Patents by Inventor Yongmao Pei

Yongmao Pei 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: 10809169
    Abstract: A system for in-situ testing of mechanical properties of materials in static and dynamic load spectra, that includes: an Arcan biaxial clamping subsystem, a press-in test subsystem, a biaxial fatigue test subsystem, a biaxial pre-tension loading subsystem, a signal detection subsystem, and a support and adjustment subsystem. A combined guide mechanism in the Arcan biaxial clamping subsystem is rigidly connected to a guide mechanism support block, an x-direction three sensor base and a y-direction force sensor base in the support and adjustment subsystem by threaded connections, respectively. A laser transmitter, a voice coil motor and a laser receiver in the press-in test subsystem are rigidly connected to a two-degree-of-freedom electric moving platform for the laser transmitter, a two-degree-of-freedom electric moving platform for the voice coil motor and a two-degree-of-freedom electric moving platform for the laser receiver in the support and adjustment subsystem by threaded connections, respectively.
    Type: Grant
    Filed: October 12, 2016
    Date of Patent: October 20, 2020
    Assignee: JILIN UNIVERSITY
    Inventors: Zhichao Ma, Hongwei Zhao, Luquan Ren, Shizhong Zhang, Jingshi Dong, Zunqiang Fan, Daining Fang, Jingchun Ma, Yongmao Pei, Qixun Zhang, Hui Fan, Qingwei Zhuang
  • Publication number: 20200124510
    Abstract: A system for in-situ testing of mechanical properties of materials in static and dynamic load spectra, that includes: an Arcan biaxial clamping subsystem, a press-in test subsystem, a biaxial fatigue test subsystem, a biaxial pre-tension loading subsystem, a signal detection subsystem, and a support and adjustment subsystem. A combined guide mechanism in the Arcan biaxial clamping subsystem is rigidly connected to a guide mechanism support block, an x-direction force sensor base and a y-direction force sensor base in the support and adjustment subsystem by threaded connections, respectively. A laser transmitter, a voice coil motor and a laser receiver in the press-in test subsystem are rigidly connected to a two-degree-of-freedom electric moving platform for the laser transmitter, a two-degree-of-freedom electric moving platform for the voice coil motor and a two-degree-of-freedom electric moving platform for the laser receiver in the support and adjustment subsystem by threaded connections, respectively.
    Type: Application
    Filed: October 12, 2016
    Publication date: April 23, 2020
    Applicant: JILIN UNIVERSITY
    Inventors: Zhichao Ma, Hongwei Zhao, Luquan Ren, Shizhong Zhang, Jingshi Dong, Zunqiang Fan, Daining Fang, Jingchun Ma, Yongmao Pei, Qixun Zhang, Hui Fan, Qingwei Zhuang
  • Patent number: 10444130
    Abstract: Provided are a material in-situ test device and method under multi-load and multi-physical field coupled service conditions. The device is composed of a precise six-degree-of-freedom composite load applying module, a precise torsion module, a precise indentation module, a clamp module and a control module which work together to complete a composite-load and multi-physical field coupled experiment, and is integrated with a digital speckle strain measurement and infrared thermal imaging module and a microscope observation module, so as to carry out in-situ observation and quantitative characterization on material deformation behaviors and damage mechanism phenomena in a composite-load and multi-physical field loading process. For example, loading methods of “cantilever type pure bending, cantilever type tension/compression-torsion, and cantilever type bending-torsion”, etc. can realize the loading of composite load.
    Type: Grant
    Filed: September 24, 2015
    Date of Patent: October 15, 2019
    Assignee: JILIN UNIVERSITY
    Inventors: Hongwei Zhao, Shizhong Zhang, Luquan Ren, Ning Li, Xiaohang Dai, Shunbo Wang, Zhanwei Huo, Yang Liu, Daining Fang, Yongmao Pei
  • Patent number: 10209322
    Abstract: A method for testing a local magnetomechanical coupling coefficient of a magnetic material includes defining a square of a local magnetomechanical coupling coefficient kIT as a the ratio of a magnetic energy stored in a magnetic material to an input reversible mechanical work, and characterizing the local magnetomechanical coupling coefficient of the magnetic material by measuring nano-indentation load-depth curves of the magnetic material under both situations of a saturated magnetic field and an unsaturated magnetic field. The method is simple in operation and has the advantages in local performance test of composite materials and other heterogeneous materials and also in small-scale performance test of nano-films.
