MLchartDataset catalogue

Patent · US10603799B2 · B2 · US

System for use with encoded end effectors and related methods of use

(11) Publication number
US10603799B2
(21) Application number
15/639,544
(22) Filing date
2017-06-30
(30) Priority date
2017-06-30
(43) Publication date
2020-03-31
(45) Date of grant
2020-03-31
(51) IPC
A46B 13/00; A46B 13/02; A46B 15/00; A61B 17/00; A61C 17/22; B25J 13/08
(52) CPC
  • B25J Manipulators; chambers provided with manipulation devices: 13/087
  • A46B Brushes: 13/008, 13/02, 15/0004, 2200/102
  • A61C Dentistry; apparatus or methods for oral or dental hygiene: 17/221
(73) Assignee
LOreal SA
(72) Inventors
Scott Straka
(54) Title
System for use with encoded end effectors and related methods of use
(57) Abstract

Systems configured to couple with and identify encoded end effectors and related methods of use are described.

Full text
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Claims (20)

  1. A system, comprising: a first sensor configured to detect a presence or absence of a detectable element associated with a detachable end effector operably coupled to a motor; and a computing arrangement including circuitry configured to actuate the motor with a known force and to determine an inertia of the end effector.
  2. The system of claim 1, wherein the first sensor is configured to detect an attribute associated with the detectable element chosen from a location, a polarity, a magnetic susceptibility, a magnitude of a magnetic field, and a capacitance.
  3. The system of claim 1, wherein the first sensor is configured to detect an attribute associated with two or more detectable elements chosen from a geometric configuration, a location, a polarity, a magnetic susceptibility, a magnitude of a magnetic field, and a capacitance.
  4. The system of claim 1, wherein the computing arrangement includes circuitry configured to actuate the motor and to determine the inertia of the end effector based on one or more signal parameters associated with actuation of the motor chosen from a signal amplitude, a signal frequency, and a signal waveform shape.
  5. The system of claim 4, wherein the computing arrangement including circuitry configured to actuate the motor and to determine an inertia of the end effector is configured to determine a rotational inertia of the end effector, and wherein the computing arrangement is configured to: actuate the motor with the known force to oscillate the end effector about a starting position; count the number of times the end effector passes the starting position in a given time; and calculate the rotational inertia of the end effector.
  6. The system of claim 4, the computing arrangement including circuitry configured to actuate the motor and to determine an inertia of the end effector is configured to determine a rotational inertia of the end effector, and wherein the computing arrangement is configured to: actuate the motor with the known force to oscillate the end effector about a starting position; measure a maximum amplitude of the end effector oscillation after a given time; and calculate the rotational inertia of the end effector.
  7. The system of claim 1, wherein the computing arrangement includes circuitry configured to modulate one or more of an operating frequency, an operating duration, an operating intensity, a haptic protocol, a treatment protocol, and a duty cycle responsive to one or more inputs indicative of a detected element and a determined inertia of the end effector.
  8. The system of claim 7, wherein the one or more inputs indicative of a detected element are an attribute associated with the detectable element.
  9. The system of claim 1, wherein the detectable element includes at least one magnet, and wherein the first sensor is chosen from a Hall effect sensor, a capacitance sensor, an inductance sensor, and a magnetic susceptibility.
  10. The system of claim 1, further comprising a second sensor associated with the system, wherein the second sensor is configured to detect a presence or absence of a detectable element associated with the end effector.
  11. The system of claim 10, wherein the second sensor is configured to detect an attribute associated with the detectable element chosen from a location, a polarity, a magnetic susceptibility, a magnitude of the magnetic field, and a capacitance.
  12. The system of claim 10, wherein the number of sensors is greater than the number of detectable elements.
  13. The system of claim 1, wherein the computing arrangement is configured to identify the end effector based on the presence or absence of the detectable element and the inertia of the end effector.
  14. The system of claim 1, wherein the end effector is a first end effector, wherein the motor is configured to operably couple to a second end effector when the first end effector is not in use, and wherein the computing arrangement includes circuitry configured to modulate one or more of an operating frequency, an operating duration, an operating intensity, a haptic protocol, a treatment protocol, and a duty cycle responsive to one or more inputs indicative of a detected element and a determined inertia of the second end effector.
  15. The system of claim 14, wherein the second end effector includes a second detectable element different from the detectable element of the first end effector; and wherein the first sensor is configured to detect signals indicative of the presence or absence of the second detectable element.
  16. The system of claim 14, wherein the second end effector has an inertia different from the first end effector.
  17. An appliance, comprising: an end effector operably coupled to a motor, the end effector including a number of detectable elements greater than or equal to zero; a plurality of sensors configured to detect the presence or absence of the number of detectable elements; and a computing arrangement including circuitry configured to actuate the motor with a known force and to determine an inertia of the end effector; wherein the computing arrangement is configured to identify the end effector based on a measurand associated with the number detectable elements and the inertia of the end effector.
  18. A method of identifying an end effector coupled to a motor of a system comprising: actuating the motor with a known force; generating inertia information associated with the end effector; and determining the identity of the end effector based on the presence or absence of a number of detectable elements associated with the end effector and at least one input indicative of the inertia of the end effector.
  19. The method of claim 18, wherein generating inertia information associated with the end effector includes generating rotational inertia information; and wherein the rotational inertia information is generated by: actuating the motor with the known force to oscillate the end effector about a starting position; counting the number of times the end effector passes the starting position in a given time; and calculating the rotational inertia of the end effector.
  20. The method of claim 18, wherein generating inertia information associated with the end effector includes generating rotational inertia information; and wherein the rotational inertia information is generated by: actuating the motor with the known force to oscillate the end effector about a starting position; measuring a maximum amplitude of the end effector oscillation decay after a given time; and calculating the rotational inertia of the end effector.

