GB2583584A - Current sensor for biomedical measurements - Google Patents

Current sensor for biomedical measurements Download PDF

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Publication number
GB2583584A
GB2583584A GB2004917.7A GB202004917A GB2583584A GB 2583584 A GB2583584 A GB 2583584A GB 202004917 A GB202004917 A GB 202004917A GB 2583584 A GB2583584 A GB 2583584A
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United Kingdom
Prior art keywords
capacitor
flip
flop
amplifier
input
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Application number
GB2004917.7A
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GB202004917D0 (en
GB2583584B (en
Inventor
Yuan Juanping
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Shenzhen Dansha Technology Co Ltd
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Shenzhen Dansha Technology Co Ltd
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Priority to GB2004917.7A priority Critical patent/GB2583584B/en
Priority claimed from GB1721689.6A external-priority patent/GB2569641B/en
Publication of GB202004917D0 publication Critical patent/GB202004917D0/en
Publication of GB2583584A publication Critical patent/GB2583584A/en
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Publication of GB2583584B publication Critical patent/GB2583584B/en
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R19/00Arrangements for measuring currents or voltages or for indicating presence or sign thereof
    • G01R19/0092Arrangements for measuring currents or voltages or for indicating presence or sign thereof measuring current only
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R15/00Details of measuring arrangements of the types provided for in groups G01R17/00 - G01R29/00, G01R33/00 - G01R33/26 or G01R35/00
    • G01R15/14Adaptations providing voltage or current isolation, e.g. for high-voltage or high-current networks
    • G01R15/146Measuring arrangements for current not covered by other subgroups of G01R15/14, e.g. using current dividers, shunts, or measuring a voltage drop
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R19/00Arrangements for measuring currents or voltages or for indicating presence or sign thereof
    • G01R19/0023Measuring currents or voltages from sources with high internal resistance by means of measuring circuits with high input impedance, e.g. OP-amplifiers

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Measurement Of Current Or Voltage (AREA)

Abstract

A current sensor for biomedical measurements comprises switched capacitors 103 & 105, in series across amplifier 101, and switched capacitor network 120 between amplifiers 101, 111. Switches 107 & 109 may be controlled by complementary clocks (A, B: 211, fig. 2), e.g. switch 107 being closed while switch 109 is open so capacitor 103 is reset while 105 charges. The clock signal occurs when charging current passes a threshold determined by comparators (201 & 203, fig. 2). When input current is small and higher frequency amplifier output 111, being linearly related to input current in dependence on the capacitances involved, provides a low noise current measurement. For relatively larger current, flip-flop outputs (207 & 209, fig. 2) provide a frequency output proportional to input current. The dynamic range is therefore widened. Since no external reset or sample clock is required, bandwidth is not limited by sample rate.

