Peer-Reviewed Journal Articles

2026

[44]Ferreira, D.B., Messias, A.P., Dos Santos, D.A., Vorhauer-Huget, N., Tsotsas, E., & Thoméo, J.C. (2026). Characterization of Metarhizium anisopliae spore extraction in a rotary drum using DEM method. Particuology, 109, 59 – 74 doi.org/10.1016/j.partic.2025.12.005
[43]Faber, F., Gruber, S., Foerst, P., Tsotsas, E., & Vorhauer-Huget, N. (2026). Assessment of non-isothermal pore network modeling of freeze-drying using 4D X-ray imaging. Chemical Engineering Journal, 172870 doi.org/10.1016/j.cej.2026.172870
[42]Aamer, E., Faber, F., Bhaskaran, S., Dürr, R., Bettenbrock, K., Kienle, A., & Vorhauer-Huget, N. (2026). Pore Network Model for Study of Biofilm Growth Limitations in Porous Substrata. Transport in Porous Media, 153(1), 12 doi.org/10.1007/s11242-025-02261-6

2025

[41]Ferreira, D., Cunha, L., Vorhauer-Huget, N., Tsotsas, E., & Thoméo, J. (2025). Extraction of spores of Metarhizium anisopliae in a rotary drum. Chemical Engineering and Processing - Process Intensification, 216, 110430 doi.org/10.1016/j.cep.2025.110430
[40]Altaf, H., Miličic, T., Faber, F., Vidaković-Koch, T., Tsotsas, E., & Vorhauer-Huget, N. (2025). Use of Reconstructed Pore Networks for Determination of Effective Transport Parameters of Commercial Ti-Felt PTLs. Processes, 13(4), 943 doi.org/10.3390/pr13040943
[39]Dernbecher, A., Bhaskaran, S., Vorhauer-Huget, N., Seidenbecher, J., Gopalkrishna, S., Briest, L., & Dieguez-Alonso, A. (2025). Investigation on the intra-particle anisotropic transport properties of a beech wood particle during pyrolysis. Particuology, 98, 172 – 190 doi.org/10.1016/j.partic.2025.01.006
[38]Faber, F., Vorhauer-Huget, N., Thomik, M., Gruber, S., Först, P., & Tsotsas, E. (2025). Pore-scale study of coupled heat and mass transfer during primary freeze-drying using an irregular pore network model. Drying Technology, 43(1-2), 162 – 182 doi.org/10.1080/07373937.2024.2407062

2024

[37]Sourya, D.P., Gurugubelli, P.S., Bhaskaran, S., Vorhauer-Huget, N., Tsotsas, E., & Surasani, V.K. (2024). A comparative study on the Lattice Boltzmann Method and the VoF-Continuum method for oxygen transport in the anodic porous transport layer of an electrolyzer. International Journal of Hydrogen Energy, 92, 1091 – 1098 doi.org/10.1016/j.ijhydene.2024.10.340
[36]Gruber, S., Greiner, J., Eppink, A., Thomik, M., Coppens, F., Vorhauer-Huget, N., Tsotsas, E., & Foerst, P. (2024). Pore shape matters – In-situ investigation of freeze-drying kinetics by 4D XCT methods. Food Research International, 193, 114837 doi.org/10.1016/j.foodres.2024.114837
[35]Bhaskaran, S., Miličić, T., Vidaković-Koch, T., Kumar Surasani, V., Tsotsas, E., & Vorhauer-Huget, N. (2024). Model PEM water electrolyzer cell for studies of periodically alternating drainage/imbibition cycles. International Journal of Hydrogen Energy, 77, 1432 – 1442 doi.org/10.1016/j.ijhydene.2024.06.268
[34]Vorhauer-Huget, N., Seidenbecher, J., Bhaskaran, S., Schenkel, F., Briest, L., Gopalkrishna, S., Barowski, J., Dernbecher, A., Hilfert, L., Rolfes, I., & Dieguez-Alonso, A. (2024). Dielectric and physico-chemical behavior of single thermally thick wood blocks under microwave assisted pyrolysis. Particuology, 86, 291 – 303 doi.org/10.1016/j.partic.2023.07.004
[33]Xuan, G., Ebert, M., Rodrigues, S.J., Vorhauer-Huget, N., Lessig, C., & Fond, B. (2024). Multi-point temperature measurements in packed beds using phosphor thermometry and ray tracing simulations. Particuology, 85, 77 – 88 doi.org/10.1016/j.partic.2023.03.015

2023

[32]Rodrigues, S.J., Vorhauer-Huget, N., & Tsotsas, E. (2023). Prediction of effective thermal conductivity of packed beds of polyhedral particles. Powder Technology, 430, 118997 doi.org/10.1016/j.powtec.2023.118997
[31]Thomik, M., Faber, F., Gruber, S., Foerst, P., Tsotsas, E., & Vorhauer-Huget, N. (2023). A Non-Isothermal Pore Network Model of Primary Freeze Drying. Pharmaceutics, 15(8), 2131 doi.org/10.3390/pharmaceutics15082131
[30]Altaf, H., Milicic, T., Vidakovic-Koch, T., Tsotsas, E., Tengattini, A., Kardjilov, N., Arlt, T., Manke, I., & Vorhauer-Huget, N. (2023). Neutron Imaging Experiments to Study Mass Transport in Commercial Titanium Felt Porous Transport Layers. Journal of The Electrochemical Society, 170(6), 064507 doi.org/10.1149/1945-7111/acd7a8
[29]Rodrigues, S.J., Vorhauer-Huget, N., Richter, T., & Tsotsas, E. (2023). Influence of Particle Shape on Tortuosity of Non-Spherical Particle Packed Beds. Processes, 11(1), 3 doi.org/10.3390/pr11010003

2022

[28]Miličić, T., Altaf, H., Vorhauer-Huget, N., Živković, L.A., Tsotsas, E., & Vidaković-Koch, T. (2022). Modeling and Analysis of Mass Transport Losses of Proton Exchange Membrane Water Electrolyzer. Processes, 10(11), 2417 doi.org/10.3390/pr10112417
[27]Gruber, S., Thomik, M., Vorhauer-Huget, N., Hans, L., Tsotsas, E., & Foerst, P. (2022). The Influence of Local Microstructure Inhomogeneities on Local Drying Kinetics during Freeze-Drying. Pharmaceutics, 14(10), 2132 doi.org/10.3390/pharmaceutics14102132
[26]Rodrigues, S.J., Vorhauer-Huget, N., & Tsotsas, E. (2022). Effective thermal conductivity of packed beds made of cubical particles. International Journal of Heat and Mass Transfer, 194, 122994 doi.org/10.1016/j.ijheatmasstransfer.2022.122994
[25]Bhaskaran, S., Pandey, D., Surasani, V.K., Tsotsas, E., Vidakovic-Koch, T., & Vorhauer-Huget, N. (2022). LBM studies at pore scale for graded anodic porous transport layer (PTL) of PEM water electrolyzer. International Journal of Hydrogen Energy, 47(74), 31551 – 31565 doi.org/10.1016/j.ijhydene.2022.07.079

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