Dual-wavelength light-scattering technique for selective detection of volcanic ash particles in the presence of water droplets

dc.contributor.authorJurányi, Zsófia
dc.contributor.authorBurtscher, Heinz
dc.contributor.authorLoepfe, Markus
dc.contributor.authorNenkov, Maxim
dc.contributor.authorWeingartner, Ernest
dc.date.accessioned2024-02-08T08:59:09Z
dc.date.available2024-02-08T08:59:09Z
dc.date.issued2015
dc.description.abstractA new method is presented in this paper which analyses the scattered light of individual aerosol particles simultaneously at two different wavelengths in order to retrieve information on the particle type. We show that dust-like particles, such as volcanic ash, can be unambiguously discriminated from water droplets on a single-particle level. As a future application of this method, the detection of volcanic ash particles should be possible in a humid atmosphere in the presence of cloud droplets. The characteristic behaviour of pure water's refractive index can be used to separate water droplets and dust-like particles which are commonly found in the micrometre size range in the ambient air. The low real part of the water's refractive index around 2700–2800 nm results in low scattered light intensities compared to e.g. the visible wavelength range, and this feature can be used for the desired particle identification. The two-wavelength measurement set-up was theoretically and experimentally tested and studied. Theoretical calculations were done using Mie theory. Comparing the ratio of the scattered light at the two wavelengths (visible-to-IR (infrared), R value) for water droplets and different dust types (basalt, andesite, African mineral dust, sand, volcanic ash, pumice) showed at least 9-times-higher values (on average 70 times) for water droplets than for the dust types at any diameter within the particle size range of 2–20 μm. The envisaged measurement set-up was built up into a laboratory prototype and was tested with different types of aerosols. We generated aerosols from the following powders, simulating dust-like particles: cement dust, ISO 12103-1 A1 Ultrafine Test Dust and ash from the 2012 eruption of the Etna volcano. Our measurements verified the theoretical considerations; the median experimental R value is 8–21 times higher for water than for the "dust" particles.
dc.identifier.doi10.5194/amt-8-5213-2015
dc.identifier.issn1867-8548
dc.identifier.issn1867-1381
dc.identifier.urihttps://irf.fhnw.ch/handle/11654/44279
dc.identifier.urihttps://doi.org/10.26041/fhnw-8090
dc.issue12
dc.language.isoen
dc.publisherCopernicus
dc.relation.ispartofAtmospheric Measurement Techniques
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.spatialGöttingen
dc.subject.ddc620 - Ingenieurwissenschaften und Maschinenbau
dc.titleDual-wavelength light-scattering technique for selective detection of volcanic ash particles in the presence of water droplets
dc.type01A - Beitrag in wissenschaftlicher Zeitschrift
dc.volume8
dspace.entity.typePublication
fhnw.InventedHereYes
fhnw.ReviewTypeAnonymous ex ante peer review of a complete publication
fhnw.affiliation.hochschuleHochschule für Technik und Umwelt FHNWde_CH
fhnw.affiliation.institutlnstitut für Sensorik und Elektronikde_CH
fhnw.openAccessCategoryGold
fhnw.pagination5213–5222
fhnw.publicationStatePublished
relation.isAuthorOfPublication7bcf855e-5eb6-4a5f-ba90-e93bec5fd0a6
relation.isAuthorOfPublication45850dbf-ea21-4efa-9279-9b003d9ec0ae
relation.isAuthorOfPublication05dd9a19-7a24-4325-805a-2d121483b168
relation.isAuthorOfPublication.latestForDiscovery7bcf855e-5eb6-4a5f-ba90-e93bec5fd0a6
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