Description

Examples of the present disclosure seek to address the problems associated with identifying an end effector coupled to a system or appliance, such as a handheld personal care appliance, and operating according to protocols or parameters corresponding to the identified end effector. In this regard, examples described herein relate to systems and appliances that include a sensor configured to detect a presence or absence of a detectable element associated with a detachable end effector operably coupleable to a motor and a computing arrangement including circuitry configured to actuate the motor and to determine an inertia of the end effector. Such systems are configured to identify an end effector coupled to the system and operate in a manner and according to parameters corresponding to the identified end effector coupled to the system.

In an aspect, the present disclosure provides a system generally including a first sensor configured to detect a presence or absence of a detectable element associated with a detachable end effector operably coupled to a motor; and a computing arrangement including circuitry configured to actuate the motor and to determine an inertia of the end effector.

Citations (13)

  • US4900252A
  • US5749885A
  • US6899538B2
  • US8443475B2
  • US20050000044A1
  • US8035487B2
  • US20080209650A1
  • US20130206814A1
  • US20150305969A1
  • DE102013202580A1
  • US20170049278A1
  • WO2017017541A1
  • US20170095070A1
Record as JSON
{
  "publication_number": "US10603799B2",
  "country": "US",
  "kind": "B2",
  "title": "System for use with encoded end effectors and related methods of use",
  "abstract": "Systems configured to couple with and identify encoded end effectors and related methods of use are described.",
  "claims": [
    "1. A system, comprising: a first sensor configured to detect a presence or absence of a detectable element associated with a detachable end effector operably coupled to a motor; and a computing arrangement including circuitry configured to actuate the motor with a known force and to determine an inertia of the end effector.",
    "2. The system of claim 1, wherein the first sensor is configured to detect an attribute associated with the detectable element chosen from a location, a polarity, a magnetic susceptibility, a magnitude of a magnetic field, and a capacitance.",
    "3. The system of claim 1, wherein the first sensor is configured to detect an attribute associated with two or more detectable elements chosen from a geometric configuration, a location, a polarity, a magnetic susceptibility, a magnitude of a magnetic field, and a capacitance.",
    "4. The system of claim 1, wherein the computing arrangement includes circuitry configured to actuate the motor and to determine the inertia of the end effector based on one or more signal parameters associated with actuation of the motor chosen from a signal amplitude, a signal frequency, and a signal waveform shape.",
    "5. The system of claim 4, wherein the computing arrangement including circuitry configured to actuate the motor and to determine an inertia of the end effector is configured to determine a rotational inertia of the end effector, and wherein the computing arrangement is configured to: actuate the motor with the known force to oscillate the end effector about a starting position; count the number of times the end effector passes the starting position in a given time; and calculate the rotational inertia of the end effector.",
    "6. The system of claim 4, the computing arrangement including circuitry configured to actuate the motor and to determine an inertia of the end effector is configured to determine a rotational inertia of the end effector, and wherein the computing arrangement is configured to: actuate the motor with the known force to oscillate the end effector about a starting position; measure a maximum amplitude of the end effector oscillation after a given time; and calculate the rotational inertia of the end effector.",
    "7. The system of claim 1, wherein the computing arrangement includes circuitry configured to modulate one or more of an operating frequency, an operating duration, an operating intensity, a haptic protocol, a treatment protocol, and a duty cycle responsive to one or more inputs indicative of a detected element and a determined inertia of the end effector.",
    "8. The system of claim 7, wherein the one or more inputs indicative of a detected element are an attribute associated with the detectable element.",
    "9. The system of claim 1, wherein the detectable element includes at least one magnet, and wherein the first sensor is chosen from a Hall effect sensor, a capacitance sensor, an inductance sensor, and a magnetic susceptibility.",
    "10. The system of claim 1, further comprising a second sensor associated with the system, wherein the second sensor is configured to detect a presence or absence of a detectable element associated with the end effector.",
    "11. The system of claim 10, wherein the second sensor is configured to detect an attribute associated with the detectable element chosen from a location, a polarity, a magnetic susceptibility, a magnitude of the magnetic field, and a capacitance.",
    "12. The system of claim 10, wherein the number of sensors is greater than the number of detectable elements.",
