• 제목/요약/키워드: Precipitation hardening

검색결과 131건 처리시간 0.024초

Softening-hardening Mechanisms in the Direct Hot-extrusion of Aluminium Compacts

  • Zubizarreta, C.;Arribas, I.;Gimenez, S.;Iturriza, I.
    • 한국분말야금학회:학술대회논문집
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    • 한국분말야금학회 2006년도 Extended Abstracts of 2006 POWDER METALLURGY World Congress Part2
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    • pp.718-719
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    • 2006
  • Two different commercial aluminium powder grades have been densified by direct hot extrusion. The extrusion temperature was $425^{\circ}C$, with an extrusion ratio of 1:16. Prior to extrusion, some green compacts were pre-sintered ($500^{\circ}C$). The evolution of the extrusion load during the process and the hardness of the final products have been investigated. Additionally, microstructural characterization by X-ray diffraction (XRD), Scanning Electron Microscopy (SEM) and Electron Backscattered Diffraction (EBSD) was carried out. The obtained results evidence grain refinement. Additionally, inter-metallic precipitation, dynamic recovery and geometric dynamic recrystallization take place depending on some process variables, powder composition, heat treatment, strain $\ldots$

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7050 Al 합금의 RRA 처리에 관한 연구 (A Study on the RRA(Retrogression and Reaging) treatment of 7050 Al alloy)

  • 최중환;김장량;이상래;김인배
    • 한국재료학회지
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    • 제10권7호
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    • pp.493-498
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    • 2000
  • 7050 AI합금을 RRA 처리하였을 때 경도, 전기전도도 및 미세조직의 변화를 조사하였다. 120도씨에서 24시간 동안 1차 시효처리한 후 175도씨에서 2차 퇴화처리하였을 때 경도값의 변화는 초기에 감소하다가 피크 경도를 보인 다음 다시 감소하였으며, 3차 재시효처리재가 2차 시효처리재 보다 큰 경도값을 나타내었다. 2차 퇴화처리시 초기 경도 감소는 T6의 주 강화상인 GP zone의 부분적인 분해에 의한 것이며, 3차 재시효 처리하였을 때 강화상은 GP zone과 파이상이었다. 120도씨에서 24시간 동안 1차 시효처리한 후 175도씨에서 2차 퇴화처리하였을 때 전기전도도 변화는 퇴화 쵤부터 연속적으로 증가혀였으며, 3차 재시효처리에 의해 2차 퇴화처리시 보다 %IACS가 0.5 ~ 2.7 증가하였다. 3단시효에 의해 T6정도의 강도를 유지하면서 38%IACS값 이상의 전기전도도를 얻을 수 있는 최적 퇴화처리 조건은 $175^{\circ}C$ 50분이었다. 이는 퇴화처리 경도곡선의 극소점 또는 극대점과 무관하며 오히려 약간 과시효 조건이다.

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$CO_2$ 레이저를 이용한 GTD111DS 초합금 용접부의 미세조직과 기계적 성질 (Microstructures and Mechanical Properties of GTD 111DS Welds by $CO_2$ Laser Welding)

  • 이택운;양성호;김상훈
    • 대한용접접합학회:학술대회논문집
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    • 대한용접접합학회 2009년 추계학술발표대회
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    • pp.108-108
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    • 2009
  • 니켈기지의 석출강화 초내열합금은 가스터빈의 고온부 부품 제조에 널리 사용되고 있다. 장시간 동안 부품의 강성 유지와 구조적 안정성을 확보하기 위해서는 니켈기지의 합금에 감마프라임 생성을 위한 원소를 첨가하는데 이에 따른 용접성의 저하 때문에 보통 초합금의 용접은 고온에서 수행하게 된다. 그러나 레이저용접의 경우는 용접변수 및 입열제어가 용이해 상온에서 초합금의 용접이 가능한 장점이 있다. 본 연구에서는 일반적인 재료로 연성이 좋은 STS304 판재와 실제 블레이드의 재료로 사용되는 니켈계 석출강화 합금인 GTD 111DS 모재에 $CO_2$ 레이저를 이용하여 용접을 실시하였고 적용파우더와 파워, 용접속도 및 파우더 공급량 등을 달리 하였다. STS304 판재 사용시 Rene 80과 IN 625 파우더 모두 용접부에서 균열이 발생하지 않았다. 그러나 GTD 111DS 모재의 경우 IN 625 파우더에서는 결함이 없었으나 Rene 80 파우더를 사용시에는 용접부에 균열이 발생하였다. IN 625 파우더는 모재보다 기계적 성질이 떨어지는 문제가 있으나 Rene 80은 모재와 동등 이상의 기계적 성질을 보유하고 있기 때문에 Rene 80 의 적용을 위해 균열이 발생하지 않는 용접변수의 제어를 시도하였다. 용접변수의 조정 결과 레이저 파워와 파우더 공급량을 낮추고 용접속도를 높여 균열이 발생하지 않는 최적의 용접변수를 설정할 수 있었다. 최적화된 용접변수를 적용, 용접한 시편의 인장값을 보면 GTD 111DS 모재에 Rene 80 파우더로 용접된 시편의 인장강도가 상온/고온($760^{\circ}C$)의 조건에서 각각 GTD 111DS 모재의 인장강도 보다 높은 값을 나타내었다.

