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Keywords = pulsed corona discharge

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15 pages, 7595 KB  
Article
Modeling the Interaction of Pulsed EHD Forces and Aerodynamic Shielding on Sub-Micron Particles
by Aleksandr Šabanovič, Jonas Matijošius and Piotr Jaskowski
Actuators 2026, 15(7), 405; https://doi.org/10.3390/act15070405 - 20 Jul 2026
Viewed by 285
Abstract
Electrohydrodynamic (EHD) actuators offer a promising approach for active particulate matter (PM) control in heavy-duty and marine exhaust systems. However, continuous DC corona discharge often leads to excessive energy consumption and is susceptible to aerodynamic re-entrainment in high-velocity flows. This study introduces an [...] Read more.
Electrohydrodynamic (EHD) actuators offer a promising approach for active particulate matter (PM) control in heavy-duty and marine exhaust systems. However, continuous DC corona discharge often leads to excessive energy consumption and is susceptible to aerodynamic re-entrainment in high-velocity flows. This study introduces an idealized transient advection mechanism combining a macroscopic corrugated duct geometry with high-frequency pulsed EHD actuation. A fully coupled, time-dependent multiphysics model—integrating RANS turbulent flow, Poisson-Nernst-Planck space charge transport, and Lagrangian discrete particle tracing—was developed to analyze the physical kinetics of 0.2 µm soot particles. The results demonstrate that the corrugation troughs act as effective aerodynamic dead zones with partial electrostatic shielding, creating aerodynamic and electrostatic dead zones. During active microsecond voltage pulses (25 kV peak), intense Coulombic forces rapidly overcome turbulent drag, driving kinetic injection of particles into the corrugation troughs. During the resting phase, particles remain securely trapped by aerodynamic shielding, significantly mitigating the risk of aerodynamic re-entrainment under the simulated conditions. A comprehensive parametric analysis revealed that an optimized 500 Hz pulse with a 5% duty cycle maintains a robust 82.7% trapping efficiency. Compared to standard continuous DC precipitators, this pulsed actuation strategy requires an idealized active corona power of 15.3 mW. This study provides fundamental physical insights into transient EHD flows and establishes optimized design criteria for fundamental EHD transport models. Full article
(This article belongs to the Special Issue Design, Hydrodynamics, and Control of Mechatronic Systems)
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16 pages, 6922 KB  
Article
The Removal of Single and Binary Components of Hydrogen Sulfide and Dimethyl Disulfide in a Post-Plasma Catalysis Reactor: The Correlation of the Ozone Demand Factor with Specific Input Energy
by Jian Zhang, Xueyu Hu, Min Zhan, Weiqiang Zhu and Chao Long
Catalysts 2026, 16(7), 630; https://doi.org/10.3390/catal16070630 - 13 Jul 2026
Viewed by 308
Abstract
Odorous gases such as hydrogen sulfide (H2S) and dimethyl disulfide (DMDS) pose significant risks to human health and environmental quality. Non-thermal plasma (NTP) technology offers an effective alternative for odor treatment, but challenges remain regarding byproduct formation (e.g., ozone) and energy [...] Read more.
