Abstract In this paper, a new three-phase, five-level inverter topology with a single-dc source is presented. The proposed topology is obtained by

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1 , Student Member, IEEE, Student Member, IEEE, Fellow, IEEE, Member, IEEE, Fellow, IEEE Abstract In this paper, a new three-phase, five-level inverter topology with a single-dc source is presented. The proposed topology is obtained by cascading a three-level flying capacitor inverter with a flying H-bridge power cell in each phase. This topology has redundant switching states for generating different pole voltages. By selecting appropriate switching states, the capacitor voltages can be balanced instantaneously (as compared to the fundamental) in any direction of the current, irrespective of the load power factor. Another important feature of this topology is that if any H-bridge fails, it can be bypassed and the configuration can still operate as a three-level inverter at its full power rating. This feature improves the reliability of the circuit. A 3-kW induction motor is run with the proposed topology for the full modulation range. The effectiveness of the capacitor balancing algorithm is tested for the full range of speed and during the sudden acceleration of the motor. Index Terms Flying capacitor (FC), H-bridge, induction motor drive, multilevel inverter. M

2 V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V SV = V AO + V BO 120 V CO 120 V SV V AO V BO V CO

3 V DC V DC

4 V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC V DC

5 V/f V DC V DC C C = 2(i LT S ) V C V C T S i L µ V SV V DC V AN I A V C1 = V C2 = I A =V AN = = V AN = = V AN = =V AN = =

6 V AN I A V C1 V DC V C2 V DC V AN I A V C1 V DC V C2 V DC V AO I A V C1 = V C2 = I A = AO = = V AO = = V AO = =V AO = = V/f

7 IEEE Trans. Ind. Electron. IEEE Trans. Ind. Electron. IEEE Trans. Ind. Appl. Proc. IEEE 23rd Annu. Power Electron. Spec. Conf. Proc. IEEE 19th Annu. Power Electron. Spec. Conf. (PESC 88) Rec. Proc. IEEE Int. Conf. Electr. Mach. Drives Proc. IEEE 6th Int. Power Electron. Motion Control Conf. IEEE Trans. Power Electron. Proc. IEEE Conf. Rec. Ind. Appl. Conf. IEEE Trans. Power Electron. IEEE Trans. Power Electron. IEEE Trans. Ind. Electron. IEEE Trans. Ind. Electron. IEEE Trans. Power Electron. IEEE Trans. Power Electron. IEEE Trans. Ind. Electron. IEEE Trans. Ind. Electron. IEEE Trans. Ind. Electron. Proc. IEEE 37th Power Electron. Spec. Conf. Proc. 22nd Annu. IEEE Appl. Power Electron. Conf. IEEE Trans. Ind. Electron. IEEE Trans. Power Electron. IEEE Trans. Power Electron. IEEE Trans. Power Electron. IEEE Trans. Ind. Electron. IEEE Trans. Power Electron. Proc. IEEE 36th Power Electron. Spec. Conf. Proc. IEEE Power Electron. Spec. Conf. Proc. IEEE Power Electron. Spec. Conf. Proc. 38th IAS Annu. Meet.. Conf. Rec. Ind. Appl. Conf. Proc. IEEE 34th IAS Annu. Meet. Conf. Rec. Ind. Appl. Conf. IEEE Trans. Power Electron. Proc. IEEE 35th Annu. Power Electron. Spec. Conf. IEE Proc. Electr. Power Appl. P. Roshankumar

8 P. P. Rajeevan Jose I. Leon K. Mathew K. Gopakumar Leopoldo G. Franquelo

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