An experimental study on the heat transfer performance of a radiator using MWCNT-SiO 2 hybrid nanofluid

Tugba Tetik, Mustafa Armagan, Emir Kasım Demir, Altay Arbak, A. Emre Teksan, Saban Pusat, Yasin Karagoz
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引用次数: 0

Abstract

ABSTRACTThe study aims to investigate the effect of nanofluids on heat transfer through experimentation. To prepare the nanofluids, water, commonly used in radiator cooling systems, served as the base liquid. Multi-walled carbon nanotubes (MWCNT) and silicon dioxide (SiO2) nanoparticles were added at weight concentrations of 0.1%, 0.2%, 0.3%, and 0.4%, with two different flow rates tested. Sodium dodecyl sulfate (SDS) surfactant was used to prevent the nanoparticles from agglomerating. After visually observing the hybrid nanocoolant, it was found that SDS as a surfactant prevented sedimentation and maintained stability for two weeks. Furthermore, STEM imaging demonstrated that spherical SiO2 particles evenly distributed throughout the tube-shaped CNTs improved the fluid’s thermophysical properties regarding heat transfer. Heat transfer improvements were assessed with water experiments. The findings indicate that greater nanoparticle weight concentration promotes heat transfer. The most significant improvement in thermal conductance (UxA) was recorded as 28% in the case of 0.4 wt.% MWCNT water-based nanofluid at 0.034 kg/s flow rate as against water. The economical performance of a nanoparticle-containing cooling system was gauged for a natural gas-powered engine.KEYWORDS: Hybrid nanofluidSiO2 nanoparticlesMWCNTheat transfertechno-economic evaluation Nomenclature A=Cross-sectional areacp=Specific heatF=Correction factorIRR=Internal Rate of ReturnLMTD=Logarithmic mean temperature differenceMWCNT=Multiwalled carbon nanotubeMSE=Mean square errorNF=NanofluidNPV=Net Present ValuePB=Payback PeriodPWM=Pulse Width ModulationQ=Heat transfer rateSDS=Sodium dodecyl sulphatem˙=Mass flow ratewt.=WeightR=Ratio of temperature range of airS=Heat capacity ratioSEM=Scanning electron microscopeSTEM=Scanning transmission electron microscopeT=TemperatureU=Heat transfer coefficientSubscripts=a=airc=coolanti=inleto=outletAcknowledgementsSEM analyses were performed using instruments and facilities at IMU. The technical equipment support of the Teksan Generator and Erin Motor is also gratefully acknowledged.Disclosure statementNo potential conflict of interest was reported by the author(s).Additional informationNotes on contributorsTugba TetikTugba Tetik holds a Ph.D. in Mechanical Engineering from Istanbul Technical University, Turkiye. Currently, she works as a research assistant in the Department of Mechanical Engineering at Istanbul Medeniyet University.Mustafa ArmaganMustafa Armagan holds a Ph.D. in Mechanical Engineering from Kocaeli University, Turkiye. He is currently working as an Assistant Professor in the Department of Mechanical Engineering at Istanbul Medeniyet University.Emir Kasım DemirEmir Kasım Demir is a Ph.D. candidate in Istanbul Medeniyet University, Turkiye. He is currently working as a specialist in Istanbul Medeniyet University, Turkiye.Altay ArbakAltay Arbak holds a Ph.D. in Mechanical Engineering from Istanbul Technical University, Turkiye. Currently, she works as a research assistant in the Department of Mechanical Engineering at Istanbul Medeniyet University.A. Emre TeksanA. Emre Teksan holds a Ph.D. in Mechanical Engineering from Ege University, Turkiye. He is a board member in an energy company, responsible for R&D. Saban Pusat is an Associated Professor of Mechanical Engineering in the Department of Mechanical Engineering at Yıldız Technical University. His research interests are renewable energy, thermodynamics etc.Yasin KaragozYasin Karagoz is currently working as an Associated Professor in the Department of Mechanical Engineering at Istanbul Medeniyet University. His interests are automotive, energy, combustion and cooling systems etc.
mwcnt - sio2复合纳米流体散热器传热性能的实验研究
摘要通过实验研究纳米流体对传热的影响。为了制备纳米流体,通常在散热器冷却系统中使用的水作为基液。多壁碳纳米管(MWCNT)和二氧化硅(SiO2)纳米颗粒分别以0.1%、0.2%、0.3%和0.4%的重量浓度加入,并以两种不同的流速进行测试。采用十二烷基硫酸钠(SDS)表面活性剂防止纳米颗粒团聚。在目视观察混合纳米冷却剂后,发现SDS作为表面活性剂阻止了沉淀并保持了两周的稳定性。此外,STEM成像表明,均匀分布在管状碳纳米管中的球形SiO2颗粒改善了流体在传热方面的热物理性质。通过水实验评估了传热性能的改善。研究结果表明,纳米颗粒质量浓度越大,传热效果越好。与水相比,在0.034 kg/s流速下,0.4 wt.% MWCNT水基纳米流体的热导率(UxA)改善最为显著,为28%。对含纳米颗粒的冷却系统的经济性能进行了天然气动力发动机的测试。关键词:杂化纳米流体sio2纳米颗粒mwcn热转移技术经济评价命名法A=横截面积p=比热f =校正因子irr =内部回收率lmtd =对数平均温差wcnt =多壁碳纳米管mse =均方误差nf =纳米流体npv =净现值epb =回收期pwm =脉宽调节q =传热率ds =十二烷基硫酸钠˙质量流量。=重量r =空气温度范围比=热容量比sem =扫描电子显微镜estem =扫描透射电子显微镜et =温度u =传热系数下标=a=空气=冷却度=入口=出口致谢使用IMU的仪器和设施进行sem分析。对泰克山发电机和艾琳电机的技术设备支持也表示感谢。披露声明作者未报告潜在的利益冲突。tugba Tetik拥有土耳其伊斯坦布尔技术大学机械工程博士学位。目前,她在伊斯坦布尔梅德涅耶特大学机械工程系担任研究助理。Mustafa Armagan,土耳其科卡埃利大学机械工程博士。他目前在伊斯坦布尔梅德涅耶特大学机械工程系担任助理教授。Emir Kasım DemirEmir Kasım Demir是土耳其伊斯坦布尔梅德尼耶特大学的博士候选人。他目前在土耳其伊斯坦布尔梅德尼耶特大学担任专家。altai Arbak拥有土耳其伊斯坦布尔技术大学机械工程博士学位。目前,她在伊斯坦布尔梅德涅耶特大学机械工程系担任研究助理。埃姆雷TeksanA。Emre Teksan持有土耳其埃格大学机械工程博士学位。他是一家能源公司的董事会成员,负责研发。Saban Pusat是Yıldız技术大学机械工程系机械工程副教授。他的研究方向为可再生能源、热力学等。yasin Karagoz目前在伊斯坦布尔梅德涅耶特大学机械工程系担任副教授。主要研究方向为汽车、能源、燃烧和冷却系统等。
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