WO2020146023A1 - Magnetic drum separator with cam activated magnets - Google Patents
Magnetic drum separator with cam activated magnets Download PDFInfo
- Publication number
- WO2020146023A1 WO2020146023A1 PCT/US2019/055123 US2019055123W WO2020146023A1 WO 2020146023 A1 WO2020146023 A1 WO 2020146023A1 US 2019055123 W US2019055123 W US 2019055123W WO 2020146023 A1 WO2020146023 A1 WO 2020146023A1
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- WIPO (PCT)
- Prior art keywords
- drum
- disposed
- separator
- magnetic
- pair
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
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Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B03—SEPARATION OF SOLID MATERIALS USING LIQUIDS OR USING PNEUMATIC TABLES OR JIGS; MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03C—MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03C1/00—Magnetic separation
- B03C1/02—Magnetic separation acting directly on the substance being separated
- B03C1/025—High gradient magnetic separators
- B03C1/031—Component parts; Auxiliary operations
- B03C1/033—Component parts; Auxiliary operations characterised by the magnetic circuit
- B03C1/0332—Component parts; Auxiliary operations characterised by the magnetic circuit using permanent magnets
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B03—SEPARATION OF SOLID MATERIALS USING LIQUIDS OR USING PNEUMATIC TABLES OR JIGS; MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03C—MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03C1/00—Magnetic separation
- B03C1/02—Magnetic separation acting directly on the substance being separated
- B03C1/10—Magnetic separation acting directly on the substance being separated with cylindrical material carriers
- B03C1/12—Magnetic separation acting directly on the substance being separated with cylindrical material carriers with magnets moving during operation; with movable pole pieces
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B03—SEPARATION OF SOLID MATERIALS USING LIQUIDS OR USING PNEUMATIC TABLES OR JIGS; MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03C—MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03C2201/00—Details of magnetic or electrostatic separation
- B03C2201/18—Magnetic separation whereby the particles are suspended in a liquid
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B03—SEPARATION OF SOLID MATERIALS USING LIQUIDS OR USING PNEUMATIC TABLES OR JIGS; MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03C—MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03C2201/00—Details of magnetic or electrostatic separation
- B03C2201/20—Magnetic separation of bulk or dry particles in mixtures
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B03—SEPARATION OF SOLID MATERIALS USING LIQUIDS OR USING PNEUMATIC TABLES OR JIGS; MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03C—MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03C2201/00—Details of magnetic or electrostatic separation
- B03C2201/28—Parts being designed to be removed for cleaning purposes
Definitions
- 'Hie present disclosure relates generally to magnetic separators and, more particularly,0 to a magnetic drum separator with a cam assembly providing controlled movement of the magnets.
- Hydrocarbons, stteh as oil and gas, are commonly obtained from subterranean: 5 formations that may be located onshore or offshore.
- the development of subterranean operations and the processes Involved in removing hydrocarbons from a subterranean formation typically involve a number of different steps such as, for example, drilling a wellbore at a desired well site, treating the wellbore to optimize production of hydrocarbons, and performing the necessary steps to produce and process the hydrocarbons from the subterranean formation.
- welibore tools may be positioned in th welibore during completion, production, or remedial activities. It is common practice in completing oil and gas wells to set a string of pipe, known as casing, in the well and use a cement sheath around the outside of the casing to isolate the various formations penetrated by the well
- slot recovery and/or decommissioning operations may be performed on an oil and gas well. These operations often require the removal of sections of the original casing, e.g., via extensive milling operations. Such milling operations generate significant quantities of swarf (metallic shavings, filing, and particulates ⁇ . Section and window milling operations used to sidetrack wells also generate large quantities of swarf Removal of swarf from a milling fluid:0 requires a reliable and efficient means of separation at the surface to ensure successful operations, if the harsh metallic material are not removed, thi can lead to excessive wear and tear on rig surface equipment and contamination of drilling fluids. Improvements in separation and recovery units used to separate swarf from a flow of fluid are desired BRIEF DESCRIPTION OF THE DRAWINGS
- FIG, I is an isometric view' of a swarf removal unit, in accordance with an embodiment of the present disclosure
- FIG. 2 is an isometric view of a drum of a magnetic drum separator, in accordance with an embodiment of the present disclosure
- FIG, 3 is an isometric view of a magnetic drum separator, in accordance with an embodiment of the present disclosure
- FIG. 5 is an isometric view of a pulley arrangement, in accordance with an embodiment of the present disclosure.
- FIGs, 6 ⁇ , 68, 6G, 6D, 6E ar side, cross-sectional views, cutaway, and front views of fully assembled cartridge used in the magnetic drum separator of FIG, 3, in accordance with an embodiment of the present: disclosure;
- FIG. 7 is an Isometric view of a cam assembly, in accordance with an embodiment of the present disclosure:
- FIGS. 8A, 8B, 8G are side, bottom, and cross-sectional views of a magnet tray assembly, in accordance with an embodiment of the present disclosure
- FIGs. 9A, 9B are isometric and cross-sectional view's of a magnet bracket assembly, in accordance with an embodiment of the present disclosure
- FIGs, 1 QA, lOB, IOC are front, side, and back views of a cartridge end plate assembly, in accordance with an embodiment of the present di sclosure
- FIGs, 1 S A, 1 1 B are ide and cross-sectional views of the magnetic drum separator of FIG, 3, in accordance with an embodiment of the present disclosure.
