Patents by Inventor Yanzhu Zhao
Yanzhu Zhao 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: 20230369749Abstract: The disclosure describes examples of antennas used for communication with an implantable medical device (IMD). As one example, the IMD includes a housing configured to house communication circuitry within an internal side of the housing, and a planar antenna, having a curved structure, that is stacked on an external side of the housing and coupled to the communication circuitry. As another example, the IMD includes a housing configured to house communication circuitry within an internal side of the housing and an antenna having a curved structure formed on an external side of the housing and coupled to the communication circuitry. A resonant frequency of the antenna is based on a dielectric constant of tissue surrounding the antenna when the IMD is implanted, and a current distribution of the antenna is in-phase in opposite sides of the antenna.Type: ApplicationFiled: July 25, 2023Publication date: November 16, 2023Inventor: Yanzhu Zhao
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Patent number: 11749882Abstract: The disclosure describes examples of antennas used for communication with an implantable medical device (IMD). As one example, the IMD includes a housing configured to house communication circuitry within an internal side of the housing, and a planar antenna, having a curved structure, that is stacked on an external side of the housing and coupled to the communication circuitry. As another example, the IMD includes a housing configured to house communication circuitry within an internal side of the housing and an antenna having a curved structure formed on an external side of the housing and coupled to the communication circuitry. A resonant frequency of the antenna is based on a dielectric constant of tissue surrounding the antenna when the IMD is implanted, and a current distribution of the antenna is in-phase in opposite sides of the antenna.Type: GrantFiled: March 14, 2022Date of Patent: September 5, 2023Assignee: Medtronic, Inc.Inventor: Yanzhu Zhao
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Publication number: 20220361938Abstract: A surgical system includes a surgical generator and at least one energy delivery device. The surgical generator includes at least one energy output stage configured to deliver energy, a controller configured to control the energy output, and sensor circuitry. The energy delivery device(s) is coupled to the surgical generator, configured for insertion into a synovial joint, and configured to supply energy through synovial fluid in the synovial joint. In a sensing mode, the sensor circuitry is configured to sense at least one electrical parameter of the energy and the controller is configured to determine a parameter of the synovial fluid based thereon. The controller is further configured, in a treatment mode, to control the energy based upon the at least one determined parameter of the synovial fluid to treat tissue of the synovial joint.Type: ApplicationFiled: March 4, 2022Publication date: November 17, 2022Applicants: Medtronic, Inc., Medtronic, Inc.Inventors: Andrew J. Cleland, Kyle W. Dahlstrom, Martin G. Hieb, Darrell J. Swenson, Yanzhu Zhao
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Publication number: 20220209395Abstract: The disclosure describes examples of antennas used for communication with an implantable medical device (IMD). As one example, the IMD includes a housing configured to house communication circuitry within an internal side of the housing, and a planar antenna, having a curved structure, that is stacked on an external side of the housing and coupled to the communication circuitry. As another example, the IMD includes a housing configured to house communication circuitry within an internal side of the housing and an antenna having a curved structure formed on an external side of the housing and coupled to the communication circuitry. A resonant frequency of the antenna is based on a dielectric constant of tissue surrounding the antenna when the IMD is implanted, and a current distribution of the antenna is in-phase in opposite sides of the antenna.Type: ApplicationFiled: March 14, 2022Publication date: June 30, 2022Inventor: Yanzhu Zhao
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Patent number: 11283161Abstract: The disclosure describes examples of antennas used for communication with an implantable medical device (IMD). As one example, the IMD includes a housing configured to house communication circuitry within an internal side of the housing, and a planar antenna, having a curved structure, that is stacked on an external side of the housing and coupled to the communication circuitry. As another example, the IMD includes a housing configured to house communication circuitry within an internal side of the housing and an antenna having a curved structure formed on an external side of the housing and coupled to the communication circuitry. A resonant frequency of the antenna is based on a dielectric constant of tissue surrounding the antenna when the IMD is implanted, and a current distribution of the antenna is in-phase in opposite sides of the antenna.Type: GrantFiled: July 18, 2019Date of Patent: March 22, 2022Assignee: Medtronic, Inc.Inventor: Yanzhu Zhao
