Sinosteel Maanshan General Institute of Mining Research Co., Ltd., Maanshan, 24300, China; School of Resources and Safety Engineering, Central South University, Changsha, 410083, China.
School of Resources and Safety Engineering, Central South University, Changsha, 410083, China.
Chemosphere. 2022 Dec;309(Pt 2):136652. doi: 10.1016/j.chemosphere.2022.136652. Epub 2022 Oct 7.
Phosphogypsum (PG) is a massively generated hazardous by-product in the phosphorus industry. Large-scale, efficient, profitable on-site recycling is an emerging topic for promoting sustainable phosphorus circularity and mitigating potential human exposure. In this work, we integrated a green and low-cost additive polymeric aluminum chloride (PAC) into the binder design of PG immobilization. The overall experimental results illustrate that the incorporation of PAC can efficiently promote the cement hydration reaction, with amorphous phases increased from 25.9 wt% (control group) to 27.5 wt% (with 2 g/L PAC). The macro-investigations indicate that the PAC optimized the porosity and mechanical properties of specimens, facilitating a mechanically stable solidified matrix for extrapolating its field engineering application. The detailed micrographs and elemental mapping demonstrate that apart from co-existing with the hydration products, the PAC agent plays a role in the immobilization of fluoride. Herein, the combined optimization enhanced the fluoride retention capacity due to the precipitated additional hydration products, comparable encapsulation, and high adsorption ability of PAC agents. Therefore our design of PAC-augmented binders can open up a new field of PG on-site solidification/stabilization application that ensures efficient fluoride retention in a technically feasible and financially profitable methodology.
磷石膏(PG)是磷工业中大量产生的危险副产物。大规模、高效、盈利的现场回收是促进可持续磷循环和减轻潜在人类暴露的一个新兴课题。在这项工作中,我们将一种绿色且低成本的添加剂聚合氯化铝(PAC)整合到 PG 固定化的粘合剂设计中。整体实验结果表明,PAC 的掺入可以有效地促进水泥水化反应,无定形相从 25.9wt%(对照组)增加到 27.5wt%(添加 2g/L PAC)。宏观研究表明,PAC 优化了试样的孔隙率和力学性能,为推广其现场工程应用形成了机械稳定的固化基质。详细的微观照片和元素映射表明,PAC 剂除了与水化产物共存外,还在氟化物的固定化中发挥作用。在此,联合优化增强了氟化物的保留能力,因为沉淀了额外的水化产物,具有相当的封装能力和 PAC 剂的高吸附能力。因此,我们设计的 PAC 增强型粘合剂可以为 PG 现场固化/稳定化应用开辟一个新的领域,确保以技术可行和经济有利的方法有效保留氟化物。