EP2691492A1 - Novel process and catalyst system for improving dewaxing catalyst stability and lubricant oil yield - Google Patents
Novel process and catalyst system for improving dewaxing catalyst stability and lubricant oil yieldInfo
- Publication number
- EP2691492A1 EP2691492A1 EP20110862225 EP11862225A EP2691492A1 EP 2691492 A1 EP2691492 A1 EP 2691492A1 EP 20110862225 EP20110862225 EP 20110862225 EP 11862225 A EP11862225 A EP 11862225A EP 2691492 A1 EP2691492 A1 EP 2691492A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- catalyst
- dewaxing
- hydrotreating
- lubricant oil
- alumina
- 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.)
- Pending
Links
Classifications
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- C—CHEMISTRY; METALLURGY
- 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
- C10M101/025—Petroleum fractions waxes
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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
- B01J21/00—Catalysts comprising the elements, oxides, or hydroxides of magnesium, boron, aluminium, carbon, silicon, titanium, zirconium, or hafnium
- B01J21/02—Boron or aluminium; Oxides or hydroxides thereof
- B01J21/04—Alumina
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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
- B01J21/00—Catalysts comprising the elements, oxides, or hydroxides of magnesium, boron, aluminium, carbon, silicon, titanium, zirconium, or hafnium
- B01J21/12—Silica and alumina
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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
- B01J21/00—Catalysts comprising the elements, oxides, or hydroxides of magnesium, boron, aluminium, carbon, silicon, titanium, zirconium, or hafnium
- B01J21/16—Clays or other mineral silicates
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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
- B01J23/38—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of noble metals
- B01J23/40—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of noble metals of the platinum group metals
- B01J23/44—Palladium
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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
- B01J29/00—Catalysts comprising molecular sieves
- B01J29/04—Catalysts comprising molecular sieves having base-exchange properties, e.g. crystalline zeolites
- B01J29/06—Crystalline aluminosilicate zeolites; Isomorphous 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
- B01J35/00—Catalysts, in general, characterised by their form or physical properties
- B01J35/60—Catalysts, in general, characterised by their form or physical properties characterised by their surface properties or porosity
- B01J35/61—Surface area
- B01J35/615—100-500 m2/g
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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
- B01J35/00—Catalysts, in general, characterised by their form or physical properties
- B01J35/60—Catalysts, in general, characterised by their form or physical properties characterised by their surface properties or porosity
- B01J35/63—Pore volume
- B01J35/635—0.5-1.0 ml/g
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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
- B01J37/0009—Use of binding agents; Moulding; Pressing; Powdering; Granulating; Addition of materials ameliorating the mechanical properties of the product catalyst
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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
- B01J37/0009—Use of binding agents; Moulding; Pressing; Powdering; Granulating; Addition of materials ameliorating the mechanical properties of the product catalyst
- B01J37/0018—Addition of a binding agent or of material, later completely removed among others as result of heat treatment, leaching or washing,(e.g. forming of pores; protective layer, desintegrating by heat)
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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
- B01J37/02—Impregnation, coating or precipitation
- B01J37/0201—Impregnation
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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
- 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
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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
- 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
- C10G45/10—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 platinum group 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
- 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
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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
- C10G45/58—Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds to change the structural skeleton of some of the hydrocarbon content without cracking the other hydrocarbons present, e.g. lowering pour point; Selective hydrocracking of normal paraffins
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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
- C10G45/58—Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds to change the structural skeleton of some of the hydrocarbon content without cracking the other hydrocarbons present, e.g. lowering pour point; Selective hydrocracking of normal paraffins
- C10G45/60—Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds to change the structural skeleton of some of the hydrocarbon content without cracking the other hydrocarbons present, e.g. lowering pour point; Selective hydrocracking of normal paraffins 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
- C10G45/58—Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds to change the structural skeleton of some of the hydrocarbon content without cracking the other hydrocarbons present, e.g. lowering pour point; Selective hydrocracking of normal paraffins
- C10G45/60—Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds to change the structural skeleton of some of the hydrocarbon content without cracking the other hydrocarbons present, e.g. lowering pour point; Selective hydrocracking of normal paraffins characterised by the catalyst used
- C10G45/62—Refining of hydrocarbon oils using hydrogen or hydrogen-generating compounds to change the structural skeleton of some of the hydrocarbon content without cracking the other hydrocarbons present, e.g. lowering pour point; Selective hydrocracking of normal paraffins characterised by the catalyst used containing platinum group 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
- 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
- C10G65/043—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 change in the structural skeleton
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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
- C10G2300/1096—Aromatics or polyaromatics
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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
- C10G2300/201—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
- C10G2300/304—Pour point, cloud point, cold flow properties
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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
- C10G2400/00—Products obtained by processes covered by groups C10G9/00 - C10G69/14
- C10G2400/10—Lubricating oil
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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
- C10M2203/00—Organic non-macromolecular hydrocarbon compounds and hydrocarbon fractions as ingredients in lubricant compositions
- C10M2203/10—Petroleum or coal fractions, e.g. tars, solvents, bitumen
- C10M2203/102—Aliphatic fractions
- C10M2203/1025—Aliphatic fractions used as base material
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- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10N—INDEXING SCHEME ASSOCIATED WITH SUBCLASS C10M RELATING TO LUBRICATING COMPOSITIONS
- C10N2070/00—Specific manufacturing methods for lubricant compositions
Definitions
- the invention relates to a process for reducing the wax content of wax- containing hydrocarbon feedstocks. More particularly, the invention relates to a process for converting wax-containing hydrocarbon feedstocks into high-grade products including lubricant base oils having a low pour point.
- This process employs a layered catalyst system comprising a hydrotreating catalyst and a dewaxing catalyst wherein the dewaxing catalyst aging is slowed and yields of base oil products are maintained over a temperature range from about 450°F to 725 °F.
- hydrocarbon feedstocks contain relatively high concentrations of straight chain and slightly branched chain aliphatic compounds having between 8 and 40 carbon atoms. These compounds tend to form solid waxes upon cooling of the hydrocarbon feedstock.
- the temperature at which the hydrocarbon oil will not flow is commonly referred to as the "pour point.”
- the wax forming compounds are generally removed or converted through distillation or hydrotreating processes such as hydrocracking and hydroisomerization. In hydrocracking, high-molecular weight hydrocarbon
- Hydroisomerization is another approach to reduce the wax content of feedstocks while minimizing the loss in yield due to the formation of highly cracked low molecular weight products. Hydroisomerization converts aliphatic, unbranched paraffinic hydrocarbons to iso-paraffins and cyclic species which do not easily form waxes.
- U.S. Pat. No. 4,347,121 claims catalytic dewaxing of hydrocrackates containing less than 10 ppm nitrogen with a hydro finishing step upstream of the dewaxing catalyst.
- Important considerations in an efficient dewaxing process include the minimization of catalyst aging and the maximization of yield, particularly with respect to lubricant base oil dewaxing.
- U.S. Pat. No. 5,456,820 discloses a process in which a lube boiling range feedstock is catalytically dewaxed in the presence of hydrogen over a catalyst comprising an intermediate pore zeolite in the decationized form. Catalyst cycle length was found to be improved by optimizing the sequencing of various solvent extracted feedstocks.
- Multi-layered catalyst systems have also been described as ways to minimize dewaxing catalyst aging.
- U.S. Pat. No. 5,951 ,848 and WO 98/02503 disclose the use of a two catalyst system comprising a hydrotreating catalyst and a dewaxing catalyst.
- the hydrotreating catalyst layer can also be referred to as a "guard bed” or “guard layer”.
- the aging of the dewaxing catalyst is slowed due to the presence of the hydrotreating catalyst layer or guard layer which protects the dewaxing catalyst from contact with highly aromatic feedstocks which would deactivate the dewaxing catalyst.
- 4,749,467 discloses a method for extending dewaxing catalyst cycle length by employing the combination of low space velocity and a high acidity intermediate pore zeolite.
- the high acid activity and low space velocity reduce the start-of-cycle temperature. Because catalyst deactivation reactions are more temperature sensitive than are dewaxing reactions, low operating temperatures reduce the catalyst aging rate.
- the present invention is directed to a process for catalytically dewaxing a waxy hydrocarbon feedstock to yield a lubricant oil comprising the steps of:
- i) comprises a Group VIII metal supported on an
- iii) contains less than 0.25 meq of acid sites per gram of the catalyst
- the hydrotreating and dewaxing catalysts are in the same reactor.
