Experimental investigation on jet impingement heat transfer analysis in a channel flow embedded with V-shaped patterned surface

Yashwant Singh Bisht, S D Pandey, Sunil Chamoli
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Abstract

ABSTRACTHeating and cooling systems benefit from jet impingement as it increases efficiency while reducing operating costs. The combined methodology, integrating jet impingement and passive heat transfer through the use of roughened surfaces, offers significant potential for improving heat transfer. This research presents the results of an experimental study on a channel flow commonly used for air heating, known as a solar air heater (SAH), with impinging air on the heated surface. The surface is embedded with V-shaped ribs as turbulence promoters, and it receives a continuous heat flow of 1,000 W/m2. Various design combinations were tested experimentally, including streamwise pitch ratio X/Dh = 0.866, spanwise pitch ratio Y/Dh = 0.866, jet diameter to hydraulic diameter ratio Dj/Dh = 0.065, and an angle of attack (α) ranging from 45° to 90°. During these experiments, the Re varied from 3,500 to 18,000. The optimal improvement was observed at values of X/Dh = Y/Dh = 0.866, Dj/Dh = 0.065, and α = 60°. This paper presents novel findings demonstrating that incorporating V-shaped rib patterns in SAHs can yield Nusselt numbers up to 5.2 times higher than those in smooth duct SAHs, offering substantial potential for enhanced energy efficiency. When the entering jet impacts and flows along the ribs of the absorber, the findings suggest that the V-shaped ribs accelerate the flow, resulting in enhanced heat transfer. All datasets were also analyzed for their thermo-hydraulic performance, with the maximum value recorded as 3.301 within the constraint range used in this analysis.KEYWORDS: Jet impingementheat transfercoupled techniqueV-shaped ribsjet diameter Nomenclature STC=Solar thermal collectorSAH=Solar air heaterCp=Specific heat in J/(kg K)Dj=Diameter of the jet in mmΔPd=Pressure drop across the duct in Pascal (Pa)Dh=Hydraulic diameter in mmK=Conductivity of air in W/(m·K)To=Outlet temperature in °CRe=Reynolds numberNu=Nusselt numberNus=Nusselt number for smoothf=Friction factorfs=Friction factor for smoothTi=Inlet temperature in °CTEF=Thermohydraulic performanceV=Velocity of air in m/sX/Dh=Streamwise pitch ratioY/Dh=Spanwise pitch ratioDj/Dh=Jet diameter to hydraulic diameter ratiom˙a=Mass flow rate of air in (kg/s)Greek letters=ρa=Density of airυa=Kinematic viscosity of airDisclosure statementNo potential conflict of interest was reported by the author(s).Additional informationNotes on contributorsYashwant Singh BishtYaswant Singh Bisht is working as an Assistant Professor in the Department of Mechanical Engineering, Uttaranchal Institute of Technology, Uttaranchal University Dehradun, India. He is doing research in the area thermal engineering, CFD.S D PandeyDr. S D Pandey working as a Professor and Dean in Uttaranchal Institute of Technology, Uttaranchal University Dehradun, India. He has more than 15 years of research and teaching experience. He has guided many students and published many research articles in top-notch journals and conferences.Sunil ChamoliDr. Sunil Chamoli, an Assistant Professor in Mechanical Engineering at GB Pant Institute of Engineering and Technology, Pauri Garhwal, has made significant contributions to academia. He has guided numerous UG, PG, and PhD students and published extensively in top-tier journals. His noteworthy achievement includes being recognized in the top 2% scientist list, a testament to his impactful work in the field.
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嵌入v形表面通道流中射流冲击换热分析的实验研究
加热和冷却系统受益于射流冲击,因为它提高了效率,同时降低了运行成本。通过使用粗糙表面,结合了射流冲击和被动传热的综合方法,为改善传热提供了巨大的潜力。本研究介绍了一种通常用于空气加热的通道流的实验研究结果,称为太阳能空气加热器(SAH),在加热表面上撞击空气。表面嵌入v形肋作为湍流促进剂,接收1000 W/m2的连续热流。实验测试了不同的设计组合:流向螺距比X/Dh = 0.866,展向螺距比Y/Dh = 0.866,射流直径与水力直径比Dj/Dh = 0.065,攻角(α)为45°~ 90°。在这些实验中,Re在3500到18000之间变化。在X/Dh = Y/Dh = 0.866、Dj/Dh = 0.065、α = 60°时,改善效果最佳。本文提出的新发现表明,与光滑管道SAHs相比,在SAHs中加入v形肋型可以产生高达5.2倍的努塞尔数,为提高能源效率提供了巨大的潜力。当进入的射流撞击并沿着吸收体肋部流动时,研究结果表明,v形肋部加速了流动,从而增强了传热。还分析了所有数据集的热液性能,在本分析中使用的约束范围内,记录的最大值为3.301。关键词:飞机impingementheat transfercoupled techniqueV-shaped ribsjet直径命名STC =太阳热能collectorSAH =太阳能空气heaterCp =比热J / K(公斤)Dj =喷气mm直径ΔPd =通过管道的压降帕斯卡(Pa) Dh =水力直径是mmK =电导率的空气在W / (m·K) =出口温度°CRe =雷诺兹numberNu =努塞尔特numberNus =努塞尔特数为smoothTi smoothf =摩擦factorfs =摩擦系数=入口温度°CTEF =热工水力performanceV =速度m/sX/Dh=流向螺距比y /Dh=展向螺距比odj /Dh=射流直径与水力直径比˙a=空气质量流量(kg/s)希腊字母=ρa=空气密度a=空气运动粘度披露声明作者未报告潜在的利益冲突。作者简介:asashwant Singh Bisht是印度北方邦大学机械工程系的助理教授。他的研究领域是热工程,CFD。潘迪博士S D Pandey,印度北方邦理工学院教授兼院长。他有超过15年的研究和教学经验。他指导了许多学生,并在一流期刊和会议上发表了许多研究论文。苏尼尔ChamoliDr。Sunil Chamoli是GB Pant工程技术研究所机械工程助理教授,对学术界做出了重大贡献。他指导了许多本科生、研究生和博士生,并在顶级期刊上发表了大量文章。他值得注意的成就包括跻身前2%的科学家名单,这证明了他在该领域的影响力。
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