A method, device, equipment, medium and program for quantitative description of remaining gas in a gas reservoir
By generating a definition formula for the production and reserve coefficient converted from production parameters and target parameters, the accuracy problem of the remaining gas distribution description in tight gas reservoirs is solved, a more accurate analysis of the remaining gas distribution in gas reservoirs is achieved, and the optimization of well deployment and potential tapping measures is supported.
Patent Information
- Application Number
- CN202311092095.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-08-28
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2043-08-28
AI Technical Summary
Existing methods for describing the distribution of remaining gas in tight gas reservoirs have limitations in accuracy and cannot effectively reflect the impact of factors such as reservoir properties, water saturation, and well pattern control on the distribution of remaining gas in gas reservoirs, resulting in insufficient accuracy in development adjustments and potential tapping measures.
By generating production parameters, constructing the initial production and reserve coefficient definition formula, and performing target parameter conversion, a production and reserve coefficient distribution map of tight gas reservoirs is generated, which comprehensively considers factors such as reservoir physical properties, thickness, porosity, and gas saturation to reflect the distribution of remaining gas in the gas reservoir.
It improves the accuracy of quantitative description of remaining gas in tight gas reservoirs, provides a more accurate basis for subsequent development adjustment of well deployment and potential tapping, and improves reserve utilization rate and recovery rate.
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Figure CN119531830B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of tight gas reservoir technology development, and in particular to a method, device, electronic equipment, medium and program for quantitatively describing remaining gas in a gas reservoir. Background Art
[0002] Tight gas reservoirs are characterized by the absence of clear edge and bottom water, strong reservoir heterogeneity, and complex seepage mechanisms. Therefore, developing tight gas reservoirs requires different development strategies than conventional gas reservoirs. In the later stages of development, the distribution of remaining gas is influenced by a variety of factors, including reservoir properties, water saturation, well pattern layout, well type selection, development timing, and process measures. Accurately understanding the distribution of remaining gas is crucial for adjusting well deployment and implementing potential recovery measures such as re-hole plugging and layer transfer. Therefore, a method that can accurately describe the distribution of remaining gas is needed to determine the distribution of remaining gas in a gas reservoir to meet the needs of subsequent potential recovery efforts and thereby improve reserve utilization and recovery rates.
[0003] Currently, the main research methods for the distribution of remaining gas in tight gas reservoirs include the gas saturation method, the pressure method, and the reserve abundance method. However, each method has certain limitations in its application. Among them, the gas saturation method cannot effectively reflect the changes in remaining gas and the energy status of the formation. The pressure method uses pressure to describe the reserves or remaining gas situation at a certain stage of gas field development. However, in tight gas reservoirs, the reservoir heterogeneity is strong. In areas with low gas saturation (high water saturation) and low physical properties, due to poor well network control and low gas well productivity, the production volume is low, but the pressure is actually high. Although the reserve abundance method avoids the influence of gas saturation parameters, it does not consider the impact of physical properties on the productivity of subsequent adjustment wells. Therefore, the current methods for describing the distribution of remaining gas in tight gas reservoirs still have some limitations. How to improve the accuracy of the quantitative description of the remaining gas in gas reservoirs has become an urgent problem to be solved. Summary of the Invention
[0004] In response to the above problems, embodiments of the present invention provide a method, device, electronic device, medium, and program for quantitatively describing remaining gas in a gas reservoir.
[0005] In a first aspect, an embodiment of the present invention provides a method for quantitatively describing remaining gas in a gas reservoir, comprising:
[0006] Generate the productivity parameters of tight gas reservoirs according to the preset productivity equation;
[0007] Constructing a definition formula of the initial production and storage coefficient of the tight gas reservoir according to the production capacity parameter and the pre-acquired energy storage parameter;
[0008] Performing target parameter conversion on the initial production and reserve coefficient definition formula to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula;
[0009] The physical property parameters of the tight gas reservoir are obtained, and a production and storage coefficient distribution map of the tight gas reservoir is generated according to the physical property parameters and the target production and storage coefficient definition formula.
[0010] According to an embodiment of the present invention, generating the productivity parameters of the tight gas reservoir according to a preset productivity equation includes:
[0011] The preset capacity equation is approximated to obtain an approximate equation of the capacity equation, wherein the preset capacity equation is:
[0012]
[0013] Among them, P r is the average pressure of the tight gas reservoir, P wf is the bottom hole flowing pressure of the tight gas reservoir, is the average viscosity of the gas in the tight gas reservoir, is the average compressibility of the gas in the tight gas reservoir, T is the reservoir temperature of the tight gas reservoir, P SC is the pressure of the gas in the tight gas reservoir under standard conditions, q g is the production of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, T SC is the temperature of the gas in the tight gas reservoir under standard conditions, t is the time, is the reservoir porosity of the tight gas reservoir, is the comprehensive compressibility coefficient of the tight gas reservoir, r w is the well reduced radius of the tight gas reservoir, S is the skin coefficient of the tight gas reservoir, D is the non-Darcy flow coefficient, lg(*) is a logarithmic function, c1, c2, c3, c4 are constant coefficients under a certain dimension;
[0014] The coefficient of the approximate equation is corrected to obtain a corrected equation of the approximate equation, and the production capacity parameter of the tight gas reservoir is generated using the corrected equation.
[0015] According to an embodiment of the present invention, the definition formula of the initial production and storage coefficient of the tight gas reservoir is constructed based on the production capacity parameter and the pre-acquired energy storage parameter, including:
[0016] The energy storage parameter of the tight gas reservoir is generated according to the pre-acquired energy storage factor, and the initial production and storage coefficient definition formula of the tight gas reservoir is generated according to the production capacity parameter and the energy storage parameter, wherein the initial production and storage coefficient definition formula is:
[0017]
[0018] Wherein, ζ is the production and storage coefficient of the tight gas reservoir, P r is the average pressure of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, is the reservoir porosity of the tight gas reservoir, S g is the gas saturation of the tight gas reservoir.
[0019] According to an embodiment of the present invention, performing target parameter conversion on the initial production and reserve coefficient definition formula to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula includes:
[0020] Performing pressure parameter conversion on the initial production and reserve coefficient definition formula to obtain a first-level conversion definition formula of the initial production and reserve coefficient definition formula;
[0021] Performing reserve parameter conversion on the primary conversion definition to obtain a secondary conversion definition for the primary conversion definition;
[0022] Performing abundance parameter conversion on the secondary transformation definition formula to obtain a tertiary transformation definition formula of the secondary transformation definition formula;
[0023] The third-level conversion definition formula is subjected to compression parameter conversion to obtain a fourth-level conversion definition formula of the third-level conversion definition formula, and the fourth-level conversion definition formula is determined to be the target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula.
[0024] According to an embodiment of the present invention, performing pressure parameter conversion on the initial production and reserve coefficient definition formula to obtain a first-level conversion definition formula of the initial production and reserve coefficient definition formula includes:
[0025] Determine the pressure parameter definition formula of the pressure parameter in the initial production and reserve coefficient definition formula, wherein the pressure parameter definition formula is:
[0026]
[0027] Among them, P r is the average pressure of the tight gas reservoir, T is the reservoir temperature of the tight gas reservoir, P SC is the pressure of the gas in the tight gas reservoir under standard conditions, Z is the compressibility coefficient of the gas in the tight gas reservoir under average pressure, and Z SC is the compressibility coefficient of the gas in the tight gas reservoir under standard conditions, T SC is the temperature of the gas in the tight gas reservoir under standard conditions, B g is the volume compressibility coefficient of the tight gas reservoir;
[0028] Substituting the pressure parameter definition into the initial production and reserve coefficient definition, a first-order conversion definition of the initial production and reserve coefficient definition is obtained.
