Method of monitoring subterranean reservoir conditions

The method of injecting reactive tracers into wells and analyzing their presence and reaction products in subterranean reservoirs addresses the limitations of existing systems, enabling accurate determination of fluid saturation levels and assessing reservoir treatments.

GB2700960APending Publication Date: 2026-04-01RESMAN AS
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Patent Information

Authority / Receiving Office
GB · GB
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-05-30
Publication Date
2026-04-01

AI Technical Summary

Technical Problem

Existing subterranean reservoir monitoring systems lack the ability to reproducibly and accurately determine characteristics and conditions, such as fluid saturation levels, in hydrocarbon and carbon dioxide storage reservoirs, and assess the effectiveness of enhanced oil recovery treatments.

Method used

A method involving the injection of reactive tracers into wells, allowing for the measurement of tracer presence and reaction products to determine reservoir conditions, including saturation levels, by analyzing arrival times and concentrations, with optional use of accelerating agents to enhance reactions at target locations.

Benefits of technology

Enables reproducible and accurate determination of fluid saturation levels and assessment of reservoir treatments, providing precise information on reservoir conditions and treatment effectiveness.

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Abstract

The present invention provides a method and system for monitoring a subterranean reservoir formation 16. The method comprises injecting at least one reactive tracer 20 into a well 14, shutting in the
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Description

