EP3221432A1 - Hydroprocessing for distillate production - Google Patents
Hydroprocessing for distillate productionInfo
- Publication number
- EP3221432A1 EP3221432A1 EP15816906.0A EP15816906A EP3221432A1 EP 3221432 A1 EP3221432 A1 EP 3221432A1 EP 15816906 A EP15816906 A EP 15816906A EP 3221432 A1 EP3221432 A1 EP 3221432A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- hydrotreating
- stage
- catalyst
- less
- metal
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
Classifications
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G45/00—Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds
- C10G45/44—Hydrogenation of the aromatic hydrocarbons
- C10G45/46—Hydrogenation of the aromatic hydrocarbons characterised by the catalyst used
- C10G45/48—Hydrogenation of the aromatic hydrocarbons characterised by the catalyst used containing nickel or cobalt metal, or compounds thereof
- C10G45/50—Hydrogenation of the aromatic hydrocarbons characterised by the catalyst used containing nickel or cobalt metal, or compounds thereof in combination with chromium, molybdenum or tungsten metal, or compounds thereof
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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
- B01J23/70—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper
- B01J23/76—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper combined with metals, oxides or hydroxides provided for in groups B01J23/02 - B01J23/36
- B01J23/84—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper combined with metals, oxides or hydroxides provided for in groups B01J23/02 - B01J23/36 with arsenic, antimony, bismuth, vanadium, niobium, tantalum, polonium, chromium, molybdenum, tungsten, manganese, technetium or rhenium
- B01J23/85—Chromium, molybdenum or tungsten
- B01J23/88—Molybdenum
- B01J23/882—Molybdenum and cobalt
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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
- B01J23/70—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper
- B01J23/76—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper combined with metals, oxides or hydroxides provided for in groups B01J23/02 - B01J23/36
- B01J23/84—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper combined with metals, oxides or hydroxides provided for in groups B01J23/02 - B01J23/36 with arsenic, antimony, bismuth, vanadium, niobium, tantalum, polonium, chromium, molybdenum, tungsten, manganese, technetium or rhenium
- B01J23/85—Chromium, molybdenum or tungsten
- B01J23/88—Molybdenum
- B01J23/883—Molybdenum and nickel
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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
- B01J23/70—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper
- B01J23/76—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper combined with metals, oxides or hydroxides provided for in groups B01J23/02 - B01J23/36
- B01J23/84—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper combined with metals, oxides or hydroxides provided for in groups B01J23/02 - B01J23/36 with arsenic, antimony, bismuth, vanadium, niobium, tantalum, polonium, chromium, molybdenum, tungsten, manganese, technetium or rhenium
- B01J23/85—Chromium, molybdenum or tungsten
- B01J23/888—Tungsten
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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
- B01J23/70—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper
- B01J23/76—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper combined with metals, oxides or hydroxides provided for in groups B01J23/02 - B01J23/36
- B01J23/84—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper combined with metals, oxides or hydroxides provided for in groups B01J23/02 - B01J23/36 with arsenic, antimony, bismuth, vanadium, niobium, tantalum, polonium, chromium, molybdenum, tungsten, manganese, technetium or rhenium
- B01J23/85—Chromium, molybdenum or tungsten
- B01J23/888—Tungsten
- B01J23/8885—Tungsten containing also molybdenum
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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
- B01J37/00—Processes, in general, for preparing catalysts; Processes, in general, for activation of catalysts
- B01J37/20—Sulfiding
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G35/00—Reforming naphtha
- C10G35/04—Catalytic reforming
- C10G35/06—Catalytic reforming characterised by the catalyst used
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G45/00—Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds
- C10G45/02—Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds to eliminate hetero atoms without changing the skeleton of the hydrocarbon involved and without cracking into lower boiling hydrocarbons; Hydrofinishing
- C10G45/04—Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds to eliminate hetero atoms without changing the skeleton of the hydrocarbon involved and without cracking into lower boiling hydrocarbons; Hydrofinishing characterised by the catalyst used
- C10G45/06—Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds to eliminate hetero atoms without changing the skeleton of the hydrocarbon involved and without cracking into lower boiling hydrocarbons; Hydrofinishing characterised by the catalyst used containing nickel or cobalt metal, or compounds thereof
- C10G45/08—Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds to eliminate hetero atoms without changing the skeleton of the hydrocarbon involved and without cracking into lower boiling hydrocarbons; Hydrofinishing characterised by the catalyst used containing nickel or cobalt metal, or compounds thereof in combination with chromium, molybdenum, or tungsten metals, or compounds thereof
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G47/00—Cracking of hydrocarbon oils, in the presence of hydrogen or hydrogen- generating compounds, to obtain lower boiling fractions
- C10G47/02—Cracking of hydrocarbon oils, in the presence of hydrogen or hydrogen- generating compounds, to obtain lower boiling fractions characterised by the catalyst used
- C10G47/06—Sulfides
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G65/00—Treatment of hydrocarbon oils by two or more hydrotreatment processes only
- C10G65/02—Treatment of hydrocarbon oils by two or more hydrotreatment processes only plural serial stages only
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G65/00—Treatment of hydrocarbon oils by two or more hydrotreatment processes only
- C10G65/02—Treatment of hydrocarbon oils by two or more hydrotreatment processes only plural serial stages only
- C10G65/04—Treatment of hydrocarbon oils by two or more hydrotreatment processes only plural serial stages only including only refining steps
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G65/00—Treatment of hydrocarbon oils by two or more hydrotreatment processes only
- C10G65/02—Treatment of hydrocarbon oils by two or more hydrotreatment processes only plural serial stages only
- C10G65/04—Treatment of hydrocarbon oils by two or more hydrotreatment processes only plural serial stages only including only refining steps
- C10G65/08—Treatment of hydrocarbon oils by two or more hydrotreatment processes only plural serial stages only including only refining steps at least one step being a hydrogenation of the aromatic hydrocarbons
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G65/00—Treatment of hydrocarbon oils by two or more hydrotreatment processes only
- C10G65/02—Treatment of hydrocarbon oils by two or more hydrotreatment processes only plural serial stages only
- C10G65/12—Treatment of hydrocarbon oils by two or more hydrotreatment processes only plural serial stages only including cracking steps and other hydrotreatment steps
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G67/00—Treatment of hydrocarbon oils by at least one hydrotreatment process and at least one process for refining in the absence of hydrogen only
- C10G67/02—Treatment of hydrocarbon oils by at least one hydrotreatment process and at least one process for refining in the absence of hydrogen only plural serial stages only
- C10G67/04—Treatment of hydrocarbon oils by at least one hydrotreatment process and at least one process for refining in the absence of hydrogen only plural serial stages only including solvent extraction as the refining step in the absence of hydrogen
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G69/00—Treatment of hydrocarbon oils by at least one hydrotreatment process and at least one other conversion process
- C10G69/02—Treatment of hydrocarbon oils by at least one hydrotreatment process and at least one other conversion process plural serial stages only
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G69/00—Treatment of hydrocarbon oils by at least one hydrotreatment process and at least one other conversion process
- C10G69/02—Treatment of hydrocarbon oils by at least one hydrotreatment process and at least one other conversion process plural serial stages only
- C10G69/08—Treatment of hydrocarbon oils by at least one hydrotreatment process and at least one other conversion process plural serial stages only including at least one step of reforming naphtha
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- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10M—LUBRICATING COMPOSITIONS; USE OF CHEMICAL SUBSTANCES EITHER ALONE OR AS LUBRICATING INGREDIENTS IN A LUBRICATING COMPOSITION
- C10M101/00—Lubricating compositions characterised by the base-material being a mineral or fatty oil
- C10M101/02—Petroleum fractions
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G2300/00—Aspects relating to hydrocarbon processing covered by groups C10G1/00 - C10G99/00
- C10G2300/10—Feedstock materials
- C10G2300/1037—Hydrocarbon fractions
- C10G2300/1048—Middle distillates
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- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G2300/00—Aspects relating to hydrocarbon processing covered by groups C10G1/00 - C10G99/00
- C10G2300/20—Characteristics of the feedstock or the products
- C10G2300/201—Impurities
- C10G2300/202—Heteroatoms content, i.e. S, N, O, P
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G2300/00—Aspects relating to hydrocarbon processing covered by groups C10G1/00 - C10G99/00
- C10G2300/20—Characteristics of the feedstock or the products
- C10G2300/30—Physical properties of feedstocks or products
- C10G2300/301—Boiling range
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G2400/00—Products obtained by processes covered by groups C10G9/00 - C10G69/14
Definitions
- U.S. Patents 8,722,563 and 8,722,564 describe multimetallic hydroprocessing catalysts prepared by forming a catalyst precursor and then heating the catalyst precursor to form the catalyst.
- the multimetallic catalysts are described as having improved activity for hydrodenitrogenation of various types of feeds.
- U.S. Patent 6,582,590 and U.S. Patent 6,929,738 describe various types of processing sequences that include hydroprocessing in the presence of a bulk multimetallic catalyst. The processes are described as being suitable for production of various product fractions, including distillate fuels.
- a hydroprocessing process comprising: reacting a teedstream having a sulfur content of at least about 3000 wpprn, or at least about 4000 wppm, or at least about 5000 vvppm (such as up to about 50000 wppm), and a T90 boiling point of about 900°F (482°C) or less, in a first hydrotreating stage in the presence of a hydrogen-containing treat gas and in the presence of at least one first stage hydrotreating catalyst, the first hydrotreating stage being operated at first stage hydrotreating conditions, to produce a first liquid effluent having a sulfur content of about 5000 wppm or less, or about 4000 wppm or less, or about 3000 wppm or less, the sulfur content of the first liquid effluent being less than the sulfur content of the feedstream; separating the first liquid effluent to produce a first vapor phase stream and a first liquid product stream, the first liquid product stream optionally having
- a hydroprocessing process comprising: reacting a feedstream having a T90 boiling point of about 900°F (482°C) or less in a first hydrotreating stage in the presence of a hydrogen-containing treat gas and in the presence of at least one first stage hydrotreating catalyst, the first hydrotreating stage being operated at first stage hydrotreating conditions, to produce a first liquid effluent; separating at least a portion of the first liquid effluent to produce a first vapor phase stream and a first liquid product stream, the first liquid product stream having a sulfur content of about 1000 wppm to about 20,000 wppm, the first liquid product stream having a) a T10 boiling point of at least about 350°F (177°C), b) a T90 boiling point of about 850°F (454°C) or less, or c) a combination thereof; reacting at least a portion of the first liquid product stream in a second hydrotreating stage in the presence of a hydrogen-containing treat
- the second stage hydrotreating conditions being effective for conversion of about 10 wt% or less of the at least a portion of the first liquid product stream relative to a conversion temperature of about 350°F (177°C); and separating at least a portion of the second iiquid effluent to produce a second vapor phase stream and a second liquid product stream, the second liquid product stream having a sulfur content of about 250 wppm or less, or about 100 wppni or less.
- FIG. 1 schematically shows an example of a configuration suitable for processing a feed to produce distillate boiling range products.
- FIG. 2 schematically shows an example of a configuration suitable for processing a feed to produce distillate boiling range products.
- a distillate boiling range feed having an elevated content of sulfur and/or nitrogen can be hydrotreated using at least two hydrotreating stages with intermediate separation to produce a hydrotreated distillate boiling range product with a reduced or minimized aromatics content.
- a mixed metal catalyst formed from a suitable precursor can be used during the hydrotreating.
- a mixed metal catalyst formed from a suitable precursor can provide an unexpectedly superior activity for aromatic saturation.
- a still further unexpected remedi can be achieved by combining a multi-stage hydrotreating process with intermediate separation with hydrotreating in the presence of a mixed metal catalyst formed from a suitable precursor.
- Some feeds that have an appropriate boiling range for use as a distillate fuel correspond to feeds with both a substantial content of heteroatoms, such as sulfur and nitrogen, and a substant al content of aromatic compounds.
- the aromatic compounds can optionally include multi-ring aromatic compounds. Such aromatic compounds have a high density relative to aliphatic compounds.
- volume swell can be economically valuable for distillate fuel products, due to the fact that many types of distillate fuel are sold on a volume basis.
- volume swell By increasing the volume of distillate fuel corresponding to a given number of carbon atoms, the overall yield of distillate fuel from a feedstock can be increased. It is noted that the benefit from volume swell can be dependent on the ability to increase hydrogenation of the feed without increasing conversion of the distillate boiling range feed to naphtha boiling range products.
- the amount of aromatic saturation that occurs during hydrotreatment can be suppressed for feeds that have elevated contents of sulfur and/or nitrogen.
- cycle oils and other cracked distillate feeds can have sulfur contents of at least about 3000 wppm or greater, such as about 5000 wppm or greater, or even about 10000 wppm or greater.
- a conventional hydrotreating process can be suitable for reducing the sulfur content of such a feed to a desired level, such as about 500 wppm or less, or about 250 wppm or less, or about 100 wppm or less.
