Simulation of Lightning Transients on 110 kv overhead-cable transmission line using ATP-EMTP

Size: px
Start display at page:

Download "Simulation of Lightning Transients on 110 kv overhead-cable transmission line using ATP-EMTP"

Transcription

1 Simulation of Lightning Transients on 110 kv overhead-cable transmission line using ATP-EMTP Kresimir Fekete 1, Srete Nikolovski 2, Goran Knezević 3, Marinko Stojkov 4, Zoran Kovač 5 # Power System Department, Faculty of Electrical Engineering Osijek K. Trpimira 2B, Osijek, Croatia 1 kresimir.fekete@etfosr.hr 2 srete.nikolovski@etfos.hr * Faculty of Mechanical Engineering Slavonski Brod I. B. Mažuranić 2, Sl. Brod, Croatia 4 marinko.stojkov@gmail.com Croatian Transmission System Operator K. Franje Shepera 1A, Osijek, Croatia 5 zoran.kovac@hep.hr Abstract Due to construction of a highway in the eastern part of Croatia, a new 110/x kv substation was built with two parallel connecting underground cables. Cables were connected to already existing 110 kv overhead lines. At the place where the transition between overhead lines and cables is made, surge arresters were installed. In this paper lightning stroke at the grounding wire on the overhead line and its impact on underground cables were studied. Transient program Electromagnetic Transients Program (ATP-EMTP) is used to create a model of the system and to perform simulation of the transient process during lightning stroke. The results of the simulation are briefly presented and discussed in the paper. I. INTRODUCTION In the process of designing new facilities in the power system (substations, cables, overhead lines etc.), lightning overvoltages are important from the viewpoint of the insulation and surge arrester coordination. Due to construction of the highway in the eastern part of Croatia, a new 110/x kv substation was built with two parallel connecting underground cables as well. Cables were connected to already existing 110 kv overhead lines. A more detail presentation of the system is presented in Chapter II. At the place where the transition between overhead lines and cables is made, surge arresters were installed. In order to make surge arrester coordination it is necessary to investigate the impact of lightning overvoltages. It is very hard to observe the lightning overvoltages experimentally, and thus a numerical simulation is used to investigate it. The EMTP has been widely used for the time domain transient solution. It was first developed at Bonneville Power Administration (B.P.A.) from Dommel s basic work [1]. Nearly all system components can be represented by builtin elements in ATP-EMTP like overhead lines with line and ground wires and towers as well as underground cables [2]. In this paper ATP-EMTP is used to create a model of the power system and to simulate lightning stroke at the grounding wire on the overhead line and its impact on underground cables and surge arresters. The structure of this paper is as follows: first, a brief explanation, regarding the part of the transmission system where the new substation and cables are built, is given. The main features of the ATP-EMTP model and method are explained in Chapter III. In Chapter IV, simulation and results are presented. Based on the results, the conclusion is given in the last chapter. II. DESCRIPTION OF THE POWER SYSTEM The part of the Eastern Croatian transmission system that is studied in this paper is shown in Fig.1. The new substation TS 110/20 kv Djakovo 3 is supplied from two substations TS 220/110 kv Djakovo and TS 400/110 kv Ernestinovo. The new substation is modelled only with passive load. At the place where overhead line and cable are connected, ABB Pexlim Q surge arresters are installed. Fig. 1. Single line diagram representing the part of the transmission system that is studied Parameters of the 110 kv overhead lines which are made of Al/Fe conductors with cross sections 240/40 mm 2, and underground cables type NEXANS which has a cross section of 1000 mm 2 are shown in Table I /10/$ IEEE 856

2 TABLE I PARAMETERS OF THE OVERHEAD LINES AND CABLES Conductor type 1 conductor/phase, 240/40 Al/St Overhead line Series resistance Series inductance (Ω/km) (mh/km) Underground cable Conductor type Series resistance (Ω/km) Al Series inductance (mh/km) A. Tower The height of 110 kv tower used in this paper is 31.9 m. The layout of one typical 110 kv tower is shown in Fig. 3. The distances are given in meters. All necessary data about the power system have been obtained from the Croatian Electric Utility HEP Transmission System Operator. The cable is presented in Fig. 2, and its model in the ATP-EMTP model for cables and overhead lines is presented in Fig 2. Fig. 3. Layout of a typical 110 kv tower The tower is represented by four lossless Constant- Parameter Distributed Line (CPDL) models [5] as illustrated in Fig. 4, where Z t1 tower top to the upper phase = upper phase to middle phase = middle phase to lower Z t4 lower phase to tower bottom. Fig. 2. Dialog box for cable/line model in ATP-EMTP A more detailed explanation about overhead lines, tower construction, and surge arresters is presented in the following chapters. III. ATP-EMTP MODEL AND METHOD The modeling method for the back flashover analysis used in this paper is based upon various publications in this field [3], [4]. In this chapter the model of tower, transmission line, underground cable, surge arrester and lightning current will be explained. CPDL model is characterized by surge impedances Z and travelling time τ. Values of surge impedances are [3]: Z t1 = 220 Ω and Z t4 = 150 Ω. Distance between top of the tower (grounding wire GW) and the tower bottom is h = h 1 and h 2, h 3 and h 4 are distances between ground and phases starting with upper phase respectively. The propagation velocity of a travelling wave along a tower is taken to be equal to the light velocity, c 0 = 300 m/μs [3]. The tower travelling time is given by the following equation: h τ = (1) c0 Because footing impedance is represented by a linear resistance (R f ) it is recommended to take into account frequency-dependent effects for wave propagation along the tower. It is done by adding an RL parallel circuit to each part, 857

3 as shown in Fig. 4 in order to represent travelling wave attenuation and distortion [3]. Ri =ΔRi xi; Li= 2τ Ri (2) 2 Z t 1 1 Δ R1=Δ R2=Δ R3= ln (3) ( h x4) α1 2Z t 4 1 Δ R4 = ln (4) h α4 where: α 1 = α 4 = 0.89 attenuation along the tower. Values for resistance (R) and inductance (L) in our study are: R 1 = Ω, R 2 = Ω, R 3 = 15.9 Ω, R 4 = Ω, L 1 = mh, L 2 = mh, L 3 = 3.36 mh and L 4 = mh. A tower footing impedance is modelled as a simple linear resistance R f = 10 Ω. Fig. 4. A model circuit of a 110 kv tower The values of resistance (R) and inductance (L) are defined in the following equations [3]: B. Number of Towers Five towers of a part of a line route to substation TS 400/110 kv Ernestinovo and five towers of a part of line route to substation TS 220/110 kv Djakovo are represented including all line circuits. The total number of towers is ten. Direct lightning stroke at the grounding wire to tower #2 is analysed. Fig. 5 represents the model of only one part of the analysed power system. Fig. 5. Part of the ATP-EMTP model of the analysed system 858