Odorous gases such as hydrogen sulfide (H2S) and dimethyl disulfide (DMDS) pose significant risks to human health and environmental quality. Non-thermal plasma (NTP) technology offers an effective alternative for odor treatment, but challenges remain regarding byproduct formation (e.g., ozone) and energy efficiency. In this study, a post-plasma catalysis (PPC) system combining a wire cylinder pulsed corona discharge reactor with a CuO/MnO2-C ozone decomposition catalyst was employed to remove single and binary components of H2S and DMDS. The effects of specific input energy (SIE), inlet concentration (Cin), and catalyst on removal efficiency, energy yield, and ozone emission were systematically investigated. A novel parameter, the ozone demand factor (Df), was defined to quantify the relationship between ozone consumption and pollutant removal. The results show that for single-component removal, regulating SIE/Cin within specific ranges (0.22–0.25 for H2S and ~0.72 for DMDS) enables simultaneous low outlet concentrations of both pollutants and ozone. For binary H2S-DMDS mixtures, ln(Df) exhibits a strong linear positive correlation with SIE/Σ(Cin) (R2 = 0.968), and controlling SIE/Σ(Cin) at 0.28 yields ln(Df) ≈ 4, ensuring outlet H2S < 5.0 ppm, DMDS < 3.0 ppm, and ozone < 5.0 ppm. This study demonstrates that the ozone demand factor serves as a critical control parameter for optimizing PPC systems, providing a practical tool for balancing pollutant removal and ozone emission in industrial odor treatment applications. Full article
(This article belongs to the Section Catalytic Materials)
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17 pages, 976 KB  
Article
Pulsed Corona Discharge in Valorisation of Urine as a Sustainable Source of Nutrients: Targeted Oxidation of Pharmaceutical Residues and Inhibition of Urea Enzymatic Hydrolysis
by Irina Petrochenko, Niina Dulova and Sergei Preis
Processes 2026, 14(12), 1972; https://doi.org/10.3390/pr14121972 - 17 Jun 2026
Viewed by 310
Abstract
Human urine is a sustainable source of nutrients with significant fertilizer potential. The presence of pharmaceutical residues, however, obstructs its use in agriculture. Also, the loss of ammonia formed in enzyme-catalyzed hydrolysis of urea in stored urine compromises the approach. This study presents [...] Read more.
Human urine is a sustainable source of nutrients with significant fertilizer potential. The presence of pharmaceutical residues, however, obstructs its use in agriculture. Also, the loss of ammonia formed in enzyme-catalyzed hydrolysis of urea in stored urine compromises the approach. This study presents gas-phase pulsed corona discharge (PCD) used in the oxidation of pharmaceuticals and enzymes, improving the applicability of urine as a fertilizer. The prioritized beta-blocker propranolol (PR) and antibiotic tetracycline were chosen as target micropollutants for the experimental study, demonstrating enhanced oxidation relative to matrix constituents. Tetracycline showed its more recalcitrant character in urine than PR for its more pronounced matrix-mediated scavenging or complexation. The PCD oxidation significantly lowered the urease enzyme activity, thus preventing nitrogen loss through ammonia volatilization. According to the phytotoxicity assessment using the Pisum sativum garden peas test, urine PCD-treated with the energy dose sufficient to substantially degrade pharmaceuticals is not phytotoxic when applied at recommended agronomic doses. The findings reveal the use of PCD as an energy-efficient technology for producing safe and stable urine-derived fertilizer. Full article
(This article belongs to the Section Environmental and Green Processes)
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25 pages, 2748 KB  
Article
Development and Modeling of an Advanced Power Supply System for Electrostatic Precipitators to Improve Environmental Efficiency
by Askar Abdykadyrov, Amandyk Tuleshov, Nurzhigit Smailov, Zhandos Dosbayev, Sunggat Marxuly, Yerlan Sarsenbayev, Beket Muratbekuly and Nurlan Kystaubayev
Designs 2026, 10(2), 34; https://doi.org/10.3390/designs10020034 - 17 Mar 2026
Cited by 2 | Viewed by 1112
Abstract
This study presents the engineering design and system-level modeling of a high-frequency power supply architecture for electrostatic precipitators intended to improve particulate removal efficiency and operational stability. Atmospheric air pollution by fine particulate matter (PM2.5) remains one of the most critical challenges in [...] Read more.
