Differential mode and common mode choke

09741486 ยท 2017-08-22

Assignee

Inventors

Cpc classification

International classification

Abstract

The invention relates to a differential mode and common mode choke comprising: a ferromagnetic core comprising three branches (1, 2, 3) extending between a bottom part (5) and a top part (4), a first coil (b1) wound around the first lateral branch (1), a second coil (b3) wound around the second lateral branch (3), the first lateral branch (1) being separated from the top part (4) by a first air gap (e1) and from the bottom part (5) by a second air gap (e10), the second lateral branch (3) being separated from the top part (4) by a first air gap (e3) and from the bottom part (5) by a second air gap (e30), the central branch (2) being separated from the top part (4) by a first air gap (e2) and from the bottom part (5) by a second air gap (e20).

Claims

1. A differential mode and common mode choke comprising: a ferromagnetic core comprising three branches extending between a bottom part and a top part, said three branches comprising a first lateral branch, a second lateral branch, and a central branch; a first coil wound around the first lateral branch; and a second coil wound around the second lateral branch, wherein the first lateral branch is separated from the top part by a first air gap and from the bottom part by a second air gap, the second lateral branch is separated from the top part by a third air gap and from the bottom part by a fourth air gap, the central branch does not support a coil and is separated from the top part by a fifth air gap and from the bottom part by a sixth air gap, the first lateral branch and the second lateral branch are of a same size, and the central branch, which does not support a coil and which is separated from the top part by the fifth air gap and from the bottom part by the sixth air gap, is of a different size from the size of the first lateral branch and the second lateral branch, said first coil has a first inductance value, said second coil has a second inductance value, equal to the first inductance value, a differential mode magnetic flux passes through the top part, the second lateral branch, the bottom part, and the first lateral branch, and a common mode magnetic flux circulates through each of the first lateral branch and the second lateral branch, toward the central branch by passing through the top part and the bottom part, and the first coil and the second coil is arranged to uncouple a common mode inductance value from a differential mode inductance value.

2. The differential mode and common mode choke according to claim 1, wherein the first lateral branch and the second lateral branch are manufactured by stacking magnetic plates.

3. The differential mode and common mode choke according to claim 1, wherein the first lateral branch and the second lateral branch are manufactured by machining or casting magnetic material.

4. The differential mode and common mode choke according to claim 1, wherein the central branch is manufactured by stacking magnetic plates.

5. The differential mode and common mode choke according to claim 1, wherein the central branch is manufactured by machining or casting magnetic material.

6. The differential mode and common mode choke according to claim 1, wherein the top part and the bottom part are manufactured by stacking magnetic plates.

7. The differential mode and common mode choke according to claim 1, wherein the top part and the bottom part are manufactured by machining or casting magnetic material.

8. The differential mode and common mode choke according to claim 1, wherein the first lateral branch, the second lateral branch, and the central branch are independent in relation to the top part and the bottom part.

9. A power converter intended to be connected to an electrical load and comprising: a DC power supply bus provided with a first power supply line and a second power supply line; a bus capacitor connected to the first power supply line and to the second power supply line and intended to keep a DC voltage constant on the DC power supply bus; an inverter connected to the DC power supply bus, downstream of the bus capacitor, and intended to convert the DC voltage into a variable voltage to be applied to the electrical load; and a differential mode and common mode choke including a ferromagnetic core comprising three branches extending between a bottom part and a top part, said three branches comprising a first lateral branch, a second lateral branch, and a central branch, a first coil wound around the first lateral branch, and a second coil wound around the second lateral branch, wherein the first lateral branch is separated from the top part by a first air gap and from the bottom part by a second air gap, the second lateral branch is separated from the top part by a third air gap and from the bottom part by a fourth air gap, the central branch does not support a coil and is separated from the top part by a fifth air gap and from the bottom part by a sixth air gap, the first lateral branch and the second lateral branch are of a same size, and the central branch, which does not support a coil and which is separated from the top part by the fifth air gap and from the bottom part by the sixth air gap, is of a different size from the size of the first lateral branch and the second lateral branch, said first coil has a first inductance value, said second coil has a second inductance value, equal to the first inductance value, the first coil being connected in series to the first power supply line and the second coil being connected in series to the second power supply line, said first coil is wound around the first lateral branch and connected to the first power supply line so as to generate a first common mode magnetic flux in a given direction in the central branch and a first differential mode magnetic flux in a given direction in the central branch, said second coil is wound around the second lateral branch so as to generate a second common mode magnetic flux identical to the first common mode magnetic flux and circulating in the central branch, in the same direction as that of the first common mode magnetic flux, and a second differential mode magnetic flux in the central branch in a direction opposite to the direction of the first differential mode magnetic flux, creating a zero resultant differential mode flux in the central branch, and the first coil and the second coil is arranged to uncouple a common mode inductance value from a differential mode inductance value.

10. The power converter according to claim 9, wherein the first lateral branch and the second lateral branch are manufactured by machining or casting magnetic material, the central branch is manufactured by machining or casting magnetic material, and the top part and the bottom part are manufactured by machining or casting magnetic material.

