Retention system and method for liner hanger slips
Patent Information
- Application Number
- DE602021036683
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-01-28
- Filing Date
- 2021-01-28
- Publication Date
- 2025-08-20
- Estimated Expiration
- 2041-01-28
AI Technical Summary
Existing liner hanger systems face challenges in securely retaining slips during the running-in-hole process, particularly when encountering larger casings, leading to potential loss and mis-run issues.
A system comprising a mandrel, cone, tapered slips, retention ring, and hydraulic actuator that utilizes interlocking V-angles and a cylinder to securely retain slips by preventing radial and axial decoupling, ensuring they remain engaged with the cone and retention ring until actuated into a set position.
Ensures slips are securely retained during deployment, preventing loss and enabling retrieval in case of mis-run, while effectively distributing hanging loads through slip-cone interfaces.
Description
BACKGROUND
[0001] In many well applications, a wellbore is drilled and a casing string is deployed along the wellbore. A liner hanger may then be used to suspend a liner downhole within the casing string. The liner hanger may be hydraulically operated via a hydraulic cylinder to set hanger slips. Once the liner hanger is run-in-hole and positioned properly, the hanger slips are set against the surrounding casing string. The set slips are responsible for ensuring sufficient gripping of the surrounding casing string to hold the weight of the liner and to hold against mechanical and hydraulic loads applied to the system. While the liner hanger is run-in-hole, however, the slips should remain in a radially contracted position to avoid premature setting and / or loss of the hanger slips.
[0002] US 4750563 A describes a slip gripping mechanism for supporting a string of cylindrical conduit within the interior bore of a circumscribing well conduit. A cone retaining ring engages a plurality of floating cone segments which define spaced longitudinal slots on the outside of the cylindrical conduit. Vertically shiftable slips are carried in spaced-apart fashion on the cylindrical conduit and have side edges adapted to engage mating profiles formed in the slots. The slots form guideways for the slips for shifting the slips upwardly and outwardly between a set position engaging the circumscribing conduit and an unset position. Selected ones of the slips and cone segments are tapered to index the slips and facilitate alignment within the slots as the slips are brought into contact with the cones during the setting operation. WO2006 / 023952 A1 describes a packer assembly including one or more anchors for securing the packer in a wellbore and a pair of seal elements that form a fluid seal. The packer assembly is secured within the wellbore by a staged setting process through use of shear pins that have increasingly stepped shear values. WO2017 / 030787 A1 describes a technique for bi-directionally anchoring a liner in a borehole. A liner hanger and a liner are deployed downhole into a borehole and a wellbore anchoring device of the liner hanger is initially actuated to engage a surrounding surface and to resist downward movement of the liner. Additionally, a hold down anchor is subsequently actuated to resist upward movement of the liner. The hold down anchor may be released via mechanical manipulation of the liner hanger. WO 2017 / 053651 A1 describes a technique facilitating use of a liner hanger in a wide variety of environments by distributing loading. The liner hanger comprises a liner hanger cone having a plurality of slots for receiving corresponding pipe-gripping slips. The slip slots and the corresponding pipe-gripping slips are staggered both longitudinally and circumferentially to distribute loading. An actuator is used to shift the slips into gripping engagement with a surrounding pipe, e.g. casing, to improve the load distribution on the surrounding pipe and liner hanger cone once the liner is supported.SUMMARY
[0003] In general, a system and methodology are provided for deploying and setting a liner hanger assembly while securely retaining the slips during running-in-hole. The present invention resides in a system for use in a well as defined in claim 1 and a method as defined in claim 6. Preferred embodiments are defined in the dependent claims.
