World's Best Scientists 2026 revealed!

D-Index & Metrics

Mechanical and Aerospace Engineering

D-Index
34
Citations
5711
World Ranking
2806
National Ranking
204

David Emerson publication distribution in Mechanical and Aerospace Engineering in 2026

The chart shows the distribution of publications by all Research.com ranked scientists in the field of Mechanical and Aerospace Engineering in 2026. The highlighted bar marks where David Emerson sits on this spectrum.

47–56 publications: 10 scientists 57–66 publications: 23 scientists 67–76 publications: 32 scientists 77–86 publications: 62 scientists 87–96 publications: 67 scientists 97–106 publications: 91 scientists 107–116 publications: 113 scientists 117–126 publications: 115 scientists 127–136 publications: 130 scientists 137–146 publications: 140 scientists 147–156 publications: 155 scientists 157–166 publications: 132 scientists 167–176 publications: 133 scientists 177–186 publications: 130 scientists 187–196 publications: 140 scientists 197–206 publications: 115 scientists 207–216 publications: 125 scientists 217–226 publications: 117 scientists 227–236 publications: 99 scientists 237–246 publications: 92 scientists 247–256 publications: 100 scientists 257–266 publications: 95 scientists 267–276 publications: 88 scientists 277–286 publications: 77 scientists 287–296 publications: 74 scientists 297–306 publications: 74 scientists 307–316 publications: 62 scientists 317–326 publications: 70 scientists 327–336 publications: 59 scientists 337–346 publications: 58 scientists 347–356 publications: 45 scientists 357–366 publications: 44 scientists 367–376 publications: 36 scientists 377–386 publications: 41 scientists 387–396 publications: 32 scientists 397–406 publications: 23 scientists 407–416 publications: 28 scientists 417–426 publications: 27 scientists 427–436 publications: 25 scientists 437–446 publications: 23 scientists 447–456 publications: 23 scientists 457–466 publications: 20 scientists 467–476 publications: 12 scientists 477–486 publications: 24 scientists 487–496 publications: 18 scientists 497–506 publications: 12 scientists 507–516 publications: 13 scientists 517–526 publications: 21 scientists 527–536 publications: 12 scientists 537–546 publications: 8 scientists 547–556 publications: 16 scientists 557–566 publications: 3 scientists 567–576 publications: 11 scientists 577–586 publications: 6 scientists 587–596 publications: 5 scientists 597–606 publications: 6 scientists 607–616 publications: 7 scientists 617–626 publications: 7 scientists 627–636 publications: 10 scientists 637–646 publications: 4 scientists 647–656 publications: 3 scientists 657–658 publications: 2 scientists 659+ publications: 100 scientists
47 publications 659+

This scientist: 248 publications — 59th percentile

59% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 659 publications or more.

David Emerson D-index placement in Mechanical and Aerospace Engineering in 2026

The chart shows the D-index (discipline H-index) distribution of Mechanical and Aerospace Engineering scientists ranked by Research.com in 2026. The highlighted bar marks where David Emerson sits on this spectrum.

