WO2020236226A1 - Thermal desorption of oily solids - Google Patents

Thermal desorption of oily solids Download PDF

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Publication number
WO2020236226A1
WO2020236226A1 PCT/US2020/013619 US2020013619W WO2020236226A1 WO 2020236226 A1 WO2020236226 A1 WO 2020236226A1 US 2020013619 W US2020013619 W US 2020013619W WO 2020236226 A1 WO2020236226 A1 WO 2020236226A1
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WO
WIPO (PCT)
Prior art keywords
vapor
slurry
desorption
oil
desorption vessel
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
Application number
PCT/US2020/013619
Other languages
French (fr)
Inventor
Mukesh Kapila
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Halliburton Energy Services Inc
Original Assignee
Halliburton Energy Services Inc
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Halliburton Energy Services Inc filed Critical Halliburton Energy Services Inc
Priority to NO20211223A priority Critical patent/NO20211223A1/en
Priority to CA3133144A priority patent/CA3133144C/en
Priority to GB2113197.4A priority patent/GB2596018B/en
Publication of WO2020236226A1 publication Critical patent/WO2020236226A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21BEARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B21/00Methods or apparatus for flushing boreholes, e.g. by use of exhaust air from motor
    • E21B21/06Arrangements for treating drilling fluids outside the borehole
    • E21B21/063Arrangements for treating drilling fluids outside the borehole by separating components
    • E21B21/065Separating solids from drilling fluids
    • E21B21/066Separating solids from drilling fluids with further treatment of the solids, e.g. for disposal
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D1/00Evaporating
    • B01D1/0064Feeding of liquid into an evaporator
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D1/00Evaporating
    • B01D1/22Evaporating by bringing a thin layer of the liquid into contact with a heated surface
    • B01D1/222In rotating vessels; vessels with movable parts
    • B01D1/223In rotating vessels; vessels with movable parts containing a rotor
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D3/00Distillation or related exchange processes in which liquids are contacted with gaseous media, e.g. stripping
    • B01D3/02Distillation or related exchange processes in which liquids are contacted with gaseous media, e.g. stripping in boilers or stills
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D3/00Distillation or related exchange processes in which liquids are contacted with gaseous media, e.g. stripping
    • B01D3/10Vacuum distillation
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D3/00Distillation or related exchange processes in which liquids are contacted with gaseous media, e.g. stripping
    • B01D3/10Vacuum distillation
    • B01D3/105Vacuum distillation with the use of an ejector for creating the vacuum, the ejector being placed between evaporator or distillation devices
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D5/00Condensation of vapours; Recovering volatile solvents by condensation
    • B01D5/0057Condensation of vapours; Recovering volatile solvents by condensation in combination with other processes
    • B01D5/006Condensation of vapours; Recovering volatile solvents by condensation in combination with other processes with evaporation or distillation
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D5/00Condensation of vapours; Recovering volatile solvents by condensation
    • B01D5/0057Condensation of vapours; Recovering volatile solvents by condensation in combination with other processes
    • B01D5/0069Condensation of vapours; Recovering volatile solvents by condensation in combination with other processes with degasification or deaeration
    • CCHEMISTRY; METALLURGY
    • C10PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
    • C10BDESTRUCTIVE DISTILLATION OF CARBONACEOUS MATERIALS FOR PRODUCTION OF GAS, COKE, TAR, OR SIMILAR MATERIALS
    • C10B47/00Destructive distillation of solid carbonaceous materials with indirect heating, e.g. by external combustion
    • C10B47/28Other processes
    • C10B47/32Other processes in ovens with mechanical conveying means
    • C10B47/44Other processes in ovens with mechanical conveying means with conveyor-screws
    • CCHEMISTRY; METALLURGY
    • C10PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
    • C10BDESTRUCTIVE DISTILLATION OF CARBONACEOUS MATERIALS FOR PRODUCTION OF GAS, COKE, TAR, OR SIMILAR MATERIALS
    • C10B53/00Destructive distillation, specially adapted for particular solid raw materials or solid raw materials in special form

