Patents by Inventor Mathew Noel Rekow
Mathew Noel Rekow 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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Publication number: 20240118392Abstract: A two-dimensional (2D) lidar scanner includes a scan mirror assembly and rotary component. The scan mirror assembly includes a scan mirror and a mirror-tilting apparatus coupled to the scan mirror. The rotary component is coupled to the scan mirror assembly and can drive a rotary motion of the scan mirror assembly about a first axis. The mirror-tilting apparatus is configured to tilt the scan mirror about a second axis substantially perpendicular to the first axis in response to the rotary component driving the rotary motion of the scan mirror assembly. An orientation of the scan mirror is operable to control a first angle of reflection of a laser beam in a first dimension and a second angle of reflection of the laser beam in a second dimension during a lidar scanning process.Type: ApplicationFiled: September 28, 2023Publication date: April 11, 2024Applicant: VELODYNE LIDAR USA, INC.Inventors: Mathew Noel Rekow, Joseph B. Culkin
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Patent number: 11874377Abstract: Methods and systems for performing three-dimensional (3-D) LIDAR measurements with multiple illumination beams scanned over a 3-D environment are described herein. In one aspect, illumination light from each LIDAR measurement channel is emitted to the surrounding environment in a different direction by a beam scanning device. The beam scanning device also directs each amount of return measurement light onto a corresponding photodetector. In some embodiments, a beam scanning device includes a scanning mirror rotated in an oscillatory manner about an axis of rotation by an actuator in accordance with command signals generated by a master controller. In some embodiments, the light source and photodetector associated with each LIDAR measurement channel are moved in two dimensions relative to beam shaping optics employed to collimate light emitted from the light source. The relative motion causes the illumination beams to sweep over a range of the 3-D environment under measurement.Type: GrantFiled: August 20, 2019Date of Patent: January 16, 2024Assignee: Velodyne Lidar USA, Inc.Inventors: David S. Hall, Pieter J Kerstens, Mathew Noel Rekow, Stephen S. Nestinger
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Patent number: 11867812Abstract: Apparatus and methods for aligning circuit boards (e.g., for LIDAR systems) are disclosed. According to one embodiment, an electronic device comprises a secondary device and a coupling device coupled to the secondary device. The coupling device comprises a plurality of conductive members, including a first conductive member and a second conductive member. Each of the conductive members comprises a first end configured to electrically and mechanically couple to a primary circuit board and a second end electrically and mechanically coupled to the secondary device. Each of the plurality of conductive members has an attribute adjustable in response to a condition being added to the respective conductive member, and is configured to maintain the adjusted attribute after the condition is removed.Type: GrantFiled: November 8, 2021Date of Patent: January 9, 2024Assignee: Velodyne Lidar USA, Inc.Inventors: David S. Hall, Anand Gopalan, Cristhian Octavio Reyes, Thomas Richardson Tewell, Mathew Noel Rekow
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Patent number: 11867790Abstract: A plurality of beams of illumination light are emitted from a LIDAR device over a range of angles and scanned about an axis of rotation. The range of angles includes the axis of rotation. Intermediate electronics boards provide mechanical support and electrical connectivity between a rotating electronics board and various elements of a light emission and collection engine. One or more of the optical elements of the collection optics, the illumination optics, or both, is constructed from one or more materials that absorb light outside of a predetermined wavelength range. An overmolded lens is fixedly coupled to one or more of the light detecting elements to collect incoming light over a larger range of angles. A lens element is disposed in the light path between a light emitting element and the illumination optics to flatten the intensity distribution of light emitted from the light emitting element to reduce peak intensity.Type: GrantFiled: January 19, 2020Date of Patent: January 9, 2024Assignee: Velodyne Lidar USA, Inc.Inventors: David S. Hall, Mathew Noel Rekow, Stephen S. Nestinger, Pieter J. Kerstens
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Patent number: 11860280Abstract: Methods and systems for performing three dimensional LIDAR measurements with a highly integrated LIDAR measurement device are described herein. In one aspect, the illumination source, detector, and illumination drive are integrated onto a single printed circuit board. In addition, in some embodiments, the associated control and signal conditioning electronics are also integrated onto the common printed circuit board. Furthermore, in some embodiments, the illumination drive and the illumination source are integrated onto a common Gallium Nitride substrate that is independently packaged and attached to the printed circuit board. In another aspect, the illumination light emitted from the illumination source and the return light directed toward the detector share a common optical path within the integrated LIDAR measurement device. In some embodiments, the return light is separated from the illumination light by a beam splitter.Type: GrantFiled: June 22, 2021Date of Patent: January 2, 2024Assignee: Velodyne Lidar USA, Inc.Inventors: David S. Hall, Pieter J. Kerstens, Mathew Noel Rekow
