Denis Matha

1.8k total citations · 1 hit paper
27 papers, 811 citations indexed

About

Denis Matha is a scholar working on Ocean Engineering, Aerospace Engineering and Computational Mechanics. According to data from OpenAlex, Denis Matha has authored 27 papers receiving a total of 811 indexed citations (citations by other indexed papers that have themselves been cited), including 23 papers in Ocean Engineering, 18 papers in Aerospace Engineering and 9 papers in Computational Mechanics. Recurrent topics in Denis Matha's work include Wave and Wind Energy Systems (20 papers), Wind Energy Research and Development (18 papers) and Fluid Dynamics and Vibration Analysis (8 papers). Denis Matha is often cited by papers focused on Wave and Wind Energy Systems (20 papers), Wind Energy Research and Development (18 papers) and Fluid Dynamics and Vibration Analysis (8 papers). Denis Matha collaborates with scholars based in Germany, Spain and United States. Denis Matha's co-authors include Jason Jonkman, Po Wen Cheng, David Schlipf, Matti Niclas Scheu, Michael Muskulus, Matthias Hofmann, Climent Molins, Steffen Raach, Matthew A. Lackner and Gordon M. Stewart and has published in prestigious journals such as Philosophical Transactions of the Royal Society A Mathematical Physical and Engineering Sciences, Ocean Engineering and Wind Energy.

In The Last Decade

Denis Matha

26 papers receiving 773 citations

Hit Papers

Dynamics of offshore floating wind turbines—analysis of t... 2011 2026 2016 2021 2011 50 100 150 200 250

Peers — A (Enhanced Table)

Peers by citation overlap · career bar shows stage (early→late) cites · hero ref

Name h Career Trend Papers Cites
Denis Matha Germany 16 503 485 346 126 100 27 811
S. Butterfield United States 10 648 1.3× 584 1.2× 458 1.3× 222 1.8× 111 1.1× 22 1.2k
Cian Desmond Ireland 14 306 0.6× 356 0.7× 172 0.5× 79 0.6× 147 1.5× 31 794
Mahdi Khorasanchi United Kingdom 14 513 1.0× 265 0.5× 419 1.2× 156 1.2× 102 1.0× 34 940
Peng Jin China 16 650 1.3× 289 0.6× 314 0.9× 67 0.5× 99 1.0× 49 825
Markel Peñalba Spain 21 1.0k 2.0× 432 0.9× 464 1.3× 130 1.0× 249 2.5× 59 1.3k
T. Hanson Norway 11 733 1.5× 670 1.4× 542 1.6× 117 0.9× 109 1.1× 16 994
Geir Moe Norway 15 240 0.5× 391 0.8× 576 1.7× 405 3.2× 93 0.9× 52 1.2k
C.F.W. Stock-Williams Netherlands 7 444 0.9× 204 0.4× 142 0.4× 51 0.4× 69 0.7× 9 603
A. Scamardella Italy 16 462 0.9× 173 0.4× 211 0.6× 43 0.3× 34 0.3× 54 726

Countries citing papers authored by Denis Matha

Since Specialization
Citations

This map shows the geographic impact of Denis Matha's research. It shows the number of citations coming from papers published by authors working in each country. You can also color the map by specialization and compare the number of citations received by Denis Matha with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Denis Matha more than expected).

Fields of papers citing papers by Denis Matha

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Denis Matha. Nodes represent research fields, and links connect fields that are likely to share authors. Colored nodes show fields that tend to cite the papers produced by Denis Matha. The network helps show where Denis Matha may publish in the future.

Co-authorship network of co-authors of Denis Matha

This figure shows the co-authorship network connecting the top 25 collaborators of Denis Matha. A scholar is included among the top collaborators of Denis Matha based on the total number of citations received by their joint publications. Widths of edges represent the number of papers authors have co-authored together. Node borders signify the number of papers an author published with Denis Matha. Denis Matha is excluded from the visualization to improve readability, since they are connected to all nodes in the network.

