• 제목/요약/키워드: 630 Stainless

검색결과 21건 처리시간 0.02초

플라즈마 이온질화에 따른 STS 630의 기계적 특성과 세포독성에 관한 융합적 연구 (Mechanical Properties and cytotoxicity of nitrided 630 Stainless by ion nitriding)

  • 황갑운
    • 한국융합학회논문지
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    • 제10권11호
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    • pp.241-246
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    • 2019
  • STS 630에 이온질화를 통한 기계적 특성 및 세포독성을 고찰하여 의료기구용으로 활용중인 STS 420 소재의 대체 가능성을 융합적으로 고찰하고자 하였다. STS 630 합금을 $480^{\circ}C$에서 1시간 시효처리 후 온도, 시간, 압력, 질소투입량의 변화를 통하여 이온질화 최적조건을 선정하고, 미세조직, 경도, 인장강도 등 기계적 특성의 변화와 섬유아세포(IGF cell)를 이용한 MTT 세포독성 시험을 수행하였다. STS 630의 경도는 시험결과 $400^{\circ}C$에서 질화시간 3시간 이상일 때 시간에 따라 증가하며, 질소가스 투입량에 비례하여 질화층의 두께와 표면경도가 증가함을 알 수 있었다. STS 630의 인장강도는 시효처리와 이온질화에 의해 34%의 향상이 되었으며, 의료기구로서의 적합성을 확인하기 위하여 섬유아세포(IGF cell)를 이용한 MTT 세포독성 시험의 경우에는 대조군(STS 420)에서만 세포 독성이 관찰되고, STS 630의 경우에는 세포독성이 나타나지 않아 의료기구로서의 적합성은 있는 것으로 판단된다.

무붕산 알칼리 냉각재 온도 증가에 따른 Type 630 스테인리스강의 부식특성 평가 연구 (A Study on Accelerated Corrosion Rate of Stainless Steel Type 630 with Increasing Temperature of B-free Alkaline Coolant)

  • 박정수;임상엽;전순혁;김주성;오정목;심희상
    • 한국압력기기공학회 논문집
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    • 제20권1호
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    • pp.49-55
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    • 2024
  • Stainless 630 (or 17-4PH) is a precipitation-hardening martensitic stainless steel that has excellent mechanical properties and corrosion resistance. These characteristics make the STS630 to be used as a consisting material for various components such as spider, pin, spring, and spring retainer, of the control rod drive mechanism (CRDM) in pressurized water reactors (PWRs). In general, it is well known that the oxide layer of stainless steel consists of a duplex layer, a compact inner layer of FeCr2O4 spinel, and a coarse-grained outer layer of Fe3O4 spinel in PWR primary coolant condition. However, the characteristics of the oxide layer can be sensitively influenced by various water chemistry conditions such as temperature, dissolved oxygen, dissolved hydrogen, pH, pH adjuster type, and exposure time. In this work, we investigate the corrosion properties of the STS630 as a function of coolant temperature in an NH3 alkaline solution for its boron-free application in a small modular reactor, to confirm the feasibility for usage as a boron-free SMR structural material. As a result, oxide layer of corroded STS630 is consist of double-layer oxides consisting of a Cr-rich dense inner oxide and a Fe-rich polyhedral outer particles like as that in commercial PWR primary coolant. The corrosion rate of STS630 increases with increase in test time and temperature and the corrosion rate-time model equation was developed based on experimental data. Overall, it is expected that the results in this study provides useful data for the corrosion behavior of STS630 in alkaline environments, contributing to the development of selecting suitable materials for SMRs.

