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Abstract

Concrete is generally produced using materials such as crushed stone and river sand to the extent of about 80‒90% combined with cement and water. These materials are quarried from natural sources. Their depletion will cause strain on the environment. To prevent this, bottom ash produced at thermal power plants by burning of coal has been utilized in this investigation into making concrete. The experimental investigation presents the development of concrete containing lignite coal bottom ash as fine aggregate in various percentages of 25, 50, and 100. Compressive, split tensile, and flexural strength as part of mechanical properties; acid, sulphate attack, and sustainability under elevated temperature as part of durability properties, were determined. These properties were compared with that of normal concrete. It was concluded from this investigation that bottom ash to an extent of 25% can be substituted in place of river sand in the production of concrete.

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Authors and Affiliations

T.S. Thandavamoorthy
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Abstract

Strength and permeability properties along with microstructural evolution of hardened slurries composed of fly ash from fluidal bed combustion of brown coal and an addition of OPC/BFSC is assessed in this paper. An increase in the amount of fly ash in slurries influences the development of mechanical strength and a decrease of hydraulic conductivity. SEM, XRD, and porosity analyses confirmed formation of watertight microstructures. The structure of slurries is composed of ettringite, C-S-H phase, AFt, and AFm phases. Ettringite crystallises as relatively short needles forming compact clusters or intermixed with the C-S-H phase. The occurring C-S-H phases are mainly of type I – fibrous and type II – honeycomb

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Authors and Affiliations

Z. Kledyński
P. Falaciński
A. Machowska
J. Dyczek
Ł. Kotwica
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Abstract

The use of biomass in the energy industry is the consequence of ongoing efforts to replace Energy from fossil fuels with energy from renewable sources. However, due to the diversity of the biomass, its use as a solid fuel generates waste with diverse and unstable chemical composition. Waste from biomass combustion is a raw material with a very diverse composition, even in the case of using only one type of biomass. The content of individual elements in fly ash from the combustion of biomass ranges from zero to tens of percent. This makes it difficult to determine the optimal recovery methods. The ashes from the combustion of biomass are most commonly used in the production of building materials and agriculture. This article presents the elemental composition of the most commonly used biomass fuels. The results of the analysis of elemental composition of fly ashes from the combustion of forest and agricultural biomass in fluidized bed boilers used in the commercial power industry were presented. These ashes are characterized by a high content of calcium (12.3–19.4%), silicon (1.2–8.3%), potassium (0.05–1.46%), chlorine (1.1–6.1%), and iron (0.8–6.5%). The discussed ashes contained no sodium. Aluminum was found only in one of the five ashes. Manganese, chromium, copper, nickel, lead, zinc, sulfur, bismuth, titanium and zirconium were found in all of the examined ashes. The analysis of elemental composition may allow for a preliminary assessment of the recovery potential of a given ash.

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Authors and Affiliations

Alicja Uliasz-Bocheńczyk
ORCID: ORCID
Eugeniusz Mokrzycki
ORCID: ORCID
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Abstract

The article concerns fly ashes generated from the combustion of hard coal and deposited on landfills. Investigation results describing fly ash taken from a combustion waste landfill are presented in the article. The investigation results indicate a possibility for combusting the coal reclaimed by separation from the fly ash and utilizing the remaining fly ash fractions.

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Authors and Affiliations

Aleksandra Sambor
Arkadiusz Szymanek
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Abstract

Due to the fact that the landfill deposition of municipal waste with the higher heating value (HHV) than 6 MJ/kg in Poland is prohibited, the application of waste derived fuels for energy production seems to be good option. There is a new combined-heat-and-power (CHP) plant in Zabrze, where varied solid fuels can be combusted. The formation of ashes originating from the combustion of alternative fuels causes a need to find ways for their practical application and demands the knowledge about their properties. Therefore, the present work is devoted to studying the co-combustion of solid recovered fuel (SRF) and coal, its impact on fly ash quality and the potential application of ashes to synthesis zeolites. The major objectives of this paper is to present the detail characteristics of ash generated during this process by using the advanced instrumental techniques (XRF, XRD, SEM, B ET, TGA). The co-combustion were carried out at 0.1 MWth fluidized bed combustor. The amount of SRF in fuel mixture was 1, 5, 10 and 20%, respectively. The focus is on the comparison the ashes depending on the fuel mixture composition. Generally, the ashes characterise high amounts of SiO2, Al2O3 and Fe2O3. It is well observed, that the chemical composition of ashes from co-combustion of blends reflects the amount of SRF addition. Considering the chemical composition of studied ashes, they can be utilize as a zeolites A. The main conclusions is that SRF can be successfully combusted with coal in CFB technology and the fly ashes obtained from coal + SRF fuel mixtures can be used to synthesis zeolites.
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Authors and Affiliations

Aleksandra Ściubidło
Wojciech Nowak
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Abstract

