An acoustic sensor is often employed on a downhole tool to measure properties of a subterranean formation. For example, the acoustic sensor may be used to determine formation compressional slowness, Stonely slowness, and/or other properties. Generally, a transmitter generates an acoustic signal that propagates toward the subterranean formation. The signal is refracted by the subterranean formation toward a receiver of the acoustic sensor, which receives the signal. The signal may then be processed to determine the properties of the subterranean formation.
This summary is provided to introduce a selection of concepts that are further described below in the detailed description. This summary is not intended to identify key or essential features of the claimed subject matter, nor is it intended to be used as an aid in limiting the scope of the claimed subject matter.
An example apparatus disclosed herein includes a transmitter to transmit an acoustic signal. The example apparatus also includes an acoustic isolator substantially surrounding a receiver, which is to receive the acoustic signal via an opening in the acoustic isolator. The transmitter and the acoustic isolator are coupled to a base. The acoustic isolator includes a first layer coupled to a second layer defining a plurality of spaces. The second layer is to provide an acoustic impedance mismatch.
Another example apparatus disclosed herein includes an acoustic transmitter, an acoustic isolator, and an acoustic attenuator coupled to a base. The acoustic isolator includes a first layer and a second layer. The first layer includes a plurality of pores. An acoustic receiver is coupled to the acoustic isolator, and the acoustic isolator surrounds a portion of the acoustic receiver. The acoustic attenuator is disposed between the acoustic isolator and the acoustic transmitter.
Another example apparatus disclosed herein includes a downhole tool and an acoustic logging module disposed on the downhole tool. The acoustic logging module includes an acoustic transmitter, an acoustic receiver, and an acoustic isolator. The acoustic isolator surrounds a portion of the acoustic receiver, and the acoustic isolator has a layer to provide an acoustic impedance mismatch. The layer defines a plurality of spaces.
The present disclosure is best understood from the following detailed description when read with the accompanying figures. It is emphasized that, in accordance with the standard practice in the industry, various features are not drawn to scale. In fact, the dimensions of the various features may be arbitrarily increased or reduced for clarity of discussion.
It is to be understood that the following disclosure provides many different embodiments or examples for implementing different features of various embodiments. Specific examples of components and arrangements are described below to simplify the present disclosure. These are, of course, merely examples and are not intended to be limiting. In addition, the present disclosure may repeat reference numerals and/or letters in the various examples. This repetition is for the purpose of simplicity and clarity and does not in itself dictate a relationship between the various embodiments and/or configurations discussed. Moreover, the formation of a first feature over or on a second feature in the description that follows may include embodiments in which the first and second features are formed in direct contact, and may also include embodiments in which additional features may be formed interposing the first and second features such that the first and second features may not be in direct contact.
One or more aspects of the present disclosure relate to acoustic isolators. In some examples, an acoustic isolator is coupled to a base of an acoustic sensor. A transmitter and an acoustic attenuator may also be coupled to the base. The acoustic isolator may substantially surround one or more acoustic receivers. The acoustic isolator may include a first layer and a second layer. In some examples, the second layer includes two mediums having different acoustic impedances to provide an acoustic impedance mismatch. For example, the second layer may include a first medium (e.g., a ceramic) defining one or more spaces in which a second medium (e.g., air, Nitrogen, Helium, Carbon dioxide, and/or any other gas) is captured or in which a vacuum is provided. For example, the second layer may be a ceramic plate having a plurality of pores in which substantially no gas, liquid or other fluid invades (e.g. flows into the spaces) during operation, thereby providing a vacuum in at least one of the pores. In some examples, the pores may be substantially filled with air and/or other gas(es). In some examples, the first layer may seal a surface of the second layer to prevent fluid(s) from invading the spaces and/or capture gas(es) within the second layer. In some examples, the acoustic isolator includes a third layer having a third medium (e.g., metal) to provide a second acoustic impedance mismatch. The acoustic isolator may define an opening facing away from the transmitter through which the receiver receives an acoustic signal.
A drill string 12 is suspended within the borehole 11 and has a bottom hole assembly 100 which includes a drill bit 105 at its lower end. The surface system includes platform and derrick assembly 10 positioned over the borehole or wellbore 11, the assembly 10 including a rotary table 16, kelly 17, hook 18 and rotary swivel 19. The drill string 12 is rotated by the rotary table 16, energized by means not shown, which engages the kelly 17 at the upper end of the drill string 12. The drill string 12 is suspended from the hook 18, attached to a traveling block (also not shown), through the kelly 17 and the rotary swivel 19, which permits rotation of the drill string 12 relative to the hook 18. As is well known, a top drive system could be used.
