• 제목/요약/키워드: Epoxy matrix

검색결과 414건 처리시간 0.024초

하이브리드 능직 탄소-아라미드 섬유 복합재의 모드 I 파괴인성에 대한 실험적 연구 (Experimental Investigations of Mode I Fracture Toughness of a Hybrid Twill Woven Carbon and Aramid Fabric Composite)

  • 권우덕;권오헌
    • 한국안전학회지
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    • 제34권6호
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    • pp.1-6
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    • 2019
  • Carbon fiber has excellent specific strength, corrosion resistance and heat resistance. And p-Aramid fiber has high toughness and heat resistance and high elasticity, and is used in various fields such as industrial protective materials, bulletproof helmets and vests, as well as industrial fields. However, carbon fiber is relatively expensive, and is susceptible to brittle fracture behavior due to its low fracture strain. On the other hand, the aramid fiber tends to decrease in elastic modulus and strength when applied to the epoxy matrix, but it is inexpensive and has higher elongation and fracture toughness than carbon fiber. Thus the twill hybrid carbonaramid fiber reinforced composite laminate composite was investigated for a delamination fracture toughness under Mode I loading by 2 kinds of MBT and MCC deduction. The specimen was fabricated with 20 hybrid fabric plies. The initial crack was made by inserting the teflon tape in the center plane with a0/W=0.5 length. The results show that SERR(Strain Energy Release Rate) as the critical and stable delamination fracture toughness were 0.09 kJ/㎡, 0.386 kJ/㎡ by MBT deduction, and 0.192 kJ/㎡, 0.67 kJ/㎡ by MCC deduction, respectively.

UPWARD FLAME SPREAD ON PRACTICAL WALL MATERIALS

  • Kim, Choong-Ik;Ellen G. Brehob;Anil K. Kulkarni
    • 한국화재소방학회:학술대회논문집
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    • 한국화재소방학회 1997년도 International Symposium on Fire Science and Technology
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    • pp.138-145
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    • 1997
  • Models of upward flame spread have been attempted in the past, but in the current work an emphasis has been placed on developing a practical model that will be useful across a broad range of materials. Some of the important aspects of the model we: the addition of external radiation to simulate a wall that is a part of an enclosure fire and has flaming walls radiating to it, the use of a correlation for flame heat feedback distribution to the sample surface based on data available in the literature, and the use of an experimentally measured mass loss rate for the sample material, In this paper, the development of the numerical model is presented along with predictions of flame spread for three materials: hardboard, a relatively homogeneous wood-based material; plywood, which is made of laminated wood bonded by adhesives; and a composite material made of fiberglass matrix embedded in epoxy. Predictions are compared with measured data at several levels of external radiation for each material. For the materials tested, the model correctly predicts trends and does a reasonable job predicting flame heights. The need for thermal property data for practical materials, which would be appropriate for flame spread models, is indicated by this work.

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방사선 경화 비닐에스터 수지의 기계적 특성 연구 (Mechanical Properties of Radiation-Curing Vinyl Ester Resin)

  • 신범식;전준표;김현빈;강필현
    • 방사선산업학회지
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    • 제4권1호
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    • pp.19-23
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    • 2010
  • Vinyl ester (VE) resins, introduced in the late 1960s, have made large strides in reinforced plastics applications as adhesive and matrix materials on their appropriate mechanical performance characteristics in the glassy state. Generally, VE resins are a group of dimethacrylate resins based on bisphenol A type epoxy resin. They exhibit easy handling properties as well as good resistance to most chemical agents due to their mechanical and thermal properties. In this study, the effects of curing methods of vinyl ester resins on gel contents, flexural strength and dynamic mechanical properties were investigated. Thermal curing (room temperature, $80^{\circ}C$) and electron beam curing were used to crosslink a VE resin/styrene complex (65/35 wt%) with methyl ethyl ketone peroxide (MEKPO) as a catalyst and an 8 wt% cobalt naphthenate in styrene solution as a accelerator. For the samples, gel contents as well as flexural strength and dynamic mechanical properties were characterized and compared by soxhlet apparatus, universal testing machine (UTM) and dynamic mechanical analysis (DMA). As a result, the electron-cured VE resin was confirmed as a better condition than those for gel contents, flexural strength and dynamic mechanical properties, respectively.

육티탄산칼륨이 함유된 고무복합체 ([ $K_2Ti_6O_{13}$ ]-filled Rubber Composite)

  • 박종일;강동헌;강석춘;정경호;홍영근
    • Elastomers and Composites
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    • 제35권3호
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    • pp.180-187
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    • 2000
  • 석면대체용으로 육티탄산칼륨($K_2Ti_6O_{13}$)을 합성하고, 이를 사용하여 새로운 형태의 비석면계 자동차용 마찰재를 개발하고자, 마찰재 매트릭스의 조성 및 물성 최적화와 육티탄산칼륨이 고무복합체에 어떠한 특성을 부여하는지에 대해 조사하였다. 원하는 침상형태의 육티탄산칼륨은 KCI 염을 단독으로 하고 $K_2CO_3$를 과량으로 첨가하여 합성하였을 때 안정하게 얻을 수 있었다. 또한, 적절한 마찰재로서의 성능을 얻기 위해서는 육티탄산칼륨은 실란커플링제로 표면 처리하여 매트릭스 고무와의 계면접착력을 향상시키고, 10 phr의 에폭시 수지를 첨가하여야 함을 알 수 있었다.

