Literature DB >> 32492569

Compaction conditions affect the capacity of biochar-amended sand filters to treat road runoff.

Maryam Ghavanloughajar1, Renan Valenca1, Huong Le1, Merrick Rahman1, Annesh Borthakur1, Sujith Ravi2, Michael K Stenstrom1, Sanjay K Mohanty3.   

Abstract

Amending roadside soil with adsorbents such as biochar can help remove pollutants from road runoff. To maintain soil stability, the roadside soil requires compaction. However, it is unknown how compaction conditions affect the capacity of biochar-augmented roadside biofilters to infiltrate stormwater and remove pollutants. This work examines the effect of compaction conditions on the release of biochar particles disintegrated during compaction, and the change in their capacity to infiltrate stormwater and remove E. coli. The net loss of biochar particles by mobilization with stormwater was insignificant compared to the biochar remained in the filters. The initial release of biochar particles in wet-compacted biochar columns was greater than that in dry-compacted biochar. The results revealed that compaction can affect the release of biochar particles in a series of three-step processes: generation of particles by disintegration of large biochar under compaction, diffusion of particles deposited near grain walls to bulk pore water, and transport and retention of particles in constricted pore paths based on pore water connectivity. Under similar conditions, compost columns released more particles than biochar columns, suggesting biochar is more stable than compost under compaction. E. coli removal in wet-compacted columns was greater than removal in dry-compacted columns, owing to greater pore path connectivity in wet-compacted columns. These results indicate that addition of moisture during compaction can increase contaminant removal, initial particle release, and infiltration capacity of biochar-augmented sand filters for road runoff treatment. The results would help develop design guidelines for roadside stormwater treatment systems that require compaction of filter media.
Copyright © 2018 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Biochar erosion; Fecal indicator bacteria; Green infrastructure; Hydraulic conductivity; Matrix diffusion; Urban sustainability

Year:  2020        PMID: 32492569     DOI: 10.1016/j.scitotenv.2020.139180

Source DB:  PubMed          Journal:  Sci Total Environ        ISSN: 0048-9697            Impact factor:   7.963


  1 in total

1.  Generation, Resuspension, and Transport of Particulate Matter From Biochar-Amended Soils: A Potential Health Risk.

Authors:  Sujith Ravi; Junran Li; Zhongju Meng; Jianguo Zhang; Sanjay Mohanty
Journal:  Geohealth       Date:  2020-11-01
  1 in total

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