• 제목/요약/키워드: Interfacial contact resistance

검색결과 77건 처리시간 0.022초

탄소성형 Bipolar Plate의 전기화학적 특성과 연료전지 성능 비교 (Electrochemical Characteristics of Home-Made Bipolar Plate and Its Relationship with Fuel Cell Performance)

  • 권영국;이재광;지덕진;이재영
    • 전기화학회지
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    • 제12권1호
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    • pp.68-74
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    • 2009
  • 본 연구에서는 탄소성형 분리판의 물리화학적, 전기화학적 특성을 분석하여 수소 및 개미산연료 전지의 성능에 미치는 영향을 알아보았다. 기존 기계가공 탄소분리판과 탄소복합소재 탄소성형 분리판의 접촉저항, 부식특성, 소수성을 비교 평가하였다. 특히, 현재 연구개발 중인 탄소복합소재 성형분리판의 경우 계면접촉저항이 기계가공 분리판보다 1.5배 높게 나타났으며, 내식성 실험에서는 산에 취약하여 분리판 표면이 거칠어지고 결정성이 감소하였다. 연료전지의 성능은 분리판의 계면접촉저항에 크게 영향을 받았으며, 계면저항이 적은 기계가공 분리판이 수소 및 개미산 연료 전지에서 높은 성능을 나타냈다.

Electro-Micromechanical 시험법을 이용한 Ni Nanowire Strands 강화 고분자 복합재료의 Sensing과 계면 물성 평가 (Sensing and Interfacial Evaluation of Ni Nanowire Strands/Polymer Composites using Electro-micromechanical Technique)

  • 김성주;정진규;박종만
    • 한국복합재료학회:학술대회논문집
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    • 한국복합재료학회 2005년도 추계학술발표대회 논문집
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    • pp.141-144
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    • 2005
  • Sensing and interfacial evaluation of Ni nanowire strands/polymer composites were investigated using Electro-micromechanical technique. Electro-micromechanical techniques can be used as sensing method for micro damage, loading, temperature of interfacial properties. Using Ni nanowire strands/silicone composites with different content, load sensing response of electrical contact resistivity was investigated under tensile and compression condition. The mechanical properties of Ni nanowire strands with different type/epoxy composites were measured using uniformed cyclic loading and tensile test. Ni nanowire strands/epoxy composites showed humidity and temperature sensing within limited ranges, 20 vol% reinforcement. Some new information on temperature and humidity sensing plus loading sensing of Ni nanowire strands/polymer composites could be obtained from the electrical resistance measurement as a new concept of the nondestructive interfacial evaluation.

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PEMFC용 금속분리판 코팅 기술 개발 : II. 코팅 금속분리판 연료전지 성능 특성 연구 (Development of Surface Coating Technology for Metallic Bipolar Hate in PEMFC : II. Study on the PEMEC Performance of Coated Metallic Bipolar Plate)

  • 윤용식;정경우;양유창;안승균;전유택;나상묵
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2006년도 추계학술대회
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    • pp.352-355
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    • 2006
  • As the stainless steel has good corrosion resistance, mechanical property and ease of manufacture, it has been studied as the candidate material of metallic bipolar plate for automotive PIMFC. But, metal is dissolved under fuel cell operating conditions Dissolved ions contaminate a membrane electrode assembly (MEA) and, decrease the fuel cell performance. In addition, metal oxide formation on the surface of stainless steel increases the contact resistance in the fuel cell. These problems have been acted as an obstacle in the application of stainless steel to bipolar plate. Therefore, many kinds of coating technologies have been examined in order to solve these problems. In this study, stainless steel was coated in order to achieve high conductivity and corrosion resistance by several methods. Contact resistance was measured by using a tensile tester and impedance analyzer Corrosion characteristics of coated stainless steel were examined by Tafel-extrapolation method from the polarization curves in a solution simulating the anodic and cathodic environment of PEMFC. Fuel cell performance was also evaluated by single cell test. We tested various coated metal bipolar plate and conventional and graphite were also tested as comparative samples. In the result, coated stainless steel bipolar plate exhibited better cell performance than graphite to bipolar plate.

