Power-on reset circuit
By using the voltage comparison between the comparator and the bandgap reference source in the power-on reset circuit, combined with the resistor voltage division network and filtering settings, the problem of inaccurate flip threshold and false signals under low voltage is solved, and more accurate flip threshold control and area reduction are achieved.
Patent Information
- Application Number
- CN202311251460.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-09-26
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2043-09-26
AI Technical Summary
The traditional power supply power-on reset circuit is inaccurate in flip threshold under process changes, and an error signal may be output under low voltage conditions, and there is a risk of burr, resulting in potential system errors, and the filter capacitor leads to a large area.
Comparison of the supply voltage with the precise voltage generated by the bandgap reference through the comparator, combined with the inverter type POR circuit, adopts a resistive voltage divider network and filtering settings to eliminate glitches and achieve reliable operation at low voltages.
More precise flip threshold control is achieved, eliminating the risk of false flips under low voltage and reducing circuit area and power consumption.
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Figure CN117118417B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of mixed signal system circuit design, and more particularly to a high-precision and low-power power-on reset (POR) circuit. Background Art
[0002] Mixed-signal systems often contain complex digital and analog circuits. For digital circuits, their initial state must be determined during the power-up process to ensure a correct starting point for subsequent operation. A power-on reset (POR) circuit typically generates a step signal from 0 to 1 during power-up to achieve a digital reset. Key technical considerations for POR circuits include: 1) the toggle threshold; 2) the toggle hysteresis voltage; and 3) power consumption and area. Traditional POR circuits generate a step signal by comparing the supply voltage with the threshold of an inverter with a high-resistance load. This approach suffers from inaccurate toggle thresholds due to process variations. Another approach compares the supply voltage with a reference voltage to generate a reset signal. However, this approach has the disadvantage that the bandgap reference (BGR) and comparator require the supply voltage to exceed a certain voltage to function properly. Below this voltage, the POR output may not meet requirements, posing a control risk to the system. Another drawback is that the power-up speed can affect the reference voltage transient, leading to the risk of reset signal glitches. Summary of the Invention
[0003] The present invention generates a reset signal by using a comparator to compare the power supply voltage with the precise voltage generated by the BGR, thereby achieving a more accurate flip threshold; potential glitches can be eliminated at any power-on speed through appropriate filtering settings, and reliable operation at lower voltages can be achieved by combining with an inverter-type POR circuit.
[0004] According to one aspect of the present invention, a power-on reset (POR) circuit is provided, comprising: a resistor divider network configured to be connected between a power supply voltage AVDD and a ground node, and configured to provide a second intermediate voltage for a comparator, and a first intermediate voltage for an error-free flip auxiliary circuit; a comparator configured to receive the second intermediate voltage from the resistor divider network and a reference voltage from a bandgap reference source BGR circuit, and output a first POR output; a error-free flip auxiliary circuit configured to receive the first intermediate voltage from the resistor divider network and output a second POR output; and an output logic circuit configured to receive the first POR output and the second POR output to generate an output voltage.
[0005] According to one aspect of the present invention, a power-on reset (POR) circuit is provided, wherein the resistor divider network includes a first resistor R1, a second resistor R2, and a third resistor R3 connected in series, and wherein a first intermediate node between the first resistor R1 and the second resistor R2 provides a first intermediate voltage, and a second intermediate node between the second resistor R2 and the third resistor R3 provides a second intermediate voltage.
[0006] According to an aspect of the present invention, a power-on reset (POR) circuit is provided, wherein the comparator includes a latch configured to latch a comparison result of the second intermediate voltage and a reference voltage and output a first POR output.
[0007] According to one aspect of the present invention, a power-on reset (POR) circuit is provided, wherein the comparator further includes a first transistor N1 and a second transistor N2, a third transistor P1, a fourth transistor P4, a fifth transistor P3, a sixth transistor P4, and a current source Io, wherein the gates of the first transistor N1 and the second transistor N2 are respectively configured to be connected to a second intermediate voltage and a reference voltage, respectively; the sources of the first transistor N1 and the second transistor N2 are connected together and to a ground node through the current source Io; the drain of the first transistor N1 is connected to the drains of the third transistor P1 and the fourth transistor P2, and is connected to the latch The gate of the third transistor P1 is connected to the drain of the third transistor P1, and the source thereof is connected to the power supply voltage AVDD; the gate of the fourth transistor P2 is connected to the drain of the second transistor N2, and the source thereof is connected to the power supply voltage AVDD; the drain of the second transistor N2 is connected to the drains of the fifth transistor P3 and the sixth transistor P4, and is connected to the second input terminal of the latch; the gate of the fifth transistor P3 is connected to the drain of the first transistor N1, and the source thereof is connected to the power supply voltage AVDD; the gate of the sixth transistor P4 is connected to the drain of the sixth transistor P4, and the source thereof is connected to the power supply voltage AVDD.
