• Title/Summary/Keyword: Pack Cementation

Search Result 43, Processing Time 0.025 seconds

Formation of MoSi2 Layer by Hydrogen Reduction and Si-pack Cementation (수소 환원 공정과 실리콘 확산 침투 처리 공정을 통한 이규화 몰리브덴 코팅층 형성)

  • Jeon, In Mok;Byun, Jong Min;Kim, Se Hoon;Kim, Jin Woo;Kim, Young Do
    • Korean Journal of Metals and Materials
    • /
    • v.50 no.9
    • /
    • pp.653-657
    • /
    • 2012
  • In this study, a molybdenum disilicide ($MoSi_2$) coating process was investigated by hydrogen reduction and Si-pack cementation. At first, the metallic Mo coating was carried out by hydrogen reduction of $MoO_3$ powder at $750^{\circ}C$ for various holding times (1, 2, 3 h) in hydrogen atmosphere. A $4.3{\mu}m$ thick metallic molybdenum thin film was formed at 3 h. $MoSi_2$ was obtained by Si-pack cementation on molybdenum thin film through hydrogen reduction processing. It was carried out using $Si:Al_2O_3:NH_4Cl=5:92:3$ (wt%) packs at $900^{\circ}C$ for various holding times (30, 60, 90 min) in Ar atmosphere. When the holding time was 90 min, a $MoSi_2$ layer was coated successfully and a $15.4{\mu}m$ thickness was observed.

Optimal Aluminizing Coating on Incoloy 909 (Incoloy 909 합금의 최적 알루미나이징 확산 코팅)

  • Kwon, S.W.;Yoon, J.H.;Joo, Y.K.;Cho, T.Y.;Ahn, J.S.;Park, B.K.
    • Journal of the Korean institute of surface engineering
    • /
    • v.40 no.4
    • /
    • pp.175-179
    • /
    • 2007
  • An Fe-Ni-Co based superalloy Incoloy 909 (Incoloy 909) has been used for gas turbine engine component material. This alloy is susceptible to high temperature oxidation and corrosion because of the absence of corrosion resistant Cr. For the improvement of durability of the component of Incoloy 909 aluminizing-chromate coating by pack cementation process has been investigated at relatively low temperature of about $550^{\circ}C$ to protect the surface microstructure and properties of Incoloy 909 substrate. As a previous study to aluminizing-chromate coating by pack cementation of Incoloy 909, the optimal aluminizing process has been investigated. The size effects of source Al powder and inert filler $Al_O_3$ powder and activator selection have been studied. And the dependence of coating growth rate on aluminizing temperature and time has also been studied. The optimal aluminizing process for the coating growth rate is that the mixing ratio of source Al powder, activator $NH_4Cl$ and filler $Al_O_3$ are 80%, 1% and 19% respectively at aluminizing temperature $552^{\circ}C$ and time 20 hours.

Kinetic Analysis of Diffusion Aluminide Coating (확산 알루미나이드 코팅의 속도론적 해석)

  • 손희식;김문일
    • Journal of the Korean institute of surface engineering
    • /
    • v.28 no.3
    • /
    • pp.152-163
    • /
    • 1995
  • A theoretical model which combines gaseous transport and solid state diffusion with the multi-component equilibrium at the gas/pack and gas/coating interfaces was used to study the kinetics of diffusion aluminide coating. The diffusion aluminide coatings were applied by pack cementation with Ni substrate under argon atmosphere in the high activity and the low activity pack containing $NH_4CL$ or $AlF_3$ activator. On the basis of the process conditions, the suggested model allows the surface composition, the growth rate of coating layers and the aluminium concentration profiles in coatings to be calculated. In the case of $NH_4$Cl activator, careful consideration was required in the analysis, because activator contains nitrogen and hydrogen as well as halogen element to activate the pack. A good agreement is obtained between the theoretical predictions and the experimental results.

  • PDF

High Temperature Ablation Behaviors of Multilayer Coated Stainless Steel (다층 코팅된 Stainless Steel의 고온 내삭마특성)

  • Choi, Kwangsu;Yang, Wonchul;Kim, Yeong joo;Park, Joon Sik;Kim, Min Kyu
    • Korean Journal of Materials Research
    • /
    • v.28 no.3
    • /
    • pp.135-141
    • /
    • 2018
  • Stainless steel is being used in various industries such as automobile and aerospace for its cheap manufacturing cost and excellent mechanical properties. However, stainless steel failed to stably protect a specimen with a $Cr_2O_3$ protective layer at temperatures above $1000^{\circ}C$. Thus, improving the high temperature flame resistance of the specimen through additional surface coating was needed. In this study, multilayer coatings of YSZ and $Al_2O_3$ were performed on SUS 304 specimens using pack cementation coatings and thermal plasma spray. The multilayer coated specimen showed enhanced thermal properties due to the coated layers. The microstructures and phase stability are discussed together with flame conditions at $1350^{\circ}C$.

Aluminide Coatings on IN713C by Chemical Vapor Depostion (화화증착법에 의한 알루미나이드 코팅층의 형성)

  • Sohn, H.S.;Hong, S.H.;Kim, M.I.
    • Journal of the Korean Society for Heat Treatment
    • /
    • v.7 no.2
    • /
    • pp.129-138
    • /
    • 1994
  • The purpose of this study is to clarify the influence of the reaction temperature and $AlCl_3$ content on the aluminide coating formation on Ni-based superalloy IN713C in CVD process and to compare its throwing power with that of Pack Cementation process. Aluminide coating was formed by CVD in hot-wall stainless tube reactor from an $AlCl_3-H_2$ mixture in the temperature range $850{\sim}1050^{\circ}C$. At reaction temperature $850^{\circ}C$, the coating thickness and the content of aluminium at the surface were increased as $AlCl_3$ heating temperature was raised. At reaction temperature $1050^{\circ}C$, they were not influenced by the variation of $AlCl_3$ heating temperature. When $AlCl_3$ heating temperature was fixed $125^{\circ}C$, the phases of the coatings were varied from $Ni_2Al_3$ to Al-rich NiAl and to Ni-rich NiAl with the reaction temperature. Therefore, in this study the reaction temperature has been found to be a major factor in determining the phase formed in CVD process. The throwing power of CVD was superior to that of Pack Cementation.

