WO2006115943A1 - Grouped exposed metal heaters - Google Patents
Grouped exposed metal heaters Download PDFInfo
- Publication number
- WO2006115943A1 WO2006115943A1 PCT/US2006/014776 US2006014776W WO2006115943A1 WO 2006115943 A1 WO2006115943 A1 WO 2006115943A1 US 2006014776 W US2006014776 W US 2006014776W WO 2006115943 A1 WO2006115943 A1 WO 2006115943A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- formation
- heaters
- heater
- temperature
- temperature limited
- Prior art date
Links
- 229910052751 metal Inorganic materials 0.000 title claims description 33
- 239000002184 metal Substances 0.000 title claims description 31
- 230000015572 biosynthetic process Effects 0.000 claims abstract description 245
- 229930195733 hydrocarbon Natural products 0.000 claims abstract description 94
- 150000002430 hydrocarbons Chemical class 0.000 claims abstract description 94
- 239000004215 Carbon black (E152) Substances 0.000 claims abstract description 61
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- 229910001868 water Inorganic materials 0.000 description 24
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- 238000006243 chemical reaction Methods 0.000 description 13
- 239000004058 oil shale Substances 0.000 description 13
- PXHVJJICTQNCMI-UHFFFAOYSA-N Nickel Chemical compound [Ni] PXHVJJICTQNCMI-UHFFFAOYSA-N 0.000 description 12
- 230000007423 decrease Effects 0.000 description 12
- 238000011065 in-situ storage Methods 0.000 description 12
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- 239000010962 carbon steel Substances 0.000 description 11
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- VNWKTOKETHGBQD-UHFFFAOYSA-N methane Chemical compound C VNWKTOKETHGBQD-UHFFFAOYSA-N 0.000 description 8
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- VYZAMTAEIAYCRO-UHFFFAOYSA-N Chromium Chemical compound [Cr] VYZAMTAEIAYCRO-UHFFFAOYSA-N 0.000 description 4
- 229910052804 chromium Inorganic materials 0.000 description 4
- 239000011651 chromium Substances 0.000 description 4
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- 230000001939 inductive effect Effects 0.000 description 4
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- CPLXHLVBOLITMK-UHFFFAOYSA-N magnesium oxide Inorganic materials [Mg]=O CPLXHLVBOLITMK-UHFFFAOYSA-N 0.000 description 4
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- UPHIPHFJVNKLMR-UHFFFAOYSA-N chromium iron Chemical compound [Cr].[Fe] UPHIPHFJVNKLMR-UHFFFAOYSA-N 0.000 description 3
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- 229910052760 oxygen Inorganic materials 0.000 description 2
- 239000001301 oxygen Substances 0.000 description 2
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- 229910052710 silicon Inorganic materials 0.000 description 2
- HQVNEWCFYHHQES-UHFFFAOYSA-N silicon nitride Chemical compound N12[Si]34N5[Si]62N3[Si]51N64 HQVNEWCFYHHQES-UHFFFAOYSA-N 0.000 description 2
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- 229910052720 vanadium Inorganic materials 0.000 description 2
- GPPXJZIENCGNKB-UHFFFAOYSA-N vanadium Chemical compound [V]#[V] GPPXJZIENCGNKB-UHFFFAOYSA-N 0.000 description 2
- 229910001369 Brass Inorganic materials 0.000 description 1
- 229910000906 Bronze Inorganic materials 0.000 description 1
- 229910001339 C alloy Inorganic materials 0.000 description 1
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- BVKZGUZCCUSVTD-UHFFFAOYSA-L Carbonate Chemical compound [O-]C([O-])=O BVKZGUZCCUSVTD-UHFFFAOYSA-L 0.000 description 1
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- 229910017372 Fe3Al Inorganic materials 0.000 description 1
- PWHULOQIROXLJO-UHFFFAOYSA-N Manganese Chemical compound [Mn] PWHULOQIROXLJO-UHFFFAOYSA-N 0.000 description 1
- KKCBUQHMOMHUOY-UHFFFAOYSA-N Na2O Inorganic materials [O-2].[Na+].[Na+] KKCBUQHMOMHUOY-UHFFFAOYSA-N 0.000 description 1
- 229910003264 NiFe2O4 Inorganic materials 0.000 description 1
- OAICVXFJPJFONN-UHFFFAOYSA-N Phosphorus Chemical compound [P] OAICVXFJPJFONN-UHFFFAOYSA-N 0.000 description 1
- 239000004809 Teflon Substances 0.000 description 1
- 229920006362 Teflon® Polymers 0.000 description 1
- 229910000756 V alloy Inorganic materials 0.000 description 1
- 229910001080 W alloy Inorganic materials 0.000 description 1
- 239000008186 active pharmaceutical agent Substances 0.000 description 1
- 230000002411 adverse Effects 0.000 description 1
- 229910000272 alkali metal oxide Inorganic materials 0.000 description 1
- 229910000287 alkaline earth metal oxide Inorganic materials 0.000 description 1
- KCZFLPPCFOHPNI-UHFFFAOYSA-N alumane;iron Chemical compound [AlH3].[Fe] KCZFLPPCFOHPNI-UHFFFAOYSA-N 0.000 description 1
- PNEYBMLMFCGWSK-UHFFFAOYSA-N aluminium oxide Inorganic materials [O-2].[O-2].[O-2].[Al+3].[Al+3] PNEYBMLMFCGWSK-UHFFFAOYSA-N 0.000 description 1
- 229910021529 ammonia Inorganic materials 0.000 description 1
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- 239000010426 asphalt Substances 0.000 description 1
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- DMFGNRRURHSENX-UHFFFAOYSA-N beryllium copper Chemical compound [Be].[Cu] DMFGNRRURHSENX-UHFFFAOYSA-N 0.000 description 1
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- PNXOJQQRXBVKEX-UHFFFAOYSA-N iron vanadium Chemical compound [V].[Fe] PNXOJQQRXBVKEX-UHFFFAOYSA-N 0.000 description 1
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- 239000011572 manganese Substances 0.000 description 1
- WPBNNNQJVZRUHP-UHFFFAOYSA-L manganese(2+);methyl n-[[2-(methoxycarbonylcarbamothioylamino)phenyl]carbamothioyl]carbamate;n-[2-(sulfidocarbothioylamino)ethyl]carbamodithioate Chemical compound [Mn+2].[S-]C(=S)NCCNC([S-])=S.COC(=O)NC(=S)NC1=CC=CC=C1NC(=S)NC(=O)OC WPBNNNQJVZRUHP-UHFFFAOYSA-L 0.000 description 1
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- 230000001483 mobilizing effect Effects 0.000 description 1
- 229910001120 nichrome Inorganic materials 0.000 description 1
- NQNBVCBUOCNRFZ-UHFFFAOYSA-N nickel ferrite Chemical compound [Ni]=O.O=[Fe]O[Fe]=O NQNBVCBUOCNRFZ-UHFFFAOYSA-N 0.000 description 1
- 229910052758 niobium Inorganic materials 0.000 description 1
- GUCVJGMIXFAOAE-UHFFFAOYSA-N niobium atom Chemical compound [Nb] GUCVJGMIXFAOAE-UHFFFAOYSA-N 0.000 description 1
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- 230000000704 physical effect Effects 0.000 description 1
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Classifications
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/30—Specific pattern of wells, e.g. optimising the spacing of wells
-
- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10L—FUELS NOT OTHERWISE PROVIDED FOR; NATURAL GAS; SYNTHETIC NATURAL GAS OBTAINED BY PROCESSES NOT COVERED BY SUBCLASSES C10G, C10K; LIQUEFIED PETROLEUM GAS; ADDING MATERIALS TO FUELS OR FIRES TO REDUCE SMOKE OR UNDESIRABLE DEPOSITS OR TO FACILITATE SOOT REMOVAL; FIRELIGHTERS
- C10L3/00—Gaseous fuels; Natural gas; Synthetic natural gas obtained by processes not covered by subclass C10G, C10K; Liquefied petroleum gas
- C10L3/06—Natural gas; Synthetic natural gas obtained by processes not covered by C10G, C10K3/02 or C10K3/04
- C10L3/08—Production of synthetic natural gas
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B36/00—Heating, cooling or insulating arrangements for boreholes or wells, e.g. for use in permafrost zones
- E21B36/04—Heating, cooling or insulating arrangements for boreholes or wells, e.g. for use in permafrost zones using electrical heaters
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/16—Enhanced recovery methods for obtaining hydrocarbons
- E21B43/17—Interconnecting two or more wells by fracturing or otherwise attacking the formation
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/16—Enhanced recovery methods for obtaining hydrocarbons
- E21B43/24—Enhanced recovery methods for obtaining hydrocarbons using heat, e.g. steam injection
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/16—Enhanced recovery methods for obtaining hydrocarbons
- E21B43/24—Enhanced recovery methods for obtaining hydrocarbons using heat, e.g. steam injection
- E21B43/2401—Enhanced recovery methods for obtaining hydrocarbons using heat, e.g. steam injection by means of electricity
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
- H05B2214/00—Aspects relating to resistive heating, induction heating and heating using microwaves, covered by groups H05B3/00, H05B6/00
- H05B2214/03—Heating of hydrocarbons
Definitions
- the present invention relates generally to methods and systems for heating and production of hydrocarbons, hydrogen, and/or other products from various subsurface formations such as hydrocarbon containing formations.
- Embodiments relate to heater patterns and production well locations for treating hydrocarbon containing formations.
- Hydrocarbons obtained from subterranean formations are often used as energy resources, as feedstocks, and as consumer products.
- Concerns over depletion of available hydrocarbon resources and concerns over declining overall quality of produced hydrocarbons have led to development of processes for more efficient recovery, processing and/or use of available hydrocarbon resources.
- In situ processes may be used to remove hydrocarbon materials from subterranean formations.
- Chemical and/or physical properties of hydrocarbon material in a subterranean formation may need to be changed to allow hydrocarbon material to be more easily removed from the subterranean formation.
- the chemical and physical changes may include in situ reactions that produce removable fluids, composition changes, solubility changes, density changes, phase changes, and/or viscosity changes of the hydrocarbon material in the formation.
- a fluid may be, but is not limited to, a gas, a liquid, an emulsion, a slurry, and/or a stream of solid particles that has flow characteristics similar to liquid flow.
- Heaters may be placed in wellbores to heat a formation during an in situ process. Examples of in situ processes utilizing downhole heaters are illustrated in U.S. Patent Nos. 2,634,961 to Ljungstrom; 2,732,195 to
- Heat may be applied to the oil shale formation to pyrolyze kerogen in the oil shale formation.
- the heat may also fracture the formation to increase permeability of the formation.
- the increased permeability may allow formation fluid to travel to a production well where the fluid is removed from the oil shale formation.
- an oxygen containing gaseous medium is introduced to a permeable stratum, preferably while still hot from a preheating step, to initiate combustion.
- a heat source may be used to heat a subterranean formation.
- Electric heaters may be used to heat the subterranean formation by radiation and/or conduction.
- An electric heater may resistively heat an element.
- U.S. Patent No. 2,548,360 to Germain describes an electric heating element placed in a viscous oil in a wellbore. The heater element heats and thins the oil to allow the oil to be pumped from the wellbore.
- U.S. Patent No. 4,716,960 to Eastlund et al. describes electrically heating tubing of a petroleum well by passing a relatively low voltage current through the tubing to prevent formation of solids.
- U.S. Patent No. 5,065,818 to Van Egmond describes an electric heating element that is cemented into a well borehole without a casing surrounding the heating element.
- U.S. Patent No. 6,023,554 to Vinegar et al. describes an electric heating element that is positioned in a casing.
- the heating element generates radiant energy that heats the casing.
- a granular solid fill material may be placed between the casing and the formation.
- the casing may conductively heat the fill material, which in turn conductively heats the formation.
- Exposed metal heaters may leak current into the formation. Current leakage into the formation may cause undesirable and/or non-uniform heating in the formation.
- Embodiments described herein generally relate to systems, methods, and heaters for treating a subsurface formation. Embodiments described herein also generally relate to heaters that have novel components therein. Such heaters can be obtained by using the systems and methods described herein.
- the invention provides a system for treating a hydrocarbon containing formation, comprising: two or more groups of elongated heaters, wherein a group comprises two or more heaters placed in two or more openings in the formation, the heaters in the group electrically coupled below the surface of the formation, the openings comprising at least partially uncased wellbores in a hydrocarbon layer of the formation; the groups being electrically configured such that current flow through the formation between at least two groups is inhibited; and the heaters being configured to provide heat to the formation.
- the invention provides one or more systems, methods, and/or heaters.
- the systems, methods, and/or heaters are used for treating a subsurface formation.
- features from specific embodiments may be combined with features from other embodiments.
- features from one embodiment may be combined with features from any of the other embodiments.
- treating a subsurface formation is performed using any of the methods, systems, or heaters described herein.
- FIG. 1 depicts an illustration of stages of heating a hydrocarbon containing formation.
- FIG. 2 shows a schematic view of an embodiment of a portion of an in situ conversion system for treating a hydrocarbon containing formation.
- FIGS. 3, 4, and 5 depict cross-sectional representations of an embodiment of a temperature limited heater with an outer conductor having a ferromagnetic section and a non-ferromagnetic section.
- FIGS. 6A and 6B depict cross-sectional representations of an embodiment of a temperature limited heater.
- FIG. 7 depicts an embodiment of a temperature limited heater in which the support member provides a majority of the heat output below the Curie temperature of the ferromagnetic conductor.
- FIGS. 8 and 9 depict embodiments of temperature limited heaters in which the jacket provides a majority of the heat output below the Curie temperature of the ferromagnetic conductor.
- FIG. 10 depicts an embodiment of temperature limited heaters coupled together in a three-phase configuration.
- FIG. 11 depicts an embodiment of three heaters coupled in a three-phase configuration.
- FIG. 12 depicts a side view representation of an embodiment of a substantially u-shaped three-phase heater.
- FIG. 13 depicts a top view representation of an embodiment of a plurality of triads of three-phase heaters in a formation.
- FIG. 14 depicts a top view representation of the embodiment depicted in FIG. 13 with production wells.
- FIG. 15 depicts a top view representation of an embodiment of a plurality of triads of three-phase heaters in a hexagonal pattern.
- FIG. 16 depicts a top view representation of an embodiment of a hexagon from FIG. 15.
- FIG. 17 depicts an embodiment with triads coupled to a horizontal connector well.
- FIG. 18 depicts cumulative gas production and cumulative oil production versus time found from a STARS simulation using the heaters and heater pattern depicted in FIGS. 11 and 13. While the invention is susceptible to various modifications and alternative forms, specific embodiments thereof are shown by way of example in the drawings and may herein be described in detail. The drawings may not be to scale. It should be understood, however, that the drawings and detailed description thereto are not intended to limit the invention to the particular form disclosed, but on the contrary, the intention is to cover all modifications, equivalents and alternatives falling within the spirit and scope of the present invention as defined by the appended claims.
- the following description generally relates to systems and methods for treating hydrocarbons in the formations. Such formations may be treated to yield hydrocarbon products, hydrogen, and other products.
- Hydrocarbons are generally defined as molecules formed primarily by carbon and hydrogen atoms. Hydrocarbons may also include other elements such as, but not limited to, halogens, metallic elements, nitrogen, oxygen, and/or sulfur. Hydrocarbons may be, but are not limited to, kerogen, bitumen, pyrobitumen, oils, natural mineral waxes, and asphaltites. Hydrocarbons may be located in or adjacent to mineral matrices in the earth. Matrices may include, but are not limited to, sedimentary rock, sands, silicilytes, carbonates, diatomites, and other porous media. "Hydrocarbon fluids” are fluids that include hydrocarbons. Hydrocarbon fluids may include, entrain, or be entrained in non-hydrocarbon fluids such as hydrogen, nitrogen, carbon monoxide, carbon dioxide, hydrogen sulfide, water, and ammonia.
- a "formation” includes one or more hydrocarbon containing layers, one or more non-hydrocarbon layers, an overburden, and/or an underburden.
- the "overburden” and/or the “underbmden” include one or more different types of impermeable materials.
- overburden and/or underburden may include rock, shale, mudstone, or wet/tight carbonate.
- the overburden and/or the underburden may include a hydrocarbon containing layer or hydrocarbon containing layers that are relatively impermeable and are not subjected to temperatures during in situ conversion processing that result in significant characteristic changes of the hydrocarbon containing layers of the overburden and/or the underburden.
- the underburden may contain shale or mudstone, but the underburden is not allowed to heat to pyrolysis temperatures during the in situ conversion process.
- the overburden and/or the underburden may be somewhat permeable.
- a “heater” is any system or heat source for generating heat in a well or a near wellbore region.
- Heaters may be, but are not limited to, electric heaters, burners, combustors that react with material in or produced from a formation, and/or combinations thereof.
- An “in situ conversion process” refers to a process of heating a hydrocarbon containing formation from heat sources to raise the temperature of at least a portion of the formation above a pyrolysis temperature so that pyrolyzation fluid is produced in the formation.
- Insulated conductor refers to any elongated material that is able to conduct electricity and that is covered, in whole or in part, by an electrically insulating material.
- An elongated member may be a bare metal heater or an exposed metal heater.
