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D. Pribnow

Publications and source records attributed to D. Pribnow.

2 recordsLinked to original sources

Well log-derived estimates of thermal conductivity in crystalline rocks penetrated by the 4-KM deep KTB Vorbohrung

Well log measurements of compressional and shear velocity (V p , V s ), density, and temperature from the 4 km-deep KTB Vorbohrung (pilot hole) were applied in a phonon conduction model for the thermal conductivity of a crystalline solid. The resulting conductivity estimates were compared with conductivities (k LAB ) measured on the nearly continuous (91% recovery) core. Previous studies have shown the log-derived conductivity (k LOG ) to be within ±15% of k LAB in isotropic or flat-lying anisotropic crystalline rocks. The section penetrated by the KTB pilot hole includes both predominantly isotropic metabasites and highly anisotropic gneisses with foliation dips ranging from horizontal to vertical. The predictions of the phonon model were accurate within ±4% in the metabasites but inaccurate by as much as 23% in the gneisses. The accuracy of the model in the metabasites confirms the utility of the phonon conduction approach in isotropic or weakly anisotropic rocks, but the discrepancies in the anisotropic gneisses remain unexplained. These relatively large discrepancies between k LOG and k LAB correspond to depths at which laboratory measurements of V s under in situ conditions deviate from the sonic log V s . This suggests that sonic log determinations of V s may not be reliable in dipping, anisotropic rocks. Alternatively, the laboratory V s measurements may not constitute a representative sample, or there may be errors in the phonon conduction model. If the discrepancies can be tied to errors in sonic log V s measurements, the phonon conduction model may provide a tool for deriving thermal conductivity profiles of the Earth's crust from seismic studies of V p and V s .

Geophysical Research Letters

Thermal conductivity of water-saturated rocks from the KTB pilot hole at temperatures of 25 to 300°C

The conductivitites of selected gneiss (two) and amphibolite (one) core samples have been measured under conditions of elevated temperature and pressure with a needle‐probe. Water‐saturated thermal conductivity measurements spanning temperatures from 25 to 300°C and hydrostatic pressures of 0.1 and 34 MPa confirm the general decrease in conductivity with increasing temperature but deviate significantly from results reported from measurements on dry samples over the same temperature range. The thermal conductivity of water‐saturated amphibolite decreases with temperature at a rate approximately 40% less than the rate for dry amphibolite, and the conductivity of water‐saturated gneiss decreases at a rate approximately 20% less than the rate for dry gneiss. The available evidence points to thermal cracking as the primary cause of the more rapid decrease in dry thermal conductivity with temperature. The effects of thermal cracking were also observed in the water‐saturated samples but resulted in a net decrease in room‐temperature conductivity of less than 3%. These results highlight the importance of duplicating in‐situ conditions when determining thermal conductivity for the deep crust.

Geophysical Research Letters