1 |
Sepehr M, Hashemi S S, Rahjoo M, et al. Prediction of heat transfer, pressure drop and entropy generation in shell and helically coiled finned tube heat exchangers[J]. Chemical Engineering Research and Design, 2018, 134: 277-291.
|
2 |
Wang G, Wang D, Peng X, et al. Experimental and numerical study on heat transfer and flow characteristics in the shell side of helically coiled trilobal tube heat exchanger[J]. Applied Thermal Engineering, 2019, 149: 772-787.
|
3 |
Gou J, Ma H, Yang Z, et al. An assessment of heat transfer models of water flow in helically coiled tubes based on selected experimental datasets[J]. Annals of Nuclear Energy, 2017, 110:648-667.
|
4 |
Bersano A, Falcone N, Bertani C, et al. Conceptual design of a bayonet tube steam generator with heat transfer enhancement using a helical coiled downcomer[J]. Progress in Nuclear Energy, 2018, 108: 243-252.
|
5 |
李京瑶, 公茂琼, 汤奇雄, 等. 小型LNG装置缠绕管换热器的设计[J]. 化工学报, 2015, 66: 108-115.
|
|
Li J Y, Gong M Q, Tang Q X, et al. Design of coiled-wound heat exchanger in small plant of LNG[J]. CIESC Journal, 2015, 66: 108-115.
|
6 |
薛佳幸. 缠绕管式换热器换热工艺研究[D]. 兰州: 兰州交通大学, 2015.
|
|
Xue J X. Research on heat transfer process of coil-wound heatexchangers[D]. Lanzhou: Lanzhou Jiaotong University, 2015.
|
7 |
Hardik B K, Baburajan P K, Prabhu S V. Local heat transfer coefficient in helical coils with single phase flow[J]. International Journal of Heat and Mass Transfer, 2015, 89: 522-538.
|
8 |
丁超, 胡海涛, 丁国良, 等. 运行工况对LNG绕管式换热器壳侧换热特性的影响[J]. 化工学报, 2018, 69(6): 2417-2423.
|
|
Ding C, Hu H T, Ding G L, et al. Influences of working conditions on heat transfer characteristics in shell side of LNG spiral wound heat exchangers[J]. CIESC Journal, 2018, 69(6): 2417-2423.
|
9 |
Zeng M, Zhang G, Li Y, et al. Geometrical parametric analysis of flow and heat transfer in the shell side of a spiral-wound heat exchanger[J]. Heat Transfer Engineering, 2015, 36(9): 790-805.
|
10 |
Xu X, Liu C, Dang C, et al. Experimental investigation on heat transfer characteristics of supercritical CO2 cooled in horizontal helically coiled tube[J]. International Journal of Refrigeration, 2016, 67: 190-201.
|
11 |
Kumar V, Saini S, Sharma M, et al. Pressure drop and heat transfer study in tube-in-tube helical heat exchanger[J]. Chemical Engineering Science, 2006, 61(13): 4403-4416.
|
12 |
Reddy K V K, Kumar B S P, Gugulothu R, et al. CFD analysis of a helically coiled tube in tube heat exchanger[J]. Materials Today: Proceedings, 2017, 4(2): 2341-2349.
|
13 |
Andrzejczyk R, Muszynski T, Gosz M. Experimental investigations on heat transfer enhancement in shell coil heat exchanger with variable baffles geometry[J]. Chemical Engineering and Processing - Process Intensification, 2018, 132: 114-126.
|
14 |
Sharma L, Nigam K D P, Roy S. Single phase mixing in coiled tubes and coiled flow inverters in different flow regimes[J]. Chemical Engineering Science, 2017, 160: 227-235.
|
15 |
高兴辉, 周帼彦, 涂善东. 缠绕管式换热器壳程强化传热性能影响因素分析[J]. 化工学报, 2019, 70(7): 2456-2471.
|
|
Gao X H, Zhou G Y, Tu S D. Study on effects of structural parameters on shell-side heat transfer enhancement in spiral wound heat exchangers[J]. CIESC Journal, 2019, 70(7): 2456-2471.
|
16 |
Babita, Sharma S K, Gupta S M, et al. Hydrodynamic studies of CNT nanofluids in helical coil heat exchanger[J]. Materials Research Express, 2017, 4(12): 124002.
|
17 |
Greenspan D. Secondary flow in a curved tube[J]. Journal of Fluid Mechanics, 1973, 57: 167-176.
|
18 |
Ju H, Huang Z, Xu Y, et al. Hydraulic performance of small bending radius helical coil-pipe[J]. Journal of Nuclear Science and Technology, 2001, 38(10): 826-831.
