Patents by Inventor David G. Stites

David G. Stites 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: 9784570
    Abstract: Polarization-based coherent gradient-sensing systems and methods for measuring at least one surface-shape property of a specularly reflective surface are disclosed. The method includes: reflecting a first circularly polarized laser beam from a sample surface to form a second circularly polarized laser beam that contains surface-shape information; converting the second circularly polarized laser beam to a linearly polarized reflected laser beam; directing respective first and second portions of the linearly polarized reflected laser beam to first and second relay assemblies that constitute first and second interferometer arms. The first and second relay assemblies each use a pair of axially spaced-apart gratings to generate respective first and second interference patterns at respective first and second image sensors. Respective first and second signals from the first and second image sensors are processed to determine the at least one surface-shape property.
    Type: Grant
    Filed: May 12, 2016
    Date of Patent: October 10, 2017
    Assignee: Ultratech, Inc.
    Inventor: David G. Stites
  • Publication number: 20160363440
    Abstract: Polarization-based coherent gradient-sensing systems and methods for measuring at least one surface-shape property of a specularly reflective surface are disclosed. The method includes: reflecting a first circularly polarized laser beam from a sample surface to form a second circularly polarized laser beam that contains surface-shape information; converting the second circularly polarized laser beam to a linearly polarized reflected laser beam; directing respective first and second portions of the linearly polarized reflected laser beam to first and second relay assemblies that constitute first and second interferometer arms. The first and second relay assemblies each use a pair of axially spaced-apart gratings to generate respective first and second interference patterns at respective first and second image sensors. Respective first and second signals from the first and second image sensors are processed to determine the at least one surface-shape property.
    Type: Application
    Filed: May 12, 2016
    Publication date: December 15, 2016
    Applicant: Ultratech, Inc.
    Inventor: David G. Stites
  • Patent number: 9488811
    Abstract: A 1× Wynne-Dyson optical system for microlithography having a variable magnification is disclosed. The 1× Wynne-Dyson optical system has first and second prisms, and a positive lens group that includes a split lens having first and second split lens elements that reside adjacent the first and second prisms, respectively. The first and second split lens elements are axially movable to change the magnification by up to about 500 parts per million. An adjustable positive lens group for a 1× Wynne-Dyson optical system is also disclosed, wherein the positive lens group allows for small changes in the optical system magnification.
    Type: Grant
    Filed: July 26, 2014
    Date of Patent: November 8, 2016
    Assignee: Ultratech, Inc.
    Inventor: David G. Stites
  • Publication number: 20150057533
    Abstract: A device for scanning a body orifice or surface including a light source and a wide angle lens. The light from the light source is projected in a pattern distal or adjacent to the wide angle lens. Preferably, the pattern is within a focal surface of the wide angle lens. The pattern intersects a surface of the body orifice, such as an ear canal, and defines a partial lateral portion of the pattern extending along the surface. A processor is configured to receive an image of the lateral portion from the wide angle lens and determine a position of the lateral portion in a coordinate system using a known focal surface of the wide angle lens. Multiple lateral portions are reconstructed by the processor to build a three-dimensional shape. This three-dimensional shape may be used for purposes such as diagnostic, navigation, or custom-fitting of medical devices, such as hearing aids.
    Type: Application
    Filed: November 12, 2014
    Publication date: February 26, 2015
    Inventors: HARRIS BERGMAN, SCOTT CAHALL, GIORGOS HATZILIAS, KAROL HATZILIAS, DAVID G. STITES
  • Publication number: 20150055228
    Abstract: A 1× Wynne-Dyson optical system for microlithography having a variable magnification is disclosed. The 1× Wynne-Dyson optical system has first and second prisms, and a positive lens group that includes a split lens having first and second split lens elements that reside adjacent the first and second prisms, respectively. The first and second split lens elements are axially movable to change the magnification by up to about 500 parts per million. An adjustable positive lens group for a 1× Wynne-Dyson optical system is also disclosed, wherein the positive lens group allows for small changes in the optical system magnification.
    Type: Application
    Filed: July 26, 2014
    Publication date: February 26, 2015
    Applicant: Ultratech, Inc.
    Inventor: David G. Stites
  • Patent number: 8900127
    Abstract: An otoscanner including an otoscanner body, the body comprising a hand grip, the body having mounted upon it an ear probe, a tracking illumination emitter, a plurality of tracking illumination sensors, and a display screen, the otoscanner body having mounted within it an image sensor; the ear probe comprising a wide-angle lens optically coupled to the image sensor, laser light source, a laser optical element, and a source of non-laser video illumination; the plurality of tracking illumination sensors disposed upon the otoscanner body so as to sense reflections of tracking illumination emitted from the tracking illumination emitter and reflected from tracking targets installed at positions that are fixed relative to the scanned ear; the image sensor coupled for data communications to a data processor, with the data processor configured so that it functions by constructing a 3D image of the interior of the scanned ear.
