Journal of Synthetic Crystals ›› 2026, Vol. 55 ›› Issue (7): 1111-1119.DOI: 10.16553/j.cnki.issn1000-985x.2026.0062
• Research Articles • Previous Articles Next Articles
WANG Sichao1(
), GAO Xibao1(
), HAO Xingyue1, TANG Qilong1, WANG Qinglan1, LIU Bo2,3(
)
Received:2026-04-16
Online:2026-07-20
Published:2026-08-04
Contact:
GAO Xibao, LIU Bo
CLC Number:
WANG Sichao, GAO Xibao, HAO Xingyue, TANG Qilong, WANG Qinglan, LIU Bo. Multiphysics Simulation-Based Study on Single Crystal Fiber Growth via Laser-Heated Pedestal Growth Method[J]. Journal of Synthetic Crystals, 2026, 55(7): 1111-1119.
| Material | Variable | Value | Reference |
|---|---|---|---|
| Alumina solid | Thermal conductivity, K/(W·m-1·K-1) | 25 | [ |
| Specific heat capacity, Cp /(J·kg-1·K-1) | 745+0.95T-7.11×10-4T2 | ||
| Density, ρ/(kg·m-3) | 3 720 | ||
| Alumina liquid | Dynamic viscosity, μ/(mPa·s) | μ(T)=3.2exp[43.2×103/(R·T)] 2 190 K≤T≤2 500 K R=8.31 J/(mol·K) | [ |
| Specific heat capacity, Cp /(J·kg-1·K-1) | 880 | [ | |
| Thermal conductivity, K/(W·m-1·K-1) | 2.741 6 | [ | |
| Air | Thermal conductivity, K/(W·m-1·K-1) | 2.6×10-2 | [ |
| Density, ρ/(kg·m-3) | 7.561×10-4 | ||
| Specific heat capacity,Cp /(J·kg-1·K-1) | 1 005 |
Table1 Material physical parameters for simulation
| Material | Variable | Value | Reference |
|---|---|---|---|
| Alumina solid | Thermal conductivity, K/(W·m-1·K-1) | 25 | [ |
| Specific heat capacity, Cp /(J·kg-1·K-1) | 745+0.95T-7.11×10-4T2 | ||
| Density, ρ/(kg·m-3) | 3 720 | ||
| Alumina liquid | Dynamic viscosity, μ/(mPa·s) | μ(T)=3.2exp[43.2×103/(R·T)] 2 190 K≤T≤2 500 K R=8.31 J/(mol·K) | [ |
| Specific heat capacity, Cp /(J·kg-1·K-1) | 880 | [ | |
| Thermal conductivity, K/(W·m-1·K-1) | 2.741 6 | [ | |
| Air | Thermal conductivity, K/(W·m-1·K-1) | 2.6×10-2 | [ |
| Density, ρ/(kg·m-3) | 7.561×10-4 | ||
| Specific heat capacity,Cp /(J·kg-1·K-1) | 1 005 |
Fig.3 Temperature distribution and isotherm diagrams of the molten zone for drawn single crystal fibers with 200 μm diameter (a) and 300 μm diameter (b), and their axial temperature and absolute temperature gradient distribution curves along the molten zone axis (c), (d)
Fig.4 Coupled thermal and flow fields in the molten zone with only natural convection for 200 μm diameter (a) and 300 μm diameter (b), and their coupled thermal and flow fields in the corresponding molten zone with the Marangoni effect superimposed (c), (d)
Fig.5 Coupled temperature distribution and fluid flow characteristics in the molten zone under conventional pulling speed, for 200 μm diameter (a), and 300 μm diameter (b), and their coupled temperature distribution and fluid flow characteristics in the molten zone under higher pulling speed (c), (d)
| [1] | HARRINGTON J A. Single-crystal fiber optics: a review[J]. Solid State Lasers XXIII: Technology and Devices, 2014, 8959: 895902. |
| [2] |
MU X D, MEISSNER S, MEISSNER H, et al. High efficiency Yb∶YAG crystalline fiber-waveguide lasers[J]. Optics Letters, 2014, 39(21): 6331-6334.
DOI URL |
| [3] | 原东升. 微下拉设备研制、单晶生长及功能晶体TbCOB的制备和性能研究[D]. 济南: 山东大学, 2016. |
| YUAN D S. Equipment development and single crystal growth of micro-pulling-down, and the synthesis and investigations of functional crystal TbCOB[D]. Jinan: Shandong University, 2016 (in Chinese). | |
| [4] | YANG Y L, YE L H, BAO R J, et al. Growth and characterization of Yb∶Ho∶YAG single crystal fiber[J]. Infrared Physics & Technology, 2018, 91: 85-89. |
| [5] | LIU B, KARKI D, BERA S, et al. Fabrication and application of single crystal fiber via laser heated pedestal growth system[C]// Fiber Optic Sensors and Applications XVII. April 12-17, 2021. Online Only, USA. SPIE, 2021: 2. |
| [6] |
LAN C W, KOU S. Heat transfer, fluid flow and interface shapes in floating-zone crystal growth[J]. Journal of Crystal Growth, 1991, 108(1/2): 351-366.
