Biomass liquefaction process, and fuel oils and chemical materials prepared by the same

10287506 ยท 2019-05-14

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Abstract

The present invention relates to the field of biological energy, in particular to a biomass liquefaction process and fuel oil and chemical raw materials prepared by the same. The biomass liquefaction process comprises the following steps: preparing a slurry comprising a first catalyst and a biomass; performing a first hydrogenation reaction by introducing hydrogen to the slurry to obtain a first stage hydrogenation product; performing a second hydrogenation reaction by adding a second catalyst and introducing hydrogen into the first stage hydrogenation product to obtain a second stage hydrogenation product; and subjecting the second stage hydrogenation product to separation operation to obtain a fuel oil and chemical raw material; wherein the first hydrogenation reaction is controlled to have a reaction pressure of 13-25 MPa and a reaction temperature of 200-350? C., and the second hydrogenation reaction is controlled to have a reaction pressure of 13-25 MPa and a reaction temperature of 380-480? C. The present invention provides a biomass liquefaction process with high reaction efficiency and high liquid yield without coke generation.

Claims

1. A biomass liquefaction process, comprising the following steps of S1: preparing a slurry comprising a first catalyst and a biomass; and S2: performing a first hydrogenation reaction by introducing hydrogen to the slurry and controlling a reaction pressure of 13-25 MPa and a reaction temperature of 200? C. to 480? C. to obtain a first stage hydrogenation product that comprises a bio oil; wherein introducing hydrogen comprises introducing a high-pressure hydrogen into the slurry to prepare a reaction raw material mixture, wherein the high-pressure hydrogen and the slurry have a volume ratio of (600-1000):1; and feeding the reaction raw material mixture into a first slurry bed reactor for undergoing hydrolysis, cracking and hydrogenation reactions, and simultaneous introducing a high-pressure cold hydrogen into the first slurry bed reactor by controlling the first slurry bed reactor to have a total gas velocity of 0.02-0.2 m/s; wherein each of the high-pressure hydrogen and the high-pressure cold hydrogen has a pressure of 13-27 MPa, and the high-pressure cold hydrogen has a temperature of 50-135? C.

2. The biomass liquefaction process of claim 1, wherein the biomass accounts for 10-50 wt % of the slurry.

3. The biomass liquefaction process of claim 1, wherein the first catalyst accounts for 0.1-10 wt % of the slurry, and the first catalyst has a particle diameter of 5 ?m-500 ?m.

4. The biomass liquefaction process of claim 3, wherein the first catalyst accounts for 2 wt % of the shiny.

5. The biomass liquefaction process of claim 1, wherein the slurry is prepared by adding the first catalyst into a liquid biomass selected from a group consisting of vegetable oil, animal oil, gutter oil, animal feces and any mixture thereof; or mixing a dried, crushed and dedusted solid biomass with the first catalyst to form a mixture, and adding the mixture into an oil product selected from a group consisting of vegetable oil, animal oil, coal tar, petroleum, a bio-oil prepared by the present process, and any mixture thereof.

6. The biomass liquefaction process of claim 5, wherein the dried solid biomass has a moisture content of 3-25 wt %, and the crushed solid biomass has a particle size of 1-5000 ?m.

7. The biomass liquefaction process of claim 6, wherein the dried solid biomass has a moisture content of 5-15 wt %.

8. The biomass liquefaction process of claim 6, wherein the crushed solid biomass has a particle size of 20-500 ?m.

9. The biomass liquefaction process of claim 1, comprising controlling the first slurry bed reactor to have a total gas velocity of 0.05-0.08 m/s.

10. The biomass liquefaction process of claim 1, wherein introducing the high pressure hydrogen into the slurry comprises two steps of: firstly, introducing a high-pressure and medium-temperature hydrogen into the slurry and heating the slurry up to 200-350? C. by heat transfer, and secondly, introducing a high-pressure and high-temperature hydrogen into the slurry; wherein the high-pressure and medium-temperature hydrogen has a temperature of 180-350? C., and the high-pressure and high-temperature hydrogen has a temperature of 360-510? C.

11. The biomass liquefaction process of claim 1, wherein the cold hydrogen is introduced via 3-5 inlets formed on a side wall of the first slurry bed reactor.

12. The biomass liquefaction process of claim 1, wherein the first catalyst stored in the slurry bed reactor is controlled in an amount of 5-30 wt % of the mass of liquid phase in the first slurry bed reactor.

13. The biomass liquefaction process of claim 1, wherein the first hydrogenation reaction lasts for a period of 15-90 min.

14. The biomass liquefaction process of claim 1, wherein the first catalyst is a sulfidation treated biomass charcoal loaded with a first active component selected from a group consisting of iron oxide, iron oxide hydroxide, iron hydroxide, and any mixture thereof; or the first catalyst is a sulfidation treated amorphous iron oxide hydroxide.

