This disclosure relates generally to equipment utilized and services performed in conjunction with fluid flow control and well integrity/pressure control and, in an example described below, more particularly provides a sealing apparatus and a method of manufacturing same.
A seal may be required to perform its sealing function in a variety of different, very harsh environments. For example, seals used in a downhole environment of a subterranean well may be required to seal against high pressures, at high temperatures and in the presence of abrasives or debris. Other harsh environments may include very low temperatures, vibration or high dynamic loads, exposure to deleterious chemicals or environmental conditions, etc.
It will, thus, be appreciated that improvements are continually needed in the arts of sealing apparatus design and manufacture. Such improvements would be useful for implementation (e.g., for flow control, pressure control, fluid isolation, etc.) in downhole or other harsh environments.
Representatively illustrated in
In the
As depicted in
To seal off an annulus 20 surrounding the tubular string 18, a packer assembly 22 is connected in the tubular string 18. The packer assembly 22 in this example includes a seal element assembly 24 and an anchor assembly 26.
As described more fully below, the seal element assembly 24 serves to seal off the annulus 20 formed radially between the tubular string 18 and an interior well surface (such as, an interior surface of the casing 14, or an inner wall surface of the wellbore 12 if the wellbore is uncased). The anchor assembly 26 may include one or more slips or other gripping or engagement members to secure the tubular string 18 in the wellbore 12.
Note that it is not necessary for a sealing apparatus incorporating the principles of this disclosure to comprise the packer assembly 22 with the seal element assembly 24 and the anchor assembly 26. The sealing apparatus could be of another type (such as, an internal or external piston sealing apparatus of an actuator, a flange face-sealing apparatus, etc.), and the sealing apparatus could be provided without the anchor assembly 26. Thus, the scope of this disclosure is not limited to any particular details of the packer assembly 22 as described herein or depicted in the drawings.
The packer assembly 22 of
In the
In other examples, the actuator 28 may not be positioned between the seal element assembly 24 and the anchor assembly 26, the actuator 28 may not longitudinally compress the seal element assembly 24 or the anchor assembly 26, the seal element assembly 24 or the anchor assembly 26 may not extend outward in response to longitudinal compression, etc. The longitudinal force F may be applied from above or below the seal element assembly 24. Thus, the scope of this disclosure is not limited to use of the actuator 28, or to any particular manner of actuating the seal element assembly 24 or the anchor assembly 26.
The seal element assembly 24 can include certain beneficial features, and may be manufactured using certain techniques, as described more fully below. However, it should be fully understood that these features and techniques can be incorporated into other seal element assemblies or other types of sealing apparatus, in keeping with the principles of this disclosure.
Referring additionally now to
In the
The seal element assembly 24 and the housing assembly 34 are arranged on an inner, generally tubular mandrel 36. The seal elements 30 may be maintained stationary on the inner mandrel 36, or they may be permitted to displace longitudinally on the inner mandrel 36. In some examples, the force F may be applied in response to manipulation of the inner mandrel 36 (such as, by rotating, raising and/or lowering the inner mandrel 36 from surface), or by creating a pressure differential across or within the inner mandrel 36 (such as, by positioning a plug in the inner mandrel and applying pressure to the tubular string 18 above the plug, creating a pressure differential between an interior of the inner mandrel 36 and the annulus 20, etc.).
In the
As described more fully below, each of the individual seal elements 30 may be manufactured and configured using the principles of this disclosure, and those principles can in some examples be utilized to combine multiple components (such as, the seal elements 30, the spacers 32 and the housing assembly 34) into a single, multifunctional integrated component.
Referring additionally now to
In addition, anti-extrusion devices 38 are positioned straddling the seal element 30. The anti-extrusion devices 38 extend radially outward in response to application of the force F, in order to close off annular gaps between the housing assembly 34 and the well surface to be sealingly engaged by the seal element 30.
As with the
Referring additionally now to
In the
The instrument 44 is controlled (e.g., spatial coordinates, motion characteristics, material 42 flow rate and type, etc.) by a control system 46. The control system 46 is provided with certain inputs 48 (such as, operator inputs, three-dimensional models, pre-programmed instructions, etc.).
