|
|
DESIGN OF FORGING METHODS OF HEALING DEFECTS IN INGOTS EFFECTIVELY |
Dianzhong LI1,Xuan MA1,2,3,Bin XU1,4( ),Mingyue SUN1,4 |
1 Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China
2 College of Physical Science and Technology, Shenyang Normal University, Shenyang 110034, China
3 School of Materials Science and Engineering, Dalian University of Technology, Dalian 116085, China
4 Key Laboratory of Nuclear Materials and Safety Assessment, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China |
|
Cite this article:
Dianzhong LI, Xuan MA, Bin XU, Mingyue SUN. DESIGN OF FORGING METHODS OF HEALING DEFECTS IN INGOTS EFFECTIVELY. Acta Metall Sin, 2016, 52(10): 1199-1206.
|
|
Abstract Large forgings are the fundamental parts of many kinds of key equipment, and large ingots are the basis of large forgings. There are severe metallurgical defects in large ingots, such as porosities, shrinkage cavities and gas cavities. The continuity of material is damaged by the defects, which must be eliminated during forging process. Using FEM simulation, it is found that void shape is the most important parameter affecting void closing during hot forging. Height-diameter ratio of the void is defined to describe the effect of void shape. The simulation results show that the larger height-diameter ratio of the void, the harder it is for the void to close. Based on these results, wide anvil radial forging (WRF) method is proposed. WRF method can concentrate the strain on the center of the ingot; make the height-diameter ratio of the voids smallest and heal shrinkage cavities effectively. Another one direction heavy forging method is proposed to be used on smaller forging machines. Using this method, the billet is forged along the same direction for two passes. This method can heal defects effectively with small pressure. Based on interface healing rules, temperature dwelling forging method for forging tube plates are proposed. A tube plate with defects is repaired using this method. These forging methods have been used on industrial experiments, and have been proved to be able to heal the defects in the billets and increase qualified rate of the forgings.
|
Received: 02 September 2016
|
|
Fund: Supported by National Natural Science Foundation of China (No.U1508215), National Key Research and Development Program of China (No.2016YFB0300401) and Liaoning BaiQianWan Talents Program (No.【2015】 12) |
[1] | Li S J, Sun M Y, Liu H W, Li D Z.Acta Metall Sin, 2011; 47: 946 | [1] | (李世键, 孙明月, 刘宏伟, 李殿中. 金属学报, 2011; 47: 946) | [2] | Wang J Q, Fu P X, Liu H W, Li D Z, Li Y Y.Mater Des, 2012; 35: 446 | [3] | Li D Z, Chen X Q, Fu P X, Ma X P, Liu H W, Chen Y, Cao Y F, Luan Y K, Li Y Y.Nat Commun, 2014; 5: 5572 | [4] | Kang D T, Ye G B.Materials and Heat Treatment of Large Forgings. Beijing: Longmen Bookstore, 1998: 73 | [4] | (康大韬, 叶国斌. 大型锻件材料及热处理. 北京: 龙门书局, 1998: 73) | [5] | Tkocz M, Kusiak J, Grosman F.Acta Metall Slovaca, 2007; 13: 221 | [6] | Kim P H, Chun M S, Yi J J, Moon Y H.J Mater Process Technol, 2002; 130: 516 | [7] | Chun M S, Van Tyne C J, Moon Y H.Steel Res Int, 2006; 77: 116 | [8] | Dudra S P, Im Y T.Int J Mach Tools Manufact, 1990; 30: 65 | [9] | Kim Y D, Cho J R, Bae W B.J Mater Process Technol, 2011; 211: 1005 | [10] | Xu B, Sun M Y, Li D Z.Acta Metall Sin, 2012; 48: 1194 | [10] | (徐斌, 孙明月, 李殿中. 金属学报, 2012; 48: 1194) | [11] | Park C Y, Yang D Y.J Mater Process Technol, 1996; 57: 129 | [12] | Park C Y, Yang D Y.J Mater Process Technol, 1997; 72: 32 | [13] | Wang Z T, Liu Z, Ren M.Chin J Mech Eng, 1989; 25(3): 51 | [13] | (王祖唐, 刘庄, 任猛. 机械工程学报, 1989; 25(3): 51) | [14] | Wang Z T, Liu Z, Ren M.Chin J Mech Eng, 1989; 25(4): 47 | [14] | (王祖唐, 刘庄, 任猛. 机械工程学报, 1989; 25(4): 47) | [15] | Lee Y S, Lee S U, Van Tyne C J, Joo B D, Moon Y H.J Mater Process Technol, 2011; 211: 1136 | [16] | Kakimoto H, Arikawa T, Takahashi Y, Tanaka T, Imaida Y.J Mater Process Technol, 2010; 210: 415 | [17] | Banaszek G, Stefanik A.J Mater Process Technol, 2006; 177: 238 | [18] | Chen K, Yang Y T, Shao G J, Liu K J.Comput Mater Sci, 2012; 51: 72 | [19] | Zhang X X, Cui Z S, Chen W, Li Y.J Mater Process Technol, 2009; 209: 1950 | [20] | Tanaka M, Ono S, Tsuneno M, Iwadate T.Adv Technol Plast, 1987; 11: 1035 | [21] | Tanaka M, Ono S, Tsuneno M.J Jpn Soc Technol Plast, 1987; 28: 238 | [21] | (田中光之, 小野信市, 常野誠丸.塑性と加工, 1987; 28: 238) | [22] | Ono S, Minami K, Ochiai T, Iwadate T, Nakata S I.Trans Jpn Soc Mech Eng, 1995: 2141 | [22] | (小野信市, 南克之, 落合朋之, 岩舘忠雄, 中田進一. 日本機械学會論文集: c編, 1995: 2141) | [23] | Zhang H L, Yang J G, Sun J.Acta Metall Sin, 2002; 38: 1015 | [23] | (张海龙, 杨君刚, 孙军. 金属学报, 2002; 38: 1015) | [24] | Wei D B, Han J T, Xie J X, Fu C G, Wang L Z, He Y X.Acta Metall Sin, 2000; 36: 622 | [24] | (韦东滨, 韩静涛, 谢建新, 付晨光, 王连忠, 贺毓辛. 金属学报, 2000; 36: 622) | [25] | Liu L J, Cui Z S.J Plast Eng, 2010; 17(1): 1 | [25] | (刘丽娟, 崔振山. 塑性工程学报, 2010; 17(1): 1) | [26] | Ma Q X, Zhong Y X, Cao Q X.J Tsinghua Univ (Sci Technol), 1999; 39(11): 94 | [26] | (马庆贤, 钟约先, 曹起骧. 清华大学学报(自然科学版), 1999; 39(11): 94) | [27] | Cui Z S, Ren G S, Xu B Y, Xu C G, Liu G H.J Tsinghua Univ (Sci Technol), 2003; 43(2): 227 | [27] | (崔振山, 任广升, 徐秉业, 徐春国, 刘桂华. 清华大学学报(自然科学版), 2003; 43(2): 227) | [28] | Xu B.PhD Dissertation, University of Chinese Academy of Sciences, Beijing, 2014 | [28] | (徐斌. 中国科学院大学博士学位论文, 北京, 2014) |
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|