An automated device for characterizing fluid-solid systems.

An automated apparatus for fluid-solid systems with a processor-controlled pressure and flow system addresses manual operation inefficiencies, enhancing data resolution and efficiency in studying fluid-solid interactions.

JP7767459B2Active Publication Date: 2025-11-11UNIVERSITY OF WYOMING
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Patent Information

Application Number
JP2023569813
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-05-10
Filing Date
2022-05-10
Publication Date
2025-11-11
Estimated Expiration
2042-05-10

AI Technical Summary

Technical Problem

Existing devices for studying fluid-solid interactions are manually operated, leading to idle periods and suboptimal data generation, limiting their full potential and efficiency.

Method used

An automated apparatus with a core holder, pressure sensor, mass comparator, and a processor-controlled pressure and flow control system, enabling automatic adjustment of temperature and pressure in fluid-solid systems for enhanced data collection and analysis.

Benefits of technology

The apparatus achieves increased data resolution and time efficiency, allowing for the generation of thermodynamic data characteristics of fluid-solid systems with improved automation and reduced idle time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The disclosed embodiments generally relate to an apparatus, system, and method for characterizing a fluid-solid system. In one embodiment, the method includes placing a porous rock sample in a core holder, contacting the porous rock sample with a fluid to create a fluid-solid system inside the core holder, automatically adjusting the temperature and / or pressure of the fluid-solid system to a preselected value via a processor and at least one automatic valve, monitoring the fluid-solid system for equilibrium, recording values ​​for the temperature, pressure, and / or mass of the fluid-solid system, performing actions based on the recorded data, and repeating the adjusting, monitoring, recording, and performing operations to produce a thermodynamic data characteristic of the fluid-solid system. In one example, the performing operation includes analyzing the pressure signal for stationarity by performing an Augmented Dickey-Fuller (ADF) test and / or a Kwiatkowski-Phillips-Schmidt-Sinn (KPSS) test.
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Description

[Technical Field]

[0001] FIELD OF THE DISCLOSURE Embodiments of the present disclosure generally relate to devices, systems, and methods for studying interactions between fluids and solids and for characterizing fluid-solid systems. [Background technology]

[0002] Interactions between fluids and solids can be studied through recording the mass and / or composition of a fluid as a function of time (time series data). The term gravimetric is used for adsorption / desorption and capillary condensation phenomena, where the mass of the fluid indicates the phase behavior of the fluid. U.S. Pat. No. 10,302,540 discloses an apparatus for studying fluid-solid systems. One embodiment of the apparatus of U.S. Pat. No. 10,302,540 is shown in FIG. 1. The apparatus shown in FIG. 1 is generally operated manually, as each point of pressure change must be determined and manually implemented through human interaction. This manual nature of the apparatus results in the apparatus being idle for long periods of time, and therefore the full potential of the apparatus is not fully utilized.

[0003] There is a need for new and improved devices, systems, and methods for studying the interactions between fluids and solids and for characterizing fluid-solid systems. Summary of the Invention

[0004] FIELD OF THE DISCLOSURE Embodiments of the present disclosure generally relate to devices, systems, and methods for studying interactions between fluids and solids and for characterizing fluid-solid systems.

[0005] In one embodiment, an apparatus for characterizing a fluid-solid system is provided. The apparatus includes a core holder and a pressure sensor coupled to the core holder, the pressure sensor configured to sense pressure within the core holder and produce a pressure signal. The apparatus further includes a mass comparator operably connected to an interior of the core holder. The apparatus further includes a pressure and flow control system comprising a pressure source in selective fluid communication with the core holder, an automatic pressure valve configured to control the pressure within the core holder, and a processor configured to control the automatic pressure valve based at least in part on the pressure signal and to log data from the pressure sensor and the mass comparator.

[0006] In another embodiment, a method for characterizing a fluid-solid system is provided. The method includes: (a) contacting a porous rock sample disposed within a core holder with a fluid to form a fluid-solid system inside the core holder; and (b) automatically adjusting, via a processor and at least one automatic valve, the temperature of the fluid-solid system, the pressure of the fluid-solid system, or both, to preselected values. The method further includes (c) monitoring the fluid-solid system for equilibrium. The method further includes (d) recording values ​​for the temperature, pressure, mass, or a combination thereof of the fluid-solid system to provide recorded data. The method further includes (e) performing an action based on the recorded data. The method further includes (f) repeating operations (b) through (e) to generate thermodynamic data characteristics of the fluid-solid system.

[0007] In another embodiment, a method for characterizing a fluid-solid system includes (a) introducing a fluid with a porous rock sample disposed within a core holder to form a fluid-solid system inside the core holder, the method further including (b) automatically adjusting, via a processor and at least one automatic valve, a pressure of the fluid-solid system to a preselected value, wherein automatically adjusting includes performing a series of short valve openings to generate a series of data and analyzing the series of data to calculate a calculated time period. The method further includes (c) monitoring the fluid-solid system for equilibrium with a pressure sensor; (d) recording values ​​for pressure, mass, or a combination thereof of the fluid-solid system to provide recorded data; and analyzing the pressure signal for stationarity by performing an Augmented Dickey-Fuller (ADF) test, a Kwiatkowski-Phillips-Schmidt-Shin (KPSS) test, or both, where the pressure signal corresponds to the pressure in the core holder. The method further includes (e) performing an action based on the recorded data. The method further includes (f) repeating one or more of operations (b) through (e) to generate thermodynamic data characteristic of the fluid-solid system.

[0008] So that the above-recited features of the present disclosure may be understood in detail, a more particular description of the present disclosure briefly summarized above can be made by reference to implementations, some of which are illustrated in the accompanying drawings. It should be noted, however, that the accompanying drawings illustrate only exemplary implementations and therefore should not be considered limiting of its scope, as other equally effective embodiments may be recognized. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is a schematic diagram of one embodiment of an apparatus for characterizing a fluid-solid system, in accordance with at least one embodiment of the present disclosure. [Figure 2] FIG. 1 illustrates an example of an exemplary automated apparatus for characterizing a fluid-solid system, in accordance with at least one embodiment of the present disclosure. [Figure 3] FIG. 1 is an elevational schematic diagram of an exemplary automated apparatus for characterizing a fluid-solid system, in accordance with at least one embodiment of the present disclosure. [Figure 4] FIG. 3 is a schematic top view of the exemplary automated device shown in FIG. 2, in accordance with at least one embodiment of the present disclosure. [Figure 5] FIG. 1 is an elevational schematic diagram of an exemplary automated apparatus for characterizing a fluid-solid system, in accordance with at least one embodiment of the present disclosure. [Figure 6] FIG. 6 is a top schematic diagram of the exemplary apparatus shown in FIG. 5, including the independence of each core holder and integration with a gas chromatograph, in accordance with at least one embodiment of the present disclosure. [Figure 7] FIG. 1 illustrates an example of an activity diagram for an automated algorithm, in accordance with at least one embodiment of the present disclosure. [Figure 8] FIG. 1 shows a plot (right panel) illustrating the increased data resolution and time efficiency achieved via an exemplary automated device versus a plot (left panel) using a non-automated device. [Figure 9] FIG. 1 shows a comparison of a previously published n-butane adsorption isotherm at 5.4° C. overlaid with an n-butane adsorption isotherm at the same conditions produced via an exemplary automated device, in accordance with at least one embodiment of the present disclosure. [Figure 10] FIG. 10 shows a comparison of a previously published slope dataset of n-butane adsorption isotherm versus pressure at 5.4C overlaid with a similar dataset produced via an exemplary automated device, in accordance with at least one embodiment of the present disclosure. [Figure 11A]FIG. 1 shows isotherm data for n-butane in MCM-41 (6 nm pore size) at different temperatures produced via an exemplary automated apparatus, in accordance with at least one embodiment of the present disclosure. [Figure 11B] FIG. 1 shows isotherm data for n-butane in MCM-41 (8 nm pore size) at different temperatures produced via an exemplary automated apparatus, in accordance with at least one embodiment of the present disclosure. [Figure 12] FIG. 1 shows isotherm data for iso-butane in MCM-41 at two different temperatures produced via an exemplary automated apparatus, in accordance with at least one embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0010] In the following description, numerous specific details of the devices, systems, and methods of the present disclosure are set forth in order to provide a thorough explanation of the precise nature of the present disclosure. However, it will be apparent to those skilled in the art that the present disclosure may be practiced without these specific details.

[0011] Embodiments of the present disclosure generally relate to devices, systems, and methods for studying interactions between fluids and solids and for characterizing fluid-solid systems. The devices, systems, and methods for characterizing fluid-solid systems can be used to study phase interactions within a sample. The sample can be static or dynamic and comprised of a fluid (e.g., gas and / or liquid) and a solid aggregate. Phase interactions can include adsorption, desorption, and capillary condensation and can be analyzed gravimetrically via recording of fluid mass and / or composition as a function of time. The effects of environmental parameters, such as temperature and pressure, on the above-mentioned interactions can also be studied and characterized through the use of the devices, systems, and methods described herein.

[0012] Generally, the terms and phrases used herein have their art-recognized meanings, which can be found by reference to standard texts, journal references, and contexts known to those skilled in the art. The following definitions are provided to clarify the specific use of terms and phrases in the context of this disclosure.

[0013] As used herein, the term "environmental chamber" refers to an enclosure in which environmental parameters, including temperature, pressure, and humidity, can be controlled. Environmental chambers can be used to test specific conditions on samples or experiments or to store sensitive materials. Therefore, environmental chambers can vary greatly in size and equipment. In one embodiment, an "environmental chamber" houses a sample holder equipped with a pressure transducer and a differential mass balance (or mass comparator) that feeds measurement data to a data acquisition box. In some embodiments, the environmental chamber functions as a thermostat capable of temperature control to ±0.1 K.

[0014] As used herein, the term "core holder" refers to a device for holding a porous sample. Core holders can be used for fluid permeability experiments. Conditions within the core holder can be measured and applied to the sample. In some embodiments, pressure within the core holder can be measured using a pressure sensor. In at least one embodiment, changes in mass within the core holder can be measured via a mass comparator.

[0015] As used herein, the term "selective fluid communication" refers to an arrangement of two or more elements of a device such that a fluid can be selectively transferred to, past, through, or from one object to another. For example, two elements are in selective fluid communication with each other if a fluid flow path including one or more valves is provided between the two elements. Thus, the flow path can be selectively opened or closed, for example, via operation of one or more valves.

[0016] The term "stationarity" as used herein refers to the degree to which a time series is stationary. A time series can be stationary if the mean and variance of the distribution of the time series remain unchanged over a period of time. A time series is not stationary if there is a trend in the mean. Stationarity can be assessed by performing one or more hypothesis tests, including, but not limited to, the Augmented Dickey-Fuller (ADF) test, the Zivot-Andrews test, and the Kwiatkowski-Phillips-Schmidt-Sinn (KPSS) test. As used herein, the stationarity of a pressure signal indicating pressure within a core holder is analyzed using an automated algorithm. In the algorithm, the Augmented ADF test tests the null hypothesis that there is a unit root in the pressure data, while the KPSS test examines whether the time series remains stable around the mean or whether there is a unit root. The level of stationarity is negatively correlated to the value assigned to the ADF test. The more negative the number, the stronger the rejection of the hypothesis of the existence of a unit root, and the more stationary the measurement data.

