Experimental investigation on the thermal performance of cooling pipes embedded in a graphitization furnace

被引:5
作者
Shen, Chong [1 ]
Zhang, Maoyong [2 ]
Li, Xianting [1 ]
机构
[1] Tsinghua Univ, Dept Bldg Sci, Beijing Key Lab Indoor Air Qual Evaluat & Control, Beijing, Peoples R China
[2] Beijing Qingdatiangong Energy Technol Res Inst, Beijing, Peoples R China
基金
中国国家自然科学基金;
关键词
Graphitization furnace; Waste heat recovery; Mechanical cooling; Energy conservation; Cooling pipes; WASTE-HEAT-RECOVERY; ENERGY-CONSUMPTION; BLAST-FURNACE; CO2; EMISSIONS; COKE; EFFICIENCY; GRAPHITE; INDUSTRY; SLAGS;
D O I
10.1016/j.energy.2016.12.131
中图分类号
O414.1 [热力学];
学科分类号
摘要
A system of embedding pipes in the graphitization furnace to recover heat and accelerate cooling was proposed recently. Numerical study has shown the potential of this approach, but it has not been applied and evaluated in the real environment. Hence in this study, the practical requirements of the pipe embedded system are discussed, and alternative solutions are proposed and compared. The heat recovery and cooling effect of the modified system is experimentally investigated through a complete heating and cooling process. The influence of fan frequency and external insulation is discussed. The safety of pipes is checked. The results show that: (1) the improved system functions well in the practical condition and the highest temperature of the pipes is 1100 degrees C and in a safe range; (2) in total 28.2% of the heating energy is recovered and one third of the cooling time is saved, and a high fan frequency will lead to both a high heat recovery rate and high fan energy consumption, but the recovered heat is much higher than the fan power; (3) the top surface takes up 67% of the total heat dissipation and the external insulation can reduce half of the heat dissipation in the heating period. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:55 / 65
页数:11
相关论文
共 27 条
  • [1] Energy recovery from high temperature slags
    Barati, M.
    Esfahani, S.
    Utigard, T. A.
    [J]. ENERGY, 2011, 36 (09) : 5440 - 5449
  • [2] Fujii H., 1982, US Patent, Patent No. [US4350326A, 4350326]
  • [3] Graphite crystals in blast furnace coke
    Gornostayev, Stanislav S.
    Harkki, Jouko J.
    [J]. CARBON, 2007, 45 (06) : 1145 - 1151
  • [4] Coke graphitization and degradation across the tuyere regions in a blast furnace
    Gupta, Sushil
    Ye, ZhuoZhu
    Kanniala, Riku
    Kerkkonen, Olavi
    Sahajwalla, Veena
    [J]. FUEL, 2013, 113 : 77 - 85
  • [5] Design and evaluation of a heat recuperator for steel slags
    Gutierrez Trashorras, Antonio J.
    Alvarez Alvarez, Eduardo
    Rio Gonzalez, Jose Luis
    Suarez Cuesta, Jose Manuel
    Xiberta Bernat, Jorge
    [J]. APPLIED THERMAL ENGINEERING, 2013, 56 (1-2) : 11 - 17
  • [6] Coke powder heat-treated with boron oxide using an Acheson furnace for lithium battery anodes
    Hamada, T
    Suzuki, K
    Kohno, T
    Sugiura, T
    [J]. CARBON, 2002, 40 (13) : 2317 - 2322
  • [7] A review of different heat exchangers designs for increasing the diesel exhaust waste heat recovery
    Hatami, M.
    Ganji, D. D.
    Gorji-Bandpy, M.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2014, 37 : 168 - 181
  • [8] Reducing energy consumption and CO2 emissions by energy efficiency measures and international trading: A bottom-up modeling for the US iron and steel sector
    Karali, Nihan
    Xu, Tengfang
    Sathaye, Jayant
    [J]. APPLIED ENERGY, 2014, 120 : 133 - 146
  • [9] Kothandaraman C.P., 2006, FUNDAMENTALS HEAT MA
  • [10] Making the Heat-Insulating Charge of Acheson Graphitization Furnaces More Efficient
    Kutuzov, S. V.
    Buryak, V. V.
    Derkach, V. V.
    Panov, E. N.
    Karvatskii, A. Ya.
    Vasil'chenko, G. N.
    Leleka, S. V.
    Chirka, T. V.
    Lazarev, T. V.
    [J]. REFRACTORIES AND INDUSTRIAL CERAMICS, 2014, 55 (01) : 15 - 16