Patents Examined by Hoa Q. Pham
-
Patent number: 10670516Abstract: Provided is an optical concentration sensor protective casing, including an outer cover and a bubble isolation shield. The bubble isolation shield is embedded on the inner side of the outer cover. The outer cover is provided with a convection hole. The bubble isolation shield is provided with a liquid intake hole. Further provided is an optical concentration testing device including the protective casing.Type: GrantFiled: February 26, 2016Date of Patent: June 2, 2020Assignee: DONGGUAN ZHENGYANG ELECTRONIC MECHANICAL CO., LTD.Inventor: Yi-Hsin Ku
-
Patent number: 10663398Abstract: A system for determining the characteristics of a gas is described, comprising at least one beam of coherent and monochromatic light, detecting means of scattered light comprising at least one photo-detector, at least one measuring chamber within which the beam and the detecting means are operating, and control means operatively connected to the photo-detector for recording an amount of scattered light according to the Rayleigh scattering principle depending on the physical characteristics of the gas molecule and on a wavelength of the coherent and monochromatic light, the beam of coherent and monochromatic light being emitted by at least one laser with continuous wave. A method for measuring the characteristics of a gas through such system is further described.Type: GrantFiled: December 16, 2016Date of Patent: May 26, 2020Assignee: INRIMInventor: Marco Pisani
-
Patent number: 10656070Abstract: A technique is presented for aligning, in a desired region within a flow chamber of a flow cell, a non-spherical biological entity carried in a sample. The flow chamber has a rectangular cross-section. A bottom flow input module, a top flow input module and a sample input module provide a viscoelastic first fluid, a second viscoelastic fluid, and the sample, respectively, to the flow chamber. The first and the second viscoelastic fluids laminarly flow along a bottom and a top wall of the flow chamber and the sample laminarly flows sandwiched between them. By controlling rate of flow of the first and/or the second viscoelastic fluids the sample flow, and thus the non-spherical biological entity, is focused in the desired region. A gradient of sheer within the sample flow set up due to the first and second viscoelastic fluids orients the non-spherical biological entity in the desired region.Type: GrantFiled: March 30, 2016Date of Patent: May 19, 2020Assignee: Siemens Healthcare GmbHInventors: Oliver Hayden, Lukas Richter, Matthias Ugele
-
Patent number: 10648907Abstract: An optical system and method for quantifying total protein in whole blood or other multi-phase liquids and colloidal suspensions uses refractometry without preliminary steps such as cell separation or centrifugation. A refractometer is integrated with a flow cell to enable the refractive index of a flowing sample to be measured based on a substantially cell free boundary layer of the sample that is present under certain flow conditions. Dimensions of the flow cell are selected to produce a cell-free layer in a flow of whole blood in which the cell free layer is thick enough to reduce scattering of light from the refractometer light source. A numerical method is used to compensate for scattering artifacts. The numerical compensation method is based on the slope and width of a peak in the derivative curve of an angular spectrum image of the flowing sample produced by refractometry.Type: GrantFiled: May 3, 2019Date of Patent: May 12, 2020Assignee: Instrumentation Laboratory CompanyInventors: Ethan Schonbrun, Lara Adib, Gert Blankenstein
-
Patent number: 10648898Abstract: Flow cytometer systems are provided having intermediate angle scatter detection capability. In some aspects, systems are provided that include an intermediate angle scatter (IAS) light detector positioned to measure intermediate angle scatter emitted from a flow cytometer. The system further includes a mask disposed across a portion of the IAS light detector and positioned between the flow cell and the IAS light detector to cover at least a central portion of the IAS light detector so as to block a diffraction pattern observed at the detector. In some instances, the diffraction pattern is created by a flat beam profile irradiating the sample. Methods are also provided for configuring a flow cytometer to block a diffraction pattern created by (1) a flat laser beam profile irradiating a flow cytometer liquid sample, or (2) a mismatched index of refraction between a sheath fluid and a liquid sample in a flow cytometer.Type: GrantFiled: December 13, 2018Date of Patent: May 12, 2020Assignee: Abbott LaboratoriesInventor: Mahesh R. Junnarkar
-
Patent number: 10642169Abstract: An alignment system is equipped with: an alignment system having an objective optical system, an irradiation system and a beam receiving system; and a calculation system, the objective optical system including an objective transparent plate that faces a wafer movable in a Y-axis direction, the irradiation system irradiating a grating mark provided at the wafer with measurement beams via the objective transparent plate while scanning the measurement beams in the Y-axis direction, the beam receiving system receiving diffraction beams from the grating mark of the measurement beams via the objective optical system, and the calculation system obtaining positional information of the grating mark on the basis of the output of the beam receiving system, wherein the objective transparent plate deflects or diffracts the diffraction beams diffracted at the grating mark toward the beam receiving system.Type: GrantFiled: May 31, 2019Date of Patent: May 5, 2020Assignee: NIKON CORPORATIONInventor: Akihiro Ueda
-
