[1] |
赵福宇, 肖泽军. 新型直流蒸汽发生器的稳态特性分析[J]. 核动力工程, 2000, 21(4):309-313. ZHAO F Y, XIAO Z J. Analysis of steady-state characteristics of a new type of OTSG[J]. Nuclear Power Engineering, 2000, 21(4):303-313.
|
[2] |
易维竞, 李长顺, 魏仁杰. 固定边界与移动边界直流蒸汽发生器模型的比较[J]. 核科学与工程, 2002, 22(4):314-317. YI W J, LI C S, WEI R J. Comparison of fixed and movable boundary models for OTSG[J]. Nuclear Science and Engineering, 2002, 22(4):314-317.
|
[3] |
ZHU J, GUO Y, ZHANG Z. Dynamic simulation of once-through steam generator with concentric annuli tube[J]. Annals of Nuclear Energy, 2012, 50:185-198.
|
[4] |
YOON J, KIM J P, KIM H Y, et al. Development of a computer code, ONCESG, for the thermal-hydraulic design of a once-through steam generator[J]. Journal of Nuclear Science & Technology, 2000, 37(5):445-454.
|
[5] |
臧希年, 申世飞. 核电厂系统及设备[M]. 北京:清华大学出版社, 2003:65-79. ZANG X N, SHEN S F. Nuclear Power Plant Systems and Equipment[M]. Beijing:Tsinghua University Press, 2003:65-79.
|
[6] |
宋京凯, 郭海红, 姚祺峰, 等. 蒸汽发生器工作过程建模及仿真分析[J]. 核科学与工程, 2007, (1):27-31. SONG J K, GUO H H, YAO Q F, et al. The modeling and simulation analysis on steam generator working process[J]. Nuclear Science and Engineering, 2007, (1):27-31.
|
[7] |
徐济鋆. 沸腾传热和汽液两相流[M]. 北京:原子能出版社, 2001:273-275. XU J A. Boiling Heat Transfer and Vapor-Liquid Two-phase Flow[M]. Beijing:Atomic Energy Press, 2001:273-275.
|
[8] |
李小波, 张峥, 刘海峰. 压水堆堆芯稳态单通道热工计算[J]. 现代物理, 2014, (1):15-20. LI X B, ZHANG Z, LIU H F. Steady state single channel thermal calculation of PWR core[J]. Modern Physics, 2014, (1):15-20.
|
[9] |
吴鸽平, 吴埃敏, 郭赟, 等. 环形窄缝通道内流动沸腾干涸点的研究[J]. 西安交通大学学报, 2004, 38(7):686-689. WU G P, WU A M, GUO Y. Experimental research on dryout point of flow boiling in narrow annular channel[J]. Journal of Xi'an Jiaotong University, 2004, 38(7):686-689.
|
[10] |
李虹波, 陈炳德, 赵华, 等. 矩形通道干涸点传热特性试验研究[J]. 核科学与工程,2012, (2):116-124. LI H B, CHEN B D, ZHAO H. Experimental study of dryout heat transfer in rectangular channel[J]. Nuclear Science and Engineering, 2012, (2):116-124.
|
[11] |
郭雷, 张树生, 陈雅群, 等. 竖直狭缝通道内水沸腾换热的气泡动力学研究[J]. 西安交通大学学报, 2010, (11):12-16. GUO L, ZHANG S S, CHEN Y Q, et al. Experimental research on dryout point of flow boiling in narrow annular channel[J]. Journal of Xi'an Jiaotong University, 2010, (11):12-16.
|
[12] |
苏顺玉. 环状狭缝通道流动沸腾传热的理论及实验研究[D]. 武汉:华中科技大学. 2005. SU S Y. Theoretical and experimental study on flow boiling heat transfer of annular slot channel[D]. Wuhan:Huazhong University of Science and Technology, 2005.
|
[13] |
张羽, 孙宝芝, 张国磊. 蒸汽发生器一维均相流模型及其换热性能[J]. 原子能科学技术, 2012, 46(1):57-62. ZHANG Y, SUN B Z, ZHANG G L. One-dimensional homogeneous flow model and heat transfer performance of steam generator[J]. Atomic Energy Science and Technology, 2012, 46(1):57-62.
