All Stories

  1. Enhancement in heat transfer due to hybrid nanoparticles in MHD flow of Brinkman-type fluids using Caputo fractional derivatives
  2. Fractional Model for the Flow of Brinkman-Type Fluid with Mass Transfer
  3. Intensification in heat transfer due to hybrid nanoparticles embedded in sodium alginate
  4. ANALYSIS OF THE FLOW OF BRINKMAN-TYPE NANOFLUID USING GENERALIZED FOURIER’S AND FICK’S LAWS
  5. Fractional model for MHD flow of Casson fluid with cadmium telluride nanoparticles using the generalized Fourier’s law
  6. A Fractal-Fractional Model for the MHD Flow of Casson Fluid in a Channel
  7. Analysis of Silver Nanoparticles in Engine Oil: Atangana–Baleanu Fractional Model
  8. Proceedings of the 6th International Conference on Fundamental and Applied Sciences
  9. A new model of fractional Casson fluid based on generalized Fick’s and Fourier’s laws together with heat and mass transfer
  10. MATHEMATICAL AND STATISTICAL ANALYSIS OF RL AND RC FRACTIONAL-ORDER CIRCUITS
  11. Concrete Based Jeffrey Nanofluid Containing Zinc Oxide Nanostructures: Application in Cement Industry
  12. A Report On Fluctuating Free Convection Flow Of Heat Absorbing Viscoelastic Dusty Fluid Past In A Horizontal Channel With MHD Effect
  13. A Comprehensive Review on Theoretical Aspects of Nanofluids: Exact Solutions and Analysis
  14. Caputo–Fabrizio fractional derivatives modeling of transient MHD Brinkman nanoliquid: Applications in food technology
  15. Time fractional analysis of electro-osmotic flow of Walters’s-B fluid with time-dependent temperature and concentration
  16. Heat transfer analysis of generalized Jeffery nanofluid in a rotating frame: Atangana–Balaenu and Caputo–Fabrizio fractional models
  17. Enhanced heat transfer in working fluids using nanoparticles with ramped wall temperature: Applications in engine oil
  18. RETRACTED: A new idea of Atangana-Baleanu time fractional derivatives to blood flow with magnetics particles in a circular cylinder: Two phase flow model
  19. Atangana–Baleanu fractional model for the flow of Jeffrey nanofluid with diffusion-thermo effects: applications in engine oil
  20. Atangana–Baleanu fractional model for electro-osmotic flow of viscoelastic fluids
  21. The impact of magnetohydrodynamics and heat transfer on the unsteady flow of Casson fluid in an oscillating cylinder via integral transform: A Caputo–Fabrizio fractional model
  22. Exact solutions for the Atangana-Baleanu time-fractional model of a Brinkman-type nanofluid in a rotating frame: Applications in solar collectors
  23. Heat Transfer Analysis in Ethylene Glycol Based Molybdenum Disulfide Generalized Nanofluid via Atangana–Baleanu Fractional Derivative Approach
  24. Fractional Model of Couple Stress Fluid for Generalized Couette Flow: A Comparative Analysis of Atangana–Baleanu and Caputo–Fabrizio Fractional Derivatives
  25. Two-Phase Fluctuating Flow of Dusty Viscoelastic Fluid Between Non-Conducting Rigid Plates With Heat Transfer
  26. The unsteady flow of generalized hybrid nanofluids: applications in cementitious materials
  27. Effects of Different Shaped Nanoparticles on the Performance of Engine-Oil and Kerosene-Oil: A generalized Brinkman-Type Fluid model with Non-Singular Kernel
  28. A theoretical study on the performance of a solar collector using CeO2 and Al2O3 water based nanofluids with inclined plate: Atangana–Baleanu fractional model
  29. Nanofluid of Grade Two
  30. Hemodynamic Flow in a Vertical Cylinder with Heat Transfer : Two-phase Caputo Fabrizio Fractional Model
  31. Natural convection in polyethylene glycol based molybdenum disulfide nanofluid with thermal radiation, chemical reaction and ramped wall temperature
  32. Entropy Generation in Different Types of Fractionalized Nanofluids
  33. Flow of magnetic particles in blood with isothermal heating: A fractional model for two-phase flow
  34. Convection in ethylene glycol-based molybdenum disulfide nanofluid
  35. INFLUENCE OF A POROUS MEDIUM ON THE HYDROMAGNETIC FREE CONVECTION FLOW OF MICROPOLAR FLUID WITH RADIATIVE HEAT FLUX
  36. Magnetohydrodynamic flow of brinkman-type engine oil based MoS2-nanofluid in a rotating disk with hall effect
  37. On the applications of nanofluids to enhance the performance of solar collectors: A comparative analysis of Atangana-Baleanu and Caputo-Fabrizio fractional models
  38. Fractional model for Nanofluids.
  39. Reply to the Comment by A.M. Abd El-Lateif, A.M. Abdel-Hameid on “Solutions with special functions for time fractional free convection flow of Brinkman-type fluid”
  40. Solutions with Wright Function for Time Fractional Free Convection Flow of Casson Fluid
  41. Exact solutions for free convection flow of generalized Jeffrey fluid: A Caputo-Fabrizio fractional model
  42. Magnetic field effect on blood flow of Casson fluid in axisymmetric cylindrical tube: A fractional model
  43. Exact analysis of MHD flow of a Walters'-B fluid over an isothermal oscillating plate embedded in a porous medium
  44. A comparative study of Atangana-Baleanu and Caputo-Fabrizio fractional derivatives to the convective flow of a generalized Casson fluid
  45. UNSTEADY MHD FLOW OF SECOND-GRADE FLUID OVER AN OSCILLATING VERTICAL PLATE WITH ISOTHERMAL TEMPERATURE IN A POROUS MEDIUM WITH HEAT AND MASS TRANSFER BY USING THE LAPLACE TRANSFORM TECHNIQUE
  46. Comparison and analysis of the Atangana–Baleanu and Caputo–Fabrizio fractional derivatives for generalized Casson fluid model with heat generation and chemical reaction
  47. MHD flow of micropolar fluid past an oscillating infinite vertical plate embedded in porous media
  48. Heat and mass transfer phenomena in the flow of Casson fluid over an infinite oscillating plate in the presence of first-order chemical reaction and slip effect
  49. A modern approach of Caputo–Fabrizio time-fractional derivative to MHD free convection flow of generalized second-grade fluid in a porous medium
  50. Application of Caputo-Fabrizio derivatives to MHD free convection flow of generalized Walters’-B fluid model
  51. Solutions with special functions for time fractional free convection flow of Brinkman-type fluid