The present invention relates generally to methods and systems for attenuating multiple energy in seismic data and, in particular, methods and systems for attenuating peg-leg multiples in seismic data.
In the field of exploration geophysics, seismic data is typically recorded through the use of active seismic sources, such as air guns, vibrator units, or explosives, and receivers, such as hydrophones or geophones. The sources and receivers may be arranged in many configurations. Typically, a seismic survey is designed to optimize the source and receiver configurations so that the recorded seismic data may be processed to locate and/or analyze subsurface geological features of interest such as hydrocarbon reservoirs.
Recorded seismic data is useful for identifying structural features of the subsurface but in many instances it is contaminated with energy that has reflected from multiple reflection surfaces, often called “multiples.” Multiples may be surface-related, meaning that the energy reflected at the free-surface and may include water-bottom multiples in which the energy reflected between the water bottom and the water surface, or peg-leg multiples wherein the energy reflected within the layers of the subsurface. Conventional methods exist that can attenuate surface-related multiples but peg-leg multiples are notoriously difficult.
There is a need for seismic processing methods that can attenuate peg-leg multiple energy so that hydrocarbon reservoirs may be identified and produced in an efficient and economical way.
Described herein are implementations of various approaches for a computer-implemented method for seismic processing of a subsurface volume of interest.
A computer-implemented method for processing a seismic dataset contaminated with peg-leg multiple energy representative of a subsurface volume of interest includes identifying at least one peg-leg event in the seismic dataset; flattening the seismic dataset on the peg-leg event; transposing the seismic dataset so that an axis representative of the geographic space becomes the first axis to generate a transposed seismic dataset; filtering the transposed seismic dataset with a low-cut filter along the first axis to generate a filtered seismic dataset; and transposing the filtered seismic dataset to the original orientation to obtain a multiple-attenuated seismic dataset.
In another embodiment, a computer system including a data source or storage device, at least one computer processor, and a user interface used to implement the method for processing a seismic dataset representative of a subsurface volume of interest is disclosed.
In yet another embodiment, an article of manufacture including a non-transitory computer readable medium having computer readable code on it, the computer readable code being configured to implement a method for processing a seismic dataset representative of a subsurface volume of interest is disclosed.
The above summary section is provided to introduce a selection of concepts in a simplified form that are further described below in the detailed description section. The summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used to limit the scope of the claimed subject matter. Furthermore, the claimed subject matter is not limited to implementations that solve any or all disadvantages noted in any part of this disclosure.
These and other features of the present invention will become better understood with regard to the following description, claims and accompanying drawings where:
The present invention may be described and implemented in the general context of a system and computer methods to be executed by a computer. Such computer-executable instructions may include programs, routines, objects, components, data structures, and computer software technologies that can be used to perform particular tasks and process abstract data types. Software implementations of the present invention may be coded in different languages for application in a variety of computing platforms, environments, and architectures. It will be appreciated that the scope and underlying principles of the present invention are not limited to any particular computer software technology.
Moreover, those skilled in the art will appreciate that the present invention may be practiced using any one or combination of hardware and software configurations, including but not limited to a system having single and/or multiple processor computers, hand-held devices, tablet devices, programmable consumer electronics, mini-computers, mainframe computers, and the like. The invention may also be practiced in distributed computing environments where tasks are performed by servers or other processing devices that are linked through one or more data communications network. In a distributed computing environment, program modules may be located in both local and remote computer storage media including memory storage devices.
Also, an article of manufacture for use with a computer processor, such as a CD, pre-recorded disk or other equivalent devices, may include a tangible computer program storage medium and program means recorded thereon for directing the computer processor to facilitate the implementation and practice of the present invention. Such devices and articles of manufacture also fall within the spirit and scope of the present invention.
Referring now to the drawings, embodiments of the present invention will be described. The invention can be implemented in numerous ways, including, for example, as a system (including a computer processing system), a method (including a computer implemented method), an apparatus, a computer readable medium, a computer program product, a graphical user interface, a web portal, or a data structure tangibly fixed in a computer readable memory. Several embodiments of the present invention are discussed below. The appended drawings illustrate only typical embodiments of the present invention and therefore are not to be considered limiting of its scope and breadth.
The present invention relates to attenuating peg-leg multiple energy in recorded seismic data. Peg-leg multiple energy is illustrated in
The peg-leg multiple energy is difficult to attenuate using conventional techniques. One reason for this difficulty is that the peg-leg energy appears as apex-shifted multiples in the recorded seismic data. This means that, when viewing the common-reflection-point, common-depth-point, or common-midpoint (CRP, CDP, or CMP) gathers, the multiple energy appears as a hyperbola with an apex that does not occur at zero-offset or zero-angle. This may be seen in
One embodiment of the present invention is shown as method 200 in
Referring again to
When a peg-leg event has been identified, the seismic dataset can then be flattened on the peg-leg event (see
Once the seismic dataset is flattened on the peg-leg event, it is transposed at operation 24. This transposition changes the orientation of the axes of the dataset. The time or depth axis becomes a horizontal axis while the geographic axis becomes the first axis. The effect of this transposition is to make the previously flat peg-leg event into a vertical event, essentially turning it into a very low frequency event along the first axis. This operation is not merely turning the display of the seismic data on its side but rather changing the way the seismic data is stored in the computer memory. Conventional seismic data processing does not transpose seismic datasets due to the large memory requirements and a failure to recognize advantages in changing the orientation. The present invention makes use of recent advances in seismic data handling, such as those in Landmark's SeisSpace®, to perform this transposition. A transposed seismic data section can be seen in
Since the peg-leg energy is now very low frequency energy along the first axis, it can be filtered out of the dataset using a low-cut filter along the first axis at operation 26 in
After the peg-leg energy is attenuated at operation 26, the filtered transposed seismic dataset can be transposed back to its original orientation. The peg-leg event is now attenuated. The flattening of operation 22 can be reversed to restore the original subsurface structure. If more than one peg-leg event was identified at operation 21, the process may repeat operations 22—28 until all peg-leg events have been attenuated. The result will be a multiple-attenuated seismic dataset that is more suitable for further seismic processing and interpretation, which may allow for improved identification of subsurface hydrocarbon reservoirs.
Two more examples of results of method 200 can be seen in FIGS. 6A—6C and FIGS. 7A—7C. In
A system 800 for performing the method 200 of
While in the foregoing specification this invention has been described in relation to certain preferred embodiments thereof, and many details have been set forth for purpose of illustration, it will be apparent to those skilled in the art that the invention is susceptible to alteration and that certain other details described herein can vary considerably without departing from the basic principles of the invention. In addition, it should be appreciated that structural features or method steps shown or described in any one embodiment herein can be used in other embodiments as well.