Multilevel converter for the control and transmission of electrical energy
A multilevel converter allowing the reduction of volume and accessibility to the control and transformation of electric power, including at least two basic cells and having: a) a first power switch that interconnects a positive bus between the two basic cells connected in cascade each other; b) a second power switch that interconnects a negative bus between two basic cells connected in cascade each other and c) a capacitor with a third power switch, connected in series and interconnected between the positive and negative bus.
1. A multilevel converter operating with fewer components saving costs, losses, size and weight, allowing the reduction of volume and accessibility to control and the transformation of electric power, wherein the multilevel converter comprises at least one basic cell formed by:
a) a first power switch that interconnects a positive bus between at least two basic cells connected in cascade each other;
b) a second power switch that interconnects a negative bus between at least two basic cells connected in cascade each other; and
c) a capacitor with a third power switch connected in series and interconnected between the positive and negative bus
wherein an output of each multilevel converter phase is obtained at a midpoint of two output power switches connected in series each other and in parallel between the positive and negative pole of the last basic cell connected of the converter and
the number of voltage levels generated by output phase is given by:
N n =N c +2
wherein N n corresponds to the number of voltage levels obtained between an output phase and the multilevel converter neutral, and N c to the number of basic cells that form the multi-level converter.
2. The multilevel converter according to claim 1 , further comprising at least one additional basic cell formed by:
i. a first power switch that interconnects a positive bus between said at least one additional basic cell and a continuous voltage source;
ii. a second power switch that interconnects a negative bus between said at least one additional basic cell and the continuous voltage source; and
iii. a capacitor with a third power switch connected in series and interconnected between the positive and negative bus.
3. The multilevel converter according to claim 2 , characterized in that the output of each multilevel converter phase is obtained at a midpoint of two output power switches connected in series each other and in parallel between the positive and negative pole of the last basic cell connected of the converter.
4. The multilevel converter according to claim 1 , wherein the number of voltage levels obtained is independent from the number of outputs used, whether for one phase, three phases, six phases or more phases.