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mechanical treatment and dewatering of harbour sediments.
Comparisons of cell and stack designs for the electrodialytic removal of heavy metals from two harbour sediments, were made.
In harbour sediments, fibres accounted for 40%% of the microplastics, granules for 34%%, plastic films for 4%% and PS spheres for 22%%.
High concentrations in harbour sediments were thought to be related to local input and to the fact that the studied harbour areas were partly enclosed.
Harbour sediments contained significantly more microplastics (mean: 167 items/kg sediment dw) than coastal (92 items/kg sediment dw) and offshore sediments (105 items/kg sediment dw).
Chemometrics was used to develop a multivariate model based on 46 previously reported electrodialytic remediation experiments (EDR) of five different harbour sediments.
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Multivariate methodology was employed for finding optimum remediation conditions for electrodialytic remediation of harbour sediment from an Arctic location in Norway.
Harbour sediment contaminated with tributyltin (TBT) is a worldwide problem and treatment of TBT contaminated seawater is an issue during dredging operations.
Here, under the influence of oxidized salt water, minor 1.3%% of the bulk harbour sediment copper (322 mg/kg) was mobilized in the central chamber; the released copper was preferentially transferred to organic substrates and, although providing only 5%% of the target substrates in the five outer chambers, the originally clean algal cell walls accumulated 250 mg/kg of copper.
Histopathologic and histochemical evaluations were made on the Baltic clam, Macoma balthica, exposed to 11 Sydney Harbour sediment samples.
Reporter gene assays were largely used to analyse samples such as harbour sediment and wasted waters [ 35, 36], but only few studies were conducted to assess the hormonal activity of biological tissues [ 37– 37].
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