The present invention relates to a power supply system or the like which can be applied to a circuit for performing leveling or the like for a voltage of each of single cells forming a battery pack (high voltage battery).
Recently, electric vehicles in which a motor is installed and hybrid vehicles in which both engine and motor are installed have attracted attentions. These vehicles also include a secondary battery for storing an electric power to be supplied to the motor for travelling. These secondary batteries are formed as a battery pack including a lot of single cells of, for example, lithium ion batteries in combination. It is desirable that a voltage of each of the single cells forming the battery pack is even (leveled). However, voltages of respective single cells may have different values due to individual differences between the single cells, nonuniformity in temperature, etc. within a box housing the battery pack.
From the aforementioned descriptions, a leveling circuit for adjusting voltages of the respective single cells to level the voltages of the respective single cells is known. “A charge and discharge device” in Patent document 1 filed by the inventor of this application is known as the leveling circuit. According to Patent document 1, the voltages of the respective single cells can be leveled (normalized) such that one single cell (module) having a higher voltage is discharged and another single cell having a over voltage is charged. In addition, the technology of Patent document 1 was made in which an operation power supply had been studied for the leveling circuit (charge and discharge circuit) for each of the single cells, The operation power supply for the leveling circuit is not a high voltage power supply (battery pack), but a lots voltage power supply (battery of 12 volts) to avoid power leakage from the battery pack in the vehicle not operating.
However, even while the vehicle is not operating, i.e., an ignition switch is OFF, in the battery pack, self discharge or the like necessarily occurs. The self discharge increases dispersion in voltage among the respective single cells, which may invite decrease in SOC (Status Of Charge) at the next operating the vehicle or run out of charge (corresponding to run out of fuel). More specifically, in Patent document 1, the power supply for operating the leveling circuit was studied. However, there is still a potentiality in improvement for time while the ignition switch is OFF.
Accordingly, the present invention aims to provide a power supply system or the like capable of adequately leveling voltages of the respective single cells forming a battery pack (high voltage battery) even when the ignition switch is OFF.
To achieve the aforementioned aim, the inventor has studied hard and completed the present invention in which the aforementioned problem can be solved by using solar cells for the respective single cells. That is, the present invention that has solved the aforementioned problem (claim 1) is a power supply system for a vehicle which includes: a high voltage battery, including a plurality of single cells in combination capable of being charged for supplying an operation power to a motor for travelling, a low voltage battery for supplying an operation power for a control unit and an accessory electrical unit, and a leveling circuit for averaging the voltages of the respective single cells haying dispersion in the high voltage battery.
This power supply system includes;
(1) a solar cell on a vehicle;
(2) a regulator for adjusting a voltage of the solar cell to be approximately equal to a voltage of the low voltage battery;
(3) a converter for converting an output voltage of the regulator and the output voltage of the low voltage battery into the operation voltage of the averaging circuit; and
(4) a connection circuit for connecting the solar cell to the low voltage battery in parallel through the regulator as well as connecting the solar cell to the leveling circuit through the converter disposed on a side downstream from a junction point between the low voltage battery and the solar cell through the converter.
The configuration Is provided to enable the solar cells to supply an electric power to the leveling circuit when the startup switch for the vehicle is OFF, i.e., inactive.
According to this configuration, while the vehicle is inactive (when the ignition switch is OFF), when the solar cells generate an electric power, the electric power is supplied to the leveling circuit to level the voltages of the respective single cells in the high voltage battery.
In addition, the present invention (claim 2) that has solved the aforementioned problem, in the invention of claim 1, (1) a connection circuit includes a first switch for connecting to and disconnecting the leveling circuit from the solar cells, and (2) the electric power is supplied from the solar cells to the leveling circuit by controlling the first switch when the vehicle is inactive and the solar cells generate the electric power.
According to this configuration, because the control circuit switches the first switch, the electric power is supplied to the leveling circuit from the solar cells. In addition, a current flow from the low voltage battery to the solar cells (reverse flow) is avoided.
In addition, in the present invention (claim 3) that has solved the aforementioned problem, in the invention as claimed in claim 1 or 2, the solar cell is installed an exterior top face of the vehicle. The high voltage power supply unit including a high voltage battery, a converter, and the leveling circuit and further including a low voltage power supply input terminal is installed in a cabin of the vehicle such as at a trunk part or on or under a floor face of the vehicle. The solar cell is connected to the high voltage power supply unit with a low voltage circuit unit with a low voltage wirings grounded to the body of the vehicle.
According to the configuration, the solar cells are arranged at a place where it is possible to sufficiently receive the sun ray. On the other hand, the high voltage battery is arranged in a lower portion of vehicle, because it is superior for weight balancing. In addition, the solar cells on, a top exterior of the vehicle is connected to the high voltage battery with to low voltage circuit grounded at the body of the vehicle, a higher degree of freedom in wiring or the like is provided than the high voltage circuit, so that a protection member for protecting wirings can be saved.