DOI URL |
| [7] |
CHANG C L, HUANG S L, LO C Y, et al. Simulation and experiment on laser-heated pedestal growth of chromium-doped yttrium aluminum garnet single-crystal fiber[J]. Journal of Crystal Growth, 2011, 318(1): 674-678.
DOI URL |
| [8] |
LO C Y, CHEN P Y. Three-dimensional simulation and experiment on micro-floating zone of LHPG with asymmetrical perturbation[J]. Journal of Crystal Growth, 2013, 362: 45-51.
DOI URL |
| [9] |
LIU B, YU Z H, HILL C, et al. Sapphire-fiber-based distributed high-temperature sensing system[J]. Optics Letters, 2016, 41(18): 4405-4408.
DOI PMID |
| [10] | LIU B, YU Y, BERA S, et al. Study of molten zone profile and defect formation during laser heated pedestal growth[C]// Micro- and Nanotechnology Sensors, Systems, and Applications XI. April 14-18, 2019. Baltimore, USA. SPIE, 2019: 91. |
| [11] |
YIN Y Q, ZHANG N, ZHANG J, et al. Thermal optimization of single crystal fiber manufacturing based on heat loss compensation[J]. Applied Thermal Engineering, 2022, 201: 117741.
DOI URL |
| [12] | WANG S C, HAO X Y, WANG Q L, et al. Optimization of thermal field and control algorithms in laser heated pedestal growth systems[C]// 8th Optics Young Scientist Summit (OYSS 2025). September 26-29, 2025. Qingdao, China. SPIE, 2025: 14. |
| [13] |
GAO X B, WANG S C, LIU B, et al. Machine learning enhanced single crystal fiber fabrication via laser heated pedestal growth[J]. IEEE Photonics Technology Letters, 2025, 37(18): 1017-1020.
DOI URL |
| [14] | 张广路, 张文涛, 孙一强, 等. 高功率CO2激光加热氧化铝样品均温低应力设计[J]. 光学学报, 2025, 45(11): 200-210. |
| ZHANG G L, ZHANG W T, SUN Y Q, et al. Uniform temperature and low stress design of alumina samples heated by high power CO2 laser[J]. Acta Optica Sinica, 2025, 45(11): 200-210 (in Chinese). | |
| [15] |
PARADIS P F, ISHIKAWA T. Surface tension and viscosity measurements of liquid and undercooled alumina by containerless techniques[J]. Japanese Journal of Applied Physics, 2005, 44(7R): 5082.
DOI |
| [16] |
ZHOU X L, ZHOU Y F, DENG Y, et al. Molecular dynamics study on structure, vibrational properties, and transport coefficients of liquid alumina[J]. Materials, 2022, 15(23): 8370.
DOI URL |
| [17] |
VORA H D, SANTHANAKRISHNAN S, HARIMKAR S P, et al. One-dimensional multipulse laser machining of structural alumina: evolution of surface topography[J]. The International Journal of Advanced Manufacturing Technology, 2013, 68(1): 69-83.
DOI URL |
| [18] |
吕搏闻, 武珈羽, 张晗旭, 等. 基于多物理场仿真的YIG薄膜液相外延生长工艺优化的研究[J]. 人工晶体学报, 2026, 55(1): 29-36.
DOI |
|
LYU B W, WU J Y, ZHANG H X, et al. Optimization of LPE growth process of YIG films based on multi-physics field simulation[J]. Journal of Synthetic Crystals, 2026, 55(1): 29-36 (in Chinese).
DOI |
|
| [19] |
YANG H D, ZHANG S. Numerical simulation of temperature field and stress field in fused deposition modeling[J]. Journal of Mechanical Science and Technology, 2018, 32(7): 3337-3344.
DOI |
| [20] |
LIU J, LU W Q. Preliminary study of non-isothermal phase change phenomena in vertical Bridgman crystal growth[J]. Chinese Science Bulletin, 2007, 52(5): 701-710.
DOI URL |
| [21] |
ZHANG N, LIU D. Numerical simulation of MHD oscillatory mixed convection in CZ crystal growth by Lattice Boltzmann method[J]. Results in Physics, 2018, 10: 882-890.
DOI URL |
| [22] | YAO M W, MATTHIESEN D H, CHAIT A. Numerical simulation of heat transport and fluid flow in directional crystal growth of GaAs[J]. Numerical Heat Transfer, Part A: Applications, 1996, 30(7): 685-701. |
| [23] | 施宇峰, 王鹏飞, 穆宏赫, 等. 尺寸效应对坩埚下降法生长氟化钙晶体影响机制的数值模拟分析[J]. 人工晶体学报, 2024, 53(6): 973-981. |
| SHI Y F, WANG P F, MU H H, et al. Numerical simulation investigation of size effect on calcium fluoride crystals grown by vertical bridgman method[J]. Journal of Synthetic Crystals, 2024, 53(6): 973-981 (in Chinese). |
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