Diagnostics of an optical discharge plasma sustained in atmospheric air by neodymium laser radiation

1986 ◽  
Vol 16 (9) ◽  
pp. 1231-1236 ◽  
Author(s):  
Igor' A Bufetov ◽  
V V Zherdienko ◽  
V B Fedorov ◽  
V K Fomin
1985 ◽  
Vol 15 (9) ◽  
pp. 1221-1227
Author(s):  
E V Dan'shchikov ◽  
V A Dymshakov ◽  
F V Lebedev ◽  
A V Ryazanov

1985 ◽  
Vol 15 (12) ◽  
pp. 1633-1635 ◽  
Author(s):  
A F Glova ◽  
V F Lebedev ◽  
V P Yartsev

2022 ◽  
Vol 92 (2) ◽  
pp. 209
Author(s):  
В.Н. Зудов ◽  
А.В. Тупикин

The influence of an electric field on the plasma of an optical discharge in subsonic and supersonic air flows has been studied experimentally. The presence of a weak electric field practically does not affect the size of the plasma formation, but, regardless of the configuration of the field lines and the polarity of the applied voltage, it leads to a decrease in the probability of optical breakdown. The experiment has shown that the plasma created by focused laser radiation is very sensitive to the presence of an electric field. When a voltage exceeding 22 kV was applied to the ring electrodes, powerful quasi-stationary streamers were formed in the flow. The presence of an optical discharge plasma made it possible to create an electric discharge in fields with an intensity below the breakdown threshold of the medium. The effect of quenching and the processes of development of an optical discharge were studied depending on the speed and characteristics of the electric field. Quenching of the optical discharge was observed when a voltage of 22 kV and higher was applied. Despite the preservation of the geometric dimensions of the optical discharge, the high-temperature region in the flow can be increased by using electric streamers. This leads to an increase in the energy supplied to the flow, and thus allows combustion to be initiated and flame stabilized at higher flow rates. Key words: experimental modeling, laser radiation, optical breakdown, electric field, electric discharge, sub- and supersonic air flow.


1981 ◽  
Vol 11 (5) ◽  
pp. 670-671 ◽  
Author(s):  
E V Zhuzhukalo ◽  
A N Kolomiĭskiĭ ◽  
A F Nastoyashchiĭ ◽  
L N Plyashkevich

2021 ◽  
Vol 63 (12) ◽  
pp. 2070-2075
Author(s):  
Hongda Li ◽  
Y. N. Panchenko ◽  
M. V. Andreev ◽  
A. V. Puchikin ◽  
S. A. Yampolskaya ◽  
...  

2021 ◽  
Vol 18 (3) ◽  
pp. 77-85
Author(s):  
I. A. Eliseenko ◽  
S. G. Struts ◽  
V. V. Stupak

Objective. To assess the effect of neodymium laser radiation on the recurrence rate and continued growth of primary extramedullary tumors on the basis of clinical data obtained in the long-term follow-up period in operated patients with extramedullary tumors.Material and Methods. The long-term results of surgical treatment of two groups of patients (n = 412) with primary extramedullary tumors operated on from 1998 to 2014 were studied and systematized. Patients of comparison group (n = 277; 67.2 %) underwent removal of tumors using standard microsurgical techniques, and the neoplasms in patients of the study group (n = 135; 32.8 %) were removed with additionally used neodymium (Nd:YAG) laser.Results. The use of the developed laser technologies for the resection of extramedullary intracanal primary tumors made it possible to reliably reduce the relative number of recurrence and continued growth from 11.1 % to 1.2% compared with patients treated with standard surgery methods. The proportion of recurrences was 3.5 %, all of them were detected only in the group with the classical technique of tumor resection (p <0.01).Conclusion. The use of a neodymium laser as an additional technology to the classical microsurgical resection of extramedullary tumors is effective for the prevention of their recurrence and continued growth.


10.14311/1123 ◽  
2009 ◽  
Vol 49 (2) ◽  
Author(s):  
M. Nevrkla

A device producing Z-pinching plasma as a source of XUV radiation is described. Here a ceramic capacitor bank pulse-charged up to 100 kV is discharged through a pre-ionized gas-filled ceramic tube 3.2 mm in diameter and 21 cm in length. The discharge current has amplitude of 20 kA and a rise-time of 65 ns. The apparatus will serve as experimental device for studying of capillary discharge plasma, for testing X-ray optics elements and for investigating the interaction of water-window radiation with biological samples. After optimization it will be able to produce 46.9 nm laser radiation with collision pumped Ne-like argon ions active medium. 


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