The present invention relates generally to recovery of hydrocarbons from unconventional reservoirs. More particularly, but not by way of limitation, embodiments of the present invention include tools and methods for real-time monitoring of hydraulic fracture geometry by quickly interrogating and finding a match in a database of poroelastic pressure signatures.
During hydraulic fracturing stimulation process, highly pressurized fluids are injected into a reservoir rock. Fractures are created when the pressurized fluids overcome breaking strength of the rock (i.e., fluid pressure exceeds in-situ stress). These induced fractures and fracture systems (network of fractures) can act as pathways through which oil and natural gas migrate en route to a borehole and eventually brought up to surface. Efficiently and accurately characterizing created fracture systems is important for optimizing hydraulic fracturing. Determination and evaluation of hydraulic fracture geometry can influence field development practices in a number of important ways such as, but not limited to, well spacing/placement design, infill well drilling and timing, and completion design.
More recently, fracturing of shale from horizontal wells to produce gas has become increasingly important. Horizontal wellbore may be formed to reach desired regions of a formation not readily accessible. When hydraulically fracturing horizontal wells, multiple stages (in some cases dozens of stages) of fracturing can occur in a single well. These fracture stages are implemented in a single well bore to increase production levels and provide effective drainage. In many cases, there can also be multiple wells per location.
There are several conventional techniques (e.g., microseismic imaging) for characterizing geometry, location, and complexity of hydraulic fractures. As an indirect method, microseismic imaging technique can suffer from a number of issues which limit its effectiveness. While microseismic imaging can capture shear failure of natural fractures activated during well stimulation, it is typically less effective at capturing tensile opening of hydraulic fractures itself. Moreover, there is considerable debate on interpretations of microseismic events as it relates to hydraulic fractures.
While our understanding of what hydraulic fractures look like in shale reservoirs has improved, data acquisition for most wells tend to be limited with little to no information for characterizing stimulated reservoir volume (SRV). Hence, completion and reservoir engineers are often left to rely on production performance over several months/years to optimize field design and evaluate effectiveness of a completion design. Thus, one of the key challenges in hydraulic fracturing is accelerating this learning process to improve well performance and recovery.
The present invention relates generally to recovery of hydrocarbons from unconventional reservoirs. More particularly, but not by way of limitation, embodiments of the present invention include tools and methods for real-time monitoring of hydraulic fracture geometry by characterizing main characteristics of poroelastic responses measured during hydraulic stimulation and quickly interrogating and finding a match in database of poroelastic pressure signatures.
The present invention can monitor evolution of reservoir stresses throughout lifetime of a field during hydraulic fracturing. Measuring and/or identifying favorable stress regimes can help maximize efficiency of multi-stage fracture treatments in shale plays.
One example of a method for characterizing a subterranean formation includes: a) simulating a poroelastic pressure response of known fracture geometry utilizing a geomechanical model to generate a simulated poroelastic pressure response; b) repeating a) to compile a database of simulated poroelastic pressure responses; c) measuring a poroelastic pressure response of the subterranean formation during a hydraulic fracturing operation to generate a measured poroelastic pressure response; d) identifying a closest simulated poroelastic pressure response in the library of simulated poroelastic pressure response; and e) estimating a geometrical parameter of a fracture or fractures in the subterranean formation based on the closest simulated poroelastic pressure response.
Another example of a method for characterizing a subterranean formation includes: a) compiling a database of simulated poroelastic pressure responses of stimulated fractures, wherein the library is stored in a non-transitory computer storage medium; b) obtaining a poroelastic pressure response of the subterranean formation during a hydraulic fracturing operation to generate a measured poroelastic pressure response; c) using a computer-processor to query the database of simulated poroelastic pressure responses to identify a closest simulated poroelastic pressure response; and d) estimating a geometrical parameter of a fracture or fractures in the subterranean formation based on the closest simulated poroelastic pressure response.
A more complete understanding of the present invention and benefits thereof may be acquired by referring to the follow description taken in conjunction with the accompanying drawings in which:
Reference will now be made in detail to embodiments of the invention, one or more examples of which are illustrated in the accompanying drawings. Each example is provided by way of explanation of the invention, not as a limitation of the invention. It will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the scope or spirit of the invention. For instance, features illustrated or described as part of one embodiment can be used on another embodiment to yield a still further embodiment. Thus, it is intended that the present invention cover such modifications and variations that come within the scope of the invention.
The present invention relates generally to recovery of hydrocarbons from unconventional reservoirs. More particularly, but not by way of limitation, embodiments of the present invention include tools and methods for real-time monitoring of hydraulic fracture geometry by quickly interrogating and finding a match in a database of poroelastic pressure signatures.
One of the goals of this technology is to enable cost effective characterization of the induced fracture system on virtually every well with little to no impact on ongoing operations. It has the potential to be used universally during fracturing operations in shale wells.
