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February 2, 20260 citationsOpen Access

Study on Flow Field Excitation and Rotor Shaft Response of the High-Temperature Molten Salt Circulating Primary Pump

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XGXiongfa GaoXZXinyi ZhangJiangsu UniversityWSWeidong ShiNantong University

Key Points

  • This research aims to explore how fluid excitation forces influence the rotor's dynamic response in high-temperature molten salt pumps.
  • Conducted unsteady simulations in ANSYS CFX for pressure pulsation and radial forces analysis.
  • Analyzed critical speeds and vibration modes using SAMCEF under varying flow rates.
  • Compared numerical performance predictions with experimental data to assess accuracy.
  • Numerical predictions matched experimental data within a 5% error margin.
  • The first-stage impeller showed a pressure-pulsation frequency of 2 times the rotational frequency.
  • Radial forces on the first and fifth stages changed oppositely with varying flow rates.
  • Critical speed of 1894.5 r/min exceeds operating speed, reducing resonance risk.

Abstract

This study examines the impact of fluid excitation forces on the dynamic response of high-temperature molten salt circulating primary pump rotor systems. Unsteady simulations were conducted in ANSYS CFX to characterize pressure pulsation and radial forces across all impeller stages. Critical speeds and vibration modes were subsequently analyzed using SAMCEF to evaluate transient responses under varying flow rates. Key findings: Numerical performance predictions align with experimental data within a 5% error margin. The first-stage impeller exhibits a pressure-pulsation frequency of twice the rotational frequency (2 fR), while the fifth-stage impeller oscillates at the guide-vane passing frequency (fDPF). Under rated conditions, the radial force on the first stage is significantly larger than on the other stages. As the flow rate varies, the radial forces on the first and fifth stages change in opposite directions due to rotor–stator interaction. The rotor system’s critical speed (1894.5 r/min) exceeds the operating speed, eliminating resonance risk. Without radial forces, impeller displacements follow elliptical trajectories with maximum amplitude at the fifth stage. When radial forces are included, displacements become irregular, and shaft constraints cause peak displacement at the fourth stage. These findings provide useful insight for the design and analysis of molten salt primary pump rotor systems.

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Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/6980ffd6c1c9540dea812a4ahttps://doi.org/10.3390/pr14030502
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