This study presents the engineering design and system-level modeling of a high-frequency power supply architecture for electrostatic precipitators intended to improve particulate removal efficiency and operational stability. Atmospheric air pollution by fine particulate matter (PM2.5) remains one of the most critical challenges in environmental protection and public health. Although electrostatic precipitators (ESPs) are widely used for industrial gas cleaning, the efficiency and stability of conventional 50 Hz power supplies are limited under conditions of strongly nonlinear corona discharge and high-resistivity dust. This paper presents the development and investigation of an advanced high-frequency power supply system for electrostatic precipitators based on a coupled electrical–electrophysical mathematical model. The work follows an engineering design methodology that integrates converter topology selection, electrophysical modeling of corona discharge, and control-oriented system optimization. The proposed model provides a unified description of electric field formation, space charge accumulation, ion transport, and particle motion in the corona discharge region. The simulation results show that in the operating voltage range of 10–100 kV, the electric field strength reaches (2–5)·106 V/m, the ion concentration stabilizes in the range of 1013–1015 m−3, and the particle drift velocity increases from approximately 0.05 to 0.3 m/s, leading to an increase in collection efficiency from about 55% to 93%. It is demonstrated that the proposed system ensures stable output voltage regulation within ±2.5–5% even under strongly nonlinear load conditions. The use of an LC output filter (C = 1–10 nF, L = 10–100 mH) reduces the voltage ripple from about 14% to 1.4–4.8% and significantly improves the transient response. In addition, adaptive adjustment of the pulse repetition frequency in the range of 10–200 kHz makes it possible to reduce energy consumption by 12–18% while simultaneously increasing the collection efficiency by 8–15%. The obtained results confirm that the proposed high-frequency power supply architecture provides a physically well-founded and energy-efficient solution for improving the environmental performance and operational stability of electrostatic precipitators. Full article
(This article belongs to the Section Energy System Design)
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16 pages, 5313 KB  
Article
Upscaling of Toluene Oxidation Using Water-Sprinkled Pulsed Corona Discharge and Photocatalysis
by Daniel A. Teittinen, Sergei Preis and Juri Bolobajev
Processes 2025, 13(9), 2982; https://doi.org/10.3390/pr13092982 - 18 Sep 2025
Cited by 2 | Viewed by 1083
Abstract
Advanced oxidation processes (AOPs) utilising a hydroxyl radical (•OH), a strong oxidant, are seen as a promising solution for removing hazardous and recalcitrant pollutants from waste streams. Among AOPs, non-thermal plasmas, especially pulsed corona discharge (PCD), enable the abatement of hazardous volatile organic [...] Read more.
Advanced oxidation processes (AOPs) utilising a hydroxyl radical (•OH), a strong oxidant, are seen as a promising solution for removing hazardous and recalcitrant pollutants from waste streams. Among AOPs, non-thermal plasmas, especially pulsed corona discharge (PCD), enable the abatement of hazardous volatile organic compounds (VOCs) with high energy efficiency. This study demonstrates the viability of upscaling PCD technology with water sprinkling in degrading the VOC toluene using a semi-pilot scale plasma reactor. A toluene–air mixture was treated with varying gas-phase toluene concentrations (30–100 ppm) and pulse repetition frequencies (25–800 pps), achieving toluene removal of 5–55% in PCD and an additional 10–18% in PCO, as well as excellent toluene removal energy efficiencies from 9.0 to 37.1 g kW−1 h−1. The process design with water sprinkling provides additional advantages compared to dry reactors—the water surface serves as a source of hydroxyl radicals and scrubs the air from degradation by-products resulting from the incomplete oxidation of target pollutants. Transformation products of toluene were identified, and an oxidation pathway via hydroxylation of the aromatic ring was suggested as the major route towards ring-opening reactions. A photocatalytic oxidation reactor with TiO2 catalyst plates, following PCD as a post-treatment, enabled additional removal of residual contaminants, also converting residual ozone to oxygen. The PCD reactor with water sprinkling and post-plasma photocatalysis shows promising results for upscaling the process. Full article
(This article belongs to the Special Issue Mechanisms, Devices and Applications of Photocatalytic Processes)
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14 pages, 4873 KB  
Article
Design and Testing of MEMS Component for Electromagnetic Pulse Protection
by Shiyi Li, Hengzhen Feng, Wenzhong Lou, Yuecen Zhao, Sining Lv and Wenxing Kan
Sensors 2025, 25(1), 221; https://doi.org/10.3390/s25010221 - 2 Jan 2025
Cited by 4 | Viewed by 4683
Abstract
With the demand for high-safety, high-integration, and lightweight micro- and nano-electronic components, an MEMS electromagnetic energy-releasing component was innovatively designed based on the corona discharge theory. The device subverted the traditional device-level protection method for electromagnetic energy, realizing the innovation of adding a [...] Read more.
