产品展厅>>研发&服务>>辰工CO2驱试井分析软件V1.0软件研制

CO2 驱油是一种相对节能环保的采油技术,可以有效促进低渗透油藏的开发。试井数据是研究 CO2 驱油技术效果的关键,而目前对于 CO2驱油试井数据的分析方法还不够成熟。因此,开展C02驱油试井分析方法研究,可以为提高 C02 驱油技术的应用效果提供重要的科学依据。

本项目的主要研究内容为:二氧化碳驱试井分析方法研究,技术内容包括:

C02驱试井模型的建立:CO2驱油机理非常复杂,为准确模拟驱替过程,采用状态方程、相平衡方程和闪蒸计算模型描述气液两相间的传质现象及相态变化;由于CO,的压缩性非常大,且压力沿着井筒的变化较大,需采用合适的内边界模型,准确捕捉井筒存储效应。

C02驱试井曲线分析:充分分析CO,驱典型试井曲线的特征及其影响因素,成为通过试井方法了解 CO,驱替效果的关键技术。

复杂油藏类型及井型的CO2驱试井模型的建立:随着勘探开发技术的进步,油藏类型和井型越来越复杂,需要针对不同的油藏类型和井型建立相应的CO2驱数值试井模型,如低渗透油藏、裂缝性油藏和压裂井等。

试井曲线拟合:由于地层具有不确定性,而地质模型的准确性对CO2驱的预测及生产注入方案的优化具有非常大的影响,因此,如何充分利用试井过程的井底压力数据,采用有效的试井曲线拟合方法来估算地层参数十分重要。

CO2 驱试井分析软件能够提供准确的油藏参数和动态信息,帮助企业优化开发方案、调整生产措施,满足油田精细化管理的需求。本项目研发的 CO2 驱试井分析软件在技术上具有领先优势,能够准确考虑 CO2 的特性、多相流耦合以及地质非均质性等复杂因素,提供更准确的试井分析结果。相比现有市场上的同类软件,具有更高的精度和更强大的功能,市场前景广阔。

Products>>Project Development>>Establishment of wellhead pressure drop model for multi-stage volume fracturing and single-stage fracturing

Shale oil is a tight reservoir and has low conventional fracturing production, it is difficult to achieve efficient development. As a new technology, multi-stage multi-cluster fracturing engineering technology has become an important measure to increase production of shale oil and low permeability reservoirs, and is an important means to realize the economic development of shale oil. Multi-stage multi-cluster fracturing has large scale and costs, so it is important to evaluate and analyze the effect. Well testing technology is an important means to determine the fracture half length, fracture conductivity, formation permeability, formation pressure and so on. It has been widely applied for its low cost and simple process.

There are many researches on conventional fracturing well test technology at home and abroad, and the well test method is relatively perfect, but the research on large volume staged fracturing well test technology in shale reservoir is still in the initial stage, the understanding of seepage characteristics is not deep enough, and the mature interpretation method has not been formed. Research and development of well test evaluation technology for fracturing effect, determination of fracture half length, fracture conductivity, formation permeability and formation pressure in the reconstruction area become important problems to be solved for fracturing design optimization and efficient development.

Aiming at the multi-stage fracturing technology of horizontal wells in the development process of shale reservoir, the wellhead pressure drop model of multi-stage volume fracturing and single-stage fracturing is established. The main technical contents include:

Study on the establishment of physical model and mathematical model of single-stage fracturing evaluation, study on the theoretical method, study on the solution method of mathematical model, and establish the pressure response characteristic curve.

By analyzing the influencing factors of pressure response characteristics, the main controlling factors of pressure curve shape characteristics were identified, and the analysis chart was established.

Research on conversion method of wellhead-bottomhole pressure, calculation method of wellbore vertical pipe flow under variable flow rate, variable density and variable viscosity; mathematical solution of complex vertical pipe flow equation; research on elimination method of pressure data fluctuation caused by water hammer based on filtering theory.

The influence of wellhead pressure accuracy and stop pump time on the corresponding characteristics of the model is analyzed.

Study on inversion of measured data and formation parameters method.

Based on the analysis and study of the construction data during fracturing, this project puts forward the well test analysis method of pump stop pressure drop, and forms the corresponding calculation module, so as to determine the fracture half length, fracture conductivity, formation permeability of reconstruction area and formation pressure of the fracturing well, and provides technical support for the fracturing effect evaluation in the process of shale oil volume fracturing development . This project not only provides a means of fracturing effect evaluation, but also provides a new method of using fracturing data to carry out formation evaluation, which has important application value. Moreover, there is no need to increase the test cost for this kind of data analysis, and it has immediate, accurate and low-cost technical and economic advantages.