Definitions

  • the present disclosure relates to methods and systems involving separation of liquids and solids.
  • Treatment fluids are used in a variety of operations that may be performed in subterranean formations.
  • the term“treatment fluid” will be understood to mean any fluid that may be used in a subterranean application in conjunction with a desired function and/or for a desired purpose.
  • the term“treatment fluid” does not imply any particular action by the fluid.
  • Treatment fluids often are used in, e.g Grav well drilling, completion, and stimulation operations. Examples of such treatment fluids include, among others, drilling fluids, well cleanup fluids, workover fluids, conformance fluids, gravel pack fluids, acidizing fluids, fracturing fluids, spacer fluids, and tire like.
  • Treatment fluids are used in well drilling, a process Used in penetrating formations that produce oil and gas.
  • a drilling fluid also known as a drilling mud
  • a string of pipe e.g., casing
  • the drilling fluid in the wellbore may be conditioned by circulating the fluid downwardly through the Interior of the pipe and upwardly through the annulus between the exterior of the pipe and the Walls of the well bore.
  • the drill bit During the drilling process, the drill bit generates drill cuttings (eg;, rocks, sand, shale grit) as it forms the well bore,
  • the drill cuttings may become suspended or mixed in the drilling fluid and carried in a return flow stream of the drilling fluid back to the well drilling platform.
  • the drill cuttings may then be separated from the bulk of the drilling fluid via a separation process to generate an oily drill cutting slurty. After removing the drill cuttings therefrom, one or more components of the drifting fluid may be re-used in other treatmen t operations.
  • Heating beyond the boiling point of each component of the liquid of the slurry may be less efficient and may require superheating the water vapor (steam) » requiring additional energy. Additionally, higher vapor temperatures may lead to cracking of the hydrocarbon vapors into lower carbon chain hydrocarbons, which may cause breakdown or destruction of drilling fluid additives (e.g., emulsifiers, wetting agents, etc.). This may also lead to the generation of foul and low odor threshold compounds Such as aldehydes, ketones and Sulphur-based compounds. In addition, benzene, toluene, ethylbenzene and xylene (BTEX compounds) may be generated along with non condensable gases.
  • drilling fluid additives e.g., emulsifiers, wetting agents, etc.
  • the vapors are removed from the desorption vessel by negative pressure applied by a blower downstream of the condensing vessel.
  • blowers may he damaged by liquid or solid mist or slugs of fluid, such a configuration may require equipment sueh as knock out vessels, filters and demisters before and after the blower, raising energy requirements and cost.
  • Figure 1 is a schematic diagram of a thermal desorption System in accordance with certain embodiments of the present disclosure.
  • Figure 2 is a schematic diagram of a thermal desorption system in accordance with certain embodiments of the present disclosure.
  • Figure 3 is a schematic diagram of a thermal desorption system including multiple eductors in parallel and a condensed vapors and motive cooling fluid header according to certain embodiments of the present disclosure.
  • Figures 4A, 4B, 4C, 4D depict an equipment layout for a thermal desorption system including an insert for a cascading degasser according to certain embodiments of the present disclosure
  • Figure 5 is a schematic diagram of a thermal desorption process flow in accordance with certain embodiments of the present disclosure.
  • Figure 6 is a side; view of an equipment layout tor a thermal desorption system according to pertain embodiments ofthe present disclosure.
  • Figure 7 depicts a top view of an equipment layout for a thermal desorption system according to certain embodiments ofthe present disclosure.
  • Figure 8 depicts ah equipment layout tor a thermal desorption system including a cascading degasser according to certain embodiments of the present disclosure.
  • Figure 9 is a diagram illustrating an example of a wellbore drilling assembly that may be used in accordance with certain embodiments of the present disclosure.
  • FIGS. 10A, 10B, 10C are schematic diagrams of vapor outlets for a thermal desorption system in accordance with certain embodiments ofthe present disclosure.
  • the present disclosure relates to methods and systems involving separation of liquids and solids. Specifically, in certain embodiments, the present disclosure relates to thermal desorption of an oily slurry.
  • the systems of the present disclosure may include a desorption vessel including an inner chamber; a heating unit disposed adjacent to the desorption vessel configured to beat a slurry includingsolids and oil disposed in the inner chamber of the desorption vessel; and a plurality of vapor outlets in fluid communication with the inner chamber of the desorption vessel, wherein each vapor outlet is in fluid communication with a condenser or an eductor for condensing vapors generated by heating the slurry .
  • the methods of the present disclosure may include heating a slurry including Oil and solids in adesorption vessel to convert at least a portion of the oil in the slurry to oil vapor; removing at least a first portion of the oil vapor from the desorption vessel at a first oil vapor outlet; and removing at least a second portion of the oil vapor from the desorption vessel at a second oil vapor outlet.
  • foe systems of the present disclosure may include a desorption vessel including an inner chamber ; a heating unit surrounding dtheesorption vessel and configured to beat a slurry including solids and oil disposed in the inner chamber of th deesorption vessel; a plurality of vapor outlets in fluid communication with the inner chamber of th deesorption vessel; and a plurality of eductors configured to condense vapors from the plurality of vapor outlets, wherein each vapor outlet is coupled to an eductor.
  • the system and methods of th peresent disclosure may convert a substantially continuous feed of a slurry including oil and solids (e.g, drill cuttings) into substantially oil-free solids and vapor by heating the slurry in a desorption vessel.
  • the slurry may also include water and/or other liquid components.
  • the vapors separated from the slurry may exit the vessel at a plurality of vapor outlets disposed along the length of the desorption vessel .
  • the desorption vessel may be operated under negative pressure. The negative pressure may facilitate the removal the vapors as they are generated and increase desorption of liquids from the solids in the slurry.
  • the present disclosure may provide improved thermal desorption of oily solids at a relatively low energy requirement.
  • the systems and methods of the present disclosure substantially eliminates the comingling of vapors, providing several benefits, For example, substantially eliminating comingling may avoid the need to superheat steam to prevent premature condensing of hydrocarbon vapors.
  • the specific energy needed to desorb the liquid fractions of ' oily solids is lower when the vapors are not comingled prior to condensation. Additionally, since the beat transfer surface area and Overall heat transfer is fixed, a lower energy requirement results in an increased feed rate.
  • the methods and systems of the present disclosure may, in certain embodiments, remove the need tor a blower as well as knock out vessels and demisters to remove vapors upstream of the blower, In certain embodiments, removing blowers, knock out vessels, and demisters may reduce upset conditions, reduce equipment reduce the need for managing collected fluids, and reduce equipment footprint.
  • an eductor operates by generating suction due to the venturi effect by using a motive fluid passing through a narrowed or tapered pipe in the eductor, increasing the pressure of the motive fluid as if enters the eductor and thereby applying suction to an opening or other pipe or hose attached to the eductor.
  • the use of eductors may allow the use of significantly smaller vessels compared to typical quench vapor condensing vessels.
  • eductors may be more tolerant of solids in the cooling fluid than typical vessels, reducing problems with frequently plugged nozzles.
  • eductors may include openings of 20 mm or more compared to typical nozzles which have openings of 2 mm or less.
  • eductors may be tower cost and adaptable to attach to hard piping or hose. Attaching eductors to hose, for example, may be useful when vapors arc removed from a desorption vessel that expands due to thermal expansion eliminating the need for bellows expansion joint.
  • the use of eductors may reduce hydrocarbon cracking by eliminating or reducing the overheating of hydrocarbon vapors when comingled with lower temperature steam to prevent premature condensing,
  • he use of eductors and multiple vapor outlet points may reduce the distance the hydrocarbons must travel before condensing. This shorter residence time may result to less cracking of hydrocarbons.
  • a system of the present disclosure may include a desorption vessel including a plurality of vapor outlets and aheating unit disposed adjacent to or surrounding the desorption vessel.
  • the heating unit may, to certain embodiments, be configured to heat, directly or indirectly, a slurry including solids and oil disposed in an inner chamber of the desorption vessel.
  • each vapor outlet is in fluid communication with a condenser or an eductor for condensing vapors generated by heating the slurry.
  • an eductor may be coupled to each vapor outlet.
  • the desorption vessel may include a conveyor system (eg;, a conveyor belt, auger, or the like) to convey a substantially continuous slurry feed through the desorption vessel.
  • condensed vapors fromthe eductors or condensers may flow into a degasser unit that may allow for the release of at least a portion of gases (e.g., non-condensable gases) present inthe condensed vapors.
  • An oil/wafer separator may be fluidically coupled to the degasser unit and configured to substantially separate the degassed condensed vapors into a substantially oil-based fluid and a substantially aqueous fluid.
  • the degasser unit may be omitted from the system and the condensed vapors may flow directly to the oil/water separator.
  • a thermal desorption system 101 may include a teed of a stony 102 into a desorption vessel 103,
  • the desorption vessel 103 may be a fixed horizontal steel tube with an conveyor system 104 that moves teed material through the length ofthe tube.
  • the slurry may include, but is not limited to oil (e g., hydrocarbons), solids, an aqueous fluid (e g ⁇ , water. saltwater, brine), and any combination thereof.
  • the slurry may also include other drilling fluid additive and/or contaminants from formations fluids.
  • the solids inthe slurry may include, but are not limited to drill cuttings, formation materials, treatment fluid additives, or any other wellbore materials.
  • the slurry may include 40% or less, 30% or less, or 20% or less oil try weight ofthe slurry, in some embodiments, the slurry may include between from about 5% to about 40% oil by weight ofthe slurry. In certain embodiments, the slurry may include 30% or less, 15% or less, or 5% or less water by weight of the slurry. In some embodiments, the slurry may tool ude between from about 0.01% to a bout 30% water by weight of the slurry. In certain embodiments, the slurry may include an oil:water:solids ratio of 15: 10:75 percent by weight. In certain embodiments, drilling cuttings may include a drilling fluid wife liquid compounds having boiling points from about 100 e C to about 300°C.
  • the slurry is fed through the desorption vessel 103 by a conveyor system 104,
  • the conveyor system 104 may include an auger, screw, or other component sufficient to convey the slurry along the length of the desorption vessel 103.
  • the slurry traveling through the desorption vessel i 03 is heated by heat supplied by the heating unit 107.
  • the desorption vessel 103 may be disposed within the heating unit 107 so that the heating unit 107 surrounds the desorption vessel 103.
  • the slurry in the desorption vessel is indirectly heated by the heating unit 107 through the walls of the desorption vessel 103.
  • the heating unit 107 may be a combustion system including a firebox and burners.
  • the heating unit 107 may be a combustion system that runs on feel.
  • at ieasta portion of the feel fed to the heating unit may include oil and/or non-condensable gas separated from the slurry.
  • at least a portion of the condensed oil vapor from the slurry is condensed and then fed to the heating unit to serve as fuel.
  • the heat from fee heating unit 107 increases the temperature of the shirty in the desorption vessel 103 enough to generate sufficient vapor pressure to separate the liquids of the slurry from the solids, generating vapor.
  • the temperature of the shiny increases as if. advances along the length of the desorption vessel 103 from the feed inlet 102 to fee solids outlet 106; As the temperature of the shiny increases, liquid components in the slurry are volatilized, generating vapors 111, 112.
  • the desorption vessel 103 may include a plurality of vapor outlets 108a-d. Although depicted as having four vapor outlets I08a-d in Figure 1, in certain embodiments, a desorption vessel 103 of the present disclosure may include from 2 to 20 vapor outlets.