- “Bare metal” and “exposed metal” refer to metals that do not include a layer of electrical insulation, such as mineral insulation, that is designed to provide electrical insulation for the metal throughout an operating temperature range of the elongated member.
- Bare metal and exposed metal may encompass a metal that includes a corrosion inhibiter such as a naturally occurring oxidation layer, an applied oxidation layer, and/or a film.
- Bare metal and exposed metal include metals with polymeric or other types of electrical insulation that cannot retain electrical insulating properties at typical operating temperature of the elongated member. Such material may be placed on the metal and may be thermally degraded during use of the heater.
- Temperature limited heater generally refers to a heater that regulates heat output (for example, reduces heat output) above a specified temperature without the use of external controls such as temperature controllers, power regulators, rectifiers, or other devices. Temperature limited heaters may be AC (alternating current) or modulated (for example, "chopped") DC (direct current) powered electrical resistance heaters.
- “Curie temperature” is the temperature above which a ferromagnetic material loses all of its ferromagnetic properties. In addition to losing all of its ferromagnetic properties above the Curie temperature, the ferromagnetic material begins to lose its ferromagnetic properties when an increasing electrical current is passed through the ferromagnetic material.
- Time-varying current refers to electrical current that produces skin effect electricity flow in a ferromagnetic conductor and has a magnitude that varies with time.
- Time-varying current includes both alternating current (AC) and modulated direct current (DC).
- Alternating current (AC)” refers to a time-varying current that reverses direction substantially sinusoidally.
- AC produces skin effect electricity flow in a ferromagnetic conductor.
- Modulated direct current refers to any substantially non-sinusoidal time-varying current that produces skin effect electricity flow in a ferromagnetic conductor.
- “Turndown ratio” for the temperature limited heater is the ratio of the highest AC or modulated DC resistance below the Curie temperature to the lowest resistance above the Curie temperature for a given current.
- the term “automatically” means such systems, apparatus, and methods function in a certain way without the use of external control (for example, external controllers such as a controller with a temperature sensor and a feedback loop, PID controller, or predictive controller).
- external controllers for example, external controllers such as a controller with a temperature sensor and a feedback loop, PID controller, or predictive controller.
- wellbore refers to a hole in a formation made by drilling or insertion of a conduit into the formation.
- a wellbore may have a substantially circular cross section, or another cross-sectional shape.
- the terms “well” and “opening,” when referring to an opening in the formation may be used interchangeably with the term “wellbore.”
- FIG. 1 depicts an illustration of stages of heating the hydrocarbon containing formation.
- FIG. 1 also depicts an example of yield ("Y") in barrels of oil equivalent per ton (y axis) of formation fluids from the formation versus temperature (“T") of the heated formation in degrees Celsius (x axis).
- Desorption of methane and vaporization of water occurs during stage 1 heating. Heating of the formation through stage 1 may be performed as quickly as possible. For example, when the hydrocarbon containing formation is initially heated, hydrocarbons in the formation desorb adsorbed methane. The desorbed methane may be produced from the formation. If the hydrocarbon containing formation is heated further, water in the hydrocarbon containing formation is vaporized. Water may occupy, in some hydrocarbon containing formations, between 10% and 50% of the pore volume in the formation. In other formations, water occupies larger or smaller portions of the pore volume. Water typically is vaporized in a formation between 160 0 C and 285 0 C at pressures of 600 kPa absolute to 7000 kPa absolute.
- the vaporized water produces wettability changes in the formation and/or increased formation pressure.
- the wettability changes and/or increased pressure may affect pyrolysis reactions or other reactions in the formation.
- the vaporized water is produced from the formation.
- the vaporized water is used for steam extraction and/or distillation in the formation or outside the formation. Removing the water from and increasing the pore volume in the formation increases the storage space for hydrocarbons in the pore volume.
- the formation is heated further, such that a temperature in the formation reaches (at least) an initial pyrolyzation temperature (such as a temperature at the lower end of the temperature range shown as stage 2).
- Hydrocarbons in the formation may be pyrolyzed throughout stage 2.
- a pyrolysis temperature range varies depending on the types of hydrocarbons in the formation.
- the pyrolysis temperature range may include temperatures between 250 °C and 900 0 C.
- the pyrolysis temperature range for producing desired products may extend through only a portion of the total pyrolysis temperature range.
- the pyrolysis temperature range for producing desired products may include temperatures between 250 0 C and 400 0 C or temperatures between 270 °C and 350 °C.
- a temperature of hydrocarbons in the formation is slowly raised through the temperature range from 250 0 C to 400 °C
- production of pyrolysis products may be substantially complete when the temperature approaches 400 0 C.
- Average temperature of the hydrocarbons may be raised at a rate of less than 5 0 C per day, less than 2 0 C per day, less than 1 0 C per day, or less than 0.5 0 C per day through the pyrolysis temperature range for producing desired products.
- Heating the hydrocarbon containing formation with a plurality of heat sources may establish thermal gradients around the heat sources that slowly raise the temperature of hydrocarbons in the formation through the pyrolysis temperature range.
- the rate of temperature increase through the pyrolysis temperature range for desired products may affect the quality and quantity of the formation fluids produced from the hydrocarbon containing formation. Raising the temperature slowly through the pyrolysis temperature range for desired products may inhibit mobilization of large chain molecules in the formation. Raising the temperature slowly through the pyrolysis temperature range for desired products may limit reactions between mobilized hydrocarbons that produce undesired products. Slowly raising the temperature of the formation through the pyrolysis temperature range for desired products may allow for the production of high quality, high API gravity hydrocarbons from the formation. Slowly raising the temperature of the formation through the pyrolysis temperature range for desired products may allow for the removal of a large amount of the hydrocarbons present in the formation as hydrocarbon product.
- a portion of the formation is heated to a desired temperature instead of slowly heating the temperature through a temperature range.
- the desired temperature is 300 0 C, 325 0 C, or 350 °C.
- Other temperatures may be selected as the desired temperature.
- Superposition of heat from heat sources allows the desired temperature to be relatively quickly and efficiently established in the formation. Energy input into the formation from the heat sources may be adjusted to maintain the temperature in the formation substantially at the desired temperature. The heated portion of the formation is maintained substantially at the desired temperature until pyrolysis declines such that production of desired formation fluids from the formation becomes uneconomical.
- Parts of the formation that are subjected to pyrolysis may include regions brought into a pyrolysis temperature range by heat transfer from only one heat source.
- formation fluids including pyrolyzation fluids are produced from the formation.
- the amount of condensable hydrocarbons in the produced formation fluid may decrease.
- the formation may produce mostly methane and/or hydrogen. If the hydrocarbon containing formation is heated throughout an entire pyrolysis range, the formation may produce only small amounts of hydrogen towards an upper limit of the pyrolysis range. After all of the available hydrogen is depleted, a minimal amount of fluid production from the formation will typically occur.
- Synthesis gas generation may take place during stage 3 heating depicted in FIG. 1.
- Stage 3 may include heating a hydrocarbon containing formation to a temperature sufficient to allow synthesis gas generation.
- synthesis gas may be produced in a temperature range from 400 0 C to 1200 °C, 500 0 C to 1100 0 C, or 550 0 C to 1000 0 C.
- the temperature of the heated portion of the formation when the synthesis gas generating fluid is introduced to the formation determines the composition of synthesis gas produced in the formation.
- the generated synthesis gas may be removed from the formation through a production well or production wells.
- Total energy content of fluids produced from the hydrocarbon containing formation may stay relatively constant throughout pyrolysis and synthesis gas generation.
- a significant portion of the produced fluid may be condensable hydrocarbons that have a high energy content.
- less of the formation fluid may include condensable hydrocarbons.
- More non-condensable formation fluids may be produced from the formation.
- Energy content per unit volume of the produced fluid may decline slightly during generation of predominantly non-condensable formation fluids.
- energy content per unit volume of produced synthesis gas declines significantly compared to energy content of pyrolyzation fluid. The volume of the produced synthesis gas, however, will in many instances increase substantially, thereby compensating for the decreased energy content.
- FIG. 2 depicts a schematic view of an embodiment of a portion of the in situ conversion system for treating the hydrocarbon containing formation.
- the in situ conversion system may include barrier wells 200.
- Barrier wells are used to form a barrier around a treatment area. The barrier inhibits fluid flow into and/or out of the treatment area.
- Barrier wells include, but are not limited to, dewatering wells, vacuum wells, capture wells, injection wells, grout wells, freeze wells, or combinations thereof.
- barrier wells 200 are dewatering wells. Dewatering wells may remove liquid water and/or inhibit liquid water from entering a portion of the formation to be heated, or to the formation being heated. In the embodiment depicted in FIG.
- the barrier wells 200 are shown extending only along one side of heat sources 202, but the barrier wells typically encircle all heat sources 202 used, or to be used, to heat a treatment area of the formation.
- Heat sources 202 are placed in at least a portion of the formation.
- Heat sources 202 may include heaters such as insulated conductors, conductor-in-conduit heaters, surface burners, flameless distributed combustors, and/or natural distributed combustors. Heat sources 202 may also include other types of heaters.
- Heat sources 202 provide heat to at least a portion of the formation to heat hydrocarbons in the formation.
- Energy may be supplied to heat sources 202 through supply lines 204.
- Supply lines 204 may be structurally different depending on the type of heat source or heat sources used to heat the formation.
- Supply lines 204 for heat sources may transmit electricity for electric heaters, may transport fuel for combustors, or may transport heat exchange fluid that is circulated in the formation.
- Production wells 206 are used to remove formation fluid from the formation.
- production well 206 may include one or more heat sources.
- a heat source in the production well may heat one or more portions of the formation at or near the production well.
- a heat source in a production well may inhibit condensation and reflux of formation fluid being removed from the formation.
- Formation fluid produced from production wells 206 may be transported through collection piping 208 to treatment facilities 210.
- Formation fluids may also be produced from heat sources 202.
- fluid may be produced from heat sources 202 to control pressure in the formation adjacent to the heat sources.
- Fluid produced from heat sources 202 may be transported through tubing or piping to collection piping 208 or the produced fluid may be transported through tubing or piping directly to treatment facilities 210.
- Treatment facilities 210 may include separation units, reaction units, upgrading units, fuel cells, turbines, storage vessels, and/or other systems and units for processing produced formation fluids.
- the treatment facilities may form transportation fuel from at least a portion of the hydrocarbons produced from the formation.
- Temperature limited heaters may be in configurations and/or may include materials that provide automatic temperature limiting properties for the heater at certain temperatures.
- ferromagnetic materials are used in temperature limited heaters. Ferromagnetic material may self-limit temperature at or near the Curie temperature of the material to provide a reduced amount of heat at or near the Curie temperature when a time- varying current is applied to the material. In certain embodiments, the ferromagnetic material self-limits temperature of the temperature limited heater at a selected temperature that is approximately the Curie temperature. In certain embodiments, the selected temperature is within 35 °C, within 25 0 C, within 20 °C, or within 10 0 C of the Curie temperature.
- ferromagnetic materials are coupled with other materials (for example, highly conductive materials, high strength materials, corrosion resistant materials, or combinations thereof) to provide various electrical and/or mechanical properties.
- Some parts of the temperature limited heater may have a lower resistance (caused by different geometries and/or by using different ferromagnetic and/or non-ferromagnetic materials) than other parts of the temperature limited heater. Having parts of the temperature limited heater with various materials and/or dimensions allows for tailoring the desired heat output from each part of the heater.
- Temperature limited heaters may be more reliable than other heaters. Temperature limited heaters may be less apt to break down or fail due to hot spots in the formation. In some embodiments, temperature limited heaters allow for substantially uniform heating of the formation. In some embodiments, temperature limited heaters are able to heat the formation more efficiently by operating at a higher average heat output along the entire length of the heater. The temperature limited heater operates at the higher average heat output along the entire length of the heater because power to the heater does not have to be reduced to the entire heater, as is the case with typical constant wattage heaters, if a temperature along any point of the heater exceeds, or is to exceed, a maximum operating temperature of the heater.
- Heat output from portions of a temperature limited heater approaching a Curie temperature of the heater automatically reduces without controlled adjustment of the time-varying current applied to the heater.
- the heat output automatically reduces due to changes in electrical properties (for example, electrical resistance) of portions of the temperature limited heater.
- electrical properties for example, electrical resistance
- the system including temperature limited heaters initially provides a first heat output and then provides a reduced (second heat output) heat output, near, at, or above the Curie temperature of an electrically resistive portion of the heater when the temperature limited heater is energized by a time-varying current.
- the first heat output is the heat output at temperatures below which the temperature limited heater begins to self- limit.
- the first heat output is the heat output at a temperature 50 0 C, 75 0 C, 100 0 C, or 125 0 C below the Curie temperature of the ferromagnetic material in the temperature limited heater.
- the temperature limited heater may be energized by time-varying current (alternating current or modulated direct current) supplied at the wellhead.
- the wellhead may include a power source and other components (for example, modulation components, transformers, and/or capacitors) used in supplying power to the temperature limited heater.
- the temperature limited heater may be one of many heaters used to heat a portion of the formation.
- the temperature limited heater includes a conductor that operates as a skin effect or proximity effect heater when time-varying current is applied to the conductor. The skin effect limits the depth of current penetration into the interior of the conductor. For ferromagnetic materials, the skin effect is dominated by the magnetic permeability of the conductor.
- the relative magnetic permeability of ferromagnetic materials is typically between 10 and 1000 (for example, the relative magnetic permeability of ferromagnetic materials is typically at least 10 and may be at least 50, 100, 500, 1000 or greater).
- the magnetic permeability of the ferromagnetic material decreases substantially and the skin depth expands rapidly (for example, the skin depth expands as the inverse square root of the magnetic permeability).
- the reduction in magnetic permeability results in a decrease in the AC or modulated DC resistance of the conductor near, at, or above the Curie temperature and/or as the applied electrical current is increased.
- the temperature limited heater When the temperature limited heater is powered by a substantially constant current source, portions of the heater that approach, reach, or are above the Curie temperature may have reduced heat dissipation. Sections of the temperature limited heater that are not at or near the Curie temperature may be dominated by skin effect heating that allows the heater to have high heat dissipation due to a higher resistive load.
- An advantage of using the temperature limited heater to heat hydrocarbons in the formation is that the conductor is chosen to have a Curie temperature in a desired range of temperature operation. Operation within the desired operating temperature range allows substantial heat injection into the formation while maintaining the temperature of the temperature limited heater, and other equipment, below design limit temperatures. Design limit temperatures are temperatures at which properties such as corrosion, creep, and/or deformation are adversely affected.
- the temperature limiting properties of the temperature limited heater inhibits overheating or burnout of the heater adjacent to low thermal conductivity "hot spots" in the formation.
- the temperature limited heater is able to lower or control heat output and/or withstand heat at temperatures above 25 0 C, 37 °C, 100 0 C, 250 0 C, 500 0 C, 700 0 C, 800 0 C, 900 0 C, or higher up to 1131 0 C, depending on the materials used in the heater.
- the temperature limited heater allows for more heat injection into the formation than constant wattage heaters because the energy input into the temperature limited heater does not have to be limited to accommodate low thermal conductivity regions adjacent to the heater. For example, in Green River oil shale there is a difference of at least a factor of 3 in the thermal conductivity of the lowest richness oil shale layers and the highest richness oil shale layers. When heating such a formation, substantially more heat is transferred to the formation with the temperature limited heater than with the conventional heater that is limited by the temperature at low thermal conductivity layers. The heat output along the entire length of the conventional heater needs to accommodate the low thermal conductivity layers so that the heater does not overheat at the low thermal conductivity layers and burn out.
- the heat output adjacent to the low thermal conductivity layers that are at high temperature will reduce for the temperature limited heater, but the remaining portions of the temperature limited heater that are not at high temperature will still provide high heat output. Because heaters for heating hydrocarbon formations typically have long lengths (for example, at least 10 m, 100 m, 300 m, at least 500 m, 1 km or more up to 10 km), the majority of the length of the temperature limited heater may be operating below the Curie temperature while only a few portions are at or near the Curie temperature of the temperature limited heater.
- temperature limited heaters allow for efficient transfer of heat to the formation. Efficient transfer of heat allows for reduction in time needed to heat the formation to a desired temperature. For example, in Green River oil shale, pyrolysis typically requires 9.5 years to 10 years of heating when using a 12 m heater well spacing with conventional constant wattage heaters. For the same heater spacing, temperature limited heaters may allow a larger average heat output while maintaining heater equipment temperatures below equipment design limit temperatures. Pyrolysis in the formation may occur at an earlier time with the larger average heat output provided by temperature limited heaters than the lower average heat output provided by constant wattage heaters. For example, in Green River oil shale, pyrolysis may occur in 5 years using temperature limited heaters with a 12 m heater well spacing.
- Temperature limited heaters counteract hot spots due to inaccurate well spacing or drilling where heater wells come too close together.
- temperature limited heaters allow for increased power output over time for heater wells that have been spaced too far apart, or limit power output for heater wells that are spaced too close together. Temperature limited heaters also supply more power in regions adjacent the overburden and underburden to compensate for temperature losses in these regions.
- Temperature limited heaters may be advantageously used in many types of formations. For example, in tar sands formations or relatively permeable formations containing heavy hydrocarbons, temperature limited heaters may be used to provide a controllable low temperature output for reducing the viscosity of fluids, mobilizing fluids, and/or enhancing the radial flow of fluids at or near the wellbore or in the formation. Temperature limited heaters may be used to inhibit excess coke formation due to overheating of the near wellbore region of the formation.