- the H?S generated during hydrotreatment can tend to suppress the aromatic saturation activity of a hydrotreating catalyst. This can result in an increased level of aromatics in the hydrotreated product.
- a conventional distillate hydrotreater that does not have interstage separation
- the downstream stage(s) / catalyst bed(s) / portions of a catalyst bed are exposed to the feed in the presence of a treat gas that can contain at least about 1 vol% 13 ⁇ 4S, or at least about 2 vol% H 2 S, depending on the amount of sulfur initially present in the feed.
- a treat gas that can contain at least about 1 vol% 13 ⁇ 4S, or at least about 2 vol% H 2 S, depending on the amount of sulfur initially present in the feed.
- the downstream portions of the distillate hydro treating system effectively receive a treat gas having an H 2 S content of at least about 1 vol% or more.
- This H 2 S content in the downstream portions of a conventional distillate hydrotreater can suppress the activity of the downstream portions of the hydrotreating catalyst for both desulfurization and aromatic saturation activity.
- a catalyst and/or bydroprocessing conditions have been identified that allow for increased or improved aromatic saturation during hydrotreatment of a distillate feed that contains elevated levels of sulfur.
- Use of a catalyst and/or process conditions that allow for improved aromatic saturation can allow for production of increased volumes of distillate fuels while reducing or minimizing the amount of "overcracking" or other excess conversion of a feed. In some aspects, this can allow processing conditions to be selected based on a desired level of heteroatom removal while also providing the volume swell benefit that comes from increased aromatic saturation.
- Volume swelling in a product can be characterized in any convenient manner, such as by directly measuring the volume, measuring the specific gravity of a product, or by measuring the API gravity of a product.
- Volume swelling due to processing a feed as described herein can generally lead to an increase in volume of about 0.25 vol% to about 2.5 vol% (or possibly more). Although an increase in volume of less than 1 vol% may appear to be small, due to the size of typical commercial processing units, and based on the typical continuous (or near-continuous) operation schedule of such commercial processing units, an increase in volume of a few tenths of a percent for a distillate product can correspond to a substantial and significant increase in total product generated and/or in commercial value generated over time.
- the methods for distillate hydrotreating can include use of a catalyst formed from a catalyst precursor composition comprising at least one metal from Group 6 of the Periodic Table of the Elements, at least one metal from Groups 8-10 of the Periodic Table of the Elements, and a reaction product formed from (i) a first organic compound containing at least one amine group and at least 10 carbons or (ii) a second organic compound containing at least one carboxylic acid group and at least 1 0 carbons, but not both (i) and (ii).
- the process can use a catalyst formed from a catalyst precursor composition comprising at least one metal from Group 6 of the Periodic Table of the Elements, at least one metal from Groups 8-10 of the Periodic Table of the Elements, and a reaction product formed from (i) a first organic compound containing at least one amine group, and (ii) a second organic compound separate from said first organic compound and containing at least one carboxylic acid group.
- this aspect of the present invention relates to use of a catalyst formed from a catalyst precursor composition comprising at least one metal from Group 6 of the Periodic Table of the Elements, at least one metal from Groups 8-10 of the Periodic Table of the Elements, and a condensation reaction product formed from (i) a first organic compound containing at least one first functional group, and (ii) a second organic compound separate from said first organic compound and containing at least one second functional group, wherein said first functional group and said second functional group are capable of undergoing a condensation reaction and/or a (decomposition) reaction causing an additional unsaturation to form an associated product.
- the process can use a catalyst formed from a catalyst precursor composition comprising at least one metal from Group 6 of the Periodic Table of the Elements, at least one metal from Groups 8-10 of the Periodic Table of the Elements, and a reaction product comprising an amide group.
- the reaction product is formed prior to incorporation into the catalyst precursor.
- the reaction product is an amide-containing reaction product formed from an ex-situ reaction of (i) a first organic compound containing at least one amine group, and (ii) a second organic compound separate from said first organic compound and containing at least one carboxylic acid group.
- a reaction system including a plurality of reaction stages with intermediate separation for removal of gases can be used to produce a hydrotreated distillate product with reduced aromatic content by processing a distillate feed in the presence of a conventional hydrotreating catalyst and/or a mixed metal catalyst.
- One or more initial stages can be used to reduce the sulfur from an elevated amount to an amount less than about 5000 wppm, such as less than about 3000 wppm.
- Gases can be separated from the effluent of the initial stages to reduce or minimize the H 2 S and/or NHU content prior to one or more additional hydrotreating stages. Reducing or minimizing the H S content can allow for increased aromatic saturation activity in the additional hydrotreating stages.
- methods are provided for improving the yield of distillate products from hydrotreatment of distillate feedstocks and/or heavier feedstocks that have elevated sulfur content.
- suitable feedstocks can include, but are not limited to, atmospheric gas oils, vacuum gas oil feeds, cycle oils, and/or other feeds (such as cracked feeds) having a similar type of boiling range, during the production of distillate fuels.
- the methods can involve stripping of gases to separate out contaminant gases (such as H 2 S and/or NHU) during hydrotreatment of a feed. This can allow for an improved yield of distillate products at a desired level of heteroatom removal.
- the improved yield of distillate can he achieved while reducing or minimizing production of lower boiling compounds, such as light ends or naphtha boilmg range products.
- the improved yield can be based in part on increased volume swell of the distillate products due to having a reduced or minimized amount of aromatics in the resulting distillate products.
- suitable feeds can include raw virgin distillate feeds, such as straight run light vacuum gas oils, and catalytically cracked feeds, such as distillate boiling range cycle oils produced during fluid catalytic cracking or coker distillate feeds.
- feedstocks include whole and reduced petroleum crudes, atmospheric and vacuum residua, propane deasphalted residua, e.g., brightstock, cycle oils, FCC tower bottoms, gas oils, including atmospheric and vacuum gas oils and coker gas oils, light to heavy distillates including raw virgin distillates, hydrocrackates, hydrotreated oils, dewaxed oils, slack waxes, Fischer-Tropseh waxes, raffinates, and mixtures thereof.
- gas oils including atmospheric and vacuum gas oils and coker gas oils
- light to heavy distillates including raw virgin distillates, hydrocrackates, hydrotreated oils, dewaxed oils, slack waxes, Fischer-Tropseh waxes, raffinates, and mixtures thereof.
- distillate boiling range is defined as 350°F (177°C) to 700°F (371°C).
- Distillate boiling range products can include products suitable for use as kerosene products (including jet fuel products) and diesel products, such as premium diesel or winter diesel products. Such distillate boiling range products can be suitable for use directly, or optionally after further processing.
- the lubricant boilmg range is defmed as 700 C F (371°C) to 950°F (482°C) and the naphtha boiling range is defined as 100°F (37°C) to 350°F (177°C).
- One way of defining a feedstock is based on the boiling range of the feed.
- One option for defining a boiling range is to use an initial boiling point for a feed and/or a final boiling point for a feed.
- Another option, which in some instances may provide a more representative description of a feed is to characterize a feed based on the amount of the feed that boils at one or more temperatures.
- the amount of a feed that boils at a given temperature can be referred to as a fractional weight boiling point.
- a "T5" boilmg point for a feed is defined as the temperature at which 5 wt% of the feed will boil off.
- a "T95" boilmg point is a temperature at which 95 wt% of the feed will boil
- a "T99.5" boiling point is a temperature at which 99.5 wt% of the feed will boil.
- a distillate boiling range feedstock can correspond to a feed where at least a substantial portion of the feed has a boiling point in the distillate boiling range
- a distil late boiling range feedstock can have a T20 boiling point, or a T! O boiling point, or a T5 boiling point of at least about 350°F (177°C), or at least about 400°F (204°C), or at least about 450°F (232°C).
- a distillate boilmg range feedstock can have a T95 boilmg point, or a T90 boiling point, or a T75 boiling point of about 900°F (482°C) or less, or about 850°F (454°C) or less, or about 800°F (427°C) or less, or about 750°F (399°C) or less, or about 700°F (371°C) or less.
- a distillate boiling range feedstock can have two or more of the above fractional weight boiling points, or three or more of the above fractional weight boiling points, or any other convenient combination.
- distillate boiling range feedstocks having two or more of the above fractional weight boilmg points include feeds with a T5 boiling point of at least about 350°F (177°C) and a T20 boiling point of at least about 450°F (232°C), or a T5 boiling point of at least about 400°F (204°C) and a T95 boiling point of 850°F (454°C) or less, or another convenient combination. It is noted that all combinations of explicitly recited fractional weight boiling points are also explicitly contemplated in conjunction with each other to provide distillate boi ling range feedstocks having two or more of the above fractional weight boiling points, or three or more of the above fractional weight boiling points.
- a distillate boiling range feedstock containing high levels of sulfur and/'or nitrogen can be passed into one or more hydrodesulfurization reaction st ges to remove sulfur and nitrogen.
- Suitable distillate boiling range feedstocks can be feeds containing at least about 3000 wppm sulfur, or at least about 4000 wppm sulfur, or at least about 5000 wppm sulfur, or at least about 7500 wppm sulfur, or at least about 10,000 wppm sulfur, or at least about 15,000 wppm sulfur, or at least about 20,000 wppm sulfur, such as up to about 50,000 wppm sulfur.
- a feed with a higher boilmg range can be used, such as a feed with an initial boiling point of at least about 650°F (343°C), or at least about 700°F (371°C), or at least about 750°F (399°C).
- a feed may be characterized using a T5 boiling point, such as a feed with a T5 boiling point of at least about 650°F (343°C), or at least about 700°F (371 °C), or at least about 750°F (399°C).
- Such a feed can have a final boiling point of about 1150°F (621°C), or about 1100°F (593°C) or less, or about 1050°F (566°C) or less.
- such a feed may be characterized using a T95 boiling point, such as a feed with a T95 boiling point of about 1150°F (621°C), or about 1100°F (593°C) or less, or about 1050°F (566°C) or less.
- a T95 boiling point such as a feed with a T95 boiling point of about 1150°F (621°C), or about 1100°F (593°C) or less, or about 1050°F (566°C) or less.
- the aromatics content of the feed prior to hydroprocessing can be at least about 30 wt% aromatics, or at least about 40 wt%, or at least about 50 wt%, or at least about 60 wt%, or at least about 70 wt%, such as up to about 80 wt% or more or up to about 90 wt% or more.
- the aromatics content of the distillate boiling range liquid product from the final hydrotreating stage can be about 60 wt% or less, or about 50 wt% or less, or about 40 wt% or less, or about 30 wt% or less.
- Each of the above upper bounds for the aromatics content is explicitly contemplated herein in combination with each of the above lower bounds for the aromatics content.
- the content of multi-ring aromatics in the feed prior to hydroprocessing can be at least about 20 wt% multi-ring aromatics, or at least about 25 wt%, or at least about 30 wt%, or at least about 35 wt%, or at least about 40 wt%, or at least about 45 wt%, or at least about 50 wt%, such as up to about 60 wt% or more.
- the multi-ring aromatics content of the distillate boiling range liquid product from the final hydrotreating stage can be about 10 wt% or less, or about 7.5 wt% or less, or about 5 wt% or less, or about 3 wt% or less.
- Each of the above upper bounds for the multi-ring aromatics content is explicitly contemplated herein in combination with each of the above lower bounds for the multi-ring aromatics content.
- a biocomponent feedstock refers to a hydrocarbon feedstock derived from a biological raw material component, from biocomponent sources such as vegetable, animal, fish, and/or algae.
- biocomponent sources such as vegetable, animal, fish, and/or algae.
- vegetable fats/oils refer generally to any plant based material, and can include fats/oils derived from a source such as plants of the genus Jatropha.
- the biocomponent sources can include vegetable fats/oils, animal fats/oils, fish oils, pyrolysis oils, and algae lipids/oils, as well as components of such materials, and in some embodiments can specifically include one or more type of lipid compounds.
- Lipid compounds are typically biological compounds that are insoluble in water, but soluble in nonpolar (or fat) solvents. Non-limiting examples of such solvents include alcohols, ethers, chloroform, alkyl acetates, benzene, and combinations thereof.
- methods are provided for improving the yield of distillate products from hydrotreatment of distillate feedstocks and/or heavier feedstocks that have elevated sulfur content.
- suitable feedstocks can include, but are not limited to, atmospheric gas oils, vacuum gas oil feeds, cycle oils, and/or other feeds (such as cracked feeds) having a similar type of boiling range, during the production of distillate fuels.
- the methods can involve stripping of gases to separate out contaminant gases (such as H 2 S and/or NH 3 ) during hydrotreatment of a feed. This can allow for an improved yield of distillate products at a desired level of heteroatom removal.
- the improved yield of distillate can be achieved while reducing or minimizing production of lower boiling compounds, such as light ends or naphtha boiling range products.
- the improved yield can be based in part on increased volume swel l of the distillate products due to having a reduced or minimized amount of aromatics in the resulting distillate products.
