Patents by Inventor Zhiwu Han

Zhiwu Han 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: 11472157
    Abstract: A bionic flexible actuator with a real-time feedback function and a preparation method thereof. The method includes: preparing stimuli-response layer and bionic flexible strain-sensor film layer, arranging bionic V-shaped groove array structure on bionic flexible strain-sensor film layer, and sticking bionic flexible strain-sensor film layer onto stimuli-response layer through adhesive layer; stimuli-response layer is prepared by adopting following steps: mixing multi-walled carbon nanotubes and polyvinylidene fluoride after being dissolved in a solvent respectively and obtaining a mixed solution; performing a film formation process to mixed solution and embedding a first electrode to obtain stimuli-response layer.
    Type: Grant
    Filed: October 30, 2019
    Date of Patent: October 18, 2022
    Assignee: JILIN UNIVERSITY
    Inventors: Zhiwu Han, Linpeng Liu, Junqiu Zhang, Dakai Wang, Tao Sun, Kejun Wang, Shichao Niu, Tao Hou
  • Patent number: 11456409
    Abstract: A micro-vibration sensor and preparation method thereof. The method includes a metal sheet is coated with first curing material, and first curing material is cured into first cured layer; piezoelectric thin film element is attached to edge of first cured layer; one side, attached with piezoelectric thin film element, of first cured layer is vertically placed into second curing material, and second curing material is cured into second cured layer; and metal sheet is removed to obtain micro-vibration sensor. Due to fact that piezoelectric thin film element is arranged at a crack tip, during micro-vibration, stress in stress field of crack tip is rapidly increased due to crack stress deformation, and stress signal is efficiently converted into electric signal; and micro-vibration sensor has characteristics of being low in detection limit and high in accuracy.
    Type: Grant
    Filed: October 31, 2019
    Date of Patent: September 27, 2022
    Assignee: JILIN UNIVERSITY
    Inventors: Zhiwu Han, Kejun Wang, Honglie Song, Junqiu Zhang, Daobing Chen, Linpeng Liu, Binjie Zhang, Tao Sun, Dakai Wang, Changchao Zhang
  • Publication number: 20220227098
    Abstract: A bionic nested structure fiber composite material includes a first fiber resin layer and a second fiber resin layer which are arranged in parallel, the first fiber resin layer and the second fiber resin layer are formed by a fiber bundle infiltrated with resin, and a bonded fiber unit is arranged between the first fiber resin layer and the second fiber resin layer, the bonded fiber unit are evenly distributed in a radial direction and a weft direction, the bonded fiber unit includes an inner core layer bonded fiber bundle, a middle core layer bonded fiber bundle and an outer core layer bonded fiber bundle, and the bonded fiber unit is performed 3D integrated layer-by-layer inner and outer nesting-and-weaving to form bionic nested structure.
    Type: Application
    Filed: January 19, 2022
    Publication date: July 21, 2022
    Inventors: Zhiwu HAN, Yujiao LI, Shichao NIU, Binjie ZHANG, Qigang HAN, Zhiyan ZHANG, Yufei WANG, Wenda SONG, Xiaojing QIN, Zhibin JIAO, Hao XUE, Changchao ZHANG, Xiancun MENG, Tao SUN
  • Publication number: 20220009194
    Abstract: Disclosed is a bionic fiber-reinforced composite material with high impact resistance and a preparation method thereof. Bionic fiber composite material is composed of positive and negative spiral fiber resin layers, which are alternately laid in a particular proportion and then heated and cured under pressure. The positive and negative spiral fiber resin layers are non-coaxial and uniformly rotated and stacked along their respective central axes periodically. The bionic fiber resin layer is formed by infiltrating a structurally bionic fiber material with a modified resin. The bionic structures include a scorpion claw structure, a jaw foot structure of mantis shrimp and a combined structure in the horn sheath of small tail Han sheep and pheasant feathers. Significantly, bionic fiber-reinforced composite material effectively improves the impact resistance and interlayer toughness of the fiber composite material by undergoing the combinatorial bionics of the structure of fiber material and the layering method.
    Type: Application
    Filed: February 10, 2021
    Publication date: January 13, 2022
    Inventors: Qigang HAN, Ruowei SHAO, Zhiwu HAN, Bo LI
  • Publication number: 20210207939
    Abstract: A bionic flexible actuator with a real-time feedback function and a preparation method thereof. The method includes: preparing stimuli-response layer and bionic flexible strain-sensor film layer, arranging bionic V-shaped groove array structure on bionic flexible strain-sensor film layer, and sticking bionic flexible strain-sensor film layer onto stimuli-response layer through adhesive layer; stimuli-response layer is prepared by adopting following steps: mixing multi-walled carbon nanotubes and polyvinylidene fluoride after being dissolved in a solvent respectively and obtaining a mixed solution; performing a film formation process to mixed solution and embedding a first electrode to obtain stimuli-response layer.
    Type: Application
    Filed: October 30, 2019
    Publication date: July 8, 2021
    Applicant: JILIN UNIVERSITY
    Inventors: Zhiwu HAN, Linpeng LIU, Junqiu ZHANG, Dakai WANG, Tao SUN, Kejun WANG, Shichao NIU, Tao HOU
  • Publication number: 20210175411
    Abstract: A micro-vibration sensor and preparation method thereof. The method includes a metal sheet is coated with first curing material, and first curing material is cured into first cured layer; piezoelectric thin film element is attached to edge of first cured layer; one side, attached with piezoelectric thin film element, of first cured layer is vertically placed into second curing material, and second curing material is cured into second cured layer; and metal sheet is removed to obtain micro-vibration sensor. Due to fact that piezoelectric thin film element is arranged at a crack tip, during micro-vibration, stress in stress field of crack tip is rapidly increased due to crack stress deformation, and stress signal is efficiently converted into electric signal; and micro-vibration sensor has characteristics of being low in detection limit and high in accuracy.
    Type: Application
    Filed: October 31, 2019
    Publication date: June 10, 2021
    Applicant: JILIN UNIVERSITY
    Inventors: Zhiwu HAN, Kejun WANG, Honglie SONG, Junqiu ZHANG, Daobing CHEN, Linpeng LIU, Binjie ZHANG, Tao SUN, Dakai WANG, Changchao ZHANG
  • Publication number: 20050025894
    Abstract: The invention relates to the design and manufacturing technique of mechanical component which is prone to be worn in relative movement. More particularly, it relates to a method of improving the wear resistance performance of the surface of mechanical component. In this method, a bionic non-smooth morphology is formed on the frictional surface of the mechanical component. That is, a plurality of convex units shaped as crown, dimple, scale, mesh, stripe and so on are distributed on the surface. These units are 0.01-2 mm higher than the base surface. The distributed density (S) of the units, i.e., the ratio of the geometrical area of the convex units projected on the surface of the base with respect to the whole surface area of the base, is 10-40%. The hardness difference between the units and the base is HB0-200. It breaks through the conventional concept and provides a more rational and effective way to improve the wear resistance performance of mechanical component.
    Type: Application
    Filed: June 28, 2004
    Publication date: February 3, 2005
    Inventors: Luquan Ren, Hong Zhou, Xiaoming Qiu, Qingping Liu, Zhanrong Cui, Zhiwu Han, Guilan Zhang, Jianqiao Li, Jin Tong, Yanchun Qian, Yuguang Zhao