Chapter 1 Environmental and future health points of Glass Furnace upkeep (pages 159–167): Bradley Q. Kinsman and John L. Cherill
Chapter 2 Combustion differences for regulate of NOx Emissions from Glass Melting Furnaces (pages 168–177): Hamid A. Abbasi and Donald okay. Fleming
Chapter three Cullet Processor layout and Operation (pages 178–183): Donald H. Schendel
Chapter four rainy Sand dealing with approach for go with the flow Glass production (pages 184–191): Christopher R. Cording, Stephen B. Parker and Bruce A. Wallace
Chapter five research of Glass method difficulties utilizing Three?Dimensional laptop Modeling (pages 192–202): R. A. Murnane and N. J. Moreland
Chapter 6 State?of?Art Numerical Simulation of Glass Melting Furnaces (pages 203–220): A. Ungan and R. Viskanta
Chapter 7 Glass Melting with natural Oxygen Combustion: Modeling of Convective and Radiative warmth move (pages 221–231): Dominique Jouvaud, Jean?Francois I'Huissier and Bernard Genies
Chapter eight reviews in working Computer?Controlled Furnaces and Forehearths (pages 232–243): J. P. Hartley
Chapter nine Refiner Temperature keep an eye on and Its impact on Forehearths Operation (pages 244–252): John P. Theisen
Chapter 10 First crusade of a Lead Crystal Glass electrical Furnace in Poland (pages 253–263): G. A. Warren, T. Sasiak and R. E. Davis
Chapter eleven result of Scaled checking out and Analytical Investigations of a Cullet Preheater (pages 264–272): R. De Saro, G. Ridderbusch, J. Pagliarlni, L. Donaldson and S. Panahe
Chapter 12 excessive Zirconia Glass Refractories: an summary (pages 273–283): A. D. Davis and T. M. Wehrenberg
Chapter thirteen Optimizing Batch Composition, Redox and Furnace Operation (pages 284–295): R. Hulme
Chapter 14 Gaseous Inclusions in drift Glass (pages 296–305): R. R. Snow and D. R. Sendi
Chapter 15 Glass Furnace backside Construction—Trends, evidence, and Myths—A evaluation (pages 306–314): E. R. Begley
Chapter sixteen period in-between research of a Chrome?Free, High?Efficiency Checker surroundings in a box Glass Furnace (pages 315–328): W. John Kivala and H. Edward Wolfe
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Extra resources for 48th Conference on Glass Problems: Ceramic Engineering and Science Proceedings, Volume 9, Issue 3/4
Table I11 summarizes the forehearth connection temperatures for all three cases. It can be seen that although the temperature gradient at the connection remained the same for each case, the absolute temperatures at the connection are hotter for the high pull cases. Note that the temperatures were predicted by a model assuming the same optical profile for all of the cases. If lower forehearth connection temperatures were needed, different refiner optical profiles could be evaluated to determine which would reach the desired operating levels.
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Sci. , 9 [3-41 pp. 192-202 (1988) Analysis of Glass Process Problems Using Three-Dimensional Computer Modeling R. A. MURNANEAND N. J. MORELAND Corning Glass Works Corning, NY 14831 Traditionally,glass process problems have been studied using laboratory and twodimensional computer simulation techniques to quantify the melting, cooling, and distribution of the molten glass and its quality. Although these approaches are adequate for a large number of simple glass systems, there are processes with asymmetric geometries and operating conditions which cannot neglect the effectof the third dimension.
48th Conference on Glass Problems: Ceramic Engineering and Science Proceedings, Volume 9, Issue 3/4