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Optimizing the thermal performance of a double-pipe heat exchanger using twisted tapes with variable cuts and Fe3O4 nanofluid
被引:0
|作者:
Varma, K. P. V. Krishna
[1
]
Naveen, N. S.
[2
]
Kishore, P. S.
[3
]
Pujari, Satish
[2
]
Jogi, Krishna
[4
]
Raju, V. Dhana
[5
]
机构:
[1] Raghu Engn Coll, Dept Mech Engn, Visakhapatnam 531162, Andhra Pradesh, India
[2] Lendi Inst Engn & Technol A, Dept Mech Engn, Vizianagaram 535005, Andhra Pradesh, India
[3] Andhra Univ, Andhra Univ Coll Engn A, Dept Mech Engn, Visakhapatnam 530003, India
[4] Rise Krishna Sai Prakasam Grp Inst, Dept Mech Engn, Ongole 523272, Andhra Pradesh, India
[5] Lakireddy Balireddy Coll Engn A, Dept Mech Engn, Mylavaram 521230, Andhra Pradesh, India
来源:
JOURNAL OF THERMAL ENGINEERING
|
2024年
/
10卷
/
05期
关键词:
ANN;
Cut Twisted Tapes;
Friction Factor;
Nanofluid;
Nusselt Number;
Reynolds Number;
Taguchi;
IRON-OXIDE NANOFLUIDS;
FRICTION FACTOR;
CIRCULAR TUBE;
MASS-TRANSFER;
ENHANCEMENT;
INSERTS;
FLOW;
D O I:
10.14744/thermal.0000860
中图分类号:
O414.1 [热力学];
学科分类号:
摘要:
This research work aims to optimize double pipe heat exchanger performance using Taguchi, ANOVA, and ANN. Experimental trials involved varying ferric oxide nanoparticles, cut radius, and volume-based flow rate. Twisted tapes with ratios of 3, 5, and 7 were placed within the tube. Assessed heat transfer characteristics included h, Nu, ff, and thermal performance factor. Taguchi, ANOVA, and ANN optimization techniques were applied to the experimental data. A Taguchi optimization using an L9 orthogonal array focused on input attributes (Vol % of nanoparticles, flow rate, radius of cut), with output attributes being heat transfer co-efficient (h), Nusselt number (Nu), friction factor(ff) and thermal performance factor. Results revealed a notable flow rate effect on enhancing h, Nu, and ff, while the addition of nanoparticles significantly influenced thermal performance. Taguchi and ANOVA were conducted using MINI Tab and ANN was implemented through MATLAB. Test data demonstrated that nanoparticle dispersants in nanofluid significantly improved heat transfer properties, consistent with the noteworthy improvement indicated by optimization techniques. The convective heat transfer coefficient parameter showed improvement with a coolant flow rate of 50.29% and a volume of nanoparticles at 27.32%. The enhancement of Nusselt number (Nu) was influenced by a coolant flow rate of 50.34% and a volume percent of nanoparticles at 34.25%. The thermal performance factor was significantly influenced by the volume percent of nanoparticles (79.75%) and the radius of cut (3.83%).The experimental data aligned well with findings from Taguchi and ANN.
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页码:1184 / 1197
页数:14
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