4 C. Arrester In order to protect cable from lightning overvoltages zinc oxide surge arresters ABB Pexlim Q are installed at the place where overhead lines and cables are connected. In the model used in this study nonlinear branch model is used with its input V-I characteristic to represent surge arrester. Protective V-I characteristic [6] of surge arrester is illustrated in Fig. 6. Fig. 7. Lightning stroke model consisting of a current source and lightning path impedance The Heidler s function [8] is used to represent lightning current waveform: where: I ( t / τ ) it () = e η ( / ) + 1 n 0 1 n t τ1 ( t/ τ2 ) (5) Fig. 6. Protective V-I characteristic of a surge arrester D. Transmission Lines and Cables The parameters of transmission lines and cables with ground return are highly dependent on the frequency. Accurate modelling of this frequency dependence over the entire frequency range of the signals is of essential importance for the correct simulation of electromagnetic transients [7]. Models which assume constant parameters (e.g. at 50 Hz) cannot adequately simulate the response of the line over wide range of frequencies that are present during transient condition. In most cases constant-parameter representation produces a magnification of the higher harmonics of the signals and, as a consequence, a general distortion of the wave shapes and exaggerated magnitude peaks [7]. ATP-EMTP offers possibility to use various frequencydependent line models [5]. In this paper J. Marti frequencydependent line model [7] is used to represent overhead transmission lines and cables. The grounding wire is represented like a phase wire, which is connected to the top of the towers. E. Lightning Current and Impedance The lightning stroke is modelled by a current source and a parallel resistance, which represents the lightning path impedance as shown in Fig. 7. η 1/ ( 1/ 2)( 2/ 1) n = (6) e τ τ ητ τ and: I 0 = lightning current peak; τ 1 = time constant determining current rise-time; τ 2 = time constant determining current decay-time; n = current steepness factor. In this paper values for Heidler s function parameters are as follows: I 0 = 100 ka, τ 1 = 1.2 μs, τ 2 = 61.7 μs and n = 7. Fig. 8 shows the lightning current waveform used in this paper. Fig. 8. Lightning current waveform used in this paper The impedance of a lightning path is represented as a parallel resistance to a current source. The resistance value is taken to be 400 Ω, which was derived by Bewley [9]. 859

5 IV. SIMULATION AND RESULTS The simulation is performed in order to investigate proper work of the surge arrester when a lightning stroke at tower #2 has appeared. As mentioned before, the lightning current peak used in the simulation is 100 ka. The simulation time parameters are: - simulation time T max = s, - simulation step T = 1E-8 s. Results of the simulation will be presented in the following. A. Voltage at the Point of the Lightning Stroke Fig. 9 presents overvoltage at the point of lightning stroke i.e. at the grounding wire of the tower #2. The peak value of the overvoltage is 6 MV. B. Voltage and Current of Surge Arrester At the point where surge arresters are installed, voltage and current are computed. Fig. 11 shows voltage at the point where surge arresters are installed. It is important to notice that only results for surge arresters that are installed between cable 1 and overhead transmission line from TS 110/20 kv Djakovo 3 to TS 400/110 kv Ernestinovo are taken into consideration in this paper. The reason for this is the location of the lightning stroke. The influence of the lightning stroke on the second surge arrester that is installed between cable 2 and overhead line to TS 220/110 kv Djakovo is disregarded in this paper. As can be observed from the Fig. 11, the maximum voltage between phases and ground is 100 kv. Fig. 9. Voltage at the point of lightning stroke on grounding wire Lightning surges that are induced on the phase conductors due to back flashover across 110 kv insulator strings are shown in Fig. 10. As it can be observed, the highest overvoltage peak (i.e. 5 MV) is induced at phase A, which is closed to the grounding wire. Induced overvoltages on phases B and C are almost the same (peak value is 2 MV). Fig. 11. Voltage at the point where surge arresters are installed Currents of surge arresters in the moment when it lead the current are shown in Fig. 12. The highest peak value has phase A because overvoltage of phase A is the highest (see Fig. 9). It can be observed that surge arresters worked according to their input V-I characteristics and in that way protecting underground cables from surges, which will be shown in the following subchapter. Fig. 10. Voltage at phase wires of the affected tower Fig. 12. Current of surge arresters 860

6 C. Voltage at the end of Cable 1 It can be seen in Fig. 13 that during a transient process there are no dangerous overvoltages at the end of cable 1. The maximum value of voltage is 80 kv. Fig. 13. Voltage at the end of the cable 1 It was interesting to see the value of induced voltage on the grounded shield for cables which are grounded at both ends, at the tower where the overhead line enters into the ground and at the grounding network in TS 110 kv Djakovo 3. The cable shield is grounded at four places in the buried track and is connected to copper wire with resistance R= ohm and inductance L=0.23 mh. The induced voltage on the cable shield at TS Djakovo 3 is presented in Fig. 14. It is less than 50 V and does not present any security problems. V. CONCLUSION A flashover analysis has been performed for a 110 kv overhead line which is connected to 110 kv underground cables. Between the overhead line and cable, a surge arrester is installed. The cable shield is well grounded at both ends of the cables with a copper wire. The function of the surge arrester and influence of the lightning stroke on a cable are observed. As simulation results indicate if a surge arrestor works properly there will be no dangerous overvoltage affecting the underground cable shield. Further work on this study will be based on different lightning current waveforms, like CIGRE concave waveform [10]. Also, the influence of different stroke locations, tower structures and the cable length, as well as a detailed influence of lightning stroke on the grounding system and cable shield are interesting subjects for further analysis. ACKNOWLEDGMENT Authors wish to acknowledge Laszlo Prikler for his contribution in developing the model of overhead transmission line and tower in EMTP. The paper is supported by the Croatian Transmission System Operator HEP TSO Osijek. REFERENCES [1] H.W. Dommel, Digital Computer Solution of Electromagnetic Transients in Single-and Multiphase Networks, IEEE Trans. Power Apparaturs and Systems, vol. PAS-88, pp , April [2] H. W. Dommel, EMTP Theory Book, Bonneville Power Administration, conversion into electronic format by Canadian/American EMTP Users Group in [3] A. Ametani, and T. Kawamura, A Method of a Lightning Surge Analysis Recommended in Japan Using EMTP, IEEE Trans. On Power Delivery, vol. 20, No 2, pp , April [4] M. Kizilcay, and C. Neumann, Analysis of Backflashover Across 110- kv Insulator Strings of a Multi-circuit Transmission Tower, in Proc. European EMTP-ATP Meeting 2006, pp , [5] Canadian/American EMTP User Group, ATP Rule Book, Distributed by the European EMTP-ATP Users Group Association, [6] ABB documents 1HSM en Edition Protection characteristic of surge arrester PEXLIM-Q2, [7] J.R. Marti, Accurate Modeling of Frequency-dependent Transmission Lines in Electromagnetic Transient Simulations, IEEE Trans. Power Apparaturs and Systems, vol. PAS-101, No 1, pp , January [8] F. Heidler, J.M. Cveticand B.V. Stanic, Calculation of Lightning Current Parameters, IEEE Trans. On Power Delivery, vol. 14, No 2, pp , April [9] B. V. Bewly, Travelling Waves on Transmission Systems, New York: Dover, [10] CIGRE WG 33-01, Guide to Procedures for Estimating the Lightning Performance of Transmission Lines, Technical Brochure, October, Fig. 14. Induced voltage on the grounding shield of cable 861

