Enhancing thermal efficiency and durability of sintered clay bricks through incorporation of polymeric waste materials
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[1] M. J. Munir. A LITERATURE REVIEW ON ALKALI SILICA REACTIVITY OF CONCRETE IN PAKISTAN , 2023, Pakistan Journal of Science.
[2] Guangwei Liang,et al. Reusing waste red brick powder as partial mineral precursor in eco-friendly binders: Reaction kinetics, microstructure and life-cycle assessment , 2022, Resources, Conservation and Recycling.
[3] O. Gencel,et al. Recycling of metallurgical wastes in ceramics: A sustainable approach , 2022, Construction and Building Materials.
[4] Linbing Wang,et al. Study on Frost Resistance of Eps Concrete Based on Eps Beads Wrapping Modification , 2022, SSRN Electronic Journal.
[5] Y. H. Kim,et al. Review of concrete with expanded polystyrene (EPS): Performance and environmental aspects , 2022, Journal of Cleaner Production.
[6] O. Sanusi,et al. An overview on the recycling of waste ground tyre rubbers in thermoplastic matrices: Effect of added fillers , 2021, Resources, Conservation and Recycling.
[7] H. Colorado,et al. Composite materials made of waste tires and polyurethane resin: A case study of flexible tiles successfully applied in industry , 2021, Case Studies in Construction Materials.
[8] T. Ozbakkaloglu,et al. The combined effect of crumb rubber aggregates and steel fibers on shear behavior of GFRP bar-reinforced high-strength concrete beams , 2021 .
[9] A. Karimipour,et al. Influence of bottom ash and polypropylene fibers on the physico-mechanical, durability and thermal performance of foam concrete: An experimental investigation , 2021, Construction and Building Materials.
[10] M. Chandel,et al. Valorization of fine fraction from legacy waste as fired bricks: A step towards circular economy , 2021, Journal of Cleaner Production.
[11] Bing Chen,et al. Synergistic effect of rice husk, glass and marble sludges on the engineering characteristics of eco-friendly bricks , 2021 .
[12] O. Gencel,et al. Effect of waste-based micro cellulose fiber as pore maker on characteristics of fired clay bricks , 2021 .
[13] O. Gencel,et al. Feasibility of using clay-free bricks manufactured from water treatment sludge, glass, and marble wastes: An exploratory study , 2021 .
[14] O. Gencel,et al. Recycling industrial slags in production of fired clay bricks for sustainable manufacturing , 2021 .
[15] Aneke Frank Ikechukwu,et al. Strength and durability performance of masonry bricks produced with crushed glass and melted PET plastics , 2021, Case Studies in Construction Materials.
[16] Yufei Wu,et al. Application of waste tire rubber and recycled aggregates in concrete products: A new compression casting approach , 2021 .
[17] O. Gencel,et al. Recycling and immobilization of zinc extraction residue in clay-based brick manufacturing , 2021 .
[18] Jianzhuang Xiao,et al. Fresh and anisotropic-mechanical properties of 3D printable ultra-high ductile concrete with crumb rubber , 2021 .
[19] M. Jordán,et al. Technological behaviour and leaching tests in ceramic tile bodies obtained by recycling of copper slag and MSW fly ash wastes , 2021 .
[20] Marwa Dabaieh,et al. A comparative study of life cycle carbon emissions and embodied energy between sun-dried bricks and fired clay bricks , 2020 .
[21] Yufei Wu,et al. Axial stress-strain performance of steel spiral confined acetic acid immersed and mechanically rubbed recycled aggregate concrete , 2020 .
[22] O. Gencel,et al. Effects of concrete waste on characteristics of structural fired clay bricks , 2020 .
[23] J. Roning,et al. Reuse of copper slag in high-strength building ceramics containing spodumene tailings as fluxing agent , 2020 .
[24] Young Kyoung Song,et al. Rapid Production of Micro- and Nanoplastics by Fragmentation of Expanded Polystyrene Exposed to Sunlight. , 2020, Environmental science & technology.
[25] F. Xing,et al. Effect of compression casting method on the compressive strength, elastic modulus and microstructure of rubber concrete , 2020 .
[26] J. J. del Coz-Díaz,et al. Waste tire rubber particles modified by gamma radiation and their use as modifiers of concrete , 2020 .
[27] Md Tareq Rahman,et al. Recycling waste rubber tyres in construction materials and associated environmental considerations: A review , 2020 .
[28] O. Jankovský,et al. Eco-friendly concrete with scrap-tyre-rubber-based aggregate – Properties and thermal stability , 2019, Construction and Building Materials.
[29] E. Esmeray,et al. Utilization of sewage sludge, oven slag and fly ash in clay brick production , 2019, Construction and Building Materials.
[30] O. Kizinievič,et al. Eco-friendly fired clay brick manufactured with agricultural solid waste , 2018, Archives of Civil and Mechanical Engineering.
[31] R. Belarbi,et al. Characterization of EPS lightweight concrete microstructure by X-ray tomography with consideration of thermal variations , 2018, Construction and Building Materials.