  • PDF

Development of Sn-Al Thermal Diffusion Coating Technology for Improving Anti-Galling Characteristics of 304 Stainless Steel (304 스테인레스강의 고착방지성능 향상을 위한 Sn-Al 열 확산 코팅 기술 개발)

  • Hwang, Ju-Na;Kang, Sung-Hun;Cho, Sungpil;Jeong, Hui-Jong;Kim, Dong-Uk;Lee, Bang-Hui;Hwang, Jun;Lee, Yong-Kyu
    • Journal of the Korean institute of surface engineering
    • /
    • v.51 no.5
    • /
    • pp.297-302
    • /
    • 2018
  • The important drawback of hardware fasteners consisted of 304 stainless steel (STS) is a frequent galling caused by a combination of friction and adhesion between the sliding surface. To improve the anti-galling effect, Sn-Al coatings by a thermal diffusion have been developed. The thermal diffusion by pack cementation with an $AlCl_3$ activator at $250^{\circ}C$ for 1 hour produced an Sn-Al alloy coating layer with an average thickness of $9.9{\pm}0.5{\mu}m$ on the surface of 304 STS fasteners. Compared with the galling frequency of the 304 STS fasteners, Sn-Al coatings on the surface of 304 STS fasteners demonstrated about 2.8-time reduction of the galling frequency.

Microstructures and Cyclic Oxidation Resistance of Aluminide Coatings for Inconel 600 (Inconel 600에 있어서 Al抗散浸透 被覆層의 微細組織과 耐反復酸化性)

  • Chung, In-Sang;Byun, Chang-Suk
    • Journal of the Korean institute of surface engineering
    • /
    • v.20 no.2
    • /
    • pp.60-73
    • /
    • 1987
  • For the purpose of improving the cyclic oxidation resistance of Ni-base superalloy, Inconel 600, aluminide coating methods are studied. The formation rate of aluminide coating layers is measured as a function of time and pack composition to find out the optimum coating condition. The evaluation of cyclic oxidation is established by the change in weight, the microphotography and EPMA of cross sectional area during $200^{\circ}C\;{\leftrightarrow}\;950^{\circ}C\;and\;200^{\circ}C\;{\leftrightarrow}\;1100^{\circ}C$, respectively. The thickness of coating layer and weight gains are parabolic behavior in propotion to time and Al contents. In pack of low aluminum contents, 2 wt%, however, weight gain is decreased when activator, $NH_4Cl$ is higher than 2 wt%. The cyclic oxidation resistance of the coating carried out at 1100$^{\circ}C$ are superior to those of the coating diffusion-treated after pack cementation at 800$^{\circ}C$. Aluminide oxide, which is formed in external scale, is barrier to the cyclic oxidation.

  • PDF

Conversion of Carbon Fiber into Silicon Carbide Fiber by Pack-Cementation

  • Joo, Hyeok-Jong;Kim, Jung-Il;Lee, Jum-Kyun
    • Carbon letters
    • /
    • v.1 no.1
    • /
    • pp.12-16
    • /
    • 2000
  • Carbon fiber was reacted with gaseous silicon monoxide which is produced from pack-powder mixture at elevated temperature. As a result of the reaction, two kinds of SiC fiber were obtained. The first one was SiC fibers which were converted from carbon fiber. The fiber is constituted with polycrystal like fine grains or monolithic crystals that have a size from sub-micron to $10\;{\mu}m$. Their size depends on the temperature during the conversion reaction. The second one was ultra-fine SiC fibers that were found on the surface of the converted SiC fibers. The ultra-fine fibers have diameters from 0.08 to $0.2\;{\mu}m$ and their aspect ratio were larger than 100. The chemical composit ion of the ultra-fine fibers was analyzed using an Auger electron spectroscopy. In result, the fibers consist of 51% silicon, 38% carbon and 11% oxygen by weight.

  • PDF

Microstructure and Hot Corrosion Resistance of Aluminide and Chromium-Aluminide Coatings for Inconel 600 (Inconel 600에 있어서 Al 및 Al-Cr擴酸浸透 被覆處理에 따른 被覆層의 特性과 耐蝕性)

  • Chung In-Sang;Park, Kyeung-Chae;Park, Soo-Ho
    • Journal of the Korean institute of surface engineering
    • /
    • v.20 no.3
    • /
    • pp.95-105
    • /
    • 1987
  • For the purpose of improving the hot corrosion resistance of Ni-base superalloy, Inconel 600, aluminide and chromium-aluminide coatings by pack cementation process were studied. The morphology of these coatings is dependent on the type of process employed. And their overall composition depends on the composition of the base alloy and on the nature of the cement. Therefore the different aluminide and chromium-aluminide coatings obtained on a superalloy do not possess the same resistance to oxidation and hot corrosion. The mechanisms governing the formation of the coatings and the composition of the coating were varied by pack composition and temperature, and cyclic hot corrosion resistance of the auluminide coating formed by one-step process was inferior to that of the coating formed by two-step process. and Cr-Al composite coating showed good resistance for cyclic hot corrosion.

  • PDF