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Patent · US9846077B2 · B2 · US

Devices and methods for analyzing granular samples

(11) Publication number
US9846077B2
(21) Application number
14/744,778
(22) Filing date
2015-06-19
(30) Priority date
2015-01-26
(43) Publication date
2017-12-19
(45) Date of grant
2017-12-19
(51) IPC
G01N 21/01; G01N 23/00; G01N 35/10; B01D 46/00; B01D 46/42; B07C 5/00; G01J 3/00; G01J 3/06; G01J 3/10; G01J 3/42; G01J 3/44; G01N 1/06; G01N 21/25; G01N 21/33; G01N 21/3504; G01N 21/3577; G01N 21/65; G01N 33/15
(52) CPC
  • G01J Measurement of intensity, velocity, spectral content, polarisation, phase or pulse characteristics of infrared, visible or ultraviolet light; colorimetry; radiation pyrometry: 3/42, 3/00, 3/0202, 3/0205, 3/0237, 3/0267, 3/0286, 3/0291, 3/06, 3/10, 3/2823, 3/44
  • B01D Separation: 46/0002, 46/42
  • G01N Investigating or analysing materials by determining their chemical or physical properties: 1/06, 2021/0106, 21/01, 21/25, 21/253, 21/33, 21/3504, 21/3577, 21/65, 2201/023, 2201/0231, 23/00, 33/15, 35/10
(73) Assignee
H2optx Inc
(72) Inventors
Rudolf J. Hofmeister; Donald A. Ice; Scott W. Tandy
(54) Title
Devices and methods for analyzing granular samples
(57) Abstract

In some aspects, a device for apportioning granular samples includes a sample feeder defining a conduit, the conduit including a first opening to receive the granular samples and a second opening. The device includes a shuttle operably coupled to the sample feeder to receive the granular samples from the conduit via the second opening. The shuttle is configured to apportion the granular samples to incrementally enter a sample chamber to be analyzed. The device includes an outlet conduit fluidly coupled to the sample chamber and configured to permit the sample chamber to be evacuated.

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Claims (16)

