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1

Gaspe, Anura. Clay testing: The clay/non-clay ratio measurement technique for ceramic stoves. London: Intermediate Technology Publications, 1994.

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2

Sweet, Palmer C. Clay material testing program, 1957-1986. Charlottesville, Va: Commonwealth of Virginia, Dept. of Mines, Minerals, and Energy, Division of Mineral Resources, 1988.

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3

Mitchell, R. J. Accurate control testing for clay liner permeability. [Toronto]: Environment Ontario, 1991.

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4

Well, LW, ed. Testing and Acceptance Criteria for Geosynthetic Clay Liners. 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959: ASTM International, 1997. http://dx.doi.org/10.1520/stp1308-eb.

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5

Meschi︠a︡n, S. R. Ėksperimentalʹnai︠a︡ reologii︠a︡ glinistykh gruntov. 3rd ed. Erevan: Izd-vo. "Gituti︠u︡n" NAN RA, 2005.

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6

R, Meschi͡an S. Ėksperimentalʹnai͡a reologii͡a glinistykh gruntov. Moskva: "Nedra", 1985.

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7

Roger, Green. Factors affecting the long term strength of compacted Beaumont clay. Austin, Tex: The Center, 1986.

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8

Sabirovich, Ziangirov Rėm, ed. Zakonomernosti formirovanii͡a svoĭstv zasolennykh glin. Moskva: "Nauka", 1985.

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9

Acciardi, Raymond G. Pinhole test equipment design and test result evaluation. Denver, Colo: Geotechnical Branch, Division of Research and Laboratory Services, Engineering and Research Center, U.S. Dept. of the Interior, Bureau of Reclamation, 1985.

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10

Riemer, Michael. Development and validation of the downhole freestanding shear device (DFSD) for measuring the dynamic properties of clay. Sacramento, CA: California Dept. of Transportation, Division of Research and Innovation, 2008.

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11

Current and future practices for the testing of multi-component geosynthetic clay liners. West Conshohocken, PA: ASTM International, 2013.

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12

Kline, J. P. Current and Future Practices for the Testing of Multi-Component Geosynthetic Clay Liners. Edited by Kent P. von Maubeuge. 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959: ASTM International, 2013. http://dx.doi.org/10.1520/stp1562-eb.

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13

Ouvry, Jean-Frédéric. Etude physique et rhéologique des argiles congelées: Application à l'argile profonde de Boom, Belgique. Orléans: Editions du Bureau de recherches géologiques et minières, Service géologique national, 1986.

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14

Shulley-Ziegler, Stacy. Effects of short polymeric fibers on crack development in clays. Vicksburg, Miss: U.S. Army Engineer Waterways Experiment Station, 1997.

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15

Nussbaum, Christophe, and Bossart Paul. Mont Terri rock laboratory: Geophysical investigation of the excavation damaged zone during a mine-by experiment. Wabern: Federal Office of Topography swisstopo, 2014.

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16

Bossart, P. Mont Terri Rock Laboratory project: Programme 1996 to 2007 and results. Wabern: Swiss Geological Survey, 2008.

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17

McDonald, D. B. Corrosion evaluation of epoxy-coated, metallic-clad, and solid metallic reinforcing bars in concrete. McLean, VA: U.S. Dept. of Transportation, Federal Highway Administration, Research and Development, Turner-Fairbank Highway Research Center, 1998.

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18

McDonald, D. B. Corrosion evaluation of epoxy-coated, metallic-clad, and solid metallic reinforcing bars in concrete. McLean, VA: U.S. Dept. of Transportation, Federal Highway Administration, Research and Development, Turner-Fairbank Highway Research Center, 1998.

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19

Gaspe, Anura, Peter Messer, and Pete Young. Clay Testing. Practical Action, 1994.

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20

1935-, Well Larry W., ed. Testing and acceptance criteria for geosynthetic clay liners. West Conshohocken, PA: ASTM, 1997.

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21

EXPERIMENTAL RHEOLOGY CLAYEY SOILS (Geotechnika , No 13). Taylor & Francis, 1995.

