• Title/Summary/Keyword: 오스템퍼링

Search Result 34, Processing Time 0.02 seconds

The Effects of Austempering Heat Treatment on the Processing Window and Mechanical Properties in Cast and Hot-rolled Fe-0.7wt%C-2.3wt%Si-0.3wt%Mn Steel (주조 및 열간 압연된 Fe-0.7wt%C-2.3wt%Si-0.3wt%Mn 강의 프로세싱 윈도우와 기계적 성질에 미치는 오스템퍼링 조건의 영향 비교)

  • Son, Je-Young;Hwang, Dong-Chan;Choi, Jae-Joo;Song, June-Hwan;Kim, Ji-Hun;Kim, Won-Bae;Ye, Byung-Joon
    • Journal of Korea Foundry Society
    • /
    • v.30 no.2
    • /
    • pp.60-65
    • /
    • 2010
  • In this study, we investigate the effects of austempering heat treatment on the processing window and mechanical properties in cast and hot-rolled Fe-0.7 C-2.3 Si-0.3 Mn steel. Each specimens were austenitised at $900^{\circ}C$ for 7 min, and austempered at $260^{\circ}C,\;320^{\circ}C$, and $380^{\circ}C$ for the various periods of time from 2 min to 240 min. After heat treatment, the evaluation of stage I and stage II as performed by optical metallography, XRD, hardness test. Both cast and hot rolled specimens had similar processing window. So grain size effect is not important to the austempered high carbon high silicon cast steel. When the austempering temperature was $260^{\circ}C$, the microstructure consisted of the lower ausferrite while the upper ausferrite structure was formed at $380^{\circ}C$. As the austempering temperature increases from 260 to $380^{\circ}C$, the strength and hardness decreased, elongaton and volume fraction of austenite increased. In addition, there was no change of mechanical properties between cast and hot-rolled specimens.

Effect of Retained Austenite Content on the Wear Properties of Austempered C/V Graphite Iron (오스템퍼링 처리한 C/V 흑연 주철의 마모에 미치는 잔류 오스테나이트량의 영향에 관한 연구)

  • Joo, Do-Jae;Kim, Hong-Beom;Cheon, Byung-Wook;Choi, Chang-Ock
    • Journal of Korea Foundry Society
    • /
    • v.18 no.4
    • /
    • pp.340-348
    • /
    • 1998
  • C/V graphite iron has superior tensile strength, toughness and ductility than grey iron, and better castability than ductile iron. The retained austenite content of C/V graphite iron by austempering treatment affects on the mechanical properties such as ductility, hardness, wear properties and machinability. C/V graphite iron alloyed with Cu and Mo were carried out on the austenitizing at $900^{\circ}C$ for 1 hour, and the austempering at $240{\sim}400^{\circ}C$ for 1 hr. And then the mechanical and wear properties of austempered C/V graphite iron have been investigated by the retained austenite content. In consequence, the retained austenite content was found to be 18.2% in austempering temperature at $240^{\circ}C$, and was increased 39.2% at $400^{\circ}C$. Tensile strength and hardness of austempered C/V graphite iron were decreased as the retained austenite content increased, but elongation was increased. The rolling wear loss were increased as the retained austenite content increased. The wear surface of as-cast became to be rough. The microstructure of austempered C/V graphite iron was became to be acicular ausferrite in austempering at $240^{\circ}C$, and feathery ausferrite at $400^{\circ}C$.

  • PDF

Study on the Austenite Formation and Mechanical Properties of AGI (Austempered Gray Cast Iron) According to Aluminum Content (알루미늄 함량에 따른 AGI (Austempered Gray Cast Iron)의 오스테나이트 형성 및 기계적 특성에 관한 연구)

  • Kim, Dong-Hyuk
    • Journal of Korea Foundry Society
    • /
    • v.41 no.6
    • /
    • pp.543-549
    • /
    • 2021
  • Aluminum cast iron has excellent oxidation resistance and good resistance to sulfide and corrosion. Compared to Ti and Ni alloys, it is expected to be a substitute material for structural materials and stainless steels because it is relatively inexpensive to use Fe, which is a non-strategic element. This results in a weight reduction effect of about 30% as compared to the use of stainless steel. With regard to aluminum as an alloying material, it is an element that has been widely used for the alloying of cast iron in recent years. Practical use has been delayed owing to the resulting lack of ductility at room temperature and the sharp decrease in the strength above 600℃ of this alloy, however. The cause of the weak room temperature ductility is known to be environmental embrittlement by hydrogen, and the addition of various alloying elements has been attempted in order to mitigate these shortcomings. Although alloying elements such as vanadium, chromium, and manganese are mainly used to increase the hardness and wear resistance of gray cast iron, the price of finished products containing these elements and the problems associated with alloys with this material impose many limitations.

Change in Microstructure with the Gas Quenching Rate during Austempering Treatment of SAE 1078 Steel (SAE 1078 강의 오스템퍼링 열처리시 가스 퀜칭 속도에 따른 미세조직의 변화)

  • Gi-Hoon Kwon;Hyunjun Park;Kuk-Hyun Yeo;Young-Kook Lee;Sang-Gweon Kim
    • Journal of the Korean Society for Heat Treatment
    • /
    • v.36 no.3
    • /
    • pp.121-127
    • /
    • 2023
  • When high carbon steel is heated in an appropriate austenizing temperature range and subjected to austempering, the size and shape of lamellar structure can be controlled. The high carbon steel sheet having the pearlite structure has excellent elastic characteristics because it has strong restoring force when properly rolled, and is applied in a process known as patenting-process using lead bath. In the case of isothermal treatment using lead-medium, it is possible to quickly reach a uniform temperature due to high heat transfer characteristics, but it is difficult to replace it with process technology that requires treatment to remove harmfulness lead. In this study, we intend to develop fluidization technology using garnet powder to replace the lead medium. After heating the high-carbon steel, the cooling rate was changed by compressed air to the vicinity of the nose of the continuous cooling curve, and then maintained for 90 s and then exposed to room temperature. The microstructure of the treated specimens were analyzed and compared with the existing products treated with lead bath. The higher the flow rate of compressed air, the faster the cooling rate to the pearlite transformation temperature, so lamellar spacing decreases and the hardness tends to increase.