Sealed multilateral junction system
Claim Score by NHIP
Abstract
A sealed multilateral junction system provides fluid isolation between intersecting wellbores in a subterranean well. In a described embodiment, a method of forming a wellbore junction includes the steps of sealing a tubular string in a branch wellbore to a tubular structure in a parent wellbore. The tubular string may be secured to the tubular structure utilizing a flange which is larger in size than a window formed in the tubular structure. The flange may be sealed to the tubular structure about the window by a metal to metal seal or by adhering the flange to the tubular structure.

Term
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Projected expiry passed 13 January 2023, 3.7 years ago.
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49 claims: 3 independent, 46 dependent
- 1Broadest claimClaim Score 84, broad(NHIP)A method of forming a wellbore junction in a subterranean well, the method comprising the steps of:drilling first and second wellbores, the second wellbore extending outward from an intersection of the first and second wellbores;positioning an expandable sleeve in the first wellbore at the intersection;aligning an opening formed through a sidewall of the sleeve with the second wellbore;and expanding the sleeve outwardly, thereby sealing the sleeve in the first wellbore and providing access to the second wellbore through the opening.
- 19A method of forming a wellbore junction in a subterranean well, the method comprising the steps of:drilling first and second wellbores, the second wellbore extending outward from an intersection of the first and second wellbores;positioning a tubular structure within the first wellbore at the intersection;aligning a window formed laterally through the tubular structure with the second wellbore;installing a tubular string in the second wellbore through the window;and securing an end of the tubular string to the tubular structure utilizing a flange attached to the tubular string.
- 28A method of forming a wellbore junction in a subterranean well, the method comprising the steps of:drilling a first wellbore;positioning a tubular structure within the first wellbore, the tubular structure having a window formed laterally therethrough;anchoring a whipstock at least partially within the tubular structure so that a deflection surface on the whipstock is aligned with the window;drilling a second wellbore extending outwardly from the window utilizing the whipstock;installing a tubular string in the second wellbore through the window;securing an end of the tubular string to the tubular structure by preventing an engagement device from passing through the window;and sealing the engagement device to the tubular structure about the window.
Independent claims3
144 paragraphs in 3 sections, as filed
BACKGROUND
[0001] The present invention relates generally to operations performed in conjunction with subterranean wells and, in an embodiment described herein, more particularly provides a method of forming sealed wellbore junctions.
[0002] Many systems have been developed for connecting intersecting wellbores in a well. Unfortunately, these systems typically involve methods which unduly restrict access to one or both of the intersecting wellbores, restrict the flow of fluids, are very complex or require very sophisticated equipment to perform, are time-consuming in that they require a large number of trips into the well, do not provide secure attachment between casing in the parent wellbore and a liner in the branch wellbore and/or do not provide a high degree of sealing between the intersecting wellbores.
[0003] For example, some wellbore junction systems rely on cement alone to provide a seal between the interior of the wellbore junction and a formation surrounding the junction. In these systems, there is no attachment between the casing in the parent wellbore and the liner in the branch wellbore, other than that provided by the cement. These systems are acceptable in some circumstances, but it would be desirable in other circumstances to be able to provide more secure attachment between the tubulars in the intersecting wellbores, and to provide more effective sealing between the tubulars.
[0004] In carrying out the principles of the present invention, in accordance with an embodiment thereof, a method of forming a wellbore junction is provided which both securely attaches tubulars in intersecting wellbores and effectively seals between the tubulars. The method is straightforward and convenient in its performance, does not unduly restrict flow or access through the junction, and does not require an inordinate number of trips into the well.
[0005] In one aspect of the invention, a method is provided for forming a wellbore junction which includes a step of expanding a member within a tubular structure positioned at an intersection of two wellbores. This expansion of the member may perform several functions. For example, the expanded member may secure an end of a tubular string which extends into a branch wellbore. The expanded member may also seal to the tubular string and/or to the tubular structure.
[0006] In another aspect of the invention, the tubular string may be installed in the branch wellbore through a window formed through the tubular structure. An engagement device on the tubular string engages the tubular structure to secure the tubular string to the tubular structure. For example, the engagement device may be a flange which is larger in size than the window of the tubular structure and is prevented from passing therethrough, thereby fixing the position of the tubular string relative to the tubular structure.
[0007] In yet another aspect of the invention, a whipstock may be used to drill the branch wellbore through the window in the tubular structure. Thereafter, the whipstock is used to install the tubular string in the branch wellbore. After installation of the tubular string, the whipstock may be retrieved from the parent wellbore, thereby permitting full bore access through the wellbore junction in the parent wellbore. The tubular string may be installed and the whipstock retrieved in only a single trip into the well using a unique tool string.
[0008] In still another aspect of the invention, the window may be formed in the tubular structure prior to cementing the tubular structure in the parent wellbore. To prevent cement flow through the window, a retrievable sleeve is used inside the tubular structure. After cementing, the sleeve is retrieved from within the tubular structure.
[0009] Various types of seals may be used between various elements of the wellbore junction. For example metal to metal seals may be used, or elements of the wellbore junction may be adhesively bonded to each other, etc.
[0010] These and other features, advantages, benefits and objects of the present invention will become apparent to one of ordinary skill in the art upon careful consideration of the detailed description of representative embodiments of the invention hereinbelow and the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]FIG. 1 is a cross-sectional view of a method of forming a wellbore junction which embodies principles of the present invention and wherein a tubular structure has been cemented within a parent wellbore;
[0012]FIG. 2 is an enlarged cross-sectional view of the method wherein a branch wellbore has been drilled through the tubular structure utilizing a whipstock positioned in the tubular structure;
[0013]FIG. 3 is a cross-sectional view of the method wherein a tubular string is being installed in the branch wellbore;
[0014]FIG. 4 is an enlarged cross-sectional view of the method wherein a sleeve is being expanded within the tubular structure to thereby secure and seal the tubular string to the tubular structure;
[0015]FIG. 5 is a cross-sectional view taken along line <b>5</b>-<b>5</b> of FIG. 4, showing the sleeve expanded within the tubular structure;
[0016]FIGS. 6 & 7 are cross-sectional views of the sleeve in its radially compressed and expanded configurations, respectively;
[0017] FIGS. <b>8</b>-<b>13</b> are cross-sectional views of a second method embodying principles of the present invention;
[0018] FIGS. <b>14</b>-<b>17</b> are cross-sectional views of a third method embodying principles of the present invention;
[0019] FIGS. <b>18</b>-<b>20</b> are cross-sectional views of a fourth method embodying principles of the present invention;
[0020] FIGS. <b>21</b>-<b>25</b> are cross-sectional views of a fifth method embodying principles of the present invention;
[0021]FIGS. 26 & 27 are cross-sectional views of a sixth method embodying principles of the present invention;
[0022]FIGS. 28 & 29 are cross-sectional views of a seventh method embodying principles of the present invention;
[0023]FIG. 30 is a cross-sectional view of an eighth method embodying principles of the present invention; and
[0024] FIGS. <b>31</b>-<b>35</b> are cross-sectional views of a ninth method embodying principles of the present invention.
DETAILED DESCRIPTION
[0025] Representatively illustrated in FIG. 1 is a method <b>10</b> which embodies principles of the present invention. In the following description of the method <b>10</b> and other apparatus and methods described herein, directional terms, such as “above”, “below”, “upper”, “lower”, etc., are used only for convenience in referring to the accompanying drawings. Additionally, it is to be understood that the various embodiments of the present invention 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 the present invention.
[0026] As depicted in FIG. 1, several steps of the method <b>10</b> have already been performed. A parent wellbore <b>12</b> has been drilled and a tubular structure <b>14</b> has been positioned in the parent wellbore. The tubular structure <b>14</b> is part of a casing string <b>16</b> used to line the parent wellbore <b>12</b>.
[0027] It should be understood that use of the terms “parent wellbore” and “casing string” herein are not to be taken as limiting the invention to the particular illustrated elements of the method <b>10</b>. The parent wellbore <b>12</b> could be any wellbore, such as a branch of another wellbore, and does not necessarily extend directly to the earth's surface. The casing string <b>16</b> could be any type of tubular string, such as a liner string, etc. The terms “casing string” and “liner string” are used herein to indicate tubular strings of any type, such as segmented or unsegmented tubular strings, tubular strings made of any materials, including nonmetal materials, etc. Thus, the reader will appreciate that these and other descriptive terms used herein are merely for convenience in clearly explaining the illustrated embodiments of the invention, and are not used for limiting the scope of the invention.
