The present disclosure relates generally to a tracer particle that may be utilized for tracking the flow of subterranean fluids (e.g., hydrocarbons and water). More specifically, the present disclosure relates to the manufacture and use of tracer particles for oil and gas exploration, ground water studies, and/or other subterranean flow analysis applications.
This section is intended to introduce the reader to various aspects of art that may be related to various aspects of the present disclosure, which are described and/or claimed below. This discussion is believed to be helpful in providing the reader with background information to facilitate a better understanding of the various aspects of the present disclosure. Accordingly, it should be understood that these statements are to be read in this light, and not as admissions of prior art.
The energy industry frequently engages in subsurface operations to explore and/or extract subterranean resources. Drilling is a process where a borehole, a small diameter hole in the ground, is drilled into the Earth's surface in order to explore and extract energy in the form of hydrocarbons and heat that lie beneath the surface. Before, during, or after the drilling process, geologists may work to determine characteristics of a subsurface formation (e.g., reservoir rock) and the surrounding area. For example, engineers and scientists may work to determine how hydrocarbons or other fluids flow within a subterranean formation. To do so, a unique marker or tracer may be introduced into the subsurface to measure and monitor reservoir characteristics.
However, the subterranean environment within the formation can be extreme in terms of temperature, pressure, acidity, and so forth. As such, certain tracers lack the chemical and physical stability to withstand the subsurface environment. Accordingly, there exists a need for specific tracers that are able to withstand downhole environments while still being relatively easy to detect.
These and other features, aspects, and advantages of the present disclosure will become better understood when the following detailed description is read with reference to the accompanying drawings in which like characters represent like parts throughout the drawings, wherein:
One or more specific embodiments of the present disclosure will be described below. In an effort to provide a concise description of these embodiments, all features of an actual implementation may not be described in the specification. It should be appreciated that in the development of any such actual implementation, as in any engineering or design project, numerous implementation-specific decisions must be made to achieve the developers' specific goals, such as compliance with systems-related and business-related constraints, which may vary from one implementation to another. Moreover, it should be appreciated that such a development effort might be complex and time consuming, but would nevertheless be a routine undertaking of design, fabrication, and manufacture for those of ordinary skill having the benefit of this disclosure.
When introducing elements of various embodiments of the present disclosure, the articles “a,” “an,” “the,” and “said” are intended to mean that there are one or more elements. The terms “comprising,” “including,” and “having” are intended to be inclusive and mean that there may be additional elements other than the listed elements.
Embodiments of the present disclosure are directed toward a tracer particle (e.g., a tracer particle) that may be utilized to determine flow characteristics of fluids (e.g., hydrocarbons, water, natural gas) within a subterranean formation. More specifically, the disclosed tracer particles are able to withstand subterranean environments, which may be high-pressure, high-temperature, high-salt, acidic, or any combination thereof. As discussed below, the tracer particles include negatively-charged oligonucleotides that are coated with positively-charged polymers. A silica core (e.g., a silica nanoparticle) is formed around these polymer-coated oligonucleotides, such that the polymer-coated oligonucleotides are loaded within and/or on the surface of the formed silica cores. In certain embodiments, one or more additional inorganic layers having one or more metal compounds or metal-based nanoparticles (e.g., metal salts, metal nanoparticles, quantum dots) are disposed over the silica particles to provide enhanced methods for protecting, detecting, and/or extracting the tracer particle. In certain embodiments, an outer polymer layer is disposed over the inorganic layers to further enhance chemical stability and improve the solubility of the tracer particles (e.g., stability of the tracer particle in suspension).