The control system 46 can cause the instrument 44 to deposit the seal element material 42 so that the resulting seal element 30 is constructed with certain unique features that enhance the functionality of the seal element 30. These features may include those that increase the seal element's 30 sealing ability, resistance to pressure differentials, abrasion resistance, fatigue resistance, temperature capability, resistance to well fluids, endurance and reliability.
In some examples, the seal element material 42 deposited by the instrument 44 can be a metallic material. The seal element material 42 may comprise one or more metals or metal alloys. As used herein, the terms “metal,” “metallic” and similar terms refer to materials comprising, in whole or in part, at least one metal or metal alloy.
In harsh environments, the seal element material 42 may advantageously comprise a metal or metallic material. Such materials generally possess superior properties as compared to other materials (such as elastomers or other polymers). However, it is not necessary for all or any portion of the seal element 30 to comprise a metal or metallic material in keeping with the scope of this disclosure.
The control system 46 can cause the instrument 44 to vary selected properties of the seal element material 42 while it is being deposited to construct the seal element 30. In the
Although the seal element materials 42a,b are depicted in
In one example, the seal element material 42a could have relatively high toughness, strength, hardness, abrasion resistance, pressure differential resistance, durability, resistance to well fluids and/or temperature resistance as compared to the seal element material 42b. The seal element material 42a could comprise a relatively deformable metal, such as aluminum or magnesium, in order to enhance its capability to seal against irregular surfaces. However, the scope of this disclosure is not limited to use of any particular material types or properties for the seal element material 42a.
The seal element material 42b could have relatively high resilience and compressibility as compared to the seal element material 42a, as well as other adequate material properties to withstand its intended environment. In this example, the seal element material 42b serves to outwardly bias the seal element material 42a (so that the seal element material 42a sealingly engages another surface), and can enable the seal element material 42a to conform to a well surface it engages. The seal element material 42b could comprise a metal (such as a metal foam), an elastomer or other polymer, a combination of different materials, etc. The scope of this disclosure is not limited to use of any particular material types or properties for the seal element material 42b.
The seal element materials 42a,b can in some examples comprise a same basic matrix material, but with at least one change that affects a material property. For example, one of the seal element materials 42a,b could comprise a metal, and the other seal element material could comprise the same metal, but with pores or voids that cause the resulting porous metal to be more compressible and less dense as compared to the non- or less-porous metal. In this example, the same instrument 44 can deposit both of the materials 42a,b, and change between the materials 42a,b by varying a size, number, location, etc. of pores or voids in the seal element material 42.
In other examples, the seal element materials 42a,b may comprise completely different materials. For example, one of the seal element materials 42a,b could comprise a metal, and the other seal element material could comprise an elastomer. The same instrument 44 may deposit the different seal element materials 42a,b, or different instruments 44 may deposit the respective different seal element materials 42a,b.
Referring additionally now to
In the
An annular recess 52 is formed in an interior of the seal element 30. In this example, the recess 52 is located approximately at a longitudinal middle of the seal element 30, but the recess 52 could be otherwise positioned in other examples.
The recess 52 enables the longitudinal middle portion of the seal element 30 to extend radially outward as the seal element 30 is longitudinally compressed. Thus, between the anti-extrusion devices 38, the seal element 30 will be extended outward into sealing engagement with the well surface.
In one example, the seal element material 42a may comprise a metal, and the seal element material 42b may comprise a metal foam or porous metal. The metal of the seal element material 42a may be the same as the metal of the seal element material 42b, or they may be different metals.
In this example, the seal element material 42a has a greater density, toughness, resistance to well fluids and abrasion resistance as compared to the seal element material 42b. However, the seal element material 42b has a greater compressibility as compared to the seal element material 42a.
The seal element material 42b can be designed to inwardly support the seal element material 42a in sealing contact with the well surface, while allowing the seal element material 42a to conform to any irregularities in the well surface. One technique to accomplish this result is to provide an appropriate number and size of pores or voids in the seal element material 42b (e.g., select a porosity of the material), so that the material deforms when a selected pressure is applied to the material, thereby limiting contact pressure and allowing the contact pressure to be more consistent across the sealing surface of the seal element 30.
It is expected that an increase in porosity of the seal element material 42b will result in a corresponding decrease in maximum contact pressure, and a decrease in porosity will result in a corresponding increase in maximum contact pressure. However, other techniques for varying or limiting contact pressure may be used. For example, the seal element material 42b could comprise another metal, the metal could be heat treated differently, different proportions of metals or other materials could be used (such as, varying proportions of metals and elastomers or other polymers), etc.
