WO2021247065A1 - Method to recover spent hydroprocessing catalyst activity - Google Patents
Method to recover spent hydroprocessing catalyst activity Download PDFInfo
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- WO2021247065A1 WO2021247065A1 PCT/US2020/054337 US2020054337W WO2021247065A1 WO 2021247065 A1 WO2021247065 A1 WO 2021247065A1 US 2020054337 W US2020054337 W US 2020054337W WO 2021247065 A1 WO2021247065 A1 WO 2021247065A1
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J38/00—Regeneration or reactivation of catalysts, in general
- B01J38/02—Heat treatment
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J38/00—Regeneration or reactivation of catalysts, in general
- B01J38/48—Liquid treating or treating in liquid phase, e.g. dissolved or suspended
- B01J38/50—Liquid treating or treating in liquid phase, e.g. dissolved or suspended using organic liquids
- B01J38/56—Hydrocarbons
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J23/00—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00
- B01J23/90—Regeneration or reactivation
- B01J23/94—Regeneration or reactivation of catalysts comprising metals, oxides or hydroxides of the iron group metals or copper
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J38/00—Regeneration or reactivation of catalysts, in general
- B01J38/04—Gas or vapour treating; Treating by using liquids vaporisable upon contacting spent catalyst
- B01J38/12—Treating with free oxygen-containing gas
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J38/00—Regeneration or reactivation of catalysts, in general
- B01J38/04—Gas or vapour treating; Treating by using liquids vaporisable upon contacting spent catalyst
- B01J38/12—Treating with free oxygen-containing gas
- B01J38/20—Plural distinct oxidation stages
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J38/00—Regeneration or reactivation of catalysts, in general
- B01J38/48—Liquid treating or treating in liquid phase, e.g. dissolved or suspended
- B01J38/60—Liquid treating or treating in liquid phase, e.g. dissolved or suspended using acids
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J38/00—Regeneration or reactivation of catalysts, in general
- B01J38/48—Liquid treating or treating in liquid phase, e.g. dissolved or suspended
- B01J38/60—Liquid treating or treating in liquid phase, e.g. dissolved or suspended using acids
- B01J38/62—Liquid treating or treating in liquid phase, e.g. dissolved or suspended using acids organic
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J38/00—Regeneration or reactivation of catalysts, in general
Definitions
- Embodiments of the present disclosure generally relate to catalyst regeneration and rejuvenation, and pertains particularly to a catalyst regeneration and rejuvenation process for removal of coke deposits from spent catalysts using a chemical and combustion treatment.
- Crude oil is conventionally processed by distillation followed by various cracking, solvent treatment, and hydroconversion processes to produce a desired slate of fuels, lubricating oil products, chemicals, chemical feedstocks, and the like.
- An example of a conventional refinery process includes distillation of crude oil in an atmospheric distillation to recover gas oil, naphtha, gaseous products, and an atmospheric residuum. Streams recovered from crude distillation at the boiling point of fuels have customarily been used directly as fuels.
- the atmospheric residuum is further fractionated in a vacuum distillation unit to produce a vacuum gas oil and a vacuum residuum.
- vacuum gas oil is commonly cracked to provide more valuable light transportation fuel products in a fluid catalytic cracking unit or by hydrocracking.
- the vacuum residuum can be further treated for conversion to more valuable products.
- vacuum residuum upgrading processes can include one or more of residuum hydrotreating, residuum fluid catalytic cracking, coking, gasification, and solvent deasphalting.
- an ebullated-bed reactor includes concurrently flowing streams of liquids or slurries of liquids, solids and gas, through a vertically-oriented cylindrical vessel containing catalyst.
- the catalyst is placed in motion in the liquid and has a gross volume dispersed through the liquid medium that is greater than the volume of the mass when stationary.
- the catalyst is in an expanded bed, thereby countering plugging problems associated with fixed-bed reactors.
- the fluidized nature of the catalyst in an ebullated-bed reactor also allows for on-line catalyst replacement of a small portion of catalyst in the bed. This results in a high net bed activity which does not vary with time.
- ebullated-bed reactors consume a large amount of catalysts.
- the catalyst addition rate is a function of feedstock quality, targeted objectives, conversion level and the unit design.
- a typical catalyst addition rate in an ebullated-bed reactor is 0.1 kg/BPSD (barrels per stream day).
