蒸发稀释喷雾中涡流分解的直接数值模拟

IF 2 3区 工程技术 Q3 MECHANICS Flow, Turbulence and Combustion Pub Date : 2024-01-04 DOI:10.1007/s10494-023-00521-3
Jacopo Liberatori, Francesco Battista, Federico Dalla Barba, Pietro Paolo Ciottoli
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引用次数: 0

摘要

摘要 根据直接数值模拟的结果,讨论了不同的漩涡破裂状态对空气-丙酮蒸汽漩涡喷流在稀释状态下蒸发过程的影响。采用点-液滴近似,载体相采用欧拉框架求解,而分散相则采用拉格朗日跟踪。研究了三个测试案例:一个是全湍流管道流入条件,另两个是不同漩涡率下的层流 Maxworthy 速度曲线。因此,建立了湍流、气泡型和规则锥形漩涡破裂状态。在对这两个阶段进行现象学和统计学分析后,观察到锥形漩涡破裂开始时,由于最强的离心力将整个液滴推向射流的低饱和混合层,整个液滴蒸发过程显著增强。液滴惯性对蒸发的影响是通过另外一组模拟分离出来的,其中液滴被视为拉格朗日跟踪器。结果发现,在气泡漩涡破裂条件下,惯性效应有助于增强混合层附近的蒸发,而在湍流漩涡和锥形漩涡破裂条件下,液滴惯性分别由于强烈的湍流混合和高离心力而起次要作用。
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Direct Numerical Simulation of Vortex Breakdown in Evaporating Dilute Sprays

The effects of different vortex breakdown states on the evaporation process characterizing air-acetone vapor swirling jets laden with liquid acetone droplets in the dilute regime are discussed based on results provided by direct numerical simulations. Adopting the point-droplet approximation, the carrier phase is solved using an Eulerian framework, whereas a Lagrangian tracking of the dispersed phase is used. Three test cases are investigated: one with fully-turbulent pipe inflow conditions and two with a laminar Maxworthy velocity profile at different swirl rates. Consequently, turbulent, bubble-type, and regular conical vortex breakdown states are established. Following phenomenological and statistical analyses of both phases, a significant enhancement of the overall droplet evaporation process due to the onset of the conical vortex breakdown is observed due to the strongest centrifugal forces driving the entire liquid drops towards the low-saturation mixing layer of the jet. The effects of droplet inertia on evaporation are isolated through an additional set of simulations where liquid droplets are treated as Lagrangian tracers. While it is found that inertial effects contribute to enhanced vaporization near the mixing layer under bubble vortex breakdown conditions, droplet inertia plays a secondary role under both turbulent and conical vortex breakdown due to intense turbulent mixing and high centrifugal forces, respectively.

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来源期刊
Flow, Turbulence and Combustion
Flow, Turbulence and Combustion 工程技术-力学
CiteScore
5.70
自引率
8.30%
发文量
72
审稿时长
2 months
期刊介绍: Flow, Turbulence and Combustion provides a global forum for the publication of original and innovative research results that contribute to the solution of fundamental and applied problems encountered in single-phase, multi-phase and reacting flows, in both idealized and real systems. The scope of coverage encompasses topics in fluid dynamics, scalar transport, multi-physics interactions and flow control. From time to time the journal publishes Special or Theme Issues featuring invited articles. Contributions may report research that falls within the broad spectrum of analytical, computational and experimental methods. This includes research conducted in academia, industry and a variety of environmental and geophysical sectors. Turbulence, transition and associated phenomena are expected to play a significant role in the majority of studies reported, although non-turbulent flows, typical of those in micro-devices, would be regarded as falling within the scope covered. The emphasis is on originality, timeliness, quality and thematic fit, as exemplified by the title of the journal and the qualifications described above. Relevance to real-world problems and industrial applications are regarded as strengths.
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