TY - JOUR
T1 - An assessment of workability, mechanical and durability properties of high-strength concrete incorporating nano-silica and recycled E-waste materials
AU - Hinge, Pawan
AU - Shende, Tushar
AU - Ralegaonkar, Rahul
AU - Nandurkar, Bhupesh
AU - Raut, Sanjay
AU - Kamath, Muralidhar
AU - Tantri, Adithya
AU - Naganna, Sujay Raghavendra
N1 - Publisher Copyright:
© The Author(s) 2024.
PY - 2024/12
Y1 - 2024/12
N2 - Background: Presently, the proper disposal of E-waste is a major challenge for all nations. Portland cement and aggregates continue to play a major role in the construction industry's operations. Meanwhile, natural resources like gravel (aggregates) are becoming scarce. Thus, E-waste is now offering the building industry a chance to replace traditional aggregates. The main goal of the current study is to determine the highest amount of E-waste that may be replaced with 10-mm coarse aggregates with a nano-silica associated ternary blend in M-60 grade high-strength concrete while still maintaining the designed concrete's mechanical, durability, microstructural and workability characteristics. Results: When compared to normal concrete, concrete with 15% E-waste replacement maintained the design-required compressive, flexural and tensile strength properties. When the E-waste plastic component percentage is considerably high (15–30%), there is a significant decremental performance regarding the mechanical properties and the decremental rate is found to be in the range of 13–23%. Even the microstructure characteristics of concrete validate the mechanical performance of concrete. Nevertheless, the durability characteristics of E-waste incorporated concrete were found to be promising. Conclusions: The overall outcome of the study recommends 15% as the optimal replacement percentage of E-waste for conventional concrete, and it is recommended to adopt for real-time practices.
AB - Background: Presently, the proper disposal of E-waste is a major challenge for all nations. Portland cement and aggregates continue to play a major role in the construction industry's operations. Meanwhile, natural resources like gravel (aggregates) are becoming scarce. Thus, E-waste is now offering the building industry a chance to replace traditional aggregates. The main goal of the current study is to determine the highest amount of E-waste that may be replaced with 10-mm coarse aggregates with a nano-silica associated ternary blend in M-60 grade high-strength concrete while still maintaining the designed concrete's mechanical, durability, microstructural and workability characteristics. Results: When compared to normal concrete, concrete with 15% E-waste replacement maintained the design-required compressive, flexural and tensile strength properties. When the E-waste plastic component percentage is considerably high (15–30%), there is a significant decremental performance regarding the mechanical properties and the decremental rate is found to be in the range of 13–23%. Even the microstructure characteristics of concrete validate the mechanical performance of concrete. Nevertheless, the durability characteristics of E-waste incorporated concrete were found to be promising. Conclusions: The overall outcome of the study recommends 15% as the optimal replacement percentage of E-waste for conventional concrete, and it is recommended to adopt for real-time practices.
UR - https://www.scopus.com/pages/publications/85197377561
UR - https://www.scopus.com/pages/publications/85197377561#tab=citedBy
U2 - 10.1186/s43088-024-00521-w
DO - 10.1186/s43088-024-00521-w
M3 - Article
AN - SCOPUS:85197377561
SN - 2314-8535
VL - 13
JO - Beni-Suef University Journal of Basic and Applied Sciences
JF - Beni-Suef University Journal of Basic and Applied Sciences
IS - 1
M1 - 65
ER -