One of the elements of the Polish Energy Policy program is the development of renewable energy, including energy from biomass combustion. In Poland, the Green Block was built at the Połaniec Power Station fired with 100% biomass fuel. This solution is conducive not only to obtaining energy but also to improving environmental protection. During the combustion of biomass in a fluidized bed boiler, about 50 thousand tons of fly ash per year being a source of nutrients for plants, for example potassium salts, phosphorus, calcium, boron compounds, etc. was derived. The subject of the research were three types of ashes from biomass combustion containing 80% dendromass and 20% agromass. Agromas was made of straw, dried material or sliced palm nuts. The physical characteristics and chemical composition of three basic fly ash samples are presented. Due to the high fineness and thus dusting during spreading, it was found that there is no possibility of the direct use of fly ash from biomass combustion as an alkalizing agent for acidic soils. The lowest bulk density was demonstrated by samples of fly ash originating from the combustion of biomass containing 20% straw as agromass, while the poorest in potassium and phosphorus were ash samples obtained from the combustion of biomass containing 20% agromass in the form of palm kernel slate. As additional components, mineral acids as well as inorganic compounds, including industrial waste, were used to correct the chemical composition and to mineral fertilizer granulation. The number of introduced components was related to the postulated composition of the produced fertilizer. Examples of mineral fertilizers obtained, both simple and multicomponent fertilizers, are presented.

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Authors and Affiliations

Sylwester Eugeniusz Żelazny
Andrzej Jarosiński
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Abstract

Geopolymers are a new class of materials that can be synthesized using natural minerals, and waste materials. Among these substrates, the use of fly ash is desirable as it involves the conversion of a copious waste material into a useful product. The aim of the research was geopolymers synthesis from coal fly ash and biomass ash. Concentrated sodium hydroxide and sodium silicate solutions were used as activators in geopolymerisation reaction. The results show that both coal fly ash and biomass ash can be utilized as source materials for the production of geopolymers. The surface morphology and chemical composition analysis were examined for the obtained geopolymers and ashes from coal and biomass combustion by SEM-EDS methods. It was found almost total disappearance of spherical forms of grains and reduction the porosity of structure for geopolymer based on fly ash from coal combustion. While the structure of the geopolymer based ash from biomass combustion is more porous. The UV-VIS-NIR spectra were performed on the coal fly ash, biomass ash and geopolymers. They showed that the obtained geopolymers possess optical and photocatalytic properties. The similarity of the geopolymer network and the zeolite framework in relation to ion exchange and accommodation of metal ions open questions on possibilities for the application of geopolymer materials as amorphous analogues of zeolite. The FT-IR spectra analyses were used on the geopolymers before and after metals sorption. It was found that geopolymer based on ash from biomass combustion has better sorption properties compared to geopolymer based on ash from coal combustion.

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Authors and Affiliations

Elżbieta Sitarz-Palczak
Jan Kalembkiewicz
Dagmara Galas
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Abstract

Preliminary lab-scale investigations were conducted on slagging abatement in biomass-firing by fuel mixing. Three agriculture biomass fuels and olive cake were used in the experiments. Polish lignites and bituminous coals were examined as anti-sintering additives. The effects of chlorine release, potassium retention and ash sintering were examined by heating samples of biomass fuels and additives in the muffle oven and, next, firing them in the laboratory down-fired furnace at the temperature in the range of 800-1150ºC. The obtained slag samples were analysed on: chlorine and potassium content, sintering tendency and crystalline components. Among the examined coals lignite from Turów mine and bituminous coal from Bolesław Śmiały mine appeared to be the most effective in potassium retention in aluminosilicate and chlorine release from slag. Possibly the major factor of these coals which reduced ash sintering was relatively high content of kaolinite

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Authors and Affiliations

Włodzimierz K. Kordylewski
Krzysztof J. Mościcki
Karol J. Witkowski
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Abstract

The paper presents the results of the mechanical, electrical, CCSEM and XRD measurements of hard coal, conducted in simulated conditions of sintering in atmospheres of O2/CO2,. The changes of the coal ash resistivity are correlated with the content of the oxides and with the sintering temperature determined by the mechanical test and Leitz method. The SEM-EDS analysis was conducted for deposits on the probe. The changes of the measured ash samples, observed during sintering process in O2/CO2 atmosphere, were discussed in the ash microstructure point of view.

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Authors and Affiliations

Dorota Nowak-Woźny
Wojciech Moroń
Bartosz Urbanek
Wiesław Rybak
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Abstract

Oxide fraction of industrial zinc ash from hot dip galvanizing was characterized in terms of composition and leaching behaviour in 10% sulfuric acid solution. Waste product contained about 68% Zn, 6% Cl, 3% Al, 1% Fe, 0.7% Si, 0.5% Pb and minor percentages of other metals (Mn, Cu, Ti etc.). It consisted mainly of zinc oxide contaminated with metallic zinc, zinc hydroxide chloride and silica. Dissolution of the metals from the material was determined as a function of solid to liquid ratio (50-150 kg/m3), temperature (20°C and 35°C) and agitation rate (300 and 900 rpm). The best results (50 g/dm3 Zn(II) at 78% zinc recovery) were obtained for 100 kg/m3 and the temperature of 20°C. Increase in the agitation rate had weak effect on the zinc yield. The final solutions were contaminated mainly by Fe(II, III) ions. Leaching of the material was an exothermic process with the reaction heat of about 800 kJ/kg.
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Authors and Affiliations

G. Włoch
E. Rudnik
L. Szatan
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Abstract

Petrographic and physico-chemical analyses of ashes are carried out on a large scale and presented in numerous scientific papers. The mentioned ashes are obtained from filters and electrostatic precipitators mounted in large industrial installations. The large-scale analysis of the ashes obtained directly from grate furnaces or blast furnaces mounted in low-power boilers started with combating smog and low-stack emissions. The collection of ash samples from household furnaces usually involves the analysis of the combustion of waste in low-power boilers. This is justified in the case of old type boilers, which were designed to use virtually any fuel. Currently, new types of boilers, designed to burn dedicated fuels, are offered on the market. The aim is to use only renewable fuels (biomass) or fossil fuels with high quality parameters, which are more environment-friendly, e.g. eco-pea coal, lignite briquettes, or peat briquettes. The authors of the study focused on examining the ash obtained from boilers for burning wood pellets by performing microscopic analysis of residues after biomass combustion. The above mentioned analysis provides a comprehensive information on the efficiency of the combustion process, the content of contaminants remaining in the ash, and the suitability of ash for other applications. The entire process, from the moment of collecting the samples to the execution of the analysis takes up to 12 hours, which ensures a quick decision on furnace adjustment or fuel change. The ash components were determined based on the results obtained by the Fly-Ash Working Group of the International Committee for Coal and Organic Petrology (ICCP). The mentioned classification has been supplemented with new key elements occurring in ashes resulting from the combustion of wood pellets in household boilers. This allowed determining the percentage content of characteristic components in the tested material, which can be used as a specific benchmark when issuing opinions on the quality and efficiency of the boiler and the combusted pellets.

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Authors and Affiliations

Zbigniew Jelonek
Adam Nocoń
Iwona Jelonek
Marta Jach-Nocoń
Keywords fly ash REE leaching
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Abstract

The aim of the work was to draw attention to the usefulness of the alkaline thermal activation process with sodium hydroxide in the process of rare earth metal leaching (REE), from fly ash with hydrochloric acid and nitric acid(V). The work is a part of the authors’ own research aimed at optimizing the REE recovery process coming from fly ash from hard coal combustion.

The article contains an assessment of the possibility of leaching rare earth metals (REE) from fly ash originating from the combustion of hard coal in one of the Polish power plants. The process was carried out for various samples consisting of fly ash and sodium hydroxide and for different temperatures and reaction times. The process was carried out for samples consisting of fly ash and sodium hydroxide containing respectively 10, 20 and 30% on NaOH by weight in relation to the weight of fly ash. Homogenization of these mixtures was carried out wet, and then they were baked at 408K, 433K and 473K, for a period of three hours. The mixture thus obtained was ground to a particle size of less than 0.1 mm and washed with hot water to remove excessive NaOH. The solid post-reaction residue was digested in concentrated HCl at 373K for 1 hour at a weight ratio fs/fc of 1:10. The results of chemical analysis and scanning microscopic analysis along with EDS analysis and X-ray analysis were used to characterize the physicochemical properties of the tested material.

The results indicated that REE recovery from fly ash strictly depends on heat treatment temperature with NaOH, and an increase in REE recovery from alkaline-activated fly ash along with increasing the amount of NaOH in relation to fly ash mass.

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Authors and Affiliations

Sylwester Żelazny
Henryk Świnder
ORCID: ORCID
Andrzej Jarosiński
Barbara Białecka
ORCID: ORCID
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Abstract

The galvanic sludges contain a number of toxic heavy metals, potentially mobilized as chemically active ions under environmental conditions as. This study explores the application of fly ash-based geopolymers for the removal of Zn ions from galvanizing sludge. In this study, geopolymers, synthesized via the geopolymerization method, were used to remove Zn from post-galvanized sewage sludge. Two types of geopolymers were used, derived from ash from coal combustion and biomass combustion. Structural, morphological, and surface properties were characterized using FTIR and SEM, respectively. In addition, BET and Langmuir isotherms, along with analyses such as t-Plot and BJH method for porous solids were conducted. The results indicate that the geopolymer derived from coal combustion ash is a more effective sorbent for Zn(II) ions, exhibiting a removal efficiency of 99.9%, compared to 40.7% for the geopolymer derived from biomass combustion ash. The FTIR spectra analysis reveals the presence of bonds between the -OH and/or Si-OH groups on the geopolymers’ surface and the Zn(II) ions. The environmentally and economically advantageous process maximizes the recovery of a valuable component at minimal cost, yielding relatively clean monometallic waste suitable for reuse.
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Bibliography

