WO2021215287A1 - Transformateur llc à bobine de résonance intégrée - Google Patents

Transformateur llc à bobine de résonance intégrée Download PDF

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Publication number
WO2021215287A1
WO2021215287A1 PCT/JP2021/015142 JP2021015142W WO2021215287A1 WO 2021215287 A1 WO2021215287 A1 WO 2021215287A1 JP 2021015142 W JP2021015142 W JP 2021015142W WO 2021215287 A1 WO2021215287 A1 WO 2021215287A1
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WO
WIPO (PCT)
Prior art keywords
coil winding
magnetic core
secondary coil
primary coil
resonance
Prior art date
Application number
PCT/JP2021/015142
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English (en)
Japanese (ja)
Inventor
喬之 山口
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スミダコーポレーション株式会社
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Publication date
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Publication of WO2021215287A1 publication Critical patent/WO2021215287A1/fr

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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F38/00Adaptations of transformers or inductances for specific applications or functions
    • H01F38/08High-leakage transformers or inductances

Definitions

  • the present invention relates to an LLC transformer with a built-in resonance coil, and more particularly to an LLC transformer for high power with a built-in resonance coil used in a quick charger or the like for an automobile.
  • the leakage inductance of the transformer is used as the resonance inductor in the LLC resonance circuit.
  • a method using leakage inductance since the voltage gain changes depending on the switching frequency, it is difficult to design a transformer as compared with other control methods. That is, it is technically difficult to manage the inductance and secure a large resonance inductance.
  • LLC transformers for high power (for example, 50kW) used for automobiles (quick chargers) when a normal UU core is used as a transformer core, the leakage inductance changes depending on the coil winding position and winding method. It ends up.
  • coils that handle large currents have a large diameter, making it difficult to align and wind them, and it is difficult to uniformly adjust the leakage inductance depending only on the number of windings and the winding method. There are also many requests to adjust the leakage inductance every time.
  • the present invention has been made in view of the above circumstances, and provides an LLC transformer with a built-in resonance coil having a structure capable of easily securing a larger resonance inductance and adjusting the leakage inductance at the time of manufacturing. It is the purpose.
  • the LLC transformer with a built-in resonance coil of the present invention is used.
  • a magnetic core portion that combines a plurality of magnetic cores to form a rectangular closed magnetic path having opposite parallel sides,
  • a primary coil winding portion in which at least the primary coil winding is wound, and a secondary coil winding portion in which at least the secondary coil winding is wound, which are arranged on each of the opposite parallel sides of the magnetic core portion.
  • the primary coil winding portions and the secondary coil winding portions of the opposing parallel sides of the magnetic core portion are arranged at positions facing each other, and each of the opposing sides of the magnetic core portion.
  • the primary coil winding portion and the secondary coil winding portion are configured so as to be arranged with each other via a gap portion.
  • auxiliary core member made of a plate-shaped magnetic core that is inserted from the gap portion formed on one of the opposite sides to the gap portion formed on the other side.
  • "from the gap formed on one side to the gap formed on the other side” does not necessarily mean that a part of the auxiliary core member made of a plate-shaped magnetic core is a part of these gaps. It does not mean that it is inserted into, but at least it means that it is arranged at a position between these two gaps.
  • the secondary coil winding may be overlapped with the primary coil winding in the above-mentioned "primary coil winding portion", and the secondary coil winding may be wound in the "secondary coil winding portion”. At the same time, the primary coil windings may be overlapped and wound.
  • the auxiliary core member made of the plate-shaped magnetic core is inserted so as to be removably inserted.
  • the auxiliary core member is provided with an operation unit capable of facilitating the insertion operation of the auxiliary core member.
  • a part of the primary coil winding is overlapped with the secondary coil winding in the secondary coil winding portion.
  • an insulating winding bobbin is arranged between the magnetic core portion and the primary coil winding portion and the secondary coil winding portion, and the auxiliary core member is attached to the winding bobbin. It is preferable that a slot portion to be inserted is provided. Further, it is preferable that any of the above-mentioned LLC transformers with a built-in resonance coil has a configuration in which the coupling coefficient can be adjusted to a desired value in the range of 0.990 to 0.997.
