WO2012103479A2 - Gas sorption analysis of unconventional rock samples - Google Patents
Gas sorption analysis of unconventional rock samples Download PDFInfo
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- WO2012103479A2 WO2012103479A2 PCT/US2012/022975 US2012022975W WO2012103479A2 WO 2012103479 A2 WO2012103479 A2 WO 2012103479A2 US 2012022975 W US2012022975 W US 2012022975W WO 2012103479 A2 WO2012103479 A2 WO 2012103479A2
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N15/00—Investigating characteristics of particles; Investigating permeability, pore-volume or surface-area of porous materials
- G01N15/08—Investigating permeability, pore-volume, or surface area of porous materials
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B49/00—Testing the nature of borehole walls; Formation testing; Methods or apparatus for obtaining samples of soil or well fluids, specially adapted to earth drilling or wells
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N15/00—Investigating characteristics of particles; Investigating permeability, pore-volume or surface-area of porous materials
- G01N15/08—Investigating permeability, pore-volume, or surface area of porous materials
- G01N15/082—Investigating permeability by forcing a fluid through a sample
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N15/00—Investigating characteristics of particles; Investigating permeability, pore-volume or surface-area of porous materials
- G01N15/08—Investigating permeability, pore-volume, or surface area of porous materials
- G01N15/088—Investigating volume, surface area, size or distribution of pores; Porosimetry
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N15/00—Investigating characteristics of particles; Investigating permeability, pore-volume or surface-area of porous materials
- G01N15/08—Investigating permeability, pore-volume, or surface area of porous materials
- G01N2015/0866—Sorption
Definitions
- This disclosed subject matter is generally related to gas shale formations, and more particularly to methods for accessing the maturity, free gas content, and transport characteristics or pore connectivity of gas shale formations.
- OM organic matter
- Rock-Eval pyrolysis is one of these techniques and consists of subjecting a small shale aliquot to a temperature cycle and monitoring the amount of gas-phase products evolving as a function of temperature.
- three generation events occur.
- SI occurs as the sample is exposed to a temperature of 300°C and consists of free hydrocarbons (gas and oil) that are volatilized.
- S2 occurs as the temperature increases to 550°C at a rate of 25°C per minute and consists of cracking nonvolatile hydrocarbons, e.g. kerogen.
- T max The temperature at which this generation reaches a maximum
- T max may be interpreted as a measure of the shale maturity.
- T max may also be influenced by other OM characteristics, for example, initial composition and catalytic association with various minerals. Typical ranges of T max for immature are 400- 430°C, mature 435°C-450°C and over-mature 450°C. A large proportion of gas shales are over-mature, but T max is relevant for assessing the degree to which the shale is over-mature.
- S3 is a measure of the amount of carbon dioxide that is associated with hydrocarbon cracking and S3 is useful for estimating the oxygen content of OM.
- a second technique for assessing OM maturity consists of observing the percentage of light reflected from a shale sample, Ro%, where the percentage is calibrated against a standard that reflects 100% of the light. OM macerals become more glass-like and therefore reflect more light with increasing maturity. Typical ranges of Ro% are as follows: depositional (immature) - 0.2-0.7; oil producing (immature-mature) - 0.7-1.2 and gas producing (mature to over-mature) 1.2 ⁇ Ro% ⁇ 5.0.
- This technique was originally devised for determining the rank of coal and may be tedious, subjective, and imprecise. Moreover, due to the absence of vitrinite-producing land plants before ca. 360 million years ago, this technique cannot be applied to gas shales of older provenance.
- a technique for measuring the free gas content consists of measuring the high pressure, high temperature methane capacity of a shale by fitting successive measurements of gas uptake as a function of pressure with a Langmuir isotherm to quantify total gas and adsorbed gas, where the difference is the free gas.
- employing the Langmuir isotherm implies that analysis gas chemisorbs on the solid.
- methane does not chemisorb on the material constituents of shale.