- the hydrotreating catalyst and the dewaxing catalyst are in separate reactors with no treating of the fluids in between.
- the invention is directed to a layered catalyst system comprising a) a hydrotreating catalyst comprising a Group VIII metal supported on an inorganic oxide support wherein the hydrotreating catalyst exhibits a decalin conversion of less than 10% at 700°F and;
- a dewaxing catalyst comprising a Group VIII metal and an acidic component selected from the group consisting of zeolites, zeolite analogs, nonzeolitic molecular sieves, acidic clays, or combinations thereof;
- hydrotreating catalyst and the dewaxing catalyst are in a ratio of about 1 :20 to about 1 :2.
- the dewaxing catalyst comprises a Group VIII metal which acts as a hydrogenation component and an acidic component.
- the Group VIII metal is platinum, palladium, or combinations thereof.
- the acidic component is selected from the group consisting of zeolites, zeolite analogs, nonzeolitic molecular sieves, acidic clays, and combinations thereof.
- the hydrotreating catalyst and a dewaxing catalyst are in a ratio of about 1 :20 to about 1 :2 and preferably in a ratio of about 1 :20 to 1 :6.
- An advantage of the present system over conventional catalyst systems is the maintenance of high lubricant oil product yield over a greater temperature range.
- hydrotreating catalysts in which the decalin conversion at 700°F is less than about 10%, upsteam of a dewaxing catalyst, reduce dewaxing catalyst aging while the overall lubricant oil yield does not decrease more than 2% at a target pour point.
- the process of the present invention involves contacting a hydrocarbon feedstock with a catalyst system comprising a hydrotreating catalyst and a dewaxing catalyst.
- the invention is also directed to a catalyst system comprising a hydrotreating catalyst and a dewaxing catalyst.
- the hydrotreating catalyst can be referred to as a "guard layer" in that it protects or guards the dewaxing catalyst from premature aging due to contact with aromatic species in the waxy hydrocarbon feedstock which can cause deactivation (i.e. aging) of the dewaxing catalyst.
- the process of the present invention is practiced in a single reactor system wherein the reaction conditions are driven by the temperature required for the dewaxing catalyst to achieve a lubricant oil pour point target. As such, the actual temperature of the upstream hydrotreating catalyst will be slightly lower or equal to the temperature dictated by the dewaxing catalyst
- Typical dewaxing catalysts are run at operating temperatures between about 550°F to about 750°F. Actual process conditions will depend on a variety of factors such as feed wax, feed nitrogen content, feed boiling range, LHSV, pressure of operation, dewaxing catalyst formulation and catalyst activity and age.
- the acidity of the hydrotreating catalyst can be inferred from a measure of the decalin conversion at 700°F.
- the hydrotreating catalyst used in the process and the catalyst system of the invention has a decalin conversion at 700°F of less than about 10%, preferably less than about 8%, more preferably less than about 6%, and most preferably less than about 4%.
- hydrotreating is meant any process that is carried out in the presence of hydrogen to remove or reduce impurities, including, but not limited to, hydrodesulphurization, hydrodenitrogenation, hydrodemetallation,
- guard bed or “guard layer” refers to a hydrotreating catalyst or hydrotreating catalyst layer directly upstream of a dewaxing catalyst.
- molecular sieve refers to a crystalline material containing pores, cavities, or interstitial spaces of a uniform size in which molecules small enough to pass through the pores, cavities, or interstitial spaces are adsorbed while larger molecules are not.
- molecular sieves include zeolites and non- zeolitic molecular sieves such as zeolite analogs including, but not limited to, SAPOs (silicoaluminophosphates), MeAPOs (metalloaluminophosphates), A1P0 4 , and ELAPOs (nonmetal substituted aluminophosphate families).
- Target pour point means the desired pour point of the lubricant base oil products.
- the target pour point is generally less than -10° C, preferably in the range of -10° C to -50° C, and most preferably in the range of -10° C to -30°C. In an embodiment, the target pour point can be -30° C or less. As used herein, unless otherwise specified, 100% yield of lubricant oil is taken to be the amount of lubricant oil produced without a guard layer upstream of the dewaxing layer.
- Changes in yields of lubricant oil are calculated by taking the amount of lubricant oil (by weight) produced at a target pour point for a given feed wherein the feed is run over the dewaxing catalyst alone under dewaxing conditions and subtracting the amount of lubricant oil (by weight) produced by running the feed under the same dewaxing conditions at the same target pour point over the catalyst system of the invention (i.e. guard layer upstream of the dewaxing layer) and dividing by the yield of lubricant oil (by weight) produced at the target pour point for the given feed wherein the feed is run over the dewaxing catalyst alone under dewaxing conditions.
- A-B refers to the weight of lubricant oil produced at a target pour point from a given feed over a dewaxing catalyst
- B refers to the weight of lubricant oil produced at the target pour point from said feed over a catalyst system comprising a hydrotreating catalyst upstream of the dewaxing catalyst.
- the yield of lubricant oil does not decrease more than 2%, at a target pour point, over a dewaxing temperature range
- the yield of lubricant oil for a hydrotreating catalyst upstream of a dewaxing catalyst can be no less than two weight percent less than the yield of lubricant oil if the same feedstock were run over the dewaxing catalyst alone at the same temperature for the same target pour point.
- large pore zeolite refers to a zeolite with a pore aperture in the range from about 0.7 nm to about 2.0 nm in diameter.
- large pore zeolites include, but is not limited, to zeolite Y, FAU, EMT, ITQ-21, ITQ-33, and ERT.
- medium pore zeolite refers to a zeolite with a pore aperture in the range from about 0.39 nm to about 0.7 nm in diameter.
- medium pore zeolites include ferrierite, stilbite, SAPO-11, ZSM-5, SSZ-32, ZSM-48, and ZSM-23.
- the Periodic Table of the Elements referred to is the CAS version published by the Chemical Abstract Service in the Handbook of Chemistry and Physics, 72 nd edition (1991-1992).
- Group VIII metal refers to elemental metals and/or metal compounds comprising a metal selected from Group VIII of the Periodic Table, CAS version published by the Chemical Abstract Service in the Handbook of Chemistry and Physics, 72 nd edition (1991-1992).
- feed rate to a catalytic reaction zone is reported as the volume of feed per volume of catalyst per hour.
- the feed rate as disclosed herein is reported in reciprocal hours (i.e. hr "1 ) which is also referred to as liquid hourly space velocity (LHSV).
- the present process is capable of operating with a wide variety of feedstocks.
- the hydrocarbon feedstocks which can be treated in accordance with the present invention include oils with generally high pour points (pour points above about 0°C) and where it is desired to lower the pour point.
- the hydrocarbon feedstocks can be described as waxy feeds, by waxy it is meant that the feedstock will become highly viscous, solidify, precipitate, or form solid particulates at reduced temperatures due to the presence of n-paraffins.
- the feedstock preferably used in the process of the present invention generally boil in the range from 500° F. to 1300° F., and have a kinematic viscosity (measured at 100° C.) greater than about 3 cSt.
- Hydrocarbon feedstocks suitable for use in the process of the invention may be selected, for example, from crude oil, petroleum distillates having a normal boiling point above about 100°C, gas oils and vacuum gas oils, residuum fractions from an atmospheric pressure distillation process, solvent-deasphalted petroleum residua, shale oils, cycle oils, animal and vegetable derived fats, waxes, and oils, petroleum and slack wax, waxy petroleum feedstocks, NAO wax, and waxes produced in chemical plant processes.
- Lubes Straight chain n-paraffins either alone or with only slightly branched chain paraffins having 16 or more carbon atoms are sometimes referred to herein as waxes.
- Preferred petroleum distillates boil in the boiling point range of about 200°C to about 700°C, more preferably in the range of about 260°C to about 650°C.
- Suitable feedstocks include those heavy distillates normally defined as heavy straight-run gas oils and heavy cracked cycle oils, as well as conventional FCC fed and portions thereof. Cracked stocks may be obtained from thermal or catalytic cracking of various stocks. The feedstock may have been subjected to a hydrotreating and/or hydrocracking process before being supplied to the present process.
- the feedstock may be treated in a solvent extraction process to reduce aromatics and sulfur- and nitrogen-containing molecules before being used in the process of the present invention.
- the hydrocarbon feedstocks which are treated in accordance with the present invention will generally have an initial pour point above about 0°C, more usually above about 20°C.
- the feedstock has a pour point above about 50°C.
