Patents by Inventor John W. Berthold

John W. Berthold 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: 20230393005
    Abstract: A temperature-tolerant, shock and vibration resistant absolute pressure sensor may be constructed by joining a ruggedized lens assembly and optical fiber assembly to create a stable beam of collimated light. The lens may be captured by brazing or welding to high-strength spherical metal components. The light delivery assembly may be comprised of a metal jacketed optical fiber, ceramic ferrule, and metal alignment sleeves that are mechanically and/or chemically joined to one another using high temperature sealing glass preforms or brazing materials. The optical fiber assembly may be joined to the lens assembly securing the end face of the optical fiber in the operative focal position relative to the lens. The joined assembly results in a structure where no parts are subject to movement even at extreme temperatures or when subjected to severe shock and vibration. All the air-to-glass interfaces may have anti-reflection coatings to reduce optical losses, back reflection, and false signals.
    Type: Application
    Filed: October 20, 2021
    Publication date: December 7, 2023
    Inventors: Richard L. LOPUSHANSKY, John W. BERTHOLD
  • Patent number: 7940400
    Abstract: A pressure measurement system and method are described. The system uses a tunable laser and a Fabry-Perot sensor with integrated transducer. A detector senses the light modulated by the Fabry-Perot sensor. A signal conditioner, which can be located up to 15 km away, then uses the detector signal to determine the displacement of the diaphragm, which is indicative of pressure exerted against the diaphragm. Use of a temperature sensor to generate a signal, fed to the signal conditioner, to compensate for temperature is also contemplated.
    Type: Grant
    Filed: February 16, 2009
    Date of Patent: May 10, 2011
    Assignee: Halliburton Energy Services Inc.
    Inventors: Richard L. Lopushansky, John W. Berthold
  • Patent number: 7864329
    Abstract: A method and apparatus for detecting seismic vibrations using a series of MEMS units, with each MEMS unit including an interferometer is described. The interferometers on the MEMS units receive and modulate light from two differing wavelengths by way of a multiplexing scheme involving the use of Bragg gratings and light circulators, and an optoelectronic processor receives and processes the modulated light to discern vibrational movement of the system, which in turn allows for monitoring and calculation of a specified environmental parameter, such as seismic activity, temperature or pressure.
    Type: Grant
    Filed: December 21, 2005
    Date of Patent: January 4, 2011
    Assignee: Halliburton Energy Services, Inc.
    Inventor: John W. Berthold
  • Patent number: 7835598
    Abstract: A method and apparatus for monitoring one or more environmental parameters using interferometric sensor(s), a cross-correlator, a two-dimensional photosensitive array and optical focusing means are described. The method and apparatus allows for near simultaneous monitoring of the parameter(s) of interest.
    Type: Grant
    Filed: December 21, 2005
    Date of Patent: November 16, 2010
    Assignee: Halliburton Energy Services, Inc.
    Inventors: Richard L. Lopushansky, Larry A. Jeffers, John W. Berthold
  • Patent number: 7743661
    Abstract: The present invention relates to an optic seismic MEMS sensor. More specifically, a proof mass is supported by a frame having supporting beams. The proof mass is positioned within the frame and has a hinged attachment to the beams. The proof mass has a sensor gap having a first reflector and a second reflector positioned at opposing ends of the sensor gap. An optical fiber injects light into the sensor gap and light is reflected to determine seismic movement of the proof mass with respect to the frame. Stops are provided for limiting the movement of the proof mass to minimize strain on the attachment of the beams and the proof mass.
    Type: Grant
    Filed: February 12, 2007
    Date of Patent: June 29, 2010
    Assignee: Halliburton Energy Services, Inc.
    Inventors: John W. Berthold, Tiansheng Zhou, Ira Jeffrey Bush, Fred McNair
  • Patent number: 7684051
    Abstract: A dual cantilevered beam structure is attached to a silicon frame. An optical fiber extends from a borosilicate wafer bonded to the bottom of the frame. A second borosilicate wafer is bonded to the top of the frame. The bottom borosilicate wafer is bonded to the optical fiber with a bonding agent having an index of refraction between the refractive index of the fused silica optical fiber and the refractive index of the borosilicate wafer. In an embodiment, the bonding agent has a refractive index substantially similar to optical cement. Light is reflected into the optical fiber from the beam structure for measuring seismic changes.
    Type: Grant
    Filed: April 18, 2007
    Date of Patent: March 23, 2010
    Assignee: Halliburton Energy Services, Inc.
    Inventors: John W. Berthold, David B. Needham
  • Publication number: 20090225325
    Abstract: A pressure measurement system and method are described. The system uses a tunable laser and a Fabry-Perot sensor with integrated transducer. A detector senses the light modulated by the Fabry-Perot sensor. A signal conditioner, which can be located up to 15 km away, then uses the detector signal to determine the displacement of the diaphragm, which is indicative of pressure exerted against the diaphragm. Use of a temperature sensor to generate a signal, fed to the signal conditioner, to compensate for temperature is also contemplated.
