Systems and processes for improved drag reduction estimation and measurement

US11898094B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11898094-B2
Application numberUS-202017104514-A
CountryUS
Kind codeB2
Filing dateNov 25, 2020
Priority dateNov 27, 2019
Publication dateFeb 13, 2024
Grant dateFeb 13, 2024

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Abstract

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The present invention relates generally to systems and processes for improved drag reduction estimation and measurement and more specifically to portable drag reduction analyzers and processes for upscaling drag reduction data for a variety of field applications. A drag reduction parameter ΔB for the fluid mixture is used for determining drag reduction for a fluid mixture in an oil field or pipeline operation.

First claim

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What is claimed is: 1. A process comprising: preparing a fluid mixture for an oil field operation or a pipeline operation, the fluid mixture comprising a concentration of a drag reducing agent determined based on a drag reduction parameter ΔB for the fluid mixture; and using the fluid mixture in the oil field operation or the pipeline operation; wherein the drag reduction parameter ΔB is defined by an equation: Δ B=ΔB max B N wherein B N =0 for Wi< 1 and B N =CDF for 0< B N <1 wherein ΔB max is maximum drag reduction at Wi>>1, B N is normalized drag reduction as a function of shear, Wi={dot over (γ)} w λ is Weissenberg number, {dot over (γ)} w is the wall shear rate, λ is the longest relaxation time, and CDF is a cumulative distribution function. 2. The process of claim 1 , wherein the process is a hydraulic fracturing process. 3. The process of claim 1 , wherein the drag reduction parameter ΔB max for the fluid mixture is from about 10 to about 70 wherein ΔB max is the maximum drag reduction at Wi>>1 wherein Wi={dot over (γ)} w λ and wherein Wi is Weissenberg number, {dot over (γ)} w is the wall shear rate, and λ is the longest relaxation time. 4. The process of claim 1 , wherein the drag reduction parameter ΔB max for the fluid mixture is from about 15 to about 40 wherein ΔB max is the maximum drag reduction at Wi>>1 wherein Wi={dot over (γ)} w λ and wherein Wi is Weissenberg number, {dot over (γ)} w is the wall shear rate, and λ is the longest relaxation time. 5. The process of claim 1 , wherein the drag reduction parameter ΔB max for the fluid mixture is from about 20 to about 35 wherein ΔB max is the maximum drag reduction at Wi>>1 wherein Wi={dot over (γ)} w λ and wherein Wi is Weissenberg number, {dot over (γ)} w is the wall shear rate, and λ is the longest relaxation time. 6. The process of claim 1 , wherein the concentration of the drag reducing agent in the fluid mixture is determined based on the drag reduction parameter ΔB for the fluid mixture and a relaxation time of the drag reducing agent. 7. The process of claim 1 , further comprising: measuring one or more fluid properties of the fluid mixture in a laboratory or a flow loop; determining a small-scale drag reduction parameter ΔB for the fluid mixture based on the one or more fluid properties of the fluid mixture measured in the laboratory or the flow loop; and upscaling the small-scale drag reduction parameter ΔB for use in the oil field operation or the pipeline operation. 8. The process of claim 1 , further comprising: measuring one or more fluid properties of the fluid mixture using a portable apparatus; determining a small-scale drag reduction parameter ΔB for the fluid mixture based on the one or more fluid properties of the fluid mixture measured using the portable apparatus; and upscaling the small-scale drag reduction parameter ΔB for use in the oil field operation or the pipeline operation. 9. The process of claim 8 , wherein the portable apparatus comprises: a housing with an inlet to receive the fluid mixture from a fluid source and an outlet to expel the fluid mixture from the portable apparatus; a pipe fluidly connected to the inlet to receive at least a portion of the fluid mixture and deliver the portion of the fluid mixture to the outlet; and one or more instruments to measure the one or more fluid properties within the portable apparatus selected from a temperature of the fluid mixture proximate the inlet of the housing, an inlet pressure of the fluid mixture proximate the inlet of the housing, a flow rate of the portion of the fluid mixture within the pipe, a pressure differential of the portion of the fluid mixture across the pipe, an outlet pressure of the fluid mixture proximate the outlet of the housing, or any combination thereof. 