Alkali-Activated Material Based on Red Clay and Silica Gel Waste

被引:4
|
作者
Borg, Ruben Paul [1 ]
Vaiciukyniene, Danute [2 ]
Gurskis, Vincas [2 ]
Nizeviciene, Dalia [3 ]
Skominas, Rytis [2 ]
Ramukevicius, Dainius [2 ]
Sadzevicius, Raimondas [2 ]
机构
[1] Univ Malta, Fac Built Environm, Msida 2080, Msd, Malta
[2] Aleksandras Stulginskis Univ, Inst Hydraul Engn, Studentu St 11, LT-53361 Kauno R, Akademija, Lithuania
[3] Kaunas Univ Technol, Fac Elect & Elect Engn, Studentu St 48, LT-51367 Kaunas, Lithuania
关键词
Alkali-activated red clay; Silica gel waste; Industrial by-product; MICROSTRUCTURE; GEOPOLYMERS; STRENGTH; TEMPERATURE; REACTIVITY; ILLITE;
D O I
10.1007/s12649-018-00559-9
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Industrial by-products such as silica gel waste and red clay based on natural illite, have been used as precursors for the preparation of alkali activated materials (AAM). Raw materials, precursors and the alkali-activated materials were examined using X-ray diffraction, XRFA and SEM analysis. The reactive concentrations of Si and Al were determined using the colorimetric method. The compressive strength of alkali-activated samples was also evaluated. The precursors were made from Lithuanian red clay (Ukmerge deposit) and silica gel waste. The clay and silica gel waste were first mixed together and then calcined at 900 degrees C or 600 degrees C to obtain the precursors. The results show that during the calcination process, new phase CaF2 formed in the precursors. It is possible that fluoride compound which forms during the calcination process, acts as a flux (at a temperature of 900 degrees C), and for this reason, the reactive amorphous phase is transformed into mullite and cristobalite (crystalline phases), which are not reactive. According to the XRD diffractogram, calcination at a temperature of 600 degrees C was sufficient to convert the crystalline structure of kaolinite into an amorphous phase. In this case, at a calcination temperature of 600 degrees C, it was recommended to use up to 25% of silica gel waste. The maximal compressive strength (7 MPa) was achieved by using 5% of silicagel waste. It was concluded that red clay-silica gel waste AAM can be considered for the production of green composite materials.
引用
收藏
页码:2973 / 2982
页数:10
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