- the resultant hydrocarbon products after the process of the present invention is completed generally have pour points which fall below 0°C, more preferably below about -10°C, and most preferably below about -15°C.
- waxy hydrocarbon feedstocks includes petroleum waxes, plant waxes, and animal derived waxes.
- the feedstock employed in the process of the invention can be a waxy feed which contains greater than about 50% wax, even greater than about 70% wax.
- the feed contains from about 5% to about 30% wax.
- waxy distillate stocks such as gas oils, lubricating oil stocks, synthetic oils and waxes such as those by Fischer-Tropsch synthesis, high pour point polyalphaolefms, foots oils, synthetic waxes such as alphaolefin waxes, slack waxes, deoiled waxes and
- Foots oil is prepared by separating oil from the wax.
- the present process is capable of operating with a wide range of feeds of mineral oil origin to produce a range of lubricant base oils with good performance characteristics. Such characteristics include low pour point, low cloud point, and high Viscosity Index.
- the quality of the lube base stock and the dewaxing yield are dependent on the quality of the feedstock and its amenability to processing by the catalysts of the instant invention. Feedstocks for this process are derived from the atmospheric residuum fraction of crude oil including vacuum gas oils and vacuum residues, as well as those produced by Fisher Tropsch processing of synthesis gas.
- the hydrocarbon feedstock used in the process of the present invention has less than about 10 ppm nitrogen and more preferably less than about 2 ppm nitrogen.
- Any petroleum stream that is useful for the production of lubricating oils can be used as the hydrocarbon feedstock in the process of the present invention.
- the feedstock may under go one or more pretreatment steps in order to reduce heteroatom, aromatic, asphaltene, and polycyclic naphthene content of the feed.
- This upgrading step can be accomplished by solvent extraction, hydroprocessing, or a combination of the two steps. Because nitrogen and sulfur act as poisons for noble metal-containing catalysts, preferred feedstocks for this invention are those which have been hydroprocessed. However, some solvent refined raffinates are also suitable for dewaxing by the catalysts of the present invention.
- hydrocarbon feedstock may have been pretreated by hydrocracking prior to the process of this invention.
- Hydrocracking processes typically include reaction temperatures in the range of 250° C to 500° C, pressures in the range of 30 to 205 bar or more, a hydrogen recycle rate of 2000 to 20000 standard cubic feet per barrel (SCF/B), and an LHSV (v/v hr) of 0.1 to 10.
- Hydrocracking catalysts which are well known to the art of hydroprocessing technology, will typically contain one or more metals, or compounds thereof, selected from Group VIB and Group VIII of the Periodic Table.
- Hydrocracking catalysts also typically include a support material of a refractory inorganic oxide such as silica, alumina, silica-alumina, silica-alumina-zirconia, and silica-alumina-titania composites, acid treated clays and combinations thereof, and optionally may also include crystalline aluminosilicate zeolitic molecular sieves (such as Zeolite A, faujasite, Zeolite X, and Zeolite Y).
- a support material of a refractory inorganic oxide such as silica, alumina, silica-alumina, silica-alumina-zirconia, and silica-alumina-titania composites, acid treated clays and combinations thereof, and optionally may also include crystalline aluminosilicate zeolitic molecular sieves (such as Zeolite A, faujasite, Zeolite X, and Zeolite Y).
- the catalyst system of the present invention comprises a hydrotreating catalyst which acts as a guard layer and a dewaxing catalyst, preferably in the same reactor, wherein the hydrotreating catalyst is directly upstream of the dewaxing catalyst.
- the hydrotreating catalyst and dewaxing catalyst are at the same temperature.
- the hydrotreating catalyst is a high activity catalyst.
- “high activity” it is meant that the hydrotreating catalyst can operate effectively at high hourly liquid space velocities (LHSV above about 1.0 fir "1 ) and over temperatures ranging from about 550°F to about 750°F.
- the hydrotreating catalyst is in the same reactor as the dewaxing catalyst.
- the hydrotreating catalyst comprises from about 5% to about 30% by volume of the total catalyst in the reactor.
- the total catalyst volume can be described as the sum of the volume of the hydrotreating catalyst plus the volume of the dewaxing catalyst.
- the hydrotreating catalyst comprises from about 10% to about 15% of the total catalyst volume.
- the dewaxing catalyst will make up from about 75% to about 95% of the total catalyst and preferably from about 85% to about 90% of the total catalyst volume.
- the hydrotreating catalyst of the present invention comprises a Group VIII metal, preferably platinum, palladium, or combinations thereof, dispersed on a low acidity inorganic oxide support.
- the ratio of platinum to palladium is between about 5:1 to about 1 :5.
- the hydrotreating catalyst comprises a platinum- palladium alloy, wherein the molar ratio of platinum to palladium in the alloy is between about 3 : 1 and about 1 :3 and preferably between about 2:1 and about 1 :2.
- the amount of platinum and/or palladium metal present on the catalyst can range from 0.01 wt. % to 5 wt. %, preferably between 0.2 wt. % to 2 wt. %.
- the amount of platinum-palladium alloy placed on the support must be sufficient to act as an effective catalyst in the hydrogenation of the hydrocarbon feedstock. Generally, adding greater than about 1 wt. % of the alloy does not significantly improve on the activity of the catalyst and is therefore economically disadvantageous. However, amounts in excess of 1 wt. % are usually not harmful to the performance of the catalyst.
- Preferred hydrotreating catalysts exhibit the activity of the palladium based catalyst while maintaining the sulfur tolerance of the normally less reactive platinum based catalyst, thus providing a hydrogenation catalyst with good activity over a wide temperature range.
- impregnation of the platinum and/or palladium metal is carried out under a controlled pH.
- the impregnation solution can be buffered to maintain a pH within the range of from about 9 to about 10.
- the impregnation of the platinum and/or palladium metal is carried out at acidic pH (i.e. pH less than 7).
- the impregnation of the platinum and/or palladium metal is carried out at a basic pH (i.e.
- Any pH value may be used to deposit the platinum and/or palladium metal on the support, provided that the platinum and/or palladium is dispersed on the support so as to produce a catalyst capable of hydrogenating aromatic species in the feedstock.
- the platinum and/or palladium metal is usually added to the impregnating solution as a metal salt, such as halide salts and/or amine complexes and/or salts of a mineral acid. Ammonium salts have been found to be particularly useful in preparing the impregnating solution.
- Representative of the metal salts that may be used are nitrates, carbonates, bicarbonates and carboxylic acid salts such as acetates, citrates, and formates.
- an ammonium nitrate salt or a chloride salt have been found to give satisfactory results.
- other salts of the platinum group metals are also operable and could be used to impregnate the support. In such case, it may be useful to determine the optimal pH to use during impregnation for the particular salt selected in order to obtain the best distribution of metals on the support.
- the impregnated support can be dried and/or calcined.
- the impregnated support is allowed to stand before drying for a period of time sufficient for it to attain equilibration with the impregnating solution.
- this period usually is at least 2 hours, and periods of up to 24 hours are not detrimental to the finished catalyst.
- a suitable standing time for a given support may be readily determined by one skilled in the art by, for example, drying at various times after impregnation and measuring the metal distribution. After optionally standing, the catalyst is dried, calcined, or dried and calcined.
- the prepared catalyst also can be reduced with hydrogen as is conventional in the art and placed into service.
- the hydrotreating catalysts employed in the present invention comprise a catalyst support that is generally prepared from alumina, silica, silica/alumina, titania, magnesia, zirconia or combinations thereof in addition to the Group VIII metal.
- the catalyst support can comprise amorphous materials, crystalline materials, or combinations thereof. Examples of amorphous materials include, but are not limited to, amorphous alumina, amorphous silica, amorphous silica-alumina, and the like.
- the support is amorphous alumina.
- the distribution of silica and alumina in the support may be either homogeneous or heterogeneous.
- the support consists of an alumina gel in which is dispersed the silica, silica/alumina, or alumina base material.
- the alumina gel is also referred to as the "oxide binder.”
- the support may also contain refractory materials other than alumina or silica, such as for example other inorganic oxides or clay particles, provided that such material does not adversely affect the hydrogenation activity of the final catalyst or lead to deleterious cracking of the feedstock due to the presence of too many acid sites.
- silica and/or alumina will make up at least 90 weight percent of the entire support, and most preferably the support will be substantially all silica and/or alumina.
- the support can contain acidic protons which can lead to deleterious cracking reactions.
