On the mechanism of the formation of Widmanstatten graphite in flake graphite cast irons

被引:4
|
作者
Loper, CR
Park, J
机构
[1] Univ Wisconsin, Madison, WI 53705 USA
[2] Gen Motors Corp, Powertrain Div, Massena, NY 13662 USA
关键词
calcium; degraded graphite morphology; flake graphite; graphite; gray cast irons; lead; mold media; moisture content; rare earths; Widmanstatten graphite;
D O I
10.1007/BF03027184
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The mechanism whereby Widmanstatten graphite develops during the solidification of flake graphite cast irons has been found to involve the preferential segregation and a complex interaction of specific elements at the surface of the graphite flake during solidification and the development of the plate like appendages in the solid austenite adjacent to the graphite flake. The literature has suggested that lead, calcium and hydrogen may be causal to the formation of Widmanstatten graphite, but has the interaction of these elements has not been effectively documented. While the formation of this degraded graphite is often attributed to the presence of a sufficient amount of lead alone, it has been observed that Widmanstatten graphite develops only in conjunction with a combination of factors operative at the graphite-austenite interface. Commercial flake graphite cast irons may exhibit Widmanstatten graphite as a function of lead and calcium content in the iron, moisture content in the molding media, solidification cooling rate and the rate of cooling immediately after solidification, etc. Lead contamination of cast irons was also observed to increase the chilling tendency of the iron. The detrimental effects of lead can be counteracted by the presence of rare earths in the iron, where rare earth elements react with lead to form stable, high melting point compounds.
引用
收藏
页码:327 / 336
页数:10
相关论文
共 50 条
  • [21] Transitions between type A flake, type D flake, and coral graphite eutectic structures in cast irons
    Hong-Ik Univ
    Metall Mat Trans A Phys Metall Mat Sci, 9 (2740-2753):
  • [22] Transitions between type A flake, type D flake, and coral graphite eutectic structures in cast irons
    Park, JS
    Verhoeven, JD
    METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1996, 27 (09): : 2740 - 2753
  • [23] Examination of the solidification macrostructure of spheroidal and flake graphite cast irons using DAAS and ESBD
    Rivera, G.
    Calvillo, P. R.
    Boeri, R.
    Houbaert, Y.
    Sikora, J.
    MATERIALS CHARACTERIZATION, 2008, 59 (09) : 1342 - 1348
  • [24] Strength evaluation of flake and spheroidal graphite cast irons using diametral compression test
    Reddy, Sudheer
    Mukunda, P. G.
    Aithal, Kiran
    Shetty, P. Balachandra
    JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2017, 6 (01): : 96 - 100
  • [25] Evaluation of Chill Contents in Flake Graphite Cast Irons Using AC Magnetization Method
    Uchimoto, Tetsuya
    Matsukawa, Jun
    Abe, Toshihiko
    Takagi, Toshiyuki
    Sato, Takeshi
    Ike, Hiroyuki
    Takagawa, Takahito
    Horikawa, Noritaka
    ELECTROMAGNETIC NONDESTRUCTIVE EVALUATION (XI), 2008, 31 : 62 - 69
  • [26] MECHANISM OF SLIDING WEAR OF LUBRICATED FLAKE GRAPHITE CAST IRON
    TAKEUCHI, E
    WEAR, 1970, 15 (03) : 201 - &
  • [27] Graphite structure and magnetic parameters of flake graphite cast iron
    Vertesy, G.
    Uchimoto, T.
    Takagi, T.
    Tomas, I.
    Kage, H.
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2017, 442 : 397 - 402
  • [28] CRYSTAL DISTORTION OF GRAPHITE IN CAST IRONS
    MATUYAMA, E
    NATURE, 1952, 170 (4339) : 1123 - 1124
  • [29] GRAPHITE FORMATION IN CAST IRONS AND IN NICKEL CARBON AND COBALT CARBON ALLOYS
    MORROGH, H
    WILLIAMS, WJ
    JOURNAL OF THE IRON AND STEEL INSTITUTE, 1947, 155 (03): : 321 - &
  • [30] Influence of graphite nodules on the particles erosion of spheroidal graphite cast irons
    Chang, LC
    Hsui, IC
    Chen, LH
    Lui, ST
    WEAR, 2004, 257 (11) : 1125 - 1132