- temperature limited heaters eliminates or reduces the need for expensive temperature control circuitry.
- the use of temperature limited heaters eliminates or reduces the need to perform temperature logging and/or the need to use fixed thermocouples on the heaters to monitor potential overheating at hot spots.
- the temperature limited heater is deformation tolerant. Localized movement of material in the wellbore may result in lateral stresses on the heater that could deform its shape. Locations along a length of the heater at which the wellbore approaches or closes on the heater may be hot spots where a standard heater overheats and has the potential to burn out. These hot spots may lower the yield strength and creep strength of the metal, allowing crushing or deformation of the heater.
- the temperature limited heater may be formed with S curves (or other non-linear shapes) that accommodate deformation of the temperature limited heater without causing failure of the heater.
- temperature limited heaters are more economical to manufacture or make than standard heaters.
- Typical ferromagnetic materials include iron, carbon steel, or ferritic stainless steel. Such materials are inexpensive as compared to nickel-based heating alloys (such as nichrome, KanthalTM (Bulten-Kanthal AB, Sweden), and/or LOHMTM (Driver-Harris Company, Harrison, New Jersey, U.S.A.)) typically used in insulated conductor (mineral insulated cable) heaters.
- the temperature limited heater is manufactured in continuous lengths as an insulated conductor heater to lower costs and improve reliability.
- the temperature limited heater is placed in the heater well using a coiled tubing rig.
- a heater that can be coiled on a spool may be manufactured by using metal such as ferritic stainless steel (for example, 409 stainless steel) that is welded using electrical resistance welding (ERW).
- ERW electrical resistance welding
- a metal strip from a roll is passed through a first former where it is shaped into a tubular and then longitudinally welded using ERW.
- the tubular is passed through a second former where a conductive strip (for example, a copper strip) is applied, drawn down tightly on the tubular through a die, and longitudinally welded using ERW.
- a sheath may be formed by longitudinally welding a support material (for example, steel such as 347H or 347HH) over the conductive strip material.
- the support material may be a strip rolled over the conductive strip material.
- An overburden section of the heater may be formed in a similar manner.
- the overburden section uses a non-ferromagnetic material such as 304 stainless steel or 316 stainless steel instead of a ferromagnetic material.
- the heater section and overburden section may be coupled together using standard techniques such as butt welding using an orbital welder.
- the overburden section material (the non-ferromagnetic material) may be pre-welded to the ferromagnetic material before rolling. The pre-welding may eliminate the need for a separate coupling step (for example, butt welding).
- a flexible cable (for example, a furnace cable such as a MGT 1000 furnace cable) may be pulled through the center after forming the tubular heater.
- An end bushing on the flexible cable may be welded to the tubular heater to provide an electrical current return path.
- the tubular heater, including the flexible cable may be coiled onto a spool before installation into a heater well.
- the temperature limited heater is installed using the coiled tubing rig.
- the coiled tubing rig may place the temperature limited heater in a deformation resistant container in the formation.
- the deformation resistant container may be placed in the heater well using conventional methods.
- the ferromagnetic alloy or ferromagnetic alloys used in the temperature limited heater determine the Curie temperature of the heater.
- Ferromagnetic conductors may include one or more of the ferromagnetic elements (iron, cobalt, and nickel) and/or alloys of these elements.
- ferromagnetic conductors include iron-chromium (Fe-Cr) alloys that contain tungsten (W) (for example, HCM12A and SAVE12 (Sumitomo Metals Co., Japan) and/or iron alloys that contain chromium (for example, Fe-Cr alloys, Fe-Cr-W alloys, Fe-Cr-V (vanadium) alloys, Fe-Cr-Nb (Niobium) alloys).
- W tungsten
- SAVE12 Suditomo Metals Co., Japan
- iron alloys that contain chromium for example, Fe-Cr alloys, Fe-Cr-W alloys, Fe-Cr-V (vanadium) alloys, Fe-Cr-Nb (Niobium) alloys.
- iron has a Curie temperature of 770 0 C
- cobalt (Co) has a Curie temperature of 1131 0 C
- nickel has a Curie temperature of approximately 358 0 C.
- An iron-cobalt alloy has a Curie temperature higher than the Curie temperature of iron.
- iron-cobalt alloy with 2% by weight cobalt has a Curie temperature of 800 0 C
- iron-cobalt alloy with 12% by weight cobalt has a Curie temperature of 900 0 C
- iron-cobalt alloy with 20% by weight cobalt has a Curie temperature of 950 0 C.
- Iron-nickel alloy has a Curie temperature lower than the Curie temperature of iron.
- iron-nickel alloy with 20% by weight nickel has a Curie temperature of 720 0 C
- iron-nickel alloy with 60% by weight nickel has a Curie temperature of 560 0 C.
- Non-ferromagnetic elements used as alloys raise the Curie temperature of iron.
- an iron- vanadium alloy with 5.9% by weight vanadium has a Curie temperature of approximately 815 0 C.
- Other non-ferromagnetic elements for example, carbon, aluminum, copper, silicon, and/or chromium
- Non-ferromagnetic materials that raise the Curie temperature may be combined with non-ferromagnetic materials that lower the Curie temperature and alloyed with iron or other ferromagnetic materials to produce a material with a desired Curie temperature and other desired physical and/or chemical properties.
- the Curie temperature material is a ferrite such as NiFe 2 O 4 .
- the Curie temperature material is a binary compound such as FeNi 3 or Fe 3 Al.
- Certain embodiments of temperature limited heaters may include more than one ferromagnetic material.
- Skin depth generally defines an effective penetration depth of time-varying current into the conductive material.
- current density decreases exponentially with distance from an outer surface to the center along the radius of the conductor.
- the depth at which the current density is approximately lie of the surface current density is called the skin depth.
- ⁇ For a solid cylindrical rod with a diameter much greater than the penetration depth, or for hollow cylinders with a wall thickness exceeding the penetration depth, the skin depth, ⁇ , is:
- EQN. 1 is obtained from "Handbook of Electrical Heating for Industry” by C. James Erickson (IEEE Press, 1995). For most metals, resistivity (p) increases with temperature. The relative magnetic permeability generally varies with temperature and with current. Additional equations may be used to assess the variance of magnetic permeability and/or skin depth on both temperature and/or current. The dependence of ⁇ on current arises from the
- Materials used in the temperature limited heater may be selected to provide a desired turndown ratio.
- Turndown ratios of at least 1.1:1, 2:1, 3:1, 4:1, 5:1, 10:1, 30:1, or 50:1 may be selected for temperature limited heaters. Larger turndown ratios may also be used.
- a selected turndown ratio may depend on a number of factors including, but not limited to, the type of formation in which the temperature limited heater is located (for example, a higher turndown ratio may be used for an oil shale formation with large variations in thermal conductivity between rich and lean oil shale layers) and/or a temperature limit of materials used in the wellbore (for example, temperature limits of heater materials).
- the turndown ratio is increased by coupling additional copper or another good electrical conductor to the ferromagnetic material (for example, adding copper to lower the resistance above the Curie temperature)'.
- the temperature limited heater may provide a minimum heat output (power output) below the Curie temperature of the heater.
- the minimum heat output is at least 400 W/m (Watts per meter), 600 W/m, 700 W/m, 800 W/m, or higher up to 2000 W/m.
- the temperature limited heater reduces the amount of heat output by a section of the heater when the temperature of the section of the heater approaches or is above the Curie temperature.
- the reduced amount of heat may be substantially less than the heat output below the Curie temperature.
- the reduced amount of heat is at most 400 W/m, 200 W/m, 100 W/m or may approach 0 W/m.
- AC frequency is adjusted to change the skin depth of the ferromagnetic material.
- the skin depth of 1% carbon steel at room temperature is 0.132 cm at 60 Hz, 0.0762 cm at 180 Hz, and 0.046 cm at 440 Hz. Since heater diameter is typically larger than twice the skin depth, using a higher frequency (and thus a heater with a smaller diameter) reduces heater costs.
- the higher frequency results in a higher turndown ratio.
- the turndown ratio at a higher frequency is calculated by multiplying the turndown ratio at a lower frequency by the square root of the higher frequency divided by the lower frequency.
- a frequency between 100 Hz and 1000 Hz, between 140 Hz and 200 Hz, or between 400 Hz and 600 Hz is used (for example, 180 Hz, 540 Hz, or 720 Hz).
- high frequencies maybe used. The frequencies may be greater than 1000 Hz.
- modulated DC for example, chopped DC, waveform modulated DC, or cycled DC
- a DC modulator or DC chopper may be coupled to a DC power supply to provide an output of modulated direct current.
- the DC power supply may include means for modulating DC.
- a DC modulator is a DC-to-DC converter system.
- DC-to-DC converter systems are generally known in the art.
- DC is typically modulated or chopped into a desired waveform.
- Waveforms for DC modulation include, but are not limited to, square-wave, sinusoidal, deformed sinusoidal, deformed square-wave, triangular, and other regular or irregular waveforms.
- the modulated DC waveform generally defines the frequency of the modulated DC.
- DC waveform may be selected to provide a desired modulated DC frequency.
- the shape and/or the rate of modulation (such as the rate of chopping) of the modulated DC waveform may be varied to vary the modulated DC frequency.
- DC may be modulated at frequencies that are higher than generally available AC frequencies.
- modulated DC may be provided at frequencies of at least 1000 Hz. Increasing the frequency of supplied current to higher values advantageously increases the turndown ratio of the temperature limited heater.
- the modulated DC waveform is adjusted or altered to vary the modulated DC frequency.
- the DC modulator may be able to adjust or alter the modulated DC waveform at any time during use of the temperature limited heater and at high currents or voltages.
- modulated DC provided to the temperature limited heater is not limited to a single frequency or even a small set of frequency values.
- Waveform selection using the DC modulator typically allows for a wide range of modulated DC frequencies and for discrete control of the modulated DC frequency.
- the modulated DC frequency is more easily set at a distinct value whereas AC frequency is generally limited to multiples of the line frequency.
- Discrete control of the modulated DC frequency allows for more selective control over the turndown ratio of the temperature limited heater. Being able to selectively control the turndown ratio of the temperature limited heater allows for a broader range of materials to be used in designing and constructing the temperature limited heater.
- the modulated DC frequency or the AC frequency is adjusted to compensate for changes in properties (for example, subsurface conditions such as temperature or pressure) of the temperature limited heater during use.
- the modulated DC frequency or the AC frequency provided to the temperature limited heater is varied based on assessed downhole conditions. For example, as the temperature of the temperature limited heater in the wellbore increases, it may be advantageous to increase the frequency of the current provided to the heater, thus increasing the turndown ratio of the heater. In an embodiment, the downhole temperature of the temperature limited heater in the wellbore is assessed.
- the modulated DC frequency, or the AC frequency is varied to adjust the turndown ratio of the temperature limited heater.
- the turndown ratio may be adjusted to compensate for hot spots occurring along a length of the temperature limited heater. For example, the turndown ratio is increased because the temperature limited heater is getting too hot in certain locations.
- the modulated DC frequency, or the AC frequency are varied to adjust a turndown ratio without assessing a subsurface condition.
- an outermost layer of the temperature limited heater (for example, the outer conductor) is chosen for corrosion resistance, yield strength, and/or creep resistance.
- austenitic (non-ferromagnetic) stainless steels such as 201, 304H, 347H, 347HH, 316H, 310H, 347HP, NF709 (Nippon Steel Corp., Japan) stainless steels, or combinations thereof may be used in the outer conductor.
- the outermost layer may also include a clad conductor.
- a corrosion resistant alloy such as 800H or 347H stainless steel may be clad for corrosion protection over a ferromagnetic carbon steel tubular.
- the outermost layer may be constructed from ferromagnetic metal with good corrosion resistance such as one of the ferritic stainless steels.
- ferromagnetic metal with good corrosion resistance
- a ferritic alloy of 82.3% by weight iron with 17.7% by weight chromium (Curie temperature of 678 0 C) provides desired corrosion resistance.
- the Metals Handbook, vol. 8, page 291 includes a graph of Curie temperature of iron-chromium alloys versus the amount of chromium in the alloys.
- a separate support rod or tubular (made from 347H stainless steel) is coupled to the temperature limited heater made from an iron-chromium alloy to provide yield strength and/or creep resistance.
- the support material and/or the ferromagnetic material is selected to provide a 100,000 hour creep- rupture strength of at least 20.7 MPa at 650 0 C. In some embodiments, the 100,000 hour creep-rupture strength is at least 13.8 MPa at 650 0 C or at least 6.9 MPa at 650 0 C.
- the temperature limited heater includes a composite conductor with a ferromagnetic tubular and a non-ferromagnetic, high electrical conductivity core.
- the non-ferromagnetic, high electrical conductivity core reduces a required diameter of the conductor.
- the conductor may be composite 1.19 cm diameter conductor with a core of 0.575 cm diameter copper clad with a 0.298 cm thickness of ferritic stainless steel or carbon steel surrounding the core.
- the core or non-ferromagnetic conductor may be copper or copper alloy.
- the core or non-ferromagnetic conductor may also be made of other metals that exhibit low electrical resistivity and relative magnetic permeabilities near 1 (for example, substantially non-ferromagnetic materials such as aluminum and aluminum alloys, phosphor bronze, beryllium copper, and/or brass).
- a composite conductor allows the electrical resistance of the temperature limited heater to decrease more steeply near the Curie temperature. As the skin depth increases near the Curie temperature to include the copper core, the electrical resistance decreases very sharply.
- the composite conductor may increase the conductivity of the temperature limited heater and/or allow the heater to operate at lower voltages.
- the composite conductor exhibits a relatively flat resistance versus temperature profile at temperatures below a region near the Curie temperature of the ferromagnetic conductor of the composite conductor.
- the temperature limited heater exhibits a relatively flat resistance versus temperature profile between 100 0 C and 750 °C or between 300 0 C and 600 0 C.
- the relatively flat resistance versus temperature profile may also be exhibited in other temperature ranges by adjusting, for example, materials and/or the configuration of materials in the temperature limited heater.
- the relative thickness of each material in the composite conductor is selected to produce a desired resistivity versus temperature profile for the temperature limited heater.
- a composite conductor for example, a composite inner conductor or a composite outer conductor
- coextrusion for example, roll forming, tight fit tubing
- tight fit tubing for example, cooling the inner
- a ferromagnetic conductor is braided over a non-ferromagnetic conductor.
- composite conductors are formed using methods similar to those used for cladding (for example, cladding copper to steel). A metallurgical bond between copper cladding and base ferromagnetic material may be advantageous.
- Composite conductors produced by a coextrusion process that forms a good metallurgical bond may be provided by Anomet Products, Inc. (Shrewsbury, Massachusetts, U.S.A.).
- FIGS. 3-9 depict various embodiments of temperature limited heaters.
- One or more features of an embodiment of the temperature limited heater depicted in any of these figures may be combined with one or more features of other embodiments of temperature limited heaters depicted in these figures.
- temperature limited heaters are dimensioned to operate at a frequency of 60 Hz AC. It is to be understood that dimensions of the temperature limited heater may be adjusted from those described herein in order for the temperature limited heater to operate in a similar manner at other AC frequencies or with modulated DC current.
- FIG. 3 depicts a cross-sectional representation of an embodiment of the temperature limited heater with an outer conductor having a ferromagnetic section and a non-ferromagnetic section.
- FIGS. 4 and 5 depict transverse cross-sectional views of the embodiment shown in FIG. 3.
- ferromagnetic section 212 is used to provide heat to hydrocarbon layers in the formation.
- Non-ferromagnetic section 214 is used in the overburden of the formation.
- Non-ferromagnetic section 214 provides little or no heat to the overburden, thus inhibiting heat losses in the overburden and improving heater efficiency.
- Ferromagnetic section 212 includes a ferromagnetic material such as 409 stainless steel or 410 stainless steel. Ferromagnetic section 212 has a thickness of 0.3 cm.
- Non- ferromagnetic section 214 is copper with a thickness of 0.3 cm.
- Inner conductor 216 is copper.
- Inner conductor 216 has a diameter of 0.9 cm.
- Electrical insulator 218 is silicon nitride, boron nitride, magnesium oxide powder, or another suitable insulator material. Electrical insulator 218 has a thickness of 0.1 cm to 0.3 cm.
- FIG. 6A and FIG. 6B depict cross-sectional representations of an embodiment of a temperature limited heater with a ferromagnetic inner conductor and a non-ferromagnetic core.
- Inner conductor 216 may be made of 446 stainless steel, 409 stainless steel, 410 stainless steel, carbon steel, Armco ingot iron, iron-cobalt alloys, or other ferromagnetic materials.
- Core 220 may be tightly bonded inside inner conductor 216.
- Core 220 is copper or other non-ferromagnetic material.
- core 220 is inserted as a tight fit inside inner conductor 216 before a drawing operation.
- core 220 and inner conductor 216 are coextrusion bonded.
- Outer conductor 222 is 347H stainless steel.
- a drawing or rolling operation to compact electrical insulator 218 may ensure good electrical contact between inner conductor 216 and core 220.
- heat is produced primarily in inner conductor 216 until the Curie temperature is approached. Resistance then decreases sharply as current penetrates core 220.
