4.4 Article

On the analysis of the contact angle for impacting droplets using a polynomial fitting approach

Journal

EXPERIMENTS IN FLUIDS
Volume 61, Issue 6, Pages -

Publisher

SPRINGER
DOI: 10.1007/s00348-020-02971-1

Keywords

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Funding

  1. Mexican Energy Ministry (SENER)
  2. Royal Society [URF/R/180016, RGF/EA/181002]
  3. EPSRC (UK) - CBET (USA) [EP/S029966/1]
  4. National Council for Science and Technology (CONACyT)
  5. EPSRC [EP/S029966/1] Funding Source: UKRI

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Practical considerations on the measurement of the dynamic contact angle and the spreading diameter of impacting droplets are discussed in this paper. The contact angle of a liquid is commonly obtained either by a polynomial or a linear fitting to the droplet profile around the triple-phase point. Previous works have focused on quasi-static or sessile droplets, or in cases where inertia does not play a major role on the contact angle dynamics. Here, we study the effect of droplet shape, the order of the fitting polynomial and the fitting domain, on the measurement of the contact angle on various stages following droplet impact where the contact line is moving. Our results, presented in terms of the optical resolution and the droplet size, show that a quadratic fitting provides the most consistent results for a range of various droplet shapes. As expected, our results show that contact angle values are less sensitive to the fitting conditions for the cases where the droplet can be approximated to a spherical cap. Our experimental conditions include impact events with liquid droplets of different sizes and viscosities on various substrates. In addition, validating past works, our results show that the maximum spreading diameter can be parameterised by the Weber number and the rapidly advancing contact angle.

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