A casing centralizer is a mechanical tool that is used for centering casing with respect to a wellbore wall. Casing centralizers form bumps or protrusions around the casing to completely seal the casing to the wellbore wall. Casing centralizers may be simple with bow-springs that bounce the casing off from the wellbore wall. Bow-springs may be slightly larger than the wellbore to provide in vertical wells. A setback of these simple casing centralizers is that they usually do not support the weight of the casing in deviated wellbores. Casing centralizers may be complex with additional rugged surfaces to improve performance in deviated wellbores. A setback of these complex centralizers is that they are expensive to manufacture and they are usually smaller than some wellbores, which prevents them from providing any centralization capabilities in some well sites.
In general, in one aspect, embodiments disclosed herein relate to a hydraulic casing centralizer device. The hydraulic casing centralizer device includes a cylindrical housing having a central chamber extending through a portion of the cylindrical housing and along a central axis thereof. The hydraulic casing centralizer device includes a locking mechanism that reacts to a hydraulic force when the hydraulic force is applied from an inside of the central chamber. The hydraulic casing centralizer device includes a threaded section that is configured for screwing the device into a casing joint, the threaded section being disposed in the cylindrical housing.
In general, in one aspect, embodiments disclosed herein relate to a system for expanding a hydraulic casing centralizer device. The system includes a casing joint comprising an upper casing joint and a lower casing joint, the casing joint having a hollowed center that expands through an entire length thereof. The hydraulic casing centralizer device includes a cylindrical housing having a central chamber extending through a portion of the cylindrical housing and along a central axis thereof. The hydraulic casing centralizer device includes a locking mechanism that reacts to a hydraulic force when the hydraulic force is applied from an inside of the central chamber. The hydraulic casing centralizer device includes a threaded section that is configured for screwing the device into the upper casing joint and the lower casing joint, the threaded section being disposed in the cylindrical housing.
In general, in one aspect, embodiments disclosed herein relate to a method for expanding a hydraulic casing centralizer device. The method includes identifying a well for disposing a system for expanding a hydraulic casing centralizer device. The method includes lowering the system into the well. The system includes a casing joint comprising an upper casing joint and a lower casing joint, the casing joint having a hollowed center that expands through an entire length thereof. The hydraulic casing centralizer device includes a cylindrical housing having a central chamber extending through a portion of the cylindrical housing and along a central axis thereof. The hydraulic casing centralizer device includes a locking mechanism that reacts to a hydraulic force when the hydraulic force is applied from an inside of the central chamber. The hydraulic casing centralizer device includes a threaded section that is configured for screwing the device into the upper casing joint and the lower casing joint, the threaded section being disposed in the cylindrical housing.
Other aspects of the disclosure will be apparent from the following description and the appended claims.
Specific embodiments of the disclosed technology will now be described in detail with reference to the accompanying figures. Like elements in the various figures are denoted by like reference numerals for consistency.
Specific embodiments of the disclosure will now be described in detail with reference to the accompanying figures. Like elements in the various figures are denoted by like reference numerals for consistency.
In the following detailed description of embodiments of the disclosure, numerous specific details are set forth in order to provide a more thorough understanding of the disclosure. However, it will be apparent to one of ordinary skill in the art that the disclosure may be practiced without these specific details. In other instances, well-known features have not been described in detail to avoid unnecessarily complicating the description.
Throughout the application, ordinal numbers (e.g., first, second, third, etc.) may be used as an adjective for an element (i.e., any noun in the application). The use of ordinal numbers is not to imply or create any particular ordering of the elements nor to limit any element to being only a single element unless expressly disclosed, such as using the terms “before”, “after”, “single”, and other such terminology. Rather, the use of ordinal numbers is to distinguish between the elements. By way of an example, a first element is distinct from a second element, and the first element may encompass more than one element and succeed (or precede) the second element in an ordering of elements.
In general, some embodiments of the disclosure include a hydraulic casing centralizer device, a hydraulic casing centralizer system, and a method for expanding the hydraulic casing centralizer device. A hydraulic casing centralizer device may be a casing centralizer that provides dynamic centralization of a casing in a well by providing a locking mechanism that adapts to spacing allowed for expansion. The locking mechanism includes expandable blades that improve standoff of a casing disposed on deviated and horizontal wellbores. The locking mechanism improves standoff of the casing by providing different expanding lengths for each expandable blade based on the space between the hydraulic casing centralizer device and the wellbore wall.
