Patents by Inventor Dane Mealey

Dane Mealey has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Publication number: 20220040733
    Abstract: An acoustophoretic device is disclosed. The acoustophoretic device includes an acoustic chamber, an ultrasonic transducer, and a reflector. The ultrasonic transducer includes a piezoelectric material driven by a voltage signal to create a multi-dimensional acoustic standing wave in the acoustic chamber emanating from a non-planar face of the piezoelectric material. A method for separating a second fluid or a particulate from a host fluid is also disclosed. The method includes flowing the mixture through an acoustophoretic device. A voltage signal is sent to drive the ultrasonic transducer to create the multi-dimensional acoustic standing wave in the acoustic chamber such that the second fluid or particulate is continuously trapped in the standing wave, and then agglomerates, aggregates, clumps, or coalesces together, and subsequently rises or settles out of the host fluid due to buoyancy or gravity forces, and exits the acoustic chamber.
    Type: Application
    Filed: October 14, 2021
    Publication date: February 10, 2022
    Inventors: Bart Lipkens, Walter M. Presz, JR., Kedar Chitale, Thomas J. Kennedy, III, Rudolf Gilmanshin, Dane Mealey, Brian Dutra, David Sokolowski
  • Patent number: 11179747
    Abstract: An acoustophoretic device is disclosed. The acoustophoretic device includes an acoustic chamber, an ultrasonic transducer, and a reflector. The ultrasonic transducer includes a piezoelectric material driven by a voltage signal to create a multi-dimensional acoustic standing wave in the acoustic chamber emanating from a non-planar face of the piezoelectric material. A method for separating a second fluid or a particulate from a host fluid is also disclosed. The method includes flowing the mixture through an acoustophoretic device. A voltage signal is sent to drive the ultrasonic transducer to create the multi-dimensional acoustic standing wave in the acoustic chamber such that the second fluid or particulate is continuously trapped in the standing wave, and then agglomerates, aggregates, clumps, or coalesces together, and subsequently rises or settles out of the host fluid due to buoyancy or gravity forces, and exits the acoustic chamber.
    Type: Grant
    Filed: July 9, 2016
    Date of Patent: November 23, 2021
    Assignee: FloDesign Sonics, Inc.
    Inventors: Bart Lipkens, Walter M Presz, Jr., Kedar Chitale, Thomas J Kennedy, III, Rudolf Gilmanshin, Dane Mealey, Brian Dutra, David Sokolowski
  • Publication number: 20210339169
    Abstract: An acoustic standing wave is utilized to separate components from a multi-component fluid, such as oil from an oil-water mixture, or cells entrained in a fluid, in a fluid flow scheme with an acoustophoresis device. For example, the flow scheme and device allows for trapping of the oil as the oil coalesces, agglomerates, and becomes more buoyant than the water. A driver and controller for the acoustophoretic device accommodate variable loading as the components are separated, thereby improving separation efficiency.
    Type: Application
    Filed: March 11, 2021
    Publication date: November 4, 2021
    Inventors: Bart Lipkens, Ronald Musiak, Dane Mealey, John Artis, Ali Shajii
  • Publication number: 20210268406
    Abstract: Aspects of the disclosure are directed to an apparatus for separating a second fluid or a particulate from a host fluid. That apparatus comprises a flow chamber with at least one inlet and at least one outlet. A drive circuit configured to provide a drive signal to a filter circuit configured to receive the drive signal and provide a translated drive signal. An ultrasonic transducer is cooperatively arranged with the flow chamber, and transducer includes at least one piezoelectric element configured to be driven by the current drive signal to create an acoustic standing wave in the flow chamber. At least one reflector opposing the ultrasonic transducer to reflect acoustic energy.
    Type: Application
    Filed: March 10, 2021
    Publication date: September 2, 2021
    Inventors: Bart Lipkens, Ronald Musiak, Dane Mealey, Ali Shajii
  • Patent number: 11022551
    Abstract: Systems and methods for increasing the accuracy of a turbidity sensor are disclosed. The systems include a turbidity sensor and a flow module with a specialized flow path, with the turbidity sensor engaging with the flow module such that a measurement zone of the turbidity sensor is disposed within a flow path of the flow module and a bypass path of the flow module does not pass through the measurement zone. The methods include flowing a fluid containing bubbles into a system that separates the fluid in the flow module into a first stream of fluid containing relatively more bubbles and a second stream of fluid containing relatively fewer bubbles, the first stream flowing through a bypass path that does not pass through the measurement zone, and the second stream flowing through the measurement zone of the turbidity sensor.