- FIG. 12 illustrates a ell assembl with a swarf removal unit, in accordance with an embod iment of the present disclosure.
- Embodiments of the present disclosure may be applicable to horizontal, vertical, deviated, or otherwise nonlinear wellbores in any type of subterranean formation. Embodiments may be applicable to injection or monitoring wells as well as production wells, including hydrocarbon wells, Embodiments ma fee implemented using a tool that is made suitable for separating swarf from an inco ing fluid flow at a surface ⁇ location proximate a well.
- Couple or“couples” a used herein are intended to mean either an indirect or a direct connection.
- that connection may be through a direct connection, or through an indirect mechanical, electromagnetic, or electrical connection via other device and connections.
- communicatively coupled a used 1 herein is intended to mean either a direct or an indirect communication connection.
- Such connection may be a wired or wireless eonneetion such as, for example, Ethernet or LAM.
- wired and wireless connections are well known to those of ordinary skill in the art an will therefore not be discusse in detail herein.
- the present disclosure is directed to a magnetic drum separator used to remove swarf fro a flow of fluid without the magnets making contact with the fluid or swarf.
- the magnetic drum separator allows the magnets to he fully enclosed ithin a dru housing.
- the magnets are able to be selectively located close to the drum housing on a side where the drum separator is in contact with the fluid flow and moved radially away from the dram housing on a discharge side: away from the fluid flow.
- the magnets exert a magnetic force that attracts swarf within the fluid flow to the magnetic drum separator.
- the magnetic force from the magnets decreases, thereby releasing the collected swarf from t he outside of the drum.
- the disclosed magnetic drum separator is designed t separate swarf from a drilling fluid. Return flow from a well passes through the unit, wit the magnetic dru separator capturing a majority of the swarf and discarding the captured material into a collection area. The swarf ma then be transported to a remote facilit where the metal is recovered for recycling. Additional separation and/or polishing stages may be performed 1 o the remaining fluid to remove any fine to ultra-fine magnetic particles that may still be entrained in the fluid,
- an array of magnets is located within a drum housing to form a wet magnetic drum separator.
- the magnet rotate with the drum housing but move away from the drum housing to allow the recovered swarf to be released from an outside of the drum housing.
- Existing separator units rel on gravity to move the magnets in thi manner.
- the disclosed drum separator is mechanically controlled via a earn assembly. This provides an increased control of the movement of magnets to selectively attract swarf to the drum separator and release the swarf into a discharge area.
- the magnets are moved in a controlled manner via the cam assembly to allow reliable and precise positioning of the magnets for eo!iection/aitraeiion of swarf and later discharge of the swarf
- the magnetic drum separator is simple and effective and ean be utilized for swarf recovery in fluid paths in various locations or as a stand-alone device.
- the disclosed cam assembly may be altered to suit requirements for a desired fluid flow / discharge arrangement, thereby allowing complete control of the magnetic field exerted by the dru separator.
- FIG. 1 Illustrates a swarf removal unit 100
- the swarf removal unit f0$ may be configured to remove swarf (for example, metal lie shavings, filing, particulates, and combinat ions thereof) from one or more fluids used in milling a well.
- the swarf removal unit 100 may be disposed at a surface location about a well, Wherein the swarf removal unit 100 may be fluidly coupled to the well to receive one or more fluids as an Input.
- the one or more fluids may include ferrous swarf as a result of milling out a well.
- the swarf removal unit 100 may include a magnetic drum separator 105,
- the magnetic ⁇ drum separator 105 may be configured to physically remove the ⁇ ferrou swarf from the one or more fluids used in a milling operation, or other related operation.
- an inlet 110 to the swarf removal unit 100 may provide: a Aowpath for the one or more fluids towards the magnetic drum separator 105.
- one or more fluids may flow from : the inlet T 10 to the magnetic drum separator 105, As the one or more fluids encounter the magnetic drum separator 105, the magnetic drum separator 105 may attract the ferrous swarf through a magnetic force provided 1 toy the internal components of the magnetic drum separator 105, As the one or more fluids encounter the magnetic dru separator 105, the magnetic drum separator 105 may remove and displace the ferrous swarf from the one or more fluids. The one or more fluids may subsequently flow below the magnetic drum separator 105 to be further processed.
- the scraper ramp 1 15 may be any suitable size, height, shape, and combinations thereof. Further, the scraper ram 1 15 may he included of any suitable material. The: scraper ramp 1 15 may be disposed to abut the magnetic: drum separator 105 at any suitable angle. The scraper ram 1 15 may be configure to provide a physical hairier to any potential ferrou swarf disposed about the magnetic drum: separator 105. During operations, the scraper ramp P5 ma physically force the ferrous swarf to be removed from the magnetic drum separator 105.
- the ferrous swarf may subsequently slide down the scraper ramp 1 15 into a separate containment unit 120, wherein the scraper ramp 115 is coupled to the separate containment unit 120.
- the scraper ramp 115 may not he coupled to the separate containment unit 120.
- the separate containment unit 120 may be any suitable size, height, shape, and combinations thereof in one or more embodiments, the separate containment unit 120 ma be configured to receive, store, transport, and combinations thereof the ferrous swarf removed from the one or more fluids.
- FIG, 2 illustrates an embodiment of the magnetic drum separator 105.
- the magnetic drum separator 105 may in lu e an outer drum (or drum housing) 200 that encloses an array of magnets and earn assembly (discussed further below).
