[1]
Gribniak, V., Kaklauskas, G., Bacinskas, D., Shrinkage in reinforced concrete structures: A computational aspect (2008) Journal of Civil Engineering and Management, 14 (1), pp.49-60.
DOI: 10.3846/1392-3730.2008.14.49-60
Google Scholar
[2]
Gribniak, V., Kaklauskas, G., Kliukas, R. , Jakubovskis, R., Shrinkage effect on short-term deformation behavior of reinforced concrete - When it should not be neglected (2013) Materials and Design, 51, pp.1060-1070.
DOI: 10.1016/j.matdes.2013.05.028
Google Scholar
[3]
Sprince, A., Fischer, G., Pakrastinsh, L., Korjakins, A. Crack propagation in concrete with silica particles (2014) Advanced Materials Research, 842, pp.470-476.
DOI: 10.4028/www.scientific.net/amr.842.470
Google Scholar
[4]
Vatin, N.I., Orlov, D.V. Predelnaya rabota razrusheniya obraztsa iz legkogo nanomodifitsirovannogo betona [Limiting the work of destruction sample of lung nanomodified concrete] (2009).
Google Scholar
[5]
Kiski, S.S., Ponomarev, A.N., Ageyev, I.V., Kozeyev, A.A., Yudovich, M. Ye. Issledovanie vozmognosti modifikacii karboksilatnikh plastifikatorov v sostave modificirovannikh betonnikh smesey [Investigation of carboxylate plasticizer modification potential in modified fine-grained concrete mixes] (2012).
DOI: 10.5862/mce.34.6
Google Scholar
[6]
Runova, R.F., Kochevyh, M.O., Rudenko, I.I. On the slump loss problem of superplasticized concrete mixes (2005) Proceedings of the International Conference on Admixtures - Enhancing Concrete Performance, pp.149-156.
Google Scholar
[7]
Palacios, M., Flatt, R.J., Puertas, F., Sanchez-Herencia, A. Compatibility between polycarboxylate and viscosity-modifying admixtures in cement pastes (2012) American Concrete Institute, ACI Special Publication, 288 SP, pp.29-42.
DOI: 10.14359/51684218
Google Scholar
[8]
Jayasree, C., Santhanam, M., Gettu, R. Cement-superplasticiser compatibility - Issues and challenges (2011) Indian Concrete Journal, 85 (7), pp.48-60.
Google Scholar
[9]
Kotov, D.S. Deformatsii usadki betona, modifitsirovannogo khimicheskimi i tonkodispersnymi mineralnymi napolnitelyami [Shrinkage strain of concrete, modified by chemical and fine mineral fillers] (2009).
Google Scholar
[10]
Xie, L. Influence of mineral admixtures on early-age autogenous shrinkage of high-performance concrete (2014) Applied Mechanics and Materials, 457-458, pp.318-322.
DOI: 10.4028/www.scientific.net/amm.457-458.318
Google Scholar
[11]
Byard, B.E., Schindler, A.K., Barnes, R.W. Early-age cracking tendency and ultimate degree of hydration of internally cured concrete (2012) Journal of Materials in Civil Engineering, 24 (8), pp.1025-1033.
DOI: 10.1061/(asce)mt.1943-5533.0000469
Google Scholar
[12]
He, Z., Qian, C., Gao, X. The autogenous shrinkage and creep characteristics of concrete with modified admixtures (2012) Advanced Science Letters, 12, pp.402-406.
DOI: 10.1166/asl.2012.2759
Google Scholar
[13]
Zhang, L., Lai, J., Qian, X., Hu, D. Influence of mineral admixtures on early shrinkage of ordinary concrete (2012) Advanced Materials Research, 450-451, pp.135-139.
DOI: 10.4028/www.scientific.net/amr.450-451.135
Google Scholar
[14]
Tanimura, M., Maruyama, I., Sato, R. Autogenous deformation and resultant induced stress in low-shrinkage high-strength concrete (2009).
DOI: 10.1201/9780203882955.ch116
Google Scholar
[15]
Lecomte, A., Vulcano-Greullet, N., Steichen, C., Scharfe, G. The risk of cracking of fine hydraulic mixtures (2003) Cement and Concrete Research, 33 (12), p.1983-(1997).
