Experimental Study on the Instability Arc of a Low - Current Vacuum Arc for Copper Based Cathode Material.

Size: px
Start display at page:

Download "Experimental Study on the Instability Arc of a Low - Current Vacuum Arc for Copper Based Cathode Material."

Transcription

1 Experimental Study on the Instability Arc of a Low - Current Vacuum Arc for Copper Based Cathode Material. Narong Mungkung Department of Electrical Technology Education, Faculty of Industrial Education and Technology King Mongkut s University of Technology Thonburi, Bangmod, Thungkru, Thailand Tel: , Fax: narong_kmutt@hotmail.com The purpose of this research was to analyze instability phenomena in low-current metal vacuum arc using the experimental data comparison with the calculation data. The instability phenomena are characterized by noise on the current trace prior to the actual current chopping. The instability current were investigated for various electrode material. However, the thermal conductivity effect on the instability phenomena of low-current metal vacuum arc are important for low surge switching electrode material development. Therefore, the experimental of major commercial switching electrode such as Cu-W are performed in this study. The arc during time and the maximum arc current were fixed to 8 ms and 1 A, respectively. The vacuum electrodes were set in the vacuum chamber. The cathode and anode diameters were 2.4*1-2 m and 4.*1-2 m, respectively. The vacuum was maintained to about 5*1-6 Pa. The observed waveforms, instability current, chopping current are measured by the oscilloscope. As the results, the critical current of the stable current is inversely dependent on the thermal conductivity of the cathode material. This is very important result for the development of cathode materials for low-surge vacuum interrupters. 1. Introduction The phenomena of cathode spot of low-current vacuum arc discharge continues to cause confusion in spite of progress in understanding the processes of instability phenomena. The qualitative discussion of physical mechanism of the stability phenomena of a low-current metal vacuum arc as shown in Figure 1 remains unclear[1]-[3]. These investigations are very important for the development of cathode materials for low-surge switching vacuum circuit breakers. It is believed that the parameters of the instabilities directly reflect the interruption characteristics of the cathode material. However, in order to clarify the instability phenomena characterized by noise on the current trace prior to the actual current chopping, the chopping and instability current for the major commercial switching cathode material such pure copper and compound copper with tungsten were performed in this study [3-6]. A single cathode spot of low-current vacuum arc as shown in Figure 2. is performed. In order to confirm the validity of the study, the experimental results are compared with analytical results. Figure 1. Typical Instability Arc Current

2 Cathode Cathode Spot Anode 2. Experimental Arrangement Figure 2. A Single Cathode Spot An experimental circuit is shown in Figure. 3. The current amplitude was adjusted using amount of charging voltage of capacitor. The arc during time and the maximum arc current were fixed to 8 ms and 1 A, respectively. The arc time was controlled by the thyrister. L R CT Cathode 11 µf + Trigger Power Supply Osc Figure. 3. Experimental Arrangement 3. Experimental equipment The comercial vacuum electrodes were set in the vacuum chamber. The cathode and anode diameters were 2.4*1-2 m and 4.*1-2 m, respectively. The vacuum was maintained to about 4.5*1-6 Pa. The vacuum electrodes were made of Cu-W (W: %), Cu-W (W: 1. %), Cu-W (W: 2%), Cu-W(W: 3%). They were prepared by the vacuum melting process. The gap lengths of pure copper and compound copper were 8 mm and 4 mm, respectively. When the vacuum arc was ignited, the opening velocity of the cylinder were.3 m/s.

3 4 Experimental method Typical measured arc current and voltage waveforms on oscilloscope are shown in Figure 2. The arc voltage (Varc), chopping current (Ic) and initial instability current (Ii) were measured in near the region of current zero. As shown in Figure 2, the current reached zero before natural line current zero. The initial noise on current trace occurs irregular oscillation is defined the minimum stable arc current or instability start arc current. The transient recovery voltage is generated after chopping current. The transient recovery voltage peak value (V P ) is expressed as the following. V L (1) C P I C 5. Calculation of Thermal Conductivity Pure copper Cu and Cu-W alloys were made using a vacuum melting process. The thermal conductivity for Cu-W alloys have been calculated from Wienemamn-Franz s law [7]. The relations between the compositions and thermal conductivities of Cu-W is shown in Figure Thermal Conductivity Ko [W/m K] Percentage of Tungsten, W [At, %] Fig.4 Thermal Conductivity for Cu - W Minimum Stable Current [A] Thermal Conductivity Ko, [W.m/K] Figure. 5. Minimum Stable Arc Current Ii vs Thermal Conductivity, Ko

4 Nn 6. Experimental Results Figure 5 shows plots of the average values from forty trials for each data points of Ii. The values of Ii is inversely proportional to thermal conductivity. Decreasing thermal conductivity of cathode, the heat flow cathode spot is obstructed from cathode spot to main cathode area. As the result, it may be interpreted that the cathode spot is difficult to cool and that its temperature remains higher as thermal conductivity becomes smaller. Due to this reason, the cathode spot keeps stable at a smaller arc current for supplying metal vapor to the vacuum discharge gap. Potential Vp a + Cu N o X e Cu e Reverse Diffusion r Electrode Collisionless Sheath Collisiona l Plasma Diffused Plasma Fig.6. Cathode spot model 7. Analytical Model[3][8] In order to confirm the effect of low thermal conductivity, the cathode spot model is used with various thermal conductivity as Figure 9.The cathode spot model assumes that the collisionless sheath and collisional plasma are directly connected by neglecting the transition region, as show in Fig.6. All of the dependent variables have been treated as averaged values over the spot area r a. Eight equations arc required to determine the eight dependent variables. For the lack of a simple exact formula to determine the sheath voltage Vp, some other means is required. The experimental data of cathode input Veff (I) and ion current fraction δ(i) flowing toward the anode were applied to obtain the solution of an equation in eight dependent variables. The minimum stable arc current is 7.1 Nomenclature 1. Independent Variable 2. Experimental Data I Arc current (A) V eff ( I ) Effective cathode heating voltage (V) δ (I ) Ion current fraction flowing toward the anode 3. Dependent Variables V p Sheath voltage (V) a Cathode spot radius (m) J Current density (A/m 2 ) S Electron current fraction

