The present invention pertains to a voltage supply circuit that supplies a reference voltage to a circuit and to a circuit device equipped with said voltages supply circuit. In particular, the present invention pertains to a voltage supply circuit that can reduce the noise output from the voltage supplied to said circuit when the power is turned on or off.
In general, a constant voltage (reference voltage) is needed as a reference when performing amplification or addition/subtraction, etc. of the input signal of an analog signal processing circuit. If the reference voltage varies, the signal obtained as the result of the processing varies, and error or noise occurs in the final output signal. Consequently, the reference voltage supplied to an analog signal processing circuit is required to remain constant without being affected by the variations in power supply voltage or temperature, noise, etc.
Japanese Kokai Patent Application No. 2002-328732 discloses a circuit that generates a prescribed reference voltage, such as a bias voltage.
The circuit shown in
In the circuit shown in
In order to restrain the noise generated when the power is turned on, in the circuit shown in
The circuit shown in
Also, since the rise time is determined by the time constant of the resistors and capacitor, for an audio signal processing circuit, the capacitance of the capacitor must be very large in order to suppress the noise in the audible frequency band. As a result, the size of the element will be increased.
A general object of the present invention is to provide a voltage supply circuit, which can reduce the noise generated in the output of the voltage supply circuit when the power of said circuit is turned on or off and which can shorten the time required for starting or ending the operation of said circuit. Another object of the present invention is to provide a circuit device, which can reduce the output noise when the power is turned on or off and can shorten the time required for starting or ending the operation.
These and other objects and features are provided in accordance with one aspect of the present invention by a voltage supply circuit that provides a reference voltage to a circuit. Said voltage supply circuit comprises a voltage generating part that generates said reference voltage corresponding to an input digital signal and a voltage setting part that outputs said digital signal, which continuously changes said reference voltage from a reference potential to a prescribed potential after the power supply is started, corresponding to a signal indicating the start of said supply of power to said circuit and/or corresponding to said digital signal, which continuously changes said reference voltage from said prescribed potential to said reference potential, before said power supply is stopped corresponding to a signal indicating the stopping of the supply of power to said circuit.
By using this voltage supply circuit, when said digital signal input from said voltage setting part corresponding to a signal indicating the start of the supply of power to said circuit, said reference voltage is changed continuously from said reference potential to said prescribed potential after said power supply is started. Also, when said digital signal is output from said voltage setting part corresponding to a signal indicating the stopping of supply of power to said circuit, said reference voltage is changed continuously from said prescribed potential to said reference potential.
Since said reference voltage changes continuously, compared with the case when the reference voltage varies intermittently under the influence of the intermittent variation in the power supply voltage, the high-frequency output noise of said circuit can be reduced. Also, since the continuous variation of said reference voltage is set corresponding to said digital signal output by said voltage setting part, said reference voltage can be set to a prescribed waveform corresponding to the digital signal processing of said voltage setting part. In this way, the output noise of said circuit can be reduced, and the variation time of the reference voltage can be shortened.
Said voltage setting part can set the reference voltage variation time when said reference voltage is varied continuously corresponding to a signal indicating the start cause or stop cause of said power supply. In this way, since the time of continuous variation of said reference voltage is set corresponding to the start cause or stop cause of said power supply, the time from the starting of power supply until the beginning of the operation of said circuit or the time from stopping of power supply until the end of the operation of said circuit can be set corresponding to said start cause or stop cause.
Said voltage generating part may have a digital/analog converter that converts said digital signal output from said voltage setting part into an analog signal corresponding to the value of said digital signal. Said voltage generating part may have a converting part that converts said digital signal output from said voltage setting part into a pulse-shaped voltage signal corresponding to the value of said digital signal and a smoothing part that smoothes said pulse-shaped voltage signal and outputs it as said reference voltage. Said pulse-shaped voltage signal can be, for example a pulse density modulated (PDM) signal or a pulse width modulated (PWM) signal.
When said configuration is adopted, the voltage output from said converting part includes a component with a relatively low frequency corresponding to the variation in the pulse density or pulse width and a component with a relatively high frequency realized by each pulse. Since the high-frequency component is removed by said smoothing part, the low-frequency component, that is, the component corresponding to said digital signal, is output as said reference voltage.
This circuit device has a signal processing part that processes input signal on the basis of a reference voltage, a voltage generating part that generates said reference voltage corresponding to the input digital signal, and a voltage setting part that outputs said digital signal, which continuously changes said reference voltage from a reference potential to a prescribed potential after the power supply is started, corresponding to a signal indicating the start of said supply of power to said signal processing part and/or corresponding to said digital signal, which continuously varies said reference voltage from said prescribed potential to said reference potential, before the stopping of said power supply corresponding to a signal indicating the stopping of the supply of power to said signal processing part.