  • the LLC transformer with a built-in resonance coil has a primary coil winding portion in which a primary coil winding is wound around each of the opposing parallel sides of a magnetic core portion forming a rectangular closed magnetic path, and a secondary coil winding portion.
  • a secondary coil winding portion around which the coil winding is wound is arranged, and a plate-like shape is provided from one of the gaps between the two coil winding portions to the other gap between the two coil winding portions.
  • this auxiliary core member can generate leakage flux by inserting it from one gap into the other, so the coupling coefficient in the LLC transformer with built-in resonance coil can be easily adjusted in the manufacturing process. It becomes possible to adjust in.
  • the coils have a large diameter, it is difficult to align and wind them, and it is difficult to keep the leakage inductance constant.
  • the LLC transformer with a built-in resonance coil of the present invention According to the report, delicate adjustment of leakage inductance can be easily performed by simply inserting the auxiliary core member, and since it can be performed at the final adjustment stage of the transformer manufacturing process, it is easy to make the leakage inductance uniform and uniform performance. An LLC transformer having the above can be obtained.
  • FIG. 5 is a perspective view of a main part of the embodiment of FIG. 1 in which an auxiliary core member, wiring, and the like are removed. It is the same perspective view which has the auxiliary core member which shows by removing the secondary coil winding part from the state of FIG. 3a. It is an external perspective view which shows the whole structure of the LLC transformer with built-in resonance coil which concerns on embodiment of FIG. It is the schematic which shows the wiring system of embodiment of FIG. It is the schematic which shows the formation state of the magnetic path in the embodiment of FIG.
  • FIG. 1 is an external perspective view of a main part showing the wiring and the like of the LLC transformer 100 with a built-in resonance coil according to the present embodiment removed.
  • the LLC transformer 100 with a built-in resonance coil of this embodiment includes a magnetic core portion 11, primary coil winding portions 12A and 12B, secondary coil winding portions 13A and 13B, and an auxiliary core member 14. Be prepared as.
  • the magnetic core portion 11 is composed of three sets of magnetic cores 11a, 11b, and 11c stacked. Each of the magnetic cores 11a, 11b, 11c constitutes a rectangular closed magnetic path (W1; see FIG. 5b) in which two U-shaped cores are combined so as to face each other and the tips of the legs are brought into contact with each other and have opposite parallel sides. Each is provided in a rectangular shape.
  • the magnetic core portion 11 includes ferrite (Mn-Zn, Ni-Zn, etc.), amorphous magnetic material, silicon steel plate, dust core (pure iron, Fe-Si-AL alloy, Ni-Fe). -It can be formed by using an iron-based material such as Mo-based alloy or Ni-Fe-based alloy).
  • the secondary coil winding portions 13A and 13B wound in a rectangular shape are arranged one above the other.
  • an additional primary coil winding 12b is laminated on the outside of the secondary coil windings 13a and 13a of the secondary coil winding portions 13A and 13B.
  • the primary coil winding portions 12A and 12B facing each other and the secondary coil winding portions 13A and 13B are arranged at opposite positions (that is, the same positions in the vertical direction), and the above-mentioned At each of the opposing parallel sides of the magnetic core portion 11, the primary coil winding portions 12A and 12B and the secondary coil winding portions 13A and 13B are arranged with each other via a predetermined gap portion G.
  • a plate-shaped magnetic core that is removably inserted from the gap G formed on one of the opposite parallel sides to the gap G formed on the other side.
  • An auxiliary core member 14 made of 14a is provided.
  • the auxiliary core member 14 is composed of a plate-shaped magnetic core 14a and an operation unit 14b mounted on the magnetic core 14a.
  • the operating portion 14b has a base portion 14c having a recess inside in which one end of the magnetic core 14a is inserted and fitted, and the base portion 14c is long in the lateral direction, and a rib portion 14d rising up and down in the center in a protruding shape, It is equipped with 14e.
  • the rib portions 14d and 14e extend along the upper and lower surfaces of the plate-shaped magnetic core 14a whose tip is attached to the base portion 14c, and the magnetic core 14a is inserted into a slit between the upper and lower rib portions 14d and 14e.
  • the operation unit 14b is used by grasping it so that the operation can be facilitated when performing the insertion / removal operation.
  • the plate-shaped magnetic core 14a is preferably made of the same material as the magnetic core portion 11, but may be made of a material different from that of the magnetic core portion 11. For example, when the gaps G are formed to be narrow, it is necessary to reduce the thickness of the plate-shaped magnetic core 14a. In this case, in order to obtain a desired leakage inductance, the magnetic core portion is formed.
  • the plate-shaped magnetic core 14a is formed of a magnetic material having a higher magnetic permeability than the magnetic material forming 11.