[0028] The casing string <b>16</b> also includes two anchoring profiles <b>18</b>, <b>20</b> for purposes that are described below. The lower profile <b>20</b> may be an orienting latch profile, for example, a profile which serves to rotationally orient a device engaged therewith relative to the window <b>28</b>. The upper profile <b>18</b> may also be an orienting latch profile. Such orienting profiles are well known to those skilled in the art.
[0029] A tubular shield <b>22</b> is received within the casing string <b>16</b>, and seals <b>24</b>, <b>26</b> carried on the shield are positioned at an upper end of the tubular structure <b>14</b> and at a lower end of the anchoring profile <b>20</b>, respectively. The shield <b>22</b> is a relatively thin sleeve as depicted in FIG. 1, but it could have other shapes and other configurations in keeping with the principles of the invention.
[0030] The shield <b>22</b> serves to prevent flow through a window <b>28</b> formed laterally through a sidewall of the tubular structure <b>14</b>. Specifically, the shield <b>22</b> prevents the flow of cement through the window <b>28</b> when the casing string <b>16</b> is cemented in the parent wellbore <b>12</b>. The shield <b>22</b> also prevents fouling of the lower profile <b>20</b> during the cementing operation, and the shield may be releasably engaged with the profile to secure it in position during the cementing operation and to enable it to be retrieved from the casing string <b>16</b> after the cementing operation, for example, by providing an appropriate convention latch on the shield.
[0031] The shield <b>22</b> prevents cement from flowing out to the window <b>28</b> when cement is pumped through the casing string <b>16</b>. Other means may be used external to the tubular structure <b>14</b> to prevent cement from flowing in to the window <b>28</b>, for example, an outer membrane, a fiberglass wrap about the tubular structure, a substance filling the window and any space between the window and the shield <b>22</b>, etc.
[0032] At this point it should be noted that the use of the terms “cement” and “cementing operation” herein are used to indicate any substance and any method of deploying that substance to fill the annular space between a tubular string and a wellbore, to seal between the tubular string and the wellbore and to secure the tubular string within the wellbore. Such substances may include, for example, various cementitious compositions, polymer compositions such as epoxies, foamed compositions, other types of materials, etc.
[0033] At the time the casing string <b>16</b> is positioned in the wellbore <b>12</b>, but prior to the cementing operation, the tubular structure <b>14</b> is rotationally oriented so that the window <b>28</b> faces in a direction of a desired branch wellbore to extend outwardly from the window. Thus, the tubular structure <b>14</b> is positioned at the future intersection between the parent wellbore <b>12</b> and the branch wellbore-to be-drilled, with the window <b>28</b> facing in the direction of the future branch wellbore. The rotational orientation may be accomplished in any of a variety of ways, for example, by engaging a gyroscopic device with the upper profile <b>18</b>, by engaging a low side indicator with the shield <b>22</b>, etc. Such rotational orienting devices (gyroscope, low side indicator, etc.) are well known to those skilled in the art.
[0034] After the tubular structure <b>14</b> is positioned in the wellbore <b>12</b> with the window <b>28</b> facing in the proper direction, the casing string <b>16</b> is cemented in place in the wellbore. When the cementing operation is concluded, the shield <b>22</b> is retrieved from the casing string <b>16</b>.
[0035] Referring additionally now to FIG. 2, an enlarged view of the method <b>10</b> is representatively illustrated wherein the shield <b>22</b> has been retrieved. A whipstock <b>30</b> or other type of deflection device has been installed in the tubular structure <b>14</b> by engaging keys, lugs or dogs <b>32</b> with the profile <b>20</b>, thereby releasably securing the whipstock in position and rotationally aligning an upper deflection surface <b>34</b> with the window <b>28</b>.
[0036] The whipstock <b>30</b> also includes an inner passage <b>36</b> and a profile <b>38</b> formed internally on the passage for retrieving the whipstock. Of course, other means for retrieving the whipstock <b>30</b> could be used, for example, a washover tool, a spear, an overshot, etc.
[0037] As depicted in FIG. 2, one or more cutting devices, such as drill bits, etc., have been deflected off of the deflection surface <b>34</b> and through the window <b>28</b> to drill a branch wellbore <b>40</b> extending outwardly from the window. As discussed above, the term “branch wellbore” should not be taken as limiting the invention, since the wellbore <b>40</b> could be a parent of another wellbore, or could be another type of wellbore, etc.
[0038] Referring additionally now to FIG. 3, the method <b>10</b> is representatively illustrated wherein a tubular string <b>42</b> has been installed in the branch wellbore <b>40</b>. The tubular string <b>42</b> may be made up substantially of liner or any other type of tubular material.
[0039] As depicted in FIG. 3, the tubular string <b>42</b> includes an engagement device <b>44</b> for engaging the tubular structure <b>14</b> and securing an upper end of the tubular string thereto. The tubular string <b>42</b> also includes a flex or swivel joint <b>46</b> for enabling, or at least enhancing, deflection of the tubular string from the parent wellbore <b>12</b> into the branch wellbore <b>40</b>. Alternatively, or in addition, the swivel joint <b>46</b> permits rotation of an upper portion of the tubular string <b>42</b> relative to a lower portion of the tubular string in the rotational alignment step of the method <b>10</b> described below. The tubular string <b>42</b> is deflected off of the deflection surface <b>34</b> as it is conveyed downwardly attached to a tool string <b>48</b>.
[0040] The tool string <b>48</b> includes an anchor <b>50</b> for releasable engagement with the upper profile <b>18</b>, a running tool <b>52</b> for releasable attachment to the tubular string <b>42</b>, and a retrieval tool <b>54</b> for retrieving the whipstock <b>30</b>. The running tool <b>52</b> may include keys, lugs or dogs for engaging an internal profile (not shown) of the tubular string <b>42</b>. The retrieval tool <b>54</b> may include keys, lugs or dogs for engagement with the profile <b>38</b> of the whipstock <b>30</b>.
[0041] When the anchor <b>50</b> is engaged with the profile <b>18</b>, the tubular string <b>42</b> is rotationally aligned so that the engagement device <b>44</b> will properly engage the tubular structure <b>14</b> as further described below. In addition, the anchor <b>50</b> is preferably spaced apart from the engagement device <b>44</b> so that when the anchor is engaged with the profile <b>18</b> and a shoulder <b>56</b> formed on a tubing string <b>58</b> of the tool string <b>48</b> contacts the anchor, the engagement device is properly positioned in engagement with the tubular structure <b>14</b>.
[0042] Specifically, the tubing string <b>58</b> is slidably received within the anchor <b>50</b>. When the shoulder <b>56</b> contacts the anchor <b>50</b>, the engagement device <b>44</b> is a predetermined distance from the anchor. This distance between the anchor <b>50</b> and the engagement device <b>44</b> corresponds with another predetermined distance between the profile <b>18</b> and the tubular structure <b>14</b>. Thus, when the tubular string <b>42</b> is being conveyed into the branch wellbore <b>40</b>, the engagement device <b>44</b> will properly engage the tubular structure <b>14</b> as the shoulder <b>56</b> contacts the anchor <b>50</b>.
[0043] The running tool <b>52</b> may then be released from the tubular string <b>42</b>, the tool string <b>48</b> may be raised into the parent wellbore <b>12</b>, and then the retrieval tool <b>54</b> may be engaged with the profile <b>38</b> in the whipstock <b>30</b> to retrieve the whipstock from the parent wellbore. Note that the installation of the tubular string <b>42</b> and the retrieval of the whipstock <b>30</b> may thus be accomplished in a single trip into the well.
[0044] The engagement device <b>44</b> is depicted in FIG. 3 as a flange which extends outwardly from the upper end of the tubular string <b>42</b>. The engagement device <b>44</b> includes a backing plate or landing plate <b>60</b> which is received in an opening <b>62</b> formed through a sidewall of a guide structure <b>64</b> of the tubular structure <b>14</b>. Preferably, the opening <b>62</b> is complementarily shaped relative to the plate <b>60</b>, and this complementary engagement maintains the alignment between the tubular string <b>42</b> and the tubular structure <b>14</b>. For example, engagement between the plate <b>60</b> and the opening <b>62</b> supports the upper end of the tubular string <b>42</b>, so that an annular space exists about the upper end of the tubular string for later placement of cement therein.
[0045] The guide structure <b>64</b> is more clearly visible in the enlarged view of FIG. 2. In this view it may also be seen that the opening <b>62</b> includes an elongated slot <b>66</b> at a lower end thereof. Preferably, the plate <b>60</b> includes a downwardly extending tab <b>68</b> (see FIG. 3) which engages the slot <b>66</b> and thereby prevents rotation of the engagement device <b>44</b> relative to the window <b>28</b>.
