CONSTRAINTS ON HYDROTHERMAL HEAT-FLUX THROUGH THE OCEANIC LITHOSPHERE FROM GLOBAL HEAT-FLOW

被引:400
作者
STEIN, CA [1 ]
STEIN, S [1 ]
机构
[1] NORTHWESTERN UNIV, DEPT GEOL SCI, EVANSTON, IL 60201 USA
关键词
D O I
10.1029/93JB02222
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
A significant discrepancy exists between the heat flow measured at the seafloor and the higher values predicted by thermal models of the cooling lithosphere. This discrepancy is generally interpreted as indicating that the upper oceanic crust is cooled significantly by hydrothermal circulation. The magnitude of this heat flow discrepancy is the primary datum used to estimate the volume of hydrothermal flow, and the variation in the discrepancy with lithospheric age is the primary constraint on how the hydrothermal flux is divided between near-ridge and off-ridge environments. The resulting estimates are important for investigation of both the thermal structure of the lithosphere and the chemistry of the oceans. We reevaluate the magnitude and age variation of the discrepancy using a global heat flow data set substantially larger than in earlier studies, and the GDH1 (Global Depth and Heat flow) model that better predicts the heat flow. We estimate that of the predicted global oceanic heat flux of 32 X 10(12) W, 34% (11 X 10(12) W) occurs by hydrothermal flow. Approximately 30% of the hydrothermal heat flux occurs in crust younger than 1 Ma, so the majority of this flux is off-ridge. These hydrothermal heat flux estimates are upper bounds, because heat flow measurements require sediment at the site and so are made preferentially at topographic lows, where heat flow may be depressed. Because the water temperature for the near-ridge flow exceeds that for the off-ridge flow, the near-ridge water flow will be even a smaller fraction of the total water flow. As a result, in estimating fluxes from geochemical data, use of the high water temperatures appropriate for the ridge axis may significantly overestimate the heat flux for an assumed water flux or underestimate the water flux for an assumed heat flux. Our data also permit improved estimates of the ''sealing'' age, defined as the age where the observed heat flow approximately equals that predicted, suggesting that hydrothermal heat transfer has largely ceased. Although earlier studies suggested major differences in sealing ages for different ocean basins, we find that the sealing ages for the Atlantic, Pacific, and Indian oceans are similar and consistent with the sealing age for the entire data set, 65 +/- 10 Ma. The previous inference of a young (approximately 20 Ma) sealing age for the Pacific appears to have biased downward several previous estimates of the global hydrothermal flux. The heat flow data also provide indirect evidence for die mechanism by which the hydrothermal heat flux becomes small, which has often been ascribed to isolation of the igneous crust from seawater due to the hydraulic conductivity of the intervening sediment. We find, however, that even the least sedimented sites show the systematic increase of the ratio of observed to predicted heat flow with age, although the more sedimented sites have a younger sealing age. Moreover, the heat flow discrepancy persists at heavily sedimented sites until approximately 50 Ma. It thus appears that approximately 100-200 m of sediment is neither necessary nor sufficient to stop hydrothermal heat transfer. We therefore conclude that the age of the crust is the primary control on die fraction of heat transported by hydrothermal flow and that sediment thickness has a lesser effect. This inference is consistent with models in which hydrothermal flow decreases with age due to reduced crustal porosity and hence permeability.
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页码:3081 / 3095
页数:15
相关论文
共 72 条
[1]   CORRELATED SEDIMENT THICKNESS, TEMPERATURE-GRADIENT AND EXCESS PORE PRESSURE IN A MARINE FAULT BLOCK BASIN [J].
ABBOTT, D ;
MENKE, W ;
HOBART, M ;
ANDERSON, RN ;
EMBLEY, RW .
GEOPHYSICAL RESEARCH LETTERS, 1984, 11 (05) :485-488
[2]   TOPOGRAPHIC RELIEF AND SEDIMENT THICKNESS - THEIR EFFECTS ON THE THERMAL EVOLUTION OF THE OCEANIC-CRUST [J].
ABBOTT, DH ;
STEIN, CA ;
DIACHOK, O .
GEOPHYSICAL RESEARCH LETTERS, 1992, 19 (19) :1975-1978
[3]   ALTERATION OF THE UPPER OCEANIC-CRUST, DSDP SITE-417 - MINERALOGY AND CHEMISTRY [J].
ALT, JC ;
HONNOREZ, J .
CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 1984, 87 (02) :149-169
[4]   MECHANISMS OF HEAT-TRANSFER THROUGH FLOOR OF INDIAN-OCEAN [J].
ANDERSON, RN ;
LANGSETH, MG .
JOURNAL OF GEOPHYSICAL RESEARCH, 1977, 82 (23) :3391-3409
[5]   RELATION BETWEEN HEAT-FLOW, SEDIMENT THICKNESS, AND AGE IN EASTERN PACIFIC [J].
ANDERSON, RN ;
HOBART, MA .
JOURNAL OF GEOPHYSICAL RESEARCH, 1976, 81 (17) :2968-2989
[6]  
ANDERSON RN, 1981, SEA, V7, P489
[7]   HYDROTHERMAL VENTING AND THE APPARENT MAGMATIC BUDGET OF THE JUAN DE FUCA RIDGE [J].
BAKER, ET ;
HAMMOND, SR .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1992, 97 (B3) :3443-3456
[8]   CHARACTERISTICS OF HYDROTHERMAL PLUMES FROM 2 VENT FIELDS ON THE JUAN-DE-FUCA RIDGE, NORTHEAST PACIFIC-OCEAN [J].
BAKER, ET ;
MASSOTH, GJ .
EARTH AND PLANETARY SCIENCE LETTERS, 1987, 85 (1-3) :59-73
[9]   LARGE-SCALE LATERAL ADVECTION OF SEAWATER THROUGH OCEANIC-CRUST IN THE CENTRAL EQUATORIAL PACIFIC [J].
BAKER, PA ;
STOUT, PM ;
KASTNER, M ;
ELDERFIELD, H .
EARTH AND PLANETARY SCIENCE LETTERS, 1991, 105 (04) :522-533
[10]   INSITU ELECTRICAL-RESISTIVITY AND BULK POROSITY OF THE OCEANIC-CRUST COSTA-RICA RIFT [J].
BECKER, K ;
VONHERZEN, RP ;
FRANCIS, TJG ;
ANDERSON, RN ;
HONNOREZ, J ;
ADAMSON, AC ;
ALT, JC ;
EMMERMANN, R ;
KEMPTON, PD ;
KINOSHITA, H ;
LAVERNE, C ;
MOTTL, MJ ;
NEWMARK, RL .
NATURE, 1982, 300 (5893) :594-598