A power control apparatus includes a first driven circuit and a second driven circuit connected to the first driven circuit. A primary power-supply circuit produces a primary voltage from a source voltage of a battery and supplies the primary voltage to drive the first driven circuit. A secondary power-supply circuit produces a secondary voltage from the source voltage of the battery or from the primary voltage of the primary power-supply circuit, and supplies the secondary voltage to drive the second driven circuit. A control circuit outputs a power-supply control signal to the secondary power-supply circuit in response to a command signal, so that the supply of the secondary voltage to the second driven circuit by the secondary power-supply circuit is started or terminated by the power-supply control signal.
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0. 16. A power control apparatus, comprising:
a primary power-supply circuit producing a primary voltage from a source voltage of a battery, and transmitting the primary voltage as a first driver signal;
a secondary power-supply circuit producing a secondary voltage from the source voltage of the battery or from the primary voltage of the primary power-supply circuit, and transmitting the secondary voltage as a second driver signal;
a voltage detection and resetting circuit for generating a driver reset signal when the primary power supply circuit produces the primary voltage; and
a control unit outputting a power-supply control signal to the secondary power-supply circuit in response to a command signal, so that the supply of the second driver signal is started or terminated by the power control signal.
0. 15. A power control apparatus, comprising:
a primary power-supply circuit for producing a primary voltage from a source voltage of a battery, and transmitting the primary voltage as a first driver signal;
a secondary power supply circuit for producing a secondary voltage from the source voltage of the battery or from the primary voltage of the primary power-supply circuit, and transmitting the secondary voltage as a second driver signal;
voltage detecting and resetting means for generating a driver reset signal when the primary power supply circuit produces the primary voltage; and
control means for outputting a power-supply control signal to the secondary power-supply circuit in response to a command signal, so that the second driver signal is started or terminated by the power-supply control signal.
0. 13. A power control apparatus which drives a first driven circuit and a second driven circuit connected to the first driven circuit, comprising:
a primary power-supply circuit for producing a primary voltage from a source voltage of a battery, and supplying the primary voltage to drive the first driven circuit;
a secondary power-supply circuit for producing a secondary voltage from the source voltage of the battery or from the primary voltage of the primary power-supply circuit, and supplying the secondary voltage to drive the second driven circuit; and
a control unit outputting a power-supply control signal to the secondary power-supply circuit in response to a command signal from the first driven circuit, so that the supply of the secondary voltage to the second driven circuit by the secondary power-supply circuit is started or terminated by the power control signal.
1. A power control apparatus comprising:
a first driven circuit;
a second driven circuit connected to the first driven circuit;
a primary power-supply circuit for producing a primary voltage from a source voltage of a battery and supplying the primary voltage to drive the first driven circuit;
a secondary power-supply circuit for producing a secondary voltage from the source voltage of the battery or from the primary voltage of the primary power-supply circuit, and for supplying the secondary voltage to drive the second driven circuit; and
control means for outputting a power-supply control signal to the secondary power-supply circuit in response to a command signal from the first driven circuit, so that the supply of the secondary voltage to the second driven circuit by the secondary power-supply circuit is started or terminated by the power-supply control signal.
0. 12. A power control apparatus which drives a first driven circuit and a second driven circuit connected to the first driven circuit, comprising:
a primary power-supply circuit for producing a primary voltage from a source voltage of a battery, and supplying the primary voltage to drive the first driven circuit;
a secondary power supply circuit for producing a secondary voltage from the source voltage of the battery or from the primary voltage of the primary power-supply circuit, and supplying the secondary voltage to drive the second driven circuit; and
control means for outputting a power-supply control signal to the secondary power-supply circuit in response to a command signal from the first driven circuit, so that the supply of the secondary voltage to the second driven circuit by the secondary power-supply circuit is started or terminated by the power-supply control signal.
4. A power control apparatus comprising:
a first driven circuit;
a second driven circuit connected to the first driven circuit;
a primary power-supply circuit connected to a battery, the primary power-supply circuit producing a primary voltage from a source voltage of the battery and supplying the primary voltage to drive the first driven circuit;
a secondary power-supply circuit connected to the primary power-supply circuit, the secondary power-supply circuit producing a secondary voltage from the source voltage of the battery or from the primary voltage of the primary power-supply circuit and supplying the secondary voltage to drive the second driven circuit;
a primary oscillation part for outputting a clock signal to the first driven circuit;
a primary reset generating part for outputting a primary reset signal to the first driven circuit when an oscillation of the primary oscillation part is detected to be stable, the primary reset signal causing the first driven circuit to start operation in accordance with the clock signal output by the primary oscillation part;
a control signal generating part, connected to both the first driven circuit and the secondary power-supply circuit, for outputting a power-supply control signal to the secondary power-supply circuit in response to a command signal output by the first driven circuit, so that the supply of the secondary voltage to the second driven circuit by the secondary power-supply circuit is started or terminated by the power-supply control signal;
a secondary oscillation part for outputting a clock signal to the second driven circuit; and
a secondary reset generating part for outputting a secondary reset signal to the second driven circuit when an oscillation of the secondary oscillation part is detected to be stable, the secondary reset signal causing the second driven circuit to start operation in accordance with the clock signal output by the secondary oscillation part.
0. 14. A power control apparatus which drives a first driven circuit and a second driven circuit connected to the first driven circuit, comprising:
a primary power-supply circuit connected to a battery, the primary power-supply circuit producing a primary voltage from a source voltage of the battery, and supplying the primary voltage to drive the first driven circuit;
a secondary power-supply circuit connected to the primary power-supply circuit, the secondary power-supply circuit producing a secondary voltage from the source voltage of the battery or from the primary voltage of the primary power-supply circuit, and supplying the secondary voltage to drive the second driven circuit;
a pirmary oscillation unit outputting a clock signal to the first driven circuit;
a primary reset generating unit outputting a primary reset signal to the first driven circuit when an oscillation of the primary oscillation unit is detected to be stable, the primary reset signal causing the first driven circuit to start operation in accordance with the clock signal output by the primary oscillation unit;
a control signal generating unit connected to both the first driven circuit and the secondary power-supply circuit, the control signal generating unit outputting a power-supply control signal to the secondary power-supply circuit in response to a command signal output by the first driven circuit, so that the supply of the secondary voltage to the second driven circuit by the secondary power-supply circuit is started or terminated by the power-supply control signal;
a secondary oscillation unit outputting a clock signal to the second driven circuit; and
a secondary reset generating unit outputting a secondary reset signal to the second driven circuit when an oscillation of the secondary oscillation unit is detected to be stable, the secondary reset signal causing the second driven circuit to start operation in accordance with the clock signal output by the secondary oscillation unit.
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(1) Field of the Invention
The present invention relates to a power control apparatus which is suitable for use in a battery-powered system, such as a cellular mobile telephone or a portable electronic device.
(2) Description of the Related Art
A power control apparatus provided in a battery-powered system, such as a cellular mobile telephone or a portable electronic device, is known. In the power control apparatus, a source voltage of a battery is converted into a controlled voltage, and the controlled voltage is supplied to each of driven circuits (or functional elements) of the system. There is a demand for the power control apparatus of this type to reduce a power consumption of the driven circuits. In recent years, the power control apparatus of this type has been improved for the purpose of reducing a power consumption of the driven circuits.
For example, Japanese Laid-Open Patent Application No. 5-088790 discloses a power control system which is adapted to allow a sleep-mode operation of a CPU (central processing unit) in which the operation of the CPU is assured and the power of the CPU is turned OFF.
Japanese Laid-Open Patent Application No. 5-265597 discloses a micro-controller which allows a driven circuit to operate at a low voltage in a selected mode. In the micro-controller, a source voltage supplied to the driven circuit is controlled so as to meet one of power consumption reduction, operating speed increase and noise reduction modes.
Japanese Laid-Open Patent Application No. 6-139373 discloses a semiconductor device provided with a switch selectable between a normal power mode and a power saving mode. In the semiconductor device, a voltage supplied to a driven circuit is controlled by setting the switch to select one of the two modes.
In the conventional power control apparatus of
The relationship between the power-supply circuit 62 and the dependent power-supply circuit 63 is needed when the conventional power control apparatus includes functional blocks indicated by a dotted line in FIG. 7. That is, the relationship between the power-supply circuit 62 and the dependent power-supply circuit 63 is needed when one of the functional blocks (for example, the driven circuit 72) is driven by the power-supply circuit 72 at the source voltage of the battery 60a while the other functional block (for example, the driven circuit 73) is driven by the power-supply circuit 63 at the lower voltage derived from the source voltage.
In the conventional power control apparatus of
In the convectional power control apparatus of
However, in the conventional power control apparatus of
An object of the present invention is to provide an improved power control apparatus in which the above-described problems are eliminated.
Another object of the present invention is to provide a power control apparatus which is effective in reducing a power consumption of a driven circuit by suitably controlling a power-supply operation of a secondary power-supply circuit which supplies power to the driven circuit in dependence on a power-supply operation of a primary power-supply circuit.