DOI: 10.1016/s0008-8846(03)00221-7
Google Scholar
[16]
Corcella, C.M., Cereda, C., Tavano, S., Canonico, F., Gastaldi, D. Parameters influencing the performance of shrinkage-compensating concrete (2012) American Concrete Institute, ACI Special Publication (289), pp.43-57.
Google Scholar
[17]
Recalde Lummer, N., Plank, J. Combination of lignosulfonate and AMPS®-co-NNDMA water retention agent-An example for dual synergistic interaction between admixtures in cement (2012) Cement and Concrete Research, 42 (5), pp.728-735.
DOI: 10.1016/j.cemconres.2012.02.009
Google Scholar
[18]
Plank, J., Tiemeyer, C., Buelichen, D., Recalde Lummer, N. A review of synergistic and antagonistic effects between oilwell cement additives (2013) Proceedings - SPE International Symposium on Oilfield Chemistry 2, pp.690-702.
DOI: 10.2118/164103-ms
Google Scholar
[19]
José Oliveira, M., Ribeiro, A.B., Branco, F.G. Combined effect of expansive and shrinkage reducing admixtures to control autogenous shrinkage in self-compacting concrete (2014) Construction and Building Materials, 52, pp.267-275.
DOI: 10.1016/j.conbuildmat.2013.11.033
Google Scholar
[20]
Zhang, Y., Qian, C. -X., Zhao, F., He, Z. -H., Qu, J., Guo, J. -Q., Danzinger, M. Influence regularities of chemical admixtures on creep (2013) Gongneng Cailiao/Journal of Functional Materials 44 (11), pp.1620-1623.
Google Scholar
[21]
Shishkin, A.A. Shchelochnyye reaktsionnyye poroshkovyye betony [Alkaline reaction powder concretes] (2014) Construction of Unique Buildings and Structures, 2 (17), pp.56-65. (rus).
Google Scholar
[22]
Shishkina, A.A. Poristyye reaktsionnyye poroshkovyye betony [The porous reactive powder concrete] (2014) Construction of Unique Buildings and Structures, 8 (23), pp.128-135. (rus).
Google Scholar
[23]
Shishkin, A. Shishkina, A. Vatin, N. Low-shrinkage alcohol cement concrete (2014) Applied Mechanics and Materials, 633-634, pp.917-921.
DOI: 10.4028/www.scientific.net/amm.633-634.917
Google Scholar
[24]
Barabanshchicov, Y. G., Arkharova, A. A., Ternovskii, M. V. Beton s ponizhennoy usadkoy i polzuchestyu [Concrete with the lowered shrinkage and creep] (2014) Construction of Unique Buildings and Structures, 7 (22), pp.152-165. (rus).
Google Scholar
[25]
Krivtsov, Ye.E., Nikulin, N.M., Yasinskaya, Ye.V. Issledovaniye kharakteristik nanomodifitsirovannykh sukhikh stroitelnykh smesey [Study of characteristics of nano-modified dry construction mixtures] (2011).
Google Scholar
[26]
Beskorovaynaya, O. N., Bychkov, D.S., Gayevskaya, Z.A. Bystromontiruyemyye zdaniya iz legkogo nanomodifitsirovannogo betona [The quickly erected buildings of lightweight nanomodified concrete] (2014).
Google Scholar
[27]
Frolov, A.V., Chumadova, L.I., Cherkashin, A.V., Akimov, L.I. Ekonomichnost ispolzovaniya i vliyaniye nanorazmernykh chastits na svoystva legkikh vysokoprochnykh betonov [The economy of use and the impact of nanoparticles on properties of lightweight high-strength concrete] (2014).
DOI: 10.4028/www.scientific.net/amm.584-586.1416
Google Scholar
[28]
Kiski, S.S., Ponomarev, A.N., Ageyev, I. V., Cun, C. Modification of the fine-aggregate concrete by high disperse silica fume and carbon nanoparticles containing modifiers (2014) Advansed Materials Research, 941-944, pp.430-435.
DOI: 10.4028/www.scientific.net/amr.941-944.430
Google Scholar