Patents by Inventor Michael J. Melfi

Michael J. Melfi 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: 11431233
    Abstract: A system to reduce eddy currents and the resulting losses in a synchronous motor includes at least one pick-up coil mounted to the rotor. Each pick-up coil may be located proximate a pole on the rotor. A voltage applied to the stator to control the synchronous motor includes both a fundamental component and harmonic components. The fundamental component interacts with a magnetically salient structure in each pole on the rotor to cause rotation of the rotor. The harmonic components induce a voltage in the pick-up coil. The portion of the harmonic components that induce a voltage in the pick-up coil no longer generate eddy currents within the motor. The energy harvested by the pick-up coil may also be utilized in a function other than driving the motor, such as powering a sensor mounted on the rotor.
    Type: Grant
    Filed: September 27, 2019
    Date of Patent: August 30, 2022
    Assignee: Rockwell Automation Technologies, Inc.
    Inventors: Xikai Sun, Gennadi Sizov, Michael J. Melfi
  • Publication number: 20210099041
    Abstract: A system to reduce eddy currents and the resulting losses in a synchronous motor includes at least one pick-up coil mounted to the rotor. Each pick-up coil may be located proximate a pole on the rotor. A voltage applied to the stator to control the synchronous motor includes both a fundamental component and harmonic components. The fundamental component interacts with a magnetically salient structure in each pole on the rotor to cause rotation of the rotor. The harmonic components induce a voltage in the pick-up coil. The portion of the harmonic components that induce a voltage in the pick-up coil no longer generate eddy currents within the motor. The energy harvested by the pick-up coil may also be utilized in a function other than driving the motor, such as powering a sensor mounted on the rotor.
    Type: Application
    Filed: September 27, 2019
    Publication date: April 1, 2021
    Inventors: Xikai Sun, Gennadi Sizov, Michael J. Melfi
  • Patent number: 10746590
    Abstract: The subject matter disclosed herein describes a method and system to monitor and identify vibrations in a rotational mechanical system. Various fault conditions in a rotating machine operating at variable speeds may be identified, at least in part, by identifying the multiple of the fundamental frequency, or order, at which the vibration occurs. The orders of vibration present in a measured vibration signal may be determined by finding an order spectrum of a measured vibration signal in the position domain. A fault vector is generated from the order spectrum that identifies the magnitude of each order of vibration present in the measured vibration signal. The fault vector may be plotted on a radar chart to provide a visual indication of the type of fault present in the mechanical system. Evaluation models for each fault determines a probability and magnitude for each fault condition being present in the sampled vibration signal.
    Type: Grant
    Filed: September 29, 2017
    Date of Patent: August 18, 2020
    Assignee: Rockwell Automation Technologies, Inc.
    Inventors: Linglai Li, Zhenhuan Yuan, Kun Wei, Robert H. Schmidt, Michael J. Melfi, Brian Fast, Sunil R. Gaddam, Chris E. Gottlieb
  • Patent number: 10717643
    Abstract: A motor having a circuit board including at least two MEMS sensors. The circuit board is mounted within a housing of the motor using the same fasteners as an encoder of the motor. Mounting the MEMS sensors to the circuit board simplifies assembly of the motor and standardizes the positioning of the MEMS sensors within the housing, while the overall motor footprint is unaffected.
    Type: Grant
    Filed: September 27, 2017
    Date of Patent: July 21, 2020
    Assignee: Rockwell Automation Technologies, Inc.
    Inventors: Kristin N. Yee, Michael J. Melfi, Zhenhuan Yuan, John A. Balcerak, Arun K. Guru
  • Publication number: 20190101436
    Abstract: The subject matter disclosed herein describes a method and system to monitor and identify vibrations in a rotational mechanical system. Various fault conditions in a rotating machine operating at variable speeds may be identified, at least in part, by identifying the multiple of the fundamental frequency, or order, at which the vibration occurs. The orders of vibration present in a measured vibration signal may be determined by finding an order spectrum of a measured vibration signal in the position domain. A fault vector is generated from the order spectrum that identifies the magnitude of each order of vibration present in the measured vibration signal. The fault vector may be plotted on a radar chart to provide a visual indication of the type of fault present in the mechanical system. Evaluation models for each fault determines a probability and magnitude for each fault condition being present in the sampled vibration signal.