  • the primary coil winding portions 12A and 12B and the secondary coil winding portions 13A and 13B are assembled to the magnetic core portion 11 by the right and left winding bobbins 17A and 17B.
  • a right-handed bobbin 17A and a left-handed bobbin 17B are installed on the right and left parallel sides of the magnetic core 11, respectively.
  • the secondary coil winding portions 13A and 13B are removed.
  • Both winding bobbins 17A and 17B are provided with central tubular portions 17a and 17a in which the opposing parallel sides of the magnetic core portion 11 penetrate.
  • Upper collar members 17b and 17b are provided at the upper ends of the central cylinder portions 17a and 17a
  • middle collar members 17c and 17c are provided at the intermediate portion
  • lower collar members 17d and 17d are provided at the lower ends.
  • the secondary coil winding portions 13A and 13B are housed in the upper space between the upper collar members 17b and 17b and the middle collar members 17c and 17c, and the middle collar members 17c and 17c and the lower collar members 17d and 17d
  • the primary coil winding portions 12A and 12B are housed in the lower space between them.
  • Both winding bobbins 17A and 17B are made of a resin molded body material.
  • the resin molded body material include PET (polyethylene terephthalate), PF (phenol resin) unsaturated polyester resin, urethane resin, epoxy resin, PBT (polybutylene terephthalate), PPS (polyphenylene terephthalate), and the above resin molding.
  • PET polyethylene terephthalate
  • PF phenol resin
  • urethane resin epoxy resin
  • PBT polybutylene terephthalate
  • PPS polyphenylene terephthalate
  • the middle collar members 17c and 17c are arranged inside the gap portion G, and the right and left middle collar members 17c and 17c at the opposing intermediate portions of the central cylinder portions 17a and 17a have the auxiliary core member.
  • a slot portion 18 into which the 14 is inserted and detached is formed.
  • the slot portion 18 is configured such that the flat space between the upper plate and the lower plate of the middle collar members 17c, 17c accommodates the plate-shaped magnetic core 14a of the auxiliary core member 14, and the middle collar members 17c, on both sides,
  • the upper and lower rib portions 14d and 14e of the auxiliary core member 14 are configured to be inserted into the elongated gap between the upper plates and the lower plates of 17c.
  • rail-shaped guide protrusions 18a are formed in the inner part of the flat space of the center flange members 17c and 17c on both sides, and the plate-like magnetism of the auxiliary core member 14 is formed.
  • the side edge of the plate-shaped magnetic core 14a is guided by the guide protrusion 18a so that the core 14a is located at the center of the slot portion 18.
  • the magnetic cores 11a, 11b, 11c constituting the magnetic core portion 11 are assembled with the winding bobbins 17A, 17B, and then the upper and lower U cores are attached to the outer periphery of the binding bands 15a, respectively. It is fixed by 15b and 15c, and fastened and joined by the upper bolt 16.
  • the assembly of the magnetic core portion 11, the primary coil winding portions 12A and 12B, the secondary coil winding portions 13A and 13B, and the right and left winding bobbins 17A and 17B is downward. It is installed on the pedestal body 20 of the above. Further, wirings on the primary side and the secondary side (the outer surface is covered with an insulating material) are connected to the upper part of the assembly to form the whole.
  • FIG. 4 it is used to send a current from the power supply circuit (control circuit) 300 (see FIG. 5a) to the primary coil windings 12a and 12a of the primary coil winding portions 12A and 12B.
  • Power supply terminals 21A, 21B and coil connection lines 121,221 are shown, and in order to send a current from the primary coil windings 12a, 12a of the primary coil winding portions 12A, 12B to the power supply circuit 300.
  • the coil connecting lines 122 and 222 and the power supply terminals 22A and 22B used are shown.
  • FIG. 4 shows power supply terminals 41A to 41D and coil connection lines 132 and 232 used for drawing a current from the outside to the secondary coil windings 13a and 13a of the secondary coil winding portions 13A and 13B.
  • the coil connection lines 131, 231 and the power supply terminals 31A to 31D, which are used for transmitting a current to the outside from the secondary coil windings 13a and 13a of the secondary coil winding portions 13A and 13B, are shown. Has been done.
  • FIG. 5a is a schematic view showing a wiring system of this embodiment. That is, it is output from the control circuit (power supply circuit) 300 including the resonance circuit unit 310 having the resonance capacitor and the resonance coil (the resonance inductor is formed together with the leakage inductor by the plate-shaped magnetic core 14a of the auxiliary core member 14).
  • the predetermined current is the primary coil windings 12a of the primary coil winding portions 12A and 12B via the connecting wires (two in this embodiment: the power supply terminals are omitted) 121 and 221. It is input to 12a.
