Sort by
Refine Your Search
-
Category
-
Country
-
Program
-
Employer
- CRANFIELD UNIVERSITY
- King Abdullah University of Science and Technology
- University of Glasgow
- VIB
- Delft University of Technology (TU Delft)
- Ghent University
- IDAEA-CSIC
- KU LEUVEN
- KU Leuven
- Queensland University of Technology
- University of Amsterdam (UvA)
- University of Basel
- University of Bath
- University of Nottingham
- University of Pennsylvania
- University of Plymouth
- 6 more »
- « less
-
Field
-
active member of the international RosettaCommons community, which provides opportunities for collaboration, training, workshops, and networking with leading researchers in computational protein design
-
, air and other fluids flowing through the pores. They therefore affect soil health, groundwater flow, spreading and remediation of pollutants, weathering of (building) stone, and fouling of underground
-
applied physics other related disciplines. Demonstrated knowledge in at least one of the following areas: porous media flow computational fluid dynamics (CFD) pore-network modelling lattice Boltzmann method
-
, enabling detailed analysis of pore structure and connectivity. • SRS measurements: The same fruit batches will be measured using SRS to develop calibration models relating optical signals to porosity
-
the properties and performance of these materials. This area also requires experimental studies by providing insights from molecular levels to continuous pore scale level. The modeling of porous membrane usually
-
building materials? What reactions occur within the pore network? Which factors determine whether a treatment succeeds or fails in practice? As a PhD researcher in the CHEMBARIDA project, you will tackle
-
. This includes facies analysis, environmental research, diagenesis, pore-network analysis and stratigraphy. Additional ideas will also be considered. A multitude of data is already available including shallow
-
Centre for Doctoral Training in Negative Emission Technologies for Net Zero (CDT in Net2Zero) is an equal partnership between Aston University (lead), University of Nottingham, Queen’s University Belfast
-
plants’ sensory network is the circadian clock. In plants these biological timers govern responses to light and temperature (dependent on time of day), whilst also coordinating flowering time. Importantly
-
insights into the processes linking K+ binding within the GORK channel pore to clustering of the channel proteins. This project will explore the physical structure of GORK that determines its self