- the drum 200 may be actuated to rotate around a: central axi 205 , in one or more embodiments, the array of magnets may rotate with rotation (and at the same rat of rotation) of the drum 200
- the cam assembly which may remain stationary as the drum 200 rotates, ma displace a plurality of magnet in the array of magnets to move in a radially inward or outwar direction (with respect to the centra!
- the drum 200 may include a drum skin, wherein the drum skin is a thin-wailed cylindrical component.
- the drum skin may be non-magnetic. in other embodiments, the drum skin may be magnetic.
- the drum 200 may further include two flnnn flanges 210 to facilitate connection of the drum skin to other components: of the magnetic drum separator 105.
- one of the two drum flanges 10 may be disposed at a first end 215 of the drum 200 while the remaining one of the two dru flanges 21:0 may be disposed at a second end 220 of the drum 200, wherein the first end 215 and the secon end 220 are oppos ite of each other,
- FIG, 3 illustrates another embodiment of the magnetic drum separator 105.
- the magnetic drum separator 105 may be fluidly sealed by a pair of drum end plates 3:00 dispose at the first end 2:15 and at the second end 220 of the drum 200.
- a wear ring 305 may be disposed adjacent to and concentric with the drum end plates 300.
- the wear ring 305 may be disposed at the first end 215 and/or at the second end 220 of the drum 200,
- the wear ring 305 may provide a buffer between the magnetic drum separator 105 and the swarf removal unit 100 (referring to FIG, 1).
- the wear ring 305 may absorb potential damage caused by the magnetic dru separator 105 interfacing with the swarf removal unit 100.
- the wear ring 305 may be included of nylon.
- the; plurality of holes may be aligned and may be secured using any suitable fasteners to cou le the wear rings 305 to the pair of drum end: plates 300 to the drum flanges 210, wherein the pair of drum end plates 300 are disposed between the wear rings 305 and the drum flanges 210.
- a drum shaft 310 may be disposed through the magnetic drum separator 105 along the central axis 205 (referring to FIG. 2),
- the drum shaft 310 may be any suitable size, height, shape, and combinations thereof
- the drum shaft 310 may be a solid, elongated cylinder including a length longer than the length of the drum 200.
- the drum shaft 10 may he operable to support the components of the magnetic dru separator 105,
- the drum shaft 310 may remain stationary as the drum 200 rotates about the central axis 205,
- the magnetic drum separator 105 may further include at least one shaft support
- the at least one shall support 315 may he bolted down to an externa, ⁇ surface through mounting holes 400 disposed through the at least one shaft support 315, In one or more embodiments, the mounting holes 400 may fee disposed about opposite ends of the at least one shaft support 315.
- the at least one shaft support 315 may include a central bore 405, wherein the central bore 405 is configured to receive the drum shaft 3.10 (referring to FIG, 3).
- the central hole 410 may be disposed vertically through the at least one shaft support 315 and perpendicular to the centra! bore 405.
- the dru shaft 310 may include a hole disposed at an end of the drum shaft 310.
- the hole in the drum shaft 310 may be aligned with the central hole 410 and a suitable fastener may be used to fasten the drum shaft 310 to the at least one shaft support. 315.
- FIG. 5 illustrates an embodiment of the pulley arrangement 320
- the pulley arrangement 320 may be any suitable size, height, shape, and combinations thereof
- the pulley arrangement 320 may have a circular cross-section.
- the plurality of teeth 505 may be disposed between a first ridge 510 and a second ridge 515, wherein the distance between the first: ridge 510 and the second ridge 515 defines the thickness of the pulley arrangement 320,
- the pulley arrangement 320 may be coupled to a cable or belt (not shown) to operate as a pulley after the drum shaft 310 is disposed through the central bore 500 of the pulley arrangement 320,
- the cable or belt may be disposed over a portion of the plurality of teeth 505 and between the first ridge 510 and the second ridge 515.
- the magnetic dru separato 105 (referring to FIG, 1 ) ma include a, cartridge that Is dispose within the drum 200 (referring to FIG. 2).
- FlGs. 6A, 6B, 6C, 6D, 6E illustrate different views of a fully assembled cartridge 600
- the cartridge 600 may be constructed from several subassemblies that will be described in further detail herein.
- the cartridge 600 may include a cam assembly 605, two end plate assemblies 610, and a pluralit of magnet: tray assemblies 615.
- the magnet tray assemblies 615 may include of an array of magnet in the magnetic drum separator 105,
- the end plate assemblies 610 at opposite ends of the cartridge 600 may attach the arra of magnets to a drive assembly (for example, he pulley arrangement 320 with the cable or belt) that rotates the drum 200.
- the array of magnets may be rotated : along with the drum 200.
- the earn assembly 605 may remain stationary as: the drum 200 and array of magnets rotate.
- the cam assembly 605 may cause the magnets to move radially outward (toward the drum 200) at a certain circumferential location about the rotational axis and may cause the magnet to move radially in war (away from the drum 200) at another circumferential location.
- ferrous swarf may be attached to the outside of the drum 200 at certain locations (where the magnets are ⁇ closer to the drum 200) and the ferrous swarf may later he released from the outside of the drum 200 at another location (where the magnets are no longer close to the drum 200).
- the magnetic drum separator 1 5 is able to pick up ferrous swarf on one side (for example, at the inlet 1 10) of the swarf re oval unit 100 (referring to FIG. 1) and deposit the ferrous swarf on another side (for example, at the scraper ramp ITS) as the drum 200 rotates.
