Auxiliary power source device for vehicle
09845011 · 2017-12-19
Assignee
Inventors
Cpc classification
B60L9/14
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60L15/32
PERFORMING OPERATIONS; TRANSPORTING
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
B60L9/30
PERFORMING OPERATIONS; TRANSPORTING
B60L1/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60L1/00
PERFORMING OPERATIONS; TRANSPORTING
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
B60L9/30
PERFORMING OPERATIONS; TRANSPORTING
B60L15/32
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An auxiliary power source device for a vehicle is incorporated in an electric vehicle and includes a three-phase inverter that converts an input DC voltage into a desired three-phase AC voltage and applies the three-phase AC voltage to a load. The auxiliary power source device further includes a filter reactor that is connected to respective output terminals of a three-phase inverter, a filter capacitor that is connected in a Y-shape at an end on a load side of the filter reactor and is not grounded at a neutral point, and a three-phase transformer that includes primary windings that are connected in a Y-shape at the end on the load side of the filter reactor and is grounded at a neutral point and secondary windings that are connected in a delta shape.
Claims
1. An auxiliary power source device for a vehicle incorporated in an electric vehicle, the auxiliary power source device comprising: a three-phase inverter that converts an input DC voltage into a desired three-phase AC voltage and applies the three-phase AC voltage to one end side of a load; a filter reactor that is connected to respective output terminals of the three-phase inverter; a filter capacitor that is connected in a Y-shape at an end on a load side of the filter reactor and is not grounded at a neutral point; and a three-phase transformer that includes primary windings that are connected in a Y-shape at the end on the load side of the filter reactor and grounded at a neutral point and secondary windings that are connected in a delta shape, wherein the neutral point of the primary windings is connected to an opposite end side of the load, and the secondary windings are connected to the neutral point of the primary windings via a connecting wire.
2. The auxiliary power source device for a vehicle according to claim 1, wherein any one of connection terminals between the secondary windings connected in the delta shape is grounded.
3. The auxiliary power source device for a vehicle according to claim 1, wherein AC power from an AC overhead wire is supplied to the electric vehicle.
4. The auxiliary power source device for a vehicle according to claim 1, wherein DC power from a DC overhead wire is supplied to the electric vehicle.
5. The auxiliary power source device for a vehicle according to claim 1, wherein the connecting wire is continuous between the secondary windings and the neutral point of the primary windings.
6. The auxiliary power source device for a vehicle according to claim 1, wherein the secondary windings are directly connected to the neutral point of the primary windings via the connecting wire.
7. The auxiliary power source device for a vehicle according to claim 1, wherein the filter reactor is directly connected to the load.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DESCRIPTION OF EMBODIMENTS
(7) Exemplary embodiments of an auxiliary power source device for a vehicle according to the present invention will be explained below in detail with reference to the accompanying drawings. The present invention is not limited to the embodiments.
(8) (Embodiment)
(9)
(10) One end of the input circuit 2 is connected to an overhead wire 10 via a power collector 11 and the other end thereof is connected to a rail 12 via a wheel 13, where the potential of the rail 12 is at the same level as a ground potential. DC power or AC power supplied from the overhead wire 10 is input to one end of the input circuit 2 via the power collector 11, and power (a DC voltage) generated at the output terminal of the input circuit 2 is input (applied) to the three-phase inverter 3.
(11) The three-phase inverter 3 is provided at the output terminal of the input circuit 2, and converts a DC voltage applied from the input circuit 2 into an AC voltage with an arbitrary frequency and an arbitrary voltage and outputs the AC voltage.
(12) The filter reactor 5 is configured to include three reactors that are respectively inserted in three-phase output lines 4 connecting the three-phase inverter 3 and the single-phase load 8, so that one ends are connected to an output terminal of the three-phase inverter 3 and the other ends are connected to the single-phase load 8. The filter capacitor 6 is configured to include three capacitors in which respective ends are connected to each other and the other ends are connected to any one of phases of the three-phase output lines 4 positioned on the other end side (a load side) of the filter reactor 5 so as to be connected in a Y-shape. The filter reactor 5 and the filter capacitor 6 function as filter circuits due to actions of both elements.
