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- W1987306543 abstract "Introduction T HE environmental and energy challenges for gas turbines require new combustion concepts.1 The technique described in this study is called lean direct wall injection (LDWI), and it can be described as injection of a liquid fuel jet from the combustor wall, without premixing and prevaporization, directly into the swirling flow of the main combustor.2,3 Liquid jet atomization is a critical process for LDWI because the fuel is not premixed and prevaporized and the combustion efficiency and NOx emission of this concept depend heavily on the fuel distribution. The behavior of a liquid jet injected transversely into a high-velocity crossflow has been examined in both supersonic and subsonic flows largely through experiment.4−7 However, results from angled injection in the crossflow regime are not directly applicable to the swirling flow regime. It will be necessary to produce uniform and rapid atomization of the fuel jet in LDWI to form a uniform gaseous-phase fuel and air mixture in the practical application. It was the purpose of this investigation to examine the effects of atomization factors on the breakup and atomization processes of liquid jets in swirling flow. In the present study, as the first stage toward understanding the combustion phenomena in a LDWI mode, the hydrodynamic behavior of wall-injected liquid jets in confined cold swirling air flows were investigated." @default.
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- W1987306543 date "2006-01-01" @default.
- W1987306543 modified "2023-09-27" @default.
- W1987306543 title "Lean Direct Wall Injection Mode Atomization of Liquid Jets in Swirling Flow" @default.
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- W1987306543 doi "https://doi.org/10.2514/1.8260" @default.
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