Patent · US12262966B2 · B2 · US
Method and circuit for supervision of protective-earth continuity in medical devices using a lock-in amplifier
- (11) Publication number
- US12262966B2
- (21) Application number
- 18/902,797
- (22) Filing date
- 2024-09-30
- (30) Priority date
- 2022-04-01
- (43) Publication date
- 2025-04-01
- (45) Date of grant
- 2025-04-01
- (51) IPC
- A61B 34/00; A61B 34/30; B25J 19/02; B25J 19/06; G01R 31/52
- (52) CPC
- (73) Assignee
- Auris Health Inc
- (72) Inventors
- Eyal AKLIVANH; Jonathan Bernard; Chase Paul HATHAWAY; Martin CARNOGURSKY
- (54) Title
- Method and circuit for supervision of protective-earth continuity in medical devices using a lock-in amplifier
- (57) Abstract
A robotic system may include an electrical ground line and a protective earth line electrically coupled to the electrical ground line. The robotic system may also include a testing circuit coupled to the protective-earth line via an isolation capacitor. The testing circuit may include a lock-in amplifier and may be configured to measure an impedance for the protective-earth line through the isolation capacitor. Methods for testing or monitoring protective-earth lines are also disclosed herein.
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Claims (20)
- A robotic system comprising: an electrical ground line; a protective-earth line electrically coupled to the electrical ground line at a first point; and a testing circuit coupled to the protective-earth line at a second point via an isolation capacitor, the testing circuit comprising a lock-in amplifier and configured to measure an impedance for the protective-earth line.
- The robotic system of claim 1, wherein the lock-in amplifier comprises: a signal generator coupled to the isolation capacitor and configured to generate waveforms with a carrier frequency; an analog mixer for combining the waveforms from the signal generator with a signal from the isolation capacitor; and a low-pass filter coupled to an output of the analog mixer.
- The robotic system of claim 2, wherein the signal generator is configured to output signals with a maximum peak current below a safety threshold.
- The robotic system of claim 1, wherein the lock-in amplifier comprises a digital signal processing (DSP) circuit.
- The robotic system of claim 1, wherein the second point is remote from the first point, and the testing circuit is configured to measure an impedance between the first point and the second point.
- The robotic system of claim 5, wherein the robotic system comprises one or more joints and wherein measuring the impedance between the first point and the second point comprises measuring an impedance through the one or more joints.
- The robotic system of claim 5, wherein: the testing circuit is a first testing circuit; the robotic system further comprises a second testing circuit coupled to the protective-earth line at a third point; and the second testing circuit is configured to measure an impedance between the first point and the third point.
- The robotic system of claim 1, further comprising: a second protective-earth line electrically coupled to the electrical ground line at a third point; and wherein the testing circuit is configured to: measure a first impedance between the second point and the first point; and measure a second impedance between the second point and the third point.
- The robotic system of claim 8, wherein: the isolation capacitor is a first isolation capacitor; the testing circuit is coupled to the second protective-earth line via a second isolation capacitor; and the testing circuit further comprises a switching component for selectively coupling the lock-in amplifier to the first isolation capacitor or the second isolation capacitor.
- The robotic system of claim 1, further comprising a controller coupled to the testing circuit, wherein the controller is configured to: compare the impedance for the protective-earth line to a baseline impedance value; identify a short between the protective-earth line and the electrical ground line in accordance with the impedance for the protective-earth line being below the baseline impedance value; and identify a discontinuity between the protective-earth line and the electrical ground line in accordance with the impedance for the protective-earth line being above the baseline impedance value.
- The robotic system of claim 10, further comprising a user interface configured to present information about identified shorts and identified discontinuities to an operator of the robotic system.
- The robotic system of claim 1, wherein the robotic system is configured to periodically test the protective-earth line using the testing circuit.
- The robotic system of claim 1, wherein the robotic system is configured to test the protective-earth line using the testing circuit as part of a start-up sequence for the robotic system.
- The robotic system of claim 1, further comprising a metal enclosure, wherein the protective-earth line is electrically coupled to the metal enclosure.
- A method for testing a protective-earth line of a robotic system, the method comprising: applying a test signal to the protective-earth line via an isolation capacitor electrically coupled to the protective-earth line; obtaining a signal from the protective-earth line via the isolation capacitor in response to the test signal; measuring an impedance for the protective-earth line based on the obtained signal, the measuring performed by a lock-in amplifier; comparing the measured impedance with a baseline impedance; and providing information indicating the outcome of the comparison.
- The method of claim 15, wherein the measuring comprises: generating waveforms with a carrier frequency via a signal generator; combining the waveforms from the signal generator with a signal through the isolation capacitor via an analog mixer; and filtering an output of the analog mixer via a low-pass filter.