  • each vapor outlet I QSa-4 may be selected;, based, at least in part, on fee energy required to volatilize fee liquid based on the temperature required to reach boiling point.
  • Lower temperature vapors 111 are generated first as the temperature of fee slurry increases, and exit fee desorption vessel 103 at the vapor outlets 108a and 108b.
  • lower temperature vapors 111 may primarily include vapors of liquid components of fee slurry with relatively lower boiling points.
  • the lower temperature vapors 111 may include a significant portion of an aqueous phase of fee slurry (e.g, water, seawater, brine).
  • lower temperatures vapors 111 may include lower molecular weight hydrocarbons including, but not limited to hexane, heptane, octane, and the like.
  • the higher temperature vapors 112 may primarily include liquid components of the slurry with higher boiling points» including, but not limited to fuel oil, lubricating oil, bitumen, a high molecular weight hydrocarbon, and any combination thereof.
  • the vapor outlets 108a-d may be positioned such that the vapors 111 exiting tite first vapor outlet 108a are primarily aqueous vapor, the vapors 111 exiting the second vapor outlet 108b are primarily low molecular weight hydrocarbons, and the vapors 112 exiting the other vapor outlets 108c,d are higher molecular weight hydrocarbons.
  • the desorption process may also generate one or more non-condensable gases. These non-condensable gases along with any ambient air in the desorption vessel may also exit through the vapor outlets 108a-d.
  • the desorption vessel 103 and the vapor outlets 108a-d may be operated at: a negative pressure.
  • the desorption vessel 103 may be operated at a slight negative pressure (e.g., less than 1 inch of mercury).
  • operating the desorption vessel 103 and the vapor outlets 108a-d at negative pressure may increase the volatilization of the liquids in tite slurry and may remove the vapors through tire closest vapor outlet 108a-d.
  • negative pressure may be applied, for example, byablower downstream of the vapor outlets.
  • negative pressure is applied to tire vapor outlets 108a-d and the desorption vessel 103 by a series of eductors 1 Q9a-d fluidical ly coupled to the vapor outlets 108a-d.
  • the vapor outlets 108a-d may be connected to the eductors 109a-d.
  • the vapors 1 11, 112 may be condensed in the eductors 109a-d using a motive fluid 117.
  • the motive fluid 117 flows flora a motive fluid header 110 and passes through the eductors 109a-d.
  • the motive fluid flow may, in certain embodiments, apply a negative pressure to the vapor outlets 108a ⁇ d, removing the vapors 111, 1 12 generated in the desorption vessel 103, ln some embodiments, the negative pressure and the motive fluid 117 flow may also condense the vapors 111 , 112,
  • the motive fluid may include water, an oil/water mixture, and oil/water/sotid fines slurry, and any combination thereof
  • the flow rate and pressure of the motive fluid 117 flowing through the eductors t09a-d may, in certain embodiments, be selected based, at least in part, on, at least one of the desired negative pressure and fully condensing the vapors 11 1, 112.
  • the pressure of the motive fluid 117 may be set at a flow rate and a pressure sufficient to create a negative pressure in the desorption vessel 103 While substantially or completely condensing the vapors 111, 112.
  • the mass flow rate of .the motive fluid is significantly higher than the mass flow rate of Hie vapors, and is sufficiently higher than the mass flow rate of the vapors that the vapors are completely condensed.
  • motive fluid flow rate may be set around 10 times the flow rate by mass of the vapor in the vapor outlet 108a ⁇ d.
  • the pressure of the motive fluid may be from about ,30 to about 80 psi, from about 20 to about 90 psi, or from about 10 to about 100 psi.
  • the eductors 109a-d may evacuate all vapors flowing into them, including non-condensable gases and leakage air.
  • the non-condensable gases may be entrained in the liquid in the form of microbnhbles and/or dissolved. In certain embodiments, these non-condensable gases may be liberated from the fluid over time.
  • the fluid exiting the eductors 113a-d may include the condensed vapors, motive fluid, and/or non-condensable gases. As depicted in Figure 1, the fluid exiting each eductor 113a-d may be combined into a single stream 114 for further treatment and separation. Alternatively, in certain embodiments, the fluid exiting each eductor 113a-d could be treated separately, or some subset of tile fluids could be treated together.
  • condensers could be used in place or in addition to the eductors 109a-d to condense the vapors 111, 112.
  • the vapors 111 , 112 may he condensed using spray condensers or any other suitable condenser.
  • the separated solids After passing through the desorption process, the separated solids exit the desorption vessel 103 at the outlet 106.
  • the separated solids may be discharged into a separate vessel or collection auger (hot shown).
  • the separated solids may include less than 1% oil by weight, or less than 1% liquid by weight.
  • the vapors volatilized by the increase in temperature may also include a mist (e.g., liquid droplets suspended in the vapors) and/or fine particles suspended in the vapors.
  • a mist e.g., liquid droplets suspended in the vapors
  • fine particles suspended in the vapors may be removed.
  • one or more cyclones 215a, 215b may be fluidieaHy connected to one or more vapor outlets 208a, 208b so that the vapors 21 I, 212 pass through the cyclones 215a, 215b and the particle fines are removed.
  • the particle fines settled out of the cyclones 215a, 215b may be removed by fine particles removal systems 216a, 216b.
  • the position of each vapor outlet 108a-d for the desorption vessel 103 may be selected, based, at least in part on the energy required to volatilize one or more components of the liquid of the slurry.
  • the energy required to volatize each of the one or more compounds may be determined based on the temperature required to reach boiling point.
  • the vapor outlets for a hypothetical desorption vessel treating a slurry including a liquid including two components, Compound A and Compound B may be selected by calculating the energy required to volatize Compound A and Compound B.
  • a first vapor outlet for Compound A may be positioned about 30% of the distance along the length of the desorption vessel, A second vapor outlet: to remove Compound B vapors may be more than 30% and less than 100% of the distance along the length of the desorption vessel.
  • the second vapor outlet may be positioned 70% of the distance along the length of the desorption vessel.
  • the vapor outlets of a desorption vessel may be calculated by dividing the length of the desorption vessel into two desorption zones: a water zone and a hydrocarbon zone.
  • the water desorption zone may include a first vapor outlet for water vapor and the hydrocarbon desorption zone may include one or more vapor outlets for hydrocarbons.
  • the hydrocarbon zone may have multiple vapor outlets distributed according to the weighted carbon chain distribution (or potentially distributed over that zone’s distanee).
  • the carbon chain distribution of the hydrocarbons from a gas chromatograph may be a good indicator of boiling points and mass fraction, and the weighted distribution of the hydrocarbons may be used to determine location of the vapor outlets along the length of a desorption vessel.
  • Figure 3 depicts a diagram of a system including multiple eductors in parallel and a condensed vapors and motive cooling fluid header according to certain embodiments of the present disclosure.
  • Motive fluid from a motive cooling fluid header 310 flows through a series of parallel eductors 309a-d fiuidically coupled to vapor outlets 308a-d from a desorption vessel (not drown).
  • the motive fluid and condensed vapors extiing the eductors 309a-d flow separately into the condensed vapors and motive cooling fluid header 314.
  • This configuration allows for the multiple eductors 309a-d placed in parallel to be independently turned on or off using valves 330a-d as required to adjust the vapor outlets of a vapor desorption vessel based on variable content of the liquid in a feed slurry.
  • a modular vapor desorption vessel may include a series of optional vapor outlets distributed along the length of the vessel.
  • the optional vapor outlets may be plugged or closed by a valve when not in use, or connected to an eductor or other condenser when in use,
  • the eductors of the modular vapor desorption vessel may be connected in series (as shown in Figure 1 ) or in parallel (as shown in Figure 3) to the condensed vapors and motive cooling fluid header.
  • the condensed vapors and motive cooling fluid header 314 may serve as a degasser and separator.
  • the present disclosure includes a method of degassing the motive cooling fluid and the condensed vapors in a compact maimer utilizing gravity flow that encompasses the existing pipe between the eductor horizontal header and an oil/water separator (referred to herein as the cascading degasser).
  • the motive fluid, condensed vapors, and any entrained non-condensable gases flow from the eductors 309a-d into the condensed vapors and motive cooling fluid header 314, where the liquid (e g., condensed vapors and motive cooling fluid) are separated from the non-condensable gases.
  • the condensed vapors and motive cooiing fluid header 314 may include a substantially horizontal tube 332 and may connect to a cascading degasser 334.
  • the fluids from the eductors 309a-d are introduced into the horizontal portion 332, where the liquids: and non-condensable gases at least partially separate.
  • the non-condensable gases exit the gas outlet 336 and the liquids in the header 314 cascade down the cascading degasser 334.
  • gases may separate from the liquid as it cascades down the cascading degasser 334 and may exit the gas outlet 336, providing further liquid/gas separation.
  • the degassed liquid may exit at any liquid outlet 338 near tile bottom of tire cascading degasser 334.
  • the degassed liquid may flow to an dil/water separator (not shown) to separate the liquid into water and oil,
  • the separated water may be fed back to the motive fluid header 310 for refuse as a motive cooling fluid.
  • the separated oil may be used as fuel for t hheeating unit 307, disposed of, or re-used in another treatment fluid.
  • the cascading degasser 334 of the header 314 includes one or more degassing inserts that increases degassing ofthe liquid as it flows down in the cascading degasser 334.
  • a degassing insert may allow the fluid to cascade and spread over the surface, creating a fob film Which promotes the degassing and coalescence of microhubbies.
  • degassing inserts 440 may be spaced apart along the length of the cascading degasser 434.
  • a rod 442 may connect the inserts 440,
  • the degassing inserts 440 may have a profile 441 including openings 443 to blow liquid to pass through and oyer th deegassing insert 440 as it cascades down the the ascading degasser 434.
  • the degassing insert 440 may be a semicircular insert with a profile 441 including a plurality of rectangular openings.
  • the degassing insert 440 may be placed along the bottom of degassing chamber. In some embodiments, the degassing insert 440 may fill 60% or less of the cross-sectional volume of the cascading degasser 434.
  • the remaining cross-sectional volume 444 may be headspace that provides a passageway for gases to flow to the exit atthe lop of the header (e.g., 614 of FIG. 8).
  • the mist may be allowed to naturally coalesce on the interior upper un- wetfed portion of the header 414 or simply settle into the free-flowing fluid by gravity.
  • the diameter of the cascading degasser 434 is such that the flow of the degassed vapors is at least 0.5 m/sec. In some embodiments, the diameter of the cascading degasser 434 is selected to ensure that there is no retrainment of fluid in the gas stream in the headspace.
  • Figure 5 depicts a process flow including an eductor and no blowers according to certain embodiments of the present disclosure-
  • the oily slurry 502 is treated in the desorption vessel 503 and separated into desorbed solids 506 and volatilized compounds 511, which may include, but is not limited to vapors (e g. , water vapor, oil vapor), mist, and non-condensable gases.
  • One or more eductors 509 apply negative pressure to the desorption vessel 503 and condense the vapors generated in the desorption vessel 503.
  • the mist and non-condensable gases generated in the desorption vessel 503 may be entrained and/or dissolved in the motive fluid of the one or more eductors 509.
  • the combined fluids exiting the one or more eductors 509 may enter a condensed vapor and motive fluid header 514.
  • Mon-condensable gases separated in the condensed vapor and motive fluid header 514 may be passed through an oxidizer or filter 518 and optionally a fcnock out or demister vessel 519 prior to venting to the atmosphere or to a static 520. Fluids from the condensed vapors and motive fluid header 514, the optional knock out or demister vessel 519, and/or the oxidizer or filter 518 may be combined and flow to an oil/water separator 521
  • Figures 6 through 8 depict examples of equipment layouts for certain embodiments of the present disclosure.
  • Figure 6 depicts a side view of an equipment layout for a thermal desorption system 601 according to certain embodiments of the present disclosure.
  • a condensed vapor and: motive fluid header 61# is positioned on top of heating unit 607, which surrounds a desorption vessel (not shown).
