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Journal articles on the topic 'Analysis of geological materials'

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1

ASADA, Kazuo, and Yasuhiro TAN. "Analysis of penetration into Geological Materials." Transactions of the Japan Society of Mechanical Engineers Series A 58, no. 556 (1992): 2375–80. http://dx.doi.org/10.1299/kikaia.58.2375.

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2

McGee, James J., and Klaus Keil. "Application of Electron Probe Microanalysis to the Study of Geological and Planetary Materials." Microscopy and Microanalysis 7, no. 2 (2001): 200–210. http://dx.doi.org/10.1007/s100050010081.

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Abstract The impact of electron probe microanalysis on the study of geological and planetary materials has been tremendous. Electron microprobes evolved into routine analytical instruments in geological research laboratories as instrument capabilities improved and applications to geologic/planetary materials expanded. The contributions of electron probe microanalysis to the characterization of minerals, both terrestrial and extraterrestrial, and to other significant geological research, such as light element analysis, trace element analysis, and element mapping, is described.
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3

Mishchuk, Yevhen. "Analysis of common geological models of materials." Gіrnichі, budіvelnі, dorozhnі ta melіorativnі mashini, no. 104 (December 19, 2024): 5–14. https://doi.org/10.32347/gbdmm.2024.104.0101.

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The paper analyzes the physical models used in the study of the stressed state of geological rocks. Common physics models include: 1) soil and foam; 2) pseudo-tensor; 3) geological; 4) Schwer-Murray; 5) continuous surface of the cap; 6) Mohr-Coulomb; 6) connected stone. A graphical representation of the description of the soil and foam model is given. At the initial stages of loading with small deformations, the model behaves linearly elastically. When the level of deformations increases, it turns into a non-linear model. The graphical presentation of the pseudo-tensor model reflects two modes
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4

Kis, V. K., M. Pósfai, J. L. Lábár, and I. Dódony. "Electron diffraction analysis of amorphous geological materials." Acta Crystallographica Section A Foundations of Crystallography 63, a1 (2007): s274—s275. http://dx.doi.org/10.1107/s0108767307093749.

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5

Hiscock, Matt, Simon Burgess, John Zhang, and Alexandra Stavropoulou. "Automated Feature Analysis of Complex Geological Materials." Microscopy and Microanalysis 25, S2 (2019): 2468–69. http://dx.doi.org/10.1017/s1431927619013072.

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6

Halden, Norman M. "High-energy proton beam analysis of geological materials." Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 77, no. 1-4 (1993): 399–404. http://dx.doi.org/10.1016/0168-583x(93)95571-l.

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7

Paque, J. M., R. Browning, P. L. King, and P. Pianetta. "Quantitative Analysis Of X-Ray Images From Geological Materials." Proceedings, annual meeting, Electron Microscopy Society of America 48, no. 2 (1990): 244–45. http://dx.doi.org/10.1017/s042482010013482x.

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Geological samples typically contain many minerals (phases) with multiple element compositions. A complete analytical description should give the number of phases present, the volume occupied by each phase in the bulk sample, the average and range of composition of each phase, and the bulk composition of the sample. A practical approach to providing such a complete description is from quantitative analysis of multi-elemental x-ray images.With the advances in recent years in the speed and storage capabilities of laboratory computers, large quantities of data can be efficiently manipulated. Comm
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8

Langmuir, C. H. "Analysis of geological materials by direct current plasma spectrometry." Chemical Geology 70, no. 1-2 (1988): 176. http://dx.doi.org/10.1016/0009-2541(88)90714-0.

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9

Borsier, Michel. "Automated analysis of geological materials: What, how and why?" Chemical Geology 95, no. 1-2 (1992): 93–98. http://dx.doi.org/10.1016/0009-2541(92)90046-8.

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10

Flude, Stephanie, Michael Haschke, and Michael Storey. "Application of benchtop micro-XRF to geological materials." Mineralogical Magazine 81, no. 4 (2017): 923–48. http://dx.doi.org/10.1180/minmag.2016.080.150.

