By S. K. Sundaram
Ceramic Engineering and technological know-how lawsuits quantity 35, factor 1, 74th convention on Glass difficulties
S.K. Sundaram, Editor
In carrying on with the culture that dates again to 1934, this quantity is a suite of 25 papers offered on the 74th Glass difficulties convention, October 14–17, 2013 in Columbus, Ohio. those papers are crucial interpreting for all who have to remain abreast of the most recent study within the glass production box. content material is grouped into the under 5 sections:
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Extra info for 74th Conference on Glass Problems. Ceramic Engineering and Science Proceedings, Volume 35, Issue 1
It was shown that flame structure and length can be controlled. The reactants velocities help to control and set the location of the hottest area (or hot spot) of the flame. This parameter is critical to preserve the integrity of both refractory block and burner injector. Selection of suitable swirl effect is important to obtain efficient combustion characteristics. Figure 2 illustrates the principle of the swirl effect on fuel injection. If the mixing between reactants occurs too rapidly (strong swirl), it can lead to shorter flames and localization of the hot spot within the refractory block.
Comprehensive analysis of the inclusions by petrographic methods using transmitted polarized light microscopy (PLM) and/or sometimes augmented by qualitative elemental analysis via scanning electron microscopy with energy dispersive x-ray spectroscopy (SEM/EDX) can reveal the true root cause of the problem. This paper will present several examples illustrating the analytical techniques and some of the revelations that can be provided by those analyses. INTRODUCTION It is a well-recognized fact that it is impractical if not totally impossible to make glass that is entirely free of any inhomogeneity defect.
During the operation, the easy installation of the burner was positively noted as well as no adverse effects on glass quality. Reference 2: Full conversion of a conditioning zone of fiberglass forehearth In 2006, Air Liquide started a partnership with one of its customers to apply ALGLASS FH technology in one of its forehearth lines. Implementation of the technology initially focused on the conditioning zone. The trial objectives were: (i) to evaluate the firing flexibility of ALGLASS FH burner to forehearth demand; (ii) to check the robustness of the technology during several months’ operations, and (iii) to quantify the impact of the technology on the thermal behavior of the forehearth.