Submitted:
04 August 2026
Posted:
05 August 2026
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Related Work: The EURATOM Lineage of XS-ABILITY
3. Materials and Methods
3.1. Project Objectives and Quantified Targets
3.2. Heterogeneous Fleet and Nuclear Instrumentation
3.3. ROS 2 Coordination, SLAM and the Radiological Digital Twin
3.4. Delimitation of Incremental and Novel Contributions
3.5. Safety and Security Framework for Nuclear Robotic Deployment
3.5.1. Design Principles
3.5.2. Regulatory Integration
3.5.3. Radiological Safety: ALARA, Dose Budgeting and Contamination Control
3.5.4. Functional Safety and Runtime Assurance for AI Components
3.5.5. Fleet Cybersecurity
3.5.6. Verification, Validation and the Safety Case
3.6. Reproducibility, Software Versions and Open-Science Status
4. Results: Experimental Campaigns
4.1. Integrated Validation at SCK CEN, April 2026
4.2. Methodological Chaining Between Campaigns
4.3. Planned Validation at the Ignalina Nuclear Power Plant, September 2026
5. Discussion
5.1. Implications for the Field
5.2. Human–Robot Interaction in Safety-Bounded Supervision
5.3. Limitations
5.4. Threats to Validity
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| Abbreviation | Definition |
| ALARA | as low as reasonably achievable |
| COP | common operational picture |
| COTS | commercial off-the-shelf |
| D&D | dismantling and decommissioning |
| DDS | data distribution service |
| DoF | degrees of freedom |
| EASA | European Union Aviation Safety Agency |
| EC | European Commission |
| HRI | human–robot interaction |
| IAEA | International Atomic Energy Agency |
| ICP | iterative closest point |
| IP | ingress protection |
| LiDAR | light detection and ranging |
| MQTT | message queuing telemetry transport |
| NPP | nuclear power plant |
| PWR | pressurised water reactor |
| RBMK | reaktor bolshoy moshchnosti kanalnyy (high-power channel-type reactor) |
| ROS | robot operating system |
| SiPM | silicon photomultiplier |
| SIL | safety integrity level |
| SLAM | simultaneous localisation and mapping |
| SMRD | small multi-radiation detector |
| SORA | specific operations risk assessment |
| TID | total ionising dose |
| TRL | technology readiness level |
| UAV | unmanned aerial vehicle |
| UGV | unmanned ground vehicle |
| WP | work package |
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| Platform | Type | Key payload | Role (partner) |
|---|---|---|---|
| Boston Dynamics Spot | Legged UGV | GAMON (γ/n); Ouster OS0-128; 4× Stereolabs ZED X; NVIDIA Jetson AGX Orin (64 GB) | Navigation, γ/n mapping (IFE) |
| Clearpath Jackal | Wheeled UGV | Ouster OS0 LiDAR; IMU; GAMON; RadEye G20-ER10 (Ignalina configuration); UAV tether spool | 3D SLAM; integration testbed; Elios 3 carrier (IFE/Flyability) |
| Sigma Rover | Wheeled UGV (4WD/4WS) | β/γ spectrometry chain on Schneider Lexium collaborative arm | ⁹⁰Sr/¹³⁷Cs surface scanning (Sigma/CEA) |
| Sigma Sentinel | Modular rail-based scanner | α/β/γ scanner; 2–7 DoF actuation; up to 6 m × 3 m per module | Continuous autonomous wall scanning (Sigma/CAEN) |
| Flyability Elios 3 (×3) | Caged indoor UAV | FlyAware SLAM; NanoPix coded-aperture γ camera; SMRD; tethered power | Confined-space radiological survey (Flyability/CEA) |
| Clearpath Warthog | Wheeled UGV | Ouster OS0-64; ROS 2 | SLAM benchmarking (VTT) |
| Validation objective | Result at SCK CEN (BR1/BR3), April 2026 | Carried forward to Ignalina |
|---|---|---|
| Sensor–robot interoperability | GAMON–Jackal integration validated (mechanical, electrical, ROS 2); synchronised radiological and odometry streams under a real radiation field | Interface definitions frozen; multi-platform replication |
| GPS-denied navigation | LiDAR-based localisation in the BR1 ventilation building without external infrastructure | Navigation baseline transferred to RBMK-scale environments |
| Middleware reliability | ROS 2 service interfaces for the β/γ chain and GAMON exercised under operational conditions | Field-proven configuration reused unchanged |
| Geometric baseline | 3D reconstructions of the BR1 lower and main levels and of the BR3 reactor environment | Registration reference for radiological overlay |
| β/γ spectrometry (laboratory-calibrated, not measured on site) | 0.9 s (surface) and 11.3 s (subsurface) minimum measurement time at one third of the EC clearance threshold for a 50/50 ⁹⁰Sr/¹³⁷Cs mixture | In-situ verification on real contaminated surfaces |
| Fleet-level coordination | Not exercised (single ground platform deployed) | Primary objective of the September 2026 campaign |
| Radiation Endurance of platform electronics | Not tested | Dose budgeting to be instantiated from component data; see Section 3.5.3 |
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