Pressure Effect on Nucleate Boiling and Critical Heat Flux of R1233zd(E) on a Smooth Copper Surface

Влияние давления на пузырьковое кипение и критический тепловой поток хладагента R1233zd(E) на гладкой медной поверхности
Mina Kerolos, Mohamed M. Mahmoud, Tassos G. Karayiannis
2025-04-01

R1233zd(E)critical heat fluxheat transfer coefficientnucleate pool boilingpressure effect
This study examines the impact of pressure on the nucleate pool boiling performance of the sustainable refrigerant R1233zd(E), with a focus on the Heat Transfer Coefficient (HTC) and Critical Heat Flux (CHF).Experiments on a smooth copper surface with an average roughness (Ra) of 0.03 m, under pressures of 1 to 2.5 bar reveal that both HTC and CHF improve with increasing pressure due to greater nucleation site density, smaller bubble sizes, and higher detachment frequencies.However, the HTC enhancement with pressure is not constant in the range studied.Comparison with existing HTC correlations and CHF models shows partial agreement, highlighting the need for correlations based on a bank of data covering a wider range of fluids.The results facilitate the use of R1233zd(E) in energy-efficient thermal systems and sustainable heat transfer technologies.
1
Existing heat-transfer and critical-heat-flux correlations show only partial agreement with the measurements, indicating a need for broader fluid-based datasets.
2
Heat-transfer-coefficient enhancement is not constant across the investigated pressure range.
3
Increasing pressure from 1 to 2.5 bar improves both nucleate pool-boiling heat transfer coefficient and critical heat flux for R1233zd(E) on smooth copper.
4
The findings support applying R1233zd(E) in energy-efficient thermal systems and sustainable heat-transfer technologies.
5
The improvements are attributed to greater nucleation-site density, smaller bubbles, and higher bubble-detachment frequencies at elevated pressure.

Nucleate pool boiling of the sustainable refrigerant R1233zd(E) on a smooth copper surface at pressures of 1–2.5 bar

The pressure-dependent heat transfer performance, specifically the Heat Transfer Coefficient (HTC) and Critical Heat Flux (CHF), including associated bubble nucleation and detachment behavior

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2025-04-01
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Mina Kerolos
Mohamed M. Mahmoud
Tassos G. Karayiannis
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