Description

CURRENT SENSOR FOR BIOMEDICAL MEASUREMENTS
Field of the Patent Application
The present patent application generally relates to electronic circuits and more specifically to a current sensor for biomedical measurements.
Background
In biomedical or electrochemical measurements, the parameters to be measured typically vary cross orders of magnitude. Also, the biomedical or electrochemical processes to be measured are typically highly non-linear. As a result, these measurements demand the measuring circuit, which is typically a current sensing circuit or a current sensor, to have a dynamic range as wide as possible. The nature of biomedical or electrochemical measurements also demands the measuring circuit to be essentially low noise so that the measurement resolution above an acceptable level can be achieved. However, conventional current sensing circuits generally suffer low dynamic range or high noise introduced by ofThet or feedback mechanisms present in those current sensing circuits.
Summary
The present patent application is directed to a current sensor for biomedical measurements. In one aspect, the 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 each 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 current sensor for biomedical measurements may further include: a first comparator; a second comparator; an OR gate; a first flip-flop; a second flip-flop; and a third flip-flop. 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 respectively. Output of the OR gate is connected to clock port of the third flip-flop. D ports of each of the first flip-flop, the second flip-flop, and the third flip-flop are connected with Q ports of the first flip-flop, the second flip-flop and the third flip-flop respectively.
The switched capacitor network may include 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.
The first switch and the fourth switch may be controlled by a first clock; and the second switch 20 and the third switch may be controlled by a second clock that is complementary to the first clock. The Q port of the third flip-flop may be configured to transmit the first clock; and Q port of the third flip-flop may be configured to transmit the second clock.
A second input of the first amplifier and a second input of the second amplifier may be biased at a first reference voltage, a second input of the first comparator may be biased at a second reference voltage, a second input of the second comparator is biased at a third reference voltage, V2> VI and V2 = -V3.
Brief Description of the Drawings
FIG. 1 is a schematic circuit diagram of a portion of a current sensor for biomedical measurements in accordance with an embodiment of the present patent application.
FIG. 2 is a schematic circuit diagram of another portion of the current sensor for biomedical measurements as depicted in FIG. 1.
Detailed Description
Reference will now be made in detail to a preferred embodiment of the current sensor for biomedical measurements disclosed in the present patent application, examples of which are also provided in the following description. Exemplary embodiments of the current sensor for biomedical measurements disclosed in the present patent application are described in detail, although it will be apparent to those skilled in the relevant art that some features that are not particularly important to an understanding of the current sensor for biomedical measurements may not be shown for the sake of clarity.
Furthermore, it should be understood that the current sensor for biomedical measurements disclosed in the present patent application is not limited to the precise embodiments described below and that various changes and modifications thereof may be effected by one skilled in the art without departing from the spirit or scope of the protection. For example, elements and/or features of different illustrative embodiments may be combined with each other and/or substituted for each other within the scope of this disclosure.
FIG. 1 is a schematic circuit diagram of a portion of a current sensor for biomedical measurements in accordance with an embodiment of the present patent application. Referring to FIG. 1, the current sensor for biomedical measurements includes a first amplifier 101, a first capacitor 103, a second capacitor 105, a first switch 107 connected in parallel with the first capacitor 103, a second switch 109 connected in parallel with the second capacitor 105, a second amplifier 111, a third capacitor 113, a resistor 115, and a switched capacitor network 120.
The first capacitor 103 and the second capacitor 105 are connected in series and across a first input (IN) and the output (Vx) of the first amplifier 101. The third capacitor 113 and the resistor 115 are each connected across a first input (Vy) and the output (OUT1) of the second amplifier 111.
The switched capacitor network 120 is connected between the output (Vx) of the first amplifier 101 and the first input (Vy) of the second amplifier 111. The switched capacitor network 120 includes a fourth capacitor 121, a fifth capacitor 123, a third switch 125 connected in parallel with the fourth capacitor 121, and a fourth switch 127 connected in parallel with the fifth capacitor 123. The fourth capacitor 121 and the fifth capacitor 123 are connected in series and connected between the output (Vx) of the first amplifier 101 and the first input (Vy) of the second amplifier 111.
