يعرض 1 - 20 نتائج من 1,823 نتيجة بحث عن '"cementos"', وقت الاستعلام: 0.82s تنقيح النتائج
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    Academic Journal

    Alternate Title: Recent spanish administrative litigation regarding takeover bids.

    المصدر: Actualidad Jurídica (1578-956X). Dec2023, Issue 63, p41-60. 20p.

    مصطلحات جغرافية: SPAIN

    الشركة/الكيان: CEMENTOS Portland Valderrivas SA

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    Dissertation/ Thesis

    المؤلفون: Franco Marquès, Elena

    المساهمون: University/Department: Universitat de Girona. Departament d'Enginyeria Química, Agrària i Tecnologia Agroalimentària

    Thesis Advisors: Méndez González, José Alberto

    المصدر: TDX (Tesis Doctorals en Xarxa)

    وصف الملف: application/pdf

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    Academic Journal
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    Conference

    المؤلفون: Cuesta-García, Ana María

    مصطلحات موضوعية: Cemento - Industria, Cementos

    Relation: Congreso Nacional de Materiales XVII -CNMAT 2024; Málaga; Junio 2024; https://hdl.handle.net/10630/31957

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    Academic Journal
  7. 7
    Dissertation/ Thesis

    المساهمون: University/Department: Universitat Politècnica de Catalunya. Departament d'Enginyeria de Sistemes, Automàtica i Informàtica Industrial

    Thesis Advisors: Ginebra Molins, Maria Pau

    المصدر: TDX (Tesis Doctorals en Xarxa)

    وصف الملف: application/pdf

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    Academic Journal
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    Academic Journal

    المصدر: Eidos; Vol. 17 No. 24 (2024): DIGITAL ARCHITECTURE: EXPLORING THE SYNTHESIS BETWEEN TECHNOLOGY, DESIGN, AND MATERIALIZATION; 95-110 ; Eídos; Vol. 17 Núm. 24 (2024): ARQUITECTURA DIGITAL: EXPLORANDO LA SÍNTESIS ENTRE TECNOLOGÍA, DISEÑO Y MATERIALIZACIÓN; 95-110 ; Eidos; v. 17 n. 24 (2024): ARQUITECTURA DIGITAL: EXPLORANDO LA SÍNTESIS ENTRE TECNOLOGÍA, DISEÑO Y MATERIALIZACIÓN; 95-110 ; 1390-5007 ; 1390-499X ; 10.29019/eidos.v17i24

    وصف الملف: application/pdf; text/html

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    Academic Journal

    Relation: Fernandez-Sanchez, J., Cuesta, A., Shirani, S., Redondo-Soto, C., De la Torre, A. G., Santacruz, I., Salcedo, I. R., Leon-Reina, L. & Aranda, M. A. G. (2024). Mix and measure II: joint high-energy laboratory powder diffraction and microtomography for cement hydration studies. J. Appl. Cryst. 57.; https://hdl.handle.net/10630/32038

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    Academic Journal
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    Academic Journal
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    Academic Journal
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    Academic Journal
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    Academic Journal

    المصدر: Revista Información Científica; Vol. 103, No. 1 Sup (2024): VI Congreso Internacional de Investigación e Innovación Universitaria y Simposio Estudiantil de Desarrollo Sostenible; e4534 ; 1028-9933

