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Published on: July 4, 2014
Predicting heavy metal impacts on soil ammonia oxidation during sludge land application: An interpretable framework
Jianju Li1, Xinran Du1, Zhiyuan Pan1
1Qingdao Solid Waste Pollution Control and Resource Engineering Research Center, Qingdao University of Technology, School of Environmental and Municipal Engineering, Qingdao, 266520, China.
None:
Heavy metal (HM)-induced ecological risks hinder the sustainable land application of treated municipal sludge, particularly impacting sensitive biogeochemical processes such as ammonia oxidation. Reliably predicting the long-term effects of HMs on ammonia oxidation remains challenging due to the complex interplay among metal bioavailability, microbial adaptation, and nitrogen transformations. In this study, a hybrid mechanistic-machine learning framework was developed to predict ammonia oxidation dynamics in sludge-amended soils under stress from Cd, Cr, Cu, Ni, Pb, and Zn. The mechanistic model, which incorporated time-delayed response of ammonia-oxidizing bacteria (AOB) to NH4+ availability and bioavailable metal-specific inhibition, accurately simulated the dynamics of NH4+ and ammonia oxidation rates ( [Formula: see text] ) over two rounds of sludge application (R2 = 0.9288-0.9506). Genetic algorithm optimization quantified the half-inhibitory content of bioavailable HMs for AOB (Kmetal, mg·kg-1), which followed the order: Cd (3.61) < Ni (19.54) < Cu (49.66) < Cr (58.43) < Pb (78.03) < Zn (134.10). By leveraging mechanistic data augmentation, the extreme gradient boosting and random forest models outperformed feedforward neural networks and support vector regression, achieving test R2 > 0.96 for NH4+ and test R2 > 0.81 for [Formula: see text] . Shapley additive explanations analysis suggested hormetic-like patterns of Cu and Pb for [Formula: see text] prediction, with transition points at bioavailable content of 27.08 and 30.18 mg kg-1 in sludge-amended soils, respectively, whereas Zn above 73.04 mg kg-1 contributed negatively to [Formula: see text] . This study provides a novel and interpretable modeling framework for assessing HM-induced ecological risks in sludge-amended soils under AOB-dominated conditions.
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