Patents by Inventor Alexis Wachtel

Alexis Wachtel 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).

  • Patent number: 10683950
    Abstract: Pipeline segments can contain cables, such as communication cables (e.g., fiber optic cables) within insulation material surrounding the pipeline segments. Cables can be embedded within the insulation material, run through conduits embedded within the insulation material, placed in channels formed in the insulation material, or otherwise. Channels containing one or more cables can be filled with supplemental insulation material, thus securing the cables within the channels. Pipelines created as disclosed herein can enable data transfer between distant points without the need to lay fiber optic cable in addition to the pipeline. Further, fiber optic cable embedded thusly can be used to sense conditions in the pipeline, such as leaks, seismic activity, strain, and temperature information.
    Type: Grant
    Filed: November 25, 2014
    Date of Patent: June 16, 2020
    Assignee: Halliburton Energy Services, Inc.
    Inventors: Todd J. Green, Alexis Wachtel, II, William Markus
  • Patent number: 10544893
    Abstract: Pipeline segments can contain cables, such as communication cables (e.g., fiber optic cables) within insulation material surrounding the pipeline segments. Cables can be embedded within the insulation material, run through conduits embedded within the insulation material, placed in channels formed in the insulation material, or otherwise. Channels containing one or more cables can be filled with supplemental insulation material, thus securing the cables within the channels. Pipelines created as disclosed herein can enable data transfer between distant points without the need to lay fiber optic cable in addition to the pipeline. Further, fiber optic cable embedded thusly can be used to sense conditions in the pipeline, such as leaks, seismic activity, strain, and temperature information.
    Type: Grant
    Filed: November 25, 2014
    Date of Patent: January 28, 2020
    Assignee: Halliburton Energy Services, Inc.
    Inventors: Todd J. Green, Alexis Wachtel, II, William Markus
  • Patent number: 10443763
    Abstract: Pipeline segments can contain cables, such as communication cables (e.g., fiber optic cables) within insulation material surrounding the pipeline segments. Cables can be embedded within the insulation material, run through conduits embedded within the insulation material, placed in channels formed in the insulation material, or otherwise. Channels containing one or more cables can be filled with supplemental insulation material, thus securing the cables within the channels. Pipelines created as disclosed herein can enable data transfer between distant points without the need to lay fiber optic cable in addition to the pipeline. Further, fiber optic cable embedded thusly can be used to sense conditions in the pipeline, such as leaks, seismic activity, strain, and temperature information.
    Type: Grant
    Filed: November 25, 2014
    Date of Patent: October 15, 2019
    Assignee: HALLIBURTON ENERGY SERVICES, INC.
    Inventors: Todd J. Green, Alexis Wachtel, William Markus, John L. Maida
  • Patent number: 10197212
    Abstract: Pipeline segments can contain cables, such as communication cables (e.g., fiber optic cables) within insulation material surrounding the pipeline segments. Cables can be embedded within the insulation material, run through conduits embedded within the insulation material, placed in channels formed in the insulation material, or otherwise. Channels containing one or more cables can be filled with supplemental insulation material, thus securing the cables within the channels. Pipelines created as disclosed herein can enable data transfer between distant points without the need to lay fiber optic cable in addition to the pipeline. Further, fiber optic cable embedded thusly can be used to sense conditions in the pipeline, such as leaks, seismic activity, strain, and temperature information.
    Type: Grant
    Filed: February 15, 2016
    Date of Patent: February 5, 2019
    Assignee: Halliburton Energy Services, Inc.
    Inventors: Todd J. Green, Alexis Wachtel, William Markus, John L. Maida
  • Patent number: 10197197
    Abstract: Pipeline segments can contain cables, such as communication cables (e.g., fiber optic cables) within insulation material surrounding the pipeline segments. Cables can be embedded within the insulation material, run through conduits embedded within the insulation material, placed in channels formed in the insulation material, or otherwise. Channels containing one or more cables can be filled with supplemental insulation material, thus securing the cables within the channels. Pipelines created as disclosed herein can enable data transfer between distant points without the need to lay fiber optic cable in addition to the pipeline. Further, fiber optic cable embedded thusly can be used to sense conditions in the pipeline, such as leaks, seismic activity, strain, and temperature information.