    وصف الملف: application/pdf

    Relation: https://revinfcientifica.sld.cu/index.php/ric/article/view/4534/6220; Orlich Solano A, Fernández López O. Prótesis fija removible: una alternativa para la confección de prótesis totales implantosoportadas e implantoretenidas. Odovtos - Int J Dental Sci [Internet]. 2020 [citado 19 Feb 2024]; (10):92-96. Disponible en: https://www.redalyc.org/pdf/4995/TablaContenidos/Toc_51913.pdf; Román Rodríguez LJ, González AnguloE, Fons Font A, et al. Cementos temporales autopolimerizables versus duales/estéticos. Gaceta Dental [Internet]. 2019 [citado 19 Feb 2024]; 316:34-44. Disponible en: https://files.epeldano.com/publications/pdf/97/gaceta-dental_97_316.pdf; Zúñiga Vega R. Evaluación de cementos dentales en la fijación de dispositivo intraconducto utilizados para extrusión forzada. [tesis de especialidad]. Xalatlaco: Universidad Tecnológica Iberoamericana; 2018 [citado 26 Dic 2023]. Disponible en: https://repositorio.unam.mx/contenidos/evaluar-los-tipos-de-cementos-dentales-y-sus-protocolos-indicados-en-protesis-fija-3480011; Casanova Obando PE. Adaptación marginal y resistencia a la tracción de materiales provisionales fabricados por diferentes métodos en prótesis fija [tesis de Maestría]. Quito: Universidad Central de Ecuador. 2019 [citado 19 Feb 2024]. Disponible en: https://www.dspace.uce.edu.ec/entities/publication/d6b33f11-8bfb-49be-a757-7fa08746b216; Obando PEC, Larco MFA. Adaptación marginal y resistencia a la tracción de coronas provisionales cementadas con dos biomateriales. Rev Odontol [Internet]. 2020 [citado 21 Feb 2024]; 21(2):19–38. DOI: https://doi.org/10.29166/odontologia.vol21.n2.2019-19-38; Latz AM, von See C, Alevizakos V, Sandmair M, Othman A. Shear force comparative evaluation for surface treated and non- treated 3D interim printed materials with different types of glass-ionomer cements. J ClinExpDent [Internet]. 2020 [citado 19 Feb 2024]; 12(10):e916–21. DOI: http://dx.doi.org/10.4317/jced.57003; Camejo Suarez MV. Capacidad de sellado marginal de los cementos provisionales IRM®, Cavit® y vidrio ionomérico, en dientes tratados endodóncicamente: Revisión de la literatura. Actodontol Ven [Internet]. 2009 [citado 19 Feb 2024]; 47(2). Disponible en: https://www.actaodontologica.com/ediciones/2009/2/art-22/; Portillo Martínez A, Peralta M, Keim L. Microfiltración coronal in vitro con cuatro materiales de obturación temporal en cavidades endodoncias. Rev cient cienc salud [Internet]. 2019 [citado 19 Feb 2024]; 1(2):33–43. DOI: https://doi.org/10.53732/rccsalud/01.02.2019.33; De La Cruz L, Arturo G. Microfiltración marginal del coltosol y eugenato de zinc, estudio in vitro. [tesis de Titulación]. Lima: Universidad Privada Norbert Wiener; 2021 [citado 26 Dic 2023]. Disponible en: https://repositorio.uwiener.edu.pe/handle/20.500.13053/5579; Villavicencio Inga MB. Desviación de germen dentario permanente posterior a pulpectomía obturada con óxido de zinc eugenol. Odonto Investigación [Internet]. 