WO2006026697A2 - Improving the accuracy of shaly sand formation evaluation - Google Patents
Improving the accuracy of shaly sand formation evaluation Download PDFInfo
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- WO2006026697A2 WO2006026697A2 PCT/US2005/031085 US2005031085W WO2006026697A2 WO 2006026697 A2 WO2006026697 A2 WO 2006026697A2 US 2005031085 W US2005031085 W US 2005031085W WO 2006026697 A2 WO2006026697 A2 WO 2006026697A2
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V1/00—Seismology; Seismic or acoustic prospecting or detecting
- G01V1/28—Processing seismic data, e.g. for interpretation or for event detection
- G01V1/30—Analysis
- G01V1/306—Analysis for determining physical properties of the subsurface, e.g. impedance, porosity or attenuation profiles
Definitions
- the present invention relates to evaluation of subsurface earth formations to assess their composition and contents. More specifically, the present invention relates to accurate quantification of the effects of clay on data obtained from shaly sands.
- the formation lithology included minerals which were termed clay or clay minerals.
- shaly sand formation evaluation could not accurately quantify clay from standard well logs. Therefore, the effects of clay on porosity and resistivity logs were not accurately incorporated in shaly sands formation evaluation. Consequently, conventional formation evaluation of shaly sands has had some inaccuracy associated with its calculation of effective porosity and water saturations.
- Typical formation shale is composed of clay, mica, feldspar, iron oxide, organics and other material.
- prior formation evaluation approaches like U.S. Patents Nos. 4,531,188; 4,756,189; 4,502,121 and 4,369,497 attempted estimating clay from standard logs. Nonetheless, careful review of these methods revealed that one of two assumption or estimates usually was made. One was that the estimated clay was closer to shale than to pure clay, as in U.S. Patents Nos. 4,531,188 and 4,756,189. The other was that the estimated clay was based on inaccurate definition of clay, as in U.S. Patents Nos.
- Equation (1) Obtaining accurate effective-porosity from Equation (1) required accurate estimates for shale-volume and shale-porosity. This was, however, difficult during most times, especially in estimating an accurate measure of shale-porosity.
- Equation (1) shale- porosity in sections other than the 100% shale sections (sections where shale- volume is not 100%) was usually approximated by the same value estimated in the 100% shale sections. That introduced more inaccuracy in the shale porosity calculation.
- Equation (2) did not provide accurate effective-porosity, since the approximation of shale-porosity by total-porosity was inaccurate most of the time.
- effective-porosity obtained using known methods, was associated with some amount of inaccuracy. The measures obtained were known to be inaccurate, but the extent of the inaccuracy could not be determined.
- the present invention provides a new and improved method and apparatus for obtaining a measure of subsurface formation fluid contents adjacent a well borehole in a formation characterized as containing shaly sand, clay and fluid as formation constituents.
- the measures of formation constituents are obtained from data readings acquired by a well logging tool, and if desired from laboratory data.
- the well logging tool may be a composite logging tool capable of obtaining several types of well logging readings in a single run in the well bore, or may be one of a set of well logging tools each run separately in the well bore on different logging runs to obtain one or more readings of data of interest.
- the well logging readings are then processed in a data processor in a group of processing steps to obtain a measure of subsurface fluid contents of the formation.
- the processing steps include obtaining a measure of the total porosity of the formation, and obtaining a measure of the dry clay volume of the formation. A measure of the clay- bound water volume of the formation is obtained, and the effective porosity of the formation is determined.
- a measure of the total water saturation of the formation is obtained, and a measure of the clay-bound water saturation of the formation is obtained.
- the free water saturation of the formation is determined, and the effective water saturation of the formation is then determined.
- the present invention thus provides data measurements for evaluating subsurface formations adjacent well boreholes for purposes of completing and producing hydrocarbons from the formations.