[0029] According to an embodiment of the present invention, performing target parameter conversion on the initial production and reserve coefficient definition formula to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula includes:
[0030] Obtaining a target parameter of the initial production and reserve coefficient definition formula, performing dimensionless processing on a pressure coefficient parameter in the target parameter to obtain a dimensionless pressure coefficient of the pressure coefficient parameter;
[0031] Performing dimensionless processing on a saturation coefficient parameter in the target parameter to obtain a dimensionless saturation coefficient of the saturation coefficient parameter;
[0032] The initial production and reserve coefficient definition formula is converted into a target parameter according to the dimensionless pressure coefficient and the dimensionless saturation coefficient to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula.
[0033] In a second aspect, an embodiment of the present invention provides a device for quantitatively describing remaining gas in a gas reservoir, characterized by comprising:
[0034] A production capacity parameter generation module is used to generate the production capacity parameters of tight gas reservoirs based on a preset production capacity equation;
[0035] An initial production and storage coefficient definition module is used to construct an initial production and storage coefficient definition formula of the tight gas reservoir based on the production capacity parameter and the pre-acquired energy storage parameter;
[0036] a target parameter conversion module, configured to perform target parameter conversion on the initial production and reserve coefficient definition formula to obtain a target production and reserve coefficient definition formula for the initial production and reserve coefficient definition formula;
[0037] The coefficient distribution map generating module is used to obtain the physical property parameters of the tight gas reservoir and generate the production and storage coefficient distribution map of the tight gas reservoir according to the physical property parameters and the target production and storage coefficient definition formula.
[0038] In a third aspect, an embodiment of the present invention provides an electronic device, comprising:
[0039] processor;
[0040] a memory for storing instructions executable by the processor;
[0041] The processor is configured to execute the instructions to implement a method for quantitatively describing remaining gas in a gas reservoir as described in the first aspect.
[0042] In a fourth aspect, an embodiment of the present invention provides a medium having a computer program stored thereon, which, when executed by a processor, implements a method for quantitatively describing remaining gas in a gas reservoir as described in the first aspect.
[0043] Compared with the prior art, the above technical solution of the present invention has the following beneficial effects:
[0044] The embodiment of the present invention generates the production capacity parameters of the tight gas reservoir according to the preset production capacity equation, which helps to determine the relationship between the reservoir characteristics of the gas reservoir and the production capacity, and provides basic data for subsequent calculations. The initial production and storage coefficient definition formula comprehensively considers the two key parameters of production capacity and energy storage, and reflects the production and storage characteristics of the gas reservoir. By constructing this definition formula, the production and reserves can be linked to better describe the residual gas distribution of the gas reservoir. On the basis of the initial production and storage coefficient definition formula, the target parameter conversion is performed to obtain the target production and storage coefficient definition formula, wherein the target production and storage coefficient definition formula comprehensively considers the influence of reservoir physical properties, thickness, porosity, gas saturation, and formation pressure parameters on the residual gas distribution of the tight gas reservoir, avoids the limitations of traditional quantitative description methods, and can more accurately reflect the residual gas distribution of the tight gas reservoir. Therefore, the quantitative description method, device, equipment, medium and program of the gas reservoir residual gas proposed by the present invention can solve the problem of low accuracy of the quantitative description of the gas reservoir residual gas. BRIEF DESCRIPTION OF THE DRAWINGS
[0045] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0046] Figure 1 A flowchart showing a method for quantitatively describing remaining gas in a gas reservoir according to a first embodiment of the present invention is shown;
[0047] Figure 2 A data graph showing the average values of physical property parameters of a certain block divided into small layers according to Example 1 of the present invention;
[0048] Figure 3 The diagram shows the production-reservoir coefficient distribution of the L1 layer according to the first embodiment of the present invention;
[0049] Figure 4 The diagram shows the production-reservoir coefficient distribution diagram of the L2 layer according to the first embodiment of the present invention;
[0050] Figure 5 The diagram shows the production-reservoir coefficient distribution diagram of the L3 layer according to the first embodiment of the present invention;
[0051] Figure 6 The diagram shows the production-reservoir coefficient distribution of the L4 layer according to the first embodiment of the present invention;
[0052] Figure 7The diagram shows the production-reservoir coefficient distribution diagram of the L5 layer according to the first embodiment of the present invention;
[0053] Figure 8 The diagram shows the production-reservoir coefficient distribution diagram of the L6 layer according to the first embodiment of the present invention;
[0054] Figure 9 The dimensionless production-reservoir coefficient distribution diagram of the L1 layer in Example 2 of the present invention is shown;
[0055] Figure 10 The dimensionless production-reservoir coefficient distribution diagram of the L2 layer in Example 2 of the present invention is shown;
[0056] Figure 11 The dimensionless production-reservoir coefficient distribution diagram of the L3 layer in Example 2 of the present invention is shown;
[0057] Figure 12 The dimensionless production-reservoir coefficient distribution diagram of the L4 layer in Example 2 of the present invention is shown;
[0058] Figure 13 The dimensionless production-reservoir coefficient distribution diagram of the L5 layer in Example 2 of the present invention is shown;
[0059] Figure 14 The dimensionless production-reservoir coefficient distribution diagram of the L6 layer in Example 2 of the present invention is shown;
[0060] Figure 15 A functional module diagram of a device for quantitatively describing remaining gas in a gas reservoir according to a third embodiment of the present invention is shown;
[0061] Figure 16 A schematic diagram of the structure of an electronic device for implementing the method for quantitatively describing remaining gas in a gas reservoir according to a fourth embodiment of the present invention is shown. DETAILED DESCRIPTION
[0062] The present disclosure will be further described below with reference to the embodiments shown in the accompanying drawings.
[0063] It should be noted that, in the absence of conflict, the embodiments and features of the embodiments in this application can be combined with each other. The present invention will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.
[0064] This paper proposes a quantitative description method for residual gas in gas reservoirs based on numerical simulation technology. Based on the theory of compressible fluid dynamics and combined with a seepage model, this method, by establishing a physical property and seepage model for the gas reservoir, can determine the reservoir's seepage characteristics and the distribution of residual gas, enabling a more accurate estimation of the residual gas distribution. Compared to traditional methods, this quantitative description method based on numerical simulation technology offers greater accuracy, providing a precise basis for adjusting well deployment and tapping residual gas potential in mid- and late-stage development of tight gas reservoirs, and thus possesses considerable practical significance.
[0065] Example 1
[0066] like Figure 1 As shown, the present invention proposes a method for quantitatively describing the remaining gas in a gas reservoir, comprising the following steps:
[0067] S1. Generate productivity parameters of tight gas reservoirs according to a preset productivity equation.