- the ferromagnetic conductor confines a majority of the flow of electrical current to an electrical conductor coupled to the ferromagnetic conductor when the temperature limited heater is below or near the Curie temperature of the ferromagnetic conductor.
- the electrical conductor may be a sheath, jacket, support member, corrosion resistant member, or other electrically resistive member.
- the ferromagnetic conductor confines a majority of the flow of electrical current to the electrical conductor positioned between an outermost layer and the ferromagnetic conductor.
- the ferromagnetic conductor is located in the cross section of the temperature limited heater such that the magnetic properties of the ferromagnetic conductor at or below the Curie temperature of the ferromagnetic conductor confine the majority of the flow of electrical current to the electrical conductor.
- the majority of the flow of electrical current is confined to the electrical conductor due to the skin effect of the ferromagnetic conductor.
- the majority of the current is flowing through material with substantially linear resistive properties throughout most of the operating range of the heater.
- the ferromagnetic conductor and the electrical conductor are located in the cross section of the temperature limited heater so that the skin effect of the ferromagnetic material limits the penetration depth of electrical current in the electrical conductor and the ferromagnetic conductor at temperatures below the Curie temperature of the ferromagnetic conductor.
- the electrical conductor provides a majority of the electrically resistive heat output of the temperature limited heater at temperatures up to a temperature at or near the Curie temperature of the ferromagnetic conductor.
- the dimensions of the electrical conductor may be chosen to provide desired heat output characteristics.
- the temperature limited heater has a resistance versus temperature profile that at least partially reflects the resistance versus temperature profile of the material in the electrical conductor.
- the resistance versus temperature profile of the temperature limited heater is substantially linear below the Curie temperature of the ferromagnetic conductor if the material in the electrical conductor has a substantially linear resistance versus temperature profile.
- the resistance of the temperature limited heater has little or no dependence on the current flowing through the heater until the temperature nears the Curie temperature. The majority of the current flows in the electrical conductor rather than the ferromagnetic conductor below the Curie temperature.
- Resistance versus temperature profiles for temperature limited heaters in which the majority of the current flows in the electrical conductor also tend to exhibit sharper reductions in resistance near or at the Curie temperature of the ferromagnetic conductor.
- the sharper reductions in resistance near or at the Curie temperature are easier to control than more gradual resistance reductions near the Curie temperature.
- the material and/or the dimensions of the material in the electrical conductor are selected so that the temperature limited heater has a desired resistance versus temperature profile below the Curie temperature of the ferromagnetic conductor.
- Temperature limited heaters in which the majority of the current flows in the electrical conductor rather than the ferromagnetic conductor below the Curie temperature are easier to predict and/or control.
- Behavior of temperature limited heaters in which the majority of the current flows in the electrical conductor rather than the ferromagnetic conductor below the Curie temperature may be predicted by, for example, its resistance versus temperature profile and/or its power factor versus temperature profile. Resistance versus temperature profiles and/or power factor versus temperature profiles may be assessed or predicted by, for example, experimental measurements that assess the behavior of the temperature limited heater, analytical equations that assess or predict the behavior of the temperature limited heater, and/or simulations that assess or predict the behavior of the temperature limited heater.
- a highly electrically conductive member is coupled to the ferromagnetic conductor and the electrical conductor to reduce the electrical resistance of the temperature limited heater at or above the Curie temperature of the ferromagnetic conductor.
- the highly electrically conductive member may be an inner conductor, a core, or another conductive member of copper, aluminum, nickel, or alloys thereof.
- the ferromagnetic conductor that confines the majority of the flow of electrical current to the electrical conductor at temperatures below the Curie temperature may have a relatively small cross section compared to the ferromagnetic conductor in temperature limited heaters that use the ferromagnetic conductor to provide the majority of resistive heat output up to or near the Curie temperature.
- a temperature limited heater that uses the electrical conductor to provide a majority of the resistive heat output below the Curie temperature has low magnetic inductance at temperatures below the Curie temperature because less current is flowing through the ferromagnetic conductor as compared to the temperature limited heater where the majority of the resistive heat output below the Curie temperature is provided by the ferromagnetic material.
- Magnetic field (H) at radius (r) of the ferromagnetic conductor is proportional to the current (I) flowing through the ferromagnetic conductor and the core divided by the radius, or:
- the magnetic field of the temperature limited heater may be significantly smaller than the magnetic field of the temperature limited heater where the majority of the current flows through the ferromagnetic material.
- the relative magnetic permeability ( ⁇ ) may be large for small magnetic fields.
- the skin depth ( ⁇ ) of the ferromagnetic conductor is inversely proportional to the square root of the relative magnetic permeability ( ⁇ ):
- the radius (or thickness) of the ferromagnetic conductor may be decreased for ferromagnetic materials with large relative magnetic permeabilities to compensate for the decreased skin depth while still allowing the skin effect to limit the penetration depth of the electrical current to the electrical conductor at temperatures below the Curie temperature of the ferromagnetic conductor.
- the radius (thickness) of the ferromagnetic conductor maybe between 0.3 mm and 8 mm, between 0.3 mm and 2 mm, or between 2 mm and 4 mm depending on the relative magnetic permeability of the ferromagnetic conductor.
- Decreasing the thickness of the ferromagnetic conductor decreases costs of manufacturing the temperature limited heater, as the cost of ferromagnetic material tends to be a significant portion of the cost of the temperature limited heater.
- Increasing the relative magnetic permeability of the ferromagnetic conductor provides a higher turndown ratio and a sharper decrease in electrical resistance for the temperature limited heater at or near the Curie temperature of the ferromagnetic conductor.
- Ferromagnetic materials such as purified iron or iron-cobalt alloys
- high relative magnetic permeabilities for example, at least 200, at least 1000, at least 1 x 10 4 , or at least 1 x 10 5
- high Curie temperatures for example, at least 600 0 C, at least 700 0 C, or at least 800 0 C
- the electrical conductor may provide corrosion resistance and/or high mechanical strength at high temperatures for the temperature limited heater.
- the ferromagnetic conductor may be chosen primarily for its ferromagnetic properties. Confining the majority of the flow of electrical current to the electrical conductor below the Curie temperature of the ferromagnetic conductor reduces variations in the power factor.
- the non-linear ferromagnetic properties of the ferromagnetic conductor have little or no effect on the power factor of the temperature limited heater, except at or near the Curie temperature. Even at or near the Curie temperature, the effect on the power factor is reduced compared to temperature limited heaters in which the ferromagnetic conductor provides a majority of the resistive heat output below the Curie temperature. Thus, there is less or no need for external compensation (for example, variable capacitors or waveform modification) to adjust for changes in the inductive load of the temperature limited heater to maintain a relatively high power factor.
- external compensation for example, variable capacitors or waveform modification
- the temperature limited heater which confines the majority of the flow of electrical current to the electrical conductor below the Curie temperature of the ferromagnetic conductor, maintains the power factor above 0.85, above 0.9, or above 0.95 during use of the heater. Any reduction in the power factor occurs only in sections of the temperature limited heater at temperatures near the Curie temperature. Most sections of the temperature limited heater are typically not at or near the Curie temperature during use. These sections have a high power factor that approaches 1.0. The power factor for the entire temperature limited heater is maintained above
- Maintaining high power factors also allows for less expensive power supplies and/or control devices such as solid state power supplies or SCRs (silicon controlled rectifiers). These devices may fail to operate properly if the power factor varies by too large an amount because of inductive loads. With the power factors maintained at the higher values; however, these devices may be used to provide power to the temperature limited heater. Solid state power supplies also have the advantage of allowing fine tuning and controlled adjustment of the power supplied to the temperature limited heater.
- transformers are used to provide power to the temperature limited heater. Multiple voltage taps may be made into the transformer to provide power to the temperature limited heater. Multiple voltage taps allows the current supplied to switch back and forth between the multiple voltages. This maintains the current within a range bound by the multiple voltage taps.
- the highly electrically conductive member, or inner conductor increases the turndown ratio of the temperature limited heater.
- thickness of the highly electrically conductive member is increased to increase the turndown ratio of the temperature limited heater.
- the thickness of the electrical conductor is reduced to increase the turndown ratio of the temperature limited heater.
- the turndown ratio of the temperature limited heater is between 1.1 and 10, between 2 and 8, or between 3 and 6 (for example, the turndown ratio is at least 1.1, at least 2, or at least 3).
- FIG. 7 depicts an embodiment of a temperature limited heater in which the support member provides a majority of the heat output below the Curie temperature of the ferromagnetic conductor.
- Core 220 is an inner conductor of the temperature limited heater.
- core 220 is a highly electrically conductive material such as copper or aluminum.
- core 220 is a copper alloy that provides mechanical strength and good electrically conductivity such as a dispersion strengthened copper.
- core 220 is Glidcop ® (SCM Metal Products, Inc., Research Triangle Park, North Carolina, U.S.A.).
- Ferromagnetic conductor 224 is a thin layer of ferromagnetic material between electrical conductor 226 and core 220.
- electrical conductor 226 is also support member 228.
- ferromagnetic conductor 224 is iron or an iron alloy.
- ferromagnetic conductor 224 includes ferromagnetic material with a high relative magnetic permeability.
- ferromagnetic conductor 224 may be purified iron such as Armco ingot iron (AK Steel Ltd., United Kingdom). Iron with some impurities typically has a relative magnetic permeability on the order of 400. Purifying the iron by annealing the iron in hydrogen gas (H 2 ) at 1450 0 C increases the relative magnetic permeability of the iron.
- electrical conductor 226 provides support for ferromagnetic conductor 224 and the temperature limited heater. Electrical conductor 226 may be made of a material that provides good mechanical strength at temperatures near or above the Curie temperature of ferromagnetic conductor 224. In certain embodiments, electrical conductor 226 is a corrosion resistant member. Electrical conductor 226 (support member 228) may provide support for ferromagnetic conductor 224 and corrosion resistance. Electrical conductor 226 is made from a material that provides desired electrically resistive heat output at temperatures up to and/or above the Curie temperature of ferromagnetic conductor 224.
- electrical conductor 226 is 347H stainless steel. In some embodiments, electrical conductor 226 is another electrically conductive, good mechanical strength, corrosion resistant material.
- electrical conductor 226 may be 304H, 316H, 347HH, NF709, Incoloy ® 800H alloy (Inco Alloys International, Huntington, West Virginia, U.S.A.), Haynes ® HR120 ® alloy, or Inconel ® 617 alloy.
- electrical conductor 226 (support member 228) includes different alloys in different portions of the temperature limited heater.
- a lower portion of electrical conductor 226 (support member 228) is 347H stainless steel and an upper portion of the electrical conductor (support member) is NF709.
- different alloys are used in different portions of the electrical conductor (support member) to increase the mechanical strength of the electrical conductor (support member) while maintaining desired heating properties for the temperature limited heater.
- ferromagnetic conductor 224 includes different ferromagnetic conductors in different portions of the temperature limited heater. Different ferromagnetic conductors may be used in different portions of the temperature limited heater to vary the Curie temperature and, thus, the maximum operating temperature in the different portions. In some embodiments, the Curie temperature in an upper portion of the temperature limited heater is lower than the Curie temperature in a lower portion of the heater. The lower Curie temperature in the upper portion increases the creep-rupture strength lifetime in the upper portion of the heater.
- ferromagnetic conductor 224, electrical conductor 226, and core 220 are dimensioned so that the skin depth of the ferromagnetic conductor limits the penetration depth of the majority of the flow of electrical current to the support member when the temperature is below the Curie temperature of the ferromagnetic conductor.
- electrical conductor 226 provides a majority of the electrically resistive heat output of the temperature limited heater at temperatures up to a temperature at or near the. Curie temperature of ferromagnetic conductor 224.
- the temperature limited heater depicted in FIG. 7 may be smaller because ferromagnetic conductor 224 is thin as compared to the size of the ferromagnetic conductor needed for a temperature limited heater in which the majority of the resistive heat output is provided by the ferromagnetic conductor.
- the support member and the corrosion resistant member are different members in the temperature limited heater.
- FIGS. 8 and 9 depict embodiments of temperature limited heaters in which the jacket provides a majority of the heat output below the Curie temperature of the ferromagnetic conductor.
- electrical conductor 226 is jacket 230.
- Electrical conductor 226, ferromagnetic conductor 224, support member 228, and core 220 (in FIG. 8) or inner conductor 216 (in FIG. 9) are dimensioned so that the skin depth of the ferromagnetic conductor limits the penetration depth of the majority of the flow of electrical current to the thickness of the jacket.
- electrical conductor 226 is a material that is corrosion resistant and provides electrically resistive heat output below the Curie temperature of ferromagnetic conductor 224.
- electrical conductor 226 is 825 stainless steel or 347H stainless steel.
- electrical conductor 226 has a small thickness (for example, on the order of 0.5 mm).
- core 220 is highly electrically conductive material such as copper or aluminum.
- Support member 228 is 347H stainless steel or another material with good mechanical strength at or near the Curie temperature of ferromagnetic conductor 224.
- support member 228 is the core of the temperature limited heater and is 347H stainless steel or another material with good mechanical strength at or near the Curie temperature of ferromagnetic conductor 224.
- Inner conductor 216 is highly electrically conductive material such as copper or aluminum.
- the temperature limited heater may be a single-phase heater or a three-phase heater. In a three-phase heater embodiment, the temperature limited heater has a delta or a wye configuration. In some embodiments, the three- phase heater includes three legs that are located in separate wellbores. The legs may be coupled in a common contacting section (for example, a central wellbore, a connecting wellbore, or a solution filled contacting section).
- Each leg 232, 234, 236 may be located in separate openings 238 in hydrocarbon layer 240.
- Each leg 232, 234, 236 may include heating element 242.
- Each leg 232, 234, 236 may be coupled to single contacting element 244 in one opening 238.
- Contacting element 244 may electrically couple legs 232, 234, 236 together in a three-phase configuration.
- Contacting element 244 may be located in, for example, a central opening in the formation.
- Contacting element 244 may be located in a portion of opening 238 below hydrocarbon layer 240 (for example, in the underburden).
- magnetic tracking of a magnetic element located in a central opening is used to guide the formation of the outer openings (for example, openings 238 with legs 232 and 236) so that the outer openings intersect the central opening.
- the central opening may be formed first using standard wellbore drilling methods.
- Contacting element 244 may include runnels, guides, or catchers for allowing each leg to be inserted into the contacting element.
- portions of legs 232 and 234 in overburden 246 have insulation (for example, polymer insulation) to inhibit heating the overburden.
- Heating elements 242 may be substantially vertical and substantially parallel to each other in hydrocarbon layer 240.
- leg 232 may be directionally drilled towards leg 234 to intercept leg 234 in a contacting section.
- Directional drilling may be done by, for example, Vector Magnetics LLC (Ithaca, New York, U.S.A.).
- the depth of the contacting section depends on the length of bend in leg 232 needed to intercept leg 234. For example, for a 40 ft (12 m) spacing between vertical portions of legs 232 and 234, 200 ft (61 m) is needed to allow the bend of leg 232 to intercept leg
- FIG. 11 depicts an embodiment of three heaters coupled in a three-phase configuration.
- Conductor "legs" 232, 234, 236 are coupled to three-phase transformer 250.
- Transformer 250 may be an isolated three-phase transformer.
- Transformer 250 provides three-phase output in a wye configuration, as shown in FIG. 11.
- Input to transformer 250 may be made in any input configuration (such as the delta configuration shown in FIG. 11).
- Legs 232, 234, 236 each include lead-in conductors 252 in the overburden of the formation coupled to heating elements 242 in hydrocarbon layer 240.
- Lead-in conductors 252 include copper with an insulation layer.
- lead-in conductors 252 may be a 4-0 copper cables with TEFLON ® insulation, a copper rod with polyurethane insulation, or other metal conductors such as bare copper or aluminum.
- lead- in conductors 252 are located in an overburden portion of the formation.
- the overburden portion may include overburden casings 262.
- Heating elements 242 may be temperature limited heater heating elements.
- heating elements 242 are 410 stainless steel rods (for example, 3.1 cm diameter 410 stainless steel rods).
- heating elements 242 are composite temperature limited heater heating elements (for example, 347 stainless steel, 410 stainless steel, copper composite heating elements; 347 stainless steel, iron, copper composite heating elements; or 410 stainless steel and copper composite heating elements). In certain embodiments, heating elements 242 have a length of at least 10 m to 2000 m, 20 m to 400 m, or 30 m to 300 m.
- heating elements 242 are exposed to hydrocarbon layer 240 and fluids from the hydrocarbon layer.
- heating elements 242 are "bare metal” or “exposed metal” heating elements.
- Heating elements 242 may be made from a material that has an acceptable sulfidation rate at high temperatures used for pyrolyzing hydrocarbons.
- heating elements 242 are made from material that has a sulfidation rate that decreases with increasing temperature over at least a certain temperature range (for example, 530 0 C to 650 0 C), such as 410 stainless steel. Using such materials reduces corrosion problems due to sulfur-containing gases (such as H 2 S) from the formation.
- Heating elements 242 may also be substantially inert to galvanic corrosion.
- heating elements 242 have a thin electrically insulating layer such as aluminum oxide or thermal spray coated aluminum oxide.
- the thin electrically insulating layer is an enamel coating of a ceramic composition.
- These enamel coatings include, but are not limited to, high temperature porcelain enamels.
