Process for producing mesophase pitch by hydrogenation of high-temperature coal tar

US9994775B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9994775-B2
Application numberUS-201214372006-A
CountryUS
Kind codeB2
Filing dateApr 6, 2012
Priority dateJan 12, 2012
Publication dateJun 12, 2018
Grant dateJun 12, 2018

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  1. Title

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  5. First independent claim

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Abstract

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A process for producing mesophase pitch from high-temperature coal tar comprises: removing salts and quinoline insoluble fraction from a high-temperature coal tar to obtain a decant oil; using the decant oil as a hydrogenation feedstock, or pre-distilling the decant oil to obtain a residue with a boiling point higher than 230 and formulating the residue into a hydrogenation feedstock; catalytic hydrorefining the hydrogenation feedstock to obtain a hydrofined oil; distilling the hydrofined oil to obtain hydrogenated pitch; and subjecting the hydrogenated pitch to the thermal polymerization to obtain the mesophase pitch. The process has features such as an easily controllable degree of hydrogenation, complete removal of impurities, good raw material flowability, not tending to form the carbon deposition and the coking during the process, and not tending to jam the reactor. The product has a high content of mesophase pitch, a low softening point and a low impurity content.

First claim

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What is claimed is: 1. A process for producing mesophase pitch from high-temperature coal tar, comprising: (1) removing salts and quinoline insoluble fraction from a high-temperature coal tar to obtain a decant oil; (2) obtaining a hydrogenation feedstock from the decant oil via either of the following two approaches: (2a) using the decant oil as the hydrogenation feedstock; or (2b) pre-distilling the decant oil to obtain a residue with a boiling point higher than 230° C., and mixing the residue with formulated oil to obtain the hydrogenation feedstock, wherein the formulated oil comprising one or more components selected from the group consisting of distillation fractions of coal tar and the hydrogenated product of the distillation fractions of coal tar; (3) catalytic hydrorefining the hydrogenation feedstock to obtain a hydrofined oil; (4) distilling the hydrofined oil to obtain hydrogenated pitch; and (5) subjecting the hydrogenated pitch to the thermal polymerization to obtain the mesophase pitch, wherein in the distilling further comprises obtaining a hydrogenated high boiling point solvent with a boiling spread of 300-360° C. and a hydrogenated distillation fraction with a boiling spread of 80-300° C. 2. The process of claim 1 , wherein the step (1) comprises: (1a) a step of removing salts, comprising mixing deionized water and an aromatic solvent with the high-temperature coal tar, and centrifuging them to remove washing water to obtain a desalted high-temperature coal tar with the aromatic solvent; wherein the aromatic solvent comprises one or more components selected from the group consisting of benzene, toluene, xylene, distillation fractions of coal tar and hydrogenation product of the distillation fractions of coal tar. 3. The process of claim 2 , wherein in the step (1a) of removing salts, the volume ratio of the high-temperature coal tar to the aromatic solvent is 1:0.2-2, the volume ratio of the deionized water to the high-temperature coal tar is 0.5-3, and the deionized water is used to wash the high-temperature coal tar 1-3 times. 4. The process of claim 3 , wherein the volume ratio of the high-temperature coal tar to the aromatic solvent is 1:0.2-0.8. 5. The process of claim 2 , wherein the step (1) further comprises: (1b) a step of removing quinoline insoluble fraction, comprising adding a aliphatic solvent and optional the aromatic solvent into the desalted high-temperature coal tar with the aromatic solvent, and followed by centrifuging or sedimentation to remove the quinoline insoluble fraction; the aliphatic solvent comprises C 4 -C 16 aliphatic compounds; wherein the final volume ratio of the high-temperature coal tar, the aromatic solvent and the aliphatic solvent is 1:0.2-2:0.2-1. 6. The process of claim 5 , wherein the final volume ratio of the high-temperature coal tar, the aromatic solvent and the aliphatic solvent is 1:0.3-0.8:0.3-0.8. 7. The process of claim 5 , wherein the aliphatic solvent is n-octane or n-heptane. 8. The process of claim 1 , wherein the predistillation in the step (2b) comprises a step of recycling aliphatic solvent. 9. The process of claim 1 , wherein the predistillation in the step (2b) comprises a step of obtaining at least one of BTX fraction, carbolic oil and naphthalene oil. 10. The process of claim 1 , wherein the step (2) further comprises a filtering step for filtering the particles with particle size greater than 10 μm prior to the catalytic hydrorefining. 11. The process of claim 1 , wherein in the step (2), the catalytic hydrorefining is conducted under conditions of a total pressure of 12.0 MPa-20.0 MPa, an average reaction temperature of 320° C.