Kyunghwan Heo
Yonsei University
研究室紹介
Professor Kyunghwan Heo's research lab specializes in power system protection, control, and stability enhancement in modern electrical grids, with a focus on high-voltage direct current (HVDC) systems, fault current management, and wide-area monitoring. The lab develops advanced control strategies for wind energy integration, including improved inertial control schemes for doubly-fed induction generators to enhance grid frequency support. It also investigates harmonic mitigation, inrush current suppression, and intelligent protection systems using innovative modeling techniques such as Agent-based Colored Petri Nets for coordinated grid operations.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
5To arrest a frequency nadir, a stepwise inertial control (SIC) scheme generates a constant active power reference signal of a wind turbine generator (WTG) immediately after a disturbance and maintains it for the predetermined time. From that point, however, the reference of a WTG abruptly decreases to restore the rotor speed for the predefined period. The abrupt decrease of WTG output power will inevitably cause a second frequency dip. In this paper, we propose a modified SIC scheme of a doubly-
This paper presents simulation and small-scale experimental tests of a fault current controller. Smart fault controller as proposed and proven conceptually in our previous work is promising technology for the smart power grid where distributed and even stochastic generation sources are prevalent and grid operations are more dynamic. Existing protection schemes simply limiting the fault current to the pre-determined set values may not show best performance and even lead to coordination failures,
This paper presents the method for mitigating inrush current of AC filter circuits in Line Current Commutated (LCC) HVDC converter stations using circuit breaker closing control with comparative analysis data with Pre-Insertion resistor. Due to the capacitive characteristics of AC filter circuits, high inrush current is inevitable when a circuit breaker is closed. This causes mechanical stress to filter components. The inrush current is depending on several factors such as system’s Short Circuit
The ac side current of an high voltage direct current (HVDC) converter is characterized by highly non-sinusoidal waveform. If the harmonic current is allowed to flow in the connected ac system, it may cause unacceptable levels of distortion. Therefore, ac side filters are required as part of the total HVDC converter station, in order to reduce the harmonic distortion of the ac side current and voltage to acceptably low levels. The ac side filters are also employed to compensate network requested
While most of the existing protection schemes have been designed with local information around individual components, these local schemes are not considered capable of protecting the modern electric power gird with growing complexity. Recent blackouts in North America and Europe have renewed the emphasis on coordinated protection and control actions to avoid systemwide blackouts, utilizing all of the available grid information. Thus, this paper proposes a new methodology, Agent-based Colored Pet