- alkali and/or alkaline earth cations can be used to neutralize acidic protons in the support.
- Sodium and potassium cations are preferably used to neutralize acidic protons.
- the catalyst support can comprise crystalline materials including, but not limited to, zeolites, zeolite analogs, molecular sieves, silicoaluminophosphates, and
- zeolite analog it is meant that a portion of the silicon and/or aluminum atoms in the zeolite are replaced with other tetrahedrally coordinated atoms such as germanium, boron, titanium, phosphorus, gallium, zinc, iron, or mixtures thereof.
- nonzeolitic molecular sieve refers to molecular sieves whose frameworks are not formed of substantially only silicon and aluminum atoms in tetrahedral coordination with oxygen atoms.
- the pores in the molecular sieve are often classified as small (8 T atoms), medium (10 T atoms), and large (12 T atoms or more), according to the number of tetrahedral atoms that surround the pore apertures.
- Zeolite A (LTA) and zeolite Rho are examples of molecular sieves with small pores delimited by 8-membered rings, wherein the pore aperture measures about 3-4.4 A, ZSM-5, ZSM-11, ferrierite are examples of medium pore 10-membered rings wherein the pore aperture measures about 3.9-6.5 A, while zeolite X, zeolite Y, and zeolite Beta are examples of zeolites with large pores delimited by 12-membered rings wherein the pore aperture measures greater than about 6.5 A.
- molecular sieves have internal channels. The classification of intrazeolite channels as 1-, 2-, or 3- dimensional is set forth by R. M. Barrer in Zeolites, Science and Technology, edited by F. R. Rodrigues, L. D. Rollman and C. Naccache, NATO ASI Series, 1984 which classification is incorporated in its entirety by reference (see particularly page 75).
- zeolite analog or nonzeolitic molecular sieve the properties of the material are affected.
- the presence of aluminum in a zeolite introduces a negative charge in the zeolite framework and affects the acidity of the zeolite.
- the Si/Al ratio in zeolites can vary from about 1 to infinity. The lower limit arises from the avoidance of neighboring tetrahedral units with negative charges ( ⁇ -0- ⁇ ). It is generally accepted that the linking of two A10 4 tetrahedra is energetically unfavorable enough to preclude such occurrences.
- Negative charges in a zeolite, zeolite analog, or nonzeolitic molecular sieve framework are compensated by extraframework cations such as protons and alkali cations.
- extraframework protons leads to acidity of the molecular sieve.
- the support of the hydrotreating catalyst can comprise molecular sieves as described above provided that the acid sites of the molecular sieve are neutralized with, for example, alkali or alkaline earth cations.
- the acidic protons in the molecular sieve can be ion exchanged with non acidic cations such as sodium or potassium cations.
- the hydrotreating catalyst support can comprise layered materials such as clays (natural or synthetic).
- Clays can be described as phyllosilicates wherein sheets of silicon ions are tetrahedrally co-ordinated and sheets of metal ions are octahedrally and/or tetrahedrally co-ordinated by oxygen atoms.
- Clays can be acidic due to the incorporation of protons into the clay structure or into the interstitial space between layers. Acidic protons can be replaced by non-acidic cations such as sodium, potassium, magnesium, and the like. By replacing some or all of the acidic protons with non-acidic cations, the acidity of the clay can be reduced.
- hydrotreating catalyst used in the process and catalyst system of the invention will have low acidity.
- low acidity it is meant that there are few or no Bronsted and/or Lewis acid sites in the support or the Bronsted and/or Lewis acid sites have been neutralized by, for example, the ion exchange of acidic protons for nonacidic cations in the case of Bronsted acidity.
- the molecular sieve if present as the support or a component of the support in the hydrotreating catalyst, preferably contains an alkali metal and/or an alkaline earth metal.
- the alkali or alkaline earth metals are incorporated into the catalyst support during or after synthesis of the hydrotreating catalyst.
- at least 90% of the acid sites in the catalyst support are neutralized by introduction of the nonacidic cations, more preferably at least 95%, and most preferably at least 99%.
- the number and the strength of potential acid sites can be determined using any of a number of methods known to the art.
- N. Topscpe, et.al., Infrared and Temperature-Programmed Desorption Study of the Acidic Properties of ZSM-5-Type Zeolites, J. Catalysis 70, 41-52(1981) describes infrared (IR) methods for studying acid- type catalysts.
- IR infrared
- acid site density is measured using finished catalysts which have been reduced in 1 atmosphere of hydrogen at about 400° F.
- a useful IR method includes heating a catalyst sample, in the form of a self-supporting wafer, under vacuum (about 10 "6 torr) at 500° C. to remove volatiles from the catalyst, especially water. The catalyst sample is maintained at 450° C.
- the catalyst sample is then dosed with a known amount of pyridine vapor (at approximately 1 torr pressure) which had been previously dried over activated Linde 5A molecular sieve and degassed using conventional freeze-pump-thaw techniques.
- An infrared spectra is taken of the sample, using, for example, a Nicolet 60SXR Fourier Transform Infrared (FT-IR) spectrometer.
- FT-IR Fourier Transform Infrared
- the catalyst sample saturated with pyridine is further saturated with water vapor, and the infrared spectra scanned again. Adding water vapor will shift the ratio of Bronsted/Lewis acid site density.
- the peak areas of the two infrared scans provide enough detail for calculating the amount of pyridine adsorbed on the Bronsted and on the Lewis acid sites.
- the total acid site density is the sum of the site densities of the Lewis and Bronsted acids.
- Another method of measuring the acidity of a catalyst or catalyst support is ammonia adsorption/desorption. For example, ammonia, or another nitrogen base, is adsorbed onto the catalyst. Total ammonia adsorbed can be determined by, for example, weighing the catalyst before and after ammonia adsorption.
- the adsorbed ammonia can then be desorbed by heating the sample stepwise and monitoring desorption by mass changes. This method can give an estimate of acid sites as well as the strength of acid sites (due to ease or difficulty in desorbing ammonia) present in the catalyst.
- the techniques for determining catalyst acidity measure the number of acid sites in units of milliequivalents (meq) per gram of catalyst.
- milliequivalents refers to 1 millimole of Lewis or Bronsted acid sites.
- the amount of adsorbed base is related to the acid site density, and the number of acid sites on which each adsorbent molecule will adsorb.
- An acid site density of 1 meq/gm catalyst is equivalent to having 1 millimole of base adsorb on a gram of catalyst, when each molecule of base adsorbs on a single acid site.
- the hydrotreating catalyst used in the process of the present invention will contain less than 0.25 meq/g, more preferably less than 0.15 meq/g, and most preferably less than 0.1 meq/g.
- Decalin conversion at 700°F was used to determine whether a hydrotreating catalyst could be used in the process and catalyst system of the invention.
- “Decalin conversion” refers to the cracking of decalin to yield lower molecular weight products.
- hydrotreating catalysts with a decalin conversion of less than about 10% at 700°F can be used in the process and catalyst system of the invention.
- Decalin conversion is an indirect measure of the acidity of the hydrotreating catalyst.
- the pore size distribution and pore volume of the hydrotreating catalyst can vary.
- the pores may be macroporous, mesoporous, or a combination thereof.
- the term “macroporous” refers to a catalyst having greater than 5% of its pores as measured by mercury porosimetry of greater than about 100 nm in diameter.
- the term “mesoporous” refers to a catalyst having greater than about 95% of its pores less than 100 nm in diameter as measured by mercury porosimetry.
- the hydrotreating catalyst comprises a support with mesopores and/or macropores and a relatively large amount of pore volume greater than about 0.1 cm 3 /g, more preferably greater than about 0.2 cm 3 /g, and most preferably greater than about 0.3 cm 3 /g.
- Pore size distribution for the catalysts employed in the present invention is determined using mercury intrusion porosimetry as described, for example, in ASTM D4284, "Pore Volume Distribution of Catalysts by Mercury Intrusion Porosimetry.”
- the hydrogenation reaction performed by the hydrotreating catalyst takes place in the presence of hydrogen, preferably at hydrogen pressures in the range of between about 500 psia and 4000 psia, more preferably in the range of about 900 psia to about 3000 psia.
- the feed rate to the hydrotreating catalyst when the hydrotreating catalyst is in the same reactor as the dewaxing catalyst, is in the range of from about 3 to about 50 LHSV and preferably in the range of about 5 to about 15 LHSV.