Simulation of Short Circuit and Lightning Transients on 110 kv Overhead and Cable Transmission Lines Using ATP-EMTP

Simulation of Short Circuit and Lightning Transients on 110 kv Overhead and Cable Transmission Lines Using ATP-EMTP Simulation of Short Circuit and Lightning Transients on 110 kv Overhead and Cable Transmission Lines Using ATP-EMTP Predrag Maric 1, Srete Nikolovski 1, Laszlo Prikler 2 Kneza Trpimira 2B 1 Faculty of

More information

Mitigation of Back-Flashovers for 110-kV Lines at Multi-Circuit Overhead Line Towers

Mitigation of Back-Flashovers for 110-kV Lines at Multi-Circuit Overhead Line Towers Mitigation of Back-Flashovers for -kv Lines at Multi-Circuit Overhead Line Towers Mustafa Kizilcay Abstract--An increase of back-flashovers in a -kv system has been observed along an overhead line route

More information

2000 Mathematics Subject Classification: 68Uxx/Subject Classification for Computer Science. 281, 242.2

2000 Mathematics Subject Classification: 68Uxx/Subject Classification for Computer Science. 281, 242.2 ACTA UNIVERSITATIS APULENSIS Special Issue SIMULATION OF LIGHTNING OVERVOLTAGES WITH ATP-EMTP AND PSCAD/EMTDC Violeta Chiş, Cristina Băla and Mihaela-Daciana Crăciun Abstract. Currently, several offline

More information

Modeling insulation in high-voltage substations

Modeling insulation in high-voltage substations 38 ABB REVIEW DESIGNED FOR SAFETY DESIGNED FOR SAFETY Modeling insulation in high-voltage substations The goal of insulation coordination is to determine the dielectric strength of transformers and other

More information

Analysis of lightning performance of 132KV transmission line by application of surge arresters

Analysis of lightning performance of 132KV transmission line by application of surge arresters Analysis of lightning performance of 132KV transmission line by application of surge arresters S. Mohajer yami *, A. Shayegani akmal, A.Mohseni, A.Majzoobi High Voltage Institute,Tehran University,Iran

More information

Parameters Affecting the Back Flashover across the Overhead Transmission Line Insulator Caused by Lightning

Parameters Affecting the Back Flashover across the Overhead Transmission Line Insulator Caused by Lightning Proceedings of the 14 th International Middle East Power Systems Conference (MEPCON 10), Cairo University, Egypt, December 19-21, 2010, Paper ID 111. Parameters Affecting the Back Flashover across the

More information

Lightning Flashover Rate of an Overhead Transmission Line Protected by Surge Arresters

Lightning Flashover Rate of an Overhead Transmission Line Protected by Surge Arresters IEEE PES General Meeting June 23-27, 27, 2007, Tampa Lightning Flashover Rate of an Overhead Transmission Line Protected by Surge Arresters Juan A. Martinez Univ. Politècnica Catalunya Barcelona, Spain

More information

PREVENTING FLASHOVER NEAR A SUBSTATION BY INSTALLING LINE SURGE ARRESTERS

PREVENTING FLASHOVER NEAR A SUBSTATION BY INSTALLING LINE SURGE ARRESTERS 29 th International Conference on Lightning Protection 23 rd 26 th June 2008 Uppsala, Sweden PREVENTING FLASHOVER NEAR A SUBSTATION BY INSTALLING LINE SURGE ARRESTERS Ivo Uglešić Viktor Milardić Božidar

More information

The relationship between operating maintenance and lightning overvoltage in distribution networks based on PSCAD/EMTDC

The relationship between operating maintenance and lightning overvoltage in distribution networks based on PSCAD/EMTDC The relationship between operating maintenance and lightning overvoltage in distribution networks based on PSCAD/EMTDC Xiaojun Chena *, Wenjie Zhengb, Shu Huangc, Hui Chend Electric Power Research Institute

More information

EXPERIMENTAL INVESTIGATION OF A TRANSIENT INDUCED VOLTAGE TO AN OVERHEAD CONTROL CABLE FROM A GROUNDING CIRCUIT

EXPERIMENTAL INVESTIGATION OF A TRANSIENT INDUCED VOLTAGE TO AN OVERHEAD CONTROL CABLE FROM A GROUNDING CIRCUIT EXPERIMENTAL INVESTIGATION OF A TRANSIENT INDUCED VOLTAGE TO AN OVERHEAD CONTROL CABLE FROM A GROUNDING CIRCUIT Akihiro AMETANI, Tomomi OKUMURA, Naoto NAGAOKA, Nobutaka, MORI Doshisha University - Japan

More information

Effect of High Frequency Cable Attenuation on Lightning-Induced Overvoltages at Transformers

Effect of High Frequency Cable Attenuation on Lightning-Induced Overvoltages at Transformers Voltage (kv) Effect of High Frequency Cable Attenuation on Lightning-Induced Overvoltages at Transformers Li-Ming Zhou, Senior Member, IEEE and Steven Boggs, Fellow, IEEE Abstract: The high frequency attenuation

More information

Maximum Lightning Overvoltage along a Cable due to Shielding Failure

Maximum Lightning Overvoltage along a Cable due to Shielding Failure Maximum Lightning Overvoltage along a Cable due to Shielding Failure Thor Henriksen Abstract--This paper analyzes the maximum lightning overvoltage due to shielding failure along a cable inserted in an

More information

LIGHTNING OVERVOLTAGES AND THE QUALITY OF SUPPLY: A CASE STUDY OF A SUBSTATION

LIGHTNING OVERVOLTAGES AND THE QUALITY OF SUPPLY: A CASE STUDY OF A SUBSTATION LIGHTNING OVERVOLTAGES AND THE QUALITY OF SUPPLY: A CASE STUDY OF A SUBSTATION Andreas SUMPER sumper@citcea.upc.es Antoni SUDRIÀ sudria@citcea.upc.es Samuel GALCERAN galceran@citcea.upc.es Joan RULL rull@citcea.upc.es

More information

Lightning performance of a HV/MV substation

Lightning performance of a HV/MV substation Lightning performance of a HV/MV substation MAHMUD TAINBA, LAMBOS EKONOMOU Department of Electrical and Electronic Engineering City University London Northampton Square, London EC1V HB United Kingdom emails:

More information

Estimating BFOR on HV Transmission Lines Using EMTP and Curve of Limiting Parameters