Referring additionally now to
Referring additionally now to
In the
A ratio of the materials 42a,b can be varied as the seal element material 42 is deposited from the instrument 44 to form the seal element 30. This varying of the ratio can be an increase, a decrease, or any combination or pattern of increases and decreases, and can be performed continuously, intermittently, incrementally, periodically or otherwise, in order to vary any selected material property or properties.
For example, a metallic proportion of the seal element material 42 could be varied during the method 40, so that the material 42a comprises a significantly greater proportion of metal, as compared to the material 42b. In this manner, the material 42a could have increased abrasion resistance, pressure differential resistance, strength, well fluids resistance, density, toughness or durability as compared to the material 42b, and the material 42b can have increased compressibility, increased resilience or decreased density as compared to the material 42a.
In the
Characteristics of the voids 50 (size, quantity, density, shape, etc.) can be varied as the seal element material 42 is deposited from the instrument 44 to form the seal element 30. This varying of the void characteristics can be an increase, a decrease, or any combination or pattern of increases and decreases, and can be performed continuously, intermittently, incrementally, periodically or otherwise, in order to vary any selected material property or properties.
In the
If the material 42a has greater rigidity and less compressibility as compared to the material 42b, then the alternating sections of the materials 42a,b in the
When used in the seal element 30 of the packer assembly 22 of
Note that it is not necessary for the materials 42a,b to be formed as separate discrete layers. Material properties of the seal element material 42 could instead be gradually varied (e.g., as in the
In some examples, the materials 42a,b can be arranged so that the seal element 30 deforms in a desired manner in response to force applied thereto. Thus, desired displacements of different portions of the seal element 30 can be pre-programmed or preselected by appropriately arranging the materials 42a,b. For example, it may be desirable for an anti-extrusion portion of the seal element 30 (such as the anti-extrusion device 38 of the
Referring additionally now to
In the
The material 42b can deform to allow the seal element 30 to conform to the well surface 54. For example, the material 42b could comprise a porous material (such as, a metal foam or a porous metal) that inelastically compresses when a sufficient pressure is applied to it. In other examples, the material 42b could comprise a resilient material (such as an elastomer) that elastically compresses and expands to maintain a biasing pressure against the material 42a. Any types, numbers or combinations of materials may be used for the materials 42a,b in the
The material 42a in the
In the
For example, the material 42b could comprise a greater proportion of a more compressible or more resilient component, as compared to the material 42a. As another example, the material 42b could comprise a harder material (such as hardened steel) dispersed in a softer matrix (such as aluminum).
Referring additionally now to
The material 42a in the
Referring additionally now to
As depicted in
In the
The structures 56 in the
Referring additionally now to
Note that the structures 56 are configured and arranged, so that they will bias a middle section of the seal element 30 radially outward as the seal element 30 is longitudinally compressed. The structures 56 may be formed of the material 42a, the material 42b or other material(s). The structures 56 may be discrete, separate components, or they may be integrally formed with other components of the seal element 30.
Referring additionally now to
However, when a sufficient predetermined longitudinal force F is applied to the seal element 30, the structures 56 will break or otherwise cease to prevent longitudinal compression of the seal element 30. For this purpose, one or more weakened portions 58 could be provided on the structures 56. The structures 56 may be formed of the material 42a, the material 42b or other material(s). The structures 56 may be discrete, separate components, or they may be integrally formed with other components of the seal element 30.
Referring additionally now to
The seal element material 42 may be “open-celled” in that the pores or voids 50 are substantially interconnected with each other, and with an exterior of the seal element material 42. Thus, characteristics of the pores or voids 50 (such as quantity, size, density, shape, etc.) can be varied, in order to change a total surface area of the seal element material 42 exposed to well fluids or other downhole elements.
If, for example, it is desired for the seal element material 42 to eventually dissolve or otherwise degrade after exposure to well fluids, then the characteristics of the pores or voids 50 can be designed so that the dissolving or other degrading occurs upon passage of a selected period of time. As another example, heat transfer through the seal element material 42 may be varied by changing the characteristics of the pores or voids 50.