Turning to the drawings,
For the illustrated embodiment, the tracer particle injection system introduces tracer particles into the fluid being injected into the subsurface formation. As discussed below, each of the tracer particles includes at least one oligonucleotide, and the sequence of the oligonucleotide may indicate the identity of a tracer particle. The tracer particles may be dissolved or suspended in a suitable fluid (e.g., a water-based fluid, an organic-based fluid). For applications where the tracer is measuring or monitoring flow, the tracer is injected downhole and at least a portion of the injected tracer particles return with the recovered fluid. The tracer particle detection and/or extraction systems use one or more physical properties (e.g., magnetic properties and optical properties) of the tracer particles to detect and isolate the tracer particles from the remainder of the recovered fluid. For example, the tracer particle extraction/detection system may include centrifuges, magnets, optical excitation and detection devices (e.g., fluorescence microscopes), or any other suitable devices that may be used to detect and/or isolate the tracer particles from the recovered fluid. In some cases, the tracer particles may also be detected in-situ downhole. For example, the presence of the tracer particles may be detected downhole using magnetic sensor, optical excitation/detection devices, or other suitable techniques. Furthermore, while the tracer particle is described as being included in a fluid that is injected into a subsurface formation, it should be noted that the tracer particle may be included in proppant, which may also be introduced to the subsurface formation. For instance, the tracer particle may be included with proppant, which may be added to a fluid (e.g., fracking fluid) before the fluid is introduced into the subsurface formation. Accordingly, the tracer particle may be utilized as a proppant tracer.
After isolation, the recovered tracer particles may advance to the tracer particle analysis system. The tracer particle analysis system includes suitable devices to enable the digestion of the tracer particles to release oligonucleotides from the structure of the tracer particles, as well as suitable devices to analyze the sequence of these released oligonucleotides. For instance, the tracer particle analysis system may include quantitative PCR (qPCR) instruments, deoxyribonucleic acid (DNA) amplifiers, or any other suitable equipment utilized to process or sequence DNA or ribonucleic acid (RNA) (e.g., sequencers, spectrometers, flow cytometers, gel electrophoresis equipment). The tracer particle analysis system may also include one or more computing devices. Since the tracer particle analysis system is capable of determining the sequence of oligonucleotides of tracer particles, the tracer particle analysis system can determine which tracer particles were recovered when multiple tracer particles (e.g., with different oligonucleotide sequences) are injected at different points in the subsurface formation. As such, based on information related to the injection of the tracer particles (e.g., concentration, flow rate, time), and based on the identity of the recovered tracer particles determined from oligonucleotide sequencing and/or other identification methods, the subterranean resource exploration and extraction system 10 can be used to determine information regarding the flow of subsurface fluids (e.g., flow paths, flow rates, flow loss) within the subsurface formation.
Bearing this in mind, it should be noted that the subsurface formation or subsurface fluids may have certain properties or characteristics that may damage oligonucleotides. For example, the environment of the subsurface formation or the subsurface fluids may denature nucleic acids or otherwise damage oligonucleotides. More specifically, the subsurface environment may be high-temperature (e.g., between 40° C. and 200° C.), high-pressure, high-salts, highly acidic, or a combination thereof. Each of these factors (e.g., temperature, pressure, salt, acidity), alone or in combination, may damage oligonucleotides and nanoparticles. As discussed herein, the disclosed tracer particle design includes one or more features that protect the oligonucleotides from being released or degrading under downhole conditions.
Before proceeding to discuss a process for performing the first synthetic step 54 and the second synthetic step 56, it should be noted that, while the present disclosure generally describes using negatively-charged oligonucleotides 42 and positively-charged polymers (e.g., to produce polymer-coated oligomers 44), in other embodiments, other polymers may be utilized. For example, in other embodiments, uncharged (e.g., neutral) or negatively-charged polymers may be utilized instead. As another example, in some embodiments, the charge of the oligonucleotides may be negative relative to the polymer, such as a partial negative charge that may occur for chemical species having at least one dipole moment. As yet another example, the oligonucleotides and the polymer may form hydrogen bonds. For instance, in one embodiment, the oligonucleotides may be hydrogen bond donors, and the polymer may be a hydrogen bond acceptor. In another embodiment, the polymer may be a hydrogen bond donor, and the oligonucleotides may be hydrogen bond acceptors.
For the embodiment of the process 100 illustrated in
When the polymer-coated oligomers 44 are combined with the silane, the first intermediate particle 60 is formed, in which the polymer-coated oligomers 44 are integrated into the volume of, and/or onto the surface of, the silica core 46. For example, the condensation of the silane may produce silica, which forms the silica core 46 of the first intermediate particle 60 from the complexes. The first intermediate particle 60 may include varying amounts of the oligonucleotides 42. The size of the first intermediate particle 60 depends at least in part on the reaction time, as well as the amounts of silane, polymer-coated oligomers 44, and surfactants utilized. For example, the relatively higher the amounts of silane and polymer used, as well as the longer the reaction is allowed to take place, the larger the intermediate particles 60 will be. In certain embodiments, ammonia hydroxide solution (28%) may be added into the reaction to catalyze the condensation of silane. The size of the first intermediate particle 60 may also depend at least in part on the amount of water used when performing the reaction. In certain embodiments, the first intermediate particle 60 is generally between 45 nanometers (nm) and 100 nm in diameter.