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템퍼링에 따른 Cu 첨가 고강도강의 미세조직과 기계적 특성 (Effects of Tempering Treatment on Microstructure and Mechanical Properties of Cu-Bearing High-Strength Steels)

  • 이상인;황병철
    • 한국재료학회지
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    • 제24권10호
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    • pp.550-555
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    • 2014
  • The present study deals with the effects of tempering treatment on the microstructure and mechanical properties of Cu-bearing high-strength steels. Three kinds of steel specimens with different levels of Cu content were fabricated by controlled rolling and accelerated cooling, ; some of these steel specimen were tempered at temperatures ranging from $350^{\circ}C$ to $650^{\circ}C$ for 30 min. Hardness, tensile, and Charpy impact tests were conducted in order to investigate the relationship of microstructure and mechanical properties. The hardness of the Cu-added specimens is much higher than that of Cu-free specimen, presumably due to the enhanced solid solution hardening and precipitation hardening, result from the formation of very-fine Cu precipitates. Tensile test results indicated that the yield strength increased and then slightly decreased, while the tensile strength gradually decreased with increasing tempering temperature. On the other hand, the energy absorbed at room and lower temperatures remarkably increased after tempering at $350^{\circ}C$; and after this, the energy absorbed then did not change much. Suitable tempering treatment remarkably improved both the strength and the impact toughness. In the 1.5 Cu steel specimen tempered at $550^{\circ}C$, the yield strength reached 1.2 GPa and the absorbed energy at $-20^{\circ}C$ showed a level above 200 J, which was the best combination of high strength and good toughness.

금속기지 나노복합재용 탄소나노섬유 일방향 배열을 위한 이종재 인발 연구 (The study of drawing on the heterogeneous materials for the unidirectional alignment of carbon nanofiber in metal matrix nanocomposite)

  • 백영민;이상관;엄문광;김병민
    • 한국소성가공학회:학술대회논문집
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    • 한국소성가공학회 2003년도 추계학술대회논문집
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    • pp.301-301
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    • 2003
  • In current study, Nanocomposites are reinforced with carbon nanofiber, carbon nanotube and SiC, etc. Since the nano reinforcements have the excellent mechanical, thermal and electrical properties compared with that of existing composites, it has lately attracted considerable attention in the various areas. Cu have been widely used as signal transmission materials for electrical electronic components owing to its high electrical conductivity. However, it's size have been limited to small ones due to its poor mechanical properties. Until now, strengthening of the copper alloy was obtained either by the solid solution and precipitation hardening by adding alloy elements or the work hardening by deformation process. Adding the alloy elements lead to reduction of electrical conductivity. In this aspect, if carbon nanofiber is used as reinforcement which have outstanding mechanical strength and electric conductivity, it is possible to develope Cu matrix nanocomposite having almost no loss of electric conductivity. It is expected to be innovative in electric conducting material market. The unidirectional alignment of carbon nanofiber is the most challenging task developing the cooer matrix composites of high strength and electric conductivity. In this study, the unidirectional alignment of carbon nanofibers which is used reinforced material are controlled by drawing process and align mechanism as well as optimized drawing process parameter are verified via numerical analysis. The materials used in this study were pure copper and the nanofibers of 150nm in diameter and of 10∼20$\mu\textrm{m}$ in length. The materials have been tested and the tensile strength was 75MPa with the elongation of 44% for the copper. it is assumed that carbon nanofiber behave like porous elasto-plastic materials. Compaction test was conducted to obtain constitutive properties of carbon nanofiber Optimal parameter for drawing process was obtained by analytical and numerical analysis considering the various drawing angles, reduction areas, friction coefficient, etc. The lower drawing angles and lower reduction areas provides the less rupture of co tube is noticed during the drawing process and the better alignment of carbon nanofiber is obtained.