With the demand for high-safety, high-integration, and lightweight micro- and nano-electronic components, an MEMS electromagnetic energy-releasing component was innovatively designed based on the corona discharge theory. The device subverted the traditional device-level protection method for electromagnetic energy, realizing the innovation of adding a complex circuit system to the integrated chip through micro-nanometer processing technology and enhancing the chip’s size from the centimeter level to the micron level. In this paper, the working performance of the MEMS electromagnetic energy-releasing component was verified through a combination of a simulation, a static experiment, and a dynamic test, and a characterization test of the tested MEMS electromagnetic energy-releasing component was carried out to thoroughly analyze the effect of the MEMS electromagnetic energy-releasing component. The results showed that after the strong electromagnetic pulse injection, the pulse breakdown voltage of the MEMS electromagnetic energy-releasing component increased exponentially in terms of the pulse injection voltage, and the residual pulse current decreased significantly from one-third to one-half of the original, representing a significant protective effect. In a DC environment, the breakdown voltage of the needle–needle structure of the MEMS electromagnetic energy-releasing component was 144 V, and the on-time was about 0.5 ms. Full article
(This article belongs to the Section Physical Sensors)
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13 pages, 2856 KB  
Article
Oxidation of Airborne m-Xylene in Pulsed Corona Discharge: Impact of Water Sprinkling
by Kristen Altof, Marina Krichevskaya, Sergei Preis and Juri Bolobajev
ChemEngineering 2024, 8(5), 99; https://doi.org/10.3390/chemengineering8050099 - 1 Oct 2024
Cited by 2 | Viewed by 2150
Abstract
Plasma from electric discharges can be used in the abatement of volatile organic compounds (VOCs). The application of gas-phase pulsed corona discharge (PCD) in air–water mixtures provides favorable conditions for the oxidation of VOCs at unsurpassed energy efficiency. This research investigates the impact [...] Read more.
Plasma from electric discharges can be used in the abatement of volatile organic compounds (VOCs). The application of gas-phase pulsed corona discharge (PCD) in air–water mixtures provides favorable conditions for the oxidation of VOCs at unsurpassed energy efficiency. This research investigates the impact of water sprinkling on PCD performance in the oxidation of m-xylene as a model compound. Experimental research into the plasma treatment of continuous air flow was undertaken using the PCD reactor in dry and water-sprinkled modes. Water sprinkling more than doubled the m-xylene oxidation rate, which can be attributed to abundant OH-radicals produced at the plasma–water interface. Water sprinkling substantially reduced the formation of nitrous oxide, which is considered to be a secondary pollutant in the outlet air. Ozone is considered a by-product helping the subsequent photocatalytic oxidation of potential residues and photocatalyst maintenance. The use of water-sprinkled PCD is a promising approach to energy-efficient abatement of VOCs. Full article
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27 pages, 56161 KB  
Article
Locating Insulation Defects in HV Substations Using HFCT Sensors and AI Diagnostic Tools
by Javier Ortego, Fernando Garnacho, Fernando Álvarez, Eduardo Arcones and Abderrahim Khamlichi
Sensors 2024, 24(16), 5312; https://doi.org/10.3390/s24165312 - 16 Aug 2024
Cited by 5 | Viewed by 3295
Abstract
In general, a high voltage (HV) substation can be made up of multiple insulation subsystems: an air insulation subsystem (AIS), gas insulation subsystem (GIS), liquid insulation subsystem (power transformers), and solid insulation subsystem (power cables), all of them with their grounding structures interconnected [...] Read more.