It can also have a power supply control part that starts the supply of power to said signal processing part corresponding to a first signal indicating the start of the supply of power to said signal processing part or a second signal indicating that a load is connected to the signal output line of said signal processing part. In this case, said voltage setting part makes the variation time of said reference voltage when said reference voltage is varied continuously corresponding to said second signal shorter than the variation time corresponding to said first signal. Also, said power supply control part can stop the supply of power to said signal processing part after said reference voltage is varied to said reference potential corresponding to a signal indicating the stopping of the supply of power to said signal processing part.
In the figures, 10 represents a signal processing part, 20 represents a voltage generating part,
21, 61 represents a DAC, 22 represents a low-pass filter, 30 represents a voltage setting part, 40 represents a voltage supply part, 50 represents a system control part, 60 represents a lower supply switch, 70 represents an earphone jack, 81 represents a speaker, 82 represents a plug,
R1, R2 represents a resistor, C1 represents a capacitor.
According to the present invention, first, when the power of the circuit of the voltage supply is turned on or off, the noise generated in the output of that circuit can be reduced, and the time required for starting or stopping the operation of that circuit can be shortened. Second, the output noise can be reduced when the power is turned on or off, and the time required for starting or stopping the operation can be shortened.
The circuit device shown in
Signal processing part 10 processes input signal Sin using reference voltage Vref as a reference. For example, the amplitude of input signal Sin is amplified, or signal processing for noise removal, modulation, demodulation, frequency conversion, addition, or multiplication is carried out. The processing result is output as output signal Sout. Signal processing part 10 operates after receiving power supply voltage Vcc.
Signal processing part 10 shown in
If the gain of operational amplifier 11 is high enough, negative feedback control will be carried out such that the voltages at the inverting and non-inverting input terminals of operational amplifier 11 are approximately equal to each other. Therefore, the amplitude of output signal Sout will be amplified by the gain corresponding to the resistance ratio of resistors R3 and R4 with respect to the amplitude of input signal Sin. If the resistances of resistors R3, R4 are represented by “r3”, “r4”, respectively, the following equation becomes valid.
Sout−Vref=(r4/r3)×(Vref−Sin) [Equation 1]
Variation S in output signal Sout caused by the small variation V of reference voltage Vref is expressed as follows.
ΔS=(1+(r4/r3))×ΔV [Equation 2]
As can be seen from equation (2), the variation component of reference voltage Vref is amplified along with input signal Sin in signal processing part 10. Consequently, the abrupt change in reference voltage Vref when the power is turned on becomes noise in output signal Sout.
Voltage generating part 20 generates reference voltage Vref corresponding to the input digital signal S30. In the example shown in
Resistors R1 and R2 are connected in series between the output terminal of DAC 21 and reference potential G. One terminal of resistor R1 is connected to the output terminal of DAC 21. The other terminal of resistor R1 is connected to resistor R2, which in turn is connected to reference potential G. Capacitor C1 is connected between the middle connection point of resistors R1 and R2 and reference potential G. The output signal of DAC 21 is divided by resistors R1 and R2 and is smoothed by capacitor C1. The voltage generated on capacitor C1 is supplied as reference voltage Vref to signal processing part 10.
Voltage setting part 30 outputs digital signal S30 such that reference voltage Vref is continuously raised from reference potential G to a prescribed potential after the power supply is started, corresponding to signal Sc1 indicating the start of the supply of power to signal processing part 10. Also, digital signal S30 is output such that reference voltage Vref is lowered continuously from a prescribed potential to reference potential G before the power supply is stopped corresponding to signal Sc1 indicating the stopping of the supply of power to signal processing part 10. Voltage setting part 30 is constituted, for example, with a digital circuit. The continuous variation of reference voltage Vref is set by sequentially updating the value of digital signal S30 according to the timing of clock signal, etc. Voltage setting part 30 operates after receiving the same power supply voltage Vcc as signal processing part 10.
Voltage setting part 30 is a circuit that outputs the waveform data prestored in a memory. In the example shown in
DAC 21 is, for example, a 1-bit modulator. In the example shown in
Memory 32 stores the waveform data that sets the raising and lowering of reference voltage Vref. If the waveform data stored in memory 32 are fixed values, a simple ROM (read-only memory) can be used for memory 32. Control part 31 sequentially reads the waveform data for raising the reference voltage from memory 32 after the power supply is started, corresponding to signal Sc1 indicating the starting of the power supply and outputs it as digital signal S30 with a prescribed bit length. Also, the waveform data for lowering the reference voltage are read sequentially from memory 32 before the power supply is stopped corresponding to signal Sc1 indicating the stopping of power supply and are output as digital signal S30 with a prescribed bit length. If the raising and lowering waveforms are symmetric, the waveform data for raising and the waveform data for lowering can also be switched by reversing the order of reading the waveform data.