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초초임계 석탄발전 보일러 튜브(SA213 TP347H) 용접부 안정화 열처리 효과 (Effect on the Stabilizing Heat Treatment to Weld Joint for the USC Coal Boiler Tubes(SA213 TP347H))

  • 안종석;박진근;이길재;윤재연
    • Journal of Welding and Joining
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    • 제33권4호
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    • pp.30-36
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    • 2015
  • Austenite stainless steel(SA213-TP347H) has widely been used for the superheater & reheater tube in USC(ultra-supercritica) coal boiler because of its high creep rupture strength and anti-oxidation. But recently, the short-term failures have happened frequently in heat affected zone for only 4,000~15,000hours of service. Many investigations have been conducted to understand the failure mechanism. The root cause of failure was comfirmed to "strain induce participation hardening crack" or "reheat cracking". This mechanism often occurred due to weld residual stress and precipitation of the Cr, Nb carbides in the stabilized stainless steel such as TP347H. This paper presents an analysis of failure tube and effect of the sample tubes that conducting stabilizing heat treatment in site after 11,380hours & 16,961hours of service. Visual inspection was performed. In addition, microscopic characteristics was identified by O.M, SEM, and hardness test was carried out to find out the heat treatment effects. Failures seem to happen because of being not conducted stabilizing heat treatment in site. And another cause is inadequate weld parameter such as pass, ampere, voltage, inter-pass temperature. Thus, this paper has the purpose to describe that how to prevent similar failures in those weld-joints.

AZ91-0.3Ca-0.2Y 마그네슘 합금 주조재의 시효경화 거동 및 기계적 특성 (Age-hardening Behavior and Mechanical Properties of Cast AZ91-0.3Ca-0.2Y Alloy)

  • 김현지;배준호;김영민;박성혁
    • 소성∙가공
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    • 제32권4호
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    • pp.173-179
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    • 2023
  • In this study, the age-hardening behavior and tensile properties of a cast AZ91-0.3Ca-0.2Y (SEN9) alloy are investigated and compared with those of a commercial AZ91 alloy. Even after homogenization heat treatment, the SEN9 alloy contains numerous undissolved secondary phases, Al8Mn4Y, Al2Y, and Al2Ca, which results in a higher hardness value than the homogenized AZ91 alloy. Under aging condition at 200 ℃, both the AZ91 and SEN9 alloys exhibit the same peak-aging time of 8 h, but the peak hardness of the latter (86.8 Hv) is higher than that of the former (83.9 Hv). The precipitation behavior of Mg17Al12 phase during aging significantly differs in the two alloys. In the AZ91 alloy, the area fraction of Mg17Al12 discontinuous precipitates (DPs) increases up to ~50% as the aging time increases. In contrast, in the SEN9 alloy, the formation and growth of DPs during aging are substantially suppressed by the Ca- or Y-containing particles, which leads to the formation of only a small amount of DPs with an area fraction of ~4% after peak aging. Moreover, the size and interparticle spacing of Mg17Al12 precipitates of the peak-aged SEN9 alloy are smaller than those of the peak-aged AZ91 alloy. The homogenized AZ91 alloy exhibits a higher tensile strength than the homogenized SEN9 alloy due to the finer grains of the former. However, the peak-aged SEN9 alloy has a higher tensile elongation than the peak-aged AZ91 alloy due to the smaller amount of brittle DPs in the former.

황화물계 3가 크롬도금욕에서 크롬-탄소 및 크롬-탄소-인 합금도금의 전착과 결정화거동 (Electro-deposition and Crystallization Behaviors of Cr-C and Cr-C-P Alloy Deposits Prepared by Trivalent Chromium Sulfate Bath)

  • 김만;김대영;박상언;권식철;최용
    • 한국표면공학회지
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    • 제37권2호
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    • pp.80-85
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    • 2004
  • Chromium-carbon (Cr-C) and chromium-carbon-phosphorus (Cr-C-P) alloy deposits using trivalent chromium sulfate baths containing potassium formate were prepared to study their current efficiency, hardness change and phase transformations behavior with heat treatment, respectively. The current efficiencies of Cr-C and Cr-C-P alloy deposits increase with increasing current density in the range of 15-35 A/dm$^2$. Carbon content of Cr-C and phosphorous of Cr-C-P layers decreases with increasing current density, whereas, the carbon content of Cr-C-P layer is almost constant with the current density. Cr-C deposit shows crystallization at $400^{\circ}C$ and has (Cr+Cr$_{ 23}$$C_{6}$) phases at $800^{\circ}C$. Cr-C-P deposit shows crystallization at $600^{\circ}C$ and has (Cr+Cr$_{23}$ $C_{6}$$+Cr_3$P) phases at $800^{\circ}C$. The hardness of Cr-C and Cr-C-P deposits after heating treatment for one hour increase up to Hv 1640 and Hv 1540 and decrease about Hv 820 and Hv 1270 with increasing annealing temperature in the range of $400~^{\circ}C$, respectively. The hardness change with annealing is due to the order of occurring of chromium crystallization, precipitation hardening effect, softening and grain growth with temperature. Less decrease of hardness of Cr-C-P deposit after annealing above $700^{\circ}C$ is related to continuous precipitation of $Cr_{23}$ $C_{6}$ and $Cr_3$P phases which retard grain growth at the temperature.