[0017] As used herein, the term "atmospheric purge mechanism" refers to a mechanism that replaces atmospheric air contained in a closed system with a purge gas. In some embodiments, the purge gas may include a non-reactive gas. Thus, in some embodiments, the atmospheric purge mechanism may create an oxygen-deficient and non-flammable environment. The non-reactive gas may be an inert gas and thus may be used to prevent unwanted chemical reactions from occurring. Any suitable non-reactive gas may be used. Illustrative, but non-limiting, examples of non-reactive gases used for the purge gas include nitrogen, argon, helium, neon, krypton, xenon, argon, carbon dioxide, and combinations thereof. The atmospheric purge mechanism may include flushing each system with a non-reactive purge gas. As used herein, the non-reactive gas is introduced into the environmental chamber via an automatic purge valve.

[0018] As used herein, the term "porous rock sample" refers to a specimen representing a rock material containing microcavities. The microcavities of a porous rock sample may contain liquid and / or gas. The size, structure, and distribution of these cavities determine the porosity of a given sample. In some embodiments, the porous rock sample may be a nanoporous material. Nanoporous materials may include a framework or matrix with a structure of pores, each of which is approximately 100 nm or smaller, and may be subdivided into three categories: microporous (pore sizes between approximately 0.2 nm and approximately 2 nm), mesoporous (pore sizes between approximately 2 nm and approximately 50 nm), and macroporous (pore sizes between approximately 50 nm and approximately 1000 nm). In some embodiments, the porous rock sample may include a surface-modified silica MCM-41 sample. The microcavities of the surface-modified silica MCM-41 sample may contain n-butane and iso-butane, which serve as model fluids.

[0019] As used herein, the term "fluid-solid system" refers to a system that includes at least one liquid phase and at least one solid phase. The phase interactions of a fluid-solid system can be dynamic or static. The phase interactions of a fluid-solid system can be characterized by structural mechanics, fluid dynamics, and / or thermodynamics. In some examples, the fluid-solid system includes a porous rock sample and a fluid contained within a core holder.

[0020] The term "coupled," as used herein, including its various forms such as "operably coupled," "couple," or "couplable," refers to the joining of two components or parts, either directly or indirectly, and includes a direct or indirect structural or electrical coupling, connection, or attachment, or an adaptation or capability for such a direct or indirect structural, electrical, or operative coupling, connection, or attachment, including integrally formed components and components coupled via or through another component. An indirect coupling may involve coupling through an intermediate component or part. Coupled also includes components that are remotely coupled, as well as those coupled by a transmitter and receiver.

[0021] As used herein, the term "capillary condensation" refers to a process in which a fluid in the gas phase adsorbs into a porous medium, building up multiple layers of adsorbed gas phase, and at certain temperatures and pressures, nucleating into a condensed phase that fills the pores of the porous medium. The terms "capillary condensation" and "nanocondensation" are used interchangeably unless the context indicates otherwise.

[0022] FIG. 1 illustrates the device disclosed in U.S. Pat. No. 10,302,540, which is incorporated by reference in its entirety to the extent not inconsistent with the disclosure in this application. The device illustrated in FIG. 1 is manually operated, as each point of pressure change must be determined and manually performed through human interaction. This manual nature of the device causes the device to be idle for long periods of time, and therefore the full potential of the device is not fully utilized. Furthermore, the amount of data (and final output resolution) generated by manual operation is much lower than that which can be achieved by an automated system. Table 1 provides a list of some of the components of the device illustrated in FIG. 1. TIFF0007767459000001.tif67170

[0023] The devices disclosed herein, in contrast, can include various additional elements that can enable automation, among other advantages. For example, and in addition to one or more of components (a)-(s), the devices described herein can include one or more of an electrically operated valve, a remote control unit, and an advanced computer algorithm. For clarity, and in the devices shown in Figures 2-6, one or more of components (a)-(s) can be utilized even if one or more of such components are not shown. The devices described herein can be gravimetric devices.

[0024] In addition to automation, the disclosed apparatus can maintain various fluids at specific temperatures (e.g., temperatures ranging from about −100° C. to about 232° C.) and pressures (e.g., pressures ranging from vacuum to about 10,000 psi). Furthermore, the apparatus described herein can have the ability to simulate overburden pressure. Thus, the disclosed apparatus can be used to study interactions between fluids and solids, including adsorption, desorption, and nanocondensation (also known as “capillary condensation”). In particular, the disclosed apparatus can be used to reconstitute reservoir conditions during capillary condensation measurements. Furthermore, the disclosed apparatus can be used to achieve the temperatures and pressures necessary to study single-component fluids with various adsorbent pore types. Figure 2 shows an exemplary setup for the disclosed apparatus.

[0025] Figure 2 shows an example of an apparatus 20 for characterizing a fluid-solid system according to at least one embodiment of the present disclosure. As mentioned above, one or more components of the apparatus shown in Figure 1 may be utilized with the apparatus of the present disclosure. A brief description of such components shown in Figure 1 is provided below.

[0026] A balance is used to measure the amount of adsorbed or desorbed fluid. According to some embodiments, a mass comparator (a) can be used instead of a traditional balance to enable high resolution and large maximum loads for studying capillary condensation at reservoir conditions. However, traditional balances have insufficient capacity and resolution. Unlike traditional balances, mass comparators weigh by difference, which allows high resolution with large maximum loads. For example, a Mettler Toledo XPE505C mass comparator has a resolution of 0.01 milligrams even at its maximum load of 520 grams. Other suitable mass comparators and balances are contemplated. The mass comparator (a) can be placed on a vibration isolation table (b).

[0027] The disclosed apparatus can accommodate a core and core holder (c) with a mass up to the maximum load of the mass comparator (a) used in the apparatus. For example, when the apparatus uses a Mettler Toledo XPE505C mass comparator, the apparatus can accommodate a core and core holder with a mass of up to approximately 520 g. Other suitable mass comparators can accommodate other suitable masses. Fluid lines, which may be flexible, can be used to introduce fluid into the core holder (c) and can allow forced flow of fluid through the core holder (c). Thus, and in some embodiments, the apparatus described herein can enable the investigation of both single-component and multi-component fluids in both static and flow-through measurements.

[0028] Various types of core holders (c) can be used with the apparatus described herein. Suitable core holders include those utilized in petroleum engineering research, including those capable of sustaining high-pressure, high-temperature reservoir condition experiments. Suitable core holders can also be modified for the application of overburden stress.

[0029] Illustrative, but non-limiting, examples of core holders include those used for the study of simple fluids in idealized sorbents, as illustrated in Figures 2-8 of U.S. Pat. No. 10,302,540. A first type of core holder includes a body, end caps, a hanger plate, a filter, a compression fitting, and a modified compression spring. The core holder body may be made of titanium, stainless steel, carbon fiber, or other suitable materials. The core holder body may have an inner diameter in the range of about 0.1 to about 2 inches, such as about 0.5 to about 1.5 inches, such as about 0.75 inches; an outer diameter in the range of about 0.1 to about 2 inches, such as about 0.5 to about 1.5 inches, such as about 1.0 inches; and a length in the range of about 4 to about 10 inches, such as about 4 to about 7 inches, such as about 4 inches. Other dimensions are contemplated.

[0030] The end caps of the core holder may be made from titanium, stainless steel, or other suitable materials. The dimensions of the various elements of the end cap, such as the curvature of the inner diameter, the outer diameter, the diameter of the port for the compression fitting, the inner diameter, and the length of the threads, may include those commonly used. For example, the curvature of the inner diameter of the end cap may be in the range of about 0 in. to about 0.05 in., such as in the range of about 0 in. to about 0.03 in., such as about 0.03 in. The outer diameter of the end cap may be in the range of about 0.1 in. to about 0.2 in., such as in the range of about 0.5 in. to about 1.5 in., such as about 0.746 in. The diameter of the port for the compression fitting in the end cap may be in the range of about 0.015 in. to about 0.5 in., such as in the range of about 0.05 in. to about 0.25 in., such as about 0.242 in. The inner diameter of the end cap can be in the range of about 0.1 in. to about 2 in., such as in the range of about 0.5 in. to 1.5 in., such as about 0.600 in. The thread length of the end cap can be in the range of about 0.5 in. to about 3 in., such as in the range of about 0.5 in. to about 1.5 in., such as about 0.625 in. or about 2 in. Other dimensions are contemplated. An illustrative, but non-limiting, example of a first type of core holder that may be used with the embodiments described herein is shown in Figure 2 of U.S. Pat. No. 10,302,540.

[0031] The second type of core holder includes a body, end caps, a hanging plate, a filter, a compression fitting, and a modified compression spring. The second type of core holder further includes a flexible cylinder enclosed inside the body of the core holder. The second type of core holder can tolerate high pressures (up to approximately 10,000 psi), high temperatures (up to 232°C), and the application of overburden stress and can be used for advanced experiments, including experiments with reservoir fluids and reservoir rocks (e.g., 1-inch core plugs, 1.5-inch core plugs, and fractured rocks). For example, the second type of core holder can be used in advanced studies of capillary condensation in the presence of overburden pressure. To provide confining pressure and simulate overburden, an overburden fluid (e.g., mineral oil) can be pumped into the gap between the flexible cylinder and the body of the core holder. As another example, in a flow-through experiment, one cylinder of a dual-cylinder pump (such as a Quizix pump) may control the pressure of the fluid flowing to the second type core holder, and the other cylinder of the dual-cylinder pump may be used to provide back pressure. An illustrative, but non-limiting, example of a second type core holder that may be used with the embodiments described herein is shown in Figure 6 of U.S. Patent No. 10,302,540.

[0032] A third type of core holder can be used to apply overburden pressure by mechanical means. The third type of core holder includes a body, end caps, a hanger plate, a filter, a compression fitting, and a modified compression spring. The third type includes either end caps (e.g., having a length of about 0.5 in. to about 1.5 in.) that are extended by attaching a spacer (e.g., having a length of about 0.5 in. to about 1.5 in.) to the end cap, or long end caps (e.g., having a length of about 1 in. to about 3 in.), such that the total length of the end cap+spacer combination is, for example, about 1 in. to about 3 in. Mechanical pressure can be applied to the core by tightening the end cap+spacer combination or by tightening the long end cap. An illustrative, but non-limiting, example of a second type of core holder that can be used with the embodiments described herein is shown in Figures 7A and 7B of U.S. Pat. No. 10,302,540.