  • Header fluid inlets 621 in the substantially horizontal portion 632 of the header 614 are connectable to motive fluid and condensed vapors flowing from one or mere eductors connected to vapor outlets of the desorption vessel (not shown).
  • a feed hopper 622 recei ves the .slurry for introduction into the desorption vessel.
  • the non-condensable gases exit the header 614 via the gas outlet 636 and optionally pass through a demister or knock out vessel 619.
  • the ⁇ noti- eondensable gases flow to non-condensable gas valves 623 to be further routed or processed (as shown in more detail in Figure 7).
  • Figure 7 depicts a top view of an equipment layout for the thermal desorption system 601 of Figure 6, according to certain embodiments of the present disclosure.
  • Burners 624 are positioned around the heating unit 607.
  • the vapor outlets 608 from the desorption vessel within the heating unit 607 are connected to eductors 609.
  • Motive fluid flows from a motive fluid teed 610 through the eductors 609.
  • the motive fluid and condensed vapors exiting the eductors 609 flows to the condensed vapor and motive fluid header 614.
  • the liquid in the header 614 flows down the cascading degasser 634 from the header 614 to an oWwater separator (hot shown).
  • the gas valves 623 direct the gas either through a first line 626 to the heating unit 607 as fuel for the burners 624 or through a second line 627 for discharge via the stack 625.
  • the desorption vessel may be modular.
  • the vapor outlets 608 and eductors 609 distributed along the length of the vessel may be selectively opened or closed (e.gstria with one or mote outlet valves) to adjust the configuration and positioning of the active vapor outlets.
  • the configuration of the active vapor outlets 608 may be determined based, at least in part, on the composition of the slurry.
  • Figure 8 depicts an end view of an equipment layout for the thermal desoiption system 601 including a cascading degasser 634,
  • the liquid in the header 614 flows down the cascading degasser 634 from the header 614 to an oil/water separator 628,
  • the cascading degasser 634 includes the inserts 640 shown in Figure 4.
  • the desorption systems and methods of the present disclosure may be associated with an exemplary wellbore drilling assembly 1, according to one or more embodiments.
  • Figure 9 general
  • y depicts a land-based drilling assembly
  • the principles described herein are equally applicable to subsea drilling operations that employ floating or sea-based platforms and rigs, without departing from the scope of the disclosure,
  • the methods and systems of the present disclosure may be performed at the same location as the drilling assembly 1 of Figure 9 orat a different location (e.g,, a remote location).
  • the drilling assembly 1 may include a drilling platform 2 that: supports a derrick 4 having a traveling block 6 for raising and lowering a drill string 8.
  • the drill string 8 may include, but is not limited to, drill pipe and coiled tubing, as generally known to those skilled in the art
  • a kelly 10 supports the drill string 8 as it is lowered through a rotary table 12.
  • a drill bit 14 is attached to the distal end of the drill string 8 and is driven either by a downhole motor and/or via rotation of the drill string 8 from the well surface. As the bit 14 rotates, it creates a wellbore 16 that penetrates various subterranean formations 18.
  • a pump 20 (e g., a mud pump) circulates wellbore fluid 22 (e.g, a drilling fluid) through a feed pipe 24 and to the kelly 10, which conveys the wellbore fluid 22 downhole through the interior of the drill string 8 and through one or more orifices in the drill bit 14 (or optionally through a bypass or ports (not shown) along the drill string and above the drill bit 14).
  • the wellbore fluid 22 is then circulated back to the surface via an annulus 26 defined between the drill string 8 and tire walls of the wellbore 16, At the surface, the recirculated or spent wellbore fluid 22 exits the annulus 26 and may be conveyed to one or more fluid processing unit(s) 28 via an interconnecting flow line 30.
  • the systems and methods of the present disclosure may receive fluids produced while drilling.
  • the fluid processing unit(s) 28 may include the desorption vessel, heating units, and/or other components of the methods and systems of the present disclosure, as described herein, in addition, the fluid processing unit(s) 28 which may also include, but is not limited to, one or more of a shaker ⁇ e.g., shale shaker), a centrifuge, a hydrocyclone, a separator (including magnetic and electrical separators), a desilter, a desander, a separator, a filter (e.g., diatomaccous earth filters), a heat exchanger, and any additional fluid reclamation equipment
  • the fluid processing unit(s) 28 may further include one or more sensors, gauges, pumps, compressors, and the like.
  • a“cleaned” wellbore fluid 22 is deposited into a nearby retention pit 32 (e.g., a mud pit). While illustrated as being arranged at the outlet of the wellbore 16 via the annulus 26, those skilled in the art will readily appreciate that the fluid processing unit(s) 28 may be arranged at any other location in the drilling assembly 1 to facilitate its proper function, without departing from the scope of the scope of the disclosure. Additives may be added to the wellbore fluid 22 via a mixing hopper 34 communicably coupled to or otherwise in fluid communication with the retention pit 32.
  • the mixing hopper 34 may include, but is not limited to, mixers and related mixing equipment known to those skilled in the art In other embodiments, however, additives may be added to the wellbore fluid 22 at any other location in the drilling assembly 1. In at least one embodiment, for example, them could be more than one retention pit 32, such as multiple retention pits 32 in series.
  • An embodiment of the present disclosure is a system including a desorption vessel including an inner chamber; a heating unit disposed adjacent to the desorption vessel configured to heat a slurry including solids and oil disposed in the inner chamber of the desorption vessel; and a plurality ofvapor outlets in fluid communication with the inner chamber of the desorption vessel, wherein each vapor outlet is in fluid communication with a condenser or an eductor for condensing vapors generated by beating the slurry.
  • the desorption vessel includes a conveyor capable of feeding the slurry through the desorption vessel.
  • the slurry includes solids, oil, and water.
  • the desorption vessel is configured to operate at a negative pressure.
  • the plurality of vapor outlets are spaced apart along a length of the desorption vessel. In one m more embodiments described above, one or more of the plurality of vapor outlets may be opened Of dosed by one or more outlet valves.
  • the system further includes a cascading degasser unit including a degassing insert in fluid communication with the condensed vapors from the condensers or eductors.
  • Another embodiment of the present disclosure is a method including heating a slurry including oil and solids in a desorption vessel to convert at least a portion of the oil in the slurry to oil vapor* removing at least a first portion of the oil vapor from the desorption vessel at a first oil vapor outlet; and removing at least a second portion of the oil vapor from the desorption vessel at a second oil vapor outlet.
  • the method further Includes condensing at least some of the first portion of the oil vapor. In one or more embodiments described above, the method further includes condensing at least some of the first portion of the oil vapor in a first eductor in fluid communication with the first oil vapor outlet In one or more embodiments described above, the method further includes selecting the position of at least one of the first oil vapor outlet and the second oil vapor outlet based, at least in part, on the composition of tire slurry, lit one or more embodiments described above, the method further includes opening or closing one or more vapor outlets using one or more outlet valves based, at least in part, on the selection of the position of the first oil vapor outlet and the second vapor outlet.
  • the slurry includes an aqueous fluid and the method further includes allowing at least a portion of the aqueous fluid to convert to aqueous vapor in response to the heating. In one or more embodiments described above* the method further includes removing the first portion and second portion of the oil vapor includes applying a negative pressure to the desorption vessel using one or more eductors.
  • Another embodiment of the present disclosure is a system including a desorption vessel including an inner chamber; a heating unit surrounding the desorption vessel and configured to heat a slurry including solids and oil disposed in the inner chamber of the desorption vessel; a plurality of vapor outlets in fluid communication with the inner chamber of the desorption vessel; and a plurality of eductors configured to condense vapors from tile plurality of vapor outlets, wherein each vapor outlet is coupled to an eductor.
  • the desorption vessel includes a conveyor capable of feeding the slurry through the desorption vessel.
  • the slurry includes solids, oil, and water.
  • the desorption vessel is configured to operate at a negative pressure generated by the plurality of eductors, in one or more embodiments described above, the plurality of vapor outlets are spaced apart along a length of the desorption vessel. In one or more embodiments described above, one or mere of the plurality of vapor outlets may be selectively opened or closed by one or more outlet valves.
  • the total energy required for the desorption of the slurry was calculated by summing (i) the energy required to heat and volatilize the hydrocarbons, (u) the energy required toheatand volatize the water, and (iii) the energy requited to heat the solids. These calculations are shown in Tables 1 and 2 he tow, with the energy requirements based on known specific heats and heats or vaporization.
  • the specific energy required to desorb the slurry is 159 Watt- hour per kilogram (W h/kg) for a desorption system dial comingles the vapors and 149 W h/kg for a desorption system that does not cominglethe vapors, This shows that whenthe vapors are extracted without comingling (e.g, no superheating ofthe steam), the specific energy required to desorb an oily slurry is reduced by 6 % as compared with a method and system in which the vapors comingle prior to condensation.
  • the energy required to desorb the liquid is calculated as 33 W-h/kg for the hydrocarbons and 71 W-h/kg for the water. This means that 68% of the energy required for desorption is used to vplatize the water and 32% is used to volatize the hydrocarbons, 'fhe 13 m length of the desorption vessel 1040 was divided into a water desorption zone 1041 that covers about 68% of the length of the vessel (8.86 m) and a hydrocarbon desorption zone 1042 that covers the remaining length of the vessel (4.14 m).
  • the first vapor outlet was selected to be in the water desorption zone 1041, which isthe first 8.86 m ofthe length of the desorption vessel 1003.
  • the midpoint between 0 and 8.86 m was selected for Ihe first vapor outlet to minimize the distance the water vapors travel prior to removal. This is shown as the first vapor outlet 1008a in Figure lOA.
  • the second vapor outlet 1008b was placed at the midpoint of the hydrocarbon desorption zone 1041, or 2.07 m from the end of the desorption vessel 1003.
  • Table 3 shows the results of example calculations of the Vapor outlets using two other methods, an equal hydrocarbon separation method and a weighted hydrocarbon method
  • the same slurry from Example 1 was used for each of these, mid the water desorption zone and first vapor outlet is the same.
  • the difference in these methods concerns the placement of the vapor outlets in the hydrocarbon desorption zone.
  • the oil phase of the liquid in the slurry includes four hydrocarbons HC-1 through HC-4 with different boiling points, hydrocarbons being numbered in order of increasing boiling points.
  • the vapor outlets may be determined by subdividing the hydrocarbon desorption zone 1042 into four equal hydrocarbon zones (each 1.04 m in length), and positioning the vapor outlets at the midpoint of each of those zones. Vapor outlets selected using this method are depicted in Figure 10B and listed below in Table 3.
  • the hydrocarbon desorption zone was subdivided into four equal hydrocarbon zones 1.04 m in length, and vapor outlets 1008c-g were then positioned at the midpoint of each subdivided desorption zone to arrive at the vapor outlets 1008c-g shown in Figure 10B and listed below 1 ⁇ 2 Table 3,
  • the vapor outlets may be determined by subdividing the hydrocarbon desorption zone 1042 according to a weighted distribution of hydrocarbons HC-1 through HC-4.
  • the example vapor outlets prepared using this method were determined for a weighted distribution of hydrocarbons HC-1 through HC-4 that have a Weight distribution of 10%, 30%, 50%, and 10%, respectively.
  • Vapor outlets selected using this method are depicted in Figure 10C and listed below in Table 3.
  • the hydrocarbon desorption zone was subdivided according to the weight distribution of the hydrocarbons. For example, 10% (0.41m) of the hydrocarbon zone was designated as tile desorption zone for HC-1, 30% (1,24m) ofthe hydrocarbon zone was designated asthe desorption zone for HC-2, etc.
  • Vapor outlets 1008h-I were then positioned at the midpoint of each subdivided desorption zone to arrive atthe vapor outlets 1008h-1 shown in Figure 10C and listed below in Table 3.

