Experimental analysis to predict the performance of a plate fin heat exchanger at cryogenics temperature

被引:0
|
作者
Gupta A.K. [1 ]
Kumar M. [1 ]
Panda D. [1 ]
Sahoo R.K. [1 ]
机构
[1] Cryogenics Engineering Laboratory, Department of Mechanical Engineering, NIT, Rourkela
来源
Kumar, Manoj (manoj526beg@hotmail.com) | 2018年 / Lavoisier卷 / 17期
关键词
Aspen; Experimental study; Plate-fin heat exchanger;
D O I
10.3166/I2M.17.315-329
中图分类号
学科分类号
摘要
The objective of this study is to provide experimental data that could be used to predict the effectiveness and performance of a plate fin heat exchange for low-temperature conditions. In this study, plate-fin heat exchangers are tested with a variation of the mass flow rate. Such heat exchangers have high fin density and offer narrow passages for the fluid flow, which often leads to a significant pressure drop. An experimental setup is made in the laboratory to test the plate fin heat exchanger at cryogenic temperature. In this setup, compressed nitrogen gas will be passed through the plate-fin heat exchanger as a hot stream. The hot stream gas will be passed through a liquid nitrogen coil heat exchanger to cool the high-pressure gas. The cold gas is then passed as a reverse stream of the plate fin heat exchanger. The experimental setup is mounted to the measurement instrument like RTDs, Pressure gauge, Differential pressure gauge, Orifice plate flow meter, etc. The effectiveness of heat exchange will be calculated from the measured temperatures directly from the experiment. Also, the temperature drop will be obtained from the analyses. The effectiveness and temperature drop data are also obtained through numerical analysis and validate it with experimental results. © 2018 Lavoisier.
引用
收藏
页码:315 / 329
页数:14
相关论文
共 50 条
  • [31] A hybrid approach to plate fin-tube heat exchanger analysis
    Bash, CE
    2000 HD INTERNATIONAL CONFERENCE ON HIGH-DENSITY INTERCONNECT AND SYSTEMS PACKAGING, 2000, 4217 : 40 - 48
  • [32] Numerical analysis of steady state and transient analysis of high temperature ceramic plate-fin heat exchanger
    Nagarajan, Vijaisri
    Chen, Yitung
    Wang, Qiuwang
    Ma, Ting
    NUCLEAR ENGINEERING AND DESIGN, 2014, 277 : 76 - 94
  • [33] COMPREHENSIVE PERFORMANCE INVESTIGATION AND OPTIMIZATION OF A PLATE FIN HEAT EXCHANGER WITH WAVY FINS
    Cui, Mengmeng
    Song, Rui
    THERMAL SCIENCE, 2022, 26 (03): : 2261 - 2273
  • [34] NUMERICAL INVESTIGATION OF THE PERFORMANCE OF PERFORATED BAFFLES IN A PLATE-FIN HEAT EXCHANGER
    Ameur, Houari
    Sahel, Djamel
    Menni, Younes
    THERMAL SCIENCE, 2021, 25 (05): : 3629 - 3641
  • [35] Influence of fins designs, geometries and conditions on the performance of a plate-fin heat exchanger-experimental perspective
    Ma'arof, M. I. N.
    Chala, Girma T.
    Husain, Hazran
    Mohamed, Muhammad S. S.
    JOURNAL OF MECHANICAL ENGINEERING AND SCIENCES, 2019, 13 (01) : 4368 - 4379
  • [36] Experimental analysis of heat transfer coefficient in the plate heat exchanger
    Selbas, Resat
    ENERGY EDUCATION SCIENCE AND TECHNOLOGY PART A-ENERGY SCIENCE AND RESEARCH, 2011, 27 (02): : 367 - 374
  • [37] Performance Analysis and Multi-Objective Optimization of an Offset Plate-Fin Crossflow Heat Exchanger
    Bassily, Ashraf Maurice
    Ghazy, Ahmed
    JOURNAL OF THERMOPHYSICS AND HEAT TRANSFER, 2025, 39 (01) : 199 - 215
  • [38] The Second Law Analysis of Thermodynamics for the Plate-Fin Surface Performance in a Cross Flow Heat Exchanger
    Khalaji, Mansour Nasiri
    Kotcioglu, Isak
    Caliskan, Sinan
    Cansiz, Ahmet
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2019, 141 (01):
  • [39] Effect of fin spacing on convection in a plate fin and tube heat exchanger
    Romero-Méndez, R
    Sen, M
    Yang, KT
    McCclain, R
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2000, 43 (01) : 39 - 51
  • [40] Analysis of heat and resistance performance of plate fin-and-tube heat exchanger with rectangle-winglet vortex generator
    Qian, Zuoqin
    Wang, Qiang
    Cheng, Junlin
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2018, 124 : 1198 - 1211