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

Andrea Falcetta | Fluid Dynamics | Best Review Paper Award

Best Review Paper Award

Coronary–Bronchial Artery Fistulas: Pathophysiology, Multimodality Imaging, and Contemporary Management
Andrea Falcetta
Affiliation Azienda Ospedaliera S. Croce e Carle Cuneo
Country Italy
Article Title Coronary–Bronchial Artery Fistulas: Pathophysiology, Multimodality Imaging, and Contemporary Management
Scopus 57204059059
ORCID 0000-0003-3272-0726
Article Type Review Article
Article Views 176
References 55
Award Category Best Review Paper Award
Event Cryogenicist Global Awards

The Best Review Paper Award recognizes outstanding scholarly review articles that provide comprehensive analysis, critical evaluation, and educational value within a specialized scientific field. The review article Coronary–Bronchial Artery Fistulas: Pathophysiology, Multimodality Imaging, and Contemporary Management presents an extensive examination of a rare vascular anomaly connecting coronary and bronchial circulations. Through detailed discussion of pathophysiological mechanisms, diagnostic imaging approaches, and contemporary treatment strategies, the article serves as a valuable resource for clinicians, cardiologists, radiologists, and cardiovascular researchers.

Abstract

This review article provides a comprehensive assessment of coronary–bronchial artery fistulas, an uncommon vascular communication with important clinical implications. The paper synthesizes current knowledge regarding pathophysiological mechanisms, epidemiology, clinical manifestations, advanced imaging techniques, and therapeutic interventions. Particular emphasis is placed on multimodality imaging, including coronary angiography, computed tomography angiography, and cardiac magnetic resonance imaging. By integrating contemporary evidence and clinical experience, the review offers practical guidance for diagnosis, risk stratification, and management while identifying future directions for research and clinical practice in cardiovascular medicine..[1]

Keywords

Coronary–Bronchial Artery Fistula, Coronary Artery Anomalies, Cardiovascular Imaging, Computed Tomography Angiography, Cardiac Magnetic Resonance, Coronary Angiography, Vascular Malformations, Interventional Cardiology, Cardiovascular Diagnosis, Review Article

Introduction

Coronary–bronchial artery fistulas represent rare vascular abnormalities that may remain asymptomatic or produce clinically significant cardiovascular manifestations. Due to their infrequent occurrence and complex anatomical features, accurate diagnosis often requires advanced imaging evaluation. The reviewed article consolidates available evidence and clinical observations, providing readers with an organized overview of disease mechanisms, diagnostic pathways, and treatment considerations relevant to contemporary cardiovascular practice.[2]

Scientific Background

The review explores the embryological and pathophysiological origins of coronary–bronchial artery fistulas and explains how abnormal vascular communications can influence coronary blood flow and cardiopulmonary function. The article summarizes previously reported clinical cases and research findings, highlighting potential complications including myocardial ischemia, coronary steal phenomena, hemoptysis, and cardiovascular symptoms associated with abnormal shunting.[1]

Multimodality Imaging

A major strength of the review is its detailed discussion of multimodality imaging. The article evaluates the diagnostic value of invasive coronary angiography, computed tomography angiography, echocardiography, and cardiac magnetic resonance imaging. Comparative analysis of imaging modalities assists clinicians in identifying vascular anatomy, determining lesion complexity, assessing hemodynamic significance, and planning appropriate therapeutic interventions..[2]

Contemporary Management

The review examines current management strategies for coronary–bronchial artery fistulas, ranging from clinical observation to catheter-based and surgical interventions. Treatment decisions are discussed in relation to symptom severity, anatomical characteristics, patient risk profile, and potential complications. The article presents evidence supporting individualized management approaches while emphasizing multidisciplinary evaluation for optimal patient outcomes.

Review Contributions

The article contributes significantly to cardiovascular literature by consolidating dispersed evidence into a single comprehensive review. It integrates pathophysiological understanding with practical diagnostic and therapeutic recommendations, creating an educational resource for specialists and trainees. The extensive reference base of fifty-five cited sources further strengthens the scholarly depth and reliability of the review. [1]

Scientific Impact

By addressing a rare but clinically important cardiovascular condition, the review improves awareness among healthcare professionals and supports evidence-based decision making. The article facilitates knowledge transfer across cardiology, radiology, cardiovascular surgery, and diagnostic imaging disciplines while promoting standardized approaches to evaluation and treatment of coronary vascular anomalies.[2]

Award Suitability

This publication demonstrates qualities expected of a Best Review Paper Award recipient, including comprehensive literature synthesis, strong clinical relevance, methodological clarity, and educational value. Its multidisciplinary perspective, extensive citation foundation, and practical guidance for healthcare professionals make it a notable contribution to cardiovascular medicine and scientific communication.[3]

Conclusion

The review article provides an authoritative and clinically relevant examination of coronary–bronchial artery fistulas. Through detailed discussion of pathophysiology, imaging methodologies, and management strategies, it advances understanding of a complex cardiovascular condition. Its scholarly rigor, broad clinical applicability, and educational significance justify recognition within the Best Review Paper Award category of the Cryogenicist Global Awards..[4]

