Power supply switch reference circuitry

Information

  • Patent Grant
  • RE37876
  • Patent Number
    RE37,876
  • Date Filed
    Friday, May 5, 2000
    24 years ago
  • Date Issued
    Tuesday, October 15, 2002
    22 years ago
Abstract
An apparatus and method for switching between two power supplies, a primary power supply and a secondary power supply. The present invention generates a first reference voltage using the voltage of the primary power supply and the secondary power supply, wherein the primary power supply voltage is variable. The present invention also generates a second reference voltage based on the voltage of the primary power supply. The first and second reference voltages each have a different slope and the crossing point between these two reference voltages indicate that a switch between the primary power supply and the secondary power supply should occur.
Description




BACKGROUND OF THE INVENTION




1. Technical Field




The present invention relates to integrated circuits and in particular to MOS integrated circuits. Still more particularly, the present invention relates to switch circuitry for switching between power supplies.




2. Description of the Related Art




In some situations, it is desirable to provide retention of data in integrated circuits such as memory devices. A number of circuits are commercially available for retaining data in SRAMS when power is removed. An example of one such device may be found in U.S. Pat. No. 5,099,453, entitled


Configuration Memory For Programmable Logic Device,


U.S. Pat. No. 4,713,555, entitled


Battery Charging Protection Circuit;


U.S. Pat. No. 4,122,359, entitled


Memory Protection Arrangement,


and U.S. Pat. No. 4,451,742, entitled


Power Supply Control For Integrated Circuit.


These devices are often known as “zero power circuits”. Typically, in a zero power circuit, the contents of the circuit are protected in the event that the power supply voltage to that circuit drops below some predetermined or selected threshold voltage i.e., the voltage of a secondary power supply. This protection may be accomplished by switching the circuit from a primary power apply to a secondary power supply, typically an internal battery, when the voltage of the primary power supply drops below that of the secondary power supply.




Power control circuits exist which provide automatic sensing of a primary power source voltage. These power control circuits provide for automatic switching to a secondary power source when the primary power source voltage drops below a predetermined threshold voltage.




Typically, a comparator is employed to compare the voltage of the external power source with the voltage of a predetermined threshold, which is typically the voltage of the battery power supply. When the external power supply voltage drops below the voltage of the battery power supply voltage, the circuit typically switches the integrated circuit to the battery power supply from the external power supply. Such a system works well for integrated circuit systems that employ 5.0 volt power supplies. Problems, however, occur for integrated circuit systems running on power supply voltages at 3.0 volts. In particular, these powers supply voltages may range about from 2.7 to about 4.0 volts. As a result, at various times the external power supply voltage may drop below that of the battery supply power voltage. Therefore, it would be advantageous to have a method and apparatus for switching power supplies that does not rely on the voltage of the battery power supply as a reference voltage to switch power supplies.




SUMMARY OF THE INVENTION




The present invention provides an apparatus and method for switching between two power supplies, a primary power supply and a secondary power supply. The present invention generates a first reference voltage using the voltage of the primary power supply and the secondary power supply, wherein the primary power supply voltage is variable. The present invention also generates a second reference voltage based on the voltage of the primary power supply. The first and second reference voltages each have a different slope and the crossing point between these two reference voltages indicate that a switch between the primary power supply and the secondary power supply should occur.




Typically, the primary power supply is an external power supply to a integrated circuit, and the secondary power supply is a battery power supply that is used when the primary power supply voltage drops below some pre-selected level. The primary power supply voltage is reconnected to the integrated circuit when it exceeds the preselected level. These preselected levels are selected by adjusting the crossing point between the first and second reference voltages according to the present invention.




The above as well as additional objectives, features, and advantages of the present invention will become apparent in the following detailed written description.











BRIEF DESCRIPTION OF THE DRAWINGS




The novel features believed characteristic of the invention are set forth in the appended claims. The invention itself, however, as well as a preferred mode of use, further objectives and advantages thereof, will best be understood by reference to the following detailed description of an illustrative embodiment when read in conjunction with the accompanying drawings, wherein:





FIG. 1

is a diagram of a integrated circuit system that is powered both a primary and a secondary power supply;





FIG. 2

depicts a circuit for generating control signals known in the art;





FIG. 3

is a circuit for generating control signals;





FIG. 4

depicts a schematic diagram of a circuit for generating signals for detecting a switching point according to the present invention;





FIG. 5

is a schematic diagram of a reference circuit implemented in a N-well CMOS process; and





FIGS. 6 and 7

depict graphs of voltages V


cc1


, V


bat


, V


ref


, and V


a


according to the present invention.