The seal element material 42 may be “closed-celled” in that the pores or voids 50 are substantially isolated from each other and the exterior of the seal element material 42. In this case, the pores or voids 50 may be empty, or they may contain a fluid, gel, gas or other material.
Material in the pores or voids 50 can be used to modify or enhance properties of the seal element material 42. For example, a compressible material (such as a gas at a selected pressure) could be contained in the pores or voids 50 to modify the compressibility of the seal element material 42. As another example, a resilient material (such as an elastomer) could be contained in the pores or voids 50 to increase the resilience of the seal element material 42.
The material in the pores or voids 50 could be gradually released from the pores or voids (for example, if the seal element material 42 is open-celled). Alternatively, the material in the pores or voids 50 could be released upon compression or other deformation of the seal element material 42.
A material in the pores or voids 50 could enhance properties (such as, strength, toughness, hardness, etc.) during heat treatment of the seal element material 42. A lubricant in the pores or voids 50 can enhance lubricity of the seal element material 42. A solvent or swell-activating agent in the pores or voids 50 can cause the seal element material 42 to dissolve or swell, respectively, after a selected period of time, or upon exposure to a particular environmental condition (such as elevated temperature). Thus, the scope of this disclosure is not limited to any particular purpose or result of disposing any material in the pores or voids 50 of the seal element material 42.
Referring additionally now to
In the
In most of the examples described herein and depicted in the drawings, two seal element materials 42a,b are used to demonstrate how properties of the seal element material 42 can be varied in the seal element 30. However, any number or combination of seal element materials may be used in keeping with the scope of this disclosure.
Furthermore, a described property or characteristic of any of the seal element materials 42a,b may be substituted or replaced by the property or characteristic of the other seal element material. Positions of the seal element materials 42a,b may be reversed or exchanged.
Any of the seal elements 30 described herein may be manufactured using the method 40 or any “additive manufacturing” techniques known to those skilled in the art by which materials can be deposited so that they accumulate to form the finished seal element 30. Such techniques allow materials, and their properties, structures and characteristics, to be varied as desired in the seal element 30.
In any of the examples described herein, properties of the seal element material 42 may be varied in the seal element 30 to change between the seal element materials 42a,b. There may be a gradual change from one material to another, such as, by gradually varying a ratio of the materials 42a,b, or by gradually varying a characteristic of the material 42 (for example, a density, size, quantity, shape, etc. of voids in the material 42). The physical properties can be changed gradually using the method 40, so that there is no distinct boundary between the materials 42a,b.
It may now be fully appreciated that the above disclosure provides significant advancements to the arts of designing and manufacturing sealing apparatus. In some examples described above, the seal element material 42 is deposited to form the seal element 30, with properties and characteristics of the seal element material 42 varying in the seal element 30.
A method 40 of manufacturing a seal element 30 is provided by the above disclosure. In one example, the method 40 can include: depositing a first seal element material 42a from an instrument 44 at a first location of the seal element 30; and depositing a second seal element material 42b from the instrument 44 at a second location of the seal element 30. The first seal element material 42a is different from the second seal element material 42b.
The first and second seal element materials 42a,b may have different densities, porosities, compressibilities, elasticities, hardnesses, toughnesses or other properties or characteristics.
The second seal element material 42b may have a higher compressibility than the first seal element material 42a, and the second location may be external relative to the first location.
The second seal element material 42b may have a higher density than the first seal element material 42a, and the second location may be external relative to the first location.
The first and second seal element materials 42a,b may form integral portions of a well tool structure (such as the combined seal element 30 and housing assembly 34 of the
The first and second seal element materials 42a,b may be deposited so that the seal element 30 is more compressible in a first direction as compared to a second direction. The first direction may be an axial or longitudinal direction, and the second direction may be a radial direction. Alternatively, the first direction may be a radial direction, and the second direction may be an axial or longitudinal direction.
The second seal element material 42b depositing step may include depositing the second seal element material 42b at a third location of the seal element 30, the first location being between the second and third locations. The first seal element material 42a may be more compressible than the second seal element material 42b in this example.
The method 40 may include may include forming a relatively rigid structure 56 in the seal element 30. The structure 56 may limit compression of the seal element 30. The structure 56 may cause a portion of the seal element 30 to extend in response to compression of the seal element 30.
The structure 56 may restrict compression of the seal element 30, until a selected compressive force F is applied to the seal element 30. The structure 56 may break in response to application of the selected compressive force F.
