Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Matthias H. Mueller is active.

Publication


Featured researches published by Matthias H. Mueller.


Science of The Total Environment | 2017

The thermal impact of subsurface building structures on urban groundwater resources – A paradigmatic example

Jannis Epting; Stefan Scheidler; Annette Affolter; Paul Borer; Matthias H. Mueller; Lukas Egli; Alejandro García-Gil; Peter Huggenberger

Shallow subsurface thermal regimes in urban areas are increasingly impacted by anthropogenic activities, which include infrastructure development like underground traffic lines as well as industrial and residential subsurface buildings. In combination with the progressive use of shallow geothermal energy systems, this results in the so-called subsurface urban heat island effect. This article emphasizes the importance of considering the thermal impact of subsurface structures, which commonly is underestimated due to missing information and of reliable subsurface temperature data. Based on synthetic heat-transport models different settings of the urban environment were investigated, including: (1) hydraulic gradients and conductivities, which result in different groundwater flow velocities; (2) aquifer properties like groundwater thickness to aquitard and depth to water table; and (3) constructional features, such as building depths and thermal properties of building structures. Our results demonstrate that with rising groundwater flow velocities, the heat-load from building structures increase, whereas down-gradient groundwater temperatures decrease. Thermal impacts on subsurface resources therefore have to be related to the permeability of aquifers and hydraulic boundary conditions. In regard to the urban settings of Basel, Switzerland, flow velocities of around 1 md-1 delineate a marker where either down-gradient temperature deviations or heat-loads into the subsurface are more relevant. Furthermore, no direct thermal influence on groundwater resources should be expected for aquifers with groundwater thicknesses larger 10m and when the distance of the building structure to the groundwater table is higher than around 10m. We demonstrate that measuring temperature changes down-gradient of subsurface structures is insufficient overall to assess thermal impacts, particularly in urban areas. Moreover, in areas which are densely urbanized, and where groundwater flow velocities are low, appropriate measures for assessing thermal impacts should specifically include a quantification of heat-loads into the subsurface which result in a more diffuse thermal contamination of urban groundwater resources.


Journal of Hydrology | 2014

Tracking water pathways in steep hillslopes by δ18O depth profiles of soil water

Matthias H. Mueller; Abdallah Alaoui; Christoph Kuells; Hannes Leistert; Katrin Meusburger; Christine Stumpp; Markus Weiler; Christine Alewell


Hydrology and Earth System Sciences | 2013

Importance of vegetation, topography and flow paths for water transit times of base flow in alpine headwater catchments

Matthias H. Mueller; Rolf Weingartner; Christine Alewell


Journal of Hydrology | 2017

Development of concepts for the management of thermal resources in urban areas – Assessment of transferability from the Basel (Switzerland) and Zaragoza (Spain) case studies

Jannis Epting; Alejandro García-Gil; Peter Huggenberger; Enric Vázquez-Suñé; Matthias H. Mueller


Hydrology and Earth System Sciences | 2014

Soil erosion by snow gliding – a first quantification attempt in a subalpine area in Switzerland

Katrin Meusburger; G. Leitinger; Lionel Mabit; Matthias H. Mueller; A. Walter; Christine Alewell


Science of The Total Environment | 2018

Combining monitoring and modelling tools as a basis for city-scale concepts for a sustainable thermal management of urban groundwater resources

Matthias H. Mueller; Peter Huggenberger; Jannis Epting


Ecohydrology | 2016

Water and solutes dynamics during rainfall events in headwater catchments in the Central Swiss Alps under the influence of green alder shrubs and wetland soils

Matthias H. Mueller; Abdallah Alaoui; Christine Alewell


Hydrology and Earth System Sciences Discussions | 2012

Relating stable isotope and geochemical data to conclude on water residence times in four small alpine headwater catchments with differing vegetation cover

Matthias H. Mueller; R. Weingartner; Christine Alewell


Energy Procedia | 2015

Numerical evaluation and optimization of depth-oriented temperature measurement for the investigation of thermal influences on groundwater resources

Mandy Köhler; Falk Händel; Jannis Epting; Martin Binder; Matthias H. Mueller; Peter Huggenberger; Rudolf Liedl


Catena | 2018

Modelling the impact of land use changes on peak discharge in the Urseren Valley, Central Swiss Alps

Mathias Fercher; Matthias H. Mueller; Abdallah Alaoui

Collaboration


Dive into the Matthias H. Mueller's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Lionel Mabit

International Atomic Energy Agency

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge