The present invention relates to a voltage transforming apparatus, and particularly to a voltage transforming apparatus to be installed on an electric railcar that can run both in an AC section and in a DC section.
There has been developed an AC/DC electric railcar that can run both in an AC section where an AC voltage is supplied from, for example, an overhead wire, and in a DC section where a DC voltage is supplied from, for example, an overhead wire. Some conventional electric railcars may, for example, have a structure in which a reactor is arranged singly and separately from a transformer, and some may have a structure in which a transformer and a reactor are accommodated in a single-piece tank. In such AC/DC electric railcars, however, an apparatus for an AC section, such as a transformer, cannot be used in a DC section, and to the contrary, an apparatus for a DC section, such as a reactor, cannot be used in an AC section. Consequently, both of the apparatus for an AC section and the apparatus for a DC section are needed, however, there may be the difficulty in equipping such an AC/DC electric railcar with both of the apparatuses in the limited space, such as under the floor of a carbody.
Here, Japanese Patent Laying-Open No. 03-038807 discloses a shared shunt reactor type transformer unifying a transformer and a shunt reactor, which is formed of a bypass core provided at a portion of a yoke of the transformer and a gapped core and a reactor coil provided within the space surrounded by the portion of the yoke and the bypass core. Further, the bypass core forms a yoke of the reactor, as well as the winding direction of a coil of the transformer and the winding direction of a coil of the shunt reactor are directed such that the transformer magnetic flux in the portion of the yoke and the reactor magnetic flux cancel each other out.
Further, Japanese Patent Laying-Open No. 11-273975 discloses a common mode choke coil that is formed of first, second, third, and fourth coils of edgewise-wound rectangular wires, and a magnetic core forming a closed magnetic path in the shape of a hollow square. Further, the first and second coils are arranged at one magnetic leg of the magnetic core, the third and fourth coils are arranged at the other opposite magnetic leg, and the first and third coils as well as the second and fourth coils are connected in series. Line current cancels the magnetic fluxes generated at the first and second coils, the second and third coils, the third and fourth coils, the fourth and first coils, and urges the magnetic fluxes generated at the first and third coils and the second and fourth coils each other. Furthermore, the winding direction of each coil is set so that the respective magnetic fluxes generated at the first, second, third, and fourth coils are urged by current flowing in the same direction, the first and fourth coils are arranged in parallel, and the second and third coils are arranged in parallel.
In the configuration described in Japanese Patent Laying-Open No. 03-038807, however, a transformer and a reactor operate individually and, in the configuration described in Japanese Patent Laying-Open No. 11-273975, a common mode choke coil does not have a transformer function. Further, the dimension and the mass of a transformer to be installed on an electric railcar, which account for a large proportion of an apparatus for an AC section, degrade the performance of the electric railcar, because, in a DC section, the transformer is unable to be used and thus becomes a mere load.
Therefore, an object of the present invention is to provide, in an AC/DC electric railcar, a voltage transforming apparatus that operates in an AC section as a transformer, which is an apparatus for an AC section, and operates in a DC section as a reactor, which is an apparatus for a DC section, thereby to enable the equipping space of a carbody to be reduced.
A voltage transforming apparatus according to an aspect of the present invention includes a first high voltage side coil, a first low voltage side coil magnetically coupled to the first high voltage side coil, a second low voltage side coil magnetically coupled to the first high voltage side coil, and a first switch switching an externally supplied voltage between being supplied to the first low voltage side coil and the second low voltage side coil and being supplied to the first high voltage side coil. The first low voltage side coil and the second low voltage side coil are provided such that a magnetic flux generated by current flowing through the first low voltage side coil and a magnetic flux generated by current flowing through the second low voltage side coil cancel each other out when a voltage is supplied via the first switch.
The present invention in an AC/DC electric railcar can reduce the equipping space of a carbody by operating in an AC section as a transformer, which is an apparatus for an AC section, and by operating in a DC section as a reactor, which is an apparatus for a DC section. Further, a steady output can be obtained both in an AC section and in a DC section.
1 overhead wire, 2 pantograph, 3 high voltage side coil, 4A, 4B low voltage side coil, 5A, 5B converter, 6A, 6B inverter, 13A, 13B high voltage side coil, 14 core, 51 transformer, 101 voltage transforming apparatus, 201 AC/DC electric railcar, SW1, SW2A, SW2B, SW3, SW4A, SW4B, SW5A, SW5B, SW6A, SW6B, SW7A, SW7B switch, W1, W2 window portion.
An embodiment of the present invention will be described hereinafter with reference to the drawings. In the drawings, the same or corresponding elements have the same reference characters allotted, and description thereof will not be repeated.
Configuration and Basic Operation
Referring to
Pantograph 2 is connected to an overhead wire 1. Switch SW1 has a first end connected to pantograph 2 and a second end connected to a first end of high voltage side coil 13A and a first end of high voltage side coil 13B. Switch SW2A has a first end connected to pantograph 2 and a second end connected to a first end of low voltage side coil 4A. Switch SW2B has a first end connected to pantograph 2 and a second end connected to a second end of low voltage side coil 4B. Switch SW3 has a first end connected to a second end of high voltage side coil 13A and a second end connected to a second end of high voltage side coil 13B.
