一种新的分析方法来设计使用ICD的水平井完成,以消除跟脚效应
1Department of Petroleum Engineering, Amirkabir University of Technology, Tehran, Iran. ramin.ey01@aut.ac.ir.
Scientific reports
|April 1, 2025
概括
本研究提出了一种新的分析方法和集成算法,以优化使用流入控制装置 (ICD) 的水平井完成. 该方法解决了跟脚效应和不均的生产,提高了油气田的性能.
科学领域:
- 石油工程是石油工程中的一个.
- 储水库工程 储水库工程
背景情况:
- 水平井对于石油和天然气开采至关重要.
- 脚跟脚效应和不均的生产流量降低了水平井的效率.
- 输入控制装置 (ICD) 对于提高水平井性能至关重要.
研究的目的:
- 开发一种新的,快速的和分析的方法来设计使用ICD的水平井完成.
- 为了应对关键的设计挑战:ICD的数量,位置和压力下降.
- 将可靠的,低不确定性数据集成到高效的设计算法中.
主要方法:
- 引入三个关键设计参数:ICD段长,均等的生产流量和最小的ICD段长.
- 开发一个快速,集成的工作流程,用于水平井完成设计.
- 使用这些参数来确定细分和ICD数量,位置和强度.
主要成果:
- 一种新的方法来确定ICD和人工流量改善器 (AFIs) 的最佳数量和放置.
- 一个集成的工作流,可以快速计算ICD强度和井段配置.
- 通过解决不统一的生产,提高水平井设计的效率.
结论:
- 开发的方法为使用ICD的水平井完成设计提供了高效和分析性的解决方案.
- 这种方法有效地减轻了脚跟效应,并优化了生产流入.
- 综合工作流提高了石油和天然气田开发的整体性能和效率.
相关概念视频
Horizontal Curve: Problem Solving
32
A horizontal curve is characterized by its radius, intersection angle, and stationing of key points. In this case, the radius is 400 meters, and the angle of intersection is 30 degrees, with the station of the point of curvature (P.C.) at 0 + 150 meters. The goal is to determine the station values at the point of intersection (P.I.), point of tangency (P.T.), and midpoint of the curve, as well as the length of the long chord.The process begins with calculating the tangent distance (T) and the...
32
Design Example: Maintaining Level of an Embankment
42
Constructing a roadway embankment over uneven terrain requires precise leveling to ensure stability and proper drainage. Surveyors use a leveling instrument and staff to calculate ground elevations and determine the required fill material at each point along the embankment alignment.The process begins by positioning a leveling instrument near a benchmark with a known elevation. A backsight reading establishes the instrument height, which serves as a reference for subsequent measurements. A...
42
Design Example: Setting a Curve Using Design Data
17
Designing and plotting a curve using field data requires precise calculations and execution. A horizontal curve with a radius of 200 meters and an intersection angle of 20 degrees is established using the method of perpendicular offsets from the long chord. The long chord, which spans between the curve's endpoints, is calculated to be 69.46 meters in length. To maintain accuracy in plotting, intervals of 3 meters are selected along the chord.The engineer determines the offset distances for each...
17
Bearings: Problem Solving
258
Understanding the calculations and concepts related to double-collar bearings is essential for engineers and designers to optimize the performance of these components in various applications. By analyzing the bearing under different conditions, one can ensure that it can withstand the forces and moments experienced during operation. This knowledge enables better decision-making when designing and selecting bearings for specific purposes and configurations. Consider a double-collar bearing with...
258
Vertical Curve: Problem Solving
21
Vertical curves provide the transition between two roadway grades, ensuring safety, comfort, and functionality. Calculating elevations at specific stations along the curve involves several systematic steps based on the curve's geometry and provided design parameters.The vertical curve is defined by its length, grades, Point of Vertical Intersection (P.V.I.) location, and P.V.I. elevation. The stations of the Point of Vertical Curvature (P.V.C.), where the curve begins, and the Point of Vertical...
21
Weir: Problem Solving
30
Water flow in open channels is often measured using hydraulic structures such as weirs, which allow precise calculation of discharge. In a rectangular channel, flow rates are measured using three types of weirs: rectangular sharp-crested, triangular sharp-crested, and broad-crested. The weir head is set at a fixed height above the channel bottom, simplifying calculations and enabling the relationship between depth and flow rate to be analyzed.For the rectangular sharp-crested weir, the flow...
30