SUS630 소재의 UNSM(초음파 나노 표면 개질)처리 전후 Dry, Grease 윤활, Oil 윤활 상태하에서 마찰특성에 대한 실험적 연구 (SUS630 stainless steel friction characteristics in Dry, Grease and Oil-lubricated conditions before and after Ultrasonic Nano Crystal Surface Modification)

  • 최갑수;편영식;박정현;아마노브아외즈한;김준형
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2010년도 춘계학술대회 논문집
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    • pp.519-520
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    • 2010
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SUS 304과 SUS 630 소재의 UNSM(초음파나노 표면개질) 처리전후 Dry, Grease윤활, Oil윤활 상태하에서 마찰특성 및 Dry 상태하에서 마모특성 (Friction characteristics of SUS 304 and SUS 630 stainless steel in Dry, Grease-, and Oillubricated conditions and wear property in dry condition before and after Ultrasonic Nano-crystal Surface Modification)

  • 김준형;편영식;박정현;최갑수;아마노브아외즈한
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2010년도 춘계학술대회 논문집
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    • pp.521-522
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    • 2010
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저온 플라즈마 침질탄화처리된 마르텐사이트계 석출경화형 스테인리스강의 내식성에 미치는 시효 전처리의 영향 (Effects of Pre-Aging Treatment on the Corrosion Resistance of Low Temperature Plasma Nitrocarburized AISI 630 Martensitic Precipitation Hardening Stainless Steel)

  • 이인섭;이천호
    • 한국표면공학회지
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    • 제53권2호
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    • pp.43-52
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    • 2020
  • Various aging treatments were conducted on AISI 630 martensitic precipitation hardening stainless steel in order to optimize aging condition. Aging treatment was carried out in the vacuum chamber of Ar gas with changing aging temperature from 380℃ to 430℃ and aging time from 2h to 8h at 400℃. After obtaining the optimized aging condition, several nitrocarburizing treatments were done without and with the aging treatment. Nitrocarburizing was performed on the samples with a gas mixture of H2, N2 and CH4 for 15 h at vacuum pressure of 4.0 Torr and discharge voltage of 400V. The corrosion resistance was improved noticeably by combined process of aging and nitrocarburizing treatment, which is attributed to higher chromium and nitrogen content in the passive layer, as confirmed by XPS analysis. The optimized condition is finalized as, 4h aging at 400℃ and then subsequent nitrocarburizing at 400℃ with 25% nitrogen and 4% methane gas for 15h at vacuum pressure of 4.0 Torr and discharge voltage of 400V, resulting in the surface hardness of around 1300 HV0.05 and α'N layer thickness of around 11 ㎛ respectively.

스테인레스 스틸 극세사와 Ti 극세사 제조 특성 평가 (Characterization of Manufacturing Process of Metal Fibers of Stainless Steel and Titanium)

  • 김태화;고재황;이동복
    • 한국재료학회지
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    • 제15권1호
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    • pp.37-41
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    • 2005
  • Stainless steel fibers with a diameter of $17\;{\mu}m$ and 630 nm were produced from stainless steel wires by the drawing/annealing/exfolitation process. The suitable sheath material to draw the core stainless steel wires to fibers was the Cu coating. The low melting metal of Zn was not a suitable sheath coating. Also, an attempt was made to produce $20\;{\mu}m{\Phi}Ti$ fibers from the core titanium wires. The main obstacles in producing Ti fibers were their resistance to deformation owing to the Ti's hop structure, and high reactivity of Ti with the exfolitation solution.

스테인리스강 프로펠러축의 가공에 따른 재질특성에 관한 연구 (Properties of the material on stainless steel propeller shaft with the weld working)

  • 손영태;정광교;이명훈
    • 선박안전
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    • 통권24호
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    • pp.4-20
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    • 2008
  • Stainless steel 304 or stainless steel 630 types using propeller shaft of a small ship or a FRP fishing boat generally restrain localization corrosion and abrasion damage occurrence to shaft bearing or grand packing contact. In general, the residual stress which remains after welding or heat treatment in material can cause the stress concentration or localization corrosion. In case of small ship, stainless steel such as STS304 has long been used for propeller shaft. Meanwhile, crew of small ship tend to reuse damaged propeller shaft after repair by welding and performing heat treatment to save cost. However, it was found that reused propeller shaft by repair often caused troubles in ship's operation. In this study, the basic guideline for maintenance and treatment of propeller shaft are investigated. From the results of investigation, remarkable deterioration of the material properties and corrosion resistance on the welded work part was observed.