DETAILED DESCRIPTION OF PREFERRED EMBODIMENT




With reference now to the figures, and in particular with reference to

FIG. 1

is a diagram of a integrated circuit system that is powered both a primary and a secondary power supply. Load


10


is connected to either power supply voltage V


bat


or V


cc1


. Power supply voltage V


bat


is a fixed power supply voltage while power supply voltage V


cc1


is a varied power supply voltage. The power supply voltage connected to load


10


is controlled by transistors M


1


and M


2


. Load


10


is connected to lower power supply voltage V


ss


, which is a power supply voltage having a voltage less than either power supply voltage V


bat


or V


cc1


. The gates of transistors M


1


and M


2


are controlled by control signals CTL and {overscore (CTL)}.




Presently, these control signals are generated by the circuit system shown in FIG.


2


. Power supply voltage V


bat


is employed as a switching reference point in the prior art. When power supply voltage V


cc1


is less than power supply voltage V


bat


, the internal power supply voltage V


ccsw


is equal to power supply voltage V


bat


. When power supply voltage V


cc1


is greater than power supply voltage V


bat


, the internal power supply voltage V


ccsw


is equal to power supply voltage V


cc1


. Comparator


12


generates a control signal CTL in response to a comparison of voltages V


bat


and V


cc1


at its input. Control signal {overscore (CTL)} is generated by inverter


14


. Control signals CTL and {overscore (CTL)} are complimentarily control signals that are generated at the output of the comparator. For a 3.0 volt integrated circuit system, the battery voltage cannot be used as a switching reference. As a result, different voltages are employed to set up the switching point.




According to the present invention, the control signals CTL and {overscore (CTL)} for switching power supplies in the circuit system of FIG. 1 are generated by the circuit of FIG. 3 by comparator


16


with inputs for voltage V


a


and V


ref


according to the present invention. The control signal {overscore (CTL)} is generated by inverter


18


.





FIG. 4

depicts a schematic diagram of a switching reference circuit for generating signals for detecting a switching point. According to the present invention, a switching reference circuit


20


is depicted. Switching reference circuit


20


generates signals to used detect a switching point to switch between power supplies by circuitingcircuitry such as the circuit depicted in

FIG. 3

according to the present invention. Switching reference circuit


20


includes a start-up circuit


22


, a current source circuit


24


, and a reference circuit


26


.




Start-up circuit


22


includes transistors T


7


-T


10


. Transistors T


7


, T


8


, and T


10


are N-channel metal-oxide-semiconductor field effect transistors (MOSFETs) according to the present invention. Transistor T


9


is a P-channel MOSFET. The source of transistor T


9


is connected to power supply V


cc1


while the source of transistor T


10


is connected to power supply voltage V


ss


. Power supply voltage V


cc1


is higher than power supply voltage V


ss


. Power supply voltage V


ss


is typically a ground power supply voltage. Start-up circuit


22


is employed to start current flow within current source circuit


24


.




Current source circuit


24


includes transistors T


1


-T


6


. Transistors T


1


-T


6


are MOSFETs according to the preset invention. Current source circuit


24


also includes a capacitor C


1


and a resistor RS. The current in current source circuit


24


is determined by resistor RS. Transistors T


1


and T


2


are P-channel MOSFETs according to the present invention while transistors T


3


-T


6


are N-channel MOSFETs according to the present invention. Transistors T


1


and T


2


have sources connected to power supply voltage V


cc1


. Capacitor C


1


also is connected to power supply voltage V


cc1


. The gates of transistors T


1


and T


2


are controlled by the current passing through transistor T


8


in start-up circuit


22


. Transistors T


5


and T


6


are used to provide a more precise current.




Reference circuit


26


contains transistors T


11


-T


15


. Transistors T


11


, T


13


, and T


14


are N-channel MOSFETs with transistor T


12


being a P-channel MOSFET. Transistor T


15


is a NPN bipolar transistor according to the present invention. The circuit of the present invention in the depicted example is implemented using a p-well CMOS process. In a N-well CMOS process, a PNP bipolar transistor would be employed as depicted in FIG.


