oklo-aurora-mcp
Server Configuration
Describes the environment variables required to run the server.
| Name | Required | Description | Default |
|---|---|---|---|
| PYTHONPATH | Yes | Path to the src directory of the oklo-aurora-mcp repository, required for the MCP server to locate the oklo_mcp package when launched via the provided client configurations. |
Instructions
Guidance the server publishes about itself, which clients place ahead of the tool catalog so the model reads it before choosing anything.
This server publishes no instructions, or was last inspected before Glama recorded them.
Capabilities
Features and capabilities supported by this server
Protocol revision2025-11-25
| Capability | Details |
|---|---|
| tools | {
"listChanged": false
} |
| prompts | {
"listChanged": false
} |
| resources | {
"subscribe": false,
"listChanged": false
} |
| experimental | {} |
Tools
Functions exposed to the LLM to take actions
| Name | Description |
|---|---|
| evaluate_aurora_core_block_conduction_toolC | Evaluates radial conduction heat transfer from U-10Zr fuel pins across Oklo's solid core block (Docket 05200049 monolithic stainless steel core) to sodium heat pipes. |
| evaluate_coolant_bundleB | Evaluates sodium coolant pressure drop (Novendstern) and power-coupled peak cladding temperature (energy balance + Mikityuk liquid-metal Nu) with FCCI eutectic margin. temp_c is the coolant inlet temperature. |
| simulate_passive_rvacs_coolingC | Simulates 1D passive Reactor Vessel Auxiliary Cooling System (RVACS) natural air circulation decay heat removal following a loss-of-forced-flow (LOFF) reactor trip. |
| evaluate_heatpipe_and_sco2_cycleC | Evaluates liquid metal heat pipe capillary limits and supercritical CO2 (sCO2) Brayton cycle power conversion efficiency. |
| calculate_pyroprocess_recycling_mass_balanceB | Calculates pyroprocessing molten salt (LiCl-KCl) electrorefining mass balance for spent EBR-II fuel recycling at Oklo A3F facility. |
| calculate_radioisotope_production_yieldA | Estimates end-of-irradiation Ac-225 activity from a Ra-226 target via Ra-226(n,2n)Ra-225 -> Ac-225 in a fast neutron flux. Cross section is an illustrative assumption. |
| evaluate_datacenter_microgrid_rampC | Evaluates micro-grid stability, sCO2 turbine ramp times, and thermal buffer energy requirements for AI data center training load spikes. |
| evaluate_defense_microgrid_autonomyC | Evaluates forward operating military base power resilience, daily diesel fuel displacement, and logistics convoy reduction. |
| evaluate_haleu_transport_cask_safetyB | Evaluates Type B transport cask decay heat dissipation, radiation dose rates, and criticality safety margins for HALEU Category II SNM shipments. |
| solve_aurora_system_transientB | Chains all 8 fast-reactor & ecosystem solvers sequentially into a unified multi-physics evaluation scenario. |
| evaluate_physics_surrogate_toolA | Predicts peak cladding temperature and pressure drop with a least-squares surrogate fit to the analytical T/H solver. Reports held-out validation metrics, flags extrapolation outside the training envelope, and returns the residual against the solver. |
Prompts
Interactive templates invoked by user choice
| Name | Description |
|---|---|
No prompts | |
Resources
Contextual data attached and managed by the client
| Name | Description |
|---|---|
No resources | |
TDQS
Scored across 11 tools
Most tools target clearly distinct physics domains (conduction, coolant bundle, RVACS, sCO2 cycle, pyroprocessing, isotope yield, microgrids, cask, surrogate). However evaluate_physics_surrogate_tool overlaps with evaluate_coolant_bundle on peak cladding temperature and pressure drop, and solve_aurora_system_transient is an orchestrator that overlaps everything, creating mild confusion.
Nearly all tools follow a verb_noun snake_case convention (evaluate_, calculate_, simulate_, solve_). Deviations are minor: verbs vary across evaluate/calculate/simulate/solve, and two tools redundantly carry a '_tool' suffix while others do not.
11 tools are well-scoped for a multi-physics reactor ecosystem simulator, and each maps to a coherent analytical domain without redundancy. No tool feels gratuitous.
The surface covers reactor thermal-hydraulics, passive cooling, power conversion, fuel-cycle recycling, isotope production, microgrid stability, transport safety, and a surrogate. Minor gaps exist (e.g. no explicit economics or shielding/dose lifecycle beyond cask), but core workflows are covered.