Publication detail

Improving Oil Cooling Efficiency Using Polymeric Hollow Fibers

LANG, F. BARTULI, E. HVOŽĎA, J. KROULÍKOVÁ, T. BERAN, M. KUČERA, J.

Original Title

Improving Oil Cooling Efficiency Using Polymeric Hollow Fibers

Type

journal article in Scopus

Language

English

Original Abstract

Oil cooling plays a critical role across various industries, such as transformer cooling, automotive, computing, and aerospace. This study introduces an innovative approach to oil cooling, utilizing a thin-walled polymeric hollow fiber heat exchanger. Research mainly focuses on oil cooling in combustion engines, which represent one of the most widespread applications. The designed cooling system is highly adaptable for a wide range of applications. The presented solution offers an attractive alternative characterized by low energy consumption, reduced CO2 emissions, and high specific heat transfer performance. The innovative approach lies in the use of polymer hollow fibres instead of standard aluminium heat exchangers. This strategy also saves space in the engine compartment as the heat exchanger is located in the engine oil sump. This heat exchanger is manufactured from polyamide (PA612) with an outer fiber diameter of 1 mm. Despite the low thermal conductivity of PA612, the polymeric hollow fibre heat exchanger has low thermal resistance owing to its thin wall thickness of only 0.08 mm. The proposed solution underwent rigorous testing on a combustion engine test rig capable of simulating real-world engine operating conditions. The results show that the designed cooling system achieved thermal outputs up to almost 1250 W (with a water flow rate of 1.5 l·min-1 in the heat exchanger). The engine coolant temperatures did not exceed 83.5 °C, remaining within the standard limits. Thus, the proposed system fulfils its function as an oil cooling system.

Keywords

Polymeric hollow fiber, Heat exchanger, Oil cooler.

Authors

LANG, F.; BARTULI, E.; HVOŽĎA, J.; KROULÍKOVÁ, T.; BERAN, M.; KUČERA, J.

Released

4. 3. 2025

Publisher

Avestia Publishing

ISBN

2368-6111

Periodical

Journal of Fluid Flow, Heat and Mass Transfer

Year of study

12

Number

3

State

Canada

Pages from

83

Pages to

87

Pages count

5

URL

BibTex

@article{BUT197507,
  author="Filip {Lang} and Erik {Bartuli} and Jiří {Hvožďa} and Tereza {Kroulíková} and Martin {Beran} and Jiří {Kučera}",
  title="Improving Oil Cooling Efficiency Using Polymeric Hollow Fibers",
  journal="Journal of Fluid Flow, Heat and Mass Transfer",
  year="2025",
  volume="12",
  number="3",
  pages="83--87",
  doi="10.11159/jffhmt.2025.008",
  issn="2368-6111",
  url="https://jffhmt.avestia.com/2025/008.html"
}