[0004] However, many modifications are possible without materially departing from the teachings of this disclosure. Accordingly, such modifications are possible so long as they fall within the scope of the invention as defined in the claims.BRIEF DESCRIPTION OF THE DRAWINGS
[0005] Certain embodiments of the disclosure will hereafter be described with reference to the accompanying drawings, wherein like reference numerals denote like elements. It should be understood, however, that the accompanying figures illustrate the various implementations described herein and are not meant to limit the scope of various technologies described herein, and: Figure 1 is an illustration of an example of a liner hanger deployed in a borehole, e.g. a wellbore, during running-in-hole, according to an embodiment of the disclosure; Figure 2 is an illustration of the liner hanger shown in Figure 1 but in a set position, according to an embodiment of the disclosure; Figure 3 is an illustration of a portion of the liner hanger showing a hanging load distributed along slip-cone interfaces once the liner hanger is set and the liner is suspended from the surrounding casing, according to an embodiment of the disclosure; Figure 4 is an orthogonal view of an example of a hanger slip, according to an embodiment of the disclosure; Figure 5 is an orthogonal view of an example of a retention ring constructed to retain the hanger slips, according to an embodiment of the disclosure; Figure 6 is an illustration of an example of an upper end of the hanger slip engaged with the cone and shown in the set position, according to an embodiment of the disclosure; and Figure 7 is an illustration of an example of a lower end of the hanger slip engaged with the retention ring and shown in the set position, according to an embodiment of the disclosure. DETAILED DESCRIPTION
[0006] In the following description, numerous details are set forth to provide an understanding of some embodiments of the present disclosure. However, it will be understood by those of ordinary skill in the art that the system and / or methodology may be practiced without these details and that numerous variations or modifications from the described embodiments may be possible.
[0007] The disclosure herein generally involves a system and methodology for deploying and setting a liner hanger assembly while securely retaining the slips during running-in-hole. A slip package combines slips and a cone in a manner which ensures the slips are fully retained: while running-in-hole; and in the event the liner hanger is inadvertently set in, for example, a larger casing such as a riser. The improved slip retention ensures the slips are not lost during operations and that the liner hanger can be retrieved in the event of a mis-run.
[0008] According to an embodiment, the liner hanger assembly comprises a variety of components including a mandrel, a cone, a plurality of tapered slips, a retention ring, and an actuator, e.g. a hydraulic actuator cylinder. The slips are each configured with an upper retention end and a lower retention end having a plurality of angles which interlock with corresponding angles of the cone and the retention ring. Additionally, a portion of the actuator / hydraulic cylinder may be sized to slide over an axial end of the retention ring to prevent inadvertent decoupling of the slips after installing the slips along the exterior of the cone.
[0009] By employing a unique combination of angles along the interacting components, the slips are securely retained when an upper end of each slip is engaged with the cone and a lower end of each slip is engaged with mating features of a retention ring. According to one embodiment, the combination of differing angles may be in the form of V-angles located at a top end of the slip. These V-angles interact with complementary (equal and opposite) V-angles defining a portion of the cone slot which receives the slip. Similarly, V-angles located at a bottom end of the slip are oriented to interact with complementary (equal and opposite) V-angles located along fingers of the retention ring.
[0010] Additionally, a properly sized diameter or other suitable feature of a cylinder may be slid over a portion of the retention ring to limit axial motion of the slips once installed along the exterior of the cone. Accordingly, the interacting V-angles of corresponding components (e.g. slips, cone, retention ring) prevent the slips from coming loose in a radial direction. Simultaneously, the cylinder prevents axial movement of the slips to a decoupling position after assembly of the liner hanger. This ensures secure retention of the slips during, for example, running-in-hole with the liner hanger. By way of example, the cylinder may be a hydraulic actuating cylinder although other types of actuating cylinders or cylindrical components may be used in cooperation with the retention ring.
[0011] According to an embodiment, the cylinder is a hydraulic actuating cylinder having an axial end face which can be selectively moved against the slips to shift the slips in an axial direction. When the slips are shifted in this axial direction, sloped surfaces of the cone force the slips radially outward and into engagement with the surrounding casing. As described in greater detail below, the slips and the cone have cooperating sloped surfaces which effectively move the slips outwardly into engagement with the surrounding casing as the actuating cylinder pushes the slips in a linear / axial direction.