  1. A system comprising: a device for apportioning granular samples comprising: a sample feeder defining a conduit, the conduit including a first opening to receive the granular samples and a second opening; a shuttle operably coupled to the sample feeder to receive the granular samples from the conduit via the second opening, the shuttle configured to apportion the granular samples to incrementally enter a sample chamber to be analyzed; and an outlet conduit fluidly coupled to the sample chamber and configured to permit the sample chamber to be evacuated; and a hyperspectral analyzation subassembly electromagnetically coupled to the device, the hyperspectral analyzation subassembly configured to obtain information for at least portions of the granular samples in the sample chamber, the hyperspectral analyzation subassembly comprising: one or more emitters configured to generate electromagnetic radiation electromagnetically coupled to the sample chamber; one or more sensors configured to detect electromagnetic radiation electromagnetically coupled to the sample chamber; an electromagnetically transmissive window defining at least a portion of the sample chamber, wherein at least one of the one or more sensors is configured to detect electromagnetic radiation from the sample chamber via the window; and an analyzation actuation subassembly configured to actuate at least a portion of the hyperspectral analyzation subassembly in one or more directions of movement with respect to the sample chamber.
  2. The system of claim 1, the device further comprising an actuation subassembly configured to actuate the shuttle in one or more directions of movement, the actuation subassembly comprising: a first actuator configured to actuate the shuttle in a first direction of movement between a first position and a second position; and a first slide configured to permit the shuttle to be moved between the first position and the second position; wherein the shuttle positioned in the first position does not permit the granular sample portions to enter the sample chamber, and the shuttle positioned in the second position permits at least one of the granular sample portions to enter the sample chamber.
  3. The system of claim 2, wherein the shuttle at least partially defines a shuttle passage sized and shaped to correspond with the size and shape of the sample chamber.
  4. The system of claim 3, wherein the shuttle passage extends at least partially through the shuttle.
  5. The system of claim 1, further comprising an evacuation subassembly fluidly coupled to the outlet conduit and comprising: one or more vacuum elements configured to generate a pressure differential to evacuate the sample chamber; and a switch configured to selectively couple the one or more vacuums to one or more outlet channels to selectively evacuate the sample chamber into one or more outlet channels; wherein the sample chamber is selectively evacuated based on one or more characteristics of at least one component of a substance detected or not detected inside of the sample chamber.
  6. The system of claim 1, further comprising a hopper coupled to the sample feeder and configured to direct the granular samples into the sample feeder.
  7. The system of claim 1, wherein, the analyzation actuation subassembly further comprises: a first actuator configured to actuate at least the portion of the hyperspectral analyzation subassembly in a first direction of movement, a second actuator configured to actuate at least the portion of the hyperspectral analyzation subassembly in a second direction of movement, and a third actuator configured to actuate at least the portion of the hyperspectral analyzation subassembly in a third direction of movement; and the hyperspectral analyzation subassembly further comprises: an optical multiplexer electromagnetically coupled to the objective, wherein the optical multiplexer is configured to direct electromagnetic radiation between the sample chamber and at least one of the one or more sensors, at least one of the one or more emitters, or both at least one of the one or more sensors at least one of the one or more emitters; and an objective electromagnetically coupled between the window and the optical multiplexer, the objective configured to focus electromagnetic radiation travelling to or from the sample chamber.
  8. A method of analyzing granular samples comprising: providing the system of claim 1; providing granular samples to be analyzed to the conduit of the sample feeder; apportioning the granular samples into granular sample increments; and incrementally analyzing each of the granular sample increments, comprising, for each granular sample increment: actuating the shuttle to permit a granular sample increment to enter the sample chamber at least partially defined by the electromagnetically transmissive window; transmitting electromagnetic radiation from at least one of the one or more emitters to the granular sample increment; moving a portion of the analyzation subassembly in the one or more directions of movement with respect to the granular sample increment to scan at least a portion of the granular sample increment; receiving electromagnetic radiation from the granular sample increment by at least one of the one or more sensors through the electromagnetically transmissive window; identifying at least one characteristic of a component of the granular sample increment based on the received electromagnetic radiation; and evacuating the granular sample increment from the sample chamber.
  9. The method of claim 8, wherein receiving the electromagnetic radiation from the granular sample increment comprises receiving the electromagnetic radiation at a sensor of the one or more sensors, wherein the sensor is configured to generate signals based on the received electromagnetic radiation.
  10. The method of claim 9, further comprising analyzing the signals to generate a representation of at least a portion of the granular sample increment.
  11. The method of claim 10, further comprising identifying at least one component of the granular sample increment based on the signals.
  12. The method of claim 8, wherein the granular samples comprise pharmaceutical micro-structured blends of substances.
  13. The system of claim 1, wherein at least one of the one or more emitters generates visible, ultraviolet, X-ray, terahertz, or infrared radiation.
  14. The system of claim 1, wherein at least one of the one or more emitters is a Raman laser source.
  15. The system of claim 1, wherein at least one of the one or more sensors is configured to detect fluorescence or reflection.
  16. The system of claim 1, wherein at least one of the one or more sensors is a Raman spectrometer.

Description

The present disclosure generally relates to systems, devices and methods for analyzing and processing samples. Information about the samples may be obtained through a variety of analysis techniques such as microscopy, spectroscopy, spectrometry, chromatography, as well as many others. Information about the samples may be used to conduct experiments; improve, control or monitor production processes; or improve, control or monitor manufactured products.

The claimed subject matter is not limited to embodiments that solve any disadvantages or that operate only in environments such as those described above. This background is only provided to illustrate examples of where the present disclosure may be utilized.

The present disclosure generally relates to systems, devices and methods for analyzing and processing samples. Information about the samples may be obtained through a variety of analysis techniques such as microscopy, spectroscopy, spectrometry, chromatography, as well as many others. Information about the samples may be used to conduct experiments; improve, control or monitor production processes; or improve, control or monitor manufactured products.

In an example embodiment, a device for apportioning granular samples includes a sample feeder defining a conduit, the conduit including a first opening to receive the granular samples and a second opening. The device includes a shuttle operably coupled to the sample feeder to receive the granular samples from the conduit via the second opening. The shuttle is configured to apportion the granular samples to incrementally enter a sample chamber to be analyzed.

Citations (16)