- the present invention accurately quantifies constituents of formations containing shaly sand, thereby provides accurate information for assessing the presence of hydrocarbons in such formations. This information enables better-informed decisions to be made with respect to hydrocarbon production from subsurface formations.
- the present invention also provides a data processor which performs the processing steps according to the present invention and provides an analyst with output displays of the processing results for evaluation and assessment of the subsurface formation.
- the present invention further provides a computer program product in the form of machine-readable instructions for causing the processor to perform the processing steps according to the present invention.
- Fig. 1 is a schematic diagram, taken partly in cross-section, of a well logging system disposed in a well borehole adjacent subsurface formation.
- Fig. 2 is an example plot of formation lithology obtained as a function of borehole depth.
- Fig. 3 is a comparison plot of clay abundance data obtained from two different techniques.
- Figs. 4A, 4B, 4C and 4D are plots of gamma ray well log data as a function of borehole depth obtained from a logging system like that of Fig. 1.
- Fig. 5 is a schematic diagram depicting components of a shaly sand earth formation and their relation to various parameters used in well formation analysis.
- Fig. 6 is a block diagram of processing steps according to the present invention.
- Figs. 7A, 7B and 7C are plots of well logs of lithology, effective porosity and effective water saturation, respectively, as a function of borehole depth in a well obtained from prior art formation evaluation techniques.
- Fig. 8A 5 8B and 8C are plots of well logs of lithology, effective porosity and effective water saturation, respectively, obtained according to the present invention as a function of the same borehole depth as the logs of Figs. 7A, 7B and 7C.
- Figs. 9A, 9B and 9C are plots of well logs of lithology, effective porosity and effective water saturation, respectively, as a function of borehole depth in a well obtained from prior art formation evaluation techniques.
- Fig. 1OA, 1OB and 1OC are plots of well logs of lithology, effective porosity and effective water saturation, respectively, obtained according to the present invention as a function of the same borehole depth as the logs of Figs. 9 A, 9B and 9C.
- Figs. HA, HB and HC are plots of well logs of lithology, effective porosity and effective water saturation, respectively, as a function of borehole depth in a well obtained from prior art formation evaluation techniques.
- Figs. 12A, 12B and 12C are plots of well logs of lithology, effective porosity and effective water saturation, respectively, obtained according to the present invention as a function of the same borehole depth as the logs of Figs. HA, HB and 11C.
- a conventional well logging system W is shown in Fig. 1 at a well 10.
- a sonde 20 containing one or more well logging instruments 21 is lowered by a conductive wireline cable 22 into a well bore 24 to obtain the responses of subsurface formations 26 to each of the well logging instruments in the sonde 20.
- the following types of well logging measurements be obtained from the subsurface formations 26: a resistivity log, e.g. induction log, laterolog; a gamma ray log; and a porosity log, e.g. density log, neutron log, sonic log.
- the sonde 20 need not contain all of these logging instruments, and may contain one or more of such instruments. Li the latter case, sufficient logging passes are made with different well logging tools to obtain well logging measurements of all desired types for formation depths of interest.
- the sonde 20 and cable 22 are suitably supported such as by a sheave wheel 28.
- the well logging measurements obtained by the well logging instruments are recoded as functions of borehole depth in a suitable data memory 32.
- the well logging data measurements may be transferred as needed into a data input unit 34 of a data processing system D.
- the well logging data measurements are subjected to conventional preprocessing in a preprocessing unit 36 and then to a computer 38 for processing according to the present invention in a manner to be set forth below.
- the processed results from computer 38 are then available for analysis on a suitable display or plotter 40.
- the computer 38 can be a mainframe computer of any conventional type of suitable processing capacity such as those available from International Business Machines (IBM) of Armonk, N.Y. or other source. Other digital processors, however, may be used, such as a laptop computer, or any other suitable processing apparatus.
- the processor of the computer 38 accesses the well logging data measurements to undertake the logic of the present invention, which may be executed by a processor as a series of computer-executable instructions.
