Prospects and physical limits of processes and technologies in glass melting

被引:24
作者
Conradt, Reinhard [1 ,2 ]
机构
[1] Rhein Westfal TH Aachen, Glass Ceram Composites, Aachen, Germany
[2] UniglassAC GmbH, Nizzaallee 75, Aachen, Germany
关键词
Glass melting; fuel-fired glass furnace; energy utilization; thermodynamics; heat balance; BUBBLE REMOVAL; INNOVATION;
D O I
10.1080/21870764.2019.1656360
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The paper is devoted to the physics of continuously operating fuel-fired glass furnaces with supplementary electrical boosting. Furnaces are treated in their basic function as heat exchangers and chemical reactors. First, as an expression of the 1(st) law of thermodynamics, a general heat balance is elaborated in detail. The function as heat exchanger is characterized by three dimensionless key indicators: the temperature efficiency (comprising adiabatic flame, glass exit, and environmental temperature), the heat capacity flow match of hot and cold stream, and the number of heat transfer units. A 2(nd) law treatment reveals the bottle neck of furnace optimization between two conflicting objectives. i.e., high production rates and high energy efficiency. Based on this treatment, an evaluation procedure for furnace performance is presented. It rests on a retrospective analysis of furnace operation data and allows one to quantitatively compare furnaces of different sizes and production capacities as well as the effect of different batches used in the same furnace. A number of industrial case studies demonstrate the usefulness and reliability of the approach. Finally, an expression for the ultimate physical limit of energy utilization efficiency of a fuel fired furnace in general is derived.
引用
收藏
页码:377 / 396
页数:20
相关论文
共 50 条
  • [31] Change in the redox potential of a glass melt upon introducing a melting catalyst into the glass batch
    Kiyan, VI
    Mashir, YI
    Atkarskaya, AB
    GLASS AND CERAMICS, 2000, 57 (3-4) : 78 - 80
  • [32] Change in the redox potential of a glass melt upon introducing a melting catalyst into the glass batch
    V. I. Kiyan
    Yu. I. Mashir
    A. B. Atkarskaya
    Glass and Ceramics, 2000, 57 : 78 - 80
  • [33] Structural characterization of erbium doped LAS glass ceramics obtained by glass melting technique
    Krsmanovic, R.
    Bertoni, G.
    Van Tendeloo, G.
    RESEARCH TRENDS IN CONTEMPORARY MATERIALS SCIENCE, 2007, 555 : 377 - +
  • [34] GLASS MELTING AND ITS INNOVATION POTENTIALS: THE IMPACT OF THE INPUT AND OUTPUT GEOMETRIES ON THE UTILIZATION OF THE MELTING SPACE
    Polak, Miroslav
    Nemec, Lubomir
    CERAMICS-SILIKATY, 2010, 54 (03) : 212 - 218
  • [35] GLASS MELTING AND ITS INNOVATION POTENTIALS: THE ROLE OF GLASS FLOW IN THE BUBBLE-REMOVAL PROCESS
    Nemec, Lubomir
    Cincibusova, Petra
    CERAMICS-SILIKATY, 2008, 52 (04) : 240 - 249
  • [36] INDUSTRIAL OPPORTUNITIES OF CONTROLLED MELT FLOW DURING GLASS MELTING, PART 1: MELT FLOW EVALUATION
    Dyrcikova, Petra
    Hrbek, Lukas
    Nemec, Lubomir
    CERAMICS-SILIKATY, 2014, 58 (02) : 111 - 117
  • [37] Limits to creative destruction and technologies in practice: the case of ham radio
    Schiavone, Francesco
    De Falco, Salvatore Esposito
    TECHNOLOGY ANALYSIS & STRATEGIC MANAGEMENT, 2016, 28 (01) : 60 - 75
  • [38] Glass melting in an electric direct-heated skull furnace
    Ambartsumyan, AG
    Akopyan, GG
    Kostanyan, KA
    GLASS AND CERAMICS, 1997, 54 (5-6) : 139 - 140
  • [39] Investigation of Melting Behavior of Low-enthalpy Glass Batches
    Tapasa, Kanit
    Meechoowas, Ekarat
    Naknikham, Usuma
    Jitwatcharakomol, Tepiwan
    TRADITIONAL AND ADVANCED CERAMICS, 2014, 608 : 311 - 315
  • [40] THE EVALUATION OF THE PERFORMANCE OF A GLASS MELTING FURNACE IN TERMS OF ENERGY CONSUMPTION
    Tapasa, Kanit
    Meechoowas, Ekarat
    Naknikham, Usuma
    Jitwatcharakomol, Tepiwan
    SURANAREE JOURNAL OF SCIENCE AND TECHNOLOGY, 2014, 21 (01): : 15 - 20