The present invention relates generally to filtering devices. More particularly, this invention relates to a downhole filtering tool including a filtered, pressure activated, bypass flow passageway.
The use of drilling fluids for the drilling of subterranean boreholes is well known. The drilling fluid serves numerous purposes, including, for example, suppression of formation pressure, lubrication of the drill string, flushing drill cuttings away from the drill bit, cooling of the bottom hole assembly, driving turbines that provide power for various downhole tools, and powering downhole progressive cavity motors. In use drilling fluids are typically pumped down through the tubular drill string to the drill bit and circulate back to the surface in the annular region between the drill string and the borehole wall. The circulating drilling fluid typically carries drill cuttings, metal shavings, and other debris to the surface. Large particles, having a size that may damage sensitive downhole tools, such as various measurement while drilling (MWD) or logging while drilling (LWD) tools, or plug drill bit jets are desirably removed from the drilling fluid before recycling back into the borehole.
Various surface filtering techniques are well known in the industry for removing drill cuttings and other debris from the drilling fluid. For example, shaker tables are commonly used to screen out relatively large particles (e.g., having a diameter greater than ⅛ inch). Centrifugal tools, such as desanders and desilters are also commonly used to remove abrasive solids prior to recycling the drilling fluid back into the borehole. However, it is not uncommon for such surface filtering techniques to fail, resulting in large drill cuttings and debris being pumped downhole. Additionally, various “foreign objects”, such as tools, rags, gravel, chunks of plastic from thread protectors, and the like are sometimes introduced into the drilling fluid through human error and inadvertently pumped downhole.
As a redundant measure, pipe screens are commonly used on the topmost section of drill string with the intention of preventing large particles and debris from being pumped downhole. While such pipe screens have been successfully utilized and are commercially available, they are nevertheless prone to failure in that operator intervention is required to remove, clean, and reposition the screen each time a new length of drill string is added. Furthermore, damaging scale and/or cement particles often originate from locations within the drill string. Scale particulate may result, for example, from corrosion of the drill string components or various mineral deposits, while cement particles are sometimes deposited on the interior of the drill string during cementing operations. Such particles are sometimes freed during drilling operations and are a known source of blockage or damage to downhole tools.
In an attempt to overcome such difficulties, retrievable downhole filtering tools are known, for example, those disclosed by Beimgraben in U.S. Pat. No. 4,495,073, Taylor in U.S. Pat. No. 6,296,055, and Mashburn in U.S. Pat. No. 6,598,685. Such retrievable filtering tools are intended to be periodically removed from the drill string and cleaned (e.g., when the pressure at the mud pump reaches some predetermined threshold). While such prior art filtering tools may, in certain applications, remove damaging particles from the drilling fluid, their retrieval from the drill string is often problematic. For example, in certain drilling applications, it may be advantageous for various sections of the drill string to include a reduced inner diameter. However, such a reduced inner diameter may render it impossible to retrieve the filtering tools. Furthermore, in deep well applications (e.g., at measured depths greater than 10,000 feet), it is sometimes difficult to generate the impact required to dislodge the filtering tool from the drill string (e.g., to shear one or more shear pins). In such instances it is often necessary to remove at least a portion of the drill string from the borehole (at significant expense and time loss) in order to retrieve the filtering tool. Moreover, the act of retrieving such retrievable filtering tools has been known to cause debris to be freed or dumped in the drill string.
Therefore, there exists a need for an improved downhole filtering tool for filtering a drilling fluid. In particular there exists a need for a downhole filtering tool that does not generally require retrieval from the drill string.
The present invention addresses one or more of the above-described drawbacks of prior art drilling fluid filtering apparatuses. Exemplary aspects of this invention include a filtering tool configured for deployment in a drill string. The filtering tool typically includes one or more filters configured for capturing large particles, for example, greater than about ⅜ inch, from the drilling fluid. The one or more filters may advantageously be fabricated from a hard, wear resistant material, and are configured to hold the large particles until they erode to a sufficiently small size to pass through the filter(s). The filtering tool further includes a filtered bypass flow passageway (also referred to as a secondary flow passageway) in the event that the one or more filters become substantially full of debris. A bypass valve assembly is configured to open, thereby allowing drilling fluid to flow through the bypass flow passageway, when the pressure of the drilling fluid exceeds a predetermined threshold.
