• 제목/요약/키워드: high temperature mechanical properties

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Ni-Mn 전착층의 기계적 성질에 미치는 공정조건의 영향 (Influences of Electrodeposition Variables on Mechanical Properties of Ni-Mn Electrodepositions)

  • 신지웅;양승기;황운석
    • Corrosion Science and Technology
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    • 제13권3호
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    • pp.102-106
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    • 2014
  • Nickel electrodeposition from sulfamate bath has several benefits such as low internal stress, high current density and good ductility. In nickel deposited layers, sulfur induces high temperature embrittlement, as Ni-S compound has a low melting temperature. To overcome high temperature embrittlement problem, adding manganese is one of the good methods. Manganese makes Mn-S compound having a high melting temperature above $1500^{\circ}C$. In this work, the mechanical properties of Ni-Mn deposited layers were investigated by using various process variables such as concentration of Mn$(NH_2SO_3)_2$, current density, and bath temperature. As the Mn content of electrodeposited layers was increased, internal stress and hardness were increased. By increasing current density, internal stress increased, but hardness decreased. With increasing the bath temperature from 55 to $70^{\circ}C$, internal stress of Ni deposit layers decreased, but hardness didn't change by bath temperature. It was likely that eutectoid manganese led to lattice deformation, and the lattice deformation increased hardness and internal stress in Ni-Mn layers. Increasing current density and decreasing bath temperature would increase a mount of $H_2$ absorption, which was a cause for the rise of internal stress.

복합재료 Body Panel의 고온열화 특성 (Material Properties Degradation of Composite Body Panel Exposed to High Temperature)

  • 변현중;남현욱;한경섭
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2000년도 추계학술대회논문집A
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    • pp.219-224
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    • 2000
  • A research for development of composite body panel is in progress for lightening tare. Low specific weight LPMC (Low pressure molding compound) has advantages such as lightweight and resistance to dent and corrosion. In this study, tensile, bending and impact tests for the LPMC and SPRC35 (High tension steel plate) were carried out and compared. Although mechanical properties of SPRC35 are better than the LPMC, the LPMC satisfies basic requirements for car body panel. The high temperature exposed LPMC were degraded due to fiber-matrix debonding and deterioration of resin.

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고경도 철계 장갑재의 미세조직과 기계적 특성 분석 (Microstructure and Mechanical Properties of the High-Hardness Armor Steels)

  • 이지민;한종주;송영범;함진희;김홍규;황병철
    • 한국재료학회지
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    • 제28권8호
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    • pp.459-465
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    • 2018
  • This paper presents a study of the microstructure and mechanical properties of commercial high-hardness armor (HHA) steels tempered at different temperatures. Although the as-received specimens of all the steels exhibit a tempered martensite structure with lath type morphology, the A steel, which has the smallest carbon content, had the lowest hardness due to reduced solid solution hardening and larger lath thickness, irrespective of tempering conditions. As the tempering temperature increases, the hardness of the steels steadily decreases because dislocation density decreases and the lath thickness of martensite increases due to recovery and over-aging effects. When the variations in hardness plotted as a function of tempering temperature are compared with the hardness of the as-received specimens, it seems that the B steel, which has the highest yield and tensile strengths, is fabricated by quenching, while the other steels are fabricated by quenching and tempering. On the other hand, the impact properties of the steels are affected by specimen orientation and test temperature as well as microstructure. Based on these results, the effect of tempering on the microstructure and mechanical properties of commercial high-hardness armor steels is discussed.

우주항공용 저온 경화 접착제의 고온 물성에 관한 연구 (A Study on Adhesive Crosslinked in Low Temperature for High Temperature Aerospace Application)

  • 송정근;우현률;이금미;최두현
    • 한국군사과학기술학회지
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    • 제22권2호
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    • pp.215-223
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    • 2019
  • A high temperature adhesive development which is crosslinked in low temperature is necessary for aerospace application because of thermal expansion mismatches of various substrates. For this purpose, we have designed and fabricated several formulations with high temperature epoxy resins, crosslinkers and additives considering various working conditions and high service temperature. As a result, some formulations showed higher adhesive strengths than Hysol EA 9394/C2 which is widely used for aerospace applications. We also have studied and summarized the mechanical properties of the best development adhesive in both room and high temperatures.

