Claims
- TABLE I______________________________________ Example No.Experimental Parameters 1 2 3 4______________________________________Catalyst CompositionCo.sup.1 0.35 0.35 0.35 0.35Mn.sup.1 0.65 0.65 0.65 0.65Br.sup.1 0.14 0.14 0.14 0.14Ce.sup.1 0 0 0.078 0Fe.sup.1 0 0 0 0.056Co/2,6-DIPN.sup.2 0.13 0.13 0.13 0.13Mn/Co.sup.3 2.0 2.0 2.0 2.0Br/(Co+Mn).sup.3 0.1 0.1 0.1 0.1Ce/Co.sup.3 0 0 0.09 0Acetate ion/(Co+Mn).sup.4 2.0 2.0 2.0 4.0Fe/Co.sup.2 0 0 0 0.17Acetic anhydride/2,6-DIPN.sup.4 4.0 4.0 4.0 4.02,6-DIPN addition time (min.) 113 113 114 114Tailout time (min.) 16 12 9 8Water conc. added (wt. %) 2.50 2.50 2.50 2.50Wt. (g) solvent/Wt. (g) 2,6-DIPN-initial 11.2 11.2 11.2 11.5final 15.2 15.2 15.2 15.5Temperature (.degree.C.) 193 193 193 193Pressure (psig) 210 400 400 400Vent oxygen conc. (vol. %) 5 12 11 12Experimental Results2,6-NDA yield.sup.5 58.3 65.1 73.8 68.02,6-NDA yield.sup.6 54.8 62.9 76.2 67.7TMLA yield.sup.5 11.8 14.5 16.3 14.52,6-NDA color Brown Light Light Light Brown/ Brown/ Brown Tan Tan______________________________________ Example No.Experimental Parameters 5 6 7 8______________________________________Catalyst CompositionCo.sup.1 0.35 0.35 0.35 0.35Mn.sup.1 0.65 0.65 0.65 0.65Br.sup.1 0.14 0.15 0.14 0.14Ce.sup.1 0.068 0.069 0.078 0.233Fe.sup.1 0 0 0 0Co/2,6-DIPN.sup.2 0.13 0.09 0.13 0.13Mn/Co.sup.3 2.0 2.0 2.0 2.0Br/(Co + Mn).sup.3 0.1 0.1 0.1 0.1Ce/Co.sup.3 0.08 0.08 0.09 0.28Acetate ion/(Co + Mn).sup.4 2.0 2.0 2.0 2.0Fe/Co.sup.2 0 0 0 0Acetic anhydride/2,6-DIPN.sup.4 4.0 4.0 4.0 4.02,6-DIPN addition time (min.) 181 119 119 118Tailout time (min.) 11 9 9 9Water conc. added (wt. %) 2.50 2.47 2.50 2.50Wt. (g) solvent/Wt. (g) 2,6-DIPN-initial 11.2 7.9 11.2 11.2final 15.2 11.9 15.2 15.2Temperature (.degree.C.) 193 193 193 193Pressure (psig) 450 450 400 400Vent oxygen conc. (vol. %) 13 14 12 12Experimental Results2,6-NDA yield.sup.5 62.9 71.7 57.9 67.82,6-NDA yield.sup.6 61.8 71.2 56.8 68.6TMLA yield.sup.5 16.2 17.9 12.0 11.32,6-NDA color Light Light Light Light Brown/ Brown/ Brown/ Brown/ Tan Tan Tan Tan______________________________________ Example No.Experimental Parameters 9 10 11 12______________________________________Catalyst CompositionCo.sup.1 0.35 0.17 0.35 0.35Mn.sup.1 0.65 0.33 0.65 0.65Br.sup.1 0.14 0.14 0.14 0.14Ce.sup.1 0.078 0.039 0.078 0.078Fe.sup.1 0.056 0 0 0Co/2,6-DIPN.sup.2 0.13 0.03 0.13 0.09Mn/Co.sup.3 2.0 2.0 2.0 2.0Br/(Co + Mn).sup.3 0.1 0.2 0.1 0.1Ce/Co.sup.3 0.09 0.09 0.09 0.09Acetate ion/(Co + Mn).sup.4 4.0 2.0 2.0 2.0Fe/Co.sup.2 0.17 0 0 0Acetic anhydride/2,6-DIPN.sup.4 4.0 4.0 1.0 1.02,6-DIPN addition time (min.) 119 119 120 120Tailout time (min.) 7 7 8 7Water conc. added (wt. %) 2.50 2.6 2.50 2.50Wt. (g) solvent/Wt. (g) 2,6-DIPN-initial 11.5 5.5 11.2 7.8final 15.5 9.5 12.2 8.8Temperature (.degree.C.) 193 196 193 193Pressure (psig) 400 400 400 400Vent oxygen conc. (vol. %) 10 13 12 13Experimental Results2,6-NDA yield.sup.5 68.4 46.8 67.1 65.02,6-NDA yield.sup.6 66.9 45.0 65.9 64.2TMLA yield.sup.5 10.7 27.5 12.4 14.52,6-NDA color Light Brown Light Light Brown Brown/ Brown/ Tan Tan______________________________________ Example No.Experimental Parameters 13 14 15 16______________________________________Catalyst CompositionCo.sup.1 0.35 0.35 0.35 0.35Mn.sup.1 0.65 0.65 0.65 0.65Br.sup.1 0.14 0.14 0.14 0.14Ce.sup.1 0.078 0.233 0.233 0.078Fe.sup.1 0 0 0 0.055Co/2,6-DIPN.sup.2 0.09 0.08 0.08 0.08Mn/Co.sup.3 2.0 2.0 2.0 2.0Br/(Co + Mn).sup.3 0.1 0.1 0.1 