5


. Start-up circuit


22


is connected a power supply voltage V


cc1


and a ground power supply voltage V


ss


. Reference circuit


26


is connected to power supply voltage V


ccsw


which may be either power supply voltage V


cc1


or V


ccbat


, which is the battery back up power supply voltage. This connection to power supply voltage V


ccsw


is made through the collector of transistor T


15


. Reference circuit


26


also is connected to power supply voltage V


cc1


and a lower power supply voltage V


ss


. Transistor T


12


is connected to power supply V


cc1


while transistors T


11


, T


13


, and T


14


are connected to power supply voltage V


ss


. A connection to power supply voltage V


ss


is also made through a capacitor C


2


. The gate of transistor T


12


is controlled by the voltage V


ref


at node V


1



, which is the voltage drop across transistor T



11



. The circuit



20


is designed such that when measured with respect to V


cc1




, V




ref




is constant whenever V




cc1




is high enough to activate the circuit


20


. That is, V




ref




is a stable reference voltage that remains a constant voltage drop below V




cc1




whenever V




cc1




is high enough to activate the circuit


20


. Therefore, referring e.g. to FIG.


7


, it follows that when measured with respect to V




ss




, V




ref




tracks changes in, i.e., follows, V




cc1




, and thus has the same slope as V




cc1




whenever V




cc1




is high enough to activate the circuit


20


.


Power supply voltage V


cc1


is the external power supply voltage. Reference circuit


26


also includes resistors RB, R


1


and R


2


. Reference circuit


26


generates athe voltage V


ref



fromon the node V



1



, which is the voltage from node V



1


to the lower power supply voltage or ground . Reference circuit


26


also generates a voltage V


a


at node V


2


, which is the voltage drop across capacitor C


2


to power supply voltage V


ss


. Voltages V


ref


and V


a


are the signals employed to determine when to switch between two power supplies according to the present invention. The function of switching control circuit is described in more detail below.




When power supply voltage V


cc1


rises, current flows through transistor T


9


towards node N


1


, which results in the voltage at node N


1


to increase. The increase of voltage V


cc1


causes the current traveling through transistors T


7


and T


9


to increase. The current flowing through transistor T


7


is equal to the current through transistor T


9


. Transistor T


8


is mirrored to transistor T


7


, which results in the current through transistor T


8


also increasing. The voltage at node N


2


drops as the current through transistors T


7


-T


9


increases. The drop in voltage at node N


2


results in transistors T


1


and T


2


being turned on allowing current to flow through these two transistors. In response, the voltage at node N


3


goes up turning on transistor T


10


in start-up circuit


22


. In response, transistor TIOT


10



pulls the voltage at node N



1


down disabling start up circuit


22


. At this time, all of the transistors T


1


-T


6


are working in a weak inversion region. The current through these transistors is low. Capacitor C


1


is added to hold the voltage low at node N


2


for a short period of time to allow current source circuit


24


sufficient time to generate current. Current source circuit


24


is employed to generate the current for creating voltages V


ref


and V


a


based on power supply voltage V


cc1


.




Capacitor C


2


is employed to respond to frequency changes. Thus, if noise occurs from the power supply, V


ref


and V


a


should follow each other.




Voltage V


ref


at node V


1



, when measured with respect to V



cc1




,


is temperature independent and is about V


cc1


0.5 V initially and then settles to a stable value after the current source is stabilized. ThisWhen measured with respect to V


ss




, the


value for V


ref


is calculated as follows:







V
rref

=


V
CC1

-

V
BE

-

K






(

kT
q

)







(

Rb
Rs

)






ln








S
4



S
1




S
2



S
3















where V


BE


is the base emitter voltage of transistor T


15


; K is the ratio of the current mirror T


3


and T


11


, S


i


is the device size (W/L)i for i=1, 2, 3, and 4 S


1


is the device size of the first transistor (T


1


) in current source


24


, S


2


is the device size of the second transistor (T


2


) in current source


24


, S


3


is the device size of the third transistor (T


3


) in current source


24


, S


4


is a device size of the fourth transistor (T


4


) in current source


24


, kT/q is the thermal voltage. The voltage V


ref


controls transistor T


12


with node N


5


being pulled to ground. The voltage V


a


is switched from V


cc1


to R


2


/(R


1


+R


2


) V


cc1


.