  • This current flows through the wound primary coil windings 12a and 12a, and is overlapped and wound on the secondary coil windings 13a and 13a of the secondary coil winding portions 13A and 13B via the connecting wire 121a. It flows through the primary coil windings 12b and 12b, and then returns to the control circuit 300 via the connecting wires 121b, the primary coil winding portions 12A and 12B, and the connecting wires 122 and 222.
  • the predetermined current output from the external power supply is the secondary coil winding via the connection lines (4 in this embodiment: the power supply terminals are omitted) 131 and 231. It is input to the secondary coil windings 13a and 13a of the parts 13A and 13B. This current flows through the wound secondary coil windings 13a and 13a, and then returns to the external power supply via the connecting lines 132 and 232.
  • a gap G is provided between the primary coil winding portions 12A and 12B and the secondary coil winding portions 13A and 13B, and the gap G is filled with the magnetism of the auxiliary core member 14.
  • the core 14a is configured to be freely inserted and removed. By disposing the magnetic core 14a at this position, a larger resonance inductance can be easily secured, and the leakage inductance can be adjusted in the manufacturing process.
  • this magnetism is provided by the magnetic core 11 (11a, 11b, 11c) formed by combining two U-shaped cores facing each other, and the primary coil windings 12a, 12a, 12b, 12b.
  • a closed magnetic path W1 orbiting in the core 11 is formed.
  • the leakage inductance differs depending on the coil winding position and winding method. Therefore, when this leakage inductance is used as at least a part of the resonance inductor for the LLC circuit, it is convenient if the leakage inductance can be adjusted. In particular, in the manufacturing process, it is extremely convenient if the leakage inductance can be adjusted while the coil is wound.
  • the magnetic core 14a of the auxiliary core member 14 is configured to be freely inserted and removed into the gap G, whereby the leakage inductance can be adjusted.
  • the auxiliary magnetism that crosses between the opposite sides of the closed magnetic path W1 that orbits in the magnetic core 11 Road W2 (represented by a broken line) is formed.
  • the auxiliary magnetic path W2 is a magnetic path through which a smaller magnetic flux passes than the closed magnetic path W1, but due to the formation of this magnetic path, leakage occurs when the auxiliary core member 14 is inserted and when it is removed. Since the inductance can be changed, it is possible to adjust the leakage inductance minutely.
  • the leakage inductance can be easily adjusted to a desired value by inserting and removing the auxiliary core member 14 at this stage. .. Further, the minute leakage inductance is adjusted by changing the insertion degree of the auxiliary core member 14 (inserting 1/2 of the total length or inserting 2/3 of the total length). can do. The leakage inductance can also be adjusted by changing the material and thickness of the magnetic core 14a of the auxiliary core member 14.
  • the LLC transformer with a built-in resonance coil of the present invention is not limited to that of the above embodiment, and various other aspects can be changed.
  • the tips of a pair of U-shaped cores are butted against each other to form a substantially rectangular core portion, but one U-shaped core and one A substantially rectangular core portion may be formed by combining I-type cores or four I-type cores.
  • one auxiliary core member 14 is provided, but a plurality of auxiliary core members may be provided, for example, the secondary coil winding portions 13A and 13B. May be divided and another auxiliary core member may be inserted between the divided portions.
  • the auxiliary core member may be inserted into the gap portion located between the two primary coil winding portions 12A and 12B and / or between the two secondary coil winding portions 13A and 13B. good. Further, in the LLC transformer with a built-in resonance coil of the above-described embodiment, the auxiliary core member 14 is configured so that the magnetic core 14a is exposed, but even if the outer surface thereof is completely molded with resin or the like. good.
  • the shape of the operation portion of the auxiliary core member 14 is not limited to that of the above embodiment, and may be of various shapes.
  • the auxiliary magnetic path W2 for leakage inductance is formed at a position biased downward in the drawing from the abutting position (center portion) between the legs of each U-shaped core.
  • the road W2 may be formed so as to pass near the central portion or at another position. Thereby, the leakage inductance can be changed.
  • the secondary coil winding portions 13A and 13B are wound on the secondary coil winding 13a by superimposing the primary coil winding 12b.
  • the secondary coil winding portion only the secondary coil winding may be wound, or the secondary coil winding may be overlapped and wound on the primary coil winding.
  • two coil connection lines 121, 122, 221, 222 are provided for each input / output of the primary coil windings 12a and 12a, and the secondary coil windings 13a,
  • Four coil connection lines 131, 132, 231 and 232 are provided for input / output of 13a, but the number of these coil connection lines is not limited to that of the embodiment, and the amount of current and the like are not limited to those of the embodiment. It is possible to make any number according to.