- the instructions may be contained on a data storage device 42 with a computer readable medium, such as a computer diskette shown in Figure 1 having a computer usable medium stored thereon. Or, the instructions may be stored in memory of the computer 38, or on magnetic tape, conventional hard disk drive, electronic read-only memory, optical storage device, or other appropriate data storage device.
- FIG. 6 The flow chart of Fig. 6 herein illustrates the structure of the logic of the present invention as embodied in computer program software.
- Those skilled in the art will appreciate that the flow charts illustrate the structures of computer program code elements including logic circuits on an integrated circuit that function according to this invention.
- the invention is practiced in its essential embodiment by a machine component that renders the program code elements in a form that instructs a digital processing apparatus (that is, a computer) to perform a sequence of function steps corresponding to those shown.
- the log analysis according to the present invention is to assess the composition and contents of the subsurface formations and to accurately quantify the effects of clay on data obtained from formations when shaly sand is present.
- the effective porosity, ⁇ e ff ect i ve in a subsurface formation, such as shown in Fig. 1, is the pore space of the formation that is filled with hydrocarbon and non-clay water.
- the effective water saturation, S e ff ect iv es of the formation is the non-clay water percentage in the effective porosity as illustrated in Fig. 5, to be discussed in more detail below.
- Clay- Volume is null and the methodology of the present invention takes into account the absence of shaly sand formations and reduces to conventional techniques that are accurate in clean formations, hi shaly formations, clay is present and its effects on porosity and saturation measurements are modeled or accounted for by the present invention to obtain accurate effective porosity, water saturations and hydrocarbon saturation.
- the present invention methodology has been applied in real data analysis and its results have been found better matched to actual hard data than conventional analysis results. Additionally, the results of the present invention were found to better agree with well-testing results than conventional methods. [0043] The inaccuracy associated with effective porosity calculations in prior formation evaluation methods has been discussed in the section Description of the Prior Art above.
- Q is the formation conductivity which can be obtained from deep resistivity logs
- C w is the formation water conductivity
- S w is the formation water saturation
- ⁇ total is the formation total porosity
- m is a constant that can be determined experimentally on representative formation rocks and fluids
- n is a constant that can be determined experimentally on representative formation rocks and fluids.
- Archie's equation is appropriate for clean rocks and would not give accurate water-saturation in shaly sands since it does not account for the extra conductivity caused by the clay presence. Therefore, water-saturations obtained from Archie's equation have a tendency to overestimate the water in shaly sands.
- X is a function that is needed to account for the conductivity caused by clay presence in shaly sands.
- X f(Vsh, C ⁇ , ).
- X ⁇ (V d , C c/ , ).
- Fig. 6 illustrates schematically the general sequence of processing according to the present invention.
- FIG. 6 With reference to Fig. 6, there is depicted a high-level logic flowchart illustrating a method of obtaining a measure of subsurface formation fluid contents adjacent a well borehole in the well logging system W according to the present invention.
- the method of the present invention performed in the computer 38 of the well logging system can be implemented utilizing the computer program steps of Fig. 6 stored in memory 42 and executable by system processor of computer 38 and also the data resulting from the other steps of Fig. 6 not implemented by the computer 38. Such data is furnished to computer 38 through any suitable form of computer data input device.
- the initial process step 100 involves characterizing or describing the formation lithology of interest as clay and sand.
- clay comprises clay minerals, i.e. montmorillonite, illite, chlorite and kaolinite.
- Sand comprises anything in shaly sands that is neither clay nor fluid, e.g. quartz, mica and feldspar, organics, and any other possible component.
- a step 102 the most appropriate cross-plots and transforms are used to obtain the formation total-porosity, ⁇ tota l-
- the cross-plots and transforms so used are determined from the available porosity logs from the well logging system of Fig. 1 such as density, neutron and sonic logs. Corrections for environmental (borehole size and fluids) and light-hydrocarbon effects may, if necessary, need to be applied upon these logs to enable more accurate total porosity results.
