Yingjie Chang | Fluid Dynamics | Innovative Research Award

Innovative Research Award

Yingjie Chang — Chang’an University, China

Yingjie Chang
Affiliation Chang’an University
Country China
Scopus ID 57211653957
Documents 25
Citations 274
h-index 10
Subject Area Fluid Dynamics
Event Cryogenicist Global Awards
ORCID 0000-0003-3332-6034

Yingjie Chang is a researcher whose documented academic profile centers on fluid dynamics, multiphase flow, heat transfer, and related engineering systems. The ORCID record identifies doctoral education in the State Key Laboratory of Multiphase Flow in Power Engineering. [1]

Abstract

Chang’s documented research includes experimental and modeling studies of gas–liquid two-phase flows, pipeline-riser systems, flow-pattern identification, severe slugging, and heat-transfer phenomena. His ORCID record also documents peer-review and editorial activities, providing evidence of continuing scholarly engagement. [2]

Keywords

Fluid Dynamics; Multiphase Flow; Gas–Liquid Flow; Pipeline-Riser Systems; Severe Slugging; Heat Transfer; Flow Regimes; Experimental Fluid Mechanics; Computational Modeling; Engineering Thermophysics.

Introduction

The research profile presents a sustained focus on complex flow behavior in engineering systems, particularly where gas and liquid phases interact under varying pressure and geometric conditions. Published studies address both experimental characterization and predictive approaches to multiphase transport. [3]

Research Profile

The available record places Chang within fluid dynamics and energy-related engineering research. His education includes doctoral work at Xi’an Jiaotong University and joint doctoral study at Otto-von-Guericke University Magdeburg, while his professional record includes Chang’an University and editorial service for Scientific Reports. [1]

Research Contributions

Representative work examines severe slugging, gas–liquid flow transitions, void-fraction prediction, stratified flow, hydraulic jumps, and condensation. Recent publications additionally address flow cutoff characteristics, heat-exchanger optimization, and nonlinear multiphysics modeling of ice accretion. [4]

Publications

Yingjie Chang’s publication record demonstrates a sustained research focus on fluid dynamics, gas–liquid multiphase flow, pipeline-riser systems, and related transport phenomena. His documented works include studies of severe slugging, flow-pattern identification, void-fraction prediction, and high-pressure multiphase systems. [3]

Research Impact

The supplied researcher information reports 25 documents, 274 citations, and an h-index of 10. The ORCID record independently lists 21 works and identifies Scopus as a source for several records, while documented review activity covers multiple engineering journals. [5]

Award Suitability

For the Innovative Research Award associated with the Cryogenicist Global Awards, Chang’s documented strengths include fluid-dynamics research, multiphase-flow experimentation, predictive modeling, and engineering heat-transfer studies. These areas provide a substantive research basis for consideration within a technically focused recognition framework. [1]

Conclusion

Yingjie Chang’s documented academic record reflects research activity concentrated on fluid dynamics and multiphase engineering phenomena, supported by peer-reviewed publications and scholarly service. The available evidence establishes a  profile relevant to an innovation-oriented research recognition. [2]

References

  1. ORCID. (n.d.). Yingjie Chang, ORCID iD 0000-0003-3332-6034.
    https://orcid.org/0000-0003-3332-6034
  2. Elsevier. (n.d.). Scopus author details: Yingjie Chang, Author ID 57211653957. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57211653957
  3. Chang, Y., et al. (2026). Flow cutoff characteristics of gas–liquid two-phase flow in the pipeline–riser system. Physics of Fluids. .
    https://doi.org/10.1063/5.0336349
  4. Yang, X., et al. (2026). Research on Adjoint Shape Optimization of Shell-And-Tube Heat Exchangers in Petroleum Transportation Systems. Processes.
    https://doi.org/10.3390/pr14040647
  5. Chang, Y., et al. (2024). Hydrodynamics and shape reconstruction of single rising air bubbles in water using high-speed tomographic particle tracking velocimetry and 3D geometric reconstruction. Experiments in Fluids.
    https://doi.org/10.1007/s00348-023-03746-0

Ladislav Skrbek | Quantum Turbulence | Best Researcher Award

Prof. Ladislav Skrbek | Quantum Turbulence | Best Researcher Award 

Professor | Charles University | Czech Republic

Prof. Ladislav Skrbek is a distinguished physicist at Charles University, Prague, Czech Republic, renowned for his pioneering research in low-temperature physics, particularly in the study of quantum fluids and cryogenic phenomena. With an extensive publication record of 188 scientific papers and over 4,999 citations across 2,451 documents, Dr. Skrbek has made substantial contributions to advancing the understanding of superfluid helium, quantum turbulence, and cryogenic flow dynamics—areas fundamental to both fundamental physics and applied cryogenics. Holding a Scopus h-index of 35, his work reflects both depth and sustained influence in experimental and theoretical physics communities worldwide. Throughout his career, Dr. Skrbek has collaborated with over 185 co-authors across international institutions, emphasizing his strong engagement in global scientific exchange and interdisciplinary research. His studies have provided key insights into the dynamics of vortices and energy dissipation at ultra-low temperatures, contributing to the development of quantum fluid models that influence modern cryogenic engineering and condensed matter physics. Beyond his academic output, Dr. Skrbek’s research has broader societal implications, informing technologies used in cryogenic cooling systems, superconductivity, and quantum computing infrastructure. As a leading scholar in his field, he continues to inspire innovation and collaboration in low-temperature science, strengthening the role of fundamental research in addressing technological challenges and expanding the frontiers of modern physics.

Profiles: Scopus | ORCID

Featured Publications

1. Duda, D., La Mantia, M., & Skrbek, L. (2017). Streaming flow due to a quartz tuning fork oscillating in normal and superfluid He 4. Physical Review B, 96, 024519.  Cited by: 18.

2. Šindler, M., Tesař, R., Koláček, J., & Skrbek, L. (2017). Anisotropic behaviour of transmission through thin superconducting NbN film in parallel magnetic field. Physica C: Superconductivity and its Applications.  Cited by: 5.

3. Varga, E., Babuin, S., L’vov, V. S., Pomyalov, A., & Skrbek, L. (2017). Transition to quantum turbulence and streamwise inhomogeneity of vortex tangle in thermal counterflow. Journal of Low Temperature Physics, 187(5–6), 497–503.

4. Babuin, S., L’vov, V. S., Pomyalov, A., Skrbek, L., & Varga, E. (2016). Coexistence and interplay of quantum and classical turbulence in superfluid He 4: Decay, velocity decoupling, and counterflow energy spectra. Physical Review B, 94(17), 174504.

5. Gao, J., Guo, W., L’vov, V. S., Pomyalov, A., Skrbek, L., Varga, E., & Vinen, W. F. (2016). Decay of counterflow turbulence in superfluid ⁴He. JETP Letters, 103(10), 648–653.

Prof. Ladislav Skrbek’s pioneering research in low-temperature physics and quantum turbulence has profoundly advanced the understanding of superfluidity and quantum hydrodynamics. His contributions bridge fundamental science and applied cryogenics, shaping innovations that influence both theoretical physics and precision technologies worldwide.