    Type: Application
    Filed: February 16, 2009
    Publication date: September 10, 2009
    Inventors: Richard L. Lopushansky, John W. Berthold
  • Patent number: 7502531
    Abstract: A method and apparatus for monitoring one or more environmental parameters using interferometric sensor(s), a cross-correlator, a two-dimensional photosensitive array and optical focusing means are described. The method and apparatus allows for near simultaneous monitoring of the parameter(s) of interest.
    Type: Grant
    Filed: December 21, 2005
    Date of Patent: March 10, 2009
    Assignee: Halliburton Energy Services, Inc.
    Inventors: Richard L. Lopushansky, Larry A. Jeffers, John W. Berthold
  • Publication number: 20090056447
    Abstract: The present invention relates to an optic seismic MEMS sensor. More specifically, a proof mass is supported by a frame having supporting beams. The proof mass is positioned within the frame and has a hinged attachment to the beams. The proof mass has a sensor gap having a first reflector and a second reflector positioned at opposing ends of the sensor gap. An optical fiber injects light into the sensor gap and light is reflected to determine seismic movement of the proof mass with respect to the frame. Stops are provided for limiting the movement of the proof mass to minimize strain on the attachment of the beams and the proof mass.
    Type: Application
    Filed: February 12, 2007
    Publication date: March 5, 2009
    Inventors: John W. Berthold, Tiansheng Zhou, Ira Jeffrey Bush, Fred McNair
  • Patent number: 7492463
    Abstract: A pressure measurement system and method are described. The system uses a tunable laser and a Fabry-Perot sensor with integrated transducer. A detector senses the light modulated by the Fabry-Perot sensor. A signal conditioner, which can be located up to 15 km away, then uses the detector signal to determine the displacement of the diaphragm, which is indicative of pressure exerted against the diaphragm. Use of a temperature sensor to generate a signal, fed to the signal conditioner, to compensate for temperature is also contemplated.
    Type: Grant
    Filed: April 14, 2005
    Date of Patent: February 17, 2009
    Assignee: Davidson Instruments Inc.
    Inventors: Richard L. Lopushansky, John W. Berthold
  • Patent number: 7443510
    Abstract: A method for monitoring changes in a gap which corresponds to changes in a particular environmental parameter using a tunable laser and interferometer at high frequency is disclosed. The laser light provided to the interferometer is swept through a small range of wavelengths. Light modulated by the interferometer is detected and a non-sinusoidal light intensity output curve is created, a reference point on the curve identified and subsequent sweep of the laser performed. The difference in time, wavelength, or frequency at the occurrence of the reference point between the two sweeps allows for measuring the relative changes in the gap and, as a result, the change in the environmental parameter.
    Type: Grant
    Filed: December 21, 2005
    Date of Patent: October 28, 2008
    Assignee: Davidson Instruments Inc.
    Inventors: Richard L. Lopushansky, Larry A. Jeffers, John W. Berthold
  • Patent number: 7434472
    Abstract: The present invention pertains to differential pressure transducers. In an embodiment of the invention, a differential pressure transducer includes a transducer housing, a diaphragm, a bellows, and a sensing assembly. The transducer housing, diaphragm, and bellows are coupled to form a pressure chamber. The pressure chamber is separated into two portions by the diaphragm, with each portion arranged to be filled with a process fluid. A pressure differential across the diaphragm causes displacement of the diaphragm. Such displacement is measured by the sensing assembly and used to calculate the pressure differential between the two process fluids.
    Type: Grant
    Filed: February 22, 2007
    Date of Patent: October 14, 2008
    Inventors: Travis W. Leitko, Richard L. Lopushansky, Larry A. Jeffers, John W. Berthold
  • Publication number: 20080226443
    Abstract: Apparatus, methods, and other embodiments associated with monitoring combustion dynamics in a gas turbine engine environment are described herein. In one embodiment of a system for monitoring combustion dynamics in a gas turbine engine environment, the system includes a transducer and an optical fiber. The transducer is positioned within the gas turbine engine environment, and the transducer includes a diaphragm, a window, and a Fabry-Perot gap. The diaphragm has a reflective surface, and the window has a partially reflective surface. The Fabry-Perot gap is formed between the reflective surface of the diaphragm and the partially reflective surface of the window. The optical fiber is positioned proximate to the window and directs light into the Fabry-Perot gap and receiving light reflected from the Fabry-Perot gap.
    Type: Application
    Filed: March 10, 2008
    Publication date: September 18, 2008
    Inventors: Richard L. Lopushansky, John W. Berthold
  • Publication number: 20080174781
    Abstract: A dual cantilevered beam structure is attached to a silicon frame. An optical fiber extends from a borosilicate wafer bonded to the bottom of the frame. A second borosilicate wafer is bonded to the top of the frame. The bottom borosilicate wafer is bonded to the optical fiber with a bonding agent having an index of refraction between the refractive index of the fused silica optical fiber and the refractive index of the borosilicate wafer. In an embodiment, the bonding agent has a refractive index substantially similar to optical cement. Light is reflected into the optical fiber from the beam structure for measuring seismic changes.