[0033] A fourth type of core holder can be used to apply overburden pressure by mechanical means. The fourth type of core holder includes a body, end caps, a hanger plate, a filter, a compression fitting, and a modified compression spring. The fourth type of core holder further includes a sleeve on the outside of the core body, with a manual crank on the surface of the sleeve. By rotating the manual crank in one direction, the sleeve, and therefore the core body, contracts, creating pressure that compresses the core. An illustrative, but non-limiting, example of a second type of core holder that can be used with the embodiments described herein is shown in Figures 7A and 7B of U.S. Pat. No. 10,302,540.

[0034] The mass comparator (a) is positioned above the environmental chamber (e), and the sorbent is suspended inside the environmental chamber (e) from a hook or insulated wire (p) on the bottom of the mass comparator (a). Such a configuration can serve to protect the sensitive electronics of the mass comparator in experiments conducted under extreme conditions (e.g., reservoir temperature and reservoir pressure). Other protective measures include containing the experimental pressure within high-pressure, high-temperature tubing and the core holder containing the sorbent.

[0035] The environmental chamber (e) is used, for example, to ensure strict temperature control of the device. The environmental chamber (e) can be customized to include an extended lower operating temperature of -100°C, an extended upper operating temperature of 232°C, the ability to interface with four or more resistance temperature detectors (RTDs) and two or more thermocouples, and ports on both the sides and top of the chamber. Including ports on both the sides and top of the environmental chamber (e) can be useful for passing lines and wires, including the wires suspending the core holder (c) from the mass comparator (a), into and out of the environmental chamber (e). For example, the thermocouple and / or RTD wires (q) can be inside the environmental chamber (e), and the thermocouple and / or RTD box (e.g., thermocouple power supply and data logger (g)) can be located outside the environmental chamber (e). The port may also be useful for securing a homemade draft shield (d), which may be fastened around the core holder to prevent air currents in the environmental chamber (e) from impairing the resolution of the mass comparator (a). An illustrative, but non-limiting example of an environmental chamber (e) is a Thermotron XSE-600-3-3-MS. Other environmental chambers or suitable devices for controlling temperature are contemplated.

[0036] Additionally, the environmental chamber (e) may be purged with a non-reactive gas (e.g., gaseous nitrogen). Purging the environmental chamber with a non-reactive gas can increase the safety of high-pressure, high-temperature reservoir condition experiments. Purging the environmental chamber with a non-reactive gas can also help mitigate or prevent ice formation during low-temperature experiments. The non-reactive gas may be stored in one or more gas cylinders (l) outside the environmental chamber (e) and filtered through a gas dryer (not shown) before entering the environmental chamber (e). A frame (f), or support structure, may be placed on the environmental chamber (e).

[0037] The pump (h) is for pressurizing the fluid under study. An illustrative, but non-limiting example of the pump (h) is a dual-cylinder Q6000 Quizix pump. Other pumps or suitable devices for pressurizing the fluid are contemplated. If the pump (h) has a high maximum operating temperature, the pump (h) can be housed outside the environmental chamber (e). For example, a dual-cylinder Q6000 Quizix pump has a maximum operating temperature of 160°C and can be housed outside the environmental chamber (e). Other pumps may have lower or higher maximum operating temperatures and can be housed either outside or inside the environmental chamber (e). In some embodiments, both cylinders of the pump (h) can be used to pressurize the fluid. In experiments utilizing the injection of pre-heated fluid, heating tape can be used to heat the cylinder of the pump (h). The use of heating tape can serve as an alternative to housing the cylinder of the pump (h) inside the environmental chamber (e).

[0038] A turbomolecular pump (i) may be used in the apparatus to vacuum out the system and degas the adsorbent. The turbomolecular pump (i) may be a hydrocarbon-free turbomolecular pump. The hydrocarbon-free turbomolecular pump has magnetic bearings instead of oil-lubricated bearings. Therefore, lubricant fumes do not adsorb to the tubing during vacuuming. The hydrocarbon-free turbomolecular pump has a flow rate of at least 10-6 Vacuum levels of mbar can be achieved.

[0039] A data acquisition box (o) is positioned outside the environmental chamber. The data acquisition box (o) is utilized to collect data from various components of the apparatus, such as the mass comparator (a) and the thermocouple power supply and data logger (g). The data acquisition box (o) is coupled to the mass comparator (a) and the thermocouple power supply and data logger (g) via electrical wires (shown as dashed lines). Mass readings are taken from the mass comparator (a). The data acquisition box (o) is also coupled to a pressure transducer (j) and a vacuum gauge (k), which are positioned outside the chamber and are used to take pressure readings. Any suitable pressure transducer and vacuum gauge may be used.

[0040] A gas chromatograph (m) may be used in the apparatus to monitor the concentration of adsorbed and desorbed fluids for advanced studies of multi-component fluids. A chromatography gas (r) is coupled to the gas chromatograph (m). A computer (n) and a monitor (s) are utilized, for example, to control the gas chromatograph (m) and observe the experimental results. An illustrative, but non-limiting example of a gas chromatograph (m) that may be used is the Agilent 7890B. Other suitable gas chromatographs are contemplated.

[0041] The gas chromatograph (m) can be customized to analyze all fluids generated in a capillary condensation experiment. For example, the gas chromatograph (m) can be customized to perform detailed hydrocarbon analysis to study hydrocarbon fluids. Furthermore, the gas chromatograph (m) can be customized to perform simulated distillation for crude oil. Furthermore, the gas chromatograph (m) can be customized to analyze fixed gases (e.g., nitrogen and carbon dioxide). The piping of the gas chromatograph (m) can be made from a suitable material, such as Hastelloy, and can be fitted with high-pressure (e.g., 3000 psi) and / or heated gas inlet valves to ensure proper analysis of the reservoir fluid.

[0042] The gas chromatograph (m) can also be used to measure the bulk fluid composition and / or the composition of the sealed fluid. To measure the composition of the sealed fluid, for example, a liquid nitrogen trap can be used to draw the sealed fluid from the adsorbent in the core holder (c). The sealed fluid is collected from the liquid nitrogen trap and then transferred to the gas chromatograph (m) for analysis.

[0043] Various parts or components of the device shown in Figure 1 may be used with other devices described herein, such as the devices shown in Figures 2-6. Likewise, various parts or components of the devices in each of Figures 1-6 may be suitable for use with one or more of the other devices described herein.

[0044] Returning to FIG. 2 , the apparatus 20 includes a core holder 202 disposed within an environmental chamber 207. The environmental chamber 207 and the core holder 202 may be the same as or different from the environmental chamber and core holder described with respect to FIG. 1 . An environmental chamber control unit 215 may be utilized to control the operation of the environmental chamber 207. The environmental chamber 207 may include a heating element, a cooling element, and a temperature sensor. The environmental chamber 207 is equipped with the heating element, the cooling element, and the temperature sensor. The environmental chamber 207 may further include an atmospheric purge mechanism configured to purge the interior of the environmental chamber 207, for example, to remove oxygen. The environmental chamber 207 is equipped with an automatic purge mechanism. A source of non-reactive gas may be in selective fluid communication with the interior of the environmental chamber. An automatic purge valve may be positioned between the source of non-reactive gas and the environmental chamber 207 and configured to control the flow of non-reactive gas into the environmental chamber 207. A three-way valve 206 (which may be, for example, a remotely actuated three-way valve) is coupled to the core holder 202, the gas tank 210 (or gas cylinder), and the vacuum pump 213 (or vacuum source) by lines, piping, or tubing. The three-way valve 206 is configured to control the flow of, for example, gas and vacuum through various portions of the apparatus 20. The three-way valve 206 can free the apparatus 20 from manual actuation and allow for remote and automatic injection and / or aspiration of fluids. The three-way valve 206 can also allow for selective fluid communication of vacuum, gas, and / or pressure with the core holder 202. In FIG. 2 , electrical wires or connections are indicated by dashed lines, and gas and vacuum lines are indicated by solid lines. Instead of electrical wires and connections, transmitters and receivers can be used to send signals to the various components of the apparatus 20.

[0045] The apparatus 20 may further include a pressure sensor or pressure transducer (not shown) configured to sense pressure inside or within the core holder 202 and produce a pressure signal. The pressure sensor or pressure transducer may be similar to pressure transducer (j) and operably connected to the interior of the core holder. The apparatus 20 may further include a mass comparator (not shown) configured to sense a mass change within the core holder 202. The mass comparator, which may be similar to mass comparator (a), is operably connected to the interior of the core holder 202. The apparatus 20 may further include a pressure and flow control system generally including a pressure source in selective fluid communication with the core holder, an automatic pressure valve (e.g., three-way valve 206) configured to control the pressure within the core holder, and a processor. The processor, described further below, executes instructions of the algorithms described herein. The apparatus 20 may further include an automatic vacuum valve (e.g., three-way valve 206) configured to control the pressure within the core holder. An automatic vacuum valve (eg, three-way valve 206 ) may be coupled to the vacuum pump 213 and to the core holder 202 .

[0046] As described, the three-way valve 206 has multiple functions, such as controlling the pressure within the core holder. The three-way valve 206 is in selective communication with a pressure source. The three-way valve 206 is in selective communication with a vacuum source. The three-way valve 206 is also referred to as an automatic valve.

[0047] In the illustrated embodiment, the three-way valve 206 is a fixed-volume, remotely actuated three-way valve, although other valves are contemplated. The three-way valve 206 can be a fast open / close valve, with opening or closing completed in, for example, approximately 0.1 seconds, although other values ​​are contemplated. In some embodiments, the three-way valve 206 is actuated using compressed air, supplied at, for example, 70-100 psi, via a solenoid pilot valve (12V or 24V) located in the data acquisition and remote control unit 216.

[0048] Apparatus 20 further includes a data acquisition and remote control unit 216 operably coupled to three-way valve 206 and computer 217. Data acquisition and remote control unit 216 may also be operably coupled to mass comparator(s), pressure sensor(s), pressure transducer(s), thermocouple(s), vacuum gauge(s), among other components.

[0049] A computer 217 may be utilized to send information, e.g., commands, to the data collection and remote control unit 216. The data collection and remote control unit 216 may be utilized to control various components of the apparatus and observe experimental results. The data collection and remote control unit 216 may be any suitable unit. The data collection and remote control unit may include sensors for converting physical parameters into electrical signals, signal conditioning circuits for converting the sensor signals into a form that can be converted into digital values, and an analog-to-digital converter for converting the conditioned sensor signals into digital values. Computer software associated with the data collection and remote control unit 216 processes raw data from various components of the apparatus, such as a mass comparator, thermocouple(s), pressure transducer(s), and vacuum gauge(s), among other components. Computer algorithms may be utilized, for example, to process data from the data collection and remote control unit 216 and make decisions regarding remotely opening / closing valves, among other operations. Exemplary, but non-limiting, embodiments of computer algorithms are described below, and a simplified activity diagram is presented in FIG. 7.

