[1] CHOUDHARY M.Three-dimensional mathematical model for flow and heat transfer in electric glass furnaces[J].Heat Transfer Engineering,1985,6(4):55-65. [2] LI L Y,HAN J J,LIN H J,et al.Simulation of glass furnace with increased production by increasing fuel supply and introducing electric boosting[J].International Journal of Applied Glass Science,2020,11(1):170-184. [3] LI H L,XING Z B,XU S Q,et al.3D simulation of borosilicate glass all-electric melting furnaces[J].Journal of the American Ceramic Society,2014,97(1):141-149. [4] 王 晶,常 燕.全电玻璃熔池熔制过程的三维数值模拟[J].工业炉,2018,40(2):19-21. WANG J,CHANG Y.3D simulation of melting process of glass all-electric furnace[J].Industrial Furnace,2018,40(2):19-21 (in Chinese). [5] 朱 强,王 强,温 刚.水晶玻璃窑炉料道装置:CN102211849A[P].2011-10-12. ZHU Q,WANG Q,WEN G.Material passage device of crystal glass kiln:CN102211849A[P].2011-10-12. [6] 汪庆卫,宁 伟,陈 健,等.玻璃窑炉二次流液洞的结构设计与效果分析[C]//2009年全国玻璃窑炉技术研讨交流会论文汇编2009:29-32. WANG Q W,NING W,CHEN JI,et al.Structural design and effect analysis of secondary fluid cave in glass furnace[C]//2009 National Glass Furnace Technical Discussion and Exchange Conference Paper Collection,2009:29-32 (in Chinese). [7] 何 光,郭富强,陈筱丽,等.小型玻璃电熔窑的数值模拟[J].硅酸盐通报,2020,39(4):1302-1307+1313. HE G,GUO F Q,CHEN X L,et al.Numerical simulation of small-scale glass electric melting furnace[J].Bulletin of the Chinese Ceramic Society,2020,39(4):1302-1307+1313 (in Chinese). [8] 薛俊田,张建忠,钟纪文,等.用于熔化高硼硅玻璃的矩形炉:CN2903047[P].2007-05-23. XUE J T,ZHANG J Z,ZHONG J W,et al.Rectangular furnace for melting high borosilicate glass:CN2903047[P].2007-05-23. [9] 杨景顺,朴文浩,缪之训.玻璃电熔窑炉:CN201842758U[P].2011-05-25. YANG J S,PIAO W H,MIAO Z X.Glass electric melting furnace:CN201842758U[P].2011-05-25. [10] 孙承绪.谈流液洞的合理结构[J].玻璃与搪瓷,2014,42(5):46-47. SUN C X.Discussion on the rational structure of throat[J].Glass & Enamel,2014,42(5):46-47 (in Chinese). [11] 朱 强,沈 鹤,王 强.水晶玻璃窑炉流液洞装置:CN102206033A[P].2011-10-05. ZHU Q,SHEN H,WANG Q.Crystal glass furnace flow hole device:CN102206033A[P].2011-10-05. [12] 秦 诚,毛向云,吴友忠,等.玻璃熔炉流液洞保护装置:CN2668632[P].2005-01-05. QIN C,MAO X Y,WU Y Z,et al.Glass furnace flow hole protection device:CN2668632[P].2005-01-05. [13] 谢 俊,胡平超,韩建军,等.一种提高全电熔玻璃熔窑流液洞玻璃液质量的方法:CN106746496A[P].2017-05-31. XIE J,HU P C,HAN J J,et al.A method to improve the quality of glass liquid in the flow hole of all-electric melting glass furnace:CN106746496A[P].2017-05-31. [14] 杨世民,李兆廷,石志强,等.玻璃基板窑炉流液洞砖:CN105417932A[P].2016-03-23. YANG S M,LI Z T,SHI Z Q,et al.Glass substrate kiln flow hole brick:CN105417932A[P].2016-03-23. [15] 祁建伟,胡桅林,过增元.流液洞结构的研究[J].玻璃与搪瓷,1997,25(2):39-46. QI J W,HU W L,GUO Z Y.A study on the throat construction[J].Glass & Enamel,1997,25(2):39-46 (in Chinese). [16] 刘绍舜.光学玻璃电熔窑炉流液洞耐蚀损性的研究[D].长春:长春理工大学,2004. LIU S S.Study on resistivity of the throat in the optical glass electric melting furnace[D].Changchun:Changchun University of Science and Technology,2004 (in Chinese). [17] 陈景华.流液洞临界出料量的推导和应用[J].玻璃与搪瓷,1998,26(5):3-5. CHEN J H.Derivation and application of critical output through throat[J].Glass & Enamel,1998,26(5):3-5 (in Chinese). [18] 王福军.计算流体动力学分析[M].清华大学出版社,2004(5):7-9. WANG F J.Computational fluid dynamics analysis[M].Tsinghua University Press,2004(5):7-9 (in Chinese). [19] 朱立平,于守富,吕士武,等.玄武岩纤维池窑熔制过程的数值模拟[J].化工进展,2019,38(2):940-948. ZHU L P,YU S F,LYU S W,et al.Numerical simulation of the melting process in basalt fiber tank[J].Chemical Industry and Engineering Progress,2019,38(2):940-948 (in Chinese). [20] 赵丽丽,马志纯.全电玻璃窑炉之流液洞冷却[J].玻璃与搪瓷,2018,46(6):34-35. ZHAO L L,MA Z C.Throat cooling in all electric melting furnace[J].Glass & Enamel,2018,46(6):34-35 (in Chinese). |