|
19 |
Jayakumar J S, Mahajani S M, Mandal J C, et al. CFD analysis of single-phase flows inside helically coiled tubes[J]. Computers & Chemical Engineering, 2010, 34(4): 430-446.
|
20 |
Guo L, Feng Z, Chen X. An experimental investigation of the frictional pressure drop of steam-water two-phase flow in helical coils[J]. International Journal of Heat and Mass Transfer, 2001, 44(14): 2601-2610.
|
21 |
Zhu H, Li Z, Yang X, et al. Flow regime identification for upward two-phase flow in helically coiled tubes[J]. Chemical Engineering Journal, 2017, 308: 606-618.
|
22 |
Chen H, Zhang B. Fluid flow and mixed convection heat transfer in a rotating curved pipe[J]. International Journal of Thermal Sciences, 2003, 42(11): 1047-1059.
|
23 |
Hashemi S M, Akhavan-Behabadi M A. An empirical study on heat transfer and pressure drop characteristics of CuO–base oil nanofluid flow in a horizontal helically coiled tube under constant heat flux[J]. International Communications in Heat and Mass Transfer, 2012, 39(1): 144-151.
|
24 |
Moosavi A, Abbasalizadeh M, Sadighi D H. Optimization of heat transfer and pressure drop characteristics via air bubble injection inside a shell and coiled tube heat exchanger[J]. Experimental Thermal and Fluid Science, 2016, 78: 1-9.
|
25 |
Bolinder C J, Bengt S. Numerical prediction of laminar flow and forced convective heat transfer in a helical square duct with a finite pitch[J]. International Journal of Heat and Mass Transfer, 1996, 39(15): 3101-3115.
|
26 |
Manlapaz R L, Churchill S W. Fully developed laminar flow in a helically coiled tube of finite pitch[J]. Chemical Engineering Communications, 2007, 7(1/2/3): 57-78.
|
27 |
Shiva K, Karanth K V. Numerical analysis of a helical coiled heat exchanger using CFD[J]. International Journal of Thermal Technologies, 2013, 3(4): 126-130.
|
28 |
Zhang C, Wang D, Xiang S, et al. Numerical investigation of heat transfer and pressure drop in helically coiled tube with spherical corrugation[J]. International Journal of Heat and Mass Transfer, 2017, 113: 332-341.
|
29 |
Hüttl T J, Wagner C, Friedrich R. Navier-Stokes solutions of laminar flows based on orthogonal helical co-ordinates[J]. International Journal for Numerical Methods in Fluids, 1999, 29(7): 749-763.
|
30 |
Andrade C R, Zaparoli E L. Effects of temperature-dependent viscosity on fully developed laminar forced convection in a curved duct[J]. International Communications in Heat and Mass Transfer, 2001, 28(2): 211-220.
|
31 |
Sheeba A, Abhijith C M, Jose P M. Experimental and numerical investigations on the heat transfer and flow characteristics of a helical coil heat exchanger[J]. International Journal of Refrigeration, 2019, 99: 490-497.
|
32 |
Wang M, Zheng M, Chao M, et al. Experimental and CFD estimation of single-phase heat transfer in helically coiled tubes[J]. Progress in Nuclear Energy, 2019, 112: 185-190.
|
33 |
Wang K, Xu X, Wu Y, et al. Numerical investigation on heat transfer of supercritical CO2 in heated helically coiled tubes[J]. The Journal of Supercritical Fluids, 2015, 99: 112-120.
|
34 |
Mirgolbabaei H. Numerical investigation of vertical helically coiled tube heat exchangers thermal performance[J]. Applied Thermal Engineering, 2018, 136: 252-259.
|
35 |
Haryoko L A F, Kurnia J C, Sasmito A P. Numerical investigation of subcooled boiling heat transfer in helically-coiled tube[J]. International Journal of Automotive and Mechanical Engineering, 2020, 17(1): 7675-7686.
|
36 |
Lin C X, Ebadian M A. Developing turbulent convective heat transfer in helical pipes[J]. International Journal of Heat and Mass Transfer, 1997, 40(16): 3861-3873.
|
37 |
Ghiyas U D, Chughtai I R, Inayat M H, et al. Salient developments in residence time distribution (RTD) analysis—a review[C]//International Conference on Tracers and Tracing Methods. 2006.
|
38 |
Rossi D, Gargiulo L, Valitov G, et al. Experimental characterization of axial dispersion in coiled flow inverters[J]. Chemical Engineering Research and Design, 2017, 120: 159-170.
|
39 |
Rojahn P, Hessel V, Nigam K D P, et al. Applicability of the axial dispersion model to coiled flow inverters containing single liquid phase and segmented liquid-liquid flows[J]. Chemical Engineering Science, 2018, 182: 77-92.
|