Method for operating a frequency converter and frequency converter

10910956 ยท 2021-02-02

Assignee

Inventors

Cpc classification

International classification

Abstract

A method is provided for operating a frequency converter, which is designed to drive a three-phase motor, wherein the frequency converter has three half-bridges each having at least two switches. The method includes the following steps: generating three phase voltages for the three-phase motor by a pulse width modulation, wherein, for the pulse width modulation, various switching patterns of the switches are activated, wherein specific star point voltages ensue for various groups of switching patterns; and in at least one operating state of the frequency converter, within a respective period of the pulse width modulation, activating only those switching patterns in which an identical star point voltage ensues.

Claims

1. A method for operating a frequency converter, which is configured to drive a three-phase motor, wherein the frequency converter has three half-bridges each having at least two switching devices, wherein the method comprises the steps of: generating three phase voltages for the three-phase motor by a pulse width modulation, wherein, for the pulse width modulation, switching patterns of the switching devices are activated, wherein various groups of switching patterns induce a plurality of group-specific star point voltages at an output of the three-phase motor; and in at least one operating state of the frequency converter, within a respective period of the pulse width modulation, activating only groups of switching patterns, from among the various groups of switching patterns, that include a plurality of different switching patterns within an individual group that induce an identical star point voltage from among the plurality of group-specific star point voltages.

2. The method as claimed in claim 1, wherein the three half-bridges each have a first state during which an output of the respective half-bridge is connected to a positive DC link potential, said state being denoted by 1, and each have a second state during which an output of the respective half-bridge is connected to a negative DC link potential, said state being denoted by 0, wherein, in the at least one operating state, within a respective period of the pulse width modulation, only the following switching patterns are activated: either (100, 010, 001) or (011, 101, 110).

3. The method as claimed in claim 2, wherein the at least one operating state of the frequency converter is set below a threshold rotational speed of the electric motor.

4. The method as claimed in claim 1, wherein the at least one operating state of the frequency converter is set below a threshold rotational speed of the electric motor.

5. The method as claimed in claim 3, wherein above the threshold rotational speed of the electric motor, within a respective period of the pulse width modulation, switching patterns of arbitrary groups are activated.

6. The method as claimed in claim 4, wherein above the threshold rotational speed of the electric motor, within a respective period of the pulse width modulation, switching patterns of arbitrary groups are activated.

7. A frequency converter for driving a three-phase motor, comprising: three half-bridges, each having at least two switching devices; and a control unit operatively configured to drive the switching devices, the control unit executing processing to: generate three phase voltages for the three-phase motor by a pulse width modulation, wherein, for the pulse width modulation, switching patterns of the switching devices are activated, wherein various groups of switching patterns induce a plurality of group-specific star point voltages at an output of the three-phase motor; and in at least one operating state of the frequency converter, within a respective period of the pulse width modulation, activating only groups of switching patterns, from among the various groups of switching patterns, that include a plurality of different switching patterns within an individual group that induce an identical star point voltage from among the plurality of group-specific star point voltages.

8. The frequency converter as claimed in claim 7, wherein the three half-bridges each have a first state during which an output of the respective half-bridge is connected to a positive DC link potential, said state being denoted by 1, and each have a second state during which an output of the respective half-bridge is connected to a negative DC link potential, said state being denoted by 0, wherein, in the at least one operating state, within a respective period of the pulse width modulation, only the following switching patterns are activated: either (100, 010, 001) or (011, 101, 110).

9. The frequency converter as claimed in claim 8, wherein the at least one operating state of the frequency converter is set below a threshold rotational speed of the electric motor.

10. The frequency converter as claimed in claim 9, wherein above the threshold rotational speed of the electric motor, within a respective period of the pulse width modulation, switching patterns of arbitrary groups are activated.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

(1) The invention is described in detail below with reference to the drawings.

(2) FIG. 1 shows a frequency converter, which is designed to drive a three-phase motor, wherein the frequency converter has three half-bridges each having two switching devices.

(3) FIG. 2 shows various groups of switching patterns of the switching device and associated star point voltages.

(4) FIG. 3 shows a period of a pulse width modulation having a sequence of switching patterns of a group having an identical star point voltage.

