Matthias Bönisch

About Matthias Bönisch

Matthias Bönisch, With an exceptional h-index of 24 and a recent h-index of 22 (since 2020), a distinguished researcher at Katholieke Universiteit Leuven, specializes in the field of Titanium alloys, Martensite, Thermal expansion, Crystal plasticity, 3DXRD.

His recent articles reflect a diverse array of research interests and contributions to the field:

In-situ synchrotron X-ray diffraction investigation of martensite decomposition in Laser Powder Bed Fusion (L-PBF) processed Ti–6Al–4V

Tailoring microstructure and mechanical properties of an LPBF-processed beta Ti-Nb alloy through post-heat treatments

Tension-compression asymmetry of metastable austenitic stainless steel studied by in-situ high-energy X-ray diffraction

Achieving exceptional wear resistance in a crack-free high-carbon tool steel fabricated by laser powder bed fusion without pre-heating

Zero thermal expansion and high Young's modulus in Ti-Nb achieved by concurrent α ″iso and ω precipitation

Formation of L10 Ordering in FeNi by Mechanical Alloying and Field-Assisted Heat Treatment: Synchrotron XRD Studies

Development of a through-process simulation workflow for spiral pipe forming including evolution of texture and dislocation substructure

Tailoring Heat Treatments for Metals Processed by Laser Powder Bed Fusion

Matthias Bönisch Information

University

Position

FWO senior postdoctoral fellow Department of Materials Engineering

Citations(all)

2439

Citations(since 2020)

1760

Cited By

1445

hIndex(all)

24

hIndex(since 2020)

22

i10Index(all)

27

i10Index(since 2020)

27

Email

University Profile Page

Google Scholar

Matthias Bönisch Skills & Research Interests

Titanium alloys

Martensite

Thermal expansion

Crystal plasticity

3DXRD

Top articles of Matthias Bönisch

In-situ synchrotron X-ray diffraction investigation of martensite decomposition in Laser Powder Bed Fusion (L-PBF) processed Ti–6Al–4V

Metals

2020/12/2

Tailoring microstructure and mechanical properties of an LPBF-processed beta Ti-Nb alloy through post-heat treatments

Hard Materials

2022/5/31

Tension-compression asymmetry of metastable austenitic stainless steel studied by in-situ high-energy X-ray diffraction

International journal of plasticity

2023/11/1

Matthias Bönisch
Matthias Bönisch

H-Index: 21

Marc Seefeldt
Marc Seefeldt

H-Index: 16

Achieving exceptional wear resistance in a crack-free high-carbon tool steel fabricated by laser powder bed fusion without pre-heating

Journal of Materials Science & Technology

2023/9/1

Zero thermal expansion and high Young's modulus in Ti-Nb achieved by concurrent α ″iso and ω precipitation

Scripta Materialia

2023/7/15

Yuliang Zhao
Yuliang Zhao

H-Index: 1

Jun Cheng
Jun Cheng

H-Index: 8

Matthias Bönisch
Matthias Bönisch

H-Index: 21

Formation of L10 Ordering in FeNi by Mechanical Alloying and Field-Assisted Heat Treatment: Synchrotron XRD Studies

Acs Omega

2023/4/10

Development of a through-process simulation workflow for spiral pipe forming including evolution of texture and dislocation substructure

16th International Conference on Computational Plasticity (COMPLAS 2021)

2022/2/28

Tailoring Heat Treatments for Metals Processed by Laser Powder Bed Fusion

2022/2/28

Structural stability and thermal expansion of TiTaNbMoZr refractory high entropy alloy

Journal of Alloys and Compounds

2022/2/5

Matthias Bönisch
Matthias Bönisch

H-Index: 21

Nano-precipitation leading to linear zero thermal expansion over a wide temperature range in Ti22Nb

Scripta Materialia

2021/12/1

Yuliang Zhao
Yuliang Zhao

H-Index: 1

Yang Yang
Yang Yang

H-Index: 9

Matthias Bönisch
Matthias Bönisch

H-Index: 21

A general model for the crystal structure of orthorhombic martensite in Ti alloys

Acta Crystallographica Section B: Structural Science, Crystal Engineering and Materials

2021/10/1

Matthias Bönisch
Matthias Bönisch

H-Index: 21

Nanostructural evolution and deformation mechanisms of severely deformed pure Fe

Metals and Materials International

2021/6

Towards a dislocation-based model for strain path effects in bainitic pipeline steels

2021/3/29

Routes to control diffusive pathways and thermal expansion in Ti-alloys

Scientific reports

2020/2/20

Matthias Bönisch
Matthias Bönisch

H-Index: 21

Mihai Stoica
Mihai Stoica

H-Index: 1

Unravelling anisotropy evolution during spiral pipe forming: a multiscale approach

Procedia manufacturing

2020/1/1

See List of Professors in Matthias Bönisch University(Katholieke Universiteit Leuven)

Co-Authors

academic-engine