World's Best Scientists 2026 revealed!

D-Index & Metrics

Mechanical and Aerospace Engineering

D-Index
51
Citations
8894
World Ranking
1125
National Ranking
456

Materials Science

D-Index
51
Citations
8931
World Ranking
9947
National Ranking
2389

Haluk E. Karaca 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 Haluk E. Karaca 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: 137 publications — 19th percentile

19% of scientists in this discipline score the same or lower.

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

Haluk E. Karaca 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 Haluk E. Karaca 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: 51 D-Index — 69th percentile

69% of scientists in this discipline score the same or lower.

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

Overview

What is he best known for?

The fields of study he is best known for:

  • Composite material
  • Metallurgy
  • Alloy

Haluk E. Karaca mainly investigates Metallurgy, Shape-memory alloy, Pseudoelasticity, Magnetic shape-memory alloy and Composite material. Haluk E. Karaca works in the field of Metallurgy, namely Selective laser melting. His work focuses on many connections between Shape-memory alloy and other disciplines, such as Alloy, that overlap with his field of interest in Temperature cycling.

He has included themes like Precipitation hardening, Compression and Stress in his Pseudoelasticity study. His work carried out in the field of Magnetic shape-memory alloy brings together such families of science as Magnetocrystalline anisotropy and Magnetic energy. His Magnetic energy research incorporates elements of Magnetostriction and Magnetic refrigeration.

His most cited work include:

  • Magnetic Field‐Induced Phase Transformation in NiMnCoIn Magnetic Shape‐Memory Alloys—A New Actuation Mechanism with Large Work Output (288 citations)
  • Magnetic Field‐Induced Phase Transformation in NiMnCoIn Magnetic Shape‐Memory Alloys—A New Actuation Mechanism with Large Work Output (288 citations)
  • Magnetic field and stress induced martensite reorientation in NiMnGa ferromagnetic shape memory alloy single crystals (250 citations)

What are the main themes of his work throughout his whole career to date?

Haluk E. Karaca focuses on Shape-memory alloy, Composite material, Metallurgy, Pseudoelasticity and Nickel titanium. His Shape-memory alloy research is multidisciplinary, incorporating elements of Stress, Temperature cycling, Microstructure, Martensite and Alloy. The Diffusionless transformation research Haluk E. Karaca does as part of his general Martensite study is frequently linked to other disciplines of science, such as Magnetic shape-memory alloy, therefore creating a link between diverse domains of science.

His Composite material study incorporates themes from Characterization, Strain and Crystallite. His study in the fields of Ductility under the domain of Metallurgy overlaps with other disciplines such as Actuator. His biological study spans a wide range of topics, including Porosity, Selective laser melting, Laser, Machining and Stiffness.

He most often published in these fields:

  • Shape-memory alloy (78.03%)
  • Composite material (51.52%)
  • Metallurgy (43.94%)

What were the highlights of his more recent work (between 2017-2021)?

  • Shape-memory alloy (78.03%)
  • Composite material (51.52%)
  • Nickel titanium (28.79%)

In recent papers he was focusing on the following fields of study:

His main research concerns Shape-memory alloy, Composite material, Nickel titanium, Pseudoelasticity and Selective laser melting. Haluk E. Karaca combines subjects such as Martensite, Crystallite, Temperature cycling and Laser, Laser power scaling with his study of Shape-memory alloy. In general Composite material, his work in Microstructure, Compressive strength and Stress is often linked to Fabrication linking many areas of study.

His Pseudoelasticity research focuses on Hysteresis and how it connects with Chemical composition and Atmospheric temperature range. His Selective laser melting study introduces a deeper knowledge of Metallurgy. His study in the field of Titanium alloy is also linked to topics like Actuator and Oxygen.

Between 2017 and 2021, his most popular works were:

  • On the effects of selective laser melting process parameters on microstructure and thermomechanical response of Ni-rich NiTi (79 citations)
  • Achieving superelasticity in additively manufactured NiTi in compression without post-process heat treatment (55 citations)
  • Additive manufacturing of NiTiHf high temperature shape memory alloy (43 citations)

In his most recent research, the most cited papers focused on:

  • Composite material
  • Aluminium
  • Alloy

Haluk E. Karaca mainly focuses on Shape-memory alloy, Composite material, Selective laser melting, Nickel titanium and Pseudoelasticity. His Shape-memory alloy research is included under the broader classification of Metallurgy. His work on Titanium alloy as part of general Metallurgy research is often related to Oxygen and Actuator, thus linking different fields of science.

His study in the field of Microstructure also crosses realms of Fabrication. His research integrates issues of Texture and Temperature cycling in his study of Microstructure. His Nickel titanium research includes themes of Modulus, Stiffness, Porosity and Full recovery.