At least one of the first and second seal element materials 42a,b may comprise a metal or metal alloy.
The step of depositing the second seal element material 42b may comprise depositing the second seal element material 42b external to the first seal element material 42a, and the second seal element material 42b may comprise a metal or a metal alloy.
The method 40 may include forming at least one void 50 in the seal element 30.
The steps of depositing the first and second seal element materials 42a,b may comprise arranging the first and second seal element materials 42a,b in the seal element 30, so that a first portion of the seal element 30 (such as, an anti-extrusion device 38) displaces relative to a second portion of the seal element 30 (such as, a primary sealing portion) in response to deformation of the seal element 30. A desired “programmed” or selected movement of the seal element 30 may, thus, be produced based on changes in properties or characteristics (such as, a presence or arrangement of voids 50 in the seal material 42, etc.) and arrangement or configuration of the seal element materials 42a,b.
Also described above is a sealing system 10. In one example, the system 10 can include a seal element 30, the seal element 30 comprising at least one seal element material 42 about at least one void 50 in the seal element 30. The seal element material 42 encloses the void 50.
A structure 56 may be formed in the seal element 30. The structure 56 may limit compression of the seal element 30, resist compression of the seal element 30 until a selected compressive force F is applied to the seal element 30, or cause a seal surface to extend from the seal element 30 in response to compression of the seal element 30.
A density, compressibility, porosity or hardness of the seal element material 42 may vary in the seal element 30.
The seal element material 42 may be deposited about the void 50 in the seal element 30.
Another sealing system 10 is provided to the art by the above disclosure. In one example, the sealing system 10 can include a seal element 30, with the seal element 30 comprising multiple different seal element materials 42a,b deposited at respective multiple different locations in the seal element 30.
The seal element materials 42a,b may have different densities, porosities, compressibilities, elasticities, hardnesses, toughnesses or other properties or characteristics.
One of the seal element materials 42a,b having a relatively higher compressibility may be positioned external relative to one of the seal element materials 42a,b having a relatively lower compressibility.
One of the seal element materials 42a,b having a relatively higher density may be positioned external relative to one of the seal element materials 42a,b having a relatively lower density.
The seal element materials 42a,b may form integral portions of a well tool structure. The well tool structure may include a component selected from the group consisting of an outer housing 34 and an inner mandrel 36.
The seal element materials 42a,b may be deposited so that the seal element 30 is more compressible in a first direction as compared to a second direction. The first direction may be an axial or longitudinal direction, and the second direction may be a radial direction. The first direction may be a radial direction, and the second direction may be an axial or longitudinal direction. However, it is not necessary that the first or second direction is an axial, longitudinal or radial direction. For example, the first or second direction could be a combination of radial and axial or longitudinal directions.
The seal element materials 42a,b may include a relatively more compressible first seal element material 42a positioned between a relatively less compressible second seal element material 42b.
The seal element materials 42a,b may include a relatively less dense first seal element material 42a positioned between a relatively more dense second seal element material 42b.
The sealing system 10 may include a relatively rigid structure 56 in the seal element 30. The structure 56 may limit compression of the seal element 30, the structure 56 may cause a portion of the seal element 30 to extend in response to compression of the seal element 30.
The structure 56 may restrict compression of the seal element 30, until a selected compressive force F is applied to the seal element 30. The structure 56 may break in response to application of the selected compressive force F.
At least one of the seal element materials 42a,b may comprise a metal or metal alloy. One of the seal element materials 42a,b on an exterior of the seal element 30 may comprise a metal or a metal alloy. One of the seal element materials 42a,b on an interior of the seal element 30 may comprise a metal or a metal alloy.
The sealing system 10 may include at least one void 50 in the seal element 30.
Although various examples have been described above, with each example having certain features, it should be understood that it is not necessary for a particular feature of one example to be used exclusively with that example. Instead, any of the features described above and/or depicted in the drawings can be combined with any of the examples, in addition to or in substitution for any of the other features of those examples. One example's features are not mutually exclusive to another example's features. Instead, the scope of this disclosure encompasses any combination of any of the features.
Although each example described above includes a certain combination of features, it should be understood that it is not necessary for all features of an example to be used. Instead, any of the features described above can be used, without any other particular feature or features also being used.