A hydrocarbon reservoir is a subsurface accumulation of hydrocarbons contained in porous or fractured rock formations. A production well is drilled into or through the reservoir primarily for producing oil and gas. In an oil and gas system an injection well is drilled into or through the reservoir to inject fluids into the reservoir to primarily maintain reservoir pressure to assist production into the production well or displace oil by other fluids. Understanding conditions and / or characteristics of the reservoir such as fluid saturation levels are important for determining the amount of oil and other hydrocarbons present in the reservoir. The saturation level is a measure of how much pore space is occupied by a trapped phase. Enhanced Oil Recovery (EOR) is a technology to increase the recovery factor of oil from a hydrocarbon well and extend the life of fields. This technology is applied to formations with low recovery factor using three different types of EOR namely gas injection, thermal injection and chemical injection. Gas injection EOR uses gases such as natural gas, nitrogen, or carbon dioxide (CO2) to displace oil. Thermal injection involves the introduction of heat to reduce fluid viscosity. In chemical EOR oil is recovered through the injection of chemicals (polymers, surfactants, alkalis and / or formulated mixtures) into the reservoir to aid oil mobility and / or reduce surface tension. A carbon capture storage (CCS) reservoir is a subsurface formation used to store carbon dioxide (CO2) captured from industrial processes, or directly from the atmosphere. Captured CO2 is injected into subsurface formations such as oil, water or gas reservoirs, coal seams or salt dome reservoirs to store it permanently. Understanding conditions and / or characteristics of the CCS reservoir such as fluid saturation levels are important for determining the storage capacity, storage level and storage efficiency of the reservoir. The use of chemical tracers to monitor fluid transport in different type of subsurface reservoir is known including ground water studies, petroleum production and carbon capture applications. It is known to use chemical tracers to provide a limited understanding of oil and gas reservoir fluid flow pathways for example oil companies may use tracers to determine or monitor the connectivity between an injection and a production well in oil and gas reservoirs. Summary of the invention It is amongst the aims and objects of the invention to provide a system and method which obviates or mitigates one or more drawbacks or disadvantages of the prior art subterranean reservoir monitoring systems. There is a need to obtain information on characteristics and / or conditions of subterranean reservoirs and to determine characteristics and / or conditions of fluids present in the subterranean reservoirs. It is an object of the invention to provide a system and method to investigate characteristics and / or conditions of a subsurface formation. It is another object of the invention to provide a system and method for reproducibly and accurately determining characteristics and / or conditions of a subsurface formation. It is a further object of the invention to provide a system and method for reproducibly and accurately determining a remaining oil saturation level of a hydrocarbon formation. It is another object of the invention to provide a system and method to assess or verify a reservoir treatment such as an enhanced oil recovery (EOR) treatment. It is a further object of the invention to provide a system and method for reproducibly and accurately determining a residual CO2 saturation level of a CO2 storage formation. Further aims and objects of the invention will become apparent from reading the following description. According to a first aspect of the invention, there is provided a method of monitoring a subterranean reservoir formation, the method comprising: injecting at least one reactive tracer into a well; shutting in the well; inducing production from the well and sampling produced fluid to measure the presence and / or concentration of the reactive tracer and / or the at least one reaction product; based on the presence and / or concentration of the reactive tracer and / or the at least one reaction product determining at least one condition and / or characteristic of the subterranean reservoir formation. The method may comprise determining at least one condition and / or characteristic of the subterranean reservoir formation based on the arrival time of the at least one reactive tracer and / or the arrival time of the at least one reaction product in the samples. The method may comprise determining at least one condition and / or characteristic of the subterranean reservoir formation based on the concentration of at least one reactive tracer and / or the concentration of the at least one reaction product. The method may comprise locating the at least one reactive tracer in a target location in the formation. The method may comprise shutting in the well with the at least one reactive in a target location in the formation. The method may comprise injecting an injection fluid after the reactive tracer injection to push the at least one reactive tracer towards and / or to a target location in the formation. The method may comprise shutting in the well after the injection of the reactive tracer to allow reaction of the reactive tracer to generate at least one reaction product. The method may comprise shutting in the well when the at least one reactive tracer has reached the target location. The method may comprise shutting in the well for 1 hour. The method may comprise shutting in the well for up to 1 day. The method may comprise shutting in the well for up to 1 week. The method may comprise injecting the reactive tracer into a well before and / or after a reservoir treatment. The reservoir treatment may be a reservoir event. The reservoir event may be a flooding event such as water flooding. The reservoir treatment may be an injection such as a gas or thermal injection. The reservoir treatment may be a chemical treatment. The reservoir treatment may be configured to adjust or change at least one chemical condition and / or characteristic of the reservoir, formation and / or fluid in the reservoir and / or formation. The reservoir treatment may be configured to adjust or change the chemical environment of the reservoir, formation and / or fluid in the reservoir and / or formation. The reservoir treatment may be an enhanced oil recovery treatment. The reservoir treatment may be a well fluid treatment. The reservoir treatment may be configured to adjust or change the mobility or flow characteristics of at least one well or reservoir fluid. The reservoir treatment may be configured to adjust or change a physical characteristic of at least one well or reservoir fluid. The reservoir treatment may be configured to adjust or change viscosity, salinity, pressure, emulsification, surface tension, solubility, capillary pressure of at least one well or reservoir fluid. The reservoir treatment may be configured to adjust or change at least one well or reservoir condition. The subterranean reservoir may be a hydrocarbon reservoir. The subterranean reservoir may be a carbon dioxide storage reservoir. The subterranean reservoir may be a water reservoir. The subterranean reservoir may be a carbon dioxide / water reservoir. The fluid may be selected from the group comprising oil, water, gas, carbon dioxide, or a mixture of any of oil, water, gas or carbon dioxide. The fluid may be a mixture of water and carbon dioxide. The at least one reactive tracer may be configured to react and / or interact under reservoir conditions. The at least one reactive tracer may be configured to react and / or interact to specific reservoir characteristics and / or conditions. The at least one reactive tracer may be configured to hydrolyse, react, degrade or at least partially hydrolyse, react or degrade on exposure to a condition or reactant in the reservoir. The at least one reactive tracer may be configured to hydrolyse, react, degrade or at least partially hydrolyse, react, degrade on contact or in the presence of a well or reservoir fluid. The at least one reactive tracer may be a partitioning tracer. The at least one reactive tracer may have a known oil / water partitioning coefficient. The method may comprise determining a condition and / or characteristic of the subterranean reservoir formation based on the partitioning tracer coefficient and / or the arrival time of the at least one reactive tracer and / or the at least one reaction product. The at least one reactive tracer may be an ester. The at least one reactive tracer may be an amide. The at least one reactive tracer may be configured to generate at least one reaction product. The at least one reaction product may comprise an alcohol. The at least one reaction product may comprise an acid. The at least one reaction product may be detectable in a production flow. The at least one reaction product may be a traceable product. The at least one reactive tracer may be selected based on the characteristics of the at least one reactive tracer and the well or reservoir conditions. The method may comprise analysing the at least one sample to measure the presence and / or concentration of the at least one reactive tracer and / or the at least one reaction product in the sample. The method may comprise analysing the at least one sample for type and / or concentration of the at least one reactive tracer and / or the at least one reaction product as a function of sampling time. The method may comprise detecting and / or measuring the concentration of the at least one reactive tracer and / or at least one reaction product in the at least one sample in real time. The method may comprise detecting and / or measuring the concentration of the at least one reactive tracer and / or at least one reaction product in the at least one sample using an online analyser. The method may comprise repeating the tracer test at a second or further time. The method may comprise repeating the tracer test before and / or after a reservoir is treated. The method may comprise repeating the tracer test multiple times before and / or after a reservoir is treated. The method may comprise repeating the tracer test at the same target location in the formation. The method may comprise repeating the tracer test with a different tracer. The method may comprise repeating the tracer test with a different tracer having different properties. The method may comprise repeating the tracer test with a different tracer having a different partitioning coefficient. The method may comprise repeating the tracer test with a different tracer at the same target location in the formation. The at least one reactive tracer may be selected based on the adjusted conditions and / or characteristics in a treated well or treated reservoir. The at least one reactive tracer may be selected based on the adjusted conditions and / or characteristics in a treated well or treated reservoir to locate a second or further reactive tracer (second or further test) at substantially the same location in the formation as the first reactive tracer (first test). The method may comprise selecting at least reactive tracer having characteristics compatible with the adjusted conditions and / or characteristics in the treated well or treated reservoir to locate the at least one reactive tracer at substantially the same target location in the formation before and / or after the reservoir treatment. The characteristics of the at least one reactive tracer may be selected from chemical composition, partitioning coefficient and / or reactivity. The at least one reactive tracer may be a liquid, solid or gas. The method may comprise collecting samples. The method may comprise collecting samples from produced fluid. The method may comprise obtaining produced fluid from at least one production well. The at least one production well may be in fluid communication with the formation. The method may comprise collecting the at least one sample at one or more sampling times. The at least one sample may be collected for later analysis onsite or offsite. The method may comprise preserving the tracer data in the samples. The method may comprise stopping or quenching a reaction in the samples. The method may comprise chemically treating the at least one sample to stop or quench the reaction in the at least one sample. The method may comprise removing a reactant from the at least one sample. The method may comprise chemically treating the at least one samples to remove a reactant. The method may comprise dehydrating the at least one sample. The method may comprise removing water from the at least one sample. The method may comprise freezing the at least one sample. The method may comprise storing the at least one sample. The method may comprise transporting the at least one sample. The at least one sample may be measured in real time. Samples may be collected and / or measured downstream of a production influx zone at known sampling times. The method may comprise collecting at least one sample at a pre-determined time sequence or predetermined profile. The method may comprise adjusting the sample volume and / or sampling time. The sampling sequence, duration and / or frequency may be modified during the sampling operation. The sampling may be achieved by a sampling device or probe arranged in the flow of produced fluid and / or injection fluid. The sampling device or probe may be located downhole or at surface. The sampling may be conducted at the one or more of said sampling times. The at least one tracer may be detected by a detection device such a sensor. The detection device may facilitate real time monitoring and / or analysis of the tracer in the flow of produced fluid