Program · readiness

Readiness, risks & what would close them.

Where the program actually stands: technology and manufacturing readiness level by level, the open risks stated plainly, and what evidence would close each one.

Readiness · Breeder · Hyperion

Readiness · Technology & Manufacturing

An honest maturity assessment — Technology Readiness (TRL) and Manufacturing Readiness (MRL) by subsystem, the long-lead / critical-path items, and the supply-chain constraints. Fusion is early-stage: most subsystems sit at TRL 3–6, not 9. Saying so is the credible position.

⚠ Assessment, not a committed plan. TRL/MRL are self-assessed against the standard scales (TRL 1–9 / MRL 1–10). The two binding constraints are named plainly: REBCO tape scale-up (breeder & burner magnets) and He-3 supply (burner fuel).

Avg TRL
4.4/9
early-stage, honestly
Lowest-TRL subsystem
Breeding blanket
TRL 3 · Tritium breeding at scale unproven
Critical-path items
1
REBCO tape
Binding supply
REBCO
HTS capacity
Readiness by subsystem
SubsystemTRLMRLKey risk
HTS magnets (REBCO)TRL 5MRL 4Tape production scale-upcritical path
Plasma / ST confinementTRL 4MRL 3Integrated burning plasma unproven
Breeding blanketTRL 3MRL 2Tritium breeding at scale unproven
Divertor (90% radiated)TRL 4MRL 3Detachment control marginbinding
Tritium plantTRL 4MRL 3Throughput + inventory
Vacuum vessel / structureTRL 6MRL 5Large low-activation forgings
Remote handlingTRL 5MRL 4ITER-heritage, extend to swaps
Long-lead & critical-path items
ItemQuantityLead timeSupply noteTier
REBCO tape 7.99 t (peak stage, H72)24–36 moglobal HTS capacity constraintCRITICAL
SC magnet fabrication16 TF + CS + PF~24 mowinding + cryo testHIGH
Tritium startup inventory6.47 kgscarce (fission by-product)HIGH
Vacuum-vessel forgings1 set18–24 molarge-scale forgingMED
Beryllium / lithiumblanketmultiplier + breeder supplyMED
Supply-chain constraints
REBCO / HTS tape
constrained
global capacity ≪ fleet need
Tritium
watch
fission by-product · scarce
Tungsten
watch
China-dominated
Li / Be
ok
manageable

Readiness roadmap now → prototype → product

0.02.55.07.610TRL 9 (commercial)nowprototypefirst product202620302036YearTechnology Readiness Level

The binding constraints

Binding constraint #1REBCO / HTS tape scale-up
Binding constraint #2Tritium startup inventory
Overall system TRL4.4 — component demo before ~2030
Manufacturing advantageone isolatable breeder

These maturity levels gate the Roadmap ↗ — the ~2030 prototype needs TRL 6–7, the ~2036 product needs TRL 8–9. The gap is honest and is the work.

Self-assessed TRL (1–9) / MRL (1–10) against the standard scales · REBCO scale-up and tritium inventory are the binding constraints. MATURITY ASSESSMENT · EARLY-STAGE
Radical honesty

Open risks & what would close them

The binding uncertainties in both machines — stated plainly, with severity and the evidence that would retire each one. Most fusion pitches hide this list. Ours leads with it: if you are vetting Kronos, start here.

