Claims
- 1. A hydrocarbon upgrading process comprising contacting a hydrocarbon feedstock containing components boiling above 650.degree. F., including polynaphthenic compounds in a concentration greater than 18.8 percent by weight of the components boiling above 650.degree. F., with a catalyst in the presence of hydrogen under conditions of elevated temperature above 700.degree. F. and elevated pressure so as to hydrocrack at least some of said polynaphthenic compounds and increase the viscosity index of the components boiling above 650.degree. F., said catalyst comprising:
- (1) a heterogeneous carrier composite of about 10 to 50 weight percent of a silica-alumina cogel or copolymer having a SiO.sub.2 /Al.sub.2 O.sub.3 weight ratio of about 50/50 to 85/15 dispersed in a large pore alumina gel matrix, the composite carrier having a surface area between about 200 and 700 m.sup.2 /g, and a pore volume of about 0.8 to 2.0 ml/g, with about 0.3 to 1 ml/g of said pore volume being in pores of diameter greater than 500 angstroms; and
- (2) a minor proportion of a platinum group metal selectively dispersed by cation exchange on said silica-alumina cogel or copolymer from an aqueous solution of a platinum group metal compound wherein the platinum group metal appears in the cation.
- 2. A process as defined in claim 1 wherein said elevated temperature is above 735.degree. F. and the viscosity index of the components boiling above 650.degree. F. of the feedstock is below 95 but after said contacting is at least 95.
- 3. A process as defined in claim 1 wherein said feedstock contains mono-naphthenic compounds boiling above 650.degree. F. and said contacting is such that a greater percentage of the polynaphthenic compounds boiling above 650.degree. F. is converted by hydrocracking than said mono-naphthenic compounds.
- 4. A process as defined in claim 1 wherein said feedstock contains paraffins boiling above 650.degree. F. and said contacting is such that a greater percentage of the polynaphthenic compounds boiling above 650.degree. F. is converted by hydrocracking than said paraffins.
- 5. A process for upgrading a hydrocarbon feedstock boiling entirely above 650.degree. F. and having a pour point no greater than +10.degree. F., said hydrocarbon feedstock containing a substantial proportion of polynaphthenic compounds and having a relatively low viscosity index, said process comprising contacting said feedstock with a catalyst in the presence of hydrogen under conditions, including an elevated pressure and an elevated temperature above 700.degree. F., which yield a lubricating base oil product of increased viscosity index, said catalyst comprising:
- (1) a heterogeneous carrier composite of about 10 to 50 weight percent of a silica-alumina cogel or copolymer having a SiO.sub.2 /Al.sub.2 O.sub.3 weight ratio of about 50/50 to 85/15 dispersed in a large pore alumina gel matrix, the composite carrier having a surface area between about 200 and 700 m.sup.2 /g, and a pore volume of about 0.8 to 2.0 ml/g, with about 0.3 to 1 ml/g of said pore volume being in pores of diameter greater than 500 angstroms; and
- (2) a minor proportion of a platinum group metal selectively dispersed by cation exchange on said silica-alumina cogel or copolymer from an aqueous solution of a platinum group metal compound wherein the platinum group metal appears in the cation.
- 6. The process defined in claim 5 wherein said elevated temperature is above 735.degree. F. and said viscosity index of said feedstock is below 95 while that of said lubricating base oil product is at or above 95.
- 7. A process as defined in claim 5 wherein said feedstock also contains mononaphthenic compounds but a greater percentage of said polynaphthenic compounds are hydrocracked during said contacting than said mononaphthenic compounds.
- 8. A process comprising contacting a liquid feedstock containing a substantial proportion of polynaphthenic compounds and mononaphthenic compounds with a catalyst in the presence of hydrogen and under conditions of elevated temperature above 700.degree. F. and elevated pressure which convert said feedstock into a liquid product containing a lower percentage of polynaphthenic compounds and a greater percentage of mononaphthenic compounds than said feedstock, said catalyst comprising:
- (1) a heterogeneous carrier composite of about 10 to 50 weight percent of a silica-alumina cogel or copolymer having a SiO.sub.2 /Al.sub.2 O.sub.3 weight ratio of about 50/50 to 85/15 dispersed in a large pore alumina gel matrix, the composite carrier having a surface area between about 200 and 700 m.sup.2 /g, and a pore volume of about 0.8 to 2.0 ml/g, with about 0.3 to 1 ml/g of said pore volume being in pores of diameter greater than 500 angstroms; and
- (2) a minor proportion of a platinum group metal selectively dispersed by cation exchange on said silica-alumina cogel or copolymer from an aqueous solution of a platinum group metal compound wherein the platinum group metal appears in the cation.