and / or injection fluid. The real time monitoring and / or analysis may be achieved by a detector device or probe. The detector device or probe may be arranged in the flow of produced fluid and / or injection fluid. The detector device or probe may be located downhole or at surface. The method may comprise determining or estimating a saturation level for the reservoir. The method may comprise determining or estimating a residual fluid saturation level for the reservoir. The method may comprise determining a fluid saturation level of the reservoir based on the presence and / or concentration of the reactive tracer and / or the at least one reaction product. The method may comprise determining an oil saturation level of the reservoir formation. The method may comprise determining a residual oil saturation level of the reservoir formation. The method may comprise determining a water saturation level of the reservoir formation. The method may comprise determining a gas saturation level of the reservoir formation. The method may comprise determining a carbon dioxide saturation level of the reservoir formation. The method may comprise determining a brine saturation level of the reservoir formation. The method may comprise injecting at least one accelerating agent into the well. The at least one accelerating agent may be configured to enhance or accelerate the reaction of the at least one reactive tracer to form the at least one reaction product. The accelerating agent and the at least one reactive tracer may be injected into the well at different times. The accelerating agent and the at least one reactive tracer may have different migration rates though the reservoir or formation. The accelerating agent may have a faster migration rate than the at least one reactive tracer. The accelerating agent may be injected after the at least one reactive tracer. The accelerating agent may have a slower migration rate than the at least one reactive tracer. The accelerating agent may be injected before the at least one reactive tracer. The method may comprise injecting an injection fluid after the accelerating agent injection to push the accelerating agent towards or to a target location in the formation. The method may comprise injecting an injection fluid after the accelerating agent injection to push the accelerating agent and / or the reactive tracer towards or to the target location in the formation. The method may comprise locating the reactive tracer in the target location in the formation. The method may comprise locating the accelerating agent in the target location in the formation. The method may comprise shutting in the well with the reactive tracer in the target location in the formation. The method may comprise shutting in the well with the reactive tracer and the accelerating agent in the target location in the formation. The method may comprise shutting in the well to allow enhanced or accelerated reaction of the reactive tracer in the presence of or in contact with the accelerating agent to generate at least one reaction product. According to a second aspect of the invention, there is provided a method of monitoring a subterranean reservoir formation, the method comprising: injecting a first reactive tracer into a well; shutting in the well; inducing production from the well and sampling produced fluid to measure the presence and / or concentration of the first reactive tracer and / or the at least one reaction product; based on the presence and / or concentration of the first reactive tracer and / or the at least one reaction product determining a first condition and / or characteristic of the subterranean reservoir formation; performing a reservoir treatment; injecting a second reactive tracer into the well shutting in the well; inducing production from the well and sampling produced fluid to measure the presence and / or concentration of the second reactive tracer and / or the at least one reaction product; based on the presence and / or concentration of the second reactive tracer and / or the at least one second reaction product determining a second condition and / or characteristic of the subterranean reservoir formation. The method may comprise determining a first condition and / or first characteristic of the subterranean reservoir formation based on the arrival time of the first reactive tracer and / or the arrival time of the first reaction product. The method may comprise determining a first condition and / or first characteristic of the subterranean reservoir formation based on the concentration of the first reactive tracer and / or the concentration of the first reaction product The method may comprise determining a second condition and / or second characteristic of the subterranean reservoir formation based on the arrival time of the second reactive tracer and / or the arrival time of the at least one second reaction product. The method may comprise determining a second condition and / or second characteristic of the subterranean reservoir formation based on the concentration of the second reactive tracer and / or the concentration of the at least one second reaction product. The method may comprise injecting an injection fluid after the first reactive tracer injection to push the first reactive tracer to a first target location in the formation. The method may comprise injecting an injection fluid after the second reactive tracer injection to push the second reactive tracer to a second target location in the formation. Preferably the first target location and the second target location are substantially the same. The method may comprise injecting the first reactive tracer into the well in a first injection medium. The method may comprise injecting the second reactive tracer into the well in a second injection medium. The first and second injection mediums may be the same. The first and second injection mediums may be different. The first injection medium may be a high salinity water. The second injection medium may be a low salinity water. The first injection medium may be a low salinity water. The second injection medium may be a high salinity water. The method may comprise shutting in the well after the injection of the first reactive tracer. The method may comprise shutting in the well after locating the first reactive tracer in the target location. The method may comprise shutting in the well after injecting the injection fluid to push or locate the first reactive tracer in the target location. The method may comprise shutting in the well to allow reaction of the first reactive tracer to generate at least one first reaction product. The method may comprise shutting in the well for 1 hour. The method may comprise shutting in the well for up to 1 day. The method may comprise shutting in the well for up to 1 week. The method may comprise shutting in the well after the injection of the second reactive tracer. The method may comprise shutting in the well after locating the second reactive tracer in the target location. The method may comprise shutting in the well after injecting the injection fluid to push or locate the second reactive tracer in the target location. The method may comprise shutting in the well to allow reaction of the second reactive tracer to generate at least one reaction product. The method may comprise shutting in the well for 1 hour. The method may comprise shutting in the well for up to 1 day. The method may comprise shutting in the well for up to 1 week. The reservoir treatment may be a reservoir event. The reservoir event may be a flooding event such as water flooding. The reservoir treatment may be an injection such as a gas or thermal injection. The reservoir treatment may be a chemical treatment. The reservoir treatment may be configured to adjust or change at least one chemical condition and / or characteristic of the reservoir, formation and / or fluid in the reservoir and / or formation. The reservoir treatment may be configured to adjust or change the chemical environment of the reservoir, formation and / or fluid in the reservoir and / or formation. The reservoir treatment may be an enhanced oil recovery treatment. The reservoir treatment may be a well fluid treatment. The reservoir treatment may be configured to adjust or change the mobility or flow characteristics of at least one well or reservoir fluid. The reservoir treatment may be configured to adjust or change a physical characteristic of at least one well or reservoir fluid. The reservoir treatment may be configured to adjust or change viscosity, salinity, pressure, emulsification, surface tension, capillary pressure of at least one well or reservoir fluid. The reservoir treatment may be configured to adjust or change at least one well or reservoir condition. The subterranean reservoir may be a hydrocarbon reservoir. The subterranean reservoir may be a carbon dioxide storage reservoir. The subterranean reservoir may be a water reservoir. The subterranean reservoir may be a carbon dioxide / water reservoir. The fluid may be selected from the group comprising oil, water, gas, carbon dioxide, or a mixture of any of oil, water, gas or carbon dioxide. The fluid may be a mixture of water and carbon dioxide. The first reactive tracer may be configured to react and / or interact under reservoir conditions. The first reactive tracer may be configured to react and / or interact to specific reservoir characteristics and / or conditions. The at least one reactive tracer may be configured to hydrolyse, react, degrade or at least partially hydrolyse, react or degrade on exposure to a condition or reactant in the reservoir. The at least one reactive tracer may be configured to hydrolyse, react, degrade or at least partially hydrolyse, react, degrade on contact or in the presence of a well or reservoir fluid. The second reactive tracer may be configured to react and / or interact under reservoir conditions. The second reactive tracer may be configured to react and / or interact to specific reservoir characteristics and / or conditions. The second tracer may be configured to hydrolyse, react, degrade or at least partially hydrolyse, react, degrade on exposure to a condition or reactant in the reservoir. The second reactive tracer may be configured to hydrolyse, react, degrade or at least partially hydrolyse, react, degrade on contact or in the presence of a well or reservoir fluid. The first reactive tracer may be a partitioning tracer. The second reactive tracer may be a partitioning tracer. The first reactive tracer may have a known oil / water partitioning coefficient. The second reactive tracer may have a known oil / water partitioning coefficient. The partitioning coefficients of the first reactive tracer and second reactive tracer may be same. The partitioning coefficients of the first reactive tracer and second reactive tracer may be different. The partitioning coefficient of the first reactive tracer may be a higher than the partitioning coefficient of the second reactive tracer. The partitioning coefficient of the first reactive tracer may be lower than the partitioning coefficient of the second reactive tracer. The method may comprise determining a condition and / or characteristic of the subterranean reservoir formation based on the partitioning tracer coefficient and the arrival times of the reactive tracer and / or the at least one reaction product in the samples. The first reactive tracer and second reactive tracer may be different. The first reactive tracer may be an ester. The first reactive tracer may be an ester configured to partition to an oleic phase. The first reactive tracer may be an amide. The second reactive tracer may be an ester. The second reactive tracer may be an ester configured to partition to an oleic phase. The second reactive tracer may be an amide. The first reactive tracer may be configured to generate a first reaction product. The first reaction product may comprise an alcohol. The first reaction product may comprise an acid. The first reaction product may be detectable in a production flow. The first reaction product may be a traceable product. The first reaction product may function as a tracer. The second reactive tracer may be configured to generate a second reaction product. The second reaction product may comprise an alcohol. The second reaction product may comprise an acid. The second reaction product may be detectable in a production flow. The second reaction product may be a traceable product. The second reaction product may function as a tracer. The first reactive tracer may be selected based on the characteristics of the first reactive tracer and the well or reservoir conditions. The second reactive tracer may be selected based on the characteristics of the second reactive tracer and the treated well conditions or treated reservoir conditions. The method may comprise analysing the at least one sample to measure the presence and / or concentration of the first reactive tracer and / or first reaction product in the sample. The method may comprise analysing the at least one sample for type and / or concentration of the first reactive tracer and / or first reaction product as a function of sampling time. The method may comprise detecting and / or measuring the concentration of the first reactive tracer and / or first reaction product in the at least one sample in real time. The method may comprise detecting and / or measuring the concentration of the first reactive tracer and / or first reaction product in the at least one sample using an online analyser. The method may comprise analysing the at least one sample to measure the presence and / or concentration of the second reactive tracer and / or second reaction product in the sample. The method may comprise analysing the at least one sample for type and / or concentration of the second reactive tracer and / or second