For DOE / national labsEach item names the experiment or high-fidelity calculation that closes it — several map cleanly onto existing lab capabilities and user-facility beam time.
For investorsThese are the technical gates between here and a fundable prototype. None is a known show-stopper; each has a defined path and is tracked to a readiness gate.
HIGH RISKBREEDERConfinement quality (H₉₈)
Breeder performance leans on the H₉₈ confinement factor — the single largest driver of Q in the uncertainty study. At H₉₈ = 1.0 the design closes; below it, margins erode.
WHAT CLOSES IT → Dedicated confinement scaling data at spherical-tokamak aspect ratio + higher-fidelity transport modelling (declared HPC port).
HIGH RISKBREEDERDivertor radiated-power fraction
The breeder divertor must radiate ~90% of the exhaust power to survive a ~14.3 GW/m² unmitigated load. Negative triangularity helps (no ELMs), but the detachment requirement is demanding.
WHAT CLOSES IT → Detached / radiative-divertor demonstration at prototypical parameters.
HIGH RISKBURNERPlug-density ratio (net-power gate)
Burner net electricity requires a plug-to-central density ratio of ~16 (≈347× the GDT demonstration). This is the binding requirement behind every net-power figure; at a ratio of 10 it does not close.
WHAT CLOSES IT → A tandem-mirror plug-density experiment reaching the required ratio.
HIGH RISKBURNERHigh-field plug magnet — fatigue
Static, bore-resolved stress at the 26.49–39.74 T plug pair sits under the reinforced allowable (≈87–350 MPa vs ~1091 MPa) — which refutes the naïve field-only scaling. But cyclic fatigue at operating stress is currently infeasible (margin 0): this is a gate, not a solved result.
WHAT CLOSES IT → Bore-resolved winding-pack FEA + a fatigue-qualified reinforcement/preload scheme.
MEDIUM RISKBURNERMagnet neutron lifetime
Even low-neutron, the plug coils need shielding: ~15 cm of tungsten gives only ~0.56 full-power-years before REBCO degradation dominates.
WHAT CLOSES IT → Shield optimisation + advanced-pinning (APC) conductor; confirm with transport (MCNP) runs.
MEDIUM RISKBOTHREBCO under fast-neutron fluence
Long-term REBCO critical-current degradation under fusion-spectrum neutrons is an open lifetime question for both machines.
WHAT CLOSES IT → Irradiation campaign on candidate tape at fusion fluence.
STRATEGIC RISKBURNERHelium-3 supply
The burner runs on ³He. The breeder co-produces it, but grid-scale burner fleets need a larger supply (terrestrial + longer-term lunar).
WHAT CLOSES IT → Staged supply: breeder co-production → tritium-decay ³He → lunar sourcing.
Severity is our own assessment, not a third-party rating. "What closes it" is the evidence we would accept as decisive — see Readiness ↗.
Context

How our approach compares

Honest, side-by-side positioning against the alternatives — at the energy-source level and the fusion-architecture level. Advantages and costs both shown; nothing cherry-picked.

Firm clean power — the options
SourceFuel / riskWasteSiting
Kronos burner (D–³He)Low-neutron; ³He supply is the dependencyNo HLW; low activationPoint-of-use (low-neutron)
Fusion D–T (tokamak)14 MeV neutrons; tritium self-sufficiencyActivated structure; no HLWIsolated / shielded
Fission (SMR)Chain reaction; meltdown path existsLong-lived actinides / HLWRegulated exclusion zone
Solar + storageIntermittent; land + battery scalePanel / battery end-of-lifeLand-limited, non-firm
Gas (CCGT)Fuel price + carbonCO₂ (or capture cost)Flexible, emitting
Breeder architecture — ST vs conventional tokamak
Spherical tokamak (Hyperion)
Compact, high bootstrap fraction potential, strong shaping; here run at negative triangularity to suppress ELMs. Trade: tight central column, neutron load on a small machine.
Conventional tokamak
Mature scaling & databases (ITER/IPB98), larger bore eases the centre-column problem. Trade: large, expensive, ELM control on positive-δ H-mode.
Burner architecture — D–³He tandem mirror vs D–T tokamak
D–³He tandem mirror (burner)
Low neutron fraction (~5.4%), direct energy conversion, linear/simple vacuum, no disruptions. Trade: needs a very-high-field plug and a large plug-density ratio; ³He fuel.
D–T tokamak
Highest reactivity, most-studied path. Trade: 80% of energy in 14 MeV neutrons, disruptions, tritium handling, thermal (steam) conversion.
Comparisons use published characteristics of each option and our frozen design point. "Advantage" and "cost" are inherent trade-offs, not marketing — the burner's low-neutron siting advantage, for example, comes with a helium-3 supply dependency.
From 3-D model → digital twin

Future Capability

What this platform is today, and what each surface becomes as the machine is built and instrumented. We are honest about the line: most of this is a twin-ready model; the live twin activates only when there is hardware feeding it.