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Isothermal Heat Treatment of AISI 430 Ferritic Stainless Steel after High Temperature Gas Nitriding

  • Park, Sang-Jun;Kim, Jung-Min;Kang, Hee-Jae;Kang, Chang-Yong;Kim, Yung-Hee;Sung, Jang-Hyun
    • 열처리공학회지
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    • 제25권3호
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    • pp.115-120
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    • 2012
  • It has been known that the ferritic stainless steel can be changed to martensitic stainless steel when nitrogen is added. However the high hardness of martensitic stainless steel prevents the plastic deformation. In this study, instead of martensite, the surface microstructure was changed into nitrogen pearlite to increase the plastic deformation easily by isothermal heat treatment after high temperature gas nitriding (HTGN) the AISI 430 ferritic stainless steel. The isothermal treatment was carried out at $780^{\circ}C$ for 4, 6, and 10 hrs, respectively, after HTGN treatment at $1100^{\circ}C$ for 10 hrs. The surface layer of isothermal-treated steel appeared nitrogen pearlite composed with fine chromium nitride and ferrite. Hence, the interior region that was not affected by nitrogen permeation exhibited ferrite phase. When quenching the isothermal treated steel at 1100oC, martensitic phase formed at the surface layer. The hardness of surface layer of isothermal-treated steel and quenched steel measured the value of 150~240 Hv and 630 Hv, respectively.

Direct energy deposition 공정으로 제조된 SUS630 스테인리스강 적층조형체의 경도 및 미세조직 연구 (Hardness and Microstructure evolution of SUS630 Stainless steel Fabricated by Directed Energy Deposition)

  • 백성은;노경호;박진용;조용주;김정한
    • 한국분말재료학회지
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    • 제25권3호
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    • pp.220-225
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    • 2018
  • The microstructure and mechanical characteristics of SUS630 specimens fabricated using the direct energy deposition (DED) process are investigated. In DED, several process parameters such as laser scan speed, chamber gas flow, powder carrier gas flow, and powder feed rate are kept fixed; the laser power is changed as 150 W, 180 W, and 210 W. As the laser power increases, the surface becomes smooth, the thickness uniformity improves, and the size and number of pores decreases. With the increase in laser power, the hardness deviation decreases and the average hardness increases. The microstructure of the material is columnar; pores are formed preferentially along the columnar interface. The lath-martensite phase governs the overall microstructure. The volumetric fraction of the retained austenite phase is measured to increase with the increase of laser input power.

중엔트로피 합금 기지 위에 적층조형된 스테인리스강과 타이타늄 합금의 접합특성 분석 (Joint Properties of Stainless Steel and Titanium Alloys Additive Manufactured on Medium Entropy Alloys)

  • 박찬웅;;이민규;김정한
    • 한국분말재료학회지
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    • 제26권4호
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    • pp.319-326
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    • 2019
  • Additive manufacturing (AM) is a highly innovative method for joining dissimilar materials for industrial applications. In the present work, AM of STS630 and Ti-6Al-4V powder alloys on medium entropy alloys (MEAs) NiCrCo and NiCrCoMn is studied. The STS630 and Ti64 powders are deposited on the MEAs. Joint delamination and cracks are observed after the deposition of Ti64 on the MEAs, whereas the deposition of STS630 on the MEAs is successful, without any cracks and joint delamination. The microstructure around the fusion zone interface is characterized by scanning electron microscopy and X-ray diffraction. Intermetallic compounds are formed at the interfacial regions of MEA-Ti64 samples. In addition, Vicker's hardness value increased dramatically at the joint interface between MEAs and Ti-6Al-4V compared to that between MEAs and STS630. This result is attributed to the brittle nature of the joint, which can lead to a decrease in the joint strength.