[0012] It should be further noted the configuration of the different angles (which effectively interlock cooperating components) also allows the slips to be assembled from the outside or exterior of the cone. For example, each slip may be inserted and twisted into position with respect to the cone and the retention ring so that interacting, angled surfaces prevent excess radial movement of the slip away from the cone. Once assembled, the cylinder may be installed over the retention ring to prevent linear movement of the slips to a decoupling or disassembly position.
[0013] Referring generally to Figure 1, an embodiment of a liner hanger assembly 30 is illustrated as having a liner 32 coupled with a liner hanger 34. The liner hanger assembly 30 is deployed downhole into a borehole 36, e.g. a wellbore, which may be lined with a casing 38. In Figure 1, the liner hanger 34 is illustrated in an unset, run-in-hole position which allows the liner hanger assembly 30 to be deployed via a liner hanger string 40 to a desired location along the borehole 36 and casing 38.
[0014] According to an example, the liner hanger 34 comprises an inner mandrel 42 having an internal passage through which, for example, fluid and / or equipment is able to move. In this embodiment, a cone 44 is slid onto the mandrel 42 to an abutment 46. In some applications, a spacer or bearing 48 may be positioned between the abutment 46 and the cone 44. The cone 44 may be generally tubular in structure and sized to slide along the tubular exterior of the mandrel 42.
[0015] Additionally, the cone 44 comprises a plurality of cone slots 50 arranged generally in an axial direction along a portion of the cone 44. The cone slots 50 are sized to receive corresponding hanger slips 52. As explained in greater detail below, the slips 52 may be assembled into the corresponding cone slots 50 from an outside or exterior of the cone 44. Depending on the engagement features of the cone 44 / slips 52 and on parameters of the assembly process, the slips 52 may be assembled after cone 44 is slid onto mandrel 42 or before cone 44 is slid onto mandrel 42.
[0016] As illustrated, the liner hanger 34 also comprises a retainer or retention ring 54 which engages lower ends 56 of the slips 52 so as to facilitate retention of the slips 52 when, for example, the liner hanger assembly 30 is run-in-hole. The retention ring 54 comprises a plurality of retention ring fingers 58. The retention fingers 58 interlock with a plurality of corresponding slip fingers 60 located at the lower ends 56 of the slips 52.
[0017] On an opposite side of the retention ring 54 from slips 52, the retention ring 54 is engaged by a cylinder 62 or other suitable actuator component. The cylinder 62 may have an engagement feature 64 which slides over and engages the retention ring 54. By way of example, the engagement feature 64 may be in the form of an expanded inner diameter section of the cylinder 62 which is sized to slide over a portion of the retention ring 54 before abutting the remaining portion of retention ring 54. Additionally, the cylinder 62 may be part of an overall actuator 66, e.g. a hydraulic actuator, a mechanical actuator, or another suitable actuator. For example, the cylinder may be a hydraulically actuated cylinder 62 or a mechanically actuated cylinder 62. The actuator 66 also may have other configurations and may use other types of engagement features 64.
[0018] In the illustrated example, the cylinder 62 is a hydraulic cylinder which may be hydraulically actuated in an axial direction to shift the retention ring 54 until a face 68 of cylinder 62 is moved into abutting engagement with the lower ends 56 of the slips 52. Continued linear movement of the cylinder 62 in the direction toward slips 52 causes linear / axial movement of the slips 52. The linear movement of slips 52 effectively causes an interaction with cone 44 which forces the slips 52 radially outward into a set position, as illustrated in Figure 2. In other words, the slips 52 and liner hanger 34 are transitioned from a radially contracted, run-in-hole position to a radially expanded set position.
[0019] In the set position, teeth 70 (or other types of gripping members) of the slips 52 are forced into gripping engagement with an interior surface of the surrounding casing 38. It should be noted the retention ring fingers 58 and the slip fingers 60 may be designed to allow a certain degree of relative linear movement with respect to each other. For example, during transition to the set position the cylinder 62 may initially shift the retention ring 54 linearly toward the lower ends 56 of slips 52, and then engage and linearly shift the slips 52.