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Publication number: 20230367014Abstract: A light detection and ranging (LiDAR) device includes at least one illumination source configured to emit illumination light, an optical scanning device disposed in an optical path of the at least one illumination source to redirect the illumination light emitted by the at least one illumination source from the LiDAR device into a three-dimensional (3-D) environment, at least one scanning mechanism configured to rotate the optical scanning device about at least one axis, and at least one controller. The at least one controller is configured to determine a desired scan pattern for the LiDAR device, generate at least one drive waveform corresponding to (i) the desired scan pattern and (ii) a scan line compression profile of the optical scanning device, and operate the at least one scanning mechanism based on the at least one drive waveform to provide the desired scan pattern.Type: ApplicationFiled: May 10, 2022Publication date: November 16, 2023Inventors: Stephen S. Nestinger, Mathew Noel Rekow
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Patent number: 11808854Abstract: Methods and systems for performing three-dimensional (3-D) LIDAR measurements with multiple illumination beams scanned over a 3-D environment are described herein. In one aspect, illumination light from each LIDAR measurement channel is emitted to the surrounding environment in a different direction by a beam scanning device. The beam scanning device also directs each amount of return measurement light onto a corresponding photodetector. In some embodiments, a beam scanning device includes a scanning mirror rotated in an oscillatory manner about an axis of rotation by an actuator in accordance with command signals generated by a master controller. In some embodiments, the light source and photodetector associated with each LIDAR measurement channel are moved in two dimensions relative to beam shaping optics employed to collimate light emitted from the light source. The relative motion causes the illumination beams to sweep over a range of the 3-D environment under measurement.Type: GrantFiled: August 20, 2019Date of Patent: November 7, 2023Assignee: Velodyne Lidar USA, Inc.Inventors: David S. Hall, Pieter J. Kerstens, Mathew Noel Rekow, Stephen S. Nestinger
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Patent number: 11723762Abstract: Methods and systems for performing 3-D LIDAR measurements of objects simultaneously illuminated by two or more beams of light in the far field are described herein. A 3-D LIDAR based measurement device simultaneously emits at least two beams of light into a three dimensional environment from different locations. A portion of the three dimensional environment is simultaneously illuminated by the two or more light beams at a distance of at least five meters from the LIDAR device. However, the two or more light beams do not overlap at a distance less than five meters from the LIDAR device. The beams of light are slightly divergent, having highest intensity at the device and steadily lower intensity further away. By overlapping illumination beams in the far field, but not near the LIDAR device, overall intensity is maintained at moderate levels throughout the field of view of the LIDAR device.Type: GrantFiled: January 31, 2017Date of Patent: August 15, 2023Assignee: VELODYNE LIDAR, INC.Inventors: David S. Hall, Mathew Noel Rekow, Pieter J. Kerstens
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Publication number: 20230213618Abstract: A light detection and ranging (LIDAR) device including a plurality of laser sources configured to provide a plurality of transmit beams, each laser source being positioned with a respective offset of a first plurality of offsets relative to a reference line, a plurality of transmit/receive (T/R) interfaces configured to pass the plurality of transmit beams and reflect received light towards a plurality of detectors, each T/R interface being positioned with a respective offset of a second plurality of offsets relative to the reference line, and a plurality of lenses positioned between the plurality of laser sources and the plurality of T/R interfaces, each lens being positioned with a respective offset of a third plurality of offsets relative to the reference line, wherein the plurality of laser sources and the plurality of lenses, as positioned, are configured to provide beam-steering of the plurality of transmit beams.Type: ApplicationFiled: December 31, 2021Publication date: July 6, 2023Inventors: Mathew Noel Rekow, Stefan Pfnuer
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Publication number: 20230213621Abstract: A light detection and ranging (LIDAR) device including a plurality of illumination sources, each of the plurality of illumination sources configured to emit illumination light, an optical scanning device disposed in an optical path of the plurality of illumination sources, the optical scanning device configured to oscillate about a first axis to redirect the illumination light emitted by the plurality of illumination sources from the LIDAR device into a three-dimensional (3-D) environment, a plurality of photosensitive detectors, each of the plurality of photosensitive detectors configured to detect a respective portion of return light reflected from the 3-D environment when illuminated by a respective portion of the illumination light, and a scanning mechanism configured to rotate the optical scanning device about a second axis orthogonal to the first axis.Type: ApplicationFiled: December 31, 2021Publication date: July 6, 2023Inventors: Mathew Noel Rekow, Stephen S. Nestinger, Nathan Wilkerson
