聚合物基调制靶制备技术研究进展

Research progress in fabrication technology of polymer-based perturbation targets

  • 摘要: 瑞利-泰勒(RT)流体力学不稳定性增长的准确估计是激光惯性约束聚变(ICF)的重要研究课题。聚合物基(薄膜、泡沫)调制靶是用于研究RT不稳定性增长的ICF分解物理实验常用靶型,本文从靶型设计、聚合物材料选择和靶制备技术等方面对该类调制靶的研制进展进行了系统综述,重点回顾了聚苯乙烯(PS)和聚4-甲基-1-戊烯(PMP)在平面调制靶和薄膜-泡沫双介质复合调制靶中的应用,介绍了以双光子聚合3D打印为代表的新兴技术在制备复杂构型靶件方面的优势。此外,本文从调制图形加工精度、制备效率等维度对各类工艺路线进行了对比,剖析了当前制约靶件性能的关键技术瓶颈,包括制备精度与一致性、薄膜-泡沫复合界面成型控制等问题,并总结展望了面向下一代ICF物理实验的高精度、复杂构型调制靶制备技术发展方向。

     

    Abstract: An accurate evaluation of the growth rate of the Rayleigh-Taylor (RT) instability is a critical issue for inertial confinement fusion (ICF). By means of the face-on radiography technology, perturbation targets are usually adopted to investigate the Rayleigh-Taylor instability in ICF resolved experiments. This paper provides a comprehensive review of recent advances in the fabrication technology of polymer-based perturbation targets, which are essential experimental targets for studying hydrodynamic instabilities in ICF. The review systematically covers three major aspects: target design configurations, polymer material systems, and fabrication methodologies. For target design, both single-layer planar targets and dual-layer composite targets (film-foam structures) are discussed in terms of their structural characteristics and physical experiment requirements. Regarding material systems, the properties and preparation methods of two dominant polymers, namely polystyrene (PS) and poly(4-methyl-1-pentene) (PMP) foam, are elaborated, including doped PS films and ultra-low-density PMP porous materials. With respect to fabrication techniques, conventional methods such as laser interference process, single-point diamond turning (SPDT) and femtosecond laser machining are compared, and emerging additive manufacturing technologies represented by two-photon polymerization 3D printing are highlighted for their unique advantages in fabricating complex configurations such as composite planar and spherical targets. Furthermore, the key technical bottlenecks currently limiting target performance, including fabrication accuracy and consistency as well as interface quality control in film-foam composites, are analyzed. Finally, future research directions for high-precision, complex-configuration perturbation targets are proposed to meet the demands of next-generation ICF experiments.

     

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