- the cartridge 600 may include a number of cartridge support bars 308.
- FIG, 7 illustrates the cam assembly 605, which may include the drum shaft 310, two shaft connection plates 700, and two cam disks 705,
- the shaft connection plates 700 may couple the earn disks 705 to the drum shall 310, thereby inhibiting rotation of the cam disks 70S within the magnetic drum separator 105 (referring to FIG. 1).
- the shaft connection plates 700 may be coupled to the ca disks using any suitable fasteners.
- Each ca disk 705 may be any suitable size, height, shape, an combinations thereof.
- each earn disk 70S ma have equivalent dimensions.
- each earn disk 705 may include any suitable material, such as Teflon, ori-impregnated polyurethane, other such materials exhibiting low coefficient of friction an low wear characteristics, and combinations thereof.
- Each cam disk 705 may Include an irregular (not circular) shape and may include a cam track 710 formed on an outer side of the ca disk 70S for recei ving ca followers (described further below) of the magnet tray assemblies 615 (referring to FlGs. 6A, 6B, 6G, 61), 615).
- the earn track 710 ma be a recessed groove forming a closed loop about: the circumference of each cam disk 70 on tile outer side of the ca di sk 705.
- FlGs. A, SB, 8C illustrate one of the plural ity of magnet tray assemblies 615
- FIG. 8A illustrates a side view of one of the plurality of magnet tray assemblies 615.
- FIG, 88 illustrates a bottom vie of one of the plurality o magnet tra assemblies 615
- FIG. 8C illustrates a cross- section of the side view presented in FIG. 8A of one of the plurality of magnet tray assemblies 615
- Bach one of the plurality of magnet tray assemblies 615 may be any suitable size, height, shape, and combinations thereof.
- each one of the plurality of magnet tray assemblies 613 may have equivalent dimensions.
- one magnet tray assembly 615 may include two magnet bracket assemblies 800, a magnet tray 805, and a magnet tray backing plat ⁇ 810.
- each magnet bracket assembly 800 may be disposed at an end of the magnet tray 805,
- the magnet tray backing plate 810 may be disposed
- a plurality of magnets 815 may be disposed in the magnet tray 805 and held between the magnet tray 805 and magnet tray backing plate 810.
- Each of the plurality of magnets 815 may have equivalent dimensions. In other embodiments, each of the plurality of magnets 815 may have different: ⁇ q dimensions.
- each of the plurality of magnets 81 3 may be secured into the magnet tray assembly 615 using any suitable method including, but not limited to, fasteners, threading, adhesives, welding, and combinations thereof
- the magnet bracket assemblies 800 may attach: the magnets 815 to the cam assembly 605 and to the end plate assemblies 610.
- FIGs, 9A-9B illustrate an embodiment of the magnet bracke assembly 800
- FIG. 9A illustrates an isometric view of the magnet bracket assembly 800
- FIG, OB illustrates a side view of the magnet bracket assembly 8:00.
- the magnet bracket assembl 800 ma include a bracke 900, a bracket plate 905, a cam follower 910 on one side of the bracket 900, and an end plate follower 915 on an opposite side of the bracket 900.
- the bracket 900 may 0 be any suitable size, height, shape, and combinations thereof Without limitations, the bracket 900 may generally be triangular in shape, wherein the base of the triangle is a top end 920 of the bracket 900, and wherein a tip of the triangle is a bottom end 925 of the bracket in embodiments, the bracket plate 905 ma be disposed at the top end 920 of the bracket 900, The earn follower 910 may be disposed about the bottom end 925 of the bracket 900. The end plate 5 follower 915 may be disposed in between the cam follower 910 and the bracket plate 905 about any suitable location on the, bracket 900.
- the cam follower 910 an the end plate follower 915 may be fastened to the bracket 900 using any suitable fasteners (lor example, a hex nut), wherein the fastener for each of the earn follower 910 and the end plate follower 915 is disposed: on opposite sides of the bracket 900, In the fully assembled cartridge
- the earn follower 910 may be disposed hi the earn track 710 (referring to FIG. 7 ⁇ of the ca disk 705 (referring to FIG. 7), while the end plate follower 915 may be disposed in a slot of one of the end plate assemblies 610 (referring to FIGs. 6A, 6B, 6C. 6D, 6E).
- FIGs, 10A, 10B, IOC Illustrate one of the two end plate assemblies 610, in one or more embodiments, the end plate assemblies 610 may rotate with the drum 200 (referring to FIG. 2).
- the end plate assembly 610 may include a clock plate 1000, a cartridge end plate 1005, and a drive plate assembly 1010
- FIG, 1.0A illustrates an embodiment of the cartridge end plate 1005
- FIG, lO.B illustrates an embodiment of the clock plate 1000
- a cartridge end plate 1005 and the drive plate assembly 1010 coupled together
- PIG, I OC illustrates an embodiment of the clock plate 1000.
- the clock plate 1 00 may include radially oriented slots 1015 formed therein, : and the radially oriented slots 1015 ay be configured to receive the end plate followers 915 (referring to FIG.
- the slots 1015 may be lined with a .sacrificial liner including a suitable plastic to inhibit metal-to-rnetal contact between the slots 1015 and the end plat followers 915.
