WO2019018712A2 - Conditionnement de fluide dilatant de composants de fond de trou - Google Patents

Conditionnement de fluide dilatant de composants de fond de trou Download PDF

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Publication number
WO2019018712A2
WO2019018712A2 PCT/US2018/042994 US2018042994W WO2019018712A2 WO 2019018712 A2 WO2019018712 A2 WO 2019018712A2 US 2018042994 W US2018042994 W US 2018042994W WO 2019018712 A2 WO2019018712 A2 WO 2019018712A2
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WO
WIPO (PCT)
Prior art keywords
liquid
further characterized
particles
motion sensitive
shear rate
Prior art date
Application number
PCT/US2018/042994
Other languages
English (en)
Inventor
Rocco Difoggio
Original Assignee
Baker Hughes, A Ge Company, Llc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Baker Hughes, A Ge Company, Llc filed Critical Baker Hughes, A Ge Company, Llc
Publication of WO2019018712A2 publication Critical patent/WO2019018712A2/fr

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Classifications

    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21BEARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B47/00Survey of boreholes or wells
    • E21B47/01Devices for supporting measuring instruments on drill bits, pipes, rods or wirelines; Protecting measuring instruments in boreholes against heat, shock, pressure or the like
    • E21B47/017Protecting measuring instruments