In general, a high voltage (HV) substation can be made up of multiple insulation subsystems: an air insulation subsystem (AIS), gas insulation subsystem (GIS), liquid insulation subsystem (power transformers), and solid insulation subsystem (power cables), all of them with their grounding structures interconnected and linked to the substation earth. Partial discharge (PD) pulses, which are generated in a HV apparatus belonging to a subsystem, travel through the grounding structures of the others. PD analyzers using high-frequency current transformer (HFCT) sensors, which are installed at the connections between the grounding structures, are sensitive to these traveling pulses. In a substation made up of an AIS, several non-critical PD sources can be detected, such as possible corona, air surface, or floating discharges. To perform the correct diagnosis, non-critical PD sources must be separated from critical PD sources related to insulation defects, such as a cavity in a solid dielectric material, mobile particles in SF6, or surface discharges in oil. Powerful diagnostic tools using PD clustering and phase-resolved PD (PRPD) pattern recognition have been developed to check the insulation condition of HV substations. However, a common issue is how to determine the subsystem in which a critical PD source is located when there are several PD sources, and a critical one is near the boundary between two HV subsystems, e.g., a cavity defect located between a cable end and a GIS. The traveling direction of the detected PD is valuable information to determine the subsystem in which the insulation defect is located. However, incorrect diagnostics are usually due to the constraints of PD measuring systems and inadequate PD diagnostic procedures. This paper presents a diagnostic procedure using an appropriate PD analyzer with multiple HFCT sensors to carry out efficient insulation condition diagnoses. This PD procedure has been developed on the basis of laboratory tests, transient signal modeling, and validation tests. The validation tests were carried out in a special test bench developed for the characterization of PD analyzers. To demonstrate the effectiveness of the procedure, a real case is also presented, where satisfactory results are shown. Full article
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16 pages, 5841 KB  
Article
Separation and Classification of Partial Discharge Sources in Substations
by João Victor Jales Melo, George Rossany Soares Lira, Edson Guedes Costa, Pablo Bezerra Vilar, Filipe Lucena Medeiros Andrade, Ana Cristina Freitas Marotti, Andre Irani Costa, Antonio Francisco Leite Neto and Almir Carlos dos Santos Júnior
Energies 2024, 17(15), 3804; https://doi.org/10.3390/en17153804 - 2 Aug 2024
Cited by 8 | Viewed by 3446
Abstract
This work proposes a methodology for noise removal, separation, and classification of partial discharges in electrical system assets. Partial discharge analysis is an essential method for fault detection and evaluation of the operational conditions of high-voltage equipment. However, it faces several limitations in [...] Read more.
This work proposes a methodology for noise removal, separation, and classification of partial discharges in electrical system assets. Partial discharge analysis is an essential method for fault detection and evaluation of the operational conditions of high-voltage equipment. However, it faces several limitations in field measurements due to interference from radio signals, television transmissions, WiFi, corona signals, and multiple sources of partial discharges. To address these challenges, we propose the development of a clustering model to identify partial discharge sources and a classification model to identify the types of discharges. New features extracted from pulses are introduced to model the clustering and classification of discharge sources. The methodology is tested in the laboratory with controlled partial discharge sources, and field tests are conducted in substations to assess its practical applicability. The results of laboratory tests achieved an accuracy of 85% in classifying discharge sources. Field tests were performed in a substation of the Eletrobras group, allowing the identification of at least three potentially defective current transformers. Full article
(This article belongs to the Special Issue Energy, Electrical and Power Engineering 2024)
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2 pages, 130 KB  
Abstract
Pulsed Corona Discharge Plasma Combined with Photocatalytic Oxidation Technology for the Degradation of Volatile Organic Compounds in Air
by Juri Bolobajev, Kristen Altof, Marina Krichevskaya and Sergei Preis
Proceedings 2023, 92(1), 81; https://doi.org/10.3390/proceedings2023092081 - 24 Jan 2024
Viewed by 1241
Abstract
The anthropogenic impact on the environment has long been known to negatively affect the quality of air. Volatile organic compounds (VOCs) are widely used in domestic and industrial applications, generally as solvents. They are mobile in both gaseous and aqueous phases, and thus [...] Read more.