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AbstractRecent developments in X-ray optics have allowed the development of a range of commercially available benchtop micro-XRF (μ-XRF) instruments that can produce X-ray spot sizes of 20–30 μm on the sample, allowing major- and trace-element analysis on a range of sample types and sizes with minimal sample preparation. Such instruments offer quantitative analysis using fundamental parameter based 'standardless' quantification algorithms. The accuracy and precision of this quantitative analysis on geological materials, and application of micro-XRF to wider geological problems is assessed usin
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11

Gou, Gloria Rui, Wei Fang, Lewis T. O. Cheung, Lincoln Fok, Alice S. Y. Chow, and Ke Zhang. "Understanding the Determinants of Geologically Responsible Behaviour among Geotourists: A Multi-Destination Analysis." Tourism and Hospitality 5, no. 1 (2024): 1–15. http://dx.doi.org/10.3390/tourhosp5010001.

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This study explores the drivers of geologically responsible behaviour among geotourists in three geoparks in the Greater China region: Danxiashan UNESCO Global Geopark in southern China, Hong Kong UNESCO Global Geopark, and Yehliu Geopark in northern Taiwan. On-site questionnaire surveys were conducted, collecting over 800 respondents in these geoparks, and structural equation modelling was applied for our analysis. The findings reveal that geologically responsible behaviour is positively associated with environmentally responsible attitudes, in line with some previous research. Notably, place
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12

Putri, Helen Dwi, Budhi Setiawan, and Yogie Zulkurnia Rochmana. "Geological History Reconstruction using Stratigraphic Analysis: A Case Study of Kampung Baru, West Sumatra." Journal of Earth and Marine Technology (JEMT) 4, no. 2 (2024): 221–29. http://dx.doi.org/10.31284/j.jemt.2024.v4i2.5729.

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The reconstruction of geological history includes the development of rocks and volcanic deposits on a depositional pattern consisting of various types of sedimentary materials accumulated over a long time, which involves depositional changes. Depositional changes require geological comprehension in analyzing and understanding the geological processes involved in their evolution. For this reason, stratigraphic analysis is a very relevant approach to discussing rock layers, including significant environmental changes during their geologic history. The purpose of this research is to find out the
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13

Ball, Matthew R., Richard J. M. Taylor, Joshua F. Einsle, Fouzia Khanom, Christelle Guillermier, and Richard J. Harrison. "Helium ion microscope – secondary ion mass spectrometry for geological materials." Beilstein Journal of Nanotechnology 11 (October 2, 2020): 1504–15. http://dx.doi.org/10.3762/bjnano.11.133.

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The helium ion microscope (HIM) is a focussed ion beam instrument with unprecedented spatial resolution for secondary electron imaging but has traditionally lacked microanalytical capabilities. With the addition of the secondary ion mass spectrometry (SIMS) attachment, the capabilities of the instrument have expanded to microanalysis of isotopes from Li up to hundreds of atomic mass units, effectively opening up the analysis of all natural and geological systems. However, the instrument has thus far been underutilised by the geosciences community, due in no small part to a lack of a thorough u
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14

EBIHARA, Mitsuru, Akihiko NEMOTO, and Hideo AKAIWA. "Epithermal neutron activation analysis of geological materials for trace indium." Analytical Sciences 4, no. 2 (1988): 169–73. http://dx.doi.org/10.2116/analsci.4.169.

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15

Inglethorpe, S., and D. J. Morgan. "Detection of ammonium in geological materials by evolved gas analysis." Journal of Thermal Analysis 40, no. 1 (1993): 29–40. http://dx.doi.org/10.1007/bf02546553.

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16

DingShuai, XUE, LI WenJun, WANG Jing, JIA LiHui, MAO YaJing, and SU BenXun. "Advances in analysis for cobalt and nickel in geological materials." Acta Petrologica Sinica 39, no. 4 (2023): 1217–32. http://dx.doi.org/10.18654/1000-0569/2023.04.18.

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17

Karimova, T. A., and G. L. Buchbinder. "ANALYSIS OF GEOLOGICAL MATERIALS BY ICP-AES WITH CALIBRATION IN CONCENTRATION RATIO." Industrial laboratory. Diagnostics of materials 85, no. 6 (2019): 24–29. http://dx.doi.org/10.26896/1028-6861-2019-85-6-24-29.