5 T Temperature of cathode spot (K) F o Cathode electric field (V/m) N o Plasma density (1/m 3 ) T e Electron temperature (K) 4. Physical Properties and Constant Γ ev Evaporation rate (kg/m 2 s) m Electronic mass (kg) P ev Evaporation energy (W/m 2 s) Electronic charge(c) K Thermal conductivity (W/mK) k Boltzmann s constant (J/K) Φ o Work function of Copper 4.5 (ev) V i Ionization voltage of Copper 7.73 (ev) A Richardson s constant (A/m 2 K 2 ) Φ( F o, T ) Cooling effect of electron emission (ev) M Mass of atom and ion of Copper (kg) H o (T ) Heat of evaporation per atom (J/atom) Two region equations are sheath region equation and equation of the plasma region. 7.2 Equation of sheath region Equation of current 2 I = πa J (2) Equation of mass flow 1 kt J T N M e 2 δ Γev ( ) = M (3) 2πM q The first term of the left-hand side of equation (3) is atom flux due to evaporation from the cathode, and the second term is the return flux of ions from the plasma to the cathode. The right hand-side of the equation (3) is mass flow to the anode provided by the ion current Equation of ion current The ion current density (1-S)J in the pace charge sheath is assumed to be equal to the ion saturation current density of collisional plasma. Thus, equation (4) is concluded as 1 kt 1 o 2πM 2 ( S ) J = qn e (4) Equation of electron emission current The electron emission current from the cathode is determined primarily via thermionic mechanism, together with the Shottky effect. qfo q o o Φ 4πε 2 SJ = AT exp (5) kt Equation of electric field The equation of the electric field of the cathode surface is given by the Mackeown equation, including the effect of the space charge of the electrons returning from the collisional plasma to

6 the sheath. 2 4 F M = ( 1 S ) J ε 2q m SJ 2q 2 kteno qvp Vp 1 exp εo kt e (6) Equation of energy balance The equation (7) is the solution of heat of conduction ( K T ) = T K = JVeff, r a. X 8a Ko. 45T + 348) = JV eff 3π ( (7) The temperature dependence on thermal conductivity of copper is considered [5]. The heat loss due to thermal conduction into the cathode is as follows: ( ) ) ( 1 S) J V + V Φ + H ( T ) SJΦ( F, T ) P ( T (8) JVeff = p i o o The first term of the right-hand side of the equation (8) is the input due to the ion bombardment, the second term is power dissipated by the electron emission, and the third term is the power dissipated by vaporization. 7.3 Equation of the plasma region Particle conservation The equation of particle conservation is as same the equation (3) Energy conservation of the collisional plasma. kte Γev J ( 2 + 2δ S) + qv.851a J 2 i = η (9) q M The first term of the left hand side of the equation (9) is the energy flow into the cathode and the anode, and the second term is the power required by ionization. The right-hand side is the input power to the plasma by joule heating, where η is the plasma resistance expressed by the Spitzer formula. 8. Analytical Results ev The simultaneous algebraic equation (2) (9) are solved numerically using a bisection method. At the arc current of 19 A, the cathode electric field, Fo, and the electron current fraction, s, change rapidly. When the arc current decreases below 19 A, no real solution exists. As the arc current decreases, with increasing the current density in high value. For this condition, the plasma

7 2 density also becomes very high. As a result, F o becomes negative due to the effect of the space charge of the electrons returning from the collisional plasma to the sheath. The current of 19 A may correspond to the instability onset current, as previously proposed. S (1-2 ), Fo (1 8 ) [V/m], Te (1-1 ) [ev] Fo S Te Vp a Vp [v], a (1-5 )[m] Arc Current I [A] Figure.7. Electron Current fraction S, Cathode Electric Field Fo, Plasma Temperature Te, Sheath Voltage Vp and Cathode Spot Radius a J No T 5 J (1 9 ) [A/m 2 ], No (1 25 ) [1/m 3 ] T [K] Arc Current I [A] 9. Conclusion Figure 8. Current Density J, Plasma Density No and Cathode Temperature T This study investigated the effect of thermal conductivity to instability of low current arc. As the results, the critical current of the stable arc current is highly dependent on the thermal conductivity of the cathode material. The increasing of stable arc current is performed by material composition for reducing thermal conductivity by increasing the percentage of Tungsten. It may be interpreted that the cathode spot is difficult to cool and that its temperature remains higher as thermal conductivity becomes smaller. For this reason, the cathode spot keeps stable at a smaller low arc current for supplying metal vapor to the vacuum discharge gap. As Figure 9, it was found that the experimental results of the instability-initiative current were similar to Analytical model

8 results. This is very important result for the development of cathode materials for low-surge vacuum interrupters [8]. 25 Analytical Results Minimum Stable Current Ii [A] 2 15 Experimental Results Thermal Conductivity Ko [W/ m K] Figure 9. Comparison between Analytical results and Experimental results vs Thermal Conductivity 1. References [1] R.P.P. Smeets, Stability of low-current vacuum arcs, J. Phys. D: Appl. Phys., vol. 19, pp , [2] T.H.Lee & A. Greenwood : Theory for the cathode mechanism in metal vapor arcs, J.Appl.Phys., 32, 916, 1961 [3] O.Morimiya, S. Suzuki and K. Watanabe, An analysis of the in stability phenomena of a low current vacuum arc, Trans. IEE of Japan.,vol. 119-A, No. 2, [4] Smeets, R.P.P.; Kaneko, E.; Ohshima, Experimental characterization of arc instabilities and their effect on current chopping in low-surge vacuum interrupters, IEEE Trans. Plasma Sci, vol. 2, pp , Aug [5] K. Tsuruta, N. Tanaka, H. Kido, K.Hirai, and T. Yanagidai, Ignition and instability of lowcurrent DC vacuum arcs ignited by the opening of the electrodes, IEEE Trans. Plasma Sci., vol. 29, pp , Oct. 21 [6] C. Ding and S. Yanabu, Effect of parallel circuit parameters on the instability of a lowcurrent vacuum arc, IEEE Trans.Plasma Sci., vol. 31, pp , Oct. 23 [7] J. Smithhells, Metal reference book, p. 14, 137 [8] N. Mungkung, O. Morimiya and T. Kamikawaji, An analysis of the instability phenomena of a low-current vacuum arc for copper cathodes, IEEE Trans. Plasma Sci., vol. 31, No. 5, pp , Oct. 23

STRONG DOUBLE LAYER STRUCTURE IN THERMIONIC VACUUM ARC PLASMA *

STRONG DOUBLE LAYER STRUCTURE IN THERMIONIC VACUUM ARC PLASMA * STRONG DOUBLE LAYER STRUCTURE IN THERMIONIC VACUUM ARC PLASMA * V. TIRON 1, L. MIHAESCU 1, C.P. LUNGU 2 and G. POPA 1 1 Faculty of Physics, Al. I. Cuza University, 700506, Iasi, Romania 2 National Institute

More information

Arc Simulation Technology

Arc Simulation Technology Arc Simulation Technology SAKATA, Masayoshi ENAMI, Yoshiaki ABSTRACT With distribution, switching and control equipment components, fi nding a way to predict and control the behavior of the arc generated

