欢迎访问《人工晶体学报》官方网站,今天是

人工晶体学报 ›› 2026, Vol. 55 ›› Issue (7): 1111-1119.DOI: 10.16553/j.cnki.issn1000-985x.2026.0062

• 研究论文 • 上一篇    下一篇

基于多物理场仿真的激光加热基座法单晶光纤生长工艺研究

王思超1(), 高悉宝1(), 郝星越1, 汤祺隆1, 王晴岚1, 刘波2,3()   

  1. 1.湖北汽车工业学院光电工程学院,十堰 442002
    2.之江实验室地空研究中心,杭州 311100
    3.浙江大学光电科学与工程学院,杭州 310027
  • 收稿日期:2026-04-16 出版日期:2026-07-20 发布日期:2026-08-04
  • 通信作者: 高悉宝,博士,准聘副教授。E-mail:xibaogaoi@huat.edu.cn
    刘波,博士,研究员。E-mail:Bo.liu@zhejianglab.org
  • 作者简介:王思超(1996—),男,湖北省人,硕士研究生。E-mail:19277157716@163.com
    高悉宝,博士,湖北汽车工业学院硕士生导师,主要从事特种光纤及光纤激光器研究。先后在Opt ExpressOpt LettIEEE Photon Technol Lett等国内国际著名期刊和会议上发表论文20余篇,申请发明专利10项,已获得授权专利5项。主持湖北省自然科学基金项目一项,湖北省教育厅青年人才项目一项,天琴计划教育部重点实验室开放基金项目一项。
    刘波,博士,之江实验室地空研究中心研究专家,浙江大学光电科学与工程学院博士生导师,浙江省政协委员,中国自动化学会专委会委员,曾任国家自然科学基金委员会国际合作局流动项目主任。研究聚焦于AI赋能的光纤传感技术。发表80余篇论文,授权10余项专利,荣获美国能源部国家能源技术实验室颁发的卡耐基科学奖(能源领域),入围该实验室威廉-史蒂夫奖最终名单,浙江省海外高层次引进人才,杭州市C类人才,人力资源和社会保障部高层次留学回国人才资助,担任美国能源部科学办公室基金评审专家,工业和信息化部国家级人才评委。
  • 基金资助:
    湖北省自然科学基金(2025AFD224);湖北省教育厅青年人才科技项目(Q20241806)

Multiphysics Simulation-Based Study on Single Crystal Fiber Growth via Laser-Heated Pedestal Growth Method

WANG Sichao1(), GAO Xibao1(), HAO Xingyue1, TANG Qilong1, WANG Qinglan1, LIU Bo2,3()   

  1. 1.School of Optoelectronics Engineering,Hubei University of Automotive Technology,Shiyan 442002,China
    2.Earth and Space Research Center,Zhejiang Lab,Hangzhou 311100,China
    3.College of Optical Science and Engineering,Zhejiang University,Hangzhou 310027,China
  • Received:2026-04-16 Online:2026-07-20 Published:2026-08-04

摘要: 激光加热基座(LHPG)法是制备微米级单晶光纤的核心技术,但其高温熔区涉及多物理场强耦合作用,传统实验难以实时观测熔体流动与温度演化,制约了晶体生长稳定性与质量提升。本文基于COMSOL多物理场仿真平台,建立几何光学、热力学与流体力学耦合的二维轴对称模型,系统研究激光功率波动、光纤直径、马兰戈尼(Marangoni)效应及拉制速度对熔区热-流特性的影响规律。数值模拟结果表明,激光功率波动形式显著影响熔区温度稳定性,三角波波动下热冲击最小,温度响应最平稳;直径增大使熔区温度梯度降低,热量分布更均匀;马兰戈尼效应主导熔区流动,其诱发的高速热毛细对流驱使流场重构为复杂的双主涡结构;维持适宜的拉制速度是保障熔区热平衡的关键,拉速过快将极端强化热毛细对流并诱发温场剧烈畸变。本研究明确了LHPG工艺中多物理场协同作用机制,揭示了关键参数对熔区稳定性的调控规律,可为高质量单晶光纤的生长工艺优化提供理论依据。

