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Featured researches published by Erik Rylander.


SPE Unconventional Resources Conference-USA | 2013

NMR T2 Distributions in the Eagle Ford Shale: Reflections on Pore Size

Richard E. Lewis; Philip M. Singer; Tianmin Jiang; Erik Rylander; Steven M. Sinclair; Ryan Hunter Mclin

Production of oil from organic shale reservoirs is a function of porosity, hydrocarbon saturation, pore pressure, matrix permeability, and hydraulic fracture surface area plus fracture conductivity. Hydraulic fracture surface area, porosity, saturations and pore pressure dominate initial production rates. Matrix permeability becomes increasingly important in sustaining production later in time. Permeability measurements to oil from organic shale core samples are not commercially available today. However, permeability to oil is believed to be a function of pore throat size, wettability, and water saturation, the same as a conventional reservoir. This work investigates pore size, wettability, and expelled hydrocarbon volumes using log and core-based nuclear magnetic resonance data from the Eagle Ford Shale focused on the comprehensive evaluation of one well. Comparisons with core porosity measurements, scanning electron microscope images (SEM) and mercury injection capillary pressure tests (MICP) are compared with the nuclear magnetic resonance (NMR) interpretation for calibration and validation. The NMR T2 distribution is partitioned into regions of bound and producible free fluid. Two types of pore systems are present in the Eagle Ford Shale; kerogen-hosted (OM) and inter/intra particle (IP). Bore hole logs indicate the upper Eagle Ford Shale is dominated by IP porosity, and the lower Eagle Ford Shale is dominated by OM porosity. Core NMR indicates OM pores are hydrocarbon wet while IP pores have mixed wettability. Core pore fluids are not representative of in-situ conditions as the lighter portion of the hydrocarbons have been expelled during core recovery. Comparison between log and core measured NMR allows the quantification of the expelled hydrocarbon those zones with the “best” producibility. Understanding which portion of a shale reservoir contains producible fluids impacts target zone selection.


SPWLA 54th Annual Logging Symposium | 2013

Determination of Formation Organic Carbon Content Using a New Neutron-Induced Gamma Ray Spectroscopy Service that Directly Measures Carbon

Jorge Gonzalez; Richard E. Lewis; James Hemingway; Jim Grau; Erik Rylander; Ryan Schmitt


Petrophysics | 2015

NMR Relaxometry in Shale and Implications for Logging

Ravinath Kausik; Kamilla Fellah; Erik Rylander; Philip M. Singer; Richard E. Lewis; Steven M. Sinclair


SPWLA 54th Annual Logging Symposium | 2013

Integrated Petrophysical Interpretation of Eagle Ford Shale with 1-D and 2-D Nuclear Magnetic Resonance (NMR)

Tianmin Jiang; Erik Rylander; Philip M. Singer; Richard E. Lewis; Steven M. Sinclair


Unconventional Resources Technology Conference | 2015

Novel Reservoir Quality Indices for Tight Oil

Ravinath Kausik; Paul R. Craddock; Stacy Lynn Reeder; Robert L. Kleinberg; Andrew E. Pomerantz; Frank P. Shray; Richard E. Lewis; Erik Rylander


Petrophysics | 2016

The Reservoir Producibility Index: a Metric to Assess Reservoir Quality in Tight-Oil Plays from Logs

Stacy Lynn Reeder; Paul R. Craddock; Erik Rylander; Iain Pirie; Richard E. Lewis; Ravinath Kausik; Robert L. Kleinberg; Jing Yang; Andrew E. Pomerantz


Petrophysics | 2014

New Method to Estimate Porosity More Accurately from NMR Data with Short Relaxation Times

Lalitha Venkataramanan; Fred K. Gruber; Jack LaVigne; Tarek M. Habashy; Jorge Gonzalez Iglesias; Patrick Cohorn; Vivek Anand; Mansoor A. Rampurawala; Vikas Jain; Nick Heaton; Ridvan Akkurt; Erik Rylander; Richard E. Lewis


Unconventional Resources Technology Conference | 2015

Novel Reservoir Quality Indices for Tight Oil Shale

Ravinath Kausik.K.V; Paul R. Craddock; Stacy Lynn Reeder; Robert L. Kleinberg; Andrew E. Pomerantz; Erik Rylander; Richard E. Lewis


Petrophysics – The SPWLA Journal of Formation Evaluation and Reservoir Description | 2018

Integrating Measured Kerogen Properties With Log Analysis for Petrophysics and Geomechanics in Unconventional Resources

Paul R. Craddock; Romain Prioul; Jeffrey Miles; MaryEllen L. Loan; Andrew E. Pomerantz; Laurent Mosse; Iain Pirie; Richard E. Lewis; Erik Rylander; Schlumberger Wireline; Schlumberger


SPWLA 58th Annual Logging Symposium | 2017

Characteristics of Vaca Muerta Formation Revealed by NMR T1-T2 Logging at Large Scale

Alberto Ortiz; Laurent Mosse; Carolina Bernhardt; Vivek Anand; Ravinath Kausik; Erik Rylander

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Richard E. Lewis

Schlumberger Oilfield Services

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Iain Pirie

Schlumberger Oilfield Services

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