- a feed can be hydrodesulfurized in a first stage, which contains one or more reaction zones, in the presence of hydrogen and a first hydrotreating catalyst under hydrodesulfurizing conditions.
- the product stream can then be passed to a separation zone wherein a vapor phase stream and a liquid phase (product) stream are produced.
- the liquid phase product stream is a passed to a second hydrodesulfurization stage, which contains at least one reaction zone, where it is further hydrodesulfurized in the presence of hydrogen and a second hydrodesulfurization catalyst.
- the liquid product stream from the second hydrodesulfurization stage is passed to a second separation zone wherein a vapor product stream is collected for further processing or blending.
- the liquid product stream from the second hydrodesulfurization zone can be passed to a third reaction stage whic is operated in the presence of a dewaxing catalyst, a hydrogenation catalyst, or another hydrotreating catalyst.
- the liquid product stream from the first hydrodesulfurization zone can be passed to an additional intermediate hydrodesulfurization stage between the first and second stage. It is within the scope of this invention that at least a portion of the vapor product stream from either or both of the first and second reaction stages can be recycled to the first reaction stage.
- the vapor product stream from the first reaction stage and'Or the second reaction stage is not recycled to the second reaction stage.
- the vapor product stream from a hydrotreating reaction stage can typically contain H 2 S and/or NH 3 . Recycling such a stream to the second reaction stage could reduce or minimize the desired additional aromatic saturation that can provide volume swell of the hydrotreated distillate product.
- a reaction system can include at least two hydrotreatment stages.
- Each hydrotreatment stage can include a hydrotreating catalyst, such as a conventional hydrotreating catalyst, a mixed metal catalyst formed from a suitable precursor, or a combination thereof.
- a gas-liquid separation can be performed between the hydrotreatment stages to reduce or minimize the content of contaminant gases in the second hydrotreatment stage.
- reaction stages can be used, each containing one or more reaction zones, with each zone containing at least one bed of catalyst.
- the first two reaction stages can contain hydrodesulfurization catalysts and the third reaction stage (and any further downstream stages) can contain a hydrogenation catalyst, a dewaxing catalyst, a hydrocracking catalyst, and/or a hydrotreating catalyst.
- Each reaction stage can optionally further include a mixed metal catalyst.
- the mixed metal catalyst can serve as the hydrodesulfurization catalyst in a stage, or the mixed metal catalyst can be present in addition to a hydrodesulfurization catalyst (or hydrogenation catalyst or dewaxing catalyst or hydrocracking catalyst).
- the feedstock introduced into the first reaction stage can be a distillate boiling range feedstock.
- One suitable type of feedstock can be a distillate boiling range feedstock from an atmospheric distillation tower, such as a raw virgin petroleum distillate.
- Another example of a suitable feedstock can be a cracked feedstock, such as a light cycle oil from a fluid catalytic cracking process.
- Such feedstocks can contain (for example) at least about 3000 wppm sulfur, or at least about 4000 wppm sulfur, or at least about 5000 wppm sulfur, or at least about 10,000 wppm sulfur, or at least about 15,000 wppm sulfur, and optionally can further contain a relatively high nitrogen content.
- a feed having a boiling range suitable for production of lubricant base oils can be used in addition to or in place of a distillate boiling range feed.
- the feed product stream can contain from about 500 to about 20000 wppm sulfur, or about 500 to about 5000 wppm, or about 500 to about 3000 wppm, or about 750 to about 20000 wppm, or about 750 to about 5000 wppm, or about 750 to about 3000 wppm, or about 1000 to about 20000 wppm, or about 1000 to about 5000 wppm, or about 1000 to about 3000 wppm, or about 1500 to about 20000 wppm, or about 1500 to about 5000 wppm, or about 1500 to about 3000 wppm.
- This amount of sulfur removal can correspond to removal of about 40% to about 80% of the sulfur initially present in the feedstock, and optionally can correspond to removal of about 40% to about 70% of the sulfur, or about 40% to about 60%, It is preferred that at least one of the reaction zones can contain a bed of the mixed metal catalyst.
- the reactor of the first and/or second hydrodesuifurization stage can contain a stacked bed arrangement wherein a conventional hydrodesuifurization catalyst comprises one or more reaction zones and a mixed metal catalyst comprises the other one or more reaction zones. It is preferred that if a conventional hydrodesuifurization catalyst and a mixed metal catalyst are used, the conventional catalyst can be in the upstream reaction zone or zones. It is preferred that the mixed metal catalyst is present in at least the second hydrodesuifurization stage.
- the plurality of reaction stages can correspond to two reaction stages, with the second reaction stage preferably containing the mixed metal catalyst.
- the reaction product is passed to a separation zone where a vapor phase product stream and a liquid phase product stream is produced.
- the liquid phase product stream (having a reduced sulfur content) can then be introduced into the second hydrodesulfurization stage, which also contains one or more reaction zones.
- This second hydrodesulfurization stage like the first, can contain, in one or more of its reaction zones the mixed metal catalyst. If present, the other catalyst can be a conventional hydrodesulfurization catalyst.
- the product stream is passed to a second separation zone wherein a vapor phase and liquid phase product streams are produced.
- the resulting liquid phase product stream can then contain less than about 150 wppm sulfur, or less than about 100 wppm, or less than about 50 wppm sulfur, or less than about 25 wppm sulfur, or less than about 10 wppm sulfur.
- This twice hydrodesulfurized product stream can optionally be passed to a third reaction stage.
- the twice hydrodesulfurized liquid product stream can be reacted in the presence of hydrogen and a catalyst capable of further reducing the sulfur and nitrogen levels and hydrogenating aromatics.
- the sulfur level of the final product stream can be less than about 10 wppm, preferably less than about 5 wppm, and more preferably less than about 1 wppm sulfur.
- the third reaction stage can contain, in at least one reaction zone, a hydrogenation catalyst and optional ly the mixed metal catalyst.
- the third reaction stage can include a dewaxing catalyst.
- FIGS. 1 and 2 provide a comparison between a conventional hydrotreating configuration and a hydrotreating configuration suitable for increasing the amount of volume swell during processing of a distillate boiling range feed to form a distillate boiling range product.
- suitable feedstocks can include (but are not limited to) distillate boiling range feedstocks, gas oil (atmospheric and/or vacuum) boiling range feedstocks, or another type of feedstock having a T10 boiling point of at least about 350 C F (177°C) and at least about 3000 wppm of sulfur prior to hydrotreatment.
- a feed 105 is hydrotreated in multiple stages for removal of sulfur and/or nitrogen.
- the feed 105 can be hydrotreated in two stages (and/or reactors) using hydrotreatment stage (and/or reactor) 110 and hydrotreatment stage (and/or reactor) 120.
- the effluent 115 from hydrotreatment stage 110 is cascaded into second hydrotreatment stage 120 without stripping or other intermediate separation.
- the second hydrotreatment stage generates a hydrotreated effluent 122 that can include a distillate boiling range product with reduced heteroatom content.
- FIG. 2 shows configuration where the effluent 115 can pass through a separation stage 225 after hydrotreatment stage 1 10 and prior to second hydrotreatment stage 120.
- One option is to use a gas-liquid separator or stripper as separation stage 225.
- contaminant gases 228 formed during hydrotreatment in first hydrotreatment stage 1 10, such as H 2 S and NH 3 , as well as other light ends, can be removed from the effluent prior to second hydrotreatment stage 120.
- the types of configurations exemplified by FIG. 2 can provide at least two types of benefits relative to a configuration similar to FIG. 1 .
- the removal of contaminant gases allows for use of milder reaction conditions in the second hydrotreatment stage while achieving a similar level of contaminant removal and/or feed conversion. This can be due, for example, to the catalysts in the second hydrotreatment stage having a higher effective catalytic activity for desulfurization when catalyst suppressants or poisons (such as contaminant gases) are removed.
- the amount of aromatic saturation performed can be increased due to removal of contaminants that suppress aromatic saturation activity.
- a mixed metal catalyst formed from a suitable precursor can be used in one or more reactors of a convenient reaction system, such as the reaction system schematically represented in FIG. 1.
- a mixed metal catalyst formed from a suitable precursor can be suitable for hydroprocessing under sour conditions, such as for hydrotreating in reactor 110, hydrotreating in reactor 120, or in a combination thereof.
- hydrotreating of a feed can be performed by exposing the feed to a hydrotreating catalyst and/or a mixed metal catalyst formed from a suitable precursor in the presence of hydrogen.
- a hydrogen stream is, therefore, fed or injected into a vessel or reaction zone or hydroprocessing zone in which the hydroprocessing catalyst is located.
- Hydrogen which is contained in a hydrogen-containing "treat gas,” is provided to the reaction zone.
- Hydrotreating conditions can include temperatures of about 200°C to about 450°C, or about 315°C to about 425°C; pressures of about 250 psig (1.8 MPag) to about 5000 psig (34.6 MPag) or about 300 psig (2.1 MPag) to about 3000 psig (20.8 MPag); liquid hourly space velocities (LHSV) of about 0.1 hr "1 to about 10 hr "1 ; and hydrogen treat rates of about 200 scf/B (35,6 m ' Vm “ ') to about 10,000 scf/B ( 1781 m ' Vm " '), or about 500 (89 m 3 /m 3 ) to about 10,000 scf/B (1781 m 3 /m 3 ).
- LHSV liquid hourly space velocities
- the catalysts used for hydrotreatment can include conventional hydroprocessing catalysts, such as those that comprise at least one Group VIII non-noble metal (Columns 8 - 10 of IUPAC periodic table), preferably Fe, Co, and/or Ni, such as Co and/or Ni; and at least one Group VIB metal (Column 6 of IUPAC periodic table), preferably Mo and/or W.
- Such hydroprocessing catalysts can optionally include transition metal sulfides. These metals or mixtures of metals are typically present as oxides or sulfides on refractor metal oxide supports. Suitable metal oxide supports include low acidic oxides such as silica, alumina, titania, silica-titania, and titania- alumina.
- Suitable aluminas are porous aluminas such as gamma or eta having average pore sizes from 50 to 200 A, or 75 to 150 A; a surface area from 100 to 300 m 2 /g, or 150 to 250 niVg; and a pore volume of from 0.25 to 1.0 cm /g, or 0.35 to 0.8 cnrv'g.
- the supports are preferably not promoted with a halogen such as fluorine as this generally increases the acidity of the support.
- Suitable metal catalysts include cobalt/molybdenum (1-10% Co as oxide, 10-40% Mo as oxide), nickel/molybdenum (1-10% Ni as oxide, 10-40% Co as oxide), or nickel/tungsten (1-10% Ni as oxide, 10-40% W as oxide) on alumina, silica, silica-alumina, or titania.
- the bulk metal hydrotreating catalysts used herein comprise about 50 to about 100 wt%, and even more preferably about 70 to about 100 wt%, of at least one Group VIII non-noble metal and at least one Group VIB metal, based on the total weight of the particles, calculated as metal oxides.
- the amount of Group VIB and Group V I I I non-noble metals can easily be determined VIB TEM-EDX.
- Bulk catalyst compositions comprising one Group VII I non-noble metal and two Group VIB metals are preferred. It has been found that in this case, the bulk catalyst particles are sintering-resistant. Thus the active surface area of the bulk catalyst particles is maintained during use.
- the molar ratio of Group VIB to Group VIII non-noble metals ranges generally from 10:1-1 :10 and preferably from 3: 1-1 :3. In the case of a core-shell structured particle, these ratios of course apply to the metals contained in the shell. If more than one Group VIB metal is contained in the bulk catalyst particles, the ratio of the different Group VIB metals is generally not critical. The same holds when more than one Group VIII non-noble metal is applied.
- the molybdenum:tungsten ratio preferably lies in the range of 9: 1-1 :9.
- the Group VIII non-noble metal comprises nickel and/or cobalt.
- the Group VIB metal comprises a combination of molybdenum and tungsten.
- combinations of nickel/molybdenum/tungsten and cobalt/molybdenum/tungsten and nickel/cobalt/moiybdenum/timgsten are used. These types of precipitates appear to be sinter-resistant. Thus, the active surface area of the precipitate is maintained during use.
- the metals are preferably present as oxidic compounds of the corresponding metals, or if the catalyst composition has been sulfided, sulfidic compounds of the corresponding metals.
- the bulk metal hydrotreating catalysts used herein have a surface area of at least 50 rrT/g and more preferably of at least 100 m /g. It is also desired that the pore size distribution of the bulk metal hydrotreating catalysts be approximately the same as the one of conventional hydrotreating catalysts.
- Bulk metal hydrotreating catalysts have a pore volume of 0.05-5 ml/g, or of 0,1 -4 ml/g, or of 0.1-3 ml/g, or of 0.1-2 ml/g determined by nitrogen adsorption. Preferably, pores smaller than 1 mis are not present.
- the bulk metal hydrotreating catalysts can have a median diameter of at least 50 ran, or at least 100 nm.
