Granulometry linked to Benchmarking and comparison, with source literature and related extracted records kept visible.
74%
Confidence
14
Literature sources
40
Linked simulants
198
Linked properties
Measurement type
Granulometry
Application
Benchmarking and comparison
Primary source
Development of Korean Lunar Highland Soil Simulant (KIGAM-L1)
Review state
needs review
) (b) Fig. 9. The process of milling anorthosite (a) disk mill and (b) operation principle of disk mill. Fig. 10. A diagram of crushing and sieving process. Table 5. Olivine and anorthosite mix rat...
the samples, a new lunar regolith simulant named Tongji University-CE5 (TJ-CE5) was developed through a process involving drying, grinding, sieving, and blending by controlling the bulk density and...
ite with olivine, ilmenite, and glasses added). Finally, these experiments could be conducted using more refined regolith particle sizes by sieving the <45 m fraction into finer gradations and dete...
ed excavating volcanic slag from open - pit deposits. Subsequent processing in- cluded crushing, drying at high temperatures, grinding, and sieving to produce the final simulant shown in Figure 1....
ISO 14688-2:(2018), the grain size distribution is presented as percentages of the various grain sizes present in the soil as determined by sieving and sedimentation. For the soil description based...
bution and scanning electron microscopy The particle size distribution (PSD) determinations were performed for EAC-1A as received and after sieving: above a 500 m sieve (P > 500 m), between 100 m...
s, however, a proper comparison is hindered in the < 10 m fraction by the impracticality of getting exact data for this fraction during the sieving of the Apollo samples 15.The distribution of the...
(c) of Figure 2), can be found. Also, the particle morphology is mostly irregular and characterized by sharp edges. Through the subsequent sieving process, the largest particle fraction was removed...
H. Fisher, J. Patzwald, T. Griemsmann, L. Overmeyer, E. Stoll | 2026 | Advances in Space Research
DOI 10.1016/j.asr.2026.05.036W. Lu, Y. Shi, X. Xue, G. Cheng, H. Li | 2026 | Polymers
DOI 10.3390/polym18080998E. Facility, U. Oxfordshire, E. Team, U. Bay, E. Computing, U. Pontypridd, U. Cornwall, I. Pelton, I. Toklu, C. Zhang, P. Cafaro, I. Bari | 2024 | Frontiers in Space Technologies
DOI 10.3389/frspt.2024.1510635J.-C. Ginés-Palomares, M. Fateri, T. Schubert, L. D. P. d’Ambelle, S. Simon, G. J. G. Gluth, J. Günster, A. Zocca | 2023 | Scientific Reports
DOI 10.1038/s41598-023-50391-yV. S. Engelschiøn, S. R. Eriksson, A. Cowley, M. Fateri, A. Meurisse, U. Kueppers, M. Sperl | 2020 | Scientific Reports
DOI 10.1038/s41598-020-62312-4P. Nieke, J. Kita, M. Häming, R. Moos | 2019 | Materials
DOI 10.3390/ma12030487F. Alberquilla, J. Martínez-Frías, V. García-Baonza, R. Lunar | 2022 | Scientific Reports
DOI 10.1038/s41598-022-20960-8L. Windisch, S. Linke, M. Jütte, J. Baasch, A. Kwade, E. Stoll, C. Schilde | 2022 | Materials
DOI 10.3390/ma15238561B. Turapov, G. Kalácska, R. Keresztes | 2025 | Defect and Diffusion Forum
DOI 10.4028/p-it6tslG.-E. Battsengel, N. Melkoumian, D. Harvey, R. Akmeliawati | 2026 | Geosciences
DOI 10.3390/geosciences16060219M. Kallerud, B. Nguyen, T. Paladin, A. Wilson | 1970 | Proceedings of the Wisconsin Space Conference
DOI 10.17307/wsc.v0i0.90G. Zanotti, I. Troisi, A. Dottori, M. R. Lavagna | 2024 | Aerospace
DOI 10.3390/aerospace1104029574%
14 sources