    Type: Grant
    Filed: August 15, 2012
    Date of Patent: December 2, 2014
    Assignee: United Sciences, LLC
    Inventors: Nathanael Berglund, Harris Bergman, Scott Cahall, Jerry Foster, Eohan George, Samuel W. Harris, Giorgos Hatzilias, Karol Hatzilias, Ruizhi Hong, Wess E. Sharpe, David G. Stites, Harry S. Strothers, IV
  • Patent number: 8900125
    Abstract: An otoscanner including an otoscanner body, the body comprising a hand grip, the body having mounted upon it an ear probe, a tracking illumination emitter, a plurality of tracking illumination sensors, and a display screen, the otoscanner body having mounted within it an image sensor; the ear probe comprising a wide-angle lens optically coupled to the image sensor, laser light source, a laser optical element, and a source of non-laser video illumination; the plurality of tracking illumination sensors disposed upon the otoscanner body so as to sense reflections of tracking illumination emitted from the tracking illumination emitter and reflected from tracking targets installed at positions that are fixed relative to the scanned ear; the image sensor coupled for data communications to a data processor, with the data processor configured so that it functions by constructing a 3D image of the interior of the scanned ear.
    Type: Grant
    Filed: March 12, 2012
    Date of Patent: December 2, 2014
    Assignee: United Sciences, LLC
    Inventors: Nathanael Berglund, Harris Bergman, Scott Cahall, Jerry Foster, Eohan George, Samuel W. Harris, Giorgos Hatzilias, Karol Hatzilias, Ruizhi Hong, Wess E. Sharpe, David G. Stites, Harry S. Strothers, IV
  • Patent number: 8900130
    Abstract: An otoscanner including an otoscanner body, the body comprising a hand grip, the body having mounted upon it an ear probe, a tracking illumination emitter, a plurality of tracking illumination sensors, and a display screen, the otoscanner body having mounted within it an image sensor; the image sensor coupled for data communications to a data processor, with the data processor configured to function by inferring, from a tracked position of the ear probe, previously recorded statistics describing typical ear sizes according to human demographics, and currently recorded demographic information regarding a person whose ear is scanned, the actual present position of the ear probe in relation to at least one part of the scanned ear; and providing a warning when the probe moves within a predefined distance from the part of the scanned ear.
    Type: Grant
    Filed: August 15, 2012
    Date of Patent: December 2, 2014
    Assignee: United Sciences, LLC
    Inventors: Nathanael Berglund, Harris Bergman, Scott Cahall, Jerry Foster, Eohan George, Samuel W. Harris, Giorgos Hatzilias, Karol Hatzilias, Ruizhi Hong, Wess E. Sharpe, David G. Stites, Harry S. Strothers, IV
  • Patent number: 8900129
    Abstract: An otoscanner including an otoscanner body, the body comprising a hand grip, the body having mounted upon it an ear probe, a tracking illumination emitter, a plurality of tracking illumination sensors, and a display screen, the otoscanner body having mounted within it an image sensor; the ear probe comprising a wide-angle lens optically coupled to the image sensor, laser light source, a laser optical element, and a source of non-laser video illumination; the display screen coupled for data communications to the image sensor, the display screen displaying images of the scanned ear, the display screen positioned on the otoscanner body in relation to the ear probe so that when the ear probe is positioned for scanning, both the display screen and the ear probe are visible to a operator operating the otoscanner; and a data processor configured to construct a 3D image of the interior of the scanned ear.
    Type: Grant
    Filed: August 15, 2012
    Date of Patent: December 2, 2014
    Assignee: United Sciences, LLC
    Inventors: Nathanael Berglund, Harris Bergman, Scott Cahall, Jerry Foster, Eohan George, Samuel W. Harris, Giorgos Hatzilias, Karol Hatzilias, Ruizhi Hong, Wess E. Sharpe, David G. Stites, Harry S. Strothers, IV
  • Patent number: 8900126
    Abstract: A device for scanning a body orifice or surface including a light source and a wide angle lens. The light from the light source is projected in a pattern distal or adjacent to the wide angle lens. Preferably, the pattern is within a focal surface of the wide angle lens. The pattern intersects a surface of the body orifice, such as an ear canal, and defines a partial lateral portion of the pattern extending along the surface. A processor is configured to receive an image of the lateral portion from the wide angle lens and determine a position of the lateral portion in a coordinate system using a known focal surface of the wide angle lens. Multiple lateral portions are reconstructed by the processor to build a three-dimensional shape. This three-dimensional shape may be used for purposes such as diagnostic, navigation, or custom-fitting of medical devices, such as hearing aids.