The above-mentioned objects of the present invention are achieved by a power control apparatus including: a first driven circuit; a second driven circuit which is connected to the first driven circuit; a primary power-supply circuit which produces a primary voltage from a source voltage of a battery and supplies the primary voltage to drive the first driven circuit; a secondary power-supply circuit which produces a secondary voltage from the source voltage of the battery or from the primary voltage of the primary power-supply circuit and supplies the secondary voltage to drive the second driven circuit; and a control circuit which outputs a power-supply control signal to the secondary power-supply circuit in response to a command signal, so that the supply of the secondary voltage to the second driven circuit by the secondary power-supply circuit is started or terminated by the power-supply control signal.
The above-mentioned objects of the present invention are achieved by a power control apparatus including: a first driven circuit; a second driven circuit which is connected to the first driven circuit; a primary power-supply circuit which is connected to a battery, the primary power-supply circuit producing a primary voltage from a source voltage of the battery and supplying the primary voltage to drive the first driven circuit; a secondary power-supply circuit which is connected to the primary power-supply circuit, the secondary power-supply circuit producing a secondary voltage from the source voltage of the battery or from the primary voltage of the primary power-supply circuit and supplying the secondary voltage to drive the second driven circuit; a primary oscillation part which outputs a clock signal to the first driven circuit; a primary reset generating part which outputs a primary reset signal to the first driven circuit when an oscillation of the primary oscillation part is detected to be stable, the primary reset signal causing the first driven circuit to start operation in accordance with the clock signal output by the primary oscillation part; a control signal generating part, connected to both the first driven circuit and the secondary power-supply circuit, which outputs a power-supply control signal to the secondary power-supply circuit in response to a command signal output by the first driven circuit, so that the supply of the secondary voltage to the second driven circuit by the secondary power-supply circuit is started or terminated by the power-supply control signal; a secondary oscillation part which outputs a clock signal to the second driven circuit; and a secondary reset generating part which outputs a secondary reset signal to the second driven circuit when an oscillation of the secondary oscillation part is detected to be stable, the secondary reset signal causing the second driven circuit to start operation in accordance with the clock signal output by the secondary oscillation part.
The power control apparatus according to the present invention is effective in reducing the power consumption of the second driven circuit in contrast to the conventional power control apparatus. In a preferred embodiment of the power control apparatus of the present invention, the power-supply operation of the secondary power-supply circuit is suitably controlled such that the supply of the secondary voltage to the second driven circuit is enabled by a high-state power-supply control signal only when it is needed, and the supply of the secondary voltage to the second driven circuit is disabled by a low-state power-supply control signal when it is unneeded. In a preferred embodiment of the power control apparatus of the present invention, the oscillation of the secondary oscillation part is quickly stabilized after a start command signal is output to the control signal generating part by the first driven circuit, and it is possible to achieve a speedy power-supply operation of the first and second driven circuits. Further, a preferred embodiment of the power control apparatus of the present invention acts to prevent the flow of a leak current from the first driven circuit into the second driven circuit when the supply of the secondary voltage to the second driven circuit is stopped, and it is possible to more effectively reduce the power consumption of the driven circuits.
Other objects, features and advantages of the present invention will become more apparent from the following detailed description when read in conjunction with the accompanying drawings in which:
FIG. 6A and
A description will now be given of the preferred embodiments of the present invention with reference to the accompanying drawings.
As shown in
The elements 1, 2, 3, 4 and 5 of the power control apparatus, shown in
In the power control apparatus of
The secondary power-supply circuit 12 acts as a dependent circuit that operates in dependence on a power-supply operation of the primary power-supply circuit 11. That is, the dependent power-supply circuit 12 operates to supply the secondary voltage to the second driven circuit 22 when the first power-supply circuit 11 is operating.
The first driven circuit 21 and the second driven circuit 12 are interconnected by a dial line 23. A data signal output by the first driven circuit 21 is received by the second driven circuit 22 through the data line 23, and the second driven circuit 22 processes the received data. A data signal, indicating the processed data, output by the second driven circuit 22 is received by the first driven circuit 21, and the first driven circuit 21 further processes the received data.
The first driven circuit 21 and the second driven circuit 22 do not necessarily start operation at the same time. The first driven circuit 21 may solely start operation when the second driven circuit 22 stops operation. The second driven circuit 22 may not solely start operation when the first driven circuit 21 stops operation. The second driven circuit 22 starts operation only when the first driven circuit 21 is operating.
In the power control apparatus of
A description will be given of the configuration and operations of the control circuit of the power control apparatus in the present embodiment with reference to FIG. 2 and FIG. 3.