[1]. Adewuyi, YG. (2021). Recent Advances in Fly-Ash-Based Geopolymers: Potential on the Utilization for Sustainable Environmental Remediation, ACS Omega, 24, pp. 15532-15542. DOI:10.1021/acsomega.1c00662
[2]. Akono, A.T., Koric, S. & Kriven, W.M. (2019). Influence of pore structure on the strength behavior of particle- and fiber reinforced metakaolin-based geopolymer composites, Cement and Concrete Composites, 104, pp. 103361. DOI:10.1016/j.cemconcomp.2019.103361
[3]. Alehyen, S., Zerzouri, M., el Alouani, M., el Achouri, M. & Taibi M. (2017). Porosity and fire resistance of fly ash based geopolymer. Journal of Materials and Environmental Sciences, 8, pp. 3676-3689
[4]. Ayilara, M.S., Olanrewaju, O.S., Babalola, O.O. & Odeyemi, O. (2020). Waste management through composition: Challenges and Potentials, Sustainability, 12, pp. 4456-4479. DOI:10.3390/su12114456
[5]. Barakat, M.A. (2003). The pyrometallurgical processing of galvanizing zinc ash and flue dust, Journal of Minerals, Metals & Materials Society, 55, pp. 26–29. DOI:10.1007/s11837-003-0100-4
[6]. Bednarik, M., Vondruska, M.& Koutny, M. (2005). Stabilization/solidification of galvanic sludges by asphalt emulsions, Journal of Hazardous Materials, 122, pp. 139-145. DOI:10.1016/j.jhazmat.2005.03.021
[7]. Brylewska, K., Rożek, P., Król, M. & Mozgawa, W. (2018). The influence of dealumination/desilication on structural properties of metakaolin-based geopolymers, Ceramics International, 44, pp. 12853-12861. DOI:10.1016/J.CERAMINT.2018.04.095
[8]. Butenegro, J.A., Bahrami, M., Abenojar, J. & Martínez, M.A. (2021). Recent Progress in Carbon Fiber Reinforced Polymers Recycling: A Review of Recycling Methods and Reuse of Carbon Fibers, Materials, 14, pp. 6401. DOI:10.3390/ma14216401
[9]. Donohue, M.D. & Aranovich, G.L. (1998). Adsorption hysteresis in porous solids, Journal of Colloid and Interface Science, 205, pp. 121-130. DOI:10.1006/jcis.1998.5639
[10]. Dvořák, P. & Jandova, J. (2005). Hydrometallurgical recovery of zinc from hot dip galvanizing ash, Hydrometallurgy, 77, pp. 29-33. DOI:10.1016/j.hydromet.2004.10.007
[11]. Galas, D., Kalembkiewicz, J. & Sitarz-Palczak, E. (2016). Physicochemistry, morphology and leachability of selected metals from post-galvanized sewage sludge from screw factory in Łańcut, SE Poland, Contemporary Trends in Geoscience, 5, pp. 83-91. DOI:10.1515/ctg-2016-0006
[12]. Jha, M.K., Kumar, V.& Singh R.J. (2001). Review of hydrometallurgical recovery of zinc from industrial wastes, Resources, Conservation and Recycling, 33, pp. 1-22. DOI:10.1016/S0921-3449(00)00095-1
[13]. Imtiaz, L., Rehman, S.K.U., Memon, S.A., Khan, M.K. & Javed, M.F. (2020). A review of recent developments and advances in eco-friendly geopolymer concrete, Applied Sciences, 10, pp. 7838-7894. DOI:10.3390/app10217838
[14]. Irisawa, T., Iwamura, R., Kozawa, Y., Kobayashi, S. & Tanabe, Y. (2021). Recycling methods for thermoplastic-matrix composites having high thermal stability in focusing on reuse of the carbon fibers, Carbon, 175, pp. 605. DOI:10.1016/j.carbon.2021.01.042
[15]. Jeyasundar, P.G.S.A., Ali, A. & Zhang, Z. (2020). Waste treatment approaches for environmental sustainability, Microorganisms for Sustainable Environmental and Health, 6, pp. 119-135. DOI:10.1016/B978-0-12-819001-2.00006-1
[16]. Khan, M.N.N., Kuri, J.C. & Sarker, P.K. (2021). Effect of waste glass powder as a partial precursor in ambient cured alkali activated fly ash and fly ash-GGBFS mortars, Journal of Building. Engineering, 34, pp. 101934-101945. DOI:10.1016/j.conbuildmat.2020.120177
[17]. Kriven W.M., Bell J.L. & Gordon M. (2006). Microstructure and Microchemistry of Fully-Reacted Geopolymers and Geopolymer Matrix Composites. In: Bansal, N.P., Singh, J.P., Kriven, W.M., Schneider, H., Advances in Ceramic Matrix Composites IX (pp. 227-250). The American Ceramic Society, Wiley, New York 2006.
[18]. Krishnan, S., Zulkapli, N.S., Kamyab, H., Taib, S.M., Bin Md Din, M.F., Majid, Z.A., Chaiprapat, S., Kenzo, I., Ichikawa, Y., Nasrullah, M., Chelliapan, S. & Othman, N. (2021). Current technologies for recovery of metals from industrial wastes: An overview, Environmental Technology & Innovation, 22, pp.101525. DOI:10.1016/j.eti.2021.101525
[19]. Król, M., Rożek, P., Chlebda ,D. & Mozgawa, W. (2018). Influence of alkali metal cations/type of activator on the structure of alkali-activated fly ash - ATR-FTIR studies, Spectrochim. Acta Part A: Molecular and Biomolecular Spectroscopy, 198, pp. 33-37. DOI:https://doi.org/10.1016/j.saa.2018.02.067
[20]. Krstić, I., Zec, S., Lazarević, V., Stanisavljević, M. & Golubović, T (2018). Use of sintering to immobilize toxic metals present in galvanic sludge into a stabile glass-ceramic structure, Science of Sintering, 50, pp. 139-147. DOI:10.2298/SOS1802139K
[21]. Kwon, O-S. & Sohn, I.L. (2020). Fundamental thermokinetic study of a sustainable lithium-ion battery pyrometallurgical recycling process, Resources, Conservation and Recycling, 158, pp. 104809. DOI:10.1016/j.resconrec.2020.104809.
[22]. Letcher, R.M.b& Vallero, D.A. (2019). Waste. A Handbook for Management, 2, pp. 585-630. DOI:10.1016/B978-0-12-381475-3.10034-8