There are several advantages to the proposed invention. First is an ability to leverage knowledge from field pilots, instrumented wells and extend it to majority of wells for which there is limited data. Interpretations based on pressure data such as poroelastic response monitoring can be calibrated during pilot tests using number of methods including, but not limited to, distributed acoustic/temperature sensing (DAS/DTS), microseismic or tiltmeter monitoring, tracers, and then be applied in non-instrumented wells.
Another advantage capitalizes on the resulting quick speed of pressure data interpretation. For example, by training a neural network using synthetic cases of numerically-generated pressure response (for which induced-fracture characteristics are known), the present invention can quickly relate the measured poroelastic pressure response to fracture geometries and generate a real-time map. Other advantages will be apparent from the disclosure herein.
Poroelastic Pressure Response
During hydraulic stimulation, pressure data at active and offset wells (in multi-well pads) is easily available. However, this data is typically under-utilized. When correctly understood, this data reflects many physical phenomena beyond just momentum diffusion and includes tremendous information about the created SRV. At offset wells, many pressure changes can be seen during hydraulic fracturing operations. It is now known that many of them are poroelastic pressure responses where no fluid communication is being established between the active and offset wells. Instead, pressure changes are due to stresses imposed by dilated fractures (“squeezing” effect). These tensile dilations can alter reservoir stresses up to thousands of feet away from the fractures thus “squeezing” the surrounding rock. In high permeability systems, a fluid will be open to mass transfer so that pore pressure stays constant (
In low permeability systems (such as shale), the rock is closed to fluid mass transfer which causes the pore pressure to increase (
Downhole Configurations for Measuring Poroelastic Pressure Response
Utilizing Poroelastic Pressure Response in Real-Time
The present invention automates processing of active/offset well poroelastic pressure data by extracting its essential characteristics (e.g., time-lag, magnitude, slope) and accelerating its interpretation to provide a real-time interpreted map of each fracturing stage. The interpretations can include estimates of physical characteristics such as length, height, orientation, fracture asymmetry, residual width from proppant, and the like. These estimates can be based on a database or library of previously studied poroelastic pressure response (“pressure signatures”). In some embodiments, the database will include a searchable library of simulated or modeled pressure signatures (e.g.,
Combining the automated processing of acquired poroelastic pressure data with corresponding completion design characteristics allows optimization of completion design by means of machine learning techniques. Low-cost nature of the data and negligible impact on field operations means this technology may be applied on virtually all multi-pad wells. With the assistance of data analysis techniques, poroelastic pressure data may be processed in real time to provide an immediate assessment of the SRV, thus enabling decisions “on the fly” and even testing of several completion designs on a single well or pad.
Thus, the present invention provides a quick feedback mechanism for understanding geometry of induced fractures and its relationship to completion designs. This allows engineers to make changes to fracturing design (e.g., rate, proppant concentration, volume) on the fly and optimize completion in real time. Affordable, real-time, systematic fracture monitoring enabled by physics-informed data analytics and/or machine learning would considerably reduce learning time and allow faster convergence to optimum development scenarios.
According to one or more embodiments,
The poroelastic response database can include results from numerical simulations of poroelastic response of known fracture dimension, interpretation of prior field poroelastic responses, and other field fracture diagnostic data. The database can be queried using any of the essential characteristics, fracture dimension or dimensions, or even the shape of the poroelastic response curve. Integration of the poroelastic response database with machine learning capabilities (e.g., neural networks) can improve accuracy of fracture dimension predictions.
Once a match has been identified, dimensions (length, height, width, orientation, etc.) of the stimulated fractures can be estimated. Moreover, the database can be augmented or tagged with additional parameters such as best completion design parameters (injection rate, fluid type/volume, proppant type/volume, cluster/stage spacing, etc.) and geological parameters (landing depth, mechanical properties, etc.) and well performance.
With this information in hand, a completion engineer can query the database to obtain not only fracture dimensions but suggested completion parameters while considering factors such as geological parameters and well performance. Thus, the completion design is improved in real-time.
Although the systems and processes described herein have been described in detail, it should be understood that various changes, substitutions, and alterations can be made without departing from the spirit and scope of the invention as defined by the following claims. Those skilled in the art may be able to study the preferred embodiments and identify other ways to practice the invention that are not exactly as described herein. It is the intent of the inventors that variations and equivalents of the invention are within the scope of the claims while the description, abstract and drawings are not to be used to limit the scope of the invention. The invention is specifically intended to be as broad as the claims below and their equivalents.
This application is a non-provisional application which claims benefit under 35 USC § 119(e) to U.S. Provisional Application Ser. No. 62/669,065 filed May 9, 2018, entitled “Ubiquitous Real-Time Fracture Monitoring,” which is incorporated herein in its entirety. The present invention is related to similar subject matter of co-pending and commonly assigned U.S. patent application entitled “Measurement of Poroelastic Pressure Response” filed on May 9, 2018, which is hereby incorporated by reference.