As indicated by (a) in
The voltage detection unit 130 includes a primary voltage detection part 130a and a secondary voltage detection part 130b as shown in FIG. 2. As indicated by (b) in
The secondary power control unit 131 includes a primary oscillation part 133 as shown in FIG. 2. As indicated by (c) in
The secondary power control unit 131 includes a primary reset generating part 132, and the primary reset generating part 132 is constructed by two flip-flop circuits which are connected in a manner shown in FIG. 2. As indicated by (d) in
When the primary reset signal output by the primary reset generating part 132 is received, the first driven circuit 21 starts operation. At the start of operation, the stable clock signal (CK) output by the primary oscillation part 133 is supplied to the first driven circuit 21, and the primary voltage output by the primary power-supply circuit 11 is supplied to the first driven circuit 21 through the power-supply line 31. The primary oscillation part 133 and the primary reset generating part 132 are driven by the power supplied from the primary power-supply circuit 11.
The secondary power control unit 131 includes a control signal generating part 136 as shown in FIG. 2. When transmitting the processed data from the first driven circuit 21 to the second driven circuit 22 via the data line 23, the first driven circuit 21 sends a start command signal to the control signal generating part 136. The start command signal causes the control signal generating part 136 to output a power-supply control signal (or a high-state signal) to the secondary power-supply circuit 12. As the secondary power-supply circuit 12 starts supplying the secondary voltage to the second driven circuit 12 in response to the high-state power-supply control signal, the second driven circuit 22 quickly starts operation by the power supplied from the secondary power-supply circuit 12.
As indicated by (e) in
On the other hand, when receiving the processed data from the second driven circuit 22 at the first driven circuit 21 via the data line 23, the first driven circuit 21 sends an end command signal to the control signal generating part 136. The end command signal causes the control signal generating part 136 to output a low-state power-supply control signal to the secondary power-supply circuit 12. As the secondary power-supply circuit 12 stops supplying the secondary voltage to the second driven circuit 22 in response to the low-state power-supply control signal, the second driven circuit 22 quickly terminates the power-supply operation after the processed data from the second driven circuit 22 is supplied to the first driven circuit 21.
As indicated by (e) in
In the control circuit 13 of
The secondary voltage detection part 130b starts operation when the high-state power-supply control signal output by the control signal generating part 136 is received. Also, the secondary power-supply circuit 12 starts operation when the high-state power-supply control signal is received. As indicated by (f) in
The secondary power control unit 131 includes a secondary reset generating part 134 and a secondary oscillation part 135 as shown in FIG. 2. As indicated by (g) in
As indicated by (h) in
The secondary reset generating part 134 of the secondary power control unit 131 is constructed by two flip-flop circuits which are connected in a manner shown in FIG. 2. As indicated by (i) in
When the secondary reset signal output by the secondary reset generating part 134 is received, the second driven circuit 22 starts operation. At the start of operation, the stable clock signal (CK) output by the secondary oscillation part 135 is supplied to the second driven circuit 22, and the secondary voltage output by the secondary power-supply circuit 12 is supplied to the second driven circuit 22 through the power-supply line 32. The secondary oscillation part 135 and the secondary reset generating part 134 are driven by the power supplied from the secondary power-supply circuit 12.
As previously described, in the conventional power control apparatus of
In contrast to the conventional power control apparatus of
In order to achieve a speedy power-supply operation of the first and second driven circuits 21 and 22, it is necessary that the oscillation of the secondary oscillation part 135 becomes stable as quickly as possible after the start command signal is output to the control signal generating part 136 by the first driven circuit 21.
The secondary oscillation circuit 135′ of
In the secondary oscillation circuit 135′ of
Further, in order to more effectively reduce the power consumption of the driven circuits, it is desirable to prevent the flow of a leak current from the first driven circuit 21 into the second driven circuit 22 when the supply of the secondary voltage to the second driven circuit 22 is stopped. When there is a difference in a drive voltage between the first driven circuit 21 and the second driven circuit 22, it is necessary to eliminate the voltage difference.
FIG. 6A and
In
The first and second driven circuits 21 and 22 shown in FIG. 6A and
As shown in
When the power-supply control signal at the output of the control signal generating part 136 is held in a high state, the AND gate 21a sets the first driven circuit 21 in an operating condition that it can receive a data signal supplied by the second driven circuit 22 via the signal line. When the data signal that is set in a high state by the second driven circuit 22 is received, the AND gate 21a of the first driven circuit 21 converts the received data into a high-state data signal based on the primary voltage.
As shown in
In the above-described embodiment of the power control apparatus in which the first and second driven circuits 21 and 22 of FIG. 6A and
Further, the present invention is not limited to the above-described embodiments, and variations and modifications may be made without departing from the scope of the present invention.
The present invention is based on Japanese priority application No. 10-067305, filed on Mar. 17, 1998, the entire contents of which are hereby incorporated by reference.
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