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العنوان
Modeling of breakup droplets of liquid sprays in a supersonic crossflow using an airblast atomizer /
المؤلف
Al-Manzalawy, Mohamed Samir.
هيئة الاعداد
باحث / محمد سمير المنزلازى
مشرف / لطفى حسن ربيع
مشرف / محمد حسن منصور
مناقش / صادق زكريا أبوالنجا
مناقش / صلاح حسن الإمام
الموضوع
Mechanical Power Engineering. Machinery. Aerospace engineering.
تاريخ النشر
2020.
عدد الصفحات
online resource (106 pages) :
اللغة
الإنجليزية
الدرجة
ماجستير
التخصص
الهندسة الميكانيكية
تاريخ الإجازة
1/1/2020
مكان الإجازة
جامعة المنصورة - كلية الهندسة - Department of Mechanical Power Engineering
الفهرس
Only 14 pages are availabe for public view

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Abstract

A liquid jet from an airblast atomizer into supersonic air crossflow with a Mach number of 1.94 was numerically investigated. The detached eddy simulation was used as the turbulence model to compromise the merits of both large eddy simulation and k-ε models. The Kelvin-Helmholtz and Rayleigh-Taylor (KHRT) model was used to simulate the droplet breakup process. The location and velocity of the child droplets are tracked efficiently by the automated tracking scheme. The model was validated using previous experimental data and a good agreement was obtained. In the present study, an airblast atomizer, which allows core and annular air flows with the injected liquid, is utilized instead of the ordinary orifice nozzle to improve spray breakup process and spray droplet distribution. The airblast atomizer dimensions were represented as factors of the ordinary orifice nozzle and the air mass flow rates through the atomizer were adjusted as ratios from the liquid mass flow rate. Effects of these parameters on the spray structure characteristics were presented. Then, the new proposed design for the airblast atomizer was suggested based on the improvements in spray characteristics dimensions and sauter mean diameter distribution. The core and annular air flows significantly enhanced the breakup process and spray characteristic dimensions and spray breakup compared with that of the ordinary orifice nozzle.