Adder 211 subtracts the output signal of coefficient signal 216 from digital signal S30 output from voltage setting part 30. Adder 212 adds the output signal of delay circuit 213 to the output signal of adder 211. Delay circuit 213 delays the output signal of adder 211 by one sample period and then outputs the output signal. Quantization circuit 214 quantizes the output signal of adder 212 and outputs a binary (high or low level) signal S21. For example, high-level or low-level signal S21 is output corresponding to whether the output signal of adder 214 exceeds a prescribed threshold value.
Delay circuit 215 delays the output signal S21 of quantization circuit 214 by one sample period and outputs that output signal. Coefficient circuit 216 multiplies the signal delayed by delay circuit 215 by a certain coefficient and outputs the product.
In DAC 21 shown in
In the following, the operation of the circuit device shown in
Signal Sc1 indicates the start and stop timing of the power supply. It is output from a system control part not shown in the figure. Signal Sc1 sets control part 31 in the initial state during the period when the power is turned on to the time when power supply voltage Vcc is stabilized. Control part 31 outputs digital signal S30 that fixes reference voltage Vref at reference potential G during the initial period after the power is turned on. After a certain period of time has elapsed since the power is turned on, signal Sc1 indicates rise of reference voltage Vref to control part 31. Upon receiving said indication, control part 31 sequentially reads the waveform data for raising the reference voltage from memory 32 and outputs it as digital signal S30 to DAC 21. DAC 21 outputs pulse-shaped signal S21 with the pulse density modulated corresponding to said digital signal S30. Resistors R1, R2 and capacitor C1 connected to the output of DAC 21 constitute a voltage dividing circuit that divides the output signal S21 of DAC 21 and constitutes low-pass filter 22 (smoothing part) used for eliminating the high-frequency component included in output signal S21. The pulse-shaped signal S21 is smoothed by said low-pass filter 22. Reference voltage Vref rises continuously corresponding to setting of digital signal S30.
In the example shown in
On the other hand, when the power supply is stopped, first, signal Sc1 indicates a drop in the reference voltage Vref to control part 31. Upon receiving said indication, control part 31 sequentially reads the waveform data for lowering the reference voltage from memory 32 and outputs it as digital signal S30 to DAC 21. DAC 21 outputs a pulse-shaped signal S21 with the pulse density modulated corresponding to digital signal S30. Reference voltage Vref obtained by smoothing said signal drops continuously from a prescribed potential to reference potential G.
As explained above, according to this embodiment, since reference voltage Vref is varied continuously when power supply is started or stopped with respect to signal processing part 10, the high-frequency noise generated in the output of signal processing part 10 can be reduced compared with the case when reference voltage Vref varies intermittently under the influence of the intermittent variation of power supply voltage Vcc (for example, when power supply voltage Vcc is divided to generate reference voltage Vref).
Also, since the continuous variation in reference voltage Vref is set corresponding to digital signal S30 output by voltage setting part 30, it is possible to set the reference voltage to a prescribed waveform corresponding to digital signal processing in voltage setting part 30. In other words, when the set value of the waveform of reference voltage Vref is generated by digital signal processing in voltage setting part 30, the desired waveform can be easily generated without being limited by the values of the circuit elements or the circuit configuration, like the circuit shown in
Consequently, if the peak-to-peak waveform data of a sinusoidal wave are prepared in memory 32 and are used to generate the waveform, a smooth waveform with few high-frequency components can be obtained, and a reference voltage Vref with shorter variation time than the waveform of an exponential function realized by low-pass filter can be generated. In this way, the output noise of signal processing part 10 can be reduced, and the variation time of reference voltage Vref can be shortened.
Also, according to this embodiment, digital signal S30 output from voltage setting part 30 is converted into pulse-shaped signal S21 having a pulse density corresponding to its signal value by DAC 21. Said pulse-shaped signal S21 is smoothed in low-pass filter 22 (smoothing part) constituted by resistors R1, R2 and capacitor C1 to generate reference voltage Vref.
Consequently, if the time delay (sample period) of delay circuits 213, 215 is set to be much shorter than the variation time of waveform for raising or lowering the reference voltage formed by digital signal S30, even if the cutoff frequency of low-pass filter 22 is relatively high, the pulse-shaped high-frequency component of signal S21 can be well attenuated. In other words, the waveform of digital signal S30 can be faithfully reproduced in reference voltage Vref without significantly increasing the capacitance of capacitor C1. Consequently, capacitor C1 can be miniaturized, and the circuit area can be reduced.