[0008] According to an aspect of the present invention, a power-on reset (POR) circuit is provided, wherein the comparator further comprises a filter capacitor, and the filter capacitor is configured between the first input terminal and the second input terminal of the latch.
[0009] According to one aspect of the present invention, a power-on reset (POR) circuit is provided, wherein the comparator further includes a filter capacitor, which is configured between the first input terminal of the latch and the power supply voltage AVDD; or the filter capacitor is configured between the second input terminal of the latch and the power supply voltage AVDD.
[0010] According to one aspect of the present invention, a power-on reset (POR) circuit is provided, wherein the error-free flip auxiliary circuit includes a seventh transistor, a fourth resistor, and an inverter, wherein the seventh transistor and the fourth resistor are connected in series between a power supply voltage VADD and a ground node, a first intermediate voltage is provided to the gate of the seventh transistor, and a third intermediate node between the seventh transistor and the fourth resistor is connected to the inverter to generate a second POR output.
[0011] According to an aspect of the present invention, a power-on reset (POR) circuit is provided, wherein the output logic circuit includes an AND gate circuit. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Figure 1 1 is a schematic diagram showing a conventional power-on reset (POR) circuit structure and a flip timing sequence;
[0013] Figure 2 It is a schematic diagram showing how the flip threshold value changes with process parameters under the structure of a traditional POR circuit;
[0014] Figure 3 1 is a schematic diagram showing another power-on reset (POR) circuit structure and flip timing;
[0015] Figure 4 It shows that according to Figure 3 A schematic diagram of simulation results of a power-on reset (POR) circuit of the structure shown in a typical case;
[0016] Figure 5 is a schematic diagram showing a power-on reset (POR) circuit structure according to an embodiment of the present invention; and
[0017] Figure 6 is a schematic diagram showing an implementation of a comparator structure with hysteresis or filtering function according to an embodiment of the present invention;
[0018] Figure 7 is a circuit diagram showing circuit simulation of a power-on reset (POR) circuit according to an embodiment of the present invention and a conventional POR circuit at low voltage; and
[0019] Figure 8 FIG. 1 is a schematic diagram showing random scan test results of a flip threshold and a hysteresis voltage of a (POR) circuit according to an embodiment of the present invention. DETAILED DESCRIPTION
[0020] Before proceeding with the detailed description below, it may be helpful to set forth the definitions of certain words and phrases used throughout this patent document. The terms "couple," "connect," and their derivatives refer to any direct or indirect communication or connection between two or more elements, regardless of whether those elements are in physical contact with each other. The terms "transmit," "receive," and "communicate," and their derivatives, encompass both direct and indirect communication. The terms "include," "comprise," and their derivatives, mean including, but not limited to. The term "or" is inclusive, meaning and / or. The phrase "associated with..." and its derivatives mean including, included within, interconnected, containing, contained within, connected or connected with, coupled or coupled with, communicate with, cooperate with, intertwine, juxtapose, approach, bound or bound with, have, have an attribute of, have a relationship with, or have a relationship with, etc. The term "controller" refers to any device, system, or portion thereof that controls at least one operation. Such a controller may be implemented using hardware, or a combination of hardware and software and / or firmware. The functionality associated with any particular controller may be centralized or distributed, whether local or remote. The phrase "at least one of," when used with a list of items, means that different combinations of one or more of the listed items may be used, and only one of the items in the list may be needed. For example, "at least one of A, B, and C" includes any of the following combinations: A, B, C, A and B, A and C, B and C, and A, B, and C.
[0021] Definitions for other specific words and phrases are provided throughout this patent document. Those of ordinary skill in the art should understand that in many, if not most instances, such definitions apply to prior and future uses of such defined words and phrases.
[0022] In this patent document, the application combination of modules and the division level of sub-modules are only used for illustration. Without departing from the scope of this disclosure, the application combination of modules and the division level of sub-modules can have different forms.
[0023] Figure 1 FIG. 1 is a schematic diagram showing a conventional power-on reset (POR) circuit structure and a switching timing sequence.
