岩土力学 ›› 2026, Vol. 47 ›› Issue (9): 2966-2982.doi: 10.16285/j.rsm.2025.00373CSTR: 32223.14.j.rsm.2025.00373

• 基础理论与实验研究 • 上一篇    下一篇

酸性干湿循环下固化铅锌红黏土耐久及浸出性研究

王贺,邓清洋,程 钰,汪晓,陈李洁   

  1. 广西科技大学 土木与建筑工程学院,广西 柳州 545006
  • 收稿日期:2025-08-30 接受日期:2025-12-19 出版日期:2026-09-11 发布日期:2026-09-01
  • 通讯作者: 陈李洁,女,1988年生,博士,讲师,主要从事环境岩土工程方面的研究。E-mail: lijie_chen@163.com
  • 作者简介:王贺,男,1990年生,博士,副研究员,主要从事环境岩土工程方面的研究。E-mail: wanghe502@126.com
  • 基金资助:
    广西自然科学基金的资助(No.20244GXNSFBA010272,No.2025GXNSFHA069084,No.2024GXNSFBA010412);国家自然科学基金委的资助(No.12462012)。

Durability and leachability of solidified lead-zinc red clay under acidic wet-dry cycles

WANG He, DENG Qing-yang, CHENG Yu, WANG Xiao, CHEN Li-jie   

  1. School of Civil and Architectural Engineering, Guangxi University of Science and Technology, Liuzhou, Guangxi 545006, China
  • Received:2025-08-30 Accepted:2025-12-19 Online:2026-09-11 Published:2026-09-01
  • Supported by:
    This work was supported by the Guangxi Natural Science Foundation (2024GXNSFBA010272, 2025GXNSFHA069084, 2024GXNSFBA010412) and the National Natural Science Foundation of China (12462012).

摘要:

土壤重金属(heavy metal,简称HM)污染是中国面临的普遍且严峻的环境挑战,经处理的污染土壤在复杂环境下仍存在二次释放风险。开发了一种新型固化剂——硅藻土−粉煤灰基地质聚合物(diatomaceous earth-fly ash-base geopohymer,简称D-FA),由磷酸(H3PO4)、粉煤灰和硅藻土合成,用于固化/稳定化受Pb2+/Zn2+污染的红黏土。在酸性−干湿循环耦合条件下,通过毒性浸出试验(toxicity characterization leaching procedure,简称TCLP)评估短期有效性,利用加速浸出试验(accelerated toxicity characterization leaching procedure,简称ATCLP)解析浸出动力学并预测长期性能。结合扫描电子显微镜(scanning electron microscopy,简称SEM)、能量色散光谱(energy-dispersive spectroscopy,简称EDS)和X射线衍射(X-ray diffraction,简称XRD)多尺度表征微观结构演变与降解机制。基于累积浸出率CFL(cumulative leaching faction)和有效扩散系数Dₑ建立耐久性评估框架,实现环境保障期预测。结果表明,D-FA使红黏土强度提高6.59倍,28 d内对Pb2+和Zn2+的固定效率分别达99.99%和73.95%。长期酸性−干湿循环条件下,D-FA对Zn2+的稳定耐久性优于Pb2+。菲克扩散模型预测,pH=5时农田保障期达数十年,草地/林地超过200 a,建筑工地可达数世纪。

关键词: 干湿循环, 酸性环境, 固化/稳定化, Pb2+/Zn2+污染红黏土

Abstract:

Soil heavy metal (HM) contamination is a widespread and serious environmental challenge. Even after treatment, contaminated soil may still pose a risk of secondary metal release under complex environmental conditions. In this study, a novel solidifying agent, a diatomaceous earth–fly ash-based geopolymer (D-FA), was synthesized from phosphoric acid (H3PO4), fly ash, and diatomaceous earth for the solidification/stabilization of contaminated lead-zinc red clay. Under coupled acid exposure and wet–dry cycling conditions, short-term effectiveness was evaluated using the toxicity characterization leaching procedure (TCLP), whereas the accelerated TCLP (ATCLP) was applied to analyze leaching kinetics and predict long-term performance. Scanning electron microscopy (SEM), energy-dispersive spectroscopy (EDS), and X-ray diffraction (XRD) were employed to characterize microstructural evolution and degradation mechanisms across multiple scales. A durability assessment framework based on cumulative leaching fraction (CFL) and effective diffusion coefficient (Dₑ) was established to predict the environmental safety period. The results showed that D-FA increased the strength of red clay by 6.59-fold and achieved fixation efficiencies of 99.99% for Pb2+ and 73.95% for Zn2+ within 28 days. Under long-term acid exposure and wet–dry cycling conditions, D-FA exhibited greater stability and durability in immobilizing Zn2+ than Pb2+. According to predictions based on Fick’s diffusion model, the environmental safety period reaches several decades for farmland at pH=5, exceeds 200 years for grassland and forest land, and may extend to several centuries for construction sites.

Key words: dry-wet cycles, acid environment, solidification/stabilization, contaminated lead-zinc red clay

中图分类号: TU411
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