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그래핀이 코팅된 스테인리스강의 고분자전해질 연료전지 분리판 적용을 위한 표면 특성 (Surface Characteristic of Graphene Coated Stainless Steel for PEMFC Bipolar Plate)

  • 이수형;김정수;강남현;조형호;남대근
    • 한국표면공학회지
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    • 제44권5호
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    • pp.226-231
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    • 2011
  • Graphene was coated on STS 316L by electro spray coating method to improve its properties of corrosion resistance and contact resistance. Exfoliated graphite (graphene) was made of the graphite by chemical treatment. Graphene is distributed using dispersing agent, and STS 316L was coated with diffuse graphene solution by electro spray coating method. The structure of the exfoliated graphite was analyzed using XRD and the coating layer of surface was analyzed by using SEM. Analysis showed that multi-layered graphite structure was destroyed and it was transformed into fine layers graphene structure. And the result of SEM analysis on the surface and the cross section, graphene layer was uniformly formed with 3~5 ${\mu}m$ thickness on the surface of substrate. Corrosion resistance test was applied in the corrosive solution which is similar to the PEM fuel cell stack inside. And interfacial contact resistance test was measured to simulate the internal operating conditions of PEM fuel cell stack. The results of measurements show that stainless steel coated with graphene was improved in corrosion resistance and surface contact resistance than stainless steel without graphene coating layer.

Effect of FTO coated on stainless steel bipolar plate for PEM fuel cells

  • 박지훈;장원영;변동진;이중기
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2009년도 춘계학술발표대회
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    • pp.55.2-55.2
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    • 2009
  • A polymer electrolyte membrane (PEM) fuel cell has been getting large interest as a typical issue in useful applications. The PEMFC is composed of a membrane, catalyst and the bipolar plate. SnOx:F films on SUS316 stainless steel were prepared as a function of substrate with using electron cyclotron resonance-metal organic chemical vapor deposition (ECR-MOCVD) in order to achieve the corrosion-resistant and low contact resistance bipolar plates for PEM fuel cells. The SnOx:F films coated on SUS316 substrate at surface plasma treatment for excellent stability, before/after heat treatment for good crystalline structure and microwave power for were characterized by X-ray diffraction (XRD), auger electron microscopy (AES) and field emission-scanning electron microscopy (FE-SEM). The SnOx:F film coated on SUS316 substrate with various process parameters were able to observe optimum interfacial contact resistance (ICR) and corrosion resistance. It can be concluded that fluorine-doping content plays an important function in electrical property and characteristic of corrosion-protective film.

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침탄된 316L 스테인리스 강의 접촉저항 및 내식 특성 (The Contact Resistance and Corrosion Properties of Carburized 316L Stainless Steel)

  • 홍원혁;고석진;장동수;이정중
    • 한국표면공학회지
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    • 제46권5호
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    • pp.192-196
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    • 2013
  • Stainless steels (AISI 316L) are carburized by Inductively coupled plasma using $CH_4$ and Ar gas. The ${\gamma}_c$ phase(S-phase) is formed on the surface of stainless steel after carburizing process. The XRD peak of carburized samples is shifted to lower diffracting angle due to lattice expansion. Overall, the thickness of ${\gamma}_c$ phase showed a linear dependence with respect to increasing temperature due to the faster rate of diffusion of carbon. However, at temperatures above 500, the thickness data deviated from the linear trend. It is expected that the deviation was caused from atomic diffusion as well as other reactions that occurred at high temperatures. The interfacial contact resistance (ICR) and corrosion resistance are measured in a simulated proton exchange membrane fuel cell (PEMFC) environment. The ICR value of the carburized samples decreased from 130 $m{\Omega}cm^2$ (AISI 316L) to about 20 $m{\Omega}cm^2$. The sample carburized at 200 showed the best corrosion current density (6 ${\mu}Acm^{-2}$).

암반과 그라우트체의 접촉면 마찰 평가를 위한 모의실내실험 (Laboratory Experimental Study on Interfacial Friction of Rock and Grout)

  • 박지호;김영욱;정경한;김정한
    • 한국산학기술학회논문지
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    • 제12권8호
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    • pp.3723-3728
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    • 2011
  • 이 연구에서는 암반과 그라우팅 사이의 마찰거동에 대하여 고찰하고자 실내실험과 중대형 실험을 수행하였다. 실내실험의 경우 암반에 대한 모사는 특별히 제작된 원통형 몰드를 통해 구현하였으며 모형토조실험의 경우, 인공암반을 토조에 조성한 후 압력식과 중력식 그라우팅에 따른 그라우트체의 인발거동을 측정하였다. 두 종류의 실험결과 모두 압력식 그라우팅이 암반과 그라우트체의 벽면 마찰거동에 큰 영향을 미치는 것으로 나타났다.