- BPSD barrels per stream day
- the daily fresh catalyst consumption is 10 metric tons per day, resulting in about 20 metric tons of spent catalyst daily.
- the increased weight is due to coke and metals deposited in the catalyst pores.
- the total catalyst cost for a 100,000 BPSD unit is about $100,000 US per day, which is a significant operating cost. If a catalyst is recycled once to the unit after a 90 % recovery, however, the catalyst cost will be lowered by 45 %.
- Moving-bed reactors combine certain advantages of fixed-bed operations and the relatively easy catalyst replacement of ebullated-bed technology. Operating conditions are generally more severe than those typically used in fixed-bed reactor, i.e., the pressure can exceed 200 kg/cm 2 , and the temperature can be in the range of from 400 °C to 430 °C. During catalyst replacement, catalyst movement is slow compared to the linear velocity of the feed. Catalyst addition and withdrawal are performed, for instance, via a sluice system at the top and bottom of the reactor.
- the advantage of the moving-bed reactor is that the top layer of the moving-bed consists of fresh catalyst. Contaminants deposited on the top of the bed move downward with the catalyst and are released from the bottom of the reactor during catalyst withdrawal. The tolerance for metals and other contaminants is, therefore, much greater than in a fixed-bed reactor. With this capability, the moving-bed reactor has advantages for hydroprocessing of very heavy feeds, especially when several reactors are combined in series.
- a method for regenerating and rejuvenating a spent catalyst comprising coke and contaminant metals includes washing the spent catalyst with a solvent; drying, at least partially, the spent catalyst; partially combusting the spent catalyst to remove a portion of the coke, thereby producing a partially de-coked catalyst; acid washing the partially de-coked catalyst; and fully combusting the partially de-coked catalyst, thereby producing a regenerated and rejuvenated catalyst.
- the portion of the coke removed during the partial combustion is greater than or equal to 10 wt.% and less than or equal to 60 wt.%. No rare earth elements are added to the partially de-coked catalyst prior to the fully combusting the partially de-coked catalyst.
- a method for regenerating and rejuvenating a spent catalyst comprising coke and contaminant metals includes washing the spent catalyst with a solvent, at least partially drying the spent catalyst, partially combusting the spent catalyst to remove a portion of the coke, thereby producing a partially de-coked catalyst, acid washing the partially de-coked catalyst to remove contaminant metals, and fully combusting the partially de-coked catalyst, thereby producing a regenerated and rejuvenated catalyst.
- the portion of the coke removed to produce the partially de-coked catalyst is greater than or equal to 10 wt.% and less than or equal to 95 wt.%.
- the spent catalyst such as catalyst recovered from a crude oil processing unit, is washed with a solvent to remove residual oil from the spent catalyst.
- the solvent has a Hildebrandt solubility factor of greater than or equal to 18.
- solvents with a Hildebrandt solubility factor of greater than or equal to 18 include, but are not limited to, benzene, toluene, xylenes, pyridine, tetrahydrofuran, 2-ethoxyethanol, morpholine, dimethylformamide, n-propyl alcohol, ethyl alcohol, dimethyl sulfoxide, n- butyl alcohol, methyl alcohol, propylene glycol, ethylene glycol, glycerol, acetone, and water. It is to be understood that a mixture of two or more of these exemplary solvents may also have a Hildebrandt solubility factor of greater than or equal to 18.
- the solvent may be selected from toluene, benzene, xylenes, acetone, dichloromethane, methanol, ethanol, an alcohol comprising greater than or equal to three carbon atoms, an aromatic stream recovered from a refining process, and a combination of two or more thereof.
- Exemplary aromatic streams include a mid-heavy naphtha fraction boiling in the range from 80 °C to 180 °C and an aromatic bottom fraction from an aromatic recovery complex.
- the spent catalyst may be dried, at least partially, after the solvent wash and prior to further processing to remove residual solvent from the solvent wash. This drying may be performed by flowing a gas over the catalyst.
- the gas is not particularly limited and may include air, nitrogen, oxygen, a noble gas, and a combination of two or more of these.
- at least partially drying the spent catalyst refers to removing at least 50 wt.% of the residual solvent from the solvent washed, spent catalyst. In embodiments, greater than or equal to 50 wt.% and less than or equal to 100 wt.% residual solvent is removed. In embodiments, greater than or equal to 55 wt.% and less than or equal to 95 wt.% residual solvent is removed.