[23]. Li, M., Xu, J. & Li, B. (2018). Analysis of development of hazardous waste disposal technology in China, IOP Conf. Series: Earth and Environmental Science, 178, pp. 1-7. DOI:10.1088/1755-1315/178/1/012027
[24]. Luo, X., Liu, G., Xia, Y., Chen, L., Jiang, Z., Zheng, H. & Wang, Z. (2017). Use of biochar-compost to improve properties and productivity of the degraded coastal soil in the Yellow River Delta China, Journal of Soil and Sediments, 17, pp. 780-789. DOI:10.1007/s11368-016-1361-1
[25]. Luukkonen, T., Runtti, H., Niskanen, M., Tolonen, E., Sarkkinen, M., Kemppainen, K.,Rämö, J. & Lassi, U. (2016). Simultaneous removal of Ni(II), As(III), and Sb(III) from spiked mine effluent with metakaolin and blast-furnace-slag geopolymers, Journal of.Environmental Management, 166, pp. 579-588. DOI:10.1016/j.jenvman.2015.11.007
[26]. Luz, C.A., Rocha, J.C., Cheriaf, M. & Pera, ,J. (2009). Valorization of galvanic sludge in sulfoaluminate cement, Construction and Building Materials, 23, pp. 595-601. DOI:10.1016/j.conbuildmat.2008.04.004
[27]. Makisha, N. & Yunchina, M. (2017). Methods and solutions for galvanic waste water treatment, MATEC Web of Conferences, 106, pp. 1-6. DOI:10.1051/matecconf/201710607016
[28]. Nanda, S. & Berruti, F. (2021). Municipal solid waste management and landfilling technologies: a review, Environmental Chemical Letter, 19, pp. 1433-1456. DOI:10.1007/s10311-020-01100-y
[29]. Pu, S., Duan, P., Yan, C. & Ren, D. (2016). Influence of sepiolite addition on mechanical strength and microstructure of fly ash-metakaolin geopolymer paste. Advanced Powder Technology,27, pp. 2470-2477. DOI:10.1016/j.apt.2016.09.002
[30]. Riaz, M., Bing Chen, A., Aminul Haque, M. & Shah, S.F.A. (2020). Utilization of industrial and hazardous waste materials to formulate energy-efficient hygrothermal biocomposites, Journal of Cleaner Production, 250, pp. 119469. DOI:10.1016/j.jclepro.2019.119469
[31]. Rossini, G. & Bernardes, A.M. (2006). Galvanic sludge metals recovery by pyrometallurgical and hydrometallurgical treatment, Journal of Hazardous Materials, 131, pp. 210-216. DOI:10.1016/j.jhazmat.2005.09.035.
[32]. Rudnik, E. (2019). Investigation of industrial waste materials for hydrometallurgical recovery of zinc, Minerals Engineering,139, pp. 105871. DOI:10.1016/j.mineng.2019.105871
[33]. Rybak, J., Gorbatyuk, S.M., Bujanovna-Syuryun, K.C., Khairutdinov, A., Tyulyaeva, Y. & Makarov, P.S. (2021). Utilization of Mineral Waste: A Method for Expanding the Mineral Resource Base of a Mining and Smelting Company, Metallurgist, 64, pp. 851-861. DOI:10.1007/s11015-021-01065-5
[34]. Sanito, R.C., Bernuy-Zumaeta, M., You, S-J. & Wang Y-F. (2022). A review on vitrification technologies of hazardous waste, Journal of Environmental Management, 316, pp. 115243. DOI:10.1016/j.jenvnman.2022.115243
[35]. Sinha, S., R. Choudhari, R., Mishra, D., Shekhar, S., Agrawal, A. & Sahu, K.K. (2020). Valorisation of waste galvanizing dross: Emphasis on recovery of zinc with zero effluent strategy, Journal of Environmental Management, 256, pp. 109985. DOI:10.1016/j.jenvman.2019.109985
[36]. Sitarz–Palczak, E.; Kalembkiewicz, J. & Galas, D. (2019). Comparative study on the characteristics of coal fly ash and biomass ash geopolymers, Archives of Environmental Protection 45, pp. 126-135. DOI:10.24425/aep.2019.126427
[37]. Stepanov, S., Morozov, N., Morozova, N., Ayupov, D., Makarov, D. & Baishev, D. (2016). Efficiency of Use of Galvanic Sludge in Cement Systems, Procedia Engineering, 165, pp.1112-1117. DOI:10.1016/j.proeng.2016.11.827
[38]. Świerk, K., Bielicka, A., Bojanowska, I. & Maćkiewicz, Z. (2007). Investigation of Heavy Metals Leaching from industrial wastewater sludge, Polish Journal of Environmental Studies, 16, pp. 447-451.
[39]. Šćiban, M., Radetić, B., Kevrešan, Z. & Klašnja, M. (2007). Adsorption of heavy metals from electroplating wastewater by wood sawdust, Bioresource Technology, 98, pp. 402-409. DOI:10.1016/j.biortech.2005.12.014
[40]. Toledo, M., Siles, J.A., Gutierrez, M.C. & Martin, M.A. (2018). Monitoring of the composting process of different agroindustrial waste: influence of the operational variables on the odorous impact, Waste Management, 76, pp. 266-274. DOI:10.1016/j.wasman.2018.03.042
[41]. Ugwu, E.I. & Agunwamba, J.C. (2020). A review on the applicability of activated carbon derived from plant biomass in adsorption of chromium, copper, and zinc from industrial wastewater, Environmental Monitoring and Assessment, 192, pp. 240-252. DOI:10.1007/s10661-020-8162-0
[42]. Yang, J., Firsbach, F. & Sohn, I.L. (2022). Pyrometallurgical processing of ferrous slag “co-product” zero waste full utilization: A critical review, Resources, Conservation and Recycling, 178, pp. 106021. DOI:10.1016/j.resconrec.2021.106021
[43]. Zehua, J., Liya, S. & Yuansheng, P. (2020). Synthesis and toxic metals (Cd, Pb, and Zn) immobilization properties of drinking water treatment residuals and metakaolin-based geopolymers, Materials Chemistry and Physics, 242, pp. 1-9. DOI:10.1016/j.matchemphys.2019.122535
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Authors and Affiliations