[0046] The engagement device <b>44</b> is larger in size than the window <b>28</b>, and so the engagement device prevents the tubular string <b>42</b> from being conveyed too far into the branch wellbore <b>40</b>. The engagement device <b>44</b> thus secures the upper end of the tubular string <b>42</b> relative to the tubular structure <b>14</b>. Of course, other types of engagement devices may be used in place of the illustrated flange and backing plate, for example, an orienting profile could be formed on the tubular structure and keys, dogs or lugs could be carried on the tubular string <b>42</b> for engagement therewith to orient and secure the tubular string relative to the tubular structure.
[0047] As depicted in FIG. 3, the engagement device <b>44</b> carries a seal <b>70</b> thereon which circumscribes the opening <b>62</b> and sealingly engages the guide structure <b>64</b>. The guide structure <b>64</b> carries seals <b>72</b>, <b>74</b> thereon which sealingly engage above and below the window <b>28</b>. Thus, the tubular string <b>42</b> is sealed to the tubular structure <b>14</b> so that leakage therebetween is prevented. The seals <b>70</b>, <b>72</b>, <b>74</b>, or any of them, may be elastomer seals, non-elastomer seals, metal to metal seals, expanding seals, and/or seals created by adhesive bonding, such as by using epoxy or another adhesive.
[0048] Referring additionally now to FIG. 4, an enlarged view is representatively illustrated of the method <b>10</b> after the tubular string <b>42</b> is installed in the branch wellbore <b>40</b> and the whipstock <b>30</b> is retrieved from the well. Note that an alternatively constructed engagement device <b>44</b> is illustrated in FIG. 4 which does not include the plate <b>60</b>. Instead, the flange portion of the engagement device <b>44</b> is received in the opening <b>62</b> and the engagement device is sealed to the tubular structure <b>14</b> about the window <b>28</b> using one or more seals <b>76</b>, <b>78</b>, <b>80</b> circumscribing the window. The seal <b>76</b> is an adhesive, the seal <b>78</b> is an o-ring and the seal <b>80</b> is a metal to metal seal.
[0049] To further secure the tubular string <b>42</b> to the tubular structure <b>14</b>, a member <b>82</b> is expanded within the tubular structure using an expansion device <b>84</b>. As depicted in FIG. 4, the member <b>82</b> is a tubular sleeve having an opening <b>86</b> formed through a sidewall thereof. Of course, other expandable member shapes and configurations could be used in keeping with the principles of the invention.
[0050] The opening <b>86</b> is rotationally aligned with an internal flow passage <b>88</b> of the tubular string <b>42</b>, for example, by engaging the expansion device <b>84</b> with the upper profile <b>18</b>. Then, the expansion device <b>84</b> is actuated to displace a wedge or cone go upwardly through the member <b>82</b>, thereby expanding the member outwardly. Such outward expansion also outwardly displaces seals <b>92</b>, <b>94</b>, <b>96</b>, <b>98</b>, <b>100</b> carried on the member.
[0051] The seals <b>94</b>, <b>96</b> sealingly engage the guide structure <b>64</b> above and below the opening <b>62</b>. The seals <b>92</b>, <b>98</b> are metal to metal seals and sealingly engage the tubular structure <b>14</b> above and below the guide structure <b>64</b>. The seal <b>100</b> is an adhesive seal which circumscribes the passage <b>88</b> and sealingly engages the flange portion of the engagement device <b>44</b>. Of course, the seals <b>92</b>, <b>94</b>, <b>96</b>, <b>98</b>, <b>100</b>, or any of them, may be any type of seal, for example, elastomer, non-elastomer, metal to metal, adhesive, etc.
[0052] After the member <b>82</b> is expanded, the expansion device <b>84</b> is retrieved from the well and the tubular string <b>42</b> is cemented within the branch wellbore <b>40</b>. For example, a foamed composition may be injected into the annulus radially between the tubular string <b>42</b> and the branch wellbore <b>40</b>. The foamed composition could expand in the annulus to fill any voids therein, and could expand to fill any voids about the structure <b>14</b> in the wellbore <b>12</b>.
[0053] Note that the engagement device <b>44</b> is retained between the member <b>82</b> and the tubular structure <b>14</b>, thereby preventing upward and downward displacement of the tubular string <b>42</b>. In addition, where metal to metal seals are used, the expansion of the member <b>82</b> maintains a biasing force on these seals to maintain sealing engagement.
[0054] Referring additionally now to FIG. 5, a partial cross-sectional view, taken along line <b>5</b>-<b>5</b> of FIG. 4 is representatively illustrated. In this view, only the tubular string <b>42</b>, tubular structure <b>14</b>, guide structure <b>64</b> and expandable member <b>82</b> cross-sections are shown for clarity of illustration. From FIG. 5, it may be more clearly appreciated how the engagement device <b>44</b> is received in the guide structure <b>64</b>, and how expansion of the member <b>82</b> secures the engagement device in the tubular structure <b>14</b>.
[0055] In addition, note that no separate seals are visible in FIG. 5 for sealing between the engagement device <b>44</b> and the tubular structure <b>14</b> or expansion member <b>82</b>. This is due to the fact that FIG. 5 illustrates an alternate sealing method wherein sealing between the engagement device <b>44</b> and each of the tubular structure <b>14</b> and expansion member <b>82</b> is accomplished by metal to metal contact between these elements.
[0056] Specifically, expansion of the member <b>82</b> causes it to press against an interior surface the engagement device <b>44</b> circumscribing the passage <b>88</b>, which in turn causes an exterior surface of the engagement device to press against an interior surface of the tubular structure <b>14</b> circumscribing the window <b>28</b>. This pressing of one element surface against another when the member <b>82</b> is expanded results in metal to metal seals being formed between the surfaces. However, as mentioned above, any type of seal may be used in keeping with the principles of the invention.
[0057] Referring additionally now to FIGS. 6 and 7, the expansion member <b>82</b> is representatively illustrated in its radially compressed and radially expanded configurations, respectively. In FIG. 6, it may be seen that the expansion member <b>82</b> in its radially compressed configuration has a circumferentially corrugated shape, that is, the member has a convoluted shape about its circumference. In FIG. 7, the member <b>82</b> is radially expanded so that it attains a substantially cylindrical tubular shape, that is, it has a substantially circular cross-sectional shape.
[0058] Referring additionally now to FIGS. <b>8</b>-<b>13</b>, another method <b>10</b> embodying principles of the invention is representatively illustrated. In the method <b>10</b>, a tubular structure <b>112</b> is interconnected in a casing string <b>114</b> and conveyed into a parent wellbore <b>116</b>. The tubular structure <b>112</b> preferably includes a tubular outer shield <b>118</b> outwardly overlying a window <b>120</b> formed through a sidewall of the tubular structure. The shield <b>118</b> is preferably made of a relatively easily drilled or milled material, such as aluminum.
[0059] The shield <b>118</b> prevents cement from flowing outwardly through the window <b>120</b> when the casing string <b>114</b> is cemented in the wellbore <b>116</b>. The shield <b>118</b> also transmits torque through the tubular structure <b>112</b> from above to below the window <b>120</b>, due to the fact that the shield is rotationally secured to the tubular structure above and below the window, for example, by castellated engagement between upper and lower ends of the shield and the tubular structure above and below the window, respectively.
[0060] The tubular structure <b>112</b> is rotationally aligned with a branch wellbore-to be-drilled <b>122</b>, so that the window <b>120</b> faces in the radial direction of the desired branch wellbore. This rotational alignment may be accomplished, for example, by use of a conventional wireline-conveyed direction sensing tool (not shown) engaged with a key or keyway <b>124</b> having a known orientation relative to the window <b>120</b>. Other rotational alignment means may be used in keeping with the principles of the invention.
[0061] In FIG. 9 it may be seen that a work string <b>126</b> is used to convey a mill, drill or other cutting tool <b>128</b>, a whipstock or other deflection device <b>130</b> and an orienting latch or anchor <b>132</b> into the casing string <b>114</b>. The drill <b>128</b> is releasably attached to the whipstock <b>130</b>, for example, by a shear bolt <b>134</b>, thereby enabling the drill and whipstock to be conveyed into the casing string <b>114</b> in a single trip into the well.