Switch SW4A has a first end connected to the first end of low voltage side coil 4A and a second end connected to a first input terminal of converter 5A. Switch SW4B has a first end connected to the second end of low voltage side coil 4B and a second end connected to a second input terminal of converter 5B. Switch SW5A has a first end connected to a second end of low voltage side coil 4A, a second end connected to a second input terminal of converter 5A, and a third end. Switch SW 5B has a first end connected to a first end of low voltage side coil 4B, a second end connected to a first input terminal of converter 5B, and a third end. Switch SW6A has a first end connected to a first output terminal of converter 5A, a second end connected to a first input terminal of inverter 6A, and a third end connected to the third end of switch SW5A. Switch SW6B has a first end connected to a first output terminal of converter 5B, a second end connected to a first input terminal of inverter 6B, and a third end connected to the third end of switch SW5B. Switch SW7A has a first end connected to a second output terminal of converter 5A, a second end connected to a second input terminal of inverter 6A, and a third end connected to a ground node to which a ground voltage is supplied. Switch SW7B has a first end connected to a second output terminal of converter 5B, a second end connected to a second input terminal of inverter 6B, and a third end connected to the ground node to which the ground voltage is supplied.
Referring to
High voltage side coils 13A and 13B and low voltage side coils 4A and 4B are wound around in such a manner that they run through window portions W1 and W2.
High voltage side coil 13A is provided at a position between low voltage side coil 4A and low voltage side coil 4B and opposite to low voltage side coil 4A, and magnetically coupled to low voltage side coil 4A.
High voltage side coil 13B is connected in parallel to high voltage side coil 13A, provided at a position between low voltage side coil 4A and low voltage side coil 4B and opposite to low voltage side coil 4B, and magnetically coupled to low voltage side coil 4B.
Referring again to
Switch SW3 is connected between high voltage side coil 13A and high voltage side coil 13B and switches a closed circuit including high voltage side coil 13A and high voltage side coil 13B between being formed and not being formed.
Converter 5A converts an AC voltage appearing on low voltage side coil 4A into a DC voltage. Converter 5B converts an AC voltage appearing on low voltage side coil 4B into a DC voltage.
Switches SW4A and SW5A switch low voltage side coil 4A between being connected to converter 5A and being connected via switch SW6A to inverter 6A. Switches SW4B and SW5B switch low voltage side coil 4B between being connected to converter 5B and being connected via switch SW6B to inverter 6B.
Inverter 6A converts a DC voltage received from converter 5A or a DC voltage received via switch SW5A from low voltage side coil 4A into a three-phase AC voltage, and outputs it to motor MA. Inverter 6B converts a DC voltage received from converter 5B or a DC voltage received via switch SW5B from low voltage side coil 4B into a three-phase AC voltage, and outputs it to motor MB.
Motor MA is driven based on the three-phase AC voltage received from inverter 6A. Motor MB is driven based on the three-phase AC voltage received from inverter 6B.
Operation
An operation of the voltage transforming apparatus according to an embodiment of the present invention in an AC section will now be described.
Referring to
First, an AC voltage is supplied from overhead wire 1 to pantograph 2. The AC voltage supplied from overhead wire 1 is applied to high voltage side coils 13A and 13B via pantograph 2 and switch SW1. Then, AC current IH flows through high voltage side coils 13A and 13B each.
In either cases of
Referring again to
Here, since the number of turns of low voltage side coils 4A and 4B is smaller than the number of turns of high voltage side coils 13A and 13B, respectively, an AC voltage, which is stepped down from the AC voltage applied to high voltage side coils 13A and 13B, appears on low voltage side coils 4A and 4B, respectively.
The AC voltage appearing on low voltage side coil 4A is supplied to converter 5A via switches SW4A and SW5A. Further, the AC voltage appearing on low voltage side coil 4B is supplied to converter 5B via switches SW4B and SW5B.
Converter 5A converts the AC voltage supplied from low voltage side coil 4A into a DC voltage, and outputs it via switches SW6A and SW7A to inverter 6A. Further, converter 5B converts the AC voltage supplied from low voltage side coil 4B into a DC voltage, and outputs it via switches SW6B and SW7B to inverter 6B.
Inverter 6A converts the DC voltage received from converter 5A into a three-phase AC voltage, and outputs it to motor MA. Further, inverter 6B converts the DC voltage received from converter 5B into a three-phase AC voltage, and outputs it to motor MB.
Motor MA rotates based on the three-phase AC voltage received from inverter 6A. Further, motor MB rotates based on the three-phase AC voltage received from inverter 6B.
In transformer 51, low voltage side coils 4A and 4B are arranged at both sides of high voltage side coil 13. Further, high voltage side coil 13 includes separate high voltage side coils 13A and 13B. Such a configuration enables low voltage side coils 4A and 4B to be magnetically loosely coupled.