    Type: Application
    Filed: September 29, 2017
    Publication date: April 4, 2019
    Inventors: Linglai Li, Zhenhuan Yuan, Kun Wei, Robert H. Schmidt, Michael J. Melfi, Brian Fast, Sunil R. Gaddam, Chris E. Gottlieb
  • Publication number: 20190092621
    Abstract: A motor having a circuit board including at least two MEMS sensors. The circuit board is mounted within a housing of the motor using the same fasteners as an encoder of the motor. Mounting the MEMS sensors to the circuit board simplifies assembly of the motor and standardizes the positioning of the MEMS sensors within the housing, while the overall motor footprint is unaffected.
    Type: Application
    Filed: September 27, 2017
    Publication date: March 28, 2019
    Applicant: Rockwell Automation Technologies, Inc.
    Inventors: Kristin N. Yee, Michael J. Melfi, Zhenhuan Yuan, John A. Balcerak, Arun K. Guru
  • Patent number: 9780620
    Abstract: A method comprises providing a line-start synchronous motor. The motor has a stator, a rotor core disposed within the stator, and a motor shaft. In accordance with a step of the method, a coupling for coupling a load to the motor is provided. The coupling has a motor shaft attachment portion configured to provide substantially concentric contact around the shaft at the end of the motor shaft. The coupling has a load attachment portion configured to operatively connect to a load. In accordance with a step of the method, a load is coupled to the motor with the coupling, and driven from start to at least near synchronous speed during steady state operation of the motor with a load coupled thereto. The motor shaft attachment portion may comprise a bushing assembly with matching and opposed tapered surfaces that cooperate to secure the motor shaft attachment portion around the motor shaft.
    Type: Grant
    Filed: May 5, 2014
    Date of Patent: October 3, 2017
    Assignee: Baldor Electric Company
    Inventors: Michael J. Melfi, Galen E. Burdeshaw
  • Patent number: 9620999
    Abstract: A method for synchronizing a high inertial load with a line-start synchronous motor involves providing a rotor core with rotor bars being formed of a highly conductive material. In accordance with one aspect of the method, a user is directed to operatively couple a load to the motor and drive the load from start to at least near synchronous speed during steady state operation of the motor with the load coupled thereto. The load has an inertia that is greater than an inertia associated with a load driven by a like motor subjected to an equivalent range of starting current but having rotor bars formed from a conductive material having a conductivity lower than that the highly conductive material.
    Type: Grant
    Filed: April 22, 2014
    Date of Patent: April 11, 2017
    Assignee: Baldor Electric Company
    Inventors: Robert F. McElveen, Richard J. Budzynski, Michael J. Melfi
  • Publication number: 20150303847
    Abstract: A method for synchronizing a high inertial load with a line-start synchronous motor involves providing a rotor core with rotor bars being formed of a highly conductive material. In accordance with one aspect of the method, a user is directed to operatively couple a load to the motor and drive the load from start to at least near synchronous speed during steady state operation of the motor with the load coupled thereto. The load has an inertia that is greater than an inertia associated with a load driven by a like motor subjected to an equivalent range of starting current but having rotor bars formed from a conductive material having a conductivity lower than that the highly conductive material.
    Type: Application
    Filed: April 22, 2014
    Publication date: October 22, 2015
    Applicant: Baldor Electric Company
    Inventors: Robert F. McElveen, Richard J. Budzynski, Michael J. Melfi
  • Patent number: 9166456
    Abstract: A mechanical soft-start type coupling is used as an interface between a line start, synchronous motor and a heavy load to enable the synchronous motor to bring the heavy load up to or near synchronous speed. The soft-start coupling effectively isolates the synchronous motor from the load for enough time to enable the synchronous motor to come up to full speed. The soft-start coupling then brings the load up to or near synchronous speed.