- 9. A process as defined in claim 8 wherein at least 25 percent by weight of said polynaphthenic compounds are converted to other hydrocarbons.
- 10. A process as defined in claim 8 wherein at least about 40 percent of said polynaphthenic compounds are converted to other hydrocarbons.
- 11. A process comprising contacting a liquid feedstock containing a substantial proportion of polynaphthenic compounds and paraffins with a catalyst in the presence of hydrogen and under conditions of elevated temperature above 700.degree. F. and elevated pressure which convert said feedstock into a liquid product containing a lower percentage of polynaphthenic compounds and a greater percentage of paraffins than said feedstock, said catalyst comprising:
- (1) a heterogeneous carrier composite of about 10 to 50 weight percent of a silica-alumina cogel or copolymer having a SiO.sub.2 /Al.sub.2 O.sub.3 weight ratio of about 50/50 to 85/15 dispersed in a large pore alumina gel matrix, the composite carrier having a surface area between about 200 and 700 m.sup.2 /g, and a pore volume of about 0.8 to 2.0 ml/g, with about 0.3 to 1 ml/g of said pore volume being in pores of diameter greater than 500 angstroms; and
- (2) a minor proportion of a platinum group metal selectively dispersed by cation exchange on said silica-alumina cogel or copolymer from an aqueous solution of a platinum group metal compound wherein the platinum group metal appears in the cation.
- 12. A process as defined in claim 11 wherein at least 30 percent by weight of said polynaphthenic compounds are converted to other hydrocarbons, and the elevated temperature is above 740.degree. F.
- 13. A process as defined in claim 11 wherein at least about 35 percent of said polynaphthenic compounds are converted to other hydrocarbons, said other hydrocarbons comprising substituted mono-naphthenic compounds.
- 14. A process comprising contacting a hydrocarbon feedstock containing constituents boiling above 650.degree. F., with a substantial proportion of said constituents being polynaphthenic compounds, with a catalyst under conditions of elevated pressure and a temperature above 700.degree. F. effecting hydrogenation and hydrocracking reactions so as to yield a product containing a fraction boiling above 650.degree. F. of improved viscosity index in comparison to the 650.degree. F.+ fraction of said feedstock, said catalyst comprising:
- (1) a heterogeneous carrier composite of about 10 to 50 weight percent of a silica-alumina cogel or copolymer having a SiO.sub.2 /Al.sub.2 O.sub.3 weight ratio of about 50/50 to 85/15 dispersed in a large pore alumina gel matrix, the composite carrier having a surface area between about 200 and 700 m.sup.2 /g, and a pore volume of about 0.8 to 2.0 ml/g, with about 0.3 to 1 ml/g of said pore volume being in pores of diameter greater than 500 angstroms; and
- (2) a minor proportion of a platinum group metal selectively dispersed by cation exchange on said silica-alumina cogel or copolymer from an aqueous solution of a platinum group metal compound wherein the platinum group metal appears in the cation.
- 15. A process comprising upgrading a hydrocarbon feedstock containing a substantial proportion of components boiling above 650.degree. F., more than 18.8 percent by weight of which components are polynaphthenic compounds, so as to contain a 650.degree. F.+ fraction thereof of higher viscosity index by contacting said feedstock with a catalyst under conditions of elevated temperature above 700.degree. F. and elevated pressure so as to effect simultaneous hydrogenation and hydrocracking reactions, said catalyst comprising:
- (1) a heterogeneous carrier composite of about 10 to 50 weight percent of a silica-alumina cogel or copolymer having a SiO.sub.2 /Al.sub.2 O.sub.3 weight ratio of about 50/50 to 85/15 dispersed in a large pore alumina gel matrix, the composite carrier having a surface area between about 200 and 700 m.sup.2 /g, and a pore volume of about 0.8 to 2.0 ml/g, with about 0.3 to 1 ml/g of said pore volume being in pores of diameter greater than 500 angstroms; and
- (2) a minor proportion of a platinum group metal selectively dispersed by cation exchange on said silica-alumina cogel or copolymer from an aqueous solution of a platinum group metal compound wherein the platinum group metal appears in the cation.
- 16. A process as defined in claim 15 wherein said contacting results in the conversion of a substantial proportion of said polynaphthenic compounds.
