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This quantity is a part of the Ceramic Engineering and technological know-how continuing  (CESP) series.  This sequence incorporates a choice of papers facing concerns in either conventional ceramics (i.e., glass, whitewares, refractories, and porcelain the teeth) and complex ceramics. subject matters coated within the region of complicated ceramic contain bioceramics, nanomaterials, composites, sturdy oxide gas cells, mechanical homes and structural layout, complex ceramic coatings, ceramic armor, porous ceramics, and more.

Content:
Chapter 1 layout concerns for All?Electric Glassmelters: II (pages 1–13): William R. Steitz and Carl W. Hibscher
Chapter 2 Forehearth electrical Heating managed by means of Conductance (pages 14–24): James F. Stevenson
Chapter three gas rate reductions on reworked Lehrs (pages 25–29): Melvin N. Roberts
Chapter four Asbestos removing in a pitcher Plant (pages 30–34): James C. Haney
Chapter five difficulties concerning Spent?Chrome?Bearing Refractories (pages 35–38): Warren S. Ferguson
Chapter 6 Chrome?Containing simple fabrics: adventure within the eu Glass (pages 39–50): Paul P. Boggum
Chapter 7 Longer Glass Furnace lifestyles utilizing 38.1?cm?Thick Flux fabric (pages 51–56): J. J. Kersting, L. H. Kotacska and L. ok. Smith
Chapter eight Glass Batch Pelletizing and pollutants trap reports in Pellet Beds (pages 57–78): R. Raghavan, R. R. Thomas, R. E. Miller and W. L. Wallding
Chapter nine Fluidized Beds for Glass Batch Preheating (pages 79–87): Ravi Sakhuja and William E. Cole
Chapter 10 An strength Survey within the Glass (pages 88–94): Charles H. Allen
Chapter eleven Environmental rules and Its impact at the Glass (pages 95–107): George Teitelbaum
Chapter 12 floor wire: A Case historical past (pages 108–111): G. A. Anderson
Chapter thirteen floor wire research and strength assets (pages 112–119): Allen D. Davis
Chapter 14 common reviews on floor wire (pages 120–132): John LeBlanc
Chapter 15 Furnace development and Its influence on floor twine in box Glass (pages 133–141): Manfred Weiler

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Extra info for Proceedings of the 41st Conference on Glass Problems: Ceramic and Engineering and Science Proceedings, Volume 2, Issue 1/2

Sample text

Particulate capture studies were less impressive, with only 32% of 10-pm-average-diameter Na2S04particulates captured in the laboratory static-packed bed. It was agreed that additional studies should be made to show the pollution capture capabilities of a packed bed of pellets using actual container furnace waste flue gases. A pelletizing and drying system was installed in Corning's process research center to provide pellets for the packed-bed studies. A pilot-size packed bed and an electrified filter bed were installed in the Thatcher Glass Mfg.

7 cm. This effect is clearly shown in Fig. 5 , which plots no-load energy vs furnace age. 2 cm. From these data, it was concluded that less energy would be used with thicker blocks vs overcoating. 8-cm-thick blocks would increase furnace life approximately 20%. Based on this assumption, an economic comparison was made (Table I). 8-cm-thick AZS material in the critical wear area of the furnace was $100 OOO. If the lower average energy consumption and lower flux cooling cost are taken into account, the savings would be $448/d, a worthwhile investment if all assumptions are correct.

It was expected that as the melting temperature increased, the corrosion rate would increase. It was also predicted that as the remaining flux block thickness lessened, the effect of cooling would become more pronounced and the corrosion rate would decrease. The corrosion rate shown in Fig. 4 (all-electric vertical melter) shows these expected effects. The melting temperature was increased from 1440" to 1460°C approximately 40% into the campaign. For this 20°C increase in temperature the corrosion rate increased 45%.

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