This application claims priority to the Chinese Patent Application No. 202210796999.X, filed on Jul. 6, 2022, entitled “power supply, method for voltage compensation and electronic device”, and published as CN114995574A on Sep. 2, 2022, which is incorporated herein by reference in its entirety in this disclosure.
The present disclosure relates to a field of power supply technologies, and in particular, to a power supply, a method for voltage compensation and an electronic device.
With sizes of integrated circuits continuous reducing, numbers of transistors contained in chips increasing, and processes become more and more complex, an integrated circuit industry is facing new bottlenecks and challenges. Reference power supply is an essential core module in integrated circuit design, and is widely used in analog circuits such as digital to analog converters, analog-to-digital converters, sensors, dynamic memory devices, flash memory, or mixed digital to analog circuits. The reference power supply may be divided into current reference power supply and voltage reference power supply according to its functions, and mainly provides “standard” voltage or current for other circuit structures in system. A performance of the reference power supply directly determines a stability and a quality of each index of circuit system. A most important part of power management is supplying power with stabilized voltage, especially an accuracy in extreme high temperature environment is a key to a normal operation of the system.
In order to reduce a performance fluctuation of various components in integrated circuits caused by temperature changes, an existing reference power supply is configured to provide a reference voltage that is capable of changing linearly with temperature. However, it is difficult for the reference power supply to provide accurate output voltage for different temperatures, especially for scenarios with large temperature changes. When the temperature change is larger, an error between a reference voltage provided by the reference power supply and a voltage that maintains a stability of a device is larger.
In view of above problems, an objective of the present disclosure is to provide a power supply, a method for voltage compensation and an electronic device to provide an accurate output voltage under different temperature.
According to a first aspect of the present disclosure, there is provided a power supply, including:
a plurality of temperature compensation modules, for providing a plurality of reference voltages respectively based on a plurality of temperature curves which are not identical, and each of the temperature curve linearly characterizing a corresponding relationship between the reference voltage and temperature in a plurality of temperature ranges respectively; and
a summation module, for providing an output voltage in accordance with the plurality of reference voltages,
wherein for at least one temperature curve, at least two temperature ranges correspond to different temperature coefficients, so that an output voltage curve characterizing the output voltage changing with temperature has not identical temperature coefficients at least in two temperature ranges, and a critical temperature between temperature ranges in the output voltage curve corresponds to a stable output voltage.
Optionally, at least one of the plurality of temperature compensation modules including:
a first unit, for providing a first sub-voltage based on a first sub-temperature curve;
a second unit, for providing a second sub-voltage based on a second sub-temperature curve; and
an output unit, for choosing the first sub-voltage as the reference voltage in a first temperature range and choosing the second sub-voltage as the reference voltage in a second temperature range,
wherein the temperature curve includes a part of the first sub-temperature curve in the first temperature range and a part of the second sub-temperature curve in the second temperature range,
a temperature coefficient of the first sub-temperature curve and a temperature coefficient of the second sub-temperature curve are different, and the first sub-temperature curve and the second sub-temperature curve intersect at the critical temperature between the first temperature range and the second temperature range.
Optionally, the summation module sums the plurality of reference voltages and a voltage reference to obtain the output voltage,
wherein the output voltage has a predetermined value at a predetermined temperature by configuring a value of the voltage reference.
Optionally, the first unit and/or the second unit including:
a first current source, a first resistor and a second resistor connected in series successively between a positive voltage potential and a reference ground potential, a negative temperature coefficient current source connected between the positive voltage potential and a first parallel node, and a second current source connected between the positive voltage potential and the first parallel node, wherein a first output node is located between the first current source and the first resistor to provide a sub-temperature curve of a negative temperature coefficient; or
a third current source, a third resistor and a fourth resistor connected in series successively between a positive voltage potential and a reference ground potential, a negative temperature coefficient current source connected between the reference ground potential and a second parallel node, and a fourth current source connected between the positive voltage potential and the second parallel node, wherein a second output node is located between the third current source and the third resistor to provide a sub-temperature curve of a positive temperature coefficient; or
a fifth current source and a fifth resistance connected in series successively between a positive voltage potential and a reference ground potential, wherein a third output node is located between the fifth current source and the fifth resistance to provide a sub-temperature curve of a zero temperature coefficient.
According to a second aspect of the present disclosure, there is provided a method for voltage compensation, including:
providing a plurality of reference voltages respectively based on a plurality of temperature curves which are not identical, and each of the temperature curve linearly characterizing a corresponding relationship between the reference voltage and temperature in a plurality of temperature ranges respectively; and
providing an output voltage in accordance with the plurality of reference voltages,
wherein for at least one temperature curve, at least two temperature ranges correspond to different temperature coefficients, so that an output voltage curve characterizing the output voltage changing with temperature has not identical temperature coefficients at least in two temperature ranges, and a critical temperature between temperature ranges in the output voltage curve corresponds to a stable output voltage.