The anthropogenic impact on the environment has long been known to negatively affect the quality of air. Volatile organic compounds (VOCs) are widely used in domestic and industrial applications, generally as solvents. They are mobile in both gaseous and aqueous phases, and thus their spread in environment could have massive effect with dramatically negative consequences. Pulsed corona discharge (PCD) and photocatalytic oxidation (PCO) are considered as efficient and eco-friendly methods for the energy-efficient abatement of gaseous hazardous pollutants. One of the main problems of PCD application in air treatment, however, is residual ozone, a side product of air ionization considered as secondary air pollution. Photocatalytic processes are known to degrade ozone extending simultaneously the photocatalyst lifetime. Thus, combining PCD and PCO in a two-step treatment system could solve the problem of the presence of residual ozone and complement each other’s strengths. In this study, experiments were conducted in separate systems, i.e. photocatalysis and plasma, making a prerequisite for the progress in the combined PCD/PCO applications. A prototype PCO reactor was built and tested with ozone and 2-methoxyethanol (2ME) in combinations. 2ME was chosen as a hazardous model VOC used in industry in solvents and paints. For the PCD experiments xylene was tested. Being refractory air pollutant, extensively studied for its removal, xylene provides a basis for the comparison of its abatement methods. The PCD treatment showed unequalled energy efficiencies in gaseous xylene oxidation. With respect to PCO experiments, the degradation of 2ME and ozone was 40% and 95%, respectively. High ozone degradation performed by PCO confirms the expediency of proposed air cleaning combination. Full article
(This article belongs to the Proceedings of International Conference EcoBalt 2023 "Chemicals & Environment")
14 pages, 4731 KB  
Article
Microanalysis of Active Nitrogen Oxides (RONS) Generation Characteristics during DC Negative Corona Discharge at a Needle-Plate Electrode
by Jinqiang Shi, Fubao Jin, Shangang Ma, Xinhe Liu, Xuejian Leng and Keyuan Chen
Plasma 2023, 6(4), 649-662; https://doi.org/10.3390/plasma6040045 - 27 Oct 2023
Cited by 9 | Viewed by 3296
Abstract
The DC negative corona of needle-plate electrodes can generate atmospheric pressure low-temperature plasma active particles, which have important effects on biological mutagenesis. The DC negative corona discharge of an air needle-plate electrode with effective consideration of NOx particles was simulated and the [...] Read more.
The DC negative corona of needle-plate electrodes can generate atmospheric pressure low-temperature plasma active particles, which have important effects on biological mutagenesis. The DC negative corona discharge of an air needle-plate electrode with effective consideration of NOx particles was simulated and the Trichel pulse current was obtained, focusing on the development of particles and the distribution of active nitrogen oxides (RONS) at four moments in the pulse process. The simulation results indicate that the positive ions (N2+ and O2+) and negative ions (O and O2) were closely related to the current changes, and the negative ions (O and O2) presented a typical stratification phenomenon. RONS (H2O2, O3, and NO) were approximately uniformly distributed above the level of the plate electrode at the same instant, with H2O2 and O3 except for the area below the needle tip. They trended to a cumulative increase in concentration with time. This study provides a theoretical basis for corona discharge plasma seed treatment technology. Full article
(This article belongs to the Special Issue Feature Papers in Plasma Sciences 2023)
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18 pages, 5837 KB  
Article
A Numerical Simulation Study on DC Positive Corona Discharge Characteristics at the Conductor’s Tip Defect
by Shenghui Wang, Jiamin Mai and Lihong Wang
Appl. Sci. 2023, 13(18), 10472; https://doi.org/10.3390/app131810472 - 19 Sep 2023
Cited by 2 | Viewed by 3263
Abstract
For investigating the relationship between the surface corona discharge of a DC wire and other influencing factors, a hybrid numerical model based on a fluid-chemical reaction was proposed to simulate the discharge process at the tip defect of the wire. Under different defect [...] Read more.