Number | Name | Date | Kind |
---|---|---|---|
3933205 | Kiel | Jan 1976 | A |
4802144 | Holzhausen et al. | Jan 1989 | A |
4858130 | Widrow | Aug 1989 | A |
5005643 | Soliman et al. | Apr 1991 | A |
5360066 | Venditto et al. | Nov 1994 | A |
7114561 | Vinegar et al. | Oct 2006 | B2 |
7272973 | Craig | Sep 2007 | B2 |
7774140 | Craig | Aug 2010 | B2 |
8204727 | Dean | Jun 2012 | B2 |
8210257 | Disterhoft et al. | Jul 2012 | B2 |
8733444 | East, Jr. et al. | May 2014 | B2 |
8839873 | Johnson et al. | Sep 2014 | B2 |
20030042016 | Vinegar et al. | Mar 2003 | A1 |
20040129418 | Jee et al. | Jul 2004 | A1 |
20060102342 | East et al. | May 2006 | A1 |
20060155473 | Soliman et al. | Jul 2006 | A1 |
20070079652 | Craig | Apr 2007 | A1 |
20070235181 | Lecampion | Oct 2007 | A1 |
20090090505 | McDaniel et al. | Apr 2009 | A1 |
20100004906 | Searles | Jan 2010 | A1 |
20100250216 | Narr et al. | Sep 2010 | A1 |
20100314104 | Shokanov | Dec 2010 | A1 |
20110017458 | East, Jr. et al. | Jan 2011 | A1 |
20110067857 | Underhill et al. | Mar 2011 | A1 |
20110120712 | Todd et al. | May 2011 | A1 |
20110272147 | Beasley et al. | Nov 2011 | A1 |
20120152550 | East, Jr. | Jun 2012 | A1 |
20120168180 | Johnson et al. | Jul 2012 | A1 |
20120325462 | Roussel et al. | Dec 2012 | A1 |
20130087325 | Bartko et al. | Apr 2013 | A1 |
20130186688 | Rasmus et al. | Jul 2013 | A1 |
20130211807 | Templeton-Barrett et al. | Aug 2013 | A1 |
20130277050 | Cherian et al. | Oct 2013 | A1 |
20130298665 | Minchau | Nov 2013 | A1 |
20140048270 | Soliman et al. | Feb 2014 | A1 |
20140067353 | Shelley et al. | Mar 2014 | A1 |
20140083681 | Taylor | Mar 2014 | A1 |
20140145716 | Dirksen et al. | May 2014 | A1 |
20150075775 | Davidson et al. | Mar 2015 | A1 |
20150176394 | Roussel et al. | Jun 2015 | A1 |
20160003020 | Sharma | Jan 2016 | A1 |
20160196367 | Petukhov | Jul 2016 | A1 |
20160238736 | Guo et al. | Aug 2016 | A1 |
20160334542 | Chiu et al. | Nov 2016 | A1 |
20160357883 | Weng et al. | Dec 2016 | A1 |
20160369612 | Zha et al. | Dec 2016 | A1 |
20160370260 | Anno et al. | Dec 2016 | A1 |
20180003033 | Dawson | Jan 2018 | A1 |
20180148999 | Roussel | May 2018 | A1 |
20180149000 | Roussel | May 2018 | A1 |
20180209262 | Roussel et al. | Jul 2018 | A1 |
20190346579 | Roussel et al. | Nov 2019 | A1 |
20200003037 | Roussel | Jan 2020 | A1 |
Number | Date | Country |
---|---|---|
2163724 | Mar 2010 | EP |
20050124395 | Dec 2005 | WO |
2011022012 | Feb 2011 | WO |
2012173608 | Dec 2012 | WO |
2013008195 | Jan 2013 | WO |
2014126484 | Aug 2014 | WO |
2016175844 | Nov 2016 | WO |
20160193733 | Dec 2016 | WO |
Entry |
---|
International Search Report, PCT/US2019/031634 dated Nov. 5, 2019; 2 pgs. |
Roussel N.P., et al., Optimizing Fracture Spacing and Sequencing in Horizontal-Well Fracturing, SPE International Symposium and Exhibition on Formation Damage Control, SPE 127986, May 2011. |
Gronseth M., Determination of the Instantaneous Shut in Pressure From Hydraulic Fracturing Data and Its Reliability as a Measure of the Minimum Principal Stress, American Rock Mechanics Association, 23rd US Symposium on Rock Mechanics, pp. 183-189 (1982). |
McLennan J.D & Roegiers J.C., How Instantaneous are Instantaneous Shut-In Pressures?, SPE 57th Annual Fall Technical Conference and Exhibition, SPE 11064, Sep. 1982. |
Soliman, M.Y. et al., Methods for Enhancing Far-Field Complexity in Fracturing Operations, SPE Annual Technical Conference and Exhibition, SPE 133380, Sep. 2010. |
Song J.H. et al., Preventing Mud Losses by Wellbore Strengthening, SPE Russian Oil and Gas Technical Conference and Exhibition, SPE 101593, Oct. 2006. |
