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|a 9781402035531
|9 978-1-4020-3553-1
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|a 10.1007/1-4020-3553-5
|2 doi
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|a QH541.15.M64
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|a SCI026000
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|a 363.7063
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|a Small-scale Freshwater Toxicity Investigations
|h [electronic resource] :
|b Volume 2 - Hazard Assessment Schemes /
|c edited by Christian Blaise, Jean-François Férard.
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|a 1st ed. 2005.
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|a Dordrecht :
|b Springer Netherlands :
|b Imprint: Springer,
|c 2005.
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|a XVIII, 422 p.
|b online resource.
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|a text
|b txt
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|a computer
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|a online resource
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|b PDF
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|a Overview of contemporary toxicity testing -- Effluent assessment with the Peep (Potential Ecotoxic Effects Probe) index -- A multitest index of effluent toxicity by PLS regression -- The pT-method as a Hazard Assessment Scheme for wastewaters -- Strategies for monitoring environmental effects of industrial effluents -- Overview of toxicity reduction and identification evaluations for use with small-scale tests -- Determination of the Heavy Metal Binding Capacity (HMBC) of Environmental Samples -- The Application of Hazard Assessment Schemes Using the Watertox Toxicity Testing Battery -- The SED-TOX Index for Toxicity Assessment of contaminated solid matrices -- The pT-Method as a Hazard Assessment Scheme for sediments and dredged material -- Using the Sediment Quality Triad (Sqt) in ecological risk assessment -- Wastoxhas: A bioanalytical strategy for solid wastes assessment.
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|a Developed, developing and emerging economies worldwide are collectively contributing multiple stresses on aquatic ecosystems by the release of numerous contaminants. This in turn demands that basic toxicological information on their potential to harm living species be available. Hence, environmental protection programs aimed at preserving water quality must have access to comprehensive toxicity screening tools and strategies that can be applied reliably and universally. While a good number of toxicity testing procedures and hazard assessment approaches have been published in the scientific literature over the past decades, many are wanting in that insufficient detail is available for users to be able to fully understand the test method or scheme and to be able to reproduce it successfully. Even standardized techniques published in recognized international standard organization documents are often lacking in thoroughness and minutiae. Paucity of information relating to biological test methods may be consequent and trigger several phenomena including generation of invalid data and resulting toxicity measurements, erroneous interpretation and decision-taking with regards to a particular chemical or environmental issue, or simply abandonment of testing procedures. Clearly, improperly documented toxicity testing methods can be detrimental to their promotion and use, as they open the doorway to unnecessary debate and criticism as to their raison d'être. Furthermore, this situation can indirectly contribute to delaying, minimizing or eliminating their application, thereby curtailing the important role toxicity testing plays in the overall protection and conservation of aquatic ecosystems.
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|a Environmental monitoring.
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|a Freshwater ecology.
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|a Marine ecology.
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|a Pollution.
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|a Environmental chemistry.
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|a Water.
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|a Hydrology.
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|a Environmental Monitoring.
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|a Freshwater and Marine Ecology.
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|a Pollution.
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|a Environmental Chemistry.
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|a Water.
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|a Blaise, Christian.
|e editor.
|4 edt
|4 http://id.loc.gov/vocabulary/relators/edt
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|a Férard, Jean-François.
|e editor.
|4 edt
|4 http://id.loc.gov/vocabulary/relators/edt
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2 |
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|a SpringerLink (Online service)
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|t Springer Nature eBook
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|i Printed edition:
|z 9789048103683
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776 |
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|i Printed edition:
|z 9789048168989
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|i Printed edition:
|z 9781402035432
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|u https://doi.uam.elogim.com/10.1007/1-4020-3553-5
|z Texto Completo
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|a ZDB-2-EES
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|a ZDB-2-SXEE
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|a Earth and Environmental Science (SpringerNature-11646)
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|a Earth and Environmental Science (R0) (SpringerNature-43711)
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