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Titlebook: High-Energy Molecular Lasers; Self-Controlled Volu V. V. Apollonov Book 2016 Springer International Publishing Switzerland 2016 Electric Fi

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Formation of an SSVD for the Pumping of CO2 Lasersing of a discharge gap by an electron flux from an auxiliary-discharge plasma. It was found that this method was suitable for large interelectrode gaps. Distortion of the electric field in the gap by the space charge of the electron flux was found to play an important role in the fomiation of the di
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Large-Aperture CO2 Amplifiere. The SSVD formed as a result of filling the discharge gap with a flux of electrons from the plasma of an auxiliary discharge initiated under a grid cathode with sharp edges. The small-signal gain on the optic axis was 3.3 m. and its distribution over the aperture was nearly uniform.
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Dynamic Profiling of an Electric Field in the Case of Formation of an SSVD Under Conditions of Stronns. The conditions for such ignition were determined. A discharge of this kind could be used in compact CO. lasers with apertures of up to 30 cm and specific output energies of up to 48 J/l, when preionization was provided by radiation from commercial flashlamps with quartz bulbs.
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Small-Signal Gain of CO2 Lasers Pumped by an SSVDm.. Initiation of the discharge by a beam of accelerated electrons and previous filling of the discharge gap with electrons in the case of a long leading edge of the voltage pulses ensured more homogeneous pumping of the active medium compared with preionization by ultraviolet radiation in the case
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Feasibility of Increasing the Interelectrode Distance in an SSVD by Filling the Discharge Gap with Eof the electric field in a discharge gap in the process of formation of an SSVD in the case of large interelectrode distances . in CO.–N.–He gas mixtures at atmospheric pressure. A SSVD was established in systems of electrodes without any special surface profile and the characteristics of an active
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