Rafiee M., et al., Hydraulic Fracturing Design and Optimization: A Modification to Zipper Frack, SPE Eastern Regional Meeting, SPE 159786, Oct. 2012. |
Waters et al., Simultaneous Hydraulic Fracturing of Adjacent Horizontal Wells in the Woodford Shale, Hydraulic Fracturing Technology Conference, SPE 119635, Jan. 2009. |
The International Search Report and the Written Opinion of the International Searching Authority of PCT/US2017/063360, dated Feb. 15, 2018. |
Manchanda, R., and M. Sharma (2013), Time Dependent Fracture Interference Effects in Pad Wells, SPE 164534 presented at the SPE Unconventional Resource Conference, The Woodlands, Texas. |
McClure, M., and D. Zoback (2013), Computational Investigation of Trends in Initial Shut-in Pressure during Multi-Stage Hydraulic Stimulation in the Barnett Shale, 47th US Rock Mechanics/Geomechanics Symposium held in San Francisco, California, ARMA 13-368. |
Manchanda, R., N.P. Roussel, and M. Sharma (2012), Factors Influencing Fracture Trajectories and Fracturing Pressure Data in a Horizontal Completion, 46th US Rock Mechanics/Geomechanics Symposium held in Chicago, Illinois, ARMA 12-633. |
Roussel, N.P., R. Manchanda, and M. Sharma (2012), Implications of Fracturing Pressure Data Recorded during a Horizontal Completion on Stage Spacing Design, SPE 152631 presented at the SPE Hydraulic Fracturing Technology Conference, The Woodlands, Texas. |
Roussel, N.P., and M. Sharma (2011), Strategies to Minimize Frac Spacing and Stimulate Natural Fractures in Horizontal Completions, SPE 146104 presented at the SPE Annual Technical Conference and Exhibition, Denver, Colorado. |
Vermylen, J., and M. Zoback (2011), Hydraulic Fracturing, Microseismic Magnitudes, and Stress Evolution in the Barnett Shale, Texas, USA, SPE 140507 presented at the SPE Hydraulic Fracturing Technology Conference, The Woodlands, Texas. |
Soliman, M.Y., L. East, and D. Adams (2008), Geomechanics Aspects of Multiple Fracturing of Horizontal and Vertical Wells, SPE Drilling and Completions, 23(3), 217-228, SPE 86992-PA. |
Far, et al., Interpretation of factures and stress anisotropy in Marcellus Shale using multicomponents seismic data, Interpreatation 2(2): SE 105-SE115, Apr. 2014. |
Hayashi, et al., Interpreatation of Hydraulic Fracturing Shut-in Curves for Tectonic Stress Measurements, Int. J. Rock Mech. Min Sci & Geomech, Abstr. vol. 26, No. 6, pp. 477-482, 1989. |
Paderin, et al., Multi-stage hydro-fracture trajectories: modelling by the SIE method, Procedia Materials Science vol. 3, 2014, pp. 1798-1803. |
International Search Report for related case, App. No. PCT/US2017/63357, dated Feb. 15, 2018. |
Daneshy, Ali—“Fracture Shadowing: A Direct Method of Determining of the Reach and Propagation Pattern of Hydraulic Fractures in Horizontal Wells”, Feb. 1-9, 2012, Society of Petroleum Engineers, Hydraulic Fracturing Technical Conference, Woodlands, TX USA; 9 pgs. |
Escobar, Freddy Humberto—“Rate-Transient Analysis for Hydraulically Fractured Vertical Oil and Gas Wells”, pp. 739-749, May 2014, vol. 9, No. 5, Asian Research Publishing Network (ARPN) Journal of Engineering and Applied Sciences, ISSN 1819-6608; 11 pgs. |
Nolte, Kenneth G., Amoco Production Co., “Determination of fracture parameters from fracturing pressure decline”, pp. 1-16, 1979, Society of Petroleum Engineers of AIME, SPE Paper 8341; 16 pgs. |
Sneddon, I.N., 1946, “The Distribution of Stress in the Neighborhood of a Crack in an Elastic Solid.” Proceedings, Royal Society of London A-187: 229-260; 32 pgs. |
Number | Date | Country | |
---|---|---|---|
20190346579 A1 | Nov 2019 | US |
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62669077 | May 2018 | US | |
62669065 | May 2018 | US |