- The method of claim 15, wherein measuring the impedance for the protective-earth line comprises measuring an impedance through the isolation capacitor to an electrical ground line electrically coupled to the protective-earth line.
- The method of claim 17, wherein the comparing comprises: identifying a short between the protective-earth line and the electrical ground line in accordance with the measured impedance being below the baseline impedance; and identifying a discontinuity between the protective-earth line and the electrical ground line in accordance with the measured impedance being above the baseline impedance.
- A robotic system comprising: an electrical ground line; a protective-earth line; and a testing circuit coupled to the protective-earth line via an isolation capacitor electrically coupled to the protective-earth line and configured to measure an impedance through the isolation capacitor to the electrical ground line via the protective-earth line.
- The robotic system of claim 19, wherein the testing circuit includes a lock-in amplifier.
Description
This application is a continuation of International Patent Application No. PCT/IB2023/053262, filed Mar. 31, 2023, which claims priority to U.S. Provisional Patent Application No. 63/326,653, filed Apr. 1, 2022, the disclosures of each of which are incorporated by reference herein, in their entirety.
The systems and methods disclosed herein are directed to systems with protective-earth connections, and more particularly to medical systems having protective-earth connections.
A robotically enabled medical system is capable of performing a variety of medical procedures, including both minimally invasive procedures, such as laparoscopy, and non-invasive procedures, such as endoscopy (e.g., bronchoscopy, ureteroscopy, gastroscopy, etc.). Such robotic medical systems may include a metal enclosure and robotic arms configured to control the movement of medical tool(s) during a given medical procedure.
The systems, methods and devices of this disclosure each have several innovative aspects, no single one of which is solely responsible for the desirable attributes disclosed herein.
Medical devices with metal enclosures require a functional protective-earth (PE) connection to protect patients and operators from receiving an electrical shock. To achieve a functional PE connection, the metal enclosure can be connected to an electrical ground (GND) line.
It can be beneficial to have a means of testing the PE connection(s) during the lifetime of a medical device to detect whether the PE connection(s) have degraded over time, particularly for medical devices having few connections between the metal enclosure and the GND line.
Citations (5)
- JPS58143738A
- JPH067703Y2
- JPH09327512A
- JP2018079340A
- CN113400322A
Record as JSON
{
"publication_number": "US12262966B2",
"country": "US",
"kind": "B2",
"title": "Method and circuit for supervision of protective-earth continuity in medical devices using a lock-in amplifier",
"abstract": "A robotic system may include an electrical ground line and a protective earth line electrically coupled to the electrical ground line. The robotic system may also include a testing circuit coupled to the protective-earth line via an isolation capacitor. The testing circuit may include a lock-in amplifier and may be configured to measure an impedance for the protective-earth line through the isolation capacitor. Methods for testing or monitoring protective-earth lines are also disclosed herein.",
"claims": [
"1. A robotic system comprising: an electrical ground line; a protective-earth line electrically coupled to the electrical ground line at a first point; and a testing circuit coupled to the protective-earth line at a second point via an isolation capacitor, the testing circuit comprising a lock-in amplifier and configured to measure an impedance for the protective-earth line.",
"2. The robotic system of claim 1, wherein the lock-in amplifier comprises: a signal generator coupled to the isolation capacitor and configured to generate waveforms with a carrier frequency; an analog mixer for combining the waveforms from the signal generator with a signal from the isolation capacitor; and a low-pass filter coupled to an output of the analog mixer.",
"3. The robotic system of claim 2, wherein the signal generator is configured to output signals with a maximum peak current below a safety threshold.",
"4. The robotic system of claim 1, wherein the lock-in amplifier comprises a digital signal processing (DSP) circuit.",
"5. The robotic system of claim 1, wherein the second point is remote from the first point, and the testing circuit is configured to measure an impedance between the first point and the second point.",
"6. The robotic system of claim 5, wherein the robotic system comprises one or more joints and wherein measuring the impedance between the first point and the second point comprises measuring an impedance through the one or more joints.",
"7. The robotic system of claim 5, wherein: the testing circuit is a first testing circuit; the robotic system further comprises a second testing circuit coupled to the protective-earth line at a third point; and the second testing circuit is configured to measure an impedance between the first point and the third point.",
"8. The robotic system of claim 1, further comprising: a second protective-earth line electrically coupled to the electrical ground line at a third point; and wherein the testing circuit is configured to: measure a first impedance between the second point and the first point; and measure a second impedance between the second point and the third point.",
"9. The robotic system of claim 8, wherein: the isolation capacitor is a first isolation capacitor; the testing circuit is coupled to the second protective-earth line via a second isolation capacitor; and the testing circuit further comprises a switching component for selectively coupling the lock-in amplifier to the first isolation capacitor or the second isolation capacitor.",
