Hidden in plain sight: How evaporation impacts the pendant drop method

Fuente: arXiv
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Main Authors: Dekker, Pim J., Diddens, Christian, van der Linden, Marjolein N., Lohse, Detlef
Format: Preprint
Published: 2025
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author Dekker, Pim J.
Diddens, Christian
van der Linden, Marjolein N.
Lohse, Detlef
author_facet Dekker, Pim J.
Diddens, Christian
van der Linden, Marjolein N.
Lohse, Detlef
contents The surface tension of a liquid, which drives most free surface flows at small scales, is often measured with the pendant drop method due to its simplicity and reliability. When the drop is suspended in air, controlling the ambient temperature and humidity is usually an afterthought, resulting in evaporation of the drop during the measurement. Here, we investigate the effect of evaporation on the measured surface tension using experiments and numerical simulations. In the experiments, we measured the evolution of the droplet temperature, which can drastically reduce by ($ΔT \approx 10 \degC$) due to evaporative cooling, and thereby altering the measured surface tension by more than 1 mN/m. This finding can be reproduced by numerical simulations, which additionally allows for controlled investigations of the individual influences of further effects on the pendant drop method, namely shape deformations by evaporation-driven flows in the gas-phase and in the liquid-phase including the resulting Marangoni flow. We provide a simple passive method to control the relative humidity without requiring additional instrumentation. Our findings are particularly pertinent to Marangoni flows which are driven by surface tension gradients, and which are consequently highly sensitive to measurement inaccuracies. We apply our method with different aqueous mixtures of glycerol and various diols. Our results and insights have implications for various applications, ranging from inkjet printing to agricultural sprays. Finally, we have meticulously documented our setup and procedure for future reference.
format Preprint
id arxiv_https___arxiv_org_abs_2508_07349
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Hidden in plain sight: How evaporation impacts the pendant drop method
Dekker, Pim J.
Diddens, Christian
van der Linden, Marjolein N.
Lohse, Detlef
Fluid Dynamics
Soft Condensed Matter
The surface tension of a liquid, which drives most free surface flows at small scales, is often measured with the pendant drop method due to its simplicity and reliability. When the drop is suspended in air, controlling the ambient temperature and humidity is usually an afterthought, resulting in evaporation of the drop during the measurement. Here, we investigate the effect of evaporation on the measured surface tension using experiments and numerical simulations. In the experiments, we measured the evolution of the droplet temperature, which can drastically reduce by ($ΔT \approx 10 \degC$) due to evaporative cooling, and thereby altering the measured surface tension by more than 1 mN/m. This finding can be reproduced by numerical simulations, which additionally allows for controlled investigations of the individual influences of further effects on the pendant drop method, namely shape deformations by evaporation-driven flows in the gas-phase and in the liquid-phase including the resulting Marangoni flow. We provide a simple passive method to control the relative humidity without requiring additional instrumentation. Our findings are particularly pertinent to Marangoni flows which are driven by surface tension gradients, and which are consequently highly sensitive to measurement inaccuracies. We apply our method with different aqueous mixtures of glycerol and various diols. Our results and insights have implications for various applications, ranging from inkjet printing to agricultural sprays. Finally, we have meticulously documented our setup and procedure for future reference.
title Hidden in plain sight: How evaporation impacts the pendant drop method
topic Fluid Dynamics
Soft Condensed Matter
url https://arxiv.org/abs/2508.07349