For investigating the relationship between the surface corona discharge of a DC wire and other influencing factors, a hybrid numerical model based on a fluid-chemical reaction was proposed to simulate the discharge process at the tip defect of the wire. Under different defect geometries and gas pressures achieved via simulation, the microscopic process of the reaction and movement of electrons and heavy particles during a positive corona discharge was studied, and characteristic parameters such as corona inception voltage and discharge current were analyzed. Furthermore, through the corona cage test, for a specific electrode configuration, corona inception voltages under different pressures were compared and verified, which showed that the model was reasonable. The results showed that the maximum electron density of the streamer head was about 1 × 1020 m−3, the rise time of the pulse current was about 10 ns, and the decay time was about 300–500 ns. The corona inception voltage decreased with an increase in the tip height and decreases in the tip curvature radius, conductor radius, and background air pressure; the amplitude of the pulse current increased with increases in the wire radius and curvature radius of the defect tip and decreases in tip height and background air pressure. The experimental results are consistent with the simulation results, which verifies the reasonability of the model. Full article
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19 pages, 4602 KB  
Article
New Synthetic Partial Discharge Calibrator for Qualification of Partial Discharge Analyzers for Insulation Diagnosis of HVDC and HVAC Grids
by Abderrahim Khamlichi, Fernando Garnacho and Pascual Simón
Sensors 2023, 23(13), 5955; https://doi.org/10.3390/s23135955 - 27 Jun 2023
Cited by 9 | Viewed by 3272
Abstract
A synthetic partial discharge (PD) calibrator has been developed to qualify PD analyzers used for insulation diagnosis of HVAC and HVDC grids including cable systems, AIS, GIS, GIL, power transformers, and HVDC converters. PD analyzers that use high-frequency current transformers (HFCT) can be [...] Read more.
A synthetic partial discharge (PD) calibrator has been developed to qualify PD analyzers used for insulation diagnosis of HVAC and HVDC grids including cable systems, AIS, GIS, GIL, power transformers, and HVDC converters. PD analyzers that use high-frequency current transformers (HFCT) can be qualified by means of the metrological and diagnosis tests arranged in this calibrator. This synthetic PD calibrator can reproduce PD pulse trains of the same sequence as actual representative defects (cavity, surface, floating potential, corona, SF6 protrusion, SF6 jumping particles, bubbles in oil, etc.) acquired in HV equipment in service or by means of measurements made in HV laboratory test cells. The diagnostic capabilities and PD measurement errors of the PD analyzers using HFCT sensors can be determined. A new time parameter, “PD Time”, associated with any arbitrary PD current pulse i(t) is introduced for calibration purposes. It is defined as the equivalent width of a rectangular PD pulse with the same charge value and amplitude as the actual PD current pulse. The synthetic PD calibrator consists of a pulse generator that operates on a current loop matched to 50 Ω impedance to avoid unwanted reflections. The injected current is measured by a reference measurement system built into the PD calibrator that uses two HFCT sensors to ensure that the current signal is the same at the input and output of the calibration cage where the HFCT of the PD analyzer is being calibrated. Signal reconstruction of the HFCT output signal to achieve the input signal is achieved by applying state variable theory using the transfer impedance of the HFCT sensor in the frequency domain. Full article
(This article belongs to the Section Fault Diagnosis & Sensors)
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24 pages, 6471 KB  
Review
Key Modes of Ignition and Maintenance of Corona Discharge in Air
by Vasily Yu. Kozhevnikov, Andrey V. Kozyrev, Victor F. Tarasenko, Aleksandr O. Kokovin, Evgeni Kh. Baksht and Nikita P. Vinogradov
Energies 2023, 16(13), 4861; https://doi.org/10.3390/en16134861 - 21 Jun 2023
Cited by 15 | Viewed by 30549
Abstract
Theoretical and experimental studies of various modes of corona discharge operation in atmospheric pressure air are presented in this short review. The original results of modeling negative corona discharges are presented, taking into account the non-stationary plasma-chemical kinetics of charged particles in air [...] Read more.
