Temperature-dependent burst failure of polymeric hollow fibers used in heat exchangers

被引:5
|
作者
Bulejko, Pavel [1 ]
Bartuli, Erik [1 ]
Kudelova, Tereza [1 ]
Vancura, Jan [2 ]
机构
[1] Brno Univ Technol, Heat Transfer & Fluid Flow Lab, Fac Mech Engn, Tech 2, Brno 61669, Czech Republic
[2] Brno Univ Technol, Fac Mech Engn, Inst Automot Engn, Tech 2, Brno 61669, Czech Republic
关键词
Hollow fibers; Burst pressure; Heat exchanger; Modelling; TRANSITION-TEMPERATURES; MECHANICAL-PROPERTIES; PRESSURE PREDICTION; AMORPHOUS POLYMERS; TENSILE BEHAVIOR; WIDE-RANGE; YIELD; SEPARATION; COMPRESSION; STRESS;
D O I
10.1016/j.engfailanal.2021.105895
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This work analyzes resistance of polyamide hollow fibers used for heat exchangers against extremely high pressures. Hollow fibers made of five different commercially available polyamides and one type of polyphenylene sulfide were tested at different temperatures ranging from -40 to 160 degrees C. After getting the fiber to the required temperature, pressure from a nitrogen vessel was gradually applied to the lumen side of a fiber until the fiber rupture. The results obtained for different polymers were then analyzed using various burst pressure models used to predict pressure durability of pipelines. The result showed decreasing burst pressure of polyamide fibers mostly from 100 bars to about 50 bars with increasing temperature from -40 to 160 degrees C. This was contrary to polyphenylene sulfide, which increased from 30 to about 60 bars in the same temperature range. The theoretical models were in a strong disagreement with experimental data and the results fluctuated significantly. However, the fibers showed outstanding durability against rupture no matter of the temperature, since the lowest burst pressure was about 40 bars at 160 degrees C. From the point of view of practical usability of polymeric hollow-fiber heat exchangers in automotive, the results indicate the polymeric fibers are able to operate at a wide range of conditions characterized by extreme temperature and pressure fluctuations typical for a car radiator.
引用
收藏
页数:16
相关论文
共 36 条
  • [21] The molecular mechanism of temperature-dependent phase separation of heat shock factor 1
    Ren, Qiunan
    Li, Linge
    Liu, Lei
    Li, Juan
    Shi, Chaowei
    Sun, Yujie
    Yao, Xuebiao
    Hou, Zhonghuai
    Xiang, Shengqi
    NATURE CHEMICAL BIOLOGY, 2025, : 831 - 842
  • [22] Temperature-dependent structure-property relations in continuous mullite-based ceramic fibers
    Reinders, Leonie
    Birkenstock, Johannes
    Pfeifer, Stephanie
    Clauss, Bernd
    Buchmeiser, Michael R.
    CERAMICS INTERNATIONAL, 2024, 50 (11) : 19048 - 19059
  • [23] A simplified method of calculating heat flow through a heat exchanger with a significantly temperature-dependent specific heat of heat transfer fluids
    Frid, S. E.
    APPLIED THERMAL ENGINEERING, 2024, 257
  • [24] A general model for the temperature-dependent deformation and tensile failure of photo-cured polymers
    Zhao, Zeang
    Lei, Ming
    Zhang, Qiang
    Chen, Hao-Sen
    Fang, Daining
    EXTREME MECHANICS LETTERS, 2020, 39
  • [25] Temperature-dependent pinned joint tensile behavior and failure analysis of CF/PEKK composites
    Li, Xiaoqi
    Kumar, Sanjay
    Hwang, Dong-Wook
    Kim, Yun-Hae
    MODERN PHYSICS LETTERS B, 2025, 39 (04):
  • [26] Potential Contributions of Heat Shock Proteins to Temperature-Dependent Sex Determination in the American Alligator
    Kohno, S.
    Katsu, Y.
    Urushitani, H.
    Ohta, Y.
    Iguchi, T.
    Guillette, L. J., Jr.
    SEXUAL DEVELOPMENT, 2010, 4 (1-2) : 73 - 87
  • [27] HEAT-UP AND COOL-DOWN TEMPERATURE-DEPENDENT HYDRIDE REORIENTATION BEHAVIORS IN ZIRCONIUM ALLOY CLADDING TUBES
    Won, Ju-Jin
    Kim, Myeong-Su
    Kim, Kyu-Tae
    NUCLEAR ENGINEERING AND TECHNOLOGY, 2014, 46 (05) : 681 - 688
  • [28] Influences of temperature-dependent thermal conductivity on surface heat flow near major faults
    So, Byung-Dal
    Yuen, David A.
    GEOPHYSICAL RESEARCH LETTERS, 2013, 40 (15) : 3868 - 3872
  • [29] Theoretical models and influencing factor analysis for the temperature-dependent tensile strength of ceramic fibers and their unidirectional composites
    Shao, Jiaxing
    Li, Weiguo
    Deng, Yong
    Ma, Jianzuo
    Zhang, Xianhe
    Geng, Peiji
    Kou, Haibo
    Chen, Liming
    Wu, Xiaozhi
    COMPOSITE STRUCTURES, 2017, 164 : 23 - 31
  • [30] Temperature-dependent shear correction factor with heat transfer based on micromechanical properties for FGM plates
    Lee, Sangheon
    Lim, Tae-Kyung
    Kim, Jung-Hwan
    Kim, Ji-Hwan
    THIN-WALLED STRUCTURES, 2022, 181