    Type: Grant
    Filed: May 18, 2015
    Date of Patent: February 19, 2019
    Assignee: Peking University
    Inventors: Daining Fang, Hao Zhou, Yongmao Pei, Hongwei Zhao
  • Patent number: 10084424
    Abstract: A device and associated method for adjusting electrical impedance based on contact action are disclosed. The device includes a drive unit (1), a contact unit (2), a monitoring unit (3), and a control unit (4). The monitoring unit (3) measures an impedance signal of an electromagnetic functional material (7) in an alternating-current circuit, and transfers the impedance signal to the control unit (4). In response to the impedance signal measured by the monitoring unit (3), the control unit (4) controls the drive unit (1) to apply a mechanical load on the contact unit (2), which causes the contact unit (2) to contact the electromagnetic functional material (7). The value of a contact load is adjusted, so as to adjust the electrical impedance of the electromagnetic functional material (7), thereby achieving the objective of adjusting the impedance matching in the alternating-current circuit in real time.
    Type: Grant
    Filed: May 18, 2015
    Date of Patent: September 25, 2018
    Assignees: Peking University, Jilin University
    Inventors: Daining Fang, Hao Zhou, Yongmao Pei, Faxin Li, Hongwei Zhao, Ji Fu
  • Publication number: 20180180521
    Abstract: Provided are a material in-situ test device and method under multi-load and multi-physical field coupled service conditions. The device is composed of a precise six-degree-of-freedom composite load applying module, a precise torsion module, a precise indentation module, a clamp module and a control module which work together to complete a composite-load and multi-physical field coupled experiment, and is integrated with a digital speckle strain measurement and infrared thermal imaging module and a microscope observation module, so as to carry out in-situ observation and quantitative characterization on material deformation behaviours and damage mechanism phenomena in a composite-load and multi-physical field loading process. For example, loading methods of “cantilever type pure bending, cantilever type tension/compression-torsion, and cantilever type bending-torsion”, etc. can realize the loading of composite load.
    Type: Application
    Filed: September 24, 2015
    Publication date: June 28, 2018
    Inventors: Hongwei ZHAO, Shizhong ZHANG, Luquan REN, Ning LI, Xiaohang DAI, Shunbo WANG, Zhanwei HUO, Yang LIU, Daining FANG, Yongmao PEI
  • Publication number: 20180081002
    Abstract: A method for testing a local magnetomechanical coupling coefficient of a magnetic material includes defining a square of a local magnetomechanical coupling coefficient kIT as a the ratio of a magnetic energy stored in a magnetic material to an input reversible mechanical work, and characterizing the local magnetomechanical coupling coefficient of the magnetic material by measuring nano-indentation load-depth curves of the magnetic material under both situations of a saturated magnetic field and an unsaturated magnetic field. The method is simple in operation and has the advantages in local performance test of composite materials and other heterogeneous materials and also in small-scale performance test of nano-films.
    Type: Application
    Filed: May 18, 2015
    Publication date: March 22, 2018
    Inventors: Daining Fang, Hao Zhou, Yongmao Pei, Hongwei Zhao
  • Publication number: 20180076787
    Abstract: A device and associated method for adjusting electrical impedance based on contact action are disclosed. The device includes a drive unit (1), a contact unit (2), a monitoring unit (3), and a control unit (4). The monitoring unit (3) measures an impedance signal of an electromagnetic functional material (7) in an alternating-current circuit, and transfers the impedance signal to the control unit (4). In response to the impedance signal measured by the monitoring unit (3), the control unit (4) controls the drive unit (1) to apply a mechanical load on the contact unit (2), which causes the contact unit (2) to contact the electromagnetic functional material (7). The value of a contact load is adjusted, so as to adjust the electrical impedance of the electromagnetic functional material (7), thereby achieving the objective of adjusting the impedance matching in the alternating-current circuit in real time.
    Type: Application
    Filed: May 18, 2015
    Publication date: March 15, 2018
    Inventors: Daining Fang, Hao Zhou, Yongmao Pei, Faxin Li, Hongwei Zhao, Ji Fu