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Updated: Jan 17, 2026

Quantitative Analysis of Vacuum Induction Melting by Laser-induced Breakdown Spectroscopy
Published on: June 10, 2019
Optimization of laser-induced breakdown spectroscopy for liquid sodium analysis.
Laser-induced breakdown spectroscopy effectively monitors impurities in liquid sodium for advanced nuclear reactors. This technique ensures safety and efficiency by detecting elements like potassium and oxygen in sodium coolant.
Area of Science:
- Nuclear Engineering
- Analytical Chemistry
- Materials Science
Background:
- Next-generation nuclear reactors utilize liquid sodium coolant for enhanced efficiency and safety.
- Fast breeder reactors offer higher fuel burn-up and reduced waste compared to current technologies.
- Monitoring sodium coolant impurities is critical to prevent cooling system blockages and hazardous reactions.
Purpose of the Study:
- To develop and evaluate laser-induced breakdown spectroscopy (LIBS) for impurity detection in liquid sodium.
- To assess the performance of a custom-built immersion probe for LIBS analysis in a sodium environment.
- To confirm the suitability of LIBS for real-time monitoring in nuclear reactor systems.
Main Methods:
- Laser-induced breakdown spectroscopy (LIBS) was applied to a liquid sodium sample.
- A custom-built immersion probe was used for laser delivery and signal collection within an argon atmosphere.
- The influence of probe parameters (height, immersion) and argon flow rates on signal stability and quality was investigated.
Main Results:
- Sodium, potassium, and oxygen signatures were successfully obtained from the liquid sodium sample.
- Probe height and immersion significantly impacted signal level and stability.
- Stable signals were observed across argon flow rates of 2-5 L/min, indicating a laminar flow regime.
- A high signal-to-noise ratio was achieved for impurity elements.
Conclusions:
- Laser-induced breakdown spectroscopy with a custom immersion probe is a suitable technique for detecting impurities in liquid sodium.
- The method offers reliable impurity detection and monitoring capabilities for advanced nuclear reactor environments.
- The findings support the use of LIBS for ensuring the safety and operational integrity of sodium-cooled reactors.
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