- the bulk metal hydrotreating catalysts can have a median diameter of not more than 5000 urn., or not more than 3000 um.
- the median particle diameter lies in the range of 0.1-50 ⁇ and most preferably in the range of 0.5-50 um.
- a dewaxing catalyst may also be included in a reaction system for dewaxing a hydrotreated effluent or liquid product.
- the dewaxing catalyst is located in a bed downstream from any hydrotreating catalyst stages and/or any hydrotreating catalyst present in a stage. This can allow the dewaxing to occur on molecules that have already been hydrotreated to remove a significant fraction of organic sulfur- and nitrogen-containing species.
- the effluent from a reactor containing hydrotreating catalyst optionally after a gas-liquid separation, can be fed into a separate stage or reactor containing the dewaxing catalyst.
- Suitable dewaxing catalysts can include molecular sieves such as crystalline aluminosiiicates (zeolites).
- the molecular sieve can comprise, consist essentially of, or be ZSM-5, ZSM-22, ZSM-23, ZSM-35, ZSM-48, zeolite Beta, ZSM-57, or a combination thereof, for example ZSM-23 and/or ZSM-48, or ZSM-48 and/or zeolite Beta.
- molecular sieves that are selective for dewaxing by isomerization as opposed to cracking can be used, such as ZSM-48, zeolite Beta, ZSM-23, or a combination thereof.
- the molecular sieve can comprise, consist essentially of, or be a 10-member ring 1-D molecular sieve.
- Examples include EU-1, ZSM-35 (or fe rierite), ZSM-l ! , ZSM-57, NU-87, SAPO-11, ZSM-48, ZSM-23, and ZSM-22.
- Preferred materials are EU-2, EU-1 1 , ZBM-30, ZSM-48, or ZSM-23.
- ZSM-48 is most preferred.
- a zeolite having the ZSM-23 structure with a silica to alumina ratio of from about 20: 1 to about 40: 1 can sometimes be referred to as SSZ-32.
- the dewaxing catalyst can include a binder for the molecular sieve, such as alumina, titania, silica, silica-alumina, zircoma, or a combination thereof, for example alumina and/or titania or silica and/or zirconia and/or titania.
- a binder for the molecular sieve such as alumina, titania, silica, silica-alumina, zircoma, or a combination thereof, for example alumina and/or titania or silica and/or zirconia and/or titania.
- the amount of metal in the catalyst can be at least 0.1 wt% based on catalyst, or at least 0.15 wt%, or at least 0.2 wt%, or at least 0.25 wt%, or at least 0.3 wt%, or at least 0.5 wt% based on catalyst.
- the amount of metal in the catalyst can be 20 wt% or less based on catalyst, or 10 wt% or less, or 5 wt% or less, or 2.5 wt% or less, or 1 wt% or less.
- the amount of metal can be from 0.1 to 5 wt%, preferably from 0.1 to 2 wt%, or 0.25 to 1.8 wt%, or 0.4 to 1 .5 wt%.
- the metal is a combination of a non-noble Group VIII metal with a Group VI metal
- the combined amount of metal can be from 0.5 wt% to 20 wt%, or 1 wt% to 15 wt%, or 2.5 wt% to 10 wt%.
- a zeolite can be combined with binder in any convenient manner.
- a bound catalyst can be produced by starting with powders of both the zeolite and binder, combining and mulling the powders with added water to form a mixture, and then extruding the mixture to produce a bound catalyst of a desired size. Extrusion aids can also be used to modif the extrusion flow properties of the zeolite and binder mixture.
- the amount of framework alumina in the catalyst may range from 0,1 to 3.33 wt%, or 0.1 to 2.7 wt%, or 0.2 to 2 wt%, or 0.3 to 1 wt%. - 2?
- a binder composed of two or more metal oxides can also be used.
- the weight percentage of the low surface area binder is preferably greater than the weigh t percentage of the higher surface area binder.
- both metal oxides used for forming a mixed metal oxide binder have a sufficiently low surface area, the proportions of each metal oxide in the binder are less important.
- the two metal oxides can be incorporated into the catalyst by any convenient method. For example, one binder can be mixed with the zeolite during formation of the zeolite powder, such as during spray drying. The spray dried zeolite/binder powder can then be mixed with the second metal oxide binder prior to extrusion.
- the de wa ing catalyst is self-bound and does not contain a binder.
- the dewaxing catalyst can comprise, consist essentially of, or be a catalyst that has not been dealuminated.
- the binder for the catalyst can include a mixture of binder materials containing alumina.
- the conditions can include temperatures in the range of about 600°F (343°C) to about 815°F (435°C), hydrogen partial pressures of from about 500 psig to about 3000 psig (3.5 MPag-20.9 MPag), and hydrogen treat gas rates of from about 213 m m 3 to about 1068 m7m 3 (1200 SCF.
- the LHSV can be from about 0.1 h "1 to about 10 h ⁇ l , such as from about 0.5 h ⁇ ! to about 5 K l and/or from about 1 h ⁇ s to about 4 h ⁇ ⁇
- the preferred hydrofinishing catalysts for aromatic saturation can comprise at least one metal having relatively strong hydrogenation function on a porous support.
- the support materials may also be modified, such as by halogenation, or in particular fluorination.
- the metal content of the catalyst is often as high as about 20 weight percent for non-noble metals.
- hydrotreating catalysts as described above can be used as hydrotreating catalysts.
- a preferred hydrofinishing catalyst can mclude a crystalline material belonging to the M41 S class or family of catalysts.
- the M41S family of catalysts are mesoporous materials having high silica content. Examples include MCM-41 , MCM-48 and MCM-50. A preferred member of this class is MCM-41.
- aromatic saturation conditions can include temperatures from about 175°C to about 425°C, or about 200°C to about 425°C, preferably about 225°C to about 325°C, or about 225°C to about 280°C, total pressures from about 500 psig (3.4 MPa) to about 3000 psig (20.7 MPa), preferably about 1500 psig (10.3 MPa) to about 2500 psig (17.2 MPa), and liquid hourly space velocity from about 0.1 hr ⁇ ! to about 5 hr "1 LHSV, preferably about 0.5 hr "1 to about 1.5 hr " 1 .
- Non-limiting examples of supported catalytic metals for hydrocracking catalysts include nickel, nickel-cobalt- molybdenum, cobalt-molybdenum, nickel-tungsten, nickel-molybdenum, and/or nickel-molybdenum-tungsten. Additionally or alternately, hydrocracking catalysts with noble metals can also be used. Non-limiting examples of noble metal catalysts include those based on platinum and/or palladium.
- Support materials which may be used for both the noble and non-noble metal catalysts can comprise a refractory oxide material such as alumina, silica, alumina-silica, kieselguhr, diatomaceous earth, magnesia, zirconia, or combinations thereof, with alumina, silica, alumina-silica being the most common (and preferred, in one embodiment).
- a refractory oxide material such as alumina, silica, alumina-silica, kieselguhr, diatomaceous earth, magnesia, zirconia, or combinations thereof, with alumina, silica, alumina-silica being the most common (and preferred, in one embodiment).
- a hydrocracking catalyst can include a large pore molecular sieve that is selective for cracking of branched hydrocarbons and/or cyclic hydrocarbons.
- Zeolite Y such as uitrastable zeolite Y (USY) is an example of a zeolite molecular sieve that is selective for cracking of branched hydrocarbons and cyclic hydrocarbons.
- the silica to alumina ratio in a USY zeolite can be at least about 10, such as at least about 15, or at least about 25, or at least about 50, or at least about 100.
- the conditions can include temperatures in the range of about 600°F (343°C) to about 815°F (435°C), hydrogen partial pressures of from about 500 psig to about 3000 psig (3.5 MPag-20.9 MPag), liquid hourly space velocities of from about 0.2 h " 3 to about 2 h "1 and hydrogen treat gas rates of from about 213 m i /m > to about 1068 rrrVm " ' (1200 SCF/B to 6000 SCF/B).
- a hydrocracking process performed under non-sour conditions can be performed under conditions similar to those used for sour conditions, or the conditions can be different.
- a non-sour hydrocracking stage can have less severe conditions than a similar hydrocracking stage operating under sour conditions.
- Suitable hydrocracking conditions can include temperatures of about 550°F (288°C) to about 840°F (449°C), hydrogen partial pressures of from about 250 psig to about 5000 psig (1.8 MPag to 34.6 MPag), liquid hourly space velocities of from 0.05 h "1 to 10 h "1 , and hydrogen treat gas rates of from 35.6 m m 3 to 1781 m 3 /m 3 (200 SCF/B to 10,000 SCF/B).
- the conditions can include temperatures in the range of about 600°F (343°C) to about 815°F (435°C), hydrogen partial pressures of from about 500 psig to about 3000 psig (3.5 MPag-20.9 M Pag), liquid hourly space velocities of from about 0.2 h "1 to about 2 h "1 and hydrogen treat gas rates of from about 213 m 3 /m 3 to about 1068 m 3 /m 3 (1200 SCF/B to 6000 SCF/B). ⁇ 7
- a suitable feed can undergo further additional processing, such as dewaxing and/or hydrofinishing and/or aromatic saturation.
- This type of process can be suitable for formation of both distillate fuel and lubricant base oil products with increased yield.
- the term "bulk”, when describing a mixed metal oxide catalyst composition, indicates that the catalyst composition is self-supporting in that it does not require a carrier or support. It is well understood that bulk catalysts may have some minor amount of carrier or support material in their compositions (e.g., about 20 wt % or less, about 15 wt % or less, about 10 wt % or less, about 5 wt % or less, or substantially no carrier or support, based on the total weight of the catalyst composition); for instance, bulk hydroprocessing catalysts may contain a minor amount of a binder, e.g., to improve the physical and/or thermal properties of the catalyst, in contrast, heterogeneous or supported catalyst systems typically comprise a carrier or support onto which one or more catalyticaliy active materials are deposited, often using an impregnation or coating technique. Nevertheless, heterogeneous catalyst systems without a carrier or support (or with a minor amount of carrier or support) are generally referred to as bulk catalyst
- the methods described herein can include use of a catalyst formed from a catalyst precursor composition comprising at least one metal from Group 6 of the Periodic Table of the Elements, at least one metal from Groups 8-10 of the Periodic Table of the Elements, and a reaction product formed from (i) a first organic compound containing at least one amine group and at least 10 carbons or (ii) a second organic compound containing at least one carboxylic acid group and at least 10 carbons, but not both (i) and (ii), wherein the reaction product contains additional unsaturated carbon atoms, relative to (i) the first organic compound or (ii) the second organic compound, wherein the metals of the catalyst precursor composition are arranged in a crystal lattice, and wherein the reaction product is not located within the crystal lattice.
- This catalyst precursor composition can be a bulk metal catalyst precursor composition or a supported metal catalyst precursor composition.
- the reaction product can be obtained by heating the composition (though specifically the amine-containing compound or the carboxyiic acid- containing compound) to a temperature from about 195°C to about 260°C for a time sufficient for the first or second organic compounds to react to form additional in situ unsaturated carbon atoms and/or become more oxidized than the first or second organic compounds, but not for so long that more than 50% by weight of the first or second organic compound is volatilized, thereby forming a catalyst precursor composition that contains in situ formed unsaturated carbon atoms and/or that is further oxidized.
- the catalyst can be formed from the precursor by a process comprising: (a) treating a catalyst precursor composition comprising at least one metal from Group 6 of the Periodic Table of the Elements, at least one metal from Groups 8-10 of the Periodic Table of the Elements, with a first organic compound containing at least one amine group and at least 10 carbon atoms or a second organic compound containing at least one carboxyiic acid group and at least 10 carbon atoms, to form an organical ly treated precursor catalyst composition; and (b) heating said organically treated precursor catalyst composition at a temperature from about 195°C to about 260°C for a time sufficient for the first or second organic compounds to react to form additional in situ unsaturated carbon atoms and/or become more oxidized, but not for so long that more than 50% by weight of the first or second organic compound is volatilized, thereby forming a catalyst precursor composition that contains in situ
- the reaction product can be obtained by heating the composition (though specifically the first or second organic compounds, or the amine-containing or earboxyiic acid-containing compound) to a temperature from about 195°C to about 260°C for a time sufficient to effectuate a dehydrogenation, and'Or an at least partial decomposition, of the first or second organic compound to form an additional unsaturation and/or additional oxidation in the reaction product in situ.
- a bulk mixed metal hydroprocessing catalyst composition can be produced from this bulk mixed metal catalyst precursor composition by su!fiding it under sufficient suifiding conditions, which suifiding should begin in the presence of the in situ additionally unsaturated reaction product (which may result from at least partial decomposition, e.g., via oxidative dehydrogenation in the presence of oxygen and/or via non-oxldative dehydrogenation in the absence of an appropriate concentration of oxygen, of typically- unfunctionalized organic portions of the first or second organic compounds, e.g., of an aliphatic portion of an organic compound and/or through conj ugation/aromatization of unsaturations expanding upon an unsaturated portion of an organic compound).