30 D-Index: 83 scientists 31 D-Index: 113 scientists 32 D-Index: 144 scientists 33 D-Index: 153 scientists 34 D-Index: 189 scientists 35 D-Index: 158 scientists 36 D-Index: 139 scientists 37 D-Index: 127 scientists 38 D-Index: 130 scientists 39 D-Index: 126 scientists 40 D-Index: 104 scientists 41 D-Index: 100 scientists 42 D-Index: 107 scientists 43 D-Index: 101 scientists 44 D-Index: 103 scientists 45 D-Index: 79 scientists 46 D-Index: 88 scientists 47 D-Index: 70 scientists 48 D-Index: 83 scientists 49 D-Index: 44 scientists 50 D-Index: 64 scientists 51 D-Index: 56 scientists 52 D-Index: 50 scientists 53 D-Index: 48 scientists 54 D-Index: 58 scientists 55 D-Index: 52 scientists 56 D-Index: 48 scientists 57 D-Index: 42 scientists 58 D-Index: 34 scientists 59 D-Index: 42 scientists 60 D-Index: 37 scientists 61 D-Index: 42 scientists 62 D-Index: 44 scientists 63 D-Index: 22 scientists 64 D-Index: 33 scientists 65 D-Index: 29 scientists 66 D-Index: 23 scientists 67 D-Index: 29 scientists 68 D-Index: 24 scientists 69 D-Index: 19 scientists 70 D-Index: 34 scientists 71 D-Index: 26 scientists 72 D-Index: 19 scientists 73 D-Index: 18 scientists 74 D-Index: 19 scientists 75 D-Index: 14 scientists 76 D-Index: 19 scientists 77 D-Index: 8 scientists 78 D-Index: 18 scientists 79 D-Index: 16 scientists 80 D-Index: 12 scientists 81 D-Index: 17 scientists 82 D-Index: 11 scientists 83 D-Index: 16 scientists 84 D-Index: 7 scientists 85 D-Index: 9 scientists 86 D-Index: 8 scientists 87 D-Index: 6 scientists 88 D-Index: 6 scientists 89 D-Index: 7 scientists 90 D-Index: 10 scientists 91 D-Index: 4 scientists 92 D-Index: 4 scientists 93+ D-Index: 100 scientists
30 D-Index 93+

This scientist: 34 D-Index — 20th percentile

20% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 93 D-Index or more.

Overview

David Emerson is a researcher affiliated with the Rutherford Appleton Laboratory in the United Kingdom. Their primary field of study is Engineering, with significant contributions across various specialized subfields.

The subfields in which Emerson has focused include:

  • Computational Mechanics
  • Aerospace Engineering
  • Nuclear and High Energy Physics
  • Applied Mathematics
  • Biomedical Engineering

Emerson's research topics encompass a diverse range of subjects primarily centered around fluid dynamics and computational modeling. Key areas of work include:

  • Fluid Dynamics and Turbulent Flows
  • Fluid Dynamics Simulations and Interactions
  • Computational Fluid Dynamics and Aerodynamics
  • Laser-Plasma Interactions and Diagnostics
  • Gas Dynamics and Kinetic Theory
  • Lattice Boltzmann Simulation Studies
  • Combustion and flame dynamics

Their recent papers demonstrate a focus on turbulence, computational fluid dynamics, and laser-plasma accelerator research. Selected publications include:

  • "On the turbulence amplification in shock-wave/turbulent boundary layer interaction" (2020), Journal of Fluid Mechanics
  • "An iterative machine-learning framework for RANS turbulence modeling" (2021), International Journal of Heat and Fluid Flow
  • "An unstructured adaptive mesh refinement approach for computational fluid dynamics of reacting flows" (2022), Journal of Computational Physics
  • "A hybrid approach to couple the discrete velocity method and Method of Moments for rarefied gas flows" (2020), Journal of Computational Physics
  • "All-Optical GeV Electron Bunch Generation in a Laser-Plasma Accelerator via Truncated-Channel Injection" (2023), Physical Review Letters

Frequent collaborators in Emerson's research include:

  • Charles Moulinec
  • Wendi Liu
  • Alex Skillen
  • Stephen Longshaw
  • Jian Fang

Emerson's work is frequently published in several venues with multiple contributions, including:

  • Zenodo (CERN European Organization for Nuclear Research)
  • arXiv (Cornell University)
  • Computers & Fluids
  • Journal of Computational Physics
  • Microfluidics and Nanofluidics

Best Publications

  • Modes of reaction front propagation from hot spots

    X.J. Gu;D.R. Emerson;D. Bradley

  • Velocity boundary condition at solid walls in rarefied gas calculations

    Duncan A. Lockerby;Jason M. Reese;David R. Emerson;Robert W. Barber

  • A high-order moment approach for capturing non-equilibrium phenomena in the transition regime

    Xiao-Jun Gu;David R. Emerson

  • Lattice Boltzmann simulation of rarefied gas flows in microchannels

    Yonghao Zhang;Rongshan Qin;David R. Emerson

  • Continuous cell washing and mixing driven by an ultrasound standing wave within a microfluidic channel

    Jeremy J. Hawkes;Robert W. Barber;David R. Emerson;W. Terence Coakley

  • Challenges in Modeling Gas-Phase Flow in Microchannels: From Slip to Transition

    Robert W. Barber;David R. Emerson

  • Biomimetic design of microfluidic manifolds based on a generalised Murray's law

    David R. Emerson;Krzysztof Cieślicki;Xiaojun Gu;Robert W. Barber

  • Capturing Knudsen layer phenomena using a lattice Boltzmann model.