[0020] In the example illustrated in Figures 1 and 2, each slip 52 is constructed as a tapered slip slidably received in the corresponding slots 50 which have corresponding tapers. Each slip 52 tapers along its length between an upper end 72 and lower end 56 such that upper end 72 is relatively narrow in a circumferential direction. From upper end 72, the slip 52 tapers outwardly in a circumferential direction on both circumferential sides of the slip such that the portion of the slip 52 proximate lower end 56 is wider than the relatively narrow upper end 72.
[0021] Each corresponding slot 50 also is tapered with a corresponding taper that expands in a circumferential direction moving from an upper region of the slot 50 to a lower region of the slot 50. Additionally, the circumferential sides of each slip 52 have angled surfaces 74 which taper inwardly moving in a radially inward direction. In other words, the radial exterior of each slip 52 is wider than the radial interior at each linear / axial position along the slip 52.
[0022] The slot 50 which receives the slip 52 has corresponding angled surfaces 76 which similarly cause the slot 50 to be circumferentially narrower at a radially inward position than a radially outward position. The corresponding tapers and angled surfaces 74, 76 are thus able to effectively cooperate and force the tapered slips 52 in a radially outward direction as the actuating cylinder 62 forces the slips 52 to move linearly with respect to cone 44 as cone 44 is held by abutment 46. It should be noted that each slip 52 also comprises a head 78, e.g. a head having a hammerhead shape, at its upper end 72. As explained in greater detail below, the hammerheads 78 are constructed to facilitate retention of slips 52 along cone 44 when liner hanger assembly 30 is run-in-in-hole.
[0023] When the liner hanger 34 is set, liner 32 is suspended by the liner hanger 34 via its engagement with the surrounding casing 38. The hanging load resulting from the weight of liner 32 pulls down on mandrel 42 which, in turn, pulls down on cone 44 via abutment 46. This hanging load is distributed along the slip-cone interfaces 80 formed between angled surfaces 74, 76, as illustrated in Figure 3. Thus, once the liner hanger 34 is set, the hanging load of liner 32 is supported by slips 52 along a plurality of the slip-cone interfaces 80 which are located circumferentially around the mandrel 42. This arrangement helps distribute the hanging load circumferentially through the cone 44 and slips 52 instead of radially into the mandrel 42.
[0024] As referenced above, the slips 52, retention ring 54, and cone 44 each comprise angled surfaces which help retain slips 52 in position along cone 44. Cooperating components, e.g. slips 52 and retention ring 54, have a plurality of angled surfaces oriented at a plurality of different angles to facilitate this retention. The different angles are positioned along, for example, sides of slip fingers 60 and retention ring fingers 58. The "different" angles may be different angles with respect to a reference plane, such as a radial plane extending radially outward along and from a longitudinal axis of the liner hanger 34 and through the subject finger 60 or 58. For example, the differing angles on retention ring fingers 58 and on slip fingers 60 may extend outwardly from each other like a "V" and an inverse "V" thus forming mating V-angle surfaces.
[0025] Referring generally to Figure 4, an example of one of the slips 52 is illustrated to facilitate explanation of features of the slip 52 including the angled surfaces which facilitate retention. In this example, the slip fingers 60 create spaces 82 therebetween to receive corresponding retention ring fingers 58. The slip fingers 60 also comprise angled surfaces 84 which interlock with corresponding surfaces of the retention ring 54, as explained in greater detail below.
[0026] By way of example, the angled surfaces 84 are located at the sides of each slip fingers 60 and may be oriented at different angles (e.g. V-angles) with respect to a given reference plane, such as a radial plane therethrough. In the illustrated embodiment, the angled surfaces 84 of each slip fingers 60 slope towards each other moving in a radially outward direction. In other words, the angled surfaces 84 are arranged to create slip fingers 60 which have a circumferentially wider portion on a radially inward side and a circumferentially narrower portion on a radially outward side. Each slip finger 60 effectively flares to a thicker radially inward portion due to the differing angled surfaces 84. It should be noted the slip fingers 60 also may be constructed to flare outwardly in an axial direction moving from, for example, an upper end of each slip finger 60 to a lower wider end of each slip finger 60.