- 17. A process as defined in claim 16 wherein said feedstock further contains paraffins and mononaphthenic compounds and said paraffins and mononaphthenic compounds undergo less of a percentage conversion to other compounds than said polynaphthenic compounds during said contacting.
- 18. In the production of lubricating oils, the improvement wherein a premium lubricating oil is produced from components boiling above 650.degree. F. in a feedstock containing a substantial proportion of polynaphthenic compounds and a substantial proportion of components boiling above 650.degree. F. by hydroprocessing so as to effect hydrocracking reactions at a temperature above 700.degree. F. with a catalyst comprising
- (1) a heterogeneous carrier composite of about 10 to 50 weight percent of a silica-alumina cogel or copolymer having a SiO.sub.2 /Al.sub.2 O.sub.3 weight ratio of about 50/50 to 85/15 dispersed in a large pore alumina gel matrix, the composite carrier having a surface area between about 200 and 700 m.sup.2 /g, and a pore volume of about 0.8 to 2.0 ml/g, with about 0.3 to 1 ml/g of said pore volume being in pores of diameter greater than 500 angstroms; and
- (2) a minor proportion of a platinum group metal selectively dispersed by cation exchange on said silica-alumina cogel or copolymer from an aqueous solution of a platinum group metal compound wherein the platinum group metal appears in the cation.
- 19. A process as defined in claim 18 wherein said polynaphthenic compounds are, during said contacting, converted to other compounds, including mono-naphthenic compounds, in a substantial percentage.
- 20. A process as defined in claim 1 wherein said elevated temperature is above 735.degree. F.
- 21. A process as defined in claim 20 wherein at least 40 percent by weight of said polynaphthenic compounds are hydrocracked to other hydrocarbons.
- 22. A process as defined in claim 1 wherein at least 25 percent by weight of said polynaphthenic compounds are hydrocracked to other hydrocarbons.
- 23. A process as defined in claim 3 wherein said elevated temperature is above 740.degree. F.
- 24. A process as defined in claim 4 wherein said elevated temperature is above 740.degree. F.
- 25. A process as defined in claim 5 wherein said viscosity index of said feedstock is below 95 while that of said lubricating base oil product is at or above 95.
- 26. A process as defined in claim 7 wherein said viscosity index of said feedstock is below 95 while that of said lubricating base oil product is at or above 95.
- 27. A process as defined in claim 26 wherein said elevated temperature is above 740.degree. F.
- 28. A process as defined in claim 5 wherein said base oil product has a pour point no greater than +10.degree. F.
- 29. A process as defined in claim 6 wherein said base oil product has a pour point no greater than +10.degree. F.
- 30. A process as defined in claim 5 wherein said elevated temperature is above 735.degree. F.
- 31. A process as defined in claim 30 wherein said base oil product has a pour point no greater than +10.degree. F.
- 32. A process as defined in claim 8 wherein said elevated temperature is about 725.degree. to 800.degree. F.
- 33. A process as defined in claim 9 wherein said elevated temperature is above 735.degree. F.
- 34. A process as defined in claim 10 wherein said elevated temperature is above 740.degree. F.
- 35. A process as defined in claim 11 wherein said elevated temperature is above 735.degree. F.
- 36. A process as defined in claim 13 wherein said elevated temperature is above 740.degree. F.
- 37. A process as defined in claim 14 wherein at least 25 percent by weight of said polynaphthenic compounds are hydrocracked to other hydrocarbons.
- 38. A process as defined in claim 37 wherein said elevated temperature is above 735.degree. F.
- 39. A process as defined in claim 14 wherein said elevated temperature is above 740.degree. F.
- 40. A process as defined in claim 39 wherein at least 40 percent by weight of said polynaphthenic compounds are hydrocracked to other hydrocarbons.
- 41. A process as defined in claim 17 wherein said elevated temperature is above 735.degree. F.
- 42. In the production of lubricating oils by hydroprocessing with a catalyst, the improvement comprising contacting at a temperature above 700.degree. F. a feed hydrocarbon containing components boiling above 650.degree. F., more than 18.8 percent by weight of which components are polynaphthenates, with a catalyst comprising
- (1) a heterogeneous carrier composite of about 10 to 50 weight percent of a silica-alumina cogel or copolymer having a SiO.sub.2 /Al.sub.2 O.sub.3 weight ratio of about 50/50 to 85/15 dispersed in a large pore alumina gel matrix, the composite carrier having a surface area between about 200 and 700 m.sup.2 /g, and a pore volume of about 0.8 to 2.0 ml/g, with about 0.3 to 1 ml/g of said pore volume being in pores of diameter greater than 500 angstroms; and
- (2) a minor proportion of a platinum group metal selectively dispersed by cation exchange on said silica-alumina cogel or copolymer from an aqueous solution of a platinum group metal compound wherein the platinum group metal appears in the cation.