    Yong-Hao Zhang;Xiao-Jun Gu;Robert W. Barber;David R. Emerson

  • Amplified Pressure Waves During Autoignition: Relevance to CAI Engines

    D. Bradley;C. Morley;X. J. Gu;D. R. Emerson

  • A computational strategy for the regularized 13 moment equations with enhanced wall-boundary conditions

    X. J. Gu;D. R. Emerson

  • Theory and numerical modeling of turbulent gas-particle flows and combustion

    Unknown

  • Numerical and experimental study of a droplet-based PCR chip

    S. Mohr;Yonghao Zhang;Alexandra MacAskill;P.J.R. Day

  • INVESTIGATION OF HEAT AND MASS TRANSFER IN A LID-DRIVEN CAVITY UNDER NONEQUILIBRIUM FLOW CONDITIONS

    Benzi John;Xiao-Jun Gu;David R. Emerson

  • Optimal design of microfluidic networks using biologically inspired principles

    Robert W. Barber;David R. Emerson

  • Velocity slip in microscale cylindrical Couette flow: the Langmuir model

    R.S. Myong;Jason Reese;Robert W. Barber;David Emerson

  • On the turbulence amplification in shock-wave/turbulent boundary layer interaction

    Jian Fang;Aleksandr A. Zheltovodov;Yufeng Yao;Charles Moulinec

  • The Influence Of Knudsen Number On The Hydrodynamic Development Length Within Parallel Plate Micro-channels

    R.W. Barber;D.R. Emerson

  • Gas flow in microchannels - a Lattice Boltzmann method approach

    Y. H. Zhang;R. S. Qin;Y. H. Sun;R. W. Barber

  • Lattice Boltzmann models for nonequilibrium gas flows

    Gui-Hua Tang;Yong-Hao Zhang;David R. Emerson

  • Isothermal slip flow over curved surfaces

    R.W. Barber;Y. Sun;X.J. Gu;D.R. Emerson

  • Inverted velocity profiles in rarefied cylindrical Couette gas flow and the impact of the accommodation coefficient

    Sun Yuhong;Robert W. Barber;David R. Emerson

  • Effects of incomplete surface accommodation on non-equilibrium heat transfer in cavity flow: A parallel DSMC study

    Benzi John;Xiao-Jun Gu;David R. Emerson

  • Nonplanar oscillatory shear flow: From the continuum to the free-molecular regime

    David R. Emerson;Xiao-Jun Gu;Stefan K. Stefanov;Sun Yuhong

  • Analysis of the slip coefficient and defect velocity in the Knudsen layer of a rarefied gas using the linearized moment equations.

    Xiao-Jun Gu;David R. Emerson;Gui-Hua Tang

  • TELEMAC: An efficient hydrodynamics suite for massively parallel architectures

    Charles Moulinec;Christophe Denis;C.-T. Pham;D. Rougé

  • Near-wall efiects in rarefled gas micro-∞ows: some modern hydrodynamic approaches

    Duncan A. Lockerby;Jason M. Reese;David R. Emerson

Frequent Co-Authors

Jason M. Reese
Jason M. Reese University of Edinburgh
Yonghao Zhang
Yonghao Zhang Chinese Academy of Sciences
Gui-Hua Tang
Gui-Hua Tang Xi'an Jiaotong University
Peter R. Girguis
Peter R. Girguis Harvard University
Derek Bradley
Derek Bradley University of Leeds
Eric E. Roden
Eric E. Roden University of Wisconsin–Madison
Frank E. Löffler
Frank E. Löffler University of Tennessee at Knoxville
Katrina J. Edwards
Katrina J. Edwards University of Southern California
Jan P. Amend
Jan P. Amend University of Southern California
Filip J. R. Meysman
Filip J. R. Meysman Delft University of Technology

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