Definitions

  • This disclosure pertains generally to devices and methods for providing shock and vibration protection for downhole devices.
  • Exploration and production of hydrocarbons generally requires the use of various tools that are lowered into a borehole, such as wireline assemblies, drilling assemblies, measurement tools and production devices (e.g., fracturing tools).
  • Motion sensitive components may be disposed downhole for various purposes, measuring one or more parameters of interest, control of downhole tools, processing data, communication with the surface and storage and analysis of data.
  • Such motion sensitive components often are sensitive to shocks, vibration and other mechanical stresses.
  • a borehole gravimeter may use a delicate spring to enable a gravity measurement, which spring could be broken by shock or vibration prior to its stationary operation at the target depth in a well.
  • a subminiature 9-pole mass spectrometer which is smaller than the size of a thumb, may be made of glass with many glass-to-metal struts supporting structures within its internal vacuum and this mass spectrometer could be broken while the tool that contains it is being transported to a well location or being run into a well before ever being operated downhole.
  • the present disclosure addresses the need for enhanced shock and vibration protection for motion sensitive components and other shock and vibration sensitive devices used in a borehole.
  • the present disclosure provides an apparatus for protecting a motion sensitive component used in a borehole.
  • the apparatus may include an enclosure having a chamber receiving the motion sensitive component, an energy absorbing material at least partially surrounding the chamber, and a force spreading material at least partially surrounding the chamber.
  • the present disclosure also provides an apparatus that has an enclosure having a chamber receiving the motion sensitive component and a force spreading material at least partially surrounding the chamber.
  • the force spreading material may include colloidal particles dispersed in a liquid and whose viscosity increases with shear rate, wherein the particles have a property selected from at least one of: (i) a size no less than 1 ⁇ , (ii) a elongated shape, and (iii) a volume fraction of the colloidal particles in the liquid of at least 30%, and wherein the liquid has a viscosity index of at least 80.
  • the present disclosure further provides a method for apparatus for protecting a motion sensitive component used in a borehole.
  • the method may include the steps of positioning the motion sensitive device in a chamber of an enclosure; at least partially surrounding the motion sensitive device with a force spreading material; conveying the motion sensitive device into the borehole; and using the motion sensitive device at a location in the borehole wherein an ambient temperature is at least 200 degrees Fahrenheit.
  • FIG. 1 shows a schematic of a well system that may use one protective enclosure according to the present disclosure
  • FIG. 2 illustrates one embodiment of an enclosure that uses a force spreading material and an energy absorbing material to protect motion sensitive components
  • FIG. 3 illustrates one embodiment of an enclosure that uses a force spreading material adapted for high-temperature applications to protect sensitive components
  • FIG. 4 A illustrates a graph of the relationship between shear rate and viscosity as a volume fraction of particles in a force spreading material vary
  • FIG. 4B illustrates a graph of the relationship of viscosity and shear rate for different shapes of particles in a force spreading material
  • FIG. 4C illustrates a graph of the relationship of viscosity and shear rate for different sizes of particles in a force spreading material.
  • the present disclosure provides enclosures and related methods for protecting motion sensitive components from the energy associated with such shock events.
  • the present disclosure provides protective enclosures that use dilatants. Dilatants are materials whose viscosity increases with shear rate.
  • a force spreading material e.g. , a dilatant
  • an energy absorbing material e.g., silicone gel
  • Dilatants can be used in military body armor. Silicone gel that is 2 cm thick can prevent a raw egg from breaking when dropped onto it from a height of 60 feet.
  • Other embodiments formulate the dilatant to function in a high temperature environment as is found downhole. Such high-temperature embodiments may be used with or without an energy absorbing layer.
  • FIG. 1 there is shown one illustrative embodiment of a drilling system 10 utilizing a borehole string 12 that may include a bottomhole assembly (BHA) 14 for directionally drilling a borehole 16. While a land-based rig is shown, these concepts and the methods are equally applicable to offshore drilling systems.
  • the borehole string 12 may be suspended from a rig 20 and may include jointed tubulars or coiled tubing.
  • the BHA 14 may include a drill bit 15, a sensor sub 32, a bidirectional communication and power module (BCPM) 34, a formation evaluation (FE) sub 36, and rotary power devices such as drilling motors 38.
  • BCPM bidirectional communication and power module
  • FE formation evaluation sub 36
  • rotary power devices such as drilling motors 38.
  • the sensor sub 32 may include sensors for measuring near-bit direction (e.g., BHA azimuth and inclination, BHA coordinates, etc.) and sensors and tools for making rotary directional surveys.
  • the system may also include information processing devices such as a surface controller 50 and / or a downhole controller 42. Communication between the surface and the BHA 14 may use uplinks and / or downlinks generated by a mud-driven alternator, a mud pulser and /or conveyed using hard wires (e.g., electrical conductors, fiber optics), acoustic signals, EM or RF. It should be appreciated that motion sensitive components can be present throughout the BHA 14.
  • FIG. 2 illustrates an enclosure 100 for protecting a motion sensitive component 102 used in a downhole environment, such as that shown in FIG. 1.
  • the enclosure 100 includes an outer shell 104 and multiple nested shells 106, 108.
  • the diameters of the shells 104, 106, 108 are selected to form annular spaces.
  • An annular space 110 separating the shell 104 and the shell 106 may be filled with an energy absorbing material 116.
  • An annular space 112 separating the shell 106 and the shell 108 may be filled with a force spreading material 118.
  • the innermost shell 108 may include a chamber 114 for receiving the motion sensitive component 102.
  • the force spreading material 118 may be any material that acts as a solid at high shear rate and a fluid at low shear rate. Such materials are often referred to as dilatants or "shear thickening fluids", which are defined as fluids whose viscosity increases with the shear rate, which makes them non- Newtonian fluids. Generally, these fluids are composed of particles suspended in a base liquid. Examples of such fluids include, but are not limited to, cornstarch in water, quicksand, viscoelastic liquid silicone, etc.
  • the solid particles are often inexpensive silica or calcium carbonate particles but they could be made of other, more expensive materials such as silicon carbide or diamond grit if one wanted to make the dilatant material more thermally conductive.