Returning briefly to
For the embodiment of the process 100 illustrated in
For the embodiment of the process 100 illustrated in
In certain embodiments, the metal-bearing layer 48 may additionally or alternatively include nanoparticles having one or more metals or metal-containing compounds, such as magnetic nanoparticles and/or quantum dot nanoparticles. In certain embodiments, these nanoparticles may be formed in situ at the surface of the first intermediate particle 60, similar to the metal salts discussed above, while in other embodiments, the nanoparticles may be separately formed and loaded onto the surface of the first intermediate particle 60. For example, in certain embodiments, the metal-bearing layer 48 may include one or more magnetic nanoparticles, such as metal ferrites having the formula MFe2O4, where M is iron (Fe2+), manganese (Mn2+), cobalt (Co2+), nickel (Ni2+), zinc (Zn2+), or copper (Cu2+). By including a magnetic nanoparticle in the metal-bearing layer 48, the resulting tracer particle 40 may be more easily recovered from the fluid that has traversed the subsurface formation using magnetic fields.
In certain embodiments, the metal-bearing layer 48 may additionally or alternatively include one or more nanoparticles that are quantum dots. Examples of quantum dots include, but are not limited to: cadmium sulfide (CdS), cadmium selenide (CdSe), zinc sulfide (ZnS) and zinc selenide (ZnSe), or any combination thereof. It may be appreciated that, while quantum dots are electrically classified as semiconductors, they are described herein as metal-containing, in that the quantum dots include at least one metal element (e.g., Cd, Zn). Utilizing quantum dots in the metal-bearing layer 48 may enable the resulting tracer particles 40 to be easily detected on drilling site in a particular volume of the recovered fluid using fluorescence analysis equipment, and then additional techniques can be applied to isolate the tracer particles 40 from the particular volume. Additionally, in certain embodiments, different quantum dots can be included in different tracer particles 40 that are used in combination within the subsurface formation, and the recovered fluid may be analyzed using fluorescence microscopy to quickly determine which of the different tracer particles are present in a particular volume of the recovered fluid. It is presently recognized that this optical analysis can provide more rapid preliminary identification of tracer particles than oligonucleotide sequencing.
For the embodiment of the process 100 illustrated in
Returning to
For the embodiment of the process 140 illustrated in
For the embodiment of the process 140 illustrated in
For the embodiment of the process 140 illustrated in
Returning to
After being synthesized, the tracer particles 40 may be dispersed into a fluid, such as solvent or combination of solvents, including, but not limited to a hydrophilic solvent (or solvents), a hydrophobic solvent (or solvents), or a combination thereof. The solution that includes that solvent(s) and the tracer particles 40 may be injected into subsurface formations, for example, using a pump. After the tracer particles 40 have been in the formation for a desired amount of time (e.g., several days, weeks, or months), water/oil samples can be collected at a production well. The oligonucleotides 42 included in the tracer particles 40 may be extracted from samples, and the oligonucleotides may be analyzed using techniques such as, but not limited to, qPCR and next-generation sequencing (NGS).
As described in detail above, present embodiments include a tracer particle that may be utilized to determine information regarding the flow of fluids (e.g., hydrocarbons or water) in a subsurface formation. The tracer particle includes oligonucleotides that may be recovered by digesting the tracer particles and then sequenced to enable positive identification of the tracer particle. The tracer particle includes complexes of oligonucleotides and polymers coated with one or more inorganic layers, such as a silica layer and a metal-bearing layer having metal salts, magnetic nanoparticles, and/or quantum dots. Additionally, in certain embodiments, the tracer particles include an outer polymer layer that further protects the oligonucleotides and enhances the solubility of the tracer particle in a particular hydrophobic or hydrophilic fluid for injection. The various and multiple layers of the tracer particle protect the oligonucleotides from degrading (e.g., denaturing) while in high-pressure conditions, high-temperature conditions, and/or acidic conditions, each of which may be present in the subsurface formation. Accordingly, the present embodiments enable robust tracer particles to be synthesized, injected with a fluid into a subsurface formation, recovered from the fluid, and characterized for positive identification.
