利用介质势垒放电等离子体致动器进行脉冲薄膜冷却的大涡流模拟

IF 2.1 3区 工程技术 Q2 ENGINEERING, AEROSPACE Aerospace Pub Date : 2023-12-28 DOI:10.3390/aerospace11010028
Zhou Shen, Beimeng Hu, Guozhan Li, Hongjun Zhang
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引用次数: 0

摘要

本文通过大涡模拟探讨了冷却剂脉动和等离子体空气动力致动(PAA)对薄膜冷却的影响。通过现象等离子体模型求解了 PAA 产生的电流体动力。正弦冷却剂脉动的斯特劳哈尔数和平均脉动吹气比分别为 0.25 和 1.0。对时间平均流场进行了综合分析,结果表明脉冲冷却射流可能会导致更深地穿透横流,而 PAA 的向下力可以显著缓解这一现象。将稳定薄膜冷却与脉冲薄膜冷却进行比较后发现,稳定薄膜冷却的效率略微降低了 15.1%,而应用介质阻挡放电等离子致动器(DBDPA)后,脉冲薄膜冷却的效率大幅提高了 42.1%。此外,由于冷却剂脉动,反向旋转涡旋对(CRVP)增大并从壁上脱落,而 PAA 则削弱了反向旋转涡旋对的有害脱落效应和夹带效应。然后,通过中心线温度的变化了解了相干结构的时空发展,这反映了冷却剂脉动导致的间歇性相干结构而非发夹涡的形成,而 PAA 则减小了它们的尺寸和上浮行为,从而从根本上抑制了冷却剂与横流的湍流融合。最后,三维流线证实 PAA 能够显著调节相干结构的动态行为,从而减轻冷却剂脉动的不利影响。总之,PAA 可以通过控制主导相干结构的时空发展来有效提高脉冲薄膜冷却效率。
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Large Eddy Simulation of Pulsed Film Cooling with a Dielectric Barrier Discharge Plasma Actuator
The effects of the coolant pulsation and the plasma aerodynamic actuation (PAA) on the film cooling are herein explored via large eddy simulations. The electrohydrodynamic force derived from the PAA was solved through the phenomenological plasma model. The Strouhal number of the sinusoidal coolant pulsation and the averaged pulsation blowing ratio were 0.25 and 1.0, respectively. Comprehensive analyses were carried out on the time-averaged flow fields, and the results reveal that the pulsed cooling jet might cause a deeper penetration into the crossflow, and this phenomenon could be remarkably mitigated by the downward force of the PAA. Comparing steady film cooling to pulsed film cooling revealed a modest 15.1% reduction in efficiency, while the application of the dielectric barrier discharge plasma actuator (DBDPA) substantially enhanced the pulsed film cooling efficiency by 42.1%. Moreover, the counter-rotating vortex pair (CRVP) was enlarged and lifted off from the wall more poorly due to the coolant pulsation, and the PAA weakened the detrimental lift-off effect and entrainment of the CRVP. Then, the spatial–temporal development of the coherent structures was figured out by the alterations in the centerline temperature, reflecting the formation of the intermittent coherent structures rather than hairpin vortices due to the coolant pulsation, and their size and upcast behaviors were reduced by the PAA; thus, the turbulent integration of the coolant with the crossflow was suppressed fundamentally. Finally, the three-dimensional streamlines confirmed that the coherent structure dynamic behaviors were significantly regulated by the PAA for alleviating the adverse influences of the coolant pulsation. In summary, the PAA can effectively improve the pulsed film cooling efficiency by controlling the spatial–temporal development of the dominant coherent structures.
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来源期刊
Aerospace
Aerospace ENGINEERING, AEROSPACE-
CiteScore
3.40
自引率
23.10%
发文量
661
审稿时长
6 weeks
期刊介绍: Aerospace is a multidisciplinary science inviting submissions on, but not limited to, the following subject areas: aerodynamics computational fluid dynamics fluid-structure interaction flight mechanics plasmas research instrumentation test facilities environment material science structural analysis thermophysics and heat transfer thermal-structure interaction aeroacoustics optics electromagnetism and radar propulsion power generation and conversion fuels and propellants combustion multidisciplinary design optimization software engineering data analysis signal and image processing artificial intelligence aerospace vehicles'' operation, control and maintenance risk and reliability human factors human-automation interaction airline operations and management air traffic management airport design meteorology space exploration multi-physics interaction.
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