Polymer heat exchanger design for condensing boiler applications

被引:36
|
作者
Trojanowski, R. [1 ]
Butcher, T. [1 ]
Worek, M. [2 ]
Wei, G. [1 ]
机构
[1] Brookhaven Natl Lab, Sustainable Energy Technol Energy Convers Grp, POB 5000, Upton, NY 11901 USA
[2] Nexteer Automot, Saginaw, MI 48601 USA
关键词
Polymer; Heat Exchanger; Condensing; Composite; Boiler;
D O I
10.1016/j.applthermaleng.2016.03.004
中图分类号
O414.1 [热力学];
学科分类号
摘要
Condensing boilers achieve very high efficiency levels by recovering both sensible heat and water vapor latent heat from the flue gas. Research since the 1980's has focused on corrosion in such condensing heat exchangers related to the acidic condensate and material selection. Polymers in condensing heat exchangers have been considered to avoid the cost and corrosion concerns of metallic designs. Past efforts have shown that polymers offer the advantage of corrosion resistance and cost, however, lower thermal conductivity limited their application. More recent developments have introduced thermally conductive polymers which now offer promising conductivity values. This project focused on the evaluation of a thermally conductive polymer heat exchanger for this application. Computational fluid dynamic results indicated thermal conductivity values of stainless steel, a typical heat exchanger material, do not need to be achieved for similar heat transfer performance. An increase in thermal conductivity from about 10 times that of the base polymer can achieve an overall heat exchanger effectiveness similar to that achieved with stainless steel. A polymer compositethermal conductivity of approximately 2.5 W/m.K would be adequate. Thermally conductive polymer materials are now commercially available which offer values up to 20 W/m.K. In this work, one Nylon-12 and one thermally conductive polymer composite heat exchanger prototypes were constructed for a condensing boiler application. Tests demonstrated that good overall heat transfer performance was achieved. The lower thermal conductivity of the polymer heat exchanger will lead to higher surface temperatures and lower water condensation rates. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:150 / 158
页数:9
相关论文
共 50 条
  • [31] HEAT EXCHANGER DESIGN
    VISKANTA, R
    JOURNAL OF THE FRANKLIN INSTITUTE-ENGINEERING AND APPLIED MATHEMATICS, 1966, 281 (04): : 355 - &
  • [32] HEAT EXCHANGER DESIGN
    RAIA, EC
    MECHANICAL ENGINEERING, 1966, 88 (02) : 83 - &
  • [33] HEAT EXCHANGER DESIGN
    HUTCHINS.FD
    NUCLEONICS, 1966, 24 (05): : 70 - &
  • [34] HEAT EXCHANGER DESIGN
    SUNIEWSK.SE
    CHEMISTRY & INDUSTRY, 1966, (21) : 841 - &
  • [35] Study on Thermal Efficiency of Gas-Fired Vacuum Hot Water Boiler with Installing Flue Gas Condensing Waste-Heat Exchanger
    Pan, Zhixin
    Niu, Jiahui
    Lu, Chunping
    Zhang, Zhihong
    Zhu, Junjun
    2010 4TH INTERNATIONAL CONFERENCE ON BIOINFORMATICS AND BIOMEDICAL ENGINEERING (ICBBE 2010), 2010,
  • [36] Numerical and experimental investigation of flue gases heat recovery via condensing heat exchanger
    Machackova, Adela
    Kocich, Radim
    Bojko, Marian
    Kuncicka, Lenka
    Polko, Krzysztof
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2018, 124 : 1321 - 1333
  • [37] CONDENSING HEAT-EXCHANGER CAPTURES FLUE-GAS LATENT-HEAT
    VANHOVEN, E
    POWER, 1984, 128 (02) : 126 - 126
  • [38] Thermal performance of heat and water recovery systems: Role of condensing heat exchanger material
    Mohammadaliha, Negar
    Amani, Mohammad
    Bahrami, Majid
    CLEANER ENGINEERING AND TECHNOLOGY, 2020, 1
  • [39] Increasing the efficiency of the condensing boiler
    Zaytsev, O. N.
    Lapina, E. A.
    INTERNATIONAL CONFERENCE PROBLEMS OF THERMAL PHYSICS AND POWER ENGINEERING (PTPPE-2017), 2017, 891
  • [40] Increasing the efficiency of the condensing boiler
    Zaytsev, O. N.
    Lapina, E. A.
    INTERNATIONAL CONFERENCE PROBLEMS OF THERMAL PHYSICS AND POWER ENGINEERING (PTPPE-2017), 2017, 891