This written description uses examples to disclose the present embodiments, including the best mode, and also to enable any person skilled in the art to practice the present embodiments, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the present embodiments is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal language of the claims.
This application claims priority to U.S. Provisional Application No. 63/317,217, entitled “OLIGONUCLEOTIDE-CONTAINING TRACER PARTICLES FOR SUBTERRANEAN APPLICATIONS,” filed Mar. 7, 2022, the disclosure of which is incorporated by reference herein in its entirety for all purposes.
Number | Name | Date | Kind |
---|---|---|---|
5929437 | Elliott et al. | Jul 1999 | A |
6543535 | Converse et al. | Apr 2003 | B2 |
6630947 | Lieberman et al. | Oct 2003 | B1 |
6645769 | Tayebi et al. | Nov 2003 | B2 |
6702023 | Harris et al. | Mar 2004 | B1 |
7032662 | Malone et al. | Apr 2006 | B2 |
7196040 | Health et al. | Mar 2007 | B2 |
7287590 | Sullivan et al. | Oct 2007 | B1 |
7347260 | Ferguson et al. | Mar 2008 | B2 |
7431087 | Sullivan et al. | Oct 2008 | B2 |
8053744 | Bortolin | Nov 2011 | B2 |
8596354 | Hartshorne et al. | Dec 2013 | B2 |
8703493 | Bronchetti et al. | Apr 2014 | B2 |
8877506 | Roberts et al. | Nov 2014 | B2 |
9023650 | Farquar et al. | May 2015 | B2 |
9194226 | Blair | Nov 2015 | B2 |
9206683 | Blair et al. | Dec 2015 | B2 |
9267371 | Blair et al. | Feb 2016 | B2 |
9290689 | Lafitte | Mar 2016 | B2 |
9290810 | Farquar et al. | Mar 2016 | B2 |
9303497 | Matherly et al. | Apr 2016 | B2 |
9309555 | Swartz et al. | Apr 2016 | B2 |
9322056 | McCann | Apr 2016 | B2 |
9410934 | Robinson et al. | Aug 2016 | B2 |
9428792 | Mercolino et al. | Aug 2016 | B2 |
10961444 | Bestaoui-Spurr | Mar 2021 | B1 |
20050042604 | Tong et al. | Feb 2005 | A1 |
20060223160 | Vanzin | Oct 2006 | A1 |
20080070809 | Sullivan et al. | Mar 2008 | A1 |
20080268431 | Choy et al. | Oct 2008 | A1 |
20100015612 | Pelham et al. | Jan 2010 | A1 |
20110171749 | Alocilja et al. | Jul 2011 | A1 |
20110214488 | Rose et al. | Sep 2011 | A1 |
20130032333 | Freese et al. | Feb 2013 | A1 |
20130210018 | Garnett | Aug 2013 | A1 |
20140262247 | Duenckel et al. | Sep 2014 | A1 |
20140303895 | Dreyfus et al. | Oct 2014 | A1 |
20150041406 | Xiao et al. | Feb 2015 | A1 |
20150284810 | Knight et al. | Oct 2015 | A1 |
20150292308 | Conway | Oct 2015 | A1 |
20150322776 | Blair et al. | Nov 2015 | A1 |
20150345688 | Kersey et al. | Dec 2015 | A1 |
20160010454 | Sira et al. | Jan 2016 | A1 |
20160075941 | Duenckel et al. | Mar 2016 | A1 |
20160097750 | Van Herzen et al. | Apr 2016 | A1 |
20160115785 | Blair et al. | Apr 2016 | A1 |
20160137904 | Drake et al. | May 2016 | A1 |
20160146775 | Xiao et al. | May 2016 | A1 |
20160160269 | McCann et al. | Jun 2016 | A1 |
20160186041 | Bennetzen et al. | Jun 2016 | A1 |
20160272882 | Stray | Sep 2016 | A1 |
20160290983 | Kmiecik et al. | Oct 2016 | A1 |
20160340569 | Belcher | Nov 2016 | A1 |
20170369769 | Burks et al. | Dec 2017 | A1 |
20170370213 | Knight et al. | Dec 2017 | A1 |
20180003690 | Summers et al. | Jan 2018 | A1 |