[0050] The data collection and remote control unit 216 is operable to control the operation of one or more of the devices, systems, and / or methods described herein via the data collection and remote control unit 216. The data collection and remote control unit 216 includes one or more processors, memory, and support circuitry. The processors may be one of any form of general-purpose microprocessor or general-purpose central processing unit (CPU), each of which may be used in an industrial setting, such as a programmable logic controller (PLC), supervisory control and data acquisition (SCADA) system, or other suitable industrial controller.

[0051] The one or more processors of the data collection and remote control unit 216 may execute instructions of the algorithms described herein. The processor may perform the following operations: (a) control an automatic pressure valve (e.g., three-way valve 206) based at least in part on a pressure signal from a pressure sensor, (b) step the pressure in the core holder 202 through a series of predetermined pressure set points, (c) control the pressure in the core holder 202 at the predetermined pressure set points, (d) analyze the pressure signal for constancy, (e) open and / or close the automatic pressure valve (e.g., three-way valve 206) for a calculated period of time to control the pressure in the core holder 202 at the predetermined pressure set points, (f) analyze the pressure signal for constancy, and (g) open and / or close the automatic pressure valve (e.g., three-way valve 206) for a calculated period of time to control the pressure in the core holder 202 at the predetermined pressure set points. (f) controlling an automatic vacuum valve (e.g., three-way valve 206); (g) controlling the temperature within environmental chamber 207; (h) controlling the atmosphere within environmental chamber 207 via an automatic purge valve; (i) automatically directing the contents of core holder 202 to a gas chromatograph (e.g., gas chromatograph 614, described below); (j) automatically logging data from pressure sensors, mass comparators, and other components; and (k) controlling the atmosphere within environmental chamber 207 via an automatic purge valve coupled to environmental chamber 207.

[0052] Although the one or more processors are described with reference to FIG. 2, the one or more processors may be used with other devices described herein, such as the devices of FIGS.

[0053] The one or more processors may be further configured to analyze the pressure signal for stationarity via an Augmented Dickey-Fuller (ADF) test and / or a Kwiatkowski-Phillips-Schmidt-Sinn (KPSS) test, as further described below. The one or more processors may be configured to calculate the calculated time period by performing a series of short valve openings to generate a series of data and analyzing the series of data to calculate the calculated time period.

[0054] The memory is non-transitory and may be one or more of readily available memory, such as random access memory (RAM), read-only memory (ROM), or any other form of digital storage, local or remote. The memory contains instructions that, when executed by a processor, facilitate the operation of the apparatus and methods described herein. The instructions in the memory are in the form of a program product, such as a program that implements the methods of the present disclosure. The program code of the program product may conform to any one of several different programming languages. Exemplary computer-readable storage media include, but are not limited to, (i) non-writable storage media in which information is permanently stored (e.g., a read-only memory device in a computer, such as a CD-ROM disk readable by a CD-ROM drive, flash memory, a ROM chip, or any type of solid-state nonvolatile semiconductor memory), and (ii) writable storage media in which alterable information is stored (e.g., a floppy disk in a diskette drive, or a hard disk drive, or any type of solid-state random access semiconductor memory). Such computer-readable storage media, when carrying computer-readable instructions that direct the functions of the methods described herein, are examples of the present disclosure. In one example, the present disclosure may be implemented as a program product stored on a computer-readable storage medium (e.g., memory) for use with the data collection and remote control unit 216 and the computer 217. The program(s) in the program product define the functions of the present disclosure, as described herein.

[0055] 2, a fluid-solid system may be tested over a series of pressure, temperature, and / or density ranges or points to characterize a particular fluid-solid system. For example, a porous rock sample may be placed in a core holder 202, and a gaseous fluid may be introduced into the porous sample in the core holder via a gas tank 210, thereby creating a fluid-solid system. At least a portion of the gaseous fluid may condense in and / or on the porous rock sample, as detected by a mass comparator.

[0056] The data collection and remote control unit 216 may be configured to automatically adjust the temperature and / or pressure of the fluid-solid system to preselected values. For example, the pressure of the fluid-solid system may be controlled by actuating the three-way valve 206 to increase the pressure via the gas tank 210 or decrease the pressure via the vacuum pump 213. The data collection and remote control unit 216 may be configured to automatically monitor the fluid-solid system for equilibrium, for example, via a pressure sensor. The data collection and remote control unit 216 may be configured to automatically record values ​​for the temperature, pressure, and / or mass of the fluid-solid system. The data collection and remote control unit 216 may then instruct the apparatus to adjust the pressure and / or temperature inside the core holder 202.

[0057] A second embodiment of an apparatus for characterizing a fluid-solid system is shown in Figures 3 and 4 as apparatuses 30 and 40. The illustrated embodiment of Figures 3 and 4 is similar to the illustrated embodiment of Figure 2, with the addition of several more core holders (core holder 303, core holder 304, and core holder 305) and several more three-way valves (three-way valve 307 and three-way valve 308). The additional core holders and three-way valves can allow for increased capacity and efficiency of the apparatus. The three-way valves can be automatic.

[0058] The number of core holders and three-way valves can be any suitable number. For example, the apparatus can include two to twenty core holders, such as two to ten core holders, three to eight core holders, four to six core holders, or any number within these ranges. Other values ​​are contemplated. As another example, the number of three-way valves can be any suitable number, and the number of three-way valves in the apparatus can be less than, equal to, or greater than the number of core holders. Other values ​​are contemplated. In some examples, the apparatus includes two or more mass comparators. The number of mass comparators can be the same as the number of core holders. As described above, each adsorbent or core holder is connected to each mass comparator, for example, by a hook or insulated wire. In this way, two or more fluid-solid systems can be measured simultaneously. For example, the number of measurements taken simultaneously can be from 1 to 20 measurements, such as from 2 to 20 measurements, such as from 2 to 10 measurements, such as from 3 to 8 measurements, such as from 4 to 6 measurements, or any number of measurements within those ranges. Higher and lower numbers of measurements are contemplated.

[0059] The apparatus further includes a check valve 411 to prevent backflow into the gas tank 210 and a pressure gauge 412 installed to monitor the pressure downstream of the check valve 411. The check valve 411 can be a one-way valve or an electronic gas regulator, although other suitable check valves are contemplated. The gas tank 210 and the vacuum pump 213 are independently coupled, directly or indirectly, to three-way valves 206, 307, and 308, which are coupled to various core holders of the apparatus. Also shown are an environmental chamber control unit 215, a data acquisition and remote control unit 216, and a computer 217. Other components are omitted for clarity. In FIG. 3, electrical wires or connections are indicated by dashed lines, and gas and vacuum lines are indicated by solid lines. In FIG. 4, gas lines are indicated by solid lines, and a dotted box indicates the environmental chamber 207.

[0060] A third embodiment of an apparatus for characterizing fluid-solid systems is shown in FIGS. 5 and 6 as apparatuses 30 and 40. The illustrated embodiment of FIGS. 5 and 6 includes core holders 202, 503, 504, and 505 positioned inside an environmental chamber 607, three-way valves 506, 507, 508, and 509, and a gas chromatograph 614. The three-way valve may be automatic. Additional core holders and three-way valves may allow for increased capacity and efficiency of the apparatus. Also, individual check valves 611a-611d are positioned between the individual three-way valves 506, 507, 508, and 509 and the individual core holders 202, 503, 504, and 505. The environmental chamber 607 may be a temperature chamber. A manifold 615 is connected to the various lines of the system. A liquid inlet 612 and a gas inlet 613 may be connected to the gas chromatograph 614 and to the manifold 615. Liquid inlet 612 and gas inlet 613 may be used to inject liquid or gas, respectively, into gas chromatograph 614. As shown, a vacuum line may be coupled to vacuum manifold 603, and a gas line may be coupled to gas manifold 605. Vacuum manifold 603 and gas manifold 605 are positioned to provide vacuum or gas to various components of the apparatus. As shown, gas chromatograph 614 is operably coupled or connected to each of core holders 202, 503, 504, and 505.

[0061] The illustrated apparatus of Figures 5 and 6 can be used to characterize fluid-solid systems containing gas mixtures. This capability is due, at least in part, to the fact that each core holder 202, 503, 504, 505 has its own independent connection to the gas tank 210, vacuum pump 213, and gas chromatograph 614. In Figure 5, electrical wires or connections are indicated by dashed lines, and gas and vacuum lines are indicated by solid lines. In Figure 6, vacuum lines are indicated by solid lines, and gas lines are indicated by dashed lines. Dash-dotted lines represent gas, vacuum, or liquid flow between one or more of the vacuum manifold 603, gas manifold 605, liquid inlet 612, gas inlet 613, gas chromatograph 614, or manifold 615.

[0062] As described herein, embodiments of an apparatus for studying or characterizing fluid-solid systems are automated. An automated apparatus (or automated system) includes hardware and software. The software may be part of the data collection and remote control unit 216. The data collection and remote control unit 216, as part of the automated system, may perform one or more of the following operations: One or more of the following operations may be performed automatically by the automated system to achieve automation:

[0063] (a) An automated system receives live data feeds from pressure gauges and mass comparators coupled to individual core holders and analyzes the data in real time.

[0064] (b) The automated system determines whether pressure stabilization has been reached and a new data point should be recorded.

[0065] (c) The automated system averages the pressure and mass values ​​over a predetermined duration and records a new data point, which can also be customized by the user.

[0066] (d) The automated system introduces or withdraws one or more fluids to prepare for a new data point measurement.

[0067] (e) The automated system allows for user intervention at any suitable point without interrupting the running experiment.

[0068] (f) The automated system allows switching between manual and automated modes without interrupting an ongoing experiment.

[0069] A simplified activity diagram 70 of the algorithm used by the automated system is presented in Figure 7, and the operations are described in more detail below: In operation 720, the initial hardware connections are made.

[0070] (1)-(6): Acts 721, 722, 723, 726, 729, and 730 reflect the data collection system, the ability to observe data in real time on a PC monitor, and the ability to completely terminate the software. These acts include reading the device status (act 721), reading the data stream (act 722), plotting the data in a graphical user interface (GUI) (act 723), starting data logging (act 726), creating a data logging document (act 729), and terminating the program (act 730). Symbol 731 represents the termination point after terminating the program (act 730).

[0071] (7)-(9): Actions 727, 733, and 728 can enable seamless transitions between manual mode (the ability to manually operate the automated system) and auto mode (utilizing newly implemented algorithms). These actions include switching to manual mode (action 727), giving control to the user (action 733), and switching to auto mode (action 728).

[0072] (10): The data function is loaded in operation 736. Once loaded, the data function can take over system control and experiment flow as shown in the subsequent operations.

[0073] (11): Operation 738 represents waiting for the automated system to log a sufficient amount of data to move the experiment forward. The automated system may not be ready to move the experiment forward, for example, because not enough data has been logged and / or when the pressure is not stable. Here, a determination (737) is made, for example, as to whether enough data has been logged and / or whether the pressure is stable. If enough data has been logged and / or the pressure is stable, the experiment can proceed. If not enough data has been logged and / or the pressure is not stable, the automated system waits in operation 738 to log a sufficient amount of data and / or for the pressure to stabilize. Waiting for stabilization may take a period of about 10 minutes, although shorter or longer durations are contemplated.

