Quantum Navigation at Sea Accelerates as Royal Navy Links Atomic Clocks to GPS-Denied Radar

Maritime quantum technology has moved another step out of laboratory testing and into working naval systems after the Royal Navy disclosed a new trial combining Aquark Technologies’ AQlock cold-atom clocks with Saab Giraffe 1X radars. Two British-built quantum clocks supplied independent timing to radar sites while the team deliberately introduced timing errors to simulate GNSS jamming and spoofing, with Royal Navy experimentation ship XV Patrick Blackett and Dstl supporting the network as rebroadcast nodes. The August 2026 demonstration builds on a three-day sea trial aboard HMS Pursuer in 2025, when AQlock operated continuously in open-water conditions. During the same period, the Royal Navy has tested an optical atomic clock aboard uncrewed submarine XV Excalibur, quantum inertial navigation in the Arctic aboard MV Anvil Point and quantum magnetometers on a hydrographic craft. Separate British and Australian projects have also put cold-atom accelerometers and quantum gravimeters aboard working vessels, creating a rapidly expanding set of maritime trials covering timing, inertial navigation, magnetic navigation and gravity-based positioning.

Maritime Quantum Technology · August 2026

Operator Impact Snapshot

Recent sea trials are testing several different quantum technologies against the same underlying problem: maintaining trusted timing and navigation when satellite signals are unavailable, degraded or deliberately manipulated.

GNSS-Denied Timing HIGH
Radar Proven
quantum clocks connected to live radar

Two AQlock systems supplied independent timing to separated Giraffe 1X radars during controlled GNSS denial and spoofing tests.

At-Sea Clock Trials HIGH
Multiple Platforms
surface and underwater testing

Cold-atom and optical clocks have now operated aboard HMS Pursuer and the XV Excalibur uncrewed submarine.

Navigation Sensors MEDIUM
Field Trials
inertial, magnetic and gravity sensing

Multiple sensor classes have reached working vessels, although most remain experimental rather than deployed fleet equipment.

Undersea PNT HIGH
Active Testing
autonomous submarine applications

Optical clocks and other quantum sensors are being tested specifically for platforms that cannot continuously access satellite navigation.

Commercial Adoption WATCH
Early Stage
maritime use remains trial-led

Public deployments remain concentrated in defence, research and specialist vessels rather than broad merchant-fleet installation.

Quantum Maritime Trial Tracker

Seven Programs Moving Quantum Hardware Onto Vessels

The trials are beginning to divide the maritime quantum market into separate timing, motion-sensing and map-aided navigation layers.