[0024] like Figure 1 As shown, a first resistor R1 and a second resistor R2 are connected in series between a power supply voltage AVDD and a ground node. The intermediate node between the first resistor R1 and the second resistor R2 provides an intermediate voltage Vx to the gate of transistor N1. The drain of transistor N1 is connected to the power supply voltage AVDD, and its source is connected to the ground node via resistor R. In addition, the source of transistor N1 is also connected to the input of an inverter, which inverts the signal to provide an output voltage.
[0025] according to Figure 1 In the structure shown in FIG, the first resistor R1 and the second resistor R2 proportionally extract the power supply voltage AVDD to generate an intermediate voltage Vx. The inverter structure determines the threshold of the POR flip. When the critical flip occurs, the following equation exists:
[0026]
[0027]
[0028] make:
[0029] Thus there is
[0030] In which, VDD th is the POR flip threshold, which is easily affected by changes in process parameters. Figure 2 This is a diagram showing how the flip threshold changes with process parameters under the structure of a traditional POR circuit. Figure 2 , VDD th The variation range is very wide, ranging from approximately 1.37V to 1.72V.
[0031] Figure 3 The diagram shows another power-on reset (POR) circuit structure and a switching timing.
[0032] like Figure 3 As shown, a first resistor R1 and a second resistor R2 are connected in series between a power supply voltage AVDD and a ground node. The node between the first resistor R1 and the second resistor R2 provides an intermediate voltage Vx to the + input terminal of the comparator. The - input terminal of the comparator is provided with a reference voltage Vref provided by a bandgap reference source (BGR). The output terminal of the comparator provides an output voltage. In addition, a filter capacitor C is connected in series between the intermediate node and the ground node.
[0033] for Figure 3 The power-on reset (POR) circuit structure shown in the figure has a flip threshold determined by the following formula. The accuracy of the flip threshold is basically determined by the accuracy range of Vref itself.
[0034]
[0035]
[0036] However, when the power supply voltage is lower than a certain value, the comparator and BGR will not work properly, causing the POR circuit to output an incorrect control level. Figure 4 It shows that according to Figure 3The schematic diagram of the simulation results of the power-on reset (POR) circuit of the structure shown in the figure is a typical example. Figure 4 , an erroneous bulge will occur around 0.7V, so there is a risk of potential system errors.
[0037] In addition, in order for the circuit to generate a normal reset signal during fast power-up, an additional filter capacitor C needs to be introduced into the resistor divider network. This capacitor C will introduce a first-order low-pass effect into the divider circuit.
[0038] Figure 5 FIG. 1 is a schematic diagram showing a structure of a power-on reset (POR) circuit according to an embodiment of the present invention.
[0039] To solve Figure 1 The POR circuit shown in the figure has an inaccurate flip threshold, and Figure 2 The POR circuit shown in FIG has the risk of erroneous flipping under low voltage conditions, and requires the introduction of a large filter capacitor in the resistor divider network, resulting in a larger area. According to an embodiment of the present invention, the POR circuit generates a reset signal by using a comparator to compare the power supply voltage with a precise reference voltage generated by a bandgap reference (BGR), thereby achieving a more precise flip threshold. Suitable filtering settings eliminate potential glitches at any power-on speed, and by combining with an inverter-type POR circuit, reliable operation at lower voltages can be achieved. The POR circuit according to an embodiment of the present invention also has the following significant advantages: 1) improving flip threshold control accuracy; 2) eliminating the bulging phenomenon under low voltage conditions; and 3) reducing area and power consumption.
[0040] refer to Figure 5 According to an embodiment of the present invention, a power-on reset (POR) circuit includes: a resistor divider network, a comparator with hysteresis and filtering functions, an error-free flip auxiliary circuit, and an output logic circuit.
[0041] The resistor divider network is configured to be connected between the power supply voltage AVDD and the ground node and to provide a second intermediate voltage for the comparator and a first intermediate voltage for the error-free flipping auxiliary circuit. The resistor divider network includes a first resistor R1, a second resistor R2, and a third resistor R3, which are connected in series between the power supply voltage AVDD and the ground node. A first intermediate node between the first resistor R1 and the second resistor R2 provides a first intermediate voltage Vx, and a second intermediate node between the second resistor R2 and the third resistor R3 provides a second intermediate voltage Vy. The first intermediate node is connected to the gate of transistor N1 to provide the first intermediate voltage Vx to the gate of transistor N1. The drain of transistor N1 is connected to the power supply voltage AVDD, and its source is connected to the ground node via resistor R. In addition, the source of transistor N1 is also connected to the input of an inverter, which inverts the signal and provides it to the output logic circuit. The second intermediate node provides the second intermediate voltage Vy to one input terminal (e.g., the + input terminal) of the comparator, and the other input terminal (e.g., the - input terminal) of the comparator is connected to the BGR circuit to receive the reference voltage. The output of the comparator and the output of the inverter are provided to the output logic circuit to output the output voltage Vo through the output logic circuit.