reaction product as a function of sampling time. The method may comprise detecting and / or measuring the concentration of the second reactive tracer and / or second reaction product in the at least one sample in real time. The method may comprise detecting and / or measuring the concentration of the second reactive tracer and / or second reaction product in the at least one sample using an online analyser. The second reactive tracer may be selected based on estimated or measured adjusted conditions and / or characteristics in the treated well or treated reservoir. The second reactive tracer may be selected based on estimated or measured adjusted conditions and / or characteristics in the treated well or treated reservoir to locate the second reactive tracer at substantially the same target location in the formation as the first reactive tracer was located. The method may comprise selecting a second reactive tracer having characteristics compatible with the adjusted conditions and / or characteristics in the treated well or treated reservoir. The method may comprise selecting a second reactive tracer having characteristics compatible with the adjusted conditions or characteristics in the treated well or treated reservoir to locate the second reactive tracer at substantially the same target location in the formation as the first reactive tracer. The method may comprise selecting a second reactive tracer having characteristics suitable to locate the second reactive tracer at substantially the same target location in the formation as the first reactive tracer. The characteristics of the second reactive tracer may be selected from chemical composition, partitioning coefficient and / or reactivity. The method may comprise controlling and / or optimising the time of tracer injection, rate of tracer injection, duration of tracer injection, time of injection fluid injection, rate of injection fluid injection and / or duration of injection fluid injection to locate the first reactive tracer in a target location in the formation. The method may comprise controlling and / or optimising the time of tracer injection, rate of tracer injection, duration of tracer injection, time of injection fluid injection, rate of injection fluid injection and / or duration of injection fluid injection to locate the second reactive tracer in the target location in the formation. The target location of the first reactive tracer and the second reactive tracer are substantially the same. The injection fluid may be a liquid or a gas. The injection fluid may be water, wastewater, brine (salt water), or water mixed with chemicals. The injection fluid may be carbon dioxide, nitrogen and / or hydrocarbon gas. The first reactive tracer and the second reactive tracer may be injected into the well via a tracer injection device. The tracer injection device may be permanently installed in a well or injection site. The method may comprise adjusting and / or controlling the duration and / or frequency of the injection of tracer into the well. The first reactive tracers may be a liquid, solid or gas. The second reactive tracers may be a liquid, solid or gas. The method may comprise obtaining produced fluid from at least one production well. The at least one production well may be in fluid communication with the formation. The method may comprise collecting the at least one sample at one or more sampling times. The at least one sample may be collected for later analysis onsite or offsite. The method may comprise preserving the tracer data in the samples. The method may comprise stopping or quenching the reaction in the samples. The method may comprise chemically treating the sample to stop or quench the reaction in the samples. The method may comprise removing a reactant from the samples. The method may comprise chemically treating the samples to remove a reactant. The method may comprise dehydrating the samples. The method may comprise removing water from the samples. The method may comprise freezing the samples. The method may comprise storing the samples. The method may comprise transporting the samples. The samples may be measured in real time. Samples may be collected and / or measured downstream of a production influx zone at known sampling times. The method may comprise collecting at least one sample at a pre-determined time sequence or predetermined profile. The method may comprise adjusting the sample volume and / or sampling time. The sampling sequence, duration and / or frequency may be modified during the sampling operation. The sampling may be achieved by a sampling device or probe arranged in the flow of produced fluid and / or injection fluid. The sampling device or probe may be located downhole or at surface. The sampling may be conducted at the one or more of said sampling times. The at least one tracer may be detected by a detection device such a sensor. The detection device may facilitate real time monitoring and / or analysis of the tracer in the flow of produced fluid and / or injection fluid. The real time monitoring and / or analysis may be achieved by a detector device or probe. The detector device or probe may be arranged in the flow of produced fluid and / or injection fluid. The detector device or probe may be located downhole or at surface. The method may comprise determining or estimating a saturation level for the reservoir. The method may comprise determining or estimating a residual fluid saturation level for the reservoir. The method may comprise determining a saturation level of the reservoir based on the presence and / or concentration of the reactive tracer and / or the at least one reaction product. The method may comprise determining an oil saturation level of the reservoir formation. The method may comprise determining a residual oil saturation level of the reservoir formation. The method may comprise determining a water saturation level of the reservoir formation. The method may comprise determining a gas saturation level of the reservoir formation. The method may comprise determining a carbon dioxide saturation level of the reservoir formation. The method may comprise determining a brine saturation level of the reservoir formation. The method may comprise assessing an effectiveness of the reservoir treatment. The method may comprise comparing the first reactive tracer data samples analysis with the second reactive tracer data samples analysis to assess the effectiveness of the reservoir treatment. The method may comprise verifying a subsurface clean up. The method may comprise verifying a subsurface cleanup of oil spills. The method may comprise verifying subsurface clean up non-aqueous phase liquids. The method may comprise injecting at least one accelerating agent into the well. The at least one accelerating agent may be configured to enhance or accelerate the reaction of the first reactive tracer and / or the second reactive tracer to form the at least one reaction product. The accelerating agent and the first reactive tracer may be injected into the well at different times. The accelerating agent and the second reactive tracer may be injected into the well at different times. The accelerating agent and the first and / or second reactive tracer may have different migration rates though the reservoir or formation. The accelerating agent may have a faster migration rate than the first and / or second reactive tracer. The accelerating agent may be injected after the first and / or second reactive tracer. The accelerating agent may have a slower migration rate than the first and / or second reactive tracer. The accelerating agent may be injected before the first and / or second reactive tracer. The method may comprise injecting an injection fluid after the accelerating agent injection to push the accelerating agent towards or to a target location in the formation. The method may comprise injecting an injection fluid after the accelerating agent injection to push the accelerating agent and / or the first and / or second reactive tracer towards or to the target location in the formation. The method may comprise locating the accelerating agent in the target location in the formation. The method may comprise shutting in the well with the reactive tracer and the accelerating agent in the target location in the formation. The method may comprise shutting in the well to allow enhanced or accelerated reaction of the first or second reactive tracer in the presence of or in contact with the accelerating agent to generate at least one reaction product. By providing an accelerating agent which migrates at a different rate through the formation than the first reactive tracer and / or second reactive tracer it may facilitate the tracer and accelerating agent being kept separate from one another until they reach the target location of the formation. In the absence of the accelerating agent the reaction may be designed to occur very slowly. This may reduce reactions occurring during movement of the tracer into and out from the formation. In the presence of the accelerating agent at the target location the reaction may occur rapidly in the presence of the reactants such as oil. This has the benefit of providing accurate information on the conditions of the target location (test zone) and reducing the time required for the test. This may also avoid the necessity of a shut in or reduce the shut in time required. The accelerating agent may be an acid, base or buffered solution at a designed pH. The accelerating agent may be selected from the group comprising hydrochloric acid, formic acid, hydrofluoric acid, acetic acid, propionic acid, citric acid, benzoic acid, phosphoric acid, dihydrogenphosphate, ascorbic acid, sulphuric acid, sulfonic acid, ammonium salts (e.g. ammonium chloride, ammonium hydroxide, ammonium bisulphite), phoshonate buffers, citric acid buffers, ammonia, sodium hydroxide, calcium hydroxide, lithium hydroxide, magnesium hydroxide, pyridine, alkylamines, aromatic amines, iron chloride, iron sulphate, iron hydroxide. The accelerating agent may be a catalyst. The accelerating agent may be configured to catalyse the reactive tracer reaction to generate at least one reaction product. The accelerating agent may be a reactant. The accelerating agent may be configured to actively take part in the reaction to generate at least one reaction product. The accelerating agent may be configured to be consumed by the subterrain formation. The accelerating agent may be configured to be consumed by the subterrain formation in a competing reaction. The competing reaction may be a neutralization reaction between a carbonate reservoir and an acid. The competing reaction may be partly neutralized reaction by a naturally occurring buffer system. Embodiments of the second aspect of the invention may include one or more features of the first aspect of the invention or its embodiments, or vice versa. According to a third aspect of the invention, there is provided a method of measuring a fluid saturation level for a subterranean reservoir, the method comprising: injecting a first reactive tracer into a well; shutting in the well; inducing production from the well and sampling produced fluid to measure the presence and / or concentration of the first reactive tracer and / or the at least one reaction product; based on the presence and / or concentration of the first reactive tracer and / or the at least one first reaction product determining or estimating a first fluid saturation level of the subterranean reservoir formation; performing a reservoir treatment; injecting a second reactive tracer into a well; shutting in the well; inducing production from the well and sampling produced fluid to measure the presence and / or concentration of second reactive tracer and / or the at least one reaction product; based on the presence and / or concentration of the second reactive tracer and / or the at least one second reaction product determining or estimating a second fluid saturation level of the subterranean reservoir formation. The method may comprise determining a first condition and / or first characteristic of the subterranean reservoir formation based on the arrival time of the first reactive tracer and / or the arrival time of the first reaction product. The method may comprise determining a first condition and / or first characteristic of the subterranean reservoir formation based on the concentration of the first reactive tracer and / or the concentration of the first reaction product The method may comprise determining a second condition and / or second characteristic of the subterranean reservoir formation based on the arrival time of the second reactive tracer and / or the arrival time of the at least one second reaction product. The method may comprise determining a second condition and / or second characteristic of the subterranean reservoir formation based on the concentration of the second reactive tracer and / or the concentration of the at least one second reaction product The subterranean reservoir may be a hydrocarbon reservoir. The subterranean reservoir may be a carbon dioxide storage reservoir. The subterranean reservoir may be a water reservoir. The subterranean reservoir may be a carbon dioxide / water reservoir. The fluid may be selected from the group comprising oil, water, gas, carbon dioxide, or a mixture of any of oil, water, gas or carbon dioxide. The fluid may be a mixture of water and carbon dioxide. The reservoir treatment may be a chemical treatment. The reservoir treatment may be configured to adjust or change at least one chemical condition or characteristic of the reservoir, formation and / or fluid in the reservoir and / or formation. The reservoir treatment may be configured to adjust or change the chemical environment of the reservoir, formation and / or fluid in the reservoir and / or formation. The