All Works

20 of 20 papers shown
1.
Voßbeck, Michael, et al.. (2024). Approaches and Challenges in FEED and Detailed Design Process of Floating Substructures. Journal of Physics Conference Series. 2875(1). 12028–12028.
2.
Matha, Denis, et al.. (2017). Fabrication and installation constraints for floating wind and implications on current infrastructure and design. Energy Procedia. 137. 299–306. 8 indexed citations
3.
Scheu, Matti Niclas, et al.. (2016). Challenges in using Risk Assessments in Offshore Wind Asset Management. The 26th International Ocean and Polar Engineering Conference. 2 indexed citations
4.
Matha, Denis, et al.. (2016). Comparative Analysis of Industrial Design Methodologies for Fixed-Bottom and Floating Wind Turbines. TECNALIA Publications (Fundación TECNALIA Research & Innovation). 4 indexed citations
5.
Matha, Denis, et al.. (2015). Comparative Levelized Cost of Energy Analysis. Energy Procedia. 80. 108–122. 57 indexed citations
6.
Raach, Steffen, et al.. (2014). Nonlinear model predictive control of floating wind turbines with individual pitch control. OPUS Publication Server of the University of Stuttgart (University of Stuttgart). 4434–4439. 71 indexed citations
7.
Matha, Denis, et al.. (2014). Efficient critical design load case identification for floating offshore wind turbines with a reduced nonlinear model. Journal of Physics Conference Series. 555. 12069–12069. 15 indexed citations
8.
Matha, Denis, et al.. (2013). Variations in Ultimate Load Predictions for Floating Offshore Wind Turbine Extreme Pitching Motions Applying Different Aerodynamic Methodologies. The Twenty-third International Offshore and Polar Engineering Conference. 3 indexed citations
9.
Matha, Denis, et al.. (2013). Simulation of rotor-foundation-interaction on tidal current turbines with computational fluid dynamics. OPUS Publication Server of the University of Stuttgart (University of Stuttgart). 2 indexed citations
10.
Duarte, Tiago, et al.. (2013). Verification of Engineering Modeling Tools for Floating Offshore Wind Turbines. 2 indexed citations
11.
Stewart, Gordon M., et al.. (2013). Simulation-Length Requirements in the Loads Analysis of Offshore Floating Wind Turbines. OSTI OAI (U.S. Department of Energy Office of Scientific and Technical Information). 34 indexed citations
12.
Schlipf, David, et al.. (2013). Nonlinear model predictive control of floating wind turbines. OPUS Publication Server of the University of Stuttgart (University of Stuttgart). 23 indexed citations
13.
Matha, Denis, et al.. (2012). Aerodynamic Inflow Conditions On Floating Offshore Wind Turbine Blades For Airfoil Design Purposes. The Twenty-second International Offshore and Polar Engineering Conference. 3 indexed citations
14.
Matha, Denis, et al.. (2012). Development, Validation and Application of a Curved Vortex Filament Model for Free Vortex Wake Analysis of Floating Offshore Wind Turbines. 50th AIAA Aerospace Sciences Meeting including the New Horizons Forum and Aerospace Exposition. 6 indexed citations
15.
Schlipf, David, et al.. (2012). Reduced nonlinear model of a spar-mounted floating wind turbine. OPUS Publication Server of the University of Stuttgart (University of Stuttgart). 32 indexed citations
16.
Scheu, Matti Niclas, Denis Matha, Matthias Hofmann, & Michael Muskulus. (2012). Maintenance Strategies for Large Offshore Wind Farms. Energy Procedia. 24. 281–288. 83 indexed citations
17.
Scheu, Matti Niclas, Denis Matha, & Michael Muskulus. (2012). Validation of a Markov-based Weather Model for Simulation of O&M for Offshore Wind Farms. 15 indexed citations
18.
Jonkman, Jason & Denis Matha. (2011). Dynamics of offshore floating wind turbines—analysis of three concepts. Wind Energy. 14(4). 557–569. 267 indexed citations breakdown →
19.
Fischer, Tim, et al.. (2011). Final report WP 4.2: Support Structure Concepts for Deep Water Sites: Deliverable D4.2.8 (WP4: offshore foundations and support structures). Research Repository (Delft University of Technology). 22 indexed citations
20.
Matha, Denis, et al.. (2007). Thermodynamic Process Analysis of SOFC/GT Hybrid Cycles. 16 indexed citations

Rankless uses publication and citation data sourced from OpenAlex, an open and comprehensive bibliographic database. While OpenAlex provides broad and valuable coverage of the global research landscape, it—like all bibliographic datasets—has inherent limitations. These include incomplete records, variations in author disambiguation, differences in journal indexing, and delays in data updates. As a result, some metrics and network relationships displayed in Rankless may not fully capture the entirety of a scholar's output or impact.

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