Estimating BFOR on HV Transmission Lines Using EMTP and Curve of Limiting Parameters Estimating BFOR on HV Transmission Lines Using EMTP and Curve of Limiting Parameters Petar Sarajcev, Josip Vasilj, Patrik Sereci Abstract--This paper presents a method for estimating the backflashover

More information

Analysis of MOV Surge Arrester Models by using Alternative Transient Program ATP/EMTP

Analysis of MOV Surge Arrester Models by using Alternative Transient Program ATP/EMTP IJSTE - International Journal of Science Technology & Engineering Volume 3 Issue 2 August 216 ISSN (online): 2349-784X Analysis of MOV Surge Arrester Models by using Alternative Transient Program ATP/EMTP

More information

Modeling for the Calculation of Overvoltages Stressing the Electronic Equipment of High Voltage Substations due to Lightning

Modeling for the Calculation of Overvoltages Stressing the Electronic Equipment of High Voltage Substations due to Lightning Modeling for the Calculation of Overvoltages Stressing the Electronic Equipment of High Voltage Substations due to Lightning M. PSALIDAS, D. AGORIS, E. PYRGIOTI, C. KARAGIAΝNOPOULOS High Voltage Laboratory,

More information

Simulation and Analysis of Lightning on 345-kV Arrester Platform Ground-Leading Line Models

Simulation and Analysis of Lightning on 345-kV Arrester Platform Ground-Leading Line Models International Journal of Electrical & Computer Sciences IJECS-IJENS Vol:15 No:03 39 Simulation and Analysis of Lightning on 345-kV Arrester Platform Ground-Leading Line Models Shen-Wen Hsiao, Shen-Jen

More information

Lightning Overvoltage Performance of 110 kv Air-Insulated Substation

Lightning Overvoltage Performance of 110 kv Air-Insulated Substation Lightning Overvoltage Performance of 11 kv Air-Insulated Substation B. Filipović-Grčić, B. Franc, I. glešić, V. Milardić, A. Tokić Abstract--This paper presents the analysis of lightning overvoltage performance

More information

Investigation of Transmission Line Overvoltages and their Deduction Approach

Investigation of Transmission Line Overvoltages and their Deduction Approach Investigation of Transmission Line Overvoltages and their Deduction Approach A. Hayati Soloot, A. Gholami, E. Agheb, A. Ghorbandaeipour, and P. Mokhtari Abstract The two significant overvoltages in power

More information

Lightning transient analysis in wind turbine blades

Lightning transient analysis in wind turbine blades Downloaded from orbit.dtu.dk on: Aug 15, 2018 Lightning transient analysis in wind turbine blades Candela Garolera, Anna; Holbøll, Joachim; Madsen, Søren Find Published in: Proceedings of International

More information

Comparison between Different InstallationLocations of Surge Arresters at Transmission Line Using EMTP-RV

Comparison between Different InstallationLocations of Surge Arresters at Transmission Line Using EMTP-RV No. E-13-HVS-2308 Comparison between Different InstallationLocations of Surge Arresters at Transmission Line Using EMT-RV Soheil Derafshi Beigvand, Mohammad Morady Electrical Engineering Department, Engineering

More information

Simplified Approach to Calculate the Back Flashover Voltage of Shielded H.V. Transmission Line Towers

Simplified Approach to Calculate the Back Flashover Voltage of Shielded H.V. Transmission Line Towers Proceedings of the 14 th International Middle East Power Systems Conference (MEPCON 1), Cairo University, Egypt, December 19-1, 1, Paper ID 1. Simplified Approach to Calculate the Back Flashover Voltage

More information

ANALYSIS OF LIGHTNING STRIKE WITH CORONA ON OHTL NEAR THE SUBSTATION BY EMTP

ANALYSIS OF LIGHTNING STRIKE WITH CORONA ON OHTL NEAR THE SUBSTATION BY EMTP ANALYSIS OF LIGHTNING STRIKE WITH CORONA ON OHTL NEAR THE SUBSTATION BY EMTP Zahira ANANE 1, AbdElhafid BAYADI 1 and Alen Bernadić 2 1 Department of Electrical engineering Automatic Laboratory (LAS) of

More information

Effect of Shielded Distribution Cables on Lightning-Induced Overvoltages in a Distribution System

Effect of Shielded Distribution Cables on Lightning-Induced Overvoltages in a Distribution System IEEE TRANSACTIONS ON POWER DELIVERY, VOL. 17, NO. 2, APRIL 2002 569 Effect of Shielded Distribution Cables on Lightning-Induced Overvoltages in a Distribution System Li-Ming Zhou, Senior Member, IEEE,

More information

Lightning overvoltage and protection of power substations

Lightning overvoltage and protection of power substations Lightning overvoltage and protection of power substations Mahmud Trainba 1, Christos A. Christodoulou 2, Vasiliki Vita 1,2, Lambros Ekonomou 1,2 1 Department of Electrical and Electronic Engineering, City,

More information

The Analysis Results of Lightning Overvoltages by EMTP for Lightning Protection Design of 500 kv Substation

The Analysis Results of Lightning Overvoltages by EMTP for Lightning Protection Design of 500 kv Substation The Analysis Results of Lightning Overvoltages by EMTP for Lightning Protection Design of 500 kv Substation J. W. Woo, J. S. Kwak, H. J. Ju, H. H. Lee, J. D. Moon Abstract--To meet increasing power demand,

More information

Effective Elimination Factors to the Generated Lightning Flashover in High Voltage Transmission Network

Effective Elimination Factors to the Generated Lightning Flashover in High Voltage Transmission Network International Journal on Electrical Engineering and Informatics - Volume 9, Number, September 7 Effective Elimination Factors to the Generated Lightning Flashover in High Voltage Transmission Network Abdelrahman

More information

When surge arres t ers are installed close to a power transformer, overvoltage TRANSFORMER IN GRID ABSTRACT KEYWORDS

When surge arres t ers are installed close to a power transformer, overvoltage TRANSFORMER IN GRID ABSTRACT KEYWORDS TRANSFORMER IN GRID When surge arres t ers are installed close to a power transformer, they provide protection against lightning overvoltage ABSTRACT The aim of this research article is to determine the

More information

Accuracy of Lightning Surge Analysis of Tower Surge Response

Accuracy of Lightning Surge Analysis of Tower Surge Response Accuracy of ightning Surge Analysis of Tower Surge esponse Naoki Itamoto, Hironao Kawamura, Kazuo Shinjo, Hideki Motoyama, Masaru Ishii Abstract--This paper presents a comparison between the measured and

More information

Analysis of current distribution among long-flashover arresters for 10 kv overhead line protection against direct lightning strikes

Analysis of current distribution among long-flashover arresters for 10 kv overhead line protection against direct lightning strikes 2014 International onference on Lightning Protection (ILP), Shanghai, hina nalysis of current distribution among long-flashover arresters for 10 kv overhead line protection against direct lightning strikes

