the alternating A17075-T6 sheets and carbon/epoxy prepregs of M40 fade. The influence of volume fraction and fiber orientation of A17075/CFRP layer on flexural properties of A17075/CFRP laminate alternating A17075-T6 and carbon/epoxy prepreg was investigated. The results obtained from the experimental analysis are as follows: 1. In the $0^{\circ}$ fiber orientation, the mont of increase of the flexural rigidity was $20.5\%$ at the $26.5\%$ volume fraction and $38.0\%\;at\;the\;35.7\%$ volume fraction compared with the flexural rigidity level(20.0GPa) of the $10\%$ volume fraction of CFRP. 2. In the $\pm45^{\circ}$ fiber orientation the amount of decrease of the flexural rigidity was $23.5\%\;at\;the\;20.0\%$ volume fraction and $31.5\%\;at\;the\;33.3\%$ volume fraction compared with the flexural rigidity level of the $10\%$ volume fraction of CFRP. 3. In the $0^{\circ}$ fiber orientation, the flexural strength was 481.5MPa at the $10\%$ volume fraction of CFRP and 583.8MPa at the $26.5\%$ volume fraction and 653.7MPa at the $35.7\%$ volume faction. 4. In the $\pm45^{\circ}$ fiber orientation, the flexural strength was 354.0MPa at the $20.0\%$ volume fraction of CFRP and 340.5MPa at the $33.3\%$ volume fraction.

Microencapsulation of Surface-modified Carbon Black by Miniemulsion Polymerization (미니유화중합법에 의한 표면개질된 카본블랙의 마이크로캡슐화)

  • Jang, Heang Sin;Hong, Jinho;Lee, Jeongwoo;Shim, Sang Eun
    • Korean Chemical Engineering Research
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    • v.46 no.4
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    • pp.669-675
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    • 2008
  • Carbon black has been widely used in composites, tonor resin, and ink materials. Since carbon black readily agglomerates, it is important to disperse carbon black in real applications. Aiming to improve dispersion stability, carbon black was chemically oxidized to possess hydroxyl groups using a phase transfer catalyst at room temperature. The modified carbon black (CB-OH) was grafted by a silane coupling agent, p-methylacryloxypropyltrimethoxysilane, to carry teminal vinyl groups. The modified carbon black was subsequently used in miniemulsion polymerization to achieve encapsulted core-shell structure. Finally, well-encapsulated carbon black by polymer was obtained in the size range of 100-500 nm. Throughout the polymerization, the effects of surface modification, types of monomers, initiators, and emulsifiers were investigated.

Fabrication and Properties of Reaction Squeeze Cast ($Al_2O_3{\cdot}SiO_2+Ni$)/Al Hybrid Metal Matrix Composites (반응 용탕단조한($Al_2O_3{\cdot}SiO_2+Ni$)/Al 하이브리드 금속복합재료의 제조 및 특성)

  • Kim, Sang-Suk;Park, Ik-Min;Kim, Sung-Joon;Choi, Il-Dong
    • Journal of Korea Foundry Society
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    • v.17 no.4
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    • pp.338-346
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    • 1997
  • Mechanical properties of ($10%Al_2O_3{\cdot}SiO_2+5%Ni$)/Al hybrid composites fabricated by the reaction squeeze casting were compared with those of ($15%Al_2O_3{\cdot}SiO_2$)/Ai composites. Al-Ni intermetallic compounds ($10{\sim}20 {\mu}m$) formed by the reaction between nickel powder and molten aluminum were uniformly distributed in the Al matrix. These intermetallic compounds were identified as $Al_3Ni$ using X-ray diffraction analysis and they resulted in beneficial effects on room and high temperature strength and wear resistance. Microhardness values of ($10%Al_2O_3{\cdot}SiO_2+5%Ni$)/Al hybrid composite were greater by about 100Hv than those of ($15%Al_2O_3{\cdot}SiO_2$)/Al composite. Wear resistance of ($10%Al_2O_3{\cdot}SiO_2+5%Ni$)/Al hybrid composites was superior to that of ($15%Al_2O_3{\cdot}SiO_2$)/Al composites regardless of the applied load. While tensile and yield strength of ($10%Al_2O_3{\cdot}SiO_2+5%Ni$)/Al hybrid composites were greater at room temperature and $300^{\circ}C$, strength drop at high temperature was much smaller in hybrid composites.