Optionally, a step of providing a plurality of reference voltages including:
providing a first sub-voltage based on a first sub-temperature curve in a first temperature range; and
providing a second sub-voltage based on a second sub-temperature curve in a second temperature range; and
wherein the temperature curve includes a part of the first sub-temperature curve in the first temperature range and a part of the second sub-temperature curve in the second temperature range,
a temperature coefficient of the first sub-temperature curve and a temperature coefficient of the second sub-temperature curve are different, and the first sub-temperature curve and the second sub-temperature curve intersect at the critical temperature between the first temperature range and the second temperature range.
Optionally, providing the output voltage in accordance with the plurality of reference voltages including: summing the plurality of reference voltages and a voltage reference to obtain the output voltage,
wherein the output voltage has a predetermined value at a predetermined temperature by configuring a value of the voltage reference.
Optionally, the first sub-temperature curve and/or the second sub-temperature curve having a negative temperature coefficient, a positive temperature coefficient or a zero temperature coefficient.
Optionally, the output voltage has a linear relationship with the temperature in each of the temperature range, and a difference between temperature coefficients of the output voltage curve in two adjacent temperature ranges is in a predetermined range.
Optionally, a temperature coefficient of the output voltage curve in each of the temperature range is a sum of temperature coefficients of the plurality of temperature curves in the temperature range.
According to a third aspect of the present disclosure, there is provided an electronic device, including the above power supply for providing the output voltage.
Optionally, further including:
a semiconductor device for operating based on the output voltage; and
a regulating module for adjusting the output voltage curve of the power supply based on a temperature characteristic of the semiconductor device.
The power supply, the method for voltage compensation and the electronic device of the present disclosure acquire the output voltage by using the reference voltages with temperature curves which are not identical, so that the output voltage curve characterizing the change of the output voltage with temperature having different temperature coefficients in each temperature range, and the critical temperature between the temperature ranges in the output voltage curve corresponds to a stable output voltage. Therefore, accurate output voltage is capable of being provided in each temperature range, and no step occurs in the output voltage, which improves a stability of the output voltage.
The above and other purposes, features and advantages of the present disclosure will be more clear through following descriptions of the embodiments of the present disclosure with reference to accompanying drawings, in which:
The present disclosure will be described in more detail below with reference to accompanying drawings. Like elements in various drawings are denoted by like reference numerals. For purposes of clarity, various features in the drawings are not necessarily drawn to scale. In addition, certain well known components may not be shown.
In following description, numerous specific details of the present disclosure, such as structure, materials, dimensions, processes and techniques of devices are described in order to provide a more thorough understanding of the present disclosure. However, as will be understood by those skilled in field, the present disclosure may be achieved without these specific details.
It should be understood that, in the embodiments of the present disclosure, A and B are connected/coupled, which means that A and B may be connected in series or in parallel, or A and B may pass through other devices, and the embodiments of the present disclosure do not limit this.
A term “temperature curve” in the present disclosure refers to a curve of voltage changing with temperature, in the temperature curve provided by the embodiment of the present disclosure, the temperature curve is continuous, that is, no voltage step occurs. A slope of the temperature curve may be referred to as a temperature coefficient.
Embodiments of a power supply, a method for voltage compensation and a electronic device provided in the present disclosure will be described below with reference to the drawings.
As shown in
For at least one temperature curve configured in the temperature compensation module 110, at least two temperature ranges correspond to different temperature coefficients, so that an output voltage curve characterizing the output voltage changing with temperature has not identical temperature coefficients at least in two temperature ranges, and a critical temperature between the temperature ranges in the output voltage curve corresponds to a stable output voltage.
In this embodiment, the temperature ranges and temperature coefficients in the output voltage curve that finally obtained may be set by setting the temperature ranges and temperature coefficients of the temperature curve configured in each temperature compensation module 110.
As an example, the temperature curves configured in each of the temperature compensation modules 110 have two temperature ranges, the temperature coefficients in two temperature ranges in at least one temperature compensation module 110 are different, and the temperature coefficients in the two temperature ranges in remaining temperature compensation modules 110 may be the same or different.
In this example, the critical temperatures between the two temperature ranges of the temperature curves configured in the temperature compensation modules 110 are not identical, for example, the critical temperature between two temperature ranges of the temperature curve configured in a first stage temperature compensation module 110 is 0° C. (Celsius degrees), the critical temperature between two temperature ranges of the temperature curve configured in a second stage temperature compensation module 110 is 25° C., the critical temperature between two temperature ranges of the temperature curve configured in a third stage temperature compensation module 110 is 45° C., and so on, and if the critical temperature between two temperature ranges of the temperature curve configured in each stage temperature compensation module 110 is different, and a number of the temperature compensation modules 110 is n, a number of the temperature ranges of the output voltage curve characterizing the output voltage changing with temperature is n+1, and the critical temperature between each temperature range corresponds to the critical temperature of each stage of the temperature compensation module 110.