More information

Estimating the Lightning Performance of a Multi- Circuit Transmission Tower

Estimating the Lightning Performance of a Multi- Circuit Transmission Tower Estimating the Lightning Performance of a Multi Circuit Transmission Tower Pawel Malicki, Andrzej Mackow and Mustafa Kizilcay University of Siegen Chair of Electrical Power Systems Siegen, Germany pawel.malicki@unisiegen.de

More information

Study of Tower Grounding Resistance Effected Back Flashover to 500 kv Transmission Line in Thailand by using ATP/EMTP

Study of Tower Grounding Resistance Effected Back Flashover to 500 kv Transmission Line in Thailand by using ATP/EMTP Study of Tower Grounding Resistance Effected Back Flashover to 500 kv Transmission Line in Thailand by using ATP/EMTP B. Marungsri, S. Boonpoke, A. Rawangpai, A. Oonsivilai, and C. Kritayakornupong Abstract

More information

Research on Lightning Over-voltage and Lightning Protection of 500kV. HGIS Substation

Research on Lightning Over-voltage and Lightning Protection of 500kV. HGIS Substation International Conference on Manufacturing Science and Engineering (ICMSE 2015) Research on Lightning Over-voltage and Lightning Protection of 500kV HGIS Substation Tong Wang1, a *and Youping Fan1, b 1

More information

Session Four: Practical Insulation Co-ordination for Lightning Induced Overvoltages

Session Four: Practical Insulation Co-ordination for Lightning Induced Overvoltages Session Four: ractical Insulation Co-ordination Session Four: ractical Insulation Co-ordination for Lightning Induced Overvoltages Jason Mayer Technical Director, Energy Services, Aurecon Introduction

More information

Including Surge Arresters in the Lightning Performance Analysis of 132kV Transmission Line

Including Surge Arresters in the Lightning Performance Analysis of 132kV Transmission Line ncluding Surge Arresters in the Lightning Performance Analysis of 32kV Transmission Line Saeed Mohajeryami, Milad Doostan University of North Carolina at Charlotte Department of Electrical and Computer

More information

Investigation into Transient SFO, FFO, VFTO Overvoltage Characteristics for Typical Gas Insulated Substations

Investigation into Transient SFO, FFO, VFTO Overvoltage Characteristics for Typical Gas Insulated Substations nvestigation into Transient SFO, FFO, VFTO Overvoltage Characteristics for Typical Gas nsulated Substations L. Czumbil, J. Kim, H. Nouri Abstract--Overvoltage characteristics of typical single bus, double

More information

Modeling of overhead transmission lines with line surge arresters for lightning overvoltages. Poland

Modeling of overhead transmission lines with line surge arresters for lightning overvoltages. Poland Application of Line Surge Arresters in Power Distribution and Transmission Systems COLLOQUIUM Cavtat 2008 Modeling of overhead transmission lines with line surge arresters for lightning overvoltages M.

More information

Analysis of Arrester Energy for 132kV Overhead Transmission Line due to Back Flashover and Shielding Failure

Analysis of Arrester Energy for 132kV Overhead Transmission Line due to Back Flashover and Shielding Failure nalysis of rrester Energy for 132kV Overhead ransmission Line due to Back Flashover and Shielding Failure Nor Hidayah Nor Hassan 1,a, b. Halim bu Bakar 2,b, Hazlie Mokhlis 1, Hazlee zil Illias 1 1 Department

More information

Lightning Performance Improvement of 115 kv and 24 kv Circuits by External Ground in MEA s Distribution System

Lightning Performance Improvement of 115 kv and 24 kv Circuits by External Ground in MEA s Distribution System Lightning Performance Improvement of 115 kv and 24 kv Circuits by External Ground in MEA s Distribution System A. Phayomhom and S. Sirisumrannukul Abstract This paper presents the guidelines for preparing

More information

Transmission Line Transient Overvoltages (Travelling Waves on Power Systems)

Transmission Line Transient Overvoltages (Travelling Waves on Power Systems) Transmission Line Transient Overvoltages (Travelling Waves on Power Systems) The establishment of a potential difference between the conductors of an overhead transmission line is accompanied by the production

More information

ABSTRACTS of SESSION 6

ABSTRACTS of SESSION 6 ABSTRACTS of SESSION 6 Paper n 1 Lightning protection of overhead 35 kv lines by antenna-module long flashover arresters Abstract: A long-flashover arrester (LFA) of a new antenna-module type is suggested

More information

Lightning current field measurement on a transmission line, comparison with electromagnetic transient calculations

Lightning current field measurement on a transmission line, comparison with electromagnetic transient calculations Lightning current field measurement on a transmission line, comparison with electromagnetic transient calculations A. Xemard, M. Mesic, T. Sadovic, D. Marin, S. Sadovic Abstract- A lightning experiment

More information

SWITCHING OVERVOLTAGES IN A 400-KV CABLE SYSTEM

SWITCHING OVERVOLTAGES IN A 400-KV CABLE SYSTEM SWITCHING OVERVOLTAGES IN A 4-KV CABLE SYSTEM Mustafa Kizilcay University of Siegen Siegen, Germany kizilcay@uni-siegen.de Abstract This paper deals with the computation of switching overvoltages in a

More information

Mitigation Methods to Improve the Lightning Performance of Hybrid Transmission Line

Mitigation Methods to Improve the Lightning Performance of Hybrid Transmission Line Mitigation Methods to Improve the Lightning Performance of Hybrid Transmission Line Andrzej Mackow Mustafa Kizilcay Dept. of Electrical Eng. and Computer Science University Siegen Siegen, Germany andrzej.mackow@uni-siegen.de

More information

Computation of Lightning Impulse Backflashover Outages Rates on High Voltage Transmission Lines

Computation of Lightning Impulse Backflashover Outages Rates on High Voltage Transmission Lines www.ijape.org International Journal of Automation and Power Engineering (IJAPE) Volume Issue, January DOI:./ijape... omputation of Lightning Impulse Backflashover Outages Rates on High Voltage Transmission

More information

Sensitivity Analysis of Maximum Overvoltage on Cables with Considering Forward and Backward Waves

Sensitivity Analysis of Maximum Overvoltage on Cables with Considering Forward and Backward Waves Sensitivity Analysis of Maximum Overvoltage on Cables with Considering Forward and Backward Waves Hamed Touhidi 1,Mehdi Shafiee 2, Behrooz Vahidi 3, Seyed Hossein Hosseinian 4 1 Islamic Azad University,

More information

Lightning Performance of Transmission Lines with Tall Sections

Lightning Performance of Transmission Lines with Tall Sections Lightning Performance of Transmission Lines with Tall Sections A. J. G. Pinto, E. C. M. Costa, J. H. A. Monteiro, S. Kurokawa, J. Pissolato Abstract An analysis is proposed on the lightning performance

