PhD THESIS TOPICS AND MATERIALS IN GEOLOGY

PhD THESIS TOPICS AND MATERIALS IN GEOLOGY

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PhD THESIS TOPICS AND MATERIALS IN GEOLOGY

  • – Sulphur compounds in deep groundwater in the shale formation of the Liminka area
  • – Suolaiset kalliopohjavedet ja niiden alkuperä /Characterization and the origin of saline groundwater in bedrock (F, E)
  • – Physical and chemical heterogeneity on waste rocks watering in a real scale pile (E)

Mine waste modeling, Comsol software

  • – Environmental effects of drilling chemicals in deep bedrock drilling hole/
  • – Groundwater recharge estimation in Finland
  • – Groundwater – surface water interaction in mining environments (F, E)
  • – Natural geochemical and isotopic tracers in hydrogeology (F, E)
  • – Quaternary history of Lauhavuori
  • – Glacier erosion in the hard bed zones of Finland Lake District Ice Stream Lobe (F, E)
  • – Prediction of geochemical evolution of water and gas during lab scale multibarrier bioreactor test (F, E)
  • – Climatic drivers of the global human distribution during the Last Glacial Maximum (F, E)
  • – Climate change and gaps in human occupation history in the Levant between 300ka and 40ka (F, E)
  • – Patterns of European palaeoclimate in the Holocene and Eemian interglacial periods
  • – Age and origin of the mysterious crinoid limestones from Åland
  • – Spatial distribution and clustering of benthic skeletal organisms in a shallow marine limestone on Vormsi Island, Estonia
  • – Peatland dynamics-climate feedbacks
  • – Origin and stability of the surface landforms on a raised bog in Valkmusa national park, eastern Finland (involves fieldwork in Finland)
  • – Using charcoal piece analysis for fire history reconstruction in the boreal coniferous forest (involves fieldwork in Finland)
  • – A novel approach for vegetation biomass reconstructions using pollen data from a lake sediment core from southern Finland (involves fieldwork in Finland)
  • – Quantifying the rate of temperature change in Europe during the rapid climate changes of the late-glacial period (no fieldwork)
  • – Spatio-temporal climate reconstructions using new lipid biomarker methods (no fieldwork)
  • – Holocene Thermal Maximum as an analogue for the predicted future warming in Finland
  • – Developing digital standards for topographic methods to analyse fossils
  • – Identifying the Pleistocene hypercarnivorous canids based on carnassial morphometrics –
  • – A palaeo-diet study using angle-based mesowear of fossil mammals from X (details to be agreed on)
  • – An ecometric analysis of fossil mammals from Y (details to be agreed on)
  • – The fossil rhinoceros remains from Orce, early Pleistocene of Andalucia, Spain
  • – The fossil rhinoceros remains from OBUU, Western Mongolia – taxonomic and palaeoenvironmental context
  • – Trace element characterization of titanite in the Kumpula drill core
  • – Trace element characterisation of chromites from mafic-ultramafic lithologies
  • – The chemical evolution of olivine xenocrysts in Heard Island samples, Australia
  • – Platinum group elements in Antarctic norite samples
  • – The evolution of Cr-spinel hosted melt inclusions in 2Ga Finnish komatiite samples

Description: Major, trace element and PGE geochemistry of Cr-spinels and major and trace element geochemistry of melt inclusions, ± including volatiles