  • US3499144A
  • US3435540A
  • US3822866A
  • US4863040A
  • US4933075A
  • US4963743A
  • US5408846A
  • WO2004031749A2
  • US20050264813A1
  • US20060002594A1
  • US7213413B2
  • US7873481B2
  • US20120302892A1
  • US20090002702A1
  • US20090010388A1
  • US20150355083A1
Record as JSON
{
  "publication_number": "US9846077B2",
  "country": "US",
  "kind": "B2",
  "title": "Devices and methods for analyzing granular samples",
  "abstract": "In some aspects, a device for apportioning granular samples includes a sample feeder defining a conduit, the conduit including a first opening to receive the granular samples and a second opening. The device includes a shuttle operably coupled to the sample feeder to receive the granular samples from the conduit via the second opening. The shuttle is configured to apportion the granular samples to incrementally enter a sample chamber to be analyzed. The device includes an outlet conduit fluidly coupled to the sample chamber and configured to permit the sample chamber to be evacuated.",
  "claims": [
    "1. A system comprising: a device for apportioning granular samples comprising: a sample feeder defining a conduit, the conduit including a first opening to receive the granular samples and a second opening; a shuttle operably coupled to the sample feeder to receive the granular samples from the conduit via the second opening, the shuttle configured to apportion the granular samples to incrementally enter a sample chamber to be analyzed; and an outlet conduit fluidly coupled to the sample chamber and configured to permit the sample chamber to be evacuated; and a hyperspectral analyzation subassembly electromagnetically coupled to the device, the hyperspectral analyzation subassembly configured to obtain information for at least portions of the granular samples in the sample chamber, the hyperspectral analyzation subassembly comprising: one or more emitters configured to generate electromagnetic radiation electromagnetically coupled to the sample chamber; one or more sensors configured to detect electromagnetic radiation electromagnetically coupled to the sample chamber; an electromagnetically transmissive window defining at least a portion of the sample chamber, wherein at least one of the one or more sensors is configured to detect electromagnetic radiation from the sample chamber via the window; and an analyzation actuation subassembly configured to actuate at least a portion of the hyperspectral analyzation subassembly in one or more directions of movement with respect to the sample chamber.",
    "2. The system of claim 1, the device further comprising an actuation subassembly configured to actuate the shuttle in one or more directions of movement, the actuation subassembly comprising: a first actuator configured to actuate the shuttle in a first direction of movement between a first position and a second position; and a first slide configured to permit the shuttle to be moved between the first position and the second position; wherein the shuttle positioned in the first position does not permit the granular sample portions to enter the sample chamber, and the shuttle positioned in the second position permits at least one of the granular sample portions to enter the sample chamber.",
    "3. The system of claim 2, wherein the shuttle at least partially defines a shuttle passage sized and shaped to correspond with the size and shape of the sample chamber.",
    "4. The system of claim 3, wherein the shuttle passage extends at least partially through the shuttle.",
    "5. The system of claim 1, further comprising an evacuation subassembly fluidly coupled to the outlet conduit and comprising: one or more vacuum elements configured to generate a pressure differential to evacuate the sample chamber; and a switch configured to selectively couple the one or more vacuums to one or more outlet channels to selectively evacuate the sample chamber into one or more outlet channels; wherein the sample chamber is selectively evacuated based on one or more characteristics of at least one component of a substance detected or not detected inside of the sample chamber.",
    "6. The system of claim 1, further comprising a hopper coupled to the sample feeder and configured to direct the granular samples into the sample feeder.",
    "7. The system of claim 1, wherein, the analyzation actuation subassembly further comprises: a first actuator configured to actuate at least the portion of the hyperspectral analyzation subassembly in a first direction of movement, a second actuator configured to actuate at least the portion of the hyperspectral analyzation subassembly in a second direction of movement, and a third actuator configured to actuate at least the portion of the hyperspectral analyzation subassembly in a third direction of movement; and the hyperspectral analyzation subassembly further comprises: an optical multiplexer electromagnetically coupled to the objective, wherein the optical multiplexer is configured to direct electromagnetic radiation between the sample chamber and at least one of the one or more sensors, at least one of the one or more emitters, or both at least one of the one or more sensors at least one of the one or more emitters; and an objective electromagnetically coupled between the window and the optical multiplexer, the objective configured to focus electromagnetic radiation travelling to or from the sample chamber.",