More information

Model for arc cathode region in a wide pressure range

Model for arc cathode region in a wide pressure range INSTITUTE OF PHYSICS PUBLISHING JOURNAL OF PHYSICS D: APPLIED PHYSICS J. Phys. D: Appl. Phys. 3 (2001) 201 2021 www.iop.org/journals/jd PII: S0022-32(01)222-X Model for arc cathode region in a wide pressure

More information

Miniature Vacuum Arc Thruster with Controlled Cathode Feeding

Miniature Vacuum Arc Thruster with Controlled Cathode Feeding Miniature Vacuum Arc Thruster with Controlled Cathode Feeding Igal Kronhaus and Matteo Laterza Aerospace Plasma Laboratory, Faculty of Aerospace Engineering, Technion - Israel Institute of Technology,

More information

One dimensional hybrid Maxwell-Boltzmann model of shearth evolution

One dimensional hybrid Maxwell-Boltzmann model of shearth evolution Technical collection One dimensional hybrid Maxwell-Boltzmann model of shearth evolution 27 - Conferences publications P. Sarrailh L. Garrigues G. J. M. Hagelaar J. P. Boeuf G. Sandolache S. Rowe B. Jusselin

More information

WHEN A vacuum circuit breaker (VCB) interrupts a current,

WHEN A vacuum circuit breaker (VCB) interrupts a current, IEEE TRANSACTIONS ON PLASMA SCIENCE, VOL. 33, NO. 5, OCTOBER 2005 1589 Vacuum Circuit Breaker Current-Zero Phenomena Ezra P. A. van Lanen, Member, IEEE, Marjan Popov, Senior Member, IEEE, Lou van der Sluis,

More information

Nanosecond-scale Processes in a Plasma Pilot for Ignition and Flame Control

Nanosecond-scale Processes in a Plasma Pilot for Ignition and Flame Control Nanosecond-scale Processes in a Plasma Pilot for Ignition and Flame Control Yu. D. Korolev, I. B. Matveev Institute of High Current Electronics, 634055 Tomsk, Russia Applied Plasma Technologies, Falls

More information

Title. Author(s)Takahashi, Yusuke; Kihara, Hisashi; Abe, Ken-ichi. CitationJournal of Thermophysics and Heat Transfer, 26(3): 5. Issue Date

Title. Author(s)Takahashi, Yusuke; Kihara, Hisashi; Abe, Ken-ichi. CitationJournal of Thermophysics and Heat Transfer, 26(3): 5. Issue Date Title Improvement of Potential Drop Predictions for Plasma Author(s)Takahashi, Yusuke; Kihara, Hisashi; Abe, Ken-ichi CitationJournal of Thermophysics and Heat Transfer, 26(3): 5 Issue Date 212-7 Doc URL

More information

Dense plasma formation on the surface of a ferroelectric cathode

Dense plasma formation on the surface of a ferroelectric cathode Vacuum ] (]]]]) ]]] ]]] www.elsevier.com/locate/vacuum Dense plasma formation on the surface of a ferroelectric cathode K. Chirko, Ya.E. Krasik, A. Sayapin, J. Felsteiner Physics Department, Technion Israel

More information

The Peculiarities of Transient Recovery Voltage in Presence of Post Arc Current in Vacuum Circuit Breakers

The Peculiarities of Transient Recovery Voltage in Presence of Post Arc Current in Vacuum Circuit Breakers XXIVth Int. Symp. on Discharges and Electrical Insulation in Vacuum - Braunschweig - 1 The Peculiarities of Transient Recovery Voltage in Presence of Post Arc Current in Vacuum Circuit Breakers Amir Hayati

More information

The electrical Discharge Characteristics of the 3.5 KJ Electrothermal Plasma Gun Experiment

The electrical Discharge Characteristics of the 3.5 KJ Electrothermal Plasma Gun Experiment The electrical Discharge Characteristics of the 3.5 KJ Electrothermal Plasma Gun Experiment F. Diab, G. M. El-Aragi, G. M. El-Kashef and A. H. Saudy* Plasma and Nuclear fusion Department, AEA, Cairo, Egypt

More information

Physics of a Vacuum Arc for a Plasma Thruster Application

Physics of a Vacuum Arc for a Plasma Thruster Application To IEPC-2013 Physics of a Vacuum Arc for a Plasma Thruster Application IEPC-2013-391 Presented at the 33rd International Electric Propulsion Conference, The George Washington University Washington, D.C.

More information

A Kinetic Theory of Planar Plasma Sheaths Surrounding Electron Emitting Surfaces

A Kinetic Theory of Planar Plasma Sheaths Surrounding Electron Emitting Surfaces A Kinetic Theory of Planar Plasma Sheaths Surrounding Electron Emitting Surfaces J. P. Sheehan1, I. Kaganovich2, E. Barnat3, B. Weatherford3, H. Wang2, 4 1 2 D. Sydorenko, N. Hershkowitz, and Y. Raitses

More information

NANOSTRUCTURED CARBON THIN FILMS DEPOSITION USING THERMIONIC VACUUM ARC (TVA) TECHNOLOGY

NANOSTRUCTURED CARBON THIN FILMS DEPOSITION USING THERMIONIC VACUUM ARC (TVA) TECHNOLOGY Journal of Optoelectronics and Advanced Materials Vol. 5, No. 3, September 2003, p. 667-673 NANOSTRUCTURED CARBON THIN FILMS DEPOSITION USING THERMIONIC VACUUM ARC (TVA) TECHNOLOGY G. Musa, I. Mustata,

More information

Metal Deposition. Filament Evaporation E-beam Evaporation Sputter Deposition

Metal Deposition. Filament Evaporation E-beam Evaporation Sputter Deposition Metal Deposition Filament Evaporation E-beam Evaporation Sputter Deposition 1 Filament evaporation metals are raised to their melting point by resistive heating under vacuum metal pellets are placed on

More information

6. ELECTRODE EXPERIMENT

6. ELECTRODE EXPERIMENT 6. ELECTRODE EXPERIMENT The purpose of this Section is to illustrate how the electrodes for PROTO-SPHERA have been developed. They were the most unconventional items and among the major concerns, when

More information

Influence of Electrode Configuration of a Liquid Propellant PPT on its Performance

Influence of Electrode Configuration of a Liquid Propellant PPT on its Performance Influence of Electrode Configuration of a Liquid Propellant PPT on its Performance IEPC-- /ISTS--b- Presented at Joint Conference of th International Symposium on Space Technology and Science th International