It should be understood that the various embodiments described herein may be utilized in various orientations, such as inclined, inverted, horizontal, vertical, etc., and in various configurations, without departing from the principles of this disclosure. The embodiments are described merely as examples of useful applications of the principles of the disclosure, which is not limited to any specific details of these embodiments.
In the above description of the representative examples, directional terms (such as “above,” “below,” “upper,” “lower,” etc.) are used for convenience in referring to the accompanying drawings. However, it should be clearly understood that the scope of this disclosure is not limited to any particular directions described herein.
The terms “including,” “includes,” “comprising,” “comprises,” and similar terms are used in a non-limiting sense in this specification. For example, if a system, method, apparatus, device, etc., is described as “including” a certain feature or element, the system, method, apparatus, device, etc., can include that feature or element, and can also include other features or elements. Similarly, the term “comprises” is considered to mean “comprises, but is not limited to.”
Of course, a person skilled in the art would, upon a careful consideration of the above description of representative embodiments of the disclosure, readily appreciate that many modifications, additions, substitutions, deletions, and other changes may be made to the specific embodiments, and such changes are contemplated by the principles of this disclosure. For example, structures disclosed as being separately formed can, in other examples, be integrally formed and vice versa. Accordingly, the foregoing detailed description is to be clearly understood as being given by way of illustration and example only, the spirit and scope of the invention being limited solely by the appended claims and their equivalents.
Number | Name | Date | Kind |
---|---|---|---|
6637750 | Quoiani | Oct 2003 | B2 |
7134506 | Moyes | Nov 2006 | B2 |
7165622 | Hirth et al. | Jan 2007 | B2 |
7510019 | Li et al. | Mar 2009 | B2 |
RE45518 | Martin et al. | May 2015 | E |
9097095 | Vanlue | Aug 2015 | B2 |
9636872 | Batchelder | May 2017 | B2 |
9821339 | Paschkewitz et al. | Nov 2017 | B2 |
9895841 | Page | Feb 2018 | B2 |
20020189820 | Slup et al. | Dec 2002 | A1 |
20060207771 | Rios, III et al. | Sep 2006 | A1 |
20110148043 | Gaudette et al. | Jun 2011 | A1 |
20120073343 | Prehn | Mar 2012 | A1 |
20130004664 | Agrawal et al. | Jan 2013 | A1 |
20130022832 | Guset et al. | Jan 2013 | A1 |
20140255198 | El-Wardany et al. | Sep 2014 | A1 |
20150101797 | Davies et al. | Apr 2015 | A1 |
20150217367 | Dickey et al. | Aug 2015 | A1 |
20150218903 | Sellers, Jr. et al. | Aug 2015 | A1 |
20150331402 | Lin et al. | Nov 2015 | A1 |
20150345246 | Raynal et al. | Dec 2015 | A1 |
20160096318 | Bickel et al. | Apr 2016 | A1 |
20160138362 | Dockweiler | May 2016 | A1 |
20160258242 | Hayter et al. | Sep 2016 | A1 |
20170072465 | Welch et al. | Mar 2017 | A1 |
20170282457 | Burns et al. | Oct 2017 | A1 |
20170314102 | Roy et al. | Nov 2017 | A1 |
20170314103 | Roy et al. | Nov 2017 | A1 |
20170342797 | Murphree | Nov 2017 | A1 |
20180094494 | Basler | Apr 2018 | A1 |
Number | Date | Country |
---|---|---|
201193495 | Feb 2009 | CN |
2546557 | Jan 2013 | EP |
2003002847 | Jan 2003 | WO |
2009098467 | Aug 2009 | WO |
2013013975 | Jan 2013 | WO |
2017039619 | Mar 2017 | WO |
Entry |
---|
Freudenberg; “FlexLok MTM Seals”, webpage article, dated 2014, 2 pages. |
International Search Report with Written Opinion dated Jun. 11, 2018 for PCT Patent Application No. PCT/US18/020073, 17 pages. |
International Search Report with Written Opinion dated Feb. 26, 2018 for PCT Patent Application No. PCT/US18/019629, 17 pages. |
Office Action dated Feb. 7, 2019 for U.S. Appl. No. 15/464,131, 27 pages. |
Number | Date | Country | |
---|---|---|---|
20180266202 A1 | Sep 2018 | US |