Javascript must be enabled to continue!
Cyanobacterial and microcystins dynamics following the application of hydrogen peroxide to waste stabilisation ponds
View through CrossRef
Abstract. Cyanobacteria and cyanotoxins are a risk to human and ecological health, and a hindrance to biological wastewater treatment. This study investigated the use of hydrogen peroxide (H2O2) for the removal of cyanobacteria and cyanotoxins from within waste stabilization ponds (WSPs). The daily dynamics of cyanobacteria and microcystins (a commonly occurring cyanotoxin) were examined following the addition of H2O2 to wastewater within both the laboratory and at the full-scale within a WSP. Hydrogen peroxide treatment at concentrations ≥ 10−4 g H2O2 μg−1 of total phytoplankton chlorophyll a led to the death of cyanobacteria, in turn releasing intracellular microcystins to the dissolved state. In the full-scale trial, dissolved microcystins were then degraded to negligible concentrations by H2O2 and environmental processes within five days. A shift in the phytoplankton assemblage towards beneficial chlorophyta species was also observed within days of H2O2 addition. However, within weeks, the chlorophyta population was significantly reduced by the re-establishment of toxic cyanobacterial species. This re-establishment was likely due to the inflow of cyanobacteria from ponds earlier in the treatment train, suggesting that whilst H2O2 may be a suitable short-term management technique, it must be coupled with control over inflows if it is to improve WSP performance in the longer term.
Title: Cyanobacterial and microcystins dynamics following the application of hydrogen peroxide to waste stabilisation ponds
Description:
Abstract.
Cyanobacteria and cyanotoxins are a risk to human and ecological health, and a hindrance to biological wastewater treatment.
This study investigated the use of hydrogen peroxide (H2O2) for the removal of cyanobacteria and cyanotoxins from within waste stabilization ponds (WSPs).
The daily dynamics of cyanobacteria and microcystins (a commonly occurring cyanotoxin) were examined following the addition of H2O2 to wastewater within both the laboratory and at the full-scale within a WSP.
Hydrogen peroxide treatment at concentrations ≥ 10−4 g H2O2 μg−1 of total phytoplankton chlorophyll a led to the death of cyanobacteria, in turn releasing intracellular microcystins to the dissolved state.
In the full-scale trial, dissolved microcystins were then degraded to negligible concentrations by H2O2 and environmental processes within five days.
A shift in the phytoplankton assemblage towards beneficial chlorophyta species was also observed within days of H2O2 addition.
However, within weeks, the chlorophyta population was significantly reduced by the re-establishment of toxic cyanobacterial species.
This re-establishment was likely due to the inflow of cyanobacteria from ponds earlier in the treatment train, suggesting that whilst H2O2 may be a suitable short-term management technique, it must be coupled with control over inflows if it is to improve WSP performance in the longer term.
Related Results
Water Trash Collector
Water Trash Collector
In today day to day life, approximately 71% of the Earth's surface is covered by Without affecting significant role that technology plays in our modern world, environmental and wat...
The Importance of Lake Sediments as a Pathway for Microcystin Dynamics in Shallow Eutrophic Lakes
The Importance of Lake Sediments as a Pathway for Microcystin Dynamics in Shallow Eutrophic Lakes
Microcystins are toxins produced by cyanobacteria. They occur in aquatic systems across the world and their occurrence is expected to increase in frequency and magnitude. As micro...
Effect of irrigation with lake water containing microcystins on microcystin content and growth of ryegrass, clover, rape, and lettuce
Effect of irrigation with lake water containing microcystins on microcystin content and growth of ryegrass, clover, rape, and lettuce
AbstractThe effect of irrigation with lake water containing a variety of microcystins on accumulation of toxins, or toxin metabolites, and plant growth in ryegrass, clover, rape, a...
Creating a Rapid Identification Toolkit For Rural Ponds
Creating a Rapid Identification Toolkit For Rural Ponds
It is well known that rural ponds are a key biological resource especially in rural landscapes, providing biologically diverse hotspots and delivering ecosystem services such as fl...
PENGETAHUAN MAHASISWA TATA BUSANA TENTANG ZERO WASTE PATTERN
PENGETAHUAN MAHASISWA TATA BUSANA TENTANG ZERO WASTE PATTERN
Textile waste is one of the 2nd largest types of waste in the world. The increasing amount of textile waste will have an impact on the environment. There has not been much developm...
The Fate of Microcystins in the Environment and Challenges for Monitoring
The Fate of Microcystins in the Environment and Challenges for Monitoring
Microcystins are secondary metabolites produced by cyanobacteria that act as hepatotoxins in higher organisms. These toxins can be altered through abiotic processes, such as photod...
DENGUE OUTBREAK -IS THE PANIC JUSTIFIED ?
DENGUE OUTBREAK -IS THE PANIC JUSTIFIED ?
In this era of startling developments in the medical field there remains a serious worry about the hazardous potential of various by products which if not properly addre...
Local nutrient regimes determine site-specific environmental triggers of cyanobacterial and microcystin variability in urban lakes
Local nutrient regimes determine site-specific environmental triggers of cyanobacterial and microcystin variability in urban lakes
Abstract. Toxic cyanobacterial blooms in urban lakes present serious health hazards to humans and animals and require effective management strategies. In the management of toxic cy...