Best Publications

  • Magnetic Field-Induced Phase Transformation in NiMnCoIn Magnetic Shape-Memory Alloys—A New Actuation Mechanism with Large Work Output

    Haluk E. Karaca;Haluk E. Karaca;Ibrahim Karaman;Burak Basaran;Yang Ren

  • Magnetic field and stress induced martensite reorientation in NiMnGa ferromagnetic shape memory alloy single crystals

    H.E. Karaca;I. Karaman;B. Basaran;Y.I. Chumlyakov

  • On the effects of selective laser melting process parameters on microstructure and thermomechanical response of Ni-rich NiTi

    Soheil Saedi;Narges Shayesteh Moghaddam;Amirhesam Amerinatanzi;Mohammad Elahinia

  • The influence of heat treatment on the thermomechanical response of Ni-rich NiTi alloys manufactured by selective laser melting

    Soheil Saedi;Ali Sadi Turabi;Mohsen Taheri Andani;Mohsen Taheri Andani;Christoph Haberland

  • Effects of nanoprecipitation on the shape memory and material properties of an Ni-rich NiTiHf high temperature shape memory alloy

    H.E. Karaca;S.M. Saghaian;G. Ded;H. Tobe

  • Tool-wear analysis in cryogenic machining of NiTi shape memory alloys: A comparison of tool-wear performance with dry and MQL machining

    Y. Kaynak;H.E. Karaca;R.D. Noebe;I.S. Jawahir

  • Effect of manufacturing parameters on mechanical properties of 316L stainless steel parts fabricated by selective laser melting: A computational framework

    Arman Ahmadi;Reza Mirzaeifar;Narges Shayesteh Moghaddam;Ali Sadi Turabi

  • TEM study of structural and microstructural characteristics of a precipitate phase in Ni-rich Ni–Ti–Hf and Ni–Ti–Zr shape memory alloys

    R. Santamarta;R. Arróyave;J. Pons;A. Evirgen

  • Texture, aging, and superelasticity of selective laser melting fabricated Ni-rich NiTi alloys

    Soheil Saedi;Ali Sadi Turabi;Mohsen Taheri Andani;Mohsen Taheri Andani;Narges Shayesteh Moghaddam

  • Energy harvesting using martensite variant reorientation mechanism in a NiMnGa magnetic shape memory alloy

    I. Karaman;B. Basaran;H. E. Karaca;A. I. Karsilayan

  • Achieving superelasticity in additively manufactured NiTi in compression without post-process heat treatment

    Narges Shayesteh Moghaddam;Soheil Saedi;Amirhesam Amerinatanzi;Alejandro Hinojos

  • NiTiHf-based shape memory alloys

    H. E. Karaca;E. Acar;H. Tobe;S. M. Saghaian

  • Mechanical and shape memory properties of porous Ni 50.1 Ti 49.9 alloys manufactured by selective laser melting.

    Mohsen Taheri Andani;Mohsen Taheri Andani;Soheil Saedi;Ali Sadi Turabi;M.R. Karamooz

  • On the stress-assisted magnetic-field-induced phase transformation in Ni2MnGa ferromagnetic shape memory alloys

    H.E. Karaca;I. Karaman;B. Basaran;D.C. Lagoudas

  • Anisotropic tensile and actuation properties of NiTi fabricated with selective laser melting

    Narges Shayesteh Moghaddam;Sayed Ehsan Saghaian;Amirhesam Amerinatanzi;Hamdy Ibrahim

  • Additive manufacturing of NiTiHf high temperature shape memory alloy

    Mohammad Elahinia;Narges Shayesteh Moghaddam;Amirhesam Amerinatanzi;Soheil Saedi

  • Phase transformation characteristics and mechanical characterization of nitinol synthesized by laser direct deposition

    Pratik R. Halani;Irfan Kaya;Yung C. Shin;Haluk E. Karaca

  • Recoverable stress-induced martensitic transformation in a ferromagnetic CoNiAl alloy

    H.E. Karaca;Ibrahim Karaman;D.C. Lagoudas;H.J. Maier

  • Transformation strains and temperatures of a nickel–titanium–hafnium high temperature shape memory alloy

    Aaron P. Stebner;Glen S. Bigelow;Jin Yang;Dhwanil P. Shukla

  • High strength NiTiHf shape memory alloys with tailorable properties

    S.M. Saghaian;H.E. Karaca;H. Tobe;A.S. Turabi

  • Characterization and modeling of the magnetic field-induced strain and work output in Ni2MnGa magnetic shape memory alloys

    B. Kiefer;H.E. Karaca;D.C. Lagoudas;I. Karaman

Frequent Co-Authors

Y.I. Chumlyakov
Y.I. Chumlyakov National Research Tomsk State University
Mohammad Elahinia
Mohammad Elahinia University of Toledo
Ibrahim Karaman
Ibrahim Karaman Texas A&M University
Hans Jürgen Maier
Hans Jürgen Maier University of Hannover
Ronald D. Noebe
Ronald D. Noebe Glenn Research Center
I.S. Jawahir
I.S. Jawahir University of Kentucky
Yusuf Kaynak
Yusuf Kaynak Marmara University
Dimitris C. Lagoudas
Dimitris C. Lagoudas Texas A&M University
Michael J. Mills
Michael J. Mills The Ohio State University
Ryosuke Kainuma
Ryosuke Kainuma Tohoku University

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