Generation of High Frequency Pin-hole Discharge in Water Solutions

This paper presents results on electric discharge generation by high frequency high voltage (15–100 kHz) in NaCl solutions with different initial conductivity (100–1300 mS cm-1), and compares them with DC discharge in the same electrode configuration. A batch plasma reactor in the pin-hole configura...

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Main Authors: Krčma František, Kozáková Zdenka, Vašíček Michal
Format: Article
Language:English
Published: De Gruyter 2014-12-01
Series:Open Chemistry
Subjects:
Online Access:https://doi.org/10.1515/chem-2015-0080
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spelling doaj-28a3fdfab5d14f9fb0b847bca104ab6c2021-09-06T19:19:33ZengDe GruyterOpen Chemistry2391-54202014-12-0113110.1515/chem-2015-0080chem-2015-0080Generation of High Frequency Pin-hole Discharge in Water SolutionsKrčma František0Kozáková Zdenka1Vašíček Michal2Faculty of Chemistry, Brno University of Technology, Purkyňova 464/118, 612 00 Brno, Czech RepublicFaculty of Chemistry, Brno University of Technology, Purkyňova 464/118, 612 00 Brno, Czech RepublicFaculty of Chemistry, Brno University of Technology, Purkyňova 464/118, 612 00 Brno, Czech RepublicThis paper presents results on electric discharge generation by high frequency high voltage (15–100 kHz) in NaCl solutions with different initial conductivity (100–1300 mS cm-1), and compares them with DC discharge in the same electrode configuration. A batch plasma reactor in the pin-hole configuration contained a ceramic dielectric barrier separating two planar stainless steel electrodes; barrier thickness of 0.6 mm and pin-hole diameter of 0.6 mm was used. Lissajous charts were evaluated from electric measurements for different discharge phases (electrolysis, bubble formation and discharge regular operation). Breakdown moments for different solution conductivities were determined from discharge power evaluation as a function of applied frequency. Breakdown voltage amplitude was decreased by the increasing conductivity in both regimes while frequency and current decreased. Changes of physical parameters (temperature, solution conductivity and pH) as well as production of hydrogen peroxide at different solution conductivities were compared. Solution conductivity was increased in both discharge regimes and with the initial conductivity value. Solution temperature was increased by the discharge in both regimes and with the increasing initial conductivity, too. Solution pH dropped to acidic conditions when HF or DC positive regime was applied while it was enhanced by DC negative regime.https://doi.org/10.1515/chem-2015-0080discharges in liquids electric measurements breakdown parameters solution conductivity hydrogen peroxide generation
collection DOAJ
language English
format Article
sources DOAJ
author Krčma František
Kozáková Zdenka
Vašíček Michal
spellingShingle Krčma František
Kozáková Zdenka
Vašíček Michal
Generation of High Frequency Pin-hole Discharge in Water Solutions
Open Chemistry
discharges in liquids
electric measurements
breakdown parameters
solution conductivity
hydrogen peroxide generation
author_facet Krčma František
Kozáková Zdenka
Vašíček Michal
author_sort Krčma František
title Generation of High Frequency Pin-hole Discharge in Water Solutions
title_short Generation of High Frequency Pin-hole Discharge in Water Solutions
title_full Generation of High Frequency Pin-hole Discharge in Water Solutions
title_fullStr Generation of High Frequency Pin-hole Discharge in Water Solutions
title_full_unstemmed Generation of High Frequency Pin-hole Discharge in Water Solutions
title_sort generation of high frequency pin-hole discharge in water solutions
publisher De Gruyter
series Open Chemistry
issn 2391-5420
publishDate 2014-12-01
description This paper presents results on electric discharge generation by high frequency high voltage (15–100 kHz) in NaCl solutions with different initial conductivity (100–1300 mS cm-1), and compares them with DC discharge in the same electrode configuration. A batch plasma reactor in the pin-hole configuration contained a ceramic dielectric barrier separating two planar stainless steel electrodes; barrier thickness of 0.6 mm and pin-hole diameter of 0.6 mm was used. Lissajous charts were evaluated from electric measurements for different discharge phases (electrolysis, bubble formation and discharge regular operation). Breakdown moments for different solution conductivities were determined from discharge power evaluation as a function of applied frequency. Breakdown voltage amplitude was decreased by the increasing conductivity in both regimes while frequency and current decreased. Changes of physical parameters (temperature, solution conductivity and pH) as well as production of hydrogen peroxide at different solution conductivities were compared. Solution conductivity was increased in both discharge regimes and with the initial conductivity value. Solution temperature was increased by the discharge in both regimes and with the increasing initial conductivity, too. Solution pH dropped to acidic conditions when HF or DC positive regime was applied while it was enhanced by DC negative regime.
topic discharges in liquids
electric measurements
breakdown parameters
solution conductivity
hydrogen peroxide generation
url https://doi.org/10.1515/chem-2015-0080
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