In the following, a modification example of the circuit device disclosed in this embodiment will be explained based on
Power supply part 40 turns on or off the power supply voltage Vcc of signal processing part 10 corresponding to signal Sc2 of system control part 50. Power supply switch 60 is used to turn on or off the power of the entire circuit device. An on or off instruction is output as signal S1 to system control part 50.
Earphone jack 70 electrically connects plug 82 connected to speaker 81 and the signal output line of signal processing part 10. Also, signal S2 indicating whether plug 82 is plugged in (that is, whether speaker 81 is connected as a load to the signal output line of signal processing part 10) is output to system control part 50.
System control part 50 is a block that controls the operation of the entire circuit device. In the example shown in
In the following, the operation of the circuit device shown in
System control part 50 first outputs signal Sc1 indicating a lowering of reference voltage Vref to voltage setting part 30 when signal S1 indicating the turning off of the power is input from power supply switch 60. Upon receiving said signal, voltage setting part 30 generates digital signal S30 by the operation explained above to lower reference voltage Vref continuously from a prescribed potential to reference potential G. When reference voltage Vref drops to reference potential G, system control part 50 then outputs signal Sc2 indicating the stopping of the supply of power supply voltage Vcc to power supply part 40. In this way, the power of signal processing part 10 is turned off, and its operation is stopped.
On the other hand, when signal S1 indicating the turning on of power supply is input from supply switch 60, first, system control part 50 outputs signal Sc2 indicating the start of the supply of power supply voltage Vcc to signal processing part 10 to power supply part 40. When power supply part 40 starts to supply power supply voltage Vcc and signal processing part 10 starts to work, system control part 50 then outputs signal Sc1 indicating an increase in reference voltage Vref to voltage setting part 30. Upon receiving said signal, voltage setting part 30 generates digital signal S30 by the operation explained above to raise reference voltage Vref continuously from reference potential G to a prescribed potential.
As a result of said operation, the power of signal processing part 10 is turned on and off corresponding to the operation of power supply switch 60. In addition, the circuit device disclosed in this modification example turns on and off the power of signal processing part 10 corresponding to whether plug 82 is plugged into earphone jack 70. In other words, the power is off when plug 82 is not plugged in earphone jack 70, and the power is turned on when plug 82 is connected to earphone jack 70. In this way, the power consumption of signal processing part 10 can be reduced when load (speaker 81) is not connected to the output line.
More specifically, when signal S2 indicating the disconnection of plug 82 from earphone jack 70, system control part 50 first outputs signal Sc1 indicating a reduction in reference voltage Vref to voltage setting part 30. When reference voltage Vref drops to reference potential G, signal Sc2 indicating the stopping of the supply of the power supply voltage is output to power supply part 40, and the power of signal processing part 10 is turned off.
Also, when signal S2 indicating the connection of plug 82 into earphone 70 is input, system control part 50 first outputs signal Sc1 indicating the start of the supply of power supply voltage Vcc to power supply part 40, and the power of signal processing part 10 is turned on. When the power is turned on, signal Sc1 indicating an increase in reference voltage Vref is input to voltage setting part 30, and reference voltage Vref is raised from reference potential to a prescribed potential.
As described above, the circuit device shown in
When the reason for the turning on and off of the power supply is different, the content required for the operation, which focuses on speed or noise, will vary. For example, it is desired to reduce the popping noise generated from speaker 81 as much as possible rather than to output sound immediately from speaker 81 when the device is started by turning on power switch 60. On the other hand, when plug 70 is plugged into earphone jack 70, it is desired to output sound from speaker 81 immediately even if some noise is generated.
The circuit device disclosed in this modification example sets the reference voltage variation time when reference voltage Vref is varied continuously corresponding to signals (S1, S2) indicating start cause or stop cause of the power supply. For example, the reference voltage variation time when reference voltage Vref is varied corresponding to signal S2 is shorter than the reference voltage variation time when reference voltage Vref is varied continuously corresponding to signal S1. In other words, when plug 70 is plugged in or unplugged from earphone jack 70, the times required to raise or lower reference voltage Vref are shorter than those in the case of the turning on and off of power switch 60.
If the control (variation time for raising and lowering) reference voltage Vref is set corresponding to the reason for turning the power on and off as described above, a suitable compromise between increasing the operating speed and reducing the popping noise can be found.
An embodiment and a modification example of the present invention have been explained above. The present invention is not limited to these. It also includes other variation examples. For example, in
While the invention has been particularly shown and described with reference to preferred embodiments thereof it is well understood by those skilled in the art that various changes and modifications can be made in the invention without departing from the spirit and scope of the invention as defined by the appended claims.
Number | Date | Country | Kind |
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2006346635 | Dec 2006 | JP | national |