High Voltage 
Engineering Laboratory (HVEL)

“ We specialize in high-voltage testing, insulation diagnostics, partial discharge detection, and overvoltage analysis.
The laboratory develops in-house high-voltage generation and measurement systems for testing under severe operating conditions. 

What the laboratory does

The High Voltage Engineering Laboratory (HVEL) of the Department of Electrical Engineering specialises in high-voltage testing, insulation performance evaluation, diagnostic techniques, and the testing of electrical equipment under extreme operating conditions.

The laboratory builds the instruments it tests with — impulse generators and transient recorders, resonant AC sources, high-voltage dividers, current sensors and partial discharge calibrators — and uses them to develop measurement and diagnostic methods that turn a recorded waveform into an engineering judgement about a piece of equipment. Work spans impulse and resonant AC testing, partial discharge detection and location finding, dielectric response assessment of transformers and cables, and the computation and mitigation of lightning and switching transients.

Results appear in IEEE Transactions on Power Delivery, Electromagnetic Compatibility and Industry Applications, and are presented at the International Conference on Lightning Protection and other international meetings in the field.


What we are working on

HV Generation and Measurement

Impulse and resonant AC sources, measuring systems, and evaluation of test parameters.

Current work

• Design and circuit analysis of lightning and switching impulse voltage generators, including tests on low-inductance loads such as reactor and transformer windings

• Development of transient recorders and wide-bandwidth measuring systems for lightning impulse voltage and current

• High-voltage AC generation and measurement using series resonant circuits and resonant power-frequency converters

• High-voltage dividers and current sensors, including saline-solution resistive dividers and Rogowski coils with active integrators

• Evaluation of impulse parameters by fast curve fitting, least-square Prony analysis and non-iterative techniques, to the IEC 60060 series

• Lightning current measuring systems for wind turbines


Partial Discharge Diagnostics

Conventional and unconventional PD sensing, sensor development and location finding.

Current work

• Conventional PD measurement to IEC 60270, together with unconventional HF and VHF/UHF detection

• Development of PD sensors: high-frequency current transformers and transducers, inductive-mode air-core sensors, and narrowband and wideband UHF antennas for high-voltage equipment

• PD pulse generation, monitoring and system characterization for calibration and performance verification

• PD localization in power cables, including joints and terminations, using high-frequency current transducers

• PD measurement on equipment supplied through power-frequency converters

• Effects of test voltage frequency on partial discharge characteristics


Dielectric Response Assessment

Condition assessment of transformers and cables from measured polarization behaviour.

Current work

• Polarization and depolarization current measurement, and dielectric response sensing of oil-paper insulation

• Assessment of moisture content and degree of polymerization in power transformers from measured dielectric response

• Determination of dielectric loss and loss tangent in damped alternating voltage (DAC) tests

• Dielectric equivalent-circuit modelling from depolarization current analysis, and determination of dielectric models by effective multi-exponential fitting

• Application of the resulting models to condition assessment of transformers and underground cable systems

Lightning and Transients

Surge arresters, protective devices, grounding design and transient computation.

Current work

• Metal-oxide surge arrester characterization and mathematical modelling of non-linear resistance for lightning surge analysis

• Design of two-stage surge protective devices for low-voltage AC systems

• Counterpoise and grounding electrode design for transmission towers in high-soil-resistivity areas, and transient equivalent circuits of grounding electrodes

• Lightning-induced voltage over lossy ground, transient potential rise in grounding systems and corona effects on overhead wires

• Numerical methods for electromagnetic transients: partial element equivalent circuits and numerical inverse Fourier transform

• Neutral grounding resistor application in high-voltage photovoltaic substations


IEEE Transactions and international journals

P. Yutthagowith, P. Nimsanong and Y. Baba, “Accurate and Simplified Dielectric Modeling Based on Depolarization Current Analysis,” IEEE Trans. Ind. Appl., 2026.

P. Yutthagowith, P. Chaisiri, B. Paophan and Y. Baba, “Enhanced and Precise Estimation of Dielectric Loss in Damped AC Voltage Tests,” IEEE Trans. Ind. Appl., 62(4), 2026.

S. Pramualsingha, K. Yamamoto and P. Yutthagowith, “Development of a Rogowski Coil-Based Lightning Current Measuring System with Wide Frequency Bandwidth for Wind Turbines,” IEEE Access, 2026.

P. Yutthagowith and Y. Baba, “An Effective Approximate Mathematical Expression for Non-Linear Resistance Characteristics of Metal Oxide Elements,” IEEE Trans. Electromagn. Compat., 67(3), 2025.