More information

A Study of Lightning Surge on Underground Cables in a Cable Connection Station

A Study of Lightning Surge on Underground Cables in a Cable Connection Station Proceedings of the 6th WSEAS International Conference on Instrumentation, Measurement, Circuits & Systems, Hangzhou, China, April 1517, 2007 198 A Study of Lightning Surge on Under Cables in a Cable Connection

More information

Analysis of Switching Transients of an EHV Transmission Line Consisting of Mixed Power Cable and Overhead Line Sections

Analysis of Switching Transients of an EHV Transmission Line Consisting of Mixed Power Cable and Overhead Line Sections Analysis of Switching Transients of an EHV Transmission Line Consisting of Mixed Power Cable and Overhead Line Sections M. Kizilcay, K. Teichmann, S. Papenheim, P. Malicki Abstract -- Within the scope

More information

Statistical Lightning Simulations for a HV "Mixed" Overhead-Cable Line: Preliminary Studies

Statistical Lightning Simulations for a HV Mixed Overhead-Cable Line: Preliminary Studies 2014 International Conference on Lightning Protection (ICLP), Shanghai, China Statistical Lightning Simulations for a HV "Mixed" Overhead-Cable Line: Preliminary Studies F. M. Gatta, A. Geri, S. Lauria

More information

SURGE PROPAGATION AND PROTECTION OF UNDERGROUND DISTRIBUTION CABLES

SURGE PROPAGATION AND PROTECTION OF UNDERGROUND DISTRIBUTION CABLES SURGE PROPAGATION AND PROTECTION OF UNDERGROUND DISTRIBUTION CABLES Jae-bong LEE, Korea Electric Power Research Institute(KEPRI), (Korea), jbonglee@kepco.co.kr Ju-yong KIM, Korea Electric Power Research

More information

A Study on Lightning Overvoltage Characteristics of Grounding Systems in Underground Distribution Power Cables

A Study on Lightning Overvoltage Characteristics of Grounding Systems in Underground Distribution Power Cables J Electr Eng Technol Vol. 9, No. 2: 628-634, 2014 http://dx.doi.org/10.5370/jeet.2014.9.2.628 ISSN(Print) 1975-0102 ISSN(Online) 2093-7423 A Study on Lightning Overvoltage Characteristics of Grounding

More information

The Influence of Atmospheric Overvoltages on High-Voltage SF 6. Substations

The Influence of Atmospheric Overvoltages on High-Voltage SF 6. Substations The Influence of Atmospheric Overvoltages on High-Voltage SF 6 Substations Vedran Vukasović Faculty of Electrical Engineering Osijek Josip Juraj Strossmayer University of Osijek, Croatia vvukasov@etfos.hr

More information

X International Symposium on Lightning Protection

X International Symposium on Lightning Protection X International Symposium on Lightning Protection 9 th -13 th November, 2009 Curitiba, Brazil LIGHTNING SURGES TRANSFERRED TO THE SECONDARY OF DISTRIBUTION TRANSFORMERS DUE TO DIRECT STRIKES ON MV LINES,

More information

Electric Stresses on Surge Arrester Insulation under Standard and

Electric Stresses on Surge Arrester Insulation under Standard and Chapter 5 Electric Stresses on Surge Arrester Insulation under Standard and Non-standard Impulse Voltages 5.1 Introduction Metal oxide surge arresters are used to protect medium and high voltage systems

More information

ABSTRACT 1 INTRODUCTION

ABSTRACT 1 INTRODUCTION ELECTROMAGNETIC ANALYSIS OF WIND TURBINE GROUNDING SYSTEMS Maria Lorentzou*, Ian Cotton**, Nikos Hatziargyriou*, Nick Jenkins** * National Technical University of Athens, 42 Patission Street, 1682 Athens,

More information

Simulation Study on Transient Performance of Lightning Over-voltage of Transmission Lines

Simulation Study on Transient Performance of Lightning Over-voltage of Transmission Lines 7th Asia-Pacific International Conference on Lightning, November 1-4, 2011, Chengdu, China Simulation Study on Transient Performance of Lightning Over-voltage of Transmission Lines Zihui Zhao, Dong Dang,

More information

Electrical Power and Energy Systems

Electrical Power and Energy Systems Electrical Power and Energy Systems 33 (2011) 1536 1541 Contents lists available at ScienceDirect Electrical Power and Energy Systems journal homepage: www.elsevier.com/locate/ijepes Analysis of lightning-caused

More information

PRELIMINARIES. Generators and loads are connected together through transmission lines transporting electric power from one place to another.

PRELIMINARIES. Generators and loads are connected together through transmission lines transporting electric power from one place to another. TRANSMISSION LINES PRELIMINARIES Generators and loads are connected together through transmission lines transporting electric power from one place to another. Transmission line must, therefore, take power

More information

Power Quality and Reliablity Centre

Power Quality and Reliablity Centre Technical Note No. 8 April 2005 Power Quality and Reliablity Centre TRANSIENT OVERVOLTAGES ON THE ELECTRICITY SUPPLY NETWORK CLASSIFICATION, CAUSES AND PROPAGATION This Technical Note presents an overview

More information

FDTD-Based Lightning Surge Simulation of a Microwave Relay Station

FDTD-Based Lightning Surge Simulation of a Microwave Relay Station 214 International Conference on Lightning Protection (ICLP), Shanghai, China FDTD-Based Lightning Surge Simulation of a Microwave Relay Station Akiyoshi Tatematsu, Kenichi Yamazaki, and Hirokazu Matsumoto

More information

Protection against unacceptable voltages in railway systems

Protection against unacceptable voltages in railway systems Bernhard Richter*, Alexander Bernhard*, Nick Milutinovic** SUMMERY Based on the system voltages for AC and DC railway systems the required voltage ratings for modern gapless MO surge arresters are given.

More information

Analyzing and Modeling the Lightning Transient Effects of 400 KV Single Circuit Transmission Lines

Analyzing and Modeling the Lightning Transient Effects of 400 KV Single Circuit Transmission Lines International Journal of Science and Engineering Investigations vol. 2, issue 19, August 2013 ISSN: 2251-8843 Analyzing and Modeling the Lightning Transient Effects of 400 KV Single Circuit Transmission

More information

Transmission of Electrical Energy

Transmission of Electrical Energy Transmission of Electrical Energy Electrical energy is carries by conductors such as overhead transmission lines and underground cables. The conductors are usually aluminum cable steel reinforced (ACSR),

More information

Cross-bonding cable and box model based on pulse reflection measurement

Cross-bonding cable and box model based on pulse reflection measurement Published in IET Science, Measurement and Technology Received on 20th December 2013 Revised on 4th June 2014 Accepted on 13th June 2014 ISSN 1751-8822 Cross-bonding cable and box model based on pulse reflection

