In preparation

Glerum et al.. Stress-tracking algorithms in geodynamic models with a viscoelastic-viscoplastic rheology: Comparing accuracy and performance of field and particle methods.

2026

Zwaan, F. Glerum, A. C., Brune, S., Vasey, D. A., Naliboff, J. B., Manatschal, G. and Gaucher, E. C. (2026). The impact of erosion efficiency on rift-inversion orogen evoluiton: implications for serpentinization-derived natural H2 resources, Journal of Geophysical Research: Solid Earth 131, e2025JB033255, 10.1029/2025JB033255.

Glerum et al. (2026). Cratonic impact on clastic-dominated base metal deposits in continental rifts, Earth and Planetary Science Letters, 680, 119881, 10.1016/j.epsl.2026.119881.

Wang et al. (2026). Dynamic controls on salt structures and translation velocity at continental rifted margins, JGR Solid Earth, 131, 1, e2025JB032143, 10.1029/2025JB032143.

2025

Magri et al. (2025). Thermo-Mechanical Rift Evolution of Large Igneous Province Crust, Tectonics, 44, e2025TC008878, 10.1029/2025TC008878.

Li et al. (2025). Pre-Rift Orogenic Erosion Facilitates the Exhumation of Lower Crust at Rifted Margins, Geophysical Research Letters, 52, e2024GL113543, 10.1029/2024GL113543.

Zwaan et al. (2025). Rift-inversion orogens are potential hotspots for natural H2 generation, Science Advances, 11, 8, 10.1126/sciadv.adr3418. Press coverage on Science Focus, CNN, N-TV.

2024

Li et al. (2024). From orogeny to rifting: The role of inherited structures during the formation of the South China Sea, JGR Solid Earth, 129, 12, 10.1029/2024JB029006.

Glerum et al. (2024). Geodynamic control on clastic-dominated metal deposits, EGU Solid Earth, 15, 8, 921–944, 10.5194/se-15-921-2024.

Gernon et al. (2024). Coevolution of craton margins and interiors during continental break-up, Nature 632, 327–335, 10.1038/s41586-024-07717-1.

Vasey et al. (2024). Impact of rift history on the structural style of intracontinental rift-inversion orogens, Geology 52 (6), 429–434, 10.1130/G51489.1.

Zwaan et al. (2024). (D)rifting in the 21st century: Key processes, natural hazards and geo-resources, EGU Solid Earth, 15, 8, 989–1028, 10.5194/se-15-989-2024.

Heckenbach, E. L. et al. (2024). 3D Interaction of Tectonics and Surface Processes explains Fault Network Evolution of the Dead Sea Fault. Tektonika, 2(2), 33–51, 10.55575/tektonika2024.2.2.75.

2023

Glerum et al. (in revision). Sensitivity of horizontal surface deformation to mantle dynamics from 3D instantaneous dynamics modeling of the eastern Mediterranean, 10.31223/X5FW59.

Bodur, O. et al. (2023). Crustal flow driving twin domes exhumation and low-angle normal faulting in the Menderes Massif of western Anatolia, Earth and Planetary Science Letters, 619, 118309, 10.1016/j.epsl.2023.118309.

Gernon, T. M. et al. (2023). Rift-induced disruption of cratonic keels drives kimberlite volcanism, Nature, 620, 344-350, 10.1038/s41586-023-06193-3.

Schmid, T. C. et al. (2023). Tectonic interactions during rift linkage: insights from analog and numerical experiments, Solid Earth, 14, 4, 389-407, 10.5194/se-14-389-2023.

2022

Neuharth, D. et al. (2022). Flexural strike-slip basins, Geology, 50.3, 361-365, 10.1130/G49351.1.

Neuharth, D. et al. (2022). Evolution of rift systems and their fault networks in response to surface processes, Tectonics, 41.e2021TC007166, 10.1029/2021TC007166.

van Zelst, I. et al. (2022). 101 Geodynamic modelling: How to design, carry out, and interpret numerical studies, Solid Earth, 13, 583-637, 10.5194/se-13-583-2022.

2021

Heckenbach, E. L. et al. (2021), Is There a Speed Limit for the Thermal Steady‐State Assumption in Continental Rifts?, Geochemistry, Geophysics, Geosystems 22.3, 10.1029/2020GC009577.

Neuharth, D. et al. (2021), Formation of Continental Microplates Through Rift Linkage: Numerical Modeling and Its Application to the Flemish Cap and Sao Paulo Plateau, Geochemistry, Geophysics, Geosystems 22.4, 10.1029/2020GC009615.

Richter, M. J. E. A. et al. (2021), Controls on Asymmetric Rift Dynamics: Numerical Modeling of Strain Localization and Fault Evolution in the Kenya Rift, Tectonics, 40, 10.1029/2020tc006553.

Sandiford, D. et al. (2021). Kinematics of Footwall Exhumation at Oceanic Detachment faults: Solid‐Block Rotation and Apparent Unbending, Geochemistry, Geophysics, Geosystems 22.4, 1–25, 10.1029/2021GC009681.

2020

Glerum et al. (2020), Victoria continental microplate dynamics controlled by the lithospheric strength distribution of the East African Rift, Nature Communications, 11, 2881, 10.1038/s41467-020-16176-x.

Muluneh et al. (2020), Mechanism for deep crustal seismicity: Insight from modeling of deformation process at the Main Ethiopian Rift, Geochemistry Geophysics Geosystems, 21, 7, 10.1029/2020GC008935.

Naliboff et al. (2020), Development of 3D rift heterogeneity through fault network evolution, Geophysical Research Letters, 47, 13, 10.1029/2019GL086611.

Rajaonarison et al. (2020), Numerical modeling of mantle flow beneath Madagascar to constrain upper mantle rheology beneath continental regions, Journal of Geophysical Research: Solid Earth, 125, 2, 10.1029/2019JB018560.

2019

Corti et al. (2019), Aborted propagation of the Ethiopian rift caused by linkage with the Kenyan rift, Nature Communications, 10, 1, 1309, 10.1038/s41467-019-09335-2.

Fraters et al. (2019), Efficient and practical Newton solvers for nonlinear Stokes systems in geodynamic problems, Geophysical Journal International, 218, 2, 873–894, 10.1093/gji/ggz183.

Glerum, A. (2019), Geodynamics of complex plate boundary regions: Insights from numerical models of convergent eastern Mediterranean and divergent east African plate tectonics, PhD Thesis, (Utrecht Studies in Earth Sciences, 175), Utrecht: Utrecht University, Department of Earth Sciences.

2018

Yamaguchi et al. (2018), Viscoelastic Crustal Deformation Computation Method with Reduced Random Memory Accesses for GPU-Based Computers - In: Shi et al. (Eds.), Computational Science – ICCS 2018, (Lecture Notes in Computer Science), Springer International Publishing, 31–43, 10.1007/978-3-319-93701-4_3.

Glerum et al. (2018), Nonlinear viscoplasticity in ASPECT: benchmarking and applications to subduction, Solid Earth, 9, 267–294, 10.5194/se-9-267-2018.

2015

Tosi et al. (2015), A community benchmark for viscoplastic thermal convection in a 2-D square box. Geochemistry, Geophysics, Geosystems (16), 2175–2196, 10.1002/2015GC005807.

My Orcid page & my Google Scholar page.