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A method of calibration in relative concentrations (concentration ratio) previously used only in analysis of non-ferrous and ferrous metals was first implemented when performing silicate analysis of geological materials using atomic emission spectrometry with inductively coupled plasma (AES-ICP). Prior to apply the Concentration Calibration Ratio to analysis of geological materials it is necessary to consider and address the following problems: some of the components are not determined by ICP-AES, matrix elements may be present in different oxidation states. Sample preparation of ores and geol
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18

Alves, Carlos, and Jorge Sanjurjo-Sánchez. "Geological Materials as Sources of Rn Emissions." Proceedings 24, no. 1 (2019): 17. http://dx.doi.org/10.3390/iecg2019-06193.

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Geological materials are a potential source of pollutants, among which there is the radioactive isotope 222Rn, which result of radioactive decay of daughter radionuclides of uranium (238U). It is emitted as a gas that it can be released to the air to enter the human body, with the potential to affect internal organs (mostly the lungs) by alpha particles production. While the presence of uranium in the materials is a necessary condition for the production of Rn-222, the amount of gas emitted by the material depends on other characteristics that allow the migration of the gas. The main aim of th
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19

Gabdullin, R. R., O. N. Biryukova, and R. A. Akhmedov. "FEATURES OF GEOLOGICAL STRUCTURE AND PETROLEUM OIL POTENTIAL OF VICHULOVSKAYA FORMATION WITHIN VOSTOCHNO-KAMENNYI DEPOSIT (WESTERN SIBERIA)." Moscow University Bulletin. Series 4. Geology, no. 2 (April 28, 2018): 33–39. http://dx.doi.org/10.33623/0579-9406-2018-2-33-39.

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The analysis of geological and geophysical materials in order to study the peculiarities of the geological structure of the Vikulov Formation within the Vodorazdel license area was carried out. The presented factual material makes it possible to characterize the geological structure of the investigated area more informatively and for interpreting of seismic materials. The analysis of geological information (GIS and test results) confirms the approved water–oil contact (WOC) level in the investigated section of the deposit, which makes it possible to recalculate its reserves.
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20

Kuchay, O. A. "The horizontal displacements in active fault zones in Central Asia based on data on the mechanisms of earthquake foci." Russian Journal of geophysical technologies, no. 3 (February 4, 2021): 31–37. http://dx.doi.org/10.18303/2619-1563-2020-3-31.

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The directions of horizontal displacement along active geological faults in Central Asia are determined based on data on the mechanisms of earthquake foci that occurred near these faults. The results were compared with geologic materials. In eight cases out of ten, the analysis of calculating the direction of displacement obtained from seismological materials is consistent with the kinematics of faults.
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21

Johnson, R. G. "X-Ray Fluorescence Analysis of Geological Materials Using Rousseau's Fundamental Algorithm." Advances in X-ray Analysis 30 (1986): 105–12. http://dx.doi.org/10.1154/s0376030800021200.

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The analysis of many types of geological samples by X- ray fluorescence (XRF) spectroscopy has become routine. For example, the analysis of major elements in silicate rocks is not a problem because of the large number of standard reference materials available, and because of the benefits of the fusion preparation. Even simple linear regression analysis provides accurate results when standards and samples are similar.
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22

Morris, Joseph, and Scott Johnson. "Dynamic simulations of geological materials using combined FEM/DEM/SPH analysis." Geomechanics and Geoengineering 4, no. 1 (2009): 91–101. http://dx.doi.org/10.1080/17486020902767354.

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23

Barefield, James E., Elizabeth J. Judge, Keri R. Campbell, et al. "Analysis of geological materials containing uranium using laser-induced breakdown spectroscopy." Spectrochimica Acta Part B: Atomic Spectroscopy 120 (June 2016): 1–8. http://dx.doi.org/10.1016/j.sab.2016.03.012.

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24

Mosbah, M., J. Tirira, R. Clocchiatti, J. Gosset, and P. Massiot. "Hydrogen microdetermination in geological materials using elastic recoil detection analysis (ERDA)." Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 49, no. 1-4 (1990): 340–44. http://dx.doi.org/10.1016/0168-583x(90)90273-w.

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25

Das, N. R., D. Basu, and S. N. Bhattacharyya. "Alpha-particle activation analysis of traces of niobium in geological materials." International Journal of Radiation Applications and Instrumentation. Part A. Applied Radiation and Isotopes 38, no. 11 (1987): 939–42. http://dx.doi.org/10.1016/0883-2889(87)90264-4.