10. A process comprising: preparing a fluid mixture for an oil field operation or a pipeline operation, the fluid mixture comprising a concentration of a drag reducing agent determined based on a drag reduction parameter ΔB for the fluid mixture; and using the fluid mixture in the oil field operation or the pipeline operation; wherein the process further comprises: measuring one or more fluid properties of the fluid mixture in a laboratory, a flow loop, a portable apparatus, or any combination thereof; determining a small-scale drag reduction parameter ΔB for the fluid mixture based on the one or more fluid properties of the fluid mixture measured in the laboratory or the flow loop; and upscaling the small-scale drag reduction parameter ΔB for use in the oil field operation or the pipeline operation; wherein an analytical model is used for upscaling the small-scale drag reduction parameter ΔB for use in the oil field operation or the pipeline operation; wherein the drag reduction parameter ΔB is defined by an equation: Δ B=ΔB max B N wherein B N =0 for Wi< 1 and B N =CDF for 0< B N <1 wherein ΔB max is maximum drag reduction at Wi>>1, B N is normalized drag reduction as a function of shear, Wi={dot over (γ)} w λ is Weissenberg number, {dot over (γ)} w is the wall shear rate, λ is the longest relaxation time, and CDF is a cumulative distribution function. 11. The process of claim 10 , wherein an analytical model determines the drag reduction parameter ΔB for the fluid mixture based on one or more parameters selected from the small-scale drag reduction parameter ΔB for the fluid mixture, a relaxation time of the drag reducing agent, a Weissenberg number for the fluid mixture, a shear rate of the fluid mixture, a diameter of a conduit in the oil field operation or the pipeline operation, a wall roughness of the conduit, a wall shear stress in the conduit, a flow rate of the fluid mixture through the conduit, a viscosity of the fluid mixture, a density of the fluid mixture, a temperature of the fluid mixture, a molecular weight of the drag reducing agent, or any combination thereof. 12. The process of claim 10 , further comprising: measuring one or more actual fluid properties of the fluid mixture in the oil field operation or the pipeline operation; and updating the analytical model based on the actual fluid properties of the fluid mixture in the oil field operation or the pipeline operation. 13. A process to determine drag reduction for a fluid mixture for an oil field operation or a pipeline operation comprising: measuring one or more fluid properties of a fluid mixture comprising a concentration of a drag reducing agent in a laboratory, flow loop, or with a portable apparatus, or any combination thereof; determining a small-scale drag reduction parameter ΔB for the fluid mixture based on the one or more fluid properties; and upscaling the small-scale drag reduction parameter ΔB to determine a target fluid mixture for use in the oil field operation or the pipeline operation; wherein the drag reduction parameter ΔB is defined by an equation: Δ B=ΔB max B N wherein B N =0 for Wi< 1 and B N =CDF for 0< B N <1 wherein ΔB max is maximum drag reduction at Wi>>1, B N is normalized drag reduction as a function of shear, Wi={dot over (γ)} w λ is Weissenberg number, {dot over (γ)} w is the wall shear rate, λ is the longest relaxation time, and CDF is a cumulative distribution function. 14. The process of claim 13 , wherein measuring one or more fluid properties of the fluid mixture in the laboratory, flow loop, or with the portable apparatus comprises measuring the concentration of the drag reducing agent for a range of flow rates using at least one d

Assignees

Inventors

Classifications

  • C09K8/62Primary

    Compositions for forming crevices or fractures · CPC title

  • containing surfactants · CPC title

  • by forming crevices or fractures · CPC title

  • Survey of boreholes or wells (monitoring pressure or flow of drilling fluid E21B21/08) · CPC title

  • through a restricted passage, e.g. tube, aperture · CPC title

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What does patent US11898094B2 cover?
The present invention relates generally to systems and processes for improved drag reduction estimation and measurement and more specifically to portable drag reduction analyzers and processes for upscaling drag reduction data for a variety of field applications. A drag reduction parameter ΔB for the fluid mixture is used for determining drag reduction for a fluid mixture in an oil field or pip…
Who is the assignee on this patent?
Chevron Usa Inc
What technology area does this patent fall under?
Primary CPC classification C09K8/62. Mapped technology areas include Chemistry & Metallurgy.
When was this patent published?
Publication date Tue Feb 13 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 11 related publications on this page (citations in our corpus or others sharing the same primary CPC).