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Nt1310 Unit 5 Lab Report

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CHAPTER 6
SIMULATION RESULTS
6.1 Introduction
The passive filters were designed according to the specifications of Table 2. The precharge method and the pre-charge sequence are an important and not trivial design step of the iUPQC due to the power flow characteristics of the system. During the start-up, the voltage supplied to the load cannot be distorted, and the iUPQC coupling in the circuit shall not affect the load. The pre-charge method developed allows the start-up of the iUPQC with no need of load power disconnection. The used pre-charge sequence is shown in Fig. 6.1.The pre-charge circuit has three contactors, namely, Ks, Kp, and Kp2, and one in-rush resistor Rpc. The switches sw1 and sw2are used symbolically to show the switching turn-on …show more content…
After 340 ms, the switching of the SAF sw1 is enabled, causing a voltage unbalance on the dc link during a short period of time due to the stabilization time of the SAF unbalanced-voltage control loop. After 1s, the Ks contactor is turned off, allowing the increase of the dc link voltage by SAF operation. After 10 ms, the switching of the PAF sw2 is enabled, starting the regulation of the load voltage. After 100 ms, the Kp2 is turned on, finishing the pre-charge …show more content…
In order to emulate a distorted grid voltage and to evaluate the harmonic compensation of the grid voltage, a FCATH 450-38-50 programmable ac power source manufactured by SUPPLIER Inc. was used. The power source supplies a three phase voltage source with 20% of the third harmonic in phase A, 10% of the fifth harmonic in phase B, and 10% of the seventh harmonic in phase C.
The THDs of the load currents are 32.1%, 32.1%, and 65.1%, respectively, while the THDs of the source currents are 1.06%, 1.80%, and 1.34%. The THDs of the source voltage are equal to 20.0%, 10.8%, and 10.4% for phases A, B, and C, respectively, while the load voltages have THDs equal to 0.53%, 0.69%, and 0.38%, respectively.
6.2 Without Fault Fig. 6.2 Simulink model without fault
6.3 With Fault Fig. 6.3 Simulink model with fault in Phase A
6.4 Experimental

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