  • the energy absorbing material 116 may be any material that mechanically or chemically absorbs the kinetic energy associated with a shock / vibration event. Such materials may include liquids or gels such as silicone gel or solids such as elastomeric materials. Common energy absorbing materials exhibit elastomeric or plastic deformation to absorb energy and they may include solid rubber, neoprene, silicone, or various viscoelastic polymers such as polyether-based, polyurethane materials or porous (foam) or structured (hexagonal frame) versions of these materials. Recently, 3D printing with silicone-based ink has been used to make energy absorbing structures whose absorbing properties can be engineered based on their structure.
  • dilatants can absorb some energy and that some energy absorbing materials have dilatant properties. However, for the purpose of this disclosure, dilatants are defined as materials that are primarily dilatant and energy-absorbing materials are defined as materials that are primarily energy absorbing.
  • the enclosure 100 is susceptible to numerous variants.
  • the enclosure 100 is depicted as tubular, any other shape (e.g. , square, rectangular, etc.) may be used.
  • the shells 104, 106, 108 may be concentrically or eccentrically aligned.
  • the enclosure 100 is shown as only encircling the motion sensitive component 102, other embodiments may fully enclose the motion sensitive component 102 on all sides.
  • Other variants may be to use more than one layer of each type of material, e.g. , one energy absorbing layer and two force spreading layers, two of each type of layers, etc. Such multiple layers may or may not be alternating.
  • the sequence of layers may be reversed; i. e., the outer layer may be the force spreading layer and the inner layer may be the energy absorbing layer.
  • the enclosure 140 includes an outer shell 144 and an inner shell 146.
  • the diameters of the shells 144, 146 are selected to form annular spaces.
  • An annular space 150 separating the shell 144 and the shell 146 may be filled with a force spreading material 152.
  • the inner shell 146 may include a chamber 152 for receiving the motion sensitive component 102.
  • the force spreading material 152 may be formulated specifically for use in a relatively hot downhole environment. For purposes of the present disclosure, temperatures in excess of about 200 degrees Fahrenheit is considered “hot.” The dilatant effect is associated with surface chemistry of colloidal particles in dispersion. Generally speaking, the dilatant effect tends to diminish in hot ambient environments. Embodiments of the present disclosure enhance the ability of force spreading material 152 to function in such hot environments by adjusting one or more characteristics of particles suspended in a fluid making up the force spreading material 152. These characteristics include, but are not limited to, particle size, shape, and distribution.
  • the viscosity versus temperature behavior of the base fluid of a dilatant is also important.
  • the viscosity of a polymer liquid depends strongly on temperature, which can seriously affect its shear-thickening responses when it is the base fluid into which particles are mixed. That is, the critical shear rate for the onset of shear thickening decreases with decreasing temperature and vice-versa. More specifically, the critical shear rate is inversely proportional to the viscosity of the base fluid into which the particles are mixed. Therefore, for maximum stability of a dilatant at high temperatures, it is best to use a base fluid whose viscosity changes as little as possible with temperature.
  • Viscosity Index is a scale created for automobile motor oils where the higher the viscosity index the less the oil's viscosity decreases with increasing temperature. A viscosity index of 80 to 110 is considered “high” and above "110” is considered “very high”.
  • Various silicone liquids dimethyl-, phenyl-, or halogenated
  • PFPE perfluoropolyether
  • PAOs polyalphaolefins
  • FIGS. 4A-C there are shown graphs illustrating how particle characteristics can influence behavior of a dilatant.
  • FIGS. 4A-C depict information reported in "A Novel Approach for Armor Applications of Shear Thickening Fluids in Aviation and Defense Industry," Kushan et al., May 2014.
  • FIG. 4A illustrates the effect of volume fraction of particles on the change of viscosity versus shear rate. Shear rate is along the "X" axis and viscosity is along the "Y" axis. Each line represents a dilatant with a unique volume fraction in a base fluid. Line 160 has the lowest volume fraction of particles and line 162 has the highest volume fraction of particles.
  • Each line from 160 to 162 has an incrementally higher volume fraction of dilatant.
  • the dilatants with the lower volume fractions e.g., line 160
  • dilatants with higher volume fractions e.g., line 162
  • line 160 may represent a volume fraction of 25%
  • line 162 may represent a volume fraction of 45%.
  • Desirable volume fractions may be at least 25%, at least 30%, at least, 40%, or at least 45%.
  • FIG. 4B illustrates the effect of particle shape on the change of viscosity versus shear rate. Shear rate increases on an "X" axis and viscosity increases on a "Y" axis. Each line represents a dilatant with a differently shaped particle. Line 170 represents spheroid particles, line 172 represents ovoid particles, line 174 represents platen particles, and line 176 represents rod / cylindrical particles.
  • the dilatants having spherical particles e.g., line 170
  • dilatants with elongated particles e.g., lines 174, 176
  • elongated it is meant that a body has an asymmetric shape or has different dimensions along different axes. The dimensional difference may be one dimension at least 10%, 25%, or 50% greater than another dimension.
  • FIG. 4C illustrates the effect of particle size on critical shear rate; i.e., the shear rate at which viscosity changes.
  • Particle size increases along the "X" axis and critical shear rate increases along the "Y" axis.
  • an increase in particle size decreases the critical shear rate.
  • points 180 representing particles of having the largest size have a lower critical shear rate than points 182 representing particles having the smallest size.
  • shear thickening can be achieved at lower shear rates by minimizing or eliminating relatively smaller particles from a dilatant.
  • particles may be selected to be no less than 1 ⁇ .
  • a dilatant may formulate to have at least 60%, 70%, 80%, or 90% of particles greater than 1 ⁇ .
  • dilatants for high-temperature applications may use a fluid selected for such environments.
  • suitable liquids may be liquids that maintain at least 70%, 80%, or 90% of their viscosity at temperatures in excess of 200 degrees Fahrenheit.
  • a dilatant may be temperature resistant; i.e. , retain a viscosity increase with shear rate even in "hot" ambient environments. This may be done by lowering the value of the shear rate at which shear thickening first occurs, which is the onset value.
  • any conveyance device other than a drill string, may be used to convey motion sensitive devices protected according to the present disclosure along a borehole.
  • Exemplary non-limiting conveyance devices include casing pipes, wirelines, wire line sondes, slickline sondes, drop shots, downhole subs, BHA's, drill string inserts, modules, internal housings and substrate portions thereof, self-propelled tractors.

