| [1] | Sajid MA, Khan MI, Khan I, Almutairi OE. Design and optimization of eco-friendly cement grout modified with bagasse ash and nano-silica for semi-flexible pavements using RSM. Constr Build Mater 2026; 507: 144988. |
| |
| [2] | Bandeira Barros L, Knockaert M, Tenório Filho JR. Towards a more sustainable construction industry: Bridging the gap between technical progress and commercialization of self-healing concrete. Constr Build Mater 2023; 403: 133094. |
| |
| [3] | Why The Built Environment – Architecture 2030 n.d. https://www.architecture2030.org/why-the-built-environment/ (accessed January 7, 2026). |
| |
| [4] | Hoegh-Guldberg O, Jacob D, Taylor M, Guillén Bolaños T, Bindi M, Brown S, et al. The human imperative of stabilizing global climate change at 1.5°C. Science 2019; 365: eaaw6974. |
| |
| [5] | Kharin VV, Flato GM, Zhang X, Gillett NP, Zwiers F, Anderson KJ. Risks from Climate Extremes Change Differently from 1.5°C to 2.0°C Depending on Rarity. Earths Future 2018; 6: 704–15. |
| |
| [6] | Su B, Huang J, Fischer T, Wang Y, Kundzewicz ZW, Zhai J, et al. Drought losses in China might double between the 1.5°C and 2.0°C warming. Proc Natl Acad Sci 2018; 115: 10600–5. |
| |
| [7] | Global Status Report for Buildings and Construction 2024/2025. Available online: https://globalabc.org/sites/default/files/2025-03/Global-Status-Report-2024_2025.pdf (accessed on 08 January 2026). n.d. |
| |
| [8] | Renewables 2024 – Analysis. IEA 2024. https:// www.iea.org/ reports/renewables-2024 (accessed January 7, 2026). |
| |
| [9] | Mohanta NR, Murmu M. Alternative coarse aggregate for sustainable and eco-friendly concrete-A review. J Build Eng 2022; 59: 105079. |
| |
| [10] | Crawford RH. Greenhouse Gas Emissions of Global Construction Industries. IOP Conf Ser Mater Sci Eng 2022; 1218: 012047. |
| |
| [11] | Barbhuiya S, Das BB. A comprehensive review on the use of hemp in concrete. Constr Build Mater 2022; 41: 127857. |
| |
| [12] | Chinnu SN, Minnu SN, Bahurudeen A, Senthilkumar R. Recycling of industrial and agricultural wastes as alternative coarse aggregates: A step towards cleaner production of concrete. Constr Build Mater 2021; 287: 123056. |
| |
| [13] | El Hajjar M, Bourgerie S, Belayachi N. Prediction of the Development of Microorganisms on Biocomposites Based on Plant Aggregates, 2023. |
| |
| [14] | Afsoosbiria H, Machowska A. Development of Sustainable Concrete Using By-Products as a Green Material, and Potential Solutions for Sustainability in Mass Concrete Construction—Comprehensive Review. Sustainability 2025; 7: 9983. |
| |
| [15] | Kumar A, Bheel N, Ahmed I, Rizvi SH, Kumar R, Jhatial AA. Effect of silica fume and fly ash as cementitious material on hardened properties and embodied carbon of roller compacted concrete. Environ Sci Pollut Res 2021; 29: 1210–22. |
| |
| [16] | Oppon JA, Adinyira E, Agyekum K. A bibliometric review of agricultural waste as coarse aggregates in sustainable concrete. Discov Civ Eng 2025; 2: 127. |
| |
| [17] | Boutin MP, Flamin C, Quinton S, Gosse G. Etude des caractéristiques environnementales du chanvre par l’analyse de son cycle de vie. Ministère L’agriculture Pêche Fr 2006; 102. |
| |
| [18] | Elhaj-Maham EM, Diouf B, Ly EHB, Manga M. Study of the Physic-Mechanical Properties of a Typha Concrete Composites: A Possible New Material for Sustainable Construction. Mater Sci Forum 2024; 1122: 121–31. |
| |
| [19] | Nozahic V, Amziane S, Torrent G, Saïdi K, De Baynast H. Design of green concrete made of plant-derived aggregates and a pumice–lime binder. Cem Concr Compos 2012; 34: 231–41. |
| |
| [20] | Ali B, Azab M, Ahmed H, Kurda R, El Ouni MH, Elhag AB. Investigation of physical, strength, and ductility characteristics of concrete reinforced with banana (Musaceae) stem fiber. J Build Eng 2022; 61: 105024. |
| |
| [21] | Ratsimbazafy HH, Laborel-Préneron A, Magniont C, Evon P. A review of the multi-physical characteristics of plant aggregates and their effects on the properties of plant-based concrete. Recent Prog Mater 2021; 3: 1–69. |
| |
| [22] | Ahmad MR, Chen B, Haque MA, Ali Shah SF. Development of a sustainable and innovant hygrothermal bio-composite featuring the enhanced mechanical properties. J Clean Prod 2019; 229: 128–43. |
| |
| [23] | Guo Y, Zhang J, Lakhiar MT, Wang J. Eco-friendly cement mortar production using rice husk ash and oyster seashell powder: A comprehensive study of mechanical, durability and life cycle properties. Constr Build Mater 2025; 481: 141590. |
| |
| [24] | Arnaud L, Gourlay E. Experimental study of parameters influencing mechanical properties of hemp concretes. Constr Build Mater 2012; 28: 50–6. |
| |