- information obtained by applying the Langmuir analysis may not be representative.
- Measuring the high pressure, high temperature methane capacity is time consuming, cumbersome and necessitates high pressure, for example, reservoir pressure, rendering it unattractive for applications at the wellsite.
- systems and methods of analyzing rock samples from an unconventional hydrocarbon reservoir include performing gas sorption on a sample of rock from the unconventional hydrocarbon reservoir; and determining at least one characteristic associated with the sample based at least in part on the gas sorption.
- a method for determining a location of a fracture zone for stimulation in a shale reservoir includes obtaining a shale sample from the shale reservoir and grinding and sieving the shale sample. The method further includes degassing the shale sample and performing gas sorption on the shale sample from the shale reservoir to determine at least one characteristic associated with the shale sample based at least in part on the gas sorption. Finally, the method includes determining the fracture zone from the one or more characteristics.
- a method of analyzing a rock sample includes obtaining the rock sample and measuring a pore volume or porosity on a plurality of particles of varying sizes from the rock sample. The method further includes, comparing the measured pore volume or porosity to determine a correlation length or pore connectivity in the rock sample.
- unconventional reservoir includes reservoirs having an unconventional microstructure, such as having submicron pore size, and/or substantial amounts of primary organic matter such as kerogen.
- unconventional reservoirs include hydrocarbon-bearing shales such as gas shales and oily shales.
- FIG. 1 shows a sampling tool being deployed in a wellbore and an analysis facility, according to some embodiments
- FIG. 2 is a plot of A Si N2 normalized by total organic content (TOC) versus vitrinite reflectance (VRo) or the bitumen equivalent (VRE);
- FIG. 3 is a plot of the change in surface area after bitumen extraction and combustion as a function of VRo or VRg;
- FIG. 4 is a plot of isotherms for shale of varying maturity
- FIG. 5 is a plot of the natural log of VA, normalized by V from BET analysis, versus the double natural log of P/Po;
- FIG. 6 shows sorption results using water vapor as the analysis gas, A SIH 20 ? normalized by the mass of illite + smectite (I+S) in the sample;
- FIG.7 is a plot of permeability, k, versus the difference between the pore volume measured on two different particle sizes.
- FIG. 8 is a flow chart of an embodiment of the subject disclosure.
- methods are disclosed for accessing the quality of a shale reservoir.
- the information derived from the methods disclosed may be utilized for completion design.
- Stimulation is the most costly process (in general at least 50% of a well cost) utilized for gas shale plays so gaining insight into the location of the best zones for stimulation is important.
- zones with the most mature organic matter as mature organic matter contains oil-wet pores which may represent unimpeded pathways to the fractures formed during stimulation.
- the gas in shale is in one of two states which are (a) tightly absorbed on the rock surface (liquid-like) or (b) free in the body of the pores (gas-like). Laboratory measurements indicate that initially the free-gas is produced and the adsorbed gas is produced when the reservoir pressure is reduced. It is therefore an advantage to identify mature zones with the greatest proportion of free gas.
- the subject disclosure utilizes conventional gas sorption for characterizing the microstructure of gas shale.
- Gas sorption is applicable for characterizing nanoporosity ( ⁇ 200 nm) and therefore is an ideal technique for characterizing the microstructure of gas shale.
- a gas sorption study is performed at the boiling point of the analysis gas (-196°C for nitrogen). Under these conditions the saturation vapor pressure, Po, of the analysis gas is equivalent to ambient pressure ( ⁇ 0.1 MP a).
- Other analysis gases which may be used include argon, xenon, neon or any molecular or atomic probe known to be useful in adsorption studies.
- the disclosure implicitly covers the normal thermodynamic conditions with respect to range of temperature and pressure, regularly imposed for the various analysis gases.