- the hydrotreating catalyst is in a separate reactor than the dewaxing catalyst the feed rate is in the range of about 0.2 to about 5.0 LHSV, preferably in the range of about 0.2 to about 2.0 LHSV.
- the hydrogen supply (makeup and recycle) is in the range of from about 1500 to about 10,000 standard cubic feet per barrel of lubricating oil base stock, preferably in the range of from about 2000 to about 5,000 standard cubic feet per barrel.
- the hydrotreating catalyst can be run at a variety of temperatures depending on the desired product and the type of feed.
- the hydrotreating catalyst is able to effectively hydrogenate aromatics in the feedstock to form an effluent.
- effectively hydrogenate aromatics it is meant that the hydrotreating catalyst is able to decrease the aromatic content of the feedstock by at least 10%, preferably by at least 20%, and most preferably by at least 30%.
- the hydrotreating catalyst is in the same reactor as the dewaxing catalyst and thus the dewaxing catalyst and hydrotreating catalyst are at the same temperature.
- a typical temperature range for the process of the invention is between about 450°F -750°F.
- the temperature is between about 600°F -700°F.
- the temperature is between about 600°F -675 °F.
- the dewaxing catalyst is a hydrodewaxing catalyst comprising a hydrogenating component and an acidic component on a support such as a porous inorganic oxide.
- Suitable inorganic oxide supports include silica, alumina, titania, magnesia, zirconia, silica-alumina, silica-magnesia, silica-titania and the like with alumina being preferred.
- the dewaxing catalyst also comprises an acidic component which may be the support itself or a molecular sieve such as a zeolite, clay, or combination thereof dispersed in the support.
- acidic components include an intermediate pore crystalline molecular sieve having cracking activity, such as silicalite or the aluminosilicate zeolite ZSM-5.
- the dewaxing catalysts include one or more Group VIII and/or Group VIB metals, an alumina support, and an intermediate pore molecular sieve.
- Such catalysts can be produced, for example, by extruding a mixture of a 30 wt % molecular sieve dispersion in 70 wt % alumina followed by impregnation of the Group VIII and/or Group VIB metals.
- the dewaxing catalyst used in the present invention comprises 1) a hydrogenation component and 2) an acidic component.
- Preferred hydrogenation components are Group VIII metals such as platinum and/or palladium.
- Preferred acidic components are medium pore molecular sieves.
- the dewaxing catalyst used in the present invention comprises a hydrogenation component.
- Hydrogenation can be defined as a chemical reaction which results in an addition of hydrogen to organic compounds. Examples of hydrogenation reactions include the addition of hydrogen to alkenes to give alkanes, the addition of hydrogen to aromatic compounds to give cycloalkanes, and addition of hydrogen to aldehydes to give alcohols.
- Group VIII metals are preferred hydrogenation components in the dewaxing catalysts used in the process of the present invention.
- metal or active metal as used herein means one or more metals in the elemental state or in some form such as sulfide, oxide and mixtures thereof. Therefore, the Group VIII metal utilized in the process of this invention can mean one or more of the metals in its elemental state or in some form such as the sulfide or oxide and mixtures thereof. Regardless of the state in which the metal component actually exists, the concentrations are computed as if they existed in the elemental state.
- the Group VIII metal used in the dewaxing comprises platinum, palladium, and mixtures thereof.
- other catalytically active metals such as molybdenum, nickel, vanadium, cobalt, tungsten, rhodium, ruthenium, zinc, iridium, gold, silver, osmium and mixtures thereof can be included in the hydrogenation component of the dewaxing catalyst.
- the amount of metal ranges from about 0.01 to about 10 wt. % of the dewaxing catalyst, preferably from about 0.1 to about 5 wt. %, and more preferably from about 0.2 to about 1 wt. %.
- the amount of Group VIII metal used in the hydrogenating component of the dewaxing catalyst can vary, provided that there is sufficient active metal to act as a catalyst in the hydrogenation of the hydrocarbon feedstock. Generally, adding greater than about 1 wt. % of the Group VIII metal does not significantly improve on the activity of the catalyst and is therefore economically disadvantageous.
- the Group VIII metal is dispersed on a support.
- the support is an inorganic oxide.
- the support may be catalytically active or inactive, provide that the support provides sufficient surface area to disperse the Group VIII metal.
- promoter metals can be added to the catalyst.
- 7,390,394 gives examples of inorganic oxides with catalytically active metals and promoters and is herein incorporated by reference in its entirety.
- a number of methods are known in the art to deposit platinum and palladium metal or compounds comprising platinum and/or palladium onto the support, such as, for example, ion exchange, impregnation, and coprecipitation.
- the dewaxing catalyst further comprises an acidic component.
- the acidic component is selected from the group consisting of molecular sieves, amorphous inorganic oxides, and clays.
- the acid component is a medium pore molecular sieve such as a medium pore zeolite, silicoalummophosphate, or borosilicate.
- the acid component is a one-dimensional (1-D) medium pore molecular sieve, wherein "one- dimensional" is defined herein as a system of non-intersecting parallel one-dimensional channels.
- the classification of intrazeolite channels as 1-, 2-, or 3 -dimensional is set forth by R. M. Barrer in Zeolites, Science and Technology, edited by F. R.
- 1-D zeolites include cancrinite hydrate, laumontite, mazzite; mordenite and zeolite L.
- the pores of the medium pore molecular sieve are oval in shape, by which is meant the pores exhibit two unequal axes referred to herein as a minor axis and a major axis.
- the term oval as used herein is not meant to require a specific oval or elliptical shape but rather to refer to the pores exhibiting two unequal axes.
- the 1-D pores of the catalysts useful in the practice of the present invention can have a minor axis between about 3.9 A and about 4.8 A. and a major axis between about 5.4 A. and about 7.1 A as determined by conventional X-ray crystallography measurements.
- SAPO-11 comprises a molecular framework of corner-sharing [Si0 2 ] tetrahedra, [A10 2 ] tetrahedra and [P0 2 ] tetrahedra, [i.e., (S x Al y P z )0 2 tetrahedral units].
- SAPO-11 converts the waxy components of the waxy feedstock to produce a lubricating oil having excellent yield, very low pour point, low viscosity and high viscosity index.
- SAPO-11 is disclosed in detail in U.S.
- the medium pore size molecular sieve is preferably SAPO- 11 , SM-3, SSZ-32, ZSM 22, or ZSM 23.
- Medium pore size molecular sieve catalysts are taught in U.S. Pat. No. 5,282,958, U.S. Pat. No. 7,468,126, U.S. Pat. No. 6,204,426, and WO 99/45085, herein incorporated by reference.
- the dewaxing catalyst can comprise amorphous inorganic oxides, such as silica, alumina, titania, zirconia, magnesia, or combinations thereof.
- the inorganic oxide is porous, preferably mesoporous and can contributed to the dewaxing activity of the catalyst by providing acidic sites.
- the amorphous inorganic oxide can be non-reactive in that it acts only as a support for the hydrogenation component and acidic component of the dewaxing catalyst but does not impart any catalytic activity itself.
- the support should have a pore size and distribution which is adequate to permit the relatively bulky components of the high boiling feeds to enter the interior pore structure of the catalyst where the desired hydroprocessing reactions occur.
- the catalyst will normally have a minimum pore size of about 40 A, i.e., with no less than about 5% of the pores having a pore size less than 40 A pore size, with the majority of the pores having a pore size in the range of 40-400 A, preferably with no more than about 30% having pore sizes in the range of 200-400 A.
- Preferred catalysts for the first stage have at least 60% of the pores in the 40-200 A range.
- the inorganic oxide can contribute acidic sites to the dewaxing catalyst to enhance the activity of the dewaxing catalyst.
- the inorganic oxide can act as a non-reactive support for the hydrogenation component (i.e. a noble metal such as platinum) and the acidic component (i.e. an acidic zeolite).
- the inorganic oxide can be in the form of a cogel.
- the dewaxing catalyst comprises alumina, a noble metal, and a zeolite.
- the dewaxing catalyst comprises from 15 wt.% to 85 wt.% zeolite composited with an alumina or silica inorganic oxide binder.
- binders such as alumina can be added during the preparation of the dewaxing catalyst.
- the binder can comprise from 0 wt.% to 95 wt.%) of the dewaxing catalyst, preferably from 15 wt.%> to 85 wt.%>.