- the residual solvent removed may be within a range formed from any one of the lower bounds for the residual solvent removed and any one of the upper bounds for the residual solvent removed described herein.
- partial combustion This initial combustion is referred to as “partial combustion” herein.
- acid washing is believed to remove contaminant metals, such as nickel and vanadium, from the spent catalyst.
- coke present on the spent catalyst could have two effects on the acid washing. First, the coke may actually protect the catalyst pore structure from acid damage during the acid washing. Second, the coke may cover the active phase metals and prevent them from leaching during the acid washing. Therefore, in embodiments described herein, the spent catalyst may be subjected to partial combustion, such that the coke is partially removed, and then this partially de coked catalyst may be subjected to an acid wash.
- partially de-coking the catalyst may allow for sufficient coke to protect the core structure of the catalyst, while not having so much coke present as to prevent leaching of the metal contaminants.
- the partial combustion may include applying a combusting agent to the spent catalyst.
- the combusting agent may be, for instance, air, oxygen, ozone, oxides of nitrogen, and a combination of two or more thereof.
- the combusting agent may be air.
- the combusting agent may comprise greater than or equal to the stoichiometric amount of coke present on the catalyst, with two moles of oxygen (from the combusting agent) per mole of carbon (from the coke).
- the amount of combusting agent may be limited to achieve only partial combustion. For instance, if 60% combustion is desired, the combusting agent can be added in an amount that is 120% of the molar concentration of the coke present, based on the oxygen content of the combusting agent. For a further example, if 30% combustion is desired, the combusting agent can be added in an amount that is 60% of the molar concentration of the coke present, based on the oxygen content of the combusting agent.
- the partial combustion is accomplished by heating the combined spent catalyst and combusting agent in a chamber at an elevated temperature for an amount of time.
- the chamber may have a temperature of greater than or equal to 400 °C and less than or equal to 500 °C, greater than or equal to 405 °C and less than or equal to 495 °C, greater than or equal to 410 °C and less than or equal to 490 °C, greater than or equal to 415 °C and less than or equal to 485 °C, greater than or equal to 420 °C and less than or equal to 480 °C, greater than or equal to 425 °C and less than or equal to 475 °C, greater than or equal to 430 °C and less than or equal to 470 °C, greater than or equal to 435 °C and less than or equal to 465 °C, greater than or equal to 440 °C and less than or equal to 460 °C, or even greater than or equal to 4
- the amount of time may be greater than or equal to 15 minutes and less than or equal to 150 minutes, greater than or equal to 20 minutes and less than or equal to 145 minutes, greater than or equal to 25 minutes and less than or equal to 140 minutes, greater than or equal to 30 minutes and less than or equal to 135 minutes, greater than or equal to 35 minutes and less than or equal to 130 minutes, greater than or equal to 40 minutes and less than or equal to 125 minutes, greater than or equal to 45 minutes and less than or equal to 120 minutes, greater than or equal to 50 minutes and less than or equal to 115 minutes, greater than or equal to 55 minutes and less than or equal to 110 minutes, greater than or equal to 55 minutes and less than or equal to 105 minutes, greater than or equal to 60 minutes and less than or equal to 100 minutes, greater than or equal to 65 minutes and less than or equal to 90 minutes, greater than or equal to 70 minutes and less than or equal to 85 minutes, or even greater than or equal to 75 minutes and less than or equal to 80 minutes. It should be understood that the time may be within
- the partial combustion may take place in a chamber at any temperature range described herein for any amount of time described herein.
- the partial combustion may be accomplished by subjecting the spent catalyst to a chamber having a temperature of greater than or equal to 400 °C and less than or equal to 500 °C for a time period of greater than or equal to 15 minutes and less than or equal to 150 minutes or for greater than or equal to 20 minutes and less than or equal to 145 minutes.
- the chamber may have a temperature of greater than or equal to 500 °C and less than or equal to 575 °C. However, at such higher temperatures, the amount of time may be adequately shortened to ensure partial oxidation.
- the amount of time may be greater than or equal to 2 minutes and less than or equal to 10 minutes, greater than or equal to 3 minutes and less than or equal to 9 minutes, greater than or equal to 4 minutes and less than or equal to 8 minutes, or even greater than or equal to 5 minutes and less than or equal to 7 minutes.
- the portion of coke removed during the partial combustion is greater than or equal to 10 wt.% and less than or equal to 60 wt.%.
