IP Library › Granted Patent US 10,371,723
Granted Patent B2
US 10,371,723 · App. 15/849,695 · Granted Aug 6, 2019

Current sensor for biomedical measurements

Inventor: Juanping Yuan (Huizhou, CN)
Assignee: SHENZHEN DANSHA TECHNOLOGY CO., LTD.
G01R19/0092G01R15/09H03K19/173H03K19/20A61B5/04A61B5/72
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Quick Facts
Patent No.
US 10,371,723
App. No.
15/849,695
Granted
Aug 6, 2019
Kind
B2
Abstract

A current sensor for biomedical measurements includes: a first amplifier; a first capacitor; a second capacitor; a first switch connected in parallel with the first capacitor; a second switch connected in parallel with the second capacitor; a second amplifier; a third capacitor; a resistor; and a switched capacitor network. The first capacitor and the second capacitor are connected in series and across a first input and output of the first amplifier. The third capacitor and the resistor are respectively connected across a first input and output of the second amplifier. The switched capacitor network is connected between the output of the first amplifier and the first input of the second amplifier.

Claims (73)

1. A current sensor for biomedical measurements comprising:

a first amplifier;

a first capacitor;

a second capacitor;

a first switch connected in parallel with the first capacitor;

a second switch connected in parallel with the second capacitor;

a second amplifier;

a third capacitor;

a resistor;

a switched capacitor network;

a first comparator;

a second comparator;

an OR gate;

a first flip-flop;

a second flip-flop; and

a third flip-flop; wherein:

the first capacitor and the second capacitor are connected in series and across a first input and output of the first amplifier;

the third capacitor and the resistor are respectively connected across a first input and output of the second amplifier;

the switched capacitor network is connected between the output of the first amplifier and the first input of the second amplifier;

the switched capacitor network comprises a fourth capacitor, a fifth capacitor, a third switch connected in parallel with the fourth capacitor, and a fourth switch connected in parallel with the fifth capacitor, the fourth capacitor and the fifth capacitor being connected in series and connected between the output of the first amplifier and the first input of the second amplifier;

a first input of the first comparator and a first input of the second comparator are connected with the output of the first amplifier;

outputs of the first comparator and the second comparator are connected to inputs of the OR gate respectively, and to clock ports of the first flip-flop and the second flip-flop;

output of the OR gate is connected to clock port of the third flip-flop;

D port of each of the first flip-flop, the second flip-flop, and the third flip-flop are connected with Q port of the flip-flop;

the first switch and the fourth switch are controlled by a first clock;

the second switch and the third switch are controlled by a second clock that is complementary to the first clock;

Q port of the third flip-flop is configured to transmit the first clock; and

Q port of the third flip-flop is configured to transmit the second clock.

2. The current sensor for biomedical measurements of claim 1 , wherein a second input of the first amplifier and a second input of the second amplifier are biased at a first reference voltage, a second input of the first comparator is biased at a second reference voltage, a second input of the second comparator is biased at a third reference voltage, V 2 >V 1 and V 2 =−V 3 .

3. A current sensor for biomedical measurements comprising:

a first amplifier;

a first capacitor;

a second capacitor;

a first switch connected in parallel with the first capacitor;

a second switch connected in parallel with the second capacitor;

a second amplifier;

a third capacitor;

a resistor; and

a switched capacitor network; wherein:

the first capacitor and the second capacitor are connected in series and across a first input and output of the first amplifier;

the third capacitor and the resistor are respectively connected across a first input and output of the second amplifier; and

the switched capacitor network is connected between the output of the first amplifier and the first input of the second amplifier.

4. The current sensor for biomedical measurements of claim 3 further comprising: a first comparator; a second comparator; an OR gate; a first flip-flop; a second flip-flop; and a third flip-flop, wherein a first input of the first comparator and a first input of the second comparator are connected with the output of the first amplifier; outputs of the first comparator and the second comparator are connected to inputs of the OR gate respectively, and to clock ports of the first flip-flop and the second flip-flop; output of the OR gate is connected to clock port of the third flip-flop; and D port of each of the first flip-flop, the second flip-flop, and the third flip-flop are connected with Q port of the flip-flop.

5. The current sensor for biomedical measurements of claim 3 , wherein the switched capacitor network comprises a fourth capacitor, a fifth capacitor, a third switch connected in parallel with the fourth capacitor, and a fourth switch connected in parallel with the fifth capacitor, the fourth capacitor and the fifth capacitor being connected in series and connected between the output of the first amplifier and the first input of the second amplifier.

6. The current sensor for biomedical measurements of claim 4 , wherein the first switch and the fourth switch are controlled by a first clock; and the second switch and the third switch are controlled by a second clock that is complementary to the first clock.

7. The current sensor for biomedical measurements of claim 6 , wherein the first clock is configured to transmit Q port of the third flip-flop; and the second clock is configured to transmit Q port of the third flip-flop.

8. The current sensor for biomedical measurements of claim 4 , wherein a second input of the first amplifier and a second input of the second amplifier are biased at a first reference voltage, a second input of the first comparator is biased at a second reference voltage, a second input of the second comparator is biased at a third reference voltage, V 2 >V 1 and V 2 =−V 3 .

9. A current sensor for biomedical measurements comprising:

a first amplifier;

a first capacitor;

a second capacitor;

a first switch connected in parallel with the first capacitor;

a second switch connected in parallel with the second capacitor;

a second amplifier;

a third capacitor;

a resistor;

a switched capacitor network;

a first comparator; a second comparator;

an OR gate;

a first flip-flop;

a second flip-flop; and

a third flip-flop; wherein:

the first capacitor and the second capacitor are connected in series and across a first input and output of the first amplifier;

the third capacitor and the resistor are respectively connected across a first input and output of the second amplifier;

the switched capacitor network is connected between the output of the first amplifier and the first input of the second amplifier;

a first input of the first comparator and a first input of the second comparator are connected with the output of the first amplifier;

outputs of the first comparator and the second comparator are connected to inputs of the OR gate respectively, and to clock ports of the first flip-flop and the second flip-flop;

output of the OR gate is connected to clock port of the third flip-flop;

D port of each of the first flip-flop, the second flip-flop, and the third flip-flop are connected with Q port of the flip-flop; and

the switched capacitor network comprises a fourth capacitor, a fifth capacitor, a third switch connected in parallel with the fourth capacitor, and a fourth switch connected in parallel with the fifth capacitor, the fourth capacitor and the fifth capacitor being connected in series and connected between the output of the first amplifier and the first input of the second amplifier.

10. The current sensor for biomedical measurements of claim 9 , wherein the first switch and the fourth switch are controlled by a first clock; and the second switch and the third switch are controlled by a second clock that is complementary to the first clock.

11. The current sensor for biomedical measurements of claim 10 , wherein the first clock is configured to transmit Q port of the third flip-flop; and the second clock is configured to transmit Q port of the third flip-flop.

12. The current sensor for biomedical measurements of claim 9 , wherein a second input of the first amplifier and a second input of the second amplifier are biased at a first reference voltage, a second input of the first comparator is biased at a second reference voltage, a second input of the second comparator is biased at a third reference voltage, V 2 >V 1 and V 2 =−V 3 .

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 3, 2019
From: PINGSENSE TECHNOLOGIES LIMITED
To: SHENZHEN DANSHA TECHNOLOGY CO., LTD.
Reel/Frame 048787/0835 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2017
From: YUAN, JUANPING
To: PINGSENSE TECHNOLOGIES LIMITED
Reel/Frame 044455/0302 →
Continuity (1)
Related Publication 20180136261A1 · May 17, 2018