20180171392 | McCann et al. | Jun 2018 | A1 |
20210130681 | Yamani et al. | May 2021 | A1 |
Number | Date | Country |
---|---|---|
112275226 | Jan 2021 | CN |
2530970 | Apr 2016 | GB |
2015193292 | Dec 2015 | WO |
2016016335 | Feb 2016 | WO |
2016169904 | Oct 2016 | WO |
2016187541 | Nov 2016 | WO |
Entry |
---|
Gediminas Mikutis, et al., “Silica-Encapsulated DNA-Based Tracers for Aquifer Characterization”, Environmental Science & Technology, ACS Publications, 2018 American Chemical Society, Environ. Sci. Technol. 2018, 52, 12142-12152, Zurich, Switzerland, 11 pgs. |
Dietmar Knopp, et al., “Review: Bioanalytical applications of biomolecule-functionalized nanometer-sized doped silica particles”, Analytica Chimica Acta 647 (2009) 14-30, Munich, Germany, 17 pgs. |
A. Baker, et al., “Polyethylenimine (PEI) is a simple, inexpensive and effective reagent for condensing and linking plasmid DNA to adenovirus for gene delivery”, Gene Therapy (1997) 4, 773-782, 1997 Stockton Press, Edgbaston, UK, 10 pgs. |
Se Won Bae, et al., “Fluorescent dye-doped silica nanoparticles: new tools bioapplications”, Chem. Commun., 2012, 48, 2270-2282, www.rsc.org/chemcomm, The Royal Society of Chemistry 2012, 13 pgs. |
Christina A. Bauer, et al., “A convenient, bio-inspired approach to the synthesis of multi-functional, stable fluorescent silica nanoparticles using ply(ethylene-imine)”, Nanoscale Paper, Nanoscale, 2017, 9, 6509, Royal Society of Chemistry 2017, 12 pgs. |
Chen-Wen Lu, et al., “Bifunctional Magnetic Silica Nanoparticles for Highly Efficient Human Stem Cell Labeling”, Nano Letters 2007 vol. 7, No. 1, 149-154, Published on Web Dec. 6, 2006, 6 pgs. |
Tiia-Maaria Ketola, et al., “Independent versus Cooperative Binding in Polyethylenimine-DNA and Ply(L-lysine)-DNA Polyplexes”, NIH Public Access, J Phys Chem B. Sep. 12, 2013; 117(36): 10405-10413, 2013 American Chemical Society, 21 pgs. |
Juying Lei, et al., “Superbright Multifluorescent Core-Shell Mesoporous Nanospheres as Trackable Transport Carrier for Drug”, ACSNANO, vol. 5, No. 5, 3447-3455, 2011, Shanghai, Republic of China, www.acsnano.org, 9 pgs. |
R Kircheis, et al., “Polyethylenimine/DNA compleses shielded by transferrin target gene expression to tumors after systemic application”, Vienna, Austria, Gene Therapy (2001) 8, 28-40, 2001 Nature Publishing Group, 13 pgs. |
Yunhua Yang, et al., “Preparation of Fluorescent SiO2 Particles with Single CdTe Nanocrystal Cores by the Reverse Microemulsion Method”, Advanced Materials, 2005, 17, 2354-2357, 2008 WILEY-VCH Verlag GmbH & Co. KgaA, Weinheim, 4 pgs. |
Xiaojun Zhao, et al., “Development of Organic-Dye-Doped Silica Nanoparticles in a Reverse Microemulsion”, Advanced Materials, Adv. Mater. 2004, 16, No. 2, Jan. 16, 2004, http://www.advmat.de, 2004 WILEY-VCH Verlag GmbhH & Co. KGaA, Weinheim, 173-176, 4 pgs. |
PCT International Search Report and Written Opinion; Application No. PCT/US2023/014740; dated May 24, 2023; 12 pages. |
Number | Date | Country | |
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63317217 | Mar 2022 | US |