| Literature DB >> 29997307 |
Alexander V Shchagin1,2, Viktor S Miroshnik3, Vladimir I Volkov4, Aleksandr S Kubankin5,6, Oleg O Ivashchuk7.
Abstract
Experiments on acceleration of electrons and production of X-ray radiation with use of ceramic piezoelectric transformers installed in vacuum are described and analyzed. The piezoelectric transformer operates at resonance frequency. Electrons are accelerated from the high-voltage electrode of the ceramic piezoelectric transformer toward the grounded target, where they emit bremsstrahlung and characteristic X-ray radiation in the target material. The returning of the charge to the high-voltage electrode is provided due to electrons emitted from a filament installed in the vicinity of the target. It was found that the X-ray yield increases linearly at increasing of the pressure of the residual gas in the chamber within two orders of magnitude up to about 10 mTorr, when the gas discharge around of the piezoelectric transformer arises. Possibilities for application of piezoelectric transformers for production of accelerating voltage in small-size accelerators are discussed.Entities:
Keywords: X-ray radiation; accelerator; ceramic piezoelectric transformer; vacuum
Year: 2018 PMID: 29997307 PMCID: PMC6073904 DOI: 10.3390/ma11071188
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1The experimental setup. Ceramic piezoelectric transformer 1 is installed between contacts 2; two low-voltage and one high-voltage silver electrodes of the piezoelectric transformer are shown by bold lines; one of the contacts is supplied by digital thermometer 3; the sine signal from the electric field probe 4 penetrates to the input of the amplifier 5; electrons 6 are accelerated from the high voltage electrode towards a thin target 7 during negative high voltage half-wave; electrons 8 move from the filament 9 towards the high voltage electrode during positive high voltage half-wave; X-rays 10 from the target reach the entrance Be window 11 of the X-ray detector 12; the entrance widow of the detector is sunk into the vacuum chamber through the flange 13. Polarization directions are shown by bold arrows in the ceramic piezoelectric transformer bar.
Figure 2The equivalent scheme of the returning of the charge. The sinusoidal high voltage of amplitude is produced at the high voltage electrode of the piezoelectric transformer, is the output capacity of the piezoelectric transformer, VD is the vacuum diode, EE is the emitter of electrons, and T is the target.
Figure 3The diagram of the voltage doubler for verification of the value of the high voltage. D1 and D2 are semiconductor 18 kV diodes DD1800, the capacity of the output capacitor C is 100 pF, EK is the electrostatic kilo-Voltmeter with input capacity 9 pF and resistance >> 1 GΩ.
Figure 4Spectra of X-ray radiation measured at different pressures P of the residual gas are shown in linear (a) and logarithmic (b) scales as functions of photon energy and corresponding number of channel of the spectrometer. The result of the measurement at P = 18 mTorr is shown separately in the extended energy range (c).
Figure 5The X-ray yield as a function of the residual gas pressure. The experimental data are shown by points, calculations by Equation (1) are shown by the solid line.