[0042] According to an embodiment of the present invention, the comparator is a comparator with hysteresis or filtering functions, for example, it may be a Schmitt comparator with hysteresis and filtering functions, which includes a latch and a filter.
[0043] According to an embodiment of the present invention, the error-free flip auxiliary circuit includes an error-free flip auxiliary circuit under low voltage, which includes a transistor N1 and a resistor R connected in series, and an inverter receiving a voltage signal from a third intermediate node between the transistor N1 and the resistor R.
[0044] According to an embodiment of the present invention, the output logic circuit includes an AND gate circuit.
[0045] refer to Figure 5 By referencing the BGR to generate a reference voltage, using a resistor divider network to detect the supply voltage, and using a comparator with hysteresis, high flip threshold accuracy can be achieved. Furthermore, the inverter-based error-free flip auxiliary circuit exhibits minimal bulge at low voltages. Combined with the output logic circuit, this achieves both precise flip thresholds and error-free flip functionality at low voltages.
[0046] and Figure 1 The resistor divider network shown does not contain the filter capacitor, similar to Figure 3Compared with the structure shown in the figure which requires a larger filter capacitor, the POR circuit according to the embodiment of the present invention combines two POR circuits and shares the same resistor divider network. In addition, the POR circuit according to the embodiment of the present invention adopts a comparator structure with hysteresis or filtering function, so that the resistor divider network in the POR circuit according to the embodiment of the present invention does not require a larger filter capacitor. At the same time, since the same resistor divider network is shared, it also brings greater area and power consumption savings.
[0047] The POR circuit according to the embodiment of the present invention can easily achieve the following improvements through appropriate parameter adjustment and design: 1) precise control of the flip threshold; 2) no risk of erroneous flip under low voltage conditions; 3) comparative advantages in area and power consumption compared to traditional structures.
[0048] Figure 6 FIG. 4 is a schematic diagram showing an implementation of a comparator structure with hysteresis or filtering function according to an embodiment of the present invention.
[0049] refer to Figure 6 The comparator includes transistors N1 and N2, transistors P1-P4, and a current source Io. The gates of transistors N1 and N2 are configured as INN and INP, respectively, and voltages Vy and Vref are provided to the gates of transistors N1 and N2, respectively. The sources of transistors N1 and N2 are connected together and connected to a ground node through a current source Io. The drain of transistor N1 is connected to the drains of transistors P1 and P2 and to a first input of the latch; the gate of transistor P1 is connected to the drain of transistor P1, and its source is connected to a power supply voltage AVDD; the gate of transistor P2 is connected to the drain of transistor N2, and its source is connected to a power supply voltage AVDD. The drain of transistor N2 is connected to the drains of transistors P3 and P4 and to a second input of the latch; the gate of transistor P3 is connected to the drain of transistor N1, and its source is connected to a power supply voltage AVDD; the gate of transistor P4 is connected to the drain of transistor P4, and its source is connected to a power supply voltage AVDD. The comparator further includes a filter capacitor C1 , wherein the filter capacitor C1 may be configured between the first input terminal and the second input terminal of the latch, or the filter capacitor C1 may also be configured between the second input terminal of the latch and the power supply voltage AVDD.
[0050] refer to Figure 6 According to an embodiment of the present invention, the load of the comparator adopts a positive and negative resistance in parallel, which can achieve a high feedforward gain and an adjustable hysteresis voltage function. By introducing the filter capacitor C1, the comparator has an adjustable low-pass filtering function. Since the comparator has a high output impedance characteristic, the capacitance value of the filter capacitor can be relatively small.
[0051] Figure 7 1 is a circuit diagram showing circuit simulation of a power-on reset (POR) circuit according to an embodiment of the present invention and a conventional POR circuit at low voltage. Figure 7 , according to the embodiment of the present invention, the (POR) circuit bulges at low voltage ( Figure 7 The lower part of the structure can be much smaller than the traditional structure.