- High temperature porcelain enamels may include silicon dioxide, boron oxide, alumina, and alkaline earth oxides (CaO or MgO), and minor amounts of alkali oxides (Na 2 O, K 2 O, LiO).
- the enamel coating may be applied as a finely ground slurry by dipping the heating element into the slurry or spray coating the heating element with the slurry.
- the coated heating element is then heated in a furnace until the glass transition temperature is reached so that the slurry spreads over the surface of the heating element and makes the porcelain enamel coating.
- the porcelain enamel coating contracts when cooled below the glass transition temperature so that the coating is in compression.
- the thin electrically insulating layer has low thermal impedance allowing heat transfer from the heating element to the formation while inhibiting current leakage between heating elements in adjacent openings and current leakage into the formation.
- the thin electrically insulating layer is stable at temperatures above at least 350 0 C, above 500 0 C, or above 800 0 C.
- the thin electrically insulating layer has an emissivity of at least 0.7, at least 0.8, or at least 0.9. Using the thin electrically insulating layer may allow for long heater lengths in the formation with low current leakage.
- Heating elements 242 may be coupled to contacting elements 244 at or near the underburden of the formation.
- Contacting elements 244 are copper or aluminum rods or other highly conductive materials.
- transition sections 254 are located between lead-in conductors 252 and heating elements 242, and/or between heating elements 242 and contacting elements 244.
- Transition sections 254 may be made of a conductive material that is corrosion resistant such as 347 stainless steel over a copper core.
- transition sections 254 are made of materials that electrically couple lead-in conductors 252 and heating elements 242 while providing little or no heat output. Thus, transition sections 254 help to inhibit overheating of conductors and insulation used in lead-in conductors 252 by spacing the lead-in conductors from heating elements 242.
- Transition section 254 may have a length of between 3 m and 9 m (for example, 6 m).
- Contacting elements 244 are coupled to contactor 256 in contacting section 260 to electrically couple legs 232, 234, 236 to each other.
- contact solution 258 for example, conductive cement
- legs 232, 234, 236 are substantially parallel in hydrocarbon layer 240 and leg 232 continues substantially vertically into contacting section 260. The other two legs 234, 236 are directed (for example, by directionally drilling the wellbores for the legs) to intercept leg 232 in contacting section 260.
- Each leg 232, 234, 236 may be one leg of a three-phase heater embodiment so that the legs are substantially electrically isolated from other heaters in the formation and are substantially electrically isolated from the formation.
- Legs 232, 234, 236 may be arranged in a triangular pattern so that the three legs form a triangular shaped three-phase heater.
- legs 232, 234, 236 are arranged in a triangular pattern with 12 m spacing between the legs (each side of the triangle has a length of 12 m).
- the thin electrically insulating layer allows for relatively long, substantially horizontal heater leg lengths in the hydrocarbon layer with a substantially u-shaped heater.
- Substantially u-shaped wellbores may be used in tar sands formations, oil shale formation, or other formations with relatively thin hydrocarbon layers. Tar sands or thin oil shale formations may have thin shallow layers that are more easily and uniformly heated using heaters placed in substantially u-shaped wellbores.
- Substantially u-shaped wellbores may also be used to process formations with thick hydrocarbon layers in formations. In some embodiments, substantially u-shaped wellbores are used to access rich layers in a thick hydrocarbon formation.
- FIG. 12 depicts a side view representation of an embodiment of a substantially u-shaped three-phase heater.
- First ends of legs 232, 234, 236 are coupled to transformer 250 at first location 264.
- transformer 250 is a three-phase AC transformer.
- Ends of legs 232, 234, 236 are electrically coupled together with connector 266 at second location 268.
- Connector 266 electrically couples the ends of legs 232, 234, 236 so that the legs can be operated in a three-phase configuration.
- legs 232, 234, 236 are coupled to operate in a three-phase wye configuration.
- legs 232, 234, 236 are substantially parallel in hydrocarbon layer 240.
- legs 232, 234, 236 are arranged in a triangular pattern in hydrocarbon layer 240.
- heating elements 242 include a thin electrically insulating material (such as a porcelain enamel coating) to inhibit current leakage from the heating elements.
- legs 232, 234, 236 are electrically coupled so that the legs are substantially electrically isolated from other heaters in the formation and are substantially electrically isolated from the formation.
- overburden casings for example, overburden casings 262, depicted in FIGS. 11 and 12
- overburden casings in overburden 246 include materials that inhibit ferromagnetic effects in the casings. Inhibiting ferromagnetic effects in casings 262 reduces heat losses to the overburden.
- casings 262 may include non-metallic materials such as fiberglass, polyvinylchloride (PVC), chlorinated polyvinylchloride (CPVC), or high-density polyethylene (HDPE).
- HDPEs that may be operable at temperatures in overburden 246 include HDPEs available from Dow Chemical Co., Inc. (Midland, Michigan, USA).
- a non-metallic casing may also eliminate the need for an insulated overburden conductor.
- casings 262 include carbon steel coupled on the inside diameter of a non-ferromagnetic metal (for example, carbon steel clad with copper or aluminum) to inhibit ferromagnetic effects or inductive effects in the carbon steel.
- non-ferromagnetic metals include, but are not limited to, manganese steels with at least 10% by weight manganese, iron aluminum alloys with at least 18% by weight aluminum, and austentitic stainless steels such as 304 stainless steel or 316 stainless steel.
- one or more non-ferromagnetic materials used in casings 262 are used in a wellhead coupled to the casings and legs 232, 234, 236. Using non-ferromagnetic materials in the wellhead inhibits undesirable heating of components in the wellhead.
- an inert gas for example, nitrogen or argon
- one or more of legs 232, 234, 236 are installed in the formation using coiled tubing.
- coiled tubing is installed in the formation, the leg is installed inside the coiled tubing, and the coiled tubing is pulled out of the formation to leave the leg installed in the formation.
- the leg may be placed concentrically inside the coiled tubing.
- coiled tubing with the leg inside the coiled tubing is installed in the formation and the coiled tubing is removed from the formation to leave the leg installed in the formation.
- the coiled tubing may extend only to a junction of hydrocarbon layer 240 and contacting section 260 or to a point at which the leg begins to bend in the contacting section.
- FIG. 13 depicts a top view representation of an embodiment of a plurality of triads of three-phase heaters in the formation.
- Each triad 270 includes legs A, B, C (which may correspond to legs 232, 234, 236 depicted in FIGS. 11 and 12) that are electrically coupled by linkage 274.
- Each triad 270 is coupled to its own electrically isolated three-phase transformer so that the triads are substantially electrically isolated from each other. Electrically isolating the triads inhibits net current flow between triads.
- each triad 270 may be arranged so that legs A, B, C correspond between triads as shown in FIG. 13.
- legs A, B, C are arranged such that a phase leg (for example, leg A) in a given triad is two triad heights from a same phase leg (leg A) in an adjacent triad.
- the triad height is the distance from a vertex of the triad to a midpoint of the line intersecting the other two vertices of the triad.
- the phases of triads 270 are arranged to inhibit net current flow between individual triads. There may be some leakage of current within an individual triad but little net current flows between two triads due to the substantial electrical isolation of the triads and, in certain embodiments, the arrangement of the triad phases.
- an exposed heating element may leak some current to water or other fluids that are electrically conductive in the formation so that the formation itself is heated.
- the heating elements After water or other electrically conductive fluids are removed from the wellbore (for example, vaporized or produced), the heating elements become electrically isolated from the formation. Later, when water is removed from the formation, the formation becomes even more electrically resistant and heating of the formation occurs even more predominantly via thermally conductive and/or radiative heating.
- the formation (the hydrocarbon layer) has an initial electrical resistance that averages at least 10 ohnvm. In some embodiments, the formation has an initial electrical resistance of at least 100 ohm-m or of at least 300 ohm-m.
- temperature limited heaters limits the effect of water saturation on heater efficiency. With water in the formation and in heater wellbores, there is a tendency for electrical current to flow between heater elements at the top of the hydrocarbon layer where the voltage is highest and cause uneven heating in the hydrocarbon layer. This effect is inhibited with temperature limited heaters because the temperature limited heaters reduce localized overheating in the heating elements and in the hydrocarbon layer.
- production wells are placed at a location at which there is relatively little or zero voltage potential. This location minimizes stray potentials at the production well. Placing production wells at such locations reduces or inhibits undesired heating of the production wells caused by electrical current flow in the production wells.
- FIG. 14 depicts a top view representation of the embodiment depicted in FIG. 13 with production wells 206.
- production wells 206 are located at or near center of triad 270.
- production wells 206 are placed at a location between triads at which there is relatively little or zero voltage potential (at a location at which voltage potentials from vertices of three triads average out to relatively little or zero voltage potential).
- production well 206 may be at a location equidistant from legs A of one triad, leg B of a second triad, and leg C of a third triad, as shown in FIG. 14.
- FIG. 15 depicts a top view representation of an embodiment of a plurality of triads of three-phase heaters in a hexagonal pattern in the formation.
- FIG. 16 depicts a top view representation of an embodiment of a hexagon from FIG. 15.
- Hexagon 276 includes two triads of heaters.
- the first triad includes legs Al, Bl, Cl electrically coupled together by linkages 274 in a three-phase configuration.
- the second triad includes legs A2, B2, C2 electrically coupled together by linkages 274 in a three-phase configuration.
- the triads are arranged so that corresponding legs of the triads (for example, Al and A2, Bl and B2, Cl and C2) are at opposite vertices of hexagon 276.
- the triads are electrically coupled and arranged so that there is relatively little or zero voltage potential at or near the center of hexagon 276.
- Production well 206 may be placed at or near the center of hexagon 276. Placing production well 206 at or near the center of hexagon 276 places the production well at a location that reduces or inhibits undesired heating due to electromagnetic effects caused by electrical current flow in the legs of the triads. Having two triads in hexagon 276 provides for redundant heating around production well 206. Thus, if one triad fails or has to be turned off, production well 206 still remains at a center of one triad.
- hexagons 276 may be arranged in a pattern in the formation such that adjacent hexagons are offset. Using electrically isolated transformers on adjacent hexagons may inhibit electrical potentials in the formation so that little or no net current leaks between hexagons.
- Triads of heaters and/or heater legs may be arranged in any shape or desired pattern.
- triads may include three heaters and/or heater legs arranged in a equilateral triangular pattern.
- triads include three heaters and/or heater legs arranged in other triangular shapes (for example, an isosceles triangle or an right angle triangle).
- heater legs in the triad cross each other (for example, criss-cross) in the formation.
- triads includes three heaters and/or heater legs arranged sequentially along a straight line.
- FIG. 17 depicts an embodiment with triads coupled to a horizontal connector well.
- Triad 270A includes legs 232A, 234A, 236A.
- Triad 270B includes legs 232B, 234B, 236B.
- Legs 232A, 234A, 236A and legs 232B, 234B, 236B may be arranged along a straight line on the surface of the formation.
- legs 232 A, 234A, 236A are arranged along a straight line and offset from legs 232B, 234B, 236B, which may be arranged along a straight line.
- Legs 232A, 234A, 236A and legs 232B, 234B, 236B include heating elements 242 located in hydrocarbon layer 240.
- Lead-in conductors 252 couple heating elements 242 to the surface of the formation. Heating elements 242 are coupled to contacting elements 244 at or near the underburden of the formation. In certain embodiments, transition sections (for example, transition sections 254 depicted in FIG. 11) are located between lead- in conductors 252 and heating elements 242, and/or between heating elements 242 and contacting elements 244. Contacting elements 244 are coupled to contactor 256 in contacting section 260 to electrically couple legs
- contactor 256 is a ground conductor so that triad 270A and/or triad 270B may be coupled in three-phase wye configurations.
- triad 270A and triad 270B are electrically isolated from each other.
- triad 270A and triad 270B are electrically coupled to each other (for example, electrically coupled in series or parallel).
- contactor 256 is a substantially horizontal contactor located in contacting section 260.
- Contactor 256 may be a casing or a solid rod placed in a wellbore drilled substantially horizontally in contacting section 260.
- Legs 232A, 234A, 236A and legs 232B, 234B, 236B maybe electrically coupled to contactor 256 by any method described herein or any method known in the art.
- containers with thermite powder are coupled to contactor 256 (for example, by welding or brazing the containers to the contactor), legs 232A, 234A, 236A and legs 232B, 234B, 236B are placed inside the containers, and the thermite powder is activated to electrically couple the legs to the contactor.
- the containers may be coupled to contactor 256 by, for example, placing the containers in holes or recesses in contactor 256 or coupled to the outside of the contactor and then brazing or welding the containers to the contactor.
- FIG. 18 depicts cumulative gas production and cumulative oil production versus time (years) found from a STARS simulation (Computer Modelling Group, LTD., Calgary, Alberta, Canada) using the temperature limited heaters and heater pattern depicted in FIGS. 11 and 13.
- Curve 278 depicts cumulative oil production (m 3 ) for an initial water saturation of 15%.
- Curve 280 depicts cumulative gas production (m 3 ) for the initial water saturation of 15%.
- Curve 282 depicts cumulative oil production (m 3 ) for an initial water saturation of 85%.
- Curve 284 depicts cumulative gas production (m 3 ) for the initial water saturation of 85%.