Exemplary embodiments of the present invention advantageously provide several technical advantages. Embodiments of the filtering tool of this invention advantageously provide a filtered secondary flow passageway that may be opened at a predetermined threshold pressure. Further, the threshold pressure may be adjusted at the surface (e.g., by a drilling operator) to meet the requirements of various drilling applications. The use of a filtering tool having a secondary flow passageway may also advantageously improve the safety of drilling operations. In the event that the filter(s) become substantially full of debris and the pressure of the drilling fluid increases, circulation of the drilling fluid may be maintained and the well kept under control, via diverting a portion of the flow through the secondary flow passageway. In many instances, drilling operations may continue. Moreover, exemplary embodiments of this invention may also be configured to be “self-cleaning” in that the filter(s) may trap and hold large particles until they erode to a smaller size, potentially obviating the need to use retrievable filters (as with the above described prior art tools).
In one aspect the present invention includes a filtering assembly. The filtering assembly includes a housing having a through bore that provides a primary flow passageway through the housing. A bypass flow tube deployed in the through bore provides a secondary flow passageway through the housing. At least one primary filter is deployed in the primary flow passageway, and a bypass filter is disposed to filter fluid flow through the secondary flow passageway. The filtering assembly further includes a bypass valve assembly deployed in the housing and disposed to selectively open the secondary flow passageway when a fluid pressure reaches a predetermined threshold pressure. In certain exemplary embodiments of this invention, first and second primary filters may be deployed about the bypass flow tube. Moreover, in some exemplary embodiments, the bypass filter may be coupled to an upstream end of the bypass flow tube, while the bypass valve assembly may be located proximate to a downstream end of the bypass flow tube.
The foregoing has outlined rather broadly the features and technical advantages of the present invention in order that the detailed description of the invention that follows may be better understood. Additional features and advantages of the invention will be described hereinafter which form the subject of the claims of the invention. It should be appreciated by those skilled in the art that the conception and the specific embodiment disclosed may be readily utilized as a basis for modifying or designing other structures for carrying out the same purposes of the present invention. It should also be realized by those skilled in the art that such equivalent constructions do not depart from the spirit and scope of the invention as set forth in the appended claims.
For a more complete understanding of the present invention, and the advantages thereof, reference is now made to the following descriptions taken in conjunction with the accompanying drawings, in which:
It will be understood by those of ordinary skill in the art that the deployment illustrated on
It will be further understood that the present invention is also not limited to subterranean drilling applications. Embodiments of the invention include a filter assembly that has a filtered, pressure activated, bypass flow passageway.
Referring to
With reference now to
Turning now to
With continued reference to
Turning now to
Filters 120 and 130 may be advantageously fabricated from a highly wear resistant material, such as a high strength stainless steel, to minimize erosion thereof in the high velocity, abrasive drilling fluid. Preferred embodiments include Rockwell C hardness values of greater than about 55. In one embodiment, screens 124 and 134 are fabricated from a D2 tool steel (a high strength, nonmagnetic, alloy steel) available from Diehl Steel in Dallas, Tex. Such highly wear resistant materials may advantageously withstand drilling fluid velocities of up to about 80 feet per second. It will be appreciated that other components, such as the bypass flow tube 140, bypass valve stem 154, bypass filter 160, and wear sleeve 112 may be advantageously fabricated from a highly wear resistant material, such as a D2 tool steel, to minimize erosion thereof.
With reference again to
Exemplary embodiments of pressure setting spring 158 may be fabricated from substantially any suitable material such as an ELGILOY® spring steel available from Elgiloy, Incorporated, Elgin, Ill. In one exemplary embodiment, pressure setting spring 158 may advantageously be rated in the range of from about 100 to about 200 pounds per compressed inch (e.g., a nominal 150 pounds per compressed inch). In such an embodiment, spring 158 may be pre-compressed, for example, about one inch to exert about 150 pounds of force when holding tapered end 152 against valve seat 146. The application of such a force on the valve stem in the rest position tends to prevent the flow of drilling fluid through the bypass flow passageway 145 under normal operating conditions (as described in more detail below). Moreover, the pressure exerted by spring 158 on valve stem 154 advantageously prevents the bypass valve assembly 150 from inadvertently opening due to mechanical forces experienced downhole, such as impact and shock.