    "13. The system of claim 1, wherein the computing arrangement is configured to identify the end effector based on the presence or absence of the detectable element and the inertia of the end effector.",
    "14. The system of claim 1, wherein the end effector is a first end effector, wherein the motor is configured to operably couple to a second end effector when the first end effector is not in use, and wherein the computing arrangement includes circuitry configured to modulate one or more of an operating frequency, an operating duration, an operating intensity, a haptic protocol, a treatment protocol, and a duty cycle responsive to one or more inputs indicative of a detected element and a determined inertia of the second end effector.",
    "15. The system of claim 14, wherein the second end effector includes a second detectable element different from the detectable element of the first end effector; and wherein the first sensor is configured to detect signals indicative of the presence or absence of the second detectable element.",
    "16. The system of claim 14, wherein the second end effector has an inertia different from the first end effector.",
    "17. An appliance, comprising: an end effector operably coupled to a motor, the end effector including a number of detectable elements greater than or equal to zero; a plurality of sensors configured to detect the presence or absence of the number of detectable elements; and a computing arrangement including circuitry configured to actuate the motor with a known force and to determine an inertia of the end effector; wherein the computing arrangement is configured to identify the end effector based on a measurand associated with the number detectable elements and the inertia of the end effector.",
    "18. A method of identifying an end effector coupled to a motor of a system comprising: actuating the motor with a known force; generating inertia information associated with the end effector; and determining the identity of the end effector based on the presence or absence of a number of detectable elements associated with the end effector and at least one input indicative of the inertia of the end effector.",
    "19. The method of claim 18, wherein generating inertia information associated with the end effector includes generating rotational inertia information; and wherein the rotational inertia information is generated by: actuating the motor with the known force to oscillate the end effector about a starting position; counting the number of times the end effector passes the starting position in a given time; and calculating the rotational inertia of the end effector.",
    "20. The method of claim 18, wherein generating inertia information associated with the end effector includes generating rotational inertia information; and wherein the rotational inertia information is generated by: actuating the motor with the known force to oscillate the end effector about a starting position; measuring a maximum amplitude of the end effector oscillation decay after a given time; and calculating the rotational inertia of the end effector."
  ],
  "description_excerpt": "Examples of the present disclosure seek to address the problems associated with identifying an end effector coupled to a system or appliance, such as a handheld personal care appliance, and operating according to protocols or parameters corresponding to the identified end effector. In this regard, examples described herein relate to systems and appliances that include a sensor configured to detect a presence or absence of a detectable element associated with a detachable end effector operably coupleable to a motor and a computing arrangement including circuitry configured to actuate the motor and to determine an inertia of the end effector. Such systems are configured to identify an end effector coupled to the system and operate in a manner and according to parameters corresponding to the identified end effector coupled to the system.\n\nIn an aspect, the present disclosure provides a system generally including a first sensor configured to detect a presence or absence of a detectable element associated with a detachable end effector operably coupled to a motor; and a computing arrangement including circuitry configured to actuate the motor and to determine an inertia of the end effector.",
  "cpc": [
    "B25J 13/087",
    "A46B 13/008",
    "A46B 13/02",
    "A46B 15/0004",
    "A46B 2200/102",
    "A61C 17/221"
  ],
  "ipc": [
    "A46B 13/00",
    "A46B 13/02",
    "A46B 15/00",
    "A61B 17/00",
    "A61C 17/22",
    "B25J 13/08"
  ],
  "assignees": [
    "LOreal SA"
  ],
  "inventors": [
    "Scott Straka"
  ],
  "filing_date": "2017-06-30",
  "publication_date": "2020-03-31",
  "grant_date": "2020-03-31",
  "priority_date": "2017-06-30",
  "application_number": "US-201715639544-A",
  "family_id": "62986158",
  "cited_by_count": 0,
  "citations": [
    "US4900252A",
    "US5749885A",
    "US6899538B2",
    "US8443475B2",
    "US20050000044A1",
    "US8035487B2",
    "US20080209650A1",
    "US20130206814A1",
    "US20150305969A1",
    "DE102013202580A1",
    "US20170049278A1",
    "WO2017017541A1",
    "US20170095070A1"
  ]
}

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