Experimental Research on the Convective Condensation Heat Transfer of Tube Bundles in the Presence of Large Amount of Noncondensable Gas[J]. 2016, 50(5): 24-31.
DOI:
Experimental Research on the Convective Condensation Heat Transfer of Tube Bundles in the Presence of Large Amount of Noncondensable Gas[J]. 2016, 50(5): 24-31.DOI: 10.7652/xjtuxb201605004.
Experimental Research on the Convective Condensation Heat Transfer of Tube Bundles in the Presence of Large Amount of Noncondensable Gas
To achieve the highly efficient condensation heat transfer in the industry with large amount of noncondensable gas
an experimental system of convective condensation heat transfer for horizontal tube bundles containing air-vapor mixture was established. The methods using self-assembled monolayer coatings of n-octadecyl mercaptan and etching treatment were employed to create the hydrophobic and superhydrophobic surfaces. The convective condensation heat transfer performances of plain
2D finned and 3D finned horizontal tubes with different wettabilities were studied. The condensation behaviors on the surfaces and the flow patterns of the condensate between bundles were also observed. In the experiment
the effects of typical factors including the flow rate of cooling water
the flow rate of air-vapor mixture
and the volume fraction of water vapor on the convective condensation heat transfer characteristics were investigated. It is found that the droplet flow of condensate may be formed between the tube bundles in the presence of large amount of noncondensable gas. As the number of tube row increases
the convective condensation heat transfer coefficient increases correspondingly and the heat transfer enhancement effect of tube bundle is more significant. When the vapor volume fraction is about 11%
the convective condensation heat transfer coefficient of superhydrophobic plain tubes with 9 rows is 1.53 times of single row
and that of superhydrophobic plain tubes with 9 rows reduces to 1.34 times of single row when the vapor volume fraction reaches about 23%.
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