Permeability development in vesiculating magmas: Implications for fragmentation

被引:308
作者
Klug, C
Cashman, KV
机构
[1] Department of Geological Sciences, 1272 University of Oregon, Eugene
关键词
vesiculation; fragmentation; permeability; pumice; ash; bubbles;
D O I
10.1007/s004450050128
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Fragmentation, or the ''coming apart'' of magma during a plinian eruption, remains one of the least understood processes in volcanology, although assumptions about the timing and mechanisms of fragmentation are key parameters in all existing eruption models. Despite evidence to the contrary, most models assume that fragmentation occurs at a critical vesicularity (volume percent vesicles) of 75-83%. We propose instead that the degree to which magma is fragmented is determined by factors controlling bubble coalescence: magma viscosity, temperature, bubble size distribution, bubble shapes, and time. Bubble coalescence in vesiculating magmas creates permeability which serves to connect the dispersed gas phase. When sufficiently developed, permeability allows subsequent exsolved and expanded gas to escape, thus preserving a sufficiently interconnected region of vesicular magma as a pumice clast, rather than fully fragmenting it to ash. For this reason pumice is likely to preserve information about (a) how permeability develops and (b) the critical permeability needed to insure clast preservation. We present measurements and calculations that constrain the conditions (vesicularity, bubble size distribution, time, pressure difference, viscosity) necessary for adequate permeability to develop. We suggest that magma fragments explosively to ash when and where, in a heterogeneously vesiculating magma, these conditions are not met. Both the development of permeability by bubble wall thinning and rupture and the loss of gas through a permeable network of bubbles require time, consistent with the observation that degree of fragmentation (i.e., amount of ash) increases with increasing eruption rate.
引用
收藏
页码:87 / 100
页数:14
相关论文
共 67 条
[21]   NONEXPLOSIVE SILICIC VOLCANISM [J].
EICHELBERGER, JC ;
CARRIGAN, CR ;
WESTRICH, HR ;
PRICE, RH .
NATURE, 1986, 323 (6089) :598-602
[22]   TEXTURAL CONSTRAINTS ON EFFUSIVE SILICIC VOLCANISM - BEYOND THE PERMEABLE FOAM MODEL [J].
FINK, JH ;
ANDERSON, SW ;
MANLEY, CR .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1992, 97 (B6) :9073-9083
[23]  
GARDNER JE, 1995, GEOLOGY, V23, P523, DOI 10.1130/0091-7613(1995)023<0523:IOMCOT>2.3.CO
[24]  
2
[25]   ERUPTION DYNAMICS AND MAGMA WITHDRAWAL DURING THE PLINIAN PHASE OF THE BISHOP TUFF ERUPTION, LONG VALLEY CALDERA [J].
GARDNER, JE ;
SIGURDSSON, H ;
CAREY, SN .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH AND PLANETS, 1991, 96 (B5) :8097-8111
[26]  
Heiken G, 1991, SEPM SPEC PUBL, V45, P19, DOI DOI 10.2110/PEC.91.45.0019
[27]  
HEIKEN G, 1994, US GEOL SURV B, V2047, P39
[28]  
Heiken GH, 1985, VOLCANIC ASH, P1
[29]   A VESICULARITY INDEX FOR PYROCLASTIC DEPOSITS [J].
HOUGHTON, BF ;
WILSON, CJN .
BULLETIN OF VOLCANOLOGY, 1989, 51 (06) :451-462
[30]   GAS CONTENT, ERUPTION RATE AND INSTABILITIES OF ERUPTION REGIME IN SILICIC VOLCANOS [J].
JAUPART, C ;
ALLEGRE, CJ .
EARTH AND PLANETARY SCIENCE LETTERS, 1991, 102 (3-4) :413-429