    Type: Grant
    Filed: June 1, 2020
    Date of Patent: June 1, 2021
    Assignee: FloDesign Sonics, Inc.
    Inventors: Jason Barnes, Dane Mealey, Jeffrey King
  • Patent number: 11007457
    Abstract: Aspects of the disclosure are directed to an apparatus for separating a second fluid or a particulate from a host fluid. That apparatus comprises a flow chamber with at least one inlet and at least one outlet. A drive circuit configured to provide a drive signal to a filter circuit configured to receive the drive signal and provide a translated drive signal. An ultrasonic transducer is cooperatively arranged with the flow chamber, and transducer includes at least one piezoelectric element configured to be driven by the current drive signal to create an acoustic standing wave in the flow chamber. At least one reflector opposing the ultrasonic transducer to reflect acoustic energy.
    Type: Grant
    Filed: April 23, 2018
    Date of Patent: May 18, 2021
    Inventors: Bart Lipkens, Ronald Musiak, Dane Mealey, Ali Shajii
  • Patent number: 10975368
    Abstract: An acoustophoresis device includes an acoustic chamber with a piezoelectric element located within its volume. The piezoelectric element vibrates and generates acoustic standing waves from both sides, so that particles can be separated from fluid passing through the acoustic chamber. This permits the element to be cooled more efficiently, reducing transient heat loads in the fluid traveling through the device.
    Type: Grant
    Filed: August 8, 2017
    Date of Patent: April 13, 2021
    Assignee: FloDesign Sonics, Inc.
    Inventors: Bart Lipkens, Brian McCarthy, Ben Ross-Johnsrud, Jason Barnes, Dane Mealey, Thomas J. Kennedy, III
  • Patent number: 10967298
    Abstract: An acoustic standing wave is utilized to separate components from a multi-component fluid, such as oil from an oil-water mixture, or cells entrained in a fluid, in a fluid flow scheme with an acoustophoresis device. For example, the flow scheme and device allows for trapping of the oil as the oil coalesces, agglomerates, and becomes more buoyant than the water. A driver and controller for the acoustophoretic device accommodate variable loading as the components are separated, thereby improving separation efficiency.
    Type: Grant
    Filed: January 16, 2018
    Date of Patent: April 6, 2021
    Assignee: FloDesign Sonics, Inc.
    Inventors: Bart Lipkens, Ronald Musiak, Dane Mealey, John Artis, Ali Shajii
  • Patent number: 10814253
    Abstract: Devices for separating a host fluid from a second fluid or particulate are disclosed. The devices include an acoustic chamber, a fluid outlet at a top end of the acoustic chamber, a concentrate outlet at a bottom end of the acoustic chamber, and an inlet on a first side end of the acoustic chamber. An ultrasonic transducer and reflector create a multi-dimensional acoustic standing wave in the acoustic chamber that traps and separates particulates (e.g. cells) from a host fluid. The host fluid is collected via the fluid outlet, and the particulates are collected via the concentrate outlet. The device is a large-scale device that is able to process liters/hour, and has a large interior volume.
    Type: Grant
    Filed: August 29, 2017
    Date of Patent: October 27, 2020
    Assignee: FloDesign Sonics, Inc.
    Inventors: Bart Lipkens, Walter M. Presz, Jr., Jeffrey King, Jason Barnes, Dane Mealey, Brian McCarthy, Ben Ross-Johnsrud, Kedar Chitale
  • Publication number: 20200324225
    Abstract: An RF driver provides power to an acoustic transducer, which can be implemented as a piezoelectric element, which presents a reactive load. The driver can be a linear amplifier or a combination of a DC-DC converter and DC-AC inverter. A controller implements a control technique for efficient transducer operation. The control technique can locate a frequency for operation that is at a reactance minimum or maximum for the transducer to provide efficient operation of that transducer. An implementation of the controller can be provided in modular hardware.
