The present application is based upon and claims priority to Chinese Patent Application No. 201810134988.9, filed on Feb. 9, 2018, and the entire contents thereof are incorporated herein by reference.
The present disclosure relates to a magnetic component, an inverter, and an inductor, and more particularly, to a magnetic component, an inverter and an inductor having a high power density.
Generally, magnetic components occupy a large proportion in an overall volume and weight of a power supply system. Therefore, how to reduce the volume and weight of the magnetic components becomes an important research topic to improve the power density of the power supply system (such as a three-phase LLC resonant converter).
It should be noted that the information disclosed in the above background section is only for enhancement of understanding of the background of the present disclosure and therefore may include information that does not constitute prior art known to those of ordinary skill in the art.
Aspects of the present disclosure provide a magnetic component, an inverter and an inductor having a high power density. Aspects of the present disclosure further provide a magnetic component, an inverter and an inductor having a smaller magnetic core volume.
According to an aspect of the present disclosure, there is provided a magnetic component, including: a magnetic core, including a first winding window, a second winding window and a third winding window, wherein a first common magnetic column is shared by the first winding window and the second winding window, and a second common magnetic column is shared by the second winding window and the third winding windows; and a winding, including a first winding, a second winding and a third winding, wherein the first winding, the second winding and the third winding are wound in the first winding window, the second winding window and the third winding window, respectively, wherein when an alike current flows through the first winding, the second winding and the third winding, magnetic flux generated in magnetic core unit forming the first winding window and magnetic flux generated in magnetic core unit forming the second winding window are superposed on the first common magnetic column, and magnetic flux generated in magnetic core unit forming the second winding window and magnetic flux generated in magnetic core unit forming the third winding window are superposed on the second common magnetic column.
According to an aspect of the present disclosure, there is provided a magnetic component, including: a magnetic core, including a first winding window to an M-th winding window, and a common magnetic column is shared by two adjacent winding windows among the first winding window to the M-th winding window; and a winding, including a first winding to an N-th winding, and each of the first winding to the N-th winding respectively corresponds to one of the first winding window to the M-th winding window and is wound thereon, wherein when an alike current flows through the first winding to the N-th winding, magnetic fluxes respectively generated in magnetic core units forming two adjacent winding windows among the first winding window to the M-th winding window are superposed on the common magnetic column, where M, N is a positive integer greater than or equal to 2.
According to an aspect of the present disclosure, there is provided a three-phase LLC resonant converter, including the magnetic component according to the above aspects of the present disclosure, wherein the first winding, the second winding and the third winding respectively are used to form primary windings of a three-phase transformer; and the three-phase transformer further includes a first secondary winding, a second secondary winding and a third secondary winding, and the first secondary winding, the second secondary winding and the third secondary winding are wound on identical magnetic columns as the first winding, the second winding and the third winding, respectively.
According to an aspect of the present disclosure, there is provided a three-phase inductor, including the magnetic component according to the above aspects of the present disclosure.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the present disclosure.
This section provides a summary of various implementations or examples of techniques described in the present disclosure, and is not a comprehensive disclosure of the full scope or all features of the disclosed technology.
The accompanying drawings herein are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present disclosure, and together with the description serve to explain the principles of the disclosure. Obviously, the drawings in the following description are merely some embodiments of the present disclosure, and those skilled in the art can also obtain other drawings based on these drawings without any creative work.
Exemplary embodiments will now be described more fully with reference to the drawings. The exemplary embodiments, however, may be implemented in various forms, and should not be construed as been limited to the implementations set forth herein; instead, the implementations are provided such that the present disclosure will be through and complete, and will fully convey the concept of exemplary embodiments to those skilled in the art. The features, structures or characteristics described herein can be combined in one or more embodiments in any appropriate way. In the description hereinafter, many specific details are provided for fully understanding of the embodiments of the present disclosure. However, it will be appreciated by those skilled in the art that the technical solution of the present disclosure can be practiced without one or more of the specific details, or with other methods, components, devices, or steps, etc. In addition, known technical solutions will not be illustrated or described in detail, to avoid obscuration of the aspects of the present disclosure.