- the techniques of introducing catalytically active metals into a molecular sieve are known, and preexisting metal incorporation techniques and treatment of molecular sieves to form an active catalyst such as ion exchange, impregnation or occlusion during sieve preparation are suitable for use in the present invention. Dewaxing Conditions
- the dewaxing catalyst reaction takes place in the presence of hydrogen, preferably at hydrogen pressures in the range of between about 500 psia and 4000 psia, more preferably in the range of about 900 psia to about 3000 psia.
- the feed rate to the dewaxing catalyst is in the range of from about 0.2 to about 5.0 LHSV, preferably in the range of about 0.5 to about 2.5 LHSV.
- the hydrogen supply makeup is in the range of from about 100 to about 15,000 standard cubic feet per barrel of lubricating oil base stock, preferably in the range of from about 250 to about 1 ,500 standard cubic feet per barrel.
- the hydrogen recycle is in the range of from about 250 to about 10,000 standard cubic feet per barrel of lubricating oil base stock, preferably in the range of from about 2500 to about 5,000 standard cubic feet per barrel.
- the temperature can range from about 450°F to about 750°F, preferably from about 550°F to about 725°F, and most preferably from about 600°F to about 675°F.
- the process of the invention produces a lubricant oil.
- the lubricant oil has a pour point less than about 0°C, preferably less than about -5°C, and most preferably less than about -10°C as measured by ASTM D-97.
- the lubricant oil product has a pour point in the range of -10°C to -45°C.
- the lubricant oil product can be further hydrotreated over one or more hydrotreating catalysts including hydrofinishing catalysts to achieve the desired final lubricant oil product characteristics.
- the lubricant oil product from the dewaxing catalyst reaction zone can be mildly hydrotreated or hydrofinished to remove colored materials or hydrogenate aromatic species in order to meet the desired lubricant oil specifications.
- the final lubricant oil product will be a lubricant oil with an initial boiling point in the range of 600 to 1000° F and an end boiling point in the range of 750 to greater than 1300°F.
- the lubricant oil products generally have viscosities in the range of 3 to 30 cSt at 100°C. and viscosity indexes in the range of 95 to 170 as measured by ASTM D445.
- Example 1 Catalyst A was made using an alumina base having a surface area of 150 m 2 /g as calculated by nitrogen adsorption/desorption, an Hg intrusion volume of 0.84 cc/g, and a macropore volume of 0.075 cc/g. 20 grams (volatiles free basis) of alumina base was impregnated by incipient wetness with a solution of 0.16 grams of chloroplatinic acid and 0.2 grams of palladium dichloride in 18 ml of 1% HC1 in deionized water to form a reaction mixture. The reaction mixture was allowed to soak for 24 hours before being dried at 150°C for 1 hour followed by calcination at 300°C for an additional hour to form the finished hydrotreating catalyst.
- the finished hydrotreating catalyst had a Pt and Pd content of 0.3 wt.% and 0.6 wt.%, respectively.
- Catalyst B was made from a mixture of 80% pseudoboehmite alumina (Versal 250 alumina, UOP), 10% boehmite alumina (Catapal B, Sasol), and 10% milled calcined alumina fines (smaller than 325 Tyler mesh). The alumina powders were dry mixed for 10 minutes in a Baker-Perkins mixer before being sprayed with a solution containing 4% nitric acid to a volatiles target of 62% to form a wet dough.
- the wet dough was mixed for a total of 30 minutes before transferring to a Loomis RAM extruder and pressed through 1/16" die inserts to form an extrudate.
- the extrudate was dried at 130°C for 30 minutes with high air flow and calcined at 680°C in air for 1 hour to form a calcined alumina base.
- the resulting calcined alumina base had a surface area of 260 m 2 /g as calculated by nitrogen adsorption/desorption, an Hg intrusion volume of 0.62 cc/g and a macropore volume of 0.001 cc/g.
- the calcined alumina base was then impregnated with Pt and Pd using the same procedure outlined in Example 1.
- the finished catalyst had a Pt and Pd content of 0.3 wt.% and 0.6 wt.%, respectively.
- Catalyst C was made using an alumina base having a surface area of 192 m 2 /g, as calculated by nitrogen adsorption/desorption, an Hg intrusion volume of 0.75 cc/g, and a macropore volume of 0.01 cc/g.
- alumina base having a surface area of 192 m 2 /g, as calculated by nitrogen adsorption/desorption, an Hg intrusion volume of 0.75 cc/g, and a macropore volume of 0.01 cc/g.
- Ninety nine grams (volatiles free basis) of the alumina base was impregnated by incipient wetness with a 9.7 pH adjusted aqueous solution of 3.1% Pt as the tetraamine dinitrate salt to form a reaction mixture.
- the reaction mixture was allowed to soak for 24 hours before being dried at 150°C for 1 hour followed by calcination at 370°C for an additional hour to form a finished catalyst.
- Catalyst D was made from a mixture of 75% pseudoboehmite alumina (Versal 250 alumina, UOP), 5% boehmite alumina (Catapal B, Sasol), and 20% milled calcined alumina fines (smaller than 325 Tyler mesh).
- the alumina powders were dry mixed for 10 minutes in a small Littleford mixer before being sprayed with a solution containing 1.7% nitric acid to a volatiles target of 60% to form a wet dough.
- the wet dough was mixed for total of 10 minutes before being back neutralized with a solution of 15% NH 4 OH to a final volatiles target of 61% and mixed for an additional
- the resulting wet mix was transferred to a Bonnot extruder equipped with a 2" auger and extruded through 1/16" die inserts to form an extrudate.
- the extrudate was dried at 130°C for 30 minutes with high air flow and calcined at 815°C in air for 1 hour to form an alumina base.
- the alumina base had a surface area of 185 m 2 /g, as calculated by nitrogen adsorption/desorption, an Hg intrusion volume of 0.84 cc/g, and a macropore volume of 0.05 cc/g.
- Example 5 Catalyst E was made using the same calcined alumina base described in Example 4. Ten grams (volatiles free basis) of calcined alumina base was
- reaction mixture was allowed to soak for 24 hours before being dried at 150°C for 1 hour followed by calcination at 300°C for an additional hour to from the finished hydrotreating catalyst.
- the finished hydrotreating catalyst had a Pt and Pd content of 0.3 wt.% and 0.6 wt.%, respectively.
- Catalyst F was made from a silica alumina base using a recipe previously described in Example 2 of US 5,393,408, herein incorporated by reference.
- the silica alumina base had a surface area of 415 m 2 /g, as calculated by nitrogen
- the finished hydrotreating catalyst had a Pt and Pd content of 0.3 wt.%) and 0.6 wt.%>, respectively.
- Example 7 Catalyst G was made from the same silica alumina base described in Example 6, and impregnated with platinum and palladium using the same procedure as described in Example 6 with the exception that the platinum and palladium content was 0.2 wt.% and 0.16 wt.%, respectively.
- Example 8 Catalyst H was made from a mixture of 82% silica-alumina with an alumina to silica ratio of 70:30 (Siral 30, Sasol), 14% boehmite alumina (Catapal B, Sasol), and 4% milled calcined silica-alumina fines (less than 350 mesh).
- the alumina and silica-alumina powders were dry mixed for 20 minutes in a small Baker-Perkins mixer before being sprayed with a solution containing 4% nitric acid to a volatiles target of 62% to from a wet dough.
- the wet dough was mixed for a total of 30 minutes before transferring to a Loomis RAM extruder and pressed through 1/16" die inserts to from an extrudate.
- the extrudate was dried for 130°C for 30 minutes with high air flow and calcined at 680°C in air for 1 hour to form a silica-alumina base.
- the resulting silica-alumina base had a surface area of 400 m 2 /g, as calculated by nitrogen adsorption/desorption, an Hg intrusion volume of 0.74 cc/g and a macropore volume of 0.03 cc/g.
- Catalyst J was made from the same silica-alumina base as described in Example 6, and impregnated with platinum and palladium using the same procedure as described in Example 6 with the exception that 16.4 grams of MgN0 3 2H 2 0 (magnesium nitrate dehydrate) was added to the impregnation solution to suppress silica-alumina base acidity.
- the finished catalyst had a platinum and palladium content of 0.3 wt.%> and 0.6 wt.%>, respectively, and a magnesium content of 3 wt.%>.
- Example 10 Example 10
- Catalyst K was made from the same silica-alumina base as described in Example 6, and impregnated with Pt and Pd using the same procedure as described in example 6 with the exception that 24.6 grams of MgN0 3 2H 2 0 (magnesium nitrate dehydrate) was added to the impregnation solution to suppress silica-alumina base acidity.
