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Unveiling the multi-droplet dynamics in dust suppression: a combined numerical and molecular dynamics study on the
Xuhan Ding1, Qian Xu2, Fei Liu3
1School of Safety Science and Engineering, Xi'an University of Science and Technology, Shaanxi, 710054, PR China; Shaanxi Engineering Research Centre for Industrial Process Safety and Emergency Rescue, Shaanxi, 710054, PR China.
Abstract:
This study employs integrated numerical simulations and molecular dynamics to investigate multi-droplet dynamics in coal dust suppression using a composite biomass-surfactant system (SDBS-RL-NaCl). The composite formulation significantly enhances performance, achieving an 8.48% improvement in dust suppression efficiency, reducing solution surface tension to 39.39 mN/m, and promoting coal particle agglomeration (D90 reaching 194.7 μm). Mesoscale analysis reveals its superior wetting behavior, characterized by faster spreading and greater coverage, which arises from synergistic mechanisms: SDBS reduces surface tension, RL promotes biomolecular penetration into micropores, and NaCl compresses the electrical double layer to enhance adsorption. Optimal wetting occurs within a droplet-to-particle diameter ratio >1 and an impact velocity range of 5-10 m/s, beyond which excessive kinetic energy induces unstable surface encapsulation. At the molecular scale, orbital energy complementarity in the SDBS-RL system facilitates denser interfacial adsorption, while stronger surfactant-coal electrostatic interactions and increased water molecule diffusion collectively underpin the system's enhanced water-absorption capacity and superior wetting performance.
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