Graupel

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File:2013-02-23 03 59 28 Graupel (snow pellets) in Elko, Nevada.JPG
Graupel pellets in the morning, having fallen the previous day

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Graupel (/ˈɡrpəl/; Script error: No such module "IPA".), also called soft hail or hominy snow or granular snow or snow pellets or popcorn snow,[1] is precipitation that forms when supercooled water droplets in air are collected and freeze on falling snowflakes, forming 2–5 mm (0.08–0.20 in) balls of crisp, opaque rime.[2]

Graupel is distinct from hail and ice pellets in both formation and appearance. However, both hail and graupel are common in thunderstorms with cumulonimbus clouds, though graupel also falls in winter storms, and at higher elevations as well.[3] The METAR code for graupel is GS.

Formation

File:Graupel Falling.jpg
Falling graupel
File:Conical soft hail.jpg
Conical graupel particle

Under some atmospheric conditions, snow crystals may encounter supercooled water droplets. These droplets, which have a diameter of about 10 μm (0.00039 in) on average, can exist in the liquid state at temperatures as low as −40 °C (−40 °F), far below the normal freezing point as long as it is above the homogeneous nucleation point of water. Contact between a snow crystal and the supercooled droplets results in freezing of the liquid droplets onto the surface of the crystal. This process of crystal growth is known as accretion. Crystals that exhibit frozen droplets on their surfaces are often referred to as rimed. When this process continues so that the shape of the original snow crystal is no longer identifiable and has become ball-like, the resulting crystal is referred to as graupel.[4]

As graupel falls, it often deforms into a conical shape. This conical shape, in turn, determines which direction it falls and how far it travels as it falls. Small graupel particles with a base diameter less than 1 mm generally fall with the conical base down, but if the particle is between 1 mm and 3 mm persistent oscillations around the center of the conical base appear, and if larger than 3 mm the graupel particle will start to tumble. As its base diameter increases, a conical graupel particle generally falls further horizontally from where it initially fell.[5]

Graupel was formerly referred to by meteorologists as "soft hail." Graupel is distinguishable from true hail in both the shape and strength of the pellet and, in some cases, the circumstances in which it falls. Ice from hail is formed in hard, relatively uniform layers and usually falls only during thunderstorms. Graupel forms fragile, soft, oblong crystals and falls in place of typical snowflakes in wintry mix situations, often in concert with ice pellets. However, graupel does also occur in thunderstorms. Graupel is also fragile enough that it will typically fall apart when pressed on.[6]

Microscopic structure

The frozen droplets on the surface of rimed crystals are difficult to see even when zoomed in, and the topography of a graupel particle is not easy to record with a light microscope because of the limited resolution and depth of field in the instrument.

However, observations of snow crystals with a low-temperature scanning electron microscope (LT-SEM) clearly show frozen cloud droplets measuring up to 50 μm (0.002 in) on the surface of the crystals. The rime has been observed on all four basic forms of snow crystals, including plates, dendrites, columns and needles. As the riming process continues, the mass of frozen, accumulated cloud droplets eventually obscures the form of the original snow crystal, thereby giving rise to graupel.[4]

Graupel and avalanches

Graupel commonly forms in high-altitude[quantify] climates and is both denser and more granular than ordinary snow, due to its rimed exterior. Macroscopically, graupel resembles small beads of polystyrene. The combination of density and low viscosity makes fresh layers of graupel unstable on slopes, and layers of 20–30 cm (8–12 in) or higher present a high risk of dangerous slab avalanches. In addition, thinner layers of graupel falling at low temperatures can act as ball bearings below subsequent falls of more naturally stable snow, rendering them also liable to avalanche or otherwise making surfaces slippery.[7] Graupel tends to compact and stabilise ("weld") approximately one or two days after falling, depending on the temperature and the properties of the graupel.[8]

See also

References

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  1. ^ Page Module:Citation/CS1/styles.css has no content."Graupel - Definition". Merriam-Webster Dictionary.com. Merriam-Webster. Retrieved 15 January 2012.
  2. ^ Page Module:Citation/CS1/styles.css has no content."Glossary". International Cloud Atlas. World Meteorological Organization. 2017. Retrieved 2019-09-03.
  3. ^ Page Module:Citation/CS1/styles.css has no content."What in the world is graupel?". KUSA.com. April 30, 2019. Retrieved 2022-05-16.
  4. ^ a b Page Module:Citation/CS1/styles.css has no content."Rime and Graupel". U.S. Department of Agriculture Electron Microscopy Unit, Beltsville Agricultural Research Center. Archived from the original on 2017-07-11. Retrieved 2020-03-23.
  5. ^ Page Module:Citation/CS1/styles.css has no content.Chueh, Chih-Che; Wang, Pao K.; Hashino, Tempei (January 2018). "Numerical Study of Motion of Falling Conical Graupel". Atmospheric Research. 199: 82–92. Bibcode:2018AtmRe.199...82C. doi:10.1016/j.atmosres.2017.09.008.
  6. ^ "Graupel - What Is Graupel?" (Script error: No such module "webarchive".). "G", Weather Glossary. About.com.
  7. ^ Page Module:Citation/CS1/styles.css has no content.LaChapelle, Edward R. (May 1966). "The Relation of Crystal Riming to Avalanche Formation in New Snow". Department of Atmospheric Sciences, University of Washington. Archived from the original on 2008-12-06.
  8. ^ Page Module:Citation/CS1/styles.css has no content."Graupel". American Avalanche Association. Archived from the original on 2010-05-04.

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