    Type: Grant
    Filed: March 12, 2012
    Date of Patent: December 2, 2014
    Assignee: United Sciences, LLC
    Inventors: Harris Bergman, Scott Cahall, Giorgos Hatzilias, Karol Hatzilias, David G. Stites
  • Patent number: 8900128
    Abstract: An otoscanner including an otoscanner body, the body comprising a hand grip, the body having mounted upon it an ear probe, a tracking illumination emitter, a plurality of tracking illumination sensors, and a display screen, the otoscanner body having mounted within it an image sensor; wherein the image sensor operates at a video frame rate that is twice a standard video frame rate; a laser light source is strobed during capture by the image sensor of alternate video frames; video frames are captured by the image sensor when only the non-laser video illumination illuminates the scanned ear; and images for constructing 3D images are captured by the image sensor only when the strobed laser light illuminates the scanned ear.
    Type: Grant
    Filed: August 15, 2012
    Date of Patent: December 2, 2014
    Assignee: United Sciences, LLC
    Inventors: Nathanael Berglund, Harris Bergman, Scott Cahall, Jerry Foster, Eohan George, Samuel W. Harris, Giorgos Hatzilias, Karol Hatzilias, Ruizhi Hong, Wess E. Sharpe, David G. Stites, Harry S. Strothers, IV
  • Patent number: 8845163
    Abstract: An LED-based photolithographic illuminator with high collection efficiency is disclosed. The illuminator utilizes an array of LEDs, wherein each LED has an LED die and a heat sink. The LED dies are imaged onto the input end of a homogenizer rod to substantially cover the input end without inclusion of the non-light-emitting heat sink sections of the LED. A microlens array is used to image the LED dies. The collection efficiency of the illuminator is better than 50% and the illumination uniformity at the output end of the light homogenizer is within +/?2%.
    Type: Grant
    Filed: August 17, 2012
    Date of Patent: September 30, 2014
    Assignee: Ultratech, Inc.
    Inventors: David G. Stites, Andrew M. Hawryluk
  • Patent number: 8830590
    Abstract: A unit magnification Wynn-Dyson lens for microlithography has an image field sized to accommodate between four and six die of dimensions 26 mm×36 mm. The lens has a positive lens group that consists of either three or four refractive lens elements, with one of the lens elements being most mirror-wise and having a prism-wise concave aspheric surface. Protective windows respectively reside between object and image planes and the corresponding prism faces. The lens is corrected for at least the i-line LED wavelength spectrum or similar LED-generated wavelengths.
    Type: Grant
    Filed: May 20, 2013
    Date of Patent: September 9, 2014
    Assignee: Ultratech, Inc.
    Inventor: David G. Stites
  • Publication number: 20140200408
    Abstract: An otoscanner including a conical laser-reflective optical element and a laser light source and the conical laser-reflecting optical element are configured so that the conical laser-reflecting optical element, when illuminated by the laser light source, projects a broken ring of laser light upon an interior surface of the ear when the ear probe is positioned in the ear and a diffractive laser optic lens and the laser light source and the diffractive laser optic lens are configured so that the diffractive laser optic lens, when illuminated by the laser light source, projects upon an interior surface of the ear a fan of laser light at a predetermined angle with respect to a front surface of the diffractive laser optic lens when the ear probe is positioned in the ear.
    Type: Application
    Filed: March 18, 2014
    Publication date: July 17, 2014
    Applicant: UNITED SCIENCES, LLC
    Inventors: NATHANAEL BERGLUND, HARRIS BERGMAN, SCOTT CAHALL, JERRY FOSTER, EOHAN GEORGE, SAMUEL W. HARRIS, GIORGOS HATZILIAS, KAROL HATZILIAS, RUIZHI HONG, WESS ERIC SHARPE, DAVID G. STITES, HARRY S. STROTHERS, IV
  • Patent number: 8715173
    Abstract: An otoscanner including a conical laser-reflective optical element and a laser light source and the conical laser-reflecting optical element are configured so that the conical laser-reflecting optical element, when illuminated by the laser light source, projects a broken ring of laser light upon an interior surface of the ear when the ear probe is positioned in the ear and a diffractive laser optic lens and the laser light source and the diffractive laser optic lens are configured so that the diffractive laser optic lens, when illuminated by the laser light source, projects upon an interior surface of the ear a fan of laser light at a predetermined angle with respect to a front surface of the diffractive laser optic lens when the ear probe is positioned in the ear.