- Experiments consist of measuring the volume of adsorbed gas, VA, from low ( ⁇ 1 kPa) to ambient pressure at constant temperature (commonly referred to as an isotherm). At the low end of the pressure range, gas molecules stack in multiple layers on the internal surfaces of the shale, permitting determination of surface area A ⁇ . At higher pressure, liquid nitrogen condenses in the fine pores of the shale, permitting determination of the pore size distribution for pores smaller than 200 nm, and the pore volume V p .
- FIG. 1 shows a sampling tool being deployed in a wellbore and an analysis facility, according to some embodiments.
- the sampling tool is a core sampling tool.
- Wireline truck 110 is deploying wireline cable 112 into well 130 via well head 120.
- Wireline tool 114 is disposed on the end of the cable 112 in an unconventional subterranean formation 100.
- formation 100 is an unconventional reservoir, such as a hydrocarbon bearing shale reservoir.
- Tool 114 includes a sampling tool as shown, in a non-limiting example a core sampling tool.
- a wireline sampling tool is shown, according to other embodiments, other types of sampling tools are used such as while drilling and/or coiled tubing conveyed tools.
- Samples 132 are from an unconventional rock formation 100 and are retrieved at the surface from the tool 114 and transported to an analysis facility 160.
- the analysis facility 160 can be located at the wellsite (which can be onshore or offshore) or it can be located remotely from the wellsite.
- Facility 160 includes a gas sorption apparatus (152), one or more central processing units 140, storage system 144, communications and input/output modules 140, a user display 146 and a user input system 148.
- Input/output modules 140 include modules to communicate with and control the gas sorption machine (152).
- Facility 160 may also include a helium pycnometry (He-pyc), mercury intrusion porosimetry (MICP) or other apparatuses as known to those skilled in the art for characterizing rock samples.
- He-pyc helium pycnometry
- MIMP mercury intrusion porosimetry
- Fig. 2 is a plot of A Si N2 normalized by TOC versus virtinite reflectance (VRo) or the bitumen equivalent (VRE). Thermal maturity is indicated by vitrinite reflectance, VRo, or the equivalent determined on bitumen, VRE (for higher maturity), which are acquired by standard organic petrology. A similar related metric commonly used is Tmax.
- the plot shows that the surface area increases with maturity. The open circles are the raw data, while the filled surfaces show the surface area attributed to organic matter alone. Since A s , N2 represents that due to organic and clay (open symbols), there is considerable scatter in the data, especially in the samples that are moderately mature. Therefore, A s , N2/TOC is reduced by an amount attributable to clay (filled symbols).
- the proportion of A s , N2 attributable to clay is given by the XRD mineralogy, the relationship displayed in Equation 1 (free exponent) below for the proportion of clay accessible to the analysis gas, and G the ratio of the surface area of pure clay as measured by nitrogen to that measured by water.
- a S N2 (no clay) A S N2 (with clay)— S * (/ + S) * G * (- ⁇ ) -0 ' 998 Equation 1
- TOC has a specific surface area of 400 - 600 m /g which is consistent with previously published values from artificially matured shale, and is similar to that of activated carbon.
- the plot also shows the average A s , N2 from samples with 1 ⁇ VRo or E (immature), 1 ⁇ VRo or E ⁇ 1.5 (moderate) and 1.5 ⁇ VRo or E (mature).
- the average value for mature shale is more than an order of magnitude greater than that for immature shale, and nearly twice that of moderately mature shale.
- micropores pore size ⁇ 2nm as defined by the
- Fig. 3 is a plot showing the change in surface area after bitumen extraction, and combustion as a function of VRo or VRE. Also shown is the volume of micropores ⁇ determined using, in a non-limiting example, the t-plot analysis on gas sorption data from the as received material, ⁇ could also be measured directly by performing gas sorption with carbon dioxide. The high specific surface area of the kerogen is due to the increase in nanoporosity, including ⁇ , with maturity.
- FIG. 4 is a graph of isotherms for shale of varying maturity. The presence of micropores elevates VA(P/PO— 0) in the mature shale. This observation provides a rapid maturity index.