reservoir treatment may be an enhanced oil recovery treatment. The reservoir treatment may be a well fluid treatment. The reservoir treatment may be configured to adjust or change the mobility or flow characteristics of at least one well or reservoir fluid. The reservoir treatment may be configured to adjust or change a physical characteristic of at least one well or reservoir fluid. The reservoir treatment may be configured to adjust or change viscosity, salinity, pressure, emulsification, surface tension, capillary pressure of at least one well or reservoir fluid. The reservoir treatment may be configured to adjust or change at least one well or reservoir condition. The reservoir treatment may be configured to adjust or change at least one well condition. The method may comprise determining or estimating a saturation level for the reservoir. The method may comprise determining or estimating a residual fluid saturation level for the reservoir. The method may comprise determining a saturation level of the reservoir based on the presence and / or concentration of the reactive tracer and / or the at least one reaction product. The fluid may be water, gas, oil, carbon dioxide or brine. Embodiments of the third aspect of the invention may include one or more features of the first or second aspects of the invention or their embodiments, or vice versa. According to a fourth aspect of the invention, there is provided a method of assessing a reservoir treatment, the method comprising: injecting a first reactive tracer into a well; shutting in the well; inducing production from the well and sampling produced fluid to measure the presence and / or concentration of the first reactive tracer and / or the at least one reaction product; based on the presence and / or concentration of the first reactive tracer and / or the at least one reaction product determining a first condition and / or characteristic of the subterranean reservoir formation; performing the reservoir treatment; injecting a second reactive tracer into a well; shutting in the well; inducing production from the well and sampling produced fluid to measure the presence and / or concentration of second reactive tracer and / or the at least one reaction product; based on the presence and / or concentration of the second reactive tracer and / or the at least one second reaction product determining a second condition and / or characteristic of the subterranean reservoir formation. The method may comprise comparing the first condition and / or characteristic of the subterranean reservoir formation with the second condition and / or characteristic of the subterranean reservoir formation to assess the reservoir treatment. The method may comprise determining a first condition and / or first characteristic of the subterranean reservoir formation based on the arrival time of the first reactive tracer and / or the arrival time of the first reaction product. The method may comprise determining a first condition and / or first characteristic of the subterranean reservoir formation based on the concentration of first reactive tracer and / or the concentration of the first reaction product The method may comprise determining a second condition and / or second characteristic of the subterranean reservoir formation based on the arrival time of the second reactive tracer and / or the arrival time of the at least one second reaction product. The method may comprise determining a second condition and / or second characteristic of the subterranean reservoir formation based on the concentration of second reactive tracer and / or the concentration of the at least one second reaction product. Embodiments of the fourth aspect of the invention may include one or more features of the first to third aspects of the invention or their embodiments, or vice versa. According to a fifth aspect of the invention, there is provided a system for monitoring a reservoir, the system comprising: an injection device configured to inject at least one reactive tracer into a well after a reservoir treatment; and a collection device configured to collect samples of fluid produced from the reservoir. The system may comprise a valve to shut in the well. The injection device may be configured to inject a first reactive tracer into the reservoir before a reservoir treatment and inject a second reactive tracer into the reservoir after the reservoir treatment. The injection device may be configured to inject an injection fluid to push the at least one reactive tracer into the formation. The injection device may be configured to inject an injection fluid to push the at least one reactive tracer to a target location in the formation. The injection device may be configured to inject an injection fluid to push a first reactive tracer to a target location in the formation at a first time. The injection device may be configured to inject an injection fluid to push a second reactive tracer to the target location in the formation at a second time. The system may comprise at least one analyser device configured to detect the concentration and / or type of tracer in fluid produced from the reservoir. The system may comprise at least one analyser device configured to detect the concentration and / or type of at least one reaction product in fluid produced from the reservoir. The system may comprise at least one probe. The at least one probe may be configured to detect the concentration and / or type of tracer in fluid produced from the reservoir. The at least one probe may be a sample collection probe, a detector probe and / or a real time detector probe. The system may comprise a processor. The processor may be a computer processor. The processor may be configured to compare data of tracer injected before and after a reservoir treatment. The processor may be configured to analyse the arrival time of the reactive tracer and / or the at least one reaction product in the samples. The processor may be configured to determine a condition and / or characteristic of the subterranean reservoir formation based on the partitioning tracer coefficient and / or the arrival times of the reactive tracer and / or the at least one reaction product. The processor may be configured to determine a condition and / or characteristic of the subterranean reservoir formation based on the partitioning tracer coefficient and / or concentration of the reactive tracer and / or the at least one reaction product. The processor may be configured to control the injection time, injection duration and / or injection flow rate of the first reactive tracer so that the first reactive tracer is located in the target location in the formation. The processor may be configured to control the injection time, injection duration and / or injection flow rate of the second reactive tracer so that the second reactive tracer is located in the target location in the formation. Embodiments of the fifth aspect of the invention may include one or more features of the first to fourth aspects of the invention or their embodiments, or vice versa. According to a sixth aspect of the invention, there is provided a method of monitoring a subterranean formation, the method comprising: analysing tracer data from at least one sample previously collected from a fluid produced from a subterranean formation; wherein the subterranean formation comprises a first reactive tracer injected into the formation; based on the tracer data monitoring at least one characteristic or condition of the subterranean formation. The well may have been shut in after the injection of the reactive tracer to allow reaction of the reactive tracer to generate at least one reaction product. The well may have been shut in for up to 1 hour. The well may have been shut in for up to 1 day. The well may have been shut in for up to 1 week. The reactive tracer may have been injected into a well before and / or after a reservoir treatment. A first reactive tracer may have been injected into a well before a reservoir treatment. A second reactive tracer may have been injected into a well after a reservoir treatment. The first and second reactive tracers may be different. The method may comprise analysing tracer data from at least one sample previously collected from a fluid produced from a subterranean formation; wherein the subterranean formation comprises a second reactive tracer injected into the formation after a reservoir treatment, comparing the tracer data to assess a reservoir treatment. Embodiments of the sixth aspect of the invention may include one or more features of the first to fifth aspects of the invention or their embodiments, or vice versa. According to a seventh aspect of the invention, there is provided a method of monitoring a subterranean formation, the method comprising: analysing tracer data from at least one sample previously collected from a fluid produced from a subterranean formation; wherein the subterranean formation comprises a first reactive tracer injected into the formation before a reservoir treatment; and analysing tracer data from at least one sample previously collected from a fluid produced from a subterranean formation; wherein the subterranean formation comprises a second reactive tracer injected into the formation after a reservoir treatment; based on the tracer data monitoring at least one characteristic and / or condition of the subterranean formation. The first reactive tracer may be a partitioning tracer. The first reactive tracer may be configured to react to produce a first reaction product. The method may comprise measuring a concentration of the first reactive tracer in the at least one sample. The method may comprise measuring a concentration of at least one first reaction product in the at least one sample. The method may comprise analysing arrival time of the first reactive tracer and / or the at least one first reaction product. The second reactive tracer may be a partitioning tracer. The second reactive tracer may be configured to react to produce a second reaction product. The method may comprise measuring a concentration of the second reactive tracer in the at least one sample. The method may comprise measuring a concentration of at least one first reaction product in the at least one sample. The method may comprise determining a first condition and / or characteristic of the subterranean reservoir formation based on the arrival time of the first reactive tracer and / or the at least one first reaction product. The first and second reactive tracers may be different. The method may comprise determining a first condition and / or characteristic of the subterranean reservoir formation based on the first tracer and / or first reaction product data. The method may comprise determining a second condition and / or characteristic of the subterranean reservoir formation based on the arrival time of the second reactive tracer and / or the at least one second reaction product. The method may comprise determining a second condition and / or characteristic of the subterranean reservoir formation based on the second tracer and / or second reaction product data. The method may comprise comparing the data set of the first reactive tracer injected before the reservoir treatment with the data set of the second reactive tracer injected after the reservoir treatment to assess the reservoir treatment. The samples of the first tracer data may have been previously collected from a fluid produced from a subterranean formation during a first time period before a reservoir treatment. The samples of the second tracer data may have been previously collected from a fluid produced from a subterranean formation during a second time period after a reservoir treatment. Embodiments of the seventh aspect of the invention may include one or more features of the first to sixth aspects of the invention or their embodiments, or vice versa. According to an eighth aspect of the invention, there is provided a method of assessing a reservoir treatment, the method comprising: analysing tracer data from at least one sample previously collected from a fluid produced from a subterranean formation; wherein the subterranean formation comprises a first reactive tracer injected into the formation before a reservoir treatment; analysing tracer data from at least one sample previously collected from a fluid produced from a subterranean formation; wherein the subterranean formation comprises a second reactive tracer injected into the formation after a reservoir treatment; and comparing the tracer data to assess a reservoir treatment. The samples of the first tracer data may have been previously collected from a fluid produced from a subterranean formation during a first time period before a reservoir treatment. The samples of the second tracer data may have been previously collected from a fluid produced from a subterranean formation during a second time period after a reservoir treatment. The first and second reactive tracers may be different. Embodiments of the eighth aspect of the invention may include one or more features of the first to seventh aspects of the invention or their embodiments, or vice versa. According to a ninth aspect of the invention, there is provided a method of monitoring a subterranean formation, the method comprising: analysing tracer data from at least one sample previously collected from a fluid produced from a subterranean formation; wherein the subterranean formation comprises a reactive tracer injected into the formation after a reservoir treatment; and based on the tracer data monitoring at least one characteristic and / or condition of the subterranean formation. The reactive tracer may be a partitioning tracer. The method may comprise measuring a concentration of the reactive tracer in the at least one sample. The method may comprise measuring a concentration of at least