Hongguang Zheng, Yanfei Wang, Yi Shi, Hefeng Lu, Jingqi Zhang, Weiguang Zhao, Tianran Li, Jie Hua, Riming Lu, Wenlu Li, Xiaofei Zhang, Juejun Yao, Aizhong Ding
Remediation of deeply contaminated legacy pesticide sites must often achieve risk-based contaminant control while also addressing persistent nuisance odors; however, field-scale performance is frequently limited by vertical heterogeneity and mismatch between odor drivers and standard risk indicators. At a deep (0-25 m) pesticide-manufacturing brownfield in Guangdong, China, a zoned and stratified in situ treatment train that coupled gas thermal desorption (GTD), steam thermal desorption (STD), and alkaline-activated persulfate in situ chemical oxidation (ISCO) was evaluated. The GTD was applied to heavily-contaminated shallow layers (0-12.5 m), STD to deeper layers (12.5-25 m), and ISCO to mildly formaldehyde-contaminated soils. Laboratory trials supported the operational settings for GTD/STD and showed marked reductions in volatile organic compounds and odor intensity, whereas ISCO displayed a non-monotonic response with an apparent optimum of approximately 2.5% persulfate at pH ≈ 11. During the pilot operation, the extracted off-gas odor intensity typically increased in the early stages and then declined, consistent with contaminant mobilization followed by source depletion, and post-treatment soils met the risk-based remediation and project-specific odor control targets established for the site. Post-treatment soil formaldehyde met the remediation target, whereas groundwater formate concentrations increased from ≤ 0.023 to 47.7-63.7 mg/L during staged ISCO and remained elevated at the final monitored stage, indicating aqueous-phase accumulation of a mobile transformation product. Secondary-impact monitoring identified fugitive NMHC, odor concentration, wastewater ammonia nitrogen concentrations, and early-stage nighttime noise as the main operational control endpoints. These results demonstrate pilot-scale feasibility under the site conditions examined and provide a field-based framework for similarly stratified pesticide brownfields requiring concurrent control of contaminant exposure and odor impacts.