Investigation on a full-scale heat pipe heat exchanger in the ceramics industry for waste heat recovery

被引:87
作者
Jouhara, Hussam [1 ]
Bertrand, Delpech [1 ]
Axcell, Brian [1 ]
Montorsi, Luca [2 ]
Venturelli, Matteo [2 ]
Almahmoud, Sulaiman [3 ]
Milani, Massimo [1 ]
Ahmad, Lujean [1 ]
Chauhan, Amisha [1 ]
机构
[1] Brunel Univ London, Coll Engn Design & Phys Sci, Heat Pipe & Thermal Management Res Grp, Uxbridge UB8 3PH, Middx, England
[2] Univ Modena & Reggio Emilia, Dept Sci & Methods Engn, I-42122 Reggio Emilia, Italy
[3] Spirax Sarco Engn PLC, Cheltenham GL51 9NQ, Glos, England
基金
欧盟地平线“2020”;
关键词
Heat pipe heat exchanger; Heat pipes; Waste heat recovery; Ceramic industry; Computational fluid dynamics; NUMERICAL-ANALYSIS; CFD; FLOW; PERFORMANCE; EFFICIENCY; REDUCTION; EMISSIONS; DESIGN;
D O I
10.1016/j.energy.2021.120037
中图分类号
O414.1 [热力学];
学科分类号
摘要
The ceramics industry is the second largest energy consuming sector in Europe. The main energy used in the ceramics industry is heat generated through burners using natural gas. The main area can be identified in three stages, the drying stage and the firing stage, and the cooling stage. The firing stage represents about 75% of the total energy cost. The roller hearth kiln technology is considered to be the most cost-effective solution for ceramic tile manufacturing. The kiln is separated into two sections, the firing stage and the cooling stage. The cooling stage generates large amounts of waste heat as the exhaust of the kiln is composed of a challenging flue gas for heat recovery. The recovery of this heat in an efficient way with no cross contamination has been achieved with a heat pipe heat exchanger (HPHE) system, which was designed, manufactured and installed on a roller hearth kiln and is presented in this paper. The heat pipe heat exchanger located next to the cooling section exhaust stack managed to recover up to 100 kW at steady state without cross contamination or excess fouling. The return on investment of the system has been evaluated at 16 months with a saving of 30,000 pound per year. This paper will present a deep row by row theoretical analysis of the heat pipe heat exchanger. The Computational Fluids Dynamics will also be presented to investigate the fluid dynamics within the evaporator and condenser section. Both investigations have then been validated by the experimental investigation carried out on a full-scale industrial system. The design approach used in this paper will highlight the benefits of this type of technology and provide a guideline for the design of novel heat pipe heat exchangers. (c) 2021 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
引用
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页数:23
相关论文
共 49 条
[1]   A review on energy saving strategies in industrial sector [J].
Abdelaziz, E. A. ;
Saidur, R. ;
Mekhilef, S. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2011, 15 (01) :150-168
[2]   Energy saving technologies in the European ceramic sector: a systematic review [J].
Agrafiotis, C ;
Tsoutsos, T .
APPLIED THERMAL ENGINEERING, 2001, 21 (12) :1231-1249
[3]   Experimental and theoretical investigation on a radiative flat heat pipe heat exchanger [J].
Almahmoud, Sulaiman ;
Jouhara, Hussam .
ENERGY, 2019, 174 :972-984
[4]  
[Anonymous], 1995, IND MICROWAVE DRYING
[5]  
Beltran J., 1994, P WORKSHOP NEW TECHN
[6]  
Bergman T.L, 2011, Introduction to Heat Transfer
[7]   CFD applications in various heat exchangers design: A review [J].
Bhutta, Muhammad Mahmood Aslam ;
Hayat, Nasir ;
Bashir, Muhammad Hassan ;
Khan, Ahmer Rais ;
Ahmad, Kanwar Naveed ;
Khan, Sarfaraz .
APPLIED THERMAL ENGINEERING, 2012, 32 :1-12
[8]   An experimental study and computational validation of waste heat recovery from a lab scale ceramic kiln using a vertical multi-pass heat pipe heat exchanger [J].
Brough, Daniel ;
Mezquita, Ana ;
Ferrer, Salvador ;
Segarra, Carmen ;
Chauhan, Amisha ;
Almahmoud, Sulaiman ;
Khordehgah, Navid ;
Ahmad, Lujean ;
Middleton, David ;
Sewell, H. Isaac ;
Jouhara, Hussam .
ENERGY, 2020, 208
[9]  
Cao Eduardo., 2010, HEAT TRANSFER PROCES
[10]   Three-dimensional numerical model of heat losses from district heating network pre-insulated pipes buried in the ground [J].
Danielewicz, J. ;
Sniechowska, B. ;
Sayegh, M. A. ;
Fidorow, N. ;
Jouhara, H. .
ENERGY, 2016, 108 :172-184