Atienza Emmanuel M, De Jesus Richard M, Ongpeng Jason Maximino C
Department of Civil Engineering, De La Salle University, Manila 0922, Philippines.
Polymers (Basel). 2023 May 23;15(11):2413. doi: 10.3390/polym15112413.
Adapting sustainable construction, which involves responsible consumption of natural resources and reducing carbon emissions, could be a unified action to address the intensifying effects of global warming and the increasing rate of waste pollution worldwide. Aiming to lessen the emission from the construction and waste sector and eliminate plastics in the open environment, a foam fly ash geopolymer with recycled High-Density Polyethylene (HDPE) plastics was developed in this study. The effects of the increasing percentages of HDPE on the thermo-physicomechanical properties of foam geopolymer were investigated. The samples' measured density, compressive strength, and thermal conductivity at 0.25% and 0.50% HDPE content was 1593.96 kg/m and 1479.06 kg/m, 12.67 MPa and 7.89 MPa, and 0.352 W/mK and 0.373 W/mK, respectively. Obtained results are comparable to structural and insulating lightweight concretes with a density of less than 1600 kg/m, compressive strength of greater than 3.5 MPa, and thermal conductivity of less than 0.75 W/mK. Thus, this research concluded that the developed foam geopolymers from recycled HDPE plastics could be a sustainable alternative material and be optimized in the building and construction industry.
采用可持续建筑,包括对自然资源进行合理消耗并减少碳排放,可能是应对全球变暖加剧影响和全球垃圾污染率上升的一项统一行动。本研究旨在减少建筑和垃圾部门的排放,并消除露天环境中的塑料,因此开发了一种含有回收高密度聚乙烯(HDPE)塑料的泡沫粉煤灰地质聚合物。研究了HDPE含量增加对泡沫地质聚合物热物理力学性能的影响。HDPE含量为0.25%和0.50%时,样品的实测密度、抗压强度和热导率分别为1593.96kg/m和1479.06kg/m、12.67MPa和7.89MPa、0.352W/mK和0.373W/mK。所得结果与密度小于1600kg/m、抗压强度大于3.5MPa、热导率小于0.75W/mK的结构和保温轻质混凝土相当。因此,本研究得出结论,由回收HDPE塑料制成的泡沫地质聚合物可以成为一种可持续的替代材料,并可在建筑行业中得到优化。