- 43. A process as defined in claim 42 wherein said feed hydrocarbon contains polynaphthenates boiling above 650.degree. F. and said contacting is in the present of hydrogen and under conditions of elevated pressure so as to yield a product hydrocarbon containing a lubricating base oil product boiling above 650.degree. F.
- 44. A process as defined in claim 43 wherein a substantial proportion of said polynaphthenates are hydrocracked during said contacting.
- 45. A process as defined in claim 42 wherein hydrocracking and hydrogenation reactions occur during said contacting, and polynaphthenates boiling above 650.degree. F. are hydrocracked.
- 46. A process as defined in claim 45 wherein at least 25 percent by weight of said polynaphthenates are hydrocracked.
- 47. A process as defined in claim 42 wherein the viscosity index of the 650.degree. F.+ components is increased by substantial hydrogenation and hydrocracking reactions.
- 48. A process as defined in claim 47 wherein at least 25 percent by weight of said polynaphthenates are hydrocracked during said contacting.
- 49. A process as defined in claim 42 wherein said temperature is above 735.degree. F.
- 50. A process as defined in claim 44 wherein said temperature is above 735.degree. F.
- 51. A process as defined in claim 46 wherein said temperature is above 735.degree. F.
- 52. A process as defined in claim 47 wherein said temperature is above 740.degree. F.
- 53. A process as defined in claim 48 wherein said temperature is above 740.degree. F.
- 54. A process as defined in claim 48 wherein the viscosity index of the components boiling above 650.degree. F. is below 95 but after said contacting is at least 95.
- 55. A process as defined in claim 54 wherein said feedstock contains mononaphthenic compounds boiling above 650.degree. F. and said contacting is such that a greater percentage of the polynaphthenic compounds boiling above 650.degree. F. is converted by hydrocracking than said mononaphthenic compounds.
- 56. A process as defined in claim 55 wherein said feedstock contains paraffins boiling above 650.degree. F. and said contacting is such that a greater percentage of the polynaphthenic compounds boiling above 650.degree. F. is converted by hydrocracking than said paraffins.
- 57. A process as defined in claim 56 wherein said 650.degree. F.+ components of the feed have a pour point no greater than +10.degree. F., which pour point is not increased above +10.degree. F. during said contacting.
- 58. A process as defined in claim 55 wherein said temperature is above 735.degree. F.
- 59. A process as defined in claim 54 wherein said temperature is above 740.degree. F.
- 60. A process as defined in claim 57 wherein said temperature is above 740.degree. F.
- 61. A process as defined in claim 60 wherein at least 40 percent by weight of said polynaphthenic compounds are hydrocracked to other hydrocarbons.
- 62. A process comprising contacting a liquid feedstock comprising mononaphthenic compounds and more than 18.8 percent by weight of polynaphthenic compounds with a catalyst in the presence of hydrogen and under conditions of elevated temperature above 700.degree. F. and elevated pressure which convert said feedstock into a liquid product containing a lower percentage of polynaphthenic compounds and a greater percentage of mononaphthenic compounds than said feedstock, said catalyst comprising:
- (1) a heterogeneous carrier composite of about 10 to 50 weight percent of a silica-alumina cogel or copolymer having a SiO.sub.2 /Al.sub.2 O.sub.3 weight ratio of about 50/50 to 85/15 dispersed in a large pore alumina gel matrix, the composite carrier having a surface area between about 200 and 700 m.sup.2 /g, and a pore volume of about 0.8 to 2.0 ml/g, with about 0.3 to 1 ml/g of said pore volume being in pores of diameter greater than 500 angstroms; and
- (2) a minor proportion of a platinum group metal selectively dispersed by cation exchange on said silica-alumina cogel or copolymer from an aqueous solution of a platinum group metal compound wherein the platinum group metal appears in the cation.
- 63. A process as defined in claim 62 wherein at least 25 percent by weight of said polynaphthenic compounds are converted to other hydrocarbons.
- 64. A process as defined in claim 62 wherein at least about 40 percent of said polynaphthenic compounds are converted to other hydrocarbons.
- 65. A process as defined in claim 62 wherein said elevated temperature is about 725.degree. to 800.degree. F.
- 66. A process as defined in claim 63 wherein said elevated temperature is above 735.degree. F.