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22

K, Bondarik G., Odint͡s︡ova L. I, Kirin B. M, and Vsesoi͡u︡znyĭ nauchno-issledovatelʹskiĭ institut gidrogeologii i inzhenernoĭ geologii (Soviet Union), eds. Metodicheskie rekomendat͡s︡ii po ispytanii͡u︡ peschano-glinistykh porod metodom iskimetrii. Moskva: Vses. nauchno-issl. in-t gidrologii i inzhenernoĭ geologii, 1986.

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23

OECD Nuclear Energy Agency. Working Group on Measurement and Physical Understanding of Ground Flow Through Argillaceous Media., ed. Hydraulic and hydrochemical characterisation of argillaceous rocks: Proceedings of an international workshop Nottingham, United Kingdom, 7-9 June 1994. Paris: Nuclear Energy Agency, Organisation for Economic Co-operation and Development, 1995.

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24

W, Gilman Jeffrey, and National Institute of Standards and Technology (U.S.), eds. Flammability of polymer clay nanocomposites consortium: Year one annual report. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 2000.

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25

Advances in Geosynthetic Clay Liner Technology (Astm Special Technical Publication, 1456.) (Astm Special Technical Publication, 1456.). ASTM International, 2004.

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26

Institution of Civil Engineers (Great Britain). Large Scale Pile Test in Clay: Proceedings of the Conference, Recent Large-Scale Fully Instrumented Pile Tests in Clay, Held at the Institution of Civil Engineers, London, on 23-24. Thomas Telford, 1993.

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27

J, Clarke, and Institution of Civil Engineers (Great Britain), eds. Large-scale pile tests in clay: Proceedings of the conference, recent large-scale fully instrumented pile tests in clay, held at the Institution of Civil Engineers, London, on 23-24 June 1992. London: Thomas Telford, 1992.

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28

Construction Engineering Research Laboratories (U.S.), ed. Development of an innovative post-tensioning system for prestressed clay brick masonry walls. [Champaign, IL]: US Army Corps of Engineers, Construction Engineering Research Laboratories, 1997.

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29

S, Gomer J., ed. Copper exchange capacity of clays and their potential effect on in situ copper leaching. Washington, D.C: U.S. Dept. of the Interior, Bureau of Mines, 1992.

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30

Šiaučiūnas, Raimundas, Edita Prichockienė, and Agnė Šmigelskytė. Ceramics Practicum. KTU leidykla „Technologija“, 2021. http://dx.doi.org/10.5755/e01.9786090217344.

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Abstract:
The book presents all the methods of testing ceramic raw materials and products made from ceramic materials: first of all, the methods of testing of the properties of clay are discussed; further, determination of its chemical and mineral composition is described followed by methods for testing the key characteristics of a ceramic body and slurry, and, finally, a detailed description of methodologies for determining the performance of construction and fine ceramic products is presented. This textbook is primarily intended for English-speaking students studying the modules Chemical Technology of Ceramic Materials, Synthesis of High-Temperature Materials, Building and Fine Ceramics and Refractory and Modern Ceramics at KTU Faculty of Chemical Technology. It will also be beneficial to students of other KTU faculties or any other universities whose programs deal with the production and processing of building materials.
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31

Mont Terri Project: Heater experiment, engineered barriers emplacement, and ventilation tests. Bern: Swiss Geological Survey, 2007.

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32

IEEE Power Engineering Society. Switchgear Committee. and IEEE-SA Standards Board, eds. IEEE standard for metal-clad switchgear. New York, NY: Institute of Electrical and Electronics Engineers, 2000.

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33

Assessment of the fracture behavior of weld material in full-thickness clad beams. Washington, D.C: The Division, 1999.

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34

Center, Turner-Fairbank Highway Research, ed. Corrosion evaluation of epoxy-coated, metallic-clad, and solid metallic reinforcing bars in concrete: Publication no. FHWA-RD-98-153. McLean, VA (6300 Georgetown Pike, McLean 22101-2296): U.S. Dept. of Transportation, Federal Highway Administration, Research and Development, Turner-Fairbank Highway Research Center, 1998.

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35

Center, Turner-Fairbank Highway Research, ed. Corrosion evaluation of epoxy-coated, metallic-clad, and solid metallic reinforcing bars in concrete: Publication no. FHWA-RD-98-153. McLean, VA (6300 Georgetown Pike, McLean 22101-2296): U.S. Dept. of Transportation, Federal Highway Administration, Research and Development, Turner-Fairbank Highway Research Center, 1998.

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