[0074] (12): Operation 739 represents the core of the algorithmic decision-making process, where an automated system takes the logged data and processes it to statistically determine, for example, whether the pressure is stable and the experiment can move forward to the next pressure point. During or after operation 739, a decision (740) is made, for example, regarding whether the pressure has stabilized and / or whether enough data has been logged. Decision 740 can be similar to decision (737).

[0075] (13): Operation 741 reflects the automation of the valve opening / closing mechanism to vary the pressure. The valve opening duration (the time the valve is open) can be dynamically calculated by an algorithm or manually set / changed by the user at any time. In some embodiments, the pressure is changed only when the automated system is stable. Operations 736, 738, 739, and 741 are repeated for each pressure point until the end of the experiment.

[0076] (14): Operation 742 is activated when the user stops the automatic mode and / or switches to manual mode, where the automatic system is manually operated, thereby terminating the computer algorithm. The program terminates upon completion of the experiment.

[0077] As shown in simplified activity diagram 70 of FIG. 7, various decisions may be made. For example, and in some embodiments, when there is a user made action 724, the user has an action tree 725 where various options may be selected, including, among other actions, switching to manual mode at operation 727 and switching to automatic mode at operation 728, such as exiting the program at operation 730. If there is no user made action, and in at least one embodiment, operations 721-723 may continue. As another example, and in some embodiments, the switch to manual mode at operation 727 may be followed by a switch to automatic mode 732. If there is a switch to automatic mode 732, the user may be given control at operation 733. If there is no switch to automatic mode 732, the decision regarding the user made action 724 continues until a condition is met. As another example, after switching to automatic mode at operation 728, the user may stop automatic mode at operation 742, for example, by switching to manual mode. If not, a decision 724 regarding the action the user takes continues until the condition is met.

[0078] Additionally, and in some embodiments, and after switching to automatic mode in operation 728, a decision (734) is made regarding data logging on. If yes, and in at least one embodiment, automatic mode can begin (735). If not, decision 724 continues regarding actions the user takes until a condition is met. Other decisions may be made, such as decision (737) and decision (740) described above.

[0079] In one embodiment, the algorithm for operation (739) includes an algorithm configured to solve two or more problems related to controlling the apparatus: a first of the two or more problems is determining the stationarity of the system at a given data point before logging that data point and moving on to the next data point; and a second of the two or more problems is determining the optimal duration for opening a valve that isolates the core holder from a vacuum line or pressure source to incrementally increase or decrease the pressure to an appropriate predetermined pressure set point.

[0080] Before data points can be logged, the time series of pressure data is verified for stationarity. Once verified, the data points can be logged, and the automated system can subsequently adjust the pressure in the core holder to the next predetermined pressure set point. In some embodiments, two parallel tests can be employed to verify the stationarity of the time series of pressure data corresponding to the pressure inside the core holder. The two parallel tests can be the Augmented Dickey-Fuller (ADF) test and the Kwiatkowski-Phillips-Schmidt-Sinn (KPSS) test, although other tests are contemplated. A single test, two tests, or more tests can be performed.

[0081] In some embodiments, the ADF test can be used to test the null hypothesis of a unit root in the time series pressure data. The alternative hypothesis for the test is that there is stationarity in the data. The ADF test is an extended version of the Dickey-Fuller test to cover a more complex set of time series models.

[0082] The KPSS test can be used to complement the ADF test. In some embodiments, the KPSS test determines whether a time series is stationary around a mean value or a linear trend, or non-stationary due to the presence of a unit root. The KPSS test can be used to test the null hypothesis that the data are stationary. The alternative hypothesis for the test is that the data are not stationary.

[0083] In some embodiments, the output from the ADF test is a negative number. The more negative the number, the stronger the rejection of the hypothesis that there is a unit root at some level of confidence and therefore the data is stationary.

[0084] As described above, the algorithm solves the second problem. The second problem is determining the duration (e.g., period or interval) for opening the valve to reach the desired next pressure point. Here, the valve may be a three-way valve (which may be pneumatic), such as one or more of the three-way valves described herein (e.g., three-way valve 206). The duration (e.g., period or interval) may be on the order of milliseconds. For the second problem, generally, multiple short pulses of opening the automatic valve may be performed, and data may be collected and analyzed using curve analysis techniques to estimate or determine the next pressure point to be reached. By comparing the actual target pressure point with the current pressure point to be reached (by the short pulse), the next pulse may be adjusted, for example, to be at or near the target pressure point.

[0085] Therefore, and in some embodiments, once constancy is verified (problem 1), the automated system may adjust the pressure inside the core holder to advance to the next predetermined pressure setpoint by opening an automated valve (e.g., one or more of the three-way valves described herein, such as three-way valve 206). In some embodiments, opening the automated valve allows compressed gas to suddenly flow into the core holder. In at least one embodiment, opening the automated valve may allow a vacuum pump to reduce the pressure inside the core holder. To reach the next pressure setpoint without overshooting, a predictive control scheme may be implemented. In some embodiments, to generate data on which to base the prediction, the automated system executes multiple very short pulses (short intervals between opening the automated valve) and collects a short stream of data corresponding to the multiple short pulses. The short stream of data may be analyzed via curve analysis techniques to estimate the period for which the automated valve should remain open to reach the next setpoint without too much overshoot.

[0086] The method can be implemented with any of the devices described herein. The method described herein allows for faster and more accurate data collection. For example, conventional data collection is at least four times slower and with much lower accuracy / resolution.

[0087] The described automation of the system allows experiments to require less time to conduct while improving resolution (e.g., number of data points collected). FIG. 8 shows the difference before (left panel) and after (right panel) implementation of the described automated system. As shown, using conventional equipment, only about 15 or 16 data points are collected over a 36-hour period (left panel of FIG. 8). In contrast, and in some embodiments, more than 80 data points can be collected using the automated system described herein. Moreover, more than 80 data points are collected in much less time (24 hours) than conventional equipment. Overall, FIG. 8 demonstrates the increased data resolution and time efficiency achieved using embodiments of the automated equipment described herein.

[0088] While the described automation can be used for the generation of thermodynamic isotherms, as can be appreciated, the algorithms and system configurations can be used to study a wide range of other systems that utilize pressure-dependent data and perform actions based on pressure stabilization.

[0089]

[0013] Embodiments described herein also relate to methods for characterizing or studying fluid-solid systems. The methods may be implemented in conjunction with the apparatus described herein. While one or more operations of the method are described with respect to the apparatus of Figure 2, one or more operations of the method may be used in conjunction with other apparatus described herein, such as the apparatus of Figures 1-6. Additionally, and as described above, parts or components of the apparatus in each of Figures 1-6 may be suitable for use with one or more of the other apparatus described herein.

[0090] In operation, the apparatus can be utilized to study or characterize fluid-solid systems. Generally, and in some embodiments, a method for studying or characterizing a fluid-solid system includes disposing a sorbent in a core holder, setting a temperature and / or pressure, and measuring the change in mass of the fluid. Here, after the sorbent is placed in the core holder, the change in mass of the fluid in the sorbent can be measured with a mass comparator at various temperatures and pressures. Automation of various operations of the method can be implemented as described herein.

[0091] As described herein, one or more fluid-solid systems can be measured simultaneously using different fluids, adsorbents, and / or operating parameters, if desired, where each fluid-solid system can be measured in a separate core holder. The number of mass comparators can be equal to the number of core holders.

[0092] In some embodiments, a method for characterizing or studying a fluid-solid system is provided. Initially, a porous rock sample is disposed or placed in a core holder (e.g., core holder 202). The method further includes (a) contacting the porous rock sample with a fluid or introducing the porous rock sample together with a fluid to create a fluid-solid system inside the core holder. The method may further include (b) automatically adjusting the temperature and / or pressure of the fluid-solid system to preselected values ​​via a processor and at least one automatic valve (e.g., three-way valve 206). The method may further include (c) monitoring the fluid-solid system for equilibrium; and (d) recording values ​​for the temperature, pressure, and / or mass of the fluid-solid system to provide recorded data. The method may further include (e) performing an action based on the recorded data. The method may further include (f) repeating one or more of these actions as needed. For example, automatically adjusting the temperature and / or pressure of the fluid-solid system, monitoring the fluid-solid system for equilibrium, performing actions based on recorded data, and / or recording operations may be repeated. In some examples, data may be collected and operations of the method may be controlled, for example, by the data collection and remote control unit 216. The data collection and remote control unit 216 may perform one or more operations of the method. As described above, the data collection and remote control unit 216 includes one or more processors configured to perform various operations of the method.

[0093] (e) The act of performing the action may include analyzing the pressure signal for stationarity. The pressure signal analyzed for stationarity may correspond to the pressure within the core holder. While analyzing the pressure signal for stationarity, an ADF test and / or a KPSS test may be performed. The pressure signal corresponds to the pressure within the core holder 202. In at least one embodiment, the fluid-solid system is monitored for equilibrium via a pressure sensor or pressure transducer, for example, pressure transducer (j).

[0094] In some embodiments of the method, the at least one automatic valve (e.g., three-way valve 206) can be a pressure control valve. In these and other embodiments, the (e) act of performing the action can include opening the pressure control valve (e.g., three-way valve 206) for a calculated period of time. In at least one embodiment, the (e) act of performing the action can include opening the pressure control valve (e.g., three-way valve 206) for a calculated period of time, and can include performing a series of short valve openings to generate a series of data and analyzing the series of data to calculate the calculated period of time. In some embodiments, the (e) act of performing the action can include adjusting the pressure of the fluid-solid system.

[0095] (e) The act of performing an action, in some embodiments, can optionally include introducing or injecting an additional fluid into the core holder (e.g., core holder 202). The fluid can be the same fluid or a different fluid. The additional fluid can be introduced or injected into the core holder 202 by opening, via one or more processors, an automatic valve (e.g., three-way valve 206) for a predetermined duration. During the introduction or injection of the additional fluid, the automatic valve (e.g., three-way valve 206) is in fluid communication with a source of pressure. The source of pressure can include a container of compressed gas (e.g., gas tank 210).

[0096] In at least one embodiment, (e) the act of performing the action can optionally include removing at least some fluid from the core holder 202. Removing at least some fluid from the core holder 202 can include opening, via one or more processors, an automated valve (e.g., three-way valve 206) for a predetermined duration. While removing at least some of the fluid, the automated valve (e.g., three-way valve 206) is in fluid communication with a source of vacuum (e.g., vacuum pump 213).

