New flow boiling frictional pressure drop multipliers for smooth and microfin tubes

Author:

Celen Ali1,Dalkılıç Ahmet Selim2ORCID

Affiliation:

1. Department of Mechanical Engineering , Thermodynamics Division, Faculty of Engineering and Architecture, Erzincan Binali Yildirim University , Erzincan 24100 , Turkey

2. Department of Mechanical Engineering , Heat and Thermodynamics Division, Faculty of Mechanical Engineering, Yildiz Technical University, Yildiz, Besiktas , Istanbul 34349 , Turkey

Abstract

Abstract The accurate calculation of pressure drop of evaporators/condensers are crucial and related with the pumping power, performance coefficient and energy consumption in a refrigeration equipment. This work aligns frictional pressure drop models/correlations with the experimental outcomes of boiling pressure drop of R134a in horizontal smooth and microfin copper tubes with equivalent outer diameter of 9.52 mm. The pressure drop through the test tube is obtained with a differential pressure transducer directly. Effective parameters are specified for smooth and microfin tubes and the most compatible models/correlations, 12 for smooth tubes and 9 for microfin ones, are determined accurately in relation to the consequences of investigation during intermittent and annular flow regime. Moreover, new two-phase multipliers have been developed by using regression analyses of 182 data points based on Lockhart-Martinelli parameter for each test tubes separately, and their predictability are found to be better than others in the literature as novel ones. Average errors of the developed empirical correlations are 11% for smooth and for 7% for microfin tubes. Finally, the measured data is given for the validation issues of researchers who can benefit from most of the investigated pressure drop models with tolerable accuracy regarding with their HEX design analyses.

Funder

Yildiz Teknik Ãœniversitesi

Publisher

Walter de Gruyter GmbH

Subject

Safety, Risk, Reliability and Quality,General Materials Science,Nuclear Energy and Engineering,Nuclear and High Energy Physics,Radiation

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