Patents Examined by Robert J. Pascal
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Patent number: 10868349Abstract: A controllable phase control element comprises a drive unit and a holder, to which at least two polarizers are attached, which are arranged one behind the other in the direction of incidence of a wave. Each polarizer is designed in such a way that the polarizer can convert a circularly polarized signal into a linearly polarized signal. The drive unit is designed in such a way that the holder and thus the polarizers can be mounted over a freely selectable angular range.Type: GrantFiled: June 27, 2017Date of Patent: December 15, 2020Assignee: Lisa Dräxlmaier GmbHInventors: Joerg Oppenlaender, Alexander Moessinger
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Patent number: 10868350Abstract: A phase-controlled antenna element includes a waveguide emitter with signal output or signal injection, into which a rotatable phase control element is introduced, and a drive unit. The phase control element comprises in this case a holder, at least two polarizers which are fastened to the holder, and a connecting element. Each of the at least two polarizers can convert a circularly polarized signal into a linearly polarized signal. The phase control element is rotatably fitted in the waveguide emitter and is connected to the drive unit with the aid of the connecting element in such a manner that the drive unit can rotate the phase control element about the axis of the waveguide emitter.Type: GrantFiled: June 27, 2017Date of Patent: December 15, 2020Assignee: Lisa Draezlmaier GmbHInventors: Joerg Oppenlaender, Alexander Moessinger
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Patent number: 10862456Abstract: An acoustic wave filter device includes a ground connection terminal connected to an external ground electrode, a serial arm resonator, a first parallel arm circuit connected to a first node of the serial arm resonator, the first node being positioned closer to an input/output terminal, and to the ground connection terminal, and a second parallel arm circuit connected to a second node of the serial arm resonator, the second node being positioned closer to an input/output terminal, and to the ground connection terminal. The first parallel arm circuit includes a parallel arm resonator having a resonant frequency higher than a center frequency of a filter pass band, and a frequency varying circuit connected to the parallel arm resonator and the ground connection terminal. The second parallel arm circuit includes a parallel arm resonator having a resonant frequency higher than the center frequency of the filter pass band.Type: GrantFiled: February 20, 2019Date of Patent: December 8, 2020Assignee: MURATA MANUFACTURING CO., LTD.Inventor: Koji Nosaka
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Patent number: 10855252Abstract: An acoustic wave device includes: a support substrate; a single piezoelectric substrate that is located on the support substrate and is single-crystal; first electrodes located on a first surface of the piezoelectric substrate; second electrodes located on a second surface of the piezoelectric substrate; and an acoustic mirror that is bonded on the support substrate, is located between the support substrate and the first electrodes in resonance regions where the first electrodes and the second electrodes face each other across at least a part of the piezoelectric substrate, is not located between the support substrate and the first electrodes in at least a part of a region between the resonance regions, and reflects an acoustic wave propagating through the piezoelectric substrate.Type: GrantFiled: October 24, 2018Date of Patent: December 1, 2020Assignee: TAIYO YUDEN CO., LTD.Inventor: Masanori Ueda
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Patent number: 10855245Abstract: A switch component includes a common terminal, at least two selection terminals, a switching circuit that selectively connects the common terminal to each of the at least two selection terminals, and an inductor. One end of the inductor is connected to one of the at least two selection terminals. The switching circuit is integrated with the inductor.Type: GrantFiled: November 5, 2018Date of Patent: December 1, 2020Assignee: MURATA MANUFACTURING CO., LTD.Inventor: Takanori Ito
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Patent number: 10856405Abstract: A 3D electromagnetic bandgap circuit includes: a dielectric layer having a first surface and an opposing second surface; a spiral element positioned on the first surface; a first surrounding element positioned on the first surface and surrounding the spiral element, but does not touch with the spiral element; a plane element positioned on the second surface and including a notch; a second surrounding element positioned on the second surface and surrounding the plane element, but does not touch with the plane element, wherein the second surrounding element further includes a protruding portion extending toward the notch; a first via passing through the dielectric layer, the spiral element, and the protruding portion; a second via passing through the dielectric layer, the plane element, and the first surrounding element; and a third via passing through the dielectric layer, the plane element, and the first surrounding element.Type: GrantFiled: May 15, 2019Date of Patent: December 1, 2020Assignee: REALTEK SEMICONDUCTOR CORP.Inventors: Yu-Cong Wang, Ruey-Beei Wu, Shih-Hung Wang, Wen-Shan Wang
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Patent number: 10840889Abstract: A phase shifter for altering the phase of a radio frequency signal is disclosed herein. A Lange coupler is used having reflective ports that are coupled to artificial transmission lines. The artificial transmission lines provide a reflection transmission path, the length of which can be determined by digital control lines. Transistors placed along the length of the central trace provide independent paths to ground that serve to shorten the electrical length of the ATL. Accordingly, by selectively turning the transistors on/off, the electrical length of the ATL can be selected and thus the amount of phase delay introduced by the phase shifter.Type: GrantFiled: April 1, 2019Date of Patent: November 17, 2020Assignee: pSemi CorporationInventors: John Birkbeck, Vikas Sharma, Kashish Pal, Mark James O'Leary