one reaction product in the at least one sample. The method may comprise analysing an arrival time of the reactive tracer and / or the at least one reaction product. The method may comprise determining a condition and / or characteristic of the subterranean reservoir formation based on the arrival time of the reactive tracer and / or the at least one reaction product. The method may comprise determining a condition and / or characteristic of the subterranean reservoir formation based on the concentration of reactive tracer and / or the at least one reaction product. Embodiments of the ninth aspect of the invention may include one or more features of the first to eighth aspects of the invention or their embodiments, or vice versa. According to a tenth aspect of the invention, there is provided a method of collecting samples for analysis in monitoring a subterranean reservoir formation, wherein the formation comprises at least one reactive tracer injected into the formation before and / or after a reservoir treatment; comprising; producing fluid from the reservoir, collecting at least one sample from the produced fluid. The at least one reactive tracer may be configured to react or interact under reservoir conditions. The at least one reactive tracer may have characteristics compatible with adjusted conditions and / or characteristics in the treated well or treated reservoir. The at least one reactive tracer may have characteristics compatible with the adjusted conditions or characteristics in the treated well or treated reservoir to locate the second reactive tracer at a target location in the formation. The method may comprise preserving the tracer data in the samples. The method may comprise stopping or quenching the reaction in the samples. The method may comprise chemically treating the sample to stop or quench the reaction in the samples. The method may comprise removing a reactant from the samples. The method may comprise chemically treating the samples to remove a reactant. The method may comprise dehydrating the samples. The method may comprise removing water from the samples. The method may comprise freezing the samples. The method may comprise storing the samples. The method may comprise transporting the samples. Embodiments of the tenth aspect of the invention may include one or more features of the first to ninth aspects of the invention or their embodiments, or vice versa. According to an eleventh aspect of the invention, there is provided a method of storing and / or transporting collected samples for later analysis in monitoring a subterranean reservoir formation, wherein the formation comprises at least reactive tracer injected into the formation before and / or after a reservoir treatment and the samples are collected from produced fluids from the formation; the method comprising; quenching a reaction in the at least one sample; storing and / or transporting the at least one sample. The method may comprise preserving the tracer data in the samples. The method may comprise chemically treating the sample to stop or quench the reaction in the samples. The method may comprise removing a reactant from the samples. The method may comprise chemically treating the samples to remove a reactant. The method may comprise dehydrating the samples. The method may comprise removing water from the samples. The method may comprise freezing the samples. The method may comprise storing the samples. The method may comprise transporting the samples. The method may comprise transporting the samples to a laboratory for analysis. Embodiments of the eleventh aspect of the invention may include one or more features of the first to tenth aspects of the invention or their embodiments, or vice versa. According to an eleventh aspect of the invention, there is provided a method of monitoring a subterranean reservoir formation, the method comprising: injecting at least one reactive tracer into a well; shutting in the well; inducing production from the well and sampling produced fluid; measuring the presence and / or concentration of the reactive tracer and / or the at least one reaction product; based on the presence and / or concentration of the reactive tracer and / or at least one reaction product determining at least one condition and / or characteristic of the subterranean reservoir formation. The method may comprise determining at least one condition and / or characteristic of the subterranean reservoir formation based on the arrival time and / or partitioning coefficient of the at least one reactive tracer and / or the arrival time and / or partitioning coefficient of the at least one reaction product in the samples. The method may comprise locating the at least one reactive tracer in a target location in the formation. The method may comprise injecting an injection fluid after the reactive tracer injection to push the at least one reactive tracer towards and / or to a target location in the formation. The method may comprise shutting in the well when the at least one reactive tracer has reached the target location. The method may comprise injecting the reactive tracer into a well before and / or after a reservoir treatment. The method may comprise controlling and / or optimising the time of tracer injection, rate of tracer injection, duration of tracer injection, time of injection fluid injection, rate of injection fluid injection and / or duration of injection fluid injection to locate the reactive tracer in a target location in the formation. The method may comprise injecting a first reactive tracer into a well; shutting in the well; inducing production from the well and sampling produced fluid; performing a reservoir treatment; injecting a second reactive tracer into the well; shutting in the well; and inducing production from the well and sampling produced fluid. The method may comprise determining a first condition and / or first characteristic of the subterranean reservoir formation based on the arrival time of the first reactive tracer and / or the arrival time of the first reaction product. The method may comprise determining a second condition and / or second characteristic of the subterranean reservoir formation based on the arrival time of the second reactive tracer and / or the arrival time of the at least one second reaction product. The method may comprise comparing the first reactive tracer data with the second reactive tracer data to assess the effectiveness of the reservoir treatment. The reservoir treatment may be selected from the group comprising a reservoir event, gas injection, fluid injection, thermal injection, chemical treatment, enhanced oil recovery treatment and / or well fluid treatment. The reservoir treatment may be configured to adjust or change at least one chemical condition, chemical environment, mobility, flow characteristic, condition, viscosity, salinity, pressure, emulsification, surface tension, solubility, capillary pressure and / or characteristic of the reservoir, formation and / or fluid in the reservoir and / or formation. The subterranean reservoir may be selected from the group comprising hydrocarbon reservoir, carbon dioxide storage reservoir, and / or a water reservoir. The injection fluid may be selected from the group comprising oil, water, gas, carbon dioxide, nitrogen, hydrocarbon gas, waste water, brine and / or water mixed with chemicals. The at least one reactive tracer comprises an ester or an amide. The at least one reaction product may comprise an alcohol or an acid. The method may comprise preserving the tracer data in the samples by stopping or quenching a reaction in the samples, removing a reactant from the samples, dehydrating the samples and / or freezing the samples. The method may comprise determining or estimating a saturation level for the reservoir, a residual fluid saturation level for the reservoir, an oil saturation level of the reservoir formation, a residual oil saturation level of the reservoir formation, a water saturation level of the reservoir formation, a gas saturation level of the reservoir formation, a carbon dioxide saturation level of the reservoir formation, a brine saturation level of the reservoir formation and / or an effectiveness of the reservoir treatment. The method may comprise injecting at least one accelerating agent into the well. Embodiments of the twelfth aspect of the invention may include one or more features of the first to eleventh aspects of the invention or their embodiments, or vice versa. According to an thirteenth aspect of the invention, there is provided a system for monitoring a reservoir, the system comprising: at least one injection device configured to inject at least one reactive tracer into a well after a reservoir treatment; and a collection device configured to collect samples of fluid produced from the reservoir. The injection device may be configured to inject a first reactive tracer into the reservoir before a reservoir treatment and inject a second reactive tracer into the reservoir after a reservoir treatment. The injection device may be configured to inject an injection fluid to push the at least one reactive tracer into the formation. Embodiments of the thirteenth aspect of the invention may include one or more features of the first to twelfth aspects of the invention or their embodiments, or vice versa. Brief description of the drawings There will now be described, by way of example only, various embodiments of the invention with reference to the drawings, of which: Figure 1A is a simplified top sectional view of a reservoir formation showing migration of an injected tracer from the wellbore to a target location in the formation; Figure 1B and 1C are simplified side sectional views of a reservoir formation showing injection of tracer into the formation and production of fluids from the formation respectively in accordance with an aspect of the invention; and Figure 2A to 2E are simplified side sectional views of a reservoir formation showing different stages of tracer injections and production in accordance with an aspect of the invention. Detailed description of preferred embodiments Figure 1A, 1B and 1C are top and cross-sectional diagrams of a well showing the migration and reaction of a partitioning tracer in a formation. Figures 1A, 1B and 1C show a reservoir section 10, having a wellbore 14 in the formation 16. As best shown in Figure 1B a reactive partitioning tracer 20 is injected into the wellbore. After the tracer is injected additional fluid 22 is injected into the wellbore to push the tracer 20 into the formation 16 away from the well bore 14 to a target location (test zone) 15 in the formation. The target location in this example is defined as between radius Rmaxand Rminfrorn the wellbore centre as shown by arrows in Figure 1A. In this example the reactive tracer 20 is used to determine oil saturation at the target location (test zone) 15 in the formation. In this example the tracer 20 is an ester (e.g. Ethyl Acetate) which hydrolyses or partitions in the presence of an oleic phase (oil) to a form a reaction product 17 which in this example is an alcohol. When the tracer is located in the target location 15 the well is then shut-in or closed, and the tracer 20 is left to react in-situ with oil present in the formation to form a reaction product (alcohol). Production fluid is then produced from the formation into the well as best shown by arrows 25 in Figure 1C. Samples of produced fluids are collected and concentrations of the unreacted reactive tracer (ester) and the reaction product (alcohol) are measured and recorded as function of produced volume and / or time. The transport time for reactive tracer and the reaction product may also be analysed. As shown in Figure 1C, the arrival time of the reactive tracer 20 in the produced fluid is delayed compared with the arrival time of the reaction product 17 because the reactive tracer has affinity to stagnant oil in the formation slowing its migration to the wellbore during production. In contrast the reaction product 17 has no (or low) affinity to the stagnant oil so the reaction product 17 arrives at the wellbore first. Analysis of the production of unreacted tracer (ester) and reaction products (alcohol) may be used to establish tracer production curves to find the oil saturation. Symbolically we can write such reactions as R1COOR2 + H2O R20H + R^OOH (1) For the specific example of ethyl acetate, the relevant reaction is ch2cooch2ch2 + h2o CH2CH2OH + CH3C00H (2) i.e. ethyl acetate (CH2COOCH2CH2) hydrolyses (reacts with water) and form ethanol (CH2CH2OH) and acetic acid (CH^COOH). The ratio of unreacted tracer to reaction product may also be used to identify EOR potential as well as to evaluate the effect of EOR in numerous applications. Additionally, or alternative the ratio of unreacted reactive tracer to reaction product may be used to investigate conditions of the reservoir such as low-salinity water flooding on residual oil saturation. A range of compounds and reactions may be used as a basis for the tracer. In one example esters which partition to an oleic phase may be used. Esters that hydrolyses during a shut-in period, producing alcohol as a secondary tracer may be used. Alternatively, the reaction product used as reaction product (secondary tracer) may be an acid rather than an alcohol. Figure 2A to 2E are cross-sectional diagrams of a reservoir 100 showing the different stages of a method of assessing the effectiveness of a reservoir treatment which in this example is an Enhanced Oil Recovery (EOR) treatment. The EOR treatment chemical may be any chemical designed to change the well chemistry and / or the mobility of the displacing fluid. The injected chemicals may be designed to adjust the viscosity, wettability, salinity, pH and / or tension of the displaced fluid and / or well conditions. In this example the