Elżbieta Sitarz-Palczak
1
ORCID: ORCID

  1. Rzeszow University of Technology, Poland
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Abstract

Coal ash produced from thermal power plants as a substitute for conventional construction material has increased considerably in recent years. In the past, studies on partial replacement of soil were carried out with a single type of ash. Because of the insufficient evidence, limited research has been initiated on the productive usage of Fly and Bottom Ashes. This paper aims to study the properties of these materials and investigate their efficacy in road construction. Laboratory investigations were conducted to assess chemical and physical properties and mechanical performance to evaluate both ash types in pavement construction. The rutting factor is calculated for various combinations of coal ash materials with the addition of polypropylene fiber as a reinforcement in increments of 0.1% of its total weight with an aspect ratio of 200. The analytical tool ANSYS is used to validate the service life, vertical strain and quality of reinforced ash materials.

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Authors and Affiliations

S.M. Subash
N. Mahendran
M. Manoj Kumar
M. Nagarajan
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Abstract

The durability characteristics of Engineered Cementitious Composites (ECC) with various fibers such as polypropylene and glass were investigated in view of developing composites with high resistance to cracking. ECC offer large potential for durable civil infrastructure due to their high tensile strain capacity and controlled micro-crack width. In this study, fibre volume fractions (0.5%, 1%, 1.5%, and 2%) of both polypropylene and glass fibers varied and durability measures such as a rapid chloride penetration test, sorptivity, water absorption, acid attack, and sulphate attack were measured. Increasing the fiber content up to 1.5% improved the durability properties of ECC. The test results indicate that the glass fiber-reinforced Engineered Cementitious Composites have better durability characteristics than polypropylene fiber-reinforced ECC.

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Authors and Affiliations

S. Ranjith
R. Venkatasubramani
V. Sreevidya
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Abstract

The present study examines some durability aspects of ambient cured bottom ash geopolymer concrete (BA GPC) due to accelerated corrosion, sorptivity, and water absorption. The bottom ash geopolymer concrete was prepared with sodium based alkaline activators under ambient curing temperatures. The sodium hydroxide used concentration was 8M. The performance of BA GPC was compared with conventional concrete. The test results indicate that BA GPC developes a strong passive layer against chloride ion diffusion and provides better protection against corrosion. Both the initial and final rates of water absorption of BA GPC were about two times less than those of conventional concrete. The BA GPC significantly enhanced performance over equivalent grade conventional concrete (CC).

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Authors and Affiliations

R. Saravanakumar
V. Revathi
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Abstract

The problem of of the use of fly ash still constitutes a research and exploration area for scientists. This is due to the fact that, 6,000,000 Mg of coal combustion by-products (CCB) are storage on landfills yearly in Poland alone. One of the potential directions of using fly ash is to use it as a substrate in hydrothermal syntheses of mesoporous materials (synthetic zeolites). Zeolites are aluminosilicates with a spatial structure. Due to their specific structure they are characterized by a number of specific properties among others molecular-sieve, ion-exchange and catalytic that can be used in engineering and environmental protection. So far, the synthesis has been carried out using coal combustion by-products such as fly ash or microsphere. The article analyzes whether separation from the fly ash of the appropriate fraction (below 63 μm) will affect the formation of zeolite grains. The syntheses were carried out using class F fly ash and the fraction separated from it, which was obtained by sieving the ash through a 63 μm sieve. Chemical (XRF) and mineralogical (XRD, SEM-EDS) analyzes were carried out for substrates as well as the obtained reaction products. In the case of substrates, the analysis did not show any significant differences between the ash and the separated fraction. However, in products after synthesis (Na-X zeolite with a small amount of Na-P1 zeolite, and small amounts of quartz and unreacted aluminosilicate glass - mullite) higher aluminum and sodium contents were observed from the separated fraction, with a lower calcium and potassium content. A small proportion of illite was observed on the diffraction curve of the zeolite from the fraction. Observations of grain morphology showed no differences in formation. Based on the conducted analyzes, it can be stated that, considering the economics of the synthesis process, the separation of fine fractions from the fly ash does not affect the quality of the synthesis process.