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- Chemical & Material Sciences (AREA)
- Oil, Petroleum & Natural Gas (AREA)
- Chemical Kinetics & Catalysis (AREA)
- General Chemical & Material Sciences (AREA)
- Organic Chemistry (AREA)
- Production Of Liquid Hydrocarbon Mixture For Refining Petroleum (AREA)
- Resistance Heating (AREA)
- Organic Low-Molecular-Weight Compounds And Preparation Thereof (AREA)
- Investigation Of Foundation Soil And Reinforcement Of Foundation Soil By Compacting Or Drainage (AREA)
- Physical Or Chemical Processes And Apparatus (AREA)
- Measuring Temperature Or Quantity Of Heat (AREA)
- General Induction Heating (AREA)
- Superconductors And Manufacturing Methods Therefor (AREA)
- Electrical Discharge Machining, Electrochemical Machining, And Combined Machining (AREA)
- Surface Heating Bodies (AREA)
- Processing Of Solid Wastes (AREA)
- Lubricants (AREA)
- Pipe Accessories (AREA)
- Auxiliary Devices For And Details Of Packaging Control (AREA)
- Waste-Gas Treatment And Other Accessory Devices For Furnaces (AREA)
- Air-Conditioning For Vehicles (AREA)
- Investigating Or Analyzing Materials By The Use Of Fluid Adsorption Or Reactions (AREA)
- Hydrogen, Water And Hydrids (AREA)
- Communication Control (AREA)
- Control Of Combustion (AREA)
- Control Of Temperature (AREA)
- Purification Treatments By Anaerobic Or Anaerobic And Aerobic Bacteria Or Animals (AREA)
- Enzymes And Modification Thereof (AREA)
- Exposure Or Original Feeding In Electrophotography (AREA)
- Thermotherapy And Cooling Therapy Devices (AREA)
- Separation Using Semi-Permeable Membranes (AREA)
Abstract
Description
Claims
Priority Applications (7)
Application Number | Priority Date | Filing Date | Title |
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CA2606210A CA2606210C (en) | 2005-04-22 | 2006-04-21 | Grouped exposed metal heaters |
NZ562240A NZ562240A (en) | 2005-04-22 | 2006-04-21 | Grouped exposed metal heaters for treating hydrocarbon formation including groups of triads of three-phase heaters |
CN200680013320.4A CN101163856B (en) | 2005-04-22 | 2006-04-21 | Grouped exposing metal heater |
EA200702300A EA012767B1 (en) | 2005-04-22 | 2006-04-21 | System and method for heating hydrocarbon containing formation |
AU2006240173A AU2006240173B2 (en) | 2005-04-22 | 2006-04-21 | Grouped exposed metal heaters |
EP06750749A EP1871981A1 (en) | 2005-04-22 | 2006-04-21 | Grouped exposed metal heaters |
IL186209A IL186209A (en) | 2005-04-22 | 2007-09-24 | Grouped exposed metal heaters |
Applications Claiming Priority (2)
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US67408105P | 2005-04-22 | 2005-04-22 | |
US60/674,081 | 2005-04-22 |
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PCT/US2006/015105 WO2006116096A1 (en) | 2005-04-22 | 2006-04-21 | In situ conversion process utilizing a closed loop heating system |
PCT/US2006/015104 WO2006116095A1 (en) | 2005-04-22 | 2006-04-21 | Low temperature barriers for use with in situ processes |
PCT/US2006/015095 WO2006116087A1 (en) | 2005-04-22 | 2006-04-21 | Double barrier system for an in situ conversion process |
PCT/US2006/015166 WO2006116130A1 (en) | 2005-04-22 | 2006-04-21 | Varying properties along lengths of temperature limited heaters |
PCT/US2006/015084 WO2006116078A1 (en) | 2005-04-22 | 2006-04-21 | Insulated conductor temperature limited heater for subsurface heating coupled in a three-phase wye configuration |
PCT/US2006/015167 WO2006116131A1 (en) | 2005-04-22 | 2006-04-21 | Subsurface connection methods for subsurface heaters |
PCT/US2006/015106 WO2006116097A1 (en) | 2005-04-22 | 2006-04-21 | Temperature limited heater utilizing non-ferromagnetic conductor |
PCT/US2006/014778 WO2006115945A1 (en) | 2005-04-22 | 2006-04-21 | Low temperature monitoring system for subsurface barriers |
PCT/US2006/014776 WO2006115943A1 (en) | 2005-04-22 | 2006-04-21 | Grouped exposed metal heaters |
PCT/US2006/015101 WO2006116092A1 (en) | 2005-04-22 | 2006-04-21 | Methods and systems for producing fluid from an in situ conversion process |
PCT/US2006/015169 WO2006116133A1 (en) | 2005-04-22 | 2006-04-21 | In situ conversion process systems utilizing wellbores in at least two regions of a formation |
PCT/US2006/015286 WO2006116207A2 (en) | 2005-04-22 | 2006-04-24 | Treatment of gas from an in situ conversion process |
Family Applications Before (8)
Application Number | Title | Priority Date | Filing Date |
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PCT/US2006/015105 WO2006116096A1 (en) | 2005-04-22 | 2006-04-21 | In situ conversion process utilizing a closed loop heating system |
PCT/US2006/015104 WO2006116095A1 (en) | 2005-04-22 | 2006-04-21 | Low temperature barriers for use with in situ processes |
PCT/US2006/015095 WO2006116087A1 (en) | 2005-04-22 | 2006-04-21 | Double barrier system for an in situ conversion process |
PCT/US2006/015166 WO2006116130A1 (en) | 2005-04-22 | 2006-04-21 | Varying properties along lengths of temperature limited heaters |
PCT/US2006/015084 WO2006116078A1 (en) | 2005-04-22 | 2006-04-21 | Insulated conductor temperature limited heater for subsurface heating coupled in a three-phase wye configuration |
PCT/US2006/015167 WO2006116131A1 (en) | 2005-04-22 | 2006-04-21 | Subsurface connection methods for subsurface heaters |
PCT/US2006/015106 WO2006116097A1 (en) | 2005-04-22 | 2006-04-21 | Temperature limited heater utilizing non-ferromagnetic conductor |
PCT/US2006/014778 WO2006115945A1 (en) | 2005-04-22 | 2006-04-21 | Low temperature monitoring system for subsurface barriers |
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PCT/US2006/015101 WO2006116092A1 (en) | 2005-04-22 | 2006-04-21 | Methods and systems for producing fluid from an in situ conversion process |
PCT/US2006/015169 WO2006116133A1 (en) | 2005-04-22 | 2006-04-21 | In situ conversion process systems utilizing wellbores in at least two regions of a formation |
PCT/US2006/015286 WO2006116207A2 (en) | 2005-04-22 | 2006-04-24 | Treatment of gas from an in situ conversion process |
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EP (12) | EP1871978B1 (en) |
CN (12) | CN101163851A (en) |
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Cited By (13)
Publication number | Priority date | Publication date | Assignee | Title |
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Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US6742593B2 (en) | 2000-04-24 | 2004-06-01 | Shell Oil Company | In situ thermal processing of a hydrocarbon containing formation using heat transfer from a heat transfer fluid to heat the formation |
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WO2008131171A1 (en) | 2007-04-20 | 2008-10-30 | Shell Oil Company | Parallel heater system for subsurface formations |
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US20100200237A1 (en) * | 2009-02-12 | 2010-08-12 | Colgate Sam O | Methods for controlling temperatures in the environments of gas and oil wells |
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RU2012147629A (en) * | 2010-04-09 | 2014-05-20 | Шелл Интернэшнл Рисерч Маатсхаппий Б.В. | METHODS FOR FORMING BARRIERS IN UNDERGROUND CARBOHYDRATE-CONTAINING LAYERS |
US9127523B2 (en) | 2010-04-09 | 2015-09-08 | Shell Oil Company | Barrier methods for use in subsurface hydrocarbon formations |
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CA2898956A1 (en) | 2012-01-23 | 2013-08-01 | Genie Ip B.V. | Heater pattern for in situ thermal processing of a subsurface hydrocarbon containing formation |
US10047594B2 (en) | 2012-01-23 | 2018-08-14 | Genie Ip B.V. | Heater pattern for in situ thermal processing of a subsurface hydrocarbon containing formation |
US9488027B2 (en) | 2012-02-10 | 2016-11-08 | Baker Hughes Incorporated | Fiber reinforced polymer matrix nanocomposite downhole member |
RU2496979C1 (en) * | 2012-05-03 | 2013-10-27 | Открытое акционерное общество "Татнефть" имени В.Д. Шашина | Development method of deposit of high-viscosity oil and/or bitumen using method for steam pumping to formation |
EP2945556A4 (en) | 2013-01-17 | 2016-08-31 | Virender K Sharma | Method and apparatus for tissue ablation |
US9291041B2 (en) * | 2013-02-06 | 2016-03-22 | Orbital Atk, Inc. | Downhole injector insert apparatus |
US9403328B1 (en) | 2013-02-08 | 2016-08-02 | The Boeing Company | Magnetic compaction blanket for composite structure curing |
US10501348B1 (en) | 2013-03-14 | 2019-12-10 | Angel Water, Inc. | Water flow triggering of chlorination treatment |
RU2527446C1 (en) * | 2013-04-15 | 2014-08-27 | Открытое акционерное общество "Татнефть" имени В.Д. Шашина | Method of well abandonment |
US9382785B2 (en) | 2013-06-17 | 2016-07-05 | Baker Hughes Incorporated | Shaped memory devices and method for using same in wellbores |
CN103321618A (en) * | 2013-06-28 | 2013-09-25 | 中国地质大学(北京) | Oil shale in-situ mining method |
CA2917263C (en) * | 2013-07-05 | 2021-12-14 | Nexen Energy Ulc | Solvent addition to improve efficiency of hydrocarbon production |
RU2531965C1 (en) * | 2013-08-23 | 2014-10-27 | Открытое акционерное общество "Татнефть" имени В.Д. Шашина | Method of well abandonment |
BR112016005923B1 (en) * | 2013-10-28 | 2021-06-29 | Halliburton Energy Services, Inc | METHOD OF CONNECTING TO AN EXISTING WELL HOLE IN THE WELL BOTTOM AND WELL SYSTEM |
MY190960A (en) * | 2013-10-31 | 2022-05-24 | Reactor Resources Llc | In-situ catalyst sulfiding, passivating and coking methods and systems |
CN103628856A (en) * | 2013-12-11 | 2014-03-12 | 中国地质大学(北京) | Water resistance gas production well spacing method for coal-bed gas block highly yielding water |
GB2523567B (en) | 2014-02-27 | 2017-12-06 | Statoil Petroleum As | Producing hydrocarbons from a subsurface formation |
WO2015153705A1 (en) * | 2014-04-01 | 2015-10-08 | Future Energy, Llc | Thermal energy delivery and oil production arrangements and methods thereof |
US20150360322A1 (en) * | 2014-06-12 | 2015-12-17 | Siemens Energy, Inc. | Laser deposition of iron-based austenitic alloy with flux |
RU2569102C1 (en) * | 2014-08-12 | 2015-11-20 | Общество с ограниченной ответственностью Научно-инженерный центр "Энергодиагностика" | Method for removal of deposits and prevention of their formation in oil well and device for its implementation |
US9451792B1 (en) * | 2014-09-05 | 2016-09-27 | Atmos Nation, LLC | Systems and methods for vaporizing assembly |
WO2016085869A1 (en) * | 2014-11-25 | 2016-06-02 | Shell Oil Company | Pyrolysis to pressurise oil formations |
US20160169451A1 (en) * | 2014-12-12 | 2016-06-16 | Fccl Partnership | Process and system for delivering steam |
CN105043449B (en) * | 2015-08-10 | 2017-12-01 | 安徽理工大学 | Wall temperature, stress and the distribution type fiber-optic of deformation and its method for embedding are freezed in monitoring |
WO2017039617A1 (en) * | 2015-08-31 | 2017-03-09 | Halliburton Energy Services, Inc | Monitoring system for cold climate |
CN105257269B (en) * | 2015-10-26 | 2017-10-17 | 中国石油天然气股份有限公司 | Steam flooding and fire flooding combined oil production method |
US10125604B2 (en) * | 2015-10-27 | 2018-11-13 | Baker Hughes, A Ge Company, Llc | Downhole zonal isolation detection system having conductor and method |
RU2620820C1 (en) * | 2016-02-17 | 2017-05-30 | Общество с ограниченной ответственностью "ЛУКОЙЛ-ПЕРМЬ" | Induction well heating device |
US11331140B2 (en) | 2016-05-19 | 2022-05-17 | Aqua Heart, Inc. | Heated vapor ablation systems and methods for treating cardiac conditions |
RU2630018C1 (en) * | 2016-06-29 | 2017-09-05 | Общество с ограниченной ответчственностью "Геобурсервис", ООО "Геобурсервис" | Method for elimination, prevention of sediments formation and intensification of oil production in oil and gas wells and device for its implementation |
US11486243B2 (en) * | 2016-08-04 | 2022-11-01 | Baker Hughes Esp, Inc. | ESP gas slug avoidance system |
RU2632791C1 (en) * | 2016-11-02 | 2017-10-09 | Владимир Иванович Савичев | Method for stimulation of wells by injecting gas compositions |
CN107289997B (en) * | 2017-05-05 | 2019-08-13 | 济南轨道交通集团有限公司 | A kind of Karst-fissure water detection system and method |
US10626709B2 (en) * | 2017-06-08 | 2020-04-21 | Saudi Arabian Oil Company | Steam driven submersible pump |
CN107558950A (en) * | 2017-09-13 | 2018-01-09 | 吉林大学 | Orientation blocking method for the closing of oil shale underground in situ production zone |
JP2021525598A (en) | 2018-06-01 | 2021-09-27 | サンタ アナ テック エルエルシーSanta Anna Tech Llc | Multi-stage steam-based ablation processing method and steam generation and delivery system |
US10927645B2 (en) * | 2018-08-20 | 2021-02-23 | Baker Hughes, A Ge Company, Llc | Heater cable with injectable fiber optics |
CN109379792B (en) * | 2018-11-12 | 2024-05-28 | 山东华宁电伴热科技有限公司 | Oil well heating cable and oil well heating method |
CN109396168B (en) * | 2018-12-01 | 2023-12-26 | 中节能城市节能研究院有限公司 | Combined heat exchanger for in-situ thermal remediation of polluted soil and soil thermal remediation system |
CN109399879B (en) * | 2018-12-14 | 2023-10-20 | 江苏筑港建设集团有限公司 | Curing method of dredger fill mud quilt |
FR3093588B1 (en) * | 2019-03-07 | 2021-02-26 | Socomec Sa | ENERGY RECOVERY DEVICE ON AT LEAST ONE POWER CONDUCTOR AND MANUFACTURING PROCESS OF SAID RECOVERY DEVICE |
US11708757B1 (en) * | 2019-05-14 | 2023-07-25 | Fortress Downhole Tools, Llc | Method and apparatus for testing setting tools and other assemblies used to set downhole plugs and other objects in wellbores |
US11136514B2 (en) * | 2019-06-07 | 2021-10-05 | Uop Llc | Process and apparatus for recycling hydrogen to hydroprocess biorenewable feed |
DE102020208178A1 (en) * | 2020-06-30 | 2021-12-30 | Robert Bosch Gesellschaft mit beschränkter Haftung | Method for heating a fuel cell system, fuel cell system, use of an electrical heating element |
CN112485119B (en) * | 2020-11-09 | 2023-01-31 | 临沂矿业集团有限责任公司 | Mining hoisting winch steel wire rope static tension test vehicle |
EP4113768A1 (en) * | 2021-07-02 | 2023-01-04 | Nexans | Dry-mate wet-design branch joint and method for realizing a subsea distribution of electric power for wet cables |
US12037870B1 (en) | 2023-02-10 | 2024-07-16 | Newpark Drilling Fluids Llc | Mitigating lost circulation |
WO2024188630A1 (en) * | 2023-03-10 | 2024-09-19 | Shell Internationale Research Maatschappij B.V. | Mineral insulated cable, method of manufacturing a mineral insulated cable, and method and system for heating a substance |
WO2024188629A1 (en) * | 2023-03-10 | 2024-09-19 | Shell Internationale Research Maatschappij B.V. | Mineral insulated cable, method of manufacturing a mineral insulated cable, and method and system for heating a substance |
Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US2794504A (en) | 1954-05-10 | 1957-06-04 | Union Oil Co | Well heater |
US20020029882A1 (en) * | 2000-04-24 | 2002-03-14 | Rouffignac Eric Pierre De | In situ thermal processing of a hydrocarbon containing formation leaving one or more selected unprocessed areas |
US20040140095A1 (en) | 2002-10-24 | 2004-07-22 | Vinegar Harold J. | Staged and/or patterned heating during in situ thermal processing of a hydrocarbon containing formation |
Family Cites Families (268)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US326439A (en) * | 1885-09-15 | Protecting wells | ||
US345586A (en) * | 1886-07-13 | Oil from wells | ||
US2734579A (en) * | 1956-02-14 | Production from bituminous sands | ||
SE126674C1 (en) | 1949-01-01 | |||
US94813A (en) * | 1869-09-14 | Improvement in torpedoes for oil-wells | ||
SE123138C1 (en) | 1948-01-01 | |||
US2732195A (en) | 1956-01-24 | Ljungstrom | ||
US48994A (en) * | 1865-07-25 | Improvement in devices for oil-wells | ||
US438461A (en) * | 1890-10-14 | Half to william j | ||
CA899987A (en) | 1972-05-09 | Chisso Corporation | Method for controlling heat generation locally in a heat-generating pipe utilizing skin effect current | |
SE123136C1 (en) | 1948-01-01 | |||
US760304A (en) * | 1903-10-24 | 1904-05-17 | Frank S Gilbert | Heater for oil-wells. |
US1342741A (en) * | 1918-01-17 | 1920-06-08 | David T Day | Process for extracting oils and hydrocarbon material from shale and similar bituminous rocks |
US1269747A (en) | 1918-04-06 | 1918-06-18 | Lebbeus H Rogers | Method of and apparatus for treating oil-shale. |
GB156396A (en) | 1919-12-10 | 1921-01-13 | Wilson Woods Hoover | An improved method of treating shale and recovering oil therefrom |
