IP Library Granted Patent US 10,997,518
Granted Patent B2
US 10,997,518 · App. 16/269,326 · Granted May 4, 2021

Method for predicting oil and gas reservoir production

Inventor: Duc Lam (Pearland, TX)
G06N7/005E21B47/04G06F30/20G06F2111/08
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,997,518
App. No.
16/269,326
Granted
May 4, 2021
Kind
B2
Abstract

A method for predicting oil and gas production comprising a new and improved reservoir production modeling and forecasting system, containing a commercialized physics-based forecasting tool, that fully incorporates a complete production analysis system for the evaluation of petroleum reservoir production performance. Said method precisely forecasts production and estimates reserves to maximize profitability, increases the predictability of oil and gas reservoir production, and minimizes errors in production forecasting and booking reserves.

Claims (25)

1. A method of predicting oil and gas reservoir production in current and future producing wells, the method comprising:

receiving, by a data collection module, a set of data comprising ranges of specified parameters of an oil and gas reservoir associated with at least one wellsite to generate a plurality of simulation curves for the oil and gas reservoir associated with the at least one wellsite, the ranges having a low variable and a high variable, wherein the at least one wellsite comprises a wellbore penetrating a subterranean formation for extracting fluid from the oil and gas reservoir therein;

creating and running, by a simulation module, a base case simulation from the ranges of specified parameters for the oil and gas reservoir associated with the at least one wellsite;

using a simulation module user interface to:

adjust the ranges of specified parameters for the base case simulation to obtain an outcome of the base case simulation;

display a plurality of fluid production and reserves based on the adjusted ranges of specified parameters and the outcome of the base case simulation;

display the outcome of the base case simulation in the plurality of simulation curves on a display in the simulation module;

export and store the plurality of simulation curves into a database in a virtual server and a virtual private cloud;

uploading from a client firewall, by an analytical module, a set of actual wellsite data comprising production data, pressure data, and parameter data;

using an analytical module user interface to:

input the actual wellsite parameter data and select the ranges of specified parameters to display the plurality of simulation curves from the database in the virtual server and the virtual private cloud;

match simulation production data and simulation pressure data from the plurality of simulation curves from the database in the virtual server and the virtual private cloud with the actual wellsite production data and the actual wellsite pressure data to obtain a plurality of matching simulation curves;

display an outcome of the plurality of matching simulation curves on a display in the analytical module;

calculate a probability distribution for the outcome of the plurality of matching simulation curves;

create a plurality of decline curve models with the outcome of the plurality of matching simulation curves;

match the outcome of the plurality of matching simulation curves to the plurality of decline curve models by adjusting a plurality of decline curve parameters; and

export the adjusted plurality of decline curve models for the current and the future producing wells into a user format for economic analysis;

re-select the ranges of specified parameters for adjusting the probability distribution for the current and the future producing wells until achieving an optimal economic result, and

using the adjusted probability distribution to perform a drilling operation to drill another wellbore at the oil and gas reservoir.

2. The method of predicting oil and gas reservoir production as in claim 1 , wherein the simulation module comprises Computer Modelling Group reservoir simulation software or Petrel Reservoir Engineering Eclipse simulation software.

3. The method of predicting oil and gas reservoir production as in claim 1 , wherein the database comprises a Relational Database System.

4. The method of predicting oil and gas reservoir production as in claim 1 , wherein the analytical module comprises Spotfire.

5. The method of predicting oil and gas reservoir production of claim 1 , wherein the analytical module comprises a parameters window, wherein the ranges of the specified parameters are selected in the parameters window.

6. The method of predicting oil and gas reservoir production as in claim 1 , wherein the decline curve model is based on Arps decline curve analysis.

7. The method of predicting oil and gas reservoir production as in claim 1 , wherein the decline curve parameters are based on Arps parameters.

Assignments (4)
U.S. INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Nov 11, 2025
From: COMPUTER MODELLING GROUP LTD.; BLUWARE, INC.
To: NATIONAL BANK OF CANADA, AS ADMINISTRATIVE AGENT
Reel/Frame 073542/0350 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 9, 2023
From: LAM, DUC
To: UNCONVENTIONAL SUBSURFACE INTEGRATION LLC DBA USI
Reel/Frame 064192/0132 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 9, 2023
From: UNCONVENTIONAL SUBSURFACE INTEGRATION LLC
To: COMPUTER MODELLING GROUP LTD.
Reel/Frame 064192/0241 →
CONFIRMATION AND ASSIGNMENT Recorded Jul 9, 2023
From: LAM, DUC
To: UNCONVENTIONAL SUBSURFACE INTEGRATION LLC
Reel/Frame 064235/0623 →
Continuity (2)
Provisional Application 62630806 · Feb 14, 2018
Related Publication 20190251460A1 · Aug 15, 2019