IP Library › Granted Patent US 12,170,523
Granted Patent B2
US 12,170,523 · App. 17/997,967 · Granted Dec 17, 2024

Current-to-digital converter

Inventors: Tantan Zhang (Singapore, SG); Yuan Gao (Singapore, SG)
Assignee: AGENCY FOR SCIENCE, TECHNOLOGY AND RESEARCH
H03M1/46H03M3/426H03M3/458H03M1/662H03M3/50
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Quick Facts
Patent No.
US 12,170,523
App. No.
17/997,967
Granted
Dec 17, 2024
Kind
B2
Abstract

This disclosure relates to a current-to-digital converter suitable for wide-ranging current sensing applications. In particular, the current-to-digital converter comprises a delta-sigma analogue-to-digital converter which utilizes a successive-approximation-register to control a modulation of the sensed current so that the digital conversion of the modulated sensed current by the delta-sigma analogue-to-digital converter may be done with high precision.

Claims (29)

1. A current-to-digital converter module comprising:

a modulation switch, SW K , configured to modulate an input current, I IN , to produce a scaled current, I INK , wherein the switch SW K is controlled by a modulation clock F K ;

a delta-sigma analogue-to-digital converter, ΔΣ ADC, comprising an integrator coupled to a hysteresis comparator that is coupled to a D-type Flip-Flop being driven by a master clock, F s , whereby an inverting output from the D-type Flip-Flop is coupled to an inverting input of the integrator using a 1-bit feedback current digital-to-analogue converter, DAC, the ΔΣ ADC being configured to generate digital outputs at a non-inverting output and the inverting output of the D-type Flip-Flop based on a balanced current, I BAL , received at the inverting input of the integrator, whereby the balanced current I BAL comprises a summation of the scaled current I INK with a reference current, I REF , produced by the 1-bit feedback current DAC;

a successive-approximation-register (SAR) control logic configured to generate control signals based on the non-inverting outputs from the D-type Flip-Flop, a reset clock signal and the master clock F s ; and

a clock generator module that is driven by the master clock, F s , being configured to use the control signals from the SAR control logic to determine an optimal modulation clock F K for controlling the switch SW K .

2. The module according to claim 1 wherein the modulation switch SW K comprises:

a transmission gate switch that is body biased with a reference voltage V CM when the switch is at an OFF-state, wherein the reference voltage V CM is used as the reference voltage at the non-inverting inputs of the integrator and hysteresis comparator of the ΔΣ ADC.

3. The module according to claim 1 wherein the integrator of the ΔΣ ADC comprises:

a two-stage integrator circuit having a first and a second stage, wherein a compensation capacitor C C couples a low impedance node of the first stage to an output of the second stage.

4. The module according to claim 1 wherein the hysteresis comparator of the ΔΣ ADC comprises:

an inverter based hysteresis comparator circuit having an inverter provided at the input of the compactor circuit, wherein a threshold voltage of the inverter is similar as threshold voltages of transistors used in the comparator circuit.

5. The module according to claim 1 wherein the 1-bit feedback current DAC comprises:

a cascaded current mirror circuit.

6. The module according to claim 1 wherein the clock generator module comprises:

a plurality of D-type Flip Flop, logic AND gate pairs and a logic OR gate, configured in a frequency divider configuration to generate a modulation pulse.

7. A method for converting current to digital signals using a current-to-digital converter module having a modulation switch SW K , a delta-sigma analogue-to-digital converter, ΔΣ ADC, comprising an integrator coupled to a hysteresis comparator that is coupled to a D-type Flip-Flop being driven by a master clock, F s , a successive-approximation-register (SAR) control logic, and a clock generator module that is driven by the master clock, F s , the method comprising:

modulating, using the modulation switch, SW K , an input current, I IN , to produce a scaled current, I INK , wherein the switch SW K is controlled by a modulation clock F K ;

coupling an inverting output from the D-type Flip-Flop an inverting input of the integrator using a 1-bit feedback current digital-to-analogue converter, DAC, generating, using the ΔΣ ADC, digital outputs at a non-inverting output and the inverting output of the D-type Flip-Flop based on a balanced current, I BAL , received at the inverting input of the integrator, whereby the balanced current I BAL comprises a summation of the scaled current I INK with a reference current, I REF , produced by the 1-bit feedback current DAC;

generating, using the SAR control logic, control signals based on the non-inverting outputs from the D-type Flip-Flop, a reset clock signal and the master clock F s ; and

determining, using a clock generator module, based on the control signals from the SAR control logic an optimal modulation clock F K for controlling the switch SW K .

8. The method according to claim 7 wherein the modulation switch SW K comprises:

a transmission gate switch that is body biased with a reference voltage V CM when the switch is at an OFF-state, wherein the reference voltage V CM is used as the reference voltage at the non-inverting inputs of the integrator and hysteresis comparator of the ΔΣ ADC.

9. The method according to claim 7 wherein the integrator of the ΔΣ ADC comprises:

a two-stage integrator circuit having a first and a second stage, wherein a compensation capacitor C C couples a low impedance node of the first stage to an output of the second stage.

10. The method according to claim 7 wherein the hysteresis comparator of the ΔΣ ADC comprises:

an inverter based hysteresis comparator circuit having an inverter provided at the input of the compactor circuit, wherein a threshold voltage of the inverter is similar as threshold voltages of transistors used in the comparator circuit.

11. The method according to claim 7 wherein the 1-bit feedback current DAC comprises a cascaded current mirror circuit.

12. The method according to claim 7 wherein the clock generator module comprises:

a plurality of D-type Flip Flop, logic AND gate pairs and a logic OR gate, configured in a frequency divider configuration to generate a modulation pulse.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 2, 2023
From: ZHANG, TANTAN; GAO, YUAN
To: AGENCY FOR SCIENCE, TECHNOLOGY AND RESEARCH
Reel/Frame 062577/0767 →
Priority Claims (1)
SG 10202004084S · May 4, 2020 · national
Continuity (1)
Related Publication 20230179221A1 · Jun 8, 2023