- Processing step 104 is next, and is done to accurately quantify volume of dry- clay, Vol dry - c i ay Processing step 104 may be performed using one or more of the several methods.
- Dry-clay volume can be quantified based on conventional techniques such as X- Ray Diffraction, or XRD, and Infra Red Spectroscopy, or IR, of formation rock or cores. Each of these techniques are laboratory experimental procedures that can be used to determine clay abundance in the formation rock. This is done by properly selecting a representative formation rock or core and then preparing it foot-by-foot in a powder form so that the laboratory experiment can be conducted. The results provide weight-percent of the dry-clay in the rock-matrix.
- Fig. 5 is a graphical representation of typical components of a shaly sand reservoir or formation. Dry-clay weight-percent, Wdry-ciay , can be transformed to volume percent using the following formula:
- Vol d r y - c i a y is the volume of dry-clay in one unit of formation bulk volume, as indicated in Fig. 5.
- W dry - da y in Equation (6) is the weight-percent of the dry-clay in the rock-matrix, which is provided by XRD or IR technique.
- the quantity ⁇ matr ix m Equation (6) is the rock-matrix density, which is provided by laboratory experiments as matrix grain density. Furthermore, ⁇ mat n x c an be estimated from prevailing knowledge and experience about the shaly-sand formation rock.
- the quantity ⁇ dry - c i a y in Equation (6) is the density of the dry-clay in the formation, which can be estimated from clay-types abundances determined by either XRD or IR or both procedures. Moreover, ⁇ y-ciay can be estimated from prevailing knowledge and experience about dominant clay types in geological units or formation of interest. ⁇ /Ot ⁇ / is the total porosity in the formation and is obtained during processing step 102. [0061] Dry-clay volume can also be quantified from data obtained by an elemental capture spectroscopy log, or ECS log. This type of spectroscopy log is capable of determining the weight-percent of dry-clay in the formation rock-matrix. An example of this is described in U.S.
- the dry-clay weight-percent provided by ECS log can be transformed to dry-clay volume-percent in the formation using Equation (6) above.
- the input data for this determination of dry-clay volume in this manner can be obtained as explained in XRD or IR procedures described above except for W dr y- c i ay> which in this case, is obtained from an ECS log.
- Fig. 2 is a plot of dry-clay volume obtained as a function of borehole depth.
- Fig. 3 is a chart comparing clay abundance data, from ECS logs against XRD procedures, for the same well and interval depicted in Fig. 2. Such a comparison enables calibrating an ECS logging tool to accurately measure clay abundance in the formation to be evaluated.
- Dry-clay volume can also be quantified by another well logging technique known as the gamma-ray log or GR log.
- the GR log is a standard log that measures the natural radioactivity of the formation. Data is acquired from this type of log in every well in a hydrocarbon formation. Hence, GR log is available in wells that have clay abundance measured by ECS log, XRD or IR techniques.
- the wells ⁇ ( ⁇ 1, 2, 3...
- ⁇ max having clay abundance measured by ECS, XRD or IR techniques for a geological unit or formation can be utilized in evaluating such geological unit or formation in any other well not having ECS, XRD or IR measurements.
- the clay abundance data in each well ⁇ need to be transformed from weight-percent to volume-percent using equation (6).
- the dry-clay volume data, from ECS, XRD or IR, in the wells ⁇ can be utilized to normalize and calibrate their gamma- ray logs, GR ⁇ , using the following methodology, which will enable using GR log in quantifying dry-clay volume.
- the gamma-ray data is initially normalized to the dry-clay volume in each well ⁇ .
- the dry-clay volume of well ⁇ , Vol ⁇ dry - c i ay (whether from ECS, XRD or IR) is displayed on a zero-to-one scale and on the same track display GR ⁇ _ADJ on a scale from zero to GR ⁇ _ADJ /! ; g/!er .