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Patent number: 11229796Abstract: A device and method are described for transmitting tissue conductance communication (TCC) signals. A device may be is configured to establish a transmission window by transmitting a TCC test signal at multiple time points over a transmission test period to a receiving device and detect at least one response to the transmitted TCC test signals performed by the receiving device. The IMD is configured to establish the transmission window based on the at least one detected response so that the transmission window is correlated to a time of relative increased transimpedance between a transmitting electrode vector and receiving electrode vector during the transmission test period.Type: GrantFiled: December 14, 2018Date of Patent: January 25, 2022Assignee: Medtronic Inc.Inventors: Yanzhu Zhao, Yong K. Cho, Michael D. Eggen, Wei Gan, Kathryn Hilpisch, Srikara V. Peelukhana, Darrell J. Swenson, Joshua J. Blauer
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Publication number: 20210282837Abstract: A tissue resection device includes a handpiece and an end effector assembly extending distally from the handpiece. The end effector assembly includes an outer shaft defining a longitudinal axis and including a window defined therethrough towards a distal end thereof. The end effector assembly further includes an inner member rotationally disposed within the outer shaft. The inner member includes a proximal body portion and a distal cutting portion. The proximal body portion is coaxially disposed on the longitudinal axis and rotatable thereabout. The distal cutting portion includes an offset portion that is radially offset from the longitudinal axis and is configured to orbit about the longitudinal axis. At least a portion of the distal cutting portion is a thermal cutting element configured to heat in response to application of electrical energy thereto.Type: ApplicationFiled: February 11, 2021Publication date: September 16, 2021Inventors: Kenneth E. Netzel, Purvishkumar H. Soni, Kenlyn S. Bonn, Daniel A. Joseph, John A. Hammerland, III, Daniel W. Mercier, Devon E. Scott-Drechsel, Mark A. Johnston, David M. Garrison, Jing Zhao, Yanzhu Zhao
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Publication number: 20210244464Abstract: An electrosurgical instrument includes an end effector assembly including first and second jaw members. At least one of the first or second jaw members is movable relative to the other from a spaced-apart position to an approximated position to grasp tissue therebetween. A thermal cutting wire is disposed on at least a portion of at least one of the first or second jaw members. The thermal cutting wire is configured for ferromagnetic heating to provide automatic Curie temperature control upon supply of an AC signal thereto. The thermal cutting wire may include a conductive core, an inner ferromagnetic coating disposed about the conductive core, and an outer ferromagnetic coating disposed about the inner ferromagnetic coating. The thermal cutting wire may alternatively or additionally include an exposed outer surface defining a roughness configured to facilitate attenuation during ferromagnetic heating.Type: ApplicationFiled: February 7, 2020Publication date: August 12, 2021Inventors: Yanzhu Zhao, Daniel A. Joseph
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Publication number: 20210244465Abstract: An electrosurgical instrument includes an end effector assembly including first and second jaw members at least one of which is movable relative to the other from a spaced-apart position to an approximated position to grasp tissue between first and second opposed surfaces of the first and second jaw members, respectively. The first jaw member includes a thermal cutting wire including a first portion extending distally along at least a portion of a length of the first opposed surface and a second portion extending about a distal tip of the first jaw member. The first and second portions of the thermal cutting wire each include a ferromagnetic coating such that the first and second portions are ferromagnetically heated and provide automatic Curie temperature control upon supply of an AC signal thereto.Type: ApplicationFiled: February 7, 2020Publication date: August 12, 2021Inventors: Yanzhu Zhao, Daniel A. Joseph
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Publication number: 20210021020Abstract: The disclosure describes examples of antennas used for communication with an implantable medical device (IMD). As one example, the IMD includes a housing configured to house communication circuitry within an internal side of the housing, and a planar antenna, having a curved structure, that is stacked on an external side of the housing and coupled to the communication circuitry. As another example, the IMD includes a housing configured to house communication circuitry within an internal side of the housing and an antenna having a curved structure formed on an external side of the housing and coupled to the communication circuitry. A resonant frequency of the antenna is based on a dielectric constant of tissue surrounding the antenna when the IMD is implanted, and a current distribution of the antenna is in-phase in opposite sides of the antenna.Type: ApplicationFiled: July 18, 2019Publication date: January 21, 2021Inventor: Yanzhu Zhao