    Type: Grant
    Filed: November 25, 2014
    Date of Patent: February 5, 2019
    Assignee: Halliburton Energy Services, Inc.
    Inventors: Todd J. Green, Alexis Wachtel, II, William Markus
  • Publication number: 20170276267
    Abstract: Pipeline segments can contain cables, such as communication cables (e.g., fiber optic cables) within insulation material surrounding the pipeline segments. Cables can be embedded within the insulation material, run through conduits embedded within the insulation material, placed in channels formed in the insulation material, or otherwise. Channels containing one or more cables can be filled with supplemental insulation material, thus securing the cables within the channels. Pipelines created as disclosed herein can enable data transfer between distant points without the need to lay fiber optic cable in addition to the pipeline. Further, fiber optic cable embedded thusly can be used to sense conditions in the pipeline, such as leaks, seismic activity, strain, and temperature information.
    Type: Application
    Filed: November 25, 2014
    Publication date: September 28, 2017
    Inventors: Todd J. Green, Alexis Wachtel, II, William Markus
  • Publication number: 20170276894
    Abstract: Pipeline segments can contain cables, such as communication cables (e.g., fiber optic cables) within insulation material surrounding the pipeline segments. Cables can be embedded within the insulation material, run through conduits embedded within the insulation material, placed in channels formed in the insulation material, or otherwise. Channels containing one or more cables can be filled with supplemental insulation material, thus securing the cables within the channels. Pipelines created as disclosed herein can enable data transfer between distant points without the need to lay fiber optic cable in addition to the pipeline. Further, fiber optic cable embedded thusly can be used to sense conditions in the pipeline, such as leaks, seismic activity, strain, and temperature information.
    Type: Application
    Filed: November 25, 2014
    Publication date: September 28, 2017
    Inventors: Todd J. Green, Alexis Wachtel, II, William Markus
  • Publication number: 20170260843
    Abstract: The methods described are for determining distribution, orientation and dimensions of networks of hydraulically-induced fractures within a subterranean formation containing fluids. Micro-seismic events are generated by particles introduced into the fractures which are capable of explosive or chemical reaction. Specially designed particles with specific functionalities are positioned in the fracture. The particles include encapsulated capacitive devices or nano-rfid devices for triggering reaction of reactive particle materials. The resulting energetic reactions cause micro-seismic events detected by sensors positioned at the surface, in local observation wells, or in the wellbore from which the particles are released.
    Type: Application
    Filed: May 25, 2017
    Publication date: September 14, 2017
    Inventors: Haluk Vefa Ersoz, Alexis Wachtel, Lee J. Hall
  • Publication number: 20170227145
    Abstract: Pipeline segments can contain cables, such as communication cables (e.g., fiber optic cables) within insulation material surrounding the pipeline segments. Cables can be embedded within the insulation material, run through conduits embedded within the insulation material, placed in channels formed in the insulation material, or otherwise. Channels containing one or more cables can be filled with supplemental insulation material, thus securing the cables within the channels. Pipelines created as disclosed herein can enable data transfer between distant points without the need to lay fiber optic cable in addition to the pipeline. Further, fiber optic cable embedded thusly can be used to sense conditions in the pipeline, such as leaks, seismic activity, strain, and temperature information.
    Type: Application
    Filed: November 25, 2014
    Publication date: August 10, 2017
    Inventors: Todd J. Green, Alexis Wachtel, II, William Markus
  • Patent number: 9671262
    Abstract: An example system includes a separator that accepts and separates a multiphase flowback effluent stream into a plurality of secondary streams. A first sensor assembly monitors the multiphase flowback effluent stream and generates a first signal corresponding to at least one characteristic of the multiphase flowback effluent stream. A second sensor assembly monitors one of the plurality of secondary streams and generates a second signal corresponding to at least one characteristic of the one of the plurality of secondary streams. A signal processor receives the first and second signals and determines a mass flow rate of a substance present in both the multiphase flowback effluent stream and the one of the plurality of secondary streams.