-400° C., liquid hourly space velocity of 0.5 hr −1 -2.0 hr −1 , and a hydrogen-oil ratio of 600: 1-1500:1. 12. The process of claim 11 , wherein in the step (2), the catalytic hydrorefining is conducted under conditions of a total pressure of 14.0 MPa-18.0 MPa, an average reaction temperature of 340° C.-390° C., liquid hourly space velocity of 0.8 hr −1 -1.2 hr −1 , and a hydrogen-oil ratio of 800: 1-1200:1. 13. The process of claim 11 , wherein in the step (2), the catalytic hydrorefining is conducted in the presence of the following catalyst: hydrorefining catalyst A: employing alumina or silicon-containing alumina as a carrier which has a specific surface area of 120-300 m 2 /g, a pore volume of 0.4-1.4 mL/g, a pore diameter of 8-20 nm, and a surface acid content of 0.05-0.1 mmol/g, and Mo or W of the group VIB metals and Co or Ni of the group VIII metals as metallic active components, based on the total weight of the hydrorefining catalyst A, the content of the group VIB metals accounted in oxide is 15-45 wt %, and the content of the group VIII metals accounted in oxide is 1.5-5 wt %. 14. The process of claim 11 , wherein in the step (2), the catalytic hydrorefining is conducted in the presence of the following two catalysts: hydrorefining catalyst A : employing alumina or silicon-containing alumina as a carrier, which has a specific surface area of 120-300 m 2 /g, a pore volume of 0.4-1.4 mL/g, a pore diameter of 8-20 nm, a surface acid content of 0.05-0.1 mmol/g; and Mo or W of the group VIB metals and Co or Ni of the group VIII metals as metallic active components, based on the total weight of the hydrorefining catalyst A, the content of the group VIB metals accounted in oxide is 15-45 wt %, and the content of the group VIII metals accounted in oxide is 1.5-5 wt %; hydrorefining catalyst B : employing alumina or silicon-containing alumina as a carrier, which has a specific surface area of 120-300 m 2 /g, a pore volume of 0.4-1.2 mL/g, a pore diameter of 7-15 nm; and Mo or W of the group VIB metals and Co or Ni of the group VIII metals as metallic active components; based on the total weight of the hydrorefining catalyst B, the content of the group VIB metals accounted in oxide is 10-22 wt %, and the content of the group VIII metals accounted in oxide is 2-5 wt %. 15. The process of claim 11 , wherein in the step (2), the hydrogenation feedstock is catalytic hydrorefined after passing through a protection catalyst and a demetalization catalyst, the demetalization catalyst employing alumina as a carrier which has a pore volume of 0.5-1.5 mL/g, a specific surface area of 180-350 m 2 /g, a pore diameter of 10-50 nm; based on the total weight of the demetalization catalyst, the demetalization catalyst contains 7-20 wt % of molybdenum oxide and 2-5wt % of nickel oxide. 16. The process of claim 1 , wherein the step (1) comprises: (1a) a step of removing salts, comprising mixing deionized water and aromatic solvent with the high-temperature coal tar, and centrifuging them to remove washing water, obtaining a desalted high-temperature coal tar with the aromatic solvent, wherein the aromatic solvent is the hydrogenated high boiling point solvent. 17. The process of claim 1 , wherein the step (1) comprises: (1b) a step of removing quinoline insoluble fraction, comprising adding aliphatic solvent and optional the aromatic solvent into the desalted high-temperature coal tar with the aromatic solvent, mixing and centrifuging them or standing them for sedimentation to remove the quinoline insoluble fraction, the aliphatic solvent comprises C 4 -C 16 aliphatic compounds, the aromatic solvent is the hydrogenated high boiling point solvent, wherein the final volume ratio of the high-temperature coal tar, the aromatic solvent and the aliphatic solvent is 1:0.3-0.8:0.3-0.8. 18. The process of claim 17 , wherein the final volume ratio of the high-tempe

Assignees

Inventors

Classifications

  • using bio-feedstock · CPC title

  • by extraction with selective solvents (preparation of hydrocarbon oils from tar oils C10G21/00) · CPC title

  • including solvent extraction as the refining step in the absence of hydrogen · CPC title

  • C10C3/002Primary

    by thermal means · CPC title

  • by destructive hydrogenation · CPC title

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What does patent US9994775B2 cover?
A process for producing mesophase pitch from high-temperature coal tar comprises: removing salts and quinoline insoluble fraction from a high-temperature coal tar to obtain a decant oil; using the decant oil as a hydrogenation feedstock, or pre-distilling the decant oil to obtain a residue with a boiling point higher than 230 and formulating the residue into a hydrogenation feedstock; catalytic…
Who is the assignee on this patent?
Zhao Hongmei, Qiu Jieshan, Siu Kam Shing Philip, and 5 more
What technology area does this patent fall under?
Primary CPC classification C10C3/002. Mapped technology areas include Chemistry & Metallurgy.
When was this patent published?
Publication date Tue Jun 12 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).