Upcoming Physics & Astronomy Climate, Earth & Environment

Likelihood and impact of severe space weather events on the resilience of nuclear power and safeguards monitoring.

In plain English

AI plain-English summary

A single burst of particles from the Sun can trigger a false alarm in a nuclear facility’s criticality detector, forcing an unnecessary emergency shutdown. This project aims to stop that from happening. The problem is that ground-level neutron monitors, which detect the neutrons that signal a potential nuclear chain reaction, cannot currently tell apart neutrons from a solar storm and neutrons from actual fissile material. This leads to false-positive criticality alarms at nuclear licensed sites. The research will improve the monitors’ ability to differentiate neutron origins, reducing those false alarms. If it succeeds, the work has two practical payoffs. First, nuclear power stations and other sites handling fissile materials will become more resilient to space weather, avoiding costly and disruptive shutdowns. Second, the same monitors will provide rapid, accurate data on geomagnetically induced currents that can damage power grids and other critical infrastructure. The project directly addresses a known vulnerability in the UK’s energy and nuclear safety systems, with no fundamental science component—it is an applied engineering improvement to existing monitoring hardware.

View original technical description
The project aim is to increase the capability and performance of ground level neutron monitors in differentiating between neutrons of differing origin. Thus, reducing the chances of false-positive criticality alarms at nuclear licensed sites handling fissile materials and improving the resilience of nuclear power stations and power grids to geomagnetically inducted currents. The benefits of this research are twofold. A robust monitoring system for neutron detection that could reduce false positive criticality alarms at nuclear sites caused by space weather events, and providing rapid and accurate data on space weather which may damage critical infrastructure at the nuclear site (e.g., power supplies).

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Researchers

Caroline Smith (Student)

Related Research

Grants with similar aims, by meaning.

Modelling the acceleration, transport and loss of radiation belt electrons to protect satellites from space weather (Rad-Sat)
A Unified Understanding of the Earth's Radiation Environment
MOSAIC Digital Environment Feasibility Study
Satellite Radiation Risk Forecasts (Sat-Risk)
Space weather impacts on ground systems

Original classification

Studentship

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