    Type: Grant
    Filed: July 10, 2014
    Date of Patent: June 6, 2017
    Assignee: HALLIBURTON ENERGY SERVICES, INC.
    Inventors: Patrick Matthew Ljungdahl, Sean A. Roach, Alexis Wachtel, II
  • Publication number: 20160348808
    Abstract: Pipeline segments can contain cables, such as communication cables (e.g., fiber optic cables) within insulation material surrounding the pipeline segments. Cables can be embedded within the insulation material, run through conduits embedded within the insulation material, placed in channels formed in the insulation material, or otherwise. Channels containing one or more cables can be filled with supplemental insulation material, thus securing the cables within the channels. Pipelines created as disclosed herein can enable data transfer between distant points without the need to lay fiber optic cable in addition to the pipeline. Further, fiber optic cable embedded thusly can be used to sense conditions in the pipeline, such as leaks, seismic activity, strain, and temperature information.
    Type: Application
    Filed: November 25, 2014
    Publication date: December 1, 2016
    Inventors: Todd J. Green, Alexis Wachtel, William Markus, John L. Maida
  • Patent number: 9395294
    Abstract: A method of monitoring a fluid includes containing the fluid within a flow path, the fluid having a chemical reaction occurring therein. At least one integrated computational element is optically interacted with the fluid, thereby generating optically interacted light. An output signal is then produced based on the optically interacted light that corresponds to a characteristic of the chemical reaction.
    Type: Grant
    Filed: June 1, 2015
    Date of Patent: July 19, 2016
    Assignee: Halliburton Energy Services, Inc.
    Inventors: Ola Tunheim, Robert P. Freese, Alexis Wachtel, James Robert MacLennan
  • Publication number: 20160161042
    Abstract: Pipeline segments can contain cables, such as communication cables (e.g., fiber optic cables) within insulation material surrounding the pipeline segments. Cables can be embedded within the insulation material, run through conduits embedded within the insulation material, placed in channels formed in the insulation material, or otherwise. Channels containing one or more cables can be filled with supplemental insulation material, thus securing tbe cables within the channels. Pipelines created as disclosed herein can enable data transfer between distant points without the need to lay fiber optic cable in addition to the pipeline. Further, fiber optic cable embedded thusly can be used to sense conditions in the pipeline, such as leaks, seismic activity, strain, and temperature information.
    Type: Application
    Filed: February 15, 2016
    Publication date: June 9, 2016
    Inventors: Todd J. Green, Alexis Wachtel, William Markus, John L. Maida
  • Publication number: 20160160642
    Abstract: The methods described are for determining distribution, orientation and dimensions of networks of hydraulically-induced fractures within a subterranean formation containing fluids. Detectable signals are generated by particles introduced into the fractures. In an exemplary method acoustic particles are positioned in the formation during fracturing and allowed to generate a signal during or after fracturing activity. The detectable signals generated by the acoustic particles are used to map fracture space.
    Type: Application
    Filed: August 20, 2013
    Publication date: June 9, 2016
    Inventors: Lee J. Hall, Alexis Wachtel, David Loveless, Haluk Vefa Ersoz
  • Publication number: 20150354337
    Abstract: The methods described are for determining distribution, orientation and dimensions of networks of hydraulically-induced fractures within a subterranean formation containing fluids. Micro-seismic events are generated by particles introduced into the fractures which are capable of explosive or chemical reaction. Specially designed particles with specific functionalities are positioned in the fracture. The particles include encapsulated capacitive devices or nano-rfid devices for triggering reaction of reactive particle materials. The resulting energetic reactions cause micro-seismic events detected by sensors positioned at the surface, in local observation wells, or in the wellbore from which the particles are released.