[0062] The anchor <b>132</b> is engaged with an anchoring and orienting profile <b>136</b> in the casing string <b>114</b> below the tubular structure <b>112</b>. Such engagement secures the whipstock <b>130</b> relative to the tubular structure <b>112</b> and rotationally orients the whipstock relative to the tubular structure, so that an upper inclined deflection surface <b>138</b> of the whipstock faces toward the window <b>120</b> and the desired branch wellbore <b>122</b>.
[0063] Thereafter, the shear bolt <b>134</b> is sheared (for example, by slacking off on the work string <b>126</b>, thereby applying a downwardly directed force to the bolt), permitting the drill <b>128</b> to be laterally deflected off of the surface <b>138</b> and through the window <b>120</b>. The drill <b>128</b> is used to drill or mill outwardly through the shield <b>118</b>, and to drill the branch wellbore <b>122</b>. Of course, multiple cutting tools and different types of cutting tools may be used for the drill <b>128</b> during this drilling process.
[0064] As depicted in FIG. 9, the casing string <b>114</b> has been cemented within the wellbore <b>116</b> prior to the drilling process. However, it is to be clearly understood that it is not necessary for the tubular structure <b>112</b> to be cemented in the wellbore <b>116</b> at this time. It may be desirable to delay cementing of the casing string <b>114</b>, or to forego cementing of the tubular structure <b>112</b>, as set forth in further detail below.
[0065] In FIG. 10 it may be seen that the branch wellbore <b>122</b> has been drilled extending outwardly from the window <b>120</b> of the tubular structure <b>112</b> by laterally deflecting one or more cutting tools from the parent wellbore <b>116</b> off of the deflection surface <b>138</b> of the whipstock <b>130</b>.
[0066] In FIG. 11 it may be seen that a liner string <b>140</b> is conveyed through the casing string <b>114</b>, and a lower end of the liner string is laterally deflected off of the surface <b>138</b>, through the window <b>120</b>, and into the branch wellbore <b>122</b>. An engagement device <b>142</b> attached at an upper end of the liner string <b>140</b> engages a tubular guide structure <b>144</b> of the tubular structure <b>112</b>, thereby securing the upper end of the liner string to the tubular structure. This engagement between the device <b>142</b> and the structure <b>112</b> forms a load-bearing connection between the casing string <b>114</b> and the liner string <b>140</b>, so that further displacement of the liner string into the branch wellbore <b>122</b> is prevented.
[0067] Engagement between the device <b>142</b> and the structure <b>144</b> may also rotationally secure the device relative to the tubular structure <b>112</b>. For example, the slot <b>66</b> and tab <b>68</b> described above may be used on the device <b>142</b> and structure <b>144</b>, respectively, to prevent rotation of the device in the tubular structure <b>112</b>. Other types of complementary engagement, and other means of rotationally securing the device <b>142</b> relative to the tubular structure <b>112</b> may be used in keeping with the principles of the invention.
[0068] Note that the device <b>142</b> is depicted in FIG. 11 as a radially outwardly extending flange-shaped member which inwardly overlaps the perimeter of the window <b>120</b>. The device <b>142</b> inwardly circumscribes the window <b>120</b> and overlaps its perimeter, so if one or both mating surfaces of the device and tubular structure <b>112</b> are provided with a suitable layer of sealing material (such as an elastomer, adhesive, relatively soft metal, etc.), a seal <b>146</b> may be formed between the device and the tubular structure due to the contact therebetween. The device <b>142</b> may be otherwise shaped, and may be otherwise sealed to the tubular structure <b>112</b> in keeping with the principles of the invention.
[0069] In FIG. 12 it may be seen that the whipstock <b>130</b> and anchor <b>132</b> are retrieved from the well and a generally tubular expandable member <b>148</b> is conveyed into the tubular structure <b>112</b> and expanded therein. For example, the expandable member <b>148</b> may be expanded radially outward using the expansion device <b>84</b>, from a radially compressed configuration (such as that depicted in FIG. 6) to a radially extended configuration (such as that depicted in FIG. 7).
[0070] The member <b>148</b> preferably has an opening <b>150</b> formed through a sidewall thereof when it is conveyed into the structure <b>112</b>. In that case, the opening <b>150</b> is preferably rotationally aligned with the window <b>120</b> (and thus rotationally aligned with an internal flow passage <b>152</b> of the liner string <b>140</b>) prior to the member <b>148</b> being radially expanded. Alternatively, the member <b>148</b> could be conveyed into the structure <b>112</b> without the opening <b>150</b> having previously been formed, then expanded, and then a whipstock or other deflection device could be used to direct a cutting tool to form the opening through the sidewall of the member.
[0071] Note that the method <b>110</b> is illustrated in FIG. 12 as though the casing string <b>114</b> is cemented in the wellbore <b>116</b> at the time the member <b>148</b> is expanded in the structure <b>112</b>. However, the structure <b>112</b> could be cemented in the wellbore <b>116</b> after the member <b>148</b> is expanded therein.
[0072] After being expanded radially outward, the member <b>148</b> preferably has an internal diameter D<b>1</b> which is substantially equal to, or at least as great as, an internal diameter D<b>2</b> of the casing string <b>114</b> above the structure <b>112</b>. Thus, the member <b>148</b> does not obstruct flow or access through the structure <b>112</b>.
[0073] Note that a separate seal is not depicted in FIG. 12 between the member <b>148</b> and the device <b>142</b> or the structure <b>112</b>. Instead, seals <b>154</b>, <b>156</b> between the member <b>148</b> and the structure <b>112</b> above and below the guide structure <b>144</b> are formed by contact between the member <b>148</b> and the structure <b>112</b> when the member is expanded radially outward. For example, one or both mating surfaces of the member <b>148</b> and tubular structure <b>112</b> may be provided with a suitable layer of sealing material (such as an elastomer, adhesive, relatively soft metal, etc.), so that the seals <b>154</b>, <b>156</b> are formed between the member and the tubular structure due to the contact therebetween. The member <b>148</b> may be otherwise sealed to the tubular structure <b>112</b> in keeping with the principles of the invention.
[0074] To enhance sealing contact between the member <b>148</b> and the structure <b>112</b> and/or to ensure sufficient forming of the internal diameter Di, the structure may be expanded radially outward somewhat at the time the member is expanded radially outward, for example, by the expansion device <b>84</b>. This technique may produce some outward elastic deformation in the structure <b>112</b>, so that after the expansion process the structure will be biased radially inward to increase the surface contact pressure between the structure and the member <b>148</b>. Such an expansion technique may be particularly useful where it is desired for the seals <b>154</b>, <b>156</b> to be metal to metal seals. If this expansion technique is used, it may be desirable to delay cementing the structure <b>112</b> in the wellbore <b>116</b> until after the expansion process is completed.
[0075] Similarly, a seal <b>158</b> between the member <b>148</b> and the device <b>142</b> outwardly circumscribing the opening <b>150</b> is formed by contact between the member <b>148</b> and the device when the member is expanded radially outward. For example, one or both mating surfaces of the member <b>148</b> and device <b>142</b> may be provided with a suitable layer of sealing material (such as an elastomer, adhesive, relatively soft metal, etc.), so that the seal <b>158</b> is formed between the member and the device due to the contact therebetween. The member <b>148</b> may be otherwise sealed to the device <b>142</b> in keeping with the principles of the invention. Radially outward deformation of the structure <b>112</b> at the time the member <b>148</b> is expanded radially outward (as described above) may also enhance sealing contact between the member and the device <b>142</b>, particularly where the seal <b>158</b> is a metal to metal seal.
[0076] The expandable member <b>148</b> secures the device <b>142</b> in its engagement with the guide structure <b>144</b>. It will be readily appreciated that inward displacement of the device <b>142</b> is not permitted after the member <b>148</b> has been expanded. Furthermore, in the event that the device <b>142</b> has not yet fully engaged the guide structure <b>144</b> at the time the member <b>148</b> is expanded (for example, the device could be somewhat inwardly disposed relative to the guide structure), expansion of the member will ensure that the device is fully engaged with the guide structure (for example, by outwardly displacing the device somewhat).
[0077] Referring additionally now to FIG. 13, an alternate procedure for use in the method <b>110</b> is representatively illustrated. This alternate procedure may be compared to the illustration provided in FIG. 8. Instead of the outer shield <b>118</b>, the procedure illustrated in FIG. 13 uses an inner generally tubular shield <b>160</b> having an inclined upper surface or muleshoe <b>162</b>. Although no separate seals are shown in FIG. 13, the inner shield <b>160</b> is preferably sealed to the tubular structure <b>112</b> above and below the guide structure <b>144</b>, so that cement or debris in the casing string <b>114</b> is not permitted to flow into the window <b>120</b> from the interior of the structure <b>112</b>. Preferably, the inner shield <b>160</b> is made of metal and is retrievable from within the structure <b>112</b> after the cementing process.