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Abstract

Methods and systems involving thermal desorption of an oily slurry are provided. In some embodiments, such systems include a desorption: vessel including, an inner chamber; a heating unit: disposed adjacent to the desorption vessel configured to heat a slurry including solids and oil disposed in the inner chamber of the desorption vessel; and a plurality of vapor outlets in fluid communication with the inner chamber of the desorption vessel, wherein each vapor outlet is in: fluid communication, with a condenser or an eductor for condensing vapors generated by heating the slurry.

Description

THERMAL DESORPTION OF OILY SOLIDS
CROSS-REFERENCE TO RELATED APPLICATION
The present application claims the benefit of U.S. Provisional Application No. 62/852,925, tried May 23, 2919 and D.S. Non-Provisional Application No. 16/741,993, filed January 13, 2929, which are incorporated herein by reference in their entirety for all purposes,
BACKGROUND
The present disclosure relates to methods and systems involving separation of liquids and solids.
Treatment fluids are used in a variety of operations that may be performed in subterranean formations. As referred to herein, the term“treatment fluid" will be understood to mean any fluid that may be used in a subterranean application in conjunction with a desired function and/or for a desired purpose. The term“treatment fluid" does not imply any particular action by the fluid. Treatment fluids often are used in, e.g„ well drilling, completion, and stimulation operations. Examples of such treatment fluids include, among others, drilling fluids, well cleanup fluids, workover fluids, conformance fluids, gravel pack fluids, acidizing fluids, fracturing fluids, spacer fluids, and tire like.
Treatment fluids are used in well drilling, a process Used in penetrating formations that produce oil and gas. In drilling a wellbore is drilled while a drilling fluid (also known as a drilling mud) is circulated through the well bote. After drilling the wellbore to a desired depth, a string of pipe, e.g., casing, may be run in the wellbore. The drilling fluid in the wellbore may be conditioned by circulating the fluid downwardly through the Interior of the pipe and upwardly through the annulus between the exterior of the pipe and the Walls of the well bore.
During the drilling process, the drill bit generates drill cuttings (eg;, rocks, sand, shale grit) as it forms the well bore, The drill cuttings may become suspended or mixed in the drilling fluid and carried in a return flow stream of the drilling fluid back to the well drilling platform. The drill cuttings may then be separated from the bulk of the drilling fluid via a separation process to generate an oily drill cutting slurty. After removing the drill cuttings therefrom, one or more components of the drifting fluid may be re-used in other treatmen t operations.
Various methods for removing hydrocarbons, water, and/or contaminants from drift cuttings have been employed. In some eases, indirect heal thermal desorption is applied to oily Water solids such as drill cuttings- respectively. In such a process, the temperature of slurry may increase to generate sufficient vapor pressure to separate oil and/or water from the solids (which may be inert), generating vapors that are separated from the solids. In certain thermal desorption methods, a cooled liquid is used to quench and condense the vapors. Different vessels in series with various cooling fluid temperatures may he used in these methods to preferentially condense high end boiling point carbon chains hydrocarbons along with steam.
However, these configurations of thermal: desorption may allow the comingling of low boiling point vapors (e.g„ water or lower boiling point hydrocarbons) and high boiling point vapors (e.g„ higher boiling point hydrocarbons) prior to condensation. In such cases, the high boiling point vapors may need to be heated beyond the boiling point required tor volatilization to prevent vapors from high boiling vapors from prematurely condensing when they are mixed with the lower boiling point vapors. Depending upon the placement of the vapors outlet points, either the low boiling point vapors will need to be further heated or the high boiling point vapors will need to be further heated to prevent premature condensing in the desorption chamber. In certain eases, the vapors are removed at a single point, typically near the inlet or the middle of the desorption vessel, resulting in overheating the higher boiling point hydrocarbons.
Heating beyond the boiling point of each component of the liquid of the slurry may be less efficient and may require superheating the water vapor (steam)» requiring additional energy. Additionally, higher vapor temperatures may lead to cracking of the hydrocarbon vapors into lower carbon chain hydrocarbons, which may cause breakdown or destruction of drilling fluid additives (e.g., emulsifiers, wetting agents, etc.). This may also lead to the generation of foul and low odor threshold compounds Such as aldehydes, ketones and Sulphur-based compounds. In addition, benzene, toluene, ethylbenzene and xylene (BTEX compounds) may be generated along with non condensable gases.
In certain processes, the vapors are removed from the desorption vessel by negative pressure applied by a blower downstream of the condensing vessel. However, because blowers may he damaged by liquid or solid mist or slugs of fluid, such a configuration may require equipment sueh as knock out vessels, filters and demisters before and after the blower, raising energy requirements and cost.
BRIEF DESCRIPTION OF THE DRAWINGS
These drawings illustrate certain aspects of some of tire embodiments of the present disclosure and should hot be used to lim it or define the claims.
Figure 1 is a schematic diagram of a thermal desorption System in accordance with certain embodiments of the present disclosure.
Figure 2 is a schematic diagram of a thermal desorption system in accordance with certain embodiments of the present disclosure.
Figure 3 is a schematic diagram of a thermal desorption system including multiple eductors in parallel and a condensed vapors and motive cooling fluid header according to certain embodiments of the present disclosure.
Figures 4A, 4B, 4C, 4D depict an equipment layout for a thermal desorption system including an insert for a cascading degasser according to certain embodiments of the present disclosure,
Figure 5 is a schematic diagram of a thermal desorption process flow in accordance with certain embodiments of the present disclosure.
Figure 6 is a side; view of an equipment layout tor a thermal desorption system according to pertain embodiments ofthe present disclosure.
Figure 7 depicts a top view of an equipment layout for a thermal desorption system according to certain embodiments ofthe present disclosure.
Figure 8 depicts ah equipment layout tor a thermal desorption system including a cascading degasser according to certain embodiments of the present disclosure.
Figure 9 is a diagram illustrating an example of a wellbore drilling assembly that may be used in accordance with certain embodiments of the present disclosure.
Figures 10A, 10B, 10C are schematic diagrams of vapor outlets for a thermal desorption system in accordance with certain embodiments ofthe present disclosure.
White embodiments of this disclosure have been depicted, such embodiments do not imply a limitation on the disclosure, and no such limitation should be inferred. The subject matter disclosed is capable of considerable modification, alteration, and equivalents ½ form and function, as will occur to those skilled in the pertinent art and having the benefit of tins disclosure. The depicted and described embodiments of this disclosure are examples only, and not exhaustive of the scope of the disclosure. DESCRIPTION OF CERTAIN EMBODIMENTS
Illustrative embodiments of the present disclosure are described in detail herein. In the interest of clarity, not all features of an actual implementation may be described in this specification. It will of course be appreciated that in the development of any such actual embodiment, numerous implementation-specific decisions may be made to achieve the specific implementation goals, which may vary from one implementation to another. Moreover, it will be appreciated that sueh a development effort might be complex and time-consuming, but would nevertheless be a routine undertaking for those of ordinary skill in the art having the benefit of the present disclosure.
The present disclosure relates to methods and systems involving separation of liquids and solids. Specifically, in certain embodiments, the present disclosure relates to thermal desorption of an oily slurry.
In certain embodiments, the systems of the present disclosure may include a desorption vessel including an inner chamber; a heating unit disposed adjacent to the desorption vessel configured to beat a slurry includingsolids and oil disposed in the inner chamber of the desorption vessel; and a plurality of vapor outlets in fluid communication with the inner chamber of the desorption vessel, wherein each vapor outlet is in fluid communication with a condenser or an eductor for condensing vapors generated by heating the slurry . In some embodiments, the methods of the present disclosure may include heating a slurry including Oil and solids in adesorption vessel to convert at least a portion of the oil in the slurry to oil vapor; removing at least a first portion of the oil vapor from the desorption vessel at a first oil vapor outlet; and removing at least a second portion of the oil vapor from the desorption vessel at a second oil vapor outlet.
in certain embodiments, foe systems of the present disclosure may include a desorption vessel including an inner chamber ; a heating unit surrounding dtheesorption vessel and configured to beat a slurry including solids and oil disposed in the inner chamber of th deesorption vessel; a plurality of vapor outlets in fluid communication with the inner chamber of th deesorption vessel; and a plurality of eductors configured to condense vapors from the plurality of vapor outlets, wherein each vapor outlet is coupled to an eductor.
In certain embodiments, the system and methods of th peresent disclosure may convert a substantially continuous feed of a slurry including oil and solids (e.g, drill cuttings) into substantially oil-free solids and vapor by heating the slurry in a desorption vessel. In some embodiments, the slurry may also include water and/or other liquid components. The vapors separated from the slurry may exit the vessel at a plurality of vapor outlets disposed along the length of the desorption vessel . The desorption vessel may be operated under negative pressure. The negative pressure may facilitate the removal the vapors as they are generated and increase desorption of liquids from the solids in the slurry.
Among the many potential advantages to tite methods, apparatus, and systems of the present disclosure, only some of which are alluded to herein, the present disclosure may provide improved thermal desorption of oily solids at a relatively low energy requirement. In certain embodiments, the systems and methods of the present disclosure substantially eliminates the comingling of vapors, providing several benefits, For example, substantially eliminating comingling may avoid the need to superheat steam to prevent premature condensing of hydrocarbon vapors. In certain embodiments, the specific energy needed to desorb the liquid fractions of' oily solids is lower when the vapors are not comingled prior to condensation. Additionally, since the beat transfer surface area and Overall heat transfer is fixed, a lower energy requirement results in an increased feed rate. Also, when the energy to superheat steam is no longer required, the cooling requirements for condensing the vapors is also reduced, reducing equipment and energy requirements. The methods and systems of the present disclosure may, in certain embodiments, remove the need tor a blower as well as knock out vessels and demisters to remove vapors upstream of the blower, In certain embodiments, removing blowers, knock out vessels, and demisters may reduce upset conditions, reduce equipment reduce the need for managing collected fluids, and reduce equipment footprint.
The use of eductors in one or more embodiments of the present disclosure may provide improved methods and systems for indirect thermal desorption of oi ly solids that avoid comingli ng of vapors. In certain embodiments, without wishing to be limited by theory, an eductor operates by generating suction due to the venturi effect by using a motive fluid passing through a narrowed or tapered pipe in the eductor, increasing the pressure of the motive fluid as if enters the eductor and thereby applying suction to an opening or other pipe or hose attached to the eductor. The use of eductors may allow the use of significantly smaller vessels compared to typical quench vapor condensing vessels. Additionally, eductors may be more tolerant of solids in the cooling fluid than typical vessels, reducing problems with frequently plugged nozzles. For example, eductors may include openings of 20 mm or more compared to typical nozzles which have openings of 2 mm or less, In some embodiments, eductors may be tower cost and adaptable to attach to hard piping or hose. Attaching eductors to hose, for example, may be useful when vapors arc removed from a desorption vessel that expands due to thermal expansion eliminating the need for bellows expansion joint.
in some embodiments of the present disclosure, the use of eductors may reduce hydrocarbon cracking by eliminating or reducing the overheating of hydrocarbon vapors when comingled with lower temperature steam to prevent premature condensing, In certain embodiments t,he use of eductors and multiple vapor outlet points may reduce the distance the hydrocarbons must travel before condensing. This shorter residence time may result to less cracking of hydrocarbons.
In certain embodiments, a system of the present disclosure may include a desorption vessel including a plurality of vapor outlets and aheating unit disposed adjacent to or surrounding the desorption vessel. The heating unit may, to certain embodiments, be configured to heat, directly or indirectly, a slurry including solids and oil disposed in an inner chamber of the desorption vessel. In some embodiments, each vapor outlet is in fluid communication with a condenser or an eductor for condensing vapors generated by heating the slurry. In certain embodiments, an eductor may be coupled to each vapor outlet. The desorption vessel may include a conveyor system (eg;, a conveyor belt, auger, or the like) to convey a substantially continuous slurry feed through the desorption vessel. In some embodiments, condensed vapors fromthe eductors or condensers may flow into a degasser unit that may allow for the release of at least a portion of gases (e.g., non-condensable gases) present inthe condensed vapors. An oil/wafer separator may be fluidically coupled to the degasser unit and configured to substantially separate the degassed condensed vapors into a substantially oil-based fluid and a substantially aqueous fluid. In some embodiments, the degasser unit may be omitted from the system and the condensed vapors may flow directly to the oil/water separator.
Figures 1-10 depict certain embedments ofthe systems and mefoods ofthe present disclosure. As shown in Figure 1, a thermal desorption system 101 may include a teed of a stony 102 into a desorption vessel 103, The desorption vessel 103 may be a fixed horizontal steel tube with an conveyor system 104 that moves teed material through the length ofthe tube. The slurry may include, but is not limited to oil (e g., hydrocarbons), solids, an aqueous fluid (e g·, water. saltwater, brine), and any combination thereof. In certain embodimentsthe slurry may also include other drilling fluid additive and/or contaminants from formations fluids. In certain embodiments, the solids inthe slurry may include, but are not limited to drill cuttings, formation materials, treatment fluid additives, or any other wellbore materials. In certain embodiments, the slurry may include 40% or less, 30% or less, or 20% or less oil try weight ofthe slurry, in some embodiments, the slurry may include between from about 5% to about 40% oil by weight ofthe slurry. In certain embodiments, the slurry may include 30% or less, 15% or less, or 5% or less water by weight of the slurry. In some embodiments, the slurry may tool ude between from about 0.01% to a bout 30% water by weight of the slurry. In certain embodiments, the slurry may include an oil:water:solids ratio of 15: 10:75 percent by weight. In certain embodiments, drilling cuttings may include a drilling fluid wife liquid compounds having boiling points from about 100eC to about 300°C.