- the portion of coke removed during the partial combustion may be greater than or equal to 15 wt.% and less than or equal to 55 wt.%, greater than or equal to 20 wt.% and less than or equal to 50 wt.%, greater than or equal to 25 wt.% and less than or equal to 45 wt.%, or even greater than or equal to 30 wt.% and less than or equal to 40 wt.%.
- the portion of coke removed during the partial combustion may be within a range formed from any one of the lower bounds for the portion and any one of the upper bounds for the portion described herein.
- the acid washing may include contacting the partially de coked catalyst with a solution having a pH greater than or equal to 1 and less than or equal to 3.
- the solution having a pH greater than or equal to 1 and less than or equal to 3 may include an aqueous solution of sulfuric acid, nitric acid, phosphoric or phosphorous acid, hydrohalogenic acid, a sulfonic acid, oxalic acid, acetic acid, citric acid, or a combination of two or more thereof.
- hydrohalogenic acids include hydrochloric acid and perchloric acid.
- Exemplary combinations of acid include aqua regia, which is a mixture of nitric acid and hydrochloric acid.
- the catalyst to acid weight ratio may be greater than or equal to 1 :20 and less than or equal to 20: 1.
- the catalyst to acid weight ratio may be greater than or equal to 1:19 and less than or equal to 19:1, greater than or equal to 1:18 and less than or equal to 18:1, greater than or equal to 1:17 and less than or equal to 17:1, greater than or equal to 1:16 and less than or equal to 16:1, greater than or equal to 1:15 and less than or equal to 15:1, greater than or equal to 1:14 and less than or equal to 14:1, greater than or equal to 1:13 and less than or equal to 13:1, greater than or equal to 1:12 and less than or equal to 12:1, greater than or equal to 1:11 and less than or equal to 11:1, greater than or equal to 1 :10 and less than or equal to 10:1, greater than or equal to 1 :9 and less than or equal to 9:1, greater than or equal to 1:8 and less than or equal to 8:1, greater than or equal to 1:7 and less than or equal
- the acid washing may include acid washing the partially de coked catalyst at temperature for an amount of time.
- the partially de-coked catalyst may be acid washed at a temperature greater than or equal to 20 °C and less than or equal to 80 °C, greater than or equal to 25 °C and less than or equal to 75 °C, greater than or equal to 30 °C and less than or equal to 70 °C, greater than or equal to 35 °C and less than or equal to 65 °C, greater than or equal to 40 °C and less than or equal to 60 °C, or greater than or equal to 45 °C and less than or equal to 55 °C.
- the temperature may be within a range formed from any one of the lower bounds for the temperature and any one of the upper bounds for the temperature described herein.
- the acid washing may take place for a time period greater than or equal to 10 minutes and less than or equal to 90 minutes, greater than or equal to 15 minutes and less than or equal to 85 minutes, greater than or equal to 20 minutes and less than or equal to 80 minutes, greater than or equal to 25 minutes and less than or equal to 75 minutes, greater than or equal to 30 minutes and less than or equal to 70 minutes, greater than or equal to 35 minutes and less than or equal to 65 minutes, greater than or equal to 40 minutes and less than or equal to 60 minutes, or greater than or equal to 45 minutes and less than or equal to 55 minutes.
- the time period may be within a range formed from any one of the lower bounds for the time period and any one of the upper bounds for the time period described herein.
- the acid washing may take place at any temperature range described herein for any amount of time described herein. [0027] It should be understood that the acid washing may take place in a chamber at any temperature range described herein for any amount of time described herein.
- the partially de-coked catalyst may be acid washed at a temperature of greater than or equal to 20 °C and less than or equal to 80 °C for a time period of greater than or equal to 10 minutes and less than or equal to 90 minutes.
- the partially de coked catalyst may be acid washed at a temperature of greater than or equal to 25 °C and less than or equal to 75 °C for a time period of greater than or equal to 15 minutes and less than or equal to 85 minutes. In embodiments, the partially de-coked catalyst may be acid washed at a temperature of greater than or equal to 30 °C and less than or equal to 70 °C for a time period of greater than or equal to 20 minutes and less than or equal to 80 minutes. In embodiments, the partially de-coked catalyst may be acid washed at a temperature of greater than or equal to 35 °C and less than or equal to 65 °C for a time period of greater than or equal to 25 minutes and less than or equal to 75 minutes.
