|
STEFAN J. Uber die theorie der eisbildung, insbesondere über die eisbildung im polarmeere[J].Annalen der Physik,1891,278(2): 269-286.
|
|
[2]SHEN H T, CHIANG L A. Simulation of growth and decay of river icecover[J].Journal of Hydraulic Engineering,1984,110(7): 958-971.
|
|
[3]秦妍, 李维仲. 利用移动网格技术模拟冰融化过程中的传热问题[J]. 热科学与技术, 2005,4(3): 213-218. (QIN Yan, LI Weizhong. Numerical simulation on heat transfer in ice melting by using moving mesh method[J].Journal of Thermal Science and Technology,2005,4(3): 213-218. (in Chinese))
|
|
[4]吴兆春. 界面追踪法求解半空间双相Stefan问题[J]. 哈尔滨商业大学学报(自然科学版), 2004,20(1): 59-62.(WU Zhaochun. An approach to semi-space two-phase Stefan problems by using interface-tracking and analysis method[J].Journal of Harbin University of Commerce(Sciences Edition), 2004,20(1): 59-62. (in Chinese))
|
|
[5]NABAVI S F, GARMESTANI H. Multi-scale modeling of metallurgical phenomena in metal laser powder bed fusion additive manufacturing: a comprehensive review[J].Journal of Manufacturing Processes,2025,150: 610-644.
|
|
[6]HU C, DI H, LIU X, et al. Large eddy simulation investigation of the effect of radiative heat transfer on the ignition progress in a model combustor[J].International Journal of Heat and Mass Transfer,2024,231: 125822.
|
|
[7]KOZAK Y. Close-contact melting of a vertical cylinder on an isothermal surface: modeling and investigation for a non-Newtonian Herschel-Bulkley fluid liquid-phase[J].International Journal of Heat and Mass Transfer,2024,225: 125378.
|
|
[8]ZHAO H Y, WANG X, WU J, et al. An intelligent, solar-responsive, and thermally conductive phase-change system toward solar-thermal-electrical conversion featuring daytime blooming for solar energy harvesting and nighttime closing for thermal preservation[J].Advanced Functional Materials,2024,34(45): 2406236.
|
|
[9]周业涛, 关振群, 顾元宪. 求解相变传热问题的等效热容法[J]. 化工学报, 2004,55(9): 1428-1433. (ZHOU Yetao, GUAN Zhenqun, GU Yuanxian. Equivalent heat capacity method for solution of heat transfer with phase change[J].Journal of Chemical Industry and Engineering(China), 2004,55(9): 1428-1433. (in Chinese))
|
|
[10]周建辉. 高温固液相变蓄热器的结构设计和数值模拟[D]. 哈尔滨: 哈尔滨工程大学, 2004.(ZHOU Jianhui. Structural design and numerical simulation for a high-temperature solid-liquid phase change thermal energy storage container[D]. Harbin: Harbin Engineering University, 2004. (in Chinese))
|
|
[11]MOENCH S, DITTRICH R. Influence of natural convection and volume change on numerical simulation ofphase change materials for latent heat storage[J].Energies,2022,15(8): 2746.
|
|
[12]潘艾刚, 王俊彪, 张贤杰. 基于等效热容法和焓法的相变传热数值分析[J]. 计算机仿真, 2014,31(2): 315-319.(PAN Aigang, WANG Junbiao, ZHANG Xianjie. Numerical analysis of phase-change heat transfer characteristics using effective heat capacity method and enthalpy method[J].Computer Simulation,2014,31(2): 315-319. (in Chinese))
|
|
[13]王昕. 不同种类冰的厚度计算原理和修正[D]. 大连: 大连理工大学, 2007.(WANG Xin. Ice thickness calculating principle and modifying of different ice types[D]. Dalian: Dalian University of Technology, 2007. (in Chinese))
|
|
[14]李得伦. 石蜡相变材料的传热与控温性能研究[D]. 广州: 华南理工大学, 2012.(LI Delun. Research on the heat transfer and thermal control performance of paraffin phase change material[D]. Guangzhou: South China University of Technology, 2012. (in Chinese))
|
|
[15]白乙拉, 李冰, 冯景山. 以气温为边界条件的水库冰盖厚度的数值模拟研究[J]. 辽宁师范大学学报(自然科学版), 2012,35(2): 164-167. (BAI Yila, LI Bing, FENG Jingshan. Study on numerical simulation of growth in thickness of ice caps in reservoirs in the boundary condition of atmospheric temperature[J].Journal of Liaoning Normal University(Natural Science Edition), 2012,35(2): 164-167. (in Chinese))
|
|
[16]董兴聪. 相变传热问题数值分析的自适应四叉树-比例边界元方法[D]. 大连: 大连理工大学, 2019.(DONG Xingcong. Adaptive quadtree-scaled boundary finite element method for numerical analysis of heat transfer problems with phase change[D]. Dalian: Dalian University of Technology, 2019. (in Chinese))
|
|
[17]刘仍通, 潘阳. 自然对流影响结冰的数值模拟及实验研究[J]. 华东交通大学学报, 2010,27(5): 22-27. (LIU Rengtong, PAN Yang. Numerical simulation and experiment research of the impact of natural convection on ice formation[J].Journal of East China Jiaotong University,2010,27(5): 22-27. (in Chinese))
|
|
[18]SHEN H T, YAPA P D. A unified degree-day method for river ice cover thickness simulation[J].Canadian Journal of Civil Engineering,1985,12(1): 54-62.
|
|
[19]丁法龙, 茅泽育. 寒区水塘冰盖生长和消融分析[J]. 水利学报, 2021,52(3): 349-358.(DING Falong, MAO Zeyu. Ice cover growth-decay process of pond in cold region[J].Journal of Hydraulic Engineering,2021,52(3): 349-358. (in Chinese))
|
|
[20]冯景山, 白乙拉, 李冰. 寒区水库冰盖厚度增长数值模拟研究[J]. 渤海大学学报(自然科学版), 2011,32(1): 5-9. (FENG Jingshan, BAI Yila, LI Bing. Study on numerical simulation of growth in thickness of ice caps in reservoirs of cold regions[J].Journal of Bohai University(Natural Science Edition), 2011,32(1): 5-9. (in Chinese))
|
|
[21]LIN L, YANG D, LUO Z, et al. Numerical study on melting and heat transfer characteristics of vertical cylindrical PCM with a focus on the solid-liquid interface heat transferrate[J].Journal of Energy Storage,2023,72: 108370.
|
|
[22]VAKILZADEH A H, SARVESTANI A B, JAVAHERDEH K, et al. Heat transfer and fluid flow in a PCM-filled enclosure: effect of heated wall configuration[J].Journal of Energy Storage,2024,87: 111448.
|
|
[23]李志军, 孙万光, 许士国, 等. 短期水文气象资料估算哈尔滨至同江冰厚度[J]. 水科学进展, 2009,20(3): 428-433. (LI Zhijun, SUN Wanguang, XU Shiguo, et al. Calculating river ice thickness from Harbin to Tongjiang using short-term hydrological and meteorological data[J].Advances in Water Science,2009,20(3): 428-433. (in Chinese))
|