- the slots 1015 may allow the bracket 900 (referring to FIGs, 9A--9B), and therefore the plurality of magnets 815 (referring to FIG, SC ' ). to move radially inward and outward in response to movement of the plurality of magnet bracket assemblies 800 along the cam track 710 (referring to FIG. 7) of the earn disk 705 (referring to FIG, 7).
- the cam disk 705 may be disposed in proximity to the clock plate 1000.
- the cartridge end plate 1005 may be coupled to the clock plate 1000.
- the cartridge end plate 1005 may be disposed on an opposite side of the clock plate 1000 as the plurality of magnet bracket assemblies 800, wherein the cartridge end plate 1005 is concentric with the clock plate 1000,
- the cartridge end plate 1005 may form a longitudinally outer end of the fully assembled cartridge 600 (referring to FIGS, (>A, 6B, 6C, 61), 6E).
- the drive plate assembly 1010 may be coupled to the cartridge end plate 1005, As illustrated, the drive plate assembly 1010 may be disposed on an opposite side of the cartridge end plate 1005 a the clock plate 1000, wherein the cartridge end plate 1005 Is disposed between the drive plate assembly 1010 and the clock plate 1000.
- the clock plate 1000, the cartridge end plate 1005, and the drive plate assembly 1010 may Include a central bore configured to receive the drum shaft 310 (referring to FIG. 3), wherein the drum shaft. 310 is disposed through the clock plate 1000, the cartridge end plate 100.5, and the drive plate assembly 1010, Further, the clock plate 1000, the cartridge end plate 1005, and the drive plate assembly 1010 may include a plurality of holes suitable for utilizing fasteners in order to couple to each other.
- the drive plate assembly 1010 may further be coupled to a drive assembly (for example, the pulley arrangement 320 wit the cable or belt) of the drum 200 (referring to FIG. 2) to rotate the end plate: assemblies 610 along with the drum 200.
- FIG. 1 1 A illustrates a cross-sectional side view of the magnetic drum separator 105
- FIG. i !JB illustrates a side view of the magnetic drum separator 105.
- a drum hub 1 100 may be dispose around the drum shaft 310 between the pulley arrangement 320 and the drum end plate 300, In one or more embodiments, the drum hub 1 100 may couple the pulley arrangement 320 to both the drum end plate 300 and the drive plate assembly 1010, as best seen on FIG, 1 IA.
- Suitable fasteners may couple one end of the drum hub 1 100 to the drum end plate 300 and the drive plate assembly 1010, wherein the drum end plate 300 is dispose between th drum hub 1 100 and the: drive plate assembly 1010.
- the pulley arrangement 320 may be coupled to the opposite end of the drum hub 1 100,
- the magnetic dru separator 105 may be actuated remove ferrous swarf from one or more fluids used in a downhole operation.
- the ⁇ pulley arrangement 320 and a cable or belt may provide rotation to the magnetic drum separator 105.
- the drum shaft 310 and the earn assembl 605 may remain stationary as other components of the magnetic drum separator i OS, such as the drum 200, the plurality of magnet: tray assemblies 615, and the end plate assemblies 610 (referring to FiGs. 10A, FOB, 1 QC) rotate.
- the plurality of magnet tray assemblies 615 may translate radially inward or outward while rotating around the central axis 205 (referring to FIG. 2). This may produce localized magnetic fields that are stronger or weaker at designated locations along the circumference of the dru 200.
- the plurality of magnet fray assemblies 615 may be furthe away fro the central axis 20S, therefore closer to the drum 200, about a portion of the magnetic drum separator 105 that is disposed: in the fiowpath of the one or more fluids provided by the inlet 1 10 (referring to FIG, 1) of the swarf removal unit 100 (referring to PIG. 1 ).
- the earn assembly 605 may displace the plurality of magnet tray assemblies 615 to a radially inward position. Such displacement may weaken the surrounding magnetic field along the outer surface of the drum 200. As such, the ferrous s warf may fall off the dram 2.00, as the drum 200 is rotating, onto the scraper ramp 115 (referring to FIG. 1) to be collected within the separate containment unit 120 (referring to FIG. 1).
- the magnetic field from the plurality of magnet tray assemblies 615 may still affect the ferrous swarf while the plurality of magnet: tray assemblies 615 are disposed closer to the central axis 205,
- the scraper ramp 1 15 may provide a physical barrier along the rotating drum 200 to physically scrape off the ferrous: swarf, wherein the ferrou swarf may then be collecte w ithin the separate containment unit 120.
- the magnetic drum separator 105 may not include the earn assembly 60S.
- the end plate followers 915 may be disposed in radiall oriented slots (for example, slot 1015 or slots disposed about the drum end plates 300).
- the clock plate 1000 may include of HARDOX® 450 (available from SSAB Corporation).
- HARDOX® 450 may he a wear-resistant steel at a nominal hardnes of 450 HBW that combines high toughness, good bendability and weldability.
- HARDOX® 450 may combine good bendability and weldability with an option for guaranteed impact toughness (HARDOX® 450 Tuf).
- the impact produced from the plurality of magnet tray assemblies 615 translating back an forth along the slots 1015 may ordinaril damage the plurality of magnet tray assemblies 615.
- the clock plate 1000 may include HARDOX® 450, the improved material properties may reduce the damage sustained by the plurality of magnet tray assemblies 615 translating.
- the magnetic drum separator 105 does not include the cam assembly 605
- inserts (not shown) disposed in the radially oriented slots.
