Patents by Inventor Richard A. Roth
Richard A. Roth 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).
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Patent number: 11982648Abstract: An environmental condition may be measured with a sensor (10) including a wire (20) having an ultrasonic signal transmission characteristic that varies in response to the environmental condition by sensing ultrasonic energy propagated through the wire using multiple types of propagation, and separating an effect of temperature on the wire from an effect of strain on the wire using the sensed ultrasonic energy propagated through the wire using the multiple types of propagation. A positive feedback loop may be used to excite the wire such that strain in the wire is based upon a sensed resonant frequency, while a square wave with a controlled duty cycle may be used to excite the wire at multiple excitation frequencies. A phase matched cone (200, 210) may be used to couple ultrasonic energy between a waveguide wire (202, 212) and a transducer (204, 214).Type: GrantFiled: November 30, 2020Date of Patent: May 14, 2024Assignee: Etegent Technologies, Ltd.Inventors: Oleg Lobkis, Richard A. Roth, Christopher G. Larsen, Stuart J. Shelley
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Patent number: 11686627Abstract: An active mechanical waveguide including an ultrasonically-transmissive material and a plurality of reflection points defined along a length of the waveguide may be driven at multiple resonant frequencies to sense environmental conditions, e.g., using tracking of a phase derivative. In addition, frequency-dependent reflectors may be incorporated into an active mechanical waveguide, and a drive frequency may be selected to render the frequency-dependent reflectors substantially transparent.Type: GrantFiled: April 10, 2018Date of Patent: June 27, 2023Assignee: ETEGENT TECHNOLOGIES LTD.Inventors: Richard A. Roth, II, Stuart J. Shelley, Kevin Sigmund, Oleg Lobkis
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Publication number: 20230091072Abstract: Methods manage non-destructive evaluation (“NDE”) data. NDE data for an asset is received and at least one alignment algorithm to align the NDE data to a simulated model associated therewith is determined. The NDE data is automatically aligned to the simulated model, a display representation that visually represents the aligned NDE data on the simulated model is generated, and information about the aligned NDE data is exported. Additionally, second NDE data associated with the at least a portion of the asset may also be received, at least one alignment algorithm to align the data determined, and the second NDE data aligned. Respective indications associated with the first and second NDE data may be determined and visually represented on the simulated model. Moreover, a shot descriptor file may be analyzed to determine whether additional NDE data is required to complete an alignment of NDE data.Type: ApplicationFiled: November 23, 2022Publication date: March 23, 2023Inventors: Thomas D. Sharp, Richard A. Roth, II, Uriah M. Liggett, Joseph M. Kesler
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Patent number: 11514133Abstract: Methods manage non-destructive evaluation (“NDE”) data. NDE data for an asset is received and at least one alignment algorithm to align the NDE data to a simulated model associated therewith is determined. The NDE data is automatically aligned to the simulated model, a display representation that visually represents the aligned NDE data on the simulated model is generated, and information about the aligned NDE data is exported. Additionally, second NDE data associated with the at least a portion of the asset may also be received, at least one alignment algorithm to align the data determined, and the second NDE data aligned. Respective indications associated with the first and second NDE data may be determined and visually represented on the simulated model. Moreover, a shot descriptor file may be analyzed to determine whether additional NDE data is required to complete an alignment of NDE data.Type: GrantFiled: May 15, 2020Date of Patent: November 29, 2022Assignee: Etegent Technologies Ltd.Inventors: Thomas D. Sharp, Richard A. Roth, II, Uriah M. Liggett, Joseph M. Kesler
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Patent number: 11473981Abstract: A sensor with a mechanical waveguide may be characterized using test ultrasonic signals to generate a baseline signature, and the baseline signature may later be used to detect faults in the sensor.Type: GrantFiled: April 10, 2018Date of Patent: October 18, 2022Assignee: ETEGENT TECHNOLOGIES LTD.Inventors: Richard A. Roth, II, Stuart J. Shelley, Kevin Sigmund, Oleg Lobkis