More information

Compiled and rearranged by Sajit Chandra Shakya

Compiled and rearranged by Sajit Chandra Shakya 1 (a) Define capacitance. [May/June 2005] 1...[1] (b) (i) One use of a capacitor is for the storage of electrical energy. Briefly explain how a capacitor stores energy......[2] (ii) Calculate the change

More information

PHYSICAL VAPOR DEPOSITION OF THIN FILMS

PHYSICAL VAPOR DEPOSITION OF THIN FILMS PHYSICAL VAPOR DEPOSITION OF THIN FILMS JOHN E. MAHAN Colorado State University A Wiley-Interscience Publication JOHN WILEY & SONS, INC. New York Chichester Weinheim Brisbane Singapore Toronto CONTENTS

More information

Optical Pumping of Rubidium

Optical Pumping of Rubidium Optical Pumping of Rubidium Janet Chao, Dean Henze, Patrick Smith, Kent Lee April 27, 2013 Abstract 1 INTRODUCTION Irving Langmuir coined the term plasma in a paper in 1928, ushering a whole new and exciting

More information

Chaotic-to-ordered state transition of cathode-sheath instabilities in DC glow discharge plasmas

Chaotic-to-ordered state transition of cathode-sheath instabilities in DC glow discharge plasmas PRAMANA c Indian Academy of Sciences Vol. 67, No. 2 journal of August 2006 physics pp. 299 304 Chaotic-to-ordered state transition of cathode-sheath instabilities in DC glow discharge plasmas MD NURUJJAMAN

More information

Simulating the Spontaneous Formation of Self-Organized Anode Spot Patterns in Arc Discharges

Simulating the Spontaneous Formation of Self-Organized Anode Spot Patterns in Arc Discharges Simulating the Spontaneous Formation of Self-Organized Anode Spot Patterns in Arc Discharges Juan Pablo Trelles Department of Mechanical Engineering and Energy Engineering Graduate Program University of

More information

Matti Laan Gas Discharge Laboratory University of Tartu ESTONIA

Matti Laan Gas Discharge Laboratory University of Tartu ESTONIA Matti Laan Gas Discharge Laboratory University of Tartu ESTONIA Outline 1. Ionisation 2. Plasma definition 3. Plasma properties 4. Plasma classification 5. Energy transfer in non-equilibrium plasma 6.

More information

Workshops on X-band and high gradients: collaboration and resource

Workshops on X-band and high gradients: collaboration and resource Workshops on X-band and high gradients: collaboration and resource 25 October 2012 International workshop on breakdown science and high gradient technology 18-20 April 2012 in KEK 25 October 2012 International

More information

Homework 2: Forces on Charged Particles

Homework 2: Forces on Charged Particles Homework 2: Forces on Charged Particles 1. In the arrangement shown below, 2 C of positive charge is moved from plate S, which is at a potential of 250 V, to plate T, which is at a potential of 750 V.

More information

An Innovative Simple Test Circuit for Single-Phase Short Circuit Making Test of High-Voltage Switching Devices

An Innovative Simple Test Circuit for Single-Phase Short Circuit Making Test of High-Voltage Switching Devices An Innovative Simple Test Circuit for Single-Phase Short Circuit Making Test of High-Voltage Switching Devices Downloaded from jiaeee.com at 2:32 +33 on Sunday November 4th 28 Abstract: N. Nikpour K. Niayesh

More information

Hong Young Chang Department of Physics, Korea Advanced Institute of Science and Technology (KAIST), Republic of Korea

Hong Young Chang Department of Physics, Korea Advanced Institute of Science and Technology (KAIST), Republic of Korea Hong Young Chang Department of Physics, Korea Advanced Institute of Science and Technology (KAIST), Republic of Korea Index 1. Introduction 2. Some plasma sources 3. Related issues 4. Summary -2 Why is

More information

Low Voltage Contact Electrostatic Discharge Phenomena

Low Voltage Contact Electrostatic Discharge Phenomena Conf Presentation - >SESSION.PAPER< - replace with your Session & Paper # (DOUBLE-CLICK HERE TO EDIT) < 1 Low Voltage Contact Electrostatic Discharge Phenomena Tetsuji Oda, Yuto Ono, Hiraku Miyasaka Abstract

More information

Paper submitted to: Physical Review Letters. Title: The energy distribution structure and dynamic characteristics of energy release in

Paper submitted to: Physical Review Letters. Title: The energy distribution structure and dynamic characteristics of energy release in Paper submitted to: Physical Review Letters Title: The energy distribution structure and dynamic characteristics of energy release in electrostatic discharge process Authors: Qingming Liu 1, Huige Shao

More information

Electrical Breakdown in Low-Pressure Nitrogen in Parallel Electric and Magnetic Fields

Electrical Breakdown in Low-Pressure Nitrogen in Parallel Electric and Magnetic Fields Electrical Breakdown in Low-Pressure Nitrogen in Parallel Electric and Magnetic Fields Karim Abu-Elabass Department of machinery and electrical equipment, Prince Sultan Industrial Institute, Military Industries

More information

The Q Machine. 60 cm 198 cm Oven. Plasma. 6 cm 30 cm. 50 cm. Axial. Probe. PUMP End Plate Magnet Coil. Filament Cathode. Radial. Hot Plate.

The Q Machine. 60 cm 198 cm Oven. Plasma. 6 cm 30 cm. 50 cm. Axial. Probe. PUMP End Plate Magnet Coil. Filament Cathode. Radial. Hot Plate. 1 The Q Machine 60 cm 198 cm Oven 50 cm Axial Probe Plasma 6 cm 30 cm PUMP End Plate Magnet Coil Radial Probe Hot Plate Filament Cathode 2 THE Q MACHINE 1. GENERAL CHARACTERISTICS OF A Q MACHINE A Q machine

More information

Discharge Cell Design. Some initial explorations, considerations and open questions

Discharge Cell Design. Some initial explorations, considerations and open questions Discharge Cell Design Some initial explorations, considerations and open questions Modelling plasma discharge circuit demands Based on paper from SPARC-LAB experiment (Nuc. Instrum Meth A 2015) Design

More information

arxiv: v1 [physics.plasm-ph] 10 Nov 2014

arxiv: v1 [physics.plasm-ph] 10 Nov 2014 arxiv:1411.2464v1 [physics.plasm-ph] 10 Nov 2014 Effects of fast atoms and energy-dependent secondary electron emission yields in PIC/MCC simulations of capacitively coupled plasmas A. Derzsi 1, I. Korolov

More information

Mechanisms of Electrical Berakdown in Low Vacuums

Mechanisms of Electrical Berakdown in Low Vacuums SCIENTIFIC PUBLICATIONS OF THE STATE UNIVERSITY OF NOVI PAZAR SER. A: APPL. MATH. INFORM. AND MECH. vol. 3, 2 (2011), 85-99. Mechanisms of Electrical Berakdown in Low Vacuums D. Ilić, D. Mostić, E. Dolićanin,

More information

Stepwise Solution Important Instructions to examiners:

Stepwise Solution Important Instructions to examiners: (ISO/IEC - 700-005 Certified) SUMMER 05 EXAMINATION Subject Code: 70 Model Answer (Applied Science- Physics) Page No: 0/6 Que. No. Sub. Que. Important Instructions to examiners: ) The answers should be

More information

Direct Energy Conversion: Thermionic Conversion

Direct Energy Conversion: Thermionic Conversion Direct Energy Conversion: Thermionic Conversion References: Direct Energy Conversion by Stanley W. Angrist, Allyn and Beacon, 1982. Direct Energy Conversion by Reiner Decher,Oxford University press, 1997.