DETAILED DESCRIPTION OF THE DRAWINGS

(5) FIG. 1 shows a frequency converter 1, which is designed to drive a three-phase motor 2. The frequency converter 1 conventionally has three half-bridges B1, B2, B3. The half-bridge B1 has two switching devices S1, S2. The half-bridge B2 has two switching devices S3, S4. The half-bridge B3 has two switching devices S5, S6. The half-bridges are looped in between a positive DC link potential UZK_P and a negative DC link potential UZK_N, wherein a connection node of the switching device of a respective bridge (output of the bridge) is electrically connected to a phase connection U, V or W of the three-phase motor 2. In this respect, reference is also made to the relevant technical literature.

(6) The half-bridges B1, B2, B3 each have a first state during which an output of the respective half-bridge B1, B2, B3 is connected to the positive DC link potential UZK_P, wherein the respective state of the half-bridge B1, B2, B3 is denoted by 1. The half-bridges B1, B2, B3 each have a second state during which an output of the respective half-bridge B1, B2, B3 is connected to the negative DC link potential UZK_N, wherein the respective state of the half-bridges B1, B2, B3 is denoted by 0.

(7) FIG. 2 shows various groups G1 to G4 of switching patterns of the switching devices S1, S2; S3, S4; S5, S6 and associated values of star point voltages US.

(8) In the group G1, all the bridges B1, B2, B3 have the state 1, that is to say the switching devices S1, S3, S5 are closed and the switching devices S2, S4, S6 are open. A star point voltage US of UZK/2 results.

(9) In the group G2, two of the bridges B1, B2 and B3 have the state 1 and one of the bridges B1, B2 and B3 has the state 0. A star point voltage US of UZK/6 results.

(10) In the group G3, two of the bridges B1, B2 and B3 have the state 0 and one of the bridges B1, B2 and B3 has the state 1. A star point voltage US of UZK/6 consequently results.

(11) In the group G4, all the bridges B1, B2, B3 have the state 0, that is to say the switching devices S1, S3, S5 are open and the switching devices S2, S4 and S6 are closed. A star point voltage US of UZK/2 results.

(12) Below a threshold rotational speed of the electric motor 2, within a respective period of a pulse width modulation (see also FIG. 3), only switching patterns either from group G2 or from group G3 are set in accordance with the invention. The threshold rotational speed can be selected depending on the rotational speed from which an oil film is typically formed in bearings of the electric motor 2.

(13) The fluctuations in star point voltage, that is to say the voltage between stator and rotor as well, can have a destructive effect when said voltage across the mechanical bearings is shorted, wherein high current densities may ensue in the tribological contact faces of the bearings, said high current densities being able to temporarily fuse the contact faces of the bearing. Said instances of fusing are torn in the case of further rotation and lead to the destruction of the surface of the mechanical bearing. This relates especially to standstill and operation at slow rotation frequencies, since a closed, insulating lubricating film still cannot form here and, in this operating range, it can therefore result in conductive metallic contact.

(14) In the lower rotational speed range, for example up to approximately 50% of the rated rotational speed of the motor, only switching patterns of one of the groups are therefore used, with the result that no bearing currents arise. In the case of a three-phase system, switching patterns of groups 2 or 3 are expediently used. A combined use of the switching patterns of groups 2 or 3 in successive or different periods is typically not provided in said rotational speed range.

(15) In the upper rotational speed range, for example from approximately 50% of the rated rotational speed of the motor, within a respective period and/or in different (successive) periods, for example, only two groups immediately adjacent to their star point voltage are used, for example groups 2 and 3, with the result that only 33% to 50% of the fluctuation in the star point voltage occurs compared to conventional operation.

(16) It goes without saying that the switching patterns can also be limited to those from groups G2 and G3 depending on other operating states or permanently.

(17) FIG. 3 shows, by way of example, a PWM period TP of the pulse width modulation having a sequence of switching patterns 100, 010, 001 of group G2 having an identical star point voltage UZK/6. It goes without saying that the switching patterns can also be generated in a different order, for example 001, 010, 100, etc. The sequence of switching patterns shown fully prevents fluctuations in the star point voltage.

(18) In accordance with the invention, bearing currents on account of fluctuations in the star point voltage can consequently be prevented to a large extent. This further reduces the interference emission and residual currents significantly. However, the delivery range of the output voltage is reduced.

(19) On account of the lower residual currents, which prevent triggering of a residual current circuit breaker, the use of the invention is possible, for example, in office applications (photocopiers, etc.) and in medical technology (drive of a hospital bed, etc.).

(20) The current ripple in the motor phases that is present at low output voltages can be used, for example, for identifying wire breakages in a motor phase and for evaluation in the context of applications without sensors.