Oscillator circuit

The oscillator circuit addresses the large scale and high current consumption issues by employing a novel configuration with capacitors, constant current circuits, and switch circuits to maintain a constant frequency despite power and temperature variations.

JP7731238B2Active Publication Date: 2025-08-29SEIKO INSTR INC
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Patent Information

Application Number
JP2021123773
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-07-29
Publication Date
2025-08-29
Estimated Expiration
2041-07-29

AI Technical Summary

Technical Problem

Existing oscillator circuits face issues of large circuit scale and high current consumption due to the inclusion of BGR and constant current bias generating circuits, which affect their ability to maintain a constant frequency despite fluctuations in power supply voltage and temperature.

Method used

An oscillator circuit design utilizing a capacitor, first and second constant current circuits, MOS transistors, and switch circuits controlled by signals at the output terminal and its inverted signal, allowing for a compact design with minimal current consumption while maintaining a constant frequency output.

Benefits of technology

The proposed oscillator circuit achieves a small circuit size and low current consumption while outputting a constant frequency unaffected by power supply voltage and temperature fluctuations.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an oscillation circuit capable of reducing a consumption current during normal operation even if the circuit comprises a circuit through which a large current flows during operation.SOLUTION: An oscillation circuit comprises: a first constant current circuit connected to one terminal of a capacitor; a first switch circuit connected between the other terminal of the capacitor and a second power terminal; a second constant current circuit; a first MOS transistor in which a gate and a drain are connected to the second constant current circuit and a source is connected to the other terminal of the capacitor; a second MOS transistor in which the gate is connected to the gate of the first MOS transistor and the drain is connected to one terminal of the capacitor; a second switch circuit connected between the source of the second MOS transistor and a second power terminal; and an output terminal which outputs a signal based on a voltage of the one terminal of the capacitor. On and off of the first and second switch circuits are controlled by a signal of the output terminal and an inversion signal of the signal of the output terminal.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an oscillator circuit. [Background technology]

[0002] An oscillator circuit is required to output a constant frequency without being affected by fluctuations in power supply voltage, temperature, and the like.

[0003] FIG. 4 is a circuit diagram showing a conventional oscillator circuit. The oscillator circuit in Figure 4 400 includes a capacitor C1, inverters 41, 42 and 44, a bandgap constant voltage circuit 43 (hereinafter referred to as a BGR circuit), a constant current source circuit 45, a constant current bias generating circuit 46, a PMOS transistor M1 and an NMOS transistor M2.

[0004] BGR circuit 43 supplies voltage VBGR, which is not affected by fluctuations in power supply voltage and temperature. Constant current source circuit 45, bias-controlled by constant current bias generation circuit 46, generates a constant current that is not affected by fluctuations in power supply voltage and temperature. In the oscillator circuit of FIG. 4, voltage VBGR and the constant current control the voltage of capacitor C1, so that inverter 42 can output a constant frequency that is not affected by fluctuations in power supply voltage, temperature, etc. (See, for example, Patent Document 1). [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2005-217762 Summary of the Invention [Problem to be solved by the invention]

[0006] However, the above-described oscillator circuit includes the BGR circuit 43 and the constant current bias generating circuit 46, which poses a problem of large circuit scale and large current consumption for these circuits.

[0007] The present invention has been made in view of the above problems, and aims to provide an oscillator circuit that can output a constant frequency without being affected by fluctuations in power supply voltage, temperature, etc., even though the circuit scale is small and current consumption is low. [Means for solving the problem]