|
[14] |
张伟, 边信黔, 夏国清. 套管式直流蒸汽发生器静态和动态特性的仿真研究[J]. 中国电机工程学报, 2007, 27(5):76-80. ZHANG W, BIAN X Q, XIA G Q. Simulation research of static and dynamic characteristic of once-through steam generator in concentric annuli tube[J]. Proceedings of the CSEE, 2007, 27(5):76-80.
|
[15] |
干依燃, 孙宝芝, 齐洪亮, 等. 基于传热分区的直流蒸汽发生器换热性能仿真[J]. 化工学报, 2015, 66(S1):123-129. GAN Y Y, SUN B Z, QI H L. Heat transfer performance simulation of once-through steam generator base on partition[J]. CIESC Journal, 2015, 66(S1):123-129.
|
[16] |
杨世铭, 陶文铨. 传热学[M]. 第三版.北京:高等教育出版社, 1998:164-168, 313-344. YANG S M, TAO W Q. Heat Transfer[M]. Third Edition. Beijing:Higher Education Press, 1998:164-168, 313-344.
|
[17] |
ZAMBRANA J, LEO T J, PEREZ-DEL-NOTARIO P. Vertical tube length calculation based on available heat transfer coefficient expressions for the subcooled flow boiling region[J]. Applied Thermal Engineering, 2008, 28(5):499-513.
|
[18] |
LIU P, PENG X B, SONG Y T, et al. Subcooled water flow boiling heat transfer in screw cooling tubes under one-sided heating conditions[J]. Applied Thermal Engineering, 2017, 113:621-631.
|
[19] |
ARAVINTHAN M, VENKATESAN M. Experimental investigation of subcooled flow boiling in a minichannel[J]. Heat Transfer Engineering, 2015, 36(4):408-417.
|
[20] |
ABDEL A, AZIM Y, HANAFY A S, et al. Enhanced subcooled flow boiling of water using internal surface coating[C]//9th Annual International Energy Conversion Engineering Conference, IECEC. 2011.
|
[21] |
NGUYEN M P, LEE G S. Ice formation on the outer surface of a vertical tube with inside refrigerant boiling[J]. Transactions of the Korean Society of Mechanical Engineers, B, 2011, 35(2):129-135.
|
[22] |
赵兆颐, 朱瑞安. 反应堆热工流体力学[M]. 北京:清华大学出版社, 1992:52-53. ZHAO Z Y, ZHU R A. Reactor Thermal Fluid Mechanics[M]. Beijing:Tsinghua University Press, 1992:52-53.
|
[23] |
ANTONIO R,MANUEL V,M DOLORES D. A model to predict the behaviour at part load operation of once-through heat recovery steam generators working with water at supercritical pressure[J]. Applied Thermal Engineering, 2010, 30:1652-1658.
|
[24] |
LI J, WANG K, CHENG L. Experiment and optimization of a new kind once-through heat recovery steam generator based on analysis of exergy and economy[J]. Applied Thermal Engineering, 2017, 120:402-415.
|
[25] |
李金波, 程林. 余热锅炉单相受热面动态建模与模型参数优化[J]. 化工学报, 2016, 67(11):4599-4608. LI J B, CHENG L. Dynamic modeling and parameter optimization of single phase heating surface of heat recovery steam generator[J]. CIESC Journal, 2016, 67(11):4599-4608.
|
[26] |
PLIS M, RUSINOWSKI H. Adaptive simulation model of a double-pressure heat recovery steam generator for current optimization in control systems[J]. Transactions on Industry Application, 2016, (99):742-756.
|
[27] |
FRANCO A. Analysis of small size combined cycle plants based on the use of supercritical HRSG[J]. Applied Thermal Engineering, 2011, 31(5):785-794.
|
[28] |
LU Y, ZHANG T, DONG X. Bed to wall heat transfer in supercritical water fluidized bed:comparison with the gas-solid fluidized bed[J]. Applied Thermal Engineering, 2014, 88:297-305.
|
[29] |
ZHANG G L, ZHANG Y, YANG Y L. Dynamic heat transfer performance study of steam generator based on distributed parameter method[J]. Annals of Nuclear Energy, 2014, 63:658-664.
|
[30] |
刘建阁. 一体化压水堆稳态运行特性研究[D]. 哈尔滨:哈尔滨工程大学, 2008. LIU J G. Study on steady-state running characteristics of integrated pressurized water reactor[D]. Harbin:Harbin Engineering University, 2008.
|