The three stages — model → shadow → twin

A "digital twin" is a specific thing: a live, two-way link between a real machine and its model. You can't have one without the machine. Here is the honest path, and exactly what separates each stage — the direction the data flows.

Stage 1YOU ARE HERE
Digital Model
data: no live data  ·  —
A physics-grounded 3-D representation of a machine that does not exist yet. It runs the real design calculations and every number reproduces from open data — but nothing is measured, because there is no hardware.
Live now: geometry, the in-browser solver, analysis, V&V, safety, and the whole assurance stack.
Stage 2NEEDS A PROTOTYPE
Digital Shadow
data: one-way  ·  machine → model
Once a prototype is built and instrumented, real sensor data flows ONE-WAY into the model. It now mirrors the actual machine — you compare as-built vs as-designed and watch it run — but the model does not yet act on the machine.
Unlocks with: a built, instrumented prototype + a data pipeline. The Live-Ops, metrology and anomaly surfaces are the scaffold, running on simulated data today.
Stage 3NEEDS THE OPERATING PLANT
Digital Twin
data: two-way (closed loop)  ·  machine ⇄ model
A live, two-way sync. The model ingests plant data AND feeds predictions, optimisation and control back to operations in real time. It forecasts, catches anomalies before they matter, and informs decisions continuously.
Unlocks with: an operating machine + models validated against real data + control integration + safety qualification.
◈ Model— no data —◈ Shadowmachine → model◈ Twinmachine ⇄ modelThe only thing that changes across the three stages is whether — and which way — real data flows.
What it takes to advance
Hardware
A built prototype, then an operating plant. Everything downstream waits on this — see the Roadmap gates.
Instrumentation
Sensors and diagnostics feeding a reliable data pipeline (for the one-way shadow, a data-diode keeps it safe).
High-fidelity models
Full FEA / CFD / neutron-transport (MCNP) validated against real measurements — the declared HPC/Quantum ports come online here.
Integration & safety
Binding the model to plant control (PCS/SIS), plus the qualification and cyber-security a live loop demands.
The maturity ladder
1
3-D model — Geometry, correct proportions, negative-triangularity plasma
✅ built
2
Physics-grounded model — Every number frozen from the deposit; the breeder solver genuinely computes
✅ built
3
Design & assurance environment — Analysis · V&V · metrology · safety · control · RAM · thread — representative where no data
✅ built
4
Digital shadow — Real sensor data flows IN, one-way — the model mirrors the running machine
⛔ needs the machine
5
Digital twin — Two-way — model and machine stay in sync; the model predicts and informs control
⛔ needs machine + integration

We are at rungs 1–3. The live-telemetry, anomaly and As-Operating features are scaffold for rungs 4–5 — they show the shape of the twin but run on simulated / frozen data today.

What activates, and when
SurfaceToday (model)With a prototype (shadow)With the live machine (twin)
3-D reactorInteractive geometry + As-Simulated overlayOverlay fed by real FEA/CFD/MCNP fieldsLive plant state rendered on the model
AnalysisFrozen + screening multiphysicsFull solver runs replace representative fieldsContinuously re-run against as-operating data
MetrologyReceiving structure (synthetic Δ)As-built CMM / scan data ingestedLive drift vs as-designed
ControlArchitecture + SIL targetsHardware-in-the-loop testLive PCS/SIS bound to the plant
Live OperationsSimulated telemetryPrototype telemetry (shadow)Real-time operations
RAMAllocated MTBF/MTTREarly field reliabilityLive availability + prognostics
QuantumSimulator PoC + resource estimate (no crossover yet)Chemistry / sensing on a maturing QPUQuantum-accelerated design where it genuinely wins
The distinction is deliberate: an operational digital twin requires a physical asset and live sensor data. Until then this is the model, physics and assurance environment — built, verified, and ready to receive the machine. Tied to the Roadmap ↗ and Compute ports ↗.
KRONOS FUSION ENERGY · Kronos Model Conceptual design and simulation study; no machine has been built