Current Sustainable Trends of Using Waste Materials in Concrete—A Decade Review
Abstract
:1. Introduction
2. Research Significance and Methodologies
3. Bibliometric Analysis Findings
Summary of Findings
- Fly ash and recycled aggregate used in concrete production are the two major extensively researched waste materials;
- Use of waste materials in concrete as cement replacement and aggregate replacement are the major research focus of the sample;
- Only a handful of studies considered environmental benefits by using life cycle assessment to benchmark environmental sustainability benefits;
- Other sustainable benefits including economic benefits, social impacts, and other sustainable criterion were seldom considered in the available publications;
- Mechanical properties (mainly compressive strength) in waste-incorporated concrete were mostly researched in Asian countries while European countries (Italy, USA, and United Kingdom) focused more on waste management and sustainable development of these materials;
- Journal of Construction and Building Materials and Journal of Cleaner Production are the two prominent journals with research publications related to concrete with waste materials;
4. Plastic Waste in Concrete and Mortar
4.1. Plastic Aggregates and Fibers
4.2. Other Applications of Plastic in Concrete
4.3. Sustainability Aspects of Using Plastic Waste in Concrete
4.3.1. Environmental Performance of Using Plastic Waste
4.3.2. Durability Properties and Thermal/Fire Performance
5. Glass Waste in Concrete
5.1. Introduction
5.2. Sustainability Aspects of Using Glass Waste in Concrete
5.2.1. Environmental Performance
5.2.2. Durability Properties and Thermal/Fire Performance
6. Fly Ash and Slag in Concrete
6.1. Fly Ash in Concrete Materials
6.2. Sustainability Aspects of Using Fly Ash in Concrete
6.3. Slag in Concrete Materials
6.4. Sustainability Aspects of Using Slag in Concrete
No | Waste Type | Main Study Focuses | Application/s | Reference/s |
---|---|---|---|---|
1 | Glass Aggregates | Mechanical, physical, durability, and thermal properties Mechanical, physical, durability, and thermal properties Mechanical, physical, durability, and thermal properties Mechanical, physical, durability, and thermal properties Mechanical, physical, and durability properties Mechanical, physical, and durability properties Mechanical, physical, and durability properties Mechanical, physical, and durability properties Mechanical, physical, durability, and thermal properties Mechanical, physical, and durability properties Mechanical and physical properties | OPC Concrete Lightweight Concrete SC Concrete Polymer Concrete Concrete paving blocks Concrete tiles, Translucent and Photocatalytic Concrete Dry-mix Pervious Concrete OPC Mortar SC Mortar Adhesive Mortar | [98,106,107,118,127,136,137,138,141,143,165,166,167,168,169,170,171,172,173,174] [134,142,175,176,177,178] [100,147,179,180,181] [115,144,182] [115,116,183,184] [102] [139] [146] [101,103,104,105,108,113,114,117,126,132,135,145,185,186,187,188,189,190,191,192,193,194,195,196,197,198] [199,200] [201] |
2 | Glass Cement | Mechanical, physical, durability, and thermal properties Mechanical, physical, and durability properties Mechanical and physical properties Mechanical, physical, and thermal properties Mechanical, physical, and durability properties Mechanical, physical, and durability properties Mechanical, physical, and durability properties Mechanical properties Mechanical, physical, durability, and thermal properties Mechanical, physical, and durability properties Mechanical, physical, and durability properties Mechanical and physical properties | OPC Concrete SC Concrete High-performance Concrete Polymer Concrete Concrete Pavements Concrete slabs and walls Dry-cast Concrete blocks Concrete Beams and Columns OPC Mortar Geopolymer Mortar Reinforced and repair Mortar Alkali-activated Mortar and cement | [107,119,120,124,128,131,133,176,202,203,204,205,206,207,208,209,210,211,212,213,214,215,216,217,218,219,220,221] [121,222,223] [224,225,226,227] [228] [229] [230] [60] [231,232] [109,111,112,122,123,125,129,130,191,192,193,194,195,196,197,233,234,235,236,237,238,239,240] [241,242,243,244,245,246] [110,247] [248,249,250,251,252,253] |
3 | Plastic Aggregates | Mechanical, physical, durability, and thermal properties Mechanical and durability properties Mechanical, physical, and durability properties Mechanical, physical, and durability properties Mechanical, physical, durability, thermal, and acoustic properties Mechanical, physical, and durability properties Mechanical Mechanical, physical, durability, and thermal properties Mechanical, physical, and durability properties | OPC Concrete and mortar Concrete footpaths Concrete for dam repair Dry-cast concrete blocks Lightweight concrete SC concrete and mortar Polymer Concrete OPC mortar Lightweight mortar | [62,64,70,72,83,87,90,254,255,256,257,258,259,260,261,262,263,264,265] [266] [79] [60] [63,73,82,267] [66,268,269,270] [271] [61,67,71,81,272,273] [73,80] |