With reference to

FIGS. 6 and 7

, graphs of voltages V


cc1


, V


bat


, V


ref


, and V


a


are depicted according to the present invention. In these two graphs, the X-axis is time in milliseconds and the Y-axis is voltage. Crossing point


30


is the point at which the load or circuitry is switched from the battery power supply to the primary power supply. Crossing point


32


is the point at which the load or circuit is switched from the primary power supply to the battery power supply. Voltage V


ref



, which is measured with respect to V



ss




in FIGS.


6


and


7


,


is based on voltages V


cc1


and V


ccsw


as can be seen with reference back to FIG.


4


and equation 1. As can be seen, when voltage V


ref


is greater than V


a


, the power supply is switched from V


bat


to V


cc1


. The resistor ratio R


2


/(R


1


+R


2


) determines the crossing point, the point at which V


a


and V


ref


cross each other, for switching between power supplies. The voltage V


ref


always follows V


cc1


. In other words, V


ref


has the same slope as V


cc1


. Voltage V


a


has a different slope from V


ref


. The slope of voltage V


a


is determined by resistors R


1


and R


2


in FIG.


4


. After crossing point


30


, voltage V


ref


is based only on voltage V


cc1


without any influence from voltage V


bat


because at that point, the power supply voltage V


ccsw


has been switched from the battery power supply generating voltage V


bat


to power supply voltage generating voltage V


cc1


. The power supply voltage V


ccsw


is switched back to V


bat


after time T


3


.




In the depicted example the battery voltage V


bat


is 3.5 volts and the crossing points


30


and


32


, the voltage at which V


a


and V


ref



(measured with respect to V



ss




)


cross has been set to 2.3 volts. The crossing point may be altered by changing values for resistors R


1


and R


2


in FIG.


4


. Also, the battery current I


bat


is used by the switching reference circuit only between times T


1


and T


2


and T


3


and T


4


. At other points in the graph in

FIG. 6

, the current I


bat


in the switching reference circuit is equal to 0.








FIG. 5

is a partial schematic diagram of another embodiment of the switching reference circuit


20


of FIG.


4


. Specifically, the circuit


20


of

FIG. 5

is designed for use in integrated circuits that are formed in a P-type substrate according to an N-well CMOS process—the circuit


20


of

FIG. 4

is designed for use in integrated circuits that are formed in an N-type substrate according to a P-well CMOS process. Therefore, when measured with respect to V


ss




, V




ref




in FIG.


5


is a constant, stable reference voltage. That is, V




ref




remains at a fixed voltage above V




ss




once V




cc1




is high enough to activate the circuit


20


. Conversely, V




ref




in FIG.


5


is not a constant reference voltage with respect to V




cc1




. Furthermore, for clarity, only the current source


24


and the V




ref




portion of the reference circuit


26


are shown. However, one can use the start-up circuit


22


and the V




a




portion of the reference circuit


26


of FIG.


4


in the circuit


20


of FIG.


5


, or can use other start-up and V




a




circuitry as desired.






One advantage of the present invention is that the switching circuit may be employed for any type of V


cc


part with requiring only a small battery current during a short switching period. The present invention also provides an advantage of allowing different reference points to be set for switching between power supplies. The present invention may be implemented for integrated circuit parts using various power supply voltages, such as 5.0 and 3.3 volts. The present invention provides low battery currents during switching periods, which is defined as the time between the starting of the circuitry and the crossing point to switching power supplies. As a result, under the present invention, battery life is not affected by the switching reference circuit.




The present invention is depicted using MOS technology. Other types of technology in transistors may be used according to the present invention.




While the invention has been particularly shown and described with reference to a preferred embodiment, it will be understood by those skilled in the art that various changes in form and detail may be made therein without departing from the spirit and scope of the invention.