2021 [citado 19 Feb 2024]; 7(2):1–12. DOI: https://doi.org/10.18272/oi.v7i2.2114; Málaga M, Manuel J. Efecto de un Cemento Puro de Polvo de Theobroma Cacao L. Y Combinado con Oxido de Zinc en la Proliferación Bacteriana de la Microflora de Abscesos Dentarios, Laboratorio de Análisis Clínicos UCSM. [tesis de maestría]. Arequipa: Universidad Católica de Santa María; 2019 [citado 26 Dic 2023]. Disponible en: https://repositorio.ucsm.edu.pe/items/059f4a5d-845b-4956-bdb3-951aabef6713; Pérez Rodríguez V, Salina Gutiérrez LD, López Ramírez NL. Permanencia de la medicación de los conductos radiculares con hidróxido de calcio y solución fisiológica vs hidróxido de calcio con yodoformo. Rev Esp Univ [Internet]. Oct 2022 [citado 16 Feb 2024]; 17(46): 14-24. Disponible en: https://urseva.urse.edu.mx/wp-content/uploads/2022/12/2.-Perez-Rodriguez-2022.pdf; Paredes G, Jimena S. Efectividad del hidróxido de calcio combinado con diferentes vehículos en periodontitis apical [tesis de maestría]. Lima: Universidad Ricardo Palma; 2022 [citado 26 Dic 2023]. Disponible en: https://repositorio.uan.edu.co/server/api/core/bitstreams/10b5223e-8471-4380-b623-8d4bb6598a60/content; Alvarado Gómez AA. Efecto del hidróxido de calcio y la pasta triantibiótica en el crecimiento de enterococcus faecalis y staphylococcus aureus in vitro [tesis de Maestría]. Arequipa: Universidad Católica de Santa María; 2022 [citado 26 Dic 2023]. Disponible en: https://repositorio.ucsm.edu.pe/items/37a12462-8ae5-40f0-adc7-d0bb426b4c43; Feijoó Paredes JA, Sanchez Mondragon L. Características físico-mecánicas de los agregados con adición de policarboxilato para mejorar las propiedades del concreto. [tesis de Titulación]. Lima: Universidad Ricardo Palma; 2020 [citado 26 Dic 2023]. Disponible en: https://repositorio.urp.edu.pe/bitstream/handle/20.500.14138/3854/T030_74397496_T%20%20%20FEIJOÓ%20PAREDES%2c%20JAIME%20ALEJANDRO.pdf?sequence=1; Correa Carranza EL. Diseño de reservorio 400m3 empleando aditivos de policarboxilatos y humo de sílice, para mejorar propiedades mecánicas [tesis de Titulación]. Santa Rosa - Callao: Universidad César Vallejo; 2021 [citado 26 Dic 2023]. Disponible en: https://repositorio.ucv.edu.pe/handle/20.500.12692/87742?show=full; Chumán Chávez KA, Rivas Ochoa Y. Aditivos superplastificantes a base de policarboxilatos para mejorar las propiedades físico – mecánicas del concreto fluido. [tesis de Titulación]. Lima: Universidad Ricardo Palma; 2020 [citado 26 Dic 2023]. Disponible en: https://repositorio.urp.edu.pe/bitstream/handle/20.500.14138/3665/CIV-T030_70330365_T%20%20%20RIVAS%20OCHOA%20YULIANA.pdf?sequence=1; Camargo Espejo F, Villavicencio Caparó E, Artieda Sáenz JG, Miranda Miranda CA. Microfiltración de Restauraciones provisionales utilizados en Endodoncia. Salud & Vida Sipanense [Internet]. 2022 [citado 11 Feb 2024]; 9(1):32–66. DOI: https://doi.org/10.26495/svs.v9i1.2153; Vasquez Medina LA, Zamudio Choy MJ. Comparación in vitro de la microfiltración coronal de materiales de restauración temporal post-endodónticos: ionómero de vidrio tipo II reforzado con resina (Vitremer®), óxido de zinc y eugenol (Moyco), y silicona (Zhermack) en premolares [Tesis de Especialidad]. Peru: Universidad Peruana Cayetano Heredia. Facultad de Estomatología; 2020 [citado 8 Feb 2024]; Disponible en: https://repositorio.upch.edu.pe/handle/20.500.12866/8429?show=full; Spina Buscema MN, Tomich Biber D, Salas Cannegieter AJ. Cementación definitiva en prótesis fija con un agente definitivo y uno temporal. Vis Dent [Internet]. 2012 [citado 11 Feb 2024]; 15(1):4–7. Disponible en: https://www.imbiomed.com.mx/articulo.php?id=93971; https://revinfcientifica.sld.cu/index.php/ric/article/view/4534

