N. Hadjsaid et al., AN ADAPTIVE CORRECTION FOR VOLTAGE SECURITY ANALYSIS USING A LOCAL APPROACH SOLUTION, IEEE transactions on power systems, 9(2), 1994, pp. 660-667
This paper presents an efficient contingency screening for voltage lim
it violations. The screening process is based on the local approach so
lution. A separation in the Q-mismatch calculations between buses situ
ated in the vicinity of the perturbation and buses electrically far aw
ay from the perturbation is used. This approach takes advantage of the
fast convergence rate of buses that are fat from the outaged equipmen
t [1] and allows fast and accurate Q-mismatch calculations. The concep
t of electrical distance is also used in order to predict the buses in
which major voltage shifts can occur after the contingency. The solut
ion usually corresponds to the single iteration of the well known Fast
Decoupled Load Flow [6] model on which an adequate correction is appl
ied in order to detect all possible contingencies that can cause limit
violations. This solution can also be carried out with two iterations
instead of the traditional one iteration scan methods. Results of tes
ts with a 206 bus-299 branch 400 kV French network show that CPU time
required for two partial iteration scans is almost equivalent to one c
omplete iteration (1P-1Q) of the Fast Decoupled Load Flow model. In fa
ct, computation time is saved by using approximate Q-mismatch calculat
ions, by setting small Q-mismatches at zero and by using sparse vector
techniques for non zero mismatches (Fast Forward, Fast Back solutions
). The number of buses involved for the solution process is drasticall
y reduced especially for the second iteration and accuracy is better t
han with traditional methods.