"10. The robotic system of claim 1, further comprising a controller coupled to the testing circuit, wherein the controller is configured to: compare the impedance for the protective-earth line to a baseline impedance value; identify a short between the protective-earth line and the electrical ground line in accordance with the impedance for the protective-earth line being below the baseline impedance value; and identify a discontinuity between the protective-earth line and the electrical ground line in accordance with the impedance for the protective-earth line being above the baseline impedance value.",
"11. The robotic system of claim 10, further comprising a user interface configured to present information about identified shorts and identified discontinuities to an operator of the robotic system.",
"12. The robotic system of claim 1, wherein the robotic system is configured to periodically test the protective-earth line using the testing circuit.",
"13. The robotic system of claim 1, wherein the robotic system is configured to test the protective-earth line using the testing circuit as part of a start-up sequence for the robotic system.",
"14. The robotic system of claim 1, further comprising a metal enclosure, wherein the protective-earth line is electrically coupled to the metal enclosure.",
"15. A method for testing a protective-earth line of a robotic system, the method comprising: applying a test signal to the protective-earth line via an isolation capacitor electrically coupled to the protective-earth line; obtaining a signal from the protective-earth line via the isolation capacitor in response to the test signal; measuring an impedance for the protective-earth line based on the obtained signal, the measuring performed by a lock-in amplifier; comparing the measured impedance with a baseline impedance; and providing information indicating the outcome of the comparison.",
"16. The method of claim 15, wherein the measuring comprises: generating waveforms with a carrier frequency via a signal generator; combining the waveforms from the signal generator with a signal through the isolation capacitor via an analog mixer; and filtering an output of the analog mixer via a low-pass filter.",
"17. The method of claim 15, wherein measuring the impedance for the protective-earth line comprises measuring an impedance through the isolation capacitor to an electrical ground line electrically coupled to the protective-earth line.",
"18. The method of claim 17, wherein the comparing comprises: identifying a short between the protective-earth line and the electrical ground line in accordance with the measured impedance being below the baseline impedance; and identifying a discontinuity between the protective-earth line and the electrical ground line in accordance with the measured impedance being above the baseline impedance.",
"19. A robotic system comprising: an electrical ground line; a protective-earth line; and a testing circuit coupled to the protective-earth line via an isolation capacitor electrically coupled to the protective-earth line and configured to measure an impedance through the isolation capacitor to the electrical ground line via the protective-earth line.",
"20. The robotic system of claim 19, wherein the testing circuit includes a lock-in amplifier."
],
"description_excerpt": "This application is a continuation of International Patent Application No. PCT/IB2023/053262, filed Mar. 31, 2023, which claims priority to U.S. Provisional Patent Application No. 63/326,653, filed Apr. 1, 2022, the disclosures of each of which are incorporated by reference herein, in their entirety.\n\nThe systems and methods disclosed herein are directed to systems with protective-earth connections, and more particularly to medical systems having protective-earth connections.\n\nA robotically enabled medical system is capable of performing a variety of medical procedures, including both minimally invasive procedures, such as laparoscopy, and non-invasive procedures, such as endoscopy (e.g., bronchoscopy, ureteroscopy, gastroscopy, etc.). Such robotic medical systems may include a metal enclosure and robotic arms configured to control the movement of medical tool(s) during a given medical procedure.\n\nThe systems, methods and devices of this disclosure each have several innovative aspects, no single one of which is solely responsible for the desirable attributes disclosed herein.\n\nMedical devices with metal enclosures require a functional protective-earth (PE) connection to protect patients and operators from receiving an electrical shock. To achieve a functional PE connection, the metal enclosure can be connected to an electrical ground (GND) line.\n\nIt can be beneficial to have a means of testing the PE connection(s) during the lifetime of a medical device to detect whether the PE connection(s) have degraded over time, particularly for medical devices having few connections between the metal enclosure and the GND line.",
"cpc": [
"A61B 34/30",
"A61B 2017/00477",
"A61B 2017/00725",
"A61B 2034/301",
"A61B 34/25",
"A61B 34/37",
"B25J 19/0075",
"B25J 19/02",
"B25J 19/06",
"G01R 27/20",
"G01R 31/52"
],
"ipc": [
"A61B 34/00",
"A61B 34/30",
"B25J 19/02",
"B25J 19/06",
"G01R 31/52"
],
"assignees": [
"Auris Health Inc"
],
"inventors": [
"Eyal AKLIVANH",
"Jonathan Bernard",
"Chase Paul HATHAWAY",
"Martin CARNOGURSKY"
],
"filing_date": "2024-09-30",
"publication_date": "2025-04-01",
"grant_date": "2025-04-01",
"priority_date": "2022-04-01",
"application_number": "US-202418902797-A",
"family_id": "88199943",
"cited_by_count": 0,
"citations": [
"JPS58143738A",
"JPH067703Y2",
"JPH09327512A",
"JP2018079340A",
"CN113400322A"
]
}
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