[0027] In this example, the hanger slip 52 also comprises head 78 in the form of a hammerhead which similarly flares to a thicker radially inward portion. The hammerhead 78 is flared due to angled surfaces 86 located along the sides of the hammerhead configuration. The angled surfaces 86 may be arranged to form the hammerhead 78 with a circumferentially wider portion on a radially inward side and a circumferentially narrower portion on a radially outward side.
[0028] Referring generally to Figure 5, an example of retention ring 54 is similarly illustrated to facilitate explanation of features of the retention ring 54 including the corresponding angled surfaces which facilitate retention of the slips 52. In this example, the retention ring fingers 58 extend in an axial direction from a base ring 87 and create spaces 88 therebetween to receive corresponding slip fingers 60. By way of example, the base ring 87 may be a circular body sized to slide over mandrel 42. The retention ring fingers 58 also comprise angled surfaces 90 which interlock with corresponding angled surfaces 84 of the slips 52, e.g. of the slip fingers 60.
[0029] By way of example, the angled surfaces 90 are located at the sides of each retention ring finger 58 and may be oriented at different angles with respect to a given reference plane, such as a radial plane therethrough (e.g. reverse V-angles relative to the angled surfaces 84 of slip fingers 60). In the illustrated embodiment, the angled surfaces 90 of each retention ring finger 58 slope towards each other moving in a radially inward direction. In other words, the angled surfaces 90 are arranged to create retention ring fingers 58 which have a circumferentially wider portion on a radially outward side and a circumferentially narrower portion on a radially inward side. Each retention ring finger 58 effectively flares to a thicker radially outward portion due to the differing angled surfaces 90. It should be noted the retention ring fingers 58 also may be constructed to flare outwardly in an axial direction moving from, for example, a lower end of each retention ring finger 58 to an upper wider end of each retention ring finger 58.
[0030] Additionally, the angled surfaces 90 may be oriented generally parallel with the corresponding angled surfaces 84 once the slips 52 and the retention ring 54 are assembled onto mandrel 42. Because the retention ring fingers 58 flare to a circumferentially wider outer portion (opposite to the flare of slip fingers 60), the retention ring fingers 58 are able to trap and hold the slip fingers 60. Consequently, the slips 52 are prevented from experiencing sufficient radially outward movement that would release the slips 52 during, for example, running-in-hole.
[0031] The retention ring 54 also may comprise an abutment edge 92 to which the engagement feature 64 of cylinder 62 may be abutted when assembled. The abutment edge 92 may be used to define a cylinder engagement region 93 sized to receive engagement feature 64. In this example, engagement feature 64 may be in the form of an overlapping portion of cylinder 62. The engagement region 93 may have a reduced diameter relative to the remainder of retention ring 54 to facilitate receipt of the engagement feature / overlapping portion 64.
[0032] When the engagement feature 64 is positioned against the abutment edge 92, the slip fingers 60 are blocked from moving linearly / axially farther into the spaces 88 between retention ring fingers 58. By limiting this linear / axial movement of the slips 52, the slips 52 are prevented from shifting to a decoupling position while at the same time the cooperating angled surfaces 84, 86, 90 prevent sufficient radial movement of the slips to enable release the slips. Accordingly, the slips 52 are secured along the cone 44 and cannot be inadvertently released or set until cylinder 62 is actuated to force slips 52 to a set position.