In addition, the drawings are merely schematic illustrations of the present disclosure and are not necessarily drawn to scale. The same reference numerals in the drawings denote the same or similar parts, and their repeated description will be omitted. Some of the block diagrams shown in the figures are functional entities and do not necessarily have to correspond to physically or logically independent entities. These functional entities may be implemented in software, or implemented in one or more hardware modules or integrated circuits, or implemented in different network and/or processor devices and/or microcontroller devices.
In a conventional three-phase LLC resonant converter, three resonant inductors and three transformers use separate magnetic cores and form separate closed magnetic circuits respectively, which will increase the overall volume and weight of the power supply system, and increase manufacturing cost of the power supply system. In addition, when the circuit operates, a magnetic core of a magnetic component of each converter will correspondingly produce a large magnetic loss. Therefore, when a plurality of magnetic components in the three-phase LLC resonant converter use separate magnetic cores and form separate closed magnetic circuits respectively, the conventional power supply system will have a large magnetic loss.
In the present exemplary embodiment, a magnetic component is provided. Referring to
In this embodiment, referring to
More specifically, referring to
In addition, in the present embodiment, a direction of magnetic flux through the first common magnetic column 111 is opposite to that of magnetic flux through the second common magnetic column 112. For example, referring to
In the present embodiment, the first common magnetic column 111 and the second common magnetic column 112 are respectively shared by winding windows adjacent thereto, and therefore, the first common magnetic column 111 and the second common magnetic column 112 are preferable to have a low magnetic resistance. In one embodiment, magnetic resistances of the first common magnetic column 111 and the second common magnetic column 112 may be reduced by providing no air gap on the first common magnetic column 111 and the second common magnetic column 112.
In this embodiment, the term “alike current” may indicate that directions of the currents are the same, for example, all being positive currents or all being negative currents. In other embodiments, the alike current may also mean that the magnitude and phase of the current are the same. In addition, those skilled in the art should understand that although the term “alike current” is used in this embodiment to define an arrangement of the magnetic core 110 and the winding 120, the current flowing into each winding during the operation of the magnetic component is not limited to the same current as described above, but can be set according to actual needs. In other words, for example, the magnetic fluxes as shown in
In the present embodiment, the first winding 121, the second winding 122 and the third winding 123 may have the same turns. When the first winding 121, the second winding 122 and the third winding 123 have the same turns, and when current iA flowing through the first winding 121 is identical to current iB flowing through the second winding 122 and current iC flowing through the third winding 123, the magnetic fluxes ΦA, ΦB, and ΦC generated correspondingly are also the same with each other.
For example,
In the present embodiment, since the magnetic fluxes on the common magnetic column are in superposed relationships, amplitudes of the magnetic fluxes on the common magnetic columns are the same as those of the magnetic fluxes in each winding window, and thus it is advantageous to reduce the magnetic flux passing through the common magnetic columns, thereby avoiding the increase of the volume of the common magnetic columns and the increase of the loss on the common magnetic columns, which is advantageous for realizing a smaller-sized magnetic component.
In this embodiment, each of the first winding 121, the second winding 122 and the third winding 123 has at least one sub-winding, and the at least one sub-winding is respectively wound on a same-position magnetic column or different-position magnetic columns on the magnetic core units forming the first winding window A, second winding window B and the third winding window C, and wherein when an alike current flows through the windings, magnetic flux loops generated by the at least one sub-winding wound on one winding window in a magnetic core unit of the one winding window have an identical direction.
More specifically, referring to
In this embodiment, referring to
In the present embodiment, the first winding, the second winding and the third winding are respectively wound on side columns of the first U-shaped magnetic core unit 11 to the third U-shaped magnetic core unit 13. However, the present disclosure is not limited thereto, and the first winding, the second winding and the third winding may also be disposed on the corresponding winding windows in other manners.
An example of using the U-shaped magnetic core unit and the I-shaped magnetic core unit to construct the magnetic core 110 is shown in the embodiment of
In this embodiment, referring to
In this embodiment, the first winding is wound on side columns of the first U-shaped magnetic core unit 11 and the first H-shaped magnetic core unit 31, the second winding is wound on side columns of the first H-shaped magnetic core unit 31 and the second H-shaped magnetic core unit 32, and the third winding is wound on side columns of the second H-shaped magnetic core unit 32 and the second U-shaped magnetic core 12.