In addition, in the present invention (claim 4) that has been solved the aforementioned problem, the converter is of an isolated type DC-DC converter in any of claims 1 to 3.
According to the configuration, isolation between the high voltage part and the low voltage part can be surely provided.
In addition, the present invention that has solved the aforementioned problem (claim 5) is an electric vehicle including the power supply system of any of claims 1 to 3.
According to the configuration, even while the electric vehicle is left for a long period with the ignition switch being turned OFF, leveling the respective single cells in the high voltage battery can he performed with the sun light.
According to the present invention, regarding the operation power supply for the leveling circuit, a power supplying system capable of adequately leveling the voltages of the respective single cells forming the battery pack even when the ignition switch is OFF can be provided.
Hereinbelow, with reference to the attached drawings will be described in detail embodiments of the power supply system and an electric vehicle of the present invention (hereinafter referred to as “embodiments”).
With reference to
As shown in
In addition, regarding a layout of the devices, the high voltage power supply unit 2 is disposed at a lower part of the vehicle V in consideration of weight balance. The high voltage power supply unit 2 is connected to the solar cell unit Ii with a low voltage wiring L (a low voltage circuit) grounded at the body of the vehicle, the high voltage power supply unit 2 is connected to the inverter 3 with a high voltage wiring H. More specifically, as shown in
Details of the solar cell unit 11 and the power supply system 1 (see
In addition, as shown in
In addition, the high voltage battery HB is formed as a battery pack for a high voltage of about several hundreds of volts provided by connecting single cells such as lithium ion batteries in series. In the high voltage battery HB, voltage of the respective single cells have dispersion in voltages thereof depending on individual differences between single cells, and a place on which the single cell is placed within the high voltage supply unit 2. Because the dispersion in the voltage is not desirable, the voltages of the respective single cells are leveled with the leveling circuit 22.
In addition, the aforementioned high voltage power supply unit 2 is configured with the high voltage battery HB, the isolated type of DC-DC converter 21, and the leveling circuit 22, etc, out of the elements shown on a right side of
In addition, in
Because the leveling circuit 22 is the same as that disclosed in Patent document 1 (JP 2009-165206) filed in Japan by the same inventor who is the same person as this application, a detailed description will be omitted. However, the leveling circuit 22 performs leveling the voltage of the respective single cells (each module) using the electric power from the 12-V battery when the ignition switch (activating switch) is ON and as the electric power from the solar cell unit 11 when the ignition switch is OFF. In addition the leveling circuit 22 monitors voltages of the respective single cells, and voltages of the modules provided by combination of the single cells and performs leveling the voltages on the basis of the monitored voltages.
With reference
The control circuit 13 is configured with a microcomputer or the like and has a function for controlling operation of the first switch SW1 and the second switch SW2. The control circuit 13 controls the first switch SW1 and the second switch SW2 while the vehicle V is inactive (when the ignition switch is OFF) and the solar cell unit 11 generates an electric power, to supply the electric power to the leveling circuit 22 from the solar cell unit 11.
The first switch SW1 is a switch for connection (ON) and cutting off (OFF) between the solar cell unit 11 and the leveling circuit and operated in response to the signal from the control circuit 13. In addition, the second switch SW2 is a switch for connecting the 12V-battery LB to the leveling circuit 22 (ON) and cutting of (OFF) which is operated in response to the signal from the control circuit 13.
As shown in
Hereinbelow will be described an operation of the power supply system 1.
At first, when the ignition switch is ON, the control circuit 13 to turns the first switch SW1 OFF to stop the electric power to be supplied to the leveling circuit 22 from the solar cell unit 11, on the other hand, turns the second switch SW2 ON to allow the electric power from the 12V-battery LB to be supplied to the leveling circuit 22 through the isolated type DC-DC converter. Accordingly, when the ignition switch is ON, the leveling circuit 22 operates with the electric power from the 12V-battery LB. In addition, the high voltage part and the low voltage part are separated with the isolated type of DC-DC converter 21.
Next, when the ignition switch is OFF, the control circuit 13 turns the first switch SW1 ON, on the other hand, turns the second switch SW2 OFF. This allows the electric power generated by the solar cell unit 11 to be supplied to the leveling circuit 22 through the isolated type of DC-DC converter 21 after the voltage is adjusted to a constant voltage of about 12 V with the regulator 12. Accordingly, when the ignition switch is OFF, the leveling circuit 22 operates with the electric power generated from the natural energy supplied from the solar cell unit 11.
In addition, because the operation of the leveling circuit 22 is the same as Patent document 1, a detailed description will be omitted. For example, a storage capacitor can be increased as a whole of the high voltage battery by charging a single cell having a lowest voltage sequentially.