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    Academic Journal

    المصدر: Anatomía Digital; Vol. 7 No. 3 (2024): Cuidados Integrales; 20-33 ; Anatomía Digital; Vol. 7 Núm. 3 (2024): Cuidados Integrales; 20-33 ; Anatomía Digital; v. 7 n. 3 (2024): Cuidados Integrales; 20-33 ; 2697-3391 ; 10.33262/anatomiadigital.v7i3

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    Academic Journal
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    Academic Journal

    المصدر: Materiales de Construcción; Vol. 73 No. 350 (2023); e311 ; Materiales de Construcción; Vol. 73 Núm. 350 (2023); e311 ; 1988-3226 ; 0465-2746 ; 10.3989/mc.2023.v73.i350

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    Relation: https://materconstrucc.revistas.csic.es/index.php/materconstrucc/article/view/3563/4237; https://materconstrucc.revistas.csic.es/index.php/materconstrucc/article/view/3563/4238; https://materconstrucc.revistas.csic.es/index.php/materconstrucc/article/view/3563/4239; Gartner, E. (2004) Industrially interesting approaches to "low-CO2" cements. Cem. Concr. Res. 34 [9], 1489-1498. https://doi.org/10.1016/j.cemconres.2004.01.021; Damtoft, J.S.; Lukasik, J.; Herfort, D.; Sorrentino, D.; Gartner, E. (2008) Sustainable development and climate change initiatives. Cem. Concr. Res. 38 [2], 115-127. https://doi.org/10.1016/j.cemconres.2007.09.008; Provis, J.L.; van Deventer, J.S.J. (2014) Alkali activated materials. State-of-the-art report. RILEM TC 224-AAM. Springer. https://doi.org/10.1007/978-94-007-7672-2; Taylor, M.; Tarn, C; Gielen, D. (2006) Energy efficiency and CO2 emissions from the global cement industry. Energy Technology Policy Division. International Energy Agency. Retrieved from https://cyberleninka.org/article/n/259584.pdf (Accessed on: July 19, 2022).; White cement market forecast by type (White portland cement, white masonry cement, and others) and end use (Residential, commercial, and industrial): Global opportunity analysis and industry forecast. 2018-2025. Retrieved from https://www.alliedmarketresearch.com/white-cement-market. (Accessed on: July 19, 2022).; Krivenko, P.V.; Runova, R.F.; Sanickij, M.A.; Rudenko, I.I. (2015) Shhelochnye cementy: monografija, Ltd "Osnova", Kyiv (2015) (in Russian).; Blanco-Varela, M.T.; Puertas, F.; Vázquez, T; Palomo, A. (1996) Modelling of burnability of white cement made with CaF2 and CaSO4. Cem. Concr. Res. 26 [3], 457-464. https://doi.org/10.1016/S0008-8846(96)85033-2; Chistjakov, G.I. (1976) Vlijanie uslovij otbelivanija klinkera na dekorativnye svojstva cementov; V kn.: Shestoj mezhdunarodnyj congress po himii cementa. Moscow, 3, I58-161. (in Russian).; Luchinskij, G.P. (1971) Himija titana, Himija, Moscow, (1971) (in Russian).; Simons, P.Y.; Dachille, F. (1976) The structure of TiO2 II, a high-pressure phase of TiO2. Acta Crystallographica. 23 [2], 334-336. https://doi.org/10.1107/S0365110X67002713; von Weizsacker, E.U.; Hargroves, C.; Smith, M.H.; Desha, C.; Stasinopoulos, P. (2009) Factor five: transforming the global economy through 80% improvements in resource productivity. Earthscan, London (2009). ISBN 9780415848602. https://doi.org/10.4324/9781849774475; McLellan, B.C.; Williams, R.P.; Lay, J. van Riessen, A.; Corder, G.D. (2011) Costs and carbon emissions for geopolymer pastes in comparison to ordinary Portland cement. J. Clean. Produc. 19 [9], 1080-1090. https://doi.org/10.1016/j.jclepro.2011.02.010; Gluhovskij, V.D. (1979) Shhelochnye i shhelochno-shhelochnozemel'nye gidravlicheskie vjazhushhie i betony. Vishha shkola, Kyiv, (1979) (in Russian).; Gluhovskij, V.D. (1981) Shlakoshhelochnye betony na melkozernistyh zapolniteljah: Monografija. Vishha shkola, Kyiv, (1981). (in Russian).; Gluhovskij, V.D. (1992) Izbrannye Trudy. Budіvel'nik, Kyiv, (1992). (in Russian).; Krivenko, P.V. (1992) Special'nye shlakoshhelochnye cementy: monografija. Budіvel'nik, Kyiv, (1992). (in Russian).; Kryvenko, P.V.; Pushkar'ova K.K. (1993) Dovgovichnist' shlako-luzhnogo betonu: monografija. Budivel'nyk, Kyiv, (1993). (in Ukrainian).; Krivenko, P.V. (1994) Alkaline cements. Alkaline Cements and Concretes: Materials First Intern. Conf. Kyiv, 11-19.; Krivenko, P.V.; Petropavlovskij O.N.; Gelevera A.G.; Voznjuk G.V.; Pushkar V.I. (2009) Promyshlennye shhelochnye cementy i ih effektivnost. Nauchno-tehnicheskij sbornik. Aktual'nye problemy stroitel'stva". Rivne, 64-71. (in Russian).; Krivenko, P.V. (2017) Why alkaline activation - 60 years of the theory and practice of alkali-activated materials. J. Ceram. Sci. Technol. 