The present invention relates to a drill string included apparatus (e.g. device) able to output non-percussive (and preferably substantially sinusoidal) vibrations.
In the field of deep hole drilling and in particular extended reach horizontal wells there is frequently a need for a vibrating mechanism, which when required is energised to help avoid pipes (drill stings etc) from getting stuck—or indeed to free stuck pipes. This is particularly so in extended reach operations.
We have as an object, the provision of apparatus (eg. a device) able to be included as part of a drill string and able to provide relative axial movement which can be used through a compliant zone to output useful vibrational excitation.
In our U.S. Pat. No. 7,757,783 and WO 2012/002827 (full disclosure to both patents are herein included by way of reference). We disclose the use of magnetic arrays that interact responsive to a relative rotation thereby to convert the relative rotation into a relative axial movement as a vibrational apparatus. In U.S. Pat. No. 7,757,783 we disclose an apparatus including an assembly having a shuttle capable of shuttling between complementary structures, at least one of which complementary structures provides the vibrational output. The shuttle carries at each end magnetic arrays, each to interact out of phase with a dedicated complementary magnetic array as the shuttle is rotated, thereby causing the vibration to be generated axially relative to the shuttling of the shuttle with respect to the complementary arrays. In WO 2012/002827 we disclose first and second magnetic assemblies each with magnetic arrays set out from the common axis yet around the common axis and longitudinally of the common axis. It is the interactions between the magnetic arrays across the longitudinally extending annular space between them, consequential to the relative rotation that provides a relative drive longitudinally of the common axis. These arrangements could be used in the present invention.
It is a further and alternative object to provide the use of a compliant imposition(s) on the vibrational output of a device on demand downhole actuable to cause relative axial movement and/or a vibrational device on demand actuable by relative rotational input to cause axial relative movement outputting via compliant constraints on the extent of the axial relative movement.
It is a further and alternative object to provide the use of a compliant imposition(s) on the vibrational output of a device on demand downhole actuable to cause relative axial movement and/or a vibrational device on demand actuable by relative rotational input to cause axial relative movement outputting via compliant constraints.
It is an objective of the present invention, and is an aspect of the present invention, to provide a method for providing a sinusoidal vibration to avoid drill strings (or similar) sticking, preferably reliant upon rotating a first magnetic assembly (inside, for example, a casing) operatively associated with a second magnet assembly such that relative rotation caused by the rotation of the first magnetic assembly—by any suitable means (eg. a hydraulic, electric, mechanical, pneumatic etc) leads to a relative reciprocation axially of the magnetic assembly—the reciprocating assembly is preferably fixed to a compliant member (e.g. spring) at either or both ends so that such reciprocation preferably provides a sinusoidal output of sufficient force to achieve the objectives.
Ideally this type of device would have any one or more of the following characteristics.
The present invention at least in preferred forms describes a mechanism to achieve any one or more of the above objectives.
The invention can relate to a vibrational apparatus, a drill string assembly comprising such a vibrational apparatus and/or a method of use of such an apparatus or drill string assembly.
In another aspect the invention is the use of a compliant imposition(s) on the vibrational output of a device on demand downhole actuable to cause relative axial movement.
In still another aspect the invention is a downhole assembly of any of the kinds herein after described.
In yet a further aspect the invention is a vibrational device on demand actuable by relative rotational input to cause axial relative movement outputting via compliant constraints on the extent of the axial relative movement.
Preferably the compliant constraints allow little or no movement prior to onset of the build up of the constraint. For instance, a spring tether between a reaction surface and the mass that is oscillated may be a sufficient constraint to satisfy the output criteria.
Whilst mechanical spring, pneumatic, magnetic, hydraulic, accumulator, elastomer or other like arrangements are contemplated, any single or multiple option that suffices can be used. By way of example suitable springs as the compliant members can be tubular, bellows-like, helical, or other.
In another aspect the invention is a device in, or suitable for, a drillstring which has a first magnetic assembly which is rotated relative to a second magnetic assembly, by any suitable manner, which when rotated causes a second magnetic assembly, being rotationally constrained—preferably synchronously with the drill string, to reciprocate at least substantially in an axial manner whereby;
the oscillating magnetic assembly, at least substantially, is attached at either one or both ends, and constrained by, a compliant member (eg. spring) thereby allowing the output force to be distributed to the outer body of the tool, and the or any attached uphole/downhole tooling, from the compression and extension of the compliant member in a substantially sinusoidal manner.
In another aspect the invention is a device in place as, or suitable for use as, a vibrational tool of or in a downhole assembly, the device having a first magnetic assembly which is to be, or can be, rotated relative to a second magnetic assembly and which, when so rotated, causes the second magnetic assembly to oscillate and/or reciprocate at least substantially in an axial manner; wherein
the oscillation and/or reciprocating magnetic assembly, at least substantially, at either one end, or both ends, is attached to and constrained in its oscillations and/or reciprocations by a compliant member thereby allowing the output force to be distributed to the outer body of the vibrational tool and/or any attached uphole and/or downhole tooling, from the compression and extension of the compliant member in a substantially sinusoidal manner.
Preferably the device is in a downhole assembly.