In the illustrated example, the surface system further includes drilling fluid or mud 26 stored in a pit 27 formed at the well site. A pump 29 delivers the drilling fluid 26 to the interior of the drill string 12 via a port in the swivel 19, causing the drilling fluid 26 to flow downwardly through the drill string 12 as indicated by the directional arrow 8. The drilling fluid 26 exits the drill string 12 via ports in the drill bit 105, and then circulates upwardly through the annulus region between the outside of the drill string 12 and the wall of the borehole 11, as indicated by the directional arrows 9. In this well-known manner, the drilling fluid 26 lubricates the drill bit 105 and carries formation cuttings up to the surface as it is returned to the pit 27 for recirculation.
The bottom hole assembly 100 of the illustrated example includes a logging-while-drilling (LWD) module 120, one or more measuring-while-drilling (MWD) module 130, a roto-steerable system and motor, and drill bit 105.
The LWD module 120 is housed in a special type of drill collar, as is known in the art, and can contain one or a plurality of known types of logging tools. It will also be understood that more than one LWD and/or MWD module can be employed, for example, as represented at 120A. References throughout to a module at the position of 120 can mean a module at the position of 120A as well. The LWD module includes capabilities for measuring, processing, and storing information, as well as for communicating with the surface equipment. In the illustrated example, a logging and control unit 140 includes an acoustic logging device.
The MWD module 130 is also housed in a special type of drill collar, as is known in the art, and can contain one or more devices for measuring characteristics of the drill string 12 and drill bit 105. The MWD tool further includes an apparatus (not shown) for measuring characteristics of the drill string and drill bit. The MWD tool further includes an apparatus (not shown) for generating electrical power to the downhole system. This may include a mud turbine generator powered by the flow of the drilling fluid 26, it being understood that other power and/or battery systems may be employed. In the illustrated example, the MWD module includes one or more of the following types of measuring devices: a weight-on-bit measuring device, a torque measuring device, a vibration measuring device, a shock measuring device, a stick slip measuring device, a direction measuring device, and an inclination measuring device.
The example transmitter 412 of
In some examples, acoustic waves and/or acoustic energy other than the target signal propagate along the acoustic sensor 400. For example, acoustic waves may propagate between the transmitter 412 and the receiver assembly 416 when the transmitter 412 generates the acoustic signal. In the illustrated example, the acoustic attenuator 414 decreases wave energy and/or amplitudes of the waves propagating between the transmitter 412 and the receiver assembly 416 by scattering (e.g., reflecting, refracting, diverging, spreading, etc.) the waves, absorbing the waves, converting a mode of the waves, etc. In some examples, when the transmitter 412 transmits the acoustic signal toward the subterranean formation 422, the transmitter 412 excites the base 402 and the collar 406 of the downhole tool 410, thereby propagating acoustic energy along the downhole tool 410.
The example receiver assembly 416 of
In some examples, the wall 700 of
The example second layer 704 includes a first medium 708 and a second medium 710 having different acoustic impedances. Thus, the example second layer 704 provides an acoustic impedance mismatch. As a result, the example second layer 704 substantially reflects acoustic waves and/or acoustic energy that propagate into the example second layer 704, thereby substantially preventing the acoustic waves and/or the acoustic energy from reaching the receiver array 420. In the illustrated example, the first medium 708 of the second layer 704 defines one or more spaces 712 to be substantially filled with the second medium 710. In some examples, the first medium 708 is composed of one or more materials defining gaps, holes, sockets, pockets, pores, slots, chambers, and/or any other suitable space(s). In the illustrated example, the first medium 708 is composed of ceramic having a plurality of pores, and the second medium 710 is a vacuum provided in at least one of the pores. In some examples, the second medium 710 is air and/or other gas(es) that substantially fills at least one of the spaces 712.