More information

Lightning Overvoltages on Low Voltage Circuit Caused by Ground Potential Rise

Lightning Overvoltages on Low Voltage Circuit Caused by Ground Potential Rise Lightning Overvoltages on Low Voltage Circuit Caused by Ground Potential Rise S. Sekioka, K. Aiba, S. Okabe Abstract-- The lightning overvoltages incoming from an overhead line such as a power distribution

More information

Towards an Accurate Modeling of Frequency-dependent Wind Farm Components under Transient Conditions

Towards an Accurate Modeling of Frequency-dependent Wind Farm Components under Transient Conditions Towards an Accurate Modeling of Frequency-dependent Wind Farm Components under Transient Conditions M. A. ABD-ALLAH MAHMOUD N. ALI A. SAID* Faculty of Engineering at Shoubra, Benha University, Egypt *Email:

More information

Backflashover Analysis for 110-kV Lines at Multi-Circuit Overhead Line Towers

Backflashover Analysis for 110-kV Lines at Multi-Circuit Overhead Line Towers Backflasover Analysis for 11-kV Lines at Multi-Circuit Overead Line Towers M. Kizilcay, C. Neumann Abstract-- An increase of back-flasovers in a 11-kV system as been observed along an overead line route

More information

Electric Power Systems Research

Electric Power Systems Research Electric Power Systems Research 94 (2013) 54 63 Contents lists available at SciVerse ScienceDirect Electric Power Systems Research j ourna l ho me p a ge: www.elsevier.com/locate/epsr Calculation of overvoltage

More information

Accurate Modeling of Core-Type Distribution Transformers for Electromagnetic Transient Studies

Accurate Modeling of Core-Type Distribution Transformers for Electromagnetic Transient Studies IEEE TRANSACTIONS ON POWER DELIVERY, VOL. 17, NO. 4, OCTOBER 2002 969 Accurate Modeling of Core-Type Distribution Transformers for Electromagnetic Transient Studies Taku Noda, Member, IEEE, Hiroshi Nakamoto,

More information

IEEE Power Engineering Society 2001 Winter Meeting Columbus, OH. Panel Session. Data for Modeling System Transients

IEEE Power Engineering Society 2001 Winter Meeting Columbus, OH. Panel Session. Data for Modeling System Transients IEEE Power Engineering Society 2001 Winter Meeting Columbus, OH Panel Session Data for Modeling System Transients Parameters for Modeling Transmission Lines and Transformers in Transient Studies Bruce

More information

Lightning Protection of Distribution Substations by Using Metal Oxide Gapless Surge Arresters Connected in Parallel

Lightning Protection of Distribution Substations by Using Metal Oxide Gapless Surge Arresters Connected in Parallel International Journal of Power and Energy Research, Vol. 1, No. 1, April 2017 https://dx.doi.org/10.22606/ijper.2017.11001 1 Lightning Protection of Distribution Substations by Using Metal Oxide Gapless

More information

GIS Disconnector Switching Operation VFTO Study

GIS Disconnector Switching Operation VFTO Study GIS Disconnector Switching Operation VFTO Study Mariusz Stosur, Marcin Szewczyk, Wojciech Piasecki, Marek Florkowski, Marek Fulczyk ABB Corporate Research Center in Krakow Starowislna 13A, 31-038 Krakow,

More information

Fast Front Transients in Transformer Connected to Gas Insulated Substations: (White+Black) Box Models and TDSF Monitoring

Fast Front Transients in Transformer Connected to Gas Insulated Substations: (White+Black) Box Models and TDSF Monitoring Fast Front Transients in Transformer Connected to Gas Insulated Substations: (White+Black) Box Models and TDSF Monitoring Luis ROUCO 1, Xose M. LÓPEZ-FERNÁNDEZ 2, 3, Casimiro ALVAREZ-MARIÑO 3 and Hugo

More information

A SIMPLIFIED LIGHTNING MODEL FOR METAL OXIDE SURGE ARRESTER. K. P. Mardira and T. K. Saha s: and

A SIMPLIFIED LIGHTNING MODEL FOR METAL OXIDE SURGE ARRESTER. K. P. Mardira and T. K. Saha  s: and 1 A SIMPLIFIED LIGHTNING MODEL FOR METAL OXIDE SURGE ARRESTER K. P. Mardira and T. K. Saha Emails: mardira@itee.uq.edu.au and saha@itee.uq.edu.au *School of Information Technology and Electrical Engineering

More information

TRIGGERED by energy transition towards sustainability,

TRIGGERED by energy transition towards sustainability, Lightning Overvoltages in a HVDC Transmission System comprising Mixed Overhead-Cable Lines M. Goertz, S. Wenig, S. Gorges, M. Kahl, S. Beckler, J. Christian, M. Suriyah, T. Leibfried Abstract This paper

More information

SCIENCE & TECHNOLOGY

SCIENCE & TECHNOLOGY Pertanika J. Sci. & Technol. 25 (S): 181-188 (2017) SCIENCE & TECHNOLOGY Journal homepage: http://www.pertanika.upm.edu.my/ Analysis of Ground Potential Distribution under Lightning Current Condition Chandima

More information

Experimental Study and Circuit Analysis Model of Lightning Isolation Transformer for Railway Signal System

Experimental Study and Circuit Analysis Model of Lightning Isolation Transformer for Railway Signal System 214 International Conference on Lightning Protection (ICLP), Shanghai, China Experimental Study and Circuit Analysis Model of Lightning Isolation Transformer for Railway Signal System Shunichi Yanagawa

More information

ABSTRACT 1.0 INTRODUCTION LIST OF SYMBOLS

ABSTRACT 1.0 INTRODUCTION LIST OF SYMBOLS Lightning protection of pole-mounted transformers and its applications in Sri Lanka Prof. J R Lucas* and D A J Nanayakkara # *University of Moratuwa, # Lanka Transformers Limited ABSTRACT This paper presents

More information

7P Series - Surge Protection Device (SPD) Features 7P P P

7P Series - Surge Protection Device (SPD) Features 7P P P Features 7P.09.1.255.0100 7P.01.8.260.1025 7P.02.8.260.1025 SPD Type 1+2 Surge arrester range - single phase system / three phase system Surge arresters suitable in low-voltage applications in order to

More information

Introduce system protection relays like underfrequency relays, rate of change of frequency relays, reverse - power flow

Introduce system protection relays like underfrequency relays, rate of change of frequency relays, reverse - power flow Module 1 : Fundamentals of Power System Protection Lecture 3 : Protection Paradigms - System Protection Objectives In this lecture we will: Overview dynamics in power systems. Introduce system protection

More information

Tab 8 Surge Arresters

Tab 8 Surge Arresters s en em Tab 8 Surge Arresters Si Distribution System Engineering Course Unit 10 2017 Industry Inc., All Rights Reserved Surge Arresters The main protective devices against system transient overvoltages.