    Type: Application
    Filed: April 18, 2007
    Publication date: July 24, 2008
    Inventors: John W. Berthold, David B. Needham
  • Patent number: 7355684
    Abstract: A method and apparatus for quantitatively measuring the distance of an unknown variable gap is disclosed. Light is provided to two Fabry-Perot interferometers arranged in a series, one spanning the unknown gap and the other spanning a controllably variable gap. Means for verifying the positioning of the Fabry-Perot interferometer having the controllably variable gap work in conjunction with a signal processor, a correlation burst signal detector and means for conveying the light to the various system elements to perform a comparison of detector signals from the two interferometers and quantitatively establish the gap distance. The invention may also be varied to function on a time basis, include more than one source of light, possess filter means to distinguish between light sources and/or include one or more reference interferometers.
    Type: Grant
    Filed: April 15, 2005
    Date of Patent: April 8, 2008
    Assignee: Davidson Instruments, Inc.
    Inventors: Larry A. Jeffers, John W. Berthold, Richard L. Lopushansky
  • Patent number: 7355726
    Abstract: Linear variable reflector sensors can be used to measure the displacement of objects. These sensors are useful in that they can be very small, do not conduct electricity, and are resistant to electrical interference from EMI/EMP and lightning strikes. The present linear variable reflector system comprises a light source, a light transmitting member in optical communication with the light source, a sensor in optical communication with the light transmitting member. The sensor comprises a moveable transparent body, a reflective material deposited on the transparent body, and at least one film deposited over said reflective material, wherein said reflective material reflects light. Further, the linear variable reflector system comprises a detector coupled to the sensor to detect displacement of the moveable transparent body.
    Type: Grant
    Filed: April 14, 2005
    Date of Patent: April 8, 2008
    Inventors: Larry A. Jeffers, John W. Berthold
  • Patent number: 7305158
    Abstract: A signal conditioner to measure the length of an interferometric gap in a Fabry-Perot sensor (interferometer). The invention includes a light source, a Fabry-Perot interferometer capable of spanning a range of gaps in response to physical changes in the environment, a second interferometer that is placed in series with the Fabry-Perot interferometer which does not filter any particular wavelengths of light but acts as an optical cross-correlator, a detector for converting the correlated light signal into electronic signals, and an electronic processor which controls system elements and generates a signal indicative of the length of the gap spanned by the Fabry-Perot sensor.
    Type: Grant
    Filed: February 1, 2005
    Date of Patent: December 4, 2007
    Assignee: Davidson Instruments Inc.
    Inventors: Larry A. Jeffers, John W. Berthold, Richard L. Lopushansky, David B. Needham
  • Patent number: 7191660
    Abstract: Pressure transducers are used to measure pressure under high temperature, hostile environments, including in gas turbine combustors and internal combustion engines. The present a pressure transducer comprises a member having a first end and a second end, a diaphragm sealed within the member at the first end, a sensor sealed within the member at the first end and in operable communication with the diaphragm, a first plate having a plurality of apertures, the first plate being attached to the member at the second end, a second plate having a plurality of apertures, the second plate being attached to the tubular member at the second end and being spaced from the first plate, and wherein the apertures of the first plate are not aligned with the apertures of the second plate.
    Type: Grant
    Filed: April 14, 2005
    Date of Patent: March 20, 2007
    Assignee: Davidson Instruments Inc.
    Inventors: Richard L. Lopushansky, John W. Berthold
  • Patent number: 7134346
    Abstract: A differential pressure transducer which incorporates a Fabry-Perot sensor for direct quantitative measurements of the distance displaced by a piston abutting two pressure boundaries is described. The apparatus includes a piston with an annular protrusion which is fitted into a transducer housing having a peripheral groove that serves as a stop to prevent damage to the in overpressure situations. A method of measuring differential pressure using a Fabry-Perot sensor is also contemplated.
    Type: Grant
    Filed: April 14, 2005
    Date of Patent: November 14, 2006
    Assignee: Davidson Instruments Inc.
    Inventors: Richard L. Lopushansky, John W. Berthold
  • Patent number: 7001067
    Abstract: A pyrometer for use in measuring temperatures in a furnace, has a lens-tube for supporting an optical head in a port of the furnace for viewing an interior of the furnace along a line of sight. The optical head converts infrared radiation to electrical signals. A photometer circuit connected to the optical head processes the electrical signals and a scaling circuit connected to the photometer circuit scales the electrical signals. An output circuit connected to the scaling circuit receives the scaled electrical signals and produces output signals for display or control of the furnace. A power supply connected to the scaling circuit powers the photometer, scaling and output circuits. Calibration in the scaling circuit scales the electrical signals to be most sensitive to a wavelength of middle infrared radiation to which at least one gas component in the furnace is semi-transparent, for measuring the temperature of the at least one gas component.
    Type: Grant
    Filed: February 9, 2004
    Date of Patent: February 21, 2006
    Assignee: Diamond Power International, Inc.
    Inventors: John T. Huston, John W. Berthold, Thomas E. Moskal