[0097] In some examples, the act of performing the (e) action includes calculating a mean, median, or average of the pressure values ​​and / or a mean, median, or average mass value over a predetermined duration. Other calculations may be performed by one or more processors. Raw data on the pressure and / or mass values ​​may be collected by using the data collection and remote control unit 216, a pressure sensor or pressure transducer, e.g., pressure transducer (j), and a mass comparator, e.g., mass comparator (a). The pressure sensor or pressure transducer (j) is coupled or operably connected to the interior of the core holder 202. The pressure sensor or pressure transducer (j) is configured to sense pressure within the core holder and produce a pressure signal. The mass comparator (a) is coupled or operably connected to the interior of the core holder 202. The pressure sensor or pressure transducer (j) and the mass comparator are each individually coupled or operably connected to the data collection and remote control unit 216.

[0098] The method for characterizing or studying a fluid-solid system can optionally include controlling the atmosphere in an environmental chamber (e.g., environmental chamber 207) via an automatic purge valve. As described above, the atmospheric purge mechanism is configured to purge the interior of environmental chamber 207 of materials, such as oxygen. The automatic purge mechanism includes an automatic purge valve. The automatic purge valve can be positioned between a source of non-reactive gas and environmental chamber 207 and configured to control the flow of non-reactive gas into environmental chamber 207. In these and other embodiments, the automatic purge valve is in selective fluid communication with the source of non-reactive gas. Controlling the atmosphere in an environmental chamber (e.g., environmental chamber 207) via the automatic purge valve can be part of an operation that performs an (e) action, or a different operation.

[0099] In some embodiments, the methods described herein further include automatically interpreting, converting, and / or recording raw signals from pressure sensors, temperature sensors, and mass comparators (among other sensors) into thermodynamic data characteristic of the fluid-solid system, e.g., isotherms.

[0100] Sorbents that may be studied and characterized using the devices, systems, and methods described herein include, but are not limited to, one or more ideal sorbents, one or more reservoir cores, or combinations thereof. As used herein, the term "ideal sorbent" refers to an ordered nanoporous material. As used herein, the term "reservoir core" refers to a reservoir rock sample. Reservoir rock is a type of nanoporous rock that contains, for example, oil, gas, brine, and / or CO2. The ideal sorbent and reservoir core may be porous rock samples.

[0101] Fluids (including liquids, gases, or combinations thereof) that may be utilized for the studies and characterizations described herein may include one or more simple fluids, one or more reservoir fluids, or both. As used herein, the term "simple fluid" refers to a single-component liquid or gas. Examples of simple fluids include, but are not limited to, C1-C2 20 Alkanes (e.g., methane, ethane, propane, butane, isobutane, pentane, neopentane, hexane, heptane, octane, nonane, and decane) and C2-C6 20 Alkenes (e.g., ethene, propene, butene, pentene, hexene, heptene, octene, nonene, decene) and C2-C 20 Alkynes and C1-C 20 Alkanols (e.g., methanol, ethanol, isopropanol) and C2-C 20 Alkenols, aromatic hydrocarbons (e.g., benzene, toluene), and C3-C 20 Cycloalkanes (e.g., cyclopentane, cyclohexane, methylcyclohexane) and C3-C 20 These fluids include cycloalkenes, water, nitrogen, carbon dioxide, and oxygen. Isomers of these aforementioned fluids are also contemplated. For example, a reference to butane specifically discloses n-butane, iso-butane, etc. As used herein, the term "reservoir fluid" refers to the fluid mixture found in reservoir rock.

[0102] Methods for studying or characterizing fluid-solid systems can include conducting operations at various temperature and pressure conditions, such as ambient temperature and pressure conditions, reservoir temperature and pressure conditions, or combinations thereof, among other temperature and pressure conditions. As used herein, the term "reservoir temperature and pressure conditions" refers to conditions in which the temperature and pressure reflect the temperature and pressure of the reservoir rock. The temperature and pressure of the reservoir rock vary as a function of the proximity of the reservoir rock to the Earth's mantle and the composition of the reservoir rock's porous medium. Reservoir temperature and pressure can be determined by methods known in the art. As used herein, the term "ambient temperature and pressure conditions" refers to conditions in which the temperature is about room temperature and the pressure is about atmospheric pressure. Room temperature ranges from about 15°C to about 30°C, such as from about 20°C to about 25°C, such as from about 18°C ​​to about 27°C. Atmospheric pressure ranges from about 750 mbar (about 0.74 atm) to about 1050 mbar (about 1.03 atm), such as about 1013 mbar (about 1 atm). -12 This refers to a reduced pressure in the range of 750 mbar to approximately 750 mbar.

[0103] Methods for studying or characterizing fluid-solid systems can include continuously and / or stepwise injecting one or more fluids into a sorbent. The one or more fluids can be injected by a pump and / or by hand. Methods for studying or characterizing fluid-solid systems can include adjusting and / or measuring the temperature, pressure, or both of the device. Temperature can be measured, for example, by using a thermocouple. Pressure can be measured, for example, using a pressure sensor or pressure transducer.

[0104] Methods for studying or characterizing fluid-solid systems can include measuring fluid mass and / or fluid pressure. The fluid mass and / or pressure can be measured continuously or at selected time intervals over an equilibrium time. The equilibrium time can range from about 0.1 s to about 20,000 s, such as about 1 second (s) to about 5,000 s, or about 0.5 s to about 10,000 s, although shorter or longer times are contemplated. The selected time interval can, in some embodiments, be averaged over a range from about 0.1 s to about 100 s, such as about 1 s to about 10 s, or about 0.5 s to about 50 s. In some embodiments, the fluid pressure and / or mass measured at the selected time interval can be averaged over the equilibrium time.

[0105] Embodiments of the present disclosure can be further understood by the following non-limiting examples, which are put forth so as to provide those of ordinary skill in the art with a complete disclosure and description of how to make and use aspects of the present disclosure, and are not intended to limit the scope of aspects of the present disclosure.

[0106] example Use of the Apparatus. The system is leak tested, for example, to ensure that the permanent metal tubing does not leak under pressure or vacuum. The tubing was first tested under pressure and then under vacuum. Installation of the core holder included (1) connecting the core holder to the rest of the nanocondensation apparatus, (2) leak testing the core holder, and (3) degassing the system. Other installation methods are contemplated.

[0107] An exemplary isothermal capillary condensation experiment is presented below in Example 1. Some operations in Example 1 can be automated, as described herein.

[0108] Example 1. Isothermal Capillary Condensation Experiment. The software for automatic mode is started. The core holder is first filled with the sorbent sample and suspended inside the environmental chamber from a hook on the bottom of the mass comparator or from an insulated wire. The core holder and tubing of the instrument are then subjected to high vacuum and a temperature of approximately 100°C to degas the vapors in the system. Once degassing is complete, the temperature of the environmental chamber is brought to the desired experimental temperature ("T"). exp "). To study fluid sorption, a fluid is pumped into the core holder at the desired experimental pressure ("P1") by a pump, such as a Quizix pump. A constant temperature and pressure are maintained until fluid sorption is complete (e.g., until no changes in fluid mass or pressure are observed). Several sorption measurements may be taken sequentially. Alternatively, an sorption measurement may be taken, and once sorption is complete, a desorption measurement may be taken. To study fluid desorption, the mass and pressure of the sorbed fluid are measured. A constant temperature and pressure are maintained until fluid desorption is complete (e.g., until no changes in fluid mass or pressure are observed). Once desorption is complete, the temperature of the environmental chamber is again set to T exp The pressure is set to , the pressure is increased to a new desired pressure ("P2"), and fluid is again injected until adsorption is complete. Several desorption measurements can be taken sequentially. Alternatively, a desorption measurement can be taken, and once desorption is complete, an adsorption measurement can be taken. These adsorption and desorption steps are repeated as many times as desired at a constant temperature and different pressures. In particular, the adsorption and desorption steps are repeated until a satisfactory adsorption isotherm (e.g., a plot of the amount of fluid adsorbed versus pressure) is developed. Completion of adsorption can be evidenced by constant mass and pressure readings over an extended period of time. Similarly, completion of desorption can be evidenced by constant mass and pressure readings over an extended period of time. Mass readings are taken from a mass comparator, and pressure readings are taken from a pressure transducer or vacuum gauge located outside the environmental chamber.

[0109] In the following examples, isotherms were generated by recording real-time pressure and mass readings from a gravimetric adsorption apparatus. Isotherms for n-butane and iso-butane were measured. MCM-41 was used as an exemplary adsorbent in some examples.

[0110] Example 2. The automated apparatus described herein was validated by reproducing a known published isotherm at the same conditions, i.e., n-butane at approximately 5.4°C. The automated apparatus was validated against published data from the National Institute of Standards and Technology (NIST) using a saturation pressure of approximately 18.284 psia. The results are shown in Figure 9. As can be seen, the newly generated isotherm (labeled Example 901) and the previously established isotherm (labeled Barsotti et al., 2018b) agree in all general properties, including condensation pressure and bulk pressure. The difference along the y-axis is due to differences in the amount of adsorbent (MCM-41) and does not affect the calculation of condensation pressure from the isotherm.

[0111] Figure 10 shows a comparison of a previously published slope dataset of n-butane adsorption isotherm versus pressure at 5.4°C, overlaid with a similar dataset produced via an exemplary automated apparatus of the present disclosure. The previously published data is labeled Barsotti et al., 2018b, and the newly generated data using the exemplary automated apparatus is labeled Example 1001. As can be seen, the isotherm generated via the automated apparatus (Example 1001) has a significantly higher resolution isotherm, e.g., more data points. This increase in resolution / data points directly translates to more accurate calculations of, e.g., condensation / evaporation pressures derived from the adsorption / desorption isotherms, respectively. Furthermore, the higher resolution at the ends of the isotherm can enable better agreement with data from NIST and, therefore, better correction of experimental error, if any.

[0112] In addition to the higher resolution and accuracy afforded by the automated devices described herein, the total time to perform an experiment and generate an isotherm can be reduced or made more efficient. For example, because the device is automated, it can work 24 / 7 and generate a high-resolution isotherm in less than 48 hours.

[0113] Example 3. The ability of the automated apparatus described herein to reproduce existing data sets was demonstrated in Example 2 (above). In Example 3, the ability of the automated apparatus to generate new isotherms for new pore sizes and temperatures is demonstrated. Figures 11A and 11B show new / unreported isotherms for n-butane at different temperatures (0°C, -3°C, and -7°C) using MCM-41 as the adsorbent. The MCM-41 tested had different pore sizes of 6 nm (Figure 11A) and 8 nm (Figure 11B). The data show that the automated apparatus described herein provides higher resolution isotherms and shorter overall experiment times relative to, for example, conventional apparatus. The data also show that the automated apparatus can generate data sets for new conditions.

[0114] Example 4. Figure 12 shows isotherm data for iso-butane in MCM-41 (4 nm pore size) at two different temperatures, 5°C and 8°C, generated via an exemplary automated apparatus of the present disclosure. Adsorption and desorption data were determined. The four isotherms demonstrate the ability of the new automated apparatus described herein to generate new data sets for new components not previously published.

[0115] The embodiments described herein generally relate to devices, systems, and methods for studying interactions between fluids and solids and for characterizing fluid-solid systems. Overall, the results showed that the embodiments described herein can enable reduced experiment times while improving data resolution. Furthermore, multiple experiments can be performed simultaneously, for example, at ambient, reservoir, or other conditions.