More information

Energy Distrihution in Electrical Discharge Machining with Graphite Electrode

Energy Distrihution in Electrical Discharge Machining with Graphite Electrode Memoirs of the Faculty of Engineering, Okayama University, Vol. 34, No. 1,2, pp.19-26, March 2 Energy Distrihution in Electrical Discharge Machining with Graphite Electrode Akira OKADA*, Yoshiyuki UNO*

More information

Linear and Nonlinear Dust Acoustic Waves, Shocks and Stationary Structures in DC-Glow-Discharge Dusty Plasma Experiments.

Linear and Nonlinear Dust Acoustic Waves, Shocks and Stationary Structures in DC-Glow-Discharge Dusty Plasma Experiments. 53rd Annual Meeting of the APS Division of Plasma Physics BI2.00005 Monday November 14, 2011 Linear and Nonlinear Dust Acoustic Waves, Shocks and Stationary Structures in DC-Glow-Discharge Dusty Plasma

More information

P. Diomede, D. J. Economou and V. M. Donnelly Plasma Processing Laboratory, University of Houston

P. Diomede, D. J. Economou and V. M. Donnelly Plasma Processing Laboratory, University of Houston P. Diomede, D. J. Economou and V. M. Donnelly Plasma Processing Laboratory, University of Houston Acknowledgements: DoE Plasma Science Center, NSF Presented at the 57 th AVS Conference, Albuquerque, NM

More information

Electric Rocket Engine System R&D

Electric Rocket Engine System R&D Electric Rocket Engine System R&D In PROITERES, a powered flight by an electric rocket engine is planed; that is, orbital transfer will be carried out with a pulsed plasma thruster (PPT). We introduce

More information

Influence of the simulation model on the spatial arc resistance distribution of an axially blown switching arc

Influence of the simulation model on the spatial arc resistance distribution of an axially blown switching arc Chaotic Modeling and Simulation (CMSIM) 1: 139-146, 2011 Influence of the simulation model on the spatial arc resistance distribution of an axially blown switching arc Matthias Hoffacker 1, Paul G. Nikolic

More information

EE6701 HIGH VOLTAGE ENGINEERING UNIT II-DIELECTRIC BREAKDOWN PART A

EE6701 HIGH VOLTAGE ENGINEERING UNIT II-DIELECTRIC BREAKDOWN PART A EE6701 HIGH VOLTAGE ENGINEERING UNIT II-DIELECTRIC BREAKDOWN PART A 1. Mention the gases used as the insulating medium in electrical apparatus? Most of the electrical apparatus use air as the insulating

More information

Temporal Evolution of Ion Energy Distribution Functions and Ion Charge States of Cr and Cr-Al Pulsed Arc Plasmas

Temporal Evolution of Ion Energy Distribution Functions and Ion Charge States of Cr and Cr-Al Pulsed Arc Plasmas Temporal Evolution of Ion Energy Distribution Functions and Ion Charge States of Cr and Cr-Al Pulsed Arc Plasmas Running title: Temporal Evolution of IEDFs of Cr and Cr-Al Pulsed Arc Running Authors: Tanaka

More information

FINITE ELEMENT METHOD IN HIGH INTENSITY PLASMA DISCHARGE MODELING

FINITE ELEMENT METHOD IN HIGH INTENSITY PLASMA DISCHARGE MODELING U.P.B. Sci. Bull., Series A, Vol. 70, Iss. 4, 2008 ISSN 1223-7027 FINITE ELEMENT METHOD IN HIGH INTENSITY PLASMA DISCHARGE MODELING Mihail CRISTEA 1 Se arată cum poate fi modelată plasma descărcărilor

More information

The division of energy sources and the working substance in electric propulsioncan determines the range of applicability of electro jet propulsion sys

The division of energy sources and the working substance in electric propulsioncan determines the range of applicability of electro jet propulsion sys Vacuum Arc thruster development for Horyu-4 satellite KaterynaAheieva, Shingo Fuchikami, Hiroshi Fukuda, Tatsuo Shimizu, Kazuhiro Toyoda, Mengu Cho Kyushu Institute of Technology1 N589502a@mail.kyutech.jp

More information

Nitrogen Glow Discharge by a DC Virtual Cathode

Nitrogen Glow Discharge by a DC Virtual Cathode Nitrogen Glow Discharge by a DC Virtual Cathode Azza M. Shager a, Amany T. Sroor b, Hoda A. El Tayeb a, Hoda A. El Gamal a, and Mohamed M. Masoud a a Plasma Physics and Nuclear Fusion Department, Atomic

More information

Multidimensional Numerical Simulation of Glow Discharge by Using the N-BEE-Time Splitting Method

Multidimensional Numerical Simulation of Glow Discharge by Using the N-BEE-Time Splitting Method Plasma Science and Technology, Vol.14, No.9, Sep. 2012 Multidimensional Numerical Simulation of Glow Discharge by Using the N-BEE-Time Splitting Method Benyssaad KRALOUA, Ali HENNAD Electrical Engineering

More information

1) Jozef Stefan Institute, Jamova 39, 1000 Ljubljana, Slovenia

1) Jozef Stefan Institute, Jamova 39, 1000 Ljubljana, Slovenia SI0100095 Nuclear Energy in Central Europe '98 Terme Catez, September 7 to 10, 1998 PLASMA RESPONSE TO A POSITIVE VOLTAGE STEP APPLIED TO AN ANODE IMMERSED IN A WEAKLY MAGNETIZED DISCHARGE PLASMA COLUMN

More information

DOE WEB SEMINAR,

DOE WEB SEMINAR, DOE WEB SEMINAR, 2013.03.29 Electron energy distribution function of the plasma in the presence of both capacitive field and inductive field : from electron heating to plasma processing control 1 mm PR

More information

not to scale Show that the potential difference between the plates increases to about 80 V. Calculate the energy that is now stored by the capacitor.

