Shenzhen Yanzhi Science and Technology Co., Ltd, Shenzhen 518101, China.
Excellent Centre for Green and Sustainable Infrastructure, School of Engineering, King Mongkut's Institute of Technology Ladkrabang, Bangkok 10520, Thailand.
Waste Manag. 2022 Nov;153:323-334. doi: 10.1016/j.wasman.2022.09.015. Epub 2022 Sep 28.
Biochar has been used as an environment-friendly enhancer to improve the soil hydraulic properties. Previous studies focused on the effect of biochar addition for irrigation in agricultural soils. However, the understanding of the influence of biochar addition on water infiltration in compacted soils as used in landfill covers is limited. This study investigated the effects of peanut shell biochar addition on soil water infiltration with consideration of soil microstructure variations. The performance of biochar-amended soil was also explored under extreme rainfall and drought conditions. In this experiment, peanut shell biochar with particles finer than 0.25 mm was amended into compacted silty sand. Index soil properties and microstructure were observed. One-dimension (1-D) column tests and corresponding numerical modelling were carried out to investigate the performance of this cover material under different climate scenarios. The results suggested that the application of biochar can increase soil porosity, but a significant number of large pores (i.e., larger than 20 μm) was minimized. With the application of biochar, the soil covers thus become more efficient in preventing infiltration and percolation. This is also crucial to minimize the need for a relatively large thickness of soil cover. With an increase in porosity, the biochar can improve the soil water retention. Under extreme drought, the application of biochar can reduce the very low pore-water pressure (PWP) in soils by more than 50%. From all of these, peanut shell biochar can potentially be an eco-friendly and more sustainable solution for soil covers, even under extreme climate conditions.
生物炭已被用作一种环保增强剂,以改善土壤水力性质。先前的研究集中在生物炭添加对农业土壤灌溉的影响上。然而,对于生物炭添加对用于垃圾填埋覆盖的压实土壤中水分入渗的影响的理解是有限的。本研究考察了在考虑土壤微观结构变化的情况下,添加花生壳生物炭对土壤水分入渗的影响。还探讨了在极端降雨和干旱条件下生物炭改良土壤的性能。在本实验中,将粒径小于 0.25mm 的花生壳生物炭添加到压实的粉砂中。观察了基本土壤特性和微观结构。进行了一维(1-D)柱状试验和相应的数值模拟,以研究这种覆盖材料在不同气候条件下的性能。结果表明,生物炭的应用可以增加土壤孔隙度,但显著数量的大孔(即大于 20μm)被最小化。通过应用生物炭,土壤覆盖层因此在防止入渗和渗滤方面变得更加有效。这对于最小化相对较厚的土壤覆盖层的需求也很重要。随着孔隙度的增加,生物炭可以改善土壤保水能力。在极端干旱条件下,生物炭的应用可以将土壤中的极低孔隙水压力(PWP)降低 50%以上。综上所述,花生壳生物炭可以成为一种环保且更可持续的土壤覆盖解决方案,即使在极端气候条件下也是如此。