FIG. 2 is a schematic circuit diagram of another portion of the current sensor for biomedical measurements as depicted in FIG. 1. Referring to FIG. 2, this portion of the current sensor circuit includes a first comparator 201, a second comparator 203, an OR gate 205, a first flip-flop 207, a second flip-flop 209, and a third flip-flop 211. A first input of the first comparator 201 and a first input of the second comparator 203 are connected with the output (Vx) of the first amplifier 101. The outputs of the first comparator 201 and the second comparator 203 are connected to inputs of the OR gate 205 respectively, and to clock ports of the first flip-flop 207 and the second flip-flop 209 respectively. The output of the OR gate 205 is connected to the clock port of the third flip-flop 211. For each of the first flip-flop 207, the second flip-flop 209, and the third flip-flop 211, D port of flip-flop is connected with Q port of the flip-flop.
In this embodiment, a second input of the first amplifier 101 and a second input of the second amplifier 111 are biased at a first reference voltage Vl. A second input of the first comparator 201 is biased at a second reference voltage V2. A second input of the second comparator 203 is biased at a third reference voltage V3. In this embodiment, V2 > VI and V2 = -V3.
The first switch 107 and the fourth switch 127 are controlled by a first clock A. The second switch 109 and the third switch 125 are controlled by a second clock B. The second clock B is complementary to the first clock A. In this embodiment, tri port (CLOCK A) of the third flip-flop 211 is configured to transmit the first clock A. Q port (CLOCK B) of the third flip-flop 211 is configured to transmit the second clock B. When the first clock A is high ("1"), and the second clock B is low ("0"), the first switch 107 is closed while the second switch 109 is open. Therefore, the first capacitor 103 is reset while the second capacitor 105 is charging. In the same period, the fourth switch 127 is closed while the third switch 125 is open. Therefore, the fifth capacitor 123 is reset while the fourth capacitor 121 is charging.
When the first clock A is low ("0"), and the second clock B is high ("1"), the first switch 107 is open while the second switch 109 is closed. Therefore, the first capacitor 103 is charging while the second capacitor 105 is reset. In the same period, the fourth switch 127 is open while the third switch 125 is closed. Therefore, the fifth capacitor 123 is charging while the fourth capacitor 121 is reset.
In the aforementioned charge conserving configuration, electrical charges for charging the capacitors 103, 105, 121, 123 are locally provided instead of being provided by the amplifiers 101 and 111. The operations of the capacitors are much faster than the settling time of the amplifiers. Therefore, reset transients and recovery time of the circuit are minimized.
The output (OUT]) of the second amplifier 111 is a first output port of the current sensor for biomedical measurements, and is configured to output a voltage that is linearly related to the current IN at the first input (IN). More specifically, VOLT I = VI + C1-IN, where CI is a constant determined by the first, second, fourth, fifth capacitors 103, 105, 121, 123 and the resistor 115.
The Q port (OUT2) of the first flip-flop 207 or the Q port (OUT3) of the second flip-flop 209 is configured to output a digital signal with a frequency being proportional to the current IN at the first input (IN), depending on the direction of the current hN. More specifically, the output (Vx) of the first amplifier 101 periodically increases linearly with time until it reaches V2 or V3. When Vx reaches V2 or V3, the first comparator 201 or the second comparator 203 is configured to output a digital "1", which inverts the output at the ports CLOCK A, CLOCK B, and OUT2 (or OUT3) and resets Vx to zero. Within each period, the rate at which the output (Vx) of the first amplifier 101 increases with time is proportional to IN, therefore, the frequency of the signal output by OUT2 (or OUT3) is proportional to ITN. The Q port (OUT2) of the first flip-flop 207 and the Q port (OUT3) of the second flip-flop 209 thus serve as a second and a third output ports of the current sensor for biomedical measurements.
In this embodiment, for the current IN that is relatively small and of higher frequency, the output (OUT1) of the second amplifier 111, as the first output port of the current sensor, provides a measurement of the current with relatively low noise. For a relatively large current IN, the second or the third output port of the current sensor for biomedical measurements provides a frequency output that is proportional to the current 1IN. Therefore, the dynamic range of the current sensor for biomedical measurements is greatly widened. In addition, the current sensor for biomedical measurements provided by the embodiment does not require any external reset clock or sample clock, and therefore bandwidth of the current sensor is not limited by any sample rate.
While the present patent application has been shown and described with particular references to a number of embodiments thereof, it should be noted that various other changes or modifications may be made without departing from the scope of the present invention.

