焦耳热效应对高速涡轮喷气飞机冷却和热负荷入口锥辐射热振荡的影响:Darcy Casson湍流控制模型

IF 5.6 1区 数学 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Mhamed Benaissa , Zia Ullah , Md. Mahbub Alam , Hanaa Abu-Zinadah , Muhammad Ashraf , Noureddine Elboughdiri , Djamel Ghernaout , Alsamani A.M. Salih , Nidhal Ben Khedher
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引用次数: 0

摘要

研究了航空涡轮和喷气发动机进气加热锥振荡传质湍流的欧姆加热、散热和Darcy Forchheimer多孔介质效应。采用Darcy Forchheimer多孔介质控制航空发动机进气道锥流湍流、传热和质量率。采用瞬态卡森纳米流体模型对涡喷发动机进气道锥体进行了传热和流动控制。根据热边界层和流动边界层的物理行为,生成了流动控制参数。利用Stokes变换、复变量和原始公式计算了纳米流体的振荡运动、振荡传热、振荡质量分布、稳态热质输运等问题。利用控制因素的显著参数值,推导出数值和图形结果。振荡流动和湍流传热传质利用了洛伦兹力、Forchheimer孔隙系数、Eckert数、欧姆加热、太阳辐射、热电泳和Casson材料参数。研究了进口锥上流线和等温线的二维特性。参数范围为0.0≤Mf≤4.0,0.0≤Fr≤1.2,0.0≤Jh≤3.0,0.0≤Ec≤6.0,0.0≤NT≤8.0,0.0≤Rd≤20.0,用于控制湍流热和质量振荡。在较小的洛伦兹系数、Forchheimer系数和较大的欧姆加热系数下,发现等温线轮廓线和流线具有较大的流动。在每个Forchheimer因子中,流体速度和温度-浓度变化的振荡幅度较大。各太阳辐射参数在非波动加热量级和纳米粒子运动方面分布显著。突出的振荡幅度和湍流波动的热量和质量分布描绘了每一个Eckert,热泳和Forchheimer参数。随着辐射能量的增加,稳定热量和质量输运的高速率也随之增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Joule heating effect on radiative heat oscillations over inlet-cone for cooling and thermal load of high-speed turbojet aircraft: Darcy Casson turbulence control model
Ohmic heating, heat dissipation and Darcy Forchheimer porous medium effects on turbulence of oscillatory heat and mass transfer along inlet heated cone in aircraft turbine and jet engines are investigated current problem. Darcy Forchheimer porous medium is applied to control turbulence of fluid flow, heat transfer and mass rate along inlet cone in aircraft engines. The transient Casson nanofluid model is used to enhance the heat transfer and flow control over inlet cone in turbo-jet aircraft engine. The flow controlling parameters are generated for physical behavior of thermal and flow boundary layers. The oscillatory motion of nanofluid and oscillatory heat transfer, oscillatory mass distribution, steady heat-mass transportation over inlet cone are calculated using Stokes transformation, complex variables and primitive formulation. The numerical and graphical results are deduced using significant parametric values of controlling factors. Lorentz force, Forchheimer porosity factor, Eckert number, Ohmic heating, solar radiation, thermophoresis, and Casson material parameter are utilized for oscillatory and turbulence flow of heat and mass transfer. The 2D behavior of streamlines and isothermal lines over inlet cone is examined. The following parametric range of 0.0Mf4.0, 0.0Fr1.2, 0.0Jh3.0, 0.0Ec6.0, 0.0NT8.0, and 0.0Rd20.0 is applied to control turbulent heat and mass oscillations. The high flow of isotherms contour and streamlines is found for minor Lorentz, Forchheimer factor and large ohmic heating factor. Larger oscillating amplitude in fluid velocity and temperature-concentration variation is observed for each Forchheimer factor. Remarkable distribution in non-fluctuating heating magnitude and nanoparticle movement is observed for each solar radiating parameter. Prominent oscillating amplitude and turbulent fluctuation in heat and mass distribution is depicted for each Eckert, thermophoresis and Forchheimer parameters. The high rate of steady heat and mass transport is increased as radiating energy increases.
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来源期刊
Chaos Solitons & Fractals
Chaos Solitons & Fractals 物理-数学跨学科应用
CiteScore
13.20
自引率
10.30%
发文量
1087
审稿时长
9 months
期刊介绍: Chaos, Solitons & Fractals strives to establish itself as a premier journal in the interdisciplinary realm of Nonlinear Science, Non-equilibrium, and Complex Phenomena. It welcomes submissions covering a broad spectrum of topics within this field, including dynamics, non-equilibrium processes in physics, chemistry, and geophysics, complex matter and networks, mathematical models, computational biology, applications to quantum and mesoscopic phenomena, fluctuations and random processes, self-organization, and social phenomena.
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