[0068] In an embodiment of the present invention, generating the productivity parameters of the tight gas reservoir according to a preset productivity equation includes:
[0069] The preset capacity equation is approximated to obtain an approximate equation of the capacity equation, wherein the preset capacity equation is:
[0070]
[0071] Among them, P r is the average pressure of the tight gas reservoir, P wf is the bottom hole flowing pressure of the tight gas reservoir, is the average viscosity of the gas in the tight gas reservoir, is the average compressibility of the gas in the tight gas reservoir, T is the reservoir temperature of the tight gas reservoir, P SC is the pressure of the gas in the tight gas reservoir under standard conditions, q g is the production of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, T SC is the temperature of the gas in the tight gas reservoir under standard conditions, t is the time, is the reservoir porosity of the tight gas reservoir, is the comprehensive compressibility coefficient of the tight gas reservoir, r w is the well reduced radius of the tight gas reservoir, S is the skin coefficient of the tight gas reservoir, D is the non-Darcy flow coefficient, lg(*) is a logarithmic function, c1, c2, c3, c4 are constant coefficients under a certain dimension;
[0072] The coefficient of the approximate equation is corrected to obtain a corrected equation of the approximate equation, and the production capacity parameter of the tight gas reservoir is generated using the corrected equation.
[0073] In detail, the tight gas reservoir refers to a gas storage body formed by dense rocks underground. Under normal circumstances, the porosity and permeability of dense rocks are relatively low, which cannot allow the gas to flow effectively, making it difficult to extract the gas through natural pressure or conventional drilling. The development of tight gas reservoirs has high technical difficulty and cost, but due to the rich natural gas resources contained, tight gas reservoirs have become an important energy development field.
[0074] In detail, the preset production capacity equation can be written as:
[0075]
[0076] Among them, P r is the average pressure of the tight gas reservoir, P wf is the bottom hole flowing pressure of the tight gas reservoir, is the average viscosity of the gas in the tight gas reservoir, is the average compressibility of the gas in the tight gas reservoir, T is the reservoir temperature of the tight gas reservoir, P SC is the pressure of the gas in the tight gas reservoir under standard conditions, q g is the production of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, T SC is the temperature of the gas in the tight gas reservoir under standard conditions, t is the time, is the reservoir porosity of the tight gas reservoir, is the comprehensive compressibility coefficient of the tight gas reservoir, r w is the well conversion radius of the tight gas reservoir, S is the skin coefficient of the tight gas reservoir, D is the non-Darcy flow coefficient, lg(*) is a logarithmic function, c1, c2, c3, and c4 are constant coefficients under a certain dimension, A is the linear term coefficient, and B is the quadratic term coefficient.
[0077] Furthermore, the general quadratic coefficient B value of the tight low permeability gas reservoir and the bottom hole flowing pressure P of the tight gas reservoir are wf The value is very small, so the preset production capacity equation can be approximated. The approximation can be to simplify or approximately replace certain items to simplify the equation form and reduce the calculation complexity, while trying to retain the accuracy and reliability of the equation.
[0078] In detail, the coefficient correction of the approximate equation is performed because it has been determined that the gas well production is approximately proportional to the product of the square of the pressure and the permeability and the reservoir thickness. Therefore, the permeability and the reservoir thickness can be used to correct the approximate equation to obtain a corrected equation of the approximate equation, wherein the corrected equation is:
[0079]
[0080] Among them, q g is the production of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, A is the linear coefficient, P r is the average pressure of the tight gas reservoir.
[0081] Furthermore, the right side of the modified equation can be used to represent the productivity parameter of the tight gas reservoir.
[0082] S2. Constructing a definition formula for the initial production and storage coefficient of the tight gas reservoir based on the production capacity parameter and the pre-acquired energy storage parameter.
[0083] In an embodiment of the present invention, the definition formula of the initial production and storage coefficient of the tight gas reservoir is constructed based on the production capacity parameter and the pre-acquired energy storage parameter, including:
[0084] The energy storage parameter of the tight gas reservoir is generated according to the pre-acquired energy storage factor, and the initial production and storage coefficient definition formula of the tight gas reservoir is generated according to the production capacity parameter and the energy storage parameter, wherein the initial production and storage coefficient definition formula is:
[0085]
[0086] Wherein, ζ is the production and storage coefficient of the tight gas reservoir, P r is the average pressure of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, is the reservoir porosity of the tight gas reservoir, S g is the gas saturation of the tight gas reservoir.
[0087] Specifically, the pre-acquired energy storage factors refer to key formation parameters that characterize the size of gas reservoir reserves, namely, the reservoir thickness, porosity, and gas saturation of the tight gas reservoir. Reservoir thickness refers to the vertical thickness of the reservoir, i.e., the thickness of the rock layer occupied by the oil and gas reservoir. A larger reservoir thickness generally means a larger reservoir capacity and higher reservoir productivity. Reservoir thickness can affect the reservoir's exploreability and development potential. Porosity refers to the proportion of pore space in the reservoir, i.e., the ratio of the reservoir's pore volume to its total volume. Porosity reflects the reservoir's ability to accommodate and store fluids (such as natural gas or oil). Higher porosity is generally beneficial to the reservoir's effective reserves and productivity. Gas saturation refers to the ratio of the pore volume filled by natural gas to the total pore volume in the reservoir. Gas saturation reflects the natural gas content in the reservoir. A higher gas saturation generally means higher gas reserves.
[0088] In detail, the production-reservoir coefficient refers to the production capacity-storage capacity coefficient, which can be used to evaluate and predict the gas production capacity and gas storage potential of tight gas reservoirs.
[0089] In detail, in the definition of the initial production and reserve coefficient, the reservoir permeability describes the ability of the reservoir rock to accommodate fluid flow. The higher the permeability, the stronger the fluid flow ability in the reservoir, which is beneficial to production capacity; the reservoir thickness describes the vertical thickness of the reservoir oil and gas layer. A larger thickness usually represents a larger gas storage space, which is conducive to storing more gas; the average pressure describes the average pressure in the reservoir. The higher the pressure, the more likely the release and production of gas will increase; the reservoir porosity describes the proportion or volume of pores (voids) in the reservoir. The higher the porosity, the greater the storage gas holding capacity; the gas saturation describes the proportion of natural gas in the reservoir pores. The higher the gas saturation, the greater the amount of stored gas.
[0090] S3. Perform target parameter conversion on the initial production-reservoir coefficient definition formula to obtain a target production-reservoir coefficient definition formula of the initial production-reservoir coefficient definition formula.
[0091] In an embodiment of the present invention, the target parameter conversion is performed on the initial production and reserve coefficient definition formula to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula, including:
[0092] Performing pressure parameter conversion on the initial production and reserve coefficient definition formula to obtain a first-level conversion definition formula of the initial production and reserve coefficient definition formula;
[0093] Performing reserve parameter conversion on the primary conversion definition to obtain a secondary conversion definition for the primary conversion definition;
[0094] Performing abundance parameter conversion on the secondary transformation definition formula to obtain a tertiary transformation definition formula of the secondary transformation definition formula;
[0095] The third-level conversion definition formula is subjected to compression parameter conversion to obtain a fourth-level conversion definition formula of the third-level conversion definition formula, and the fourth-level conversion definition formula is determined to be the target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula.
[0096] In detail, the target parameter conversion refers to sequentially performing pressure parameter conversion, reserve parameter conversion, abundance parameter conversion and compression parameter conversion on the initial production and reserve coefficient definition formula.
[0097] In detail, the pressure parameter conversion is performed on the initial production and reserve coefficient definition formula to obtain a first-level conversion definition formula of the initial production and reserve coefficient definition formula, including:
[0098] Determine the pressure parameter definition formula of the pressure parameter in the initial production and reserve coefficient definition formula, wherein the pressure parameter definition formula is:
[0099]
[0100] Among them, P ris the average pressure of the tight gas reservoir, T is the reservoir temperature of the tight gas reservoir, P SC is the pressure of the gas in the tight gas reservoir under standard conditions, Z is the compressibility coefficient of the gas in the tight gas reservoir under average pressure, and Z SC is the compressibility coefficient of the gas in the tight gas reservoir under standard conditions, T SC is the temperature of the gas in the tight gas reservoir under standard conditions, B g is the volume compressibility coefficient of the tight gas reservoir;
[0101] Substituting the pressure parameter definition into the initial production and reserve coefficient definition, a first-order conversion definition of the initial production and reserve coefficient definition is obtained.
[0102] In detail, in the primary conversion definition, the pressure parameter has been partially converted by the pressure parameter definition, taking into account the effects of gas temperature, compressibility and volume compressibility on the production and storage coefficient. The primary conversion definition is:
[0103]
[0104] Wherein, ζ is the production and storage coefficient of the tight gas reservoir, P r is the average pressure of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, is the reservoir porosity of the tight gas reservoir, S g is the gas saturation of the tight gas reservoir, T is the reservoir temperature of the tight gas reservoir, P SC is the pressure of the gas in the tight gas reservoir under standard conditions, Z is the compressibility coefficient of the gas in the tight gas reservoir under average pressure, and Z SC is the compressibility coefficient of the gas in the tight gas reservoir under standard conditions, T SC is the temperature of the gas in the tight gas reservoir under standard conditions, B g is the volume compressibility coefficient of the tight gas reservoir.
[0105] In detail, the volume compression coefficient B g It is a parameter that describes the volume change of gas under pressure change. It indicates the volume change ratio of gas under unit pressure change. The compression coefficient Z of gas in the tight gas reservoir under standard conditions is also called gas compression factor or gas expansion coefficient. It describes the volume change of gas under different pressure and temperature conditions.
[0106] Specifically, the reserve parameter conversion of the primary conversion definition formula to obtain the secondary conversion definition formula of the primary conversion definition formula includes:
[0107] The reserve parameter conversion of the primary conversion definition is performed using the pre-acquired reserve definition to obtain a secondary conversion definition of the primary conversion definition, wherein the pre-acquired reserve definition is:
[0108]
[0109] Where G is the reserves of the tight gas reservoir, B g is the volume compressibility coefficient of the tight gas reservoir, A s is the gas layer area of the tight gas reservoir, P r is the average pressure of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, is the reservoir porosity of the tight gas reservoir, S g is the gas saturation of the tight gas reservoir.
[0110] In detail, the reserves G of the tight gas reservoir refers to the amount of recoverable natural gas contained in a specific area of the reservoir rock, which is used to evaluate and describe the natural gas production capacity and economic potential.
[0111] In detail, when the gas layer area of the tight gas reservoir is considered, the first-order conversion definition can be written as:
[0112]
[0113] Wherein, ζ is the production and storage coefficient of the tight gas reservoir, P r is the average pressure of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, is the reservoir porosity of the tight gas reservoir, S g is the gas saturation of the tight gas reservoir, T is the reservoir temperature of the tight gas reservoir, P SC is the pressure of the gas in the tight gas reservoir under standard conditions, Z is the compressibility coefficient of the gas in the tight gas reservoir under average pressure, and Z SC is the compressibility coefficient of the gas in the tight gas reservoir under standard conditions, T SC is the temperature of the gas in the tight gas reservoir under standard conditions, B g is the volume compressibility coefficient of the tight gas reservoir, A s is the gas layer area of the tight gas reservoir.
[0114] Furthermore, by substituting the previously acquired reserve definition into the definition that takes the gas layer area into consideration, a secondary conversion definition of the primary conversion definition can be obtained, wherein the secondary conversion definition is:
[0115]
[0116] Wherein, ζ is the production and storage coefficient of the tight gas reservoir, P r is the average pressure of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, T is the reservoir temperature of the tight gas reservoir, P SC is the pressure of the gas in the tight gas reservoir under standard conditions, Z is the compressibility coefficient of the gas in the tight gas reservoir under average pressure, and Z SC is the compressibility coefficient of the gas in the tight gas reservoir under standard conditions, T SC is the temperature of the gas in the tight gas reservoir under standard conditions, A s is the gas layer area of the tight gas reservoir, and G is the reserves of the tight gas reservoir.
[0117] In detail, the conversion of the secondary conversion definition formula into an abundance parameter to obtain the tertiary conversion definition formula of the secondary conversion definition formula refers to the conversion of the secondary conversion definition formula into an abundance parameter using the definition formula of reserve abundance, wherein the definition formula of reserve abundance is:
[0118] f=G / A s
[0119] Among them, A s is the gas layer area of the tight gas reservoir, G is the reserves of the tight gas reservoir, and f is the reserve abundance of the tight gas reservoir.
[0120] In detail, the reserve abundance f refers to the reserve amount per unit area, which can also be understood as the amount of recoverable natural gas per unit area.
[0121] Furthermore, the definition of reserve abundance is substituted into the secondary conversion definition to obtain the tertiary conversion definition of the secondary conversion definition, wherein the tertiary conversion definition is:
[0122]
[0123] Wherein, ζ is the production and storage coefficient of the tight gas reservoir, P r is the average pressure of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, T is the reservoir temperature of the tight gas reservoir, P SC is the pressure of the gas in the tight gas reservoir under standard conditions, Z is the compressibility coefficient of the gas in the tight gas reservoir under average pressure, and Z SC is the compressibility coefficient of the gas in the tight gas reservoir under standard conditions, T SC is the temperature of the gas in the tight gas reservoir under standard conditions, and f is the reserve abundance of the tight gas reservoir.
[0124] In detail, performing compression parameter conversion on the third-level conversion definition to obtain the fourth-level conversion definition of the third-level conversion definition means first deforming the pressure parameter definition to obtain the volume compression coefficient representation of the pressure parameter definition, and then substituting the volume compression coefficient representation into the third-level conversion definition to obtain the fourth-level conversion definition of the third-level conversion definition, wherein the volume compression coefficient representation is:
[0125]
[0126] Among them, P r is the average pressure of the tight gas reservoir, T is the reservoir temperature of the tight gas reservoir, P SC is the pressure of the gas in the tight gas reservoir under standard conditions, Z is the compressibility coefficient of the gas in the tight gas reservoir under average pressure, and Z SC is the compressibility coefficient of the gas in the tight gas reservoir under standard conditions, T SC is the temperature of the gas in the tight gas reservoir under standard conditions, B g is the volume compressibility coefficient of the tight gas reservoir.
[0127] Furthermore, the target production and reserve coefficient definition formula is determined based on the four-stage conversion definition formula as the initial production and reserve coefficient definition formula, wherein the target production and reserve coefficient definition formula is:
[0128]
[0129] Wherein, ζ is the production and storage coefficient of the tight gas reservoir, P r is the average pressure of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, f is the reserve abundance of the tight gas reservoir, B g is the volume compressibility coefficient of the tight gas reservoir.
[0130] S4. Acquire the physical property parameters of the tight gas reservoir, and generate a production and storage coefficient distribution map of the tight gas reservoir according to the physical property parameters and the target production and storage coefficient definition formula.
[0131] In the embodiment of the present invention, Figure 2 As shown, the physical property parameters include: reservoir permeability, thickness, average gas reservoir pressure, volume compression coefficient and reserve abundance. According to the physical property parameters, the production and reserve coefficient of the tight gas reservoir can be produced. The unit of the reservoir permeability is millidacia (mD), the unit of the thickness is meter (m), the unit of the average gas reservoir pressure is megapascal (MPa), the volume compression coefficient is expressed in decimals, and the unit of the reserve abundance is cubic meter / square meter (m 3 / m 2For example, in the L1 layer of a certain block, when the reservoir permeability is 0.12mD, the thickness is 5.75m, the average pressure of the gas reservoir is 26.50MPa, the volume compressibility coefficient is 0.00461, and the reserve abundance is 110m 3 / m 2 When the production and reserve coefficient of the L1 layer of a certain block is 245m 2 / d, where the unit of the production-reservoir coefficient is square meters / day, which represents the ratio of the amount of fluid produced from the reservoir per unit reservoir area to the unit time; in the L4 layer of a certain block, when the reservoir permeability is 0.29mD, the thickness is 1.84m, the average pressure of the gas reservoir is 25.80MPa, the volume compressibility coefficient is 0.00474, and the reserve abundance is 65m 3 / m 2 When the production and reserve coefficient of the L4 layer of a certain block is 109m 2 / d, wherein a high production-reservoir coefficient indicates that the reservoir has a good production capacity, that is, it can produce more fluid per unit area, while a low production-reservoir coefficient indicates that the reservoir has a relatively low production capacity, and the amount of fluid produced per unit area is relatively small.
[0132] In an embodiment of the present invention, generating the production-reservoir coefficient distribution map of the tight gas reservoir based on the physical property parameters and the target production-reservoir coefficient definition formula means substituting the physical property parameters into the target production-reservoir coefficient definition formula to obtain the production-reservoir coefficient of the tight gas reservoir, and using the production-reservoir coefficient to generate the production-reservoir coefficient distribution map of the tight gas reservoir.
[0133] In detail, the production and storage coefficient distribution map represents the value of the production and storage coefficient of the tight gas reservoir. Figure 3-Figure 8 As shown, wherein the Figure 3-Figure 8 It is used to represent the distribution diagram of production and storage coefficients of different layers. The target research areas of the tight gas reservoir are divided into: L1 layer, L2 layer, L3 layer, L4 layer, L5 layer and L6 layer. Different layers correspond to different physical parameters, thereby generating different production and storage coefficients.
[0134] Further, according to the Figure 2 The physical property parameters are used to generate a production and storage coefficient distribution map of the six layers in the target study area of the tight gas reservoir. The darker the color of a certain area in the map, the greater the production and storage coefficient of the tight gas reservoir. At the same time, the darker the area, the better the production and storage coefficient of the tight gas reservoir.
[0135] Example 2
[0136] In order to more clearly understand the present invention, a second embodiment is used below to further explain the situation when the initial production and storage coefficient definition formula is converted into target parameters and the production and storage coefficient distribution map of the tight gas reservoir is generated according to the target production and storage coefficient definition formula generated by the conversion.
[0137] The present invention proposes a method for quantitatively describing the remaining gas in a gas reservoir, comprising the following steps:
[0138] S10. Generate productivity parameters of the tight gas reservoir according to a preset productivity equation.
[0139] In the embodiment of the present invention, the implementation step of generating the productivity parameters of the tight gas reservoir according to the preset productivity equation is the same as step S1 in the first embodiment, and will not be repeated here.
[0140] S20. Constructing a definition formula for the initial production and storage coefficient of the tight gas reservoir based on the production capacity parameter and the pre-acquired energy storage parameter.
[0141] In the embodiment of the present invention, the implementation step of constructing the definition formula of the initial production and storage coefficient of the tight gas reservoir based on the production capacity parameter and the pre-acquired energy storage parameter is the same as step S2 in the first embodiment, and will not be repeated here.
[0142] S30, performing target parameter conversion on the initial production-reservoir coefficient definition formula to obtain a target production-reservoir coefficient definition formula of the initial production-reservoir coefficient definition formula.
[0143] In an embodiment of the present invention, the target parameter conversion is performed on the initial production and reserve coefficient definition formula to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula, including:
[0144] Obtaining a target parameter of the initial production and reserve coefficient definition formula, performing dimensionless processing on a pressure coefficient parameter in the target parameter to obtain a dimensionless pressure coefficient of the pressure coefficient parameter;
[0145] Performing dimensionless processing on a saturation coefficient parameter in the target parameter to obtain a dimensionless saturation coefficient of the saturation coefficient parameter;
[0146] The initial production and reserve coefficient definition formula is converted into a target parameter according to the dimensionless pressure coefficient and the dimensionless saturation coefficient to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula.
[0147] In detail, the dimensionless processing of the pressure coefficient parameter in the target parameter to obtain the dimensionless pressure coefficient of the pressure coefficient parameter includes:
[0148] The pressure coefficient parameter in the target parameter is dimensionally processed using the following pressure coefficient dimensionless formula to obtain the dimensionless pressure coefficient of the pressure coefficient parameter:
[0149]
[0150] Among them, P dis the pressure coefficient of the current location of the tight gas reservoir, P r is the average pressure of the tight gas reservoir, P i is the initial pressure at the current location of the tight gas reservoir.
[0151] In detail, the dimensionless processing of the saturation coefficient parameter in the target parameter to obtain the dimensionless saturation coefficient of the saturation coefficient parameter includes:
[0152] The saturation coefficient parameter in the target parameter is dimensionally processed using the following saturation coefficient dimensionless formula to obtain the dimensionless saturation coefficient of the saturation coefficient parameter:
[0153]
[0154] Among them, S gd is the saturation coefficient of the current location of the tight gas reservoir, S g is the gas saturation of the tight gas reservoir, S gi is the initial gas saturation at the current location of the tight gas reservoir.
[0155] In detail, the target parameter conversion is performed on the initial production and reserve coefficient definition formula according to the dimensionless pressure coefficient and the dimensionless saturation coefficient to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula, including:
[0156] Performing pressure parameter conversion on the initial production and reserve coefficient definition formula to obtain a first-level conversion definition formula of the initial production and reserve coefficient definition formula;
[0157] Performing reserve parameter conversion on the primary conversion definition to obtain a secondary conversion definition for the primary conversion definition;
[0158] Performing abundance parameter conversion on the secondary transformation definition formula to obtain a tertiary transformation definition formula of the secondary transformation definition formula;
[0159] Performing compression parameter transformation on the third-level transformation definition formula to obtain a fourth-level transformation definition formula of the third-level transformation definition formula;
[0160] The fourth-level conversion definition formula is dimensionally converted according to the dimensionless pressure coefficient and the dimensionless saturation coefficient to obtain a fifth-level conversion definition formula of the fourth-level conversion definition formula, and the fifth-level conversion definition formula is determined as the target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula.
[0161] In the embodiment of the present invention, the process of deriving the four-level conversion definition from the initial production and reserve coefficient definition is the same as the process of deriving the four-level conversion definition from the initial production and reserve coefficient definition in Example 1, which will not be described in detail here. At the same time, it can be seen from the process of deriving the four-level conversion definition from the initial production and reserve coefficient definition in Example 1 that the gas saturation S of the tight gas reservoir is g The saturation coefficient S of the current location of the tight gas reservoir gd replacement relationship.
[0162] In detail, the dimensionless transformation of the fourth-level transformation definition formula according to the dimensionless pressure coefficient and the dimensionless saturation coefficient to obtain the fifth-level transformation definition formula of the fourth-level transformation definition formula refers to substituting the dimensionless pressure coefficient and the dimensionless saturation coefficient into the fourth-level transformation definition formula, wherein the dimensionless pressure coefficient is an effective factor for the average pressure P of the tight gas reservoir in the fourth-level transformation definition formula. r As can be seen from the process of deriving the definition of the initial production and storage coefficient to the fourth-level conversion definition in Example 1, the gas saturation S of the tight gas reservoir is g The saturation coefficient S of the current location of the tight gas reservoir gd Therefore, the initial gas saturation S of the current position of the tight gas reservoir can be gi The gas saturation definition formula of the fourth-stage conversion is dimensionlessly processed.
[0163] Furthermore, the five-level transformation definition is:
[0164]
[0165] Wherein, ζ is the production and storage coefficient of the tight gas reservoir, P d is the pressure coefficient of the current position of the tight gas reservoir, k is the reservoir permeability of the tight gas reservoir, h is the reservoir thickness of the tight gas reservoir, f is the reserve abundance of the tight gas reservoir, B g is the volume compressibility coefficient of the tight gas reservoir, S gi is the initial gas saturation at the current location of the tight gas reservoir.
[0166] In an embodiment of the present invention, the pressure coefficient parameter and the saturation coefficient parameter in the target parameter are dimensionlessly processed in order to eliminate the influence of the units of the physical quantities, so that the expressions become more concise and universal. Through the dimensionless processing, each physical quantity can be converted into a dimensionless value (i.e., a value without a unit), so that physical quantities of different units can be compared and analyzed. At the same time, the comparison between different physical quantities usually involves the conversion and conversion of units, and the dimensionless processing can eliminate the interference of units, making the comparison between different quantities simpler and more direct.
[0167] S40: Acquire the physical property parameters of the tight gas reservoir, and generate a production and storage coefficient distribution map of the tight gas reservoir according to the physical property parameters and the target production and storage coefficient definition formula.
[0168] In an embodiment of the present invention, the physical parameters of the tight gas reservoir include: the production and storage coefficient of the tight gas reservoir, the pressure coefficient of the current position of the tight gas reservoir, the reservoir permeability of the tight gas reservoir, the reservoir thickness of the tight gas reservoir, the reserve abundance of the tight gas reservoir, the volume compression coefficient of the tight gas reservoir and the initial gas saturation at the current position of the tight gas reservoir.
[0169] In detail, the production and storage coefficient of the tight gas reservoir can be obtained by substituting the physical property parameters into the target production and storage coefficient definition formula. Figures 9-14 As shown, wherein the Figures 9-14 It is used to represent the dimensionless production and storage coefficient distribution diagram of different layers. The target research area of the tight gas reservoir is divided into: L1 layer, L2 layer, L3 layer, L4 layer, L5 layer and L6 layer. Different layers correspond to different physical parameters, thereby generating different production and storage coefficients.
[0170] Furthermore, a production-reservoir coefficient distribution map of the six layers in the target study area of the tight gas reservoir is generated based on the production-reservoir coefficient of the tight gas reservoir, wherein the production-reservoir coefficient distribution map refers to a dimensionless production-reservoir coefficient distribution map of the L1 layer, the L2 layer, the L3 layer, the L4 layer, the L5 layer and the L6 layer, which represents the size of the production-reservoir coefficient value of the tight gas reservoir. The darker the color of a certain area in the map, the larger the production-reservoir coefficient of the tight gas reservoir. At the same time, the darker the color of the area, the larger the production-reservoir coefficient of the tight gas reservoir. At the same time, the darker the area can be used as the preferred area for drilling wells.
[0171] Example 3
[0172] like Figure 15 As shown, this embodiment also provides a functional module diagram of a device for quantitatively describing remaining gas in a gas reservoir.
[0173] The device 100 for quantitatively describing remaining gas in a gas reservoir described in this embodiment can be installed in an electronic device. Depending on the functionality implemented, the device 100 can include a production parameter generation module 101, an initial production and storage coefficient definition module 102, a target parameter conversion module 103, and a coefficient distribution map generation module 104. A module, also referred to as a unit, is a series of computer program segments that can be executed by a processor in an electronic device and perform a fixed function. These modules are stored in the memory of the electronic device.
[0174] In this embodiment, the functions of each module / unit are as follows:
[0175] The productivity parameter generating module 101 is used to generate productivity parameters of tight gas reservoirs according to a preset productivity equation;
[0176] The initial production and storage coefficient definition module 102 is used to construct the initial production and storage coefficient definition formula of the tight gas reservoir based on the production capacity parameter and the pre-acquired energy storage parameter;
[0177] The target parameter conversion module 103 is used to perform target parameter conversion on the initial production and reserve coefficient definition formula to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula;
[0178] The coefficient distribution map generating module 104 is used to obtain the physical property parameters of the tight gas reservoir and generate a production and storage coefficient distribution map of the tight gas reservoir according to the physical property parameters and the target production and storage coefficient definition formula.
[0179] In detail, each module described in the gas reservoir remaining gas quantitative description device 100 described in the embodiment of the present invention adopts the same technical means as the gas reservoir remaining gas quantitative description method described in Example 1 and Example 2 when used, and can produce the same technical effects, which will not be repeated here.
[0180] Example 4
[0181] like Figure 16 As shown, this embodiment also provides a computer electronic device, which may include a processor 10, a memory 11, a communication bus 12 and a communication interface 13, and may also include a computer program stored in the memory 11 and capable of running on the processor 10, such as a gas reservoir remaining gas quantitative description program.
[0182] In some embodiments, the processor 10 may be comprised of an integrated circuit, such as a single packaged integrated circuit or a plurality of packaged integrated circuits with the same or different functions, including one or more central processing units (CPUs), microprocessors, digital processing chips, graphics processors, and combinations of various control chips. The processor 10 is the control core (Control Unit) of the electronic device, connecting various components of the electronic device via various interfaces and circuits. It executes programs or modules stored in the memory 11 (e.g., executing a program for quantitatively describing remaining gas in a gas reservoir), and accesses data stored in the memory 11 to perform various functions of the electronic device and process data.
[0183] The memory 11 includes at least one type of medium, including a flash memory, a mobile hard disk, a multimedia card, a card-type memory (e.g., SD or DX memory), a magnetic memory, a magnetic disk, an optical disk, etc. In some embodiments, the memory 11 may be an internal storage unit of an electronic device, such as a mobile hard disk of the electronic device. In other embodiments, the memory 11 may also be an external storage device of the electronic device, such as a plug-in mobile hard disk, a smart memory card (SMC), a secure digital (SD) card, a flash card, etc. equipped on the electronic device. Furthermore, the memory 11 may include both an internal storage unit and an external storage device of the electronic device. The memory 11 can be used not only to store application software and various types of data installed in the electronic device, such as the code of a gas reservoir residual gas quantitative description program, but also to temporarily store data that has been output or is about to be output.
[0184] The communication bus 12 may be a peripheral component interconnect (PCI) bus or an extended industry standard architecture (EISA) bus. The bus may be divided into an address bus, a data bus, a control bus, etc. The bus is configured to enable communication between the memory 11 and at least one processor 10, etc.
[0185] The communication interface 13 is used for communication between the above-mentioned electronic device and other electronic devices, including a network interface and a user interface. Optionally, the network interface may include a wired interface and / or a wireless interface (such as a WI-FI interface, a Bluetooth interface, etc.), which is generally used to establish a communication connection between the electronic device and other electronic devices. The user interface may be a display (Display), an input unit (such as a keyboard (Keyboard)), optionally, the user interface may also be a standard wired interface, a wireless interface. Optionally, in some embodiments, the display may be an LED display, a liquid crystal display, a touch-sensitive liquid crystal display, and an OLED (Organic Light-Emitting Diode, organic light-emitting diode) touch device, etc. Among them, the display may also be appropriately referred to as a display screen or a display unit, for displaying information processed in the electronic device and for displaying a visual user interface.
[0186] The figure only shows an electronic device with components. Those skilled in the art will understand that the structure shown in the figure does not constitute a limitation on the electronic device, and may include fewer or more components than shown in the figure, or combine certain components, or arrange the components differently.
[0187] For example, although not shown, the electronic device may further include a power source (such as a battery) for powering various components. Preferably, the power source may be logically connected to the at least one processor 10 via a power management device, thereby implementing functions such as charge management, discharge management, and power consumption management through the power management device. The power source may further include any components such as one or more DC or AC power sources, a recharging device, a power failure detection circuit, a power converter or inverter, a power status indicator, etc. The electronic device may further include various sensors, Bluetooth modules, Wi-Fi modules, etc., which will not be described in detail here.
[0188] It should be understood that the embodiment is for illustration only and the scope of the patent application is not limited to this structure.
[0189] The gas reservoir remaining gas quantitative description program stored in the memory 11 of the electronic device is a combination of multiple instructions. When executed in the processor 10, it can achieve the following:
[0190] Generate the productivity parameters of tight gas reservoirs according to the preset productivity equation;
[0191] Constructing a definition formula of the initial production and storage coefficient of the tight gas reservoir according to the production capacity parameter and the pre-acquired energy storage parameter;
[0192] Performing target parameter conversion on the initial production and reserve coefficient definition formula to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula;
[0193] The physical property parameters of the tight gas reservoir are obtained, and a production and storage coefficient distribution map of the tight gas reservoir is generated according to the physical property parameters and the target production and storage coefficient definition formula.
[0194] Specifically, the specific implementation method of the processor 10 for the above instructions can refer to the description of the relevant steps in the corresponding embodiment of the accompanying drawings, which will not be repeated here.
[0195] Furthermore, if the module / unit integrated into the electronic device is implemented as a software functional unit and sold or used as an independent product, it can be stored in a medium. The medium can be volatile or non-volatile. For example, the medium can include: any entity or device capable of carrying the computer program code, a recording medium, a USB flash drive, a mobile hard drive, a magnetic disk, an optical disk, a computer memory, or a read-only memory (ROM).
[0196] Example 5
[0197] This embodiment provides a medium storing a computer program. When the computer program is executed by a processor, the steps of the method for quantitatively describing remaining gas in a gas reservoir as described above are implemented.
[0198] These program codes can also be loaded onto a computer or other programmable data processing device so that a series of operation steps are executed on the computer or other programmable device to produce a computer-implemented process, thereby providing instructions for executing on the computer or other programmable device to implement the process. Figure 1 The steps of a specified function in a process or multiple processes.
[0199] Media includes permanent and non-permanent, removable and non-removable media, and can be implemented by any method or technology to store information. Information can be computer-readable instructions, data structures, program modules, or other data. Examples of media can include, but are not limited to, phase change memory (PRAM), static random access memory (SRAM), dynamic random access memory (DRAM), other types of random access memory (RAM), read-only memory (ROM), electrically erasable programmable read-only memory (EEPROM), flash memory or other memory technology, compact disc read-only memory (CD-ROM), digital versatile disc (DVD) or other optical storage, magnetic cassettes, magnetic disk storage or other magnetic storage devices, or any other non-transmission medium that can be used to store information that can be accessed by a computing device.
[0200] Example 6
[0201] An embodiment of the present invention provides a computer program, which, when executed by a processor, implements the steps of quantitative description of remaining gas in a gas reservoir as described in the first aspect.
[0202] These computer-readable program instructions can be provided to a processor of a general-purpose computer, a special-purpose computer, or other programmable data processing device, thereby producing a machine such that when these instructions are executed by the processor of the computer or other programmable data processing device, a device is generated that implements the functions / actions specified in one or more blocks in the flowcharts and / or block diagrams. These computer programs can also be stored in a medium, and these computer programs cause the computer, programmable data processing device, and / or other equipment to operate in a specific manner. Thus, the medium storing the computer program comprises an article of manufacture that includes instructions for implementing various aspects of the functions / actions specified in one or more blocks in the flowcharts and / or block diagrams.
[0203] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. When the terms "include" and / or "include" are used in this specification, they indicate the presence of features, steps, operations, devices, components and / or their combinations.
[0204] It is to be understood that the terms so used are interchangeable under appropriate circumstances such that the embodiments of the application described herein are, for example, capable of operation in sequences other than those illustrated or described herein.
[0205] In the several embodiments provided herein, it should be understood that the disclosed electronic devices, apparatuses, and methods may be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative. For example, the module division is merely a logical functional division, and actual implementation may employ other division methods.
[0206] The modules described as separate components may or may not be physically separate, and the components shown as modules may or may not be physical units, that is, they may be located in one place or distributed across multiple network elements. Some or all of the modules may be selected to achieve the purpose of the solution of this embodiment according to actual needs.
[0207] In addition, the functional modules in various embodiments of the present invention may be integrated into a single processing unit, each unit may exist physically separately, or two or more units may be integrated into a single unit. The aforementioned integrated units may be implemented in the form of hardware or hardware plus software functional modules.
[0208] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention.
[0209] Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims rather than the foregoing description, and all changes that come within the meaning and range of equivalents of the claims are intended to be embraced therein. Any reference to a figure in a claim should not be construed as limiting the claim to which it relates.
[0210] The embodiments of the present application can acquire and process relevant data based on artificial intelligence technology. Artificial Intelligence (AI) is the theory, method, technology, and application system that uses digital computers or machines controlled by digital computers to simulate, extend, and expand human intelligence, perceive the environment, acquire knowledge, and use knowledge to achieve optimal results.
[0211] Furthermore, it is clear that the word "comprising" does not exclude other units or steps, and the singular does not exclude the plural. Multiple units or devices recited in a system claim may also be implemented by a single unit or device through software or hardware. Terms such as "first" and "second" are used to indicate names and do not imply any particular order.
[0212] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not limiting. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention.
Claims
1. A method for quantitatively describing remaining gas in a gas reservoir, characterized in that: The method comprises: Generate the productivity parameters of tight gas reservoirs according to the preset productivity equation; Constructing a definition formula of the initial production and storage coefficient of the tight gas reservoir according to the production capacity parameter and the pre-acquired energy storage parameter; Performing target parameter conversion on the initial production and reserve coefficient definition formula to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula; Obtaining physical property parameters of the tight gas reservoir, and generating a production-reservoir coefficient distribution map of the tight gas reservoir based on the physical property parameters and the target production-reservoir coefficient definition formula, wherein a high production-reservoir coefficient indicates a relatively high reservoir productivity, and a low production-reservoir coefficient indicates a relatively low reservoir productivity; The definition formula for the initial production and storage coefficient of the tight gas reservoir is constructed based on the production capacity parameter and the pre-acquired energy storage parameter, including: The energy storage parameter of the tight gas reservoir is generated according to the pre-acquired energy storage factor, and the initial production and storage coefficient definition formula of the tight gas reservoir is generated according to the production capacity parameter and the energy storage parameter, wherein the initial production and storage coefficient definition formula is: in, is the production-reservoir coefficient of the tight gas reservoir, is the average pressure of the tight gas reservoir, is the reservoir permeability of the tight gas reservoir, is the reservoir thickness of the tight gas reservoir, is the reservoir porosity of the tight gas reservoir, is the gas saturation of the tight gas reservoir; The target production and reserve coefficient is defined as follows: in, is the production-reservoir coefficient of the tight gas reservoir, is the average pressure of the tight gas reservoir, is the reservoir permeability of the tight gas reservoir, is the reservoir thickness of the tight gas reservoir, is the reserve abundance of the tight gas reservoir, is the volume compressibility coefficient of the tight gas reservoir.
2. The method according to claim 1, wherein: The generation of the productivity parameters of the tight gas reservoir according to the preset productivity equation includes: The preset capacity equation is approximated to obtain an approximate equation of the capacity equation, wherein the preset capacity equation is: in, is the average pressure of the tight gas reservoir, is the bottom hole flowing pressure of the tight gas reservoir, is the average viscosity of the gas in the tight gas reservoir, is the average compressibility of the gas in the tight gas reservoir, is the reservoir temperature of the tight gas reservoir, is the pressure of the gas in the tight gas reservoir under standard conditions, is the production of the tight gas reservoir, is the reservoir permeability of the tight gas reservoir, is the reservoir thickness of the tight gas reservoir, is the temperature of the gas in the tight gas reservoir under standard conditions, It's time, is the reservoir porosity of the tight gas reservoir, is the comprehensive compressibility coefficient of the tight gas reservoir, is the well converted radius of the tight gas reservoir, is the skin coefficient of the tight gas reservoir, is the non-Darcy flow coefficient, is a logarithmic function, is a constant coefficient under a certain dimension; The coefficient of the approximate equation is corrected to obtain a corrected equation of the approximate equation, and the production capacity parameter of the tight gas reservoir is generated using the corrected equation.
3. The method for quantitatively describing remaining gas in a gas reservoir according to claim 1, wherein: The target parameter conversion is performed on the initial production and reserve coefficient definition formula to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula, including: Performing pressure parameter conversion on the initial production and reserve coefficient definition formula to obtain a first-level conversion definition formula of the initial production and reserve coefficient definition formula; Performing reserve parameter conversion on the primary conversion definition to obtain a secondary conversion definition for the primary conversion definition; Performing abundance parameter conversion on the secondary transformation definition formula to obtain a tertiary transformation definition formula of the secondary transformation definition formula; The third-level conversion definition formula is subjected to compression parameter conversion to obtain a fourth-level conversion definition formula of the third-level conversion definition formula, and the fourth-level conversion definition formula is determined to be the target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula.
4. The method for quantitatively describing remaining gas in a gas reservoir according to claim 3, wherein: The pressure parameter conversion is performed on the initial production and reserve coefficient definition formula to obtain a first-level conversion definition formula of the initial production and reserve coefficient definition formula, including: Determine the pressure parameter definition formula of the pressure parameter in the initial production and reserve coefficient definition formula, wherein the pressure parameter definition formula is: in, is the average pressure of the tight gas reservoir, is the reservoir temperature of the tight gas reservoir, is the pressure of the gas in the tight gas reservoir under standard conditions, is the compressibility coefficient of the gas in the tight gas reservoir at the average pressure, is the compressibility coefficient of the gas in the tight gas reservoir under standard conditions, is the temperature of the gas in the tight gas reservoir under standard conditions, is the volume compressibility coefficient of the tight gas reservoir; Substituting the pressure parameter definition into the initial production and reserve coefficient definition, a first-order conversion definition of the initial production and reserve coefficient definition is obtained.
5. The method for quantitatively describing remaining gas in a gas reservoir according to claim 1, wherein: The target parameter conversion is performed on the initial production and reserve coefficient definition formula to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula, including: Obtaining a target parameter of the initial production and reserve coefficient definition formula, performing dimensionless processing on a pressure coefficient parameter in the target parameter to obtain a dimensionless pressure coefficient of the pressure coefficient parameter; Performing dimensionless processing on a saturation coefficient parameter in the target parameter to obtain a dimensionless saturation coefficient of the saturation coefficient parameter; The initial production and reserve coefficient definition formula is converted into a target parameter according to the dimensionless pressure coefficient and the dimensionless saturation coefficient to obtain a target production and reserve coefficient definition formula of the initial production and reserve coefficient definition formula.
6. A device for quantitatively describing the remaining gas in a gas reservoir, characterized in that: The device comprises: A production capacity parameter generation module is used to generate the production capacity parameters of tight gas reservoirs based on a preset production capacity equation; An initial production and storage coefficient definition module is used to construct an initial production and storage coefficient definition formula of the tight gas reservoir based on the production capacity parameter and the pre-acquired energy storage parameter; a target parameter conversion module, configured to perform target parameter conversion on the initial production and reserve coefficient definition formula to obtain a target production and reserve coefficient definition formula for the initial production and reserve coefficient definition formula; a coefficient distribution map generating module, configured to obtain the physical property parameters of the tight gas reservoir and generate a production and reserve coefficient distribution map of the tight gas reservoir according to the physical property parameters and the target production and reserve coefficient definition formula, wherein a high production and reserve coefficient indicates a relatively high reservoir productivity, and a low production and reserve coefficient indicates a relatively low reservoir productivity; The initial production and storage coefficient definition module is further configured to generate the energy storage parameter of the tight gas reservoir based on the pre-acquired energy storage factor, and generate the initial production and storage coefficient definition formula of the tight gas reservoir based on the production capacity parameter and the energy storage parameter, wherein the initial production and storage coefficient definition formula is: in, is the production-reservoir coefficient of the tight gas reservoir, is the average pressure of the tight gas reservoir, is the reservoir permeability of the tight gas reservoir, is the reservoir thickness of the tight gas reservoir, is the reservoir porosity of the tight gas reservoir, is the gas saturation of the tight gas reservoir; The target production and reserve coefficient is defined as follows: in, is the production-reservoir coefficient of the tight gas reservoir, is the average pressure of the tight gas reservoir, is the reservoir permeability of the tight gas reservoir, is the reservoir thickness of the tight gas reservoir, is the reserve abundance of the tight gas reservoir, is the volume compressibility coefficient of the tight gas reservoir.
7. An electronic device comprising: processor; a memory for storing instructions executable by the processor; The processor is configured to execute the instructions to implement the method for quantitatively describing remaining gas in a gas reservoir as claimed in any one of claims 1 to 5.
8. A computer-readable storage medium, characterized in that A computer program is stored thereon, and when the program is executed by a processor, the method for quantitatively describing the remaining gas in a gas reservoir as claimed in any one of claims 1 to 5 is implemented.
9. A computer program, characterized in that When the program is executed by a processor, the method for quantitatively describing remaining gas in a gas reservoir as claimed in any one of claims 1 to 5 is implemented.
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