Matrix converter control using predicted output current

US11509231B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11509231-B2
Application numberUS-202117175341-A
CountryUS
Kind codeB2
Filing dateFeb 12, 2021
Priority dateDec 5, 2016
Publication dateNov 22, 2022
Grant dateNov 22, 2022

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Abstract

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There is provided a method of generating a control strategy based on at least three switching states of a matrix converter. The at least three switching states are selected based on at least a predicted output current, associated with each switching state, and a desired output current. In particular, mathematical transformations of a desired output current as well as output currents associated with each of a plurality of switching states are used to identify appropriate switching states.

First claim

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The invention claimed is: 1. A method of generating a control strategy for a matrix converter, the method comprising: obtaining a target output transformation result representing a mathematical transformation result of a desired multi-phase output current of the matrix converter; identifying a plurality of switching states of the matrix converter; obtaining, for each switching state in the identified plurality of switching states, a predicted output transformation result representing a mathematical transformation result of a predicted output current for the switching state; identifying from the plurality of switching states at least three switching states, wherein, when mapped using a Cartesian co-ordinate system, a position of the target output transformation result is contained by an area defined by the positions of the predicted output transformation results associated with the at least three switching states; and generating the control strategy for the matrix converter based on the at least three switching states, wherein the identifying from the plurality of switching states the at least three switching states comprises: identifying a first switching state for which a voltage difference between all output terminals of the matrix converter operating according to the first switching state is substantially zero; identifying a second switching state for which a voltage difference between at least two output terminals of the matrix converter operating according to the second switching state is non-zero; and identifying a third switching state for which a voltage difference between at least two output terminals of the matrix converter operating according to the third switching state is non-zero. 2. The method of claim 1 , wherein the obtaining, for each switching state in the identified plurality of switching states, the predicted output transformation result comprises obtaining, for each switching state in the identified plurality of switching states, a predicted output transformation result from a simulated or mathematical model of the matrix converter and a load of the matrix converter. 3. The method of claim 1 , wherein the obtaining, for each switching state in the identified plurality of switching states, the predicted output transformation result comprises: predicting, using a simulated or mathematical model of the matrix converter and a load of the matrix converter, an output current of the matrix converter associated with each switching state in the identified plurality of switching states; and performing a mathematical transformation on the predicted output current associated with each switching state to thereby obtain a predicted output transformation result for each switching state in the identified plurality of switching states. 4. The method of claim 1 , wherein generating the control strategy comprises: calculating a duty cycle for the at least three switching states based on the target output transformation result; and generating the control strategy for the matrix converter based on the calculated duty cycles. 5. The method of claim 1 , wherein the mathematical transformation is an alpha-beta transformation, such that the target output transformation result represents an alpha-beta transformation result of a desired multi-phase output current of the matrix converter and each predicted output transformation result represents an alpha-beta transformation result of a predicted output current for a respective switching state. 6. A non-transitory computer-readable medium comprising instructions that, when executed by one or more processors and computer memory, cause the one or more processors to perform operations comprising: obtaining a target output transformation result representing a mathematical transformation result of a desired multi-phase output current of a matrix converter; identifying a plurality of switching states of the matrix converter; obtaining, for each switching state in the identified plurality of switching states, a predicted output transformation result representing a mathematical transformation result of a predicted output current for the switching state; identifying from the plurality of switching states at least three switching states, wherein, when mapped using a Cartesian co-ordinate system, a position of the target output transformation result is contained by an area defined by the positions of the predicted output transformation results associated with the at least three switching states; and generating a control strategy for the matrix converter based on the at least three switching states, wherein the identifying from the plurality of switching states at least three switching states comprises: identifying a first switching state for which a voltage difference between all output terminals of the matrix converter operating according to the first switching state is substantially zero; identifying a second switching state for which a voltage difference between at least two output terminals of the matrix converter operating according to the second switching state is non-zero; and identifying a third switching state for which a voltage difference between at least two output terminals of the matrix converter operating according to the third switching state is non-zero. 7. The non-transitory computer-readable medium of claim 6 , wherein the obtaining, for each switching state in the identified plurality of switching states, the predicted output transformation result comprises obtaining, for each switching state in the identified plurality of switching states, a predicted output transformation result from a simulated or mathematical model of the matrix converter and a load of the matrix converter. 8. The non-transitory computer-readable medium of claim 6 , wherein the obtaining, for each switching state in the identified plurality of switching states, the predicted output transformation result comprises: predicting, using a simulated or mathematical model of the matrix converter and a load of the matrix converter, an output current of the matrix converter associated with each switching state in the identified plurality of switching states; and performing a mathematical transformation on the predicted output current associated with each switching state to thereby obtain a predicted output transformation result for each switching state in the identified plurality of switching states. 9. The non-transitory computer-readable medium of claim 6 , wherein generating the control strategy comprises: calculating a duty cycle for the at least three switching states based on the target output transformation result; and generating the control strategy for the matrix converter based on the calculated duty cycles. 10. The non-transitory computer-readable medium of claim 6 , wherein the mathematical transformation is an alpha-beta transformation, such that the target output transformation result represents an alpha-beta transformation result of a desired multi-phase output current of the matrix converter and each predicted output transformation result represents an alpha-beta transformation result of a predicted output current for a respective switching state. 11. A matrix converter system, comprising: a matrix converter comprising an array of switches; and a matrix converter controller configured to control the switches of the matrix converter according to a control strategy, the control strategy based on at least three identified switching states of a plurality of identified switching states of the matrix converter, wherein, when mapped using a Cartesian co-ordinate system, a position of a target output transformation result representing a mathemat

Assignees

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Classifications

  • H02M5/293Primary

    using semiconductor devices only · CPC title

  • H02M5/297Primary

    for conversion of frequency · CPC title

  • based on synthesising a desired voltage vector via the selection of appropriate fundamental voltage vectors, and corresponding dwelling times · CPC title

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What does patent US11509231B2 cover?
There is provided a method of generating a control strategy based on at least three switching states of a matrix converter. The at least three switching states are selected based on at least a predicted output current, associated with each switching state, and a desired output current. In particular, mathematical transformations of a desired output current as well as output currents associated …
Who is the assignee on this patent?
Itt Mfg Enterprises Llc
What technology area does this patent fall under?
Primary CPC classification H02M5/293. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Nov 22 2022 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 3 related publications on this page (citations in our corpus or others sharing the same primary CPC).