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Publication number: 20230213619Abstract: A light detection and ranging (LIDAR) device including a laser source configured to provide a transmit beam, the laser source being positioned with a first offset relative to a reference line, a transmit/receive (T/R) interface configured to pass the transmit beam and reflect received light towards a detector, the T/R interface being positioned with a second offset relative to the reference line, and a lens positioned between the laser source and the T/R interface, the lens being positioned with a third offset relative to the reference line, wherein the laser source and the lens, as positioned, are configured to steer the transmit beam.Type: ApplicationFiled: December 31, 2021Publication date: July 6, 2023Inventors: Mathew Noel Rekow, Stefan Pfnuer
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Publication number: 20230194684Abstract: Systems and methods for detecting blockages for light detection and ranging (“LiDAR”) devices are disclosed. According to one embodiment, a light detection and ranging (LiDAR) blockage detection method includes emitting, by an active channel of a plurality of channels of a LiDAR device, an optical signal toward a configured position on a housing of the LiDAR device. A passive listening channel of the plurality of channels receives a return signal originating from the optical signal. Based on a comparison of data derived from the return signal and data derive from a reference signal, a determination is made as to whether a blockage is present at the configured position on the housing.Type: ApplicationFiled: December 21, 2021Publication date: June 22, 2023Inventors: Suqin Wang, Mathew Noel Rekow, Pravin Kumar Venkatesan, Sunil Kumar Singh Khatana, Meng-Day Yu
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Patent number: 11561305Abstract: Methods and systems for performing three-dimensional (3-D) LIDAR measurements with multiple illumination beams scanned over a 3-D environment are described herein. In one aspect, illumination light from each LIDAR measurement channel is emitted to the surrounding environment in a different direction by a beam scanning device. The beam scanning device also directs each amount of return measurement light onto a corresponding photodetector. In some embodiments, a beam scanning device includes a scanning mirror rotated in an oscillatory manner about an axis of rotation by an actuator in accordance with command signals generated by a master controller. In some embodiments, the light source and photodetector associated with each LIDAR measurement channel are moved in two dimensions relative to beam shaping optics employed to collimate light emitted from the light source. The relative motion causes the illumination beams to sweep over a range of the 3-D environment under measurement.Type: GrantFiled: June 23, 2020Date of Patent: January 24, 2023Assignee: VELODYNE LIDAR USA, INC.Inventors: David S. Hall, Pieter J. Kerstens, Mathew Noel Rekow, Stephen S. Nestinger
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Patent number: 11550056Abstract: Methods and systems for performing three-dimensional (3-D) LIDAR measurements with multiple illumination beams scanned over a 3-D environment are described herein. In one aspect, illumination light from each LIDAR measurement channel is emitted to the surrounding environment in a different direction by a beam scanning device. The beam scanning device also directs each amount of return measurement light onto a corresponding photodetector. In some embodiments, a beam scanning device includes a scanning mirror rotated in an oscillatory manner about an axis of rotation by an actuator in accordance with command signals generated by a master controller. In some embodiments, the light source and photodetector associated with each LIDAR measurement channel are moved in two dimensions relative to beam shaping optics employed to collimate light emitted from the light source. The relative motion causes the illumination beams to sweep over a range of the 3-D environment under measurement.Type: GrantFiled: April 7, 2020Date of Patent: January 10, 2023Assignee: VELODYNE LIDAR USA, INC.Inventors: David S. Hall, Pieter J. Kerstens, Mathew Noel Rekow, Stephen S. Nestinger
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Publication number: 20220350000Abstract: A light detection and ranging (LiDAR) method may include generating, by a first transmitter, a first light illumination signal; generating, by a second transmitter, a second light illumination signal; receiving first return signals corresponding to the first light illumination signal; receiving second return signals corresponding to the second light illumination signal; and sampling the first return signals or the second return signals during a short-range sampling period, such that the short-range sampling period avoids a period of dazzle.Type: ApplicationFiled: May 3, 2021Publication date: November 3, 2022Inventors: Nathan Wilkerson, Mathew Noel Rekow