[0116] Listing of embodiments The present disclosure provides, inter alia, the following embodiments, each of which may be considered to optionally include any alternative embodiments:

[0117] Clause 1. An apparatus for characterizing a fluid-solid system, the apparatus comprising: A core holder; a pressure sensor coupled to the core holder, the pressure sensor configured to sense pressure within the core holder and produce a pressure signal; a mass comparator operably connected to the interior of the core holder; 1. A pressure and flow control system comprising: a pressure source in selective fluid communication with the core holder; an automatic pressure valve configured to control the pressure in the core holder; 1. A processor, comprising: controlling an automatic pressure valve based at least in part on the pressure signal; Logging data from pressure sensors and mass comparators a processor configured to: a pressure and flow control system comprising: An apparatus comprising:

[0118] Clause 2. The apparatus of clause 1, wherein the processor is further configured to incrementally vary the pressure in the core holder through a series of predetermined pressure set points.

[0119] Article 3. If the Processor: controlling the pressure in the core holder to a first predetermined pressure set point; analyzing the pressure signal for stationarity; opening the automatic pressure valve for a calculated time period to control the pressure in the core holder to a second predetermined pressure set point; 3. The apparatus of clause 2, further configured to:

[0120] Clause 4. The apparatus of clause 3, wherein the processor is further configured to analyze the pressure signal for stationarity by an Augmented Dickey-Fuller (ADF) test and / or a Kwiatkowski-Phillips-Schmidt-Sinn (KPSS) test.

[0121] Article 5. If the Processor: performing a series of short valve openings to generate a series of data; analyzing a set of data to calculate a calculated time period; 5. The apparatus of claim 3 or 4, further configured to calculate the calculated time period by performing:

[0122] Article 6. a vacuum source in selective fluid communication with the core holder; an automatic vacuum valve configured to control pressure within the core holder, the processor further configured to control the automatic vacuum valve; 6. The apparatus of any one of clauses 1 to 5, further comprising:

[0123] Article 7. The core holder is disposed inside an environmental chamber, the environmental chamber comprising: a heating element, a cooling element, or both; Temperature sensor and Equipped with the processor is further configured to control a temperature within the environmental chamber; 7. A device according to any one of clauses 1 to 6.

[0124] Clause 8. The apparatus of any one of clauses 1 to 7, further comprising a gas chromatograph operably connected to the core holder, wherein the processor is further configured to automatically direct the contents of the core holder to the gas chromatograph.

[0125] Clause 9. The apparatus of any one of clauses 1 to 8, wherein the processor is further configured to automatically log data from the pressure sensor and the mass comparator.

[0126] Clause 10. An apparatus according to any one of clauses 1 to 9, wherein the core holder is a first core holder and the apparatus further comprises at least a second core holder.

[0127] Clause 11. A method for characterizing a fluid-solid system, the method comprising: (a) contacting a porous rock sample disposed within a core holder with a fluid to form a fluid-solid system inside the core holder; (b) automatically adjusting, via the processor and at least one automatic valve, the temperature of the fluid-solid system, the pressure of the fluid-solid system, or both, to a preselected value; (c) monitoring the fluid-solid system for equilibrium; and (d) recording a value for temperature, a value for pressure, a value for mass, or a combination thereof, of the fluid-solid system to provide recorded data; and (e) taking action based on the recorded data; and (f) repeating one or more of operations (b) through (e) to generate thermodynamic data characteristics of the fluid-solid system; and A method comprising:

[0128] Article 12. The fluid-solid system is monitored for equilibrium via a pressure sensor; performing action (e) includes analyzing the pressure signal for stationarity, the pressure signal corresponding to a pressure in the core holder, and analyzing the pressure signal for stationarity includes performing an Augmented Dickey-Fuller (ADF) test, a Kwiatkowski-Phillips-Schmidt-Sinn (KPSS) test, or both; The method described in clause 11.

[0129] Article 13. at least one automatic valve is a pressure control valve; performing action (e) includes opening a pressure control valve for a calculated period of time; 12. The method described in clause 11 or 12.

[0130] Article 14. Carrying out action (e) performing a series of short valve openings to generate a series of data; analyzing a set of data to calculate a calculated time period; 14. The method of claim 13, comprising:

[0131] Clause 15. The method of any one of clauses 11 to 14, wherein performing action (e) includes calculating an average of the pressure values, an average of the mass values, or both over a predetermined duration.

[0132] Clause 16. Performing action (e) includes adjusting the pressure of the fluid-solid system, and adjusting the pressure of the fluid-solid system includes: introducing additional fluid into the core holder; removing at least some fluid from the core holder; or combinations of these 16. The method of any one of clauses 11 to 15, comprising:

[0133] Article 17. When performing action (e) includes introducing additional fluid into the core holder, introducing the additional fluid into the core holder includes, via the processor, opening an automatic valve for a predetermined duration, the automatic valve being in fluid communication with a source of pressure; or When performing action (e) includes removing at least some fluid from the core holder, removing at least some fluid from the core holder includes, via the processor, opening an automatic valve for a predetermined duration, the automatic valve being in fluid communication with a source of vacuum. The method described in clause 16.

[0134] Clause 18. The method of any one of clauses 11 to 17, wherein the core holder is disposed within an environmental chamber, and the method further includes controlling the atmosphere within the environmental chamber via an automatic purge valve, the automatic purge valve being in selective fluid communication with a source of non-reactive gas.

[0135] Clause 19. The method of any one of clauses 11 to 18, further comprising automatically interpreting, converting, and recording raw signals from the pressure sensor, temperature sensor, and mass comparator into thermodynamic data characteristic of the fluid-solid system.

[0136] Clause 20. A method for characterizing a fluid-solid system, comprising: (a) introducing a fluid with a porous rock sample disposed within the core holder to form a fluid-solid system inside the core holder; (b) automatically adjusting the pressure of the fluid-solid system to a preselected value via the processor and at least one automatic valve, wherein the automatically adjusting includes: performing a series of short valve openings to generate a series of data; analyzing a set of data to calculate a calculated time period; automatically adjusting the pressure of the fluid-solid system, including: (c) monitoring the fluid-solid system for equilibrium with a pressure sensor; (d) recording a value for pressure, a value for mass, or a combination thereof, of the fluid-solid system to provide recorded data; and (e) taking action based on the recorded data, where taking action includes: analyzing the pressure signal for stationarity by performing an Augmented Dickey-Fuller (ADF) test, a Kwiatkowski-Phillips-Schmidt-Sinn (KPSS) test, or both, where the pressure signal corresponds to a pressure within the core holder. and performing an action, including (f) repeating one or more of operations (b) through (e) to generate thermodynamic data characteristics of the fluid-solid system; and A method comprising:

[0137] Clause 21. An apparatus for characterizing a fluid-solid system, the apparatus comprising: an environmental chamber; a core holder disposed inside the environmental chamber; a pressure sensor configured to sense pressure within the core holder and produce a pressure signal; a mass comparator operably connected to the interior of the core holder; 1. A pressure and flow control system comprising: a pressure source in selective fluid communication with the core holder; an automatic pressure valve configured to control the pressure in the core holder; a processor configured to control an automatic pressure valve based at least in part on the pressure signal; and a pressure and flow control system comprising: An apparatus comprising:

[0138] Clause 22. The apparatus of clause 21, wherein the processor is further configured to incrementally vary the pressure in the core holder through a series of predetermined pressure set points.

[0139] Article 23. If the Processor: controlling the pressure in the core holder to a first predetermined pressure set point; analyzing the pressure signal for stationarity; opening the automatic pressure valve for a calculated time period to control the pressure in the core holder to a second predetermined pressure set point; 23. The apparatus of clause 21 or 22, further configured to:

[0140] Clause 24. The apparatus of clause 23, wherein the processor is further configured to analyze the pressure signal for constancy by an Augmented Dickey-Fuller (ADF) test and / or a Kwiatkowski-Phillips-Schmidt-Sinn (KPSS) test.

[0141] Article 25. If the Processor: performing a series of short valve openings to generate a series of data; analyzing a set of data to calculate a calculated time period; 25. The apparatus of clause 23 or 24, further configured to calculate the calculated time period by performing:

[0142] Clause 26. The apparatus of any one of clauses 21 to 26, further comprising a vacuum source in selective fluid communication with the core holder.

[0143] Clause 27. The apparatus of clause 26, further comprising an automatic vacuum valve configured to control pressure within the core holder, the processor further configured to control the automatic vacuum valve.

[0144] Clause 28. The apparatus of any one of clauses 21 to 27, wherein the environmental chamber comprises a heating element and a temperature sensor, and the processor is further configured to control the temperature within the environmental chamber.

[0145] Clause 29. An apparatus according to any one of clauses 21 to 28, wherein the environmental chamber comprises a cooling element.

[0146] Clause 30. The apparatus of any one of clauses 21 to 29, wherein the environmental chamber comprises an atmospheric purge mechanism configured to purge the interior of the environmental chamber to remove oxygen.

[0147] Article 31. a source of non-reactive gas in selective fluid communication with the interior of the environmental chamber; an automatic purge valve configured to control a flow of non-reactive gas into the environmental chamber, the processor further configured to control the atmosphere in the environmental chamber via the automatic purge valve; 31. The apparatus of clause 30, further comprising:

[0148] Clause 32. The apparatus of any one of clauses 21 to 31, further comprising a gas chromatograph operably connected to the core holder, wherein the processor is further configured to automatically direct the contents of the core holder to the gas chromatograph.

[0149] Clause 33. The apparatus of any one of clauses 21 to 32, wherein the processor is further configured to automatically log data from the pressure sensor and the mass comparator.

[0150] Clause 34. An apparatus according to any one of clauses 21 to 33, wherein the core holder is a first core holder and the apparatus comprises at least a second core holder disposed inside the environmental chamber.

[0151] Clause 35. A method for characterizing a fluid-solid system, the method comprising: (a) placing a porous rock sample in a core holder; (b) contacting the porous rock sample with a fluid to create a fluid-solid system inside the core holder; (c) automatically adjusting the temperature and / or pressure of the fluid-solid system to preselected values ​​via the processor and at least one automatic valve; (d) monitoring the fluid-solid system for equilibrium; and (e) recording values ​​for temperature, pressure, and / or mass of the fluid-solid system; and (f) taking action based on the recorded data; and (g) repeating operations (c) through (f) to generate thermodynamic data characteristic of the fluid-solid system; A method comprising:

[0152] Clause 36. The method of clause 35, wherein the fluid-solid system is monitored for equilibrium via a pressure sensor.

[0153] Clause 37. The method of clause 35 or 36, wherein performing action (f) includes analyzing a pressure signal for stationarity, the pressure signal corresponding to a pressure in the core holder.

[0154] Clause 38. The method of clause 37, wherein analyzing the pressure signal for constancy includes performing an Augmented Dickey-Fuller (ADF) test and / or a Kwiatkowski-Phillips-Schmidt-Sinn (KPSS) test.