Claims
  • 1. A power supply switching circuit for switching power supplies to a load, the power supply switching circuit comprising:a switching circuit connected to two power supplies supplying two voltages, a primary power supply and a secondary power supply, the primary power supply providing a first voltage and the secondary power supply providing a second voltage, the first voltage being a variable voltage wherein the switching circuit is controlled by a control signal, the control signal causing one of the two power supplies to be connected to the load, wherein one of the two voltages is connected to the load; a reference circuit including: means for generating a first reference voltage utilizing the first voltage and a switched voltage, the switched voltage being switched between the first voltage and the second voltage, wherein the first voltage reference has a first slope; and means for generating a second reference voltage utilizing the first voltage, wherein the second reference voltage has a second slope that is selected to provide a crossing point with the first reference voltage, wherein the switching circuit switches between the two power supplies in response to an occurrence of a crossing point between the first reference voltage and the second reference voltage.
  • 2. The power supply switching circuit of claim 1, wherein both the first reference voltage and the second reference voltage are lower than the secondary power supply voltage.
  • 3. The power supply switching circuit of claim 2, wherein the secondary power supply is a battery power supply.
  • 4. The power supply switching circuit of claim 1, wherein both the first and second reference voltages are less than the first voltage.
  • 5. The power supply switching circuit of claim 1, wherein the slope of the second reference voltage is selected as follows: R2R1+R2wherein R1 and R2 are resistor values.
  • 6. The power supply switching circuit of claim 2, wherein the secondary power supply voltage is greater than the primary power supply voltage.
  • 7. A power supply switching circuit for switching power supplies to a load, the power supply switching circuit comprising:a switching circuit connected to two power supplies supplying two voltages, a primary power supply and a secondary power supply, wherein the primary power supply generates a first voltage and the secondary power supply generates a second voltage, wherein the switching circuit is controlled by control signal, the control signal causing one of the two power supplies to be connected to the load, wherein one of the two voltages is connected to the load; a comparator circuit having a first input connected to a first input reference voltage, a second input connected to a second reference voltage, and an output, connected to the switching circuit, wherein the control signal is generated at the output; a reference voltage circuit including: a first circuit comprising a first transistor having a base, a collector, and an emitter, the collector being having a connection that is switched between the first voltage and the second voltage in response to the switching circuit connecting one of the two power supplies to the load, a second transistor having a gate, a source, and a drain, and a resistor, having a first end and a second end wherein the drain of the second transistor is connected to the first end of the resistor and the second end of the resistor is connected to the emitter of the first transistor, wherein the first reference voltage is equal to voltage drop across the second transistorpresent with respect to the lower power supply voltage, wherein the drain of the second transistor is connected to the first input of the comparator circuit; and a second circuit comprising a first resistor and a second resistor connected in series, wherein the first resistor has a first end connected to the first voltage and a second end connected to a first end of the second resistor, wherein the second reference voltage is equal to a voltage drop across the second resistor and wherein the first end of the second transistorresistor is connected to the second input of the comparator circuit.
  • 8. The power supply switching circuit of claim 7, further comprising a current source including:a first transistor and a second transistor, each transistor having a source, a drain, and a gate, the sources of the first transistor and the second transistor being connected to the first voltage, the gate of the first transistor and the second transistor being connected to the drain of the second transistor; a third transistor and a fourth transistor, each transistor having a source, a drain, and a gate, the drain of the third transistor being connected to the drain of the first transistor, the drain of the fourth transistor being connected to the drain of the second transistor, and the gates of the third transistor and the fourth transistor being connected to the drain of the third transistor; and a fifth transistor and a sixth transistor, each transistor having a source, a drain, and a gate, the drain of the fifth transistor being connected to the source of the third transistor, the drain of the sixth transistor being connected to the source of the fourth transistor, the sources of the fifth transistor and the sixth transistor being connected to a lower power supply voltage, and the gates of the fifth transistor and the sixth transistor being connected to the drain of the fifth transistor, wherein the gate of the fifth transistor in the current source is connected to a gate of the second transistor in the reference circuit and wherein the source of the sixth transistor is connected to the lower power supply by a resistor having a first end connected to the source of the sixth transistor and a second end connected to the lower power supply voltage.