- GR ⁇ _ADJ / g/zer must be higher than the maximum reading of GR ⁇ _ADJ, i.e., GR ⁇ _ADJ, nr ⁇ ⁇ GR ⁇ ADJ h i ghe r- Then, the scale-point GR_ADJ /;/g/!er for the displayed GR ⁇ _ADJ log is changed until scale-point value is achieved that makes the two displayed curves, and GR ⁇ _ADJ, most accurately coincide with each other.
- the scale-point achieved can be termed [0066] Figs.
- Equation (7) is used to obtain dry-clay volume from the Gamma Ray log.
- the results in a typical formation are mostly overlaying with dry-clay volume from ECS, XRD or IR in well ⁇ .
- Equation (8) is used to find the calibration factor ⁇ between GR ⁇ _ADJ /!/g/! and GR ⁇ _ADJ wfl ⁇ for every well ⁇ :
- the calibration factor ⁇ can then be used in calculating dry-clay volume in any nearby well (having no ECS, XRD or IR) across the same geological unit or formation crossed by wells ⁇ . hi doing so, GR, GR min , GR_ADJ, GR_ADJ m ⁇ x are obtained for the nearby well using the procedure explained above for normalizing Gamma Ray log as shown in Figs. 4A-4D. Then GR AD J max and the calibration factor ⁇ are used to obtain GR_ADJ / j /g/ , for the geological unit or formation in the nearby well based on the following relationship:
- GR_ADJ Ugh ⁇ • GR_ADJ miDL m
- Processing step 106 is next used to calculate clay-bound-water. This calculation may be done from conventional published methods or relations, such as:
- ⁇ toto/ is the formation total-porosity, which is obtained as described above during step 102.
- Q v in Equation (12) is the clay cation-exchange- capacity in milliequivalents per unit volume of pore fluids. Q v can be determined experimentally on representative formation rocks and fluids.
- YQ in Equations (12) and (13) is the amount of clay-bound- water associated with one milliequivalent of clay counterions.
- Vg is a function of formation temperature and the salinity of the formation water, i.e.:
- T oC ⁇ [96 /(T oC + 298)] (14) [0074] T oC is the formation temperature in degrees Celsius, ⁇ is equal to unity when formation water salinity is greater than 20455 ppm NaCl. Otherwise, OC is equal to SQRT (20455 / FWS), where FWS is the formation water salinity in ppm NaCl.
- Voldry- c iay in Equation (13) is the volume of dry-clay, which can be obtained as described in step 104.
- p d iy- c i a y is the dry-clay density, which can be determined from experience gathered about the prevailing formation clay types and their characteristics.
- CEC in Equation (13) is the clay Cation-Exchange-Capacity in milliequivalents per unit mass of dry clay.
- CEC can be obtained from experimental measurements on representative formation rocks or from experience and knowledge gathered about the prevailing formation clay types and their characteristics.
- the volume of clay-bound-water per unit bulk volume of the formation. Equation (15) can be used to get the saturation of clay-bound- water, S CbW -
- Step 108 is next used to calculate effective-porosity using the following Equation:
- ⁇ tota l and V ⁇ c ⁇ a y- bound -w ater can be obtained as explained in step 102 and step 106, respectively.
- ⁇ e ff ect iv e is the formation effective-porosity, which is defined as the pore-space occupied by all the formation fluids that are not clay-bound.
- Fig. 5 illustrates the relative shaly sand rock, minerals and fluid attributes, which can be quantified using techniques described according to the present invention.
- Fig. 5 is a schematic that shows components per unit bulk volume of a shaly sand reservoir.