[0008] An oscillator circuit according to one aspect of the present invention comprises: a capacitor; a first constant current circuit connected between a first power supply terminal and one terminal of the capacitor; a first switch circuit connected between the other terminal of the capacitor and a second power supply terminal; a second constant current circuit having one terminal connected to the first power supply terminal; a first MOS transistor having a gate and drain connected to the other terminal of the second constant current circuit and a source connected to the other terminal of the capacitor; a second MOS transistor having a gate connected to the gate of the first MOS transistor and a drain connected to the one terminal of the capacitor; a second switch circuit connected between the source of the second MOS transistor and the second power supply terminal; and an output terminal that outputs a signal based on the voltage of the one terminal of the capacitor, wherein the first switch circuit and the second switch circuit are controlled to be turned on and off by a signal at the output terminal and an inverted signal of the signal. [Effects of the Invention]

[0009] According to the oscillator circuit of the present invention, Sa Constant voltage With pressure NMOS transistor that switches up and down Ta and and switch times road, Condensed Sa Constant current circuit that charges and discharges at a constant current The road This makes it possible to provide an oscillator circuit that has a small circuit scale and consumes a small amount of current, and that can output a constant frequency without being affected by fluctuations in the power supply voltage, temperature, and the like. [Brief explanation of the drawings]

[0010] [Figure 1]1 is a block diagram showing an oscillation circuit according to an embodiment of the present invention; [Figure 2] FIG. 1 is a circuit diagram illustrating an example of an oscillation circuit according to an embodiment of the present invention. [Figure 3] 4 is a timing chart showing the operation of the oscillation circuit of the present embodiment. [Figure 4] FIG. 1 is a block diagram showing a conventional oscillator circuit. DETAILED DESCRIPTION OF THE INVENTION

[0011] An oscillator circuit according to the present invention will now be described with reference to the drawings.

[0012] FIG. 1 is a block diagram showing an oscillator circuit 100 of this embodiment. 1 includes constant current circuits 10, 11, and 12, NMOS transistors 13, 14, and 15, switch circuits 16 and 17, a capacitor 18, and inverters 30 and 31. The constant current circuit 12 and the NMOS transistor 15 form a constant current inverter.

[0013] One end of each of the constant current circuits 10, 11, and 12 is connected to a power supply terminal. The drain and gate of the NMOS transistor 13 are connected to the other end of the constant current circuit 10, and the source is connected to one end of the switch circuit 16. The other end of the switch circuit 16 is connected to a ground terminal, and the control terminal is connected to the output terminal of the inverter 31. The drain of the NMOS transistor 14 is connected to the other end of the constant current circuit 11, the gate is connected to the gate of the NMOS transistor 13, and the source is connected to one end of the switch circuit 17. The other end of the switch circuit 17 is connected to a ground terminal, and the control terminal is connected to the output terminal of the inverter 30. The capacitor 18 has one end connected to the source of the NMOS transistor 13 and the other end connected to the drain of the NMOS transistor 14. The drain of the NMOS transistor 15 is connected to the other end of the constant current circuit 12, the gate is connected to the drain of the NMOS transistor 14, and the source is connected to a ground terminal. The input terminal of the inverter 30 is connected to the drain of the NMOS transistor 15. The inverter 31 has an input terminal connected to the output terminal of the inverter 30 and an output terminal connected to the output terminal of the oscillation circuit 100 .

[0014] The oscillator circuit 100 shown in FIG. 1 controls the on / off of the switch circuits 16 and 17 with the signals CLK and CLKB to control the constant currents I 10 and I 11 The capacitor 18 is charged and discharged by the CLK signal.

[0015] Here, the oscillator circuit 100 in FIG. 1 is designed under the following conditions. If the duty ratio of the signal CLK is 50%, the constant current I 10 and constant current I 11 However, these constant currents may be appropriately set according to the desired duty ratio of the signal CLK. Furthermore, the voltage V1 of the node N1 when the switch circuit 17 is turned on, that is, ΔVgs=Vgs 14 -Vgs 13 is a positive value.

[0016] The oscillator circuit 100 configured as described above operates as follows. FIG. 3 is a timing chart showing the operation of the oscillator circuit 100. As shown in FIG.