- the partially de-coked catalyst may be acid washed at a temperature of greater than or equal to 40 °C and less than or equal to 60 °C for a time period of greater than or equal to 30 minutes and less than or equal to 70 minutes. In embodiments, the partially de-coked catalyst may be acid washed at a temperature of greater than or equal to 45 °C and less than or equal to 55 °C for a time period of greater than or equal to 35 minutes and less than or equal to 65 minutes.
- the acid washing may be followed by water washing the partially de-coked catalyst to remove any residual acid left on the catalyst after the acid washing.
- the pH of the wash water may be measured after the wash water is allowed to pass through the catalyst.
- the water washing may be considered complete when the wash water after being contacted with the partially de-coked catalyst has a pH greater than or equal to 6.5 and less than or equal to 7.5.
- the pH may be greater than or equal to 6.6 and less than or equal to 7.4, greater than or equal to 6.7 and less than or equal to 7.3, greater than or equal to 6.8 and less than or equal to 7.2, greater than or equal to 6.9 and less than or equal to 7.1, or about 7.
- the pH may be within a range formed from any one of the lower bounds for the pH and any one of the upper bounds for the pH described herein.
- the partially de-coked catalyst may be dried.
- the drying may be performed after acid and water washings but prior to full combustion, such that water may be the primary substance removed during the drying.
- the drying may be accomplished by subjecting the partially de-coked catalyst to an environment having a temperature greater than or equal to 20 °C and less than or equal to 200 °C, greater than or equal to 25 °C and less than or equal to 195 °C, greater than or equal to 30 °C and less than or equal to 190 °C, greater than or equal to 35 °C and less than or equal to 185 °C, greater than or equal to 40 °C and less than or equal to 180 °C, greater than or equal to 45 °C and less than or equal to 175 °C, greater than or equal to 50 °C and less than or equal to 170 °C, greater than or equal to 55 °C and less than or equal to 165 °C, greater than or equal to 60 °C and less than or equal to 160 °C, greater than or equal to 65 °C and less than or equal to 155 °C, greater than or equal to 70 °C and less than or equal to 150 °C, greater than or equal to
- the time used for drying the catalysts may be determined by monitoring certain characteristics of the catalysts as they are being dried. For instance, drying may be conducted until no detectable moisture is evolved from the partially de coked catalyst during the drying.
- the weight of the catalyst may be used to determine when no further moisture is being removed from the catalyst during drying. A first weight measurement may be obtained, followed by drying, and then a second weight measurement may be obtained. The drying may be conducted until the second weight changes by no more than 1 % from the first weight.
- the partially de-coked catalyst may be subjected to further combustion such that substantially all the coke is removed, herein referred to as “full combustion.”
- full combustion means a total of greater than or equal to 96%, greater than or equal to 97%, greater than or equal to 98%%, greater than or equal to 99%, or even greater than or equal to 99.9%, of the coke deposited on the spent catalyst is removed during the partial combustion and the full combustion.
- the full combustion may be accomplished using the same or different conditions as the partial combustion described above.
- the full combustion may include applying a combusting agent to the partially de-coked catalyst.
- the combusting agent may be, for instance, air, oxygen, ozone, oxides of nitrogen, and a combination of two or more thereof.
- the combusting agent may be air.
- the combusting agent may comprise greater than or equal to the stoichiometric amount of coke present on the catalyst, with two moles of oxygen (from the combusting agent) per mole of carbon (from the coke).
- the amount of combusting agent may be applied in a molar concentration that is at least twice the molar concentration of the coke remaining on the catalyst, based on the oxygen content of the combusting agent.
- the combusting agent may be applied at 20 wt.% greater than the required stoichiometric amount.
- the full combustion is accomplished by heating the combined partially de-coked catalyst and combusting agent in a chamber at an elevated temperature for an amount of time.
- the chamber may have a temperature of greater than or equal to 500 °C and less than or equal to 575 °C, greater than or equal to 505 °C and less than or equal to 570 °C, greater than or equal to 510 °C and less than or equal to 565 °C, greater than or equal to 515 °C and less than or equal to 560 °C, greater than or equal to 520 °C and less than or equal to 555 °C, greater than or equal to 525 °C and less than or equal to 550 °C, greater than or equal to 530 °C and less than or equal to 545 °C, or even greater than or equal to 535 °C and less than or equal to 540 °C.
- the temperature may be within a range formed from any one of the lower bounds for the temperature and any one of the upper bounds for the temperature described herein.