Description

BRIEF DESCRIPTION OF THE FIGURES

(1) Other features and advantages will become apparent from the following detailed description in light of the appended drawings in which:

(2) FIGS. 1A and 1B represent two choke architectures known from the prior art,

(3) FIG. 2 represents the choke of the invention and shows the paths of the common mode and differential mode magnetic fluxes in said choke,

(4) FIG. 3 represents a power converter equipped with the choke of the invention.

DETAILED DESCRIPTION OF AT LEAST ONE EMBODIMENT

(5) FIGS. 1A and 1B represent choke architectures known from the prior art and already described above.

(6) With reference to FIG. 2, the choke of the invention allows for a differential mode filtering and a common mode filtering. Moreover, it offers the advantage of being able to set the value of the common mode inductance independently of the value of the differential mode inductance. The choke of the invention comprises a ferromagnetic core in a FIG. 8 shape (lying down in FIG. 2). It thus comprises a top part 4, a bottom part 5 and three lateral branches 1, 2, 3 extending between the top part 4 and the bottom part 5. The three branches are thus arranged between the top part and the bottom part so as to have a first lateral branch 1, a second lateral branch 3 and a central branch 2.

(7) Preferentially, the first lateral branch 1 and the second lateral branch 3 are identical and are therefore of one and the same thickness. The central branch 2 can have a variable size depending on the EMC (electromagnetic compatibility) requirements of the electrical appliance accommodating it. The central branch 2 can thus have a size which ranges from 0 to 100% of the size of the lateral branches 1, 3.

(8) According to the invention, the first lateral branch 1 is separated from the top part 4 by a first air gap e1 and from the bottom part 5 by a second air gap e10.

(9) The second lateral branch 3 is separated from the top part 4 by a first air gap e3 and from the bottom part 5 by a second air gap e30.

(10) The central branch 2 is separated from the top part 4 by a first air gap e2 and from the bottom part 5 by a second air gap e20.

(11) According to the invention, the three branches 1, 2, 3 are therefore independent in relation to the top 4 and bottom 5 parts. It is therefore easy to adjust their size independently and therefore set the value of the inductance of the filtering performed by each of them. Moreover, by producing them independently, it is possible to manufacture them according to different methods, minimizing the material waste. The three branches 1, 2, 3 of the choke will thus be able to be manufactured by assembling magnetic plates or by machining or casting a magnetic material. Similarly, the top part 4 and the bottom part 5 will be able to be manufactured by assembling magnetic plates or by machining or casting a magnetic material.

(12) According to the invention, a first coil b1 is wound around the first lateral branch and a second coil b3 is wound around the second lateral branch. The central branch does not support any coil (FIG. 2). According to the invention, the first coil b1 has an inductance value equal to the inductance value of the second coil b2.

(13) The choke of the invention will notably be adapted for connection to a power converter, of the variable speed drive type. Referring to FIG. 3, a power converter comprises: a DC power supply bus supplied by a DC voltage source. The DC power supply bus comprises a first power supply line L1 and a second power supply line L2. One of these two power supply lines has a positive electrical potential and the other of these two power supply lines has a negative electrical potential, a bus capacitor Cbus intended to keep the voltage of the bus Vbus at a constant value and connected to the first power supply line L1 and to the second power supply line L2, an inverter module INV connected downstream of the DC power supply bus and intended to convert the DC voltage present on the bus into a variable voltage intended for the electrical load. The inverter module INV comprises a plurality of switching arms each comprising at least two power transistors.

(14) A power converter of variable speed drive type also comprises, upstream of the bus capacitor Cbus, a rectifier module REC connected to an electrical distribution network R and intended to rectify an AC voltage supplied by the electrical distribution network R and to apply the DC voltage to the DC power supply bus.

(15) According to the invention, the power converter comprises a choke of the invention, connected to the DC power supply bus, upstream of the bus capacitor Cbus. The choke is connected to the DC power supply bus in such a way that its first coil b1 is connected in series to the first power supply line L1 and its second coil b3 is connected in series to the second power supply line L2.

(16) Thus, referring to FIG. 2, the first coil b1 is wound around the first lateral branch 1 and connected to the first power supply line L1 in such a way as to be able to generate a first common mode magnetic flux in the first lateral branch and in a given direction in the central branch 2, and a first differential mode magnetic flux in a given direction in the central branch 2. The second coil is wound around the second lateral branch 3 in such a way as to be able to generate a second common mode magnetic flux identical to the first common mode magnetic flux and circulating in the second lateral branch 3 and in the central branch 2, in the same direction as that of the first common mode magnetic flux, and a second differential mode magnetic flux in the central branch 2 in a direction opposite to the direction of the first differential mode magnetic flux, creating a zero resultant differential mode flux in the central branch 2.

(17) Referring to FIG. 2, the differential mode magnetic flux F_md thus passes through the top part 4, the second lateral branch 3, the bottom part 5 and the first lateral branch 1. The common mode flux F_mc circulates through each lateral branch towards the central branch by passing through the top part and the bottom part.

(18) The central branch is therefore dedicated solely to the common mode and to the EMC management. Thus, the arrangement and the wiring of the coils make it possible to uncouple the common mode inductance value from the differential mode inductance value.

(19) The particular arrangement of the choke of the invention with independent branches thus makes it possible to be able to easily set the inductance values by acting on the size of the branches and on the air gaps present between the branches and the top and bottom parts and therefore to adapt the architecture of the choke to the desired application.