[0078] To prevent cement or debris from flowing into the structure <b>112</b> through the window <b>120</b>, a generally tubular outer shield <b>164</b> outwardly overlies the window. Preferably, the outer shield <b>164</b> is made of a relatively easily drillable material, such as a composite material (e.g., fiberglass, etc.). A fluid <b>166</b> having a relatively high viscosity is contained between the inner and outer shields <b>162</b>, <b>164</b> to provide support for the outer shield against external pressure, and to aid in preventing leakage of external fluids into the area between the shields. A suitable fluid for use as the fluid <b>166</b> is known by the trade name Glcogel.
[0079] The muleshoe <b>162</b> provides a convenient surface for engagement by a conventional wireline-conveyed orienting tool (not shown). Such a tool may be engaged with the muleshoe <b>162</b> and used to rotationally orient the structure <b>112</b> relative to the branch wellbore-to-be-drilled <b>122</b>, since the muleshoe has a known radial orientation relative to the window <b>120</b>.
[0080] After the structure <b>112</b> has been appropriately rotationally oriented, the casing string <b>114</b> may be cemented in the wellbore <b>116</b>, and the inner shield <b>160</b> may then be retrieved from the well. After retrieval of the inner shield <b>160</b>, the method <b>110</b> may proceed as described above, i.e., the whipstock <b>130</b> and anchor <b>132</b> may be installed, etc. Alternatively, the inner shield <b>160</b> may be retrieved prior to cementing the structure <b>112</b> in the wellbore <b>116</b>.
[0081] Referring additionally now to FIGS. <b>14</b>-<b>17</b>, another method <b>170</b> embodying principles of the invention is representatively illustrated. The method <b>170</b> differs from the other methods described above in substantial part in that a specially constructed tubular structure is not necessarily used in a casing string <b>172</b> to provide a window through a sidewall of the string. Instead, a window <b>176</b> is formed through a sidewall of the casing string <b>172</b> using conventional means, such as by use of a conventional whipstock (not shown) anchored and oriented in the casing string according to conventional practice.
[0082] One of the many benefits of the method <b>170</b> is that it may be used in existing wells wherein casing has already been installed. Furthermore, the method <b>170</b> may even be performed in wells in which the window <b>176</b> has already been formed in the casing string <b>172</b>. However, it is to be clearly understood that it is not necessary for the method <b>170</b> to be performed in a well wherein existing casing has already been cemented in place. The method <b>170</b> may be performed in newly drilled or previously uncased wells, and in wells in which the casing has not yet been cemented in place.
[0083] In FIG. 15 it may be seen that a liner string <b>178</b> is conveyed into a branch wellbore <b>180</b> which has been drilled extending outwardly from the window <b>176</b>. At its upper end, the liner string <b>178</b> includes an engagement device <b>182</b> which engages the interior of the casing string <b>172</b> and prevents further displacement of the liner string <b>178</b> into the branch wellbore <b>180</b>. Engagement of the device <b>182</b> with the casing string <b>172</b> may also rotationally align the device with respect to the casing string.
[0084] As depicted in FIG. 15, the device <b>182</b> is a flange extending outwardly from the remainder of the liner string <b>178</b>. The device <b>182</b> inwardly overlies the perimeter of the window <b>176</b> and circumscribes the window. Contact between an outer surface of the device <b>182</b> and an inner surface of the casing string <b>172</b> may be used to provide a seal <b>184</b> therebetween, for example, if one or both of the inner and outer surfaces is provided with a layer of a suitable sealing material, such as an elastomer, adhesive or a relatively soft metal, etc. Thus, the seal <b>184</b> may be a metal to metal seal. Other types of seals may be used in keeping with the principles of the invention.
[0085] In an optional procedure of the method <b>170</b>, the liner string <b>178</b> (or at least the device <b>182</b>) may be in a radially compressed configuration (such as that depicted in FIG. 6) when it is initially installed in the branch wellbore <b>180</b>, and then extended to a radially expanded configuration (such as that depicted in FIG. 57) thereafter. This expansion of the liner string <b>178</b>, or at least expansion of the device <b>182</b>, may be used to bring the device into sealing contact with the casing string <b>172</b>.
[0086] In FIG. 16 it may be seen that a generally tubular expandable member <b>186</b> is conveyed into the casing string <b>172</b> and aligned longitudinally with the device <b>182</b>. The member <b>186</b> has an opening <b>188</b> formed through a sidewall thereof.
[0087] The opening <b>188</b> is rotationally aligned with the window <b>176</b> (and thus aligned with a flow passage <b>190</b> of the liner string <b>178</b>).
[0088] However, it is not necessary for the opening <b>188</b> to be formed in the member <b>186</b> prior to conveying the member into the well, or for the opening to be aligned with the window <b>176</b> at the time it is positioned opposite the device <b>182</b>. For example, the opening <b>188</b> could be formed after the member <b>186</b> is installed in the casing string <b>172</b>, such as by using a whipstock or other deflection device to direct a cutting tool to cut the opening laterally through the sidewall of the member.
[0089] As depicted in FIG. 16, the member <b>186</b> has an outer layer of a suitable sealing material <b>192</b> thereon. The sealing material <b>192</b> may be any type of material which may be used to form a seal between surfaces brought into contact with each other. For example, the sealing material <b>192</b> may be an elastomer, adhesive or relatively soft metal, etc. Other types of seals may be used in keeping with the principles of the invention.
[0090] In FIG. 17 it may be seen that the member <b>186</b> is expanded radially outward, so that it now contacts the interior of the casing string <b>172</b> and the device <b>182</b>. Preferably, such contact results in sealing engagement between the member <b>186</b> and the interior surface of the casing string <b>172</b>, and between the member and the device <b>182</b>.
[0091] Specifically, the sealing material <b>192</b> seals between the member <b>186</b> and the casing string <b>172</b> above, below and circumscribing the device <b>182</b>. The sealing material <b>192</b> also seals between the member <b>186</b> and the device <b>182</b> around the outer periphery of the opening <b>188</b>, that is, sealing engagement between the device <b>182</b> and the member <b>186</b> circumscribes the opening <b>188</b>. Thus, the interiors of the casing and liner strings <b>172</b>, <b>178</b> are completely isolated from the wellbores <b>174</b>, <b>180</b> external to the strings. This substantial benefit of the method <b>170</b> is also provided by the other methods described herein.
[0092] As depicted in FIG. 17, the casing string <b>172</b> is outwardly deformed when the member <b>186</b> is radially outwardly expanded therein. At least some elastic deformation, and possibly some plastic deformation, of the casing string <b>172</b> outwardly overlying the member <b>186</b> is experienced, thereby recessing the member into the interior wall of the casing string.
[0093] As a result, the inner diameter D<b>3</b> of the member <b>186</b> is substantially equal to, or at least as great as, the inner diameter D<b>4</b> of the casing string <b>172</b> above the window <b>176</b>. Preferably, during the expansion process, the inner diameter D<b>3</b> of the member <b>186</b> is enlarged until it is greater than the inner diameter D<b>4</b> of the casing string <b>172</b>, so that after the expansion force is removed, the diameter D<b>3</b> will relax to a dimension no less than the diameter D<b>4</b>.
[0094] Thus, the method <b>170</b> does not result in substantial restriction of flow or access through the casing string <b>172</b>. This substantial benefit of the method <b>170</b> is also provided by other methods described herein.
[0095] Outward elastic deformation of the casing string <b>172</b> in the portions thereof overlying the member <b>186</b> is desirable in that it inwardly biases the casing string, increasing the contact pressure between the mating surfaces of the member and the casing string, thereby enhancing the seal therebetween, after the member has been expanded. However, it is to be clearly understood that it is not necessary, in keeping with the principles of the invention, for the casing string <b>172</b> to be outwardly deformed, since the member <b>186</b> may be expanded radially outward into sealing contact with the interior surface of the casing string without deforming the casing string at all.
[0096] When the member <b>186</b> is expanded, it also outwardly displaces the device <b>182</b>. This outward displacement of the device <b>182</b> further outwardly deforms the casing string <b>172</b> where it overlies the device. Elastic deformation of the casing string <b>172</b> overlying the device <b>182</b> is desirable in that it results in inward biasing of the casing string when the expansion force is removed. This enhances the seal <b>184</b> between the device <b>182</b> and the casing string <b>172</b>, and further increases the contact pressure on the sealing material between the device <b>182</b> and the member <b>186</b>.
