Yunchao Qi | Materials Science | Best Researcher Award

Yunchao Qi | Materials Science | China

Dr. Yunchao Qi, North University of China, China.

Dr. Yunchao Qiย ๐ŸŽ“ย is a distinguished researcher and educator specializing in engineering mechanics and materials science. He holds a Doctorate in Engineering from Harbin Institute of Technology and is currently affiliated with the School of Aerospace Engineering, North University of China. With expertise in the mechanical properties and structural design of composites and machine learning applications in materials engineering, he has published extensively in leading journals. Dr. Qi’s professional journey reflects his commitment to innovation and excellence in engineering, contributing to advancements in composites and materials science.ย ๐Ÿ“š๐Ÿ”ฌ

Publication Profileย 

Scopus

Education and Experience

  • ๐ŸŽ“ย Bachelor of Engineeringย in Engineering Mechanics, Northwestern Polytechnical University (2012โ€“2016)
  • ๐ŸŽ“ย Doctor of Engineeringย in Engineering Mechanics, Harbin Institute of Technology (2016โ€“2022)
  • ๐Ÿ’ผย AVIC Chengdu Aircraft Industrial (Group) CO., Ltd., Chengdu, China (2023/02โ€“2024/05)
  • ๐Ÿ’ผย North University of China, Taiyuan, China (2024/05โ€“Present)

Summary Suitability For the Award

Dr. Yunchao Qi is an exemplary candidate for theย Best Researcher Award, given his groundbreaking contributions to the field of engineering mechanics, particularly in the mechanical properties characterization and structural design of composites. His research seamlessly integrates advanced methodologies, such as machine learning, into materials engineering, significantly advancing both academic understanding and practical applications.

Professional Development

Dr. Yunchao Qi has actively developed his expertise through interdisciplinary research combining materials science, mechanical properties, and machine learning applications.ย ๐ŸŒย His innovative approaches have advanced the understanding of composites, including needled composites, their structural design, and thermal optimization using AI techniques.ย โœจย With over eight high-impact publications in prestigious journals and a solid academic foundation, Dr. Qi’s work bridges theory and application, enabling practical solutions in aerospace and material engineering.ย ๐Ÿš€ย His contributions to academia and industry highlight his dedication to fostering progress in mechanical engineering and composites.ย ๐Ÿ› ๏ธ๐Ÿ“–

Research Focus

Dr. Yunchao Qiโ€™s research centers on theย mechanical properties characterizationย andย structural design of composites, including needled and 3D fiber-reinforced materials.ย ๐Ÿ“๐Ÿ”ย He also exploresย machine learning applicationsย in materials engineering, such as designing thermal cloaks with isotropic materials and optimizing composite structures.ย ๐Ÿค–ย His work integrates traditional engineering principles with cutting-edge AI methods to enhance the performance, reliability, and efficiency of advanced materials, significantly contributing to aerospace and materials science.ย โœˆ๏ธ๐Ÿ”ฌย Dr. Qi’s research showcases a fusion of innovation, sustainability, and practical implementation.ย ๐ŸŒฑ

Awards and Honors

  • ๐Ÿ†ย Best Paper Award in Composite Materials at the National Engineering Conference, 2022.
  • ๐Ÿฅ‡ย Recognized as “Outstanding Young Researcher” by Harbin Institute of Technology, 2020.
  • ๐Ÿ“œย Recipient of the National Doctoral Research Fellowship, China, 2018โ€“2021.
  • ๐ŸŒŸย Excellence in Innovation Award for Machine Learning Applications in Engineering, 2023.

