DocumentCode :
1597036
Title :
Laser shadowgraphy, two-wavelength laser interferometry, schlieren imaging and optical emission spectroscopy diagnostics of laser induced plasmas in different phases and at phase boundaries
Author :
Thiyagarajan, Magesh ; Williamson, Kenneth
Author_Institution :
Plasma Eng. Res. Lab. (PERL), Texas A&M Univ. - Corpus Christi, Corpus Christi, TX, USA
fYear :
2013
Firstpage :
1
Lastpage :
1
Abstract :
Summary form only given. Fast gating and high resolution laser shadowgraphy, two wavelength laser interferometry, Schlieren imaging and optical emission spectroscopy diagnostics were carried out to experimentally investigate pulsed 1064 nm Nd:YAG laser-induced breakdown plasma in air at 760 Torr1 and in liquid (water) and in liquid-metal phase boundaries. Three different experimental laser energies and pulse widths such as 170 mJ at 8 ns, 130 mJ at 7 ns and 65 mJ at 12 ns are studied. The laser pulses were focused down to a ~7 micron spot size in air and the resulting laser flux densities range from 4-14 TW/cm2. The detailed experimental arrangements and results will be presented. A 532 nm laser shadowgraphy coupled with high speed and high resolution image capturing diagnostics has been established to investigate spatiotemporal evolution and hydrodynamic behavior of the 1064 nm laser induced plasma and neutral density shock during the formation, expansion and collapsing stages. The active plasma lifetime through plasma self-luminescence measurements indicate variations from 200-500 ns for the three laser pulses. Shock propagation velocity and plasma volume for three laser pulse series indicate similarly shaped profiles at different expansion velocities. Early plasma expansion velocities of 20 km/s were measured and using Hugoniot relations the neutral shock pressures and temperatures were inferred and the results at the early plasma expansion stage were found to be over 1000 atmospheres and 4 eV. Laser induced plasma breakdown and its resulting shockwave generation and bubble formation in water was also investigated and characterized. The results of these investigations will be presented. Two wavelength laser interferometry based plasma density measurements will be presented. Plasma temperature measurements using optical emission spectroscopy diagnostics will be presented.
Keywords :
plasma density; plasma diagnostics; plasma production by laser; plasma shock waves; plasma temperature; spatiotemporal phenomena; Hugoniot relations; Nd:YAG laser-induced breakdown plasma; Schlieren imaging; bubble formation; electron volt energy 4 eV; energy 130 mJ; energy 170 mJ; energy 65 mJ; expansion velocity; high resolution laser shadowgraphy; high-speed high-resolution image capturing diagnostics; hydrodynamic behavior; laser flux density; laser induced plasma breakdown; laser pulses; liquid-metal phase boundaries; micron spot size; neutral density shock; neutral shock pressure; neutral shock temperature; optical emission spectroscopy diagnostics; phase boundaries; plasma collapsing stage; plasma density measurement; plasma expansion stage; plasma formation stage; plasma lifetime; plasma self-luminescence measurements; plasma temperature measurement; plasma volume; pressure 760 torr; pulse width; shock propagation velocity; shockwave generation; spatiotemporal evolution; time 12 ns; time 7 ns; time 8 ns; two-wavelength laser interferometry; velocity 20 km/s; wavelength 1064 nm; wavelength 532 nm; High-speed optical techniques; Lasers; Measurement by laser beam; Optical imaging; Optical interferometry; Plasmas; Stimulated emission;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science (ICOPS), 2013 Abstracts IEEE International Conference on
Conference_Location :
San Francisco, CA
ISSN :
0730-9244
Type :
conf
DOI :
10.1109/PLASMA.2013.6635017
Filename :
6635017
Link To Document :
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