[0017] First, the section from the initial state to time t1 will be described. In the initial state, the capacitor 18 is not charged. When power is applied, the signal CLK goes to H level and the signal CLKB goes to L level, so that the switch circuit 16 is on, switch circuit 17 is turned off. Therefore, the voltage V1 of the node N1 becomes the voltage of the ground terminal, that is, the L level.

[0018] The capacitor 18 controls the constant current I flowing from the node N2 to the node N1. 11 Then, the voltage V2 at the node N2, which is the voltage of the capacitor 18, gradually rises. At time t1, the voltage V2 reaches the threshold Vth of the NMOS transistor 15. 15 When this occurs, the NMOS transistor 15 turns on, and the signal CLK goes to the L level and the signal CLKB goes to the H level.

[0019] Next, the period from time t1 to time t2 will be described. At time t1, when the signal CLK goes low and the signal CLKB goes high, the switch circuit 16 is the off switch circuit 17 is turned on. When a constant current I10 flows through the NMOS transistor 13, a voltage Vgs13 is generated between the gate and source. When a constant current I10 flows through the NMOS transistor 14 via the constant current I11 and the capacitor 18, a voltage Vgs14 is generated between the gate and source. Therefore, the voltage V1 at the node N1 becomes ΔVgs=Vgs14-Vgs13. Here, the NMOS transistors 13 and 14 should be designed so that the voltage ΔVgs at this time is a positive value.

[0020] Since the voltage V1 becomes the voltage ΔVgs, the voltage V2 at the node N2 increases by the voltage ΔVgs due to the capacitor 18 and becomes Vth15+ΔVgs. circuit When 17 is turned on, the voltage charged in the capacitor 18 is discharged to the ground terminal via the NMOS transistor 14. The discharge current at this time is a current equivalent to the constant current I10 of the constant current circuit 10.

[0021] That is, at time t1, the voltage Vth 15 The voltage V2, which is the voltage of capacitor 18 that was +ΔVgs, flows through the constant current I 10 At time t2, the voltage V2 is discharged and gradually decreases. 15 When the voltage drops below 1 V, the NMOS transistor 15 turns off. Therefore, the signal CLK goes to H level and the signal CLKB goes to L level.

[0022] Next, the period from time t2 to time t3 will be described. At time t2, when the signal CLK goes high and the signal CLKB goes low, the switch circuit 16 is the on switch circuit 17 is turned off. Switch circuit When 16 is turned on, the voltage V1 at the node N1 changes from ΔVgs to the voltage of the ground terminal. The voltage V2 at the node N2 drops by the voltage ΔVgs due to the capacitor 18 to Vth15-ΔVgs.

[0023] Then, by repeating the same operation from time t4 onwards, the oscillator circuit 100 outputs a signal CLK with a duty ratio of 50% to the output terminal.

[0024] FIG. 2 is a circuit diagram showing an example of the oscillator circuit 100 of this embodiment. The constant current circuits 10, 11, and 12 are composed of a bias circuit 20 and PMOS transistors 10, 11, and 12. The PMOS transistors 10 and 11 are designed to pass the same current and have the same size. The switch circuits 16 and 17 are composed of NMOS transistors 16 and 17.

[0025] The bias circuit 20 includes NMOS transistors 21 and 22, a resistor 23, and PMOS transistors 24 and 25. The source of the NMOS transistor 21 is connected to the ground terminal via the resistor 23. The source of the NMOS transistor 22 is connected to the ground terminal, and the drain and gate are connected to the gate of the NMOS transistor 21. The source of the PMOS transistor 24 is connected to the power supply terminal, and the drain is connected to the drain of the NMOS transistor 22. The source of the PMOS transistor 25 is connected to the power supply terminal, and the drain and gate are connected to the gate of the PMOS transistor 24 and the drain of the NMOS transistor 21.

