INFORMAZIONI SU QUESTO ARTICOLO

Cita

Afshinnia, Kaveh, and Prasada Rao Rangaraju. 2016. “Impact of Combined Use of Ground Glass Powder and Crushed Glass Aggregate on Selected Properties of Portland Cement Concrete.” Construction and Building Materials 117: 263–72. Search in Google Scholar

Al-Kroom, Hussein, May M. Atyia, Mohamed G. Mahdy, and Mohamed Abd Elrahman. 2022. “The Effect of Finely-Grinded Crushed Brick Powder on Physical and Microstructural Characteristics of Lightweight Concrete.” Minerals 12 (2). https://doi.org/10.3390/min12020159. Search in Google Scholar

Angulo, Sérgio Cirelli, Vanderley Moacyr John, Carina Ulsen, Henrique Kahn, and Anette Mueller. 2013. “Separação Óptica Do Material Cerâmico Dos Agregados Mistos de Resíduos de Construção e Demolição.” Ambiente Construído 13 (2): 61–73. https://doi.org/10.1590/s1678-86212013000200006. Search in Google Scholar

ASTM, C. 2000. “348, Standard Test Method for Flexural Strength of Hydraulic-Cement Mortars.” Annual Book of ASTM Standards 4: 221–26. Search in Google Scholar

ASTM,C. 2002. “349-97. Standard Test Method for Compressive Strength of Hydraulic-Cement Mortars (Using Portions of Prisms Broken in Flexure).” ASTM International: West Conshohocken, PA, USA. Search in Google Scholar

Bektas, F., K. Wang, and H. Ceylan. 2009. “Effects of Crushed Clay Brick Aggregate on Mortar Durability.” Construction and Building Materials23(5):1909–14. https://doi.org/10.1016/j.conbuildmat.2008.09.006. Search in Google Scholar

Belaidi, A. S.E., L. Azzouz, E. Kadri, and S. Kenai. 2012. “Effect of Natural Pozzolana and Marble Powder on the Properties of Self-Compacting Concrete.” Construction and Building Materials 31: 251–57. https://doi.org/10.1016/j.conbuildmat.2011.12.109. Search in Google Scholar

Benabed, Benchaa, El Hadj Kadri, Lakhdar Azzouz, and Said Kenai. 2012. “Properties of Self-Compacting Mortar Made with Various Types of Sand.” Cement and Concrete Composites 34 (10): 1167–73. https://doi.org/10.1016/j.cemconcomp.2012.07.007. Search in Google Scholar

Boukendakdji, Othmane, El Hadj Kadri, and Said Kenai. 2012. “Effects of Granulated Blast Furnace Slag and Superplasticizer Type on the Fresh Properties and Compressive Strength of Self-Compacting Concrete.” Cement and Concrete Composites 34 (4): 583–90. https://doi.org/10.1016/j.cemconcomp.2011.08.013. Search in Google Scholar

Cheeseman, C R. 2014. “Production of Sintered Lightweight Aggregate Using Waste Ash and Other Industrial Residues,” no. January: 1980–84. Search in Google Scholar

Debieb, Farid, and Said Kenai. 2008. “The Use of Coarse and Fine Crushed Bricks as Aggregate in Concrete.” Construction and BuildingMaterials22(5):886–93. https://doi.org/10.1016/j.conbuildmat.2006.12.013. Search in Google Scholar

Demir, Ilhami, Hasbi Yaprak, and Osman Simsek. 2011. “Performance of Cement Mortars Replaced by Ground Waste Brick in Different Aggressive Conditions.” Ceramics - Silikaty 55 (3): 268–75. Search in Google Scholar

Du, Yuanbo, Wencui Yang, Yong Ge, Sha Wang, and Penghuan Liu. 2021. “Thermal Conductivity of Cement Paste Containing Waste Glass Powder, Metakaolin and Limestone Filler as Supplementary Cementitious Material.” Journal of Cleaner Production 287: 125018. https://doi.org/10.1016/j.jclepro.2020.125018. Search in Google Scholar

Elaqra, Hossam A., Mohamed A.Abou Haloub, and Rifat N. Rustom. 2019. “Effect of New Mixing Method of Glass Powder as Cement Replacement on Mechanical Behavior of Concrete.” Construction and Building Materials 203: 75–82. https://doi.org/10.1016/j.conbuildmat.2019.01.077. Search in Google Scholar

Elaqra, Hossam, and Rifat Rustom. 2018. “Effect of Using Glass Powder as Cement Replacement on Rheological and Mechanical Properties of Cement Paste.” Construction and Building Materials 179: 326–35. https://doi.org/10.1016/j.conbuildmat.2018.05.263. Search in Google Scholar

EN, B S. 2000. “197-1: 2000, Cement: Part 1: Composition, Specifications and Conformity Criteria for Common Cements”, British Standards Institute, 389 Chiswick High Road, London, W4 4AL.” Search in Google Scholar