4 | Plastic Fibers | Mechanical, physical, durability, and thermal properties Mechanical, physical, and durability properties Mechanical and physical properties Mechanical, durability, and environmental properties Mechanical and durability properties Durability properties Durability properties Mechanical properties Mechanical properties Durability properties Mechanical, physical, and durability properties Mechanical and physical properties Mechanical and physical properties | OPC Concrete Lightweight Concrete SC Concrete Concrete footpaths Concrete beams Concrete slabs Pre-cast concrete panels Geopolymer Concrete High-performance Concrete Recycled aggregate Concrete OPC Mortar Strain-hardening cementitious composite Wet-mix shotcrete | [68,69,75,76,77,84,85,88,89,274,275,276,277,278,279,280,281,282,283,284,285,286,287,288,289,290,291,292,293,294,295,296,297,298] [65,267,299] [300,301,302] [58,303] [74,304] [305] [59,306] [59] [307] [78] [308,309] [310] [311] |
7 | Fly ash & slag | Mechanical, physical, thermal, and durability properties Mechanical and physical properties Mechanical properties Mechanical and durability properties Mechanical and thermal properties Mechanical and physical properties Mechanical and physical properties Mechanical and durability properties Mechanical, physical, and durability properties Mechanical, physical, thermal, and durability properties Mechanical and physical properties Mechanical, physical, and durability properties Mechanical and durability properties Physical properties Mechanical and physical properties Mechanical and physical properties Mechanical properties Mechanical properties Mechanical and physical properties Mechanical, physical, and durability properties Mechanical properties Mechanical and physical properties Mechanical and physical properties Mechanical, physical, and durability properties | FA Pre-cast concrete FA RCA concrete beams FA waste tile aggregate concrete FA concrete roof tiles FA masonry bricks FA concrete beams and slabs FA tunnel lining FA fiber concrete beams FA road concrete FA dam reinforced concrete FA and tire asphalt mix FA railway roadbeds FA with SL concrete pavements FA cement mortar spray coating FA with rubber concrete pavements FA with SL geopolymer bricks SL concrete bridges SL with RCA asphalt SL cement mortar SL fiber prestressed concrete SL concrete columns SL concrete spray SL concrete and fiber pavements SL aggregate base course | [312] [313,314] [315] [316] [317] [318,319] [320] [321] [322] [323] [324,325] [326] [327] [328] [329] [330] [331] [332] [333,334] [335,336] [337] [338] [339,340,341] [342] |
7. Construction and Demolition (C&D) Waste Reuse in Concrete
7.1. Introduction
7.2. Sustainability Aspects of Using C&D Waste in Concrete
8. Findings and Further Analysis
8.1. Future Considerations and Discussions on Using Waste Products in Concrete
8.1.1. Investigation of Compliance Requirements of Materials
8.1.2. Economic Benefits of Sustainable Materials
8.1.3. Availability of Waste Material and Demand
8.1.4. Quality Control Considerations
8.1.5. Social Acceptability
8.1.6. Government Initiatives
9. Conclusions, Limitations, and Future Research
- The current study aimed to review a decade of research studies on sustainable concrete which uses waste materials to replace virgin raw materials. Firstly, a bibliometric assessment was performed to identify the key research trends associated with sustainable concrete with waste materials. In the bibliometric assessment, 1465 research publications identified the most influential countries in undertaking experimental and analytical studies related to sustainable concrete. The results also highlighted journals with the most publications on sustainable concrete, authors with the most publications, and the publication trend within the last decade. Additionally, it was found that fly ash and recycled aggregate are the most researched waste materials, and that cement and aggregate substitutes have been the most popular applications. Only a few studies investigated the sustainable performance of concrete, with the research focus of majority of the studies consisting of experimental testing of mechanical and durability properties. Hence, it is recommended that future research efforts are made towards analyzing the economic, environmental, and social impacts of incorporating waste products in mortar and concrete mixes.