purpose of the EOR operation is to reduce oil saturation by injecting low salinity water in a reservoir with a highly saline water (salinity of 20-25%). Figures 2A, 2B and 2C show a reservoir 100, having a wellbore 114 in the formation 116. As best shown in Figure 2A a first reactive partitioning tracer 120 having a first partitioning coefficient for oil is injected into the wellbore. In this example the first tracer is methyl acetate (MeAc) which has a partitioning coefficient (K~3) which is suitable for the high salinity of the formation 116. After the first reactive tracer 120 is injected additional fluid 122 is injected into the wellbore to push the tracer 120 into the formation 116 away from the well bore 114 to a target location 115 (test zone) at a desired location in the formation. In this example the first reactive tracer 120 is used to determine oil saturation at the target location 115 (test zone) in the formation. In this example the first reactive tracer is an ester which hydrolyses or partitions in the presence of an oleic phase (oil) to a form a reaction product 117 which in this example is an alcohol. When the first tracer 120 is located at the target location the well is then shut-in or closed, and the first tracer 120 is left to react in-situ with oil present in the formation to form a reaction product (alcohol). Production fluid is produced as best shown by arrows 125 in Figure 2B. Samples of produced fluid are collected and the concentrations of the unreacted reactive tracer (ester) and the reaction product (alcohol) are measured and recorded as function of produced volume and / or time. As shown in Figure 2C an EOR operation or treatment is performed by injecting an EOR chemical 140 into the well. It will be appreciated that the EOR treatment may be performed or injected into a different well to treat the reservoir. In order to effectively test and evaluate the effect of the EOR operation or treatment it is important to test a similar reservoir volume by locating a tracer at the same target location (test zone) in the formation as the first test. By locating a tracer in the same target location (test zone) an accurate comparison may be made. This way the only factor which has changed is the change of reservoir conditions due to the EOR operation or treatment. The final location of the tracer in the formation is dependent on the partitioning coefficient of the tracer. The partitioning coefficient is dependent on the properties of the formation such as temperature and salinity of the formation which may have changed due to the EOR operation. As shown in Figure 2D, a second tracer 150 is selected and injected into the well. The second partitioning tracer is selected based on the optimal partitioning coefficient for the conditions of the treated formation 116a. In this example, as the EOR process is designed to reduce the salinity environment of the reservoir, a suitable the second tracer is used which is Ethyl Acetate (EtAc) with a partitioning coefficient in the order of 10-15 which is suitable for a low salinity environment test. This will facilitate the second tracer being located in the same target location 115 in the formation. The second reactive partitioning tracer 150 having a second partitioning coefficient for oil is injected into the wellbore. After the second tracer is injected additional fluid 122 is injected in the well to push the second tracer 150 to the same target location (test zone) 115. The volume of the second tracer and the push-volume used to displace the tracer into the formation is closely controlled the inject the second tracer into the target location (test zone). In this example the second tracer 150 is an ester which hydrolyses or partitions in the presence of an oleic phase (oil) to a form a reaction product 152 which in this example is an alcohol. The well is then shut-in or closed again, and the second tracer 150 is left to react in-situ with oil present in the formation to form a reaction product (alcohol). Production fluid is then produced as best shown by arrows 125a in Figure 2E. Samples of the production fluid are collected and the concentrations of the unreacted second tracer 150 (ester) and the reaction product (alcohol) are measured and recorded as function of produced volume and / or time. The pre-EOR treatment first tracer data may be compared with the post-EOR treatment second tracer data to assess the effectiveness of the EOR treatment in reducing oil saturation. By using two different tracers each selected and adapted to the different well conditions the tracers may be located in the same target location (test zone) before and after the reservoir treatment (EOR) allowing comparable results to be produced. As shown in Figures 2B and 2E, the arrival time of the reactive tracers 120, 150 in the produced fluid are delayed when compared with the arrival time of the reaction product 117, 152 because the reactive tracer 120, 150 has affinity to stagnant oil in the formation slowing its migration to the wellbore during production. In contrast the reaction products 117, 152 have no (or low) affinity to the stagnant oil so they arrive at the wellbore first. In the above examples samples of the produced fluid are taken and analysed for the presence of tracer and / or reaction products. Due to the reactive nature of the reactive tracers, the analysis of the sample to determine concentration values in a sample is time sensitive due to the presence of reactants in the samples. The reactions may continue after the fluid have been produced and collected from the well. The concentrations of tracer and reaction products may change while the samples are being stored or transported. One option may be to analyse the samples on site. This may involve collecting samples for later analysis on site or real time analysis. Due to harsh conditions onsite in remote locations it may be difficult on occasion to perform analysis on site or obtain accurate results onsite. This may limit the distance from the sampling point at the well-site to the lab facility where analysis is performed and may require the lab to be at or very close to the well site. Alternatively robust field equipment and methodologies may be applied to analysis the samples. Robust equipment suitable for field conditions may be less sensitive than instrumentation and methodology applicable in an off-site lab. For this reason, the minimal concentrations that can be detected in onsite analysis operations may be significantly higher (1000000 above) than those achievable in an off-site laboratory. Additionally or alternatively, once samples have been collected the reaction process may be quenched or stopped. Quenching or stopping a reaction in the samples may be achieved by various means such as temperature quenching or chemical quenching. Temperature quenching may involve quickly lowering the temperature to freeze the sample. This will slow or halt the reaction. Chemical quenching may involve removing one or more required chemicals involved in the reaction process. In this example when the reaction is hydrolysis, water is required to keep the process going. If water can be completely removed from the samples, the reaction can be stopped and the tracer data in the samples preserved. The stabilized preserved sample may be stored and / or transported to an offsite laboratory for analysis. The detection of the tracer type, concentration of tracer, concentration of reaction products, injection rate, production rate and / or the transport time may be used to determine characteristics and / or conditions of the reservoir. Tracer data from a first tracer test performed before a reservoir treatment or event may be used to determine characteristics and / or conditions of the reservoir, formation or the well before the reservoir treatment or event. Tracer data from a second tracer test performed after a reservoir treatment or event may be used to determine characteristics and / or conditions of the reservoir after a reservoir treatment or event. A comparison of tracer data from a first tracer test before a reservoir treatment may be compared with tracer data from a second tracer test performed after the reservoir treatment to assess the effectiveness of the reservoir treatment. It will be appreciated that in other examples other reactive tracer types may be used to determine, assess and / or characterise other parameters of the reservoir, well or formation. As an example reactive tracers may be selected which exhibit different portioning coefficients at different well, reservoir or formation conditions. It will be appreciated that in other examples other reactive tracer types may be used to locate a first tracer in a location or zone in a first test before a reservoir treatment and a second tracer test in substantially the same location or same zone in a second test after the reservoir treatment to facilitate accurate assessment of the well treatment. The type of the first tracer and / or the second tracer may be selected depending on the reservoir conditions, type of well treatment and the expected changes to the chemistry and / or conditions of the well, reservoir and / or formation. The type of the first tracer and / or the second tracer may be selected based on how the expected changes to the chemistry and / or conditions of the well, reservoir and / or formation will affect the migration of the tracer in the formation. It will be appreciated that in other examples other reactive tracer types may be used to locate a first tracer in a location or zone in a first test before a EOR operation and a second tracer test in substantially the same location or same zone in a second test after the EOR operation to facilitate accurate assessment of the well treatment. The type of the first tracer and / or the second tracer may be selected depending on the expected changes to the chemistry and / or conditions of the well, reservoir and / or formation due to the EOR operation. In the above examples the application have been focused on assessing characteristics of a hydrocarbon well. However, it will be appreciated that the invention may be applied for other applications such as Carbon Capture Utilisation and Storage (CCUS) applications. The principle is the same comprising injecting tracer with a larger partition coefficient to one phase than the reaction product, exposing the injected tracer to at least one phase for a period of time and producing or recovering the injected tracer and / or reaction products. The method may comprise recording of a time lag. The method may comprise recording of ratio of unreacted tracer to reaction products. The ratio of unreacted tracer to reaction products and / or time-lag may provide information on the at least one phase. The ratio of unreacted tracer to reaction products and / or time-lag may provide information such as saturation of the at least one phase (stagnant phase). One example application may be the assessment of CO2 storage potential in saline aquifers, where the objective is to find how much CO2 is retained through capillary trapping. Embodiments of the invention may provide a method capable of accurately monitoring the conditions and / or characteristics of a reservoir. This is particularly advantageous in monitoring a reservoir before and after a reservoir treatment operation such as EOR. By using a first reactive tracer in a target test location in the formation a first test of conditions and / or characteristics of the reservoir may be conducted before the reservoir treatment. A second different reactive tracer having different properties (such as different partitioning properties) may be selected based on the altered chemical environment of the reservoir after the treatment. The different properties of the second tracer may facilitate the second tracer to be located in the same target test location as the first tracer test providing accurate and comparable data. The invention may provide a method of monitoring a subterranean reservoir formation. The method comprising injecting a reactive tracer into a well and shutting in the well. The method comprising inducing production from the well and collecting samples to measure the presence and concentration of the reactive tracer and / or the at least one reaction product. Based on the presence and / or concentration of the reactive tracer and / or the at least one reaction product determining at least one condition or characteristic of the subterranean reservoir formation. Throughout the specification, unless the context demands otherwise, the terms 'comprise' or 'include', or variations such as 'comprises' or 'comprising', 'includes' or 'including' will be understood to imply the inclusion of a stated integer or group of integers, but not the exclusion of any other integer or group of integers. Furthermore, relative terms such as “up”, “down”, “top”, “bottom”, “upper”, “lower”, “upward”, “downward”, “horizontal”, “vertical”, “extend”, “retract” and the like are used herein to indicate directions and locations as they apply to the appended drawings and will not be construed as limiting the invention and features thereof to particular arrangements or orientations. The foregoing description of the invention has been presented for the purposes of illustration and description and is not intended to be exhaustive or to limit the invention to the precise form disclosed. The described embodiments were chosen and described in order to best explain the principles of the invention and its practical application to thereby enable others skilled in the art to best utilise the invention in various embodiments and with various modifications as are suited to the particular use contemplated. Therefore, further modifications or improvements may be incorporated without departing from the scope of the invention as defined by the appended claims.