According to the embodiment, the electric power of the high voltage battery HB or the 12V-battery LB are not consumed only for operation of the leveling circuit 22 to level the respective single cell of Lb e high voltage battery HB or the modules. Accordingly, though the vehicle V is left unused for a long period, the power supply system 1 can adequately perform the leveling the single cells forming the battery pack (the high voltage battery HB). In other words, the power leakage from the high voltage battery HB, which was a problem where the high voltage battery HB is used as an operation power supply for the leveling circuit 22, while the vehicle V is left and not operating can prevented. In addition, it is adequately prevented that the decrease in a remaining quantity of the whole of the battery pack (the high voltage battery HB) due to the self discharge when the ignition switch is OFF and increase in dispersion of the remaining quantity due to differences in a self discharge characteristic among the respective single cells (unbalance of charging statuses), which became problems while the 12V-battery LB was used as an operation power supply for the leveling circuit 22.
In addition, according to the embodiment, the solar cell unit 11 is connected to the high voltage supply unit 2 with the low voltage wiring L (low voltage circuit) which is isolated, which makes layout of the low voltage wiring L freely and further makes layout of the solar cell unit 11 freely. In addition, the lower the voltage, the lower a cost becomes.
In addition, it may be supposed that the high voltage battery HB is directly charged with the solar cell unit 11, and such a prior art is known. However, in this embodiment, the leveling circuit 22 is exclusively used, which eliminates the necessity of a high voltage generating circuit correspondingly provided for the whole of the high voltage battery HB, so that a low cost system can be provided. In addition, because the embodiment is not that the solar cell unit 11 is directly connected to the high voltage battery HB for charging, as described above, advantageous effects are provided in a free wiring layout and a low cost due to using the low voltage wiring L. Regarding this, as described above, the leveling circuit 22 also can increase the remaining quantity of the high voltage battery HB as a whole by leveling by increasing the voltage of the single cell having the lowest voltage.
Regarding this, the isolated type of the DC-DC converter 21 becomes necessary when the 12-V battery LB is used as the operation power supply for the leveling circuit 22, and thus, is not specially added when the solar unit 11 is used as the power supply. Accordingly, as described above, the power supply system 1 can be provided at a to cost.
In addition, the embodiment has been described with assumption that the power supply system 1 includes the first switch SW1 and the second switch SW2. However, the second switch SW2 may be provided as another configuration separated from the configuration of the power supply system 1 (original configuration). In other words, the second switch SW2 as another configuration element may be concurrently used in the power supply system 1. In the embodiment, it is assumed that the control circuit 13 controls the second switch SW2 between ON and OFF, however, the control may be provided by another microcomputer or the like different from the control circuit 13. More specifically, the control may be provided by that another microcomputer turns the second switch SW2 OFF different from the control circuit 13 when the ignition switch becomes OFF.
In addition, regarding the control circuit 13, it may be possible that the control circuit 13 automatically operates when a voltage of the power generated by the solar cell unit 11 becomes equal to or greater than a predetermined value, while the ignition switch is OFF. In addition, it may be possible that the first switch SW1 (and the second switch SW2) are turned ON when an output of a photodetection sensor becomes equal to or greater than a threshold in which a photodetection sensor or the like is connected to the control circuit 13. In other words, “when the solar cell generates power” in claims has various modifications.
In addition, the embodiment has been described with an example in which the high voltage power supply unit 2 is installed under the floor of the vehicle V. However, the high voltage power supply unit 2 may be installed in a cabin such as a trunk part or in a floor surface. This is also applicable to the following modifications.
Next, with reference to
In a power supply system 1 of a modification shown in
According to the configuration, as long as the solar cell unit 11 generates an electric power, the electric power from the solar cell unit l to the leveling circuit 22 through the first diode though the electric power from the 12V-battery LB is cut off because the second switch SW2 is turned OFF during inactivation when the ignition switch is OFF). Accordingly, for example, though the vehicle V is left with the ignition switch being turned OFF, the leveling circuit 22 operates to level the voltages in the high voltage battery HB (single cells or modules) because the leveling circuit 22 operates as long as the solar cell unit 11 generates an electric power.
For supplement, the leveling circuit 22 performs level when the voltage differences among single cells in the high voltage battery HB become larger than a predetermined threshold, or when the difference in voltage among the modules of the high voltage batter HB become larger than a predetermined threshold. In this operation the leveling circuit 22 consumes the electric power from the solar cell unit 11. In addition, the leveling circuit 22 generally consumes the electric power to monitor the voltages, In the aforementioned embodiment and this modification, both electric powers can be supplied from the solar cell unit 11.
Regarding this, as shown in
The present invention has a high applicability as a technology applicable to electric vehicles that or the like will become more popular.
Number | Date | Country | Kind |
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2010-034942 | Feb 2010 | JP | national |