[0097] The method <b>170</b> is depicted in FIG. 17 as though the casing string <b>172</b> is not yet cemented in the parent wellbore <b>174</b> at the time the member <b>186</b> is expanded therein. This alternate order of steps in the method <b>170</b> may be desirable in that it may facilitate outward deformation of the casing string <b>172</b> above and below the window <b>176</b>. The casing and/or liner strings <b>172</b>, <b>178</b> may be cemented in the respective wellbores <b>174</b>, <b>180</b> after the member <b>186</b> is expanded.
[0098] Referring additionally now to FIGS. <b>18</b>-<b>20</b>, another method <b>200</b> embodying principles of the invention is representatively illustrated. In FIG. 18 it may be seen that a tubular structure <b>202</b> is cemented in a parent wellbore <b>204</b> at an intersection with a branch wellbore <b>206</b>. However, it is not necessary for the tubular structure <b>202</b> to be cemented in the wellbore <b>204</b> until later in the method <b>200</b>, if at all.
[0099] The structure <b>202</b> is interconnected in a casing string <b>208</b>. The casing string <b>208</b> is rotationally oriented in the wellbore <b>204</b> so that a window <b>210</b> formed through a sidewall of the structure <b>202</b> is aligned with the branch wellbore <b>206</b>. Note that the window may be formed through the sidewall of the structure <b>202</b>, and that the branch wellbore <b>206</b> may be drilled, either before or after the structure is conveyed into the wellbore <b>204</b>.
[0100] A liner string <b>212</b> is conveyed into the branch wellbore <b>206</b> in a radially compressed configuration. Even though it is radially compressed, a flange-shaped engagement device <b>214</b> at an upper end of the liner string <b>212</b> is larger than the window <b>210</b>, and so the device prevents further displacement of the liner string into the wellbore <b>206</b>. Preferably, this engagement between the device <b>214</b> and the structure <b>202</b> is sufficiently load-bearing so that it may support the liner string <b>212</b> in the wellbore <b>206</b>.
[0101] An annular space <b>216</b> is provided radially between the device <b>214</b> and an opening <b>218</b> formed through the sidewall of a guide structure <b>220</b>. When the liner string <b>212</b> is expanded, the device <b>214</b> deforms radially outwardly into the annular space <b>216</b>. The liner string <b>212</b> is shown in its expanded configuration in FIG. 19.
[0102] As depicted in FIG. 20, a generally tubular expandable member <b>222</b> is radially outwardly expanded within the structure <b>202</b>. An opening <b>224</b> formed through a sidewall of the member <b>222</b> is rotationally aligned with a flow passage of the liner string <b>212</b>. The opening <b>224</b> may be formed before or after the member <b>222</b> is expanded.
[0103] Preferably, this expansion of the member <b>222</b> seals between the outer surface of the member and the inner surface of the structure <b>202</b> above and below the guide structure <b>220</b>, and seals between the member and the device <b>214</b>. Thus, the interiors of the casing and liner strings <b>208</b>, <b>212</b> are isolated from the wellbores <b>204</b>, <b>206</b> external to the strings. Alternatively, or in addition, a seal may be formed between the device <b>214</b> and the structure <b>202</b> circumscribing the window <b>210</b> where the structure outwardly overlies the device.
[0104] Preferably the seals obtained by expansion of the member <b>222</b> are due to surface contact between elements, at least one of which is displaced in the expansion process. For example, one of both of the member <b>222</b> and structure <b>202</b> may have a layer of sealing material (e.g., a layer of elastomer, adhesive, or soft metal, etc.) thereon which is brought into contact with the other element when the member is expanded. Metal to metal seals are preferred, although other types of seals may be used in keeping with the principles of the invention.
[0105] As depicted in FIG. 20, the tubular structure <b>202</b>, and the casing string <b>208</b> somewhat above and below the structure, are radially outwardly expanded when the member <b>222</b> is expanded. This optional step in the method <b>200</b> may be desirable to enhance access and/or flow through the structure <b>202</b>, enhance sealing contact between any of the member <b>222</b>, device <b>214</b>, structure <b>202</b>, etc. If the casing string <b>208</b> is outwardly deformed in the method <b>200</b>, it may be desirable to cement the casing string in the wellbore <b>204</b> after the expansion process is completed.
[0106] Referring additionally now to FIGS. <b>21</b>-<b>25</b> another method <b>230</b> embodying principles of the invention is representatively illustrated. As depicted in FIG. 21, an expandable liner string <b>232</b> is conveyed through a casing string <b>234</b> positioned in a parent wellbore <b>236</b>. A lower end of the liner string <b>232</b> is deflected laterally through a window <b>237</b> formed through a sidewall of a tubular structure <b>238</b> interconnected in the casing string <b>234</b>, and into a branch wellbore <b>240</b> extending outwardly from the window.
[0107] An expandable liner hanger <b>242</b> is connected at an upper end of the liner string <b>232</b>. The liner hanger <b>242</b> is positioned within the casing string <b>234</b> above the window <b>237</b>.
[0108] The liner string <b>232</b> is then expanded radially outward as depicted in FIG. 22. As a result of this expansion process, the liner hanger <b>242</b> sealingly engages between the liner string <b>232</b> and the casing string <b>234</b>, and anchors the liner string relative to the casing string. Another result of the expansion process is that a seal is formed between the liner string and the window <b>237</b> of the structure <b>238</b>. Thus, the interiors of the casing and liner strings <b>232</b>, <b>234</b> are isolated from the wellbores <b>236</b>, <b>240</b> external to the strings. The seal formed between the liner string <b>232</b> and the window <b>237</b> is preferably a metal to metal seal, although other types of seals may be used in keeping with the principles of the invention.
[0109] A portion <b>244</b> of the liner string <b>232</b> extends laterally across the interior of the casing string <b>234</b> above a deflection device <b>246</b> positioned below the window <b>237</b>. As depicted in FIG. 23, a milling or drilling guide <b>248</b> is used to guide a drill, mill or other cutting tool <b>250</b> to cut through the sidewall of the liner string <b>232</b> at the portion <b>244</b> above the deflection device <b>246</b>. In this manner, access and flow between the casing string <b>234</b> above and below the liner portion <b>244</b> through an internal flow passage <b>252</b> of the deflection device <b>246</b> is provided.
[0110] Alternatively, the liner portion <b>244</b> may have an opening <b>254</b> formed therethrough. The opening <b>254</b> may be formed, for example, by waterjet cutting through the sidewall of the liner string <b>232</b>. The opening <b>254</b> may be formed before or after the liner string <b>232</b> is conveyed into the well.
[0111] Preferably, the opening <b>254</b> is formed with a configuration such that it has multiple flaps or inward projections <b>256</b> which may be folded to increase the inner dimension of the opening, e.g., to enlarge the opening for enhanced access and flow therethrough. As depicted in FIG. 25, the projections <b>256</b> are folded over by use of a drift or punch <b>258</b>, thereby enlarging the opening <b>254</b> through the liner portion <b>244</b>.
[0112] The projections <b>256</b> are thus displaced into the passage <b>252</b> of the deflection device <b>246</b> below the liner string <b>232</b>. A seal may be formed between the liner portion <b>244</b> and the deflection device <b>246</b> circumscribing the opening <b>254</b> in this process of deforming the projections <b>256</b> downward into the passage <b>252</b>. Preferably, the seal is due to metal to metal contact between the liner portion <b>244</b> and the deflection device <b>246</b>, but other types of seals may be used in keeping with the principles of the invention.
[0113] Referring additionally now to FIGS. 26 & 27, another method <b>260</b> of sealing and securing a liner String <b>262</b> in a branch wellbore to a tubular structure <b>264</b> interconnected in a casing string in a parent wellbore is representatively illustrated. Only the structure <b>264</b> and liner string <b>262</b> are shown in FIG. 26 for illustrative clarity.
[0114] In FIG. 26 it may be seen that the liner string <b>262</b> is positioned so that it extends outwardly through a window <b>266</b> formed through a sidewall of the structure <b>264</b>. The liner string <b>262</b> would, for example, extend into a branch wellbore intersecting the parent wellbore in which the structure <b>264</b> is positioned.
[0115] An upper end <b>268</b> of the liner string <b>262</b> remains within the tubular structure <b>264</b>. To secure the liner string <b>262</b> in this position, a packer or other anchoring device interconnected in the liner string may be set in the branch wellbore, or a lower end of the liner string may rest against a lower end of the branch wellbore, etc. Any method of securing the liner string <b>262</b> in this position may be used in keeping with the principles of the invention.