The slurry is fed through the desorption vessel 103 by a conveyor system 104, The conveyor system 104 may include an auger, screw, or other component sufficient to convey the slurry along the length of the desorption vessel 103. The slurry traveling through the desorption vessel i 03 is heated by heat supplied by the heating unit 107. Tn some embodiments, the desorption vessel 103 may be disposed within the heating unit 107 so that the heating unit 107 surrounds the desorption vessel 103. In some embodiments, the slurry in the desorption vessel is indirectly heated by the heating unit 107 through the walls of the desorption vessel 103. In certain embodiments, as shown in more detail in Figures 7 and 8, the heating unit 107 may be a combustion system including a firebox and burners. In certain embodiments, the heating unit 107 may be a combustion system that runs on feel. In some embod iments, at ieasta portion of the feel fed to the heating unit may include oil and/or non-condensable gas separated from the slurry. For example, in certain embodiments, at least a portion of the condensed oil vapor from the slurry is condensed and then fed to the heating unit to serve as fuel.
The heat from fee heating unit 107 increases the temperature of the shirty in the desorption vessel 103 enough to generate sufficient vapor pressure to separate the liquids of the slurry from the solids, generating vapor. The temperature of the shiny increases as if. advances along the length of the desorption vessel 103 from the feed inlet 102 to fee solids outlet 106; As the temperature of the shiny increases, liquid components in the slurry are volatilized, generating vapors 111, 112. The desorption vessel 103 may include a plurality of vapor outlets 108a-d. Although depicted as having four vapor outlets I08a-d in Figure 1, in certain embodiments, a desorption vessel 103 of the present disclosure may include from 2 to 20 vapor outlets. In some embodiments, (e.g., if the slurry includes water and one hydrocarbon type (single boiling point)), only two vapor outlets may be required. In certain embodiments, tor example, if fee feed material contains water and a mixture of hydrocarbons with multiple boiling pointy then a separate vapor outlet for water and each hydrocarbon may be required. 1¾e position of each vapor outlet I QSa-4 may be selected;, based, at least in part, on fee energy required to volatilize fee liquid based on the temperature required to reach boiling point. Lower temperature vapors 111 are generated first as the temperature of fee slurry increases, and exit fee desorption vessel 103 at the vapor outlets 108a and 108b. In certain embodiments, lower temperature vapors 111 may primarily include vapors of liquid components of fee slurry with relatively lower boiling points. For example, the lower temperature vapors 111 may include a significant portion of an aqueous phase of fee slurry (e.g, water, seawater, brine). Additionally» lower temperatures vapors 111 may include lower molecular weight hydrocarbons including, but not limited to hexane, heptane, octane, and the like. The higher temperature vapors 112, for example, may primarily include liquid components of the slurry with higher boiling points» including, but not limited to fuel oil, lubricating oil, bitumen, a high molecular weight hydrocarbon, and any combination thereof. In some embodiments, the vapor outlets 108a-d may be positioned such that the vapors 111 exiting tite first vapor outlet 108a are primarily aqueous vapor, the vapors 111 exiting the second vapor outlet 108b are primarily low molecular weight hydrocarbons, and the vapors 112 exiting the other vapor outlets 108c,d are higher molecular weight hydrocarbons. In some embodiments, the desorption process may also generate one or more non-condensable gases. These non-condensable gases along with any ambient air in the desorption vessel may also exit through the vapor outlets 108a-d.
In some embodiments, the desorption vessel 103 and the vapor outlets 108a-d may be operated at: a negative pressure. In certain embodiments, the desorption vessel 103 may be operated at a slight negative pressure (e.g., less than 1 inch of mercury). In certain embodiments, operating the desorption vessel 103 and the vapor outlets 108a-d at negative pressure may increase the volatilization of the liquids in tite slurry and may remove the vapors through tire closest vapor outlet 108a-d. In certain embodiments, negative pressure may be applied, for example, byablower downstream of the vapor outlets. As depicted in Figure 1, negative pressure is applied to tire vapor outlets 108a-d and the desorption vessel 103 by a series of eductors 1 Q9a-d fluidical ly coupled to the vapor outlets 108a-d. The vapor outlets 108a-d may be connected to the eductors 109a-d.
In certain embodiments, the vapors 1 11, 112 may be condensed in the eductors 109a-d using a motive fluid 117. In the embodiment of Figure 1, the motive fluid 117 flows flora a motive fluid header 110 and passes through the eductors 109a-d. The motive fluid flow may, in certain embodiments, apply a negative pressure to the vapor outlets 108a~d, removing the vapors 111, 1 12 generated in the desorption vessel 103, ln some embodiments, the negative pressure and the motive fluid 117 flow may also condense the vapors 111 , 112, In certain embodiments, the motive fluid may include water, an oil/water mixture, and oil/water/sotid fines slurry, and any combination thereof
In certain embodiments, the flow rate and pressure of the motive fluid 117 flowing through the eductors t09a-d may, in certain embodiments, be selected based, at least in part, on, at least one of the desired negative pressure and fully condensing the vapors 11 1, 112. In certain embodiments, the pressure of the motive fluid 117 may be set at a flow rate and a pressure sufficient to create a negative pressure in the desorption vessel 103 While substantially or completely condensing the vapors 111, 112. In some embodiments, the mass flow rate of .the motive fluid is significantly higher than the mass flow rate of Hie vapors, and is sufficiently higher than the mass flow rate of the vapors that the vapors are completely condensed. In certain embodiments, motive fluid flow rate may be set around 10 times the flow rate by mass of the vapor in the vapor outlet 108a~d. In some embodiments, the pressure of the motive fluid may be from about ,30 to about 80 psi, from about 20 to about 90 psi, or from about 10 to about 100 psi, In certain embodiments, the eductors 109a-d may evacuate all vapors flowing into them, including non-condensable gases and leakage air. In some embodiments, the non-condensable gases may be entrained in the liquid in the form of microbnhbles and/or dissolved. In certain embodiments, these non-condensable gases may be liberated from the fluid over time.
The fluid exiting the eductors 113a-d may include the condensed vapors, motive fluid, and/or non-condensable gases. As depicted in Figure 1, the fluid exiting each eductor 113a-d may be combined into a single stream 114 for further treatment and separation. Alternatively, in certain embodiments, the fluid exiting each eductor 113a-d could be treated separately, or some subset of tile fluids could be treated together.
In certain embodiments, condensers (not shown) could be used in place or in addition to the eductors 109a-d to condense the vapors 111, 112. For example, the vapors 111 , 112 may he condensed using spray condensers or any other suitable condenser.
After passing through the desorption process, the separated solids exit the desorption vessel 103 at the outlet 106. The separated solids may be discharged into a separate vessel or collection auger (hot shown). In certain embodiments, the separated solids may include less than 1% oil by weight, or less than 1% liquid by weight.
In some embodiments, the vapors volatilized by the increase in temperature may also include a mist (e.g., liquid droplets suspended in the vapors) and/or fine particles suspended in the vapors. As shown in Figure 2, one or more cyclones 215a, 215b may be fluidieaHy connected to one or more vapor outlets 208a, 208b so that the vapors 21 I, 212 pass through the cyclones 215a, 215b and the particle fines are removed. The particle fines settled out of the cyclones 215a, 215b may be removed by fine particles removal systems 216a, 216b.
in certain embodiments, the position of each vapor outlet 108a-d for the desorption vessel 103 may be selected, based, at least in part on the energy required to volatilize one or more components of the liquid of the slurry. For example, the energy required to volatize each of the one or more compounds may be determined based on the temperature required to reach boiling point. For example, the vapor outlets for a hypothetical desorption vessel treating a slurry including a liquid including two components, Compound A and Compound B, may be selected by calculating the energy required to volatize Compound A and Compound B. If Compound A requires 30% of the energy transferred to the desorption vessel^ then a first vapor outlet for Compound A may be positioned about 30% of the distance along the length of the desorption vessel, A second vapor outlet: to remove Compound B vapors may be more than 30% and less than 100% of the distance along the length of the desorption vessel. Alternati vely, if Compound B requires 70% of the energy transferred to the desorption vessel, the second vapor outlet may be positioned 70% of the distance along the length of the desorption vessel.
In certain embodiments, the vapor outlets of a desorption vessel may be calculated by dividing the length of the desorption vessel into two desorption zones: a water zone and a hydrocarbon zone. In some embodiments, the water desorption zone may include a first vapor outlet for water vapor and the hydrocarbon desorption zone may include one or more vapor outlets for hydrocarbons. For example, in certain embodiments, the hydrocarbon zone may have multiple vapor outlets distributed according to the weighted carbon chain distribution (or potentially distributed over that zone’s distanee). in certain embodiments, the carbon chain distribution of the hydrocarbons from a gas chromatograph may be a good indicator of boiling points and mass fraction, and the weighted distribution of the hydrocarbons may be used to determine location of the vapor outlets along the length of a desorption vessel.
Figure 3 depicts a diagram of a system including multiple eductors in parallel and a condensed vapors and motive cooling fluid header according to certain embodiments of the present disclosure. Motive fluid from a motive cooling fluid header 310 flows through a series of parallel eductors 309a-d fiuidically coupled to vapor outlets 308a-d from a desorption vessel (not drown). Unlike the eductors 109a-d of Figure 1, the motive fluid and condensed vapors extiing the eductors 309a-d flow separately into the condensed vapors and motive cooling fluid header 314. This configuration allows for the multiple eductors 309a-d placed in parallel to be independently turned on or off using valves 330a-d as required to adjust the vapor outlets of a vapor desorption vessel based on variable content of the liquid in a feed slurry.
In certain embodiments, a modular vapor desorption vessel may include a series of optional vapor outlets distributed along the length of the vessel. In certain embodiments, the optional vapor outlets may be plugged or closed by a valve when not in use, or connected to an eductor or other condenser when in use, The eductors of the modular vapor desorption vessel may be connected in series (as shown in Figure 1 ) or in parallel (as shown in Figure 3) to the condensed vapors and motive cooling fluid header.
The condensed vapors and motive cooling fluid header 314 may serve as a degasser and separator. In certain embodiments, the present disclosure includes a method of degassing the motive cooling fluid and the condensed vapors in a compact maimer utilizing gravity flow that encompasses the existing pipe between the eductor horizontal header and an oil/water separator (referred to herein as the cascading degasser).
The motive fluid, condensed vapors, and any entrained non-condensable gases flow from the eductors 309a-d into the condensed vapors and motive cooling fluid header 314, where the liquid (e g., condensed vapors and motive cooling fluid) are separated from the non-condensable gases. As depicted in Figure 3, the condensed vapors and motive cooiing fluid header 314 may include a substantially horizontal tube 332 and may connect to a cascading degasser 334. The fluids from the eductors 309a-d are introduced into the horizontal portion 332, where the liquids: and non-condensable gases at least partially separate. The non-condensable gases exit the gas outlet 336 and the liquids in the header 314 cascade down the cascading degasser 334. In some embodiments, gases may separate from the liquid as it cascades down the cascading degasser 334 and may exit the gas outlet 336, providing further liquid/gas separation. The degassed liquid may exit at any liquid outlet 338 near tile bottom of tire cascading degasser 334. In some embodiments, the degassed liquid may flow to an dil/water separator (not shown) to separate the liquid into water and oil, In certain embodiments, the separated water may be fed back to the motive fluid header 310 for refuse as a motive cooling fluid. The separated oil may be used as fuel for t hheeating unit 307, disposed of, or re-used in another treatment fluid.
In certain embodiments, the cascading degasser 334 of the header 314 includes one or more degassing inserts that increases degassing ofthe liquid as it flows down in the cascading degasser 334. In some embodiments, without Wishing to be limited by theory, a degassing insert may allow the fluid to cascade and spread over the surface, creating a fob film Which promotes the degassing and coalescence of microhubbies. As shown in Figures 4A, 4B, 4C, and 4D, degassing inserts 440 may be spaced apart along the length of the cascading degasser 434. A rod 442 may connect the inserts 440, The degassing inserts 440 may have a profile 441 including openings 443 to blow liquid to pass through and oyer th deegassing insert 440 as it cascades down the the ascading degasser 434. As shown in Figure 4A, the degassing insert 440 may be a semicircular insert with a profile 441 including a plurality of rectangular openings. As depicted in Figure 4 C, the degassing insert 440 may be placed along the bottom of degassing chamber. In some embodiments, the degassing insert 440 may fill 60% or less of the cross-sectional volume of the cascading degasser 434. The remaining cross-sectional volume 444 (e.g„ the 40% or more not filled by the Insert) may be headspace that provides a passageway for gases to flow to the exit atthe lop of the header (e.g., 614 of FIG. 8). In certain embodiments, should any mist form during the degassing process, the mist may be allowed to naturally coalesce on the interior upper un- wetfed portion of the header 414 or simply settle into the free-flowing fluid by gravity. In certain embodiments, the diameter of the cascading degasser 434 is such that the flow of the degassed vapors is at least 0.5 m/sec. In some embodiments, the diameter of the cascading degasser 434 is selected to ensure that there is no retrainment of fluid in the gas stream in the headspace.
In certain embodiments, the use of eductors as described m the present disclosure may eliminate the need for a blower downstream of the desorption vessel. For example, Figure 5 depicts a process flow including an eductor and no blowers according to certain embodiments of the present disclosure- The oily slurry 502 is treated in the desorption vessel 503 and separated into desorbed solids 506 and volatilized compounds 511, which may include, but is not limited to vapors (e g. , water vapor, oil vapor), mist, and non-condensable gases. One or more eductors 509 apply negative pressure to the desorption vessel 503 and condense the vapors generated in the desorption vessel 503. The mist and non-condensable gases generated in the desorption vessel 503 may be entrained and/or dissolved in the motive fluid of the one or more eductors 509. The combined fluids exiting the one or more eductors 509 may enter a condensed vapor and motive fluid header 514. Mon-condensable gases separated in the condensed vapor and motive fluid header 514 may be passed through an oxidizer or filter 518 and optionally a fcnock out or demister vessel 519 prior to venting to the atmosphere or to a static 520. Fluids from the condensed vapors and motive fluid header 514, the optional knock out or demister vessel 519, and/or the oxidizer or filter 518 may be combined and flow to an oil/water separator 521
Figures 6 through 8 depict examples of equipment layouts for certain embodiments of the present disclosure. Figure 6 depicts a side view of an equipment layout for a thermal desorption system 601 according to certain embodiments of the present disclosure. A condensed vapor and: motive fluid header 61# is positioned on top of heating unit 607, which surrounds a desorption vessel (not shown). Header fluid inlets 621 in the substantially horizontal portion 632 of the header 614 are connectable to motive fluid and condensed vapors flowing from one or mere eductors connected to vapor outlets of the desorption vessel (not shown). A feed hopper 622 recei ves the .slurry for introduction into the desorption vessel. The non-condensable gases exit the header 614 via the gas outlet 636 and optionally pass through a demister or knock out vessel 619. The· noti- eondensable gases flow to non-condensable gas valves 623 to be further routed or processed (as shown in more detail in Figure 7).