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Patent number: 10840573Abstract: An ultra-wideband linear-to-circular polarizer is disclosed. In accordance with embodiments of the invention, the polarizer includes a plurality of cascaded waveplates having biaxial permittivity or cascaded anisotropic sheet impedances. Each waveplate/sheet has a principal axis rotated at different angles relative to an adjacent waveplate/sheet about a z-axis of a 3-dimensional x, y, z coordinate system. Each waveplate is composed of a unit cell of an artificial anisotropic dielectric. Each sheet impedance is composed of an anisotropic metallic pattern. The polarizer further includes impedance matching layers disposed adjacent the cascaded waveplates/sheets.Type: GrantFiled: November 6, 2018Date of Patent: November 17, 2020Assignee: The United States of America, as represented by the Secretary of the Air ForceInventors: Boris Tomasic, Carl R. Pfeiffer, Thomas P. Steffen
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Patent number: 10833389Abstract: Provided is an element that can reduce a parasitic oscillation.Type: GrantFiled: October 24, 2018Date of Patent: November 10, 2020Assignee: CANON KABUSHIKI KAISHAInventor: Yasushi Koyama
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Patent number: 10833382Abstract: A method is provided for manufacturing RF structures such as waveguides using additive manufacturing such as 3D printing. RF structures are also provided suitable for manufacturing with said method. The RF structures include waveguides and antenna assemblies manufactured using the additive process. The structures include flanges at the ends of the waveguide and the flanges are integrally manufactured with the said manufacturing process. The structures include a participating conductive surface that is formed on the entirety of an interior of the body, where the conductive surface extends continuously between the two ends and has been subjected to a surface modification process.Type: GrantFiled: September 26, 2016Date of Patent: November 10, 2020Assignee: BAE Systems Australia LimitedInventor: Andrew James Sysouphat
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Patent number: 10833386Abstract: Waveguide transition devices for power-combining devices are disclosed. A waveguide transition device includes a coaxial waveguide section that is configured to concurrently receive electromagnetic output signals from a plurality of amplifiers and transition the electromagnetic output signals to a waveguide coupling section to form a combined and amplified electromagnetic signal. In turn, the waveguide coupling section transitions the combined and amplified electromagnetic signal to a waveguide output port. As disclosed herein, representative waveguide transition devices are configured to allow higher operating powers without typical device failure mechanisms. Spatial power-combining devices that include representative waveguide transition devices have improved power handling capabilities.Type: GrantFiled: July 19, 2018Date of Patent: November 10, 2020Assignee: Qorvo US, Inc.Inventor: John Kitt
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Patent number: 10833649Abstract: In an IDT electrode of an acoustic wave element which includes first electrode fingers and second electrode fingers connected to potentials which are different from each other and arranged spaced apart from each other, the first electrode fingers includes first tip parts, and either of the first electrode fingers and the second electrode fingers includes, at a tip area extending along a direction of propagation of an acoustic wave and overlapping with the first tip parts, increase sections in which electrode volumes per unit lengths in a direction of extension of the first electrode fingers and the second electrode fingers are larger in comparison with that of the center area in which the electrode fingers intersect.Type: GrantFiled: April 26, 2017Date of Patent: November 10, 2020Assignee: KYOCERA CorporationInventors: Masaya Kawaguchi, Tetsuya Kishino
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Patent number: 10833381Abstract: The present technology pertains to a system and method of operation of a metamaterial phase shifter having various use applications. In one aspect of the present disclosure, a phase shifter includes a network of tunable impedance elements and a controller. The controller is coupled to the network of tunable impedance elements and configured to receive a phase shift input value and determine a corresponding tuning voltage to be supplied to each tunable impedance element of the network of tunable impedance elements based on the phase shift input value, the network of tunable impedance element being configured to shift a phase of an input signal based on tuning voltages supplied to the network of tunable impedance elements by the controller.Type: GrantFiled: November 8, 2017Date of Patent: November 10, 2020Assignee: The Invention Science Fund I LLCInventors: Yaroslav A. Urzhumov, Matthew S. Reynolds, Guy S. Lipworth, Russell J. Hannigan, Daniel Arnitz, Joseph Hagerty
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Patent number: 10826462Abstract: There is disclosed acoustic resonators and filter devices. An acoustic resonator includes a substrate having a surface and a single-crystal piezoelectric plate having front and back surfaces, the back surface attached to the surface of the substrate except for a portion of the piezoelectric plate forming a diaphragm that spans a cavity in the substrate. An interdigital transducer (IDT) is formed on the front surface of the single-crystal piezoelectric plate such that interleaved fingers of the IDT are disposed on the diaphragm. The interleaved fingers of the IDT are substantially molybdenum. The piezoelectric plate and the IDT are configured such that a radio frequency signal applied to the IDT excites a primary shear acoustic mode in the diaphragm. A thickness of the interleaved fingers of the IDT is between 0.25 times and 2.5 times a thickness of the piezoelectric plate.Type: GrantFiled: January 31, 2020Date of Patent: November 3, 2020Assignee: Resonant Inc.Inventors: Viktor Plesski, Bryant Garcia, Julius Koskela, Patrick Turner