- 67. A process as defined in claim 64 wherein said elevated temperature is above 740.degree. F.
- 68. A process comprising contacting a liquid feedstock comprising paraffins and more than 18.8 percent by weight of polynaphthenic compounds with a catalyst in the presence of hydrogen and under conditions of elevated temperature above 700.degree. F. and elevated pressure which convert said feedstock into a liquid product containing a lower percentage of polynaphthenic compounds and a greater percentage of paraffins than said feedstock, said catalyst comprising:
- (1) a heterogeneous carrier composite of about 10 to 50 weight percent of a silica-alumina cogel or copolymer having a SiO.sub.2 /Al.sub.2 O.sub.3 weight ratio of about 50/50 to 85/15 dispersed in a large pore alumina gel matrix, the composite carrier having a surface area between about 200 and 700 m.sup.2 /g, and a pore volume of about 0.8 to 2.0 ml/g, with about 0.3 to 1 ml/g of said pore volume being in pores in diameter greater than 500 angstroms; and
- (2) a minor proportion of a platinum group metal selectively dispersed by cation exchange on said silica-alumina cogel or copolymer from an aqueous solution of a platinum group metal compound wherein the platinum group metal appears in the cation.
- 69. A process as defined in claim 68 wherein at least 30 percent by weight of said polynaphthenic compounds are converted to other hydrocarbons, and the elevated temperature is above 740.degree. F.
- 70. A process as defined in claim 68 wherein at least about 35 percent of said polynaphthenic compounds are converted to other hydrocarbons, said other hydrocarbons comprising substituted mono-naphthenic compounds.
- 71. A process as defined in claim 68 wherein said elevated temperature is above 735.degree. F.
- 72. A process as defined in claim 70 wherein said elevated temperature is above 740.degree. F.
- 73. A process as defined in claim 1 wherein more than about 27.4 weight percent of the 650.degree. F.+ fraction of said feedstock comprises polynaphthenic compounds.
- 74. A process as defined in claim 3 wherein more than about 27.4 weight percent of the 650.degree. F.+ fraction of said feedstock comprises polynaphthenic compounds.
- 75. A process as defined in claim 6 wherein more than about 27.4 weight percent of the said feedstock comprises polynaphthenic compounds.
- 76. A process as defined in claim 14 wherein more than about 27.4 weight percent of the 650.degree. F.+ fraction of said feedstock comprises polynaphthenic compounds.
- 77. A process as defined in claim 15 wherein more than about 27.4 weight percent of the 650.degree. F.+ fraction of said feedstock comprises polynaphthenic compounds.
- 78. A process as defined in claim 17 wherein more than about 27.4 weight percent of the 650.degree. F.+ fraction of said feedstock comprises polynaphthenic compounds.
- 79. A process as defined in claim 18 wherein more than about 27.4 weight percent of the 650.degree. F.+ fraction of said feedstock comprises polynaphthenic compounds.
- 80. A process as defined in claim 21 wherein more than about 27.4 weight percent of the 650.degree. F.+ fraction of said feedstock comprises polynaphthenic compounds.
- 81. A process as defined in claim 27 wherein more than about 27.4 weight percent of the 650.degree. F.+ fraction of said feedstock comprises polynaphthenic compounds.
- 82. A process as defined in claim 40 wherein more than about 27.4 weight percent of said feedstock comprises polynaphthenic compounds.
- 83. A process as defined in claim 47 wherein more than about 27.4 weight percent of the 650.degree. F.+ fraction of said feedstock comprises polynaphthenic compounds.
- 84. A process as defined in claim 61 wherein more than about 27.4 weight percent of the 650.degree. F.+ fraction of said feedstock comprises polynaphthenic compounds.
- 85. A process as defined in claim 73 wherein less than about 40.3 weight percent of the 650.degree. F.+ fraction of said feedstock comprises mononaphthenic compounds.
- 86. A process as defined in claim 81 wherein less than about 40.3 weight percent of said feedstock comprises mononaphthenic compounds.
- 87. A process as defined in claim 82 wherein less than about 40.3 weight percent of the 650.degree. F.+ fraction of said feedstock comprises mononaphthenic compounds.
- 88. A process as defined in claim 77 wherein less than about 40.3 weight percent of the 650.degree. F.+ fraction of said feedstock comprises mononaphthenic compounds.
- 89. A process as defined in claim 80 wherein less than about 40.3 weight percent of the 650.degree. F.+ fraction of said feedstock comprises mononaphthenic compounds.