- unsaturated reaction product which may result from at least partial decomposition, e.g., via oxidative dehydrogenation in the presence of oxygen and/or via non-oxldative dehydrogenation in the absence of an appropriate concentration of oxygen, of typically- unfunctionalized organic portions of the first or second organic compounds, e.g
- this reaction product contains additional unsaturation(s) not present in the first and second organic compounds, e.g., from at least partial decomposition/dehydrogenation at conditions including elevated temperatures
- the presence of the additional unsaturation(s) in any intermediate or final composition can be determined by methods well known in the art, e.g., by FTIR and/or nuclear magnetic resonance ( ! " ( ' NMR) techniques.
- This catalyst precursor composition can be a bulk metal catalyst precursor composition or a heterogeneous (supported) metal catalyst precursor composition.
- this type of aspect relates to use of a catalyst formed from a catalyst precursor composition comprising at least one metal from Group 6 of the Periodic Table of the Elements, at least one metal from Groups 8-10 of the Periodic Table of the Elements, and a condensation reaction product formed from (i) a first organic compound containing at least one first functional group, and (ii) a second organic compound separate from said first organic compound and containing at least one second functional group, wherein said first functional group and said second functional group are capable of undergoing a condensation reaction and/or a (decomposition) reaction causing an additional unsaturation to form an associated product.
- the reaction product can be obtained by heating the composition (such as the condensation reactants, or the amine-containing compound and/or the carboxylic acid-containing compound) to a temperature from about 195°C to about 260°C for a time sufficient for the first and second organic compounds to form a condensation product, such as an amide, and/or an additional (decomposition) unsaturation in situ.
- the composition such as the condensation reactants, or the amine-containing compound and/or the carboxylic acid-containing compound
- a feed can be processed using a catalyst formed from a catalyst precursor composition containing an ex-situ formed reaction product.
- the catalyst can be formed from the precursor by a process comprising: (a) treating a catalyst precursor composition comprising at least one metal from Group 6 of the Periodic Table of the Elements, at least one metal from Groups 8-10 of the Periodic Table of the Elements, with an amide-containing reaction product formed from a first organic compound containing at least one amine group and at least 10 carbon atoms or a second organic compound containing at least one carboxylic acid group and at least 10 carbon atoms, to form an organically treated precursor catalyst composition; and (b) heating said organically treated precursor catalyst composition at a temperature from about 195°C to about 260°C for a time sufficient for the amide-containing reaction product to form additional in situ unsaturated carbon atoms and/or become more oxidized, but not for so long that more than 50% by weight of the first or second organic compound is volatilized, thereby
- the catalyst precursor composition can, in one embodiment, consist essentially of the reaction product containing further unsaturated carbon atoms and/or further oxidation, an oxide form of the at least one metal from Group 6, an oxide form of the at least one metai from Groups 8-10, and optionally about 20 wt % or less of a binder.
- the thermal treatment of the amide-impregnated metai oxide component is carried out by heating the impregnated composition to a temperature and for a time which does not result in gross decomposition of the amide, although additional unsaturation may arise from partial in situ decomposition; the temperature is typically from about 195°C to about 250°C (or optionally about 195°C to about 260°C), but higher temperatures, e.g. in the range of 250 to 280°C, can be used in order to abbreviate the duration of the heating although due care is required to avoid the gross decomposition of the pre-formed amide, as discussed further below.
- the bulk mixed metal hydroprocessing catalyst can be produced from this precursor by sulfiding it with the sulfiding taking place with the amide present on the metal oxide component (i.e., when the thermally treated amide, is substantially present and/or preferably not significantly decomposed by the beginning of the sulfiding step).
- Additional unsaturation may be present in the organic component of the catalyst precursor resulting from a variety of mechanisms including partial decomposition, (e.g., via oxidative dehydrogenation in the presence of oxygen and/or via non-oxidative dehydrogenation in the absence of an appropriate concentration of oxygen), of typically-unflmctionaiized organic portions of the amide and/or through conj gation/aromatization of unsaturations expanding upon an unsaturated portion the amide.
- the treated organic component may also contain additional oxygen in addition to the unsaturation when the treatment is carried out in an oxidizing atmosphere.
- these metals are present in their substantially fully oxidized form, which can typically take the form of simple metal oxides, but which may be present in a variety of other oxide forms, e.g., such as hydroxides, oxyhydroxides, oxycarbonat.es, carbonates, oxytiitrates, oxysulfat.es, or the like, or some combination thereof.
- the Group 6 metal(s) can be Mo and/or W
- the Group 8-10 metal(s) can be Co and/or Ni.
- the atomic ratio of the Group 6 metal(s) to the metal(s) of Groups 8-10 can be from about 2: 1 to about 1 :3, for example from about 5:4 to about 1 :2, from about 5:4 to about 2:3, from about 5:4 to about 3:4, from about 10:9 to about 1 :2, from about 10:9 to about 2:3, from about 10:9 to about 3:4, from about 20: 19 to about 2:3, or from about 20: 19 to about 3:4.
- the composition further comprises at least one metal from Group 5, that at least one metal can be V and/or Nb.
- the mixed metal oxide compositions can exhibit a specific surface area of not more than about 500 m7g, for example not more than about 400 m7g, not more than about 300 m7g, not more than about 250 m7g, not more than about 200 m ' /g, not more than about 175 m ' /g, not more than about 150 m7g, not more than about 125 m 2 /g, or not more than about 100 m 2 /g.
- the mixed metal oxide (slurry) composition after separating and drying the mixed metal oxide (slurry) composition, it can be treated, generally by impregnation, with (i) an effective amount of a first organic compound containing at least one amine group or (ii) an effective amount of a second organic compound separate from the first organic compound and containing at least one carboxyiic acid group, but not both (i) and (ii).
- the first organic compound can comprise at least 10 carbon atoms, for example can comprise from 10 to 20 carbon atoms or can comprise a primary monoamine having from 10 to 30 carbon atoms.
- the second organic compound can comprise at least 10 carbon atoms, for example can comprise from 10 to 20 carbon atoms or can comprise only one carboxylic acid group and can have from 10 to 30 carbon atoms.
- the first organic compound can comprise at least 10 carbon atoms, for example can comprise from 10 to 20 carbon atoms or can comprise a primary monoamine having from 10 to 30 carbon atoms.
- the second organic compound can comprise at least 10 carbon atoms, for example can comprise from 10 to 20 carbon atoms or can comprise only one carboxylic acid group and can have from 10 to 30 carbon atoms.
- the total number of carbon atoms comprised among both the first and second organic compounds can be at least 15 carbon atoms, for example at least 20 carbon atoms, at least 25 carbon atoms, at least 30 carbon atoms, or at least 35 carbon atoms. Although in such embodiments there may be no practical upper limit on total carbon atoms from both organic compounds, in some embodiments, the total number of carbon atoms comprised among both the first and second organic compounds can be 100 carbon atoms or less, for example 80 carbon atoms or less, 70 carbon atoms or less, 60 carbon atoms or less, or 50 carbon atoms or less.
- amine-containing organic compounds can generally include, but are not limited to, hydroxyls, aldehydes, anhydrides, ethers, esters, imines, imides, ketones, thiols (mereaptans), thioesters, and the like, and combinations thereof.
- the amine functional group from the first organic compound can include primary or secondary amines, as mentioned above, but generally does not include tertiary or quaternary amines, as tertiary and quaternary amines tend not to be able to form amides.
- the first organic compound can contain other functional groups besides amines, whether or not they are capable of participating in forming an amide or other condensation reaction product with one or more of the functional groups from second organic compound.
- the first organic compound can comprise an aminoacid, which possesses an amine functional group and a carboxylic acid functional group simultaneously.
- the aminoacid would qualify as only one of the organic compounds, and not both; thus, in such an instance, either an additional amine-containing (first) organic compound would need to be present (in the circumstance where the aminoacid would be considered the second organic compound) or an additional carboxylic ac d-containing (second) organic compound would need to be present (in the circumstance where the aminoacid would be considered the first organic compound).
- amine-containing organic compounds can generally include, but are not limited to, hydroxyls, aldehydes, anhydrides, ethers, esters, irnines, imides, ketones, thiols (mercaptans), thioesters, and the like, and combinations thereof.
- the amine portion of the first organic compound can be a part of a larger functional group in that compound, so long as the amine portion (notably the amine nitrogen and the constituents attached thereto) retains the capability of participating in forming an amide or other condensation reaction product with one or more of the functional groups from second organic compound.
- the first organic compound can comprise a urea, which functional group comprises an amine portion attached to the carbonyl portion of an amide group.
- the urea can be considered functionally as an "amine-containing'' functional group for the purposes of the present invention herein, except in situations where such inclusion is specifically contradicted.
- araine-containing functional groups that may be suitable for satisfying the at least one amine group in the first organic compound can generally include, but are not limited to, hydrazides, sulfonamides, and the like, and combinations thereof.
- organic compounds containing carboxylic acids can include, but are not limited to, primary and/or secondary, linear, branched, and/or cyclic amines, such as triacontanoic acid, octacosanoic acid, hexacosanoic acid, tetracosaiioic acid, docosaiioic acid, erucic acid, docosahexanoic acid, eicosanoic acid, eicosapentanoic acid, arachidonie acid, octadecanoic acid, oleic acid, elaidic acid, stearidonic acid, linoleic acid, aipha-iinolenic acid, hexadecanoic acid, sapienic acid, palmitoieic acid, tetradecanoic acid, myristoleic acid, dodecanoic acid, decanoic acid, nonanoic acid
- the second organic compound can optionally contain other functional groups besides carboxylic acids.
- the second organic compound can comprise an aminoacid, which possesses a carboxylic acid functional group and an amine functional group simultaneously.
- carboxylic acid-containing organic compounds can generally include, but are not limited to, hydroxyls, aldehydes, anhydrides, ethers, esters, imines, imides, ketones, thiols (mercaptans), thioesters, and the like, and combinations thereof.
- the second organic compound can contain no additional amine or alcohol functional groups in addition to the carboxylic acid functional group(s).
- the reactive portion of the second organic compound can be a part of a larger functional group in that compound and/or can be a derivative of a carboxylic acid that behaves similarly enough to a carboxylic acid, such that the reactive portion and/or derivative retains its operability as a Lewis acid.
- a carboxylic acid derivative can include an alkyl carboxylate ester, where the alkyl group does not substantially hinder (over a reasonable time scale) the Lewis acid functionality of the carboxylate portion of the functional group.
- the second organic compound can contain other functional groups besides carboxylic acids, whether or not they are capable of participating in forming an amide or other condensation reaction product with one or more of the functional groups from first organic compound.
- the second organic compound can comprise an aminoacid, which possesses a carboxylic acid functional group and an amine functional group simultaneously.
- the aminoacid would qualify as only one of the organic compounds, and not both; thus, in such an instance, either an additional amiiie-containing (first) organic compound would need to be present (in the circumstance where the aminoacid would be considered the second organic compound) or an additional carboxylic acid-containing (second) organic compound would need to be present (in the circumstance where the aminoacid would be considered the first organic compound).
- carboxylic acid-containing organic compounds can generally include, but are not limited to, hydroxvls, aldehydes, anhydrides, ethers, esters, imines, imides, ketones, thiols (mercaptans), thioesters, and the like, and combinations thereof.
- the reactive portion of the second organic compound can be a part of a larger functional group in that compound and/or can be a derivative of a carboxylic acid that behaves similarly enough to a carboxylic acid in the presence of the amine functional group of the first organic compound, such that the reactive portion and/or derivative retains the capability of participating in forming an amide or other desired condensation reaction product with one or more of the functional groups from first organic compound.
- a carboxylic acid derivative can include an alkyl carboxylate ester, where the alky] group does not substantially hinder (over a reasonable time scale) the condensation reaction between the amine and the carboxylate portion of the ester to form an amide.
- the organic compound(s)/additive(s) and/or the reaction produ ct(s) are not located/incorporated within th e crystal lattice of the mixed metal oxide precursor composition, e.g., instead being located on the surface and/or within the pore volume of the precursor composition and/or being associated with (bound to) one or more metals or oxides of metals in a manner that does not significantly affect the crystalline lattice of the mixed metal oxide precursor composition, as observed through XRD and/or other crystailographic spectra.
- a sulfided version of the mixed metal oxide precursor composition can still have its sulfided form affected by the organic compound(s)/additive(s) and/or the reaction product(s), even though the oxide lattice is not significantly affected.