That is, since there is no overlap between the leakage magnetic fluxes generated in respective low voltage side coils 4A and 4B, i.e. the short-circuit impedances, as shown in
An operation of the voltage transforming apparatus according to an embodiment of the present invention in a DC section will now be described. First, description will be made under the assumption that the AC/DC electric railcar according to an embodiment of the present invention does not have switch SW3.
Referring to
Referring to
Here, the second end of switch SW2A is connected to the first end of low voltage side coil 4A, and the second end of switch SW2B is connected to the second end of low voltage side coil 4B. Accordingly, the direction of current ILA flowing through low voltage side coil 4A when a voltage is supplied via switch SW2A and the direction of current ILB flowing through low voltage side coil 4B when a voltage is supplied via switch SW2B are opposite. That is, magnetic flux FLA generated by current ILA flowing through low voltage side coil 4A and magnetic flux FLB generated by current ILB flowing through low voltage side coils 4B cancel each other out. Since such a configuration can prevent magnetic saturation of core 14, the leakage magnetic flux can be reduced.
In either cases of
Then, the DC voltage applied to low voltage side coil 4A is supplied to inverter 6A via switches SW5A and SW6A. Further, the DC voltage applied to low voltage side coil 4B is supplied to inverter 6B via switches SW5B and SW6B.
Inverter 6A converts the DC voltage received from low voltage side coil 4A into a three-phase AC voltage, and outputs it to motor MA. Further, inverter 6B converts the DC voltage received from low voltage side coil 4B into a three-phase AC voltage, and outputs it to motor MB.
Motor MA rotates based on the three-phase AC voltage received from inverter 6A. Further, motor MB rotates based on the three-phase AC voltage received from inverter 6B.
When DC current flows through low voltage side coils 4A and 4B, no inductance is generated because there is no change in the generated main magnetic fluxes FLA and FLB. When, however, the DC current flowing through low voltage side coils 4A and 4B includes a pulsating current component, i.e. an AC component, leakage magnetic flux F as shown in
The voltage transforming apparatus illustrated in
Then, these currents IHLKA and IHLKB cause leakage magnetic fluxes FHLKA and FHLKB to be generated, respectively. Then, since these leakage magnetic fluxes FHLKA and FHLKB cancel out leakage magnetic fluxes FLLKA and FLLKB, respectively, the inductance in low voltage side coils 4A and 4B is decreased.
Thus, in the voltage transforming apparatus according to an embodiment of the present invention, a configuration with switch SW3 solves the problems as noted above.
Referring to
A graph G1 shows the case where magnetic saturation occurred in the core. In graph G1, the inductance has changed depending on the change in current flowing through low voltage side coils 4A and 4B.
In transformer 51, a pulsating current component in current flowing through low voltage side coils 4A and 4B, i.e. AC current causes a magnetic flux to be generated. Since such a configuration does not change the generated magnetic flux in response to the change in the DC current flowing through low voltage side coils 4A and 4B, a stable inductance as shown in a graph G2 can be obtained.
Meanwhile, in an AC/DC electric railcar, an apparatus for an AC section, such as a transformer and an apparatus for a DC section, such as a reactor are both needed, however, there may be the difficulty in equipping the AC/DC electric railcar with both of the apparatuses in the limited space, such as under the floor of a carbody.
In a voltage transforming apparatus according to an embodiment of the present invention, however, several switches are added to a transformer for an AC section to enable a low voltage side coil to also be used as a DC reactor. Therefore, there is no need to arrange a reactor apparatus singly and separately from the transformer, and a reduction in the size can be achieved. Furthermore, in a voltage transforming apparatus according to an embodiment of the present invention, low voltage side coil 4A and low voltage side coil 4B are provided such that a magnetic flux generated by current flowing through low voltage side coil 4A when a voltage is supplied from overhead wire 1 via switch SW2A and a magnetic flux generated by current flowing through low voltage side coil 4B when a voltage is supplied from overhead wire 1 via switch SW2B cancel each other out. Since such a construction can prevent a magnetic saturation of core 14 in a DC section, a steady output can be obtained. Further, since it is unnecessary to take measures to reduce leakage magnetic fluxes into a carbody of an AC/DC electric railcar, a reduction in the weight and the cost of an AC/DC electric railcar can be achieved.
Therefore, in an AC/DC electric rail car, a voltage transforming apparatus according to an embodiment of the present invention operates in an AC section as a transformer, which is an apparatus for an AC section, and operates in a DC section as a reactor, which is an apparatus for a DC section, thereby to enable the equipping space of a carbody to be reduced. Further, a stable output can be obtained both in a DC section and in an AC section.
It should be construed that embodiments disclosed herein are by way of illustration in all respects, not by way of limitation. It is intended that the scope of the present invention is defined by claims, not by the above description, and includes all modifications equivalent in meaning and scope to the claims.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2008/053822 | 3/4/2008 | WO | 00 | 5/21/2010 |