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Ten-Phase Reactor Program · Phase 4

Compare the evidence before choosing the machine

Twenty-three fission and fusion families are evaluated against the same eight public-safe evidence criteria. The score measures evidence readiness—not beauty, promise, theoretical elegance, or commercial destiny.

23 evaluated candidates8 weighted criteria100-point evidence indexPhase 3 lifecycle work pending
23 candidates shown
Next Completed Control Layer

Phase 5 safety and public-trust boundaries

The evidence score now links to family-specific safety, licensing, safeguards, emergency-planning, and public-claims controls.

Open Phase 5 matrix →
Evidence Readiness Index

Cross-family comparison matrix

Scores run from 0 to 5 for each criterion and are weight-normalized to 100. Unknown or unproven performance is not credited.

CandidateBranchMaturityEvidence scoreDecision laneNext evidence gate
Boiling Water ReactorFIS-BWR · Light-water Fission Established commercial fleet
92
Established reference Retain as a fleet reference for direct-cycle light-water architecture and operating evidence.
Pressurized Water ReactorFIS-PWR · Light-water Fission Established commercial fleet
92
Established reference Retain as the principal fleet and licensing reference; new deployment remains project- and jurisdiction-specific.
Marine ReactorFIS-MARINE · Marine propulsion / power Fission Extensive naval heritage; limited civilian deployment
82
Mission-specific established reference Do not transfer naval evidence directly to civilian use; port, shipyard, liability, safeguards, decommissioning, and public licensing remain separate gates.
Gas-Cooled ReactorFIS-GAS · Gas-cooled Fission Commercial heritage plus advanced variants
80
Established / development reference Separate established carbon-dioxide-cooled fleets from helium and advanced modular concepts before selection.
Pulsed Research ReactorFIS-PULSE · Research facility Fission Established specialized research role
76
Mission-specific established reference Retain as a research-facility class, not as a steady grid-generation candidate.
Small Modular ReactorFIS-SMR · Deployment format Fission Licensing, first deployment, and active development
76
Conditional deployment track Score the underlying reactor and fuel cycle; SMR is not one technology and does not automatically reduce cost or waste.
Pebble-Bed ReactorFIS-PEBBLE · High-temperature gas-cooled Fission Limited deployment plus continuing development
70
Conditional development track Advance where coated-particle fuel quality, graphite lifecycle, fuel handling, heat conversion, and licensing evidence close together.
Sodium-Cooled Fast ReactorFIS-SFR · Fast-spectrum liquid metal Fission Demonstration and limited-deployment heritage
68
Strategic development track Advance as a coupled reactor-plus-fuel-cycle program; fast spectrum can improve uranium use but does not eliminate fission products or repositories.
Space ReactorFIS-SPACE · Space power / propulsion Fission Flight heritage at small scale and active development
62
Mission-specific conditional track Advance only against a defined mission with launch approval, re-entry safety, shielding, reliability, retrieval, and disposal architecture.
TRISO-Fueled MicroreactorFIS-TRISO-MICRO · Microreactor / coated-particle fuel Fission Advanced development and demonstrations
56
Conditional deployment track Advance only with representative integral testing, qualified fuel supply, transport/security plan, maintainability, and return/disposal pathway.
Transportable / Mobile ReactorFIS-MOBILE · Deployment format Fission Demonstration and active development
56
Mission-specific conditional track Select the underlying reactor first, then close transport, security, return logistics, site restoration, and end-of-life obligations.
Lead-Cooled Fast ReactorFIS-LFR · Fast-spectrum heavy liquid metal Fission Special-application heritage and civilian development
42
Advanced-reactor research reserve Require corrosion, erosion, coolant chemistry, activation, inspection, repair, fuel-cycle, and civilian licensing evidence.
Molten Salt ReactorFIS-MSR · Salt-cooled or salt-fueled Fission Historical experiments and active development
42
Advanced-reactor research reserve Do not treat all MSRs alike; require salt chemistry, corrosion, cleanup, safeguards, off-gas, maintenance, and final-waste evidence for the exact design.
Tokamak FusionFUS-TOK · Magnetic confinement Fusion Major experimental programs; no commercial electricity fleet
40
Primary fusion baseline Advance through burning-plasma, heat-exhaust, blanket, tritium, materials, remote-maintenance, availability, and net-electric gates.
Stellarator FusionFUS-STE · Magnetic confinement Fusion Established experimental family with active optimization
36
Primary fusion baseline Advance beside tokamak work until optimized confinement, coil manufacture, exhaust, blanket, neutron access, and maintainability are demonstrated together.
Fusion Power-Plant IntegrationFUS-PLANT · Cross-cutting enabling architecture Fusion Subsystem research; no integrated fusion-electric plant
26
Cross-cutting evidence gate This is not a confinement candidate. Every fusion line must close breeding or external fuel supply, neutron materials, heat exhaust, remote maintenance, availability, licensing, waste, and net-electric balance here.
Supercritical Water ReactorFIS-SCWR · Generation-IV water-cooled Fission Conceptual and research development
24
Long-range research reserve Hold until representative fuel, cladding, chemistry, pressure-boundary, transient, maintenance, and integral-system evidence exists.
Inertial-Confinement FusionFUS-ICF · Driver-compressed targets Fusion Laboratory ignition; repetitive power plant unproven
20
Fusion research reserve Require efficient repetitive drivers, inexpensive targets, chamber clearing, durable optics, thermal capture, tritium, maintenance, and net-electric evidence.
Field-Reversed Configuration / SpheromakFUS-FRC · Compact toroid Fusion Frontier laboratory research
18
Fusion research reserve Require formation repeatability, sustainment, confinement, impurity control, neutron system, heat removal, fuel cycle, and integrated plant evidence.
Magnetic-Mirror FusionFUS-MIR · Open-ended magnetic confinement Fusion Historical and renewed laboratory research
18
Fusion research reserve Require end-loss control, stable confinement, collector performance, neutron and blanket integration, fuel-specific conversion, and closed plant balance.
Magneto-Inertial FusionFUS-MIF · Hybrid pulsed confinement Fusion Laboratory and demonstration research
18
Fusion research reserve Require repeatable plasma formation, efficient compression, chamber or liner lifetime, heat recovery, cadence, maintenance, and closed plant balance.
Aviation ReactorFIS-AVIATION · Historical propulsion research Fission Historical research; no deployed civilian system
16
Historical / no civilian down-select Retain for historical classification only; shielding mass, crash consequence, handling, maintenance, and licensing block a credible civil path.
Z-Pinch and Pulsed FusionFUS-ZP · Current-driven compression Fusion Established research tools; energy plant is frontier research
16
Fusion research reserve Require stability, reusable hardware, repetition, driver efficiency, chamber survival, heat capture, and credible availability evidence.
Interpretation boundary: The index is a transparent screening tool, not a safety finding, economic forecast, construction recommendation, investment rating, or licensing decision.
Weighted Criteria