8 [3], 323-334.; Shi, C.; Krivenko, P.; Della, Roy (2014) Alkaline activated cements and concretes: Monograph Engineering & Technology, London, (2014).; Fernández-Jiménez, A.; Garcia-Lodeiro, I.; Maltseva, O.; Palomo, A. (2019) Hydration mechanisms of hybrid cements as a function of the way of addition of chemicals. J. Am. Ceram. Soc. 102 [1], 427-436. https://doi.org/10.1111/jace.15939; Krivenko, P.; Petropavlovsky, O.; Kovalchuk, O.; Pasko, А.; Lapovska, S. (2018) Designof the composition of alkali activated Portland cement using mineral additives of technogenic origin. Eastern-Europ. J. Enterp. Technol. 4 [6 (94)], 6-15. https://doi.org/10.15587/1729-4061.2018.140324; Krivenko, P.V.; Petropavlovsky, O.N.; Gots, V.I.; Rostovskaya, G.S. (2009) Alkali activation of composite cement. Ibausil. Internationale Baustofftagung (Weimar). 1, 445-456.; Chaouche, M.; Gao, Х.Х.; Cyr, М.; Cotte, М.; Frouin, L. (2017) On the origin of the blue/green color of blast-furnace slag-based materials: Sulfur K-edge XANES investigation. J. Am. Ceram. Soc. 100, 1707-16. https://doi.org/10.1111/jace.14670; Labrincha, J.; Puertas, F.; Schroeyers, W., Kovler, K.; Pontikes, Y.; Nuccetelli, C. (2017) 7-From NORM by-products to building materials. Naturally occurring radioactive materials in construction. Woodhead Publishing, 183-252. https://doi.org/10.1016/B978-0-08-102009-8.00007-4; Sidochenko, I.M.; Krugljak, S.L.; Rumyna, G.V.; Gluhovskij, V.D.; Skurchinskaja, Zh.V. (1974) A.s. № 446480 Vjazhushhee. Zajavl. 15.01.73. Bjul. izobret., 38. (in Russian).; Gluhovskij, V.D.; Pis'mennaja, A.Ju.; Rumyna, G.V. (1981) Ispol'zovanie krasnogo shlama dlja poluchenija shlakoshhelochnogo dekorativnogo vjazhushhego. J. Stroitel'nye materialy, izdelija i sanitarnaja tehnik. 4, 35-36. (in Russian).; Krivenko, P.V.; Kovalchuk, A.Y. (2019) Management of the decorative properties of alkali cements. J. Build. Eng. 2 [95], 280-285. https://doi.org/10.29295/2311-7257-2019-96-2-280-285; Bernal, S.A.; Provis, J.L.; Myers, R.J.; Racktl, S.N.; van Deventer, J.S.J. (2015) Role of carbonates in the chemicalevolution of sodium carbonate-activated slag binders. J. Mater. Struct. 48 [3], 517-529. https://doi.org/10.1617/s11527-014-0412-6; Krivenko, P.V.; Kovalchuk, A.Y.; Ostrovskaja, L.M. (2011) Studying of posibility of increase of slag-alkali cements whiteness degree. J. Collection «Building materials, producters and technical equipment». Kyiv, Research Institute of Building Materials and Products. 41, 10-14.; Krivenko, P.; Petropavlvskyy, O.; Puskar, V.; Ostrovska, L. (2011) Decorative alkaline cements. IV Intern. Symp: Non-Traditional Cement & Concrete. Brno, 257-265.; Kryvenko, P.; Sanytsky, M.; Kropyvnytska, T.; Kotiv, R. (2014) Decorative multi-component alkali activated cements for restoration and finishing works. Adv. Mat. Res. 897, 45-48. https://doi.org/10.4028/www.scientific.net/AMR.897.45; Fernandes de Magalhães, L.; França, S.; dos Santos Oliveira, M.; Fiorotti Peixoto, R.A.; Araújo Lima Bessa, S.; da Silva Bezerra, A.C. (2020) Iron ore tailings as a supplementary cementitious material in the production of pigmented cements. J. Clean. Prod. 274,123260. https://doi.org/10.1016/j.jclepro.2020.123260; Barros Galvão, J.L.; Dias Andrade, H.; Brigolini, G.; Fiorotti Peixoto, R.A.; Castro Mendes, J. (2018) Reuse of iron ore tailings from tailings dams as pigment for sustainable paints. J. Clean. Prod. 200, 412-422. https://doi.org/10.1016/j.jclepro.2018.07.313; Fontes, W.; Gonçalves