Evaluation of a Thermosyphon Heat Pipe Operation and Application in a Waste Heat Recovery System

被引:31
作者
Barzi, Y. M. [1 ]
Assadi, M. [1 ]
机构
[1] Univ Stavanger, Fac Sci & Technol, Dept Petr Engn, N-4036 Stavanger, Norway
关键词
heat pipe; heat recovery; non-condensable gas; numerical simulation; thermosyphon; 2-PHASE CLOSED THERMOSIPHON; FILLING RATIO; PERFORMANCE;
D O I
10.1080/08916152.2014.913089
中图分类号
O414.1 [热力学];
学科分类号
摘要
Efficient and economical utilization of industrial waste heat would result in reduced energy use and thereby contribute to reduction of greenhouse gas emissions to the atmosphere. Two-phase thermosyphon technology has demonstrated the potential capability for waste heat recovery, but it has not been yet utilized in large-scale industrial applications. As a part of an industrial project, various types of thermosyphon heat pipes have been designed and tested for extraction of waste heat and process control in aluminum industry. This article presents the heat and mass transfer model, developed to provide a fast and accurate simulation tool for industrial application of thermosyphon heat pipe technology for waste heat utilization. The mathematical model considers the energy, momentum, and mass transfer equations, in their one-dimensional form, to predict output parameters of the thermosyphon and enable parametric and sensitivity analysis. The mathematical model structure is set up in a way that the least numerical cost and time is spent while the model accuracy is kept at acceptable level for the defined application. To provide experimental data for validation of the simulation model, the proposed thermosyphon was tested experimentally using a test set-up instrumented for this purpose. The simulation results are found to be in good agreement with the experimental data. The developed model and code are viable to be used as a simple and fast tool for modeling, design, and optimization of the thermosyphon as an element in a heat recovery module.
引用
收藏
页码:493 / 510
页数:18
相关论文
共 16 条
[1]   CFD modeling of flow and heat transfer in a thermosyphon [J].
Alizadehdakhel, Asghar ;
Rahimi, Masoud ;
Alsairafi, Ammar Abdulaziz .
INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2010, 37 (03) :312-318
[2]   A review of heat pipe systems for heat recovery and renewable energy applications [J].
Chaudhry, Hassam Nasarullah ;
Hughes, Ben Richard ;
Ghani, Saud Abdul .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2012, 16 (04) :2249-2259
[3]  
Faghri Amir., 1995, HEAT PIPE SCI TECHNO
[4]  
Glover G. A. S., 1986, THESIS CALIFORNIA NA
[5]   Investigation on the effect of filling ratio on the steady-state heat transfer performance of a vertical two-phase closed thermosyphon [J].
Jiao, B. ;
Qiu, L. M. ;
Zhang, X. B. ;
Zhang, Y. .
APPLIED THERMAL ENGINEERING, 2008, 28 (11-12) :1417-1426
[6]   Determination of the operation range of a vertical two-phase closed thermosyphon [J].
Jiao, B. ;
Qiu, L. M. ;
Gan, Z. H. ;
Zhang, X. B. .
HEAT AND MASS TRANSFER, 2012, 48 (06) :1043-1055
[7]   Thermal performance of a two-phase closed thermosyphon for waste heat recovery system [J].
Kannan M. ;
Natarajan E. .
Journal of Applied Sciences, 2010, 10 (05) :413-418
[8]  
Kelleher M. D., 1977, 7576 FY NAV POSTGR S
[9]   Effect of inclination angle and filling ratio on thermal performance of a two-phase closed thermosyphon under normal operating conditions [J].
Noie, S. H. ;
Emami, M. R. Sarmasti ;
Khoshnoodi, M. .
HEAT TRANSFER ENGINEERING, 2007, 28 (04) :365-371
[10]   Condensation heat transfer characteristics and concept of sub-flooding limit in a two-phase closed thermosyphon [J].
Pan, Y .
INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2001, 28 (03) :311-322