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    • 2. 发明授权
    • Oilfield analysis systems and methods
    • 油田分析系统和方法
    • US06829570B1
    • 2004-12-07
    • US09712491
    • 2000-11-14
    • Raj Kumar Michael ThambynayagamPeter G. TilkeIan D. BryantFrancois M. AuzeraisNicholas N. BennettTerizhandur S. Ramakrishnan
    • Raj Kumar Michael ThambynayagamPeter G. TilkeIan D. BryantFrancois M. AuzeraisNicholas N. BennettTerizhandur S. Ramakrishnan
    • G06G748
    • G01V11/00Y10S707/99945
    • An oilfield data analysis system is based on a four-tier software model which includes a “shared earth model” and a federation of “directory services”. The first tier is a universal graphical user interface (GUI) which can operate on any inexpensive computer as well as on an expensive workstation, i.e. a “web browser”. The second tier is an application server which is coupled to users via the worldwide web and serves geoscientific software applications. The third tier is a geometric modelling system where geometric data is stored and processed. The third tier embodies the “shared earth model”. The fourth tier is a database management system where non-geometric data is stored. According to the invention, there can be (and preferably are) multiple instances of each tier. Communication of data between different tiers is accomplished via XML data exchange. According to a presently preferred embodiment, the geoscience applications served by the second tier are written as JAVA servlets and applications may communicate with each other without human direction by registering requests with “directory services”. Applications interested in certain types of data “listen” for “data events” being registered with directory services. The cost of utilizing an application can be based on a time-rental billing operation which is carried out automatically via directory services.
    • 油田数据分析系统基于四层软件模型,包括“共享地球模型”和“目录服务”联合体。 第一层是通用图形用户界面(GUI),其可以在任何廉价的计算机以及昂贵的工作站(即“web浏览器”)上操作。 第二层是通过全球网络耦合到用户的应用服务器,并提供地球科学软件应用。 第三层是几何建模系统,几何数据被存储和处理。 第三层体现了“共享地球模式”。 第四层是存储非几何数据的数据库管理系统。 根据本发明,可以(并且优选地)每层的多个实例。 通过XML数据交换实现不同层之间的数据通信。 根据目前优选的实施例,由第二层服务的地球科学应用程序被写为JAVA小服务程序,应用程序可以通过向“目录服务”注册请求而无需人为方向来彼此通信。 对某些类型的数据感兴趣的应用程序“监听”目录服务中注册的“数据事件”。 利用应用程序的成本可以基于通过目录服务自动执行的时间租赁计费操作。
    • 5. 发明授权
    • Gas reservoir evaluation and assessment tool method and apparatus and program storage device
    • 气藏评估与评估工具方法及装置及程序存储装置
    • US08145463B2
    • 2012-03-27
    • US11924560
    • 2007-10-25
    • Raj Kumar Michael ThambynayagamJeffrey SpathRaj BanerjeeJohn Philip GilchristTommy Miller
    • Raj Kumar Michael ThambynayagamJeffrey SpathRaj BanerjeeJohn Philip GilchristTommy Miller
    • G06G7/48
    • G01V11/00
    • A Gas Reservoir Evaluation and Assessment Tool utilizes an Analytical Engine to produce predictions of pressure values and other production data at any point in space and at any point in time in a reservoir. A computer system, such as a workstation, stores a Gas Reservoir Evaluation and Assessment software which includes the Analytical Engine and responds to input data (which includes a reservoir description and fluid properties) by generating an output record which represents a prediction of the pressure values and other data at ‘any point in space’ and at ‘any point in time’ in a reservoir. The Analytical Engine will first calculate a pressure value in 1D for a single layer of a reservoir at a single point in space and time; it will then calculate a pressure value in 1D for multiple layers in the reservoir at the single point in space and time; it will then calculate a pressure value in 2D for the multiple layers at the single point in space and time; it will then calculate a pressure value in 3D for the multiple layers at the single point in space and time; and it will then calculate a pressure values in 3D for multiple layers not only at a single point in space but also at any future point in time.
    • 气藏评估和评估工具利用分析引擎在空间和任何时间点在油藏中产生压力值和其他生产数据的预测。 诸如工作站的计算机系统存储包括分析引擎的气体储存器评估和评估软件,并通过产生表示压力值的预测的输出记录来响应输入数据(其包括储存器描述和流体特性) 和“空间任何一点”和“任何时间点”中的其他数据。 分析引擎将首先计算空间和时间单个点的单层储层的1D压力值; 然后在空间和时间的单个点计算储层中多层的1D的压力值; 然后在空间和时间的单个点计算多层的2D压力值; 然后将在空间和时间的单个点计算多层的3D压力值; 然后它将不仅在空间中的单个点,而且在任何未来的时间点,为多层计算3D中的压力值。
    • 8. 发明授权
    • Gas reservoir evaluation and assessment tool method and apparatus and program storage device
    • 气藏评估与评估工具方法及装置及程序存储装置
    • US07363162B2
    • 2008-04-22
    • US11227540
    • 2005-09-15
    • Raj Kumar Michael ThambynayagamJeffrey SpathRaj BanerjeeJohn Philip GilchristTommy Miller
    • Raj Kumar Michael ThambynayagamJeffrey SpathRaj BanerjeeJohn Philip GilchristTommy Miller
    • G06F19/00G01V1/36
    • G01V99/00
    • A Gas Reservoir Evaluation and Assessment Tool utilizes an Analytical Engine to produce predictions of pressure values and other production data at any point in space and at any point in time in a reservoir. A computer system, such as a workstation, stores a Gas Reservoir Evaluation and Assessment software which includes the Analytical Engine and responds to input data (which includes a reservoir description and fluid properties) by generating an output record which represents a prediction of the pressure values and other data at ‘any point in space’ and at ‘any point in time’ in a reservoir. The Analytical Engine will first calculate a pressure value in 1D for a single layer of a reservoir at a single point in space and time; it will then calculate a pressure value in 1D for multiple layers in the reservoir at the single point in space and time; it will then calculate a pressure value in 2D for the multiple layers at the single point in space and time; it will then calculate a pressure value in 3D for the multiple layers at the single point in space and time; and it will then calculate a pressure values in 3D for multiple layers not only at a single point in space but also at any future point in time.
    • 气藏评估和评估工具利用分析引擎在空间和任何时间点在油藏中产生压力值和其他生产数据的预测。 诸如工作站的计算机系统存储包括分析引擎的气体储存器评估和评估软件,并通过产生表示压力值的预测的输出记录来响应输入数据(其包括储存器描述和流体特性) 和“空间任何一点”和“任何时间点”中的其他数据。 分析引擎将首先计算空间和时间单个点的单层储层的1D压力值; 然后在空间和时间的单个点计算储层中多层的1D的压力值; 然后在空间和时间的单个点计算多层的2D压力值; 然后将在空间和时间的单个点计算多层的3D压力值; 然后它将不仅在空间中的单个点,而且在任何未来的时间点,为多层计算3D中的压力值。