- The findings of the review were based on the reviewed publications undertaken in the past decade only. Further analyses and interpretations can be undertaken by conducting reviews with a large timescale;
- The focus group interview included limited number of experts in the field and therefore further validation is encouraged in future studies to further justify or criticize the observations highlighted in the current study;
- The review only focused on the major waste types highlighted through the bibliometric analysis from Bibiliometrix.org. There could be other studies that use different waste materials in concrete and these could be of key relevance;
- The review investigated the current issues and considerations that could affect the commercialization of the building products manufactured from waste materials. However, these issues can change based on future changes in regulations.
Author Contributions
Funding
Conflicts of Interest
References
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Description | Results |
---|---|
Documents | 1465 |
Sources (Journals, Books, etc.) | 544 |
Keywords Plus (ID) | 1925 |
Authors’ Keywords (DE) | 3378 |
Period | 2009–2020 |
Average citations per document | 11 |
Authors | 4070 |
Author appearances | 5593 |
Authors of single-authored documents | 94 |
Authors of multi-authored documents | 3976 |
Single-authored documents | 101 |
Documents per author | 0.36 |
Authors per document | 2.78 |
Co-authors per document | 3.82 |
Collaboration index | 2.91 |
Document types | |
Journal articles | 1004 |
Book chapters | 21 |
Conference proceedings (book) | 10 |
Conference proceeding paper | 314 |
Profession Type | Areas of Experience | Years of Experience | ||
---|---|---|---|---|
0–5 | 5–10 | 10+ | ||
Lecturer | Research experience using waste materials in cement replacement, fine aggregate and coarse aggregate replacement in concrete. | 3 | ||
Research Fellow | Research experience on waste materials as a cement replacement in concrete. | 1 | 1 | |
Production Manager | Industry experience on recycled materials for production of concrete related products | 1 | 2 | |
Construction Manager | Industry experience on concrete with recycled aggregate, geo-polymer concrete, etc. | 2 |
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Sandanayake, M.; Bouras, Y.; Haigh, R.; Vrcelj, Z. Current Sustainable Trends of Using Waste Materials in Concrete—A Decade Review. Sustainability 2020, 12, 9622. https://doi.org/10.3390/su12229622
Sandanayake M, Bouras Y, Haigh R, Vrcelj Z. Current Sustainable Trends of Using Waste Materials in Concrete—A Decade Review. Sustainability. 2020; 12(22):9622. https://doi.org/10.3390/su12229622
Chicago/Turabian StyleSandanayake, Malindu, Yanni Bouras, Robert Haigh, and Zora Vrcelj. 2020. "Current Sustainable Trends of Using Waste Materials in Concrete—A Decade Review" Sustainability 12, no. 22: 9622. https://doi.org/10.3390/su12229622
APA StyleSandanayake, M., Bouras, Y., Haigh, R., & Vrcelj, Z. (2020). Current Sustainable Trends of Using Waste Materials in Concrete—A Decade Review. Sustainability, 12(22), 9622. https://doi.org/10.3390/su12229622