Solidification process and infrared image characteristics of permanent mold castings

被引:0
|
作者
Viets, R [1 ]
Breuer, M [1 ]
Haferkamp, H [1 ]
Krüssel, T [1 ]
Niemeyer, M [1 ]
机构
[1] Univ Hannover, Inst Mat Sci, Hannover, Germany
来源
THERMOSENSE XXI | 1999年 / 3700卷
关键词
aerogel; aluminum; permanent mold; casting defect; image sequence;
D O I
10.1117/12.342280
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Interdependence between the development of temperature gradients at the solid-liquid interface during solidification of metals and the formation of local defects demands for thermal investigation. In foundry practice thermocouples are used to control the die's overall cooling-rate, but fluctuations in product quality still occur. Capturing FIR-thermograms after opening the die visualizes the state, when most thermal throughput has already flattened the temperature gradients in the mold. Rapid dissipation of heat heat from liquid metal to the mold during solidification forces further approach of the process investigation by slowing down the heat nux or the use of transparent mold material. Aluminum gravity casting experiments under technical vacuum conditions lead to decelerated solidification by suppression of convection and image sequences containing explicit characteristics that could be assigned to local shrinkage of the casting. Hence relevant clusters are extracted and thermal pro files are drawn from image series, pointing out correlations between feeding performance from the sink heads and the appearance of local defects. Tracing thermal processes in vacuum casting can scarcely be transferred to image data in foundry practice, since only little analogies exist between atmospheric and vacuum casting. The diagnosis of the casting process requires detection of the still closed mold using a transparent silica-aerogel sheet as part of the die. Hereby thermograms of the initial heat input are recorded by adapting a NIR-camera in addition to the FIR-unit. Thus the entire thermal compensation at the joint face for each casting is visualized. This experimental set-up is used for image sequence analysis related to the intermediate casting phases of mold filling, body formation and solidification shrinkage.
引用
收藏
页码:132 / 140
页数:9
相关论文
共 50 条
  • [31] Turbulent fluid flow and heat transfer calculation in mold filling and solidification processes of castings
    An, GY
    Sun, X
    Wang, JQ
    JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2001, 17 (01) : 69 - 70
  • [32] Turbulent Fluid Flow and Heat Transfer Calculation in Mold Filling and Solidification Processes of Castings
    Geying AN and Xun SUN National Key Laboratory of Precision Hot Processing of Metals
    JournalofMaterialsScience&Technology, 2001, (01) : 69 - 70
  • [33] Effect of Different Mold Materials on the Solidification Rate and Microstructure of Magnesium Alloy Plate Castings
    Javaid, A.
    MAGNESIUM TECHNOLOGY 2022, 2022, : 327 - 334
  • [34] Inward and outward solidification of cylindrical castings: The role of the metal/mold heat transfer coefficient
    Bertelli, Felipe
    Brito, Crystopher
    Meza, Elisangela S.
    Cheung, Noe
    Garcia, Amauri
    MATERIALS CHEMISTRY AND PHYSICS, 2012, 136 (2-3) : 545 - 554
  • [35] Prediction of solidification time during solidification of aluminum base alloy castings cast in CO2-sand mold
    Kulkarni, S. N.
    Radhakrishna, K.
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2007, 34 (11-12): : 1098 - 1110
  • [36] Prediction of solidification time during solidification of aluminum base alloy castings cast in CO2-sand mold
    S. N. Kulkarni
    K. Radhakrishna
    The International Journal of Advanced Manufacturing Technology, 2007, 34 : 1098 - 1110
  • [37] Finite element analysis of solidification process of large heavy castings
    Jun, Chen
    Baicheng, Liu
    Mathematical Modelling and Scientific Computing, 1993, 2 (sectioA):
  • [38] Mold-filling characteristics and solidification behavior of magnesium alloy in vacuum suction casting process
    Haitao Teng
    Tingju Li
    Xiaoli Zhang
    Fudong Bai
    Kai Qi
    Journal of Materials Science, 2009, 44 : 5644 - 5653
  • [39] Mathematical modeling of the process of solidification of castings in a porous shell from
    Sapchenko, I. G.
    Zhilin, S. G.
    Komarov, O. M.
    Shtern, M. V.
    VESTNIK SAMARSKOGO GOSUDARSTVENNOGO TEKHNICHESKOGO UNIVERSITETA-SERIYA-FIZIKO-MATEMATICHESKIYE NAUKI, 2006, (42): : 193 - 195
  • [40] Numerical Simulation of Unidirectional Solidification Process of Turbine Blade Castings
    Yu, Jing
    Xu, Qingyan
    Liu, Baicheng
    Li, Jiarong
    Yuan, Hailong
    ADVANCED MATERIALS AND PROCESSING, 2007, 26-28 : 947 - +