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26

Liu, Fang, Mingxing Ling, Zhaofeng Zhang, et al. "Stable cerium isotope analysis of geological materials by MC-ICP-MS." Chemical Geology 637 (October 2023): 121664. http://dx.doi.org/10.1016/j.chemgeo.2023.121664.

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27

Chrispim, Zélia Maria Peixoto, Luciana Lezira Pereira Almeida, Izabel de Souza Ramos, Maria da Gloria Alves, and Jonas Alexandre. "Characterization of Geological Materials of São Fidélis/BR for Slip Use." Materials Science Forum 727-728 (August 2012): 710–14. http://dx.doi.org/10.4028/www.scientific.net/msf.727-728.710.

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The present work was performed in São Fidélis/BR, technologically characterizing four types of soil. Aiming to use them in artistic ceramic, some of their properties were determined, such as the analysis of color after burn. In order to do so, essays regarding their granulometry (sifting and sedimentation), specific gravity, chemical analysis of xray fluorescence, mineralogical identification through x-ray diffraction (DRX), differential thermal analysis (ATD), thermal gravimetric analysis (TG) and scanning electron microscopy (MEV) were carried out in the Laboratories of Universidade Estadual
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28

Georgiev, Svetoslav V., and Lora Bidzhova. "Mercury in geological materials from Bulgaria: Significance, applications, new analytical capabilities, and initial results." Review of the Bulgarian Geological Society 84, no. 3 (2023): 93–96. http://dx.doi.org/10.52215/rev.bgs.2023.84.3.93.

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The chemical properties of mercury (Hg) such as volatility, organic affinity, multiple oxidation states and extreme biotoxicity, determine its various industrial applications, but also health hazard concerns. Mercury data on geologic materials are important for characterizing the main sources and sinks of Hg, for tracking volcanic activity in the geology past, for refining regional and global stratigraphic correlations, and for minimizing anthropogenic mercury emissions. Newly obtained Hg and CHNS analyzers available at the Geological Institute at the Bulgarian Academy of Sciences, facilitate
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29

Dubey Sonali, Kumar Rohit, Rai Abhishek K., and Rai Awadhesh K. "Laser Induced breakdown spectroscopy (LIBS): Application to geological materials." Optics and Spectroscopy 130, no. 13 (2022): 2053. http://dx.doi.org/10.21883/eos.2022.13.53989.1003-21.

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Laser-induced breakdown spectroscopy (LIBS) is emerging as an analytical tool for investigating geological materials. The unique abilities of this technique proven its potential in the area of geology. Detection of light elements, portability for in-field analysis, spot detection, and no sample preparation are some features that make this technique appropriate for the study of geological materials. The application of the LIBS technique has been tremendously developed in recent years. In this report, results obtained from previous and most recent studies regarding the investigation of geologica
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30

Читалин, А. Ф. "STRUCTURAL ANALYSIS AND TECTONOPHYSICAL MODELING WHEN SEARCHING FOR HIDDEN MINERALIZATION." Prospect & protection of mineral resources, no. 1 (July 3, 2024): 58–68. http://dx.doi.org/10.53085/0034-026x_2024_1_58.

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Показывается необходимость комплексного структурного анализа на основе полевого геолого-структурного картирования для разработки обоснованных геолого-структурных моделей и прогнозирования скрытого оруденения. Геолого-структурные модели являются основой прогнозно-поисковых, учитывающих также геологические, геохимические и геофизические данные, результаты интерпретации материалов дистанционного зондирования, автоматизированного линеаментного анализа. Обосновывается важность тектонофизического аналогового моделирования для интерпретации изученных природных структур и прогноза структурных ловушек,
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31

Dubey, Sonali, Rohit Kumar, Abhishek K. Rai, and Awadhesh K. Rai. "Laser Induced Breakdown Spectroscopy (LIBS): Application to Geological Materials-=SUP=-*-=/SUP=-." Оптика и спектроскопия 129, no. 10 (2021): 1336. http://dx.doi.org/10.21883/os.2021.10.51502.1003-21.