It will be appreciated that the magnitude of the force holding the tapered end 152 of valve stem 154 against valve seat 146 may be readily adjusted at a drilling site. For example, spring 158 may be replaced with a spring member having a different spring constant (e.g., increasing the spring constant which increases the force) or a spring having another longitudinal dimension (e.g., increasing the length of the spring which increases the amount of pre-compression and thus the force). Alternatively, spacers (e.g., conventional washers) may be inserted (or removed from) between the spring 158 and the base of the bypass valve housing 156, effectively changing the amount of spring pre-compression.
In the exemplary embodiment shown, bypass valve housing 156 is fitted with a plurality of stabilizer fins 114 that extend radially outward and into contact with an inner surface of wear sleeve 112. The stabilizer fins 114 are intended to stabilize the bypass valve assembly 150 coaxially in the wear sleeve 112. In the exemplary embodiment shown, the bypass valve assembly 150 is slidably received in wear sleeve 112. As the bypass valve assembly 150 is received into the wear sleeve 112, the tapered end 152 of the valve stem 154 contacts the valve seat 146. The bypass valve assembly continues to be received into the wear sleeve 112, partially compressing spring 158 and increasing the force holding valve stem 154 against the valve seat 146, until stabilizer fins 114 contact shoulder portion 119 of wear sleeve 112. A screen cap 118 is threadably received in wear sleeve 112 and holds the stabilizer fins 114 securely against shoulder portion 119.
With continued reference to
In operation, filtering sub 100 (
As the pressure of the drilling fluid increases, the pressure in the secondary flow passageway 145 (in bypass flow tube 140) also increases, thereby increasing the force of the drilling fluid against the bypass valve stem 154. In the event that the pressure increases above a predetermined threshold, the force of the drilling fluid begins to overcome the force applied by the pressure setting spring 158. As such, the bypass valve stem 154 is displaced longitudinally from its rest position, thereby allowing drilling fluid to flow through the secondary flow passageway 145 as shown at 190 on
As described above, the use of a filtered, secondary flow passageway often enables drilling to continue even after the upper and lower filters 120, 130 are substantially plugged with debris. Bypass filter 160 typically prevents debris from passing through the secondary flow passageway. Further, as described above, bypass filter arrangements having longitudinal slots 164 (as shown on
After the secondary flow passageway 145 is opened (as described above), a portion of the drilling fluid typically continues to flow through the primary fluid passageway. Such flow through the primary flow passageway, with locally high velocities owing to the high pressure, typically continues to erode the debris lodged in the upper and lower filters 120, 130. It is often the case that such continued erosion enables the debris to eventually pass through the upper and lower filters 120, 130 (as described above). In such cases the pressure of the drilling fluid decreases as the debris passes through the upper and lower filters 120, 130. As the pressure decreases, the bypass valve stem 154 displaces longitudinally back towards its rest position, thereby decreasing the flow through the secondary flow passageway 145. When the pressure decreases below the predetermined threshold value, the bypass valve stem 154 returns to its rest position (in contact with bypass valve seat 146), thereby substantially closing the secondary flow passageway.
Although the present invention and its advantages have been described in detail, it should be understood that various changes, substitutions and alternations can be made herein without departing from the spirit and scope of the invention as defined by the appended claims.
This application claims the benefit of U.S. Provisional Application Ser. No. 60/527,614 entitled Drilling Fluid Filter Assembly Having a Bypass Passageway, filed Dec. 5, 2003.
| Number | Name | Date | Kind |
|---|---|---|---|
| 3283902 | Farris et al. | Nov 1966 | A |
| 4495073 | Beimgraben | Jan 1985 | A |
| 5160037 | LeCour | Nov 1992 | A |
| 5762137 | Ross et al. | Jun 1998 | A |
| 5857521 | Ross et al. | Jan 1999 | A |
| 5885447 | Theisen et al. | Mar 1999 | A |
| 6155342 | Oneal et al. | Dec 2000 | A |
| 6296055 | Taylor | Oct 2001 | B1 |
| 6571869 | Pluchek et al. | Jun 2003 | B1 |
| 6598685 | Mashburn | Jul 2003 | B1 |
| 20020011435 | Koltunov | Jan 2002 | A1 |
| Number | Date | Country |
|---|---|---|
| WO 0262447 | Jan 2002 | WO |
| Number | Date | Country | |
|---|---|---|---|
| 20050121233 A1 | Jun 2005 | US |
| Number | Date | Country | |
|---|---|---|---|
| 60527614 | Dec 2003 | US |