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Content:
Chapter 1 improvement and alertness of Chrome?Alumina Refractories (pages 1–10): Terry M. Fraser
Chapter 2 impact of Carbon at the Microstructure of Periclase Refractories (pages 11–20): H. Emlemdi and J. R. Blachere
Chapter three impact of Anisotropic Thermal growth at the power of Phosphate?Bonded Al2O3 Bicrystals (pages 21–31): Morteza Soltani and James F. Benzel
Chapter four advised extra fabric info for comparing the Mechanical power of Refractories (pages 32–38): Charles A. Schacht
Chapter five Refractory Castables for Alumina relief Cells (pages 39–42): Douglas V. Steward and Alton T. Tabereaux
Chapter 6 Refractories for Aluminum Salt bathtub functions (pages 43–60): John Y. Liu and S. D. Day
Chapter 7 research of tools for comparing Monolithic Refractories for Molten Aluminum Containment, II (pages 61–66): Russell W. Rothrock
Chapter eight High?Fired Refractories for non-stop Casting of metal (pages 67–73): Subrata Banerjee and Gary L. Ramsey
Chapter nine improvement of Monolithic (Castables) metal Ladles at Gary Works (pages 74–81): Timothy L. Nosbisch, Richard M. Wardrop, John A. Kaniuk and Ian D. Prendergast
Chapter 10 New AZS Chromic Oxide Refractory for Wool Fiber?Glass Melting Furnaces (pages 82–90): T. M. Wehrenberg and C. N. McGarry
Chapter eleven approach regulate and caliber insurance of Calcium Aluminate Cements (pages 91–104): C. M. George and R. P. Racher
Chapter 12 Optimization of Refractory homes via Statistical layout (pages 105–120): H. David Leigh
Chapter thirteen SPC—The route to constant Refractory Brick caliber (pages 121–128): Harold S. White and Frank J. Hrbolich
Chapter 14 SPC at Mulcoa (pages 129–139): Dilip C. Jain
Chapter 15 Thermal and Mechanical homes of Fly Ash?Calcium Carbonate Refractory fabrics (pages 140–153): C. C. Chiu and E. D. Case
Chapter sixteen Regenerative warmth restoration utilized to Periodic Kilns (pages 154–157): Fred C. McMann

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Extra info for Application of Refractories: Ceramic Engineering and Science Proceedings, Volume 9, Issue 1/2

Sample text

6R. de La Garza, “Importance of the Modulus of Elasticity on Basic Refractory Brick for Cement Rotary Kilns,” American Ceramic Society 87th Annual Meeting, May 5-9, 1985. ’C. A. Schacht, “Lining Life of Ladles as Related to Shell Flexing and Lining Properties,” Assoc. Iron Steel Eng. Annual Convention, Chicago, IL, September 22-24, 1986. r T E N S I O N CRACKS ul COMPRESSIVE STRESS P In z Fig. 1 Cold face tension cracks in refractory lining. 35 STRAIN Fig. 2. Typical compressive stress-strain curves for refractory materials.

30 .. 20 I \ .. 0. 10 .. 00 : B : : : m N B + : : : B v : : : : a : ; : : B ul m TEMPERATURE. : : : SALT TREATED I :I: : 61 61 * : : - : : : : - B B N v : 2 DEGREES C Fig. 15. Thermal dilation plot of ultra-low cement castable ULCC-T at 690 kPa (100 psi) load before and after salt treatment at 816°C (1500°F)for 5 h. 58 ULCC-B. 90 + 0. 80 .. W U 8. 70 .. 10 a a 61 a a 61 a v N 61 61 I N + TEMPERATURE, - 61 * DEGREES C Fig. 16. Thermal dilation plot of ultra-low cement castable ULCC-B at 690 kPa (100 psi) load before and after salt treatment at 816 "C (1500O F ) for 5 h.

As shown, biaxial or triaxial tensile stress states have little influence on tensile strength, whereas, biaxial and triaxial compressive stress states significantlyincrease the compressive strength over the uniaxial compressive strength. Therefore, except for thermal shock, the major strain energy is compressive in a thermally restrained refractory system. This implies that the ultimate compressive strain is more important than ultimate tensile strain in ranking and selecting the refractory mechanical strength against strain controlled thermal loads.

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