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Coils Of Transformers For General Uses (AREA)

Abstract

L'invention concerne un transformateur LLC à bobine de résonance intégrée, présentant une structure dans laquelle une plus grande inductance de résonance peut être facilement assurée et l'inductance de fuite peut être ajustée pendant la fabrication. Le transformateur LLC à bobine de résonance intégrée comporte: une partie 11 de noyau magnétique qui constitue un trajet magnétique fermé rectangulaire comprenant des côtés parallèles opposés obtenus en combinant une pluralité de noyaux magnétiques; des parties 12A, B d'enroulement de bobine primaire qui sont disposées sur chacun des côtés parallèles opposés de la partie 11 de noyau magnétique et autour desquelles un enroulement 12a de bobine primaire est enroulé; des parties 13A, B d'enroulement de bobine secondaire autour desquelles un enroulement 13a de bobine secondaire est enroulé; un élément 14 de noyau auxiliaire incluant un noyau magnétique 14a de forme plate qui est disposé dans une position opposée des côtés parallèles opposés de la partie 11 de noyau magnétique entre les parties 12A, B d'enroulement de bobine primaire et entre les parties 13A, B d'enroulement de bobine secondaire, qui est configuré de telle façon que de chacun des côtés opposés de la partie 11 de noyau magnétique, les parties 12A, B d'enroulement de bobine primaire et les parties 13A, B d'enroulement de bobine secondaire soient disposées avec une partie G d'écartement entre elles, et qui est inséré de la partie G d'écartement formée sur un des côtés opposés à la partie G d'écartement formée sur l'autre côté.
PCT/JP2021/015142 2020-04-22 2021-04-12 Transformateur llc à bobine de résonance intégrée WO2021215287A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2020076189A JP2021174830A (ja) 2020-04-22 2020-04-22 共振コイル内蔵型llcトランス
JP2020-076189 2020-04-22

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WO2021215287A1 true WO2021215287A1 (fr) 2021-10-28

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Publication number Priority date Publication date Assignee Title
JP2024067279A (ja) * 2022-11-04 2024-05-17 株式会社日立産機システム 静止電磁機器及び静止電磁機器を用いた双方向dc-dcコンバータ

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS50143028A (fr) * 1974-05-08 1975-11-18
JPS5599126U (fr) * 1978-12-28 1980-07-10
JPS63152220U (fr) * 1987-03-24 1988-10-06
JPH0222031U (fr) * 1988-07-27 1990-02-14
JPH10243656A (ja) * 1997-02-25 1998-09-11 Matsushita Electric Works Ltd 電源装置
JP3137948U (ja) * 2006-12-11 2007-12-13 光詮科技股▲フェン▼有限公司 トランス
JP2008060305A (ja) * 2006-08-31 2008-03-13 Toko Inc インバータトランス
JP2015153802A (ja) * 2014-02-12 2015-08-24 パナソニックIpマネジメント株式会社 コイル構造体及び電力変換装置
JP2016129174A (ja) * 2015-01-09 2016-07-14 レシップホールディングス株式会社 変圧器

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS50143028A (fr) * 1974-05-08 1975-11-18
JPS5599126U (fr) * 1978-12-28 1980-07-10
JPS63152220U (fr) * 1987-03-24 1988-10-06
JPH0222031U (fr) * 1988-07-27 1990-02-14
JPH10243656A (ja) * 1997-02-25 1998-09-11 Matsushita Electric Works Ltd 電源装置
JP2008060305A (ja) * 2006-08-31 2008-03-13 Toko Inc インバータトランス
JP3137948U (ja) * 2006-12-11 2007-12-13 光詮科技股▲フェン▼有限公司 トランス
JP2015153802A (ja) * 2014-02-12 2015-08-24 パナソニックIpマネジメント株式会社 コイル構造体及び電力変換装置
JP2016129174A (ja) * 2015-01-09 2016-07-14 レシップホールディングス株式会社 変圧器

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