    Type: Grant
    Filed: March 28, 2012
    Date of Patent: October 20, 2015
    Assignee: Baldor Electric Company
    Inventor: Michael J. Melfi
  • Patent number: 8872465
    Abstract: A line-start synchronous motor has a housing, a rotor shaft, and an output shaft. A soft-start coupling portion is operatively coupled to the output shaft and the rotor shaft. The soft-start coupling portion is configurable to enable the synchronous motor to obtain synchronous operation and to drive, at least near synchronous speed during normal steady state operation of the motor, a load having characteristics sufficient to prevent obtaining normal synchronous operation of the motor when the motor is operatively connected to the load in the absence of the soft-start coupling. The synchronous motor is sufficiently rated to obtain synchronous operation and to drive, at least near synchronous speed during normal steady state operation of the motor, a load having characteristics sufficient to prevent obtaining normal synchronous operation of the motor when the motor is operatively connected to the load in the absence of the soft-start coupling.
    Type: Grant
    Filed: March 6, 2013
    Date of Patent: October 28, 2014
    Assignee: Baldor Electric Company
    Inventors: Stephen D. Umans, Donald L. Nisley, Michael J. Melfi
  • Publication number: 20140283373
    Abstract: A method includes forming a lamination that may be used in a rotor of an interior permanent magnet motor or further processed for use in a line-start interior permanent magnet motor. The lamination has been optimized for low cogging, minimal usage of magnet material, and maximum torque per ampere and may be further processed to include rotor bars slots to allow the lamination's use in connection with an LSIPM. In accordance with the method, the lamination is formed with magnet slots that are radially inward of the outer diameter. The magnet slots are formed in a plurality of V-shaped arrangements. Each V-shaped arrangement has a leading edge and a trailing edge. The leading edge and trailing edge are arranged such that when the leading edge aligns with a stator tooth, the respective trailing edge is generally not aligned with a stator tooth.
    Type: Application
    Filed: May 7, 2014
    Publication date: September 25, 2014
    Inventors: Michael J. Melfi, Richard F. Schiferl, Stephen D. Umans, Robert F. McElveen, William E. Martin
  • Publication number: 20140285050
    Abstract: A rotor comprises laminations with a plurality of rotor bar slots with an asymmetric arrangement about the rotor. The laminations also have magnet slots equiangularly spaced about the rotor. The magnet slots extend near to the rotor outer diameter and have permanent magnets disposed therein creating magnetic poles. The magnet slots may be formed longer than the permanent magnets disposed therein and define one or more magnet slot apertures. The permanent magnets define a number of poles and a pole pitch. The rotor bar slots are spaced from adjacent magnet slots by a distance that is at least 4% of the pole pitch. Conductive material is disposed in the rotor bar slots, and in some embodiments, may be disposed in the magnet slot apertures.
    Type: Application
    Filed: May 5, 2014
    Publication date: September 25, 2014
    Inventors: Michael J. Melfi, Richard F. Schiferl, Stephen D. Umans
  • Publication number: 20140239875
    Abstract: A method comprises providing a line-start synchronous motor. The motor has a stator, a rotor core disposed within the stator, and a motor shaft. In accordance with a step of the method, a coupling for coupling a load to the motor is provided. The coupling has a motor shaft attachment portion configured to provide substantially concentric contact around the shaft at the end of the motor shaft. The coupling has a load attachment portion configured to operatively connect to a load. In accordance with a step of the method, a load is coupled to the motor with the coupling, and driven from start to at least near synchronous speed during steady state operation of the motor with a load coupled thereto. The motor shaft attachment portion may comprise a bushing assembly with matching and opposed tapered surfaces that cooperate to secure the motor shaft attachment portion around the motor shaft.
    Type: Application
    Filed: May 5, 2014
    Publication date: August 28, 2014
    Inventors: Michael J. Melfi, Galen E. Burdeshaw
  • Publication number: 20130257342
    Abstract: A mechanical soft-start type coupling is used as an interface between a line start, synchronous motor and a heavy load to enable the synchronous motor to bring the heavy load up to or near synchronous speed. The soft-start coupling effectively isolates the synchronous motor from the load for enough time to enable the synchronous motor to come up to full speed. The soft-start coupling then brings the load up to or near synchronous speed.