Preferably the second magnetic assembly is constrained to be synchronous in rotation with the outer body of the vibrational tool.
Preferably the device can be controlled in an “on demand” manner by way of a suitable power source—preferably being hydraulic mud flow, electrical power or pneumatic energy.
Preferably the frequency of oscillation and/or reciprocation can be controlled by control of the input power source (eg. hydraulic mud flow, electrical power or pneumatic power to an input device).
Preferably the manipulation of the input speed controls the amplification of force.
Optionally the device is powered by drilling mud (hydraulically).
Preferably there is a bypass mechanism or configuration (eg. requiring a threshold flow rate for activation) which allows the drilling mud to pass without energising the device. For instance a PDM may allow mud flow through without being active up to some threshold flow rate above which there is both flow through and activation as an input device.
Optionally, on demand control is by change in mud flow/pressure/electrical signal/ball drop or any other suitable means, optionally the device is on demand operable.
Preferably the device can be placed, or is in place, anywhere in the drill string. Optionally multiple units can be or are used.
Optionally either the uphole vibration or downhole vibration may be dampened/controlled by a compliant member (spring/accumulator/elastomers, etc).
Preferably the device uses a substantially non compressible fluid within its cross section to minimise pressure differential sealing issues.
Preferably such a mechanism is with a pressure compensating device. Preferably the mechanism has various chambers of various viscosity (e.g. thicker viscosity for bearings, and thinner viscosity for ease of oscillation).
Preferably the device has a centre drilling fluid pathway that preferably is of a uniform cross section able to operate with viscous drilling fluids.
Preferably the device can be or is positioned either above or below, or both, a rotational power source (eg. a PDM).
Optionally the power source has a dual rotational output thereby enabling the vibrational device to be located above the rotational power source and some other tool (e.g. a drill bit/milling tool etc) to be located below the power source. Alternatively the vibration device with an output shaft could be used to transmit rotary drive from the PDM via the rotating magnetic assembly to a tool (e.g drill bit) below the vibration device in the drill string.
Preferably the device can be used (but not limited to) in conjunction with the following downhole applications;
As used herein “device” in relation to a vibrational device is any apparatus, discrete or nondiscrete, able to operate to generate vibration from within a drill string
As used herein “sinusoidal” includes true sinusoidal or somewhat similar wave forms.
As used herein the role of the “compliant imposition”, the “compliant constraint”, and the like is not to allow free movement during vibrational output when the movement is towards the end of its stroking, nor to convert all kinetic energy to potential energy, but rather, to output the near sinusoidal or true sinusoidal outputs.
As used herein the term “and/or” means “and” or “or”, or both.
As used herein the term “(s)” following a noun includes, as might be appropriate, the singular or plural forms of that noun.
A preferred form of the present invention will now be described with reference to the accompanying drawings in which
The
The oscillating mass/second magnetic assembly (2) is physically connected to a compliant member (springs or other compliant form(s) and/or material(s)) (4) at each end which eliminates/constrains any collision between assemblies (2) and (4) and results in sinusoidal or substantially sinusoidal movement of the oscillating mass. A resulting sinusoidal force (or substantially sinusoidal force) is transmitted via thrust bearings (5) and/or compliant members (4) to the outer housing (and optionally any uphole and/or downhole tooling). This output can be used to eliminate friction. The compliant member can also at least partially rotationally constrain the second magnetic assembly.
The drilling fluid has a preferably unconstrained pathway through the tool via the fluid path shown.
Preferably a PDM is used as the input and requires a threshold flow rate for device activation.
An alternative embodiment to the apparatus shown in
In this configuration the spring (4) acts in both compression and tension.
The spring can be positioned at either end.
In the five alternatives of
Friction reduction has been shown to be beneficial in the drilling process, in numerous ways such as;
Studies and physical tests in the art have shown that the introduction of controlled vibrations are particularly effective at minimizing friction, and in particular powerful—low frequency<50 Hz sinusoidal vibrations are known to be highly effective to minimise drill string friction.
In addition to being used to help reduce friction in downhole situations, it will be obvious to those skilled in the art that this type of apparatus can be used for a number of other functions such as—but not restricted to;
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/NZ2012/000073 | 5/23/2012 | WO | 00 | 2/10/2014 |
Publishing Document | Publishing Date | Country | Kind |
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WO2012/161595 | 11/29/2012 | WO | A |
Number | Name | Date | Kind |
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3076153 | Rieckman | Jan 1963 | A |
7757783 | Pfahlert | Jul 2010 | B2 |
20100212967 | Powell | Aug 2010 | A1 |
20100224410 | Wassell et al. | Sep 2010 | A1 |
20130133909 | Greenwood | May 2013 | A1 |
Number | Date | Country |
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WO 2009028964 | Mar 2009 | NZ |
Entry |
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International Search Report; PCT/NZ2012/000073; Nov. 13, 2012. |
Written Opinion of the International Searching Authority; PCT/NZ2012/000073; Nov. 13, 2012. |
Number | Date | Country | |
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20140196952 A1 | Jul 2014 | US |
Number | Date | Country | |
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61489409 | May 2011 | US |