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Publication number: 20210372971Abstract: An environmental condition may be measured with a sensor (10) including a wire (20) having an ultrasonic signal transmission characteristic that varies in response to the environmental condition by sensing ultrasonic energy propagated through the wire using multiple types of propagation, and separating an effect of temperature on the wire from an effect of strain on the wire using the sensed ultrasonic energy propagated through the wire using the multiple types of propagation. A positive feedback loop may be used to excite the wire such that strain in the wire is based upon a sensed resonant frequency, while a square wave with a controlled duty cycle may be used to excite the wire at multiple excitation frequencies. A phase matched cone (200, 210) may be used to couple ultrasonic energy between a waveguide wire (202, 212) and a transducer (204, 214).Type: ApplicationFiled: November 30, 2020Publication date: December 2, 2021Inventors: Oleg Lobkis, Richard A. Roth, Christopher G. Larsen, Stuart J. Shelley
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Publication number: 20210132008Abstract: An active mechanical waveguide including an ultrasonically-transmissive material and a plurality of reflection points defined along a length of the waveguide may be driven at multiple resonant frequencies to sense environmental conditions, e.g., using tracking of a phase derivative. In addition, frequency-dependent reflectors may be incorporated into an active mechanical waveguide, and a drive frequency may be selected to render the frequency-dependent reflectors substantially transparent.Type: ApplicationFiled: April 10, 2018Publication date: May 6, 2021Inventors: Richard A. Roth, II, Stuart J. Shelley, Kevin Sigmund, Oleg Lobkis
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Publication number: 20200387562Abstract: Methods manage non-destructive evaluation (“NDE”) data. NDE data for an asset is received and at least one alignment algorithm to align the NDE data to a simulated model associated therewith is determined. The NDE data is automatically aligned to the simulated model, a display representation that visually represents the aligned NDE data on the simulated model is generated, and information about the aligned NDE data is exported. Additionally, second NDE data associated with the at least a portion of the asset may also be received, at least one alignment algorithm to align the data determined, and the second NDE data aligned. Respective indications associated with the first and second NDE data may be determined and visually represented on the simulated model. Moreover, a shot descriptor file may be analyzed to determine whether additional NDE data is required to complete an alignment of NDE data.Type: ApplicationFiled: May 15, 2020Publication date: December 10, 2020Inventors: Thomas D. Sharp, Richard A. Roth, II, Uriah M. Liggett, Joseph M. Kesler
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Patent number: 10852277Abstract: An environmental condition may be measured with a sensor (10) including a wire (20) having an ultrasonic signal transmission characteristic that varies in response to the environmental condition by sensing ultrasonic energy propagated through the wire using multiple types of propagation, and separating an effect of temperature on the wire from an effect of strain on the wire using the sensed ultrasonic energy propagated through the wire using the multiple types of propagation. A positive feedback loop may be used to excite the wire such that strain in the wire is based upon a sensed resonant frequency, while a square wave with a controlled duty cycle may be used to excite the wire at multiple excitation frequencies. A phase matched cone (200, 210) may be used to couple ultrasonic energy between a waveguide wire (202, 212) and a transducer (204, 214).Type: GrantFiled: April 9, 2015Date of Patent: December 1, 2020Assignee: ETEGENT TECHNOLOGIES, LTD.Inventors: Oleg Lobkis, Richard A. Roth, Christopher G. Larsen, Stuart J. Shelley
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Patent number: 10854941Abstract: A broadband waveguide comprising at least one filament configured to transmit a signal therethrough. The broadband waveguide may include one or more reflection suppression techniques including a damping material coupled to at least a portion of the at least one filament and/or at least one reflection point configured thereon. The waveguide may further including a cladding material coupled to the at least one filament. The at least one filament may be coupled to a securing element configured to couple to a surface. The at least one filament may be coupled to a sensor configured to sense the transmitted signal.Type: GrantFiled: December 31, 2018Date of Patent: December 1, 2020Assignee: ETEGENT TECHNOLOGIES, LTD.Inventors: Christopher G. Larsen, Oleg Lobkis, Richard A. Roth, Stuart J. Shelley, Conor Coyan, Jason Feldman, Ann El Demery, Mackenzie Shelley