Figure 7 depicts a top view of an equipment layout for the thermal desorption system 601 of Figure 6, according to certain embodiments of the present disclosure. Burners 624 are positioned around the heating unit 607. The vapor outlets 608 from the desorption vessel within the heating unit 607 are connected to eductors 609. Motive fluid flows from a motive fluid teed 610 through the eductors 609. The motive fluid and condensed vapors exiting the eductors 609 flows to the condensed vapor and motive fluid header 614. The liquid in the header 614 flows down the cascading degasser 634 from the header 614 to an oWwater separator (hot shown). Gas from the header 614 flows out of the gas outlet to the non-coftdensable gas valves 623. The gas valves 623 direct the gas either through a first line 626 to the heating unit 607 as fuel for the burners 624 or through a second line 627 for discharge via the stack 625. In some embodiments, the desorption vessel may be modular. For example, in certain embodiments, the vapor outlets 608 and eductors 609 distributed along the length of the vessel may be selectively opened or closed (e.g„ with one or mote outlet valves) to adjust the configuration and positioning of the active vapor outlets. lit certain embodiments, the configuration of the active vapor outlets 608 may be determined based, at least in part, on the composition of the slurry.
Figure 8 depicts an end view of an equipment layout for the thermal desoiption system 601 including a cascading degasser 634, The liquid in the header 614 flows down the cascading degasser 634 from the header 614 to an oil/water separator 628, The cascading degasser 634 includes the inserts 640 shown in Figure 4.
For example, and with reference to Figure 9, the desorption systems and methods of the present disclosure may be associated with an exemplary wellbore drilling assembly 1, according to one or more embodiments. It should be noted that while Figure 9 general |y depicts a land-based drilling assembly, those skilled in the art will readily recognize that the principles described herein are equally applicable to subsea drilling operations that employ floating or sea-based platforms and rigs, without departing from the scope of the disclosure, In certain embodiments, the methods and systems of the present disclosure may be performed at the same location as the drilling assembly 1 of Figure 9 orat a different location (e.g,, a remote location).
As illustrated, the drilling assembly 1 may include a drilling platform 2 that: supports a derrick 4 having a traveling block 6 for raising and lowering a drill string 8. The drill string 8 may include, but is not limited to, drill pipe and coiled tubing, as generally known to those skilled in the art A kelly 10 supports the drill string 8 as it is lowered through a rotary table 12. A drill bit 14 is attached to the distal end of the drill string 8 and is driven either by a downhole motor and/or via rotation of the drill string 8 from the well surface. As the bit 14 rotates, it creates a wellbore 16 that penetrates various subterranean formations 18.
A pump 20 (e g., a mud pump) circulates wellbore fluid 22 (e.g, a drilling fluid) through a feed pipe 24 and to the kelly 10, which conveys the wellbore fluid 22 downhole through the interior of the drill string 8 and through one or more orifices in the drill bit 14 (or optionally through a bypass or ports (not shown) along the drill string and above the drill bit 14). The wellbore fluid 22 is then circulated back to the surface via an annulus 26 defined between the drill string 8 and tire walls of the wellbore 16, At the surface, the recirculated or spent wellbore fluid 22 exits the annulus 26 and may be conveyed to one or more fluid processing unit(s) 28 via an interconnecting flow line 30. In certain embodiments, the systems and methods of the present disclosure may receive fluids produced while drilling. For example^ the fluid processing unit(s) 28 may include the desorption vessel, heating units, and/or other components of the methods and systems of the present disclosure, as described herein, in addition, the fluid processing unit(s) 28 which may also include, but is not limited to, one or more of a shaker {e.g., shale shaker), a centrifuge, a hydrocyclone, a separator (including magnetic and electrical separators), a desilter, a desander, a separator, a filter (e.g., diatomaccous earth filters), a heat exchanger, and any additional fluid reclamation equipment The fluid processing unit(s) 28 may further include one or more sensors, gauges, pumps, compressors, and the like. After passing through the fluid processing unit(s) 28, a“cleaned” wellbore fluid 22 is deposited into a nearby retention pit 32 (e.g., a mud pit). While illustrated as being arranged at the outlet of the wellbore 16 via the annulus 26, those skilled in the art will readily appreciate that the fluid processing unit(s) 28 may be arranged at any other location in the drilling assembly 1 to facilitate its proper function, without departing from the scope of the scope of the disclosure. Additives may be added to the wellbore fluid 22 via a mixing hopper 34 communicably coupled to or otherwise in fluid communication with the retention pit 32. The mixing hopper 34 may include, but is not limited to, mixers and related mixing equipment known to those skilled in the art In other embodiments, however, additives may be added to the wellbore fluid 22 at any other location in the drilling assembly 1. In at least one embodiment, for example, them could be more than one retention pit 32, such as multiple retention pits 32 in series.
An embodiment of the present disclosure is a system including a desorption vessel including an inner chamber; a heating unit disposed adjacent to the desorption vessel configured to heat a slurry including solids and oil disposed in the inner chamber of the desorption vessel; and a plurality ofvapor outlets in fluid communication with the inner chamber of the desorption vessel, wherein each vapor outlet is in fluid communication with a condenser or an eductor for condensing vapors generated by beating the slurry.
In one or more embodiments described above, the desorption vessel includes a conveyor capable of feeding the slurry through the desorption vessel. In one or more embodiments described above, the slurry includes solids, oil, and water. In one or more embodiments described above, the desorption vessel is configured to operate at a negative pressure. In one or more embodiments described above, the plurality of vapor outlets are spaced apart along a length of the desorption vessel. In one m more embodiments described above, one or more of the plurality of vapor outlets may be opened Of dosed by one or more outlet valves. In one or more embodiments described above, the system further includes a cascading degasser unit including a degassing insert in fluid communication with the condensed vapors from the condensers or eductors.
Another embodiment of the present disclosure is a method including heating a slurry including oil and solids in a desorption vessel to convert at least a portion of the oil in the slurry to oil vapor* removing at least a first portion of the oil vapor from the desorption vessel at a first oil vapor outlet; and removing at least a second portion of the oil vapor from the desorption vessel at a second oil vapor outlet.
In one or mote embodiments described above» the method further Includes condensing at least some of the first portion of the oil vapor. In one or more embodiments described above, the method further includes condensing at least some of the first portion of the oil vapor in a first eductor in fluid communication with the first oil vapor outlet In one or more embodiments described above, the method further includes selecting the position of at least one of the first oil vapor outlet and the second oil vapor outlet based, at least in part, on the composition of tire slurry, lit one or more embodiments described above, the method further includes opening or closing one or more vapor outlets using one or more outlet valves based, at least in part, on the selection of the position of the first oil vapor outlet and the second vapor outlet. In one or more embodiments described above, the slurry includes an aqueous fluid and the method further includes allowing at least a portion of the aqueous fluid to convert to aqueous vapor in response to the heating. In one or more embodiments described above* the method further includes removing the first portion and second portion of the oil vapor includes applying a negative pressure to the desorption vessel using one or more eductors.
Another embodiment of the present disclosure is a system including a desorption vessel including an inner chamber; a heating unit surrounding the desorption vessel and configured to heat a slurry including solids and oil disposed in the inner chamber of the desorption vessel; a plurality of vapor outlets in fluid communication with the inner chamber of the desorption vessel; and a plurality of eductors configured to condense vapors from tile plurality of vapor outlets, wherein each vapor outlet is coupled to an eductor.
In one or more embodiments described above; the desorption vessel includes a conveyor capable of feeding the slurry through the desorption vessel. In one or more embodiments described above* the slurry includes solids, oil, and water. In one or more embodiments described above, the desorption vessel is configured to operate at a negative pressure generated by the plurality of eductors, in one or more embodiments described above, the plurality of vapor outlets are spaced apart along a length of the desorption vessel. In one or more embodiments described above, one or mere of the plurality of vapor outlets may be selectively opened or closed by one or more outlet valves.
To facilitate a better understanding of the present disclosure, the following examples of certain aspects of certain embodiments are given. The following examples ate not the only examples that could be given according to the present disclosure and are not intended to limit the scope of the disclosure of claims.
EXAMPLES
EXAMPLE 1
in this example asampie calcu tetion was performed tocompare the energy required to desorb an oily slurry in a system where vapors are comingled prior to condensation to the energy required to desorb the sane oily slurry in a system that does not include cominglingof vapors prior to condonation (e.g. , the system of Figures 1 or 3), An example drill cutting slurry was used for these calculations including oil, water, and drill cuttings in a ratio of 15%/10%/75% Oil/Water/Solids content by weight. The total energy required for the desorption of the slurry was calculated by summing (i) the energy required to heat and volatilize the hydrocarbons, (u) the energy required toheatand volatize the water, and (iii) the energy requited to heat the solids. These calculations are shown in Tables 1 and 2 he tow, with the energy requirements based on known specific heats and heats or vaporization.
Table 1. Energy Required for Desorption of Oily Slurry with Vapor Comingling
Figure imgf000018_0001
Table 2, Energy Req uired for Desorption of Oily Slurry without Vapor Comingling
Figure imgf000019_0001
As shown in Tables 1 and 2, the specific energy required to desorb the slurry is 159 Watt- hour per kilogram (W h/kg) for a desorption system dial comingles the vapors and 149 W h/kg for a desorption system that does not cominglethe vapors, This shows that whenthe vapors are extracted without comingling (e.g, no superheating ofthe steam), the specific energy required to desorb an oily slurry is reduced by 6 % as compared with a method and system in which the vapors comingle prior to condensation.
EXAMPLE 2
In this example, methods are presented for calculating energy efficient positions for vapor outlets for a desorption system that does not include vapor comingfing (e.g., a desorption system similar to Figures 1 and 3). the desorption vessel and the calculated vapor outlets for this example are depicted in Figures 10A, 10B, and 10C. which depict a 13 meter (m) desorption vessel 1003 including vapor outlets 1008a~l with a drive 1005 for a conveying system 1004. The same example slurry that was used in Example 1 was used in this example. As listed in Table 2 above, the energy required to desorb the liquid: compounds for that 15%/10%/75% oil/water/sofids slurry is calculated as 33 W-h/kg for the hydrocarbons and 71 W-h/kg for the water. This means that 68% of the energy required for desorption is used to vplatize the water and 32% is used to volatize the hydrocarbons, 'fhe 13 m length of the desorption vessel 1040 was divided into a water desorption zone 1041 that covers about 68% of the length of the vessel (8.86 m) and a hydrocarbon desorption zone 1042 that covers the remaining length of the vessel (4.14 m).
In the example shown in Figure 10A, the first vapor outlet was selected to be in the water desorption zone 1041, which isthe first 8.86 m ofthe length of the desorption vessel 1003. The midpoint between 0 and 8.86 m Was selected for Ihe first vapor outlet to minimize the distance the water vapors travel prior to removal. This is shown as the first vapor outlet 1008a in Figure lOA. In the example in Figure 10A, the second vapor outlet 1008b was placed at the midpoint of the hydrocarbon desorption zone 1041, or 2.07 m from the end of the desorption vessel 1003.
Table 3 below shows the results of example calculations of the Vapor outlets using two other methods, an equal hydrocarbon separation method and a weighted hydrocarbon method The same slurry from Example 1 was used for each of these, mid the water desorption zone and first vapor outlet is the same. The difference in these methods concerns the placement of the vapor outlets in the hydrocarbon desorption zone. These examples assume that the oil phase of the liquid in the slurry includes four hydrocarbons HC-1 through HC-4 with different boiling points, hydrocarbons being numbered in order of increasing boiling points.
Using the equal hydrocarbon separation method, the vapor outlets may be determined by subdividing the hydrocarbon desorption zone 1042 into four equal hydrocarbon zones (each 1.04 m in length), and positioning the vapor outlets at the midpoint of each of those zones. Vapor outlets selected using this method are depicted in Figure 10B and listed below in Table 3. The hydrocarbon desorption zone was subdivided into four equal hydrocarbon zones 1.04 m in length, and vapor outlets 1008c-g were then positioned at the midpoint of each subdivided desorption zone to arrive at the vapor outlets 1008c-g shown in Figure 10B and listed below ½ Table 3,
Using the weighted hydrocarbon method, the vapor outlets may be determined by subdividing the hydrocarbon desorption zone 1042 according to a weighted distribution of hydrocarbons HC-1 through HC-4. The example vapor outlets prepared using this method were determined for a weighted distribution of hydrocarbons HC-1 through HC-4 that have a Weight distribution of 10%, 30%, 50%, and 10%, respectively. Vapor outlets selected using this method are depicted in Figure 10C and listed below in Table 3. The hydrocarbon desorption zone was subdivided according to the weight distribution of the hydrocarbons. For example, 10% (0.41m) of the hydrocarbon zone was designated as tile desorption zone for HC-1, 30% (1,24m) ofthe hydrocarbon zone was designated asthe desorption zone for HC-2, etc. Vapor outlets 1008h-I were then positioned at the midpoint of each subdivided desorption zone to arrive atthe vapor outlets 1008h-1 shown in Figure 10C and listed below in Table 3.
Fable 3. Example Calculation of Vapor Outlet Position
Figure imgf000021_0001
Therefore, the present disclosure is well adapted to attain the ends and advantages mentioned as well as those that am inherent therein. The particular embodiments disclosed above are illustrative only, as the present disclosure may be modified and practiced in different but equivalent manners apparent to those skilled in the art having the benefit of the teachings herein. While numerous Changes may be made by those skilled in the art, such changes are encompassed Within the spirit ofthe subject matter defined fry the appended claims. Furthermore, no limitations are intended to the details of construction or design herein shown, other than as described in the claim below. It is therefore evident that the particular illustrative embodiments disclosed above may be altered or modified and all such variations are considered within the scope and spirit of the present disclosure. In particular, every range of values (e.g.,“firom about a to about b,” or, equivalently,“from approximately a to b," or, equivalently,“from approximately a-b") disclosed herein is to be understood as referring to the power set (die set of all subsets) of the respective range of values. The terms in the claims have their plain, ordinary meaning unless otherwise explicitly and clearly defined by the patentee.

