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[1]吴涛*,王世芳.激光等离子体羽辉膨胀的流体动力学模型及数值模拟[J].武汉工程大学学报,2011,(11):95-98.
 WU Tao,WANG Shi fang.Analytical hydrodynamic model of laser induced plasmaplume expansion and simulation[J].Journal of Wuhan Institute of Technology,2011,(11):95-98.
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激光等离子体羽辉膨胀的流体
动力学模型及数值模拟
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《武汉工程大学学报》[ISSN:1674-2869/CN:42-1779/TQ]

卷:
期数:
2011年11期
页码:
95-98
栏目:
机电与信息工程
出版日期:
2011-11-30

文章信息/Info

Title:
Analytical hydrodynamic model of laser induced plasma
plume expansion and simulation
文章编号:
16742869(2011)11009504
作者:
吴涛1*王世芳2
1.武汉工程大学理学院,湖北 武汉 430074;2.湖北第二师范学院物理与电子信息学院,湖北 武汉 430205
Author(s):
WU Tao1WANG Shifang2
1.School of Science,Wuhan Institute of Technology,Wuhan 430074,China;
2.School of Physics and Electronic Information,Hubei University of Education,Wuhan 430205,China
关键词:
激光等离子体羽辉膨胀牛顿迭代法
Keywords:
laser produced plasmaplasma plume expansionNewton iteration
分类号:
O53
DOI:
-
文献标志码:
AAdoi:10.3969/j.issn.16742869.2011.11.024
摘要:
基于流体动力学方程组,假定激光烧蚀固体靶材所形成对称膨胀的等离子体羽辉处于定态,将偏微分方程组简化为一组常微分方程,并对方程组进行归一化处理,采用牛顿迭代法进行数值求解,得到了定态膨胀的激光诱导等离子体羽辉的电子温度、膨胀速度和密度空间分布的基本规律,数值求解结果与实验观测现象是相一致的.通过物理量的归一化处理,该理论模型将激光等离子体羽辉膨胀的过程标准化,方便和实验数据的对比分析,有助于理解激光等离子体羽辉膨胀的动力学过程.
Abstract:
This paper was based on the hydrodynamic equations and steady state assumptions of the laser induced plasma plume.The partial difference equations were simplified into a set of ordinary equations which could be normalized by the characteristic parameters.The profiles of density,temperature,and velocity of the steady state laser induced plasma plume were obtained by using the Newton iteration numerical method.The simulation results had a fair agreement with the experimental data.The process of the laser produced plasma expansion was standardized by the normalized physical quantity.These results provide useful guides to understand the properties of the laser produced plasma plume by compariing of the experimental data.

参考文献/References:

[1]张端明,李智华,钟志城,等.脉冲激光沉积动力学原理[M].北京:科学出版社,2011.
[2]吴涛,王新兵,左都罗,等.高能脉冲CO2激光等离子体波导的研究[J].武汉工程大学学报,2009,31(12):3235.
[3]Wu T,Wang X B.Lifetime calculation on collector optics from laser plasma extreme ultraviolet sources with minimum mass[J].Chin Phys Lett,2011,28(5):055201.
[4]吴涛,王新兵,唐建,等.缓冲气压对CO2激光Al靶等离子体参数的影响[J].激光技术,2011,35(6):800803.
[5]Meige A,Boswell R,Christine C,et al.Onedimensional particleincell simulation of a currentfree double layer in an expanding plasma[J].Phys Plasmas,2005,12:052317.
[6]London R A,Rosen M D.Hydrodynamics of exploding foil xray lasers[J].Phys Fluids,1986,29(11):38133822.
[7]Eliezer S.The Interaction of Highpower Lasers with Plasmas[M].UK:Bristol press,2002.
[8]Zeldovich Y B,Raizer Y P.Physics of Shock Waves and High Temperature Hydrodynamics Phenomena [M].New York: Academic press,2002.
[9]Luna H,Dardis J,Doria D,et al.Analysis of timeresolved laser plasma ablation using an imaging spectra technique[J].Brazilian Journal of Physics,2007,37(4):13011305.
[10]Doggett B,Lunney J G.Expansion dynamics of laser produced plasma[J].J Appl Phys,2011,109:093304.
[11]Harilal S S,O′Shay B,Tillack M S,et al.Spectroscopic characterization of laserinduced tin plasma[J].J Appl Phys,2005,98:013306.

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