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Physical Simulation of Mold-Filling Processing of Thin-Walled Castings under Traveling Magnetic Field 被引量:6

Physical Simulation of Mold-Filling Processing of Thin-Walled Castings under Traveling Magnetic Field
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摘要 Mold-filling process of thin-walled castings under the condition of traveling magnetic field has been studied by physical simulation method using gallium melt and fast speed photography. Flow morphology and its formation mechanism were obtained and discussed for thin-walled casting. The influences of magnetic field density on the filling ability, filling velocity and mold filling time have been studied. The differences in filling capability between gravity casting and casting under the traveling magnetic field have been compared. The results indicate that the mold filling ability of the gallium melt increases greatly under the condition of traveling magnetic field; the filling time is shortened from 18 s under gravity field to 3 s under the traveling magnetic field and average flow rate of the melt increases from 1.6 to 8.68 cm3/s; the change law of the cross-section morphology of the gallium melt during the mold filling is that at first, the cross-section area does not change, then it decreases gradually. When the front of the melt reaches the end of the mold cavity, the front melt will backfill the mold; the wider the width of mold cavity, the better the mold filling ability. The mold filling ability of gallium melt in mold with upper magnetic conductor is better than that without upper magnetic conductor. Mold-filling process of thin-walled castings under the condition of traveling magnetic field has been studied by physical simulation method using gallium melt and fast speed photography. Flow morphology and its formation mechanism were obtained and discussed for thin-walled casting. The influences of magnetic field density on the filling ability, filling velocity and mold filling time have been studied. The differences in filling capability between gravity casting and casting under the traveling magnetic field have been compared. The results indicate that the mold filling ability of the gallium melt increases greatly under the condition of traveling magnetic field; the filling time is shortened from 18 s under gravity field to 3 s under the traveling magnetic field and average flow rate of the melt increases from 1.6 to 8.68 cm3/s; the change law of the cross-section morphology of the gallium melt during the mold filling is that at first, the cross-section area does not change, then it decreases gradually. When the front of the melt reaches the end of the mold cavity, the front melt will backfill the mold; the wider the width of mold cavity, the better the mold filling ability. The mold filling ability of gallium melt in mold with upper magnetic conductor is better than that without upper magnetic conductor.
出处 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2004年第1期27-30,共4页 材料科学技术(英文版)
基金 supported by 973 project(G2000067202-2)
关键词 Traveling magnetic field Mould-filling Thin-walled casting Physical simulation Traveling magnetic field, Mould-filling, Thin-walled casting, Physical simulation
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  • 1[1]J.Campbell: Mater. Sci. Technol., 1998, 14, 194.
  • 2[2]U.Andersen, N.W.Rasmusse, M.Wanzeck, J.Langen and P.N.Hansen: Foundryman, 1999, 92(3), 69.
  • 3[3]Y.M.Gel‘fgat, Y.P.Krumin, V.P. Meshkov, B.V.Rabinovich and Y.A.Tanamin: Magnetohydrodynamics, 1990, 26(2), 129.
  • 4[4]B.V.Rabinovich: Liteinoe Proizvodstvo, 1992, (10), 6. (in Russian)
  • 5[5]Hongsheng DING, Jingjie GUO, Jun JIA, Weisheng BI and Lijun CHEN: Trans. Nonferrous Met. Soc. China, 2001, 11(4),540. (in Chinese)
  • 6[6]Hongsheng DING, Jingjie GUO, Jun JIA, Weisheng BI and Hengzhi FU: Proceedings of the Third China International Die Casting Congress, Shenyang, China, 2002, 187.
  • 7[7]Jialiu LIN, Jun JIANG and Guiming DUAN: Foundry, 1996,(3), 18. (in Chinese)
  • 8[8]C.A.Borghi, A.Cristofolini and M.Fabbri: IEEE Trans. Magn.,1998, 34(5), 2956.
  • 9[9]K.H.Spitzer and O.Pesteanu: in 3rd International Symposium on EPM, Nagoya, Japan, ISIJ, 2000, 409.
  • 10[10]Yunbo ZHONG, Zhonming REN, Kang DENG, Xunjie YANG,Guochang JIANG and Kuangdi XU: The Chinese Journal of Nonferrous Metals, 1999, 9(3), 482. (in Chinese)

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