[0116] As depicted in FIG. 26, the upper end <b>268</b> is formed so that it is parallel with a longitudinal axis of the structure <b>264</b>. The upper end <b>268</b> may be formed in this manner prior to conveying the liner string <b>262</b> into the well, or the upper end may be formed after the liner string is positioned as shown in FIG. 26, for example, by milling an upper portion of the liner string after it is secured in position. If the upper end <b>268</b> is formed prior to conveying the liner string <b>262</b> into the well, then the upper end may be rotationally oriented relative to the structure <b>264</b> prior to securing the liner string <b>262</b> in the position shown in FIG. 26.
[0117] In FIG. 27 it may be seen that the upper end <b>268</b> of the liner string <b>262</b> is deformed radially outward so that it is received in an opening <b>270</b> formed through the sidewall of a generally tubular guide structure <b>272</b> in the tubular structure <b>264</b>. The opening <b>270</b> is rotationally aligned with the window <b>266</b>.
[0118] The upper end <b>268</b> is deformed outward by means of a mandrel <b>274</b> which is conveyed into the structure <b>264</b> and deflected laterally toward the upper end of the liner string <b>262</b> by a deflection device <b>276</b>. The mandrel <b>274</b> shapes the upper end <b>268</b> so that it becomes an outwardly extending flange which overlaps the interior of the structure <b>264</b> circumscribing the window <b>266</b>, that is, the flange-shaped upper end <b>268</b> inwardly overlies the perimeter of the window.
[0119] Preferably, a seal is formed between the flange-shaped upper end <b>268</b> and the interior surface of the structure <b>264</b> circumscribing the window <b>266</b>. This seal may be a metal to metal seal, may be formed by a layer of sealing material on one or both of the upper end <b>268</b> and the structure <b>264</b>, etc. Any type of seal may be used in keeping with the principles of the invention.
[0120] The flange-shaped upper end <b>268</b> also secures the liner string <b>262</b> to the structure <b>264</b> in that it prevents further outward displacement of the liner string through the window <b>266</b>. After the deforming process is completed, the mandrel <b>274</b> and deflection device <b>276</b> may be retrieved from within the structure <b>264</b> and a generally tubular expandable member (not shown) may be positioned in the structure and expanded therein. For example, any of the expandable members <b>82</b>, <b>148</b>, <b>186</b>, <b>222</b> described above may be used.
[0121] After expansion of the member in the structure <b>264</b>, the member further secures the liner string <b>262</b> relative to the structure by preventing inward displacement of the liner string through the window <b>266</b>. Various seals may also be formed between the expanded member and the structure <b>264</b>, the flange-shaped upper end <b>268</b>, and/or the guide structure <b>272</b>, etc. as described above. Any types of seals may be used in keeping with the principles of the invention.
[0122] Referring additionally now to FIGS. 28 & 29, another method <b>280</b> of sealing and securing a liner string <b>282</b> in a branch wellbore to a tubular structure <b>284</b> interconnected in a casing string in a parent wellbore is representatively illustrated. In FIG. 28 a generally tubular expandable member <b>286</b> used in the method <b>280</b> is shown. The member <b>286</b> has a specially configured opening <b>288</b> formed through a sidewall thereof. The opening <b>288</b> may be formed, for example, by waterjet cutting, either before or after it is conveyed into the well.
[0123] The configuration of the opening <b>288</b> provides multiple inwardly extending flaps or projections <b>290</b> which may be folded to enlarge the opening. As depicted in FIG. 29, the opening <b>288</b> has been enlarged by folding the projections <b>290</b> outward into the interior of the upper end of the liner string <b>282</b>. The projections <b>290</b> are deformed outward, for example, by a mandrel and deflection device such as the mandrel <b>274</b> and deflection device <b>276</b> described above, but any means of deforming the projections into the liner string <b>282</b> may be used in keeping with the principles of the invention.
[0124] The projections <b>290</b> are deformed outward after the member <b>286</b> is positioned within the structure <b>284</b>, the opening <b>288</b> is rotationally aligned with a window <b>292</b> formed through a sidewall of the structure, and the member is expanded radially outward. Of course, if the opening <b>288</b> is formed after the member <b>286</b> is expanded in the structure <b>284</b>, then the rotational alignment step occurs when the opening is formed.
[0125] Expansion of the member <b>286</b> secures an upper flange-shaped engagement device <b>294</b> relative to the structure <b>284</b>. Seals may be formed between the member <b>286</b>, structure <b>284</b>, engagement device <b>294</b> and/or a guide structure <b>296</b>, etc. as described above. Any types of seals may be used in keeping with the principles of the invention.
[0126] Furthermore, deformation of the projections <b>290</b> into the liner string <b>282</b> may also form a seal between the member <b>286</b> and the liner string about the opening <b>288</b>. For example, a metal to metal seal may be formed by contact between an exterior surface of the member <b>286</b> and an interior surface of the liner string <b>282</b> when the projections <b>290</b> are deformed into the liner string. Other types of seals may be used in keeping with the principles of the invention.
[0127] Preferably, the projections <b>290</b> are deformed into an enlarged inner diameter D<b>5</b> of the liner string <b>282</b>. This prevents the projections <b>290</b> from unduly obstructing flow and access through an inner passage <b>298</b> of the liner string <b>282</b>.
[0128] Referring additionally now to FIG. 30, another method <b>300</b> of sealing and securing a liner string <b>302</b> in a branch wellbore to a tubular structure <b>304</b> interconnected in a casing string in a parent wellbore is representatively illustrated. The method <b>300</b> is similar to the method <b>280</b> in that it uses an expandable tubular member, such as the member <b>286</b> having a specially configured opening <b>288</b> formed through its sidewall. However, in the method <b>300</b>, the member <b>286</b> is positioned and expanded radially outward within the structure <b>304</b> prior to installing the liner string <b>302</b> in the branch wellbore through a window <b>306</b> formed through a sidewall of the structure.
[0129] Expansion of the member <b>286</b> within the structure <b>304</b> preferably forms a seal between the outer surface of the member and the inner surface of the structure, at least circumscribing the window <b>306</b>, and above and below the window. The seal is preferably a metal to metal seal, but other types of seals may be used in keeping with the principles of the invention.
[0130] After the member <b>286</b> has been expanded within the structure <b>304</b>, the projections <b>290</b> are deformed outward through the window <b>306</b>. This outward deformation of the projections <b>290</b> may result in a seal being formed between the inner surface of the window <b>306</b> and the outer surface of the member <b>286</b> circumscribing the opening <b>288</b>. Preferably the seal is a metal to metal seal, but any type of seal may be used in keeping with the principles of the invention.
[0131] After the projections <b>290</b> are deformed outward through the window <b>306</b>, the liner string <b>302</b> is conveyed into the well and its lower end is deflected through the window <b>306</b> and the opening <b>288</b>, and into the branch wellbore. The vast majority of the liner string <b>302</b> has an outer diameter D<b>6</b> which is less than an inner diameter D<b>7</b> through the opening <b>288</b> and, therefore, passes through the opening with some clearance therebetween. However, an upper portion <b>308</b> of the liner string <b>302</b> has an outer diameter D<b>8</b> which is preferably at least as great as the inner diameter D<b>7</b> of the opening <b>288</b>. If the diameter D<b>8</b> is greater than the diameter D<b>7</b>, some additional downward force may be needed to push the upper portion <b>308</b> of the liner string <b>302</b> through the opening <b>288</b>. In this case, the liner upper portion <b>308</b> may further outwardly deform the projections <b>290</b>, thereby enlarging the opening <b>288</b>, as it is pushed through the opening.
[0132] Contact between the outer surface of the liner upper portion <b>308</b> and the inner surface of the opening <b>288</b> may cause a seal to be formed therebetween circumscribing the opening. Preferably, the seal is a metal to metal seal, but other seals may be used in keeping with the principles of the invention. An upper end <b>310</b> of the liner string <b>302</b> may be cut off as shown in FIG. 30, so that it does not obstruct flow or access through the structure <b>304</b>. Alternatively, the upper end <b>310</b> may be formed prior to conveying the liner string <b>302</b> into the well.