Theoretical and experimental studies of various modes of corona discharge operation in atmospheric pressure air are presented in this short review. The original results of modeling negative corona discharges are presented, taking into account the non-stationary plasma-chemical kinetics of charged particles in air plasma. The space–time evolution of the discharge in needle-to-plane geometry is investigated and analyzed. Several stages of discharge development are revealed from the moment of initiation of a low-negative current corona to the quasi-stationary mode of a glow discharge. Experimental data of the authors are presented. Modern technology and diagnostic equipment with a wide variation of the main parameters (the shape and polarity of the applied voltage, the type of gap, etc.) was used. The measurement of the optical characteristics of the plasma glow was carried out with high spatial resolution. Corona discharge current pulse profiles in the air at atmospheric pressure have been recorded with subnanosecond time resolution. With a positive polarity of the pin electrode and high voltage, a transition from a spherical streamer initiating a corona discharge to a cylindrical streamer is shown. The author’s results are rigorously evaluated through a critical comparison with findings from other research groups. Full article
(This article belongs to the Section E: Electric Vehicles)
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16 pages, 1369 KB  
Article
Degradation of Antibiotic Vancomycin by UV Photolysis and Pulsed Corona Discharge Combined with Extrinsic Oxidants
by Dmitri Nikitin, Balpreet Kaur, Sergei Preis and Niina Dulova
Catalysts 2023, 13(3), 466; https://doi.org/10.3390/catal13030466 - 22 Feb 2023
Cited by 10 | Viewed by 3856
Abstract
Antibiotics are the most frequently detected pharmaceuticals in the environment creating conditions for the development of resistant genes in bacteria. Degradation and mineralization of glycopeptide antibiotic vancomycin (VMN) were examined by UV photolysis, pulsed corona discharge (PCD), and their combinations with extrinsic oxidants, [...] Read more.
Antibiotics are the most frequently detected pharmaceuticals in the environment creating conditions for the development of resistant genes in bacteria. Degradation and mineralization of glycopeptide antibiotic vancomycin (VMN) were examined by UV photolysis, pulsed corona discharge (PCD), and their combinations with extrinsic oxidants, hydrogen peroxide (HP), peroxydisulfate (PDS), and peroxymonosulfate (PMS). Both combinations were effective in VMN degradation and faster at pH 11 than in acidic or neutral media. Combined with the UV photolysis, HP showed a higher oxidation rate than other oxidants, whereas PMS and PDS proved to be more efficient in combinations with PCD. In contrast to low-to-moderate mineralization of VMN in the UV/oxidant combinations, PCD and PCD/oxidant combinations appeared to be more effective, reaching up to 90% of TOC removal in acidic/neutral solutions. Application of extrinsic oxidants resulted in an energy efficiency of VMN 90% oxidation improved from 36 to 61 g kW−1 h−1 in HP-assisted photolysis, and from 195 to 250 g kW−1 h−1 in PCD with additions of HP and PDS, thus showing the promising character of the combined treatment. Full article
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