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Patent number: 10826460Abstract: A multiplexer includes: a filter located on a surface of a substrate and including first series and parallel resonators and a first wiring line; and another filter located on another surface of another substrate and including second series and parallel resonators and a second wiring line, each of first resonators among the second series and parallel resonators overlapping with the first series and parallel resonators, and/or the first wiring line, each of second resonators other than the first resonators among the second series and parallel resonators overlapping with none of the first series and parallel resonators and the first wiring line, when capacitances of series and parallel resonators in first basic sections including the first resonators are represented by Cs1 and Cp1, and capacitances of series and parallel resonators in second basic sections not including the first resonators are represented by Cs2 and Cp1, Cp1/Cs1 being less than Cp2/Cs2.Type: GrantFiled: December 28, 2018Date of Patent: November 3, 2020Assignee: TAIYO YUDEN CO., LTD.Inventors: Daiki Itou, Yasuhisa Okamoto, Takuma Kuroyanagi, Fumiaki Isaka
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Patent number: 10826437Abstract: Systems and methods for communicating electromagnetic signals and/or power and, more particularly for example, to power combiners and similar systems and methods for communicating electromagnetic signals and/or power generated by amplifiers to loads, are described herein. In at least example embodiment, a power amplifier system includes first and second amplifier circuits and a power combiner circuit coupled to each of the first and second amplifier circuits and having a first microstrip transmission line component, a slotline formation, and an additional coupling component that is capable of being at least indirectly coupled to a load, where the first microstrip transmission line component and additional coupling component are electromagnetically coupled by way of the slotline formation.Type: GrantFiled: September 28, 2018Date of Patent: November 3, 2020Assignee: NXP USA, Inc.Inventors: Oleksandr Nikolayenkov, Geoffrey Tucker
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Patent number: 10818998Abstract: Spatial power-combining devices and, in particular, spatial power-combining devices with filtering elements are disclosed. A spatial power-combining device includes a plurality of amplifier assemblies and each amplifier assembly includes an input antenna structure, an amplifier, an output antenna structure, and a filtering element. A filtering element may be an integral single component with an input signal conductor of the input antenna structure or an integral single component with an output signal conductor of the output antenna structure. In some aspects, a filtering element may be an integral single component with both the input signal conductor and the output signal conductor.Type: GrantFiled: March 23, 2018Date of Patent: October 27, 2020Assignee: Qorvo US, Inc.Inventors: Ankush Mohan, Dan Denninghoff
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Patent number: 10820410Abstract: A high speed circuit and a method for fabricating the same is disclosed. The high speed circuit has a printed circuit board. A pair of first and second differential traces are formed on a first surface of the printed circuit board. The differential traces carry an electrical signal. A partial loop extends through the printed circuit board. The partial loop includes first and second end slots under the first and second differential traces. The partial loop includes a pair of side slots substantially parallel to the differential traces. An anchor member connects the printed circuit board to an island formed by the first and second end slots and side slots. The anchor member forms a gap in one of the end slots or side slots. The length of the side slots and the length of the gap is selected to reduce a target common mode frequency from the electrical signal.Type: GrantFiled: March 4, 2019Date of Patent: October 27, 2020Assignee: QUANTA COMPUTER INC.Inventor: Cheng-Hsien Lee
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Patent number: 10818993Abstract: There is provided a branch circuit that comprises a first conductor and a second conductor as at least two branches from a predetermined branch point, a first stub connected to the first conductor at a first point, and a second stub connected to the second conductor at a second point, wherein the first point is a point where a length of a portion between the predetermined branch point and the first point of the first conductor is set to a first length determined in accordance with a characteristic of the first stub, and the second point is a point where a length of a portion between the predetermined branch point and the second point of the second conductor is set to a second length determined in accordance with a characteristic of the second stub and is different from the first length.Type: GrantFiled: November 28, 2018Date of Patent: October 27, 2020Assignee: CANON KABUSHIKI KAISHAInventor: Hajime Shimura
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Patent number: 10811751Abstract: Embodiments of the invention include an electromagnetic waveguide and methods of forming the electromagnetic waveguide. In an embodiment the electromagnetic waveguide includes a first spacer and a second spacer. In an embodiment, the first and second spacer each have a reentrant profile. The electromagnetic waveguide may also include a conductive body formed between in the first and second spacer, and a void formed within the conductive body. In an additional embodiment, the electromagnetic waveguide may include a first spacer and a second spacer. Additionally, the electromagnetic waveguide may include a first portion of a conductive body formed along sidewalls of the first and second spacer and a second portion of the conductive body formed between an upper portion of the first portion of the conductive body. In an embodiment, the first portion of the conductive body and the second portion of the conductive body define a void through the electromagnetic waveguide.Type: GrantFiled: December 30, 2016Date of Patent: October 20, 2020Assignee: Intel CorporationInventors: Rahul Ramaswamy, Chia-Hong Jan, Walid Hafez, Neville Dias, Hsu-Yu Chang, Roman Olac-Vaw, Chen-Guan Lee