    Type: Application
    Filed: May 4, 2018
    Publication date: October 15, 2020
    Inventors: Bart Lipkens, Ronald E. Musiak, Dane Mealey, John Artis
  • Publication number: 20200292451
    Abstract: Systems and methods for increasing the accuracy of a turbidity sensor are disclosed. The systems include a turbidity sensor and a flow module with a specialized flow path, with the turbidity sensor engaging with the flow module such that a measurement zone of the turbidity sensor is disposed within a flow path of the flow module and a bypass path of the flow module does not pass through the measurement zone. The methods include flowing a fluid containing bubbles into a system that separates the fluid in the flow module into a first stream of fluid containing relatively more bubbles and a second stream of fluid containing relatively fewer bubbles, the first stream flowing through a bypass path that does not pass through the measurement zone, and the second stream flowing through the measurement zone of the turbidity sensor.
    Type: Application
    Filed: June 1, 2020
    Publication date: September 17, 2020
    Inventors: Jason Barnes, Dane Mealey, Jeffrey King
  • Patent number: 10670524
    Abstract: Systems and methods for increasing the accuracy of a turbidity sensor are disclosed. The systems include a turbidity sensor and a flow module with a specialized flow path, with the turbidity sensor engaging with the flow module such that a measurement zone of the turbidity sensor is disposed within a flow path of the flow module and a bypass path of the flow module does not pass through the measurement zone. The methods include flowing a fluid containing bubbles into a system that separates the fluid in the flow module into a first stream of fluid containing relatively more bubbles and a second stream of fluid containing relatively fewer bubbles, the first stream flowing through a bypass path that does not pass through the measurement zone, and the second stream flowing through the measurement zone of the turbidity sensor.
    Type: Grant
    Filed: June 17, 2019
    Date of Patent: June 2, 2020
    Assignee: FloDesign Sonics, Inc.
    Inventors: Jason Barnes, Dane Mealey, Jeffrey King
  • Publication number: 20190360930
    Abstract: Systems and methods for increasing the accuracy of a turbidity sensor are disclosed. The systems include a turbidity sensor and a flow module with a specialized flow path, with the turbidity sensor engaging with the flow module such that a measurement zone of the turbidity sensor is disposed within a flow path of the flow module and a bypass path of the flow module does not pass through the measurement zone. The methods include flowing a fluid containing bubbles into a system that separates the fluid in the flow module into a first stream of fluid containing relatively more bubbles and a second stream of fluid containing relatively fewer bubbles, the first stream flowing through a bypass path that does not pass through the measurement zone, and the second stream flowing through the measurement zone of the turbidity sensor.
    Type: Application
    Filed: June 17, 2019
    Publication date: November 28, 2019
    Inventors: Jason Barnes, Dane Mealey, Jeffrey King
  • Patent number: 10322949
    Abstract: Separation of particles or droplets from a host fluid may be achieved using a transducer and/or reflector that is a thin, non-planar structure. The thin non-planar structure improves operation of an acoustic standing wave generated by an acoustic transducer. The structure may operate as a pressure release boundary and may be constructed as plastic film.
    Type: Grant
    Filed: April 18, 2017
    Date of Patent: June 18, 2019
    Assignee: FloDesign Sonics, Inc.
    Inventors: Bart Lipkens, Walter M. Presz, Jr., Kedar Chitale, Brian McCarthy, Benjamin Ross-Johnsrud, Thomas J. Kennedy, III, Dane Mealey, Brian Dutra, David Sokolowski
  • Publication number: 20180236380
    Abstract: Aspects of the disclosure are directed to an apparatus for separating a second fluid or a particulate from a host fluid. That apparatus comprises a flow chamber with at least one inlet and at least one outlet. A drive circuit configured to provide a drive signal to a filter circuit configured to receive the drive signal and provide a translated drive signal. An ultrasonic transducer is cooperatively arranged with the flow chamber, and transducer includes at least one piezoelectric element configured to be driven by the current drive signal to create an acoustic standing wave in the flow chamber. At least one reflector opposing the ultrasonic transducer to reflect acoustic energy.