0.1Ce/Co.sup.3 0.09 0.28 0.28 0.09Acetate ion/(Co + Mn).sup.4 2.0 2.0 2.0 4.0Fe/Co.sup.2 0 0 0 0.17Acetic anhydride/2,6-DIPN.sup.4 1.0 0 0 02,6-DIPN addition time (min.) 119 74 118 74Tailout time (min.) 5 8 16 8Water conc. added (wt. %) 2.50 2.50 2.50 2.50Wt. (g) solvent/Wt. (g) 2,6-DIPN-initial 7.8 6.8 6.8 7.0final 8.8 6.8 6.8 7.0Temperature (.degree.C.) 193 193 193 193Pressure (psig) 400 400 270 400Vent oxygen conc. (vol. %) 12 11 7 11Experimental Results2,6-NDA yield.sup.5 72.1 45.1 57.3 57.52,6-NDA yield.sup.6 72.5 44.8 56.6 59.0TMLA yield.sup.5 18.1 8.4 10.8 11.52,6-NDA color Light Light Brown Light Brown/ Brown/ Brown Tan Tan______________________________________ Footnotes .sup.1 Weight percent calculated as the respective elemental metal, acetate ion or acetic anhydride and based on the initial solvent weight .sup.2 Mga of the respective metal, calculated as the elemental metal per mmole of the respective DIPN or acetate ion .sup.3 Mga of manganese, bromine or cerium, calculated as the element, pe mga of cobalt, the total cobalt and manganese, or bromine, respectively, each calculated as the element .sup.4 Mmoles of the respective acetate ion or acetic anhydride per mga o total cobalt and manganese combined, each calculated as the element, or per mmole of 2,6DIPN .sup.5 Mole percent in the total reactor effluent plus reactor wash, base on the moles of 2,6DIPN .sup.6 Mole percent in the precipitated cake plus reactor wash, based on the moles of 2,6DIPN
- 1. A method for producing 2,6-naphthalene dicarboxylic acid comprising: exothermically oxidizing 2,6-diisopropylnaphthalene or its oxidation derivative as the starting material with an oxygen-containing gas in the liquid phase in a solvent comprising an aliphatic monocarboxylic acid, in an oxidation reactor at an elevated temperature and pressure and in the presence of an oxidation catalyst comprising cobalt, manganese, bromine and cerium components, wherein the atom ratio of cobalt, calculated as elemental cobalt, in the cobalt component of the catalyst-to-the starting material in the liquid-phase oxidation is in the range of from about 30 to about 10000 mga per gram mole of the starting material, wherein the atom ratio of manganese, calculated as elemental manganese, in the manganese component of the catalyst-to-cobalt, calculated as elemental cobalt, in the cobalt component of the catalyst is in the range of from about 0.5 to about 3 mga per mga of cobalt, wherein the atom ratio of bromine, calculated as elemental bromine, in the bromine component of the catalyst-to-total cobalt and manganese, calculated as elemental cobalt and elemental manganese, in the cobalt and manganese components of the catalyst is in the range of from about 0.05 to about 1 mga per mga of total cobalt and manganese, and wherein the atom ratio of cerium, calculated as elemental cerium, in the cerium component of the catalyst-to-cobalt, calculated as elemental cobalt, in the cobalt component of the catalyst is in the range of from about 0.05 to about 1.0 mga per mga of cobalt, wherein heat generated in the oxidation reactor is at least partially dissipated by vaporization of liquids therein and withdrawal of the resulting vapors from the oxidation reactor, and wherein oxygen is maintained at a concentration level in the oxidation reactor such that the concentration of oxygen in the aforesaid withdrawn vapors is in the range of from about 0.1 to about 15 volume percent.