Patent number: 10634582Abstract: A lens characteristic evaluation device includes: a scanning optical system configured to scan a surface of a test lens with a linear luminous flux; a Hartmann plate provided on a side opposite to the scanning optical system with respect to the test lens and having a plurality of two-dimensionally arranged pinholes, the Hartmann plate being configured to transmit the linear luminous flux which has passed through the test lens and radiated on the pinholes by the scanning performed by the scanning optical system; a screen on which the linear luminous flux having passed through the Hartmann plate is projected; and a photographing optical system provided on a side opposite to the Hartmann plate with respect to the screen and configured to photograph the screen while the scanning with the linear luminous flux is being performed by the scanning optical system.Type: GrantFiled: September 24, 2018Date of Patent: April 28, 2020Assignee: TOPCON CORPORATIONInventor: Makoto Saika
-
Patent number: 10634617Abstract: An installation for the optical inspection of surface regions of objects, such as painted vehicle bodies, includes a test light device, by which objects located in a test region can be irradiated with a test light and by which a test pattern can be generated on the surface region. A lighting system includes a plurality of lighting units, by which test light can be emitted. The light intensity of the test light or both the color of light and the light intensity of the test light can be optionally adjusted by the lighting units.Type: GrantFiled: June 14, 2016Date of Patent: April 28, 2020Assignee: EISENMANN SEInventors: Jürgen Röckle, Jan Reiner Hammermann, Axel Halbmeyer
-
Patent number: 10627398Abstract: An analysis device optically scans a surface of a substrate to which particles are fixed, detects a pulse wave included in a detection signal obtained from an optical scanning unit when the optical scanning unit scans the substrate, and counts the particles based on pulse interval between two pulse waves each having pulse width less than first reference value determined depending on first pulse width when the optical scanning unit scans a plurality of particles adjacent to each other when the two pulse waves are detected consecutively.Type: GrantFiled: May 15, 2019Date of Patent: April 21, 2020Assignee: JVC KENWOOD CORPORATIONInventors: Masayuki Ono, Shingo Yagyu, Makoto Itonaga, Yuichi Hasegawa, Koji Tsujita
-
Patent number: 10627388Abstract: A method for detecting a deflection between a source module and a detection module in a scanning apparatus and configured as a sensor pair for scanning transmission measurement of sheet material being transported in a machine direction through a sensing gap formed between the source module and the detection module. The source module is arranged on a first side of the sensing gap and emits a sensing radiation or sensing energy radiation towards the sensing gap, and the detection module is arranged on a second side of the sensing gap opposite to the first side and detects the radiation from the source module and transmitted through the sensing gap. The method includes: attaching a removable blocking device to the detection module; and performing a partially-blocked scanning process during which the source module and the detection module are jointly moved in a cross direction of the scanning apparatus.Type: GrantFiled: September 27, 2017Date of Patent: April 21, 2020Assignee: ABB Schweiz AGInventors: Shih-Chin Chen, Chang Yuan Liu, Ake A. Hellstrom
-
Patent number: 10620121Abstract: Disclosed herein are methods comprising illuminating a first location of a plasmonic substrate with electromagnetic radiation, wherein the electromagnetic radiation comprises a wavelength that overlaps with at least a portion of the plasmon resonance energy of the plasmonic substrate. The plasmonic substrate can be in thermal contact with a liquid sample comprising a plurality of particles, the liquid sample having a first temperature. The methods can further comprise generating a confinement region at a location in the liquid sample proximate to the first location of the plasmonic substrate, wherein at least a portion of the confinement region has a second temperature that is greater than the first temperature such that the confinement region is bound by a temperature gradient. The methods can further comprise trapping at least a portion of the plurality of particles within the confinement region.Type: GrantFiled: April 19, 2017Date of Patent: April 14, 2020Assignee: BOARD OF REGENTS, THE UNIVERSITY OF TEXAS SYSTEMInventors: Yuebing Zheng, Linhan Lin, Xiaolei Peng
-
Patent number: 10605716Abstract: A particle counting apparatus is provided that includes: a droplet discharger configured to discharge a droplet containing at least one luminescent particle capable of emitting light upon receiving light; a light irradiator configured to irradiate the droplet discharged by the droplet discharger with light; at least one light receiver configured to receive light emitted by the at least one luminescent particle irradiated with the light emitted by the light irradiator; and circuitry configured to count luminescent particles contained in the droplet based on the light received by the at least one light receiver, the circuitry being configured to measure a presence or absence of the luminescent particles contained in the droplet; and to measure a number of the luminescent particles contained in the droplet.Type: GrantFiled: July 20, 2018Date of Patent: March 31, 2020Assignee: Ricoh Company, Ltd.Inventors: Ikuo Katoh, Manabu Seo, Yunong Ji, Nobuaki Toyoshima, Hiroki Somada, Ryuya Mashiko, Satoshi Izumi, Takahiko Matsumoto, Daisuke Takagi
-
Patent number: 10605698Abstract: Method for checking a tyre. The method includes associating first and second independent light sources with a camera, applying a first force against a first surface portion of the tyre to generate a first deformed surface portion, and illuminating the first deformed surface portion with a first light radiation emitted by the first light source while keeping the second light source deactivated. A first image of the first deformed surface portion is then acquired by the camera. The first force is removed and a second surface portion partially distinct from the first surface portion is illuminated with a second light radiation emitted by the second light source without deforming the second surface portion. A second image of the second surface portion is then acquired by the camera. The first and second images are processed for detection of possible defects in the first and second surface portions.Type: GrantFiled: December 16, 2016Date of Patent: March 31, 2020Assignee: PIRELLI TYRE S.P.A.Inventors: Alessandro Held, Vincenzo Boffa, Daniele Pecoraro, Valeriano Ballardini, Josef Engelsberger, Bernd Leitner