Recent Programs Tracked 7
Public maritime trials from mid-2025 through August 2026.
Sensor Categories 5
Atomic clocks, inertial sensors, magnetometers, accelerometers and gravimeters.
Longest Disclosed Run 144+ hr
Continuous unattended quantum gravimeter operation aboard MV Sycamore.
Next Public Trial Late 2026
Second HARLEQUIN maritime field trial is planned.
Scroll sideways for the complete trial tracker ← →
Development Platform Quantum Layer Field Result Maturity Signal Equipment / Supplier Market Next Technical Gate
August 2026
AQlock + Giraffe 1X
Distributed Saab radar network with XV Patrick Blackett and Dstl supporting network rebroadcast. QUANTUM TIMING
Two independent cold-atom clocks.
Separated radars maintained a coherent tracking picture using independent quantum timing while GNSS denial and spoofing scenarios were introduced. Quantum hardware moved beyond standalone testing and into a multi-sensor operational network. Rugged atomic clocks, timing distribution, network synchronisation, radar integration and PNT monitoring software. Longer deployments, more sensors and integration into deployed shipboard combat and surveillance networks.
December 2025
Imperial Q-INS
MV Anvil Point during an Arctic maritime deployment. QUANTUM INERTIAL
Cold-atom acceleration and rotation sensing.
Revised quantum inertial navigation hardware was exposed to real ship motion and Arctic operating conditions. Development has progressed from early ship trials toward ruggedised GNSS-independent INS prototypes. Quantum accelerometers, gyroscopes, shock isolation, sensor fusion, optical systems and navigation processors. Reduce sensitivity to shock, vibration and vessel motion while shrinking size and integration burden.
December 2025
HARLEQUIN
THV Galatea during normal buoy and lighthouse-support operations. COLD-ATOM ACCELERATION
gMOT quantum accelerometer integrated with conventional navigation.
System operated in a genuine working maritime environment while the vessel continued normal tasks. First field demonstration of the gMOT cold-atom navigation platform. Cold-atom sources, locked lasers, optical assemblies, inertial processing and rugged marine enclosures. System upgrades followed by a second maritime field trial planned for late 2026.
October 2025
Tiqker
Royal Navy XV Excalibur extra-large uncrewed underwater vessel. OPTICAL ATOMIC CLOCK
High-stability onboard timing.
Clock operated reliably during multiple dives and supplied a stable onboard precision-time reference. First reported optical atomic clock operated at sea aboard an underwater vessel. Optical clocks, timing electronics, submarine integration, secure timing distribution and autonomous PNT. Performance benchmarking and integration with navigation, sonar, communications and other submarine systems.
October 2025
Sussex OPM
Royal Navy Hydrographic Exploitation Group survey craft operating from Portsmouth. MAGNETIC NAVIGATION
Optically pumped magnetometers.
Sensors measured local magnetic variations and mapped signatures associated with surrounding features. Demonstrated a possible navigation layer plus additional sensing of vessels, seabed features and hazards. Quantum magnetometers, magnetic maps, anomaly databases, compensation software and sensor-fusion processors. Improve map coverage and separate useful geographic signatures from ship-generated magnetic interference.
July 2025
Q-CTRL Dual Gravimeter
Royal Australian Navy training vessel MV Sycamore. GRAVITY NAVIGATION
Strapdown quantum dual gravimeter.
More than 144 hours of continuous autonomous data collection with no human intervention during maritime operations. Equipment fit into a single server-rack space and drew about 180 watts during the disclosed trial. Quantum gravimeters, gravity maps, software ruggedisation, vibration rejection and navigation computing. Turn gravity measurements into a mature navigation solution across larger operating areas and map sets.
June 2025
AQlock Sea Trial
Royal Navy HMS Pursuer operating in the Solent. COLD-ATOM CLOCK
Independent precision timing.
AQlock operated continuously for three days in moving open-sea conditions. Demonstrated that a compact cold-atom clock could remain functional outside a laboratory on a moving vessel. Compact vacuum systems, laser cooling, oscillators, power conditioning, rugged packaging and PNT interfaces. The August 2026 radar experiment began answering the next question: integration with real mission systems.
Timing Atomic clocks keep systems synchronised.
Inertial Acceleration and rotation maintain dead reckoning.
Magnetic Earth-field signatures become navigation landmarks.
Gravity Gravity variations provide another mapped reference.
Integration Sensor fusion turns separate measurements into PNT.
Ship Universe Quantum PNT Tool

Maritime Quantum PNT Resilience Planner

Build a layered navigation architecture for a GNSS-denied voyage and see which timing, motion and map-aiding functions remain independently covered.

Choose a Platform Scenario
hours
nm/hr
User-entered planning assumption, not a published fleet standard.
systems
Build the Independent PNT Stack
PNT Resilience Score 84 scenario architecture score out of 100
Independent Layers 5 classical INS plus selected independent aids
Classical Drift Exposure 12 nm entered INS drift × GNSS-denied duration
Integration Load High relative hardware and sensor-fusion complexity
Resilience Band Strong qualitative redundancy classification
PNT Architecture Coverage
Scores show which functions have an independent backup in the selected architecture. They are planning weights, not vendor accuracy ratings.
Precision Timing
95
Motion Sensing
90
Map-Aided Position
75
Independent Cross-Check
85
Timing Architecture Independent Quantum Reference
Selected architecture does not depend solely on satellite timing for the entered critical systems.
Position Reference Magnetic Map Aid
Position can be cross-referenced against a non-satellite geophysical data source.
Planning model: This tool does not predict the accuracy of any quantum product or vendor system. The resilience score uses simple architecture weights to compare redundancy. Real performance depends on sensor accuracy, calibration, vessel vibration and motion, magnetic interference, gravity or magnetic map quality, environmental conditions, installation design, integration software and mission duration. The classical INS drift field is entirely user entered.
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