[1] Zhao L, Guo L J, Bai B F, et al. Convective boiling heat transfer and two-phase flow characteristics inside a small horizontal helically coiled tubing once-through steam generator [J]. International Journal of Heat and Mass Transfer, 2003, 46(25): 4779-4788.
[2] Shao L, Xu Z C, Han J T, et al. Experimental investigations on two-phase flow boiling heat transfer of R134a in helically coiled tube [J]. Proceedings of the CSEE, 2011, 31(8): 62-66.(in Chinese)
[3] Gungor K E, Winterton R H S. A general correlation for flow boiling in tubes and annuli [J]. International Journal of Heat and Mass Transfer, 1986, 29(3): 351-358.
[4] Tran T N, Wambsganss M W, France D M. Small circular- and rectangular-channel boiling with two refrigerants [J]. International Journal of Multiphase Flow, 1996, 22(3):485-498.
[5] Chen J C. A correlation for boiling heat transfer to saturated fluids in convective flow [J].Industrial & Engineering Chemistry Process Design & Development, 1966, 5(3): 322-329.
[6] Liu Z, Winterton R H S. A general correlation for saturated and subcooled flow boiling in tubes and annuli, based on a nucleate pool boiling equation [J]. International Journal of Heat and Mass Transfer, 1991, 34(11): 2759-2766.
[7] Steiner D, Taborek J. Flow boiling heat transfer in vertical tubes correlated by an asymptotic model [J]. Heat Transfer Engineering, 1992, 13(2): 43-69.
[8] Bertsch S S, Groll E A, Garimella S V. A composite heat transfer correlation for saturated flow boiling in small channels [J]. International Journal of Heat and Mass Transfer, 2009, 52(7/8): 2110-2118.
[9] Chen C N, Han J T, Jen T C. Thermo-chemical characteristics of R134a flow boiling in helically coiled tubes at low mass flux and low pressure [J]. Thermochimica Acta, 2011, 512(1/2): 163-169.
[10] Elsayed A M, Al-Dadah R K, Mahmoud S, et al. Investigation of flow boiling heat transfer inside small diameter helically coiled tubes [J]. International Journal of Refrigeration, 2012, 35(8):2179-2187.
[11] Wongwises S, Polsongkram M. Evaporation heat transfer and pressure drop of HFC-134a in a helically coiled concentric tube-in-tube heat exchangers [J]. International Journal of Heat and Mass Transfer, 2006, 49(3/4): 658-670.
[12] Ghorbani N, Taherian H, Gorji M, et al. Experimental study of mixed convection heat transfer in vertical helically coiled tube heat exchangers [J]. Experimental Thermal and Fluid Science, 2010, 34(7): 900-905.
[13] Haruki N, Horibe A. Flow and heat transfer characteristics of ice slurries in a helically-coiled pipe [J]. International Journal of Refrigeration, 2013, 62(36):1285-1293.
[14] Wang W H, Chen Y P, Cao R B, et al. Analysis of secondary flow in shell-side channel of trisection helix heat exchangers[J]. Journal of Southeast University: English Edition, 2010, 26(3): 426-430.
[15] Chen C N, Han J T, Jen T C, et al. Dry-out CHF correlation for R134a flow boiling in a horizontal helically-coiled tube [J].International Journal of Heat and Mass Transfer, 2011, 154(3): 739-745.
[16] Shao L, Han J T, Wang M X, et al. Experimental investigation on flow patterns and pressure drop of R134a flow boiling in a horizontal helically coiled pipe [J]. Journal of Enhanced Heat Transfer, 2013, 20(3): 225-233.
[17] Cooper M G. Heat flow rates in saturated nucleate pool boiling — a wide-ranging examination using reduced properties [J]. Advances in Heat Transfer, 1984, 97: 157-239.
[18] Cui W Z, Li L J, Xin M D, et al. A heat transfer correlation of flow boiling in micro-finned helically coiled tube [J]. International Journal of Heat and Mass Transfer, 2006, 49(17/18): 2851-2858.