not to scale Show that the potential difference between the plates increases to about 80 V. Calculate the energy that is now stored by the capacitor. Q1.The figure below shows a capacitor of capacitance 370 pf. It consists of two parallel metal plates of area 250 cm 2. A sheet of polythene that has a relative permittivity 2.3 completely fills the gap

More information

Cambridge International Examinations Cambridge International Advanced Subsidiary and Advanced Level

Cambridge International Examinations Cambridge International Advanced Subsidiary and Advanced Level Cambridge International Examinations Cambridge International Advanced Subsidiary and Advanced Level *9430568881* PHYSICS 9702/21 Paper 2 AS Structured Questions October/November 2014 1 hour Candidates

More information

PRINCIPLES OF PLASMA DISCHARGES AND MATERIALS PROCESSING

PRINCIPLES OF PLASMA DISCHARGES AND MATERIALS PROCESSING PRINCIPLES OF PLASMA DISCHARGES AND MATERIALS PROCESSING Second Edition MICHAEL A. LIEBERMAN ALLAN J, LICHTENBERG WILEY- INTERSCIENCE A JOHN WILEY & SONS, INC PUBLICATION CONTENTS PREFACE xrrii PREFACE

More information

Temperature rise in a model of resistive HTS element of a fault current limiter

Temperature rise in a model of resistive HTS element of a fault current limiter IEEE/CC & EA EUROPEAN UPERCONDUCTIVITY NEW FORUM, No. 3, January 8 Temperature rise in a model of resistive HT element of a fault current limiter Igor N Dul kin, Leonid M Fisher, Valery P Ivanov, Alexey

More information

Application of Physics II for. Final Exam

Application of Physics II for. Final Exam Application of Physics II for Final Exam Question 1 Four resistors are connected as shown in Figure. (A)Find the equivalent resistance between points a and c. (B)What is the current in each resistor if

More information

Exam 2 Solutions. = /10 = / = /m 3, where the factor of

Exam 2 Solutions. = /10 = / = /m 3, where the factor of PHY049 Fall 007 Prof. Yasu Takano Prof. Paul Avery Oct. 17, 007 Exam Solutions 1. (WebAssign 6.6) A current of 1.5 A flows in a copper wire with radius 1.5 mm. If the current is uniform, what is the electron

More information

AP Physics C. Electric Circuits III.C

AP Physics C. Electric Circuits III.C AP Physics C Electric Circuits III.C III.C.1 Current, Resistance and Power The direction of conventional current Suppose the cross-sectional area of the conductor changes. If a conductor has no current,

More information

Plasma diagnostics of pulsed sputtering discharge

Plasma diagnostics of pulsed sputtering discharge Plasma diagnostics of pulsed sputtering discharge Vitezslav Stranak Zdenek Hubicka, Martin Cada and Rainer Hippler University of Greifswald, Institute of Physics, Felix-Hausdorff-Str. 6, 174 89 Greifswald,

More information

Plasma Behaviours and Magnetic Field Distributions of a Short-Pulse Laser-Assisted Pulsed Plasma Thruster

Plasma Behaviours and Magnetic Field Distributions of a Short-Pulse Laser-Assisted Pulsed Plasma Thruster Plasma Behaviours and Magnetic Field Distributions of a Short-Pulse Laser-Assisted Pulsed Plasma Thruster IEPC-2015-91325 Presented at Joint Conference of 30th International Symposium on Space Technology

More information

PIC/MCC Simulation of Radio Frequency Hollow Cathode Discharge in Nitrogen

PIC/MCC Simulation of Radio Frequency Hollow Cathode Discharge in Nitrogen PIC/MCC Simulation of Radio Frequency Hollow Cathode Discharge in Nitrogen HAN Qing ( ), WANG Jing ( ), ZHANG Lianzhu ( ) College of Physics Science and Information Engineering, Hebei Normal University,

More information

Laser matter interaction

Laser matter interaction Laser matter interaction PH413 Lasers & Photonics Lecture 26 Why study laser matter interaction? Fundamental physics Chemical analysis Material processing Biomedical applications Deposition of novel structures

More information

Determination of the total inductance of TPF-I

Determination of the total inductance of TPF-I Journal of Physics: Conference Series PAPER OPEN ACCESS Determination of the total inductance of TPF-I To cite this article: T Kunamaspakorn et al 015 J. Phys.: Conf. Ser. 611 01009 View the article online

More information

Diamond and Other Carbon Materials for Solar-Thermionic Energy Conversion

Diamond and Other Carbon Materials for Solar-Thermionic Energy Conversion Diamond and Other Carbon Materials for Solar-Thermionic Energy Conversion Timothy Fisher tsfisher@purdue.edu School of Mechanical Engineering, and Birck Nanotechnology Center Purdue University October

More information

Electrical Discharge Characteristics of 1-D Plane Micro-electrodes

Electrical Discharge Characteristics of 1-D Plane Micro-electrodes Proc. ESA Annual Meeting on Electrostatics 2008, Paper C3 1 Electrical Discharge Characteristics of 1-D Plane Micro-electrodes Poornima A*, Mithila H*, Adnan B, Subhankar D, Balachandra TC *, Asokan T

More information

Plasma Potential Determination in RF Capacitively Coupled Plasma by Measuring Electrode Voltage. Nagoya university Hironao Shimoeda

Plasma Potential Determination in RF Capacitively Coupled Plasma by Measuring Electrode Voltage. Nagoya university Hironao Shimoeda Plasma Potential Determination in RF Capacitively Coupled Plasma by Measuring Electrode Voltage. Nagoya university Hironao Shimoeda Introduction The University of Texas at Dallas International Center for

More information

RC Studies Relaxation Oscillator

RC Studies Relaxation Oscillator RC Studies Relaxation Oscillator Introduction A glass tube containing neon gas will give off its characteristic light when the voltage across the tube exceeds a certain value. The value corresponds to

More information

All about sparks in EDM

All about sparks in EDM All about sparks in EDM (and links with the CLIC DC spark test) Antoine Descoeudres, Christoph Hollenstein, Georg Wälder, René Demellayer and Roberto Perez Centre de Recherches en Physique des Plasmas

More information

Design and construction of a very small repetitive plasma focus device

Design and construction of a very small repetitive plasma focus device Plasma Science and Applications (ICPSA 2013) International Journal of Modern Physics: Conference Series Vol. 32 (2014) 1460326 (7 pages) The Author DOI: 10.1142/S2010194514603263 Design and construction

More information

The illumination source: the electron beam

The illumination source: the electron beam The SEM Column The illumination source: the electron beam The probe of the electron microscope is an electron beam with very high and stable energy (10-100 kev) in order to get images with high resolution.

