Bit jet enhancement tool
11098534 ยท 2021-08-24
Assignee
Inventors
Cpc classification
International classification
Abstract
A bit jet enhancement tool is provided, the tool comprises two or more separate flow paths, each of the flow paths has multiple hollow chambers connected in series; each of the hollow chambers comprises a first constricted chamber with a fluid entry, a first expansion chamber located adjacent to the lower end of the first constricted chamber, a second constricted chamber with the upper end of connected to the lower end of the first expansion chamber; a separate second expansion chamber connected to the lower end of a plurality of the second constricted chambers; a single port located adjacent to the lower end of the second expansion chamber.
Claims
1. A bit jet enhancement tool, comprising: a plurality of flow paths, wherein each of the plurality of flow paths includes: a first constricted chamber with a fluid entry; a first expansion chamber located adjacent to a lower end of the first constricted chamber; a second constricted chamber with an upper end of the second constricted chamber connected to a lower end of the first expansion chamber; a second expansion chamber connected to a lower end of the second constricted chamber; a top side and a bottom side; and, a single port located adjacent to a lower end of the second expansion chamber; wherein a cross-section area of the second expansion chamber gradually decreases from a top end to a bottom end thereof, wherein the bottom side has a threaded box.
2. The bit jet enhancement tool of claim 1, wherein the plurality of flow paths comprises two separate flow paths.
3. The bit jet enhancement tool of claim 1, wherein the cross-section of the second expansion chamber is of a circular shape.
4. The bit jet enhancement tool of claim 1, wherein the single port is a hollow cylinder or a hollow-conical structure.
5. The bit jet enhancement tool of claim 1, wherein the single port includes a first width proximate the second expansion chamber and a second width spaced apart from the first width, wherein the first width is smaller than the second width.
6. The bit jet enhancement tool of claim 1, further comprising a) a top side with a threaded box configured to receive a threaded pin of a bottom hole assembly or b) a bottom end with a threaded pin wherein the threaded pin is configured to be received in a threaded box of one of a tubing and a motor.
7. The bit jet enhancement tool of claim 1, wherein each of the plurality of flow paths are configured such that when a fluid flows through the bit jet enhancement tool the fluid flows sequentially through the first constricted chamber, the first expansion chamber, the second constricted chamber, and the second expansion chamber.
8. The bit jet enhancement tool of claim 1, wherein the first constricted chamber and the first expansion chamber are configured such that when a fluid flows through the bit jet enhancement tool the fluid flow becomes turbulent upon entering the first expansion chamber from the first constricted chamber.
9. The bit jet enhancement tool of claim 1, wherein the first expansion chamber and the second constricted chamber are configured such that when a fluid flows through an extended reach tool a portion of the fluid flow within the first expansion chamber becomes turbulent as another portion of the fluid flow exits the first expansion chamber and enters the second constricted chamber.
10. The bit jet enhancement tool of claim 1, wherein the first constricted chamber, the first expansion chamber, and the second constricted chamber are configured such that when a fluid flows through the bit jet enhancement tool a portion of the fluid within the first expansion chamber becomes turbulent and propagates through the first expansion chamber.
11. The bit jet enhancement tool of claim 1, wherein a cross-section of at least one of the first constricted chamber, the first expansion chamber, and the second constricted chamber of at least one of the at least two separate flow paths, and the second expansion chamber is one of a columnar hollow shape, a rectangular shape, a square shape, a triangular shape, a rhomboidal shape, an elliptical shape, and a circular shape.
12. The bit jet enhancement tool of claim 1, wherein a longitudinal section of the second expansion chamber is a trapezoidal section.
13. The bit jet enhancement tool of claim 12, wherein the trapezoidal section includes a top base proximate the top of the second expansion chamber and a bottom base proximate the bottom of the second expansion chamber, wherein the top base is longer than the bottom base.
14. The bit jet enhancement tool of claim 1, wherein the second expansion chamber and each second constricted chamber of the at least two flow paths are configured such that when a fluid flows through the bit jet enhancement tool a portion of the fluid flow within each of second constricted chamber enters the second expansion chamber, thereby causing the flow of fluid to become turbulent within the second expansion chamber and amplify a pulsation of the fluid flowing through the second expansion chamber.
15. The bit jet enhancement tool of claim 1, wherein: the first constricted chamber includes a first constricted chamber diameter; the first expansion chamber includes a first expansion chamber diameter, wherein the first expansion chamber diameter is greater than the first constricted chamber diameter; and, the second constricted chamber includes a second constricted chamber diameter, wherein the first expansion chamber diameter is greater than the second constricted chamber diameter.
16. A method of delivering a pulsing fluid, comprising: positioning the bit jet enhancement tool of claim 1 in a well bore; providing a fluid to the bit jet enhancement tool; separating the fluid into the plurality of flow paths in the bit jet enhancement tool.
