Finite Element Analysis on Spread for In-plane Roll-bending Process

被引:1
|
作者
Li, Z. J. [1 ]
Yang, H. [1 ]
机构
[1] Northwestern Polytech Univ, State Key Lab Solidificat Proc, Sch Mat Sci & Engn, Xian 710072, Shaanxi, Peoples R China
关键词
In-plane Roll-bending; Spread; Radius; Finite Element; Spread Characteristics; SIMULATION;
D O I
10.1063/1.3457610
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The in-plane roll-bending process is a special wedge rolling with a configuration of two conical rolls which can form strips into open ring products. The spread of a ring is usually not considered in previous radius predicting models by Yang et al. [1] and Xian et al. [5]. However, the spread increases to 10% for a ring with average reduction of 56%, and there is a discrepancy between the predicted radius and the experiment. Spread analysis/calculation has become an urgent problem in radius prediction and precision control of unequal deformation in this process. A finite element (FE) model considering spread effect is established and evaluated by experiments. A comparison between the predicted results with/without considering spread by FE analysis and experiments is carried out. The result shows that the predicted results considering spread are much closer to the experiments than those without considering spread effect. Based on the FE simulation, the spread characteristics of the ring with two types of cross section (including partly and entirely compressed cross section) are investigated. It is found that, there exist three spread regions, including outer positive region, middle negative region and inner positive region for the partly compressed ring; and there are outer positive region and inner negative region for the entirely compressed ring. The spread mostly happens at the outer positive region for both types of ring. The effects of process parameters, such as wedge angle, bite location, friction coefficient and rotational speed of roll, on spread for three aluminum alloys, 3A21O, 5A02O and 2A12T4, are investigated. The results indicate that the spread decreases with an increase in wedge angle, whereas increases with the growth of bite location; the spread remains stable with increasing friction coefficient and fluctuates within 3%-8% with a rise in rotational speed of roll. The spread of the partly compressed ring is less than 6%; large spread (larger than 6%) occurs when the ring is entirely compressed; the spread may reach a maximum value of 18.8% for material 5A02O.
引用
收藏
页码:608 / 615
页数:8
相关论文
共 50 条
  • [21] Finite Element Analysis of Roll Forming using Roll Flowers with Different Bending Shapes
    Chung, Yunsung
    Son, Hosung
    Lee, In Hwan
    Kim, Dongbum
    INTERNATIONAL JOURNAL OF PRECISION ENGINEERING AND MANUFACTURING, 2025, 26 (01) : 165 - 175
  • [22] Finite element analysis of the thermal bending of a chilled cast thermo roll
    Widmaier, Thomas
    Pirttiniemi, Jukka
    Porkka, Esa
    Kiviluoma, Panu
    Kuosmanen, Petri
    TAPPI JOURNAL, 2017, 16 (06): : 346 - 358
  • [23] Finite element plastic loads for circumferential cracked pipe bends under in-plane bending
    Kim, Yun-Jae
    Kim, Young-Il
    Song, Tae-Kwang
    ENGINEERING FRACTURE MECHANICS, 2007, 74 (05) : 643 - 668
  • [24] Evolution of stress and strain in 2219 aluminum alloy ring during roll-bending process
    Gong, Hai
    Tang, Hua
    Zhang, Tao
    Du, Fei
    Liu, Xiaolong
    Wu, Yunxin
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2022, 119 (9-10): : 6863 - 6874
  • [25] Experimental and Numerical investigation of multi step Roll-bending process of IPB type beams
    Shahani, Amir Reza
    Kashani, Hamed Moayeri
    Montazery, Yazdan
    PROCEEDINGS OF THE 50TH ANNUAL CONFERENCE ON EXPERIMENTAL STRESS ANALYSIS, 2012, : 415 - +
  • [26] Limit Loads for Pipe Bends under Combined Pressure and in-Plane Bending Based on Finite Element Limit Analysis
    Oh, Chang-Sik
    Kim, Yun-Jae
    TRANSACTIONS OF THE KOREAN SOCIETY OF MECHANICAL ENGINEERS A, 2006, 30 (05) : 505 - 511
  • [27] Limit loads for pipe bends under combined pressure and in-plane bending based on finite element limit analysis
    Kim, YJ
    Oh, CS
    INTERNATIONAL JOURNAL OF PRESSURE VESSELS AND PIPING, 2006, 83 (02) : 148 - 153
  • [28] Finite element analysis for in-plane crushing behavior of aluminum honeycombs
    Faculty of Engineering and Industrial Sciences, Swinburne University of Technology, Hawthorn VIC 3122, Australia
    不详
    Trans. Tianjin Univ., 2006, SUPPL. (142-146):
  • [30] Finite Element Analysis for In-Plane Crushing Behaviour of Aluminium Honeycombs
    ZHU Feng
    Institute of Applied Mechanics
    Transactions of Tianjin University, 2006, (S1) : 142 - 146