- Step 110 is next performed to model formation conductivity. This can be done by use of the known dual water saturation equation to model the formation conductivity measured by resistivity logs. Equation (17. a) is the most general form for the dual water saturation equation. C t - ⁇ total ⁇ wt (17-a)
- Equation (17. a) splits the conductivity of the total water in the formation into conductivity of the clay-bound-water, C cb w, multiplied by its relative abundance, S C bw / I S wt , plus the conductivity of the free (non-clay) water, C w /, multiplied by its relative abundance, S 14 ,// S wt .
- T° and ⁇ are as described in step 106 above.
- An accurate value for C W f can be determined experimentally on representative formation water samples, and an accurate value for ⁇ tota i can be obtained as described in step 102.
- the parameters m 0 and n 0 are determined experimentally on representative formation rock and fluid samples. Accurate representative values for 7 «° and n 0 require experimental measurements of S c bw, C cbw , ⁇ tota h S w/ , Q and C w / on every rock sample and fluid from which m 0 and n 0 are to be obtained. Then, for every sample such measurements need to be fitted using Equation (17) in order to get accurate fitting values for rn° and n°.
- a second suite of measurements can address n 0 by sustaining C w / at a value equal to the original formation water conductivity and changing S wt from 100% to lower values in incremental steps at which Q is measured to enable fitting Equation (17) with an accurate representative value of n°.
- the methods described in step 104 and step 106 enable obtaining accurate value for S c _ w
- Determining S ⁇ also requires an accurate numerical method capable of exploiting the input data Q, C c bw, C w /, ⁇ totah S cb w, m° and n 0 described above and solving Equation (17) for the unknown S wt -
- the present invention enables getting an accurate measure Swt from Equation (17) for the input data described above and has the capability of handling any values for m 0 and n°.
- Equation (17) is rearranged in the following form:
- Equation (19) is then rewritten, after substitution according to Equations (20), (21) and (22), in the following form:
- Equation (23) is then solved for the unknown S w , which, by definition, can take values in the range between 0.0 and 1.0 only.
- the following numerical method converges to an accurate answer S wt with a tolerance ⁇ .
- the answer S wt so obtained is substituted in Equation (23)
- the left side of Equation (23) converges to zero (as indicated on right-side of Equation (23)) with a tolerance e.
- ⁇ and e are extremely small numbers that can be chosen as tolerance criteria.
- V C , /( ⁇ -J • C wf ) (26)
- the present invention has unique capabilities for getting accurate value for S cbW (steps 102, 104 and 106) and in obtaining accurate numerical solution for Equation (17). Consequently, the methodology of the present invention is capable of obtaining accurate solution for S wt .
- Step 112 is then performed using the accurately calculated S w/ and S c ⁇ w , from steps 110 and 106, to obtain accurate free water saturation, S w / , and effective water saturation, ⁇ e ff ect iv e j based on the following relationships
- S w / in Equation (24) is the saturation of the water that is free from clay or not bound to the clay.
- S e ff ect ⁇ ve i n Equation (25) is the percentage of the effective porosity occupied by the free water.
- the present invention incorporates successful methods for obtaining accurate values for ⁇ totah m ° > n°, C 1 V/ and C Cb w
- the present invention utilizes the dual- water saturation equation, Equation (17), to accurately model the conductivity in the shaly-sand geological unit or formation.
- the present invention uses robust numerical method to obtain accurate S w ; from equation (17).
- the present invention has positive and valuable merits for formation evaluation. It uses well logging data to accurately quantify: clay-volume, clay-bound-water, total and effective porosities, water and hydrocarbon saturations in shaly and clean sands.
- C we ⁇ SQRT[C w - (l ⁇ V sh ) m J + V sh -SQRT(C sh / ⁇ : tal ) ⁇ 2 , for water saturation.
- the results are shown in the three tracks in Figs. 7A-7C.
- Fig. 7A displays the lithology, which is composed of shale and quartz.
- Fig. 7B shows the effective porosity which is composed of water (shown in those areas along the right margin of Fig. 7B) and hydrocarbon (shown in Fig. 7B in those areas to the left of the water).