[0052] Figure 8 1 is a schematic diagram showing the random scan test results of the flip threshold and hysteresis voltage of the (POR) circuit according to an embodiment of the present invention. Figure 8 , which shows the simulation results of the POR_2P1 hysteresis window flip point of the POR circuit at 27°C for total_mc1000points. The standard deviation of the flip threshold of the (POR) circuit according to the embodiment of the present invention is about 19.8mv, which is consistent with Figure 2 The range of the flip threshold variation of 350mv shown in is significantly reduced compared to that in the figure.
[0053] In addition, the (POR) circuit according to the embodiment of the present invention eliminates the larger filter capacitor in the resistor divider network. Instead, it only requires a smaller filter capacitor C1, thereby effectively reducing the chip area.
[0054] Although the present disclosure has been described with exemplary embodiments, various changes and modifications may be suggested to one skilled in the art. It is intended that the present disclosure encompass such changes and modifications as fall within the scope of the appended claims.
[0055] Any description in the present invention should not be construed as implying that any particular element, step, or function is essential to be included in the scope of the claims. The scope of the patented subject matter is defined solely by the claims.
Claims
1. A power-on reset (POR) circuit, comprising: a resistor divider network configured to be connected between the power supply voltage AVDD and a ground node and configured to provide a second intermediate voltage for the comparator and a first intermediate voltage for the error-free flipping auxiliary circuit; a comparator configured to receive the second intermediate voltage from the resistor divider network and the reference voltage from the bandgap reference source BGR circuit, and output a first POR output; a non-error flipping auxiliary circuit configured to receive the first intermediate voltage from the resistor divider network and output a second POR output; as well as an output logic circuit configured to receive the first POR output and the second POR output to generate an output voltage, The comparator includes a latch configured to latch a comparison result between the second intermediate voltage and a reference voltage and output a first POR output.
2. The power-on reset (POR) circuit according to claim 1, wherein: The resistor divider network includes a first resistor R1, a second resistor R2, and a third resistor R3 connected in series, and wherein a first intermediate node between the first resistor R1 and the second resistor R2 provides a first intermediate voltage, and a second intermediate node between the second resistor R2 and the third resistor R3 provides a second intermediate voltage.
3. The power-on reset (POR) circuit according to claim 1, wherein: The comparator further includes a first transistor N1, a second transistor N2, a third transistor P1, a fourth transistor P2, a fifth transistor P3, a sixth transistor P4 and a current source Io. The gates of the first transistor N1 and the second transistor N2 are respectively configured to be connected to the second intermediate voltage and the reference voltage, respectively; the sources of the first transistor N1 and the second transistor N2 are connected together and connected to the ground node through the current source Io; the drain of the first transistor N1 is connected to the drains of the third transistor P1 and the fourth transistor P2, and is connected to the first input terminal of the latch; The gate of the third transistor P1 is connected to the drain of the third transistor P1, and the source thereof is connected to the power supply voltage AVDD; The gate of the fourth transistor P2 is connected to the drain of the second transistor N2, and the source thereof is connected to the power supply voltage AVDD; The drain of the second transistor N2 is connected to the drains of the fifth transistor P3 and the sixth transistor P4, and is connected to the second input terminal of the latch; The gate of the fifth transistor P3 is connected to the drain of the first transistor N1, and the source thereof is connected to the power supply voltage AVDD; A gate of the sixth transistor P4 is connected to the drain of the sixth transistor P4 , and a source thereof is connected to the power supply voltage AVDD.
4. The power-on reset (POR) circuit according to claim 1, wherein: The comparator further includes a filter capacitor configured between the first input terminal and the second input terminal of the latch.
5. The power-on reset (POR) circuit according to claim 1, wherein: The comparator further includes a filter capacitor, wherein the filter capacitor is configured between the first input terminal of the latch and the power supply voltage AVDD; or The filter capacitor is configured between the second input terminal of the latch and a power supply voltage AVDD.
6. The power-on reset (POR) circuit according to claim 1, wherein: The error-free flip auxiliary circuit includes a seventh transistor, a fourth resistor and an inverter. The seventh transistor and the fourth resistor are connected in series between the power supply voltage VADD and the ground node, the first intermediate voltage is provided to the gate of the seventh transistor, and the third intermediate node between the seventh transistor and the fourth resistor is connected to the inverter to generate a second POR output.
7. The power-on reset (POR) circuit according to claim 1, wherein: The output logic circuit includes an AND gate circuit.
Citation Information
Patent Citations
Power on reset circuit
CN108206040A