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Laser-induced breakdown spectroscopy (LIBS) is emerging as an analytical tool for investigating geological materials. The unique abilities of this technique proven its potential in the area of geology. Detection of light elements, portability for in-field analysis, spot detection, and no sample preparation are some features that make this technique appropriate for the study of geological materials. The application of the LIBS technique has been tremendously developed in recent years. In this report, results obtained from previous and most recent studies regarding the investigation of geologica
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32

Tao, Yunchao. "Analysis of Foundation Pit Design of Metro Station in Complex Environment." Advances in Materials Science and Engineering 2021 (December 2, 2021): 1–9. http://dx.doi.org/10.1155/2021/2995380.

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The complex engineering geological conditions and the surrounding environmental conditions of the existing subway lines and adjacent buildings have significantly deepened the difficulty of metro station foundation pit design and construction. Based on the foundation pit project of Luboyuan Station of Nanjing Metro Line 9, this study chooses a reasonable foundation pit support design scheme to carry out related research by analyzing the site geological environmental conditions. Through the analysis and evaluation of the engineering geological conditions of the engineering site, the engineering
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33

Tyurin, D. A., and G. M. Kolesov. "Application of mass-spectrometry for analysis of geological samples as reference materials." Vestnik Otdelenia nauk o Zemle RAN 2, no. 6 (2010): 214–16. http://dx.doi.org/10.2205/2010nz000046.

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34

Qiao, Shujun, Yu Ding, Di Tian, Li Yao, and Guang Yang. "A Review of Laser-Induced Breakdown Spectroscopy for Analysis of Geological Materials." Applied Spectroscopy Reviews 50, no. 1 (2014): 1–26. http://dx.doi.org/10.1080/05704928.2014.911746.

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35

Liu, Xiao-Ming, and Wenshuai Li. "Optimization of lithium isotope analysis in geological materials by quadrupole ICP-MS." Journal of Analytical Atomic Spectrometry 34, no. 8 (2019): 1708–17. http://dx.doi.org/10.1039/c9ja00175a.

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This study develops and optimizes a new method to measure lithium isotope ratios using a single collector quadrupole inductively coupled plasma mass spectrometer (Q-ICP-MS) operated under hot plasma (1550 W) conditions.
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36

Viladkar, M. N., J. Noorzaei, and P. N. Godbole. "Convenient forms of yield criteria in elasto-plastic analysis of geological materials." Computers & Structures 54, no. 2 (1995): 327–37. http://dx.doi.org/10.1016/0045-7949(94)e0199-c.

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37

Lins, J. P., and M. Saiki. "Determination of hafnium and zirconium in geological materials by neutron activation analysis." Journal of Radioanalytical and Nuclear Chemistry 216, no. 2 (1997): 199–201. http://dx.doi.org/10.1007/bf02033778.

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38

Creech, J. B., F. Moynier, and N. Badullovich. "Tin stable isotope analysis of geological materials by double-spike MC-ICPMS." Chemical Geology 457 (May 2017): 61–67. http://dx.doi.org/10.1016/j.chemgeo.2017.03.013.

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39

Wakimoto, Rie, Takaomi Yokoyama, Kazunori Tsukamoto, Koki Kato, and Vernon Robertson. "New EPMA-XRF Integration Allows Rapid Trace Element Analysis of Geological Materials." Microscopy and Microanalysis 26, S2 (2020): 1882–83. http://dx.doi.org/10.1017/s1431927620019698.

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40

Rakovskii, E. E. "Neutron activation method in the analysis of geological materials for noble metals." Journal of Radioanalytical and Nuclear Chemistry Articles 88, no. 1 (1985): 161–70. http://dx.doi.org/10.1007/bf02037315.

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41

Hall, G. E. M., J. E. Vaive, J. A. Coope, and E. F. Weiland. "Bias in the analysis of geological materials for gold using current methods." Journal of Geochemical Exploration 34, no. 2 (1989): 157–71. http://dx.doi.org/10.1016/0375-6742(89)90098-8.

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42

Caughlin, B. L. "Analysis of geological materials for precious metals using plasma atomic fluorescence spectroscopy." Journal of Geochemical Exploration 34, no. 3 (1989): 245–54. http://dx.doi.org/10.1016/0375-6742(89)90115-5.