- one way to attain a catalyst precursor composition containing a decomposition/dehydrogenation reaction product, such as one containing additional unsaturations includes: (a) treating a catalyst precursor composition, which comprises at least one metal from Group 6 of the Periodic Table of the Elements and at least one metal from Groups 8-10 of the Periodic Table of the Elements, with a first organic compound containing at least one amine group or a second organic compound separate from said first organic compound and containing at least one carboxylic acid group, but not both, to form an organically treated precursor catalyst composition; and (b) heating the organically treated precursor catalyst composition at a temperature sufficient and for a time sufficient for the first or second organic compounds to react to form an in situ product containing additional unsaturation (for example, depending upon the nature of the first or second organic compound, the temperature can be from about 195°C to about 260° €, such as from about 200°C to about 250°C), thereby forming the additioiiaily-unsaturated and/or
- the heating step (b) above can be conducted for a sufficiently long time so as to form additional unsaturation (s), which may result from at least partial decomposition (e.g., oxidative and/or non-oxidative dehydrogenation and/or aromatization) of some (typically-unfunctionalized organic) portions of the first or second organic compounds, but generally not for so long that the at least partial decomposition volatilizes more than 50% by weight of the first or second organic compounds.
- at least partial decomposition e.g., oxidative and/or non-oxidative dehydrogenation and/or aromatization
- additional unsaturation(s) formed in situ and present at the point of sulfiding the catalyst precursor composition to form a sulfided (hydroprocessing) catalyst composition can somehow assist in controlling one or more of the following: the size of sulfided crystallites; the coordination of one or more of the metals during sulfidation, such that a higher proportion of the one or more types of metals are in appropriate sites for promoting desired hydroprocessing reactions (such as hydrotreating, hydrodenitrogenation, hydrodesulfurization, hydrodeoxygenatioii, hydiOdemetallation, hydrocracking including selective hydrocracking, hydroisomerization, hydrodewaxmg, and the like, and combinations thereof, and/or for reducing/minimizing undesired hydroprocessing reactions, such as aromatic saturation, hydrogenation of double bonds, and the like, and combinations thereof) than for sulfided catalysts made in the absence of the in situ formed reaction product having additional unsaturation
- one way to attain a catalyst precursor composition containing a condensation reaction product, such as an amide, and/or a reaction product containing additional unsaturations includes: (a) treating a catalyst precursor composition, which comprises at least one metal from Group 6 of the Periodic Table of the Elements and at least one metal from Groups 8-10 of the Periodic Table of the Elements, with a first organic compound containing at least one amine group and a second organic compound separate from said first organic compound and containing at least one carboxylic acid group to form an organically treated precursor catalyst composition; and (b) heating the organically treated precursor catalyst composition at a temperature sufficient and for a time sufficient for the first and second organic compounds to react to form an in situ condensation product and/or an in situ product containing additional unsaturation (for amides made from amines and carboxylic acids, for example, the temperature can be from about 195°C to about 260°C, such as from about 200°C to about 250°C), thereby forming the amide-containing and/or additionally
- the treating step (a) above can comprise one (or more) of three methods: (1) first treating the catalyst precursor composition with the first organic compound and second with the second organic compound; (2) first treating the catalyst precursor composition with the second organic compound and second with the first organic compound; and/or (3) treating the catalyst precursor composition simultaneously with the first organic compound and with the second organic compound.
- the heating step (b) above can be conducted for a sufficiently long time so as to form the amide, but not for so long that the amide so formed substantially decomposes. Additionally or alternately in such advantageous embodiments, the heating step (b) above can be conducted for a sufficiently long time so as to form additional unsaturation(s), which may result from at least partial decomposition (e.g., oxidative and/or non-oxidative dehvdrogenation and/or aromatization) of some (typicaily-unfunctionalized organic) portions of the organic compounds, but generally not for so long that the at least partial decomposition (i) substantially decomposes any condensation product, such as amide, and/or (ii) volatilizes more than 50% by weight of the combined first and second organic compounds.
- at least partial decomposition e.g., oxidative and/or non-oxidative dehvdrogenation and/or aromatization
- in situ formed amide and/or additional unsaturation(s) present at the point of sulfiding the catalyst precursor composition to form a sulfided (hydroprocessing) catalyst composition can somehow assist in controlling one or more of the following: the size of sulfided crystallites; the coordination of one or more of the metals during sulfidation, such that a higher proportion of the one or more types of metals are in appropriate sites for promoting desired hydroprocessing reactions (such as hydrotreating, hydrodemtrogenation, hydrodesulfurization, bydrodeoxygenation, hydrodemetallation, hydrocracking including selective hydrocracking, hydroisomerization, hydrodewaxing, and the like, and combinations thereof and/or for reducing/minimizing undesired hydroprocessing reactions, such as aromatic saturation, hydrogenation of double bonds, and the like, and combinations thereof) than for sulfided catalysts made in the absence of the in situ formed reaction product having an amide (condens
- the in situ reacted catalyst precursor composition can, in one embodiment, consist essentially of the reaction product, an oxide form of the at least one metal from Group 6, an oxi de form of the at least one metal from Groups 8-10, and optionally about 20 wt % or less of a binder (e.g., about 10 wt % or less).
- the organically treated catalyst precursor composition can be heated to a temperature high enough to form the reaction product and optionally but preferably high enough to enable any dehydrogenation/decomposition/condensation byproduct to be easily removed (e.g., in order to drive the reaction equilibrium to the at least partially dehydrogenated/decomposed product and/or condensation product).
- the organically treated catalyst precursor composition can be heated to a temperature low enough so as to substantially retain the reaction product containing the additional unsaturations and/or the condensation product, so as not to significantly decompose the reaction product, and/or so as not to significantly volatilize (more than 50% by weight of) the first and/or second organic compounds (whether reacted or not),
- the heating temperature can be at least about 120 C C, for example at least about 150°C, at least about 165°C, at least about 175°C, at least about 185°C, at least about 195°C, at least about 200°C, at least about 210°C, at least about 220°C, at least about 230°C, at least about 240°C, or at least about 250°C.
- the heating temperature can be not greater than about 400°C, for example not greater than about 375°C, not greater than about 350°C, not greater than about 325°C, not greater than about 300°C, not greater than about 275°C, not greater than about 250°C, not greater than about 240°C, not greater than about 230°C, not greater than about 220° €, not greater than about 210°C, or not greater than about 20Q°C.
- the heating can be conducted in a low- or non-oxidizing atmosphere (and conveniently in an inert atmosphere, such as nitrogen).
- the heating can be conducted in a moderately- or highly-oxidizing environment.
- the heating can include a multi-step process in which one or more heating steps can be conducted in the low- or non- oxidizing atmosphere, in which one or more heating steps can be conducted in the moderately- or highly-oxidizing environment, or both.
- the period of time for the heating in the environment can be tailored to the first or second organic compound, but can typically extend from about 5 minutes to about 168 hours, for example from about 10 minutes to about 96 hours, from about 10 minutes to about 48 hours, from about 10 minutes to about 24 hours, from about 10 minutes to about 18 hours, from about 10 minutes to about 12 hours, from about 10 minutes to about 8 hours, from about 10 minutes to about 6 hours, from about 10 minutes to about 4 hours, from about 20 minutes to about 96 hours, from about 20 minutes to about 48 hours, from about 20 minutes to about 24 hours, from about 20 minutes to about 18 hours, from about 20 minutes to about 12 hours, from about 20 minutes to about 8 hours, from about 20 minutes to about 6 hours, from about 20 minutes to about 4 hours, from about 30 minutes to about 96 hours, from about 30 minutes to about 48 hours, from about 30 minutes to about 24 hours, from about 30 minutes to about 1 8 hours, from about 30 minutes to about 12 hours, from about 30 minutes to about 8 hours, from about 30 minutes to about 6 hours, from about 30 minutes to about
- the amide can be formed prior to impregnation into the metal oxide component of the catalyst precursor by reaction of the amine component and the carboxylic acid component. Reaction typically takes place readily at mildly elevated temperatures up to about 200°C with liberation of water as a by-product of the reaction at temperatures above 100 and usually above 150°C.
- the reactants can usually be heated together to form a melt in which the reaction takes place and the melt impregnated directly into the metal oxide component which is preferably pre-heated to the same temperature as the melt in order to assist penetration into the structure of the metal oxide component.
- the reaction can also be carried out in the presence of a solvent if desired and the resulting solution used for the impregnation step.
- the amide and its heat treated derivative may not be ioeated/mcorporated within the crystal lattice of the mixed metal oxide precursor, e.g., may instead be located on the surface and/or within the pore volume of the precursor and/or be associated with (bound to) one or more metals or oxides of metals in a manner that does not signifi cantly affect the crystalline lattice of the mixed metal oxide precursor composition, as observed through XRD and/or other crystallographic spectra.
- a suifided version of the mixed metal oxide precursor composition can still have its suifided form affected by the organic compound(s)/additive(s) and/or the reaction product(s), even though the oxide lattice is not significantly affected,
- the ratio of the reactive amine and carboxylic acid groups in the two reactants may vary, respectively, from about 1 :4 to about 4: 1 , for example from about 1 :3 to about 3 : 1 or from about 1 :2 to about 2: 1 , It has been observed that catalysts made with amides from equimolar quantities of the amine and carboxylic acid reactants compounds show performance improvements in hydroprocessing certain feeds and for this reason, amides made with an equimolar ratio are preferred.
- the pre-formed amide is suitably impregnated into the metal oxide precursor by incipient wetness impregnation with the amount determined according to the pore volume of the metal oxide component. Following impregnation, a heat treatment is carried out which first removes any residual water and/or solvent but also creates a reaction product containing additional unsaturation sites and possibly additional oxygen. The amide-impregnated metal oxide component is then heated at a temperature sufficient and for a time sufficient to form a product containing the additional unsaturation which is characteristic of the desired organic component; this treatment with the pre-formed amide is typically f om about 195°C to about 280°C, for example from about 200°C to about 250°C).
- the heating step should not be conducted for so long that the amide becomes substantially decomposed but is continued for a sufficiently long time to form additional unsaturation(s), which may result from at least partial decomposition (e.g., oxidative and/or non-oxidative dehydrogenation and/or aromatization) of some (typically- unfunctionalized organic) portions of the organic compounds.
- the heating should not be conducted for so long that the decomposition substantially results in gross decomposition of the amide or any condensation product.
- the impregnated catalyst precursor composition can be heated to a temperature high enough to form the unsaturated reaction product and typically high enough to enable any byproducts such as water to be removed.
- the temperature to which the impregnated precursor composition is heated should, however, maintained low enough so as to substantially retain the amide reaction product with the additional unsaturations and any oxygen, and so as not to significantly decompose the functionalized reaction product, and/or so as not to significantly volatilize (more than 50% by weight of) the amide.
- the specific lower and upper temperature limits based on the above considerations can be dependent upon a variety of factors that can include, but are not limited to, the atmosphere under which the heating is conducted, the chemical and/or physical properties of the amide, the amide reaction product, and/or any functionalized reaction byproduct as well as the desired duration of the heating with higher temperatures, e.g. over the optimal temperature range up to 250°C, enabling shorter heating durations to be utilized.
- the minimum heating temperature can, for example, suitably be at least about 120°C, for example at least about 150°C, at least about 165°C, at least about 175°C, at least about !
- the maximum heating temperature should not be greater than about 400°C, for example, not greater than about 375°C, not greater than about 350°C, not greater than about 325°C, not greater than about 300°C, not greater than about 275°C, not greater than about 250°C, not greater than about 240°C, not greater than about 230°C, not greater than about 220°C, not greater than about 210°C, or not greater than about 200°C.
- the organically treated catalyst precursor composition and/or the catalyst precursor composition containing the reaction product can contain from about 4 wt % to about 20 wt %, for example from about 5 wt % to about 15 wt %, carbon resulting from the first and second organic compounds and/or from the condensation product, as applicable, based on the total weight of the relevant composition.
- the reaction product from the organically treated catalyst precursor can exhibit a content of unsaturated carbon atoms (which includes aromatic carbon atoms), as measured according to peak area comparisons using ⁇ C NMR techniques, of at least 29%, for example at least about 30%, at least about 3.1%, at least about 32%, or at least about 33%. Further additionally or alternately, the reaction product from the organically treated catalyst precursor can optionally exhibit a content of unsaturated carbon atoms (which includes aromatic carbon atoms), as measured according to peak area comparisons using !
- the reaction product from the organically treated catalyst precursor can exhibit an increase in content of unsaturated carbon atoms (which includes aromatic carbon atoms), as measured according to peak area comparisons using C NMR techniques, of at least about 17%, for example at least about 18%, at least about 19%, at least about 20%, or at least about 21 % (e.g., in an embodiment where the first organic compound is oleylamme and the second organic compound is oleic acid, such that the combined unsaturation level of the unreacted compounds is about .1.1.1% of carbon atoms, a .about..17% increase in unsaturated carbons upon heating corresponds to about 28.1% content of unsaturated carbon atoms in the reaction product).
- unsaturated carbon atoms which includes aromatic carbon atoms
- reaction product from the organically treated catalyst precursor can optionally exhibit an increase in content of unsaturated carbon atoms (which includes aromatic carbon atoms), as measured according to peak area comparisons using l 3 C NMR techniques, of up to about 60%, for example up to about 55%, up to about 50%, up to about 45%, up to about 40%, up to about 35%, up to about 30%, or up to about 25%.
