crystallization pressure
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Minerals ◽  
2021 ◽  
Vol 12 (1) ◽  
pp. 58
Author(s):  
Adrian Jarzyna ◽  
Maciej Bąbel ◽  
Damian Ługowski ◽  
Firouz Vladi

In the Dingwall gypsum quarry in Nova Scotia, Canada, operating in 1933–1955, the bedrock anhydrite deposits of the Carboniferous Windsor Group have been uncovered from beneath the secondary gypsum beds of the extracted raw material. The anhydrite has been subjected to weathering undergoing hydration (gypsification), transforming into secondary gypsum due to contact with water of meteoric derivation. The ongoing gypsification is associated with a volume increase and deformation of the quarry bottom. The surface layer of the rocks is locally split from the substrate and raised, forming spectacular hydration relief. It shows numerous domes, ridges and tepee structures with empty internal chambers, some of which represent unique hydration caves (swelling caves, Quellungshöhlen). The petrographic structure of the weathering zone has been revealed by macro- and microscopic observations. It was recognized that gypsification commonly starts from a developing network of tiny fractures penetrating massive anhydrite. The gypsification advances from the fractures towards the interior of the anhydrite rocks, which are subdivided into blocks or nodules similar to corestones. Characteristic zones can be recognized at the contact of the anhydrite and the secondary gypsum: (1) massive and/or microporous anhydrite, (2) anhydrite penetrated by tiny gypsum veinlets separating the disturbed crystals and their fragments (commonly along cleavage planes), (3) gypsum with scattered anhydrite relics, and (4) secondary gypsum. The secondary gypsum crystals grow both by replacement and displacement, and also as cement. Displacive growth, evidenced by abundant deformation of the fragmented anhydrite crystals, is the direct cause of the volume increase. Crystallization pressure exerted by gypsum growth is thought to be the main factor generating volume increase and, consequently, also the formation of new fractures allowing water access to “fresh” massive anhydrite and thus accelerating its further hydration. The expansive hydration is taking place within temperature range from 0 to ~30 °C in which the solubility of gypsum is lower than that of anhydrite. In such conditions, dissolving anhydrite yields a solution supersaturated with gypsum and the dissolution of anhydrite is simultaneous with in situ replacive gypsum crystallization. Accompanying displacive growth leads to volume increase in the poorly confined environment of the weathering zone that is susceptible to upward expansion.


Cellulose ◽  
2021 ◽  
Vol 28 (7) ◽  
pp. 4069-4087
Author(s):  
Sandra A. Nascimento ◽  
Eupídio Scopel ◽  
Camila A. Rezende

Lithos ◽  
2021 ◽  
Vol 380-381 ◽  
pp. 105920
Author(s):  
Xue-Ming Yang ◽  
David R. Lentz ◽  
Guoxiang Chi

2020 ◽  
Author(s):  
Lei Yang ◽  
Guilherme A. R. Gualda ◽  
Calvin Miller ◽  
Fu-Yuan Wu

Soft Matter ◽  
2020 ◽  
Vol 16 (39) ◽  
pp. 9074-9082
Author(s):  
Beibei Dong ◽  
Xiaokang Yang ◽  
Youxin Ji ◽  
Fengmei Su ◽  
Chunguang Shao ◽  
...  

This work investigated the crystalline forms obtained from melt crystallization in the isotactic polybutene-1 (iPB-1) homopolymer via manipulation of the temperature at which samples were melted (Tmelt) and crystallization pressure (Pcry).


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