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원형 톱날의 형태와 마모가 유리 탄소섬유 하이브리드 복합재료의 절단 품질에 미치는 영향 (Effect of the Circular Saw-Blade Type and Wear on the Cutting Quality of a Glass Carbon-Fiber Hybrid Composite)

  • 백종현;주창민;김수진;박윤옥
    • 한국기계가공학회지
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    • 제20권10호
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    • pp.72-79
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    • 2021
  • A circular saw is an effective tool for cutting glass and carbon-fiber hybrid composites. This study investigated tool wear and cut quality when reusing saw blades. The carbide saws wear four times faster than the new ones, and polycrystalline diamond (PCD) is very resistant to tool wear, except at the end of its lifespan. The cut cross-section quality is affected by the blade type, tool wear, and spindle speed. Alternate top bevel (ATB)-type blades are suitable for cutting fiber-reinforced plastics, but triple-chip grind (TCG)-type blades are unsuitable because they cause fiber-pullout defects. Tool wear and low spindle speeds increase the occurrence of arc scratches, due to the rear saw blade. A microscopic examination showed that the burr, which is a mixture of fiber chips and epoxy matrix, was bonded on top, and glass-fiber delamination occurred on the bottom glass-fiber-reinforced polymer (GFRP) surface.

Ozonization of SWCNTs on thermal/mechanical properties of basalt fiber-reinforced composites

  • Kim, Seong Hwang;Heo, Young-Jung;Park, Soo-Jin
    • Steel and Composite Structures
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    • 제31권5호
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    • pp.517-527
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    • 2019
  • To move forward in large steps rather than in small increments, the community would benefit from a systematic and comprehensive database of multi-scale composites and measured properties, driven by comprehensive studies with a full range of types of fiber-reinforced polymers. The multi-scale hierarchy is a promising chemical approach that provides superior performance in synergistically integrated microstructured fibers and nanostructured materials in composite applications. Achieving high-efficiency thermal conductivity and mechanical properties with a simple surface treatment on single-walled carbon nanotubes (SWCNTs) is important for multi-scale composites. The main purpose of the project is to introduce ozone-treated SWCNTs between an epoxy matrix and basalt fibers to improve mechanical properties and thermal conductivity by enhancing dispersion and interfacial adhesion. The obvious advantage of this approach is that it is much more effective than the conventional approach at improving the thermal conductivity and mechanical properties of materials under an equivalent load, and shows particularly significant improvement for high loads. Such an effort could accelerate the conversion of multi-scale composites into high performance materials and provide more rational guidance and fundamental understanding towards realizing the theoretical limits of thermal and mechanical properties.

PZT계 압전 세라믹 파이버 복합체의 기계적 물성과 압전 풍력 에너지 하베스팅 특성 (Mechanical Properties and Wind Energy Harvesting Characteristics of PZT-Based Piezoelectric Ceramic Fiber Composites)

  • 이민선;박진우;정영훈
    • 한국전기전자재료학회논문지
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    • 제34권2호
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    • pp.90-98
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    • 2021
  • Piezoelectric ceramic fiber composite (PCFC) was fabricated using a planar electrode printed piezoelectric ceramic fiber driven in transverse mode for small-scale wind energy harvester applications. The PCFC consisted of an epoxy matrix material and piezoelectric ceramic fibers sandwiched by interdigitated electrode (IDE) patterned polyimide films. The PCFC showed an excellent mechanical performance under a continuous stress. For the fabrication of PCB cantilever harvester, five -PCFCs were vertically attached onto a flexible printed circuit board (PCB) substrate, and then PCFCs were serially connected through a printed Cu circuit. The energy harvesting performance was evaluated applying an inverted structure, which imples its free leading edge located at an open end but the trailing edge at a clamped end, to enhance strain energy in a wind tunnel. The output voltage of the PCB cantilever harvester was increased as the wind speed increased. The maximum output power was 17.2 ㎼ at a resistance load of 200 ㏀ and wind speed of 9 m/s. It is considered that the PCB cantilever energy harvester reveals a potential use for wind energy harvester applications.