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  • Physics & Mathematics (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Geology (AREA)
  • Mining & Mineral Resources (AREA)
  • Geophysics (AREA)
  • Environmental & Geological Engineering (AREA)
  • Fluid Mechanics (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • Geochemistry & Mineralogy (AREA)
  • Lubricants (AREA)
  • Combined Devices Of Dampers And Springs (AREA)
PCT/US2018/042994 2017-07-20 2018-07-20 Conditionnement de fluide dilatant de composants de fond de trou WO2019018712A2 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US15/655,533 2017-07-20
US15/655,533 US20190024499A1 (en) 2017-07-20 2017-07-20 Dilatant packaging of downhole components

Publications (1)

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WO2019018712A2 true WO2019018712A2 (fr) 2019-01-24

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11448025B2 (en) * 2018-02-23 2022-09-20 Hunting Titan, Inc. Impact resistant material in setting tool
US11274542B2 (en) 2020-03-30 2022-03-15 Institute Of Geology And Geophysics, Chinese Academy Of Sciences Self-adjusting damping vibration absorber for while-drilling instruments and adjusting method thereof
CN111503216B (zh) * 2020-03-30 2021-03-30 中国科学院地质与地球物理研究所 一种随钻仪器用自调节阻尼减振器及其调节方法
WO2023173030A1 (fr) 2022-03-11 2023-09-14 Axis Service, Llc Ensemble de régulation de pression

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3859523A (en) * 1973-01-26 1975-01-07 Dresser Ind High temperature well logging instrument having increased utilization of dewar flasks
NO341182B1 (no) * 2013-02-05 2017-09-04 Tco As Brønnutstyrsbeskytter.
US9879520B2 (en) * 2014-03-28 2018-01-30 Baker Hughes, A Ge Company, Llc Packaging structures and materials for vibration and shock energy attenuation and dissipation and related methods

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