-
Patent number: 10598917Abstract: Aspects of the disclosure are directed to a borescope grip defined about a central longitudinal axis, comprising: a reaction case that includes a first flange having a first face that is substantially perpendicular to a central longitudinal axis of the grip, an o-ring that abuts the first face of the first flange, a plunger that includes a second flange having a second face that abuts the o-ring at a first axial position and is disengaged from the o-ring at a second axial position, and a spring that abuts the second flange.Type: GrantFiled: April 7, 2017Date of Patent: March 24, 2020Assignee: United Technologies CorporationInventors: Michael D. Chowaniec, Antony J. Giunta
-
Patent number: 10591747Abstract: Disclosed is an inspection and system method and system for determining the orientation of a contact lens on a lens support, particularly in an automated contact lens manufacturing line.Type: GrantFiled: September 6, 2018Date of Patent: March 17, 2020Assignee: Alcon Inc.Inventors: Steffen Paulekuhn, Susanne Fechner, Sarah Unterkofler, Daniel Kessler, Evgeni Schumm, Matthias Schwab
-
Patent number: 10585193Abstract: The technology disclosed relates to determining positional information of an object in a field of view. In particular, it relates to calculating a distance of the object from a reference such as a sensor including scanning the field of view by selectively illuminating directionally oriented light sources and measuring one or more differences in property of returning light emitted from the light sources and reflected from the object. The property can be intensity or phase difference of the light. It also relates to finding an object in a region of space. In particular, it relates to scanning the region of space with directionally controllable illumination, determining a difference in a property of the illumination received for two or more points in the scanning, and determining positional information of the object based in part upon the points in the scanning corresponding to the difference in the property.Type: GrantFiled: March 26, 2018Date of Patent: March 10, 2020Assignee: Ultrahaptics IP Two LimitedInventor: David Holz
-
Patent number: 10578515Abstract: Some demonstrative embodiments include apparatuses, systems and/or methods of determining one or more optical parameters of a lens of eyeglasses. For example, a product may include one or more tangible computer-readable non-transitory storage media including computer-executable instructions operable to, when executed by at least one computer processor, enable the at least one computer processor to process at least one captured image of at least one reflection of a flash on a lens of eyeglasses; and determine one or more optical parameters of the lens based at least on the at least one captured image.Type: GrantFiled: January 23, 2017Date of Patent: March 3, 2020Assignee: 6 OVER 6 VISION LTD.Inventors: Ofer Limon, Shahar Levy, Alexander Zlotnik, Maya Aviv
-
Patent number: 10578429Abstract: In order to quickly determine three-dimensional contours, for example, in real time for industrial processes, capturing and processing data, a method includes a step of initially determining a coarse position of a light line image by a position scan with reduced resolution and therefrom automatically defining windows on a sensor which include an entire line image so that the data only has to be read from the windows during the subsequent measuring scan which is performed with a higher resolution compared to the position scans.Type: GrantFiled: December 9, 2016Date of Patent: March 3, 2020Assignee: SmartRay GmbHInventor: Mathias Reiter
-
Patent number: 10571256Abstract: A three-dimensional measurement sensor based on line structured light, comprising a sensing head and a controller. The sensing head is used for collecting section data and attitude information of its own, and matching the section data with the self attitude information. The sensing head comprises a three-dimensional camera, an attitude sensor, a laser and a control sub-board, wherein the three-dimensional camera is installed at a certain angle relative to the laser, and acquires elevation and grey information about an object surface corresponding to laser rays using a triangulation principle. The attitude sensor, the three-dimensional camera and the laser are installed on the same rigid plane, and the attitude sensor reflects measurement attitude of the three-dimensional camera and the laser in real time. The controller is used for measuring and controlling the sensing head, performing data processing transmission and supporting external control.Type: GrantFiled: August 26, 2016Date of Patent: February 25, 2020Assignee: WUHAN WUDA ZOYON SCIENCE AND TECHNOLOGY CO., LTDInventors: Qingquan Li, Dejin Zhang, Min Cao, Xinlin Wang, Hong Lin
-
Patent number: 10571405Abstract: A quality control station (2) for a sheet element processing machine, having at least one camera (6) arranged for capturing images of sheet elements (4) transported through the quality control station (2), and further having an illumination unit (5) with at least one light emitter (16) and two reflectors (12, 14), the illumination unit (5) directing light onto a viewing area of the camera (6) such that the illumination intensity is constant despite changing media thickness. An illumination unit for such quality control station is disclosed.Type: GrantFiled: May 17, 2017Date of Patent: February 25, 2020Assignee: BOBST MEX SAInventors: Matthieu Richard, Francis Pilloud