关键词: 单晶光纤; 蓝宝石光纤; 激光加热基座法; 马兰戈尼效应; 温场-流场耦合

Abstract: Laser-heated pedestal growth (LHPG) method is a well-established, crucible-free technique for fabricating micrometer-scale single crystal optical fibers, in which a localized molten zone is generated by laser heating of a feed rod and directional crystal growth is realized through precisely controlled feeding and seed-crystal pulling. As a fibrous “quasi-one-dimensional” functional crystal, the single crystal fiber combines the large aspect ratio of conventional glass fibers with the superior physical and chemical properties of bulk crystals, making it highly attractive for high-power lasers, high-energy radiation detection, high-temperature sensing, and optical communication. Owing to its extremely high heating temperatures, freedom from crucible contamination, and rapid solidification rates, LHPG is widely regarded as the only viable route for growing single crystal fibers at the 100 μm diameter scale. However, the high-temperature molten zone is governed by strongly coupled multiphysical interactions—including heat conduction, thermal radiation, melt convection, phase change, and surface-tension-driven flow—whose pronounced nonlinearity, together with the inability of conventional experiments to observe internal thermal and flow fields in real time, leaves the mechanisms governing process stability and interface evolution insufficiently understood and limits further improvements in crystal quality and dimensional uniformity. To address this gap, a two-dimensional axisymmetric multiphysics model was established on the COMSOL Multiphysics platform, coupling geometric-optics-based laser energy absorption, solid-liquid heat transfer, and fluid dynamics that incorporates the Marangoni effect; the molten-zone boundary was fitted from experimental images of stably growing sapphire fiber. Using a 1 mm diameter α-Al2O3 feed rod, the study systematically investigated the coupled influences of laser-power fluctuation mode, fiber diameter, Marangoni convection, and pulling speed on the thermo-fluid characteristics of the molten zone. The results show that the form of laser-power fluctuation (5% amplitude) strongly affects thermal stability: square-, sine-, and triangular-wave modulation produced molten-zone temperature swings of 88, 80, and 61 K, respectively, with the triangular wave generating the weakest thermal shock and the smoothest temperature response, identifying it as the preferred reference signal for power-stabilization loops. Increasing the fiber diameter from 200 μm to 300 μm lowered the axial temperature gradient and yielded a more uniform thermal distribution; in both cases the gradient displayed a characteristic edge-high, center-low pattern, peaking near the laser-irradiated region and the solid-liquid interface, which indicates that small-diameter growth is inherently more difficult to stabilize. With a bond number far below unity, Marangoni convection was confirmed as the dominant flow mechanism: introducing surface-tension gradients raised the maximum melt velocity from the order of 10-5 m/s (buoyancy-driven natural convection alone) to 0.07~0.1 m/s and reconstructed the flow field from a single vortex into a complex double-vortex structure. Finally, whereas a baseline pulling speed of 1.28×10-4 m/s preserved both thermal and flow stability, raising it by three orders of magnitude destroyed the coupled steady state, necessitated a doubling of laser power, severely distorted the temperature field, and produced jet-like high-speed flow conducive to growth interruption. Overall, this study clarifies the strongly coupled thermo-fluid mechanisms governing the LHPG process and the regulatory roles of key processing parameters in molten-zone stability. The findings provide a comprehensive theoretical foundation for optimizing growth conditions and practical guidance for improving the quality, uniformity, and structural integrity of single crystal optical fibers, particularly sapphire and other advanced functional crystalline materials.

Key words: single crystal fiber; sapphire fiber; laser-heated pedestal growth method; Marangoni effect; thermal-fluid coupling

中图分类号: