Drilling mud flow metering system and method

US12013273B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-12013273-B2
Application numberUS-202217678524-A
CountryUS
Kind codeB2
Filing dateFeb 23, 2022
Priority dateFeb 23, 2022
Publication dateJun 18, 2024
Grant dateJun 18, 2024

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  1. Title

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  2. Abstract

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A mud flow measurement system includes a flow pipe, a Coriolis meter, a differential pressure sensor, and a mud flow measurement module. The mud flow measurement module is configured to select a calibration curve corresponding to a drilling mud injected into the well, determine a measured density based on the signal from each of the vibration sensors and the selected calibration curve, determine a differential pressure across the Coriolis meter from the differential pressure sensor, and compute a calculated mass flow rate, Q mass , of the multiphase mud flow using equation Q mass = C d ⁢ A t 1 - β 4 ⁢ 2 ⁢ ρ * Δ ⁢ P , where C d is a calibration constant, A t is a cross-sectional area of the measurement tube, β is a ratio of the internal diameters of the flow pipe the measuring tube, ρ is the density of the multiphase mud, and ΔP is the differential pressure across the Coriolis meter, where ρ is the measured density determined from the Coriolis meter.

First claim

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What is claimed is: 1. A mud flow measurement system comprising a flow pipe, a Coriolis meter, a differential pressure sensor, and a mud flow measurement module, wherein: the flow pipe is configured to direct a portion of the multiphase mud flow from a well to the Coriolis meter and the differential pressure sensor; the Coriolis meter comprises a measuring tube and two or more vibration sensors; the measuring tube is induced to oscillate; the vibration sensors are positioned at different locations along the measuring tube; each vibration sensor is configured to generate a signal in response to the multiphase mud flow through the Coriolis meter from the well; the differential pressure sensor is positioned to generate a signal corresponding to a pressure drop across the Coriolis meter in response to the multiphase mud flow flowing through the mud flow measurement system; and the mud flow measurement module is coupled to the Coriolis meter and the differential pressure sensor, and is configured to: select a calibration curve corresponding to a drilling mud injected into the well from a library of calibration curves for the Coriolis meter corresponding to different types of drilling muds, wherein calibration curves in the library of calibration curves for the Coriolis meter define a relationship between error in density and density for one or more drilling muds, determine a measured density based on the signal from each of the vibration sensors of the Coriolis meter and the selected calibration curve, determine a differential pressure across the Coriolis meter based on one or more signals generated by the differential pressure sensor, and compute a calculated mass flow rate, Q mass , of the multiphase mud flow using equation Q mass = C d ⁢ A t 1 - β 4 ⁢ 2 ⁢ ρ * Δ ⁢ P where C d is a calibration constant, A t is a cross-sectional area of the measurement tube of the Coriolis meter, β is a ratio of an internal diameter of the flow pipe and an internal diameter of the measuring tube of the Coriolis meter, ρ is the density of the multiphase mud, and ΔP is the differential pressure across the Coriolis meter determined from the differential pressure sensor, wherein ρ is the measured density determined from the Coriolis meter. 2. The mud flow measurement system of claim 1 , wherein the mud flow measurement module is further configured to: determine a measured mass flow rate based on the signal from each of the vibration sensors of the Coriolis meter and the selected calibration curve, and determine a calculated density of the multiphase mud flow based on the measured mass flow rate and the differential pressure across the Coriolis meter. 3. The mud flow measurement system of claim 2 , wherein the mud flow measurement module is further configured to: compare the calculated mass flow rate with the measured mass flow rate, and estimate a secondary phase of the multiphase mud based on the comparison of the calculated mass flow rate with the measured mass flow rate and the selected calibration curve. 4. The mud flow measurement system of claim 2 , wherein the mud flow measurement module is further configured to: compare the calculated density with the measured density, and estimate a secondary phase of the multiphase mud based on the comparison of the calculated density with the measured density and the selected calibration curve. 5. The mud flow measurement system of claim 1 , wherein the Coriolis meter is a serial path Coriolis meter. 6. The mud flow measurement system of claim 1 , further comprising an absolute pressure sensor positioned upstream of the Coriolis meter and wherein the mud flow measurement module is further configured to: determine a pressure of the multiphase mud flow in the flow pipe based on a signal from the absolute pressure sensor, and determine a volume of the multiphase mud entrained with a compressible fluid. 7. The mud flow measurement system of claim 1 , further comprising an injection system comprising an injection port configured to inject a fluid comprising at least one of a gas or a liquid into the flow pipe upstream of the Coriolis meter, wherein injecting amounts of the fluid adjust at least one of the density or mass flow rate of the multiphase mud flow. 8. A mud flow measurement method implemented by a mud flow measurement system including a Coriolis meter having a measuring tube and two or more vibration sensors, a differential pressure sensor positioned to generate a signal corresponding to a pressure drop across the Coriolis meter in response to the multiphase mud flow flowing through the mud flow measurement system, and a flow pipe configured to direct a portion of the multiphase mud flow from a well to the Coriolis meter and the differential pressure sensor, the method comprising: selecting a calibration curve corresponding to a drilling mud injected into the well from a library of calibration curves for the Coriolis meter corresponding to different types of drilling muds, wherein calibration curves in the library of calibration curves for the Coriolis meter define a relationship between error in density and density for one or more drilling muds; determining a measured density based on a signal from the Coriolis meter and the selected calibration curve; determining a differential pressure across the Coriolis meter based on one or more signals generated by the differential pressure sensor; and computing a calculated mass flow rate, Q mass , of the multiphase mud flow using equation Q mass = C d ⁢ A t 1 - β 4 ⁢ 2 ⁢ ρ * Δ ⁢ P where C d is a calibration constant, A t is a cross-sectional area of the measurement tube of the Coriolis meter, β is a ratio of an internal diameter of the flow pipe and an internal diameter of the measuring tube of the Coriolis meter, ρ is the density of the multiphase mud,

Assignees

Inventors

Classifications

  • with differential-pressure measurement to determine the volume flow · CPC title

  • Details of construction of the flow constriction devices · CPC title

  • Controlling or monitoring pressure or flow of drilling fluid, e.g. automatic filling of boreholes, automatic control of bottom pressure (valve arrangements therefor E21B21/10) · CPC title

  • of flowmeters · CPC title

  • using variation of the resonant frequency of an element vibrating in contact with the material submitted to analysis (G01N9/34 takes precedence) · CPC title

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What does patent US12013273B2 cover?
A mud flow measurement system includes a flow pipe, a Coriolis meter, a differential pressure sensor, and a mud flow measurement module. The mud flow measurement module is configured to select a calibration curve corresponding to a drilling mud injected into the well, determine a measured density based on the signal from each of the vibration sensors and the selected calibration curve, determin…
Who is the assignee on this patent?
Saudi Arabian Oil Co
What technology area does this patent fall under?
Primary CPC classification G01F1/84. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Jun 18 2024 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 3 related publications on this page (citations in our corpus or others sharing the same primary CPC).