- unsaturated carbon atoms which includes aromatic carbon atoms
- peak area comparisons using l 3 C NMR techniques of up to about 60%, for example up to about 55%, up to about 50%, up to about 45%, up to about 40%, up to about 35%, up to about 30%, or up to about 25%.
- the reaction product from the organically treated catalyst precursor can exhibit a ratio of unsaturated carbon atoms to aromatic carbon atoms, as measured according to peak area ratios using infrared spectroscopic techniques of a deconvoluted peak centered from about 1700 cm “1 to about 1730 cm “ ' (e.g., at about 1715 cm “1 ), compared to a deconvoluted peak centered from about 1380 cm “1 to about 1450 cm “1 (e.g., from about 1395 cm “1 to about 1415 cm “1 ), of at least 0.9, for example at least 1.0, at least 1.1, at least 1 .2, at least 1.3, at least 1.4, at least 1 .5, at least 1.7, at least 2.0, at least 2.2, at least 2.5, at least 2.7, or at least 3.0, Again still further additionally or alternately, the reaction product from the organically treated catalyst precursor can exhibit a ratio of unsaturated carbon atoms to aromatic carbon atoms, as measured according to peak area ratios using inf
- a (sulfided) hydroprocessing catalyst composition can then be produced by sulfiding the catalyst precursor composition containing the reaction product.
- Sulfiding is generally carried out by contacting the catalyst precursor composition containing the reaction product with a sulfur-containing compound (e.g., elemental sulfur, hydrogen sulfide, polysulfides, or the like, or a combination thereof, which may originate from a fossil/mineral oil stream, from a biocomponent-based oil stream, from a combination thereof, or from a sulfur-containing stream separate from the aforementioned oil stream(s)) at a temperature and for a time sufficient to substantially sulfide the composition and/or sufficient to render the sulfided composition active as a hydroprocessing catalyst.
- a sulfur-containing compound e.g., elemental sulfur, hydrogen sulfide, polysulfides, or the like, or a combination thereof, which may originate from a fossil/mineral oil stream, from a biocomponent-based oil stream, from
- the suifidation can be carried out at a temperature from about 300°C to about 400°C, e.g., from about 310°C to about 350°C, for a period of time from about 30 minutes to about 96 hours, e.g., from about 1 hour to about 48 hours or from about 4 hours to about 24 hours.
- the sulfiding can generally be conducted before or after combining the metal (oxide) containing composition with a binder, if desired, and before or after forming the composition into a shaped catalyst.
- the sulfiding can additionally or alternately be conducted in situ in a hydroprocessing reactor.
- reaction product of the first or second organic compounds contains additional unsaturations formed in situ
- sulfidation and/or any catalyst treatment after the organic treatment
- the sulfided catalyst composition can exhibit a layered structure comprising a plurality of stacked YS 2 layers, where Y is the Group 6 metal(s), such that the average number of stacks (typically for bulk organically treated catalysts) can be from about 1.5 to about 3,5, for example from about 1.5 to about 3.0, from about 2.0 to about 3.3, from about 2.0 to about 3.0, or from about 2.1 to about 2.8,
- the treatment of the metal (oxide) containing precursor composition according to the invention can afford a decrease in the average number of stacks of the treated precursor of at least about 0.8, for example at least about 1.0, at least about 1.2, at least about 1.3, at least about 1.4, or at least about 1.5, as compared to an untreated metal (oxide) containing precursor composition.
- the number of stacks can be considerably less than that obtained with an equivalent sulfided mixed metal (oxide) containing precursor composition produced without the first or second organic compound treatment.
- the reduction in the average number of stacks can be evidenced, e.g., via X-ray diffraction spectra of relevant sulfided compositions, in which the (002) peak appears significantly broader (as determined by the same width at the half-heigh t of the peak) than the corresponding peak in the spectrum of the sulfided mixed metal (oxide) containing precursor composition produced without the organic treatment (and/or, in certain cases, with only a single organic compound treatment using an organic compound having less than 10 carbon atoms) according to the present invention.
- TE transmission electron microscopy
- sulfided compositions including multiple microcrystals, within which micrograph images the multiple microcrystals can be visually analyzed for the number of stacks in each, which can then be averaged over the micrograph visual field to obtain an average number of stacks that can evidence a reduction in average number of stacks compared to a sulfided mixed metal (oxide) containing precursor composition produced without the organic treatment (and/or, in certain cases, with only a single organic compound treatment) according to the present invention.
- oxide sulfided mixed metal
- the sulfided catalyst composition described above can be used as a hydroprocessing catalyst, either alone or in combination with a binder. If the sulfided catalyst composition is a bulk catalyst, then only a relatively small amount of binder may be added.
- the binder is a significant portion of the catalyst composition, e.g., at least about 40 wt %, at least about 50 wt %, at least about 60 wt %, or at least about 70 wt %; additionally or alternately for heterogeneous/supported catalysts, the binder can comprise up to about 95 wt % of the catalyst composition, e.g., up to about 90 wt %, up to about 85 wt %, up to about 80 wt %, up to about 75 wt %, or up to about 70 wt %.
- Non-limiting examples of suitable binder materials can include, but are not limited to, silica, silica-alumina (e.g., conventional silica-alumina, silica-coated alumina, alumina- coated silica, or the like, or a combination thereof), alumina (e.g., boehmite, pseudo- boehmite, gibbsite, or the like, or a combination thereof), titama, zircoma, cationic clays or anionic clays (e.g., saponite, bentonite, kaoline, sepiolite, hydrotaleite, or the like, or a combination thereof), and mixtures thereof.
- silica silica-alumina
- alumina e.g., boehmite, pseudo- boehmite, gibbsite, or the like, or a combination thereof
- titama, zircoma e.g., cationic clays or anionic clays (e.
- the binder can include silica, silica-alumina, alumina, titania, zircoma, and mixtures thereof. These binders may be applied as such or after peptization. It may also be possible to apply precursors of these binders that, during precursor synthesis, can be converted into any of the above-described binders.
- Suitable precursors can include, e.g., alkali metal aiuminates (alumina binder), water glass (silica binder), a mixture of alkali metal aluminates and water glass (silica-alumina binder), a mixture of sources of a di ⁇ , tri-, and/or terra va lent metal, such as a mixture of water-soluble salts of magnesium, aluminum, and/or silicon (cationic clay and/or anionic clay , chlorohydrol, aluminum sulfate, or mixtures thereof.
- alkali metal aiuminates alumina binder
- water glass sica binder
- si-alumina binder a mixture of alkali metal aluminates and water glass
- sources of a di ⁇ , tri-, and/or terra va lent metal such as a mixture of water-soluble salts of magnesium, aluminum, and/or silicon (cationic clay and/or anionic clay , chlorohydrol, aluminum sulfate, or mixtures thereof.
- the binder material to be used can have lower catalytic activity than the remainder of the catalyst composition, or can have substantially no catalytic activity at all (less than about 5%, based on the catalytic activity of the bulk catalyst composition being about 100%). Consequently, by using a binder material, the activity of the catalyst composition may be reduced. Therefore, the amount of binder material to be used, at least in bulk catalysts, can generally depend on the desired activity of the final catalyst composition. Binder amounts up to about 25 wt % of the total composition can be suitable (when present, from above 0 wt % to about 25 wt %), depending on the envisaged catalytic application. However, to take advantage of the resulting unusual high activity of bulk catalyst compositions according to the invention, binder amounts, when added, can generally be from about 0.5 wt % to about 20 wt % of the total catalyst composition.
- the binder material can be composited with a source of a Group 6 metal and/or a source of a non-noble Group 8-10 metal, prior to being composited w r ith the bulk catalyst composition and/or prior to being added during the preparation thereof. Compositing the binder material with any of these metals may be carried out by any known means, e.g., impregnation of the (solid) binder material with these metal(s) sources.
- a cracking component may also be added during catalyst preparation.
- the cracking component can represent from about 0.5 wt % to about 30 wt %, based on the total weight of the catalyst composition.
- the cracking component may serve, for example, as an isomerizatkm enhancer.
- Conventional cracking components can be used, e.g., a cationic clay, an anionic clay, a zeolite (such as ZSM-5, zeolite Y, ultra-stable zeolite Y, zeolite X, an A3.PO, a SAPO, or the like, or a combination thereof), amorphous cracking components (such as silica-alumina or the like), or a combination thereof.
- zeolite such as ZSM-5, zeolite Y, ultra-stable zeolite Y, zeolite X, an A3.PO, a SAPO, or the like, or a combination thereof
- amorphous cracking components such as silica
- the cracking component may be composited with a Group 6 metal and/or a Group 8-10 non-noble metal, prior to being composited with the catalyst composition and/or prior to being added during the preparation thereof.
- Compositmg the cracking component with any of these metals may be carried out by any known means, e.g., impregnation of the cracking component with these metal(s) sources.
- the compositing may be done on each component separately or may be accomplished by combining the components and doing a single compositing step.
- cracking components can depend on the intended catalytic application of the final catalyst composition. For instance, a zeolite can be added if the resulting composition is to be applied in hydrocracking or fluid catalytic cracking. Other cracking components, such as silica-alumina or cationic clays, can be added if the final catalyst composition is to be used in hydrotreating applications.
- the amount of added cracking material can depend on the desired activity of the final composition and the intended application, and thus, when present, may vary from above 0 wt % to about 80 wt %, based on the total weight of the catalyst composition.
- the combination of cracking component and binder material can comprise less than 50 wt % of the catalyst composition, for example, less than about 40 wt %, less than about 30 wt %, less than about 20 wt %, less than about 15 wt %, or less than about 10 wt %,
- further materials can be added, in addition to the metal components already added, such as any material that would be added during conventional hydroprocessing catalyst preparation.
- Suitable examples of such further materials can include, but are not limited to, phosphorus compounds, boron compounds, fluorine- containing compounds, sources of additional transition metals, sources of rare earth metals, fillers, or mixtures thereof.
- a hydrotreating process comprising: reacting a feedstream having a sulfur content of at least about 3000 wppm, or at least about 4000 wppm, or at least about 5000 wppm (such as up to about 50000 wppm), and a T90 boiling point of about 900°F (482 C C) or less, in a first hydrotreating stage in the presence of a hydrogen- containing treat gas and in the presence of at least one first stage hydrotreating catalyst, the first hydrotreating stage being operated at first stage hydrotreating conditions, to produce a first liquid effluent having a sulfur content of about 5000 wppm or less, or about 4000 wppm or less, or about 3000 wppm or less, the sulfur content of the first liquid effluent being less than the sulfur content of the feedstream; separating the first liquid effluent to produce a first vapor phase stream and a first liquid product stream, the first liquid product stream optionally having a T
- Embodiment 2 The process of Embodiment 1 , wherein the first liquid effluent has a sulfur content of at least about 1000 wppm, or at least about 1500 wppm, or at least about 2000 wppm,
- Embodiment 3 A hydrotreating process comprising: reacting a feedstream having a T90 boiling point of about 900°F (482°C) or less in a first hydrotreating stage in the presence of a hydrogen-containing treat gas and in the presence of at least one first stage hydrotreating catalyst, the first hydrotreating stage being operated at first stage hydrotreating conditions, to produce a first liquid effluent; separating at least a portion of the first liquid effluent to produce a first vapor phase stream and a first liquid product stream, the first liquid product stream having a sulfur content of about 1000 wppm to about 20,000 wppm, the first liquid product stream having a) a T10 boiling point of at least about 350°F ( i 77 ( ' ).
- Embodiment 4 The process of any of the above embodiments, wherein the T90 boiling point of the first liquid product stream is about 800°F (427°C) or less, or about 750°F (399°C) or less, or about 700°F (37PC) or less,
- Embodiment 5 The process of any of the above embodiments, wherein the T10 boiling point of the feedstream is at least about 400°F (204°C), or at least about 450°F (232°C).
- Embodiment 6 The process of any of the above embodiments, wherein the T90 boiling point of the feedstream is about 850°F (454°C) or less, or about 800° F (427°C) or less, or about 750°F (399°C) or less, or about 700°F (371°C) or less.
- Embodiment 7 The process of any of the above embodiments, wherein the first stage hydrotreating conditions are effective for conversion of about 10 wt% or less of the feedstream relative to a conversion temperature of about 350°F (177°C), or about 5 wt% or less; or wherein the second stage hydrotreating conditions are effective for conversion of about 10 wt% or less of the feedstream relative to a conversion temperature of about 350°F (177°C), or about 5 wt% or less; or wherein about 10 wt% or less of the feedstream is converted relative to a conversion temperature of 350°F (177°C) during the reacting in the first hydrotreating stage and the second hydrotreating stage, or about 5 wt% or less, or about 3 wt% or less; or a combination thereof.
- Embodiment 8 The process of any of the above embodiments, further comprising hydroprocessing at least a portion of the first liquid product stream in an intermediate hydrotreating stage.
