Thermal mapping of a pahoehoe laVa flow, Kilauea Volcano

被引:27
|
作者
Patrick, Matthew [1 ]
Orr, Tim [1 ]
Fisher, Gary [2 ]
Trusdell, Frank [1 ]
Kauahikaua, James [1 ]
机构
[1] US Geol Survey, Hawaiian Volcano Observ, POB 51, Hawaii Natl Pk, HI 96718 USA
[2] US Geol Survey, Adv Sci Ctr, 12201 Sunrise Valley Dr,MS-562, Reston, VA 20192 USA
关键词
Pahoehoe lava flow; Thermal imagery; Structure from motion; Hazard monitoring; MAUNA-ULU; FIELD OBSERVATIONS; HAWAII; SURFACE; TUBE; ERUPTION; EMPLACEMENT; KUPAIANAHA; INFLATION; LENGTHS;
D O I
10.1016/j.jvolgeores.2016.12.007
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Pahoehoe lava flows are a major component of Hawaiian eruptive activity, and an important part of basaltic volcanisth worldwide. In recent years, pahoehoe lava has destroyed homes and threatened parts of Hawaii with inundation and disruption. In this study, we use oblique helicopter-borne thermal images to create high spatial resolution (similar to 1 m) georeferenced thermal maps of the active pahoehoe flow on Kilauea Volcano's East Rift Zone. Thermal maps were created on 27 days during 2014-2016 in the course of operational monitoring, encompassing a phase of activity that threatened the town of Pahoa. Our results illustrate and reinforce how pahoehoe flows are multicomponent systems consisting of the vent, master tube, distributary tubes, and surface breakouts. The thermal maps accurately depict the distribution and character of pahoehoe breakouts through time, and also delineate the subsurface lava tube. Surface breakouts were distributed widely across the pahoehoe flow, with significant portions concurrently active well upslope of the flow front, often concentrated in clusters of activity that evolved through time. Gradual changes to surface breakout distribution and migration relate to intrinsic processes in the flow, including the slow evolution of the distributary tube system. Abrupt disruptions to this system, and the creation of new breakouts (and associated hazards), were triggered by extrinsic forcing namely fluctuations in lava supply rate at the vent which disrupted the master lava tube. Although the total area of a pahoehoe flow has been suggested to relate to effusion rate, our results show that changes in the proportion of expansion vs. overplating can complicate this relationship. By modifying existing techniques, we estimate time-averaged discharge rates for the flow during 2014-2016 generally in the range of 1-2 m(3) s(-1) (mean: 13 +/- 0.4 m(3) s(-1)) less than half of Kilauea's typical eruption rate on the East Rift Zone and suggestive of a weak eruptive regime during 2014-2016. We caution, however, that this discharge rate approach requires further independent corroboration. The thermal maps provide the first synoptic characterization of pahoehoe flow activity at high spatial resolution, essential both for operational hazard assessment and fundamental understanding of pahoehoe behavior. Published by Elsevier B.V.
引用
收藏
页码:71 / 87
页数:17
相关论文
共 50 条
  • [1] Mapping the Lava Deltas of the 2018 Eruption of Kilauea Volcano
    Soule, Adam
    Heffron, Erin
    Gee, Lindsay
    Mayer, Larry
    Raineault, Nicole A.
    German, Christopher R.
    Lim, Darlene S. S.
    Zoeller, Michael
    Parcheta, Carolyn
    [J]. OCEANOGRAPHY, 2019, 32 (01) : 46 - 47
  • [2] DYNAMICS OF A CONFINED LAVA FLOW ON KILAUEA VOLCANO, HAWAII
    HESLOP, SE
    WILSON, L
    PINKERTON, H
    HEAD, JW
    [J]. BULLETIN OF VOLCANOLOGY, 1989, 51 (06) : 415 - 432
  • [3] TRANSITION OF BASALTIC LAVA FROM PAHOEHOE TO AA, KILAUEA VOLCANO, HAWAII - FIELD OBSERVATIONS AND KEY FACTORS
    PETERSON, DW
    TILLING, RI
    [J]. JOURNAL OF VOLCANOLOGY AND GEOTHERMAL RESEARCH, 1980, 7 (3-4) : 271 - 293
  • [4] EMPLACEMENT AND INFLATION OF PAHOEHOE SHEET FLOWS - OBSERVATIONS AND MEASUREMENTS OF ACTIVE LAVA FLOWS ON KILAUEA VOLCANO, HAWAII
    HON, K
    KAUAHIKAUA, J
    DENLINGER, R
    MACKAY, K
    [J]. GEOLOGICAL SOCIETY OF AMERICA BULLETIN, 1994, 106 (03) : 351 - 370
  • [5] Relationships between pahoehoe surface units, topography, and lava tubes at Mauna Ulu, Kilauea Volcano, Hawaii
    Byrnes, JM
    Crown, DA
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2001, 106 (B2) : 2139 - 2151
  • [6] The Keaiwa or 1823 lava flow from Kilauea volcano, Hawaiii
    Stearns, HT
    [J]. JOURNAL OF GEOLOGY, 1926, 34 (04): : 336 - 351
  • [7] Emplacement of subaerial pahoehoe lava sheet flows into water: 1990 Kūpaianaha flow of Kilauea volcano at Kaimū Bay, Hawai`i
    Susumu Umino
    Miyuki Nonaka
    Jim Kauahikaua
    [J]. Bulletin of Volcanology, 2006, 69 : 125 - 139
  • [8] MAGNETIC FABRIC AND FLOW DIRECTION IN BASALTIC PAHOEHOE LAVA OF XITLE VOLCANO, MEXICO
    CANONTAPIA, E
    WALKER, GPL
    HERREROBERVERA, E
    [J]. JOURNAL OF VOLCANOLOGY AND GEOTHERMAL RESEARCH, 1995, 65 (3-4) : 249 - 263
  • [9] FLOW OF LAVA INTO SEA, 1969-1971, KILAUEA VOLCANO, HAWAII
    MOORE, JG
    PHILLIPS, RL
    GRIGG, RW
    PETERSON, DW
    SWANSON, DA
    [J]. GEOLOGICAL SOCIETY OF AMERICA BULLETIN, 1973, 84 (02) : 537 - 546
  • [10] The active lava flows of Kilauea volcano, Hawaii
    Hetu Sheth
    [J]. Resonance, 2003, 8 (6) : 24 - 33