[32] M. Nehdi,et al. Development of Eco-Friendly Fired Clay Bricks Incorporating Recycled Marble Powder , 2018 .
[33] A. Ardeshir,et al. Characteristics of heat insulating clay bricks made from zeolite, waste steel slag and expanded perlite , 2018 .
[34] Yufei Wu,et al. Thermally efficient fired clay bricks incorporating waste marble sludge: An industrial-scale study , 2018 .
[35] Yufei Wu,et al. Thermal performance evaluation of eco-friendly bricks incorporating waste glass sludge , 2018 .
[36] S. Kazmi,et al. Production of sustainable clay bricks using waste fly ash: Mechanical and durability properties , 2017 .
[37] M. Rizwan,et al. Development of lighter and eco-friendly burnt clay bricks incorporating sugarcane bagasse ash , 2017 .
[38] Safeer Abbas,et al. Feasibility of Using Waste Glass Sludge in Production of Ecofriendly Clay Bricks , 2017 .
[39] S. Siddique,et al. Effect of elevated temperature and cooling regimes on mechanical and durability properties of concrete containing waste rubber fiber , 2017 .
[40] L. Pietrelli,et al. Plastisphere in action: evidence for an interaction between expanded polystyrene and dunal plants , 2017, Environmental Science and Pollution Research.
[41] Seongwoo Gwon,et al. Sustainable sulfur composites with enhanced strength and lightweightness using waste rubber and fly ash , 2017 .
[42] C Jayasinghe,et al. A comparative embodied energy analysis of a house with recycled expanded polystyrene (EPS) based foam concrete wall panels , 2017 .
[43] E. Yalamaç,et al. Effect of olive mill waste addition on the properties of porous fired clay bricks using Taguchi method. , 2016, Journal of environmental management.
[44] Safeer Abbas,et al. Manufacturing of sustainable clay bricks: Utilization of waste sugarcane bagasse and rice husk ashes , 2016 .
[45] Tavengwa Bunhu,et al. Potential uses and value-added products derived from waste polystyrene in developing countries: A review , 2016 .
[46] Siwadol Kanyakam,et al. Utilization of waste glass to enhance physical–mechanical properties of fired clay brick , 2016 .
[47] Bernard Perrin,et al. Properties of fired clay bricks with incorporated biomasses: Cases of Olive Stone Flour and Wheat Straw residues , 2016 .
[48] Mucahit Sutcu,et al. Characteristics of fired clay bricks with waste marble powder addition as building materials , 2015 .
[49] Mucahit Sutcu,et al. Thermal performance optimization of hollow clay bricks made up of paper waste , 2014 .
[50] Mucahit Sutcu,et al. Properties of bricks with waste ferrochromium slag and zeolite , 2013 .
[51] A. J. Zattera,et al. Characterization of composites based on recycled expanded polystyrene reinforced with curaua fibers , 2013 .
[52] W. H. Yung,et al. A study of the durability properties of waste tire rubber applied to self-compacting concrete , 2013 .
[53] Christopher R. Cheeseman,et al. Recycling of Waelz slag and waste foundry sand in red clay bricks , 2012 .
[54] D.C.L. Teo,et al. Properties of EPS RHA lightweight concrete bricks under different curing conditions , 2011 .
[55] A. Gualtieri,et al. Thermal conductivity of fired clays: Effects of mineralogical and physical properties of the raw materials , 2010 .
[56] Mucahit Sutcu,et al. The use of recycled paper processing residues in making porous brick with reduced thermal conductivity , 2009 .
[57] Donald P. Visco,et al. Kinetics of thermal decomposition of expandable polystyrene in different gaseous environments , 2009 .
[58] I. Joekes,et al. Use of tire rubber particles as addition to cement paste , 2000 .
[59] E. Carpenter,et al. Polystyrene Spherules in Coastal Waters , 1972, Science.
[60] K. Greiff,et al. End-of-Life Treatment of Eps-Based Building Insulation Material – an Estimation of Future Waste and Review of Treatment Options , 2022, SSRN Electronic Journal.
[61] W. J. Li,et al. Water permeability, strength and freeze-thaw resistance of crumb rubber-modified permeable concrete brick based on orthogonal test , 2021 .
[62] K. Rashid,et al. Influence of fluxing oxides from waste on the production and physico-mechanical properties of fired clay brick: A review , 2020 .
[63] Yufei Wu,et al. Thermal performance enhancement of eco-friendly bricks incorporating agro-wastes , 2018 .
[64] Wang Wei,et al. Development of estimating system on the wall materials of China , 2017 .
[65] Muhammad Hassan,et al. Utilization of Rice Husk Ash to Mitigate Alkali Silica Reaction in Concrete , 2016 .
[66] D. Manea,et al. Recycling of Polystyrene Waste in the Composition of Ecological Mortars , 2015 .
[67] Nonthaphong Phonphuak,et al. Effects of Additive on the Physical and Thermal Conductivity of Fired Clay Brick , 2013 .
[68] Chui-Te Chiu,et al. Use of ground tire rubber in asphalt pavements : Field trial and evaluation in Taiwan , 2008 .