Validation/enhancement of the "Jones-Owens" technique for the prediction of permeability in low permeability gas sands

This work presents the validation and enhancement of existing correlations for estimating and predicting the permeability in low permeability gas sands. The "original" problem of predicting the corrected or "liquid equivalent" permeability has been under investigation since the e...

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Main Author: Florence, Francois-Andre
Other Authors: Blasingame, Thomas A.
Format: Others
Language:en_US
Published: Texas A&M University 2007
Subjects:
Online Access:http://hdl.handle.net/1969.1/5846
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spelling ndltd-tamu.edu-oai-repository.tamu.edu-1969.1-58462013-01-08T10:38:48ZValidation/enhancement of the "Jones-Owens" technique for the prediction of permeability in low permeability gas sandsFlorence, Francois-Andrelow permeabilitypetrophysicsThis work presents the validation and enhancement of existing correlations for estimating and predicting the permeability in low permeability gas sands. The "original" problem of predicting the corrected or "liquid equivalent" permeability has been under investigation since the early 1940s — in particular, using the application of "gas slippage" theory to petrophysics by Klinkenberg. In the first part of this work, the viability of the Jones-Owens and Sampath-Keighin correlations for estimating the Klinkenberg-corrected (absolute) permeability from single-point, steady-state measurements were investigated. We also provide an update to these correlations using modern petrophysical data. In the second part of this work we proposed and validated a new "microflow" model for the evaluation of an equivalent liquid permeability from gas flow measurements. This work was based on a more detailed application of similar concepts employed by Klinkenberg. In fact, we obtained the Klinkenberg result as an approximate form of this result. A theoretical "microflow" result was given as a rational polynomial (i.e., a polynomial divided by a polynomial) in terms of the Knudsen number (ratio of the mean free path of the gas molecules to the characteristic flow length (typically the radius of the capillary)), and this result can be applied as an explicit correlation device, or as an implicit prediction model (presuming the model is tuned to a particular data set). The following contributions are derived from this work: ● Validation and extension of the correlations proposed by Jones-Owens and Sampath-Keighin for low permeability samples. ● Development and validation of a new "microflow" model which correctly represents the flow of gases in low permeability core samples. This model is also applied as a correlation for prediction of the equivalent liquid permeability in much the same fashion as the Klinkenberg model, although the new model is substantially more theoretical (and robust) as compared to the Klinkenberg correction model.Texas A&M UniversityBlasingame, Thomas A.2007-09-17T19:35:05Z2007-09-17T19:35:05Z2003-052007-09-17T19:35:05ZBookThesisElectronic Thesistext18818811 byteselectronicapplication/pdfborn digitalhttp://hdl.handle.net/1969.1/5846en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic low permeability
petrophysics
spellingShingle low permeability
petrophysics
Florence, Francois-Andre
Validation/enhancement of the "Jones-Owens" technique for the prediction of permeability in low permeability gas sands
description This work presents the validation and enhancement of existing correlations for estimating and predicting the permeability in low permeability gas sands. The "original" problem of predicting the corrected or "liquid equivalent" permeability has been under investigation since the early 1940s — in particular, using the application of "gas slippage" theory to petrophysics by Klinkenberg. In the first part of this work, the viability of the Jones-Owens and Sampath-Keighin correlations for estimating the Klinkenberg-corrected (absolute) permeability from single-point, steady-state measurements were investigated. We also provide an update to these correlations using modern petrophysical data. In the second part of this work we proposed and validated a new "microflow" model for the evaluation of an equivalent liquid permeability from gas flow measurements. This work was based on a more detailed application of similar concepts employed by Klinkenberg. In fact, we obtained the Klinkenberg result as an approximate form of this result. A theoretical "microflow" result was given as a rational polynomial (i.e., a polynomial divided by a polynomial) in terms of the Knudsen number (ratio of the mean free path of the gas molecules to the characteristic flow length (typically the radius of the capillary)), and this result can be applied as an explicit correlation device, or as an implicit prediction model (presuming the model is tuned to a particular data set). The following contributions are derived from this work: ● Validation and extension of the correlations proposed by Jones-Owens and Sampath-Keighin for low permeability samples. ● Development and validation of a new "microflow" model which correctly represents the flow of gases in low permeability core samples. This model is also applied as a correlation for prediction of the equivalent liquid permeability in much the same fashion as the Klinkenberg model, although the new model is substantially more theoretical (and robust) as compared to the Klinkenberg correction model.
author2 Blasingame, Thomas A.
author_facet Blasingame, Thomas A.
Florence, Francois-Andre
author Florence, Francois-Andre
author_sort Florence, Francois-Andre
title Validation/enhancement of the "Jones-Owens" technique for the prediction of permeability in low permeability gas sands
title_short Validation/enhancement of the "Jones-Owens" technique for the prediction of permeability in low permeability gas sands
title_full Validation/enhancement of the "Jones-Owens" technique for the prediction of permeability in low permeability gas sands
title_fullStr Validation/enhancement of the "Jones-Owens" technique for the prediction of permeability in low permeability gas sands
title_full_unstemmed Validation/enhancement of the "Jones-Owens" technique for the prediction of permeability in low permeability gas sands
title_sort validation/enhancement of the "jones-owens" technique for the prediction of permeability in low permeability gas sands
publisher Texas A&M University
publishDate 2007
url http://hdl.handle.net/1969.1/5846
work_keys_str_mv AT florencefrancoisandre validationenhancementofthejonesowenstechniqueforthepredictionofpermeabilityinlowpermeabilitygassands
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