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Publication number: 20190184181Abstract: A device and method are described for transmitting tissue conductance communication (TCC) signals. A device may be is configured to establish a transmission window by transmitting a TCC test signal at multiple time points over a transmission test period to a receiving device and detect at least one response to the transmitted TCC test signals performed by the receiving device. The IMD is configured to establish the transmission window based on the at least one detected response so that the transmission window is correlated to a time of relative increased transimpedance between a transmitting electrode vector and receiving electrode vector during the transmission test period.Type: ApplicationFiled: December 14, 2018Publication date: June 20, 2019Inventors: Yanzhu ZHAO, Yong K. CHO, Michael D. EGGEN, Wei GAN, Kathryn HILPISCH, Srikara V. PEELUKHANA, Darrell J. SWENSON, Joshua J. BLAUER
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Patent number: 10143847Abstract: In some examples, this disclosure describes a method for identifying a position within a patient for a first implantable medical device (IMD) to be implanted to facilitate tissue conductive communication (TCC) between the first IMD and a second IMD implanted within the patient. In some examples, the method includes storing model data that associates patient parameter data and second IMD position data with first IMD positions based on TCC communication performance, receiving patient parameter data indicating one or more anatomical or physiological parameters of the patient, receiving second IMD position data, performing analysis by at least one of comparing the model data to the patient parameter data and the second IMD position data, performing real-time computer simulations, or a combination of comparing and performing simulations, and outputting to a user an indication of the position for the first IMD to be implanted within the patient based on the analysis.Type: GrantFiled: July 20, 2017Date of Patent: December 4, 2018Assignee: Medtronic, Inc.Inventors: Jonathan D. Edmonson, Matthew J. Hoffman, Wei Jiang, Yanzhu Zhao, Srikara V. Peelukhana, Wei Gan
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Patent number: 9610450Abstract: An antenna structure, for use in an implantable medical device, may include an inner portion that is magnetically coupled to an outer portion. In one example, the inner and outer portions include conductive loops. In accordance with the techniques of this disclosure, a capacitive sensor is electrically coupled to one of the conductive loops of the antenna of the implantable medical device. As the capacitance of the capacitive sensor changes as a function of the sensed parameter, an impedance of the antenna varies with the output of the capacitive sensor. This variation in impedance of the antenna modulates a carrier signal with the measured parameter. In other words, the measured parameter is modulated onto the carrier signal as a change in amplitude caused by variation in impedance of antenna during radiation/transmission.Type: GrantFiled: July 30, 2010Date of Patent: April 4, 2017Assignee: Medtronics, Inc.Inventor: Yanzhu Zhao
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Patent number: 9502754Abstract: An implantable medical device (IMD) and methods of fabricating the same are provided. An IMD can include a housing and a cofire ceramic module (CCM) coupled to the housing. The CCM can include an antenna cofire-integrated in the CCM. The antenna can include a plate composed of conductive material, and conductive antenna elements that are annular substrates having perimeters substantially coextensive with the perimeter of the plate. The antenna can also include interconnections. A first set of interconnections can be coupled between the plate and one of the conductive antenna elements, and a second set of interconnections can be coupled between the conductive antenna elements. The antenna can also include a feed line conductively coupled to the plate. In some embodiments, the feed line can be substantially serpentine-shaped to adjust impedance in the CCM.Type: GrantFiled: January 24, 2014Date of Patent: November 22, 2016Assignee: Medtronic, Inc.Inventors: Yanzhu Zhao, Nicholas C. Wine, Joyce K. Yamamoto, Gerardo Aguirre, Arne Kolbjorn Knudsen
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Patent number: 9387331Abstract: An implantable medical device (IMD) antenna and methods of fabricating the same are provided. An IMD can include a ceramic structure having at least one wall defining a hollow cavity. The ceramic structure can include a first end and a second end distal from the first end, the first end being open to provide access to the hollow cavity and the second end being closed. The IMD also includes an antenna cofire-integrated into the at least one wall of the ceramic structure and a housing adjoined to the ceramic structure.Type: GrantFiled: October 25, 2013Date of Patent: July 12, 2016Assignee: Medtronic, Inc.Inventors: Yanzhu Zhao, Nicholas C. Wine, Joyce K. Yamamoto