- the amount of time may be greater than or equal to 15 minutes and less than or equal to 150 minutes, greater than or equal to 20 minutes and less than or equal to 145 minutes, greater than or equal to 25 minutes and less than or equal to 140 minutes, greater than or equal to 30 minutes and less than or equal to 135 minutes, greater than or equal to 35 minutes and less than or equal to 130 minutes, greater than or equal to 40 minutes and less than or equal to 125 minutes, greater than or equal to 45 minutes and less than or equal to 120 minutes, greater than or equal to 50 minutes and less than or equal to 115 minutes, greater than or equal to 55 minutes and less than or equal to 110 minutes, greater than or equal to 60 minutes and less than or equal to 105 minutes, greater than or equal to 65 minutes and less than or equal to 100 minutes, greater than or equal to 70 minutes and less than or equal to 95 minutes, greater than or equal
- the partial combustion may take place in a chamber at any temperature range described herein for any amount of time described herein.
- the partial combustion may be accomplished by subjecting the spent catalyst to a chamber having a temperature of greater than or equal to 500 °C and less than or equal to 575 °C for a time period of greater than or equal to 15 minutes and less than or equal to 150 minutes or for greater than or equal to 20 minutes and less than or equal to 145 minutes.
- the “rare earth elements” include the fifteen lanthanides plus scandium and yttrium.
- the rare earth elements may include one or more of scandium, yttrium, lanthanum, cerium, praseodymium, neodymium, promethium, samarium, europium, gadolinium, terbium, dysprosium, holmium, erbium, thulium, ytterbium, and lutetium.
- a method for regenerating and rejuvenating a spent catalyst comprising coke and contaminant metals includes washing the spent catalyst with a solvent; drying, at least partially, the spent catalyst; partially combusting the spent catalyst to remove a portion of the coke, thereby producing a partially de-coked catalyst; acid washing the partially de-coked catalyst; and fully combusting the partially de-coked catalyst, thereby producing a regenerated and rejuvenated catalyst.
- the portion of the coke removed during the partial combustion is greater than or equal to 10 wt.% and less than or equal to 60 wt.%. No rare earth elements are added to the partially de-coked catalyst prior to the fully combusting the partially de coked catalyst.
- the solvent has a Hildebrandt solubility factor of greater than or equal to 18.
- the solvent is selected from the group consisting of toluene, benzene, xylenes, acetone, dichloromethane, methanol, ethanol, an alcohol comprising greater than or equal to three carbon atoms, an aromatic stream recovered from a refining process, and a combination of two or more thereof.
- the drying is performed by flowing a gas over the catalyst.
- the gas is selected from the group consisting of air, nitrogen, oxygen, a noble gas, and a combination of two or more thereof.
- the portion of the coke removed during the partially combusting the spent catalyst is greater than or equal to 20 wt.% and less than or equal to 60 wt.%.
- the portion of the coke removed during the partially combusting the spent catalyst is greater than or equal to 20 wt.% and less than or equal to 50 wt.%.
- the partially combusting the spent catalyst comprises applying a combusting agent to the spent catalyst.
- the combusting agent is selected from the group consisting of air, oxygen, ozone, oxides of nitrogen, and a combination of two or more thereof.
- the partially combusting the spent catalyst comprises subjecting the spent catalyst to a chamber having a temperature of greater than or equal to 400 °C and less than or equal to 500 °C for a time period of greater than or equal to 15 minutes and less than or equal to 150 minutes.
- the acid washing comprises contacting the partially de-coked catalyst with a solution having a pH greater than or equal to 1 and less than or equal to 3.
- the solution comprises an acid selected from the group consisting of sulfuric acid, hydrochloric acid, perchloric acid, nitric acid, acetic acid, citric acid, oxalic acid, and a combination of two or more thereof.
- the acid washing comprises acid washing the partially de-coked catalyst at a temperature greater than or equal to 20 °C and less than or equal to 80 °C for a time period of greater than or equal to 10 minutes and less than or equal to 90 minutes.
- the acid washing is followed by water washing the partially de-coked catalyst by contacting the partially de-coked catalyst with wash water.
- the method further comprises determining a pH of the wash water after the partially de-coked catalyst is contacted with the wash water and continuing the water washing until the pH of the wash water is greater than or equal to 6.5 and less than or equal to 7.5.
- a sixteenth aspect either alone or in combination with any other aspect, further comprises drying the partially de-coked catalyst after the water washing and prior to the fully combusting the partially de-coked catalyst.
