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- W2321830966 abstract "Combustion and evaporation processes occurring in a closed chamber may result in pressure changes and work transfer to the surroundings. The large volumetric changes that accompany such processes allow substantial work potential to be achieved in cyclic non-steady devices. The ideal pressure gain or work production is a function of the prescribed inflow and outflow conditions, volumetric confinement, fluid properties, and other parameters. The thermodynamic limits of pressure gain and work production in such devices are explored. Analytic methods are illustrated by cyclic combustion and evaporation processes for enhancing combustion engine performance. c specific heat m -mass n -number of moles h specific enthalpy p pressure Q sensible heat release of combustion Q' latent heat of evaporation R mass-specific gas constant T temperature u specific internal energy v specific volume W work x number of C atoms in fuel molecule y -number of H atoms in fuel molecule a moles of injected water fuel-air equivalence ratio y specific heat ratio, Cp/cv 77 adiabatic efficiency H mass fraction ^ Assistant Professor, AIAA Member. Copyright ©1998 by M. Razi Nalim. Published by AIAA with permission. Subscripts 2 device inlet state or mass 3 device outlet state or mass A state after pre-compression A' state after evaporation B state after combustion L liquid, injection state p constant pressure r residual buffer gas v constant volume" @default.
- W2321830966 created "2016-06-24" @default.
- W2321830966 creator A5004531560 @default.
- W2321830966 date "1998-07-13" @default.
- W2321830966 modified "2023-09-26" @default.
- W2321830966 title "Thermodynamic limits of pressure gain and work production in combustion and evaporation processes" @default.
- W2321830966 cites W1969337707 @default.
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- W2321830966 doi "https://doi.org/10.2514/6.1998-3398" @default.
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