• Title/Summary/Keyword: DLC-코팅

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고분자 소재의 표면보호를 위한 DLC 코팅 기술

  • Yang, Ji-Hun;Jeong, Jae-In
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.02a
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    • pp.265-265
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    • 2010
  • 고분자 소재(polycarbonate; PC)의 표면을 보호하고 광학적 특성을 유지하기 위해 산화물 다층 박막과 비정질 탄소 박막(diamond-like carbon; DLC)을 전자빔 증착(e-beam evaporation)과 이온빔 증착(ion-beam deposition)을 이용하여 고분자 소재에 코팅하였다. 전자빔 증착으로 코팅된 실리콘과 티타늄 산화물 다층 박막은 소재 표면에서 가시광선의 반사율을 낮추는 효과를 가지고 있어 다양한 광학 코팅분야에서 이용되고 있다. 비정질 탄소 박막은 경도가 높고 마찰계수가 낮기 때문에 기계부품의 수명향상을 향상하기 위해 주로 사용되며, 본 연구에서는 고분자 소재의 최상층에 코팅하여 보호막으로 이용하였다. 고분자 윈도우에 산화물 다층 박막을 코팅하면 코팅되지 않은 기판과 비교하여 투과율이 향상되었으며 보호막으로 코팅된 비정질 탄소 박막에 의해서 일어나는 투과율 저하를 부분적으로 상쇄하는 효과를 보였다. 산화물 다층 박막의 수는 광학 분야에서는 주로 5-7층을 이용하지만 고분자 소재는 코팅 공정이 길어지면 열 변형이 일어날 수 있기 때문에 산화막의 층수를 낮추는데 초점이 맞춰졌다. 5층과 3층으로 코팅된 산화물 박막 모두 투과율이 향상되었으며 3층에 비해서 5층의 투과율 향상효과가 큰 것으로 나타났다. 고분자 소재의 투과율은 평균 약 90%이었으며 산화물 다층 박막과 비정질 탄소 박막을 코팅한 후 투과율이 약 81%로 측정되었다. 비정질 탄소 박막과 산화물 다층 박막을 적절하게 설계하고 코팅한다면 고분자 소재의 보호막으로 이용될 수 있을 것으로 판단된다.

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Characterization research Cr-DLC films for improved corrosion and conductivity of Bipolar plate (분리판의 내식성 및 전도성 향상을 위한 Cr-DLC 박막 특성 연구)

  • Jeon, Ye-Seul;Lee, Na-Rae;Mun, Gyeong-Il;Lee, Seon-Yeong
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2015.11a
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    • pp.272-273
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    • 2015
  • DLC는 고경도, 화학적 안정성 및 고내식성, 내마모성 및 낮은 마찰계수로 인하여 여러 산업분야의 표면처리기술로 적용되고 있다. 하지만 DLC의 절연특성은 전기 산업 분야에 적용 한계가 있다. 이번 연구에서는 DLC를 연료전지 중 PEMFC(고체산화물 연료전지)의 금속 분리판 표면처리에 적용시키고자 하였으며, 높은 전도성과 고내식성의 Me-DLC박막 제작을 목표로 하였다. Cr을 Buffer layer로 하고 Cr과 DLC를 동시에 증착한 Cr-DLC 박막을 제작하였다. Cr-DLC코팅의 기계적 특성을 확인하기 위하여 나노인덴터를 이용하여 경도 및 탄성률을 측정하였으며, ball-on disk를 이용하여 마찰계수를 확인하였다. 각 샘플들의 전기전도성을 확인하기 위하여 4-point probe system을 이용하여 측정하였으며, 부식 저항 특성을 확인하기 위하여 1mole $H_2SO_4$ + 2 ppm HF 분위기의 전해질 내에서 동전위 분극시험을 통한 내식성 테스트를 하였으며, XPS를 통하여 Cr-DLC박막내의 구조적 특성을 확인하였다.

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An Investigation of Worn DLC Coatings Using Atomic Force Microscopy (DLC코팅 마모면에 대한 원자력 현미경을 이용한 고찰)

  • ;;S. A. Chizhik
    • Tribology and Lubricants
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    • v.18 no.2
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    • pp.138-143
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    • 2002
  • Abstract - Tribofilms formed on won surface protect the DLC coating surface and decrease the fiction coefficient. However it is very difficult to evaluate their micromechanical properties due to their small thickness, inhomogeneity and discontinuity. The phase contrast images in tapping mode atomic farce microscopy allow an estimation of inhomogeneity in micromechanical properties of the sample surface. The purpose of this investigation is to demonstrate how the phase contrast images contribute to the characterization of thin tribofilms.

An investigation of worn DLC coatings using atomic force microscopy (DLC 코팅 마모면에 대한 원자력 현미경을 이용한 고찰)

  • ;;S.A.Chizhik
    • Proceedings of the Korean Society of Tribologists and Lubrication Engineers Conference
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    • 2001.06a
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    • pp.299-304
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    • 2001
  • Tribofilms formed on worn surface protect the DLC coating surface and decrease the friction coefficient. However it is very difficult to evaluate their micromechanical properties due to their small thickness, inhomogeneity and discontinuity. The phase contrast images in tapping mode atomic force microscopy allow an estimation of inhomogeneity in micromechanical properties of the sample surface. The purpose of this investigation is to demonstrate how the phase contrast images contribute to the characterization of thin tribofilms.

