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dc.contributor.authorSusilorini, Rr. M. I. Retno
dc.contributor.authorHardjasaputra, Harianto
dc.contributor.authorTudjono, Sri
dc.contributor.authorKristianto, Yosia
dc.contributor.authorPutrama, Andrew
dc.date.accessioned2014-12-03T04:32:23Z
dc.date.available2014-12-03T04:32:23Z
dc.date.issued2014-12-04
dc.identifier.citation[1] Golestaneh, M., Amini, G., Najafpour, G.D., and Beygi, MA.. “Evaluation of Mechanical Strength of Epoxy Polymer Concrete with Silica Powder as Filler”, World Applied Sciences Journal, Vol. 9, No. 2, pp. 216-220, 2010. [2] Barbuta, M. and Harja, M. “Experimental Study on the Characteristics of Polymer Concrete with Epoxy Resin”, Bul. Inst. Polit. Iasi, t. LIV (LVIII), f. 1, pp. 53-39, 2008. [3] Islam, MA., Rahman, MM., and Ahmed, M. “Polymer-modified Concrete:World Experience and Potential to Bangladesh”, Point of View, Indian Concrete Journal, pp. 55-63, 2011. [4] Arooj, MF., Haydar, S., and Ahmad K. “Development of Economical Polymer-modified Concrete for Repair of Concrete Structures in Pakistan”, Pak. J. Engg. & Appl. Sci. Vol. 8, pp. 21-25, Jan 2011. [5] Czarnecki, L., Garbacz, A., Lukowski, P., and Clifton, JR. “Optimization of Polymer Concrete Composites”, Final Report NISTIR 6361, United States Department of Commerce, Technology Administration, Building and Fire Research Laboratory, National Institute of Standard and Technology, Maryland, 1999. [6] Jakson, MD., Chae, SR., Mulcahy, SR., Meral, C., Taylor, R., Li, P., Emwas, AH., Moon, J., Yoon, S., Vola, G., Wenk, HR., and Monteiro, JP. “Unlocking the secrets of Al-tobermorite in Roman seawater concrete”, American Mineralogist, Vol. 98, pp. 1669–1687, 2013. [7] Ulfah, Sri. Efektifitas Biji Kelor (Moriga oilefera) terhadap Penurunan Kadar Besi (Fe), Undergraduate Thesis, Muhammadiyah Semarang University, Semarang, 2009. [8] Sutanto, TD., Adva, M., dan Tarigan N. “Buah Kelor (Moringa oleifera Lamk) Tanaman Ajaib yang Dapat Digunakan untuk Mengurangi Ion Logam dalam Air”, Jurnal Gradien, Vol. 3., No. 1., pp. 219-221, 2007. [9] Kristianto, Y., Putrama, A. Pengaruh Penambahan Bubuk Kelor (Moringa oleifera) pada Mortar Polimer Alami Termodifikasi yang Dirawat dengan Air Laut dan Air Payau, Undergraduate Thesis, Department of Civil Engineering, Faculty of Engineering, Soegijapranata Catholic University, Semarang, Indonesia, 2014. [10] Susilorini, Rr. M. I. R., Hardjasaputra, H., Tudjono, S. “Inovasi Beton Bajik untuk Beton Berkelanjutan”, Final Report, Competency Grant, First Year, Directorate of Research and Service Community, General Directorate, Ministry of Higher Education, Research, and Technology, Republic of Indonesia, 2014. [11] Ige, RL. “Effect of Seawater Concentration on Compressive Strength of Concrete”, Project Report, Department of Civil Engineering, University of Agriculture, Abeokuta, March 2010. [12] Wegian, FM. “Effect of seawater for mixing and curing on structural concrete”, The IES Journal Part A: Civil & Structural Engineering, Vol. 3, No. 4, pp. 235–243, November 2010. [13] Mc Kinnon, BL. Properties of Litharge and Glycerine Mortara, Thesis, Department of Chemical Engineering, Oregon State Agricultural College, March 1933. [14] Farobie, O., Achmadi, SS., and Darusman, LK. “Utilization of Glycerol Derived from Jatropha’s Biodiesel Production as a Cement Grinding Aid”, World Academy of Science, Engineering and Technology, Vol:6, pp. 791-796, March 2012. [15] Singh, A., Ebenso, EE., and Quraishi, MA. “Corrosion Inhibition of Carbon Steel in HCl Solution by Some Plant Extracts”, International Journal of Corrosion, Vol. 2012, 20 pages, 2012.en_US
dc.identifier.issn2407-4330
dc.identifier.urihttp://hdl.handle.net/11617/4978
dc.description.abstractPolymer modified concrete and polymer modified mortar are recommended for construction that built in aggressive environment such as seawater. This research wants to use Moringa oleifera as natural polymer for ingredient of modified mortar polymer because of its benefit and to find how natural polymer modified mortar with Moringa oleifera becomes durable in aggressive environment like in seawater and brackish water. This research conducted by experimental method. Several mortar cubes specimens with dimension 50 mm x 50 mm x 50 mm were produced with compressive strength design as f’c = 30 MPa. Mortar mix composed by 1:1:0,6 (cement:sand:water). This research used Moringa oleifera powder as natural polymer, with and without skin. Total mix compositions for compressive test were 13 mixes (with one plain mortar mix as control specimens). Specimens were cured by plain water, seawater, and brakish water. The results of research note that: (1) natural polymer modified mortar with Moringa oleifera has advantage in improving its bonding mechanism, strength and its durability in seawater and brackish water; (2) The optimum composition of Natural polymer modified mortar with Moringa oleifera is achieved by M-I-TK-02 that contains Moringa oleifera as 0.2% of cement weight.en_US
dc.publisherUniversitas Muhammadiyah Surakartaen_US
dc.subjectnatural polymer modified mortaren_US
dc.subjectMoringa oleiferaen_US
dc.subjectcompressive strengthen_US
dc.subjectseawateren_US
dc.subjectdurabilityen_US
dc.titleCompressive Strength Optimization of Natural Polymer Modified Mortar with Moringa oleifera in Various Curing Mediasen_US
dc.typeArticleen_US


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