    Type: Application
    Filed: March 28, 2012
    Publication date: October 3, 2013
    Applicant: BALDOR ELECTRIC COMPANY
    Inventor: Michael J. Melfi
  • Patent number: 7511438
    Abstract: A system and method are provided whereby at least two motors driven by an inverter coupled to a DC bus are configured to alternate between regenerative and injection braking such that at least one motor is placed in regenerative braking mode and at least one motor is placed in motoring mode. Energy is simultaneously placed on and removed from the DC bus in a manner allowing a large current to flow in as many motors as possible, for fast stoppage of load inertia. At least one motor may be placed in regenerative braking mode and at least one motor in DC injection mode, such that energy is simultaneously placed onto and removed from the DC bus, respectively. Further, a single motor may be is alternated between regenerative braking and DC injection braking, such that energy is alternately placed onto and removed from the DC bus, respectively.
    Type: Grant
    Filed: September 29, 2006
    Date of Patent: March 31, 2009
    Assignee: Reliance Electric Technologies, LLC
    Inventor: Michael J. Melfi
  • Patent number: 7479756
    Abstract: A system and method for protecting a motor drive unit from an associated motor includes a motor drive unit protection system. The motor drive unit protection system includes at least one switch configured to be connected between a motor drive unit and a plurality of motor leads of the motor driven by the motor drive unit. The motor drive unit protection system also includes a controller configured to monitor the motor drive unit or the motor to determine a fault condition indicative of the motor potentially operating as a generator. Upon determining the fault condition, the controller is configured to cause the at least one switch to connect the plurality of motor leads together to protect the motor drive unit from the motor when the motor is operating as a generator.
    Type: Grant
    Filed: June 19, 2006
    Date of Patent: January 20, 2009
    Assignee: Rockwell Automation Technologies, Inc.
    Inventors: John M. Kasunich, Daniel Pixler, Brian T. Concannon, Michael J. Melfi, Semyon Royak, Mark M. Harbaugh
  • Patent number: 7385328
    Abstract: A permanent magnet motor having a rotor and a stator and configured such that when the leading edge of each pole of the rotor aligns with a stator tooth the trailing edge of that pole is generally not aligned with a stator tooth.
    Type: Grant
    Filed: May 23, 2006
    Date of Patent: June 10, 2008
    Assignee: Reliance Electric Technologies, LLC
    Inventor: Michael J. Melfi
  • Patent number: 7358620
    Abstract: In accordance with certain exemplary embodiments, the present technique provides methods and apparatus for providing operating power to a complementary device to an induction device based uninterruptible power source (UPS) via a direct current (dc) bus. In one embodiment, the UPS includes a flywheel that stores kinetic energy during conventional operating conditions, e.g., external power is available. During such operating condition, the external power operates the induction device as an induction motor. However, when external power is lost, i.e., a transient operating condition, power conversion circuitry of the UPS provides ac power to the induction device such that the induction device operates above its synchronous speed and, as such, acts as an induction generator.
    Type: Grant
    Filed: September 30, 2004
    Date of Patent: April 15, 2008
    Assignee: Rockwell Automation Technologies, Inc.
    Inventor: Michael J. Melfi
  • Publication number: 20080079373
    Abstract: A system and method are provided whereby at least two motors driven by an inverter coupled to a DC bus are configured to alternate between regenerative and injection braking such that at least one motor is placed in regenerative braking mode and at least one motor is placed in motoring mode. Energy is simultaneously placed on and removed from the DC bus in a manner allowing a large current to flow in as many motors as possible, for fast stoppage of load inertia. At least one motor may be placed in regenerative braking mode and at least one motor in DC injection mode, such that energy is simultaneously placed onto and removed from the DC bus, respectively. Further, a single motor may be is alternated between regenerative braking and DC injection braking, such that energy is alternately placed onto and removed from the DC bus, respectively.
    Type: Application
    Filed: September 29, 2006
    Publication date: April 3, 2008
    Inventor: Michael J. Melfi