An improved numerical simulation methodology for nanoparticle injection through aerodynamic lens systems
Surya Kiran Peravali, Amit K. Samanta, Muhamed Amin, Philipp Neumann,, Jochen K\"upper, and Michael Breuer

TL;DR
This paper introduces an advanced simulation framework combining DSMC and CFD methods to optimize nanoparticle injection via aerodynamic lenses, improving design efficiency and experimental outcomes.
Contribution
It presents a novel hybrid simulation approach for nanoparticle injectors, enabling faster and more accurate optimization of experimental parameters.
Findings
Validated simulation results against experimental data.
Demonstrated improved accuracy in flow and particle trajectory modeling.
Enabled efficient exploration of injector design parameters.
Abstract
Aerosol injectors applied in single-particle diffractive imaging experiments demonstrated their potential in efficiently delivering nanoparticles with high density. Continuous optimization of injector design is crucial for achieving high-density particle streams, minimizing background gas, enhancing X-ray interactions, and generating high-quality diffraction patterns. We present an updated simulation framework designed for the fast and effective exploration of the experimental parameter space to enhance the optimization process. The framework includes both the simulation of the carrier gas and the particle trajectories within injectors and their expansion into the experimental vacuum chamber. A hybrid molecular-continuum-simulation method (DSMC/CFD) is utilized to accurately capture the multi-scale nature of the flow. The simulation setup, initial benchmark results of the coupled…
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Taxonomy
TopicsParticle Dynamics in Fluid Flows
