Electrical characterization linked to Thermal processing, with source literature and related extracted records kept visible.
74%
Confidence
8
Literature sources
22
Linked simulants
162
Linked properties
Measurement type
Electrical characterization
Application
Thermal processing
Primary source
Numerical modelling of the microwave heating behaviour of lunar regolith
Review state
needs review
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 conductivity (S/m) 3.2.5 Relative permittivity (i) and relative permeability (i...
, augite and olivine. The glass transition and crystallization temperatures of NEU Mars-1 were 547.8 and 795.7 C, respectively. The complex dielectric constant, magnetic conductivity (0.99 1.045),...
oi:10.1016/j.conbuildmat.2024.136599 1-s2.0-S0950061824017409 10.1016/j.conbuildmat.2024.136599 S0950-0618(24)01740-9 Temperature-dependent dielectric properties of the Korean lunar simulant and il...
63. It was crushed in an impact mill with a resulting median particle size 85.9 m, similar to Apollo soils. Bulk density, shear resistance, complex permittivity, and reflectance spectra were also s...
rowaves needs regolith simulants with electromagnetic properties similar to the lunar regolith. This document deals with the measurement of complex permittivity and dielectric loss tangent of the a...
sity of 13%. A high temperature gradient is generated during microwave sintering, resulting in micro cracking of the samples. 6 The complex dielectric properties of lunar simulants make it difficul...
ttained by short duration microwave heating, which continues to show promise due to its quickness, leveraged by the simulant's advantageous microwave absorption properties. Future research is neede...
e, the test evaluated the relative permittivities (real and imaginary parts). Because in Figure 11, which represents the regolith data, the loss tangent is expressed instead of the imaginary part o...
Y.-J. Kim, H. Jin, J. Lee, B.-H. Ryu, H.-S. Shin | 2024 | Construction and Building Materials
DOI 10.1016/j.conbuildmat.2024.136599Y. Zheng, S. Wang, Z. Ouyang, Y. Zou, J. Liu, C. Li, X. Li, J. Feng | 2009 | Advances in Space Research
DOI 10.1016/j.asr.2008.07.006D. R. Somolinos, B. P. Gallardo, J. C. Estévez, N. Stepanyan, A. Cowley, A. A. Marugán, D. P. Martínez | 2024 | Materials
DOI 10.3390/ma17153633X. Zhang, M. Khedmati, Y. Kim, H. Shin, J. Lee, Y. Kim, B. Cui | 2019 | Journal of the American Ceramic Society
DOI 10.1111/jace.16808R. A. Zina, T. Grippi, J. R. Valdes | 2025 | Advances in Space Research
DOI 10.1016/j.asr.2025.01.042G. Zanotti, I. Troisi, A. Dottori, M. R. Lavagna | 2024 | Aerospace
DOI 10.3390/aerospace1104029574%
8 sources