[0033] It should be noted the retention ring fingers 58 may have a variety of sizes, shapes and configurations. In the illustrated embodiment, for example, some of the retention ring fingers 58 are axially shorter than other retention ring fingers 58. Additionally, some of the retention ring fingers 58 are circumferentially broader than other retention ring fingers 58. The slip fingers 60 also may have a variety of sizes, shapes and configurations. For example, the slip fingers 60 illustrated in Figure 3 include a notched portion while the fingers illustrated in Figure 4 include a truncated portion instead of the notched portion. A variety of other changes in the fingers 58, 60 also may be provided to accommodate parameters of a given construction or operation.
[0034] During assembly of liner hanger 34, the head 78, e.g. hammerhead, of each slip 52 may be rotated and inserted into an expanded opening 94 at a top of the corresponding cone slot 50. The slip 52 may then be rotated back to an operational position as illustrated in Figure 6. In this position, the angled surfaces 86 of head 78 are trapped by corresponding angled surfaces 96 of cone 44. The angled surfaces 96 extend to and define the expanded opening 94. The cooperating angled surfaces 86, 96 and the size and configuration of the cone slot 50 allow the slip 52 to move between a run-in-hole contracted configuration and an expanded set configuration (see Figure 6) without releasing the head 78 from the cone 44.
[0035] Similarly, the slip fingers 60 are moved into spaces 88 between retention ring fingers 58 and then shifted axially to interlock angled surfaces 84 of each slip 52 with the corresponding angled surfaces 90 of the retention ring 54, as illustrated in Figure 7. At this stage, the angled surfaces 86, 96 at the top end of the slip 52 and the angled surfaces 84, 90 at the bottom and of the slip 52 limit the radially outward movement of the slip 52 and thus prevent it from releasing. Additionally, the engagement feature 64 of cylinder 62 may be moved toward the abutment edge 92 of retention ring 54 to prevent linear shifting of the slip 52 to a decoupling position. Accordingly, the cooperating angled surfaces and the engagement feature 64 ensure that the slips 52 cannot be inadvertently released from the liner hanger 34.
[0036] The cone 44, slips 52, and retention ring 54 have relatively complex configurations comprising mating surfaces arranged at different angles and orientations. Milling of such complex configurations can be time-consuming and expensive. However, at least portions of the cone 44, slips 52, and / or retention ring 54 may be cut via waterjet and / or laser cutting processes. For example, a waterjet and / or a laser may be operated in a manner which controls the thickness of the cut to allow the shapes and surfaces to be generally identical for corresponding parts, e.g. corresponding surfaces of the slips 52 and retention ring 54.
[0037] This enables a quick, cost-effective method for manufacturing the complex configurations while providing desired fitting between the cooperating components. In some embodiments, for example, the fingers 58 of the retention ring 54 and the corresponding fingers 60 of the slips 52 may be cut via waterjet cutting and / or laser cutting to form the desired angled surfaces. Similarly, other portions of the slips 52 and / or cone 44 may be cut via waterjet cutting and / or laser cutting.
[0038] It should be noted the liner 32, liner hanger 34, and running string 40 may be constructed in various sizes and configurations. Additionally, each of the components of the overall liner hanger 34 may utilize: various engagement features, differing angled surfaces, different numbers of cooperating angled surfaces, various actuators, e.g. actuating cylinders, and / or other features to enable the desired operation. For example, various numbers and types of slip fingers and corresponding retention ring fingers may be used to achieve the desired retention. Similarly, various types of hammerheads or other heads may be used with desired engagement features to facilitate retention of the upper ends of the slips.
[0039] Although a few embodiments of the disclosure have been described in detail above, those of ordinary skill in the art will readily appreciate that many modifications are possible without materially departing from the teachings of this disclosure. Accordingly, such modifications are possible so long as they fall within the scope of the invention as defined in the claims.
