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Spatial characterization of laser-induced plasmas by deconvolution of spatially resolved spectra

机译:通过空间分辨光谱的反卷积对激光诱导的等离子体进行空间表征

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摘要

The spatial characterization of laser-induced plasmas, including their temperature, electron density, and relative atom density, has been carried out by emission spectroscopy. The plasmas were generated with iron samples in air and argon at atmospheric pressure. An imaging spectrometer equipped with an intensified CCD detector procured spectra with spatial resolution. The plasma characterization was made at three temporal gates (2-3, 5-6, and 9-11 μs) to permit the plasma's evolution to be studied. A deconvolution procedure was developed to transform the measured intensity, integrated along the line of sight, into the radial distribution of emissivity. Temperature and electron density distributions were obtained under the assumption of local thermodynamic equilibrium and Stark broadening of the emission lines. The relative atom density distributions in the plasma of the Fe atoms arising from the sample and of the Ar atoms arising from the ambient gas were determined and evidenced an important interaction between the plasma and the surrounding atmosphere.
机译:激光诱导等离子体的空间表征,包括其温度,电子密度和相对原子密度,已通过发射光谱法进行了表征。等离子体是在大气压力下在空气和氩气中由铁样品生成的。配备增强型CCD检测器的成像光谱仪可获取具有空间分辨率的光谱。在三个时间门(2-3、5-6和9-11μs)进行等离子体表征,以研究等离子体的演变。开发了反褶积程序,以将沿视线积分的测量强度转换为辐射率的径向分布。在局部热力学平衡和发射线的斯塔克展宽的假设下获得温度和电子密度分布。确定了样品中的Fe原子和环境气体中的Ar原子在等离子体中的相对原子密度分布,并证明了等离子体与周围大气之间的重要相互作用。

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    《Applied optics》 |2003年第30期|共9页
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  • 正文语种 eng
  • 中图分类 光学;
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