P. Yutthagowith and Y. Baba, “A Simple Mathematical Expression for Nonlinear Resistive Characteristics of Metal Oxide Elements in Lightning Surge Analysis,” IEEE Trans. Electromagn. Compat., 67(3), 2025.

P. Yutthagowith and Y. Baba, “Accurate Mathematical Parameter Determination for Double-Exponential Impulse Waveforms with Specified Parameters,” IEEE Trans. Electromagn. Compat., 66(3).

P. Yutthagowith, “Numerical Inverse Fourier Transform for Accurate Electromagnetic Transient Analyses,” IEEE Trans. Electromagn. Compat., 66(3).

P. Yutthagowith, “Effective Technique for Circuit and Waveform Parameter Extraction in Impulse Current Tests and Its Application,” IEEE Trans. Power Del., 31(2), 2016.

A. Shoory, F. Vega, P. Yutthagowith, F. Rachidi, M. Rubinstein, Y. Baba, V. A. Rakov, K. Sheshyekani and A. Ametani, “On the Mechanism of Current Pulse Propagation Along Conical Structures: Application to Tall Towers Struck by Lightning,” IEEE Trans. Electromagn. Compat., 54(2), 2012.

P. Yutthagowith, A. Ametani, N. Nagaoka and Y. Baba, “Application of the Partial Element Equivalent Circuit Method to Analysis of Transient Potential Rises in Grounding Systems,” IEEE Trans. Electromagn. Compat., 53(3), 2011.

P. Yutthagowith, A. Ametani, N. Nagaoka and Y. Baba, “Lightning-Induced Voltage Over Lossy Ground by a Hybrid Electromagnetic Circuit Model Method with Cooray–Rubinstein Formula,” IEEE Trans. Electromagn. Compat., 51(4), 2009.

A. Kunakorn, S. Pramualsingha, P. Yutthagowith, P. Nimsanong and S. Kittiratsatcha, “Accurate Assessment of Moisture Content and Degree of Polymerization in Power Transformers via Dielectric Response Sensing,” Sensors, 23(19), 2023.

T. H. Tran, Y. Baba, A. Ametani, V. A. Rakov and P. Yutthagowith, “Partial Element Equivalent Circuit Simulation of Lightning Overvoltage Surge with Corona Discharges on Overhead Wires,” Electric Power Systems Research, 180, 2020.

Journals and international conference contributions

A. Kunakorn, B. Paophan and P. Yutthagowith, “Effective Design of a Two-Stage Surge Protective Device for AC Low Voltage System Protection,” ICLP 2024, Dresden, Germany. 

P. Chaisiri, S. Pramualsingha and P. Yutthagowith, “Development of a Transient Recorder for Lightning Impulse Voltage Measurement,” ICLP 2024, Dresden, Germany.

P. Yutthagowith, P. Chaisiri and B. Paophan, “Accurate Loss Tangent Determination in Damped Alternating Voltage Tests,” IEEE I&CPS Asia 2024, Pattaya, Thailand.

P. Chaisiri, B. Paophan and P. Yutthagowith, “A System for PD Pulse Generating, Monitoring and System Characterization,” ICEAST 2024, Luang Prabang, Laos.

P. Chaisiri, D. Pattarakijkul, S. Pramualsingha and P. Yutthagowith, “Development of a High-Voltage Alternating Current Measuring System,” ICEAST 2023, Vientiane, Laos.

B. Paophan, P. Yutthagowith and A. Kunakorn, “Applications of a High Frequency Current Transformer and Air-Core Inductive Devices for Detecting a Partial Discharge Location in a Cable,” DPSP 2020, Liverpool, UK.

B. Leelachariyakul, B. Paophan, P. Chaisiri and P. Yutthagowith, “The Performance of a High Frequency Current Transducer for Partial Discharge Measurement under Testing with a Power Frequency Converter,” AUPEC 2018, Auckland, New Zealand.

P. Yutthagowith and A. Kunakorn, “Design of Counterpoise Grounding Electrodes for Transmission Towers in High Soil Resistivity Areas,” ICLP 2018, Rzeszów, Poland.

Faculty members

Dr Anantawat Kunakorn

Associate Professor

anantawat.ku@kmitl.ac.th

Dr Peerawut Yutthagowith

Associate Professor

peerawut.yu@kmitl.ac.th

Dr Punyavee Chaisiri

Assistant Professor

punyavee.ch@kmitl.ac.th

Contact our laboratory

High Voltage Engineering Laboratory (HVEL), ECC-105, ECC building,
KMITL, 1 Chalong Krung 1 Alley, Lat Krabang, Bangkok 10520