Claims

What is claimed is:
1. A system comprising:
a desorption vessel comprising an inner chamber;
a heating unit disposed adjacent to the desorption vessel configured to heat a slurry comprising solids and oil disposed in the inner chamber of the desorption vessel; and
a plurality of vapor outlets in fluid communication with the inner chamber of the desorption vessel, wherein each vapor outlet is in fluid communication with a condenser or an eductor for condensing vapors generated by heating the slurry.
2. The system of claim 1 , Wherein the desorption vessel comprises a conveyor capable of feeding the slurry through the desorption vessel .
3. The system of claim 1 , wherein the slurry comprises solids, oil, and water.
4. The system of claim l, wherein the desorption vessel is configured to operate at a negative pressure.
5. The system of claim 1, wherein the plurality of vapor outlets are spaced apart along a length of the desorption vessel.
6. The system of claim 1 , wherein one or more of the plurality of vapor outlets may be opened or closed by one or more outlet valves.
7. The system of claim 1, further comprising a cascading degasser unit comprising a degassing insert in fluid communication with the condensed vapors from the condensers or eductors.
8. A method comprising:
heating a slurry comprising oil and solids in a desorption vessel to convert at least a portion of the oil in the slurry to oil vapor;
removing at least a first portion of the oil vapor from the desorption vessel at a first oil vapor outlet; and
removing at least a second portion of the oil vapor from the desorption vessel at a second oil vapor outlet
9. The method of claim 8, further comprising condensing at least some of the first portion of the oil vapor.
10. The method of claim 8, further comprising Condensing at least some of the first portiott of the oil vapor in a first eductor in fluid communication with the first oil vapor outlet.
11, The method of claim 8, further comprising selecting the position of at least one of the first oil vapor outlet and the second oil vapor outlet based, at least in part, on the composition of the slurry.
12. The method of claim 11, farther comprising opening or closing one or more vapor outlets using one or more outlet valves based, at least in part, on the selection of the position of tire first oil vapor outlet and the second vapor outlet.
13. The method of claim 8, wherein the slurry further comprises an aqueous fluid and the method further comprises allowing at least a portion of the aqueous fluid to convert to aqueous vapor In response to the heating.
14. The method of claim 8, wherein removing the first portion and second portion of the oil vapor comprises applying a negative pressure to the desorption vessel using one or more eductors.
15. A system comprising:
a desorption vessel comprising an inner chamber;
a heating unit surrounding the desorption vessel and configured to heat a slurry comprising solids and oil disposed in the inner chamber of the desorption vessel;
a plurality of vapor outlets in fluid communication with the inner chamber of the desorption vessel; and
a plurality of eductors configured to condense vapors from the plurality of vapor outlets, wherein each vapor outlet is coupled to an eductor.
16; The system of claim 15, wherein the desorption vessel comprises a conveyor capable of feeding the slurry through the desorption vessel.
17, The system of claim 15, wherein the slurry comprises solids, oil, and water.
18. The system of claim 15, wherein the desorption vessel is configured to operate at a negative pressure generated by the plurality of eductors.
19. The system of claim 15, wherein the plurality of vapor outlets are spaced apart along a length of the desorption vessel.
20. The system of claim 15, one or more of the plurality of vapor outlets may be selectively opened or closed by one or more outlet valves.
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CN113669024B (en) * 2021-10-22 2022-01-04 西南石油大学 An independent double negative pressure drilling vibrating screen
CN117784850B (en) * 2024-02-27 2024-07-12 天津宇拓机械有限公司 Temperature control method for friction thermal desorption reactor in oil-based drilling cuttings processing system

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4208285A (en) * 1976-07-12 1980-06-17 Dresser Industries, Inc. Drill cuttings disposal system with good environmental and ecological properties
US4387514A (en) * 1981-04-06 1983-06-14 Dresser Industries, Inc. Method for drying oil well drill cuttings
US4683963A (en) * 1985-04-19 1987-08-04 Atlantic Richfield Company Drilling cuttings treatment
WO2003062591A1 (en) * 2002-01-18 2003-07-31 Varco I/P, Inc. Soil cleaning systems and methods
US7207399B2 (en) * 2004-10-04 2007-04-24 M-L L.L.C. Modular pressure control and drilling waste management apparatus for subterranean borehole operations

Family Cites Families (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2701681A (en) * 1948-08-25 1955-02-08 Murray Deodorisers Ltd Ejector condenser
US3975171A (en) * 1975-10-14 1976-08-17 Burnham Gerald E Sr Apparatus and method for degassing drilling fluids
US4222988A (en) * 1978-05-05 1980-09-16 Oil Base Germany G.M.B.H. Apparatus for removing hydrocarbons from drill cuttings
US4983278A (en) * 1987-11-03 1991-01-08 Western Research Institute & Ilr Services Inc. Pyrolysis methods with product oil recycling
US4913771A (en) * 1988-11-25 1990-04-03 Mcintyre Glover C Method for dewatering sludge or slurry
CA2237291C (en) 1998-05-11 2006-08-01 Scc Environmental Group Inc. Method and apparatus for removing mercury and organic contaminants from soils, sludges and sediments and other inert materials
US7514049B2 (en) 2003-04-11 2009-04-07 M-I L.L.C. Method and apparatus for thermal phase separation
BRPI0400305B1 (en) * 2004-03-19 2014-01-21 MULTI-PHASE WASTE TREATMENT SYSTEM AND PROCESS
CA2489968C (en) * 2004-12-10 2010-08-17 Precision Drilling Technology Services Group Inc. Method for the circulation of gas when drilling or working a well
US20150184098A1 (en) * 2013-12-26 2015-07-02 Mahesh Talwar Biomass Bio Oil Upgrade Method
US20170056785A1 (en) * 2015-08-31 2017-03-02 Serguei A. Popov Energy efficient distilling heat pump and variants thereof

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4208285A (en) * 1976-07-12 1980-06-17 Dresser Industries, Inc. Drill cuttings disposal system with good environmental and ecological properties
US4387514A (en) * 1981-04-06 1983-06-14 Dresser Industries, Inc. Method for drying oil well drill cuttings
US4683963A (en) * 1985-04-19 1987-08-04 Atlantic Richfield Company Drilling cuttings treatment
WO2003062591A1 (en) * 2002-01-18 2003-07-31 Varco I/P, Inc. Soil cleaning systems and methods
US7207399B2 (en) * 2004-10-04 2007-04-24 M-L L.L.C. Modular pressure control and drilling waste management apparatus for subterranean borehole operations

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GB2596018B (en) 2023-08-02
US11219842B2 (en) 2022-01-11
US20200368637A1 (en) 2020-11-26
CA3133144C (en) 2023-10-03
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GB202113197D0 (en) 2021-10-27
GB2596018A (en) 2021-12-15

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