  • 9. The power supply switching circuit of claim 7, wherein in the second circuit, the second end of the second resistor is connected to the lower power supply voltage by a transistor having a drain connected to the second end of the resistor and a source connected to the lower power supply voltage, wherein the transistor has a gate controlled by the first reference voltage.
  • 10. The power supply switching circuit of claim 7, wherein the first transistor is a PNP transistor.
  • 11. The power supply switching circuit of claim 7, wherein the first transistor is an NPN transistor.
  • 12. The power supply switching circuit of claim 10, wherein the second transistor is an N-channel MOSFET.
  • 13. The power supply switching circuit of claim 9, further comprising a current source including a first transistor, a second transistor, a third transistor, and a fourth transistor, wherein the first reference voltage is generated as followingsfollows: Vrref=VCC1-VBE-K⁢ ⁢(kTq)⁢ ⁢(RbRs)⁢ ⁢ln⁢ ⁢S4⁢S1S2⁢S3wherein Vref is the first reference voltage measured with respect to the lower power supply voltage, Vcc1 is the first voltage, VBE is a base emitter voltage of the first transistor in the first circuit, S1 is the device size of the first transistor in the current source, S2 is the device size of the second transistor in the current source, S3 is the device size of the third transistor in the current source, S4 is a device size of the fourth transistor in the current source, kT/q is the thermal voltage, Rb is the resistor in the first circuit, and Rs is the resistor in the current source.
  • 14. The power supply switching circuit of claim 7, further comprising:a current source including: a first transistor and a second transistor, each transistor having a source, a drain, and a gate, the sources of the first transistor and the second transistor being connected to the first voltage and the gate of the first transistor and the second transistor being connected to the drain of the second transistor; and a third transistor and a fourth transistor, each transistor having a source, a drain, and a gate, the drain of the third transistor being connected to the drain of the first transistor, the drain of the fourth transistor being connected to the drain of the second transistor, the sources of the third transistor and the fourth transistor being connected to the lower power supply, and the gates of the third transistor and the fourth transistor being connected to the drain of the third transistor; wherein the gate of the third transistor in the current source is connected to a gate of the second transistor in the reference circuit.
  • 15. The power supply switching circuit of claim 14, wherein in the second circuit, the second end of the second resistor is connected to the lower power supply voltage by a transistor having a drain connected to the second end of the resistor and a source connected to the lower power supply voltage, the transistor having a gate controlled by the reference voltage.
  • 16. The power supply switching circuit of claim 15, wherein the first reference voltage is determined as follows: Vref=VCC1-VBE-K⁢ ⁢(kTq)⁢ ⁢(RbRs)⁢ ⁢ln⁢ ⁢S4⁢S1S2⁢S3wherein Vref is the first reference voltage, Vcc1 is the first voltage, VBE is a base emitter voltage of the first transistor in the first circuit, S1 is the device size of the first transistor in the current source, S2 is the device size of the second transistor in the current source, S3 is the device size of the third transistor in the current source, S4 is a device size of the fourth transistor in the current source, kT/q is the thermal voltage, Rb is the resistor in the first circuit, and Rs is the resistor in the current source.
  • 17. The power supply switching circuit of claim 16, wherein the second reference voltage is determined as follows: Va=R2R1+R2⁢Vcc1wherein Va is the second reference voltage, R1 is a resistor value of the first resistor in the second circuit, R2 is a resistor value of the second resistor in the second circuit, and Vcc is the first voltage.
  • 18. A power supply switching circuit for switching power supplies to a load, the methodpower supply switching circuit comprising:a switching circuit connected to two power supplies, a primary power supply and a secondary power supply, wherein the switching circuit causes one of the two power supplies to be connected to the load; a circuit including: generating means for generating a first reference voltage utilizing the first voltage and a switched voltage, the switched voltage being switched between the first voltage and the second voltage, wherein the first voltage reference has a first slope; and generating means for generating a second reference voltage utilizing the first voltage, wherein the second reference voltage has a second slope that is selected to provide a crossing point with the first reference voltage, wherein the switching means for switching circuits switches between the two power supplies in response to an occurrence of a crossing point between the first reference voltage and the second reference voltage.
  • 19. A method for switching between a primary power supply and a secondary power supply, wherein the primary power supply voltage provides a first voltage and the secondary power supply voltage provides a second voltage, the method comprising:generating a first reference voltage utilizing the first voltage and a switched voltage, the switched voltage being switched between the first voltage and the second voltage, wherein the first reference voltage has a first slope; generating a second reference voltage utilizing the first voltage, wherein the second reference voltage has a second slope, wherein the second slope is selected to provide a crossing point with the first reference voltage; and switching between the primary and secondary power supplies in response to an occurrence of the crossing point between the first reference voltage and the second reference voltage.