- the inserts may be fixed in place and the magnet tray 805 may travel along the length of th radially oriente slots. As the magnet tray 805 translates, the magnet tray 805 may contact the inserts. Such contact may ordinaril damage the magnet tray 80S. As there are insert disposed: in the slots, the damage from the forced contact may be reduce a compare to the magnet tray translating into the ends of the slots.
- the systems and methods of the present disclosure ma directly or indirectly affect one or more components or pieces of equipment associated with the preparation, delivery, recapture, recycling, reuse, and/or disposal of fluids used in the context of various well system operations, including milling operations.
- the systems and methods may directly or indirectly affect one or more mixers, related mixing equipment, mud pits, storage facilities or units, com ositio separators, heat exchangers, sensors, gauges, pumps, compressors, and the like used generate, store, monitor, regulate, and/or recondition the fluids from which swarf is removed daring mining operations.
- the systems and methods of the present disclosure may also directly or indirectly affect any transport or delivery equipment used to convey the flui to a well site or downhole such as, for example, any transport vessels, conduits, pipelines, trucks, tubulars, and/or pipes used to compositionaliy move fluids from one location to another, any pumps, compressors, or motors (e.g., topside or downhole) use to drive the fluid into motion, any valves or related joints used to regulate the pressure or flow rate of the fluids, and any sensors (he., pressure and temperature), gauges, and/or combinations thereof, and the like.
- any transport or delivery equipment used to convey the flui to a well site or downhole such as, for example, any transport vessels, conduits, pipelines, trucks, tubulars, and/or pipes used to compositionaliy move fluids from one location to another, any pumps, compressors, or motors (e.g., topside or downhole) use to drive the fluid into motion, any valves or related joints used to regulate the pressure or flow rate of the fluids,
- the disclosed systems an methods may directly or indirectly affect one or more components or pieces of equipment associated with an example of a well assembly 1200, according to one or more embodiments.
- FIG. 12 generally depicts a land-based assembly
- the principles described herein are equally applicable to subsea operation that employ floating: or sea-based platforms and rigs, ithout departing from the scope of the disclosure.
- the principle described herein are also equally applicable to milling operations within water well assemblies, without departing from the scope of the disclosure.
- casing string 1215 is at least partially cemented within the wellbore ⁇ 1205 via cement 1220,
- the term“casing” is used herein to designate a tubular string used to line a wellbore.
- the casing may actually be of the type known to those skilled in the art as‘liner’ and may be a segmented liner or a continuous: liner, such as coiled tubing.
- the well assembly 1200 may include a platform 1225 that supports a derrick 1230 having a traveling block .1235 for raising and lowering a tubular string 1240. in other embodiments, the tubular string 1240 may be run in from a spool.
- the tubular string 1240 may Include, but: is not limited to, pipe or coiled tubing, as generally known to those skilled in the art,
- a kell 1245 supports the tubular string 1240 as it is lowere through a rotary table 1250.
- a milling or cutting tool 1255 is attached to the distal end of the tubular string 1240 and is drive either by a downhole motor and/or via rotation of the tubular string 1240 from the well surface.
- the cuting tool 1255 is rotated to selecti vely cut and excise one or more portions of the casing string 1215 and cement 1220 over a predetermined section or length of the wellbore 1 05.
- This milling of the casing string 1215 may be performed about an entire circumference and over a particular length of the vyel!bore 1205 as part of, for example, a decommissioning operation on the wel l .
- the milling of the easing string 121.5 may be performed in a specific direction with respect to an axis of the wellbore 1205, such as during a slot, section, or windowtniHing operation. Regardless of the extent and purpose of the milling operation, Guting the casing string 1215 may generate a large amount of swarf (or ferrous material) 1257 that iscirculated hack up through an annulu 1 75 of the wellbore 1205,
- a pump 1260 (e.g,, a mud pump) circulates drilling fluid 1265 through a feed pipe 1270 and to the kelly 1245, which conveys the drilling fluid 1265 downhole through the interior of the tubular string 1240 and through one or more orifices in the cutting tool 1255, The fluid 1265 is then circulated' back to the surface via the annulus 127 defined between the tubular string 1240 and the casing string 1215.
- a pump 1260 e.g, a mud pump
- the recirculated or spent fluid 1265 exit the annulu 1275 and may be conveyed to one o more fluid processing unit(s) 1280 via an interconnecting flow line 1285,
- the fluid processing unit(s) 1280 may include, among other things, one or more swarf removal units 100 vised to remove: the swarf 1257 from the flui 1265 returned from the well After passing through the fluid processing unit(s) 1280, a“cleaned” drilling fluid 1265 is deposited into a nearby retention pit 1290 (i.e., a mud pit).
- the disclosed systems and methods may directly or indirectly affect the components and equipment of the well assembly 1200 by removing swarf from flui that might otherwise clog or damage these components.
- the disclosed systems and methods may directly or indirectly affect the fluid processing imit(s) 1280 which may include, but is not limited: to, one or more of a shaker (e,gang shale shaker), a centrifuge, a hydroeyeione, a separator, a desilter, a desander, a filter (e.g., diatomaeeous earth filters), a heat exchanger, any fluid reclamation equipment and the like.
- the fluid -processing umt(s) 1280 may further include on or more sensors, gauges, pumps, compressors, and the like used to store, monitor, regulate, and/or recondition the fluids that are cleaned via the disclosed swarf removal systems and methods.
