Thermal characterization linked to Thermal energy storage, with source literature and related extracted records kept visible.
74%
Confidence
13
Literature sources
22
Linked simulants
161
Linked properties
Measurement type
Thermal characterization
Application
Thermal energy storage
Primary source
Selective laser melting of partially amorphous regolith analog for ISRU lunar applications
Review state
needs review
grain size distribution and morphology close to the lunar soil, allows the measurement of physical properties like reflectance [ 20, 21 ], thermal conductivity [ 22, 23 ], phase trans - formation...
k and its po- tential for metal extraction. Fig. 1 shows a possible beneficiation route of regolith based on the extraction of oxides by CW laser heating. In a multi-compound material such as regol...
AS) at TU Braunschweig are presented. These investigations are focused on the thermal properties, namely the specific heat capacity and the thermal conductivity. Several specimen of TUBS-M and TUBS...
1 Bespoke microwave heating equipment 3.2 Material properties of lunar regolith 3.2.1 Density (g/cm3) 3.2.2 Heat capacity (J/(kg*K)) 3.2.3 Thermal conductivity (W/m*K) 3.2.4 Electrical conductivit...
ture cycles effectively endowed the composite-cycled samples with significantly superior thermal insulation properties, yielding the lowest thermal conductivity (0.82 W/m K at 25 C, 18.6% lower tha...
a substrate (Fig. 1b), heat dissipation is less effective compared to when a substrate is present. However, under an argon atmosphere, the thermal conductivity of a regolith powder bed is ten times...
INGLUNARSOUTHPOLESIMULANT GINESPALOMARES J 1 Introduction 2 Materials 3 Methods 3.1 Hot stage microscopy 3.2 Particle size distribution 3.3 Laser heating 3.4 Scanning electron microscope (SEM) 4 Ex...
emperature signif- icantly influenced the microstructure and macroscopic properties of these samples. The highest density (~99.7%), highest thermal conductivity (2.65 W m 1 K 1 at 1073 K), and the...
P.-M. Kost, S. Linke, B. Gundlach, A. Lethuillier, J. Baasch, E. Stoll, J. Blum | 2021 | Acta Astronautica
DOI 10.1016/j.actaastro.2021.06.037S. Lim, M. Anand | 2019 | Planetary and Space Science
DOI 10.1016/j.pss.2019.104723L. Jiang, F. Dang, C. Wang, B. Pan, Y. Zhou, C. Zhou | 2026 | Construction and Building Materials
DOI 10.1016/j.conbuildmat.2026.146401T. Eismann, T. Griemsmann, C. Schroeder, N. Emminghaus, P. Weßels, J. Neumann, J. Hermsdorf, B. Grefen, S. Linke, E. Stoll, S. Kaierle | 2024 | Procedia CIRP
DOI 10.1016/j.procir.2024.08.160J.-C. Ginés-Palomares, J. Baasch, S. Stapperfend, L. Facchini, S. Linke, E. Stoll, J. Günster | 2025 | Additive Manufacturing Frontiers
DOI 10.1016/j.amf.2025.200226Y. Liu, X. Zhang, X. Chen, C. Wang, Y. Yu, Y. Jia, W. Yao | 2024 | Crystals
DOI 10.3390/cryst14121022W. Han, Y. Zhou, F. Dang, C. Zhou, L. Ding | 2024 | Advances in Space Research
DOI 10.1016/j.asr.2023.11.027W. Han, Y. Zhou, L. Cai, C. Zhou, L. Ding | 2024 | International Journal of Mining Science and Technology
DOI 10.1016/j.ijmst.2024.06.004A. Pinheiro, Z. Costa, M. Bell, V. Anjos, S. Reis, C. Ray | 2013 | Journal of Non-Crystalline Solids
DOI 10.1016/j.jnoncrysol.2012.09.027S. Basel, C. Safety, C. Engineering | 2025 | Buildings
DOI 10.3390/buildings15142543G. Zanotti, I. Troisi, A. Dottori, M. R. Lavagna | 2024 | Aerospace
DOI 10.3390/aerospace1104029574%
13 sources