- 2. The method of claim 1 wherein the atom ratio of cobalt, calculated as elemental cobalt, in the cobalt component of the catalyst-to-the starting material in the liquid-phase oxidation is in the range of from about 60 to about 500 mpa per gram mole of the starting material.
- 3. The method of claim 1 wherein the atom ratio of manganese, calculated as elemental manganese, in the manganese component of the catalyst-to-cobalt, calculated as elemental cobalt, in the cobalt component of the catalyst is in the range of from about 1.0 to about 2.5 mga per mga of cobalt.
- 4. The method of claim 2 wherein the atom ratio of bromine, calculated as elemental bromine, in the bromine, calculated as elemental bromine, in the bromine component of the catalyst-to-total cobalt and manganese, calculated as elemental cobalt and elemental manganese, in the cobalt and manganese components of the catalyst is in the range of from about 0.075 to about 0.4 mga per mg of total cobalt and manganese.
- 5. The method of claim 1 wherein the atom ratio of cerium, calculated as elemental cerium, in the cerium component of the catalyst-to-cobalt, calculated as elemental cobalt, in the cerium component of the catalyst is in the range of from about 0.1 to about 0.6 mga per mga of cobalt.
- 6. The method of claim 1 wherein the oxygen is maintained at a concentration level in the reactor such that the concentration of oxygen in the withdrawn vapors is in the range of from about 8 to about 12 volume percent.
- 7. The method of claim 1 wherein the oxidation catalyst additionally comprises an acetate ion component at a concentration level in the range of from about 3 to about 8 moles of acetate ion in the acetate ion component of the catalyst per mga of total cobalt and manganese, calculated as elemental cobalt and elemental manganese, in the cobalt and manganese components of the catalyst, and an iron component at a concentration level in the range of from about 0.05 to about 10 mga of iron, calculated as elemental iron, in the iron component of the catalyst per mmole of cobalt ion in the cobalt ion component of the catalyst.
- 8. The method of claim 7 wherein the acetate ion component is present in the oxidation catalyst at a concentration level in the range of from about 3 to about 5 moles of acetate ion in the acetate ion component of the catalyst per mga of total cobalt and manganese, calculated as elemental cobalt and elemental manganese, in the cobalt and manganese components of the catalyst, and the iron component is at a concentration level in the range of from about 0.1 to about 0.6 mga of iron, calculated as elemental iron, in the iron component of the catalyst per mole of cobalt in the cobalt component of the catalyst.
- 9. The method of claim 1 wherein acetic anhydride is present at a concentration level of from about 50 to about 400 weight percent of the starting material.
- 10. The method of claim 9 wherein acetic anhydride is at a concentration of from about 75 to about 200 weight percent of the starting material.
- 11. The method of claim 1 wherein the oxidation is performed at a temperature in the range of from about 150.degree. C. to about 270.degree. C.
- 12. The method of claim 10 wherein the oxidation is performed at a temperature in the range of from about 170.degree. C. to about 200.degree. C.
- 13. The method of claim 1 wherein the solvent is a mixture of acetic acid and from about 1 to about 30 weight percent of water, based on the weight of acetic acid.
- 14. The method of claim 13 wherein the solvent is a mixture of acetic acid and from about 2 to about 15 weight percent of water, based on the weight of acetic acid.
- 15. The method of claim 1 wherein the pressure is in the range of from about 10 to about 30 kg/cm.sup.2 gauge.
Parent Case Info
This is a continuation of application Ser. No. 145,299, filed Jan. 19, 1988, now abandoned.
US Referenced Citations (3)
Number |
Name |
Date |
Kind |
4709088 |
Hirose et al. |
Nov 1987 |
|
4716245 |
Hirose |
Dec 1987 |
|
4794195 |
Hayashi et al. |
Dec 1988 |
|
Foreign Referenced Citations (1)
Number |
Date |
Country |
2187744A |
Sep 1987 |
GBX |
Continuations (1)
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Number |
Date |
Country |
Parent |
145299 |
Jan 1988 |
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