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Study on the Mechanical Properties of Hybridized Carbon Fiber Composite According to Stacking Structure (하이브리드 탄소섬유 적층구조에 따른 복합재료의 기계적 특성 연구)

  • Koo, Seon Woong;Oh, Woo Jin;Won, Jong Sung;Lee, Ha Ram;Youn, Ju Young;Lee, Seung Goo
    • Textile Coloration and Finishing
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    • v.30 no.4
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    • pp.313-320
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    • 2018
  • As carbon fiber reinforced composites(CFRP) are widely used in aerospace, automobile, marine, and sports goods applications, they have been studied extensively by various researchers. However, CFRP have been pointed out because of machining problems such as delamination and burr phenomenons. Especially, hole machining process, drilling, has non-smooth features on inlet and outlet surfaces of drilled hole. This kind of machining problem can be controlled to some extent by using high modulus pitch-CF, which has considerable effects on fracture behavior of composite compared with only PAN CF composite. Therefore, PAN and pitch hybridized CF composites were prepared having high strength and modulus. The results demonstrate that the hybrid CFRP specimens with pitch CF offer the good potential to enhance modulus as well as strength properties. Dynamic mechanical, flexural, and impact properties were measured and analyzed. Morphological surface of the composites were also observed by IFS-28, canon after hole machining.

Stretchable Strain Sensors Using 3D Printed Polymer Structures Coated with Graphene/Carbon Nanofiber Hybrids (그래핀/탄소나노섬유 코팅된 3D 프린팅 고분자 구조를 이용한 신축성 스트레인 센서)

  • Na, Seung Chan;Lee, Hyeon-Jong;Lim, TaeGyeong;Yun, Jeongmin;Suk, Ji Won
    • Composites Research
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    • v.35 no.4
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    • pp.283-287
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    • 2022
  • Stretchable strain sensors have been developed for potential future applications including wearable devices and health monitoring. For practical implementation of stretchable strain sensors, their stability and repeatability are one of the important aspects to be considered. In this work, we utilized 3D printed polymer structures having kirigami patterns to improve the stretchability and reduce the hysteresis. The polymer structures were coated with graphene/carbon nanofiber hybrids to make a robust electrical network. The stretchable strain sensors showed a high gauge of 36 at a strain of 32%. Because of the kirigami structures and the robust graphene/carbon nanofiber coating, the sensors also exhibited stable resistance responses at various strains ranging from 1% to 30%.

Style Types and Design Features of Sneakers using the Knitted Upper (니트 갑피를 활용한 스니커즈의 스타일 유형 및 디자인 특성)

  • Lee, Jae-Young
    • The Journal of the Korea Contents Association
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    • v.22 no.10
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    • pp.213-224
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    • 2022
  • This study aims to propose the directions of design strategies and product development by analyzing the style types and design features of sneakers using the knitted upper which has been rapidly increasing due to merits in a variety of aspects including goods, production and marketing aspects. To this end, this study analyzed total 924 style types which had been gaining popularity in online markets and brand products drawing attention in the sneaker market with the knitted upper and their design features. In accordance with the analysis results, uniqueness was identified as the first merit. The unique hybrid style and design of sneakers with the knitted upper have been established without complying with the conventional materials and production techniques. The next merit was multimodality. The sneakers with the knitted upper create multiple images highlighting each feature of colors and materials by mixing those elements in various ways. The third merit was experimentality. The sneakers with the knitted upper have been attempted decisive change of designs by combining more engineering approach and new materials and techniques than existing sneakers. In these days when the sneaker market has been gradually expanded, the analysis results of this study reflecting the industrial trends will provide the fundamental data for a variety of research activities related to shoes and for the direction of brand planning in the relevant industries.

