• 제목/요약/키워드: Tribology properties

검색결과 505건 처리시간 0.021초

탄소계 경질 박막의 연구 및 산업 적용 동향 (Trend in Research and Application of Hard Carbon-based Thin Films)

  • 이경황;박종원;양지훈;정재인
    • 한국표면공학회:학술대회논문집
    • /
    • 한국표면공학회 2009년도 춘계학술대회 논문집
    • /
    • pp.111-112
    • /
    • 2009
  • Diamond-like carbon (DLC) is a convenient term to indicate the compositions of the various forms of amorphous carbon (a-C), tetrahedral amorphous carbon (ta-C), hydrogenated amorphous carbon and tetrahedral amorphous carbon (a-C:H and ta-C:H). The a-C film with disordered graphitic ordering, such as soot, chars, glassy carbon, and evaporated a-C, is shown in the lower left hand corner. If the fraction of sp3 bonding reaches a high degree, such an a-C is denoted as tetrahedral amorphous carbon (ta-C), in order to distinguish it from sp2 a-C [2]. Two hydrocarbon polymers, that is, polyethylene (CH2)n and polyacetylene (CH)n, define the limits of the triangle in the right hand corner beyond which interconnecting C-C networks do not form, and only strait-chain molecules are formed. The DLC films, i.e. a-C, ta-C, a-C:H and ta-C:H, have some extreme properties similar to diamond, such as hardness, elastic modulus and chemical inertness. These films are great advantages for many applications. One of the most important applications of the carbon-based films is the coating for magnetic hard disk recording. The second successful application is wear protective and antireflective films for IR windows. The third application is wear protection of bearings and sliding friction parts. The fourth is precision gages for the automotive industry. Recently, exciting ongoing study [1] tries to deposit a carbon-based protective film on engine parts (e.g. engine cylinders and pistons) taking into account not only low friction and wear, but also self lubricating properties. Reduction of the oil consumption is expected. Currently, for an additional application field, the carbon-based films are extensively studied as excellent candidates for biocompatible films on biomedical implants. The carbon-based films consist of carbon, hydrogen and nitrogen, which are biologically harmless as well as the main elements of human body. Some in vitro and limited in vivo studies on the biological effects of carbon-based films have been studied [$2{\sim}5$].The carbon-based films have great potentials in many fields. However, a few technological issues for carbon-based film are still needed to be studied to improve the applicability. Aisenberg and Chabot [3] firstly prepared an amorphous carbon film on substrates remained at room temperature using a beam of carbon ions produced using argon plasma. Spencer et al. [4] had subsequently developed this field. Many deposition techniques for DLC films have been developed to increase the fraction of sp3 bonding in the films. The a-C films have been prepared by a variety of deposition methods such as ion plating, DC or RF sputtering, RF or DC plasma enhanced chemical vapor deposition (PECVD), electron cyclotron resonance chemical vapor deposition (ECR-CVD), ion implantation, ablation, pulsed laser deposition and cathodic arc deposition, from a variety of carbon target or gaseous sources materials [5]. Sputtering is the most common deposition method for a-C film. Deposited films by these plasma methods, such as plasma enhanced chemical vapor deposition (PECVD) [6], are ranged into the interior of the triangle. Application fields of DLC films investigated from papers. Many papers purposed to apply for tribology due to the carbon-based films of low friction and wear resistance. Figure 1 shows the percentage of DLC research interest for application field. The biggest portion is tribology field. It is occupied 57%. Second, biomedical field hold 14%. Nowadays, biomedical field is took notice in many countries and significantly increased the research papers. DLC films actually applied to many industries in 2005 as shown figure 2. The most applied fields are mold and machinery industries. It took over 50%. The automobile industry is more and more increase application parts. In the near future, automobile industry is expected a big market for DLC coating. Figure 1 Research interests of carbon-based filmsFigure 2 Demand ratio of DLC coating for industry in 2005. In this presentation, I will introduce a trend of carbon-based coating research and applications.