During downhole operation of the example acoustic isolator 424, the acoustic isolator 424 may be subjected to pressures of up to twenty-five thousand pounds per square inch. In the illustrated example, the first layer 702 and the third layer 706 seal surfaces 714, 716, 718 and 720 of the second layer 704 to prevent fluid (e.g., drilling mud, formation fluid, oil, etc.) from invading (e.g., flowing into) the spaces 712 of second layer 704 and/or to prevent gas(es) from flowing out of the second layer 704 (e.g., the first layer 702 and the third layer 706 may capture air within the pores of the second layer 704). The first layer 702 and the third layer 706 may be formed by applying a coating to the surfaces 714, 716, 718 and 720 second layer 704, molding a material to the surfaces 714, 716, 718 and 720 of the second layer 704, and/or by any other technique(s). For example, the first layer 702 and the third layer 706 illustrated in
In some examples, the wall 800 of
The example second layer 804 includes a first medium 810 and a second medium 812 having different acoustic impedances. Thus, the example second layer 804 provides an acoustic impedance mismatch. As a result, the example second layer 804 substantially reflects acoustic waves and/or acoustic energy that propagate into the example second layer 804, thereby substantially preventing the acoustic waves and/or the acoustic energy from reaching the receiver array 420. In the illustrated example, the first medium 810 of the second layer 804 defines one or more spaces 814. In some examples, the spaces 814 are gaps, holes, sockets, pockets, pores, slots, chambers, and/or any other suitable space(s). In the illustrated example, the first medium 810 is composed of ceramic having a plurality of pores, and the second medium 812 is a vacuum provided in at least one of the pores. In some examples, the second medium 821 is air and/or other gas(es) that substantially fills at least one of the spaces 814.
The example third layer 806 is composed of a third medium 816. In the illustrated example, the third medium 816 has an acoustic impedance different than the acoustic impedances of the first medium 810 and/or the second medium 812. Thus, the first medium 810 of the second layer 804 and the third medium 816 of the third layer 806 provide a second acoustic impedance mismatch to substantially reflect acoustic waves and/or acoustic energy. In the illustrated example, the third medium 816 is tungsten. However, the above-noted material is merely an example and, thus, other materials may be used without departing from the scope of this disclosure.
In the illustrated example, the first layer 802 seals one or more surfaces 818, 820, 822 and 824 of the second layer 804 to prevent fluid (e.g., drilling mud, formation fluid, oil, etc.) from invading (e.g., flowing into) the spaces 814 of second layer 804 or to prevent the gas(es) from flowing out of the second layer 804 (e.g., the first layer 802 may capture the air within the pores of the second layer 804). In some examples, the first layer 802 is a coating (e.g., a PTFE coating) applied to one or more surfaces 818, 820, 822 and 824 of the second layer 804. In the illustrated example, the first layer 802 and the fourth layer 808 couple the second layer 804 to the third layer 806. For example, the first layer 802 and the fourth layer 808 may be an overmolding (e.g., a PEEK overmolding) surrounding the second layer 804 and the third layer 806 to hold the second layer 804 in contact with the third layer 806 and seal the one or more surfaces 818, 820, 822 and 824 of the second layer 804.
In the illustrated example, the first plates 1002 are composed of a first material such as, for example, tungsten. The example second plates 1004 are composed of a second material. In some examples, the second plates 1004 define one or more spaces 1005 to provide vacuums within the second plates 1004 or enable gas(es) to be captured within the second plates 1004. In the illustrated example, the second material is a ceramic having the plurality of the spaces 1005 (e.g., pores), and the overmolding 1000 maintains a vacuum within the spaces 1005. In some examples, the overmolding 1000 capture gas(es) within at least one of the spaces 1005. The first material has a first acoustic impedance, the second material has a second acoustic impedance, and the vacuum has a third acoustic impedance. As a result, the first material of the first plates 1002 and the second material of the second plates provide a first acoustic impedance mismatch, and the second material of the second plates 1004 and the vacuum provide a second acoustic impedance mismatch. In other examples, the first plates 1002 are composed of the second material and the second plates 1004 are composed of the first material.
In the illustrated example, the bottom-wall 910 includes a third plate 1006 juxtaposed with a fourth plate 1008 juxtaposed with a fifth plate 1010 juxtaposed with a sixth plate 1012. The third plate 1006 and the fifth plate 1010 of the example bottom-wall 910 are composed of the first material. In the illustrated example, the fourth plate 1008 and the sixth plate 1012 of the bottom-wall 910 are composed of the second material. As a result, an acoustic impedance mismatch may occur at and/or in each of the four plates 1006, 1008, 1010 and 1012 of the example bottom-wall 910. In other examples, the third plate 1006 and the fifth plate 1010 are composed of the second material, and the fourth plate 1008 and the sixth plate 1012 are composed of the first material. The overmolding 1000 substantially covers a portion of the third plate 1006 and a portion of the sixth plate 1012. Thus, the example bottom-wall 910 includes six layers. Other examples include other numbers of plates and/or layers.
