[2] Zivica V., Bajza A. (2001). Acidic attack of cement based materials - a review. Part 1: principle of acidic attack. Construction and Building Materials, 15, 331-340.10.1016/S0950-0618(01)00012-5
[3] Monteny N., Debelie E., Vinke V., Taerwe L. (2001). Chemical and microbiological tests to simulate sulphuric acid corrosion of polymer-modified concrete. Cement and Concrete Research, 31 (9), 1359 - 1365.10.1016/S0008-8846(01)00565-8
[4] Olonade K.A., Olajumoke A.M., Omotosho A.O., Oyekunle F.A. (2014). Effects of sulphuric acid on the compressive strength of blended cement. In: 1st International conference on construction materials and structures (764-771). Amsterdam, Netherland: IOS Press.
[5] Thaumasite expert group (1999). The thaumasite form of sulfate attack: risks, diagnosis, remedial work and guidance on new construction. Great Britain. Department of the Environment, Transport and the Regions.
[6] Thomas M.D.A., Hooton R.D. (2002). The use of limestone in portland cements: effect on thaumasite form of sulfate attack. SN 2658, Portland Cement Association, 1-9.
[10] Hill J., Byars E.A., Sharp J.H., Lynsdale C.J., Cripps J.C., Zhou Q. (2003). An experimental study of combined acid and sulfate attack of concrete. Cement and Concrete Composites, 25, 997-1003.10.1016/S0958-9465(03)00123-9