SJ Europe Updated 2026-08-20

Svalbard Geothermal Screening

Geothermal screening assessment identifies 17% prospective land reaching 185°C by 5.5 km depth in Svalbard.

Key Geothermal Metrics

Land Reaching 185°C by 5.5 km Moderate
17%

Primary baseline screening criterion

Shallowest Depth to 200°C Deep Target
5.9 km

Minimum drill depth for high enthalpy

Peak Temperature at 5 km Depth Commercial EGS
201.9 °C

Maximum modeled temperature

Typical Geothermal Gradient Continental Normal
28.9 °C/km

Average to 5 km depth (15°C surface)

Grid Connectable Prospective Area High Accessibility
89.3%

Hot territory within 50 km transmission

Stored Heat In-Place (3–7 km) 1 ZJ = 10²¹ Joules
13.8 ZJ

Thermal volume in place (>80°C baseline)

Depth vs. Temperature Matrix (% Land Area)

Proportion of national territory exceeding target isotherm at specified depth

0.1° Inversion Grid
Isotherm 3.0 km 4.0 km 5.0 km 6.0 km 7.0 km 8.0 km
150°C 2.9% 7.1% 11.4% 13.2% 19.4% 23.4%
175°C 2.5% 5.5% 7.2% 9.8% 14.4% 17.3%
200°C 1.7% 3.8% 5.7% 7.7% 9% 10.5%
225°C 0.9% 1.7% 2.7% 3.9% 5.4% 5.4%
250°C 0.1% 0.1% 0.2% 0.3% 0.4% 0.4%

4-Stage Geothermal Resource & Infrastructure Funnel

Progressive screening from gross national territory down to grid-connected & populated prospective zones

1 Whole country
62 049 km² 100%
2 Reaches 185°C by 5.5 km
10 548 km² 17%
3 ...and within 50 km transmission
9 419 km² 15.2%
4 ...and within 100 km town
8 571 km² 13.9%

Geological Setting & Subsurface Parameters

Lithology, basement thickness, stress and thermal boundary constraints

Median Depth to 200°C Isotherm 8.5 km
Best 10th Percentile Depth to 200°C 6.4 km
Median Temperature at 5 km Depth 141 °C
Best 10th Percentile Temp at 5 km 177.2 °C
Median Sediment Thickness 2.4 km
Sediment / Hard-Rock Well Share 22.5%
Territory Under 1 km Sediment Cover 30.9%
Lithostatic Pressure at 5 km Depth 132.1 MPa
Moho Crustal Discontinuity Depth 29.7 km
Thermal Lithosphere Thickness 70.2 km
Curie Temperature Isotherm Depth 23 km
Model Temperature Spread Uncertainty (200°C) ±0.8 km

Transmission Grid & Demand Colocation

Infrastructure interconnectivity and urban power demand proximity

High-Voltage Transmission Network Length 4 192 km
Land Area Within 25 km of Grid 75.7%
Land Area Within 50 km of Grid 89.3%
Land Area Within 100 km of Grid 97.7%
Average Proximity to Nearest Substation / Line 20.2 km
Urban Centers (>10,000 Population) 93
Total Urban Population 9.4 M
Prospective Resource Colocated Near Demand (>1M Pop) 24.8%

Target Sensitivity & Deep EGS Upside

Sensitivity of prospective resource area to adjusted depth and temperature thresholds

150°C Baseline at 5.5 km 27.2% of national territory reaches 150°C at 5.5 km depth
185°C Baseline at 7.5 km 30.6% of national territory reaches 185°C at 7.5 km depth

Global Peer Benchmarking (vs. 278 Assessed Jurisdictions)

Relative ranking distribution of Svalbard across 11 standardized geothermal indicators

Svalbard Rank Global Peer Spread
Shallowest 200°C depth
5.9 km Lower 50%
P0 (Lowest) P50 (Median) P100 (Highest) • 30th percentile
Peak temp at 5 km
201.9 °C Lower 50%
P0 (Lowest) P50 (Median) P100 (Highest) • 41th percentile
Prospective land area (>185°C at 5.5 km)
17% Lower 50%
P0 (Lowest) P50 (Median) P100 (Highest) • 28th percentile
Stored heat in-place (3-7 km)
13.8 ZJ Lower 50%
P0 (Lowest) P50 (Median) P100 (Highest) • 36th percentile
Typical geothermal gradient
28.9 °C/km Lower 50%
P0 (Lowest) P50 (Median) P100 (Highest) • 41th percentile
Grid proximity (<50 km)
89.3% Top 25%
P0 (Lowest) P50 (Median) P100 (Highest) • 89th percentile
Thin sediment coverage (<1 km)
30.9% Lower 50%
P0 (Lowest) P50 (Median) P100 (Highest) • 31th percentile
Curie isotherm depth
23 km Lower 50%
P0 (Lowest) P50 (Median) P100 (Highest) • 49th percentile
Moho crustal thickness
29.7 km Lower 50%
P0 (Lowest) P50 (Median) P100 (Highest) • 47th percentile
Model temperature uncertainty spread
±1.4 km Middle 50%
P0 (Lowest) P50 (Median) P100 (Highest) • 70th percentile
Urban demand colocation
58.1% Top 25%
P0 (Lowest) P50 (Median) P100 (Highest) • 62th percentile
Asset-Level 3D Simulation Available

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Analytical Geothermal Assessment & Discussion: Svalbard

Subsurface thermal interpretation, model uncertainty, infrastructure colocation, and resource quality analysis

Resource Overview

Geothermal assessment for Svalbard indicates sedimentary_rift geological controls governing subsurface heat transport, yielding 17% of land area reaching the baseline target of 185°C at 5.5 km depth.

Uncertainty & Model Variance

Thermal inversion across Svalbard shows consistent model convergence with constrained standard deviations across deep crustal layers.

Grid & Infrastructure Colocation

National electrical transmission coverage positions approximately 89.3% of prospective geothermal ground within 50 km of existing high-voltage corridors.

Geological & Basement Setting

Subsurface lithology is characterized by sedimentary rift dynamics with median sediment thickness of 2.4 km and crustal thickness of 29.7 km.

Stored Heat Volume

Accessible thermal energy in place between 3 km and 7 km depth above 80°C totals 13.8 Zettajoules (ZJ).

Peer Comparison

Benchmarked against 237 global assessment jurisdictions, Svalbard demonstrates competitive positioning across heat flow, infrastructure, and basement competence indicators.

Target Sensitivity Analysis

Screening at 150°C baseline at 5.5 km increases prospective territory, demonstrating substantial deep EGS resource headroom.

Screening Methodology, Parameters & Limitations

This screening assessment for Svalbard is generated from Geothermal Radar Data Pack 2026.1 utilizing global 0.1° hex-grid thermal inversion across 689 model cells (land area: 62 049 km²). Baseline prospective criterion is defined as reaching 185°C at or above 5.5 km depth with surface temperature normalized to 15°C.

  • Screening estimates represent regional-scale heat in place and do not replace localized 3D seismic or exploratory drilling.
  • Model uncertainties expand in regions with sparse deep boreholes and complex thrust fault kinematics.
  • Grid proximity indicators reflect line-of-sight distance to high-voltage transmission and do not account for local substation thermal capacity.
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