| [25] | Gross C, Walker P. Racking performance of timber studwork and hemp-lime walling. Constr Build Mater 2014; 66: 429–35. |
| |
| [26] | Giroudon M, Laborel-Préneron A, Aubert J-E, Magniont C. Comparison of barley and lavender straws as bioaggregates in earth bricks. Constr Build Mater 2019; 202: 254–65. |
| |
| [27] | Tronet P, Lecompte T, Picandet V, Baley C. Study of lime hemp concrete (LHC) – Mix design, casting process and mechanical behaviour. Cem Concr Compos 2016; 67: 60–72. |
| |
| [28] | ElHassan A, Abu-Jdayil B, Ahmed W. Thermal and mechanical characteristics of natural fiber-reinforced composites using bio-binder as sustainable insulation materials. Int J Thermofluids 2025; 30: 101507. |
| |
| [29] | Bouloc P. Le chanvre industriel: production et utilisations. France Agricole Editions; 2006. |
| |
| [30] | El Hajjar M, Haddad B, Alassaad F. Valorization of biomass ash fines as a cementitious addition: Effects on the microstructural, mechanical, and thermal properties of mortars. Biomass Futur 2026; 1: 100012. |
| |
| [31] | Ahmad W, McCormack SJ, Byrne A. Biocomposites for sustainable construction: A review of material properties, applications, research gaps, and contribution to circular economy. J Build Eng 2025; 105: 112525. |
| |
| [32] | Bardouh R, Toussaint E, Amziane S, Marceau S. Mechanical behavior of bio-based concrete under various loadings and factors affecting its mechanical properties at the composite scale: A state-of-the-art review. Clean Eng Technol 2024; 23: 100819. |
| |
| [33] | Raza M, Farhan A, Abu-Jdayil B. Lignocellulose−based insulation materials: A review of sustainable and biodegradable solutions for energy efficiency. Int J Thermofluids 2024; 24: 10084. |
| |
| [34] | Raza M, Abdallah HA, Abdullah A, Abu-Jdayil B. Date Palm Surface Fibers for Green Thermal Insulation. Buildings 2022; 12: 866. |
| |
| [35] | Ali M, Al-Suhaibani Z, Almuzaiqer R, Albahbooh A, Al-Salem K, Nuhait A. New Composites Derived from the Natural Fiber Polymers of Discarded Date Palm Surface and Pineapple Leaf Fibers for Thermal Insulation and Sound Absorption. Polymers 2024; 16: 1002. |
| |
| [36] | Machine Finder. Forney Online n.d. https:// forneyonline.com/ machine-finder/ (accessed September 22, 2025). |
| |
| [37] | Maillet D. Thermal quadrupoles: solving the heat equation through integral transforms. No Title 2000. |
| |
| [38] | Hamzeh Y, Ziabari KP, Torkaman J, Ashori A, Jafari M. Study on the effects of white rice husk ash and fibrous materials additions on some properties of fiber–cement composites. J Environ Manage 2013; 117: 263–7. |
| |
| [39] | Sivakumaresa Chockalingam LN, Rymond NM. Strength and Durability Characteristics of Coir, Kenaf and Polypropylene Fibers Reinforced High Performance Concrete. J Nat Fibers 2022; 19: 6692–700. |
| |
| [40] | Chen Y, Yu QL, Brouwers HJH. Acoustic performance and microstructural analysis of bio-based lightweight concrete containing miscanthus. Constr Build Mater 2017; 157: 839–51. |
| |
| [41] | Wu F, Yu Q, Brouwers HJH. Long-term performance of bio-based miscanthus mortar. Constr Build Mater 2022; 324: 126703. |
| |
| [42] | Alsalami ZHA. Study the effect of partially replacement sand by waste pistachio shells in cement mortar. Appl Adhes Sci 2017; 5: 19. |
| |
| [43] | Dias PP, Waldmann D. Optimisation of the mechanical properties of Miscanthus lightweight concrete. Constr Build Mater 2020; 258: 119643. |
| |
| [44] | Traore YB, Messan A, Hannawi K, Gerard J, Prince W, Tsobnang F. Effect of oil palm shell treatment on the physical and mechanical properties of lightweight concrete. Constr Build Mater 2018; 161: 452–60. |
| |
| [45] | Olanipekun EA, Olusola KO, Ata O. A comparative study of concrete properties using coconut shell and palm kernel shell as coarse aggregates. Build Environ 2006; 41: 297–301. |
| |
| [46] | Yusra A, Triwulan T, Safriani M, Ikhsan M. Use of bamboo fiber on the relationship between compressive strength and split tensile strength of high strength concrete. IOP Conf. Ser. Mater. Sci. Eng., vol. 933, IOP Publishing; 2020, p. 012010. |
| |
| [47] | Ashour T, Wieland H, Georg H, Bockisch F-J, Wu W. The influence of natural reinforcement fibres on insulation values of earth plaster for straw bale buildings. Mater Des 2010; 31: 4676–85. |
| |
| [48] | Haba B, Agoudjil B, Boudenne A, Benzarti K. Hygric properties and thermal conductivity of a new insulation material for building based on date palm concrete. Constr Build Mater 2017; 154: 963–71. |
| |
| [49] | Panesar DK, Shindman B. The mechanical, transport and thermal properties of mortar and concrete containing waste cork. Cem Concr Compos 2012; 34: 982–92. |
| |