Although only a few example embodiments have been described in detail above, those skilled in the art will readily appreciate that many modifications are possible in the example embodiments without materially departing from fluid filters. Accordingly, such modifications are intended to be included within the scope of this disclosure as defined in the following claims. In the claims, means-plus-function clauses are intended to cover the structures described herein as performing the recited function and not only structural equivalents, but also equivalent structures. Thus, although a nail and a screw may not be structural equivalents in that a nail employs a cylindrical surface to secure wooden parts together, whereas a screw employs a helical surface, in the environment of fastening wooden parts, a nail and a screw may be equivalent structures. It is the express intention of the applicant not to invoke 35 U.S.C. §112, paragraph 6 for any limitations of any of the claims herein, except for those in which the claim expressly uses the words ‘means for’ together with an associated function.
The Abstract at the end of this disclosure is provided to comply with 37 C.F.R. §1.72(b) to allow the reader to quickly ascertain the nature of the technical disclosure. It is submitted with the understanding that it will not be used to interpret or limit the scope or meaning of the claims.
Number | Name | Date | Kind |
---|---|---|---|
3406779 | Zemanek et al. | Oct 1968 | A |
3811529 | Crawford | May 1974 | A |
4698791 | Cunningham | Oct 1987 | A |
4850450 | Hoyle et al. | Jul 1989 | A |
5639997 | Mallett | Jun 1997 | A |
6084826 | Leggett, III | Jul 2000 | A |
6474439 | Hoyle et al. | Nov 2002 | B1 |
6494288 | Tashiro et al. | Dec 2002 | B1 |
6564899 | Arian et al. | May 2003 | B1 |
6614360 | Leggett et al. | Sep 2003 | B1 |
6615949 | Egerev et al. | Sep 2003 | B1 |
6739423 | Tashiro et al. | May 2004 | B2 |
7334661 | Pabon et al. | Feb 2008 | B2 |
7336562 | Hoyle et al. | Feb 2008 | B1 |
20020157895 | Dubinsky et al. | Oct 2002 | A1 |
20030014190 | Dubinsky et al. | Jan 2003 | A1 |
20030123326 | Wisniewski et al. | Jul 2003 | A1 |
20040141415 | Redding et al. | Jul 2004 | A1 |
20050023074 | Dubinsky et al. | Feb 2005 | A1 |
20050034917 | Mathiszik et al. | Feb 2005 | A1 |
20050150655 | Duong et al. | Jul 2005 | A1 |
20050150713 | Garcia-Osuna et al. | Jul 2005 | A1 |
20050152219 | Garcia-Osuna et al. | Jul 2005 | A1 |
20050167101 | Sugiyama | Aug 2005 | A1 |
20060013065 | Varsamis et al. | Jan 2006 | A1 |
20070056794 | Cox et al. | Mar 2007 | A1 |
20070153629 | Drumheller et al. | Jul 2007 | A1 |
20070156359 | Varsamis et al. | Jul 2007 | A1 |
20090107757 | Lindner et al. | Apr 2009 | A1 |
20090183941 | Pabon et al. | Jul 2009 | A1 |
20100089574 | Wideman et al. | Apr 2010 | A1 |
20100157741 | Drumheller et al. | Jun 2010 | A1 |
20110073368 | Han et al. | Mar 2011 | A1 |
20110094729 | Braden et al. | Apr 2011 | A1 |
20110188345 | Wang | Aug 2011 | A1 |
20110222369 | DiFoggio et al. | Sep 2011 | A1 |
20110242936 | Pabon et al. | Oct 2011 | A1 |
20110255370 | Hirabayashi et al. | Oct 2011 | A1 |
20110280101 | Wang | Nov 2011 | A1 |
20110280102 | Wang et al. | Nov 2011 | A1 |
20110286307 | Wang | Nov 2011 | A1 |
20120044783 | Wang et al. | Feb 2012 | A1 |
20120111633 | Kumar | May 2012 | A1 |
20120253680 | Thompson et al. | Oct 2012 | A1 |
20130058193 | Roberts et al. | Mar 2013 | A1 |
Number | Date | Country |
---|---|---|
0261825 | Mar 1988 | EP |
Entry |
---|
International search report for the equivalent PCT patent application No. PT/IB2013/061175 issued on Apr. 30, 2014. |
European Search Report for Application No. 13863725.1. Dated Dec. 8, 2016. (4 pgs). |
Number | Date | Country | |
---|---|---|---|
20140177391 A1 | Jun 2014 | US |