- the finished catalyst had a platinum and palladium content of 0.3 wt.% and 0.6 wt.%, respectively, and a magnesium content of 4.5 wt.%.
- Example 11 Catalyst L was made from the same silica-alumina base as described in Example 6, and impregnated with Pt and Pd using the same procedure as described in Example 6 with the exception that 5.6 grams of Na 2 N0 3 (sodium nitrate) was added to the impregnation solution to suppress silica-alumina base acidity.
- the finished catalyst had a platinum and palladium content of 0.3 wt.% and 0.6 wt.%, respectively, and a sodium content of 3 wt.%.
- Catalyst M was made from the same silica-alumina base as described in Example 6, and impregnated with platinum and palladium using the same procedure as described in Example 6 with the exception that 11.3 grams of Na 2 N0 3 (sodium nitrate was added to the solution to suppress silica-alumina base acidity.
- the finished catalyst had a platinum and palladium content of 0.3 wt.% and 0.6 wt.%, respectively, and a sodium content of 6 wt.%.
- Hydrotreating catalysts A-M were tested for use in the layered catalyst system of the invention.
- the hydrotreating catalysts with a cracking activity, as measured by decalin conversion, of less than 10% at 700°F can be used in the process and catalyst system of the invention.
- the cracking activity of the hydrotreating catalysts was evaluated using a model feed mixture composed of 42% cis and 58% trans decahydronaphthalene a.k.a. decalin (C-10).
- C-10 trans decahydronaphthalene
- the exact ratio of cis and trans decalin in the feed mix is not expected to be critical as long as the respective components do not differ by more than +/- 5% from this composition. Decalin conversion
- the WHSV, gas rate, and unit pressure was held constant. Analysis of the feed and product hydrocarbon distributions was conducted using online GC analysis. For all catalytic testing, the catalysts were reduced and dried out in flowing H 2 and then pre-treated with an amine solution prior to introducing the decalin model compound feed.
- H 2 flow was adjusted to 160 mis/minute at ambient pressure.
- the catalysts residual cracking activity was based on the conversion of cis+ trans decalin to cracked products at 700°F relative to 500°F (where no conversion to light products is expected).
- the ring opening conversion of decalin to other C 10 isomers are grouped together as non-cracked products on a weight percent basis.
- the Iso Decalin group will be defined as those products with molecular weights greater than nC9 and including trans decalin. No discrimination is made regarding the relative distribution of different light cracked products.
- hydrotreating catalysts A-M described in Examples 1 through 12 were all evaluated for cracking activity using the decalin conversion test outlined above. These results are summarized below:
- Hydrotreating catalysts A,B,C,D,J,K,L,and M with a decalin conversion of less than 10% are used in catalyst systems of the invention and in the process of the invention.
- the hydrotreating catalysts A,B,C,D,J,K,L,and M with a decalin conversion of less than 10% maintain lubricant oil product yield at a target pour point within 2% over a dewaxing temperature range when used in the layered catalyst system of the invention.
- the hydrotreating catalysts A,B,C,D,J,K,L,and M with a decalin conversion of less than 10% maintain lubricant oil product yield at a target pour point over a dewaxing temperature range when used in the process of the invention.
- Catalysts F, G, and H result in a yield loss of lubricant oil greater than 2% at a target pour point over a dewaxing temperature range.
- a waxy hydrocrackate with an API of 32.5, with 10% wax content and a viscosity at lOOC of 5.4 est was dewaxed over a hydrotreating reaction zone, a dewaxing reaction zone, and a hydrofinishing reaction zone.
- the hydrotreating catalyst in the hydrotreating reaction zone was 0.64 wt.% Pt on a nonacidic, potassium neutralized, L-zeolite support with an expected decalin conversion of less than 10%.
- the dewaxing catalyst in the dewaxing reaction zone was 0.325 wt.% Pt on a bound zeolitic catalyst containing 65% SSZ-32 on alumina.
- the hydrofinishing catalyst in the hydrofinishing reaction zone was 0.2% Pt, 0.16% Pd bound on Siral 40 and alumina.
- the process conditions used were 1.0 LHSV, 4000 scf/ bbl gas to oil ratio and 2300 psig total pressure and the target pour point was -15°C.
- the reaction temperature was 450°F for the hydrotreating reaction zone, 600-650 °F for the dewaxing reaction zone (adjusted to achieve a target pour point of -15°C), and 450°F for the hydrofinishing reaction zone.
- the yield of lubricant oil was 91%.
- a waxy hydrocrackate with an API of 32.5, with 10% wax content and a viscosity at lOOC of 5.4 est was dewaxed over a first reaction zone, a second reaction zone, and a third reaction zone.
- the hydrotreating catalyst in the first reaction zone was 0.64 wt.%) Pt on a nonacidic, potassium neutralized, L-zeolite support with an expected decalin conversion of less than 10%.
- the dewaxing catalyst in the second reaction zone was 0.325 wt.% Pt on a bound zeolitic catalyst containing 65% SSZ-32 on alumina.
- the hydrofinishing catalyst in the third reaction zone was 0.2% Pt, 0.16% Pd bound on Siral 40 and alumina.
- the process conditions used were 1.0 LHSV, 4000 scf/ bbl gas to oil ratio and 2300 psig total pressure and the target pour point was -15°C.
- the reaction temperature was 650°F for the hydrotreating reaction zone, 600- 650 °F for the dewaxing reaction zone (adjusted to achieve a target pour point of - 15°C), and 450°F for the hydrofinishing reaction zone.
- the yield of lubricant oil was 90.5%.
- Example 15 (Comparative).
- Example 15 was run under the same conditions as Example 13 without the hydrotreating reaction zone. Lubricant oil yield was 89%. Results and reaction conditions for Examples 13-15 are summarized in Table 2, below.
- Example 13-14 above illustrate the maintenance in lubricant oil yield at a target pour point within about 2% at dewaxing temperatures (450°F and 650°F) when using the process of the invention.
- Example 15 shows the yield of lubricant oil without the hydrotreating layer.
- a waxy hydrocrackate with an API of 30.6, with 12 % wax content and a viscosity at 100°C of 6.15 est was dewaxed over a first reaction zone, a second reaction zone, and a third reaction zone.
- the hydrotreating catalyst in the first reaction zone was Catalyst G with a decalin conversion of 65%.
- the dewaxing catalyst in the second reaction zone was 0.325 wt.% Pt on a bound zeolitic catalyst containing 65% SSZ-32 on alumina.
- the hydrofinishing catalyst in the third reaction zone was also Catalyst G.
- the process conditions were 1.6 LHSV based on the dewaxing reaction zone, 4000 scf/ bbl gas to oil ratio and 2300 psig total pressure; LHSV for the first zone was 10 hr _1 .
- the product target pour point was -15°C which required the dewaxing zone to be maintained at 645 °F -655°F.
- the reaction temperature for the hydrotreating reaction zone was varied from 250°F to 700°F; and the hydrofinishing reaction zone was maintained at 450 °F.
- the temperatures of reaction zone one were varied from 650 °F -700 °F to assess the impact of temperature on the lubricant oil yield.
- the yield of lubricant oil was 94 ⁇ 1% for the temperature range from 170 °F -600 °F of the first reaction zone.
- the yield dropped by 2% to 92% when the first reaction zone was maintained at 650°F.
- the drop in yield was approximately 4% at 665 °F, and even larger at temperatures of 680°F and 700°F.
- the lubricant oil yield was 93.5%>. Results are summarized in Table 3.
- a waxy hydrocrackate with an API of 38.9, with 33% wax content and a viscosity at 100 °C of 4.1 cSt was dewaxed over a first reaction zone, a second reaction zone, and a third reaction zone.
- the hydrotreating catalyst in the first reaction zone was a catalyst with 0.5 wt.% Pt and 0.5 wt.% Li impregnated on an alumina support with an expected decalin conversion of ⁇ 10%.
- the dewaxing catalyst in the second reaction zone was a 1.24 wt.% Ca ion-exchanged on a HSSZ-32 zeolite powder, which was then impregnated with 0.5 wt.% Pt..
- the hydro finishing catalyst in the third reaction zone was Catalyst G.
- the process conditions were 0.85 Hr 1 LHSV based on the dewaxing reaction zone, 4000 scf/ bbl gas to oil ratio and 2300 psig total pressure; LHSV for the first zone was also 0.85.
- the product target pour point was -15°C which required the dewaxing zone to be maintained at 595°F to 608°F.