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Patent number: 9387332Abstract: An implantable medical device (IMD) antenna and methods of fabricating the same are provided. An IMD can include a ceramic structure having at least one wall defining a hollow cavity. The ceramic structure can include a first end and a second end distal from the first end, the first and second ends being open to provide access to the hollow cavity. The IMD also includes an antenna cofire-integrated into the at least one wall of the ceramic structure and a housing adjoined to the ceramic structure.Type: GrantFiled: October 25, 2013Date of Patent: July 12, 2016Assignee: Medtronic, Inc.Inventors: Yanzhu Zhao, Nicholas C. Wine, Joyce K. Yamamoto
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Patent number: 9345185Abstract: Techniques for forming a header for an implantable medical device via a two-shot molding process are described. The two-shot molding processes may include a first molding step that creates a first-shot assembly and a second molding step that creates a second-shot assembly. The first-shot assembly may be formed to include one or more protrusions configured to interact with a second-shot mold and/or molding material in the second molding step. The second molding step may be configured to overmold the first-shot assembly. The header may include an attachment plate at least partially embedded in molding material and configured to be mechanically coupled to a body of the implantable medical device.Type: GrantFiled: November 14, 2012Date of Patent: May 17, 2016Assignee: Medtronic, Inc.Inventors: Jeevan M. Prasannakumar, Christopher M. Haenisch, David Bates, John C. Olson, George Patras, Yanzhu Zhao, Jason P. Weiand
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Patent number: 9333365Abstract: This disclosure describes antenna structures for use in an implantable medical device. The implantable medical device may include a housing that hermetically encloses electronic components of the implantable medical device and a fixation mechanism that affixes the implantable medical device to a target location, such as a wall of a vessel. The fixation mechanism functions as a radiating element of an antenna of the implantable medical device. The housing of the implantable medical device may include a conductive loop that electrically couples to a telemetry module and magnetically couples to the fixation mechanism. The telemetry module may provide signals to be transmitted to the inner loop and those signals are magnetically coupled between the inner loop and the fixation mechanism, which radiates the signals.Type: GrantFiled: July 30, 2010Date of Patent: May 10, 2016Assignee: Medtronic, Inc.Inventor: Yanzhu Zhao
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Patent number: 9330820Abstract: Methods are provided for fabricating three-dimensional electrically conductive structures. Three-dimensional electrically conductive microstructures are also provided. The method may include providing a mold having at least one microdepression which defines a three-dimensional structure; filling the microdepression of the mold with at least one substrate material; molding the at least one substrate material to form a substrate; and depositing and patterning of at least one electrically conductive layer either during the molding process or subsequent to the molding process to form an electrically conductive structure. In one embodiment, the three-dimensional electrically conductive microstructure comprises an electrically functional microneedle array comprising two or more microneedles, each including a high aspect ratio, polymeric three dimensional substrate structure which is at least substantially coated by an electrically conductive layer.Type: GrantFiled: April 30, 2013Date of Patent: May 3, 2016Assignee: GEORGIA TECH RESEARCH CORPORATIONInventors: Mark G. Allen, Seong-O Choi, Jung-Hwan Pauk, Xiaosong Wu, Yanzhu Zhao, Yong-Kyu Yoon, Swaminathan Rajaraman
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Publication number: 20150214604Abstract: An implantable medical device (IMD) and methods of fabricating the same are provided. An IMD can include a housing and a cofire ceramic module (CCM) coupled to the housing. The CCM can include an antenna cofire-integrated in the CCM. The antenna can include a plate composed of conductive material, and conductive antenna elements that are annular substrates having perimeters substantially coextensive with the perimeter of the plate. The antenna can also include interconnections. A first set of interconnections can be coupled between the plate and one of the conductive antenna elements, and a second set of interconnections can be coupled between the conductive antenna elements. The antenna can also include a feed line conductively coupled to the plate. In some embodiments, the feed line can be substantially serpentine-shaped to adjust impedance in the CCM.Type: ApplicationFiled: January 24, 2014Publication date: July 30, 2015Applicant: Medtronic, Inc.Inventors: Yanzhu Zhao, Nicholas C. Wine, Joyce K. Yamamoto, Gerardo Aguirre, Arne Kolbjorn Knudsen