  • PDF

Tribological study on the thermal stability of thick ta-C coating at elevated temperatures

  • Lee, Woo Young;Ryu, Ho Jun;Jang, Young Jun;Kim, Gi Taek;Deng, Xingrui;Umehara, Noritsugu;Kim, Jong Kuk
    • 한국진공학회:학술대회논문집
    • /
    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
    • /
    • pp.144.2-144.2
    • /
    • 2016
  • Diamond-like carbon (DLC) coatings have been widely applied to the mechanical components, cutting tools due to properties of high hardness and wear resistance. Among them, hydrogenated amorphous carbon (a-C:H) coatings are well-known for their low friction properties, stable production of thin and thick film, they were reported to be easily worn away under high temperature. Non-hydrogenated tetrahedral amorphous carbon (ta-C) is an ideal for industrial applicability due to good thermal stability from high $sp^3$-bonding fraction ranging from 70 to 80 %. However, the large compressive stress of ta-C coating limits to apply thick ta-C coating. In this study, the thick ta-C coating was deposited onto Inconel alloy disk by the FCVA technique. The thickness of the ta-C coating was about $3.5{\mu}m$. The tribological behaviors of ta-C coated disks sliding against $Si_3N_4$ balls were examined under elevated temperature divided into 23, 100, 200 and $300^{\circ}C$. The range of temperature was setting up until peel off observed. The experimental results showed that the friction coefficient was decreased from 0.14 to 0.05 with increasing temperature up to $200^{\circ}C$. At $300^{\circ}C$, the friction coefficient was dramatically increased over 5,000 cycles and then delaminated. These phenomenon was summarized two kinds of reasons: (1) Thermal degradation and (2) graphitization of ta-C coating. At first, the reason of thermal degradation was demonstrated by wear rate calculation. The wear rate of ta-C coatings showed an increasing trend with elevated temperature. For investigation of relationship between hardness and graphitization, thick ta-C coatings(2, 3 and $5{\mu}m$) were additionally deposited. As the thickness of ta-C coating was increased, hardness decreased from 58 to 49 GPa, which means that graphitization was accelerated. Therefore, now we are trying to increase $sp^3$ fraction of ta-C coating and control the coating parameters for thermal stability of thick ta-C at high temperatures.

  • PDF

액체 윤활제 첨가제용 알킬 기능화된 산화 그래핀의 합성/분산 및 트라이볼로지적 특성 (Synthesis, Dispersion, and Tribological Characteristics of Alkyl Functionalized Graphene Oxide Nanosheets for Oil-based Lubricant Additives)

  • 최진영;김용재;이창섭
    • 공업화학
    • /
    • 제29권5호
    • /
    • pp.533-540
    • /
    • 2018
  • 그래핀은 표면 에너지가 낮고 원자단위의 얇은 물질로서 다양한 소재의 표면에 코팅시키거나 윤활제에 분산시켜 접착력과 마찰을 줄여주는 우수한 윤활유 첨가제로 보고되고 있다. 본 연구에서는 산화 그래핀 나노시트를 세 가지 종류의 염화알킬(butyl chloride, octyl chloride 및 tetradecyl chloride)을 이용하여 액체 윤활제 첨가제용 기능화 산화 그래핀(alkyl functionalized GO, FGO)을 제조하였다. 제조한 기능화 산화 그래핀의 화학적 및 구조적 특성은 Fourier transform infrared (FT-IR), X-ray photoelectron spectroscopy (XPS), X-ray diffraction (XRD), Raman spectroscopy, scanning electron microscope (SEM), and transmission electron microscope (TEM)으로 분석하였다. 제조한 기능화 산화 그래핀은 PAO-0W40 오일에 0.02 wt%의 농도로 분산시켰으며, 트라이볼로지적 특성을 high frequency friction/wear tester로 분석한 결과, FGO-14이 첨가된 PAO-0W40 오일은 ball-on-disk의 직선왕복운동 하에서 기유에 비해 ~5.88%의 마찰계수와 ~3.8%의 마모 트랙 폭을 감소시킴으로써 내마모성이 향상됨을 확인하였다. 본 연구에서는 산화 그래핀의 성공적인 기능화와 더불어 다양한 탄화수소사슬 길이에 따른 분산 안정성 및 트라이볼로지적 특성의 향상을 입증하였다.