Claims

1. A method of monitoring a subterranean reservoir formation, the method comprising:injecting at least one reactive tracer into a well;shutting in the well;inducing production from the well and sampling produced fluid;measuring the presence and / or concentration of the reactive tracer and / or the at least one reaction product;based on the presence and / or concentration of the reactive tracer and / or at least one reaction product determining at least one condition and / or characteristic of the subterranean reservoir formation.

2. The method according to claim 1 comprising determining at least one condition and / or characteristic of the subterranean reservoir formation based on the arrival time and / or partitioning coefficient of the at least one reactive tracer and / or the arrival time and / or partitioning coefficient of the at least one reaction product in the samples.

3. The method according to claim 1 or claim 2 comprising locating the at least one reactive tracer in a target location in the formation.

4. The method according to any preceding claim comprising injecting an injection fluid after the reactive tracer injection to push the at least one reactive tracer towards and / or to a target location in the formation.

5. The method according to any preceding claim comprising shutting in the well when the at least one reactive tracer has reached the target location.

6. The method according to any preceding claim comprising injecting the reactive tracer into a well before and / or after a reservoir treatment.

7. The method according to any preceding claim comprising controlling and / or optimising the time of tracer injection, rate of tracer injection, duration of tracer injection, time of injection fluid injection, rate of injection fluid injection and / orduration of injection fluid injection to locate the reactive tracer in a target location in the formation.

8. The method according to any preceding claim comprising: injecting a first reactive tracer into a well; shutting in the well;inducing production from the well and sampling produced fluid;performing a reservoir treatment;injecting a second reactive tracer into the well;shutting in the well; andinducing production from the well and sampling produced fluid.

9. The method according to claim 8 comprising determining a first condition and / or first characteristic of the subterranean reservoir formation based on the arrival time of the first reactive tracer and / or the arrival time of the first reaction product.

10. The method according to claim 8 or 9 determining a second condition and / or second characteristic of the subterranean reservoir formation based on the arrival time of the second reactive tracer and / or the arrival time of the at least one second reaction product.

11. The method according to any of claims 8 to 10 comprising comparing the first reactive tracer data with the second reactive tracer data to assess the effectiveness of the reservoir treatment.

12. The method according to any of claims 8 to 11 wherein the reservoir treatment is selected from the group comprising a reservoir event, gas injection, fluid injection, thermal injection, chemical treatment, enhanced oil recovery treatment and / or well fluid treatment.

13. The method according to claim 8 to 12 wherein the reservoir treatment is configured to adjust or change at least one chemical condition, chemical environment, mobility, flow characteristic, condition, viscosity, salinity, pressure, emulsification, surface tension, solubility, capillary pressure and / orcharacteristic of the reservoir, formation and / or fluid in the reservoir and / or formation.

14. The method according to any preceding claim wherein the subterranean reservoir is selected from the group comprising hydrocarbon reservoir, carbon dioxide storage reservoir, and / or a water reservoir.

15. The method according to any preceding claim wherein the injection fluid is selected from the group comprising oil, water, gas, carbon dioxide, nitrogen, hydrocarbon gas, waste water, brine, or water .mixed with chemicals.

16. The method according to any preceding claim wherein the at least one reactive tracer comprises an ester or an amide.

17. The method according to any preceding claim wherein the at least one reaction product comprises an alcohol or an acid.

18. The method according to any preceding claim comprising preserving the tracer data in the samples by stopping or quenching a reaction in the samples, removing a reactant from the samples, dehydrating the samples and / or freezing the samples.

19. The method according to any preceding claim comprising determining or estimating a saturation level for the reservoir, a residual fluid saturation level for the reservoir, an oil saturation level of the reservoir formation, a residual oil saturation level of the reservoir formation, a water saturation level of the reservoir formation, a gas saturation level of the reservoir formation, a carbon dioxide saturation level of the reservoir formation, a brine saturation level of the reservoir formation and / or an effectiveness of the reservoir treatment.

20. The method according to any preceding claim comprising injecting at least one accelerating agent into the well.

21. A system for monitoring a reservoir, the system comprising:at least one injection device configured to inject at least one reactive tracer into a well after a reservoir treatment; anda collection device configured to collect samples of fluid produced from the reservoir.

22. The system according to claim 21 wherein the injection device is configured to inject a first reactive tracer into the reservoir before a reservoir treatment and inject a second reactive tracer into the reservoir after a reservoir treatment.

23. The system according to claim 21 or 22 wherein the injection device is configured to inject an injection fluid to push the at least one reactive tracer into the formation.

24. A method of monitoring a subterranean formation, the method comprising: analysing tracer data from at least one sample previously collected from a fluid produced from a subterranean formation; wherein the subterranean formation comprises a first reactive tracer injected into the formation;based on the tracer data monitoring at least one characteristic or condition of the subterranean formation.

25. The method according to claim 24 comprising analysing tracer data from at least one sample previously collected from a fluid produced from a subterranean formation; wherein the subterranean formation comprises a second reactive tracer injected into the formation after a reservoir treatment, comparing the tracer data to assess a reservoir treatment.

Citation Information

Patent Citations

  • Tracers

    GB2526624A

  • Injection-backflow technique for measuring fracture surface area adjacent to a wellbore

    US20100314105A1

  • In-situ surfactant retention evaluation using single well chemical tracer tests

    US20190032479A1

  • Method to measure fluid drift and immobile phase saturation

    US3902362A

  • Method of determining the relation between fractional flow and saturation of oil

    US3990298A