US1457479A (en) * | 1920-01-12 | 1923-06-05 | Edson R Wolcott | Method of increasing the yield of oil wells |
US1510655A (en) * | 1922-11-21 | 1924-10-07 | Clark Cornelius | Process of subterranean distillation of volatile mineral substances |
US1634236A (en) * | 1925-03-10 | 1927-06-28 | Standard Dev Co | Method of and apparatus for recovering oil |
US1646599A (en) * | 1925-04-30 | 1927-10-25 | George A Schaefer | Apparatus for removing fluid from wells |
US1666488A (en) * | 1927-02-05 | 1928-04-17 | Crawshaw Richard | Apparatus for extracting oil from shale |
US1681523A (en) * | 1927-03-26 | 1928-08-21 | Patrick V Downey | Apparatus for heating oil wells |
US1913395A (en) * | 1929-11-14 | 1933-06-13 | Lewis C Karrick | Underground gasification of carbonaceous material-bearing substances |
US2244255A (en) * | 1939-01-18 | 1941-06-03 | Electrical Treating Company | Well clearing system |
US2244256A (en) * | 1939-12-16 | 1941-06-03 | Electrical Treating Company | Apparatus for clearing wells |
US2319702A (en) | 1941-04-04 | 1943-05-18 | Socony Vacuum Oil Co Inc | Method and apparatus for producing oil wells |
US2365591A (en) * | 1942-08-15 | 1944-12-19 | Ranney Leo | Method for producing oil from viscous deposits |
US2423674A (en) * | 1942-08-24 | 1947-07-08 | Johnson & Co A | Process of catalytic cracking of petroleum hydrocarbons |
US2390770A (en) * | 1942-10-10 | 1945-12-11 | Sun Oil Co | Method of producing petroleum |
US2484063A (en) * | 1944-08-19 | 1949-10-11 | Thermactor Corp | Electric heater for subsurface materials |
US2472445A (en) * | 1945-02-02 | 1949-06-07 | Thermactor Company | Apparatus for treating oil and gas bearing strata |
US2481051A (en) * | 1945-12-15 | 1949-09-06 | Texaco Development Corp | Process and apparatus for the recovery of volatilizable constituents from underground carbonaceous formations |
US2444755A (en) * | 1946-01-04 | 1948-07-06 | Ralph M Steffen | Apparatus for oil sand heating |
US2634961A (en) | 1946-01-07 | 1953-04-14 | Svensk Skifferolje Aktiebolage | Method of electrothermal production of shale oil |
US2466945A (en) * | 1946-02-21 | 1949-04-12 | In Situ Gases Inc | Generation of synthesis gas |
US2497868A (en) * | 1946-10-10 | 1950-02-21 | Dalin David | Underground exploitation of fuel deposits |
US2939689A (en) * | 1947-06-24 | 1960-06-07 | Svenska Skifferolje Ab | Electrical heater for treating oilshale and the like |
US2786660A (en) * | 1948-01-05 | 1957-03-26 | Phillips Petroleum Co | Apparatus for gasifying coal |
US2548360A (en) | 1948-03-29 | 1951-04-10 | Stanley A Germain | Electric oil well heater |
US2685930A (en) * | 1948-08-12 | 1954-08-10 | Union Oil Co | Oil well production process |
US2757738A (en) * | 1948-09-20 | 1956-08-07 | Union Oil Co | Radiation heating |
US2630307A (en) * | 1948-12-09 | 1953-03-03 | Carbonic Products Inc | Method of recovering oil from oil shale |
US2595979A (en) * | 1949-01-25 | 1952-05-06 | Texas Co | Underground liquefaction of coal |
US2642943A (en) * | 1949-05-20 | 1953-06-23 | Sinclair Oil & Gas Co | Oil recovery process |
US2593477A (en) * | 1949-06-10 | 1952-04-22 | Us Interior | Process of underground gasification of coal |
US2670802A (en) * | 1949-12-16 | 1954-03-02 | Thermactor Company | Reviving or increasing the production of clogged or congested oil wells |
US2714930A (en) * | 1950-12-08 | 1955-08-09 | Union Oil Co | Apparatus for preventing paraffin deposition |
US2695163A (en) * | 1950-12-09 | 1954-11-23 | Stanolind Oil & Gas Co | Method for gasification of subterranean carbonaceous deposits |
US2630306A (en) * | 1952-01-03 | 1953-03-03 | Socony Vacuum Oil Co Inc | Subterranean retorting of shales |
US2757739A (en) * | 1952-01-07 | 1956-08-07 | Parelex Corp | Heating apparatus |
US2780450A (en) * | 1952-03-07 | 1957-02-05 | Svenska Skifferolje Ab | Method of recovering oil and gases from non-consolidated bituminous geological formations by a heating treatment in situ |
US2777679A (en) * | 1952-03-07 | 1957-01-15 | Svenska Skifferolje Ab | Recovering sub-surface bituminous deposits by creating a frozen barrier and heating in situ |
US2789805A (en) * | 1952-05-27 | 1957-04-23 | Svenska Skifferolje Ab | Device for recovering fuel from subterraneous fuel-carrying deposits by heating in their natural location using a chain heat transfer member |
GB774283A (en) * | 1952-09-15 | 1957-05-08 | Ruhrchemie Ag | Process for the combined purification and methanisation of gas mixtures containing oxides of carbon and hydrogen |
US2780449A (en) * | 1952-12-26 | 1957-02-05 | Sinclair Oil & Gas Co | Thermal process for in-situ decomposition of oil shale |
US2825408A (en) * | 1953-03-09 | 1958-03-04 | Sinclair Oil & Gas Company | Oil recovery by subsurface thermal processing |
US2771954A (en) * | 1953-04-29 | 1956-11-27 | Exxon Research Engineering Co | Treatment of petroleum production wells |
US2703621A (en) * | 1953-05-04 | 1955-03-08 | George W Ford | Oil well bottom hole flow increasing unit |
US2743906A (en) * | 1953-05-08 | 1956-05-01 | William E Coyle | Hydraulic underreamer |
US2803305A (en) * | 1953-05-14 | 1957-08-20 | Pan American Petroleum Corp | Oil recovery by underground combustion |
US2914309A (en) * | 1953-05-25 | 1959-11-24 | Svenska Skifferolje Ab | Oil and gas recovery from tar sands |
US2902270A (en) * | 1953-07-17 | 1959-09-01 | Svenska Skifferolje Ab | Method of and means in heating of subsurface fuel-containing deposits "in situ" |
US2890754A (en) * | 1953-10-30 | 1959-06-16 | Svenska Skifferolje Ab | Apparatus for recovering combustible substances from subterraneous deposits in situ |
US2890755A (en) * | 1953-12-19 | 1959-06-16 | Svenska Skifferolje Ab | Apparatus for recovering combustible substances from subterraneous deposits in situ |
US2841375A (en) * | 1954-03-03 | 1958-07-01 | Svenska Skifferolje Ab | Method for in-situ utilization of fuels by combustion |
US2793696A (en) * | 1954-07-22 | 1957-05-28 | Pan American Petroleum Corp | Oil recovery by underground combustion |
US2923535A (en) | 1955-02-11 | 1960-02-02 | Svenska Skifferolje Ab | Situ recovery from carbonaceous deposits |
US2801089A (en) * | 1955-03-14 | 1957-07-30 | California Research Corp | Underground shale retorting process |
US2862558A (en) * | 1955-12-28 | 1958-12-02 | Phillips Petroleum Co | Recovering oils from formations |
US2819761A (en) * | 1956-01-19 | 1958-01-14 | Continental Oil Co | Process of removing viscous oil from a well bore |
US2857002A (en) * | 1956-03-19 | 1958-10-21 | Texas Co | Recovery of viscous crude oil |
US2906340A (en) * | 1956-04-05 | 1959-09-29 | Texaco Inc | Method of treating a petroleum producing formation |
US2991046A (en) | 1956-04-16 | 1961-07-04 | Parsons Lional Ashley | Combined winch and bollard device |
US2997105A (en) | 1956-10-08 | 1961-08-22 | Pan American Petroleum Corp | Burner apparatus |
US2932352A (en) * | 1956-10-25 | 1960-04-12 | Union Oil Co | Liquid filled well heater |
US2804149A (en) * | 1956-12-12 | 1957-08-27 | John R Donaldson | Oil well heater and reviver |
US2942223A (en) * | 1957-08-09 | 1960-06-21 | Gen Electric | Electrical resistance heater |
US2906337A (en) * | 1957-08-16 | 1959-09-29 | Pure Oil Co | Method of recovering bitumen |
US2954826A (en) * | 1957-12-02 | 1960-10-04 | William E Sievers | Heated well production string |
US2994376A (en) * | 1957-12-27 | 1961-08-01 | Phillips Petroleum Co | In situ combustion process |
US3051235A (en) | 1958-02-24 | 1962-08-28 | Jersey Prod Res Co | Recovery of petroleum crude oil, by in situ combustion and in situ hydrogenation |
US2911047A (en) * | 1958-03-11 | 1959-11-03 | John C Henderson | Apparatus for extracting naturally occurring difficultly flowable petroleum oil from a naturally located subterranean body |
US2958519A (en) * | 1958-06-23 | 1960-11-01 | Phillips Petroleum Co | In situ combustion process |
US2974937A (en) * | 1958-11-03 | 1961-03-14 | Jersey Prod Res Co | Petroleum recovery from carbonaceous formations |
US2998457A (en) * | 1958-11-19 | 1961-08-29 | Ashland Oil Inc | Production of phenols |
US2970826A (en) * | 1958-11-21 | 1961-02-07 | Texaco Inc | Recovery of oil from oil shale |
US3097690A (en) | 1958-12-24 | 1963-07-16 | Gulf Research Development Co | Process for heating a subsurface formation |
US2969226A (en) * | 1959-01-19 | 1961-01-24 | Pyrochem Corp | Pendant parting petro pyrolysis process |
US3150715A (en) | 1959-09-30 | 1964-09-29 | Shell Oil Co | Oil recovery by in situ combustion with water injection |
US3170519A (en) * | 1960-05-11 | 1965-02-23 | Gordon L Allot | Oil well microwave tools |
US3058730A (en) | 1960-06-03 | 1962-10-16 | Fmc Corp | Method of forming underground communication between boreholes |
US3138203A (en) | 1961-03-06 | 1964-06-23 | Jersey Prod Res Co | Method of underground burning |
US3057404A (en) | 1961-09-29 | 1962-10-09 | Socony Mobil Oil Co Inc | Method and system for producing oil tenaciously held in porous formations |
US3194315A (en) * | 1962-06-26 | 1965-07-13 | Charles D Golson | Apparatus for isolating zones in wells |
US3272261A (en) | 1963-12-13 | 1966-09-13 | Gulf Research Development Co | Process for recovery of oil |
US3332480A (en) | 1965-03-04 | 1967-07-25 | Pan American Petroleum Corp | Recovery of hydrocarbons by thermal methods |
US3358756A (en) * | 1965-03-12 | 1967-12-19 | Shell Oil Co | Method for in situ recovery of solid or semi-solid petroleum deposits |
US3262741A (en) | 1965-04-01 | 1966-07-26 | Pittsburgh Plate Glass Co | Solution mining of potassium chloride |
US3278234A (en) | 1965-05-17 | 1966-10-11 | Pittsburgh Plate Glass Co | Solution mining of potassium chloride |
US3362751A (en) | 1966-02-28 | 1968-01-09 | Tinlin William | Method and system for recovering shale oil and gas |
DE1615192B1 (en) | 1966-04-01 | 1970-08-20 | Chisso Corp | Inductively heated heating pipe |
US3410796A (en) | 1966-04-04 | 1968-11-12 | Gas Processors Inc | Process for treatment of saline waters |
US3372754A (en) * | 1966-05-31 | 1968-03-12 | Mobil Oil Corp | Well assembly for heating a subterranean formation |
US3399623A (en) | 1966-07-14 | 1968-09-03 | James R. Creed | Apparatus for and method of producing viscid oil |
NL153755C (en) | 1966-10-20 | 1977-11-15 | Stichting Reactor Centrum | METHOD FOR MANUFACTURING AN ELECTRIC HEATING ELEMENT, AS WELL AS HEATING ELEMENT MANUFACTURED USING THIS METHOD. |
US3465819A (en) | 1967-02-13 | 1969-09-09 | American Oil Shale Corp | Use of nuclear detonations in producing hydrocarbons from an underground formation |
NL6803827A (en) | 1967-03-22 | 1968-09-23 | ||
US3542276A (en) * | 1967-11-13 | 1970-11-24 | Ideal Ind | Open type explosion connector and method |
US3485300A (en) | 1967-12-20 | 1969-12-23 | Phillips Petroleum Co | Method and apparatus for defoaming crude oil down hole |
US3578080A (en) | 1968-06-10 | 1971-05-11 | Shell Oil Co | Method of producing shale oil from an oil shale formation |
US3537528A (en) | 1968-10-14 | 1970-11-03 | Shell Oil Co | Method for producing shale oil from an exfoliated oil shale formation |
US3593789A (en) | 1968-10-18 | 1971-07-20 | Shell Oil Co | Method for producing shale oil from an oil shale formation |
US3565171A (en) | 1968-10-23 | 1971-02-23 | Shell Oil Co | Method for producing shale oil from a subterranean oil shale formation |
US3554285A (en) | 1968-10-24 | 1971-01-12 | Phillips Petroleum Co | Production and upgrading of heavy viscous oils |
US3629551A (en) | 1968-10-29 | 1971-12-21 | Chisso Corp | Controlling heat generation locally in a heat-generating pipe utilizing skin-effect current |
US3513249A (en) * | 1968-12-24 | 1970-05-19 | Ideal Ind | Explosion connector with improved insulating means |
US3614986A (en) | 1969-03-03 | 1971-10-26 | Electrothermic Co | Method for injecting heated fluids into mineral bearing formations |
US3542131A (en) | 1969-04-01 | 1970-11-24 | Mobil Oil Corp | Method of recovering hydrocarbons from oil shale |
US3547192A (en) | 1969-04-04 | 1970-12-15 | Shell Oil Co | Method of metal coating and electrically heating a subterranean earth formation |
US3529075A (en) * | 1969-05-21 | 1970-09-15 | Ideal Ind | Explosion connector with ignition arrangement |
US3572838A (en) | 1969-07-07 | 1971-03-30 | Shell Oil Co | Recovery of aluminum compounds and oil from oil shale formations |
US3614387A (en) * | 1969-09-22 | 1971-10-19 | Watlow Electric Mfg Co | Electrical heater with an internal thermocouple |
US3679812A (en) | 1970-11-13 | 1972-07-25 | Schlumberger Technology Corp | Electrical suspension cable for well tools |
US3893918A (en) | 1971-11-22 | 1975-07-08 | Engineering Specialties Inc | Method for separating material leaving a well |
US3757860A (en) | 1972-08-07 | 1973-09-11 | Atlantic Richfield Co | Well heating |
US3761599A (en) | 1972-09-05 | 1973-09-25 | Gen Electric | Means for reducing eddy current heating of a tank in electric apparatus |
US3794113A (en) | 1972-11-13 | 1974-02-26 | Mobil Oil Corp | Combination in situ combustion displacement and steam stimulation of producing wells |
US4199025A (en) | 1974-04-19 | 1980-04-22 | Electroflood Company | Method and apparatus for tertiary recovery of oil |
US4037655A (en) | 1974-04-19 | 1977-07-26 | Electroflood Company | Method for secondary recovery of oil |
US3894769A (en) | 1974-06-06 | 1975-07-15 | Shell Oil Co | Recovering oil from a subterranean carbonaceous formation |
US4029360A (en) | 1974-07-26 | 1977-06-14 | Occidental Oil Shale, Inc. | Method of recovering oil and water from in situ oil shale retort flue gas |
US3933447A (en) | 1974-11-08 | 1976-01-20 | The United States Of America As Represented By The United States Energy Research And Development Administration | Underground gasification of coal |
US3950029A (en) | 1975-06-12 | 1976-04-13 | Mobil Oil Corporation | In situ retorting of oil shale |
US4199024A (en) | 1975-08-07 | 1980-04-22 | World Energy Systems | Multistage gas generator |
US4037658A (en) | 1975-10-30 | 1977-07-26 | Chevron Research Company | Method of recovering viscous petroleum from an underground formation |
US4018279A (en) | 1975-11-12 | 1977-04-19 | Reynolds Merrill J | In situ coal combustion heat recovery method |
US4017319A (en) | 1976-01-06 | 1977-04-12 | General Electric Company | Si3 N4 formed by nitridation of sintered silicon compact containing boron |
US4487257A (en) | 1976-06-17 | 1984-12-11 | Raytheon Company | Apparatus and method for production of organic products from kerogen |
US4083604A (en) | 1976-11-15 | 1978-04-11 | Trw Inc. | Thermomechanical fracture for recovery system in oil shale deposits |
US4169506A (en) | 1977-07-15 | 1979-10-02 | Standard Oil Company (Indiana) | In situ retorting of oil shale and energy recovery |
US4119349A (en) | 1977-10-25 | 1978-10-10 | Gulf Oil Corporation | Method and apparatus for recovery of fluids produced in in-situ retorting of oil shale |
US4228853A (en) | 1978-06-21 | 1980-10-21 | Harvey A Herbert | Petroleum production method |
US4446917A (en) | 1978-10-04 | 1984-05-08 | Todd John C | Method and apparatus for producing viscous or waxy crude oils |
US4311340A (en) | 1978-11-27 | 1982-01-19 | Lyons William C | Uranium leeching process and insitu mining |
JPS5576586A (en) * | 1978-12-01 | 1980-06-09 | Tokyo Shibaura Electric Co | Heater |
US4457365A (en) | 1978-12-07 | 1984-07-03 | Raytheon Company | In situ radio frequency selective heating system |
US4232902A (en) | 1979-02-09 | 1980-11-11 | Ppg Industries, Inc. | Solution mining water soluble salts at high temperatures |
US4289354A (en) | 1979-02-23 | 1981-09-15 | Edwin G. Higgins, Jr. | Borehole mining of solid mineral resources |
US4290650A (en) | 1979-08-03 | 1981-09-22 | Ppg Industries Canada Ltd. | Subterranean cavity chimney development for connecting solution mined cavities |
CA1168283A (en) | 1980-04-14 | 1984-05-29 | Hiroshi Teratani | Electrode device for electrically heating underground deposits of hydrocarbons |
CA1165361A (en) | 1980-06-03 | 1984-04-10 | Toshiyuki Kobayashi | Electrode unit for electrically heating underground hydrocarbon deposits |
US4401099A (en) * | 1980-07-11 | 1983-08-30 | W.B. Combustion, Inc. | Single-ended recuperative radiant tube assembly and method |
US4385661A (en) | 1981-01-07 | 1983-05-31 | The United States Of America As Represented By The United States Department Of Energy | Downhole steam generator with improved preheating, combustion and protection features |
US4382469A (en) * | 1981-03-10 | 1983-05-10 | Electro-Petroleum, Inc. | Method of in situ gasification |