17. A drill string comprising: at least one of a tubing and a motor; a bottom hole assembly; and, the bit jet enhancement tool of claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In order that the manner in which the above-recited and other enhancements and objects of the disclosure are obtained, a more particular description of the disclosure briefly described above will be rendered by reference to specific embodiments thereof which are illustrated in the appended drawings. Understanding that these drawings depict only typical embodiments of the disclosure and are therefore not to be considered limiting of its scope, the disclosure will be described with additional specificity and detail through the use of the accompanying drawings in which:
(2)
(3)
DETAILED DESCRIPTION
(4) The particulars shown herein are by way of example and for purposes of illustrative discussion of the preferred embodiments of the present disclosure only and are presented in the cause of providing what is believed to be the most useful and readily understood description of the principles and conceptual aspects of various embodiments of the disclosure. In this regard, no attempt is made to show structural details of the disclosure in more detail than is necessary for the fundamental understanding of the disclosure, the description taken with the drawings making apparent to those skilled in the art how the several forms of the disclosure may be embodied in practice.
(5) The following definitions and explanations are meant and intended to be controlling in any future construction unless clearly and unambiguously modified in the following examples or when application of the meaning renders any construction meaningless or essentially meaningless. In cases where the construction of the term would render it meaningless or essentially meaningless, the definition should be taken from Webster's Dictionary 3.sup.rd Edition.
(6) The present invention pertains to a helix oscillating delivery system that creates a pulsating flow within a circular cylindrical structure. The helix oscillating delivery system connects to a source of fluid flow at its upper end and has a plurality of separate flow paths that are constricted and expanded repeatedly. The flow paths enter into an expanded area and the expanded area connects to a single port on its lower end. Referring to
(7) The cross-section area of the first constricted chamber 6 is smaller than that of the first expansion chamber 7 and the cross-section area of the first expansion chamber 7 is larger than that of the second constricted chamber 8.
(8) In some embodiments, the shape of the cross-section of the expanded chamber 9 can be rectangles, squares, triangles, rhomboid, ellipse. The cross-section area of the expanded chamber 9 gradually decreases from a top end to a bottom end of it. In a preferred embodiment the shape of the cross-section of the expanded chamber 9 is circular, the longitudinal section of the expanded chamber 9 is a trapezoidal section with a large top base and a small bottom base. With this construction, the pulsing flows from a plurality of chambers 8 will expand and generate vortex turbulence which will interfuse with each other, such that the erratic helical flows from a plurality of chambers 8 will interfere with each other to generate stronger erratic helical flow. And at the same time, the fluid will be concentrated because of the gradually decreased cross-section area of the expanded chamber 9. The erratic helical flow further amplifies the pulsation of the pulsing flow in the expanded chamber 9. Then the pulsing flow is deflected and forced into the single port 10. The single port 10 can be a hollow cylinder or a conical structure with an up-narrow and down-wide configuration to form a flow path for the erratic helical pulsating stream.
(9) As a result, a strong pulsating stream with erratic helical flow is developed in the helix oscillating delivery system without any external excitation, and no moving parts or valve arrangements are required to bring about a pulse flow.
(10) The helix oscillating delivery system can be used in a downhole system to provide pulsation. In one embodiment, it can be used in between a motor and a drill or milling bit to form a CSI bit jet enhancement tool, the tool will be used to remove debris from the face of the milling or drilling bit and between the milling or drilling bit and the obstacle being milled or drilled.
(11) Referring back to
(12) The CSI bit jet enhancement tool 1 has flow 4 entered form the top side 2 into the tool. The tool is provided internally with two or more separate flow paths 5, each of the flow paths 5 has multiple hollow chamber connected in series. A flow path 5 has a first constricted chamber 6 with a fluid entry, a first expansion chamber 7 is located adjacent to a lower end of the first constricted chamber 6. An upper end of the second constricted chamber 8 is connected to a lower end of the first expansion chamber 7. Fluid flow 4 is alternatingly constricted in chamber 6, then expanded in chamber 7 and then constricted in chamber 8 to cause itself to pulsate in a flow pattern with erratic helical flow. The flow 4 from the chamber 8 enters into the second expansion chamber 9 and is forced into the single port 10 extending through the bit jet enhancement tool 1 on a lower end for delivering erratic helically pulsating jets of fluid out of the tool.
(13) In one embodiment, the fluid in the bit jet enhancement tool 1 is water-based fluid. The base fluid may be fresh water, seawater, brine, or a saturated brine. The type of fluid selected depends on anticipated well conditions or on the specific interval of the well being drilled.
(14) In another embodiment, the fluid in the bit jet enhancement tool 1 is oil-based fluid which comprises diesel, mineral oil, or low-toxicity linear olefins and paraffins. The fluid can help to remove cuttings from the wellbore 30, control formation pressures and maintaining hole stability.
(15) Another aspect of the current invention is a method of delivering an erratic helical pulsating jet stream within a bit jet enhancement tool connected to a drill string pipe or motor, so that the tool receives fluid from the drill string pipe or coil tubing into a hollow interior of the tool. Referring back to
(16) All of the compositions and methods disclosed and claimed herein can be made and executed without undue experimentation in light of the present disclosure. While the compositions and methods of this disclosure have been described in terms of preferred embodiments, it will be apparent to those of skill in the art that variations may be applied to the compositions and methods and in the steps or in the sequence of steps of the methods described herein without departing from the concept, spirit and scope of the disclosure. More specifically, it will be apparent that certain agents which are both chemically related may be substituted for the agents described herein while the same or similar results would be achieved. All such similar substitutes and modifications apparent to those skilled in the art are deemed to be within the spirit, scope and concept of the disclosure as defined by the appended claims.