According to the present embodiment, the magnetic core unit forming the first winding window A, the magnetic core unit forming the first winding window B and the magnetic core unit forming the third winding window C respectively have air gaps, and the first winding, the second winding and the third winding cover the air gaps respectively. Specifically, referring to
An example of using the U-shaped magnetic core unit and the H-shaped magnetic core unit to construct the magnetic core 110 is shown in the embodiment of
In this embodiment, referring to
In the present embodiment, referring to
In addition, similar to the foregoing embodiment, in the present embodiment, actual shapes of the E-shaped magnetic core unit and the I-shaped magnetic core unit are not limited to the specific shapes shown in the drawing either.
In the foregoing embodiment, each magnetic component has three winding windows, however, the present disclosure is not limited thereto. In other embodiments of the present disclosure, it may be expanded based on the structure of the magnetic core unit in the foregoing embodiments, thereby obtaining a magnetic component having a plurality of winding windows.
More specifically, in an embodiment of the present disclosure, a magnetic component includes: a magnetic core, including a first winding window to an M-th winding window, and a common magnetic column is shared by two adjacent winding windows among the first winding window to the M-th winding window; and a winding, including a first winding to an N-th winding, and each of the first winding to the N-th winding respectively corresponds to one of the first winding window to the M-th winding window and is wound thereon. In the embodiment, when an alike current flows through the first winding to the N-th winding, magnetic fluxes respectively generated in magnetic core units forming two adjacent winding windows among the first winding window to the M-th winding window are superposed on the common magnetic column, where M, N is a positive integer greater than or equal to 2.
In one embodiment, when an alike current flows through the first winding to the N-th winding, magnetic fluxes respectively generated in magnetic core units forming adjacent winding windows are in an opposite direction.
In one embodiment, each of the first winding to the N-th winding has at least one sub-winding, and the at least one sub-winding is respectively wound on a same-position magnetic column or different-position magnetic columns in the respective magnetic core units forming the first winding window to the M-th winding window, and wherein when an alike current flows through the windings, magnetic flux loops generated by the at least one sub-winding wound on one winding window in the magnetic core unit of the one winding window have an identical direction.
In one embodiment, the magnetic core includes a first U-shaped magnetic core unit to an M-th U-shaped magnetic core unit and a first I-shaped magnetic core unit, wherein an i-th U-shaped magnetic core unit and a bottom of an (i+1)-th U-shaped magnetic core unit are used to form an i-th winding window, the M-th U-shaped magnetic core unit and the first I-shaped magnetic core unit are used to form an M-th winding window, wherein the bottom of the (i+1)-th U-shaped magnetic core unit is defined as the common magnetic column, where i is a positive integer greater than or equal to 1 and less than M, wherein the first winding to the N-th winding are respectively wound on side columns of the first U-shaped magnetic core unit to the M-th U-shaped magnetic core unit.
In one embodiment, the magnetic core includes a first U-shaped magnetic core unit, a second U-shaped magnetic core unit, a first H-shaped magnetic core unit to an (M−1)-th H-shaped magnetic core unit, wherein the first U-shaped magnetic core unit and the first H-shaped magnetic core unit are used to form the first winding window, an i-th H-shaped magnetic core unit and an (i+1)-th H-shaped magnetic core unit are used to form an (i+1)-th winding window, the (M−1)-th H-shaped magnetic core unit and the second U-shaped magnetic core unit are used to form the M-th winding window, wherein a central column of the H-shaped magnetic core unit is defined as the first common magnetic column, where i is a positive integer greater than or equal to 2 and less than (M−1), wherein the first winding to the N-th winding are respectively wound on side columns of the first U-shaped magnetic core unit and the second U-shaped magnetic core unit and on side columns of the first H-shaped magnetic core unit to the (M−1)-th H-shaped magnetic core unit.