공정 온도에 따른 사면체 비정질 카본 (ta-C) 코팅의 트라이볼로지적 특성연구 (Effects of Process Temperature on the Tribological Properties of Tetrahedral Amorphous Carbon (ta-C) Coating)

  • 강용진;김도현;류호준;김종국;장영준
    • Tribology and Lubricants
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    • 제35권6호
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    • pp.362-368
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    • 2019
  • In this study, mechanical and tribological properties were investigated by varying the process temperature (50, 100, 125 and 150℃) to reduce internal stress. The internal stress reduction by thermal dissociation ta-C coating film with increasing temperature is confirmed through the curvature radius of the ta-C coating according to the temperature of the SUS plate. As the coating temperature increased, the mechanical properties (hardness, modulus, toughness) deteriorated, which is in agreement with the Raman analysis results. As the temperature increased, the sp2 phase ratio increased owing to the dissociation of the sp3 phase. The friction and wear properties are related to the process temperature during ta-C coating. Low friction and wear properties are observed in high hardness samples manufactured at 50℃, and wear resistance properties decreased with increasing temperature. The contact area is expected to increase owing to the decrease of hardness(72 GPa to 39 GPa) and fracture toughness with increasing temperature which accelerated wear because of the debris generated. It was confirmed that at process temperature of over than 100℃, the bond structure of the carbon film changed, and the effect of excellent internal stress was reduced. However, the wear resistance simultaneously decreased owing to the reduction in fracture toughness. Therefore, in order to increase industrial utilization, optimum temperature conditions that reduce internal stress and retain mechanical properties.

제조 방식에 따른 건축용 내화강재의 고온 시 기계적 특성 평가 (Evaluation on the Mechanical Properties of Fire Resistant Steels at High Temperature Conditions with Manufacturing Processes)

  • 권인규
    • 한국강구조학회 논문집
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    • 제19권2호
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    • pp.181-190
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    • 2007
  • 건축용 내화강재는 화재와 같은 고열환경에 노출되었을 때 일반 구조용 강재에 비해서 내력유지 성능이 우수하도록 개발된 고성능 강재이다. 이와 같은 건축용 내화강재를 적용한 구조체가 화재에 노출되었을 때 구조적 거동을 정확하게 평가하기 위해서는 고온에서의 항복강도, 탄성계수 변화 등의 기계적 특성치가 요구된다. 따라서 본 연구에서는 압연과 TMC방식에 의한 두 가지 두께를 대상으로 건축용 내화강재의 기계적 특성 도출을 위하여 고온인장시험을 수행하였으며, 그 결과 제조방식에 따른 고온에서의 큰 기계적 특성 차이는 없는 것으로 판단되었다.

내화강재의 고온특성 데이터베이스 구축 연구 (Experimental Study on Making Databases for Fire Resistant Steel at High Temperature)

  • 권인규
    • 한국화재소방학회논문지
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    • 제27권5호
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    • pp.1-7
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    • 2013
  • 가연물의 증가는 건축물 화재의 발생 위험성과 재해발생 규모를 점차적으로 증대시키는 요인이 되고 있다. 따라서 강구조 건축물의 화재에 대비한 기술개발이 요구되었으며, 이 결과로 내화강재가 개발되었다. 본 연구에서는 FR 490강재의 고온 시 기계적, 열적 특성을 실험적으로 평가하고, 이 결과를 상온 시 구조적 내력이 동일한 용접구조용 강재인 SM 490과 상호 비교함으로써 고온 시의 내력유지 성능이 우수함을 확인하였다.

