A Circular Economy Approach to Restoring Soil Substrate Ameliorated by Sewage Sludge with Amendments

Int J Environ Res Public Health. 2022 Apr 27;19(9):5296. doi: 10.3390/ijerph19095296.

Abstract

This study examined the use of an artificial soil substrate in a mine waste reclamation area and its effect on plant metabolic functions. Research was conducted by determining the relationship between the plants' biochemical features and the properties of plant growth medium derived from post-flotation coal waste, sewage sludge, crushed stone and fly ash on the surface of the mine waste disposal area. Trees and shrubs were established on the material and allowed to grow for eight years. The study determined that the applied plants and the naturally occurring Taraxacum officinale were suitable for physio-biochemical assessment, identification of derelict areas and reclamation purposes. An evaluation of a soil substrate applied to post-mining areas indicated that it was beneficial for plant growth since it activated the metabolic functions of herbaceous plants, shrubs, and trees. The study showed that soil substrate can be targeted to improve plant stress tolerance to potentially toxic elements (PTEs). These data suggest the potential for growth and slower susceptible response to Cd, Cr, Cu, Fe, Mn, Ni, Pb and Zn. It is possible that the constructed soil-substitute substrate (biosolid material) would be an effective reclamation treatment in areas where natural soil materials are polluted by PTEs. This observation may reflect a more efficient use of soil substrate released from the cycling of organic biogene pools, in accordance with the circular economy approach. In further studies related to land reclamation using sewage sludge amendments, it would be necessary to extend the research to other stress factors, such as salinity or water deficiency.

Keywords: biochemical activity; enzymatic biomarkers; metal availability; post-mining remediation; sewage sludge amendments; substrate enrichment.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Coal Ash
  • Metals, Heavy* / analysis
  • Mining
  • Plants / metabolism
  • Sewage / chemistry
  • Soil / chemistry
  • Soil Pollutants* / analysis
  • Trees

Substances

  • Coal Ash
  • Metals, Heavy
  • Sewage
  • Soil
  • Soil Pollutants

Grants and funding

This research was funded by Ministry of Science and Higher Education for 2022.