- the horizontal dashed line in Fig. 4 is an example of a lower bound on VA(P/PO— >0) above which a sample would be considered mature.
- adsorbed gas is measured for a plurality of increments, in a non- limiting example, seven increments of pressure up to Po, where the last data is taken at P/Po ⁇ 0.995.
- VA(P/PO— >0) e.g. maturity
- a ⁇ surface area
- Vp pore volume
- these quantities can be utilized to estimate the total gas in place or hydrogen index given the reservoir pressure and the associated gas density profile in the pore (e.g.
- the Brunauer, Emmet and Teller analysis (BET) is utilized to determine, A S given VA at several pressures below P/Po ⁇ 0.3.
- BET is a statistical analysis of the buildup of gas multilayer's on a solid surface. The primary result is an expression for the number of gas molecules in a monolayer.
- the t-plot technique is used to determine the volume of micropores, ⁇ , given VA over the entire range of pressure.
- This approach utilizes a transformation of variables between P and the thickness of adsorbed gas, ⁇ , to deduce ⁇ , where the transformation of variables is determined on a chemically similar non- porous sample.
- FIG. 5 A is a plot of the natural log of VA, normalized by VM from BET analysis, versus the double natural log of P/Po- The plot is linear over nearly two orders of magnitude in pressure, which corresponds to nearly two orders of magnitude in pore size.
- the slope of the line, m gives the fractal dimension Dp increases with maturity, indicating that at a given characteristic length, a greater pore volume is accessible with increasing maturity.
- Shales are distinguished from conventional reservoir rock by their more abundant clay and OM content.
- FIG. 6 plots A s , H20 normalized by the mass of illite and smectite (I+S) versus TOC. The data corresponds to a number of samples across the spectrum of maturity. As can be seen in FIG. 6 there are two power law fits to the A s , H2O/(I+S) data, one with the exponent as a free parameter (gray) and the other with the exponent fixed (black). Water vapor is used as it will not condense on organic surfaces. Therefore, A s , H20 inferred from these measurements is indicative of that due to exposed inorganic surfaces. In shale, inorganic surface area is dominated by clay, where the specific surface area of clay as
- the TOC in the mature systems contributes numerous pores which provide access to the porosity which yields access to the inorganic surfaces.
- ⁇ percolation length
- v 0.88 for 3D percolation
- ⁇ 0 is a fundamental length, like the characteristic dimension of the organic matter
- p is the volume fraction of a component in the sample, in this case TOC. Since we use a consistent particle size in our experiments, we conclude that the relative correlation length decreases with TOC content, or a reduction in maturity. For the oilfield this information is useful because smaller ⁇ necessitates greater stimulation to access the natural resource trapped inside the rock.
- the correlation length can also be determined by running the gas sorption measurement on a single sample by varying the particle size used in the analysis. This will give the discrete range of particle sizes in which ⁇ lies (e.g., bounded below by the largest particle size which yields a consistent A ⁇ , and above by the first particle size which yields lower A ⁇ ).
- Embodiments of the subject disclosure comprise techniques for characterizing
- a shale sample is retrieved and the sample is grinded and then sieved ensuring all material passes through a sieve with 150 ⁇ openings.
- the sample size is on the order of 1 g.
- the sample is then loaded into an analysis tube and the mass of the sample is noted.
- the analysis tube is then loaded onto an analyzer to degas. Gas sorption analysis is then performed.
- VA is noted for a plurality of P/Po in the pressure range 0.001 ⁇ P/Po ⁇ 0.995. This includes a point very near the upper bound.
- VA is also noted in the limit, P/Po ⁇ 0.
- V (P/Po ⁇ 0) 3-4 cc/g, see also FIG. 4. If the sample is mature, a t-plot analysis may be used to determine A s and the volume of micropores, otherwise a BET analysis may be used to determine A s .