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43

Willbold, Matthias, and Klaus Peter Jochum. "Multi-Element Isotope Dilution Sector Field ICP-MS: A Precise Technique for the Analysis of Geological Materials and its Application to Geological Reference Materials." Geostandards and Geoanalytical Research 29, no. 1 (2005): 63–82. http://dx.doi.org/10.1111/j.1751-908x.2005.tb00656.x.

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44

LYTVYNIUK, Stanislav, and Sergii PAIUK. "LEGAL AND METHODOLOGICAL ASPECTS OF GEOLOGICAL AND ECONOMIC ASSESSMENT OF MINERAL RESERVES AND RESOURCES IN UKRAINE: STATUS AND PROSPECTS." Visnyk of Taras Shevchenko National University of Kyiv. Geology, no. 4 (103) (2023): 83–89. http://dx.doi.org/10.17721/1728-2713.103.10.

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Practical application analysis of geological and economic assessment (GEA) results, its legal features and methodological support have been provided. Peculiarities associated with different GEA stages, purposes and objects have been considered during the analysis. The current state of geological study and analysis of subsoil use in Ukraine proves the regulatory and practical significance of geological and economic assessment of all stages for various types of special permits. Geological and economic assessment results ensure the State Balance of Mineral Reserves being updated with relevant inf
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45

Bacon, Jeffrey R., Owen T. Butler, Warren R. L. Cairns, et al. "Atomic spectrometry update – a review of advances in environmental analysis." Journal of Analytical Atomic Spectrometry 37, no. 1 (2022): 9–49. http://dx.doi.org/10.1039/d1ja90054d.

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This review covers advances in the analysis of air, water, plants, soils and geological materials by a range of atomic spectrometric techniques including atomic emission, absorption, fluorescence and mass spectrometry.
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46

Butler, Owen T., Warren R. L. Cairns, Jennifer M. Cook, and Christine M. Davidson. "Atomic spectrometry update – a review of advances in environmental analysis." Journal of Analytical Atomic Spectrometry 32, no. 1 (2017): 11–57. http://dx.doi.org/10.1039/c6ja90058e.

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This review covers advances in the analysis of air, water, plants, soils and geological materials by a range of atomic spectrometric techniques including atomic emission, absorption, fluorescence and mass spectrometry.
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47

Butler, Owen T., Warren R. L. Cairns, Jennifer M. Cook, Christine M. Davidson, and Regina Mertz-Kraus. "Atomic spectrometry update – a review of advances in environmental analysis." Journal of Analytical Atomic Spectrometry 33, no. 1 (2018): 8–56. http://dx.doi.org/10.1039/c7ja90059g.

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This review covers advances in the analysis of air, water, plants, soils and geological materials by a range of atomic spectrometric techniques including atomic emission, absorption, fluorescence and mass spectrometry.
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48

Bacon, Jeffrey R., Owen T. Butler, Warren R. L. Cairns, et al. "Atomic spectrometry update – a review of advances in environmental analysis." Journal of Analytical Atomic Spectrometry 35, no. 1 (2020): 9–53. http://dx.doi.org/10.1039/c9ja90060h.

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This review covers advances in the analysis of air, water, plants, soils and geological materials by a range of atomic spectrometric techniques including atomic emission, absorption, fluorescence and mass spectrometry.
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49

Butler, Owen T., Warren R. L. Cairns, Jennifer M. Cook, and Christine M. Davidson. "Atomic spectrometry update – a review of advances in environmental analysis." Journal of Analytical Atomic Spectrometry 31, no. 1 (2016): 35–89. http://dx.doi.org/10.1039/c5ja90061a.

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This review covers advances in the analysis of air, water, plants, soils and geological materials by a range of atomic spectrometric techniques including atomic emission, absorption, fluorescence and mass spectrometry.
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Bacon, Jeffrey R., Owen T. Butler, Warren R. L. Cairns, Jennifer M. Cook, Regina Mertz-Kraus, and Julian F. Tyson. "Atomic Spectrometry Update – a review of advances in environmental analysis." Journal of Analytical Atomic Spectrometry 34, no. 1 (2019): 9–58. http://dx.doi.org/10.1039/c8ja90044b.

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Abstract:
This review covers advances in the analysis of air, water, plants, soils and geological materials by a range of atomic spectrometric techniques including atomic emission, absorption, fluorescence and mass spectrometry.
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