Fontes, G.; Pinto Costa, E.C.; Castro Mendes, J.; Brigolini, G.; Fiorotti Peixoto, R.A. (2018) Iron ore tailings in the production of cement tiles: a value analysis on building sustainability. J. Amb. Cons. 18 [4], 395-412. https://doi.org/10.1590/s1678-86212018000400312; Ghalehnovi, M.; Roshan, N.; Hakak, E.; Asadi Shamsabadi, E.; de Brito, J. (2019) Effect of red mud (bauxite residue) as cement replacement on the properties of self-compacting concrete incorporating various fillers. J. Clean. Prod. 240, 118213. https://doi.org/10.1016/j.jclepro.2019.118213; Rashad, A.M.; Morsi, W.M.; Khafaga, S.A.; (2021) Effect of limestone powder on mechanical strength, durability and drying shrinkage of alkali-activated slag pastes. Innov. Infrastruct. Solut. 127. https://doi.org/10.1007/s41062-021-00496-y; Borziak, O.S.; Plugin, A.A.; Chepurna, S.M.; Zavalniy, O.V.; Dudin, O.A. (2019) The effect of added finely dispersed calcite on the corrosion resistance of cement compositions. IOP Conference Series: Materials Science and Engineering. 708: 012080. . https://doi.org/10.1088/1757-899X/708/1/012080; Chepurna, S.; Borziak, O.; Zubenko, S. (2019) Concretes, modified by the addition of high-diffused chalk, for small architectural forms. J. MSF. 968, 82-88. https://doi.org/10.4028/www.scientific.net/MSF.968.82; Hohol, M.; Lubenets, V.l; Komarovska-Porokhnyavets, O.; Sanytsky, M. (2020) Effect of Nano-TiO2 and ETS antifungal agent addition on the mechanical and biocidal properties of cement mortars. Proceedings of EcoComfort 2020. 134-141. https://doi.org/10.1007/978-3-030-57340-9_17; Hohol, M.; Sanytsky, M.; Kropyvnytska, T.; Barylyak, A.; Bobitski, Y. (2020) The effect of sulfur- and carbon-codoped TiO2 nanocomposite on the photocatalytic and mechanical properties of cement mortars. Eastern-Europ. J. Enterp. Technol. 4 [6-106], 6-14. https://doi.org/10.15587/1729-4061.2020.210218; DSTU B V.2.7-181:2009 (2009) Cementy luzhni. Tehnichni umovy. Ministerstvo regional'nogo rozvytku ta budivnyctva Ukrai'ny, Kyiv. (in Ukrainian).; DSTU EN 196-1:2019 (EN 196-1:2016, IDT) (2020) Metody vyprobuvannja cementu. Chastyna 1. Vyznachennja micnosti. Minbud Ukrai'ny, Kyiv. (in Ukrainian).; Voznesenskij, V.A.; Ljashenko, T.V.; Ogarkov, B.L. (1989) Chislennye metody reshenija stroitel'no-tehnologicheskih zadach na JeVM. Vishha shkola, Kyiv. (1989). Retrieved from http://mx.ogasa.org.ua/handle/123456789/331 (in Russian).; Butt, Ju.M.; Timashev, V.V. (1973) Praktikum po himicheskoj tehnologi vjazhushhih veshhestv. Vysshaja shkola, Moscow. (in Russian).; DSTU B V.2.7-47-96 Betony. (1997) Metody opredelenija morozoustojchivosti. Obshhie trebovanija. Gosudarstvennyj komitet po delam gorodskogo stroitel'stva i arhitektury, Kyiv. (in Ukrainian).; DSTU B V.2.7-268:2011 (2012) Portlandcement kol'orovyj. Tehnichni umovy. Minregion Ukrai'ny, Kyiv. (in Ukrainian).; DSTU B V.2.7-69-98 (1999) Dobavki dlja betonov. Metody opredelenija jeffektivnosti. Kyiv : Gosstroj Ukrainy. (in Ukrainian).; EN 1542-1999 (1999) Products and systems for the protection and repair of concrete structures.Test methods. Measurement of bond strength by pull-off, European Committee for Standardization.; Gorshkov, V.S.; Timashev, V.V.; Savel'ev, V.G. (1981) Metody fiziko-himicheskogo analiza vjazhushhih veshhestv. Vysshaja shkola, Moscow, (1981). (in Russian).; Semenov, E.I. (1981) Mineralogicheskie tablicy : Spravochnik. Nedra, Moscow, (1981). (in Russian).; DSTU B V.2.7-257:2011 (2011) Portlandcementy belye. Tehnicheskie uslovija. NDІBMV, Budstandart, Kyiv. (in Ukrainian).; Kovalchuk, O; Grabovchak, V; Govdun, Y. (2018) Alkali activated cements mix design for concretes application in high corrosive conditions. Matec Web Conf. 230 [94], 03007. https://doi.org/10.1051/matecconf/201823003007; Karavajev, T.A. (2015) Vodno-dyspersijni farby: tovaroznavcha ocinka: monograph. Kyi'vs'kyj nacional'nyj torgovo-ekonomichnyj universytet, Kyiv. (2015). 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