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- W1567331430 abstract "The state-of-the-art techniques of modeling of glass-melting furnaces give a time averaged solution of the whole (coupled) model. This method seems to be satisfactory to obtain accurate heat fluxes between the glass and combustion space, and thus to have a good boundary condition for the glass model to evaluate all the values of interest, such as glass flow patterns, temperatures, batch shape, quality indices, seed counts, and so on. However, in modeling combustion chambers of regenerative furnaces, we can see processes that, because of their nature, are time-dependent and cannot be represented by a time-averaged steady state. We can, for example, approximate the time-averaged heat fluxes between the combustion chamber and the glass melt even in regenerative furnaces, because we can use symmetry, or, in the worst case, two combustion models that represent firing from each side. However, if we want to simulate the regenerators themselves, we cannot find any time-averaged state. For such purposes, we employ a simplified transient combustion model. Results of simulations of two designs of a regenerator are presented and discussed. Some drawbacks of traditional regenerator designs are identified and improvements suggested." @default.
- W1567331430 created "2016-06-24" @default.
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- W1567331430 date "2008-03-26" @default.
- W1567331430 modified "2023-09-25" @default.
- W1567331430 title "How Mathematical Modeling Can Help Reduce Energy Usage for Glass Melting" @default.
- W1567331430 cites W1981401379 @default.
- W1567331430 doi "https://doi.org/10.1002/9780470294857.ch12" @default.
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