To carry out load flow using the PWS, the single-line diagram of the existing 330-kV grid was drawn in the edit mode of the simulator. The main simulation was done in the run mode and the run mode executed in the simulation using N-R iterative method in order to obtain bus voltages, phase angles, real and reactive power flows, and line losses. The results were obtained after inputting line data, load data and generator data obtained from PHCN into the dialogue box of the PWS in edit mode. For this simulation, Egbin was set as the slack bus and it was used to simulate the load flow of the existing grid. Figure 3 shows the existing grid in the run mode of the power world program. The simulation of the network obtained the unknown bus angles and voltage levels at each bus.
In executing the load-flow simulation of the 750-kV transmission grid, a similar method was used as that of the 330-kV grid. The 750-kV grid integrated to the existing 330-kV was redrawn in the edit mode of the power world simulator as shown in Fig. 4. The line, bus and generator data were entered in the edit mode of the simulator. The main simulation was done in the run mode and the run mode executed for the simulation using N-R iterative method in order to obtain bus voltages, phase angles, real and reactive power flows, and line losses. The edit mode of the load-flow simulation is as presented in Fig. 5. The simulation of the network obtained the unknown bus angles and voltage levels at each bus.
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MATLAB was used to verify the losses recorded from the load-flow simulation of both the existing Nigerian 330-kV and the integrated 750-kV grids using the power world simulator. The simulation was done by imputing the same load and transmission line data for the 330-kV and 750-kV grids used on power world simulator into a MATLAB script developed to perform load-flow analysis and print total losses.
The load-flow analysis of the existing grid using the power world simulator produced the values of the bus voltage magnitudes, voltage angles, and real and reactive power flow losses on the various lines under normal conditions. The graphical representations of the results of voltage profile, real and reactive power losses are shown in Figs. 6, 7 and 8, respectively.
Abstract. The improvement of transient stability of power system was one of the most challenging research areas in power engineer.The main aim of this paper was transient stability analysis and improvement of IEEE 9 bus system. These studies were computed using POWER WORLD SIMULATOR. The IEEE 9 bus system was modelled in power world simulator and load flow studies were performed to determine pre-fault conditions in the system using Newton-Raphson method. The transient stability analysis was carried out using Runga method during three-phase balanced fault. For the improvement transient stability, the general methods adopted were fast acting exciters, FACT devices and addition of parallel transmission line. These techniques play an important role in improving the transient stability, increasing transmission capacity and damping low frequency oscillations.
Step 1: An IEEE- 9 bus system is taken. System model is implemented and executed in power world simulator and load flow is performed. The load flow analysis of 9 bus system is done with the help of Newton Raphson method.
This paper presents the transient stability analysis and its improvement using power world simulator. The effectiveness of shunt FACT devices such as SVC, addition of parallel transmission lines and exciters has been studied in improving the system stability with different loads. The load flow studies are also performed to determine prefault conditions. Hence, by proper modelling of system, it would be interesting to determine any other possible advantage of controllers in power system stability-studies.
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Power Supply Simulator. Designing a power supply has always been a hassle. No matter how carefully you calculate the needed component specs, once you put it all together it either doesn't meet your needs or there is something that could use a little tweaking. This software simulates a power supply so you can do your tweaking on your screen rather than on your breadboard. And it's accurate.
If you enter the component values that you really will be using, the waveforms it generates will be the same as what you'll see on a scope. It's ideal for determining ripple voltage of your supply, peak diode currents, and easily shows the What's New in Power Supply Simulator. Power Supply Simulator. Designing a power supply has always been a hassle. No matter how carefully you calculate the needed component specs, once you put it all together it either doesn't meet your needs or there is something that could use a little tweaking.
This software simulates a power supply so you can do your tweaking on your screen rather than on your breadboard. And it's accurate. If you enter the component values that you really will be using, the waveforms it generates will be the same as what you'll see on a scope. It's ideal for determining ripple voltage of your supply, peak diode currents, and easily shows the effects of low/high line voltage and load changes. A windows version is available for download at
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