Falmata, A. M., A. Sulaiman, R. N. Mohamed, and A. U. Shettima. 2020. “Mechanical Properties of Self-Compacting High-Performance Concrete with Fly Ash and Silica Fume.” SN Applied Sciences 2 (1): 1–11. https://doi.org/10.1007/s42452-019-1746-z. Search in Google Scholar

Ge, Zhi, Zhili Gao, Renjuan Sun, and Li Zheng. 2012. “Mix Design of Concrete with Recycled Clay-Brick-Powder Using the Orthogonal Design Method.” Construction and Building Materials 31: 289–93. https://doi.org/10.1016/j.conbuildmat.2012.01.002. Search in Google Scholar

Ge, Zhi, Yuanyuan Wang, Renjuan Sun, Xinsheng Wu, and Yanhua Guan. 2015. “Influence of Ground Waste Clay Brick on Properties of Fresh and Hardened Concrete.” Construction and Building Materials98:128- https://doi.org/10.1016/j.conbuildmat.2015.08.100. Search in Google Scholar

Henry, Michael, and Yoshitaka Kato. 2011. “An Assessment Framework Based on Social Perspectives and Analytic Hierarchy Process: A Case Study on Sustainability in the Japanese Concrete Industry.” Journal of Engineering and Technology Management 28 (4): 300–316. Search in Google Scholar

Irki, I., F. Debieb, S. Ouzadid, H. Larouci Dilmi, C. Settari, and Dj Boukhelkhel. 2018. “Effect of Blaine Fineness of Recycling Brick Powder Replacing Cementitious Materials in Self Compacting Mortar.” Journal of Adhesion Science and Technology 32 (9): 963–75. https://doi.org/10.1080/01694243.2017.1393202. Search in Google Scholar

Islam, G M Sadiqul, MdH Rahman, and Nayem Kazi. 2017. “Waste Glass Powder as Partial Replacement of Cement for Sustainable Concrete Practice.” International Journal of Sustainable Built Environment 6 (1): 37–44. Search in Google Scholar

Karatas, M, K Turk, M Acikgenc, and Z C Ulucan. 2010. “Effect of Elazig Region Waste Brick Powder on Strength and Viscosity Properties of Self Compacting Mortar.” 9th International Congress on Advances in Civil Engineering, no. September: 27–30. Search in Google Scholar

Khatib, J. M. 2005. “Properties of Concrete Incorporating Fine Recycled Aggregate.” Cement and Concrete Research 35 (4): 763–69. https://doi.org/10.1016/j.cemconres.2004.06.017. Search in Google Scholar

Khatib, J M, E M Negim, H S Sohl, and N Chileshe. 2012. “Glass Powder Utilisation in Concrete Production.” European Journal of AppliedSciences4(4):173–76. https://doi.org/10.5829/idosi.ejas.2012.4.3.1102. Search in Google Scholar

Kumarappan, N. 2013. “Partial Replacement Cement in Concrete Using Waste Glass.” International Journal of Engineering Research and Technology 2 (10): 1880–83. Search in Google Scholar

Lee, Seung Tae, Robert Doug Hooton, Ho-Seop Jung, Du-Hee Park, and Chang Sik Choi. 2008. “Effect of Limestone Filler on the Deterioration of Mortars and Pastes Exposed to Sulfate Solutions at Ambient Temperature.” Cement and Concrete Research 38 (1): 68–76. Search in Google Scholar

Li, Bo, Tung Chai Ling, Jin Guang Yu, Jiaqi Wu, and Weiwei Chen. 2019. “Cement Pastes Modified with Recycled Glass and Supplementary Cementitious Materials: Properties at the Ambient and High Temperatures.” Journal of Cleaner Production 241. https://doi.org/10.1016/j.jclepro.2019.118155. Search in Google Scholar

Li, Haoxin, Liuliu Dong, Zhengwu Jiang, Xiaojie Yang, and Zhenghong Yang. 2016. “Study on Utilization of Red Brick Waste Powder in the Production of Cement-Based Red Decorative Plaster for Walls.” Journal of Cleaner Production 133: 1017–26. https://doi.org/10.1016/j.jclepro.2016.05.149. Search in Google Scholar

Li, L. G., Z. H. Lin, G. M. Chen, and A. K.H. Kwan. 2020. “Reutilizing Clay Brick Dust as Paste Substitution to Produce Environment-Friendly Durable Mortar.” Journal of Cleaner Production274:–11. https://doi.org/10.1016/j.jclepro.2020.122787. Search in Google Scholar

Li, L G, Y M Wang, Y P Tan, and A K H Kwan. 2019. “Filler Technology of Adding Granite Dust to Reduce Cement Content and Increase Strength of Mortar.” Powder Technology 342: 388–96. Search in Google Scholar

