TY - JOUR
T1 - Basal heat-flow and hydrothermal regime at the Golan-Ajloun hydrological basins
AU - Roded, R.
AU - Shalev, E.
AU - Katoshevski, D.
PY - 2013/1/7
Y1 - 2013/1/7
N2 - A shallow heat anomaly in the form of heated groundwater is detected in the Lower Yarmouk Gorge (LYG), at Northern Israel and Jordan. Results of 2-D numerical simulations of groundwater flow and heat transfer, conducted for the Golan-Ajloun area, indicate that satisfying the thermal field observations requires: (a) existence of an exceptional source of geothermal heat below the Golan Heights (GH); (b) existence of a deep flow path (∼3km), of several MCM/yr of the total 45.5MCM/yr forced convection flow component, originating at Hermon Ridge and discharging at the LYG outlets. Said flow component serves as fundamental heat convection component, which transports heat from a great depth and vast area, and significantly affects the geothermal pattern. This deep circulation is causing a considerable part of the basin's elevated heat to be transported to the LYG outlets, preventing shallow thermal expression at the GH. Model results indicate that regional mean basal heat flow value of the GH is 100mW/m2, and that the shallow thermal anomaly of the LYG is an expression of a deep crust geothermal anomaly.Additional possible hydrothermal configurations involve an eastern exceptional heat source or alternatively deep convection that is larger by area magnitude (∼3600km2) and under standard regional basal heat flow (50mW/m2).
AB - A shallow heat anomaly in the form of heated groundwater is detected in the Lower Yarmouk Gorge (LYG), at Northern Israel and Jordan. Results of 2-D numerical simulations of groundwater flow and heat transfer, conducted for the Golan-Ajloun area, indicate that satisfying the thermal field observations requires: (a) existence of an exceptional source of geothermal heat below the Golan Heights (GH); (b) existence of a deep flow path (∼3km), of several MCM/yr of the total 45.5MCM/yr forced convection flow component, originating at Hermon Ridge and discharging at the LYG outlets. Said flow component serves as fundamental heat convection component, which transports heat from a great depth and vast area, and significantly affects the geothermal pattern. This deep circulation is causing a considerable part of the basin's elevated heat to be transported to the LYG outlets, preventing shallow thermal expression at the GH. Model results indicate that regional mean basal heat flow value of the GH is 100mW/m2, and that the shallow thermal anomaly of the LYG is an expression of a deep crust geothermal anomaly.Additional possible hydrothermal configurations involve an eastern exceptional heat source or alternatively deep convection that is larger by area magnitude (∼3600km2) and under standard regional basal heat flow (50mW/m2).
KW - Geothermal systems
KW - Heat flow
KW - Numerical modeling
UR - http://www.scopus.com/inward/record.url?scp=84870988426&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=84870988426&partnerID=8YFLogxK
U2 - 10.1016/j.jhydrol.2012.10.035
DO - 10.1016/j.jhydrol.2012.10.035
M3 - Article
AN - SCOPUS:84870988426
SN - 0022-1694
VL - 476
SP - 200
EP - 211
JO - Journal of Hydrology
JF - Journal of Hydrology
ER -