    Type: Grant
    Filed: August 15, 2012
    Date of Patent: May 6, 2014
    Assignee: United Sciences, LLC
    Inventors: Nathanael Berglund, Harris Bergman, Scott Cahall, Jerry Foster, Eohan George, Samuel W. Harris, Giorgos Hatzilias, Karol Hatzilias, Ruizhi Hong, Wess E. Sharpe, David G. Stites, Harry S. Strothers, IV
  • Publication number: 20140049978
    Abstract: An LED-based photolithographic illuminator with high collection efficiency is disclosed. The illuminator utilizes an array of LEDs, wherein each LED has an LED die and a heat sink. The LED dies are imaged onto the input end of a homogenizer rod to substantially cover the input end without inclusion of the non-light-emitting heat sink sections of the LED. A microlens array is used to image the LED dies. The collection efficiency of the illuminator is better than 50% and the illumination uniformity at the output end of the light homogenizer is within +/?2%.
    Type: Application
    Filed: August 17, 2012
    Publication date: February 20, 2014
    Inventors: David G. Stites, Andrew M. Hawryluk
  • Publication number: 20140031701
    Abstract: Determination of structure-from-motion that includes a scanner body having mounted upon it a tracking illumination emitter and one or more tracking illumination sensors, the tracking illumination sensors disposed upon the scanner body so as to sense reflections of tracking illumination, the scanned object characterized by an object space defined by fixed positions of tracking targets; the scanner body having mounted within it an image sensor, the scanner body characterized by a scanner space, the image sensor coupled for data communications to a data processor and a computer memory, the image sensor and the processor capturing one or more images of the scanned object; and the data processor configured so that it determines by structure-from-motion, based upon the one or more captured images and tracked positions of the probe inferred from reflections of tracking illumination, the location in object space of a feature of the scanned object.
    Type: Application
    Filed: September 30, 2013
    Publication date: January 30, 2014
    Applicant: UNITED SCIENCES, LLC
    Inventors: Nathanael Berglund, Harris Bergman, Scott Cahall, Jerry Foster, Eohan George, Samuel W. Harris, Giorgos Hatzilias, Karol Hatzilias, Ruizhi Hong, Wess E. Sharpe, David G. Stites, Harry S. Strothers, IV
  • Publication number: 20140031680
    Abstract: Apparatus and methods for tracking scanner motion with a tracking illumination emitter mounted on a scanner, the scanner including imaging apparatus that captures a sequence of images of a scanned object as the scanner moves with respect to the scanned object; tracking targets installed off the scanner at positions that are fixed relative to a scanned object; one or more tracking illumination sensors mounted on the scanner, the tracking illumination sensors sensing reflections of tracking illumination emitted from the tracking illumination emitter and reflected from the tracking targets as the scanner moves in the process of scanning the scanned object; and one or more data processors, at least one of the data processors coupled for data communications to the tracking illumination sensors, the data processor determining, as the scanner moves, tracked positions of the scanner based upon values of the reflections.
    Type: Application
    Filed: September 30, 2013
    Publication date: January 30, 2014
    Applicant: UNITED SCIENCES, LLC
    Inventors: NATHANAEL BERGLUND, HARRIS BERGMAN, SCOTT CAHALL, JERRY FOSTER, EOHAN GEORGE, SAMUEL W. HARRIS, GIORGOS HATZILIAS, KAROL HATZILIAS, RUIZHI HONG, WESS E. SHARPE, DAVID G. STITES, HARRY S. STROTHERS, IV
  • Publication number: 20130321935
    Abstract: A unit magnification Wynn-Dyson lens for microlithography has an image field sized to accommodate between four and six die of dimensions 26 mm×36 mm. The lens has a positive lens group that consists of either three or four refractive lens elements, with one of the lens elements being most mirror-wise and having a prism-wise concave aspheric surface. Protective windows respectively reside between object and image planes and the corresponding prism faces. The lens is corrected for at least the i-line LED wavelength spectrum or similar LED-generated wavelengths.
    Type: Application
    Filed: May 20, 2013
    Publication date: December 5, 2013
    Applicant: Ultratech, Inc.
    Inventor: David G. Stites
  • Publication number: 20130237759
    Abstract: An otoscanner including an otoscanner body, the body comprising a hand grip, the body having mounted upon it an ear probe, a tracking illumination emitter, a plurality of tracking illumination sensors, and a display screen, the otoscanner body having mounted within it an image sensor; the image sensor coupled for data communications to a data processor, with the data processor configured to function by inferring, from a tracked position of the ear probe, previously recorded statistics describing typical ear sizes according to human demographics, and currently recorded demographic information regarding a person whose ear is scanned, the actual present position of the ear probe in relation to at least one part of the scanned ear; and providing a warning when the probe moves within a predefined distance from the part of the scanned ear.
    Type: Application
    Filed: August 15, 2012
    Publication date: September 12, 2013
    Applicant: 3DM SYSTEMS, INC.
    Inventors: Nathanael Berglund, Harris Bergman, Scott Cahall, Jerry Foster, Eohan George, Samuel W. Harris, Giorgos Hatzilias, Karol Hatzilias, Ruizhi Hong, Wess E. Sharpe, David G. Stites, Harry S. Strothers, IV