Improving Through-thickness Thermal Conductivity Characteristic of Hybrid Composite with Quantum Annealing (Quantum annealing을 통한 hybrid composite의 두께 방향 열전도 특성 개선)

  • Sung wook Cho;Seong S. Cheon
    • Composites Research
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    • v.37 no.3
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    • pp.170-178
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    • 2024
  • This study proposes a hybrid composite where a thin copper film (Cu film) is embedded in carbon fiber reinforced plastic (CFRP), and quantum annealing is applied to derive the combination of Cu film placement that maximizes the through-thickness thermal conductivity. The correlation between each ply of CFRP and the Cu film is analyzed through finite element analysis, and based on the results, a combination optimization problem is formulated. A formalization process is conducted to embed the defined problem into quantum annealing, resulting in the formulation of objective functions and constraints regarding the quantity of Cu films that can be inserted into each ply of CFRP. The formulated equations are programmed using Ocean SDK (Software Development Kit) and Leap to be embedded into D-Wave quantum annealer. Through the quantum annealing process, the optimal arrangement of Cu films that satisfies the maximum through-thickness thermal conductivity is determined. The resulting arrangements exhibit simpler patterns as the quantity of insertable Cu films decreases, while more intricate arrangements are observed as the quantity increases. The optimal combinations generated according to the quantity of Cu film placement illustrate the inherent thermal conductivity pathways in the thickness direction, indicating that the transverse placement freedom of the Cu film can significantly affect the results of through-thickness thermal conductivity.

규산나트륨을 이용한 졸-겔 구형 $SiO_2$ 나노졸 합성 연구

  • Gwon, Il-Jun;Park, Seong-Min;Kim, Myeong-Sun;Sim, Ji-Hyeon;Yeom, Jeong-Hyeon
    • Proceedings of the Korean Society of Dyers and Finishers Conference
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    • 2012.03a
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    • pp.111-111
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    • 2012
  • 나노테크놀로지는 종래의 가공으로는 얻기 힘들었던 섬유가공 효과를 간단하게 할 수 있는 기술이다. 현재 각국의 기능성 나노 가공제를 섬유에 응용하는 나노 테크놀로지는 현재 공업 생산되고 있는 면, 모, 견 등의 천연섬유 및 polyester, Nylon 등의 합성섬유의 원단에 적용하는 데서 출발하고 있다. 이러한 나노기술은 기존의 설비와 물을 사용하는 것이 큰 특징이고, 특별한 기계장치가 필요하지 않으며, 소규모의 실험장비만 있어도 현장투입이 가능한 나노입자의 제조가 가능하기 때문에 대량생산이 용이하고 설비투자는 원칙적으로 필요하지 않는다. 또한, 나노입자의 분산을 제대로 시키면 그 사이즈가 빛의 가시광선 영역의 파장(400~800nm)에 비해 절반 수준이하 크기의 입자가 대부분을 차지하기 때문에 염색성, 태의 변화가 적어 앞으로 더욱더 나노테크놀로지에 의한 가공이 확대될 것이 예상된다. 특히 유 무기 하이브리드 재료는 용액상태에서 제조되기 때문에 용액 코팅공정의 적용이 가능하여 다양한 코팅에 적극적으로 활용되고 있다. 또한 코팅공정 온도가 상대적으로 낮아서, 유기물의 기능성 발현이 용이하며, 섬유가공에 그대로 적용이 가능하고, 섬유고분자와 내구성 있게 직접 결합이 되어 실용성이 높다 할 수 있다. 또한 나노졸의 형성 시, 혹은 나노졸에 기능성 물질을 첨가함으로서 나노졸과 기능성 물질을 복합화하여 섬유상에 부여하는 것도 가능하다. 최근에 실리카졸의 형성과 성장에 관한 연구는 졸-겔 기술의 발전과 해석 및 상용화에 집중되어 있다. 규산나트륨과 황산 또는 염산을 사용하여 실리카를 생성하는 공정은 tetraethoxysilane (($Si(OC_2H_5)_4$, (TEOS))를 이용하여 합성하는 방법과 달리 대량의 실리카를 경제적으로 생산하는데 방법으로 널리 연구되고 있지만, 많은 연구가 수행되었음에도 불구하고 실리카 졸의 특성, 성장, 제조에 대한 충분한 이해가 이루어 지지 않고 있어, 아직까지 나노크기의 입자를 제조하는 공정에 대해서는 경제성, 효율성, 품질의 균일성이 떨어지는 것이 현실이다. 따라서 본 연구에서는 앞서 연구된 졸-겔 합성기술과 저렴한 원료인 규산나트륨을 이용하여 보다 간단하고 경제적인 방법으로 고부가가치의 다양한 실리카 나노졸을 제조할 수 있는 연구를 하고자 하였다. 이를 위해 규산나트륨 수용액의 특성, 핵 생성에 필요한 규산나트륨 수용액의 산화반응 특성, 그리고 출발용액의 졸겔 반응을 기초로 하여 실리카 졸 형성에 대한 반응물질의 혼합방법, 반응온도, 반응물의 농도, pH등이 최종 실리카 나노졸 제품의 입자 크기와 모양 등에 미치는 영향을 조사하려고 하며 이를 토대로 다양한 크기와 특성을 가진 실리카 나노졸을 제조하였다.

