A New Analytical Model for Predicting Steam-Assisted Gravity-Drainage Performance in the Plateau and Decline Stages
Новая аналитическая модель для прогнозирования работы процесса парооблегчённого гравитационного дренажа (SAGD) в стадии плато и стадии спада
2022-11-14
SCID: 54.1/swncgfkf
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decline stage productionpermeability anisotropyplateau stage productionsteam-assisted gravity drainagesteam/oil ratio (SOR)
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Abstract (AI)
Summary Analytical models have been widely used to study the steam-assisted gravity-drainage (SAGD) process. Existing analytical models for this process either underperform or are limited in their applicability. In this paper, a new analytical model is developed to address these shortcomings. The new model consists of three major components. First, an equation for predicting oil production rate during the plateau stage was developed. This equation allows for permeability anisotropy in the reservoir, which is neglected in the majority of existing analytical models. Second, a novel and concise equation for calculating oil production rate during the decline stage was derived. This equation for the first time provides a general relationship between oil production rate during the decline stage and the properties of the reservoir together with key operating conditions and simultaneously mitigates the shortcomings of the majority of existing models (e.g., inapplicable in the decline stage of the SAGD process). Third, new correlations representing heat loss from the steam chamber to the overburden and heat transfer to oil-undepleted zone ahead of the chamber interface were derived; new predictive equations for estimating steam/oil ratio (SOR) in the plateau and decline stages of SAGD were obtained. The new model has been validated against a 2D scaled laboratory experiment and a set of field data. The results of this validation show that the new model predicts the oil production rate and SOR over the lifetime of an SAGD operation (excluding the short steam rise period) reasonably well. Predictions from the new model were also compared with several existing analytical models: The new model provided a closer match to actual measurements than other models. This robust model is grounded in more physics and incorporates reservoir geology and well operating conditions. It enables better understanding of the SAGD process and significantly improves the prediction of SAGD performance. Hence, it can be used to design new SAGD projects, predict existing projects, and optimize existing projects.
Key Findings
1
A new analytical SAGD model was developed with three components: plateau-stage oil rate equation, decline-stage oil rate equation, and heat-loss/heat-transfer correlations.
2
New correlations were derived for heat loss to the overburden and heat transfer to the undepleted oil zone, enabling predictive equations for SOR in plateau and decline stages.
3
The derived decline-stage oil rate equation provides a general relationship linking decline-stage oil rate to reservoir properties and operating conditions, applicable where many prior models fail.
4
The plateau-stage oil rate equation accounts for reservoir permeability anisotropy, addressing a common neglect in existing models.
5
Validation against a 2D laboratory experiment and field data shows the model predicts oil production rate and SOR over SAGD lifetime reasonably well and matches measurements more closely than several existing analytical models.
Research Object
Steam-assisted gravity-drainage (SAGD) process in a reservoir (including steam chamber, overburden, oil-undepleted zone, and producing wells)
Research Subject
Analytical prediction of SAGD performance metrics — oil production rate during plateau and decline stages, steam/oil ratio (SOR), and heat losses/heat transfer incorporating reservoir permeability anisotropy, geology, and operating conditions
Publication Details
Publication Date
2022-11-14
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References available in scid.ai6
A Novel Analytical Model for Steam Chamber Rise in Steam-Assisted Gravity Drainage2022
An Improved Mathematical Model for Accurate Prediction of the Heavy Oil Production Rate during the SAGD Process2020
A New Approach to the Analytical Treatment of Steam-Assisted Gravity Drainage: A Prescribed Interface Model2019
Discussion on the Effects of Temperature on Thermal Properties in the Steam-Assisted-Gravity-Drainage (SAGD) Process. Part 1: Thermal Conductivity2013
A Steam-Assisted Gravity Drainage Model For Tar Sands: Linear Geometry1992
A New Approach To The Modelling Of Steam-Assisted Gravity Drainage1985
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