Cement-based concrete modified with Vitellaria Paradoxa ash: A lifecycle assessment

被引:26
作者
Oyebisi, Solomon [1 ]
Alomayri, Thamer [2 ]
机构
[1] Covenant Univ, Dept Civil Engn, PMB 1023,Km 10,Idiroko Rd, Ota, Nigeria
[2] Umm Al Qura Univ, Fac Appl Sci, Dept Phys, Mecca 21955, Saudi Arabia
关键词
Compressive strength; Concrete; Global warming potential; Lifecycle assessment; Shea nutshell ash; Sustainability; GREENHOUSE-GAS EMISSIONS; ORDINARY PORTLAND-CEMENT; GEOPOLYMER CONCRETE; BUILDING-MATERIALS; EMBODIED ENERGY; CO2; EMISSIONS; FLY-ASH; STRENGTH; SUSTAINABILITY; IMPACTS;
D O I
10.1016/j.conbuildmat.2022.127906
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Building sustainable concrete requires an increasing demand for technology, innovation, and alternative binders to cement. The building sector is technologically driven toward sustainable construction materials and their relationship with the environment. Thus, this study designed three grades of cement-based concrete strengths (C 25, C 30, and C 40) modified with an alternative binder, shea nutshell ash (Vitellaria Paradoxa Ash, VPA). The binder (VPA) was varied at 0-20 wt% of Portland limestone cement (PLC) cured at 28 days, examining the compressive strength cost attained sustainability. Moreover, the embodied energy (EE), global warming potential (GWP) and global temperature potential (GTP) of the concrete compositions were evaluated using the inventory of carbon and energy (ICE) method within the confine of cradle-to-site. Also, the sustainability index (Si) and economic index (Ei) of the concrete mixes were assessed. The results revealed that VPA-cement-based concrete yielded a lesser EE, GWP, GTP, Si, and Eci than the control concrete (Portland limestone cement concrete, PLCC), indicating VPA-cement-based concrete is more sustainable than PLCC. Notwithstanding, an optimum replacement of 15 wt% PLC with VPA is recommended to satisfy all assessments earlier stated for all concrete strength grades. Therefore, these findings can be beneficial in attaining a cleaner built environment and sustainable production. Finally, VPA has proved to be a sustainable building material.
引用
收藏
页数:15
相关论文
共 120 条
[1]  
Abubakar A., 2021, INT J SUSTAIN GREEN, V10, P76
[2]  
ACI Committee 211, 2002, ACI Committee Report
[3]   Cleaner production in the Shea industry via the recovery of Spent Shea Waste for reuse in the construction sector [J].
Adazabra, Aaron N. ;
Viruthagiri, G. ;
Ravisankar, R. .
JOURNAL OF CLEANER PRODUCTION, 2016, 122 :335-344
[4]   Performance and sustainability overview of sodium carbonate activated slag materials cured at ambient temperature [J].
Adesina, Adeyemi .
RESOURCES ENVIRONMENT AND SUSTAINABILITY, 2021, 3
[5]   Mechanical performance of engineered cementitious composite incorporating glass as aggregates [J].
Adesina, Adeyemi ;
Das, Sreekanta .
JOURNAL OF CLEANER PRODUCTION, 2020, 260
[6]   Renewable materials to reduce building heat loss: Characterization of date palm wood [J].
Agoudjil, Boudjemaa ;
Benchabane, Adel ;
Boudenne, Abderrahim ;
Ibos, Laurent ;
Fois, Magali .
ENERGY AND BUILDINGS, 2011, 43 (2-3) :491-497
[7]  
Alcorn A., 2003, Embodied Energy and CO2 Coefficients for NZ Building Materials
[8]   Energy and CO2 emission assessments of alkali-activated concrete and Ordinary Portland Cement concrete: A comparative analysis of different grades of concrete [J].
Alsalman, Ali ;
Assi, Lateef N. ;
Kareem, Rahman S. ;
Carter, Kealy ;
Ziehl, Paul .
CLEANER ENVIRONMENTAL SYSTEMS, 2021, 3 (03)
[9]  
American Society for Testing and Materials C 618, 2012, STANDARD SPECIFICATI
[10]   An integrated method for assessing climate-related risks and adaptation alternatives in urban areas [J].
Andersson-Skold, Yvonne ;
Thorsson, Sofia ;
Rayner, David ;
Lindberg, Fredrik ;
Janhall, Sara ;
Jonsson, Anna ;
Moback, Ulf ;
Bergman, Ramona ;
Granberg, Mikael .
CLIMATE RISK MANAGEMENT, 2015, 7 :31-50