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Evaluation of Fracture Behavior of Adhesive Layer in Fiber Metal Laminates using Cohesive Zone Models (응집영역모델을 이용한 섬유금속적층판 접착층의 모드 I, II 파괴 거동 물성평가)

  • Lee, Byoung-Eon;Park, Eu-Tteum;Ko, Dae-Cheol;Kang, Beom-Soo;Song, Woo-Jin
    • Composites Research
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    • v.29 no.2
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    • pp.45-52
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    • 2016
  • An understanding of the failure mechanisms of the adhesive layer is decisive in interpreting the performance of a particular adhesive joint because the delamination is one of the most common failure modes of the laminated composites such as the fiber metal laminates. The interface between different materials, which is the case between the metal and the composite layers in this study, can be loaded through a combination of fracture modes. All loads can be decomposed into peel stresses, perpendicular to the interface, and two in-plane shear stresses, leading to three basic fracture mode I, II and III. To determine the load causing the delamination growth, the energy release rate should be identified in corresponding criterion involving the critical energy release rate ($G_C$) of the material. The critical energy release rate based on these three modes will be $G_{IC}$, $G_{IIC}$ and $G_{IIIC}$. In this study, to evaluate the fracture behaviors in the fracture mode I and II of the adhesive layer in fiber metal laminates, the double cantilever beam and the end-notched flexure tests were performed using the reference adhesive joints. Furthermore, it is confirmed that the experimental results of the adhesive fracture toughness can be applied by the comparison with the finite element analysis using cohesive zone model.

Characterization of the PVDF Fibers Fabricated by Hybrid Wet Spinning (하이브리드 습식 공정을 통한 PVDF 섬유의 제조 및 특성에 관한 연구)

  • Jeong, Kun;Kim, Seong-Su
    • Composites Research
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    • v.29 no.4
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    • pp.145-150
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    • 2016
  • Polyvinylidene fluoride (PVDF) as a representative polymer with the piezoelectric property has been studied since the 1960s. Crystalline structure of poly(vinylidene fluoride) polymer is composed of five different crystal structure of the polymer as a semi-crystalline. Among the various crystal structures, ${\beta}-type$ crystal exhibits a piezoelectricity because the permanent dipoles are aligned in one direction. Generally ${\beta}-form$ crystal structure can be obtained through the transformation of the ${\alpha}-form$ crystal structure by the stretching and it can increase the amount through the after treatment as poling process after stretching. ${\beta}-form$ crystal structure the PVDF fibers produced by wet spinning is formed through a diffusion mechanism of a polar solvent in the coagulation bath. However, it has a disadvantage that the diffusion path of the solvent remains as pores in the fiber because the fiber solidification occurs simultaneously with the diffusion of the polar solvent. These pores play a role in reducing effect of poling process owing to effect of disturbances acting on the polarization by the electric field. In this work, the drying method using the microwave was introduced to remove more effectively the residual solvent and the pore within PVDF fibers produced through wet-spinning process and piezoelectric PVDF fibers was produced by transformation of the remaining ${\alpha}$ form crystal structure into ${\beta}-crystal$ structure through the stretching process.