- the disclosed systems and methods may directly or indirectly affect the pum 1260, which representatively includes any conduits, pipelines, trucks, : tubulars, and/or pipes use to fhiidkaily convey the cleaned fluids downhole, any pumps, compressors, or motors (e.g,, topside or downhole) used to drive the fluids into motion, any valves or related joints used to regulate the pressure or flow rate of the fluids, and any sensors (ie embroidery pressure, temperature, flow rate. etc.), gaug s, and/or combinations thereof, and the like.
- any conduits, pipelines, trucks, : tubulars, and/or pipes use to fhiidkaily convey the cleaned fluids downhole, any pumps, compressors, or motors (e.g, topside or downhole) used to drive the fluids into motion, any valves or related joints used to regulate the pressure or flow rate of the fluids, and any sensors (iewoven pressure, temperature, flow rate. etc.), gaug s, and/or combinations thereof
- the disclosed systems and methods may also directly or indirectly affect the various downhole equipment and tools that may come into contact with the fluid that are cleaned via the swarf removal systems and methods such as, hut not limited to, the tubular string 1240, any ⁇ floats, drill collars, mud motors, downhole motors and/or pumps associated with the tubular string 1240, and any MWD/LWD tools and related telemetry equipment, sensors or distributed sensors associated wit the tubular string 1240.
- the disclosed systems and methods may also directly or indirectly affect any downhole heat exchangers, valves and corresponding actuation devices, tool seals, packers and other wellbore isolation devices or components, and the like0 associated with the wellbore 1205,
- the disclosed swarf removal Systems and methods may also directly or indirectly affect the cutting too! 1255,
- the diseiosed swarf removal systems and methods may also directly or mdireefly affect any transport or delivery equipment used to convey the cleaned fluids such as, for example, any transport vessels, conduits, pipelines, trucks, 5 tubulars, and/or pipes used to fluidieaily move the fluids from one location to another, any pumps, compressors, or motors used to drive the fluids into motion, any valves or related joints used to regulate the pressure or flow rate of the fluids, : and an sensors (he., pressure and temperature), gauges, and/or combinations thereof, and the like.
- any transport vessels, conduits, pipelines, trucks, 5 tubulars, and/or pipes used to fluidieaily move the fluids from one location to another
- any pumps, compressors, or motors used to drive the fluids into motion
- any valves or related joints used to regulate the pressure or flow rate of the fluids
- an sensors here., pressure and temperature
- An embodiment of the present disclosure is magnetic drum separator, including a0 drum; a pulley arrangement coupled to the drum, wherein the pulle arrangement imparts rotation onto the drum; a pair of end plate assemblies, wherein one of the pair of end plate: assemblies is coupled to the pulley arrangement such; that the pulley arrangement rotates the one of the pair of end plate assemblies wit the rotation of the drum, wherein eac of the pair of end plate assemblies includes a clock plate including radially oriented slots forme therein; a5 plurality of magnets dispose in the drum, wherein the plurality of magnets is attached to the pair of end plate assemblies and rotatable with the rotation of the drum; and a earn assembly disposed in the drum, wherein the cam assembly remains stationary during the rotation of the drum and the pluralit of magnets, wherein the cam assembly includes a: ca disk with a ca track formed therein; wherein the cam track and the radially oriented slots guide the plurality of magnets to0 move in a radiall outward direction along a port
- the magnetic drum separator further includes a pair of dru end plates, wherein the pair of drum end plates are
- the magnetic drum separator further includes one or more wear rings, wherein the one or more wear rings are coupled to the pair of dru end plates, wherein the pair of drum en plates are disposed between the one or more wear rings and the dru flanges.
- the magnetic drum separator furthe includes a drum bub, wherein the drum bub is dispose in between the pul ley arrangement and one of the pair of drum end plates, wherein the dru hub is coupled t both the pulley arrangement and the one of the pair of drum end plates.
- the drum hub is further coupled to th one of the pair of end plate assemblies, wherein the one of the pair of drum end plates is disposed in between the drum hub and the one of the pair of end plate assemblies.
- each of the pair of end: plate assemblies includes the cinch plate; a cartridge end plate; an a drive plate assembly.
- the cartridge end plat is eoupled to the clock plate and the drive plate assembly, wherein the cartridge end plate is disposed in between the clock plate amt the drive plate assembly.
- the magnetic drum separator further including: a plurality of magnet tray assemblies, : wherein each of the plurality of magnet tray assemblies includes: two magnet bracket: assemblies; a magnet tray; and a magnet tray backing plate, In one or more embodiments described above, wherein the magnet tray is disposed between: and coupled to the two magnet bracket assemblies. In one or more embodiment described above, wherein the magnet tray backing plate is disposed between and coupled to the two magnet bracket assemblies, wherein the magnet tray backing plate is disposed below an couple to the magnet tray. In one or more embodiments described above, wherei the plurality of magnets: is disposed within the magnet tray of each of the plurality of magnet tray assemblies.
- each magnet bracket assembly includes: a bracket; a bracket plate; a earn follower, wherein the ca follower is disposed on one side of the bracket;, an an end plate follower, wherein the end plate follower is disposed on an opposite side of the bracket from the cam follower.
- the end plate follower is disposed In one of the radially oriented slots of the clock plate.
- the cam follower is disposed in the cam track of the cam disk.