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Publication number: 20200149979Abstract: A sensor with a mechanical waveguide maybe characterized using test ultrasonic signals to generate a baseline signature, and the baseline signature may later be used to detect faults in the sensor.Type: ApplicationFiled: April 10, 2018Publication date: May 14, 2020Inventors: Richard A. Roth, II, Stuart J. Shelley, Kevin Sigmund, Oleg Lobkis
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Publication number: 20200149980Abstract: An active mechanical waveguide including an ultrasonically-transmissive material and a plurality of reflection points defined along a length of the waveguide may be dampened using a damping device on a plurality of support members for the waveguide and/or using a damping device on the waveguide itself, and variable spacing of support members and/or constant tensioning of the waveguide may also be used.Type: ApplicationFiled: April 10, 2018Publication date: May 14, 2020Inventors: Richard A. Roth, II, Stuart J. Shelley, Kevin Sigmund, Oleg Lobkis
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Patent number: 10352778Abstract: A composite active waveguide temperature sensor (10) incorporates a first, sensor portion (16) formed of an environment-resistant material such as ceramic coupled through an ultrasonically-transparent bond (20) to a second, waveguide portion (18) formed of an ultrasonically-transmissive material such as a metallic filament wire. By doing so, the sensor portion (16) may be positioned within a harsh environment and subjected to a temperature to be measured, and the waveguide portion (18) may be used to propagate ultrasonic energy to and/or from the sensor portion (16) to a location distal from the harsh environment for measurement of the temperature. The ultrasonically-transparent bond (20) between these portions (16, 18) limits attenuation of and the introduction of reflections and other noise to an ultrasonic signal propagated across the bond (20).Type: GrantFiled: October 31, 2014Date of Patent: July 16, 2019Assignee: ETEGENT TECHNOLOGIES, LTD.Inventors: Christopher G. Larsen, Oleg Lobkis, Richard A. Roth, Stuart J. Shelley
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Publication number: 20190157733Abstract: A broadband waveguide comprising at least one filament configured to transmit a signal therethrough. The broadband waveguide may include one or more reflection suppression techniques including a damping material coupled to at least a portion of the at least one filament and/or at least one reflection point configured thereon. The waveguide may further including a cladding material coupled to the at least one filament. The at least one filament may be coupled to a securing element configured to couple to a surface. The at least one filament may be coupled to a sensor configured to sense the transmitted signal.Type: ApplicationFiled: December 31, 2018Publication date: May 23, 2019Inventors: Christopher G. Larsen, Oleg Lobkis, Richard A. Roth, Stuart J. Shelley, Conor Coyan, Jason Feldman, Ann El Demery, Mackenzie Shelley
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Patent number: 9804997Abstract: Methods manage non-destructive evaluation (“NDE”) data. NDE data for an asset is received and at least one alignment algorithm to align the NDE data to a simulated model associated therewith is determined. The NDE data is automatically aligned to the simulated model, a display representation that visually represents the aligned NDE data on the simulated model is generated, and information about the aligned NDE data is exported. Additionally, second NDE data associated with the at least a portion of the asset may also be received, at least one alignment algorithm to align the data determined, and the second NDE data aligned. Respective indications associated with the first and second NDE data may be determined and visually represented on the simulated model. Moreover, a shot descriptor file may be analyzed to determine whether additional NDE data is required to complete an alignment of NDE data.Type: GrantFiled: June 25, 2013Date of Patent: October 31, 2017Assignee: Etegent Technologies, Ltd.Inventors: Thomas D. Sharp, Richard A. Roth, II, Uriah M. Liggett, Joseph M. Kesler
