The Effect of the Conductive Walls of the Melting Tank of an Electric Furnace on the Distribution of Energy Flows

被引:0
|
作者
N. N. Shustrov
V. G. Puzach
S. A. Bezenkov
机构
[1] Federal State Budgetary Institution of Science “Joint Institute for High Temperatures of the Russian Academy of Sciences,
[2] ”,undefined
[3] JSC “NPO Stekloplastik,undefined
[4] ” Andreevka,undefined
[5] Solnechnogorsk district,undefined
来源
关键词
electric glass melting furnace (EGMF); electrical conductivity; electric field lines; modeling; equipotential lines; equigradient lines;
D O I
暂无
中图分类号
学科分类号
摘要
A method for modeling the electric glass melting process, which allows obtaining information about the commonality of electric and thermal processes occurring in the glass mass inside an electric glass-melting furnace, has been developed. The melting tank of the furnace is made of electrically conductive chromium oxide. The study was performed by way of modeling using an EHDA integrator, which resulted in the construction of two versions of pilot electric furnaces with different orientation of the electric field lines and a pilot-commercial furnace capable of melting 7 t/day of E-glass, widely used in the fiberglass manufacturing.
引用
收藏
页码:144 / 149
页数:5
相关论文
共 50 条
  • [41] Effect of ionizing radiation on energy-barrier distribution for domain walls in ferroelectrics
    V. V. Gladkii
    V. A. Kirikov
    E. S. Ivanova
    Crystallography Reports, 2000, 45 : 482 - 486
  • [42] CFD simulation aided glass quality and energy efficiency analysis of an oxy-fuel glass melting furnace with electric boosting
    Raic, Juraj
    Wachter, Philipp
    Hoedl, Philipp
    Demuth, Martin
    Gaber, Christian
    Gerhardter, Hannes
    Prieler, Rene
    Hochenauer, Christoph
    ENERGY CONVERSION AND MANAGEMENT-X, 2022, 15
  • [43] CFD simulation aided glass quality and energy efficiency analysis of an oxy-fuel glass melting furnace with electric boosting
    Raic, Juraj
    Wachter, Philipp
    Hoedl, Philipp
    Demuth, Martin
    Gaber, Christian
    Gerhardter, Hannes
    Prieler, Rene
    Hochenauer, Christoph
    ENERGY CONVERSION AND MANAGEMENT-X, 2022, 15
  • [44] Effect of the Secondary Current Lead Resistances on the Properties of an Arc Steel-Melting Furnace as a Receiver and Transformer of Electric Power
    Mironov, Yu. M.
    RUSSIAN METALLURGY, 2009, (08): : 736 - 740
  • [45] Decarbonization of Electric Arc Furnace Steel Mills, how to Set-up an Effective Allocation of Energy Flows, aiming at Tracking Efficiency and Energy Savings
    Khalid, Rashida
    Savoia, Alice
    Catania, Vincenzo
    Collarini, Nicola
    Anglani, Norma
    9TH INTERNATIONAL YOUTH CONFERENCE ON ENERGY, IYCE 2024, 2024,
  • [46] Energy distribution and melting efficiency in glass melting channel: Diagram of melt flow types and effect of melt input temperature
    Hrbek, Lukag
    Jebava, Marcela
    Nemec, Lubomir
    JOURNAL OF NON-CRYSTALLINE SOLIDS, 2018, 482 : 30 - 39
  • [47] Effect of cavity's geometry and pellet shape on the electric field distribution and penetration depth of microwave in processing electric arc furnace dust
    Xiong, Yuandong
    Ren, Jie
    Qiu, Dejin
    Omran, Mamdouh
    Wei, Shiyu
    Li, Ying
    Zhang, Dengwei
    Wang, Kai
    Ahmed, Abdallah
    Yu, Yaowei
    POWDER TECHNOLOGY, 2024, 434
  • [48] Effect of oxyfuel burner ratio changes on energy efficiency in electric arc furnace at Co-Steel Lasco
    Thomson, MJ
    Kournetas, NG
    Evenson, E
    Sommerville, ID
    McLean, A
    Guerard, J
    IRONMAKING & STEELMAKING, 2001, 28 (03) : 266 - 272
  • [49] EFFECT OF LARGE ELECTRIC FIELDS ON ELECTRON ENERGY DISTRIBUTION AND IONIZATION RATE IN A CESIUM DISCHARGE
    SHAW, DT
    MARGOLIS, SG
    JOURNAL OF APPLIED PHYSICS, 1969, 40 (11) : 4377 - &
  • [50] EFFECT OF THE GRANULOMETRIC COMPOSITIONS OF THE CHARGE ON GAS-DISTRIBUTION AND THERMAL-ENERGY USE IN THE BLAST-FURNACE
    CHERNYATIN, AN
    UNIGOVSKII, LB
    KOPYRIN, IA
    PROKHOROV, VN
    METALLURGIST, 1983, 27 (3-4) : 119 - 123