- core effective-porosity is displayed by a dark trace line in Figure 7B as a function of depth for benchmarking.
- the difference between core effective-porosity and prior-art formation evaluation effective-porosity, ⁇ ⁇ pr i 0r - a rt ineffective) core - ( ⁇ effective) P nor-ari, was computed at each depth point. Then, ⁇ ⁇ pr i or - art was averaged over the whole cored interval and found that ( ⁇ ⁇ 'prior-art) * average ⁇ 1-10 porosity units.
- Fig. 7C shows the determined effective-water saturation. [0098] This same example was also solved using the methodology of the present invention. The results are shown in Fig.
- Fig. 8 A which displays the lithology, as Sand (quartz + mica + feldspar + etc.) and Clay.
- C we ⁇ SQRT[C w -(l-V s ⁇ ) w ] + V, ⁇ -SQRT(C ⁇ / ⁇ ' o " tal ) ⁇ 2 , for water saturation.
- Figs. 9A-9C Fig. 9A displays the lithology, which is composed of shale and quartz.
- Fig. 9B shows the effective porosity which is composed of water (shown in those areas along the right margin of Fig. 9B) and hydrocarbon (shown in areas to the left of the water).
- core effective-porosity is displayed by a dark trace line in Fig. 9B as a function of depth for benchmarking.
- Fig. 9C shows the effective-water saturation.
- Fig. 1OA displays the lithology, which is Sand (quartz + mica + feldspar + ...) and Clay.
- Fig. 1OB shows the effective- porosity which is composed of water shown in those areas along the right margin of Fig. 1OB, and hydrocarbon shown in Fig. 1OB in those areas to the left of the water. Additionally, core effective-porosity is displayed in Fig. 1OB for benchmarking.
- Fig. HA displays the lithology, which is composed of shale and quartz.
- Fig. HB shows the effective porosity which is composed of water
- Fig. 1 IB core effective-porosity is displayed at Fig. 1 IB for benchmarking.
- Figs. 12A-12C This example was also solved using the methodology of the present invention.
- Fig. 12A displays the lithology, which is Sand (quartz + mica + feldspar + ...) and Clay.
- Fig. 12B shows the effective-porosity which is composed of water (shown along the right margin of Fig. 12B) and hydrocarbon (shown to the left of the water). Additionally, core effective-porosity is displayed in Fig. 12B for benchmarking.
- the difference between core effective-porosity and new formation evaluation effective-porosity, ⁇ ⁇ ne w-method ( ⁇ effective) com - ( ⁇ effective)new-,nethod, was computed at each depth point.
- Fig. 12C displays the effective water-saturation.
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| CA2577364A CA2577364C (en) | 2004-08-26 | 2005-08-26 | Improving the accuracy of shaly sand formation evaluation |
| EP05797676.3A EP1800149B1 (en) | 2004-08-26 | 2005-08-26 | Improving the accuracy of shaly sand formation evaluation |
| AU2005279829A AU2005279829B2 (en) | 2004-08-26 | 2005-08-26 | Improving the accuracy of shaly sand formation evaluation |
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| US10/927,974 US7168310B2 (en) | 2004-08-26 | 2004-08-26 | Accuracy of shaly sand formation evaluation |
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| EP1795921B1 (en) * | 2005-12-06 | 2013-01-23 | Services Petroliers Schlumberger | Determination of porosity and fluid saturation of underground formations |
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| US9536122B2 (en) | 2014-11-04 | 2017-01-03 | General Electric Company | Disposable multivariable sensing devices having radio frequency based sensors |
| US10914698B2 (en) | 2006-11-16 | 2021-02-09 | General Electric Company | Sensing method and system |
| US9538657B2 (en) | 2012-06-29 | 2017-01-03 | General Electric Company | Resonant sensor and an associated sensing method |
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