Title : 
A Time-Domain Harmonic Power-Flow Algorithm for Obtaining Nonsinusoidal Steady-State Solutions
         
        
            Author : 
Lian, Kuo Lung ; Noda, Taku
         
        
            Author_Institution : 
Electr. Power Eng. Res. Lab., Central Res. Inst. of Electr. Power Ind., Yokosuka, Japan
         
        
        
        
        
            fDate : 
7/1/2010 12:00:00 AM
         
        
        
        
            Abstract : 
Steady-state simulation plays a vital role in power system analysis and design. Over the past 25 plus years, various steady-state methods have been proposed. Most of these methods only deal with how to obtain steady-state waveforms of a system in an efficient manner. Only a few of them also take power-flow constraints into account. The majority of these “power-flow” methods are implemented in the frequency domain, which inevitably suffers from harmonic truncation errors. Moreover, the problem of model incompatibility will rise when they are used for the steady-state initialization of a time-domain electromagnetic transient (EMT) program. This paper presents a harmonic power-flow method, which is implemented entirely in the time domain. The proposed method essentially extends a time-domain steady-state method, called “shooting method” to include the power-flow constraints and to account for aggregate loads in the power-flow calculations.
         
        
            Keywords : 
EMTP; power system analysis computing; power system harmonics; time-domain analysis; EMTP; harmonic power-flow method; harmonic truncation errors; model incompatibility problem; nonsinusoidal steady-state solutions; power flow calculations; power flow constraints; power system analysis; shooting method; steady-state simulation; steady-state waveforms; time-domain electromagnetic transient program; time-domain harmonic power flow algorithm; time-domain steady-state method; Harmonic analysis; Newton-Raphson method; nonlinear systems; power electronics; power-flow analysis; time-domain analysis;
         
        
        
            Journal_Title : 
Power Delivery, IEEE Transactions on
         
        
        
        
        
            DOI : 
10.1109/TPWRD.2010.2043547