- the pore volume (V p ) may be noted from P/P 0 and the pore volume available to free gas (Vp), and the gas in place or hydrogen index may also be determined as indicated above.
- the particle size may be varied to quantify the associated effect on access to the porosity. If the particle size is varied over a broad enough range, the data will provide insight into the correlation length of the shale and the total pore volume or porosity.
- the particle size may be varied and helium pycnometry (He-pyc), mercury intrusion porosimetry (MICP), or other techniques as known to those skilled in the art for measuring pore volume or porosity are used to yield information and also to determine the correlation length of shale.
- He-pyc determines the volume of solids in a sample of known mass, by allowing a known amount of Helium gas to expand into a container of known volume that holds the sample of interest.
- the volume of solids is given by the equilibrium pressure using the ideal gas law (corrected for non-ideality).
- the skeletal density is taken as the ratio between the sample mass and the volume of solids that make up the porous sample.
- MICP forces mercury into a porous body by incrementally increasing the pressure applied to the mercury.
- the size of pores the mercury can access is inversely proportional to the pressure.
- the sample volume is the difference between the volume of the sample holder and the volume of the mercury required to surround but not invade the sample.
- the pore size distribution can be determined from the volume of mercury injected at each incremental increase in pressure, and the well known relationship between the pore size and pressure as given by the Washburn equation.
- the pore volume is determined from the total volume of mercury injected at the highest pressure, and the skeletal density is given by the mass of the sample and the volume of solids that make up the porous medium. The latter quantity is taken as the difference between the volume of the sample holder, and the total amount of mercury required to surround the sample, and fill the accessible pores.
- Bulk density, p # is measured by weighing in air and the volume is determined by measuring the displacement of a liquid.
- Gas permeability is determined using a modified pycnometer technique by analyzing the kinetics of pressure equilibration at a plurality of pressures. With this information, the liquid permeability, k, is inferred from the y-intercept of a linear fit to the correlation with the experimental pressure (See Klinkenberg, "The permeability of porous media to liquids and gases," Drill, Proc. API (1941), 200-213).
- the skeletal density is determined from the equilibrium pressure during the gas permeability measurements utilizing the ideal gas law.
- FIG.7 is a plot of permeability k versus the difference between the measured and calculated pore volume.
- the measured pore volume is measured by nitrogen gas sorption, Vp ,meas , and the calculated pore volume is determined from p B and p ⁇ , Vp ;Ca i c : - _L _ _L Equation 2
- the measurement of ps is on a material that has a characteristic dimension that is at least one order of magnitude greater than that used in the gas sorption experiment, in a non-
- Vp ,caic, correlation length ( ⁇ ) is smaller than the particle size used in the ps measurement (10
- k decreases as Vp, meas becomes greater than Vp iCa i c .
- a simple permeability model like the Carmen-Kozeny equation (3) may be used to better understand the relationship between the microstructure and k further:
- any combination of the results from gas sorption, and similar results from other characterization techniques e.g., He-pyc or MIP using a plurality of varying particle sizes (0.001 - 50 mm) will yield information which may be used to determine the correlation length of shale.
- the microstructure of mature shale has nanometer sized pores in the kerogen network. Therefore, since the surface area is expected to drop upon removal of organic matter from the shale matrix, a comparison of A s measured on samples in the native and organic free (via high temperature combustion) states is an alternative means for identifying mature zones (See Fig. 2 combustion data).
- the samples are analyzed before and after combustion or bitumen extraction.
- the shale samples are homogenized and split into two samples, a first and a second sample.
- the two samples are grinded and then sieved ensuring all material passes through a sieve with 150 ⁇ openings.
- the sample sizes are on the order of 1 g.
- a first sample is then combusted at 450°C in air for at least 16 hours to remove organic matter or subjected to solvent reflux for several days to remove bitumen.
- the first sample is dried.
- a second sample is placed in a vacuum oven overnight.
- the total organic content (TOC) is estimated in the first sample from mass loss due to combustion or bitumen removal.