- the magnetic drum separator further including a drum shaft disposed along a central axis of the magnetic drum separator, in one or more embodiments described above, wherein the cam assembly Is coupled to the drum shaft hi one or more embodiments described above, the magnetic drum separator further including at least one shaft support disposed at an en of the drum shaft in one or more embodiments described above, wherein the earn disk includes of Teflon, oil-impregnated polyurethane, other such materials exhibiting low coefficient of friction and low wear characteristics, and combinations thereof
- the drum is configured to remove ferrous swarf from one or ore fluids hi one or more embodiments described above, wherein the ferrous swarf includes metallic shavings, filing, particulates, and combinations thereof
Landscapes
- Centrifugal Separators (AREA)
Abstract
Description
Claims
Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| GB2107989.2A GB2598450B (en) | 2019-01-08 | 2019-10-08 | Magnetic drum separator with cam activated magnets |
| AU2019421063A AU2019421063B2 (en) | 2019-01-08 | 2019-10-08 | Magnetic drum separator with cam activated magnets |
| CA3121107A CA3121107C (en) | 2019-01-08 | 2019-10-08 | Magnetic drum separator with cam activated magnets |
| NO20210720A NO20210720A1 (en) | 2019-01-08 | 2021-06-04 | Magnetic drum separator with cam activated magnets |
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201962789906P | 2019-01-08 | 2019-01-08 | |
| US62/789,906 | 2019-01-08 | ||
| US16/593,925 US11292010B2 (en) | 2019-01-08 | 2019-10-04 | Magnetic drum separator with cam activated magnets |
| US16/593,925 | 2019-10-04 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2020146023A1 true WO2020146023A1 (en) | 2020-07-16 |
Family
ID=71404870
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2019/055123 Ceased WO2020146023A1 (en) | 2019-01-08 | 2019-10-08 | Magnetic drum separator with cam activated magnets |
Country Status (6)
| Country | Link |
|---|---|
| US (1) | US11292010B2 (en) |
| AU (1) | AU2019421063B2 (en) |
| CA (1) | CA3121107C (en) |
| GB (1) | GB2598450B (en) |
| NO (1) | NO20210720A1 (en) |
| WO (1) | WO2020146023A1 (en) |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB201704360D0 (en) * | 2017-03-20 | 2017-05-03 | Raptor Services (Scotland) Ltd | Apparatus and method |
Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CA2588170A1 (en) * | 2006-05-09 | 2007-11-09 | Particle Drilling Technologies, Inc. | Impact excavation system and method with particle separation |
| US20080164184A1 (en) * | 2007-01-09 | 2008-07-10 | Marston Peter G | Fluidic sealing system for a wet drum magnetic separator |
| US20080210613A1 (en) * | 2007-01-09 | 2008-09-04 | Ionel Wechsler | System and method for removing dissolved contaminants, particulate contaminants, and oil contaminants from industrial waste water |
| US20080264691A1 (en) * | 2007-04-26 | 2008-10-30 | Barrett Allen | Drilling Fluid Containing A Recoverable Lost Circulation Material and Method of Using and Recovering The Same |
| WO2018172843A1 (en) * | 2017-03-20 | 2018-09-27 | Halliburton Manufacturing And Services, Limited | Magnetic swarf drum |
Family Cites Families (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP4205018B2 (en) * | 2004-07-08 | 2009-01-07 | 日本磁力選鉱株式会社 | Magnetic sorting method and apparatus |
| US8807344B2 (en) | 2012-03-19 | 2014-08-19 | Mid-American Gunite, Inc. | Adjustable magnetic separator |
-
2019
- 2019-10-04 US US16/593,925 patent/US11292010B2/en active Active
- 2019-10-08 WO PCT/US2019/055123 patent/WO2020146023A1/en not_active Ceased
- 2019-10-08 CA CA3121107A patent/CA3121107C/en active Active
- 2019-10-08 AU AU2019421063A patent/AU2019421063B2/en active Active
- 2019-10-08 GB GB2107989.2A patent/GB2598450B/en active Active
-
2021
- 2021-06-04 NO NO20210720A patent/NO20210720A1/en unknown
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CA2588170A1 (en) * | 2006-05-09 | 2007-11-09 | Particle Drilling Technologies, Inc. | Impact excavation system and method with particle separation |
| US20080164184A1 (en) * | 2007-01-09 | 2008-07-10 | Marston Peter G | Fluidic sealing system for a wet drum magnetic separator |
| US20080210613A1 (en) * | 2007-01-09 | 2008-09-04 | Ionel Wechsler | System and method for removing dissolved contaminants, particulate contaminants, and oil contaminants from industrial waste water |
| US20080264691A1 (en) * | 2007-04-26 | 2008-10-30 | Barrett Allen | Drilling Fluid Containing A Recoverable Lost Circulation Material and Method of Using and Recovering The Same |
| WO2018172843A1 (en) * | 2017-03-20 | 2018-09-27 | Halliburton Manufacturing And Services, Limited | Magnetic swarf drum |
Also Published As
| Publication number | Publication date |
|---|---|
| CA3121107C (en) | 2023-10-17 |
| NO20210720A1 (en) | 2021-06-04 |
| US20200215549A1 (en) | 2020-07-09 |
| CA3121107A1 (en) | 2020-07-16 |
| GB2598450A (en) | 2022-03-02 |
| US11292010B2 (en) | 2022-04-05 |
| AU2019421063A1 (en) | 2021-06-24 |
| AU2019421063B2 (en) | 2024-06-20 |
| GB202107989D0 (en) | 2021-07-21 |
| GB2598450B (en) | 2023-02-01 |
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