- 90. A process as defined in claim 75 wherein less than about 40.3 weight percent of said feedstock comprises mononaphthenic compounds.
- 91. A process as defined in claim 84 wherein less than about 40.3 weight percent of the 650.degree. F.+ fraction of said feedstock comprises mononaphthenic compounds.
- 92. A process as defined in claim 91 wherein less than about 32.1 weight percent of the 650.degree. F.+ fraction of said feedstock comprises paraffins.
- 93. A process as defined in claim 74 wherein less than about 32.1 weight percent of the 650.degree. F.+ fraction of said feedstock comprises paraffins.
- 94. A process as defined in claim 85 wherein less than about 32.1 weight percent of the 650.degree. F.+ fraction of said feedstock comprises paraffins.
- 95. A process as defined in claim 1 wherein said conditions are adjusted to yield a plurality of lubricating base oil fractions boiling above 650.degree. F. and having a pour point no greater than +10.degree. F. and a viscosity index of at least 95, said lubricating base oil fractions having an initial and final boiling point differential of at least 40.degree. F.
- 96. A process as defined in claim 5 wherein said conditions are adjusted to yield a plurality of lubricating base oil fractions boiling above 650.degree. F. and having a pour point no greater than +10.degree. F. and a viscosity index of at least 95, said lubricating base oil fractions having an initial and final boiling point differential of at least 40.degree. F.
- 97. A process as defined in claim 14 wherein said conditions are adjusted to yield a plurality of lubricating base oil fractions boiling above 650.degree. F. and having a pour point no greater than +10.degree. F. and a viscosity index of at least 95, said lubricating base oil fractions having an initial and final boiling point differential of at least 40.degree. F.
- 98. A process as defined in claim 17 wherein said conditions are adjusted to yield a plurality of lubricating base oil fractions boiling above 650.degree. F. and having a pour point no greater than +10.degree. F. and a viscosity index of at least 95, said lubricating base oil fractions having an initial and final boiling point differential of at least 40.degree. F.
- 99. A process as defined in claim 21 wherein said conditions are adjusted to yield a plurality of lubricating base oil fractions boiling above 650.degree. F. and having a pour point no greater than +10.degree. F. and a viscosity index of at least 95, said lubricating base oil fractions having an initial and final boiling point differential of at least 40.degree. F.
- 100. A process as defined in claim 27 wherein said conditions are adjusted to yield a plurality of lubricating base oil fractions boiling above 650.degree. F. and having a pour point no greater than +10.degree. F. and a viscosity index of at least 95, said lubricating base oil fractions having an initial and final boiling point differential of at least 40.degree. F.
- 101. A process as defined in claim 42 wherein said contacting is under conditions adjusted to yield a plurality of lubricating base oil fractions boiling above 650.degree. F. and having a pour point no greater than +10.degree. F. and a viscosity index of at least 95, said lubricating base oil fractions having an initial and final boiling point differential of at least 40.degree. F.
- 102. A process as defined in claim 49 wherein said contacting is under conditions adjusted to yield a plurality of lubricating base oil fractions boiling above 650.degree. F. and having a pour point no greater than +10.degree. F. and a viscosity index of at least 95, said lubricating base oil fractions having an initial and final boiling point differential of at least 40.degree. F.
- 103. A process as defined in claim 79 wherein said hydroprocessing is conducted under conditions adjusted to yield a plurality of lubricating base oil fractions boiling above 650.degree. F. and having a pour point no greater than +10.degree. F. and a viscosity index of at least 95, said lubricating base oil fractions having an initial and final boiling point differential of at least 40.degree. F.
- 104. A process as defined in claim 81 wherein said conditions are adjusted to yield a plurality of lubricating base oil fractions boiling above 650.degree. F. and having a pour point no greater than +10.degree. F. and a viscosity index of at least 95, said lubricating base oil fractions having an initial and final boiling point differential of at least 40.degree. F.
- 105. A process as defined in claim 92 wherein said contacting is under conditions adjusted to yield a plurality of lubricating base oil fractions boiling above 650.degree. F. and having a pour point no greater than +10.degree. F. and a viscosity index of at least 95, said lubricating base oil fractions having an initial and final boiling point differential of at least 40.degree. F.
CROSS-REFERENCE TO RELATED PATENT APPLICATIONS
This patent application is a continuation-in-part of U.S. patent application Ser. No. 779,939 filed Sept. 25, 1985, abandoned.
US Referenced Citations (24)
Continuation in Parts (1)
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779939 |
Sep 1985 |
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