(13) The three-phase transformer 7 is configured to include primary windings 7a1 to 7a3 and secondary windings 7b1 to 7b3. Similarly to respective other ends of the filter capacitor 6, respective one ends of the primary windings 7a1 to 7a3 are connected to any one of phases of the three-phase output lines 4 positioned on the other end side of the filter reactor 5, and respective other ends of the primary windings 7a1 to 7a3 are connected to each other so as to be connected in a Y-shape. On the other hand, as for the secondary windings 7b1 to 7b3, adjacent ones of these windings are connected to each other so as to be connected in a delta shape. Accordingly, the three-phase transformer 7 is a three-phase transformer configured in a shape of so-called “Y-delta connection”.
(14) Further, in the three-phase transformer 7, the respective other ends of the primary windings 7a1 to 7a3 connected to each other in a Y-shape are grounded at a ground potential. Similarly, a connection terminal (in the example of
(15) While operations of the auxiliary power source device for a vehicle according to the present embodiment are explained next, operations according to a conventional technique are explained first as a comparison to the fact that the auxiliary power source device for a vehicle according to the present embodiment has remarkable effects.
(16)
(17) In this example, in the auxiliary power source device for a vehicle configured as shown in
(18) In this manner, according to the configuration of the conventional technique, as also described in the section of “Solution to Problem”, in a filter capacitor that has a grounding function of an output stage, a property that is greater than the current capacity originally required for a filtering function is required, and this requirement leads to cost increase and size increase of the filter capacitor.
(19)
(20) As is obvious from the above explanations of operations, as for the current capacity of the three-phase transformer 7, it is only necessary to provide a capacity that matches an assumed amount of an unbalanced current, and therefore, as compared to conventional techniques, downsizing and cost reduction can be achieved.
(21) In the configuration of
(22)
(23) In the case of an AC overhead wire, as shown in
(24) While configurations of providing single-phase converters are shown in
(25) As explained above, in the auxiliary power source device for a vehicle according to the present embodiment, there is provided a filter reactor that is connected to respective output terminals of a three-phase inverter, a filter capacitor that is connected in a Y-shape at an end on a load side of the filter reactor and a neutral point is not grounded, and a three-phase transformer including primary windings that are connected in a Y-shape at the end on the load side of the filter reactor and a neutral point is grounded and secondary windings that are connected in a delta shape. Therefore, even when a single-phase load is connected as a load, it is possible to obtain an effect that a filter capacitor having a filtering function is not imposed to have a property that is greater than the current capacity originally required for a filter function.
(26) In the configurations described above, it is possible to stabilize the potential of secondary windings as long as any one of connection terminals between secondary windings connected in a delta shape is grounded.
INDUSTRIAL APPLICABILITY
(27) As described above, the present invention is useful as an auxiliary power source device for a vehicle that does not impose, on a filter capacitor having a filtering function, a property that is greater than the current capacity originally required for a filter function.
REFERENCE SIGNS LIST
(28) 1 auxiliary power source device for vehicle
(29) 2, 2A, 2B, 2C input circuit
(30) 3 three-phase inverter
(31) 4 three-phase output line
(32) 5 filter reactor
(33) 6 filter capacitor
(34) 7 three-phase transformer
(35) 7a1 to 7a3 primary winding
(36) 7b1 to 7b3 secondary winding
(37) 8 single-phase load
(38) 9, 20 connecting wire
(39) 10 overhead wire
(40) 11 power collector
(41) 12 rail
(42) 13 wheel
(43) 21, 23, 27 transformer
(44) 22, 24, 28 single-phase converter
(45) 25, 26 single-phase inverter