Experimental tensile test and micro-mechanic investigation on carbon nanotube reinforced carbon fiber composite beams

  • Emrah Madenci;Yasin Onuralp Ozkilic;Ahmad Hakamy;Abdelouahed Tounsi
    • Advances in nano research
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    • 제14권5호
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    • pp.443-450
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    • 2023
  • Carbon nanotubes (CNTs) have received increased interest in reinforcing research for polymer matrix composites due to their exceptional mechanical characteristics. Its high surface area/volume ratio and aspect ratio enable polymer-based composites to make the most of its features. This study focuses on the experimental tensile testing and fabrication of carbon nanotube reinforced composite (CNTRC) beams, exploring various micromechanical models. By examining the performance of these models alongside experimental results, the research aims to better understand and optimize the mechanical properties of CNTRC materials. Tensile properties of neat epoxy and 0.3%; 0.4% and 0.5% by CNT reinforced laminated single layer (0°/90°) carbon fiber composite beams were investigated. The composite plates were produced in accordance with ASTM D7264 standard. The tensile test was performed in order to see the mechanical properties of the composite beams. The results showed that the optimum amount of CNT was 0.3% based on the tensile capacity. The capacity was significantly reduced when 0.4% CNT was utilized. Moreover, the experimental results are compared with Finite Element Models using ABAQUS. Hashin Failure Criteria was utilized to predict the tensile capacity. Good conformance was observed between experimental and numerical models. More importantly is that Young' Moduli of the specimens is compared with the prediction Halpin-Tsai and Mixture-Rule. Although Halpin-Tsai can accurately predict the Young's Moduli of the specimens, the accuracy of Mixture-Rule was significantly low.

압전 에너지 수확기의 성능 향상을 위한 복합재료 기반 소재 및 공정 기술 검토 (Composite-Based Material and Process Technology Review for Improving Performance of Piezoelectric Energy Harvester)

  • 김건수;장지운;김성륜
    • Composites Research
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    • 제34권6호
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    • pp.357-372
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    • 2021
  • 에너지 수확장치는 석유자원의 고갈로 인한 자원난을 해결할 수 있는 대안으로 유망하다고 알려져 있다. 기계적 움직임을 전기 에너지로 전환할 수 있는 압전 소자들의 한계(환경오염 및 낮은 기계적 특성)를 극복하기 위하여, 고분자 기지재 기반 복합재료 압전 에너지 수확장치에 대한 많은 연구들이 수행되었다. 본 논문에서는 사용된 재료 및 공정에 기초하여, 보고된 압전 복합재료의 출력 성능 및 관련된 응용 분야를 검토하였다. 압전 필러는 티탄산 지르콘산 연 및 티탄산바륨 기반의 세라믹 필러뿐만 아니라, 친환경, 생체적합성 및 유연성 측면에서 유리한 산화아연을 검토하였다. 기지재는 폴리비닐리덴플로오라이드 및 공중합체로 구성된 압전 고분자 및 에폭시 및 폴리디메틸실록산 기반의 유연한 고분자로 분류하여 복합재료의 압전 시너지 및 높은 외력 적용에 의한 압전 출력 향상을 논의하였다. 또한, 금속 혹은 탄소 소재 기반 2차 필러의 적용에 의한 복합재료의 전도성 혹은 기계적 특성의 향상이 압전 수확장치의 출력 성능에 미치는 영향을 복합재료의 구조 측면에서 검토하였다. 향상된 성능으로 소형 전자기기, 스마트 센서, 의학 분야 등에 응용 가능한 복합재료 기반 압전 수확장치는 미래의 일상에서 접할 수 있는 무선 전자 장치의 전원으로써 잠재적인 통찰을 제공할 수 있다.

경계면 손상을 고려한 적층복합재료에 대한 멀티스케일 피로 손상 모델 (Multi-scale Progressive Fatigue Damage Model for Unidirectional Laminates with the Effect of Interfacial Debonding)

  • 하동원;김정환;김태리;주영식;윤군진
    • Composites Research
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    • 제36권1호
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    • pp.16-24
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    • 2023
  • 본 논문에서는 복합재료의 섬유와 기지사이의 경계면 손상을 고려한 멀티스케일 점진적 피로 손상 모델을 제안한다. 먼저 점진적인 경계면 손상을 고려하기 위해 서로 다른 4개의 경계면 상태를 정의한 미소구조 모델을 도입하였다. 각각의 상태에 대한 부피분율은 피로 하중의 사이클 수가 증가함에 따라 온전한 상태의 계면에서 완전 박리 상태의 계면으로의 전환이 일어난다. 손상된 경계면의 에쉘비 텐서(Eshelby's tensor)를 계산하기 위해 선형 스프링 모델이 사용되었으며 균질화 방법을 통해 복합재료의 유효 물성을 얻었다. 또한 복합재료의 피로거동을 묘사하기 위해 교번 응력에 대한 섬유, 기지, 그리고 섬유-기지 간의 계면 각각에 대한 손상 변수들이 정의되었고 이를 chaotic firefly 알고리즘을 통해 손상 변수를 특성화 하였다. 제안된 모델은 유한요소해석프로그램 ABAQUS의 UMAT subroutine으로 구현되어 AS4/3501-6 복합재료의 단일방향 라미네이트(unidirectional laminate) 시편들([0]8, [90]8,[30]16)을 통해 성공적으로 검증되었다.