- the drying comprises subjecting the partially de-coked catalyst to an environment having a temperature greater than or equal to 20 °C and less than or equal to 200 °C.
- the drying is conducted until no detectable moisture is evolved from the partially de-coked catalyst.
- the fully combusting the partially de-coked catalyst comprises subjecting the spent catalyst to a chamber having a temperature of greater than or equal to 500 °C and less than or equal to 575 °C for a time period of greater than or equal to 15 minutes and less than or equal to 150 minutes.
- the partially combusting the spent catalyst comprises applying air to the spent catalyst and the fully combusting the partially de-coked catalyst comprises applying air to the partially de-coked catalyst.
- a spent catalyst from a hydrocracking reactor was analyzed using conventional methods. Specifically, the concentrations of carbon, sulfur, nickel, vanadium, arsenic, iron, and sodium in the spent catalyst were determined by conventional methods. Loss on ignition at 550 °C was determined in accordance with ASTM UOP275-98. Surface area was determined by conventional methods. Pore volume was determined in accordance with ASTM D3663. Bulk crush strength was determined in accordance with ASTM D4179.
- Solvent wash The catalyst was subjected to soxhlet extraction with toluene as a solvent to remove residual oil.
- the soxhlet extractor was charged with 100 grams of spent catalyst and the toluene was recycled through the spent catalyst until pure toluene was found in the extractor. For this example, the soxhlet extraction was performed for 2 hours.
- the solvent wash of the spent catalyst produced 17.7 wt.% recovered oil.
- Drying The catalyst was dried in an oven at 100 °C for 1 hour, thereby removing significantly all the residual solvent.
- Partial combustion The soxhlet extracted sample was partially combusted in air in an oven having a temperature of 450 °C for 23 minutes to remove 30 wt.% of the coke on the catalyst surface and pores.
- Acid wash The partially combusted catalyst sample was subjected to acid washing with 15 wt.% sulfuric acid at a catalyst to acid ratio of 1 :5 for 30 minutes at 80 °C. In the acid wash, 90 wt/% nickel and 70 wt.% of vanadium were removed from the catalysts, as determined by measuring the concentration of the metal in solution using atomic absorption spectroscopy.
- Drying The partially de-coked catalyst was dried for 2 hours at 200 °C to remove greater than 99 wt.% of the residual water present.
- Table 2 provides selected final composition and property data for the regenerated and rejuvenated catalyst after the treatment described above.
- references in the present disclosure to the manner in which a component is “operable” or “sufficient” denotes an existing physical condition of the component and, as such, is to be taken as a definite recitation of the structural characteristics of the component.
- first and second are arbitrarily assigned and are merely intended to differentiate between two or more instances or components. It is to be understood that the words “first” and “second” serve no other purpose and are not part of the name or description of the component, nor do they necessarily define a relative location, position, or order of the component. Furthermore, it is to be understood that that the mere use of the term “first” and “second” does not require that there be any “third” component, although that possibility is contemplated under the scope of the present disclosure.
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- Chemical & Material Sciences (AREA)
- Engineering & Computer Science (AREA)
- Materials Engineering (AREA)
- Organic Chemistry (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Physics & Mathematics (AREA)
- Thermal Sciences (AREA)
- Catalysts (AREA)
- Production Of Liquid Hydrocarbon Mixture For Refining Petroleum (AREA)
Abstract
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Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| SA522441431A SA522441431B1 (en) | 2020-06-01 | 2022-11-24 | Method to recover spent hydroprocessing catalyst activity |
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| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US16/889,121 US11389790B2 (en) | 2020-06-01 | 2020-06-01 | Method to recover spent hydroprocessing catalyst activity |
| US16/889,121 | 2020-06-01 |
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| Publication Number | Publication Date |
|---|---|
| WO2021247065A1 true WO2021247065A1 (en) | 2021-12-09 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2020/054337 Ceased WO2021247065A1 (en) | 2020-06-01 | 2020-10-06 | Method to recover spent hydroprocessing catalyst activity |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US11389790B2 (en) |
| SA (1) | SA522441431B1 (en) |
| WO (1) | WO2021247065A1 (en) |
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| Publication number | Publication date |
|---|---|
| US11389790B2 (en) | 2022-07-19 |
| SA522441431B1 (en) | 2024-02-28 |
| US20210370283A1 (en) | 2021-12-02 |
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