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Engineering and Technology

D-Index
47
Citations
9218
World Ranking
4821
National Ranking
1386

Overview

Daniel J. Klingenberg is affiliated with the University of Wisconsin-Madison in the United States. Their research predominantly spans the fields of Engineering and Materials Science, with a notable focus on Biomedical Engineering and Civil and Structural Engineering as key subfields.

The main topics addressed in their work include biofuel production and bioconversion, lignin and wood chemistry, catalysis for biomass conversion, liquid crystal research advancements, Pickering emulsions and particle stabilization, electrowetting and microfluidic technologies, and vibration control and rheological fluids.

Their recent publications include the following papers:

  • Effect of temperature on the rheology of concentrated suspensions containing lignocellulosic biomass particles, 2021, published in Biomass and Bioenergy
  • Rheology and structure of suspensions of spherocylinders via Brownian dynamics simulations, 2021, published in Journal of Rheology
  • Dielectric nanoparticle suspensions for increased electrostatic forces, 2022, published in Journal of Applied Physics

Frequent co-authors collaborating with Klingenberg are:

  • S. Burlawar
  • R.K. Connelly
  • Thatcher W. Root
  • C. Tim Scott
  • Carl J. Houtman

Their work has appeared in multiple publication venues, primarily:

  • Biomass and Bioenergy
  • Journal of Rheology
  • Journal of Applied Physics

Best Publications

  • Magnetorheological fluids: a review

    Juan de Vicente;Daniel J. Klingenberg;Roque Hidalgo-Alvarez

  • Electrorheology : mechanisms and models

    Mukund Parthasarathy;Daniel J. Klingenberg

  • Studies on the steady-shear behavior of electrorheological suspensions

    D. J. Klingenberg;Charles F. Zukoski

  • Dynamic simulation of electrorheological suspensions

    D. J. Klingenberg;Frank van Swol;C. F. Zukoski

  • The small shear rate response of electrorheological suspensions. I. Simulation in the point–dipole limit

    D. J. Klingenberg;Frank van Swol;C. F. Zukoski

  • Magnetorheology in viscoplastic media

    Peter J. Rankin;Andrew T. Horvath;Daniel J. Klingenberg

  • Magnetorheology: Applications and challenges

    Daniel J. Klingenberg

  • The small shear rate response of electrorheological suspensions. II. Extension beyond the point–dipole limit

    D. J. Klingenberg;Frank van Swol;C. F. Zukoski

  • Simulations of fiber flocculation: Effects of fiber properties and interfiber friction

    Christian F. Schmid;Leonard H. Switzer;Daniel J. Klingenberg

  • Rheology of sheared flexible fiber suspensions via fiber-level simulations

    Leonard H. Switzer;Daniel J. Klingenberg

  • Rheology measurements of a biomass slurry: an inter-laboratory study

    Jonathan J. Stickel;Jeffrey S. Knutsen;Matthew W. Liberatore;Wing Luu

  • DYNAMIC SIMULATION OF FLEXIBLE FIBERS COMPOSED OF LINKED RIGID BODIES

    Russell F. Ross;Daniel J. Klingenberg

  • Mason numbers for magnetorheology

    Daniel J. Klingenberg;John C. Ulicny;Mark A. Golden

  • Material Parameters for Electrostriction.

    Yuri M. Shkel;Daniel J. Klingenberg

  • Electro- and magneto-rheology

    Peter J Rankin;John M Ginder;Daniel J Klingenberg

  • Mechanical flocculation in flowing fiber suspensions

    C. F. Schmid;D. J. Klingenberg

  • Large amplitude oscillatory shear of ER suspensions

    Mukund Parthasarathy;Daniel J. Klingenberg

  • Flocculation in simulations of sheared fiber suspensions

    Leonard H. Switzer;Daniel J. Klingenberg

  • Simulation of single fiber dynamics

    Paal Skjetne;Russell F. Ross;Daniel J. Klingenberg

  • Electrostriction of polarizable materials: Comparison of models with experimental data

    Yuri M. Shkel;Daniel J. Klingenberg

  • Dynamic yield stress enhancement in bidisperse magnetorheological fluids

    David Kittipoomwong;Daniel J. Klingenberg;John C. Ulicny

  • Simulation of the dynamic oscillatory response of electrorheological suspensions: Demonstration of a relaxation mechanism

    D. J. Klingenberg

  • Friction between cellulose surfaces measured with colloidal probe microscopy

    Stefan Zauscher;Daniel J Klingenberg

Frequent Co-Authors

Michael D. Graham
Michael D. Graham University of Wisconsin–Madison
Jeffrey F. Morris
Jeffrey F. Morris City College of New York
Charles F. Zukoski
Charles F. Zukoski University of Illinois at Urbana-Champaign
Stefan Zauscher
Stefan Zauscher Duke University
Roque Hidalgo-Alvarez
Roque Hidalgo-Alvarez University of Granada
R. Byron Bird
R. Byron Bird University of Wisconsin–Madison
Stuart L. Cooper
Stuart L. Cooper The Ohio State University
Yoshio Nishi
Yoshio Nishi Stanford University
Jaime A. Ramos
Jaime A. Ramos University of Coimbra

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