  • 20. A switching reference circuit for selecting a first power supply or a second power supply to power a load, the switching reference circuit comprising:first, second, and third supply nodes; a current source operable to generate a constant source current; a first transistor having a first node coupled to the first supply node, a second node, and a control node coupled to the second supply node; a first impedance element having a first node coupled to the second node of the first transistor and having a reference node for providing a first reference voltage; a second transistor having a first node coupled to the reference node of the impedance element, a second node coupled to the third supply node, and a control node coupled to the current source, the second transistor operable to conduct a constant current that is proportional to the constant source current; and a voltage divider having a first node coupled to the second supply node, a second node coupled to the third supply node, and a reference node for providing a second reference voltage such that the first and second reference voltages select the first power supply when the first reference voltage is greater than the second reference voltage and select the second power supply when the second reference voltage is greater than the first reference voltage.
  • 21. The switching reference circuit of claim 20 wherein the first supply node is operable to be directly coupled to the second supply node.
  • 22. The switching reference circuit of claim 20 wherein the first transistor comprises a bipolar transistor, the first node of the bipolar transistor comprises a collector, the second node comprises an emitter, and the control node comprises a base terminal.
  • 23. The switching reference circuit of claim 20 wherein the first transistor comprises an NPN bipolar transistor, the first node of the NPN bipolar transistor comprises a collector, the second node comprises an emitter, and the control node comprises a base.
  • 24. The switching reference circuit of claim 20 wherein:the first supply node is the same as the second supply node; and the first transistor comprises a PNP bipolar transistor, the first node of the PNP bipolar transistor comprises a collector, the second node comprises an emitter, and the control node comprises a base terminal.
  • 25. The switching reference circuit of claim 20 wherein the impedance element comprises a resistor.
  • 26. The switching reference circuit of claim 20 wherein the first node of the second transistor comprises a drain, the second node comprises a source, and the control terminal comprises a gate.
  • 27. The switching reference circuit of claim 20 wherein the voltage divider comprises:a second impedance element having a first node coupled to the second supply node and a second node coupled to the reference node of the voltage divider; and a third impedance element having a first node coupled to the reference node of the voltage divider and a second node coupled to the third supply node.
  • 28. The switching reference circuit of claim 20 wherein the voltage divider comprises:a second impedance element having a first node coupled to the second supply node and a second node coupled to the reference node of the voltage divider; a third impedance element having a first node coupled to the reference node of the voltage divider and having a second node; and a transistor having a first node coupled to the second node of the third impedance element, a second node coupled to the third supply node, and a control node coupled to the first reference voltage.
  • 29. The switching reference circuit of claim 20, further comprising a start-up circuit coupled to the current source.
  • 30. The switching reference circuit of claim 20 wherein:the first supply node is operable to be coupled to the first power supply; and the second supply node is operable to be coupled to the first power supply when the first reference voltage is greater than the second reference voltage and to the second power supply when the second reference voltage is greater than the first reference voltage.
  • 31. A method for switching between a primary power supply that provides a first voltage and a secondary power supply that provides a second voltage, the method comprising:generating a constant current; generating from the first voltage and the constant current a first reference voltage having a first slope; generating from the first voltage a second reference voltage having a second slope that is different than the first slope; and switching between the primary and the secondary power supplies in response to a comparison of the first and second reference voltages.
  • 32. The method of claim 31 wherein generating the first reference voltage comprises generating the first reference voltage from a voltage that is switched between the first and the second voltages.
  • 33. The method of claim 31 wherein:first reference voltage has the first slope with respect to a third voltage; and the second reference voltage has the second slope with respect to the third voltage.
  • 34. The method of claim 31 wherein:the first reference voltage has the first slope with respect to the first voltage; and the second reference voltage has the second slope with respect to the first voltage.
  • 35. The method of claim 31 wherein the absolute value of the first slope is greater than the absolute value of the second slope.
  • 36. The method of claim 31 wherein the absolute value of the second slope is greater than the absolute value of the first slope.
US Referenced Citations (8)
Number Name Date Kind
4122359 Breikss Oct 1978 A
4451742 Aswell May 1984 A
4713555 Lee Dec 1987 A
5099453 Steele Mar 1992 A
5270946 Shibasaki et al. Dec 1993 A
5278798 Miyawaki Jan 1994 A
5426616 Kajigaya et al. Jun 1995 A
5541880 Campardo et al. Jul 1996 A
Non-Patent Literature Citations (1)
Entry
Microelectronics by Jacob Millman, McGraw Hill, 1979, pp. 543-545.
Divisions (1)
Number Date Country
Parent 08/464082 Jun 1995 US
Child 09/568201 US
Reissues (1)
Number Date Country
Parent 08/464082 Jun 1995 US
Child 09/568201 US