텅스텐 특성에 대한 소결온도의 영향 (Effect on Mechanical Properties of Tungsten by Sintering Temperature)

  • 박광모;이상필;배동수;이진경
    • 한국산업융합학회 논문집
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    • 제24권3호
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    • pp.283-288
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    • 2021
  • A tungsten material using a pressure sintering process and a titanium sintering additive was prepared to evaluate the microstructure, and mechanical properties of flexural strength and hardness. In addition, the reliability on each hardness data was evaluated by analyzing the distribution of the hardness of the tungsten material using the Weibull probability distribution. In particular, the optimal manufacturing conditions were analyzed by analyzing the correlation between the sintering temperature and the mechanical properties of the tungsten sintered body. Although the sintering density of the tungsten material was hardly changed up to 1700 ℃, but it was increased at 1800 ℃. The hardness of the tungsten sintered material increased as the sintering temperature increased, and in particular, the tungsten material sintered at 1800 ℃ showed a high hardness value of about 1790 Hv. It showed relatively excellent flexural strength at a sintering temperature of 1800 ℃.

Fe-Aluminide합금의 미세조직과 기계적 특성에 관한 연구 (A Study on the Microstructure and Mechanical properties of Fe Aluminide alloys)

  • 조종춘;이도인;이성재;최병학;김학민
    • 연구논문집
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    • 통권22호
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    • pp.115-125
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    • 1992
  • Mechanical properties and microstructure were investigated on vacuum induction melted $Fe_3A1$base alloys of $DO_3$ structure. Specal emphasis were put on the effect of alloy chemistry, grain size and process(rolling, directional solidification) on mechanical properties of Fe-22.5-39at.%Al at elevated temperature between room temperature and $800^{\circ}C$. grain size of as-cast alloys is refined by rolling from 1mm to $80\mum$. Tensile strength of Fe-24.lat.%AI was about 404MPa at the critical ordering temperature, and the fracture strain of the alloy was 1-2% at room temperature. An inverse temperature dependence of the strength is noticed as-cast $Fe_3A1$. The presence of Cr and Zr do not affect the room temperature ductility and high temperature strength. Fracture strain of directionally solidified(DS) $Fe_3A1$ is about 1%at room temperature, but is about 60%at. $T_C$(550^{\circ}C)$. Tensile strength of DS alloy is lower than that of as-cast alloy at $530^{\circ}C$ and $430^{\circ}C$. Failure mode at room temperature varies from transgranular fracture to intergranular fracture with the addition of Al. the failure mode also varies from mixed(transgranular+ intergranular) mode between room temperature and $500^{\circ}C$ to intergranular mode above $550^{\circ}C$

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화재 후 터널구조물 시공재료의 역학적 특성변화 (Alteration of mechanical properties of tunnel structural members after a tunnel fire accident)

  • 장수호;최순욱;권종욱;김상환;배규진
    • 한국터널지하공간학회 논문집
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    • 제9권2호
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    • pp.157-169
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    • 2007
  • 본 연구에서는 $300^{\circ}C$부터 $1,000^{\circ}C$까지 $100^{\circ}C$간격으로 터널구조물 시공재료별로 목표온도 조건에 따른 중량손실률 및 제반 역학적 특성변화를 측정하였다. 실험 결과, 재료의 역학적 특성이 선형적으로 급격히 저하되는 임계 온도는 $300^{\circ}C$정도이고, 급격한 재료 특성 저하 후 거시적인 파괴로 진전되는 임계 온도는 약 $600^{\circ}C$라는 것을 파악할 수 있었다. 터널구조물 시공재료별로 목표온도에 따른 역학적 특성변화 결과들을 회귀분석한 결과, Bolzmann함수로 최적 회귀함수를 도출할 수 있었다. 최종적으로 화재 시나리오에 따라 터널구조물에 사용되는 시공재료 내부의 온도분포를 쉽게 추정할 수 있으며, 그에 따른 압축강도 및 탄성계수와 같은 역학적 특성들의 저하 정도도 정량적으로 추정할 수 있는 도표를 제시하였다.

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