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Authors and Affiliations

Dorota Czarna-Juszkiewicz
Piotr Kunecki
Rafał Panek
Magdalena Wdowin
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Abstract

This study focused on the reclamation of ash from incineration process and development of new artificial lightweight aggregate (LWA) that have comparable properties with existing natural coarse aggregate. The main objective of this study is to examine potential use of recycled municipal solid waste incineration (MSWI) ash as raw material in LWA production with a method of cold-bonded pelletization. Two types of incineration ash which is bottom ash (BA) and fly ash (FA) were collected from Cameron Highland Incineration Plant, Malaysia. The properties of BA and FA are studied by means of X-Ray Fluorescence (XRF) and microstructure of these ashes were inspected using Scanning Electron Microscope (SEM). The properties of BALA and FALA produced in this study is examined including loose bulk density, water absorption and aggregate impact value (AIV). From the results of both types of artificial LWA, the lowest loose bulk density of BALA is BALA50 with 564.14 kg/m3 and highest is at 831.19 kg/m3. For FALA50, lowest loose bulk density is 573.64 kg/m3 and highest is 703.35 kg/m3. Water absorption of BALA and FALA is quite similar with one another in with the value of 23.8% and 22.6%, respectively. Generally, FALA have better qualities of LWA comparing with BALA with lower bulk density and water absorption and can be categorized as strong aggregate. In summary, reclamation and reutilization of incinerator ash has generated acceptable qualities for artificial LWA. Both types of BA and FA shown a great potential to be recycled as additional materials in artificial aggregate production.
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Authors and Affiliations

Norlia Mohamad Ibrahim
1 2
ORCID: ORCID
Roshazita Che Amat
1 2
ORCID: ORCID
Mustaqqim Abdul Rahim
1
ORCID: ORCID
Nur Liza Rahim
1 2
ORCID: ORCID
Abdul Rahim Abdul Razak
3
ORCID: ORCID

  1. Universiti Malaysia Perlis (UniMAP), Faculty of Civil Engineering Technology, Perlis, Malaysia
  2. Universiti Malaysia Perlis (UniMAP), Faculty of Chemical Engineering Technology, Center of Excellence Geopolymer and Green Technology, Perlis, Malaysia
  3. Universiti Malaysia Perlis (UniMAP), Faculty of Electrical Engineering Technology, Perlis, Malaysia
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Abstract

The reduction of mercury emissions in currently existing coal-based power plant solutions by each method i.e. preliminary, primary and secondary (consisting of introducing coal into the combustion chamber and then removing mercury from the combustion gases arising from the combustion process) does not solve the problem of achieving the required limits by power plants. Therefore, the need has arisen to look for new, effective solutions.

The results presented in the work concern the analysis of environmental benefits for the use of zeolites obtained from by-products of coal combustion such as fly ash (from hard coal and lignite) in technologies for removing gaseous forms of mercury. The tested zeolites were silver-modified X-type structures. The reference material in the considerations was active carbon impregnated with bromine – a commercially available sorbent on the market.

The article considers environmental benefits resulting from the use of tested zeolites taking the product life cycle, sorbent efficiency and the possibility of its regeneration compared to activated carbon (AC/Br) into account. The LCA analysis was performed taking the estimated material and energy balances of the manufacturing processes into account. When comparing the production process of type X zeolite materials on the processing line and activated carbons in the amount necessary to capture 375 g Hg from exhaust gases, the LCA analysis showed that zeolites contribute to a lower potential impact on the environment. The advantage is that 5 times less zeolite sorbent than activated carbons is needed to capture the same amount of mercury. In addition, zeolite materials can be regenerated, which extends their life time

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Authors and Affiliations

Łukasz Lelek
Magdalena Wdowin
ORCID: ORCID
Rafał Panek
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Abstract

This work presents results of the release of polycyclic aromatic hydrocarbons (PAH) from granules composed of fly ashes, which are the product of hard and coal combustion and sewage sludge. 3 types of granulates by a weight ratio of ash to sludge 3:7 and 1: 1 were used. The research of PAH leaching was conducted within a simulated period of 24 months, with the examination of PAH washing out every three months. The highest amounts of PAH (297 - 330 μg/kg dw.) were obtained_from granulates containing 7 parts by weights of sewage sludge (3 times higher in comparison with the granulate containing ash and sludge in ratio of I: 1 ). The maximum PAH release from all the examined granulates took place in the 9th month of the research. Benzo(k)fluoranthene revealed the highest fraction (67.4-76.0%) of all examined compounds.
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Authors and Affiliations

Czesława Rosik-Dulewska
ORCID: ORCID
Urszula Karwaczyńska
Tomasz Ciesielczuk
ORCID: ORCID
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Abstract

Fly ash which has been separated from the flue gas stream as a result of fossil fuels combustion constitutes a huge amount of waste generated worldwide. Due to environmental problems, many directions of their rational use have been developed. Various attempts to convert fly ash into sorption materials, mainly synthetic zeolites, are conducted successfully. In this paper, an attempt was made to convert fly ash from lignite combustion from one of the Polish power plants, using alkaline hydrothermal synthesis. The primary phases in the fly ash were: quartz, gehlenite, mullite, hematite, feldspar, lime, anhydrite, occasionally grains of ZnO phase and pyrrhotite, glass and unburned fuel grains. As a result of hydrothermal synthesis a material containing new phases – pitiglianoite and tobermorite was obtained. Among the primary ash constituents, only gehlenite with an unburned organic substance, on which tobermorite with crystallized pitiglianoite was present. As a result of detailed testing of products after synthesis, it was found that among the tested grains:

• two populations can be distinguished – grains containing MgO and Fe2O3 as well as grains

containing Fe2O3 or MgO or containing none of these components,

• the main quantitative component was pitiglianoite,

• pitiglianoite was present in larger amounts in grains containing Fe2O3 or MgO or in the absence of both components than in grains in which Fe2O3 and MgO were found.