    Type: Application
    Filed: April 23, 2018
    Publication date: August 23, 2018
    Inventors: Bart Lipkens, Ronald Musiak, Dane Mealey, Ali Shajii
  • Publication number: 20180207551
    Abstract: An acoustic standing wave is utilized to separate components from a multi-component fluid, such as oil from an oil-water mixture, or cells entrained in a fluid, in a fluid flow scheme with an acoustophoresis device. For example, the flow scheme and device allows for trapping of the oil as the oil coalesces, agglomerates, and becomes more buoyant than the water. A driver and controller for the acoustophoretic device accommodate variable loading as the components are separated, thereby improving separation efficiency.
    Type: Application
    Filed: January 16, 2018
    Publication date: July 26, 2018
    Inventors: Bart Lipkens, Ronald Musiak, Dane Mealey, John Artis, Ali Shajii
  • Patent number: 9950282
    Abstract: Aspects of the disclosure are directed to an apparatus for separating a second fluid or a particulate from a host fluid. That apparatus comprises a flow chamber with at least one inlet and at least one outlet. A drive circuit configured to provide a drive signal to a filter circuit configured to receive the drive signal and provide a translated drive signal. An ultrasonic transducer is cooperatively arranged with the flow chamber, and transducer includes at least one piezoelectric element configured to be driven by the current drive signal to create an acoustic standing wave in the flow chamber. At least one reflector opposing the ultrasonic transducer to reflect acoustic energy.
    Type: Grant
    Filed: April 24, 2017
    Date of Patent: April 24, 2018
    Assignee: FloDesign Sonics, Inc.
    Inventors: Bart Lipkens, Ronald Musiak, Dane Mealey, Ali Shajii
  • Publication number: 20180015392
    Abstract: Devices for separating a host fluid from a second fluid or particulate are disclosed. The devices include an acoustic chamber, a fluid outlet at a top end of the acoustic chamber, a concentrate outlet at a bottom end of the acoustic chamber, and an inlet on a first side end of the acoustic chamber. An ultrasonic transducer and reflector create a multi-dimensional acoustic standing wave in the acoustic chamber that traps and separates particulates (e.g. cells) from a host fluid. The host fluid is collected via the fluid outlet, and the particulates are collected via the concentrate outlet. The device is a large-scale device that is able to process liters/hour, and has a large interior volume.
    Type: Application
    Filed: August 29, 2017
    Publication date: January 18, 2018
    Inventors: Bart Lipkens, Walter M. Presz, JR., Jeffrey King, Jason Barnes, Dane Mealey, Brian McCarthy, Ben Ross-Johnsrud, Kedar Chitale
  • Publication number: 20170369865
    Abstract: An acoustophoresis device includes an acoustic chamber with a piezoelectric element located within its volume. The piezoelectric element vibrates and generates acoustic standing waves from both sides, so that particles can be separated from fluid passing through the acoustic chamber. This permits the element to be cooled more efficiently, reducing transient heat loads in the fluid traveling through the device.
    Type: Application
    Filed: August 8, 2017
    Publication date: December 28, 2017
    Inventors: Bart Lipkens, Brian McCarthy, Ben Ross-Johnsrud, Jason Barnes, Dane Mealey, Thomas J. Kennedy, III
  • Patent number: 9827511
    Abstract: An acoustophoresis device which includes a substantially vertical flow path of the fluid mixture in order to improve separation of particles/secondary fluid from a primary fluid is disclosed. The vertical flow path reduces velocity non-uniformities in the acoustic chamber resulting from gravity forces. The device includes an acoustic chamber in which multidimensional acoustic standing waves are generated. The fluid can be introduced into the acoustic chamber using a dump diffuser in which a plurality of inlets enter near the bottom of the acoustic chamber such that flow symmetry reduces both, gravity driven flow non-uniformities, and any flow interference effects between inlet mixture flow into the acoustic chamber and the continuous gravity driven particle cluster drop out.
    Type: Grant
    Filed: July 2, 2015
    Date of Patent: November 28, 2017
    Assignee: FLODESIGN SONICS, INC.
    Inventors: Bart Lipkens, Brian McCarthy, Jason Barnes, Dane Mealey, Ben Ross-Johnsrud, Walter M. Presz, Jr., Kedar Chitale