Li, L G, Z Y Zhuo, A K H Kwan, T S Zhang, and D G Lu. 2020. “Cementing Efficiency Factors of Ceramic Polishing Residue in Compressive Strength and Chloride Resistance of Mortar.” Powder Technology 367: 163–71. Search in Google Scholar

Liang, Chaofeng, Bihao Pan, Zhiming Ma, Zhihai He, and Zhenhua Duan. 2020. “Utilization of CO2 Curing to Enhance the Properties of Recycled Aggregate and Prepared Concrete: A Review.” Cement and Concrete Composites 105: 103446. Search in Google Scholar

Liu, Shuhua, Ruiping Dai, Kejie Cao, and Zhiyang Gao. 2017. “The Role of Sintered Clay Brick Powder during the Hydration Process of Cement Pastes.” Iranian Journal of Science and Technology - Transactions of Civil Engineering 41 (2): 159–65. https://doi.org/10.1007/s40996-017-0049-0. Search in Google Scholar

Liu, Z H. 2018. “Overview of Waste Glass Recycling in China.” Glass 45 (10): 1–8. Search in Google Scholar

Long, Guangcheng, Yu Gao, and Youjun Xie. 2015. “Designing More Sustainable and Greener Self-Compacting Concrete.” Construction and Building Materials 84: 301–6. https://doi.org/10.1016/j.conbuildmat.2015.02.072. Search in Google Scholar

Lu, J, B Z Lu, S G Cao, P X Li, H T Wang, and H Y Shen. 2012. “Research on Preparing Cement Admixture from Waste Brick Powder.” Fly Ash Compr Util 37 (2): 37–42. Search in Google Scholar

Lu, Jian-xin, Haibing Zheng, Shuqing Yang, Pingping He, and Chi Sun Poon. 2019. “Co-Utilization of Waste Glass Cullet and Glass Powder in Precast Concrete Products.” Construction and Building Materials223:210–20. https://doi.org/10.1016/j.conbuildmat.2019.06.231. Search in Google Scholar

Mafalda, Ana, and Joana Sousa-coutinho. 2012. “Durability of Mortar Using Waste Glass Powder as Cement Replacement.” Construction and Building Materials 36: 205–15. https://doi.org/10.1016/j.conbuildmat.2012.04.027. Search in Google Scholar

Matias, Daniel, and Jorge de Brito. 2004. “Incorporação de Adjuvantes Em Betões Produzidos Com Agregados Grossos Reciclados de Betão.” Construção 2004: 339–44. Search in Google Scholar

Mirzahosseini, Mohammadreza, and Kyle A Riding. 2015. “Influence of Different Particle Sizes on Reactivity of Finely Ground Glass as Supplementary Cementitious Material (SCM).” Cement and Concrete Composites 56: 95–105. Search in Google Scholar

Naceri, Abdelghani, and Makhloufi Chikouche Hamina. 2009. “Use of Waste Brick as a Partial Replacement of Cement in Mortar.” WasteManagement29(8):2378–84. https://doi.org/10.1016/j.wasman.2009.03.026. Search in Google Scholar

Nassar, Roz Ud Din, and Parviz Soroushian. 2012. “Strength and Durability of Recycled Aggregate Concrete Containing Milled Glass as Partial Replacement for Cement.” Construction and Building Materials29:368–77. https://doi.org/10.1016/j.conbuildmat.2011.10.061. Search in Google Scholar

NF, P. 2010. “P 18-459 Béton–Essai Sur Béton Durci Essai de Porosité et de Masse Volumique.” Mars. Search in Google Scholar

Okamura, Hajime, K Ozawa, and M Ouchi. 2000. “Self-Compacting Concrete.” Structural Concrete 1 (1): 3–17. Search in Google Scholar

Öznur Öz, Hatice, Hasan Erhan Yücel, and Muhammet Güneş. 2017. “Comparison of Glass Powder and Fly Ash Effect on the Fresh Properties of Self-Compacting Mortars.” IOP Conference Series: MaterialsScienceandEngineering245(3). https://doi.org/10.1088/1757-899X/245/3/032036. Search in Google Scholar

Patel, Dhirendra, R. P. Tiwari, R. Shrivastava, and R. K. Yadav. 2019. “Effective Utilization of Waste Glass Powder as the Substitution of Cement in Making Paste and Mortar.” Construction andBuildingMaterials199:406–15. https://doi.org/10.1016/j.conbuildmat.2018.12.017. Search in Google Scholar

Patel, Prof Asha. 2012. “Comparative Study of Waste Glass Powder as Pozzolanic Material in Concrete.” A THESIS SUBMITTED IN PARTIAL FULFILLMENT OF THE Department of Civil Engineering National Institute of Technology National Institute of Technology. Search in Google Scholar