In one embodiment, the magnetic core includes a first E-shaped magnetic core unit to an M-th E-shaped magnetic core unit and a first I-shaped magnetic core unit, wherein an i-th E-shaped magnetic core unit and a bottom of an (i+1)-th E-shaped magnetic core unit are used to form an i-th winding window, the M-th E-shaped magnetic core unit and the first I-shaped magnetic core unit are used to form the M-th winding window, wherein the bottom of the (i+1)-th E-shaped magnetic core unit is defined as the common magnetic column, where i is a positive integer greater than or equal to 1 and less than M, wherein the first winding to the N-th winding are respectively wound on central columns of the first E-shaped magnetic core unit to the M-th E-shaped magnetic core unit.
Similar to the foregoing embodiments, in these embodiments, actual shapes of the U-shaped magnetic core unit, the I-shaped magnetic core unit, the H-shaped magnetic core unit and the E-shaped magnetic core unit are not limited to the particular shape shown in the foregoing embodiments of the present disclosure, but may include corresponding variations.
Referring to
It should be noted that
According to the present embodiment, the first winding 121, the second winding 122 and the third winding 123 of the magnetic component 110 are used to form primary windings (for example, NA, NB, and NC shown in
According to the present embodiment, when the three-phase LLC resonant converter operates, operating currents in a phase difference with each other may respectively flow through the first winding 121, the second winding 122 and the third winding 123. More specifically, operating currents flowing through the first winding 121, the second winding 122 and the third winding 123 are in a phase difference of approximately 120° with each other.
According to the present disclosure, the operating current flowing through the first winding 121, the second winding 122, and the third winding 123 may be a periodically varying current, such as at least one of a sine wave, a square wave, a triangular wave and a pulse wave alternating current. However, the present disclosure is not limited thereto, and other waveform currents may also be used as the operating currents of the first winding 121, the second winding 122, and the third winding 123 depending on the specific applications.
The embodiment shown in
According to the foregoing embodiment of the present disclosure, referring to
According to the present embodiment, when the three-phase inductor operates, operating currents in a phase difference with each other may respectively flow through the first winding 121, the second winding 122 and the third winding 123. More specifically, operating currents flowing through the first winding 121, the second winding 122 and the third winding 123 are in a phase difference of approximately 120° with each other.
According to the present disclosure, the operating current flowing through the first winding 121, the second winding 122, and the third winding 123 may be a periodically varying current, such as at least one of a sine wave, a square wave, a triangular wave and a pulse wave alternating current. However, the present disclosure is not limited thereto, and other waveform currents may also be used as the operating currents of the first winding 121, the second winding 122, and the third winding 123 depending on the specific applications.
According to the present disclosure, there is provided a magnetic component, including: a magnetic core, including a first winding window, a second winding window and a third winding window, wherein a first common magnetic column is shared by the first winding window and the second winding window, and a second common magnetic column is shared by the second winding window and the third winding windows; and a winding, including a first winding, a second winding and a third winding, wherein the first winding is wound in the first winding window, the second winding is wound in the second winding window, and the third winding is wound in the third winding window, wherein when an alike current flows through the first winding, the second winding and the third winding, magnetic flux generated in magnetic core unit forming the first winding window and magnetic flux generated in magnetic core unit forming the second winding window are superposed on the first common magnetic column, magnetic flux generated in magnetic core unit forming the second winding window and magnetic flux generated in magnetic core unit forming the third winding window are superposed on the second common magnetic column. In this way, it facilities reducing the magnetic flux in the common magnetic column and thus the magnetic component may have a smaller magnetic core volume.
Other embodiments of the present disclosure will be readily apparent to those skilled in the art from consideration of the specification and practice of the disclosure disclosed herein. This application is intended to cover any variations, uses, or adaptations of the present disclosure which follow the general principles of the present disclosure and include any common knowledge or conventional techniques in this technical field not disclosed by the present disclosure. The description and embodiments are to be considered exemplary only, with the true scope and spirit of the disclosure being indicated by the following claims.
It should be understood that the present disclosure is not limited to the precise structure that has been described above and shown in the drawings, and various modifications and changes can be made without departing from the scope thereof. The scope of the present disclosure is limited only by the attached claims.
Number | Date | Country | Kind |
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201810134988.9 | Feb 2018 | CN | national |