자체-감지능 및 광투과도를 지닌 CNT 및 ITO/PET 다기능성 나노복합소재의 계면 조절 연구 (Interfacial Control of Multi-functional CNT and ITO/PET Nanocomposites having Self-Sensing and Transparency)

  • 왕작가;권동준;구가영;박종만
    • Composites Research
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    • 제24권1호
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    • pp.45-50
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    • 2011
  • 자체-감지능 있는 다기능성 나노복합소재를 위해, 투명하고 전도성 있는 카본나노튜브 (CNT)로 코팅된 폴리에틸렌 테레프탈레이트(PET)를 함침 방법으로 제조하였다. CNT 코팅의 전기적 광학적 특정의 변화는 함침 횟수와 CNT용액의 농도에 주로 의존하였다. 결과적으로, CNT 코팅의 표면저항과 투과도는 제조공정의 변수들에 따라 예민하게 조절되었다. CNT 코팅의 표면저항은 4점법과 이중 배열법에 의해 측정되었으며, 광학적 투과도는 UV 스펙트럼을 사용하여 평가하였다. CNT 코팅의 표면특성을 측정한 정적 및 동적 접촉각은 상호 일치함을 보여주었다. 함침 코팅수가 증가함에 따라, CNT코팅한 PET의 표면저항은 현저하게 저하했으나, 투명도는 CNT 네트워크의 특성으로 거의 감소하지 않았다. CNT와 인듐틴옥사이드 (ITO)의 계면 및 전기적 특성들은 피로 시험을 통하여 비교하였다. CNT는 2000회 반복 후에도 표면저항의 변화가 없는 반면에, ITO는 1000회 반복까지 표면저항의 급격한 증가를 보여주었다가 안정화하였다. 이는 형상비가 큰 CNT는 전기 접촉점을 계속 유지하는 반면에, 취성이 있는 ITO는 미세 균열이 발생하여 전지 접촉점을 많이 상실하기 때문이다.

자체 감지능 및 작동기용 다기능 하이브리드 나노복합재료의 계면 특성 및 소수성 표면 연구 (Interfacial Evaluation and Hydrophobicity of Multifunctional Hybrid Nanocomposites for Self-sensing and Actuation)

  • 왕작가;공조엘;장정훈;김명수;박종만
    • Composites Research
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    • 제23권2호
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    • pp.24-30
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    • 2010
  • 니켈-나노분말/에폭시 복합재료의 계면 특성과 소수성을 자체-감지능과 작동기 측정을 위해 평가하였다. 경사형 시편을 사용하여 접촉 저항 및 저항도를 측정하였다. 자기장에서 복합재료의 작동성을 세가지 파형들, 즉, 싸인, 삼각, 그리고 사각파를 사용하여 평가하였다. 균일하지 않은 표면에 존재하는 소수성 영역 때문에 Ni-에폭시 나노복합재료의 어떤 부분은 초소수성보다는 다소 낮은 접촉각인 110도를 가졌다. 동적 접촉각은 정적 접촉각과 경향이 상호 일치함을 보였다. 니켈-나노분말의 고유의 금속성질 때문에 자체 감지를 확인하였으며, 또한 전자기장에 작동 반응을 잘 하였다. 니켈-나노분말/에폭시 복합재료의 최대 및 최적의 성능을 얻기 위해서, 레이져 변위 센서를 사용하여, 파형, 주파수, 그리고 전압의 함수로 작동기의 변위를 평가하였다. 니켈-나노분말/에폭시 복합재료의 작동은 적용된 주파수와 전압의 함수로써 증가하였다. 작동된 복합재료들의 연신율은 전압의 증가에 따라 삼각 혹은 사각파보다 싸인파에서 더욱 빨리 증가하였다.

고체전해질과 양극의 계면 열화 반응 (Interfacial Degradation Reaction between Cathode and Solid Electrolyte in All-Solid-State Batteries)

  • 김재헌
    • Corrosion Science and Technology
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    • 제23권4호
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    • pp.334-342
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    • 2024
  • The need for efficient and sustainable energy storage solutions has emerged due to a rapidly increasing energy demand and growing concerns about environmental issues. Among various energy storage methods, lithium secondary batteries are widely used in a variety of electronic devices such as smartphones, laptops, electric vehicles, and large-scale power storage systems due to their high energy density, long lifespan, and cost competitiveness. Recently, all-solid-state batteries (ASSBs) have attracted great attention because they can reduce the risk of fire associated with liquid electrolytes. Additionally, using high-capacity alternative anodes and cathodes in ASSBs can enhance energy density. However, ASSBs that use solid electrolytes experience a degradation in their electrochemical performances due to resistance at solid-solid interfaces. These interfaces can also result in poor physical contact and the presence of products formed from chemical and electrochemical reactions. Solving this interface problem is a critical issue for the commercialization of ASSBs. This review summarizes interfacial reactions between the cathode and solid electrolyte, along with research aimed at improving these interactions. Future development directions in this field are also discussed.