In this example, the critical temperature between two temperature ranges of the temperature curves configured in each stage of the temperature compensation module 110 may be successively increased, and increasing intervals may be uniform or non-uniform. It should be understood that the temperature curves configured in each stage of the temperature compensation module 110 may be variously changed according to actual needs, and the present disclosure does not limit specific implementation manner of the temperature ranges and the temperature coefficients included in the temperature curves.
Optionally, the summing module sums the plurality of reference voltages Vref1-Vrefn and a predetermined voltage reference to obtain the output voltage Vo, configures temperature coefficients of the plurality of reference voltages Vref1-Vrefn at respective temperature regions such that the output voltage has a predetermined temperature coefficient in a predetermined temperature range, and configures a value of the voltage reference such that the output voltage has a predetermined value at a predetermined temperature.
A basic structure of each temperature compensation module 110 is similar, and a first-stage temperature compensation module 110 is taken as an example below to describe the temperature compensation module 110 in detail.
The temperature compensation module 110 includes a first unit 111, a second unit 112, and an output unit 113. The first unit 111 provides a first sub-voltage based on the first sub-temperature curve, the second unit 112 provides a second sub-voltage based on the second sub-temperature curve, and the output unit 113 chooses the first sub-voltage as the reference voltage in a first temperature range and chooses the second sub-voltage as a reference voltage in a second temperature range. In general, the temperature compensation module 110 configures a temperature curve including a part of the first sub-temperature curve in the first temperature range and a part of the second sub-temperature curve in the second temperature range, and the first sub-temperature curve and the second sub-temperature curve intersect at the critical temperature between the first temperature range and the second temperature range, and optionally, the first sub-temperature curve and the second sub-temperature curve have different temperature coefficients.
For example, referring to
In some specific embodiments, the first sub-temperature curve configured in the first unit 111 and the second sub-temperature curve configured in the second unit 112 may be sub-temperature curves having positive temperature coefficients, negative temperature coefficients, or zero temperature coefficients, respectively. Referring to
As shown in
In this embodiment, the voltage Vt1 at the first output node Vt1 is (IZTC1+IZTC2+ICTAT1)×R2+IZTC1×R1=IZTC1×(R1+R2)+(IZTC2+ICTAT1)×R2, wherein the negative temperature coefficient current source ICTAT1 and the second current source IZTC2 are, for example, adjustable current sources, and the voltage Vt1 at the first output node Vt1 is negatively correlated with the temperature after the negative temperature coefficient current source ICTAT1 and the second current source IZTC2 are configured, so that a circuit structure of the first unit 111 and/or second unit 112 shown in
As shown in
In this embodiment, the voltage Vt2 at the second output node Vt2 is (IZTC3−IZTC4−ICTAT2)×R4+IZTC3×R3=IZTC3×(R3+R4)−(IZTC4+ICTAT2)×R4, wherein the negative temperature coefficient current source ICTAT2 and the fourth current source IZTC4 are, for example, adjustable current sources, and the voltage Vt1 at the first output node Vt2 is positively correlated with the temperature after the negative temperature coefficient current source ICTAT2 and the fourth current source IZTC4 are configured, so that a circuit structure of the first unit 111 and/or second unit 112 shown in
As shown in
The present disclosure also provides an electronic device including the power supply as shown in
Some examples of the power supply and the electronic device of the embodiment of the present disclosure are described above, however, the embodiment of the present disclosure is not limited thereto, and there may be other extensions and modifications.
For example, it should be understood that the reference ground potential in the foregoing embodiments may be replaced in alternative embodiments with other non-zero reference potentials (having positive or negative voltage magnitudes) or with controlled varying reference signals.
For another example, the electronic device may be a discrete device, may also be a circuit unit, and may also be combined into a high-efficiency high-linearity broadband power amplifier module. In other implementations, the power supply aforementioned may be packaged in a device, and the semiconductor device may serve as a load structure around the device.
Also, those of ordinary skill in the art will recognize that the various example structures and methods described in connection with the embodiments disclosed herein can be implemented using various configurations or adjustments, with each structure or reasonable variations of the structure, but such implementations should not be considered as beyond the scope of the present disclosure. Furthermore, it should be understood that the connection relationship between the components of the amplifier in the foregoing figures in the embodiments of the present disclosure is an illustrative example, and does not set any limit to the embodiments of the present disclosure.