Publication Top Notesย 

  • ๐Ÿ“–ย In-plane tensile strength for needle-punched composites prepared by different needling processes,ย 2023,ย Chinese Journal of Materials Research,ย 1 citation.
  • ๐Ÿ“–ย Process design of variable fiber content in layers of needle-punched preforms,ย 2023,ย Journal of Materials Science.
  • ๐Ÿ“–ย Determination of needling process satisfying stiffness requirements of 3D needled composites,ย 2022,ย Polymer Composites,ย 5 citations.
  • ๐Ÿ“–ย Design of thermal cloaks with isotropic materials based on machine learning,ย 2022,ย International Journal of Heat and Mass Transfer,ย 21 citations.
  • ๐Ÿ“–ย An improved analytical method for calculating stiffness of 3D needled composites with different needle-punched processes,ย 2020,ย Composite Structures,ย 24 citations.
  • ๐Ÿ“–ย Optimization of process parameters of three-dimensional needled preforms for C/C-SiC composites,ย 2020,ย Journal of Materials Engineering,ย 5 citations.
  • ๐Ÿ“–ย The optimization of process parameters of three-dimensional needled composites based on ANN and GA,ย 2019,ย ICCM International Conferences on Composite Materials.

 

Dr. Yifeng Dong| Mechanical of Composite Materials Award | Best Researcher Award

Dr. Yifeng Dong| Mechanical of Composite MaterialsAward | Best Researcher Award

Dr. Yifeng Dong , Beijing Institute of Technology , China

Dong Yifeng is a dedicated researcher specializing in the mechanics and design of flexible composite materials. Currently affiliated with Tsinghua University as a Ph.D. student, Dong’s expertise spans from macro- to meso-structural optimization of flexible composites. His pioneering work includes developing hyper-visco-pseudoelastic constitutive models and homogenized anisotropic theoretical models to enhance the mechanical performance evaluation of these materials. Dong has significantly contributed to overcoming challenges in predicting gas leakage rates and improving sealing performance in flexible composite structures. His research has yielded multiple publications in esteemed journals, with several papers currently under review. Dong Yifeng’s innovative approach has also led to the establishment of comprehensive testing platforms and characterization methods, culminating in the acquisition of two authorized invention patents. His work not only advances the scientific understanding of flexible composites but also provides crucial insights for their practical application and design enhancement.

Profile :

Scopus

Google scholar

Education/Work Experience:

  • 04/2022-12/2023 Research Fellow, Beijing Institute of Technology
  • 08/2020-02/2022 Civil Servant, Shanghai Municipal Commission for Discipline Inspection
  • 09/2015-08/2020 Ph.D. Student, Tsinghua University
  • 09/2011-06/2015 Undergraduate Student, Harbin Engineering University

Research Interests:

Mechanics and Design of Flexible Composite Materials

Research Experience: Mechanical and Sealing Performance of Flexible Composite Structures

  • Research Content:
    • Developed a hyper-visco-pseudoelastic constitutive model for fiber-reinforced flexible composites.
    • Established a homogenized anisotropic theoretical model for textile flexible composites.
    • Investigated the gas leakage rate prediction and sealing mechanisms in flexible composite structures.
  • Research Achievement:
    • Advanced theoretical models for evaluating mechanical properties of flexible composites.
    • Innovated methods for predicting gas leakage rates in flexible composite structures.
  • Research Value:
    • Proposed new evaluation methods for mechanical and sealing performance.
    • Published 7 SCI papers, with 1 paper currently under review.

Testing Platform and Characterization Methods for Mechanical and Sealing Performance of Flexible Composite Structures

  • Research Content:
    • Developed testing platforms and characterization methods for durability, friction, and sealing performance.
    • Comprehensive analysis of compression rebound, friction, durability, and sealing under varying temperatures.
  • Research Achievement:
    • Overcame challenges in lacking testing platforms for mechanical and sealing performance.
  • Research Value:
    • Established a database for critical parameters, aiding in flexible composite structure design.
    • The platform serves as a verification tool for new flexible composite designs.
    • Secured 2 authorized invention patents.

Optimization Design Methods for Macro- and Meso-structural of Flexible Composite Structures

  • Research Content:
    • Innovated multi-objective optimization for macroscopic cross-sectional design.
    • Developed multiscale optimization methods for meso-structure of flexible composites.
  • Research Achievement:
    • Clarified design principles and provided efficient design methods for flexible composites.
  • Research Value:
    • Introduced novel approaches for designing flexible composite structures.
    • Published 3 SCI papers, with 1 paper currently under review.
Publications Top Notes ๐Ÿ“„