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Publication number: 20220326763Abstract: LiDAR-based immersive 3D reality capture systems and methods are disclosed. The reality capture system includes a set of LiDAR sensors disposed around an environment and configured to capture one or more events occurring within the environment. The reality capture system also includes a corresponding set of cameras disposed around the environment. Each camera is mounted on a same gimbal with a corresponding LiDAR sensor and has a same optical axis as the corresponding LiDAR sensor. The reality capture system further includes a base station viewpoint generator coupled to the set of LiDAR sensors and the cameras to generate a video feed based on data received from the LiDAR sensors and the cameras. The reality capture system additionally includes a virtual reality device coupled to the base station viewpoint generator to receive and display the video feed generated by the base station viewpoint generator.Type: ApplicationFiled: March 31, 2022Publication date: October 13, 2022Inventors: Mathew Noel Rekow, David S. Hall, Sunil Kumar Singh Khatana, Sharath Nair, John Kua
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Publication number: 20220057510Abstract: Apparatus and methods for aligning circuit boards (e.g., for LIDAR systems) are disclosed. According to one embodiment, an electronic device comprises a secondary device and a coupling device coupled to the secondary device. The coupling device comprises a plurality of conductive members, including a first conductive member and a second conductive member. Each of the conductive members comprises a first end configured to electrically and mechanically couple to a primary circuit board and a second end electrically and mechanically coupled to the secondary device. Each of the plurality of conductive members has an attribute adjustable in response to a condition being added to the respective conductive member, and is configured to maintain the adjusted attribute after the condition is removed.Type: ApplicationFiled: November 8, 2021Publication date: February 24, 2022Inventors: David S. Hall, Anand Gopalan, Cristhian Octavio Reyes, Thomas Richardson Tewell, Mathew Noel Rekow
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Publication number: 20220026575Abstract: Methods and systems for performing three dimensional LIDAR measurements with a highly integrated LIDAR measurement device are described herein. In one aspect, the illumination source, detector, and illumination drive are integrated onto a single printed circuit board. In addition, in some embodiments, the associated control and signal conditioning electronics are also integrated onto the common printed circuit board. Furthermore, in some embodiments, the illumination drive and the illumination source are integrated onto a common Gallium Nitride substrate that is independently packaged and attached to the printed circuit board. In another aspect, the illumination light emitted from the illumination source and the return light directed toward the detector share a common optical path within the integrated LIDAR measurement device. In some embodiments, the return light is separated from the illumination light by a beam splitter.Type: ApplicationFiled: June 22, 2021Publication date: January 27, 2022Inventors: David S. Hall, Pieter J. Kerstens, Mathew Noel Rekow
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Publication number: 20210405196Abstract: Methods and systems for performing three-dimensional (3-D) LIDAR measurements with multiple illumination beams scanned over a 3-D environment are described herein. In one aspect, illumination light from each LIDAR measurement channel is emitted to the surrounding environment in a different direction by a beam scanning device. The beam scanning device also directs each amount of return measurement light onto a corresponding photodetector. In some embodiments, a beam scanning device includes a scanning mirror rotated in an oscillatory manner about an axis of rotation by an actuator in accordance with command signals generated by a master controller. In some embodiments, the light source and photodetector associated with each LIDAR measurement channel are moved in two dimensions relative to beam shaping optics employed to collimate light emitted from the light source. The relative motion causes the illumination beams to sweep over a range of the 3-D environment under measurement.Type: ApplicationFiled: April 19, 2021Publication date: December 30, 2021Inventors: David S. Hall, Pieter J. Kerstens, Mathew Noel Rekow, Stephen S. Nestinger
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Publication number: 20210364609Abstract: A scanner of a LiDAR system includes a mirror configured to redirect a light signal emitted by an optical emitter, a first axis scanning system configured to rotate the mirror about a first axis and with respect to the optical emitter, that controls a first angle of emission of the light signal from the LiDAR system into a field of view of the LiDAR system, and a second axis scanning system configured to rotate the mirror about a second axis and with respect to the optical emitter, that controls a second angle of emission of the light signal from the LiDAR system into the field of view. The first axis scanning mechanism is configured to rotate the reflective surface of the mirror at least 45 degrees about the first axis.Type: ApplicationFiled: August 2, 2021Publication date: November 25, 2021Inventors: David S. Hall, Andrew Janik, Mathew Noel Rekow, Anand Gopalan, Stephen S. Nestinger, William B. Etheridge