More information

FLASH CHAMBER OF A QUASI-CONTINUOUS VOLUME SOURCE OF NEGATIVE IONS

FLASH CHAMBER OF A QUASI-CONTINUOUS VOLUME SOURCE OF NEGATIVE IONS FLASH CHAMBER OF A QUASI-CONTINUOUS VOLUME SOURCE OF NEGATIVE IONS P.A. Litvinov, V.A. Baturin * Institute of Applied Physics, National Academy of Science of Ukraine, 58 Petropavlovskaya St. Sumy, 40030

More information

high temp ( K) Chapter 20: Atomic Spectroscopy

high temp ( K) Chapter 20: Atomic Spectroscopy high temp (2000-6000K) Chapter 20: Atomic Spectroscopy 20-1. An Overview Most compounds Atoms in gas phase high temp (2000-6000K) (AES) (AAS) (AFS) sample Mass-to-charge (ICP-MS) Atomic Absorption experiment

More information

SPUTTER-WIND HEATING IN IONIZED METAL PVD+

SPUTTER-WIND HEATING IN IONIZED METAL PVD+ SPUTTER-WIND HEATING IN IONIZED METAL PVD+ Junqing Lu* and Mark Kushner** *Department of Mechanical and Industrial Engineering **Department of Electrical and Computer Engineering University of Illinois

More information

Thermal Characteristics of Rotating Anode X-ray Tube with Emissivity in Aging Process for Digital Radiography

Thermal Characteristics of Rotating Anode X-ray Tube with Emissivity in Aging Process for Digital Radiography Research Paper Applied Science and Convergence Technology Vol.24 No.5, September 2015, pp.125 131 http://dx.doi.org/10.5757/asct.2015.24.5.125 Thermal Characteristics of Rotating Anode X-ray Tube with

More information

DISCHARGE CHARACTERISTICS OF A LASER-ASSISTED PLASMA THRUSTER

DISCHARGE CHARACTERISTICS OF A LASER-ASSISTED PLASMA THRUSTER DISCHARGE CHARACTERISTICS OF A LASER-ASSISTED PLASMA THRUSTER Hideyuki Horisawa *, Masatoshi Kawakami *, Wun-Wei Lin *, Akira Igari *, and Itsuro Kimura # * Department of Aeronautics and Astronautics,

More information

Cambridge International Examinations Cambridge International Advanced Subsidiary and Advanced Level

Cambridge International Examinations Cambridge International Advanced Subsidiary and Advanced Level Cambridge International Examinations Cambridge International Advanced Subsidiary and Advanced Level *7314708539* PHYSICS 9702/42 Paper 4 A Level Structured Questions October/November 2016 2 hours Candidates

More information

MAGNETIC NOZZLE PLASMA EXHAUST SIMULATION FOR THE VASIMR ADVANCED PROPULSION CONCEPT

MAGNETIC NOZZLE PLASMA EXHAUST SIMULATION FOR THE VASIMR ADVANCED PROPULSION CONCEPT MAGNETIC NOZZLE PLASMA EXHAUST SIMULATION FOR THE VASIMR ADVANCED PROPULSION CONCEPT ABSTRACT A. G. Tarditi and J. V. Shebalin Advanced Space Propulsion Laboratory NASA Johnson Space Center Houston, TX

More information

Thermionic emission and Frank-Hertz oscillations

Thermionic emission and Frank-Hertz oscillations Thermionic emission and Frank-Hertz oscillations Matthew Krupcale, Evan Telford Department of Physics, Case Western Reserve University, Cleveland Ohio, 44106-7079 21 October 2012 Abstract Charges emitted

More information

Analytical and Experimental Studies on the Hybrid Fault Current Limiter Employing Asymmetric Non-Inductive Coil and Fast Switch

Analytical and Experimental Studies on the Hybrid Fault Current Limiter Employing Asymmetric Non-Inductive Coil and Fast Switch Analytical and Experimental Studies on the Hybrid Fault Current Limiter Employing Asymmetric Non-Inductive Coil and Fast Switch The MIT Faculty has made this article openly available. Please share how

More information

Introduction to Plasma

Introduction to Plasma What is a plasma? The fourth state of matter A partially ionized gas How is a plasma created? Energy must be added to a gas in the form of: Heat: Temperatures must be in excess of 4000 O C Radiation Electric

More information

Analysis of Electric Field and Polarization of SF6 Circuit Breaker to Approach a Suitable Structure

Analysis of Electric Field and Polarization of SF6 Circuit Breaker to Approach a Suitable Structure Analysis of Electric Field and Polarization of SF6 Circuit Breaker to Approach a Suitable Structure V. Abbasi* and A. Gholami* Downloaded from ijeee.iust.ac.ir at 20:03 IRST on Thursday October 4th 2018

More information

Langmuir Probe Measurements of a Magnetoplasmadynamic Thruster

Langmuir Probe Measurements of a Magnetoplasmadynamic Thruster Langmuir Probe Measurements of a Magnetoplasmadynamic Thruster IEPC-201-187 Presented at the rd International Electric Propulsion Conference, The George Washington University Washington, D.C. USA Yang

More information

Benefits of cryogenic cooling on the operation of a pulsed CO 2 laser

Benefits of cryogenic cooling on the operation of a pulsed CO 2 laser PRAMANA c Indian Academy of Sciences Vol. 82, No. 1 journal of January 2014 physics pp. 147 152 Benefits of cryogenic cooling on the operation of a pulsed CO 2 laser UTPAL NUNDY BH-2-76, Kendriya Vihar,

More information

Nonequilibrium discharges in air and nitrogen plasmas at atmospheric pressure*

Nonequilibrium discharges in air and nitrogen plasmas at atmospheric pressure* Pure Appl. Chem., Vol. 74, No. 3, pp. 337 347, 2002. 2002 IUPAC Nonequilibrium discharges in air and nitrogen plasmas at atmospheric pressure* Charles H. Kruger, Christophe O. Laux, Lan Yu, Denis M. Packan,

More information

For the following statements, mark ( ) for true statement and (X) for wrong statement and correct it.

For the following statements, mark ( ) for true statement and (X) for wrong statement and correct it. Benha University Faculty of Engineering Shoubra Electrical Engineering Department First Year communications. Answer all the following questions Illustrate your answers with sketches when necessary. The

More information

Chapter VI: Cold plasma generation

Chapter VI: Cold plasma generation Introduction This photo shows the electrical discharge inside a highpressure mercury vapor lamp (Philips HO 50) just after ignition (Hg + Ar) Chapter VI: Cold plasma generation Anode Positive column Cathode

More information

High-temperature characteristics of SiC Schottky barrier diodes related to physical phenomena

High-temperature characteristics of SiC Schottky barrier diodes related to physical phenomena High-temperature characteristics of SiC Schottky barrier diodes related to physical phenomena Tsuyoshi Funaki 1a), Tsunenobu Kimoto 2, and Takashi Hikihara 1 1 Kyoto University, Dept. of Electrical Eng.