References

1. Falcetta, A., et al. (2025). Coronary–Bronchial Artery Fistulas: Pathophysiology, Multimodality Imaging, and Contemporary Management.
Journal of Cardiovascular Development and Disease, 13(6), 238.
https://www.mdpi.com/2308-3425/13/6/238
2. MDPI. (2025). Journal of Cardiovascular Development and Disease – Article Metrics and Publication Information.
https://www.mdpi.com/2308-3425/13/6/238
3. ORCID. (n.d.). Andrea Falcetta – ORCID Research Profile.
https://orcid.org/0000-0003-3272-0726
4. Cryogenicist Global Awards. (n.d.). Best Review Paper Award Recognition Framework and Evaluation Criteria.
https://cryogenicist.com/
5. Elsevier. (n.d.). Scopus author details: Andrea Falcetta, Author ID 57204059059. Scopus.
https://www.scopus.com/authid/detail.uri?authorId=57204059059

 

Farhad Zare | Computational Fluid Dynamics | Editorial Board Member

Dr. Farhad Zare | Computational Fluid Dynamics | Editorial Board Member

Independent researcher | Shiraz University | Iran

Dr. Farhad Zare is a researcher affiliated with Shiraz University, Iran, whose scholarly contributions reflect focused expertise, selective publication, and growing international visibility within his field. With 4 peer-reviewed publications indexed in Scopus and a total of 24 citations distributed across 22 citing documents, he has established a developing research footprint supported by a Scopus h-index of 3. His work, though concentrated in volume, demonstrates academic rigor and contributes to specialized scientific domains, underscoring his role in advancing targeted areas of inquiry. Dr. Zare collaborates actively, with at least eight co-authors identified in the Scopus preview, highlighting his commitment to interdisciplinary engagement and collective scientific advancement. Through these collaborations, he participates in generating knowledge that supports technological progress, academic discourse, and potential societal applications. His research identity is further strengthened by his maintained ORCID profile and integration within global bibliometric systems, ensuring transparency, discoverability, and professional continuity. Although the preview provides limited access to details of his individual publications, the available indicators point to a developing research career marked by methodological clarity, peer-recognized contributions, and an ongoing commitment to enriching the broader scientific community.

Profiles: Scopus | ORCID

Featured Publications

1. Seifelnasr, A., Zare, F., Si, X., & Xi, J. (2025). Enhancing physiological realism in nasal spray deposition studies: Synthetic mucus properties and interactions with saline solutions and stereolithography resin. Liquids, 5(2), 11. Cited by 3

Dr. Farhad Zare advances high-impact research in fluid dynamics, material behavior, and applied engineering, developing models and experimental methods that improve the precision and reliability of modern technologies. His work bridges fundamental science with real-world implementation, driving innovation across multiple engineering domains.

Madhavarao Kulkarni | Computational Fluid Dynamics | Best Researcher Award

Dr. Madhavarao Kulkarni | Computational Fluid Dynamics | Best Researcher Award

Assistant Professor | B.V.V.S Basaveshwara Science College | India

Dr. Madhavarao Kulkarni is an accomplished mathematician and Assistant Professor with expertise in Computational Fluid Dynamics at Karnatak University, Dharwad. He earned his Ph.D. in Computational Fluid Dynamics, focusing on mixed convection nanoliquid flows, from Karnatak University, following an M.Sc. in Mathematics from Central University of Karnataka and a B.Sc. in Physics, Chemistry, and Mathematics from J. S. S. College, Dharwad. Dr. Kulkarni has extensive professional experience as an Assistant Professor and CFD trainer, contributing to academic instruction in numerical methods, differential equations, complex analysis, and fluid dynamics, while leading projects and mentoring students in advanced computational techniques. His research focuses on nonlinear mixed convection, Newtonian and non-Newtonian nanofluid flows, magnetohydrodynamics, and numerical simulations using finite difference methods, resulting in significant contributions to high-impact journals including Chinese Journal of Physics, Arabian Journal for Science and Engineering, and Indian Journal of Physics. He has actively presented his work at national and international conferences, participated in specialized workshops, and serves as a reviewer for reputed journals. Dr. Kulkarni’s work advances theoretical and computational modeling of complex fluid systems, providing valuable insights into applied mathematics, engineering, and energy systems. His scholarship is recognized with substantial academic influence, reflected in a Scopus profile with 349 citations, 17 documents, and an h-index of 9.

Featured Publications

1. Patil, P. M., & Kulkarni, M. (2021). Analysis of MHD mixed convection in a Ag-TiO₂ hybrid nanofluid flow past a slender cylinder. Chinese Journal of Physics, 73, 406–419.

2. Patil, P. M., Kulkarni, M., & Tonannavar, J. R. (2021). A computational study of the triple-diffusive nonlinear convective nanoliquid flow over a wedge under convective boundary constraints. International Communications in Heat and Mass Transfer, 128, 105561.

3. Patil, P. M., Kulkarni, M., & Hiremath, P. S. (2020). Effects of surface roughness on mixed convective nanofluid flow past an exponentially stretching permeable surface. Chinese Journal of Physics, 64, 203–218.

4. Patil, P. M., & Kulkarni, M. (2020). Nonlinear mixed convective nanofluid flow along moving vertical rough plate. Revista Mexicana de Física, 66(2), 153–161.

5. Patil, P. M., & Kulkarni, M. (2022). MHD quadratic mixed convective Eyring-Powell nanofluid flow with multiple diffusions. Chinese Journal of Physics, 77, 393–410.