Claims
1. A system for use in a well, comprising: a liner hanger (34) comprising: a mandrel (42); a cone (44) mounted about the mandrel (42), the cone (44) having tapered slots (50) arranged in an axial direction along a portion of the cone (44); a plurality of tapered slips (52) slidably received in the tapered slots (50), each tapered slip (52) being wider, in a circumferential direction, at a lower end (56) than at an upper end (72) and having a plurality of slip retention fingers (60) at the lower end (56), each slip retention finger (60) having angled surfaces (84) oriented at a plurality of differing angles, wherein each tapered slip (52) comprises a hammerhead (78) located at the upper end (72), the hammerhead (78) having angled surfaces (86) arranged to slidably engage corresponding angled surfaces (96) of a corresponding tapered slot (50), the hammerhead (78) thereby being captured in an upper region of the corresponding tapered slot (50); a retention ring (54) having a plurality of ring retention fingers (58) which slidably engage the slip retention fingers (60), each ring retention finger (58) having corresponding angled surfaces (90), the corresponding angled surfaces (90) being arranged to engage the angled surfaces (84) of the slip retention fingers (60) of the tapered slips (52) in a manner which prevents release of the plurality of tapered slips (52) from the retention ring (54) during deployment of the liner hanger (34); and an actuator (66) mounted about the mandrel (42) to selectively shift the plurality of tapered slips (52) between a radially contracted position and a radially expanded, set position.
2. The system as recited in claim 1, wherein the ring retention fingers (58) of the retention ring (54) extend in an axial direction from a base ring (87) and create spaces (88) therebetween to receive corresponding slip fingers (60), the ring retention fingers (58) having differing axial lengths.
3. The system as recited in claim 1, wherein the actuator (66) comprises a hydraulically actuated cylinder (62) having an engagement feature (64) configured to slide over and engage the retention ring (54) in a manner preventing decoupling of the plurality of tapered slips (52).
4. The system as recited in claim 3, wherein the hydraulically actuated cylinder (62) comprises a face (68) configured to move into abutting engagement with the lower ends of the tapered slips (52) and forces the tapered slips (52) to move in an axial direction during setting of the plurality of tapered slips (52).
5. The system as recited in claim 1, wherein the cone (44) is configured to enable installation of the plurality of tapered slips (52) from the exterior of the cone (44).
6. A method, comprising: providing a cone (44) of a liner hanger, the cone mounted about a mandrel of the liner hanger, the cone (44) having a plurality of tapered slots (50) arranged in an axial direction along a portion of the cone (44) for receiving tapered slips (52); capturing a hammerhead (78) located at an upper end (72) of each tapered slip (52) in an upper region of a corresponding tapered slot (50), the hammerhead (78) having angled surfaces (86) arranged to slidably engage corresponding angled surfaces (76) of the corresponding tapered slot (50), each tapered slip (52) being wider, in a circumferential direction, at a lower end (56) than at the upper end (72); retaining the lower end (56) of each tapered slip (52) via a retention ring (54) having a plurality of ring retention fingers (58) with angled surfaces (90) which slidably engage corresponding angled surfaces (84), oriented at a plurality of differing angles, of a plurality of slip retention fingers (60) provided at the lower end (56) of each tapered slip (52) in a manner which prevents release of the plurality of tapered slips (52) from the retention ring (54) during deployment of the liner hanger (34); and selectively shifting the plurality of tapered slips (52) between a radially contracted position and a radially expanded, set position via an actuator mounted about the mandrel.
7. The method as recited in claim 6, wherein the ring retention fingers (58) of the retention ring (54) extend in an axial direction from a base ring (87) and have differing axial lengths and wherein retaining comprises receiving the corresponding slip fingers (60) in spaces (88) between the ring retention fingers (58)8. The method as recited in claim 6, further comprising further securing the slips (52) against release using a hydraulic cylinder (62) of the actuator, the cylinder (62) having an engagement feature (64) configured to slide over and engage the retention ring (54) to prevent decoupling of the plurality of tapered slips.
9. The method as recited in claim 8, moving a face (68) of the hydraulic cylinder (62) into abutting engagement with the lower ends (56) of the tapered slips (52) to force the tapered slips (52) to move in an axial direction during setting of the plurality of tapered slips.
10. The method as recited in claim 6, further comprising installing the plurality of tapered slips (52) from the exterior of the cone (44).