Casing centralizers are essential in drilling operations, as they keep the casing positioned in a center of the wellbore. In some embodiments, the hydraulic casing centralizer system may be installed to the casing in different locations and secured with stop collars to keep them in place, their main function is to minimize casing to wellbore contact. As a result, a continuous annular clearance around the casing allows cement to completely seal the casing to the wellbore.
Advantageously, in one or more embodiments, the hydraulic casing centralizer device provides the stability of a complex casing centralizer with rigid or molded-on fins while maintaining the versatility of a simple casing centralizer with bow-springs. In one or more embodiments, the locking mechanism is not activated until a desired location is obtained for the casing in the well. In some embodiments, the hydraulic casing centralizer device reduces drag forces and eliminates risk of not being able to pass an obstruction in a wellbore that can fit casing but cannot fit a simple casing centralizer. Further, the hydraulic casing centralizer eliminates risk of getting stuck because it has a variable outer diameter. In some embodiments, the hydraulic casing centralizer device improves casing standoff in horizontal sections where collapsible centralizers cannot take a casing load; improves pass-through tight spots, minimizes risk of stuck; and saves rig time and costs in some cases where casing may get stuck or may not pass an obstruction because of centralizer diameter.
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As noted above, casing centralizers are essential in drilling operations as they keep the casing joint positioned in the center of the wellbore 320. The hydraulic casing centralizer device 100 may be screwed into the casing joint in the field, at a remote well site. This hydraulic casing centralizer device 100 may have the cylindrical housing 110 and the locking mechanism 120 having the at least one extendable blade 410. In order to keep the extendable blades extracted, the hydraulic casing centralizer device 100 may be preloaded in the locking mechanism 120, which includes two springs 420a and 420b planted inside the cylindrical housing 110 to hold the at least one radially extendable blade 410 in place. The casing joint in a given well may contain various numbers of blades depending on the job requirement. The hydraulic casing centralizer device 100 may be utilized in vertical, deviated, or horizontal wellbores.
In one or more embodiments, the at least one radially extendable blade 410 is designed to extend until it touches the wellbore 320 wall from all sides, which increases casing standoff evenly across washouts. The hydraulic casing centralizer device 100 solves low percentages of standoff along the casing joint without jeopardizing cement work.
In Block 810, a well for disposing the hydraulic casing centralizer system 300 is identified. The hydraulic casing centralizer system 300 includes the casing joint including the upper casing joint 310a and the lower casing joint 310b. The hydraulic casing centralizer system 300 also includes the hydraulic casing centralizer device 100 threaded to the upper casing joint 310a and the lower casing joint 310b though threaded sections 130.
In Block 820, the hydraulic casing centralizer system 300 is lowered into the well. The given casing joint segment, which includes the casing joint, is lowered into a predetermined location of the well. As the hydraulic casing centralizer device 100 is flushed to the cylindrical housing 110, the given casing joint segment may naturally be positioned in positions that reduce the standoff percentage.
In Block 830, the pressure ball 610 is dropped onto the ball seat 460 through the hollowed center of the casing joint. The pressure ball 610 stops at the first instance of the ball seat 460 in the casing segment. The pressure ball 610 is received in the ball seat 460 and the float collar 450 when the casing joint reaches the predetermined location of a well.
In Block 840, the pressure ball 610 is pushed against the ball seat 460 and into the central chamber 140. At this point, pressure may be provided to the pressure ball 610 to squeeze into the hydraulic casing centralizer device 100 such that the at least one radially extendable blade 410 may be squeezed radially between two springs 420a and 420b planted inside the cylindrical housing 110.
In Block 850, the hydraulic force 470 is caused to extend the locking mechanism 120 in an outward direction from the cylindrical housing 110 onto the wellbore wall 330. The at least one radially extendable blade 410 is extended to reach the wellbore wall 330 to straighten the casing joint.
In Block 860, the at least one radially extendable blade 410 is extended for a length equal to the portion of the cylindrical housing. At this point, the at least one radially extendable blade 410 is extended as far as possible and along the entirety of the length. The length is equal to a portion of an entire height of the cylindrical housing 110.
While
While the disclosure has been described with respect to a limited number of embodiments, those skilled in the art, having benefit of this disclosure, will appreciate that other embodiments can be devised which do not depart from the scope of the disclosure as disclosed herein. Accordingly, the scope of the disclosure should be limited only by the attached claims.