More information

P. Diomede, D. J. Economou and V. M. Donnelly Plasma Processing Laboratory, University of Houston

P. Diomede, D. J. Economou and V. M. Donnelly Plasma Processing Laboratory, University of Houston P. Diomede, D. J. Economou and V. M. Donnelly Plasma Processing Laboratory, University of Houston 1 Outline Introduction PIC-MCC simulation of tailored bias on boundary electrode Semi-analytic model Comparison

More information

Pulsed Laser Deposition; laser ablation. Final apresentation for TPPM Diogo Canavarro, MEFT

Pulsed Laser Deposition; laser ablation. Final apresentation for TPPM Diogo Canavarro, MEFT Pulsed Laser Deposition; laser ablation Final apresentation for TPPM Diogo Canavarro, 56112 MEFT Summary What is PLD? What is the purpose of PLD? How PLD works? Experimental Setup Processes in PLD The

More information

Nonlinear Diffusion in Magnetized Discharges. Francis F. Chen. Electrical Engineering Department

Nonlinear Diffusion in Magnetized Discharges. Francis F. Chen. Electrical Engineering Department Nonlinear Diffusion in Magnetized Discharges Francis F. Chen Electrical Engineering Department PPG-1579 January, 1998 Revised April, 1998 Nonlinear Diffusion in Magnetized Discharges Francis F. Chen Electrical

More information

UNIVERSITY OF CAMBRIDGE INTERNATIONAL EXAMINATIONS General Certificate of Education Advanced Level

UNIVERSITY OF CAMBRIDGE INTERNATIONAL EXAMINATIONS General Certificate of Education Advanced Level UNIVERSITY OF CAMBRIDGE INTERNATIONAL EXAMINATIONS General Certificate of Education Advanced Level *3242847993* PHYSICS 9702/43 Paper 4 A2 Structured Questions October/November 2012 2 hours Candidates

More information

Recombination and Decay of Plasma Produced by Washer Stacked Plasma Gun inside a Curved Vacuum Chamber

Recombination and Decay of Plasma Produced by Washer Stacked Plasma Gun inside a Curved Vacuum Chamber Recombination and Decay of Plasma Produced by Washer Stacked Plasma Gun inside N C Sasini *, R Paikaray **, G S Sahoo ** * Department of Physics, G C College, Ramachandrapur, Jajpur, Odisha-755032, India

More information

IEEE TRANSACTIONS ON PLASMA SCIENCE, VOL. 43, NO. 8, AUGUST

IEEE TRANSACTIONS ON PLASMA SCIENCE, VOL. 43, NO. 8, AUGUST IEEE TRANSACTIONS ON PLASMA SCIENCE, VOL. 43, NO. 8, AUGUST 2015 2253 Modeling Spots on Composite Copper Chromium Contacts of Vacuum Arcs and their Stability Mikhail S. Benilov, Mário D. Cunha, Werner

More information

Studying of the Dipole Characteristic of THz from Photoconductors

Studying of the Dipole Characteristic of THz from Photoconductors PIERS ONLINE, VOL. 4, NO. 3, 8 386 Studying of the Dipole Characteristic of THz from Photoconductors Hong Liu, Weili Ji, and Wei Shi School of Automation and Information Engineering, Xi an University of

More information

Sensors Plasma Diagnostics

Sensors Plasma Diagnostics Sensors Plasma Diagnostics Ken Gentle Physics Department Kenneth Gentle RLM 12.330 k.gentle@mail.utexas.edu NRL Formulary MIT Formulary www.psfc.mit.edu/library1/catalog/ reports/2010/11rr/11rr013/11rr013_full.pdf

More information

Department of Aerospace Engineering and Engineering Mechanics, The University of Texas at Austin, Austin, Texas 78712, USA

Department of Aerospace Engineering and Engineering Mechanics, The University of Texas at Austin, Austin, Texas 78712, USA 1 MAGNETIZED DIRECT CURRENT MICRODISCHARGE, I: EFFECT OF THE GAS PRESSURE Dmitry Levko and Laxminarayan L. Raja Department of Aerospace Engineering and Engineering Mechanics, The University of Texas at

More information

Comparison of Transient Simulations on Overhead Cables by EMTP and FDTD

Comparison of Transient Simulations on Overhead Cables by EMTP and FDTD Comparison of Transient Simulations on Overhead Cables by EMTP and FDTD H. Xue, M. Natsui, A. Ametani, J. Mahseredjian, H. Tanaka, Y. Baba 1 Abstract--Transient simulations on an overhead cable are performed

More information

Lecture 6: High Voltage Gas Switches

Lecture 6: High Voltage Gas Switches Lecture 6: High Voltage Gas Switches Switching is a central problem in high voltage pulse generation. We need fast switches to generate pulses, but in our case, they must also hold off high voltages before

More information

Cambridge International Examinations Cambridge International Advanced Subsidiary and Advanced Level

Cambridge International Examinations Cambridge International Advanced Subsidiary and Advanced Level Cambridge International Examinations Cambridge International Advanced Subsidiary and Advanced Level *7372632194* PHYSICS 9702/42 Paper 4 A Level Structured Questions February/March 2017 2 hours Candidates

More information

Design and numerical simulation of thermionic electron gun

Design and numerical simulation of thermionic electron gun Design and numerical simulation of thermionic electron gun M.Hoseinzade 1;1), A.Sadighzadeh 1) Plasma Physics and Nuclear Fusion Research School, Nuclear Science and Technology Research Institute, AEOI,

More information

The CeB6 Electron Gun for the Soft-X-ray FEL Project at SPring-8

The CeB6 Electron Gun for the Soft-X-ray FEL Project at SPring-8 May 25, 2004 DESY, Hamburg, Germany The CeB6 Electron Gun for the Soft-X-ray FEL Project at SPring-8 K. Togawa SPring-8 / RIKEN Harima Institute T. Shintake, H. Baba, T. Inagaki, T. Tanaka SPring-8 / RIKEN

More information

Control of ion and electron distribution functions by the Electrical Asymmetry Effect. U. Czarnetzki

Control of ion and electron distribution functions by the Electrical Asymmetry Effect. U. Czarnetzki Control of ion and electron distribution functions by the Electrical Asymmetry Effect U. Czarnetzki 64t h GEC, Salt Lake City, 14-18 November 2011 Institute for Plasma and Atomic Physics 1 Ion energy:

More information