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A Study on the Improvement of Tool's Life by Applying DLC Sacrificial Layer on Nitride Hard Coated Drill Tools (드릴공구의 이종질화막상 DLC 희생층 적용을 통한 공구 수명 개선 연구)

  • Kang, Yong-Jin;Kim, Do Hyun;Jang, Young-Jun;Kim, Jongkuk
    • Journal of the Korean institute of surface engineering
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    • v.53 no.6
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    • pp.271-279
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    • 2020
  • Non-ferrous metals, widely used in the mechanical industry, are difficult to machine, particularly by drilling and tapping. Since non-ferrous metals have a strong tendency to adhere to the cutting tool, the tool life is greatly deteriorated. Diamond-like carbon (DLC) is one of the promising candidates to improve the performance and life of cutting tool due to their low frictional property. In this study, a sacrificial DLC layer is applied on the hard nitride coated drill tool to improve the durability. The DLC coatings are fabricated by controlling the acceleration voltage of the linear ion source in the range of 0.6~1.8 kV. As a result, the optimized hardness(20 GPa) and wear resistance(1.4 x 10-8 ㎣/N·m) were obtained at the 1.4 kV. Then, the optimized DLC coating is applied as an sacrificial layer on the hard nitride coating to evaluate the performance and life of cutting tool. The Vickers hardness of the composite coatings were similar to those of the nitride coatings (AlCrN, AlTiSiN), but the friction coefficients were significantly reduced to 0.13 compared to 0.63 of nitride coatings. The drilling test were performed on S55C plate using a drilling machine at rotation speed of 2,500 rpm and penetration rate of 0.25 m/rev. The result showed that the wear width of the composite coated drills were 200 % lower than those of the AlCrN, AlTiSiN coated drills. In addition, the cutting forces of the composite coated drills were 13 and 15 % lower than that of AlCrN, AlTiSiN coated drills, respectively, as it reduced the aluminum clogging. Finally, the application of the DLC sacrificial layer prevents initial chipping through its low friction property and improves drilling quality with efficient chip removal.

Friction Force Microscopy Analysis of Diamond-like Carbon Films (다이아몬드상 카본 박막의 Friction Force Microscopy 분석)

  • Choi, Won-Seok;Lee, Jong-Hwan;Song, Beom-Young;Heo, Jin-Hee;You, Jin-Soo;Hong, Byung-You
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2008.06a
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    • pp.181-181
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    • 2008
  • DLC (Diamond-like Carbon) 박막은 높은 내마모성과 낮은 마찰 계수, 화학적 안정성 및 적외선 영역에서의 높은 투과율과 낮은 광 반사도, 높은 전기저항과 낮은 유전율, 전계방출특성 등 여러 가지 장점을 가진 물질이다[1]. 최근에는 DLC 박막의 여러 장점들과 산과 염기 유기용매에 대한 화학적 안정성으로 인하여 인조관절에서 인공심장의 판막에 이르기까지 의공학 관련 부품소재로 응용되고 있으며 내구성과 안정성에 있어서 탁월한 성능을 보여주고 있다. 또한 DLC 박막의 높은 경도와 낮은 마찰 계수, 부드러운 박막 표면 (수nm의 RMS 거칠기)의 장점을 살려 마그네틱 미디어와 하드디스크의 슬라이딩 표면에 사용되어지고, MEMS (Micro-Electro Mechanical System) 소자와 MMAs (Moving Mechanical Assemblies)의 고체윤활코팅으로 활용하여 미세기계의 내구성과 성능 향상을 도모할 수 있다. 이와 같이 DLC 박막은 다양한 분야에 응용되고 있으며, 박막이 지닌 여러 가지 장점들로 인하여 더 많은 분야에 응용될 가능성을 지닌 물질이다. 그러나 수 ${\mu}m$이상의 두께에서 박막이 높은 잔류응력 (residual stress)을 가지고, 열에 취약하여 이의 개선에 관한 연구들이 진행되어 지고 있다 [2]. 따라서 사용되는 목적에 따라 용도에 맞는 양질의 DLC 박막을 합성하기 위해선 합성 장치의 개발과 다양한 실험을 통한 최적의 합성조건 도출 등의 노력이 요구된다. 또한 DLC 박막 합성시의 여러 가지 증착 방법에 따른 박막 물성에 대한 재현성 확보 및 박막 증착에 관한 명확한 메커니즘 규명이 아직까지는 불분명하여 이에 관한 연구가 시급하다. 따라서 본 연구에서는 MEMS 소자와 MMAs의 고체윤활코팅으로 사용가능한 DLC 박막을 RF PECVD (Plasma Enhanced Vapor Deposition) 방식으로 합성하고 후열처리 온도에 따른 DLC 박막의 마찰계수 변화를 박막에 훼손을 주지 않는 FFM (Friction Force Microscopy) 방식을 사용하여 분석하였다.