Zn-15%Al 합금의 가공연화 거동 (Work Softening Behavior of Zn-15%Al alloy)

  • 전중환;성기덕;김정민;김기태;정운재
    • 열처리공학회지
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    • 제18권1호
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    • pp.18-23
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    • 2005
  • Effect of cold rolling on microstructural changes has been investigated for a Zn-15%Al alloy to elucidate the reason for its work softening behavior. Fully annealed microstructure of the Zn-15%Al alloy is characterized by ${\eta}$ grains and (${\eta}+{\alpha}$) lamellar colonies, where ${\eta}$ and ${\alpha}$ are Zn-rich HCP and Al-rich FCC phases, respectively. The hardness decreases continuously with increasing cold rolling degree, exhibiting work softening behavior. It is revealed that during the cold rolling, (${\eta}+{\alpha}$) lamellar colonies gradually change into equiaxed ${\eta}$ and ${\alpha}$ grains due to dynamic recrystallization at room temperature, while pre-existing ${\eta}$ grains are only deformed without recrystallization. Furthermore, cold rolling causes the precipitation of dissolved Al solutes in ${\eta}$ grains. In view of these results, change of (${\eta}+{\alpha}$) phases from lamellar to equiaxed morphology, which results in structural softness and increase in equiaxed ${\eta}/{\alpha}$ grain boundaries with higher mobility, and deterioration of solution hardening by precipitation of Al solutes from ${\eta}$ grains, are thought to contribute to the work softening of Zn-15%Al alloy.

스테인레스강 Overlay 용접부의 Disbonding 에 관한 연구(2) - 오스테나이트계 스테인레스강 오버레이 용접금속의 PWHT에 관한 야금학적 고찰 - (Study on the Disbonding of Stainless Steel Overlay Welded Metal(Report 2) - A Metallurgical Study on PWHT of Overlaid Austenitic Stainless Steel Weld Metals -)

  • 이영호;윤의박
    • Journal of Welding and Joining
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    • 제2권1호
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    • pp.4-17
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    • 1984
  • Overlaid weld metals of austenitic stainless steel in a pressure vessel of power reactor are usually post-weld heated for a long period of time after welding. The PWHT is considered as a kind of sensitizing and it is important to check the soundness of the weld metal after PWHT, especially about the precipitation of carbides. The purpose of this report is to obtain information on the relation between the change of microstructure and Post-Weld Heat Treatment in the overlaid weld metals. Metallurgical aspects of the problem on austenitic stainless steel heated at $625^{\circ}C$, $670^{\circ}C$, $720^{\circ}C$ and $760^{\circ}C$ for 3, 10, 30, 100 and 300 hours have been investigated by means of optical-micrography, micro-hardness measurement, scanning electron microscope and electron-probe micro analysis. From the results obtained, the following conclusions are drawn; 1) The PWHT above $625^{\circ}C$ for a long time causes a diffusion of carbon atoms from low alloy steel into stainless steel, and consequently carbon is highly concentrated at the boundary layer of stainless steel. 2) C in ferritic steel migrated to austenitic steel and carbides precipitated in austenitic steel along fusion line. At higher temperatures, the ferrite grains coarsened in the decarburized zone. 3) In the change of microstructure of stainless steel overlaid weld metal, the width of carbides precipitated zone and decarburized zone increased with increase of PWHT temperature and time. 4) At about $625^{\circ}C$ to $760^{\circ}C$, chromium carbides, mainly $M_{23} C_6$, precipitate very closely in the carburized layer with remarkable hardening. 5) Precipitation of delta ferrite from molten weld metal depends on solidification phenomenon. There was a small of ferrite near the bond in which the local solidification time was short, comparing with after parts of weld metal. Shape and amount of ferrite were not changed by Post-Weld Heat Treatment after solidification.

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