The results of the study indicate that in post-synthesis products, the contribution of components were as follows: pitiglianoite – 39.5% mas., tobermorite – 54% mas., gehlenite – 3% mas. and organic substance – 3.5% mas.

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Authors and Affiliations

Barbara Białecka
ORCID: ORCID
Zdzisław Adamczyk
ORCID: ORCID
Magdalena Cempa
ORCID: ORCID
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Abstract

Flexible and rigid road pavement deteriorates over time and needs high-performance patching repair materials. Cold mix asphalt patching is an easy and inexpensive repair material to repair potholes and other damaged roads. However, the repaired road pavement fails because it doesn’t have adequate compressive and bonding strength to the substrate. Thus, this research uses high-performance geopolymer repair materials to patch against road pavement potholes substrate. Geopolymer repair materials could improve the bonding strength, making them suitable for road repair purposes. For making geopolymer repair materials, the main materials used were high calcium aluminosilicate source materials such as fly ash, sodium hydroxide, sodium silicate, and water. This study tested the compressive and bonding strength of geopolymer repair materials after 1, 7, 14, and 28 days. This study found that the compressive strength of 90 g of alkali activator was the highest, at 37.0 MPa. The bonding strength improved gradually from day 1 to day 14, and then considerably on day 28. The compressive strength and bonding strength both increase in direct proportion to the amount of alkali activator present. Alkali activator is optimal at 90 grams for compressive strength and bonding strength of geopolymer repair materials.
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Authors and Affiliations

W.W.A. Zailani
1
ORCID: ORCID
N.M. Apandi
1
ORCID: ORCID
M.M.A. Abdullah
2
ORCID: ORCID
M.F.M. Tahir
2
ORCID: ORCID
I Nengah Sinarta
3
Komang Ayu Ni Agustini
3
ORCID: ORCID
S. Abdullah
1
ORCID: ORCID

  1. Universiti Teknologi MARA, College of Engineering, School of Civil Engineering, 40450 Shah Alam, Selangor, Malaysia
  2. Universiti Malaysia Perlis, Center of Excellence Geopolymer and Green Technology (CEGeoGTech), 01000 Kangar, Perlis, Malaysia
  3. Warmadewa University, Faculty of Engineering and Planning, Den Pasa r, 80239, Indonesia
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Abstract

The article presents the results of the analysis of straw obtained from ripening wheat, which was subjected to four water soaking cycles in demineralized water. The soaking was carried out under laboratory conditions at 20°C. As a result, part of mineral matter, including a significant amount of alkaline sodium and potassium salts and substances containing sulfur and phosphorus, was washed out. The process of soaking has a great impact on the chemical composition of ash obtained from water-treated straw, which increased its acidity. The Na2O content in the analyzed ash has decreased by 78%, while the K2O content has decreased by 60%. In turn, the content of water-insoluble, acid-forming SiO2 has increased by 80%. As a consequence, a positive change in the values of indices, on the basis of which the tendency of straw to slagging and deposit formation during the combustion and gasification processes is assessed, has been observed. Already after the second water soaking cycle it became apparent, based on the AI alkali index, that the examined fuel should not cause difficulties resulting from the increased intensity of use of the boiler during the combustion process. Meanwhile, the value of the BAI bed agglomeration index was considered to be safe, indicating a low possibility of bed agglomeration during the combustion or fluidized bed gasification, after the third water soaking cycle. The third of the analyzed indices, the Fu fouling index, did not indicate any tendency to deposit formation during the combustion; however, four water soaking cycles reduced its initial value by 80%. The last of the analyzed indexes, the SR, slag viscosity index did not change its value during the experiment, which, both for the raw straw and after subsequent soaking cycles, indicated that the fuel should have a low tendency to accumulate slag during the combustion process.
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Authors and Affiliations

Andrzej Rozwadowski
Tadeusz Dziok
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Abstract

This article presents the results of the study of changes in mineral and chemical composition of artificial aggregates consisting of coal shale (a hard coal mining waste) and fluidized ashes. Such an aggregate was used for road construction. After completion of the construction works but before making the road available for public use, significant deformation of the surface in the form of irregular buckling of the asphalt layer occurred. It was excluded that this resulted from mining damage, design errors or performance mistakes, among others. A study of the materials that had been incorporated in the construction layers was undertaken in order to find the component and the mechanism responsible for the buckling of the road surface. A comparison of the mineral and chemical composition of aggregate samples collected from the embankment where the road buckled with the reference sample and samples from places without deformations showed that the bumps in the road embankment consisted of minerals that were not initially present in the aggregate. Wastes produced as a result of high temperatures (slag and power plants ashes, metallurgical wastes) are not as stable in terms of chemical and phase composition in the hypergenic environment. As a result of the processes occurring in the road embankment, anhydrite, which is the primary component of fluidized ashes, was transformed into gypsum and ettringite. As a result of contact with water CaO (present in fluidized ashes) easily changed into calcium hydroxide. As the crystallization of these minerals is expansive, it resulted in the filling of pores and, in extreme cases, in a substantial increase in the volume of the aggregate and, consequently, in the deformation of the road surface.
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Authors and Affiliations

Zdzisław Adamczyk
Marcin Grygierek
Marian Łupieżowiec
Jacek Nowak
Ewa Strzałkowska

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