1 |
Experimental study on droplet flow of falling film between horizontal tubes Liu SL, Shen SQ, Mu XS, Guo YL, Yuan DY International Journal of Multiphase Flow, 118, 10, 2019 |
2 |
Flow regime maps for smooth horizontal tubes at a constant heat flux Everts M, Meyer JP International Journal of Heat and Mass Transfer, 117, 1274, 2018 |
3 |
Fluid-to-fluid scaling criteria development for modeling high pressure steam condensation in horizontal tubes Khasawneh K, Jeong YH International Journal of Heat and Mass Transfer, 116, 1266, 2018 |
4 |
Flow behaviour of drop and jet modes of a laminar falling film on horizontal tubes Ding HB, Xie P, Ingham D, Ma L, Pourkashanian M International Journal of Heat and Mass Transfer, 124, 929, 2018 |
5 |
Experimental study of buoyancy effect and its criteria for heat transfer of supercritical R134a in horizontal tubes Tian R, Zhang Y, Ma YZ, Li H, Shi L International Journal of Heat and Mass Transfer, 127, 555, 2018 |
6 |
Forced convection condensation of steam in the presence of multicomponent noncondensable gases inside a horizontal tube Xu HQ, Gu HF, Sun ZN International Journal of Heat and Mass Transfer, 104, 1110, 2017 |
7 |
Heat-transfer from horizontal tube bundles into fluidized beds with Geldart A lignite particles Lechner S, Merzsch M, Krautz HJ Powder Technology, 253, 14, 2014 |
8 |
Condensation heat transfer on single horizontal smooth and finned tubes and tube bundles for R134a and propane Gebauer T, Al-Badri AR, Gotterbarm A, El Hajal J, Leipertz A, Froba AP International Journal of Heat and Mass Transfer, 56(1-2), 516, 2013 |
9 |
Heat-transfer from single horizontal tubes in fluidized beds: Influence of tube diameter, moisture and diameter-definition by Geldart C fines content Merzsch M, Lechner S, Krautz HJ Powder Technology, 235, 1038, 2013 |
10 |
Influence of two- and three-dimensional simulations on bubble behavior in gas-solid fluidized beds with and without immersed horizontal tubes Asegehegn TW, Schreiber M, Krautz HJ Powder Technology, 219, 9, 2012 |