• 제목/요약/키워드: carbide phase

검색결과 262건 처리시간 0.021초

레이저 침탄된 TiZrN 코팅에서 탄소확산거동과 기계적 특성 (Carbon diffusion behavior and mechanical properties of carbon-doped TiZrN coatings by laser carburization)

  • 유현조;김태우;김성훈;조일국;이희수
    • 한국결정성장학회지
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    • 제31권1호
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    • pp.32-36
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    • 2021
  • 본 연구는 레이저 침탄된 TiZrN 코팅층의 탄소확산거동 측면과 이에 따른 기계적 특성 변화를 연구·고찰하였다. TiZrN 코팅에 탄소페이스트를 도포한 후, 레이저를 조사하여 침탄시켰다. 침탄 이후에 (111)상에 해당하는 XRD 피크가 저각으로 이동하여, 도핑된 탄소에 의한 격자팽창을 보여주었다. 아울러, 투입된 탄소의 입계 확산에 의한 결정립의 크기가 감소하였다. 침입된 탄소의 결합상태를 확인하기 위한 XPS 분석결과, 레이저의 열에너지를 통해 탄소가 TiZrN내 질소 원자와 치환되어 탄화물(TiC 또는 ZrC)을 보였다. 아울러, sp2와 sp3 혼성화 결합이 혼재하는 상태를 보여 비정질 탄소가 형성된 것을 확인할 수 있었다. 침탄 전후 TiZrN 코팅층의 단면 TEM 이미지와 inverse FFT 분석결과, 격자 중간에 물결형상이 관찰되어 결정립계 내 비정질 상의 형성을 보여주었다. 침탄 후 경도는 34.57 G Pa에서 38.24 G Pa로 증가하였으며, 마찰계수는 83 % 감소하였다. 특히, 외부 하중에 저항하는 지표로 활용되는 H/E는 0.11에서 0.15으로 증가하였고 wear rate는 65 % 개선되는 것을 확인할 수 있었다.

The Development of an Electroconductive SiC-ZrB2 Composite through Spark Plasma Sintering under Argon Atmosphere

  • Lee, Jung-Hoon;Ju, Jin-Young;Kim, Cheol-Ho;Park, Jin-Hyoung;Lee, Hee-Seung;Shin, Yong-Deok
    • Journal of Electrical Engineering and Technology
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    • 제5권2호
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    • pp.342-351
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    • 2010
  • The SiC-$ZrB_2$ composites were fabricated by combining 30, 35, 40, 45 and 50 vol. % of zirconium diboride ($ZrB_2$) powders with silicon carbide (SiC) matrix. The SiC-$ZrB_2$ composites and the sintered compacts were produced through spark plasma sintering (SPS) under argon atmosphere, and its physical, electrical, and mechanical properties were examined. Also, the thermal image analysis of the SiC-$ZrB_2$ composites was examined. Reactions between $\beta$-SiC and $ZrB_2$ were not observed via x-ray diffraction (XRD) analysis. The apparent porosity of the SiC+30vol.%$ZrB_2$, SiC+35vol.%$ZrB_2$, SiC+40vol.%$ZrB_2$, SiC+45vol.%$ZrB_2$ and SiC+50vol.%$ZrB_2$ composites were 7.2546, 0.8920, 0.6038, 1.0981, and 10.0108%, respectively. The XRD phase analysis of the sintered compacts demonstrated a high phase of SiC and $ZrB_2$. Among the $SiC+ZrB_2$ composites, the SiC+50vol.%$ZrB_2$ composite had the lowest flexural strength, 290.54MPa, the other composites had more than 980MPa flexural strength except the SiC+30vol.%$ZrB_2$ composite; the SiC+40vol.%$ZrB_2$ composite had the highest flexural strength, 1011.34MPa, at room temperature. The electrical properties of the SiC-$ZrB_2$ composites had positive temperature coefficient resistance (PTCR). The V-I characteristics of the SiC-$ZrB_2$ composites had a linear shape in the temperature range from room to $500^{\circ}C$. The electrical resistivities of the SiC+30vol.%$ZrB_2$, SiC+35vol.%$ZrB_2$, SiC+40vol.%$ZrB_2$ SiC+45vol.%$ZrB_2$ and SiC+50vol.%$ZrB_2$ composites were $4.573\times10^{-3}$, $1.554\times10^{-3}$, $9.365\times10^{-4}$, $6.999\times10^{-4}$, and $6.069\times10^{-4}\Omega{\cdot}cm$, respectively, at room temperature, and their resistance temperature coefficients were $1.896\times10^{-3}$, $3.064\times10^{-3}$, $3.169\times10^{-3}$, $3.097\times10^{-3}$, and $3.418\times10^{-3}/^{\circ}C$ in the temperature range from room to $500^{\circ}C$, respectively. Therefore, it is considered that among the sintered compacts the SiC+35vol.%$ZrB_2$, SiC+40vol.%$ZrB_2$ and SiC+45vol.%$ZrB_2$ composites containing the most outstanding mechanical properties as well as PTCR and V-I characteristics can be used as an energy friendly ceramic heater or ohmic-contact electrode material through SPS.