Claims (25)

  1. What is claimed is: 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 comparator, the second comparator, the OR gate, the first flip-flop, the second flip-flop, and the third flip-flop form a circuit with a first input of the first comparator and a first input of the second comparator being connected with the output of the first amplifier; 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 each 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.
  2. 2. The current sensor for biomedical measurements of claim 1, wherein 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 respectively.
  3. 3. The current sensor for biomedical measurements of claim 1, 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.
  4. 4. The current sensor for biomedical measurements of claim 3, 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.
  5. 5. The current sensor for biomedical measurements of claim 4, wherein C7. 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.
  6. 6. The current sensor for biomedical measurements of claim 2, wherein a second input of the first amplifier and a second input of the second amplifier are biased at a first reference voltage (V1); a second input of the first comparator is biased at a second reference voltage (V2); and a second input of the second comparator is biased at a third reference voltage (V3); wherein V2 > V1 and V2 = -V3.
  7. 7. The current sensor for biomedical measurements of claim 2, wherein output of the OR gate is connected to clock port of the third flip-flop.
  8. 8. The current sensor for biomedical measurements of claim 7, wherein D ports of each of the first flip-flop, the second flip-flop, and the third flip-flop are connected with ports of the first flip-flop, the second flip-flop and the third flip-flop respectively.
  9. 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; and a circuit connected with the output of the first amplifier; 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 each 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; and the circuit comprises at least a comparator and at least a flip-flop.
  10. 10. The current sensor for biomedical measurements of claim 9, wherein the circuit comprises: a first comparator; a second comparator; an OR gate; a first flip-flop; a second flip-flop; and a third flip-flop.
  11. 11. The current sensor for biomedical measurements of claim 10, 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.
  12. 12. The current sensor for biomedical measurements of claim 11, wherein 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 respectively; output of the OR gate is connected to clock port of the third flip-flop; and D ports of each of the first flip-flop, the second flip-flop, and the third flip-flop are connected with (7 ports of the first flip-flop, the second flip-flop and the third flip-flop respectively.
  13. 13. The current sensor for biomedical measurements of claim 10, 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.
  14. 14. The current sensor for biomedical measurements of claim 13, 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.
  15. 15. The current sensor for biomedical measurements of claim 14, wherein 7 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.
  16. 16. The current sensor for biomedical measurements of claim 10, wherein a second input of the first amplifier and a second input of the second amplifier are biased at a first reference voltage (Vi); a second input of the first comparator is biased at a second reference voltage (V2); and a second input of the second comparator is biased at a third reference voltage (V3); wherein V2 > V1 and V2 = -V3.
  17. 17. 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 providing a first output of the current sensor; 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 each 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; and the output of the first amplifier is connected with a circuit, the circuit being configured to provide a second and a third outputs of the current sensor.
  18. 18. The current sensor for biomedical measurements of claim 17, wherein the circuit comprises a first comparator; a second comparator; an OR gate; a first flip-flop; a second flip-flop; and a third flip-flop.
  19. 19. The current sensor for biomedical measurements of claim 18, 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.
  20. 20. The current sensor for biomedical measurements of claim 19, wherein 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 respectively; output of the OR gate is connected to clock port of the third flip-flop; and D ports of each of the first flip-flop, the second flip-flop, and the third flip-flop are connected with Q ports of the first flip-flop, the second flip-flop and the third flip-flop respectively.
  21. 21. The current sensor for biomedical measurements of claim 18, 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.
  22. 22. The current sensor for biomedical measurements of claim 21, wherein the fourth capacitor and the fifth capacitor are connected in series and connected between the output of the first amplifier and the first input of the second amplifier.
  23. 23. The current sensor for biomedical measurements of claim 22, 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.
  24. 24. The current sensor for biomedical measurements of claim 23, wherein 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.
  25. 25. The current sensor for biomedical measurements of claim 18, wherein a second input of the first amplifier and a second input of the second amplifier are biased at a first reference voltage (V1); a second input of the first comparator is biased at a second reference voltage (V2); and a second input of the second comparator is biased at a third reference voltage (V3); wherein V2 > V1 and V2 = -V3.
GB2004917.7A 2017-12-22 2017-12-22 Current sensor for biomedical measurements Expired - Fee Related GB2583584B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
GB2004917.7A GB2583584B (en) 2017-12-22 2017-12-22 Current sensor for biomedical measurements

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
GB2004917.7A GB2583584B (en) 2017-12-22 2017-12-22 Current sensor for biomedical measurements
GB1721689.6A GB2569641B (en) 2017-12-22 2017-12-22 Current sensor for biomedical measurements

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GB202004917D0 GB202004917D0 (en) 2020-05-20
GB2583584A true GB2583584A (en) 2020-11-04
GB2583584B GB2583584B (en) 2021-04-28

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Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7102365B1 (en) * 2005-04-01 2006-09-05 Freescale Semiconductor, Inc. Apparatus for current sensing
WO2009060361A2 (en) * 2007-11-05 2009-05-14 Koninklijke Philips Electronics N.V. Current integrator with wide dynamic range
CN102435864A (en) * 2011-11-22 2012-05-02 常熟市董浜镇华进电器厂 Current sensor capacitance measurement circuit

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7102365B1 (en) * 2005-04-01 2006-09-05 Freescale Semiconductor, Inc. Apparatus for current sensing
WO2009060361A2 (en) * 2007-11-05 2009-05-14 Koninklijke Philips Electronics N.V. Current integrator with wide dynamic range
CN102435864A (en) * 2011-11-22 2012-05-02 常熟市董浜镇华进电器厂 Current sensor capacitance measurement circuit

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GB2583584B (en) 2021-04-28

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