What earns evidence credit

20%

Physics / operating evidence

Quality and relevance of demonstrated reactor or plasma operation.

20%

Integrated plant evidence

Evidence for a complete energy plant rather than an isolated core, pulse, or plasma.

10%

Fuel / resource readiness

Credible supply, fabrication, accountancy, recovery, and stewardship pathway.

10%

Materials readiness

Representative irradiation, corrosion, temperature, fatigue, joining, and lifetime evidence.

10%

Availability / maintenance

Inspection, repair, replacement, outage, logistics, and remote-maintenance evidence.

10%

Safety / licensing evidence

Applicable standards, regulator experience, safety case, safeguards, and emergency-planning maturity.

10%

Deployment / modular fit

Ability to serve the stated mission with credible construction, transport, siting, and interface architecture.

10%

Waste / end-of-life pathway

Defined spent-fuel or activation-waste, decommissioning, recycling, storage, transport, and disposal pathway.

A high field, small plasma, long pulse, ignition shot, passive feature, modular label, or advanced material can strengthen one criterion. None of those facts closes the complete plant by itself.

Controlled Portfolio Result

Phase 4 down-selection lanes

Fleet and licensing reference

Pressurized-water and boiling-water reactors

They provide the deepest commercial operating, maintenance, supply-chain, regulatory, and lifecycle evidence. This is an evidence reference, not an automatic instruction to build another large plant.

Modular and distributed deployment

Design-specific SMR plus TRISO microreactor pathways

Retain both, but never score the word modular by itself. The underlying coolant, spectrum, fuel, conversion, transport, security, maintenance, and waste system must close.

High-temperature industrial heat

Gas-cooled and pebble-bed pathways

These retain meaningful operating and fuel evidence while still requiring design-specific qualification, graphite lifecycle, conversion, and licensing closure.

Resource utilization and actinide research

Sodium-cooled fast reactor pathway

It has the strongest fast-reactor evidence base in this portfolio, but only as a coupled reactor and fuel-cycle program. It does not eliminate fission products or repositories.

Advanced fission reserve

Molten-salt, lead-cooled, and supercritical-water pathways

Maintain research portfolios until chemistry, materials, inspection, fuel-cycle, integral-system, availability, and licensing gates are met.

Primary fusion physics lines

Tokamak and optimized stellarator in parallel

Tokamaks lead in integrated burning-plasma preparation; optimized stellarators preserve a credible steady-state line. Neither has closed the complete net-electric plant.

Fusion research reserve

Inertial, magneto-inertial, Z-pinch, compact-toroid, and mirror pathways

Preserve competition and learning, but do not promote them to plant candidates before representative repetition, materials, fuel, heat, maintenance, and energy-balance evidence.

23rd-century concepts

Unscored architecture reserve

Future Aurora concepts remain explicitly speculative and cannot outrank real machines using imagined performance.

Program Discipline

Phase 3 remains pending

Fuel resources, spent fuel, activation waste, recycling, decommissioning, and final disposal already influence this screen, but the dedicated Phase 3 lifecycle authority has not been completed. Phase 4 does not silently close that gap.

Review plant-integration boundaries →
Authoritative Public Evidence

Reference basis