    "8. A method of analyzing granular samples comprising: providing the system of claim 1; providing granular samples to be analyzed to the conduit of the sample feeder; apportioning the granular samples into granular sample increments; and incrementally analyzing each of the granular sample increments, comprising, for each granular sample increment: actuating the shuttle to permit a granular sample increment to enter the sample chamber at least partially defined by the electromagnetically transmissive window; transmitting electromagnetic radiation from at least one of the one or more emitters to the granular sample increment; moving a portion of the analyzation subassembly in the one or more directions of movement with respect to the granular sample increment to scan at least a portion of the granular sample increment; receiving electromagnetic radiation from the granular sample increment by at least one of the one or more sensors through the electromagnetically transmissive window; identifying at least one characteristic of a component of the granular sample increment based on the received electromagnetic radiation; and evacuating the granular sample increment from the sample chamber.",
    "9. The method of claim 8, wherein receiving the electromagnetic radiation from the granular sample increment comprises receiving the electromagnetic radiation at a sensor of the one or more sensors, wherein the sensor is configured to generate signals based on the received electromagnetic radiation.",
    "10. The method of claim 9, further comprising analyzing the signals to generate a representation of at least a portion of the granular sample increment.",
    "11. The method of claim 10, further comprising identifying at least one component of the granular sample increment based on the signals.",
    "12. The method of claim 8, wherein the granular samples comprise pharmaceutical micro-structured blends of substances.",
    "13. The system of claim 1, wherein at least one of the one or more emitters generates visible, ultraviolet, X-ray, terahertz, or infrared radiation.",
    "14. The system of claim 1, wherein at least one of the one or more emitters is a Raman laser source.",
    "15. The system of claim 1, wherein at least one of the one or more sensors is configured to detect fluorescence or reflection.",
    "16. The system of claim 1, wherein at least one of the one or more sensors is a Raman spectrometer."
  ],
  "description_excerpt": "The present disclosure generally relates to systems, devices and methods for analyzing and processing samples. Information about the samples may be obtained through a variety of analysis techniques such as microscopy, spectroscopy, spectrometry, chromatography, as well as many others. Information about the samples may be used to conduct experiments; improve, control or monitor production processes; or improve, control or monitor manufactured products.\n\nThe claimed subject matter is not limited to embodiments that solve any disadvantages or that operate only in environments such as those described above. This background is only provided to illustrate examples of where the present disclosure may be utilized.\n\nThe present disclosure generally relates to systems, devices and methods for analyzing and processing samples. Information about the samples may be obtained through a variety of analysis techniques such as microscopy, spectroscopy, spectrometry, chromatography, as well as many others. Information about the samples may be used to conduct experiments; improve, control or monitor production processes; or improve, control or monitor manufactured products.\n\nIn an example embodiment, a device for apportioning granular samples includes a sample feeder defining a conduit, the conduit including a first opening to receive the granular samples and a second opening. The device includes a shuttle operably coupled to the sample feeder to receive the granular samples from the conduit via the second opening. The shuttle is configured to apportion the granular samples to incrementally enter a sample chamber to be analyzed.",
  "cpc": [
    "G01J 3/42",
    "B01D 46/0002",
    "B01D 46/42",
    "G01J 3/00",
    "G01J 3/0202",
    "G01J 3/0205",
    "G01J 3/0237",
    "G01J 3/0267",
    "G01J 3/0286",
    "G01J 3/0291",
    "G01J 3/06",
    "G01J 3/10",
    "G01J 3/2823",
    "G01J 3/44",
    "G01N 1/06",
    "G01N 2021/0106",
    "G01N 21/01",
    "G01N 21/25",
    "G01N 21/253",
    "G01N 21/33",
    "G01N 21/3504",
    "G01N 21/3577",
    "G01N 21/65",
    "G01N 2201/023",
    "G01N 2201/0231",
    "G01N 23/00",
    "G01N 33/15",
    "G01N 35/10"
  ],
  "ipc": [
    "G01N 21/01",
    "G01N 23/00",
    "G01N 35/10",
    "B01D 46/00",
    "B01D 46/42",
    "B07C 5/00",
    "G01J 3/00",
    "G01J 3/06",
    "G01J 3/10",
    "G01J 3/42",
    "G01J 3/44",
    "G01N 1/06",
    "G01N 21/25",
    "G01N 21/33",
    "G01N 21/3504",
    "G01N 21/3577",
    "G01N 21/65",
    "G01N 33/15"
  ],
  "assignees": [
    "H2optx Inc"
  ],
  "inventors": [
    "Rudolf J. Hofmeister",
    "Donald A. Ice",
    "Scott W. Tandy"
  ],
  "filing_date": "2015-06-19",
  "publication_date": "2017-12-19",
  "grant_date": "2017-12-19",
  "priority_date": "2015-01-26",
  "application_number": "US-201514744778-A",
  "family_id": "55315775",
  "cited_by_count": 2,
  "citations": [
    "US3499144A",
    "US3435540A",
    "US3822866A",
    "US4863040A",
    "US4933075A",
    "US4963743A",
    "US5408846A",
    "WO2004031749A2",
    "US20050264813A1",
    "US20060002594A1",
    "US7213413B2",
    "US7873481B2",
    "US20120302892A1",
    "US20090002702A1",
    "US20090010388A1",
    "US20150355083A1"
  ]
}

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