Prediction of the fracture due to Mannesmann effect in tube piercing

被引:0
|
作者
Fanini, S. [1 ]
Ghiotti, A. [1 ]
Bruschi, S. [2 ]
机构
[1] Univ Padua, DIMEG, Via Venezia 1, I-35131 Padua, Italy
[2] Univ Trento, DMIS, I-38050 Trento, Italy
关键词
tube piercing; FEM; damage; workability;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Mannesmann piercing process is a well-known hot rolling process used for seamless tube production. its special feature is the so-called Mannesmann effect, that is the cavity formation in the center of the cylindrical billet and its propagation along the axis due to stress state caused by the rolls in the early stages of the process. The cavity is then expanded and sized in its internal diameter by an incoming plug. The industrial requirement is to know quite precisely the characteristics of the cavity especially in terms of its location along the billet axis in order to minimize the plug wear and the oxidation of the pierced bar. However, the scientific knowledge about the fracture mechanism leading to the Mannesmann effect is still limited, even if several theories have been proposed; this lack makes the design and optimization of the process through numerical simulations still a challenging task. The aim of this work is then to develop a suitably calibrated FE model of the piercing process in its first stage before the plug arrival, in order to investigate the Mannesmann effect using different damage criteria. Hot tensile tests, capable to reproduce the industrial conditions in terms of temperature, strain rate, and stress states, are carried out to investigate the material workability and to determine the parameters of the damage models on specimens machined from continuous-casting steel billets. The calculated parameters are implemented in the numerical model of the process and a sensitivity analysis to the different criteria is carried out, comparing numerical results with non-plug piercing tests conducted in the industrial plant.
引用
收藏
页码:1407 / +
页数:2
相关论文
共 50 条
  • [21] TUBE PIERCING ON A LUBRICATED MANDREL
    VEDYAKIN, NM
    YACHMENE.AN
    MIKHAILO.LP
    STEEL IN THE USSR, 1974, 4 (02): : 159 - 161
  • [22] Compression-shear fracture of nickel-based superalloy during rotary tube piercing
    Zhang, Zhe
    Liu, Dong
    Wang, Jianguo
    ENGINEERING FRACTURE MECHANICS, 2024, 295
  • [23] Determination of oxygen in alloy steels and its effect upon tube piercing
    Hamilton, N
    TRANSACTIONS OF THE AMERICAN INSTITUTE OF MINING AND METALLURGICAL ENGINEERS, 1934, 113 : 111 - 125
  • [24] PREDICTION OF PLUG TIP POSITION IN ROTARY TUBE PIERCING MILL USING SIMULATION AND EXPERIMENT
    Lee, Hyoung Wook
    Lee, Geun An
    Kim, Eung Zu
    Choi, Seogou
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2008, 22 (31-32): : 5787 - 5792
  • [25] PREDICTION OF PLUG TIP POSITION IN ROTARY TUBE PIERCING MILL USING SIMULATION AND EXPERIMENT
    Lee, Hyoung Wook
    Lee, Geun An
    Kim, Eung Zu
    Choi, Seogou
    ENGINEERING PLASTICITY AND ITS APPLICATIONS: FROM NANOSCALE TO MACROSCALE, 2009, : 415 - +
  • [26] A statistical approach to the prediction of pressure tube fracture toughness
    Pandey, M. D.
    Radford, D. D.
    NUCLEAR ENGINEERING AND DESIGN, 2008, 238 (12) : 3218 - 3226
  • [27] Vallourec and Mannesmann Tubes New tube Research Center in Riesa, Saxony
    不详
    STAHL UND EISEN, 2011, 131 (01): : 14 - 15
  • [28] 3D FEM Simulation of Rolling Load Working on Piercer Plug in Mannesmann Piercing Process
    Yoshida, Motohisa
    NUMIFORM 2010, VOLS 1 AND 2: DEDICATED TO PROFESSOR O. C. ZIENKIEWICZ (1921-2009), 2010, 1252 : 1333 - 1338
  • [29] HISTORY OF SEAMLESS TUBE MANUFACTURE AND THE ROLE PLAYED BY THE INVENTIONS OF THE MANNESMANN BROTHERS
    PFEIFFER, G
    STAHL UND EISEN, 1985, 105 (22): : 1195 - 1200
  • [30] Simulation of Mannesmann piercing process by the three-dimensional rigid-plastic finite-element method
    Komori, K
    INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2005, 47 (12) : 1838 - 1853