Power hardware-in-the-loop (PHIL) simulation leverages the real-time emulation of a large-scale complex power system, while also enabling the in-depth investigation of novel actual power components and their interactions with the emulated power grid. The dynamics and non-ideal characteristics (e.g., time delay, non-unity gain, and limited bandwidth) of the power interface result in stability and accuracy issues within the PHIL closed-loop simulations. In this paper, a compensation method is proposed to compensate for the non-ideal power interface by maximizing its bandwidth, maintaining its unity-gain characteristic, and compensating for its phase-shift over the frequencies of interest. The accuracy of power signals synchronization and the ...
Evaluating the power electronics behavior in real grid conditions is challenging. In simulation, lar...
The usual practice to study a large power system is through digital computer simulation. However, th...
The importance of Power Hardware-in-the-Loop (PHIL) experiments is rising more and more over the las...
Driven by the target of decarbonization through eliminating carbon emissions and developing a renewa...
In an attempt to create a new control method for the power interface in PHIL simulations, a simulate...
Power-Hardware-In-the-Loop (PHIL) simulations allow the design and validation of power hardware comp...
Abstract--In an attempt to create a new control method for the power interface in PHIL simulations, ...
A virtual power system can be interfaced with a physical system to form a power hardware-in-the-loop...
In PHIL simulations different time delays are introduced. Although it can be reduced, there is alway...
The stability and accuracy of power hardware-in-the-loop (PHIL) setups are sensitive to and deterior...
The testing of complex power components by means of power hardware in the loop (PHIL) requires accur...
The hardware under test (HUT) in a power hardware in the loop (PHIL) implementation can have a signi...
Power hardware-in-the-loop (PHIL) simulation leverages the advanced real-time emulation based techni...
In this paper, to extend the range of Power hardware-in-the-loop (PHIL) simulations into dynamically...
Co-simulation techniques are gaining popularity amongst the power system research community to analy...
Evaluating the power electronics behavior in real grid conditions is challenging. In simulation, lar...
The usual practice to study a large power system is through digital computer simulation. However, th...
The importance of Power Hardware-in-the-Loop (PHIL) experiments is rising more and more over the las...
Driven by the target of decarbonization through eliminating carbon emissions and developing a renewa...
In an attempt to create a new control method for the power interface in PHIL simulations, a simulate...
Power-Hardware-In-the-Loop (PHIL) simulations allow the design and validation of power hardware comp...
Abstract--In an attempt to create a new control method for the power interface in PHIL simulations, ...
A virtual power system can be interfaced with a physical system to form a power hardware-in-the-loop...
In PHIL simulations different time delays are introduced. Although it can be reduced, there is alway...
The stability and accuracy of power hardware-in-the-loop (PHIL) setups are sensitive to and deterior...
The testing of complex power components by means of power hardware in the loop (PHIL) requires accur...
The hardware under test (HUT) in a power hardware in the loop (PHIL) implementation can have a signi...
Power hardware-in-the-loop (PHIL) simulation leverages the advanced real-time emulation based techni...
In this paper, to extend the range of Power hardware-in-the-loop (PHIL) simulations into dynamically...
Co-simulation techniques are gaining popularity amongst the power system research community to analy...
Evaluating the power electronics behavior in real grid conditions is challenging. In simulation, lar...
The usual practice to study a large power system is through digital computer simulation. However, th...
The importance of Power Hardware-in-the-Loop (PHIL) experiments is rising more and more over the las...