Petek Gursel, A., Eric Masanet, Arpad Horvath, and Alex Stadel. 2014. “Life-Cycle Inventory Analysis of Concrete Production: A Critical Review.” Cement and Concrete Composites 51 (October): 38–48. https://doi.org/10.1016/j.cemconcomp.2014.03.005. Search in Google Scholar

Poon, Chi Sun, and Dixon Chan. 2006. “Paving Blocks Made with Recycled Concrete Aggregate and Crushed Clay Brick.” Construction and Building Materials 20 (8): 569–77. https://doi.org/10.1016/j.conbuildmat.2005.01.044. Search in Google Scholar

Rehman, Shahir, Shahid Iqbal, and Ahsan Ali. 2018. “Combined Influence of Glass Powder and Granular Steel Slag on Fresh and Mechanical Properties of Self-Compacting Concrete.” Construction and Building Materials 178: 153–60. Search in Google Scholar

Schackow, A., D. Stringari, L. Senff, S. L. Correia, and A. M. Segadães. 2015. “Influence of Fired Clay Brick Waste Additions on the Durability of Mortars.” Cement and Concrete Composites 62: 82–89. https://doi.org/10.1016/j.cemconcomp.2015.04.019. Search in Google Scholar

Siad, Hocine, Mohamed Lachemi, Mustafa Sahmaran, Habib A Mesbah, Khandaker M Anwar Hossain, and Abuzer Ozsunar. 2017. “Potential for Using Recycled Glass Sand in Engineered Cementitious Composites.” Magazine of Concrete Research 69 (17): 905–18. Search in Google Scholar

Soliman, N. A., and A. Tagnit-Hamou. 2016. “Development of Ultra-High-Performance Concrete Using Glass Powder – Towards Ecofriendly Concrete.” Construction and Building Materials 125: 600–612. https://doi.org/10.1016/j.conbuildmat.2016.08.073. Search in Google Scholar

Soliman, Nancy A, and Arezki Tagnit-hamou. 2017. “Using Glass Sand as an Alternative for Quartz Sand in UHPC.” Construction and Building Materials 145:243–52. https://doi.org/10.1016/j.conbuildmat.2017.03.187. Search in Google Scholar

Tan, Kiang Hwee, and Hongjian Du. 2013. “Use of Waste Glass as Sand in Mortar: Part I–Fresh, Mechanical and Durability Properties.” Cement and Concrete Composites 35 (1): 109–17. Search in Google Scholar

Tohoué Tognonvi, Monique. 2018. “Reactivity of Glass Powder in Aqueous Medium.” Advances in Materials 7 (1): 9. https://doi.org/10.11648/j.am.20180701.12. Search in Google Scholar

Vejmelková, Eva, Dana Koňáková, Tereza Kulovaná, Adam Hubáček, and Robert Černý. 2014. “Mechanical and Thermal Properties of Moderate-Strength Concrete with Ceramic Powder Used as Supplementary Cementitious Material.” In Advanced Materials Research, 1054:194–98. Trans Tech Publ. Search in Google Scholar

Vieira, T., A. Alves, J. de Brito, J. R. Correia, and R. V. Silva. 2016. “Durability-Related Performance of Concrete Containing Fine Recycled Aggregates from Crushed Bricks and Sanitary Ware.” Materials and Design 90:767–76. https://doi.org/10.1016/j.matdes.2015.11.023. Search in Google Scholar

Wong, Chee Lum, Kim Hung Mo, Soon Poh Yap, U. Johnson Alengaram, and Tung Chai Ling. 2018. “Potential Use of Brick Waste as Alternate Concrete-Making Materials: A Review.” Journal of Cleaner Production 195:226–39. https://doi.org/10.1016/j.jclepro.2018.05.193. Search in Google Scholar

Zeghad, Mohamed, Jozef Mitterpach, Brahim Safi, Belaid Amrane, and Mohammed Saidi. 2017. “Reuse of Refractory Brick Wastes (RBW) as a Supplementary Cementitious Material in a Concrete.” Periodica Polytechnica Civil Engineering 61 (1): 75–80. https://doi.org/10.3311/PPci.8194. Search in Google Scholar

Zhao, Yasong, Jianming Gao, Chuanbei Liu, Xuemei Chen, and Zhenhai Xu. 2020. “The Particle-Size Effect of Waste Clay Brick Powder on Its Pozzolanic Activity and Properties of Blended Cement.” Journal of Cleaner Production 242: 118521. https://doi.org/10.1016/j.jclepro.2019.118521. Search in Google Scholar

eISSN:
2284-7197
Lingua:
Inglese
Frequenza di pubblicazione:
2 volte all'anno
Argomenti della rivista:
Engineering, Introductions and Overviews, other, Electrical Engineering, Energy Engineering, Geosciences, Geodesy