    Type: Application
    Filed: May 31, 2013
    Publication date: December 10, 2015
    Inventors: Haluk Vefa Ersoz, Alexis Wachtel, Lee J. Hall
  • Patent number: 9170208
    Abstract: Disclosed is a portable handheld characteristic analyzer used to analyze chemical compositions in or near real-time. One method of using the analyzer to determine a characteristic of a sample includes directing the handheld characteristic analyzer at the sample, the handheld characteristic analyzer having at least one integrated computational element arranged therein, activating the handheld characteristic analyzer, thereby optically interacting the at least one integrated computational element with the sample and generating optically interacted light, receiving the optically interacted light with at least one detector arranged within the handheld characteristic analyzer, generating an output signal corresponding to the characteristic of the sample with the at least one detector, receiving the output signal with a signal processor communicably coupled to the at least one detector, and determining the characteristic of the sample with the signal processor.
    Type: Grant
    Filed: August 31, 2012
    Date of Patent: October 27, 2015
    Assignee: Halliburton Energy Services, Inc.
    Inventors: Ola Tunheim, Marshall E. Webster, Alexis Wachtel, II, Robert P. Freese, James R. MacLennan
  • Publication number: 20150293013
    Abstract: A method of monitoring a fluid includes containing the fluid within a flow path, the fluid having a chemical reaction occurring therein. At least one integrated computational element is optically interacted with the fluid, thereby generating optically interacted light. An output signal is then produced based on the optically interacted light that corresponds to a characteristic of the chemical reaction.
    Type: Application
    Filed: June 1, 2015
    Publication date: October 15, 2015
    Applicant: Halliburton Energy Services, Inc.
    Inventors: Ola Tunheim, Robert P. Freese, Alexis Wachtel, James Robert MacLennan
  • Patent number: 9103716
    Abstract: Disclosed is a portable handheld characteristic analyzer used to analyze chemical compositions in or near real-time. The analyzer may include a portable housing, at least one optical computing device arranged within the portable housing for monitoring a sample, the at least one optical computing device having at least one integrated computational element configured to optically interact with the sample and thereby generate optically interacted light, at least one detector arranged to receive the optically interacted light and generate an output signal corresponding to a characteristic of the sample, and a signal processor communicably coupled to the at least one detector for receiving the output signal, the signal processor being configured to determine the characteristic of the sample and provide a resulting output signal indicative of the characteristic of the sample.
    Type: Grant
    Filed: August 31, 2012
    Date of Patent: August 11, 2015
    Assignee: Halliburton Energy Services, Inc.
    Inventors: Ola Tunheim, Marshall E. Webster, Alexis Wachtel, II, Robert P. Freese, James R. MacLennan
  • Patent number: 9086383
    Abstract: Disclosed are systems and methods for monitoring chemical reaction processes in or near real-time. One method may include containing a fluid within a flow path, the fluid having a chemical reaction occurring therein, optically interacting at least one integrated computational element with the fluid, thereby generating optically interacted light, and producing an output signal based on the optically interacted light that corresponds to a characteristic of the chemical reaction.
    Type: Grant
    Filed: September 14, 2012
    Date of Patent: July 21, 2015
    Assignee: Halliburton Energy Services, Inc.
    Inventors: Ola Tunheim, Robert P. Freese, Alexis Wachtel, II, James R. MacLennan
  • Publication number: 20140324366
    Abstract: An example system includes a separator that accepts and separates a multiphase flowback effluent stream into a plurality of secondary streams. A first sensor assembly monitors the multiphase flowback effluent stream and generates a first signal corresponding to at least one characteristic of the multiphase flowback effluent stream. A second sensor assembly monitors one of the plurality of secondary streams and generates a second signal corresponding to at least one characteristic of the one of the plurality of secondary streams. A signal processor receives the first and second signals and determines a mass flow rate of a substance present in both the multiphase flowback effluent stream and the one of the plurality of secondary streams.
    Type: Application
    Filed: July 10, 2014
    Publication date: October 30, 2014
    Applicant: Halliburton Energy Services, Inc.
    Inventors: Patrick Matthew Ljungdahl, Sean A. Roach, Alexis Wachtel