[0155] Clause 39. The method of any one of clauses 35 to 38, wherein at least one automatic valve is a pressure control valve, and performing action (f) includes opening the pressure control valve for a calculated period of time.

[0156] Article 40. Carrying out action (f) performing a series of short valve openings to generate a series of data; Analyzing a set of data to calculate a calculated time period; or combinations of these 40. The method of any one of clauses 35 to 39, comprising:

[0157] Clause 41. The method of any one of clauses 35 to 40, wherein performing action (f) includes calculating an average of the pressure and / or mass values ​​over a predetermined duration.

[0158] Clause 42. The method of any one of clauses 35 to 41, wherein performing action (f) includes adjusting the pressure of the fluid-solid system.

[0159] Clause 43. The method of clause 42, wherein adjusting the pressure of the fluid-solid system includes introducing additional fluid into the core holder.

[0160] Clause 44. The method of clause 43, wherein introducing the additional fluid into the core holder includes opening, via the processor, an automatic valve for a predetermined duration, the automatic valve being in fluid communication with a source of pressure.

[0161] Clause 45. The method of clause 44, wherein the source of pressure comprises a container of compressed gas.

[0162] Clause 46. The method of clause 43, wherein adjusting the pressure of the fluid-solid system includes removing at least some fluid from the core holder.

[0163] Clause 47. The method of clause 46, wherein removing at least some fluid from the core holder includes opening, via the processor, an automatic valve for a predetermined duration, the automatic valve being in fluid communication with a source of vacuum.

[0164] Clause 48. The method of any one of clauses 35 to 47, further comprising controlling the atmosphere in the environmental chamber via an automatic purge valve, the automatic purge valve being in selective fluid communication with a source of non-reactive gas.

[0165] Clause 49. A method according to any one of clauses 35 to 48, comprising automatically interpreting, converting and recording raw signals from the pressure sensor, temperature sensor and mass comparator into thermodynamic data characteristic of the fluid-solid system.

[0166] While forms of embodiments have been shown and described, as is apparent from the general description and specific embodiments above, various modifications can be made without departing from the spirit and scope of the present disclosure. Accordingly, the present disclosure is not limited thereby. Furthermore, the term "comprising" is considered synonymous with the term "including." Furthermore, whenever a composition, element, or group of elements is followed by the transitional phrase "comprising," it also contemplates the same composition or group of elements with the transitional phrase "consisting essentially of," "consisting of," "selected from the group consisting of," or "is" following the composition or description of one or more elements, and vice versa; for example, the terms "comprising," "consisting essentially of," and "consisting" also include products of combinations of the elements listed before the term.

[0167] As used herein, a "composition" can include the component(s) of the composition and / or the reaction product(s) of two or more components of the composition. The compositions of the present disclosure can be prepared by any suitable mixing process. As used herein, a "blend" can include the component(s) of the blend and / or the reaction product(s) of two or more components of the blend. The blend can be prepared by any suitable mixing process.

[0168] The references herein are incorporated by reference in their entirety to indicate the state of the art as of their publication or filing date, and this information may be adopted herein, where necessary, to exclude certain embodiments that are prior art.

[0169] For purposes of this disclosure, and unless otherwise specified, all numerical values ​​in the detailed description and claims herein are modified by the stated value "about" or "approximately" to account for experimental error and variations that would be expected by one of ordinary skill in the art. For brevity, only a few ranges are explicitly disclosed herein. However, a range from any lower limit can be combined with any upper limit to describe a range not expressly recited, and a range from any lower limit can be combined with any other lower limit to describe a range not expressly recited, and in the same way, a range from any upper limit can be combined with any other upper limit to describe a range not expressly recited. Furthermore, a range includes every point or individual value between the endpoints of that range, even if not expressly recited. Thus, any point or individual value can serve as a lower or upper limit of the range itself, combined with any other point or individual value, or any other lower or upper limit, to describe a range not expressly recited.

[0170] As used herein, the indefinite articles "a" or "an" shall mean "at least one" unless specified otherwise or the context clearly indicates otherwise. For example, an embodiment comprising a "core holder" includes embodiments comprising one, two, or more core holders unless specified otherwise or the context clearly indicates that only one core holder is included.

[0171] While the foregoing is directed to embodiments of the present disclosure, other and further aspects of the disclosure may be devised without departing from the basic scope thereof, which scope is determined by the following claims.

Claims

1. 1. An apparatus for characterizing a fluid-solid system, said apparatus comprising: A core holder; a pressure sensor coupled to the core holder, the pressure sensor configured to sense pressure within the core holder and produce a pressure signal; a mass comparator operably connected to an interior of the core holder; 1. A pressure and flow control system comprising: a pressure source in selective fluid communication with the core holder; an automatic pressure valve configured to control the pressure within the core holder; controlling the automatic pressure valve based at least in part on the pressure signal; stepping the pressure in the core holder through a series of predetermined pressure set points; logging data from the pressure sensor and the mass comparator; controlling the pressure in the core holder at a first predetermined pressure set point; analyzing the pressure signal for constancy; opening the automatic pressure valve for a calculated period of time to control the pressure in the core holder at a second predetermined pressure set point; a processor configured to: a pressure and flow control system comprising: An apparatus comprising:

2. 10. The apparatus of claim 1, wherein the processor is further configured to analyze the pressure signal for stationarity by an Augmented Dickey-Fuller (ADF) test and / or a Kwiatkowski-Phillips-Schmidt-Sinn (KPSS) test.

3. the processor: performing a series of short valve openings to generate a series of data; analyzing the series of data to calculate the calculated time period; The apparatus of claim 1 , further configured to calculate the calculated time period by:

4. a vacuum source in selective fluid communication with the core holder; an automatic vacuum valve configured to control pressure within the core holder, the processor further configured to control the automatic vacuum valve; The apparatus of claim 1 further comprising:

5. The core holder is disposed inside an environmental chamber, the environmental chamber comprising: a heating element, a cooling element, or both; Temperature sensor and Equipped with the processor is further configured to control a temperature within the environmental chamber.

10. The apparatus of claim 1.

6. 10. The apparatus of claim 1, further comprising a gas chromatograph operably connected to the core holder, the processor further configured to automatically direct the contents of the core holder to the gas chromatograph.

7. The apparatus of claim 1 , wherein the processor is further configured to automatically log data from the pressure sensor and the mass comparator.

8. The apparatus of claim 1 , wherein the core holder is a first core holder, and the apparatus further comprises at least a second core holder.

9. 1. A method for characterizing a fluid-solid system, said method comprising: (a) contacting a porous rock sample disposed within a core holder with a fluid to form a fluid-solid system inside the core holder; (b) automatically adjusting, via a processor and at least one automatic valve, the temperature of the fluid-solid system, the pressure of the fluid-solid system, or both, to a preselected value; (c) monitoring the fluid-solid system for equilibrium; (d) recording a value for temperature, a value for pressure, a value for mass, or a combination thereof, of said fluid-solid system to provide recorded data; (e) performing an action based on the recorded data, wherein performing the action includes: analyzing the pressure signal for stationarity by performing an Augmented Dickey-Fuller (ADF) test, a Kwiatkowski-Phillips-Schmidt-Sinn (KPSS) test, or both, wherein the pressure signal corresponds to a pressure within the core holder. and performing an action, including (f) repeating one or more of operations (b) through (e) to generate thermodynamic data characteristic of said fluid-solid system; and A method comprising:

10. the at least one automatic valve is a pressure control valve; performing the action of operation (e) further comprises opening the pressure control valve for a calculated period of time.

10. The method of claim 9.

11. said performing the action of operation (e) performing a series of short valve openings to generate a series of data; analyzing the series of data to calculate the calculated time period; The method of claim 10 further comprising:

12. 10. The method of claim 9, wherein said performing the action of operation (e) further comprises calculating an average of the pressure values, an average of the mass values, or both over a predetermined duration.

13. wherein said performing the action of operation (e) further comprises adjusting the pressure of the fluid-solid system, and wherein said adjusting the pressure of the fluid-solid system comprises: introducing additional fluid into said core holder; removing at least some fluid from the core holder; or combinations of these 10. The method of claim 9, comprising:

14. When performing the action of operation (e) further comprises introducing additional fluid into the core holder, introducing additional fluid into the core holder comprises opening, via the processor, an automatic valve for a predetermined duration, the automatic valve being in fluid communication with a source of pressure; or When performing the action of operation (e) further comprises removing at least some fluid from the core holder, removing at least some fluid from the core holder comprises opening, via the processor, an automatic valve for a predetermined duration, the automatic valve being in fluid communication with a source of vacuum. The method of claim 13.

15. 10. The method of claim 9, wherein the core holder is disposed in an environmental chamber, the method further comprising controlling the atmosphere in the environmental chamber via an automatic purge valve, the automatic purge valve being in selective fluid communication with a source of non-reactive gas.

16. 10. The method of claim 9, further comprising automatically interpreting, converting, and recording raw signals from the pressure sensor, the temperature sensor, and the mass comparator into thermodynamic data characteristic of the fluid-solid system.

17. 1. A method for characterizing a fluid-solid system, comprising: (a) introducing a fluid with a porous rock sample disposed within the core holder to form a fluid-solid system inside the core holder; (b) automatically adjusting the pressure of the fluid-solid system to a preselected value via a processor and at least one automatic valve, wherein said automatically adjusting includes: performing a series of short valve openings to generate a series of data; analyzing the series of data to calculate a calculated time period; automatically adjusting the pressure of the fluid-solid system, including: (c) monitoring the fluid-solid system for equilibrium with a pressure sensor; (d) recording a value for pressure, a value for mass, or a combination thereof, of said fluid-solid system to provide recorded data; (e) performing an action based on the recorded data, wherein performing the action includes: analyzing the pressure signal for stationarity by performing an Augmented Dickey-Fuller (ADF) test, a Kwiatkowski-Phillips-Schmidt-Sinn (KPSS) test, or both, wherein the pressure signal corresponds to a pressure within the core holder. and performing an action, including (f) repeating one or more of operations (b) through (e) to generate thermodynamic data characteristic of said fluid-solid system; and A method comprising:

18. 18. The method of claim 17, wherein the core holder is disposed in an environmental chamber, the method further comprising controlling the atmosphere in the environmental chamber via an automatic purge valve, the automatic purge valve being in selective fluid communication with a source of non-reactive gas.

19. 18. The method of claim 17, further comprising automatically interpreting, converting, and recording raw signals from the pressure sensor, the temperature sensor, and the mass comparator into thermodynamic data characteristic of the fluid-solid system.

Citation Information

Patent Citations

  • Method and instrument for adsorption equilibrium determination

    JP1989262437A

  • Process for Characterization of Micro and Meso Porous Materials

    US20150000377A1

  • Nanocondensation Apparatus

    US20180321120A1

  • Data prediction system and data prediction method

    WO2017212880A1