Assessment of Leachate Production from a Municipal Solid-Waste Landfill through Water-Balance Modeling

Mineral temporary capping systems of landfills are required to accomplish the long-term coverage prerequisites or to use them as a basis layer prior to later permanent sealing. Such a capping system for a municipal waste landfill in Rastorf (Northern Germany) was developed and tested for its sealing...

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Main Authors: Steffen Beck-Broichsitter, Horst H. Gerke, Rainer Horn
Format: Article
Language:English
Published: MDPI AG 2018-10-01
Series:Geosciences
Subjects:
Online Access:http://www.mdpi.com/2076-3263/8/10/372
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spelling doaj-c022c7a30a76437dbfdace16bf5be76f2020-11-24T21:27:50ZengMDPI AGGeosciences2076-32632018-10-0181037210.3390/geosciences8100372geosciences8100372Assessment of Leachate Production from a Municipal Solid-Waste Landfill through Water-Balance ModelingSteffen Beck-Broichsitter0Horst H. Gerke1Rainer Horn2Research Area 1 “Landscape Functioning”, Working Group “Hydropedology”, Leibniz-Centre for Agricultural Landscape Research (ZALF), Eberswalder Straße 84, 15374 Müncheberg, GermanyResearch Area 1 “Landscape Functioning”, Working Group “Hydropedology”, Leibniz-Centre for Agricultural Landscape Research (ZALF), Eberswalder Straße 84, 15374 Müncheberg, GermanyInstitute of Plant Nutrition and Soil Science, Christian Albrechts University Kiel, 24118 Kiel, GermanyMineral temporary capping systems of landfills are required to accomplish the long-term coverage prerequisites or to use them as a basis layer prior to later permanent sealing. Such a capping system for a municipal waste landfill in Rastorf (Northern Germany) was developed and tested for its sealing capability on the basis of observed and simulated water balance components for the period between 2008 and 2015, considering observed local weather data and complemented by the Hydraulic Evaluation of Landfill Performance (HELP 3.95 D) model. The modeling results of this case study could be improved by the correction of previously used global solar radiation data due to the consideration of exposure and inclination angle of landfill surface areas. The model could positively be validated by comparing observed and simulated outflow (surface runoff and lateral drainage) data with R2 values ranging between 0.95 and 0.99, as well as for the leachate rates with R2 values of 0.78–0.87. The statistical-empirical HELP model was found useful in predicting the leachate generation of a temporary landfill capping system for specific soil and site conditions, even if only a restricted set of observed data was available.http://www.mdpi.com/2076-3263/8/10/372water balanceHELP modelglobal solar radiationleachate
collection DOAJ
language English
format Article
sources DOAJ
author Steffen Beck-Broichsitter
Horst H. Gerke
Rainer Horn
spellingShingle Steffen Beck-Broichsitter
Horst H. Gerke
Rainer Horn
Assessment of Leachate Production from a Municipal Solid-Waste Landfill through Water-Balance Modeling
Geosciences
water balance
HELP model
global solar radiation
leachate
author_facet Steffen Beck-Broichsitter
Horst H. Gerke
Rainer Horn
author_sort Steffen Beck-Broichsitter
title Assessment of Leachate Production from a Municipal Solid-Waste Landfill through Water-Balance Modeling
title_short Assessment of Leachate Production from a Municipal Solid-Waste Landfill through Water-Balance Modeling
title_full Assessment of Leachate Production from a Municipal Solid-Waste Landfill through Water-Balance Modeling
title_fullStr Assessment of Leachate Production from a Municipal Solid-Waste Landfill through Water-Balance Modeling
title_full_unstemmed Assessment of Leachate Production from a Municipal Solid-Waste Landfill through Water-Balance Modeling
title_sort assessment of leachate production from a municipal solid-waste landfill through water-balance modeling
publisher MDPI AG
series Geosciences
issn 2076-3263
publishDate 2018-10-01
description Mineral temporary capping systems of landfills are required to accomplish the long-term coverage prerequisites or to use them as a basis layer prior to later permanent sealing. Such a capping system for a municipal waste landfill in Rastorf (Northern Germany) was developed and tested for its sealing capability on the basis of observed and simulated water balance components for the period between 2008 and 2015, considering observed local weather data and complemented by the Hydraulic Evaluation of Landfill Performance (HELP 3.95 D) model. The modeling results of this case study could be improved by the correction of previously used global solar radiation data due to the consideration of exposure and inclination angle of landfill surface areas. The model could positively be validated by comparing observed and simulated outflow (surface runoff and lateral drainage) data with R2 values ranging between 0.95 and 0.99, as well as for the leachate rates with R2 values of 0.78–0.87. The statistical-empirical HELP model was found useful in predicting the leachate generation of a temporary landfill capping system for specific soil and site conditions, even if only a restricted set of observed data was available.
topic water balance
HELP model
global solar radiation
leachate
url http://www.mdpi.com/2076-3263/8/10/372
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