GB2110231B (en) * | 1981-03-13 | 1984-11-14 | Jgc Corp | Process for converting solid wastes to gases for use as a town gas |
US4384614A (en) * | 1981-05-11 | 1983-05-24 | Justheim Pertroleum Company | Method of retorting oil shale by velocity flow of super-heated air |
US4401162A (en) | 1981-10-13 | 1983-08-30 | Synfuel (An Indiana Limited Partnership) | In situ oil shale process |
US4549073A (en) | 1981-11-06 | 1985-10-22 | Oximetrix, Inc. | Current controller for resistive heating element |
US4418752A (en) | 1982-01-07 | 1983-12-06 | Conoco Inc. | Thermal oil recovery with solvent recirculation |
US4441985A (en) | 1982-03-08 | 1984-04-10 | Exxon Research And Engineering Co. | Process for supplying the heat requirement of a retort for recovering oil from solids by partial indirect heating of in situ combustion gases, and combustion air, without the use of supplemental fuel |
CA1196594A (en) | 1982-04-08 | 1985-11-12 | Guy Savard | Recovery of oil from tar sands |
US4460044A (en) | 1982-08-31 | 1984-07-17 | Chevron Research Company | Advancing heated annulus steam drive |
US4485868A (en) | 1982-09-29 | 1984-12-04 | Iit Research Institute | Method for recovery of viscous hydrocarbons by electromagnetic heating in situ |
US4498531A (en) * | 1982-10-01 | 1985-02-12 | Rockwell International Corporation | Emission controller for indirect fired downhole steam generators |
US4609041A (en) | 1983-02-10 | 1986-09-02 | Magda Richard M | Well hot oil system |
US4886118A (en) * | 1983-03-21 | 1989-12-12 | Shell Oil Company | Conductively heating a subterranean oil shale to create permeability and subsequently produce oil |
US4545435A (en) * | 1983-04-29 | 1985-10-08 | Iit Research Institute | Conduction heating of hydrocarbonaceous formations |
EP0130671A3 (en) | 1983-05-26 | 1986-12-17 | Metcal Inc. | Multiple temperature autoregulating heater |
US4538682A (en) * | 1983-09-08 | 1985-09-03 | Mcmanus James W | Method and apparatus for removing oil well paraffin |
US4572229A (en) * | 1984-02-02 | 1986-02-25 | Thomas D. Mueller | Variable proportioner |
US4637464A (en) * | 1984-03-22 | 1987-01-20 | Amoco Corporation | In situ retorting of oil shale with pulsed water purge |
US4570715A (en) * | 1984-04-06 | 1986-02-18 | Shell Oil Company | Formation-tailored method and apparatus for uniformly heating long subterranean intervals at high temperature |
US4577691A (en) | 1984-09-10 | 1986-03-25 | Texaco Inc. | Method and apparatus for producing viscous hydrocarbons from a subterranean formation |
JPS61104582A (en) * | 1984-10-25 | 1986-05-22 | 株式会社デンソー | Sheathed heater |
FR2575463B1 (en) * | 1984-12-28 | 1987-03-20 | Gaz De France | PROCESS FOR PRODUCING METHANE USING A THORORESISTANT CATALYST AND CATALYST FOR CARRYING OUT SAID METHOD |
US4662437A (en) | 1985-11-14 | 1987-05-05 | Atlantic Richfield Company | Electrically stimulated well production system with flexible tubing conductor |
CA1253555A (en) | 1985-11-21 | 1989-05-02 | Cornelis F.H. Van Egmond | Heating rate variant elongated electrical resistance heater |
CN1010864B (en) * | 1985-12-09 | 1990-12-19 | 国际壳牌研究有限公司 | Method and apparatus for installation of electric heater in well |
CN1006920B (en) * | 1985-12-09 | 1990-02-21 | 国际壳牌研究有限公司 | Method for temp. measuring of small-sized well |
US4716960A (en) | 1986-07-14 | 1988-01-05 | Production Technologies International, Inc. | Method and system for introducing electric current into a well |
CA1288043C (en) | 1986-12-15 | 1991-08-27 | Peter Van Meurs | Conductively heating a subterranean oil shale to create permeabilityand subsequently produce oil |
US4793409A (en) | 1987-06-18 | 1988-12-27 | Ors Development Corporation | Method and apparatus for forming an insulated oil well casing |
US4852648A (en) | 1987-12-04 | 1989-08-01 | Ava International Corporation | Well installation in which electrical current is supplied for a source at the wellhead to an electrically responsive device located a substantial distance below the wellhead |
US4974425A (en) | 1988-12-08 | 1990-12-04 | Concept Rkk, Limited | Closed cryogenic barrier for containment of hazardous material migration in the earth |
US4860544A (en) | 1988-12-08 | 1989-08-29 | Concept R.K.K. Limited | Closed cryogenic barrier for containment of hazardous material migration in the earth |
US5152341A (en) | 1990-03-09 | 1992-10-06 | Raymond S. Kasevich | Electromagnetic method and apparatus for the decontamination of hazardous material-containing volumes |
CA2015460C (en) | 1990-04-26 | 1993-12-14 | Kenneth Edwin Kisman | Process for confining steam injected into a heavy oil reservoir |
US5050601A (en) | 1990-05-29 | 1991-09-24 | Joel Kupersmith | Cardiac defibrillator electrode arrangement |
US5042579A (en) | 1990-08-23 | 1991-08-27 | Shell Oil Company | Method and apparatus for producing tar sand deposits containing conductive layers |
US5066852A (en) | 1990-09-17 | 1991-11-19 | Teledyne Ind. Inc. | Thermoplastic end seal for electric heating elements |
US5065818A (en) | 1991-01-07 | 1991-11-19 | Shell Oil Company | Subterranean heaters |
US5626190A (en) | 1991-02-06 | 1997-05-06 | Moore; Boyd B. | Apparatus for protecting electrical connection from moisture in a hazardous area adjacent a wellhead barrier for an underground well |
CN2095278U (en) * | 1991-06-19 | 1992-02-05 | 中国石油天然气总公司辽河设计院 | Electric heater for oil well |
US5133406A (en) | 1991-07-05 | 1992-07-28 | Amoco Corporation | Generating oxygen-depleted air useful for increasing methane production |
US5420402A (en) * | 1992-02-05 | 1995-05-30 | Iit Research Institute | Methods and apparatus to confine earth currents for recovery of subsurface volatiles and semi-volatiles |
CN2183444Y (en) * | 1993-10-19 | 1994-11-23 | 刘犹斌 | Electromagnetic heating device for deep-well petroleum |
US5507149A (en) | 1994-12-15 | 1996-04-16 | Dash; J. Gregory | Nonporous liquid impermeable cryogenic barrier |
EA000057B1 (en) * | 1995-04-07 | 1998-04-30 | Шелл Интернэшнл Рисерч Маатсхаппий Б.В. | Oil production well and assembly of such wells |
US5730550A (en) * | 1995-08-15 | 1998-03-24 | Board Of Trustees Operating Michigan State University | Method for placement of a permeable remediation zone in situ |
US5759022A (en) * | 1995-10-16 | 1998-06-02 | Gas Research Institute | Method and system for reducing NOx and fuel emissions in a furnace |
US5619611A (en) | 1995-12-12 | 1997-04-08 | Tub Tauch-Und Baggertechnik Gmbh | Device for removing downhole deposits utilizing tubular housing and passing electric current through fluid heating medium contained therein |
GB9526120D0 (en) | 1995-12-21 | 1996-02-21 | Raychem Sa Nv | Electrical connector |
CA2177726C (en) * | 1996-05-29 | 2000-06-27 | Theodore Wildi | Low-voltage and low flux density heating system |
US5782301A (en) | 1996-10-09 | 1998-07-21 | Baker Hughes Incorporated | Oil well heater cable |
US6039121A (en) | 1997-02-20 | 2000-03-21 | Rangewest Technologies Ltd. | Enhanced lift method and apparatus for the production of hydrocarbons |
MA24902A1 (en) | 1998-03-06 | 2000-04-01 | Shell Int Research | ELECTRIC HEATER |
US6540018B1 (en) | 1998-03-06 | 2003-04-01 | Shell Oil Company | Method and apparatus for heating a wellbore |
US6248230B1 (en) * | 1998-06-25 | 2001-06-19 | Sk Corporation | Method for manufacturing cleaner fuels |
US6130398A (en) * | 1998-07-09 | 2000-10-10 | Illinois Tool Works Inc. | Plasma cutter for auxiliary power output of a power source |
NO984235L (en) | 1998-09-14 | 2000-03-15 | Cit Alcatel | Heating system for metal pipes for crude oil transport |
DE69930290T2 (en) * | 1998-09-25 | 2006-12-14 | Tesco Corp., Calgary | SYSTEM, APPARATUS AND METHOD FOR INSTALLING CONTROL LINES IN A FOOD PITCH |
US6609761B1 (en) | 1999-01-08 | 2003-08-26 | American Soda, Llp | Sodium carbonate and sodium bicarbonate production from nahcolitic oil shale |
JP2000340350A (en) | 1999-05-28 | 2000-12-08 | Kyocera Corp | Silicon nitride ceramic heater and its manufacture |
US6257334B1 (en) | 1999-07-22 | 2001-07-10 | Alberta Oil Sands Technology And Research Authority | Steam-assisted gravity drainage heavy oil recovery process |
US6633236B2 (en) | 2000-01-24 | 2003-10-14 | Shell Oil Company | Permanent downhole, wireless, two-way telemetry backbone using redundant repeaters |
US7259688B2 (en) | 2000-01-24 | 2007-08-21 | Shell Oil Company | Wireless reservoir production control |
US20020036085A1 (en) | 2000-01-24 | 2002-03-28 | Bass Ronald Marshall | Toroidal choke inductor for wireless communication and control |
US7170424B2 (en) | 2000-03-02 | 2007-01-30 | Shell Oil Company | Oil well casting electrical power pick-off points |
OA12225A (en) | 2000-03-02 | 2006-05-10 | Shell Int Research | Controlled downhole chemical injection. |
MY128294A (en) | 2000-03-02 | 2007-01-31 | Shell Int Research | Use of downhole high pressure gas in a gas-lift well |
US6632047B2 (en) * | 2000-04-14 | 2003-10-14 | Board Of Regents, The University Of Texas System | Heater element for use in an in situ thermal desorption soil remediation system |
US6918444B2 (en) | 2000-04-19 | 2005-07-19 | Exxonmobil Upstream Research Company | Method for production of hydrocarbons from organic-rich rock |
US20030085034A1 (en) | 2000-04-24 | 2003-05-08 | Wellington Scott Lee | In situ thermal processing of a coal formation to produce pyrolsis products |
US20030075318A1 (en) | 2000-04-24 | 2003-04-24 | Keedy Charles Robert | In situ thermal processing of a coal formation using substantially parallel formed wellbores |
US20030066642A1 (en) | 2000-04-24 | 2003-04-10 | Wellington Scott Lee | In situ thermal processing of a coal formation producing a mixture with oxygenated hydrocarbons |
US7096953B2 (en) | 2000-04-24 | 2006-08-29 | Shell Oil Company | In situ thermal processing of a coal formation using a movable heating element |
ATE313695T1 (en) * | 2000-04-24 | 2006-01-15 | Shell Int Research | ELECTRIC WELL HEATING APPARATUS AND METHOD |
US7011154B2 (en) | 2000-04-24 | 2006-03-14 | Shell Oil Company | In situ recovery from a kerogen and liquid hydrocarbon containing formation |
WO2002057805A2 (en) * | 2000-06-29 | 2002-07-25 | Tubel Paulo S | Method and system for monitoring smart structures utilizing distributed optical sensors |
US6585046B2 (en) | 2000-08-28 | 2003-07-01 | Baker Hughes Incorporated | Live well heater cable |
US20020112987A1 (en) | 2000-12-15 | 2002-08-22 | Zhiguo Hou | Slurry hydroprocessing for heavy oil upgrading using supported slurry catalysts |
US20020112890A1 (en) | 2001-01-22 | 2002-08-22 | Wentworth Steven W. | Conduit pulling apparatus and method for use in horizontal drilling |
US20020153141A1 (en) | 2001-04-19 | 2002-10-24 | Hartman Michael G. | Method for pumping fluids |
ATE314556T1 (en) * | 2001-04-24 | 2006-01-15 | Shell Int Research | OIL PRODUCTION BY COMBUSTION ON SITE |
WO2002086029A2 (en) | 2001-04-24 | 2002-10-31 | Shell Oil Company | In situ recovery from a relatively low permeability formation containing heavy hydrocarbons |
US7055600B2 (en) | 2001-04-24 | 2006-06-06 | Shell Oil Company | In situ thermal recovery from a relatively permeable formation with controlled production rate |
US7004247B2 (en) | 2001-04-24 | 2006-02-28 | Shell Oil Company | Conductor-in-conduit heat sources for in situ thermal processing of an oil shale formation |
CN100545415C (en) | 2001-04-24 | 2009-09-30 | 国际壳牌研究有限公司 | The method of in-situ processing hydrocarbon containing formation |
US20030029617A1 (en) | 2001-08-09 | 2003-02-13 | Anadarko Petroleum Company | Apparatus, method and system for single well solution-mining |
US7104319B2 (en) | 2001-10-24 | 2006-09-12 | Shell Oil Company | In situ thermal processing of a heavy oil diatomite formation |
US6969123B2 (en) | 2001-10-24 | 2005-11-29 | Shell Oil Company | Upgrading and mining of coal |
ATE402294T1 (en) | 2001-10-24 | 2008-08-15 | Shell Int Research | ICING OF SOILS AS AN PRELIMINARY MEASURE FOR THERMAL TREATMENT |
US7090013B2 (en) | 2001-10-24 | 2006-08-15 | Shell Oil Company | In situ thermal processing of a hydrocarbon containing formation to produce heated fluids |
US7165615B2 (en) | 2001-10-24 | 2007-01-23 | Shell Oil Company | In situ recovery from a hydrocarbon containing formation using conductor-in-conduit heat sources with an electrically conductive material in the overburden |
US7077199B2 (en) | 2001-10-24 | 2006-07-18 | Shell Oil Company | In situ thermal processing of an oil reservoir formation |
NZ532091A (en) * | 2001-10-24 | 2005-12-23 | Shell Int Research | In situ recovery from a hydrocarbon containing formation using barriers |
US6679326B2 (en) | 2002-01-15 | 2004-01-20 | Bohdan Zakiewicz | Pro-ecological mining system |
WO2003062596A1 (en) * | 2002-01-22 | 2003-07-31 | Weatherford/Lamb, Inc. | Gas operated pump for hydrocarbon wells |
US6958195B2 (en) * | 2002-02-19 | 2005-10-25 | Utc Fuel Cells, Llc | Steam generator for a PEM fuel cell power plant |
CA2486582C (en) * | 2002-05-31 | 2008-07-22 | Sensor Highway Limited | Parameter sensing apparatus and method for subterranean wells |
WO2004018828A1 (en) * | 2002-08-21 | 2004-03-04 | Presssol Ltd. | Reverse circulation directional and horizontal drilling using concentric coil tubing |
US7048051B2 (en) | 2003-02-03 | 2006-05-23 | Gen Syn Fuels | Recovery of products from oil shale |
US6796139B2 (en) | 2003-02-27 | 2004-09-28 | Layne Christensen Company | Method and apparatus for artificial ground freezing |
US7121342B2 (en) | 2003-04-24 | 2006-10-17 | Shell Oil Company | Thermal processes for subsurface formations |
RU2349745C2 (en) | 2003-06-24 | 2009-03-20 | Эксонмобил Апстрим Рисерч Компани | Method of processing underground formation for conversion of organic substance into extracted hydrocarbons (versions) |
US7147057B2 (en) | 2003-10-06 | 2006-12-12 | Halliburton Energy Services, Inc. | Loop systems and methods of using the same for conveying and distributing thermal energy into a wellbore |
US7337841B2 (en) | 2004-03-24 | 2008-03-04 | Halliburton Energy Services, Inc. | Casing comprising stress-absorbing materials and associated methods of use |
CA2579496A1 (en) | 2004-04-23 | 2005-11-03 | Shell Internationale Research Maatschappij B.V. | Subsurface electrical heaters using nitride insulation |
AU2006239988B2 (en) * | 2005-04-22 | 2010-07-01 | Shell Internationale Research Maatschappij B.V. | Reduction of heat loads applied to frozen barriers and freeze wells in subsurface formations |
EA011905B1 (en) | 2005-04-22 | 2009-06-30 | Шелл Интернэшнл Рисерч Маатсхаппий Б.В. | In situ conversion process utilizing a closed loop heating system |
AU2006306471B2 (en) | 2005-10-24 | 2010-11-25 | Shell Internationale Research Maatschapij B.V. | Cogeneration systems and processes for treating hydrocarbon containing formations |
US7124584B1 (en) | 2005-10-31 | 2006-10-24 | General Electric Company | System and method for heat recovery from geothermal source of heat |
EP1984599B1 (en) | 2006-02-16 | 2012-03-21 | Chevron U.S.A., Inc. | Kerogen extraction from subterranean oil shale resources |
AU2007240367B2 (en) | 2006-04-21 | 2011-04-07 | Shell Internationale Research Maatschappij B.V. | High strength alloys |
JP5330999B2 (en) | 2006-10-20 | 2013-10-30 | シエル・インターナシヨネイル・リサーチ・マーチヤツピイ・ベー・ウイ | Hydrocarbon migration in multiple parts of a tar sand formation by fluids. |
US20080216321A1 (en) | 2007-03-09 | 2008-09-11 | Eveready Battery Company, Inc. | Shaving aid delivery system for use with wet shave razors |
WO2008131171A1 (en) | 2007-04-20 | 2008-10-30 | Shell Oil Company | Parallel heater system for subsurface formations |
CA2700732A1 (en) | 2007-10-19 | 2009-04-23 | Shell Internationale Research Maatschappij B.V. | Cryogenic treatment of gas |
US8151907B2 (en) | 2008-04-18 | 2012-04-10 | Shell Oil Company | Dual motor systems and non-rotating sensors for use in developing wellbores in subsurface formations |
-
2006
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Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US2794504A (en) | 1954-05-10 | 1957-06-04 | Union Oil Co | Well heater |
US20020029882A1 (en) * | 2000-04-24 | 2002-03-14 | Rouffignac Eric Pierre De | In situ thermal processing of a hydrocarbon containing formation leaving one or more selected unprocessed areas |
US20040140095A1 (en) | 2002-10-24 | 2004-07-22 | Vinegar Harold J. | Staged and/or patterned heating during in situ thermal processing of a hydrocarbon containing formation |
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