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CHARACTERISTICS OF DIAMONDLIKE CARBON COATED ALUMINA SEALS AT TEMPERATURES UP TO $400^{\circ}C$ (플라즈마 증착방식에 의해 DLC코팅된 알루미나 세라믹의 코팅박막 특성에 관한 연구)

  • Ok, Chul-Ho;Kim, Byoung-Yong;Kang, Dong-Hun
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2007.11a
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    • pp.397-397
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    • 2007
  • Diamondlike carbon (DLC) coatings were deposited on alumina ceramic seals using a plasma immersion ion deposition technique (PIID). Then they were subjected to tribological tests using a pin-on-disc tribometer under a high load (1.3 GPa) and under elevated temperatures up to 400C. Coefficients of friction (COFs) were recorded and compared with that of the untreated alumina while the wear tracks were analyzed using SEM with EDS to characterize the DLC films. To enhance the DLC adhesion to the substrate, various interlayers including Si and Cr were deposited using the PIID process or an ion beam assisted deposition (IBAD) method. It was observed that the DLC coating, if adhering well to the substrate, reduced the COFs significantly, from 0.4-0.8 for the uncoated alumina to about 0.05-0.1, within the tested temperature range. The adhesion was determined by the interlayer type and possibly by the application method. Cr interlayer did not perform as well as the Si interlayer. This could also be due to the fact that the Cr interlayer and the subsequent DLC coating had to be done in two different processing systems, while both the Si interlayer and the subsequent DLC film were deposited in one system without breaking the chamber. The coating failure mode was found to be delamination between the Cr and the alumina substrate. In contrast, the Si interlayer with proper DLC deposition procedures resulted in very good adhesion and hence excellent tribological performance. Further study may lead to future DLC applications of ceramic seals.

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The Performance Test on Me-DLC Films for Improving Wear Resistance of LM-Guide (LM 가이드의 내마모성 향상을 위한 Me-DLC 코팅박막의 성능평가)

  • Kang, Eun-Goo;Lee, Dong-Yoon;Kim, Seong-Young
    • Journal of the Korean Society for Precision Engineering
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    • v.29 no.4
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    • pp.409-416
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    • 2012
  • Recently, surface modification technology is of importance to improve the wear resistance and the corrosive resistance for high accurate mechanical parts such as LM guide, Ball Screw and Roller Bearing etc., Those has generally featured on rolling contact mechanism to improve not only the wear and the friction, but also the accuracy and the corrosion performances. For surface modifications of high accurate mechanical parts, normally thermal spray, PVD, CVD and E.P. processes have been used with many materials such as DLC, raydent, W, Ni, Ti etc. Diamondlike carbon (DLC) films possess a combination of attractive properties and have been largely employed to modify the tribological behaviors such as friction, wear, corrosion, fretting fatigue, biocompatibility, etc. However, for rolling contact mechanism mechanical parts DLC films are needed to study for commercial benefit. Rolling contact mechanism has features on effects of cyclic motions and stresses, and also not simply sliding motions. The papers focused on the performance test of wear and corrosive resistance according to Me-DLC film thickness. And also, its thickness effect of wear analysis was carried out through the simulation of the maximum shear stress under the rolling contact surface. As the results, Me-DLC films have more potential to improve the wear resistance for high precision mechanical parts than raydent films.

Evaluation of Tribological Characteristics of Diamond-Like Carbon (DLC) Coated Plastic Gear (플라스틱 기어의 트라이볼로지적 특성 향상을 위한 DLC 코팅 적용)

  • Bae, Su-Min;Khadem, Mahdi;Seo, Kuk-Jin;Kim, Dae-Eun
    • Tribology and Lubricants
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    • v.35 no.1
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    • pp.1-8
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    • 2019
  • Demand for plastic gears are increasing in many industries due to their low production cost, light weight, applicability without lubricant, corrosion resistance and high resilience. Despite these benefits, utilizing plastic gears is limited due to their poor material properties. In this work, DLC coating was applied to improve the tribological properties of polyamide66 gear. 0 V, 40 V, and 70 V of negative bias voltages were selected as a deposition parameter in DC magnetron sputtering system. Pin-on-disk experiment was performed in order to investigate the wear characteristics of the gears. The results of the pin-on-disk experiment showed that DLC coated polyamide66 with 40 V of negative bias voltage had the lowest friction coefficient value (0.134) and DLC coated PA66 with 0 V of negative bias voltage showed the best wear resistance ($9.83{\times}10^{-10}mm^3/N{\cdot}mm$) among all the specimens. Based on these results, durability tests were conducted for DLC coated polyamide66 gears with 0 V of negative bias voltage. The tests showed that the temperature of the uncoated polyamide66 gear increased to about $37^{\circ}C$ while the DLC coated gear saturated at about $25^{\circ}C$. Also, the power transmission efficiency of the DLC coated gear increased by about 6% compared to those without coating. Weight loss of the polyamide66 gears were reduced by about 73%.