Based on an exemplary configuration,
Compared with the output voltage curve of the conventional power supply shown in
Based on another exemplary configuration,
Specifically, the temperature curve S1 of the reference voltage includes a prat of temperature curve S1L in the temperature range Zone1 and a prat of temperature curve S1x in the temperature ranges Zone2, Zone3 and Zone4, that is, the temperature curve S1 has different temperature coefficients in the temperature ranges Zone1 and the temperature ranges Zone2, Zone3 and Zone4; the temperature curve S2 of the reference voltage includes a prat of temperature curve S2L in the temperature ranges Zone1 and Zone2 and a prat of temperature curve S2H in the temperature ranges Zone3 and Zone4, that is, the temperature curve S2 has different temperature coefficients in the temperature ranges Zone1 and Zone2 and the temperature ranges Zone3 and Zone4; the temperature curve S3 of the reference voltage includes a prat of temperature curve S3L in the temperature ranges Zone1, Zone2 and Zone3 and a prat of temperature curve S3H in the temperature range Zone4, that is, the temperature curve S3 has different temperature coefficients in the temperature ranges Zone1, Zone2 and Zone3 and the temperature range Zone4.
Then, the temperature curve S1, S2 and S3 are combined to obtain the output voltage curve Vo of the power supply. Due to the temperature curve S1, S2 and S3 in each temperature range is continuous, the output voltage curve Vo is also continuous in each temperature range, and the temperature coefficient of the output voltage curve Vo in each temperature range may be determined by configuring the temperature coefficients of the temperature curve S1, S2 and S3 in the respective temperature ranges.
Based on another exemplary configuration,
Based on another exemplary configuration,
As may be seen from the embodiments shown in
As shown in
As shown in
As may be seen from
As shown in
In step S1, providing a plurality of reference voltages respectively based on a plurality of temperature curves which are not identical, and each of the temperature curve linearly characterizing a corresponding relationship between the reference voltage and temperature in a plurality of temperature ranges respectively. Optionally, a step of providing a plurality of reference voltages including: providing a first sub-voltage based on a first sub-temperature curve in a first temperature range; providing a second sub-voltage based on a second sub-temperature curve in a second temperature range, wherein the temperature curve comprises a part of the first sub-temperature curve in the first temperature range and a part of the second sub-temperature curve in the second temperature range, a temperature coefficient of the first sub-temperature curve and a temperature coefficient of the second sub-temperature curve are different, and the first sub-temperature curve and the second sub-temperature curve intersect at the critical temperature between the first temperature range and the second temperature range. Optionally, the first sub-temperature curve and/or the second sub-temperature curve having a negative temperature coefficient, a positive temperature coefficient or a zero temperature coefficient.
In step S2, providing an output voltage in accordance with the plurality of reference voltages, wherein for at least one temperature curve, at least two temperature ranges correspond to different temperature coefficients, so that an output voltage curve characterizing the output voltage changing with temperature has not identical temperature coefficients at 1 east in two temperature ranges, and a critical temperature between temperature ranges in the output voltage curve corresponds to a stable output voltage. The output voltage has a linear relationship with the temperature in each of the temperature range, and a difference between temperature coefficients of the output voltage curve in two adjacent temperature ranges is in a predetermined range.
Optionally, providing the output voltage in accordance with the plurality of reference voltages including: summing the plurality of reference voltages and a voltage reference to obtain the output voltage, wherein the output voltage has a predetermined value at a predetermined temperature by configuring a value of the voltage reference. A temperature coefficient of the output voltage curve in each of the temperature range is a sum of temperature coefficients of the plurality of temperature curves in the temperature range.
In summary, the embodiments of the present disclosure provide the power supply, the method for voltage compensation and the electronic device of the present disclosure acquire the output voltage by using the reference voltages with temperature curves which are not identical, so that the output voltage curve characterizing the change of the output voltage with temperature having different temperature coefficients in each temperature range, and the critical temperature between the temperature ranges in the output voltage curve corresponds to a stable output voltage. Therefore, accurate output voltage is capable of being provided in each temperature range, and no step occurs in the output voltage, which improves a stability of the output voltage.
It is noted that, herein, relational terms such as first and second, and the like may be used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any actual such relationship or order between such entities or actions. Also, the terms “comprises,” “comprising,” or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but may include other elements not expressly listed or inherent to such process, method, article, or apparatus. Without further limitation, an element defined by the phrase “comprising an. . . . . .” does not exclude the presence of other identical elements in a process, method, article, or apparatus that comprises the element.
While embodiments in accordance with the invention have been described above, these embodiments are not intended to be exhaustive or to limit the invention to the precise embodiments described. Obviously, many modifications and variations are possible in light of the above teaching. The embodiments were chosen and described in order to best explain the principles of the invention and the practical application, to thereby enable others skilled in the art to best utilize the invention and various embodiments with various modifications as are suited to the particular use contemplated. The invention is limited only by the claims and their full scope and equivalents.
Number | Date | Country | Kind |
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202210796999.X | Jul 2022 | CN | national |