More information

Substation Insulation Coordination Study

Substation Insulation Coordination Study [Type the document title] Substation nsulation Coordination Study MEG Energy Christina Lake Regional Project nsulation Coordination Schematic X0057 15km Lines TWR3 TWR2 TWR1 Afrm1 16 230k Source CCT 100

More information

The Effect of High Frequency Model of Tower- Footing Grounding Systems on the Back Flashover Rate of Transmission lines

The Effect of High Frequency Model of Tower- Footing Grounding Systems on the Back Flashover Rate of Transmission lines 4 International Conference on Lightning Protection (ICLP), Shanghai, China The Effect of High Frequency Model of Tower- Footing Grounding Systems on the Back Flashover ate of Transmission lines Javad Gholinezhad,

More information

Lab 1: Pulse Propagation and Dispersion

Lab 1: Pulse Propagation and Dispersion ab 1: Pulse Propagation and Dispersion NAME NAME NAME Introduction: In this experiment you will observe reflection and transmission of incident pulses as they propagate down a coaxial transmission line

More information

The line-lightning performance and mitigation studies of shielded steelstructure

The line-lightning performance and mitigation studies of shielded steelstructure The line-lightning performance and mitigation studies of shielded steelstructure distribution lines ASNAWI MOHD BUSRAH, MALIK MOHAMAD Energy System Group TNB Research Sdn Bhd No 1, Lorong Ayer Hitam, 43000

More information

Calculation of Transient Overvoltages by using EMTP software in a 2-Phase 132KV GIS

Calculation of Transient Overvoltages by using EMTP software in a 2-Phase 132KV GIS Calculation of Transient Overvoltages by using EMTP software in a 2-Phase 132KV GIS M. Kondalu, Dr. P.S. Subramanyam Electrical & Electronics Engineering, JNT University. Hyderabad. Joginpally B.R. Engineering

More information

ATP SIMULATION OF FARADAY CAGE FOR THE ANALYSIS OF LIGHTNING SURGES

ATP SIMULATION OF FARADAY CAGE FOR THE ANALYSIS OF LIGHTNING SURGES ATP SIMULATION OF FARADAY CAGE FOR THE ANALYSIS OF LIGHTNING SURGES Mehmet Salih Mamis Cemal Keles 1 Muslum Arkan 1 Ramazan Kaya 2 Inonu University, Turkey 1 Inonu University, Engineering Faculty, Electrical

More information

POWER SYSTEM TRANSIENTS Solution Techniques for Electromagetic Transients in Power Systems -.Jean Mahseredjian

POWER SYSTEM TRANSIENTS Solution Techniques for Electromagetic Transients in Power Systems -.Jean Mahseredjian SOLUTION TECHNIQUES FOR ELECTROMAGNETIC TRANSIENTS IN POWER SYSTEMS Jean École Polytechnique de Montréal, Montréal, Canada Keywords: Power system, control systems, linear systems, nonlinear power components,

More information

Coordination of protective relays in MV transformer stations using EasyPower Protector software

Coordination of protective relays in MV transformer stations using EasyPower Protector software Coordination of protective relays in MV transformer stations using EasyPower Protector software S. Nikolovski, Member, IEEE, I. Provci and D. Sljivac In this paper, the analysis of digital protection relays

More information

EMC Philosophy applied to Design the Grounding Systems for Gas Insulation Switchgear (GIS) Indoor Substation

EMC Philosophy applied to Design the Grounding Systems for Gas Insulation Switchgear (GIS) Indoor Substation EMC Philosophy applied to Design the Grounding Systems for Gas Insulation Switchgear (GIS) Indoor Substation Marcos Telló Department of Electrical Engineering Pontifical Catholic University of Rio Grande

More information

INFLUENCE FACTORS ON THE TRANSMITTED OVERVOLTAGES FROM HIGH VOLTAGE TO LOW VOLTAGE NETWORKS

INFLUENCE FACTORS ON THE TRANSMITTED OVERVOLTAGES FROM HIGH VOLTAGE TO LOW VOLTAGE NETWORKS U.P.B. Sci. Bull., Series C, Vol. 72, Iss. 1, 21 ISSN 1454-234x INFLUENCE FACTORS ON THE TRANSMITTED OVERVOLTAGES FROM HIGH VOLTAGE TO LOW VOLTAGE NETWORKS Marian COSTEA 1, Bogdan NICOARĂ 2 În reţelele

More information

Experimental Study on Lightning Surge Response of 500kV Transmission Tower with Overhead Lines

Experimental Study on Lightning Surge Response of 500kV Transmission Tower with Overhead Lines Experimental Study on Lightning Surge Response of 500kV Transmission Tower with Overhead Lines H. Motoyama, CRIEPI, Japan motoyama@criepi.denken.or.jp Y. Kinoshita, Chube Electric Power Co., Inc., Japan

More information

Overvoltage Protection

Overvoltage Protection Overvoltage Protection S T U D E N T M A N U A L March 31, 2005 2 STUDENT TRAINING MANUAL Prerequisites: Single-Phase Transformer Load Checks Objectives: From memory, you will be able to describe the electrical

More information

New Modeling of Metal Oxide Surge Arresters

New Modeling of Metal Oxide Surge Arresters Signal Processing and Renewable Energy September 2017, (pp.27-37) ISSN: 2588-7327 New Modeling of Metal Oxide Surge Arresters Seyed Mohammad Hassan Hosseini 1 *, Younes Gharadaghi 1 1 Electrical Engineering

More information

Key words: Lightning overvoltage s, GIS (gas insulated substations), AIS (air insulated substations), GIB (gas insulated bus duct) 1.

Key words: Lightning overvoltage s, GIS (gas insulated substations), AIS (air insulated substations), GIB (gas insulated bus duct) 1. ISSN XXXX XXXX 2016 IJESC Research Article olume 6 Issue No.10 Analysis of Lightning Overvoltages of 800kv Gas Insulated Substations (GIS) T.Kiran Kumar 1, A.Thirupathi 2, D. Anudeep Sharma 3 Assistant

More information

Utility System Lightning Protection

Utility System Lightning Protection Utility System Lightning Protection Many power quality problems stem from lightning. Not only can the high-voltage impulses damage load equipment, but the temporary fault that follows a lightning strike

More information

Effect of Shielded Distribution Cable on Very Fast Transients

Effect of Shielded Distribution Cable on Very Fast Transients IEEE TRANSACTIONS ON POWER DELIVERY, VOL. 15, NO. 3, JULY 2000 857 Effect of Shielded Distribution Cable on Very Fast Transients Li-Ming Zhou and Steven Boggs, Fellow, IEEE Abstract Fast transients in

More information

QUESTION BANK PART - A

QUESTION BANK PART - A QUESTION BANK SUBJECT: EE6005-Power Quality SEM / YEAR: VII SEMESTER / ACADEMIC YEAR 08-09 UNIT I - INTRODUCTION TO POWER QUALITY Terms and definitions: Overloading - under voltage - over voltage. Concepts

More information