Madlen Rogel, M.Sc.


Eißendorfer Str. 40

Building N, Room 1.083

21073 Hamburg

Phone +49 40 30601 - 4627

Mail Madlen Rogel


Biography

Madlen Rogel completed a Bachelor's degree in Energy and Environmental Engineering at Hamburg University of Technology (TUHH), where the final thesis at the Institute of Thermal Process Engineering focused on the processing of industrial tobacco residues using an extraction cascade.

Building on this background, a Master's degree in Renewable Energies was completed at TUHH. The Master's research, conducted at the Institute of Multiphase Flows, dealt with the development of an improved breakup criterion for gas bubbles in stirred reactors.

Currently, Madlen Rogel is pursuing a PhD within the graduate school Climate Informed Engineering, focusing on how climate variations influence the properties of natural raw materials and their processing in energy and biorefinery applications.

Research

The graduate school Climate Informed Engineering at Hamburg University of Technology (TUHH), led by Prof. Dr. Nima Shokri of Institute of Geo-Hydroinformatics, aims to develop engineering solutions that integrate climate data into the design and optimization of diverse systems. As part of this graduate school, this subproject focuses on how climate-driven variations in natural raw materials affect their composition and the efficiency of different extraction processes. Plant species from diverse regions are analyzed to understand how changing climatic conditions influence biomass properties and, consequently, the resulting products.

The project further aims to optimize extraction strategies to enhance yield and quality in ways that are adaptable to different raw materials and climate scenarios. Data analysis and modeling approaches are applied to connect climate information with biomass properties and processing outcomes. Machine learning algorithms are applied to identify correlations between climate data, biomass characteristics, and processing parameters.

Education

Graduate courses:

  • Tutorial on Applications of Fluid Mechanics in Process Engineering (Winter semester 2025/26)

Publications

[192117]
Title: Design guidelines for laser powder bed fusion of triply periodic minimal surface structures for applications in smart reactors.
Written by: Acikgöz, S.; Wigger, C.; Merbach, T.; Kexel, F.; Maiwald, M. I.; Herzog, D.; Kelbassa, I.; Schlüter M.
in: <em>Prog. Addit. Manuf</em>. January (2026).
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DOI: 10.1007/s40964-025-01457-y
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Abstract: Additive Manufacturing (AM), particularly Laser Powder Bed Fusion (PBF-LB/M), has transformed the production of complex metallic structures, enabling applications in smart reactors where enhanced heat and mass transfer at minimal pressure drop are critical. Triply Periodic Minimal Surface (TPMS) structures, such as Gyroid-TPSf and Schwarz-Diamond-TPSf geometries, offer unique advantages due to their high surface area-to-volume ratios, tunable porosity, and zero mean curvature. However, their manufacturability using PBF-LB/M remains underexplored, especially for demanding applications in process engineering that require structural integrity under extreme conditions. This study investigates the design and manufacturability of TPMS structures using 316L stainless steel via PBF-LB/M, focusing on the interaction of the key parameters porosity, unit cell size, and sheet thickness, of which two are independent variables while the third is a dependent variable. Through numerical simulations, experimental validation, and process optimization, practical design guidelines are developed. In this study, the design parameters of Gyroid-TPSf and Schwarz-Diamond-TPSf samples include porosities ranging from 70 to 90% and unit cell sizes from 2 to 20 mm. The results indicate that specifically, at large unit cell sizes (e.g., 20 mm), the decreased curvature radius reduces self-supporting effects, leading to insufficient mechanical stability during printing and resulting in local deformation. Conversely, at small unit cell sizes combined with high porosity levels (e.g., 2 mm and 90%), the sheet thickness becomes critically thin, often below the printable resolution, resulting in incomplete or fragile structures. CFD simulations were validated against experimental data across various volume flow rates. This work enables a knowledge-based selection of a suitable type of TPMS and its design parameters depending on the required flow characteristics in a given process engineering task while maintaining manufacturability. In conclusion, the study underscores the need for further refinement of design and manufacturing processes to fully exploit their benefits.