- the reaction temperature is for the hydrotreating reaction zone was varied from 450°F to 650°F; and the hydro finishing reaction zone was maintained at 450°F.
- the yield of lubricant oil was 74%) ⁇ 0.5.
- the lube yield from the second and third reaction zones was 75%. Results are summarized in Table 4.
- a waxy hydrocrackate with an API of 38.9, with 33% wax content and a viscosity at 100 °C of 4.1 cSt was dewaxed over a first reaction zone, a second reaction zone, and a third reaction zone.
- the hydrotreating catalyst in the first reaction zone was Catalyst G with a decalin conversion of 65%.
- the dewaxing catalyst in the second reaction zone was a 1.24 wt.% Ca ion-exchanged on a zeolitic support of SSZ-32 zeolite, which was then impregnated with 0.5 wt% Pt.
- the hydrofinishing catalyst in the third reaction zone was Catalyst G.
- the process conditions were 0.85 LHSV, 4000 scf/ bbl gas to oil ratio and 2300 psig total pressure.
- the product target pour point was approximately -40°C which required the dewaxing zone to be maintained at 610°F -630°F.
- the reaction temperature for the hydrotreating reaction zone was 650 °F; and the hydrofinishing reaction zone was maintained at 450°F.
- the yield of lubricant oil is shown in Table 5 below. When compared with a system lacking a hydrotreating layer, but run under similar conditions, the lubricant oil yield was approximately 18% greater for the system without the hydrotreating layer.
- Example 16 and 18 above illustrates the loss of lubricant oil yield (> 2%) at a target pour point at dewaxing temperatures (650°F and above) when using a catalyst exhibiting high decalin conversion in the hydrotreating layer preceding the dewaxing layer.
- Example 17 (Table 4) shows the maintenance of yield of lubricant oil when the catalyst in the hydrotreating layer has a low decalin conversion.
- Example 19 (Table 4) shows the maintenance of yield of lubricant oil when the catalyst in the hydrotreating layer has a low decalin conversion.
- a waxy hydrocrackate with an API of 34.8 with a wax content of 35% and a viscosity at 100 °C of 7.9 cSt was dewaxed over a first reaction zone, a second reaction zone, and a third reaction zone.
- the hydrotreating catalyst in the first reaction zone was Catalyst D with a decalin conversion of 2.7%.
- the dewaxing catalyst in the second reaction zone was a bound noble metal zeolitic catalyst with 65% zeolite SSZ-32 bound with alumina and containing 0.325 wt.% Pt and promoted with magnesium.
- the hydro finishing catalyst in the third reaction zone was Catalyst G.
- the process conditions were 2.0 LHSV based on the combined hydrotreating and dewaxing reaction zones, 4000 scf/ bbl gas to oil ratio and 2300 psig total pressure; LHSV for the first zone was 6.7 and for the second was 2.4.
- the product target pour point was - 16° C which required the dewaxing zone to be maintained at 680°F.
- the reaction temperature for the hydrotreating reaction zone was kept the same as the temperature of the dewaxing zone, and the hydrofinishing reaction zone was maintained at 450°F.
- the yield of lubricant oil was 87.6 %>. Data is also presented at a similar product pour point in the absence of the first reaction zone, which requires a temperature of 665 °F and leads to a measured yield of 85%>.
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| PCT/US2011/030763 WO2012134484A1 (en) | 2011-03-31 | 2011-03-31 | Novel process and catalyst system for improving dewaxing catalyst stability and lubricant oil yield |
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| US10227539B2 (en) | 2014-06-09 | 2019-03-12 | Exxonmobil Research And Engineering Company | Noble metal hydrogenation catalysts and aromatic saturation methods |
| CN104645976A (en) * | 2015-03-06 | 2015-05-27 | 中国海洋石油总公司 | Catalyst for preparing decahydronaphthalene and preparation method of catalyst |
| WO2018005094A1 (en) * | 2016-06-30 | 2018-01-04 | Exxonmobil Research And Engineering Company | Noble metal hydrogenation catalysts and aromatic saturation methods |
| CN107541291B (en) * | 2017-09-04 | 2019-11-15 | 吴江华威特种油有限公司 | A kind of preparation method of function lubricating oil |
| JP2019171337A (en) * | 2018-03-29 | 2019-10-10 | Jxtgエネルギー株式会社 | Hydrogenation catalyst and method for producing low aromatic solvent |
| KR102009364B1 (en) * | 2018-11-02 | 2019-08-09 | 에스케이이노베이션 주식회사 | Catalyst for Hydrofinishing and Production Method of Lubricating Base Oil using Thereof |
| US20220154086A1 (en) * | 2019-03-28 | 2022-05-19 | Eneos Corporation | Method for producing lubricant base oil |
| US12049597B2 (en) * | 2019-11-15 | 2024-07-30 | Alliance For Sustainable Energy, Llc | High octane synthetic fuels |
| EP4288203A1 (en) | 2021-02-03 | 2023-12-13 | ExxonMobil Technology and Engineering Company | Dewaxing catalysts and processes using the same |
| US12090468B2 (en) * | 2021-03-11 | 2024-09-17 | Chevron U.S.A. Inc. | High nanopore volume hydrotreating catalyst and process |
| KR20230058973A (en) * | 2021-10-25 | 2023-05-03 | 에스케이이노베이션 주식회사 | A Catalyst for selective ring-opening reaction, and method of using the same |
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| US4943672A (en) * | 1987-12-18 | 1990-07-24 | Exxon Research And Engineering Company | Process for the hydroisomerization of Fischer-Tropsch wax to produce lubricating oil (OP-3403) |
| US5302279A (en) * | 1992-12-23 | 1994-04-12 | Mobil Oil Corporation | Lubricant production by hydroisomerization of solvent extracted feedstocks |
| US5885438A (en) * | 1993-02-12 | 1999-03-23 | Mobil Oil Corporation | Wax hydroisomerization process |
| US5371312A (en) * | 1993-04-05 | 1994-12-06 | Mobil Oil Corp. | Shape selective hydrocarbon conversions over modified catalyst |
| CN1046755C (en) * | 1993-10-08 | 1999-11-24 | 阿克佐诺贝尔公司 | Process for hydrocracking and hydrodewaxing of waxy hydrocarbon feedstock |
| EP0782608A4 (en) * | 1994-09-08 | 1998-08-05 | Mobil Oil Corp | Wax hydroisomerization process |
| US5565086A (en) * | 1994-11-01 | 1996-10-15 | Exxon Research And Engineering Company | Catalyst combination for improved wax isomerization |
| US5977425A (en) * | 1994-11-22 | 1999-11-02 | Exxon Research And Engineering Co | Method for upgrading waxy feeds using a catalyst comprising mixed powdered dewaxing catalyst and powdered isomerization catalyst formed into a discrete particle |
| US6569313B1 (en) * | 1995-12-22 | 2003-05-27 | Exxonmobil Research And Engineering Company | Integrated lubricant upgrading process |
| US5976351A (en) * | 1996-03-28 | 1999-11-02 | Mobil Oil Corporation | Wax hydroisomerization process employing a boron-free catalyst |
| AU724363B2 (en) * | 1996-07-15 | 2000-09-21 | Chevron U.S.A. Inc. | Layered catalyst system for lube oil hydroconversion |
| US6475374B1 (en) * | 1998-02-13 | 2002-11-05 | Exxonmobil Research And Engineering Company | Production of lubricating oils by a combination catalyst system |
| US7261805B2 (en) * | 1999-02-24 | 2007-08-28 | Exxonmobil Research And Engineering Company | Process for catalytic dewaxing and catalytic cracking of hydrocarbon streams |
| US6392109B1 (en) * | 2000-02-29 | 2002-05-21 | Chevron U.S.A. Inc. | Synthesis of alkybenzenes and synlubes from Fischer-Tropsch products |
| CN1703494A (en) * | 2002-10-08 | 2005-11-30 | 埃克森美孚研究工程公司 | Integrated process for catalytic dewaxing |
| AU2008258597A1 (en) * | 2007-06-05 | 2008-12-11 | Nsab, Filial Af Neurosearch Sweden Ab, Sverige | New disubstituted phenylpyrrolidines as modulators of cortical catecholaminergic neurotransmission |
| EP2155840B1 (en) * | 2007-06-13 | 2018-03-21 | ExxonMobil Research and Engineering Company | Integrated hydroprocessing with high productivity catalysts |
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