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Wobbling particles in the sky

Date:
January 19, 2024
Source:
Max Planck Institute for Dynamics and Self-Organization
Summary:
Tiny particles such as ice crystals or ash particles tend to oscillate as they settle through the atmosphere. In their experiments, the scientists were able to track non-spherical particles of size smaller than 1 millimeter with unprecedented accuracy. Their observations gave rise to a model which can help to refine prediction on air pollutants or weather forecasts.
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Tiny particles such as ice crystals or ash particles tend to oscillate as they settle through the atmosphere. In their experiments, the scientists were able to track non-spherical particles of size smaller than 1 millimeter with unprecedented accuracy. Their observations gave rise to a model which can help to refine prediction on air pollutants or weather forecasts.

The atmosphere contains many tiny solid particles. Scientists from the Max Planck Institute for Dynamics and Self-Organization (MPI-DS) and the University of Göttingen in collaboration with the Centre national de la recherche scientifique (CNRS) in France and the university of Gothenburg, Sweden, now studied how such non-spherical particles settle in air. For this, they used a new precision apparatus equipped with high-speed cameras and a novel particle injection mechanism. Using a 3D-printer, they created particles of different shapes resembling discs of thickness as low as 50 micrometer and rods of length as high as 880 micrometers. Thanks to this setup, they could observe that particles tend to oscillate as they settle in quiescent air.

"So far, most studies on the behavior of such small particles were done with models in liquids since experiments in air are extremely challenging," Mohsen Bagheri, group leader at MPI-DS, describes previous approaches. "However, the true settling dynamics could not be explored this way. They were now revealed in our experimental setting, directly measuring the motion of real-size particles, which are much heavier than the surrounding environment," he continues.

The observed oscillation could impact the collision of individual particles, their travelling distance in the atmosphere and their interaction with the solar radiation.

Predicting the dynamics of particles

Typically, atmospheric particles are not perfectly spherical, but rather flattened or elongated structures. The scientists developed and tested a model to describe and predict the movement of such particles, which very accurately captures the experimental results. The new model can be used to study the dynamics and formation of particles clusters and the resulting effects in everyday life. "In particular, our results can help to better predict how long pollutants reside in the atmosphere or how precipitation is initiated in clouds," summarizes Alain Pumir. The CNRS researcher developed the model together with his colleagues Bernhard Mehlig and Kristian Gustavsson.

In total, these new insights contribute to a more accurate understanding of atmospheric particles, and how they affect our environment and climate.


Story Source:

Materials provided by Max Planck Institute for Dynamics and Self-Organization. Note: Content may be edited for style and length.


Journal Reference:

  1. T. Bhowmick, J. Seesing, K. Gustavsson, J. Guettler, Y. Wang, A. Pumir, B. Mehlig, G. Bagheri. Inertia Induces Strong Orientation Fluctuations of Nonspherical Atmospheric Particles. Physical Review Letters, 2024; 132 (3) DOI: 10.1103/PhysRevLett.132.034101

Cite This Page:

Max Planck Institute for Dynamics and Self-Organization. "Wobbling particles in the sky." ScienceDaily. ScienceDaily, 19 January 2024. <www.sciencedaily.com/releases/2024/01/240119122724.htm>.
Max Planck Institute for Dynamics and Self-Organization. (2024, January 19). Wobbling particles in the sky. ScienceDaily. Retrieved February 22, 2024 from www.sciencedaily.com/releases/2024/01/240119122724.htm
Max Planck Institute for Dynamics and Self-Organization. "Wobbling particles in the sky." ScienceDaily. www.sciencedaily.com/releases/2024/01/240119122724.htm (accessed February 22, 2024).

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