[0026] The bias circuit 20 configured as described above controls the current flowing through the PMOS transistor 25 to I 25 Then, I 25 =ΔVgs _B / R. ΔVgs _B is the difference between the Vgs of the NMOS transistors 21 and 22, and R is the resistance value of the resistor 23.

[0027] The frequency f of the signal CLK of the oscillator circuit 100 is expressed as follows: f=(I / I 25 )(ΔVgs _B / ΔVgs) / 2CR I is the current flowing through the constant current circuits 10 and 11, and C is the capacitance of the capacitor 18. Here, the currents I and I 25 Equally, the voltage difference ΔVgs _B When ΔVgs is designed to be equal to ΔVgs, the frequency f is determined by the capacitance value of the capacitor 18 and the resistance value of the resistor 23.

[0028] That is, the frequency f of the signal CLK of the oscillator circuit 100 can be output at a constant frequency f without being affected by variations in the characteristics of each MOS transistor, nor by fluctuations in the power supply voltage, temperature, etc. As can be seen from the formula, it is obvious that the characteristics of the frequency f will be improved by using a resistor with good temperature characteristics.

[0029] As described above, the oscillator circuit 100 of this embodiment is configured to include NMOS transistors 13-14 and switch circuits 16-17 that increase and decrease the voltage of capacitor 18 at a constant voltage (ΔVgs), and constant current circuits 10-11 that charge and discharge capacitor 18 at a constant current. Therefore, even if the circuit size and current consumption are small, it is possible to output a constant frequency without being affected by fluctuations in power supply voltage, temperature, etc.

[0030] Although the embodiments of the present invention have been described above, the present invention is not limited to the above embodiments, and various modifications are possible within the scope of the present invention. For example, the entire circuit can be configured inverted with respect to the power supply terminals and ground terminals, and the same effects can be obtained. In this case, the circuit configuration is such that the PMOS transistors and NMOS transistors are interchanged. [Explanation of symbols]

[0031] 10, 11, 12 Constant current circuit (PMOS transistor) 13, 14, 15 NMOS transistors 16, 17 Switch circuit (NMOS transistor) 18 Capacitors 20 Bias circuit 21, 22 NMOS transistor 23 Resistance 24, 25 PMOS transistors 30, 31 Inverter 100 Oscillator Circuit

Claims

1. A capacitor, a first constant current circuit connected between a first power supply terminal and one terminal of the capacitor; a first switch circuit connected between the other terminal of the capacitor and a second power supply terminal; a second constant current circuit having one terminal connected to the first power supply terminal; a first MOS transistor having a gate and a drain connected to the other terminal of the second constant current circuit and a source connected to the other terminal of the capacitor; a second MOS transistor having a gate connected to the gate of the first MOS transistor and a drain connected to one terminal of the capacitor; a second switch circuit connected between the source of the second MOS transistor and the second power supply terminal; an output terminal that outputs a signal based on the voltage of one terminal of the capacitor; The oscillation circuit is characterized in that the first switch circuit and the second switch circuit are controlled to be turned on and off by a signal at the output terminal and an inverted signal of the signal.

2. The first constant current circuit and the second constant current circuit are A bias circuit, and a third MOS transistor and a fourth MOS transistor that pass a current based on the current passed by the bias circuit.

2. The oscillator circuit according to claim 1 .

3. The bias circuit a fifth MOS transistor having a gate and a drain connected together and a source connected to the second power supply terminal; a sixth MOS transistor having a gate connected to the gate of the fifth MOS transistor and a source connected to the second power supply terminal via a resistor; a seventh MOS transistor having a drain connected to the drain of the fifth MOS transistor and a source connected to the first power supply terminal; an eighth MOS transistor, the gate and drain of which are connected to the drain of the sixth MOS transistor, the gate of the seventh MOS transistor, and the gates of the third MOS transistor and the fourth MOS transistor, and the source of which is connected to the first power supply terminal; 3. The oscillator circuit according to claim 2, comprising:

Citation Information

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