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Publication number: 20170030871Abstract: An environmental condition may be measured with a sensor (10) including a wire (20) having an ultrasonic signal transmission characteristic that varies in response to the environmental condition by sensing ultrasonic energy propagated through the wire using multiple types of propagation, and separating an effect of temperature on the wire from an effect of strain on the wire using the sensed ultrasonic energy propagated through the wire using the multiple types of propagation. A positive feedback loop may be used to excite the wire such that strain in the wire is based upon a sensed resonant frequency, while a square wave with a controlled duty cycle may be used to excite the wire at multiple excitation frequencies. A phase matched cone (200, 210) may be used to couple ultrasonic energy between a waveguide wire (202, 212) and a transducer (204, 214).Type: ApplicationFiled: April 9, 2015Publication date: February 2, 2017Inventors: Oleg Lobkis, Richard A. Roth, Christopher G. Larsen, Stuart J. Shelley
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Publication number: 20160294033Abstract: A broadband waveguide comprising at least one filament configured to transmit a signal therethrough. The broad-band waveguide may include one or more reflection suppression techniques including a damping material coupled to at least a portion of the at least one filament and/or at least one reflection point configured thereon. The waveguide may further including a cladding material coupled to the at least one filament. The at least one filament may be coupled to a securing element configured to couple to a surface. The at least one filament may be coupled to a sensor configured to sense the transmitted signal.Type: ApplicationFiled: October 31, 2014Publication date: October 6, 2016Inventors: Christopher G. Larsen, Oleg Lobkis, Richard A. Roth, Stuart J. Shelley, Conor Coyan, Jason Feldman, Ann El Demery, Mackenzie Shelley
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Publication number: 20160273973Abstract: A composite active waveguide temperature sensor (10) incorporates a first, sensor portion (16) formed of an environment-resistant material such as ceramic coupled through an ultrasonically-transparent bond (20) to a second, waveguide portion (18) formed of an ultrasonically-transmissive material such as a metallic filament wire. By doing so, the sensor portion (16) may be positioned within a harsh environment and subjected to a temperature to be measured, and the waveguide portion (18) may be used to propagate ultrasonic energy to and/or from the sensor portion (16) to a location distal from the harsh environment for measurement of the temperature. The ultrasonically-transparent bond (20) between these portions (16, 18) limits attenuation of and the introduction of reflections and other noise to an ultrasonic signal propagated across the bond (20).Type: ApplicationFiled: October 31, 2014Publication date: September 22, 2016Inventors: Christopher G. Larsen, Oleg Lobkis, Richard A. Roth, Stuart J. Shelley
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Patent number: 8631729Abstract: An adjustable knife for a pouch machine is selectively provided with changeable knife hub sets each including a major and minor knife hub with respective major and minor axes. The hub sets have respectively differing diameters or different spacing between the respective major and minor axes to handle a variety of pouch sizes where a filler wheel alternately first fills and seals pouches in a train. A gear linkage including a four gear anti-lash arrangement with a movable gear accommodates variation in distance between hubs of different sets. A method of using the knife is also described.Type: GrantFiled: September 5, 2012Date of Patent: January 21, 2014Assignee: R.A. Jones & Co., Inc.Inventors: Sima Paunesku, Daniel J. Rack, Jeffrey D. Wintring, Richard A. Roth
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Publication number: 20130289943Abstract: Methods manage non-destructive evaluation (“NDE”) data. NDE data for an asset is received and at least one alignment algorithm to align the NDE data to a simulated model associated therewith is determined. The NDE data is automatically aligned to the simulated model, a display representation that visually represents the aligned NDE data on the simulated model is generated, and information about the aligned NDE data is exported. Additionally, second NDE data associated with the at least a portion of the asset may also be received, at least one alignment algorithm to align the data determined, and the second NDE data aligned. Respective indications associated with the first and second NDE data may be determined and visually represented on the simulated model. Moreover, a shot descriptor file may be analyzed to determine whether additional NDE data is required to complete an alignment of NDE data.Type: ApplicationFiled: June 25, 2013Publication date: October 31, 2013Inventors: Thomas D. Sharp, Richard A. Roth, II, Uriah M. Liggett, Joseph M. Kesler