- the samples are then loaded into a clean sample tube and the mass of each of the samples is noted. Gas sorption analysis is then performed on both samples noting the VA of P/PO in the pressure range 0.01 ⁇ P/Po ⁇ 0.995, including a point at the upper bound.
- the surface area (A s ) is determined by the BET method on both samples and the results are compared. If the surface area (A s ) is reduced by
- the sample may be considered mature (see FIG. 3 - filled symbols). If the surface area (A s ) increases markedly upon bitumen extraction, the sample may be considered moderately mature (see FIG. 3 - open symbols).
- the gas sorption data from the native-state sample is analyzed using the t-plot method to check for microporosity, if the sample contains micropores, the sample is mature.
- the pore volume is determined from the volume of adsorbed gas (VA) at the highest pressure and the pore volume available to free gas (Vp). (Vp) may also be determined as indicated above.
- FIG. 8 depicts a flow chart of embodiments of the subject disclosure.
- the shale sample (801) is grinded (803) and then sieved (805) ensuring all material passes through a sieve with a predefined opening, in a non-limiting example the opening is 150 ⁇ .
- the shale sample (801) is then degassed (807) in preparation for gas sorption analysis (809).
- gas sorption analysis (809) From gas sorption analysis (809) a plurality of microstructural characteristics (823) are determined which include pore volume, surface area, pore size distribution and fractal dimension and correlation length or relative pore connectivity.
- the shale sample (801) is grinded (803) and then sieved (805) and the sample is then analyzed using helium pycnometry (He-pyc) and bulk density.
- He-pyc helium pycnometry
- the pore volume (813) can be determined with this approach.
- the shale sample (801) is grinded (803) and then sieved (805) and the sample is then analyzed using MICP (817). From MICP (817) a plurality of physical and microstructural characteristics (823) are determined which include bulk density, skeletal density, pore volume, surface area and pore size distribution.
- MICP MICP
- the pore volume or porosity may also be measured on varying sized particles in the rock sample using any of the techniques disclosed or any techniques known to those skilled in the art for measuring the pore volume and the porosity in a rock sample and the results are compared to determine the correlation length or relative pore connectivity in the system.
- Comparing any output 813, 815, 819, 821 or 823 yields information regarding pore connectivity, more specifically the dimension over which the porosity is connected in 3D.
- MIDP mercury intrusion porosimetry
- the size of pores controlling transport and the pore morphology may also be determined.
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| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201280006518.5A CN103339488B (en) | 2011-01-27 | 2012-01-27 | Gas Sorption Analysis of Unconventional Rock Samples |
| CA2822696A CA2822696A1 (en) | 2011-01-27 | 2012-01-27 | Gas sorption analysis of unconventional rock samples |
| AU2012211109A AU2012211109B2 (en) | 2011-01-27 | 2012-01-27 | Gas sorption analysis of unconventional rock samples |
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| US201161436819P | 2011-01-27 | 2011-01-27 | |
| US61/436,819 | 2011-01-27 | ||
| US13/359,121 US8881587B2 (en) | 2011-01-27 | 2012-01-26 | Gas sorption analysis of unconventional rock samples |
| US13/359,121 | 2012-01-26 |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| CN108444895A (en) * | 2018-06-14 | 2018-08-24 | 长安大学 | A kind of efficient loess body unsaturation permeability parameters acquisition methods |
| CN115598023A (en) * | 2022-11-08 | 2023-01-13 | 四川中德禄江装备科技有限公司(Cn) | Method for determining three-dimensional tortuosity of loose broken rock-soil mass |
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| CA2822696A1 (en) | 2012-08-02 |
| US20120192639A1 (en) | 2012-08-02 |
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| CN103339488A (en) | 2013-10-02 |
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| AU2012211109A1 (en) | 2013-07-04 |
| US20140366621A1 (en) | 2014-12-18 |
| AU2012211109B2 (en) | 2014-12-18 |
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