Ti-Al-Si-N 코팅막의 마모거동에 미치는 Si 함량의 영향 (The Effect of Si Content on the Tribological Behaviors of Ti-Al-Si-N Coating Layers)

  • 진형호;김정욱;김광호;윤석영
    • 한국세라믹학회지
    • /
    • 제42권2호
    • /
    • pp.88-93
    • /
    • 2005
  • 아크 이온 플레이팅과 스퍼터로 구성된 하이브리드 시스템을 이용하여 다성분계 Ti-Al-Si-N 코팅막을 WC-Co 기판에 증착하였다. 증착시 Si 함량을 변화시켜 코팅막의 마모특성에 Si 함량이 미치는 영향에 대하여 조사하였다. 마모 특성을 관찰하기 위하여 Ti-Al-Si-N 코팅막이 증착된 WC-Co 원판에 3N의 하중, 0.1 m/s의 속도로 볼 온 디스크(ball-on-disk) 형태의 마모시험기를 이용하여 건식 마모 실험을 하였다. 상대재로는 스틸볼과 지르코니아볼을 사용하였다. 상대재가 스틸볼의 경우 Ti-Al-Si-N 코팅막의 마찰계수가 Ti-Al-N 코팅막의 마찰계수보다 낮게 나타났다 이는 Si가 첨가되어 마모시 상대재와 코팅막 사이에 자기윤활효과(self-lubricant effect)에 의한 것으로 여겨진다. 코팅막과 스틸볼 사이에 응착 마모 거동을 보였으며, Si의 함량이 증가함에 따라 마찰계수는 감소하였다. 한편, 상대재가 지르코니아 볼의 경우 코팅막과 지르코니아 볼 사이에서 연삭마모 거동이 더 지배적이었고, Si 함량이 증가할수록 마찰계수는 증가하였다.

칼슘 술폰산염 컴플렉스 그리스 합성과 특성 연구 (Studies on the synthesis and characteristics of calcium sulfonate complex grease)

  • 우재구;이동규;하기룡
    • 한국산학기술학회논문지
    • /
    • 제20권7호
    • /
    • pp.8-15
    • /
    • 2019
  • 본 연구에서는 칼슘 술폰산염 컴플렉스 그리스와 리튬 컴플렉스 그리스를 합성하고, 그리스의 일반 물성, 유변학적 특성 및 윤활성능을 비교하였다. 내열성 시험인 적점 시험에서 칼슘 술폰산염 컴플렉스 그리스의 열 안정성은 섭씨 300도 이상, 리튬 컴플렉스 그리스는 섭씨 245도로 측정되었다. 점도시험에서 칼슘 술폰산염 컴플렉스 그리스는 7.0 파스칼 초, 리튬 컴플렉스 그리스는 4.5 파스칼 초로 측정되었다. 따라서 칼슘 술폰산염 컴플렉스 그리스가 리튬 컴플렉스 그리스보다 내열성 및 점착성면에서 우수함을 확인하였다. 4-ball 내마모시험에서 칼슘 술폰산염 컴플럭스 그리스는 0.43 밀리미터, 리튬 컴플럭스 그리스는 0.85 밀리미터로 측정되었고, 4-ball 내하중성 시험에서 칼슘 술폰산염 컴플렉스 그리스는 620 킬로그램중, 리튬 컴플렉스 그리스는 125 킬로그램중 으로 측정되었다. 따라서, 칼슘 술폰산염 컴플렉스 그리스가 리튬 컴플렉스 그리스보다 내마모성 및 내하중성에서 우수하였다. 위 시험결과로 고온 및 고하중의 윤활에서는 칼슘 술폰산염 컴플렉스 그리스가 리튬 컴플렉스 그리스보다 더 효과적인 것을 알 수 있었다.