[0133] Referring additionally now to FIGS. <b>31</b>-<b>35</b>, another method <b>320</b> embodying principles of the invention is representatively illustrated. In FIG. 31 it may be seen that a liner string <b>322</b> is conveyed through a casing string <b>324</b> in a parent wellbore <b>326</b>, and a lower end of the liner string is deflected laterally through a window <b>330</b> formed through a sidewall of the casing string, and into a branch wellbore <b>328</b>. The casing string <b>324</b> may or may not be cemented in the parent wellbore <b>326</b> at the time the liner string <b>322</b> is installed in the method <b>320</b>.
[0134] The liner string <b>322</b> includes a portion <b>332</b> which has an opening <b>334</b> formed through a sidewall thereof. In addition, an external layer of sealing material <b>336</b> is disposed on the liner portion <b>332</b>. The sealing material <b>336</b> may be, for example, an elastomer, an adhesive, a relatively soft metal, or any other type of sealing material. Preferably, the sealing material <b>336</b> outwardly circumscribes the opening <b>334</b> and extends circumferentially about the liner portion <b>332</b> above and below the opening.
[0135] The liner string <b>322</b> is positioned as depicted in FIG. 31, with the liner portion <b>332</b> extending laterally across the interior of the casing string <b>324</b> and the opening <b>334</b> facing downward. However, it is to be clearly understood that it is not necessary for the opening <b>334</b> to exist in the liner portion <b>332</b> prior to the liner string <b>322</b> being conveyed into the well. Instead, the opening <b>334</b> could be formed downhole, for example, by using a cutting tool and guide, such as the cutting tool <b>250</b> and guide <b>248</b> described above. As another alternative, the opening <b>334</b> may be specially configured (such as the opening <b>254</b> depicted in FIG. 24), and then enlarged (as depicted for the opening <b>254</b> in FIG. 25).
[0136] In FIG. 32 it may be seen that the liner string <b>322</b> is expanded radially outward. Preferably, at least the liner portion <b>332</b> is expanded, but the remainder of the liner string <b>322</b> may also be expanded. Due to expansion of the liner portion <b>332</b>, the outer surface of the liner portion contacts and seals against the inner surface of the window <b>330</b> circumscribing the window. The seal between the liner portion <b>332</b> and the window <b>330</b> is facilitated by the sealing material <b>336</b> contacting the inner surface of the window. However, the seal could be formed by other means, such as metal to metal contact between the liner portion <b>332</b> and the window <b>330</b>, without use of the sealing material <b>336</b>, in keeping with the principles of the invention.
[0137] In FIG. 33 it may be seen that the opening <b>334</b> is expanded to provide enhanced flow and access between the interior of the casing string <b>324</b> below the window <b>330</b> and the interior of the liner string <b>322</b> above the window. Expansion of the opening <b>334</b> also results in a seal being formed between the exterior surface of the liner portion <b>332</b> circumscribing the opening <b>334</b> and the interior of the casing string <b>324</b>. At this point, it will be readily appreciated that the interiors of the casing and liner strings <b>324</b>, <b>322</b> are isolated from the wellbores <b>326</b>, <b>328</b> external to the strings.
[0138] Additional steps in the method <b>320</b> may be used to further seal and secure the connection between the liner and casing strings <b>322</b>, <b>324</b>. In FIG. 34 it may be seen that the liner string <b>322</b> within the casing string <b>324</b> is further outwardly expanded so that it contacts and radially outwardly deforms the casing string. The opening <b>334</b> is also further expanded, and a portion <b>338</b> of the liner string <b>322</b> may be deformed downwardly into the casing string <b>324</b> as the opening is expanded.
[0139] This further expansion of the liner string <b>322</b>, including the opening <b>334</b>, in the casing string <b>324</b> produces several desirable benefits. The liner string <b>322</b> is recessed into the inside wall of the casing string <b>324</b>, thereby providing an inner diameter D<b>9</b> in the liner string which is preferably substantially equal to, or at least as great as, an inner diameter D<b>10</b> of the casing string <b>324</b> above the window <b>330</b>. The seal between the outer surface of the liner string <b>322</b> circumscribing the opening <b>334</b> and the inner surface of the casing string <b>324</b> is enhanced by increased contact pressure therebetween. In addition, another seal may be formed between the outer surface of the liner string <b>322</b> and the inner surface of the casing string <b>324</b> above the window <b>330</b>. Furthermore, the downward deformation of the portion <b>338</b> into the casing string <b>324</b> below the window <b>330</b> enhances the securement of the liner string <b>322</b> to the casing string. As described above, outward elastic deformation of the casing string <b>324</b> may be desirable to induce an inwardly biasing force on the casing string when the expansion force is removed, thereby maintaining a relatively high level of contact pressure between the casing and liner strings <b>324</b>, <b>322</b>.
[0140] In FIG. 35 it may be seen that a generally tubular expandable member <b>340</b> having an opening <b>342</b> formed through a sidewall thereof is positioned within the casing string <b>324</b> with the opening <b>342</b> rotationally aligned with the window <b>330</b> and, thus, with a flow passage <b>344</b> of the liner string <b>322</b>. The member <b>340</b> extends above and below the liner string <b>322</b> in the casing string <b>324</b> and extends through the opening <b>334</b>. The member <b>340</b> is then expanded radially outward within the casing string <b>324</b>.
[0141] Expansion of the member <b>340</b> further secures the connection between the liner and casing strings <b>322</b>, <b>324</b>. Seals may be formed between the outer surface of the member <b>340</b> and the interior surface of the casing string <b>324</b> above and below the liner string <b>322</b>, and the inner surface of the liner string in the casing string. The seals are preferably formed due to contact between the member <b>340</b> outer surface and the casing and liner strings <b>324</b>, <b>322</b> inner surfaces. For example, the seals may be metal to metal seals. The seals may be formed due to a layer of sealing material on the member <b>340</b> outer surface and/or the casing and liner strings <b>324</b>, <b>322</b> inner surfaces. However, any types of seals may be used in keeping with the principles of the invention.
[0142] The member <b>340</b> may be further expanded to further outwardly deform the casing string <b>324</b> where it overlies the member, in a manner similar to that used to expand the member <b>186</b> in the method <b>170</b> as depicted in FIG. 17. In that way, the member <b>340</b> may be recessed into the inner wall of the casing string <b>324</b> and the inner diameter D<b>11</b> of the member may be enlarged so that it is substantially equal to, or at least as great as, the inner diameter D<b>10</b> of the casing string. Due to outward deformation of the casing string <b>324</b> in the method <b>320</b>, whether or not the member <b>340</b> is recessed into the inner wall of the casing string, it may be desirable to delay cementing of the casing string in the parent wellbore <b>326</b> until after the expansion process is completed.
[0143] Thus have been described the methods <b>10</b>, <b>110</b>, <b>170</b>, <b>200</b>, <b>230</b>, <b>260</b>, <b>280</b>, <b>300</b>, <b>320</b> which provide improved connections between tubular strings in a well. It should be understood that openings and windows formed through sidewalls of tubular members and structures described herein may be formed before or after the tubular members and structures are conveyed into a well. Also, it should be understood that casing and/or liner strings may be cemented in parent or branch wellbores at any point in the methods described above.
[0144] Of course, a person skilled in the art would, upon a careful consideration of the above description of representative embodiments of the invention, readily appreciate that many modifications, additions, substitutions, deletions, and other changes may be made to these specific embodiments, and such changes are contemplated by the principles of the present invention. For example, although certain seals have been described above as being carried on one element for sealing engagement with another element, it will be readily appreciated that seals may be carried on either or neither element. 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 present invention being limited solely by the appended claims and their equivalents.
Contents3
34 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8 Sheet 9 Sheet 10 Sheet 11 Sheet 12 Sheet 13 Sheet 14 Sheet 15 Sheet 16 Sheet 17 Sheet 18 Sheet 19 Sheet 20 Sheet 21 Sheet 22 Sheet 23 Sheet 24 Sheet 25 Sheet 26 Sheet 27 Sheet 28 Sheet 29 Sheet 30 Sheet 31 Sheet 32 Sheet 33 Sheet 34
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Numbers
- Publication, DOCDB
- 2003192717
- Publication, EPODOC
- US2003192717
- Application
- 10122424
- Application, DOCDB
- 12242402
- Application, EPODOC
- US20020122424
Titles
- English
- Sealed multilateral junction system
Patent term adjustment
- A delay
- +284 daysthe office missed an examination deadline
- Applicant delay
- −8 days
- Net adjustment
- 276 days
Classification
- CPC, 2
- E21B41/0042
- E21B43/103
- IPC, 2
- E21B41 00
- E21B43 10
- USPC, 5
- 175061000
- 166050000
- 166117500
- 166206000
- 166313000