- Embodiment 9 The process of any of the above embodiments, wherein the hydrotreating catalyst comprises Mo, W, or a combination thereof, and wherein the hydrotreating catalyst comprises Ni, Co, Fe, or a combination thereof the hydrotreating catalyst optionally being a supported catalyst or optionally being a bulk catalyst.
- Embodiment 10 The process of Embodiment 9, wherein the hydrotreating catalyst comprises i) about 1 wt% to about 40 wt% of the Mo, W, or a combination thereof, ii) wherein the hydrotreating catalyst comprises about 2 wt% to about 70 wt% of the Ni, Co, Fe, or a combination thereof or both i) and ii).
- Embodiment 11 the hydrotreating catalyst comprises i) about 1 wt% to about 40 wt% of the Mo, W, or a combination thereof, ii) wherein the hydrotreating catalyst comprises about 2 wt% to about 70 wt% of the Ni, Co, Fe, or a combination thereof or both i) and ii).
- first stage hydrotreating conditions, the second stage hydrotreating conditions, or a combination thereof comprise temperatures of about 200°C to about 450°C; pressures of about 250 psig (1.8 MPag) to about 5000 psig (34.6 MPag); liquid hourly space velocities (LHSV) of about 0.1 hr J to about 10 hr 1 ; and hydrogen treat rates of about 200 scf/B (35.6 m 3 /m 3 ) to about 10,000 sef/B (1781 m 3 /m 3 ).
- Embodiment 12 The process of any of the above embodiments, further comprising performing catalytic dewaxing, hydro finishing, aromatic saturation, or a combination thereof on at least a portion of the second liquid product stream.
- Embodiment 13 The process of Embodiment 12, wherein the catalytic dewaxing is performed at effective catalytic dewaxing conditions comprising temperatures of about 200°C to about 450°C, hydrogen partial pressures of about 1.8 MPag to about 34.6 MPag (250 psig to 5000 psig), liquid hourly space velocities of from 0.05 hf 1 to 10 h "1 , and hydrogen treat gas rates of about 35.6 m /m J (200 SCF/B) to about 1781 m 3 /m 3 (10,000 scf'B).
- effective catalytic dewaxing conditions comprising temperatures of about 200°C to about 450°C, hydrogen partial pressures of about 1.8 MPag to about 34.6 MPag (250 psig to 5000 psig), liquid hourly space velocities of from 0.05 hf 1 to 10 h "1 , and hydrogen treat gas rates of about 35.6 m /m J (200 SCF/B) to about 17
- Embodiment 14 The process of Embodiment 12 or 13, wherein the hydrofinishing is performed at effective hydrofinishing conditions comprise temperatures from about 125°C to about 425°C, total pressures from about 500 psig (3.4 MPa) to about 3000 psig (20.7 MPa), liquid hourly space velocities from about 0.1 hr "1 to about 5 hr '1 LHSV, and hydrogen treat gas rates of from 500 to 5000 scf ' B (89 to 890 m 3 / m ).
- Embodiment 15 The process of Embodiment 12 or 13 or 14, wherein the aromatic saturation is performed at effective aromatic saturation conditions comprising temperatures from about 200°C to about 425°C, total pressures from about 500 psig (3.4 MPa) to about 3000 psig (20.7 MPa), liquid hourly space velocities from about 0.1 hr "1 to about 5 hr "1 LHSV, and hydrogen treat gas rates of from 500 to 5000 sef/B (89 to 890 m 3 / m 3 ).
- Embodiment 16 The process of any of the above embodiments, wherein the feedstream has an aromatics content of at l east about 60 wt%, or at least about 70 wt%.
- Embodiment 17 The process of any of the above embodiments, wherein the feedstream has a multi-ring aromatics content of at least about 40 wt%, or at least about 45 wt%, or at least about 50 wt%.
- Embodiment 18 The process of any of the above embodiments, wherein the first hydrotreating catalyst and the second hydrotreating catalyst are different, or wherein the first hydrotreating catalyst and the second hydrotreating catalyst are the same.
- Embodiment 19 The process of any of the above embodiments, wherein the second hydrotreating catalyst comprises a mixed metal catalyst, the mixed metal catalyst comprising a suifided mixed metal catalyst formed by sulfiding a mixed metal catalyst precursor composition, the mixed metal catalyst precursor composition being produced by a) heating a composition comprising at least one metal from Group 6 of the Periodic Table of the Elements, at least one metal from Groups 8-10 of the Periodic Table of the Elements, and a reaction product formed from (i) a first organic compound containing at least one amine group, and (ii) a second organic compound separate from said first organic compound and containing at least one carboxylic acid group to a temperature from about 195°C to about 260°C for a time sufficient for the first and second organic compounds to form a reaction product in situ that contains an amide moiety, unsaturated carbon atoms not present in the first or second organic compounds, oxygen atoms not present in the first or second organic compounds, or a combination thereof; b) heating a composition compris
- distillate yield can be improved based on use of a catalyst with improved activity for aromatic saturation at a desired level of severity for removal of heteroatoms.
- distillate yield can be improved based on using interstage separation prior to a second (or subsequent) hydrotreating stage.
- a light cycle oil was hydrotreated under a series of conditions.
- Various properties of the light cycle oil feed prior to the initial hydrotreatment stage are shown in Table 1.
- the light cycle oil had a T5 boiling point of about 412°F (211°C), a T95 boiling point of about 724°F (384°C), and a final boiling point of about 788°F (420°C).
- the light cycle oil was hydrotreated to reduce the sulfur content, nitrogen content, and specific gravity of the liquid product.
- the effluent from the initial stage was either cascaded into second hydrotreatment stage without stripping or other intermediate separation as shown in process configuration FIG. 1, or was separated to separate the liquid product from the gas phase portion of the effluent and the liquid phase product was then hydrotreated in a second reaction stage as shown in process configuration FIG. 2.
- the hydrotreating catalyst in both stages was a commercially available supported NiMo distillate hydrotreating catalyst.
- the liquid phase effluent from the first stage was hydrotreated using a treat gas containing substantially no H 2 8 to simulate the two stage hydroprocessing with intermediate separation, such as the configuration shown in FIG. 2, and a treat gas containing about 2 vol% H 2 S to simulate the two stage hydroprocessing without intermediate separation, such as the configuration shown in FIG. 1.
- a treat gas containing substantially no H 2 8 to simulate the two stage hydroprocessing with intermediate separation
- a treat gas containing about 2 vol% H 2 S to simulate the two stage hydroprocessing without intermediate separation, such as the configuration shown in FIG. 1.
- Table 1 the liquid product from the second hydrotreating stage has a substantially lower aromatics content than the feed to the initial hydrotreating stage. Additionally, the aromatics present in the liquid product from the second hydrotreating stage are primarily 1-ring aromatics. This is in contrast to the initial feed, where the majority of the aromatics are multi-ring aromatics.
- the reduction in multi-ring aromatics in the final product as H 2 S is removed from the treat gas is believed to contribute to the reduced specific gravity (or increased API gravity) of the liquid products formed during hydrotreatment with lower concentrations of H 2 S and/or no H 2 S in the treat gas.
- the change in specific gravity shown in Table 1 corresponds to about a 0.44 vol% increase for the volume of liquid product generated with no H 2 S in the second stage treat gas relative to the volume of liquid product generated with 2 vol% H 2 S in the second stage treat gas.
- the reduction in multi-ring aromatics also causes a corresponding increase in the amount of H 2 consumed during the second stage hydrotreatment.
- an example of a suitable feed for commercial distillate hydrotreater can be a feed containing about 30 vol% light cycle oil, such as the light cycle oil used for the processes shown in Table 1 , with the remaining portion of the feed corresponding to a virgin gas oil having a roughly comparable boiling range.
- a 0.44 vol.% increase in the product resulting from the light cycle oil portion (30 vol%) of the feed can correspond to about 23,100 barrels of additional distillate product per year generated by a 50,000 barrel per day distillate hydrotreater under typical operating conditions.
- a mixed metal catalyst formed from a suitable precursor can also be used to improve aromatic saturation during distillate hydrotreating.
- various feeds were hydrotreated in a single processing stage (i.e., no separation to remove H 2 S) using various catalysts or catalyst systems.
- a straight run light vacuum gas oil feed was hydrotreated in a single stage distillate hydrotreating system.
- the catalyst in the reaction system was a stacked bed of a commercial Ni fVlo supported hydrotreating catalyst, a mixed metal catalyst formed from a suitable precursor, and the commercial NiMo supported hydrotreating catalyst. About one third of the catalyst volume corresponded to the mixed metal catalyst, with the mixed metal catalyst being approximately in the middle of the catalyst bed.
- the straight run light- vacuum gas oil was hydrotreated in a similar reaction system with a catalyst bed composed only of the commercial NiMo supported hydrotreating catalyst.
- the light vacuum gas oil had an initial sulfur content of about 0.86 wt% and a specific gravity of about 0.876 g/ml .
- the light vacuum gas oil was exposed to the catalyst or catalyst system at 340°C and at 840 psig (5800 kPa) of pressure.
- the treat gas rate was about 560 scf/B (950 Nm '/nr ) of a gas containing about 80 vol% hydrogen.
- the LHSV was about 0.85 hr "1 .
- the stacked bed catalyst including the mixed metal catalyst resulted in a liquid product yield with a volume increase of about 0.29 vol% relative to the product yield from hydrotreatmg over just the commercial supported NiMo catalyst. This increase in volume was achieved with similar levels of conversion relative to a 300°F (149°C) conversion temperature. This demonstrates the ability of the mixed metal catalyst to improve yield (volume swell) for a feed having a sulfur content of less than about 10000 wppm at a roughly constant level of process severity.
- Table 2 Process Conditions for Distillate Hydrotreating of Straight Run Feed
- Table 3 shows the processing conditions used for single stage hydrotreatment of a feed corresponding to about 20 wt% of a light cycle oil similar to the feed in Example 1, wit the remainder of the feed corresponding to a straight run light- vacuum gas oil similar to the feed described in Example 2. As a result, the feed had an initial sulfur content of about 11,000 wppm.
- the process conditions for hydrotreatment are also shown in Table 3.
- a mixed metal catalyst formed from a suitable precursor can also be used in conjunction with interstage separation to achieve still larger increases in distillate yield.
- a process configuration simi lar to Example I was used, so that a light cycle oil feed could be processed with interstage separation.
- the initial hydrotreatment stage included a conventional supported N Mo catalyst to produce a first stage hydrotreated liquid product having the properties shown in Table 4.
- the first stage hydrotreated liquid product was then hydrotreated using either the mixed metal catalyst formed from a suitable precursor or the comparative bulk NIMoW catalyst made according to the methods described in U.S. Patent 6,156,695, U.S. Patent 6,582,590 and/or U.S. Patent 6,929,738.
- the process conditions and resulting product properties are shown in Table 5.
- interstage separation can be synergisticaliy combined with use of a mixed metal catalyst to provide an unexpectedly larger yield increase during distillate hydrotreating of a high sulfur distillate boiling range feed.
- This also demonstrates that the benefits of interstage separation can be realized for a variety of types of hydrotreating catalysts.
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| US201562152092P | 2015-04-24 | 2015-04-24 | |
| US14/932,232 US20160145511A1 (en) | 2014-11-20 | 2015-11-04 | Hydroprocessing for lubricant basestock production |
| US14/932,268 US20160145503A1 (en) | 2014-11-20 | 2015-11-04 | Hydroprocessing for distillate production |
| US14/932,335 US20160145508A1 (en) | 2014-11-20 | 2015-11-04 | Hydroprocessing for distillate production |
| PCT/US2015/059815 WO2016081217A1 (en) | 2014-11-20 | 2015-11-10 | Hydroprocessing for distillate production |
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| EP15797556.6A Withdrawn EP3221429A1 (en) | 2014-11-20 | 2015-11-10 | Hydroprocessing for distillate production |
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| EP15797556.6A Withdrawn EP3221429A1 (en) | 2014-11-20 | 2015-11-10 | Hydroprocessing for distillate production |
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| EP3394213B1 (en) | 2015-12-21 | 2021-05-12 | ExxonMobil Research and Engineering Company | Base metal dewaxing catalyst |
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| WO2016081218A1 (en) | 2016-05-26 |
| CA2966880A1 (en) | 2016-05-26 |
| CA2966887A1 (en) | 2016-05-26 |
| US20160145503A1 (en) | 2016-05-26 |
| US20160145511A1 (en) | 2016-05-26 |
| CA2965532A1 (en) | 2016-05-26 |
| EP3221431A1 (en) | 2017-09-27 |
| EP3221429A1 (en) | 2017-09-27 |
| SG11201702380VA (en) | 2017-06-29 |
| WO2016081217A1 (en) | 2016-05-26 |
| SG11201702450QA (en) | 2017-06-29 |
| US20160145508A1 (en) | 2016-05-26 |
| SG11201702413TA (en) | 2017-06-29 |
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