  • – Thermodynamic constraints for assimilation in basaltic and picritic magmas
  • – “Provide your own igneous petrology subject for which you would use Magma Chamber Simulator or MELTS modeling tools”
  • – Petrology of mantle xenoliths from Southern African kimberlites (Oleg von Knorring collection)
  • – Geochemical fingerprinting of gold deposits in Ostrobothia Gold Camp, Finland
  • – Distribution of cobalt and tungsten in Kopsa Au-deposit, Ostrobothnia, Finland
  • – Geochemistry of moss – new tool for mineral exploration under cover
  • – Chemical and stable isotope composition of ground waters from 1800-metres-deep drill hole at Kevitsa mine, Northern Finland
  • – Green Mining: Distribution of gold and cobalt in the tailings of historical Haveri gold mine, Ylöjärvi, southern Finland
  • – Petrology/mineralogy/geochemistry topic on Kuusamo Deep Drill Hole
  • – Topic on Ni-Cu-PGE exploration in Northern Finland (TBD)
  • – Geochemistry, mineralogy and petrogenesis of the Leppävirta “hornblende gneisses” (F, E)
  • – Petrology and mineral chemistry of the 2.1 Ga Tanhua mafic intrusion, Savukoski, Lapland (F, E)
  • – Heat and mass transfer in coaxial drill hole casings for geothermal energy applications
  • – Inverse solution of conductive heat transfer in 3D anisotropic medium: Heating experiment in an underground research laboratory
  • – Hydrothermally altered mineralized systems: Seismic reflection properties of rocks
  • – Effect of geological structure on rock stress: a modelling approach (using Matlab and Coulomb software)
  • – Cosmogenic isotopes in age dating of glacial bedrock morphology
  • – Interpretation of fission track age data in the 2.5 km deep Outokumpu drill hole
  • – Hydraulic properties of crystalline rocks: Injection tests in deep boreholes
  • – Prediction of permafrost evolution under warming climate: a modelling approach
  • – Processing and analysis of seismic reflection data from exploration and mining camps
  • – Thermal properties of meteorites
  • – Inversion of subsurface drill hole temperature profiles for ground surface temperature history (combination of geothermal data analysis and glaciation dynamics)
  • – Induced seismicity in enhanced geothermal systems
  • – Geoneutrinos and radiogenic heat production of the Earth
  • – Fracture orientation analysis of the Outokumpu deep drill hole with acoustic televiewer data
  • – Low temperature thermochronology Fission track & (U-Th)/He methods
  • – Modeling of thermochronological data
  • – Study of microscopic shock effects in meteorites – insight into collision history of asteroids
  • – Use of artificial intelligence in characterization of asteroid spectra to derive their mineral composition
  • – Development of hyperspectral imager calibration procedure for ESA Hera mission
  • – Cretaceous-Paleogene mass extinction. Environmental magnetic study on carbonate sequence recording the K-T transition (Brazil)
  • – Seismicity and tectonothermal environment of the Wiborg rapakivi batholith
  • – Geophysical properties of the Pyhäsalmi area
  • – Applicability of Open quake software to Finnish conditions
  • – Automatic assessment of seismic intensity for felt earthquakes in Finland
  • – Harmonization of internet macroseismology in Fennoscandia
  • – Projects associated with the analysis of seismic data collected by 100+ stations around the 2018 and 2020 geothermal reservoir stimulations in Otaniemi/Espoo
  • – Projects associated with crustal and fault zone monitoring and imaging using ambient noise correlations
  • – Magnitude-yield relationships for underwater explosions
  • – Detection and identification of glacier based seismic signals in Antarctica using unsupervised machine learning
  • – Automatic detection of seismic events in urban areas, comparison of methods
  • – Seismic signal onset estimation by combining different methods and machine learning
  • – Study of dissimilarities of microearthquakes in concise earthquake populations with self-organizing maps
  • – Ablative subduction in the Andes: An alternative mechanism for removal of mantle lithosphere?
  • – Quantifying rates of bedrock landsliding in mountainous regions and their implications for landscape erosion
  • – Effects of orographic precipitation on mountain evolution in 3D
  • – Where does landslide-derived sediment go and how long does it take?
  • – Mapping erosion in steep mountain landscapes using detrital thermochronology
  • – Paleoproterozoic plateaus: Implications for lithospheric evolution and crustal metamorphism
  • – Application of probabilistic seismic event location software, with a focus on the impact of station geometry and station position uncertainty on location uncertainty
  • – Quantitative interpretation of geophysical data from Sakatti Ni-Cu-PGE deposit for aiding hydrogeological 3D modelling (for mine planning)
  • – Comparison of results of anisotropy of magnetic susceptibility (AMS), anisotropy of remanent magnetization (ARM) and micro tomography
  • – Comparison of IP results measured with MAFRIP (frequency domain) and SCIP (time domain)
  • – Factors affecting the measuring results of seismic p-wave velocities in the laboratory
  • – Re-processing and 3D modelling of reflection seismic data of HIRE formations
  • – Use of reflection seismic data to model near surface layers and structures in the groundwater area
  • – Testing of different migration algorithms in the last stages of processing reflection seismic data
  • – Theoretical modelling of seismic response of geological structures of interest
  • – Can airborne TEM data observe conductors better than GTK’s airborne data?
  • – Joint use of seismics, petrophysics and AMS in studies of a Ni-Cu-PGE ore
  • – Analysis of airborne national magnetic data
  • – Usage of machine learning for petrophysical and geochemical analysis
  • – Joint interpretation of airborne and ground EM data from the Outokumpu area
  • – Anisotropy (if any) and characterization of flake graphites vs uneconomic/impure graphites + implications for geophysical exploration

HOW TO RECEIVE PROJECT MATERIAL(S)

After paying the appropriate amount (#5,000) into our bank Account below, send the following information to

08068231953 or 08168759420

(1)    Your project topics

(2)     Email Address

(3)     Payment Name

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We will send your material(s) after we receive bank alert

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Account Name: AMUTAH DANIEL CHUKWUDI

Account Number: 0046579864

Bank: GTBank.

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Account Number: 3139283609

Bank: FIRST BANK

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