This application is based upon and claims priority to Chinese patent application No. 201810536292.9 filed on May 30, 2018, the disclosure of which is hereby incorporated by reference in its entirety.
The present disclosure relates to the technical field of transformers but is not limited to the technical field of transformers, and in particular to a high-frequency transformer.
A high-frequency transformer is a core device for an alternating current (AC)/direct current (DC) hybrid distribution network to realize AC/AC and DC/DC power transformation, and plays key roles in electrical isolation, voltage transformation, power transmission and the like between high and low voltage systems.
When magnetic circuits at an input terminal of a three-phase high-frequency transformer are asymmetrical, the fundamental component of a primary side cannot be counteracted and will be transferred to a secondary side, thereby increasing the loss of the high-frequency transformer.
An existing high-frequency transformer generally has a single-phase structure, an iron core is mainly formed by splicing rectangular or C-shaped iron cores, and a three-phase transformer cannot be realized on a single iron core. In order to realize a three-phase structure, three single-phase transformers need to be used to realize three-phase input, and three-phase iron cores are independent of each other, which can realize the symmetry of three-phase magnetic circuits on primary sides of the three-phase high-frequency transformer. However, due to the use of the three single-phase transformers, the three-phase high-frequency transformer is complicated in wiring, has large loss and has a large volume.
The embodiments of the present disclosure provide a high-frequency transformer.
The present disclosure adopts the following technical solution.
The present disclosure provides a high-frequency transformer, which includes: an iron core, primary windings and secondary windings. The iron core is of an integrated equilateral triangle structure. The primary windings and the secondary windings are uniformly wound on three sides of the iron core, and the primary windings and/or the secondary windings are symmetrically distributed on the three sides.
In some embodiments, the secondary windings and the primary windings may be concentrically wound on the iron core, and the primary windings may be arranged outside the secondary windings.
In some embodiments, three corners of the iron core may be all of arc structures.
In some embodiments, the primary windings wound on the three sides of the iron core may be respectively configured for three-phase input; and the secondary windings wound on the three sides of the iron core may be of a series or parallel structure and may be configured for single-phase output.
In some embodiments, a plurality of iron cores may be provided; and the plurality of iron cores may be stacked.
In some embodiments, materials of the primary windings and the secondary windings may be copper foil or Litz wires.
In some embodiments, the primary windings and/or the secondary windings being symmetrically distributed on the three sides may include at least one of following scenarios:
Compared with a related art, the technical solution of the present disclosure at least has the following advantages.
The embodiments of the present disclosure provide a high-frequency transformer. The high-frequency transformer includes: an iron core, primary windings and secondary windings. The iron core is of an integrated equilateral triangle structure, the primary windings and the secondary windings are uniformly wound on three sides of the iron core, and three-phase magnetic circuits of the primary windings are symmetrical. Fundamental wave magnetic circuits with a mutual difference of 120 degrees in the windings can be counteracted such that the loss caused by the transfer of the fundamental component of a primary side of the high-frequency transformer to a secondary side thereof is avoided. In addition, since only one transformer is used, the high-frequency transformer has low loss, is simple in wiring and has a small volume.
In order to more clearly illustrate the specific embodiments of the present disclosure or the technical solutions in the related art, the drawings required in the description of the specific embodiments or the description of the related art are simply described below. Apparently, the drawings in the following description are some embodiments of the present disclosure, and a person of ordinary skill in the art can also obtain other drawings according to these drawings without any creative work.
The technical solution of the present disclosure will be clearly and completely described with reference to the drawings below. Apparently, the described embodiments are part of the embodiments of the present disclosure, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present disclosure without creative efforts fall within the scope of protection of the present disclosure.
It should be noted that the technical features involved in different embodiments of the present disclosure described below can be combined with each other as long as they do not conflict with each other.
The present disclosure provides a high-frequency transformer, which includes: an iron core, primary windings and secondary windings.
The iron core is of an integrated equilateral triangle structure.
The primary windings and the secondary windings are uniformly wound on three sides of the iron core, and the primary windings and the secondary windings are symmetrically distributed on the three sides.
If core bodies of the iron core are equivalent to sides of a triangle, the iron core may be an equilateral triangle.
The primary windings are symmetrically distributed on the three sides, and this symmetry is axial symmetry and/or central symmetry. The primary windings are symmetrically distributed on the three sides, so that three-phase magnetic circuits may be symmetrical.
In some embodiments, the secondary windings and the primary windings are concentrically wound on the iron core, and the primary windings are arranged outside the secondary windings.
In some embodiments, three corners of the iron core are all of arc structures.
In some embodiments, the primary windings wound on the three sides of the iron core are respectively configured for three-phase input; and the secondary windings wound on the three sides of the iron core are of a series or parallel structure and are configured for single-phase output.
In some embodiments, a plurality of iron cores are provided; and the plurality of iron cores are stacked.
The iron core group may include one iron core or more than one iron core.
In some embodiments, materials of the primary windings and the secondary windings are copper foil or Litz wires.
In some embodiments, the primary windings and/or the secondary windings are symmetrically distributed on the three sides, including at least one of following scenarios:
The high-frequency transformer may be a transformer which can transform the alternating current with a frequency higher than a preset threshold.
The embodiments of the present disclosure provide a high-frequency transformer. As illustrated in
The high-frequency transformer provided by the embodiments of the present disclosure uses only one transformer to realize the symmetry of three-phase input magnetic circuits of the primary side, the three phases share one core column, the fluctuating power can flow among the three phases of the primary side of the high-frequency transformer, the three phases of the primary side are completely coupled, and the fundamental wave magnetic circuits with a mutual difference of 120 degrees between the primary windings or between the secondary windings have a high degree of counteraction and can even be completely counteracted, thereby reducing or avoiding the loss of the high-frequency transformer caused by transfer to the secondary side. The high-frequency transformer is simple in wiring and has a small volume.
The core column may be a triangular ring formed by an iron core, and a triangular or approximately triangular hollow space is formed inside the core column. In this way, the primary windings and the secondary windings can be wound outside the iron core through the hollow space.
Furthermore, the iron core of the high-frequency transformer provided in the embodiments of the present disclosure is of an integrated structure, thereby avoiding the air gaps caused by splicing iron cores, reducing the leakage inductance of the high-frequency transformer and the loss of the iron core, reducing the hot spot temperature of the high-frequency transformer, improving the operating efficiency of the high-frequency transformer, and prolonging the service life of the high-frequency transformer.
As illustrated in
As illustrated in
As the reference data when the iron core is made, as illustrated in
In an embodiment, in some embodiments of the present disclosure, the above iron core 7 may be formed by winding an iron core strip by an iron core winding machine and is subjected to annealing treatment. The iron core strip may be selected from different materials according to different working frequencies. For example, the iron core strip may be magnetic materials, such as ferrite, amorphous alloy, ultra-thin silicon steel, nanocrystal or the like.
In an embodiment, in some embodiments of the present disclosure, as illustrated in
In an embodiment, in order to reduce the skin effect under high-frequency working conditions, copper foil is used as the material of the above primary windings and secondary windings. By using the copper foil as the material for coiling the windings, the coiling difficulty of the windings is reduced.
In an embodiment, in other embodiments of the present disclosure, the above primary windings and secondary windings may also be Litz wires.
In an embodiment, in other embodiments of the present disclosure, insulating paper, insulating oil or epoxy resin can be used to realize electrical isolation between the primary and secondary sides.
Apparently, the above embodiments are only examples for clear explanation, but do not limit the embodiments. Those skilled in the art still can make other forms of changes or variations on the basis of the above explanation. All embodiments do not need to be and cannot be exhausted herein. The obvious changes or variations derived from this are still within the protection scope created by the present disclosure.
Number | Date | Country | Kind |
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201810536292.9 | May 2018 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2018/102792 | 8/28/2018 | WO |