15. The biomass liquefaction process of claim 1, wherein the biomass liquefaction process further comprises following steps: S3: performing a second hydrogenation reaction by adding a second catalyst and introducing hydrogen into the first stage hydrogenation product and controlling a reaction pressure of 13-25 MPa and a reaction temperature of 380-480? C. to obtain a second stage hydrogenation product that comprises a bio-oil; and S4: subjecting the second stage hydrogenation product to separation operation to obtain a fuel oil and chemical raw material.

16. The biomass liquefaction process of claim 15, wherein the second catalyst is added in an amount of 0.5-2 wt % of the first stage hydrogenation product, and the second catalyst has a particle size of 5-500 ?m; and the second catalyst is prepared into an oil-catalyst slurry by mixing the second catalyst with a solvent oil in a mass ratio of (1-2):10 prior to adding the second catalyst into the first stage hydrogenation product, wherein the solvent oil is selected from a group consisting of vegetable oil, animal oil, a bio-oil prepared by the present process and any combination thereof.

17. The biomass liquefaction process of claim 15, wherein introducing hydrogen in step S3 is carried out by heating a mixture of the second catalyst and the first stage hydrogenation product to 380-480? C., and feeding the mixture into a second slurry bed reactor and introducing a high-temperature and high-pressure hydrogen for performing a second hydrogenation reaction, and simultaneous introducing a high-pressure cold hydrogen into the second slurry bed reactor, with controlling a total gas velocity at 0.06-0.1 m/s and a volume ratio of the hydrogen to the first stage hydrogenation product at (1000-1500):1 in the second slurry bed reactor; wherein each of the high-temperature and high-pressure hydrogen and the high-pressure cold hydrogen has a pressure of 13-27 MPa, and the high-temperature and high-pressure hydrogen has a temperature of 430-480? C., and the high-pressure cold hydrogen has a temperature range of 50?135? C.

18. The biomass liquefaction process of claim 17, heating the mixture of the second catalyst and the first stage hydrogenation product to 430? C.

19. The biomass liquefaction process of claim 17, wherein the cold hydrogen is introduced via 3-5 inlets formed on a side wall of the second slurry bed reactor.

20. The biomass liquefaction process of claim 15, wherein the second catalyst stored in the second slurry bed reactor is controlled in an amount of 5-30 wt % of liquid phase in the second slurry bed reactor.

21. The biomass liquefaction process of claim 15, wherein the second hydrogenation reaction lasts for a period of 30-60 min.

22. The biomass liquefaction process of claim 15, characterized by further comprising hydroforming the second stage hydrogenation product under a pressure of 7-23 MPa and a temperature of 250-460? C.

23. The biomass liquefaction process of claim 15, wherein the first catalyst is a sulfidation treated biomass charcoal loaded with a first active component selected from a group consisting of iron oxide, iron oxide hydroxide, iron hydroxide and any mixture thereof, and the second catalyst is a sulfidation treated biomass charcoal loaded with a second active component selected from a group consisting of oxides of Mo, W, Fe, Co, Ni or Pd or any mixture thereof; or the first catalyst is a sulfidation treated amorphous iron oxide hydroxide and the second catalyst is a sulfidation treated amorphous aluminium oxide loaded with a third active component selected from a group consisting of oxides of metals of group VIB, group VIIB and group VIII in the periodic table of elements and any mixture thereof.

24. The biomass liquefaction process of claim 23, wherein the sulfidation is carried out with a vulcanizing agent, and wherein the vulcanizing agent and the first catalyst have a mass ratio of (0.4-1):1, and the vulcanizing agent and the second catalyst have a mass ratio of (0.01-1):1.

25. The biomass liquefaction process of claim 1, wherein the biomass accounts for 30-40 wt % of the slurry.

Description

DETAILED DESCRIPTION OF EMBODIMENTS

(1) A clear and complete description of the technical solutions in the present invention will be given below. Apparently, the embodiments described below are a part, but not all, of the embodiments of the present invention. All of other embodiments, obtained by those of ordinary skill in the art based on the embodiments of the present invention without any creative effort, fall into the protection scope of the present invention. In addition, in the different embodiments of the application described below, the technical features can be combined with each other as long as no conflict exists between each other.

Embodiment 1

(2) Provided is a biomass liquefaction process, comprising the following steps:

(3) preparing a slurry by adding sulfidation treated amorphous iron oxide hydroxide into animal oil in a reactor, and

(4) performing a first hydrogenation reaction by introducing hydrogen to the slurry and controlling a reaction pressure of 13 MPa and a reaction temperature of 480? C. to finally obtain a fuel oil and a chemical raw material.

Embodiment 2

(5) Provided is a biomass liquefaction process, comprising the following steps:

(6) mixing a dried, crushed and dedusted crop stalk with a sulfidation treated biomass charcoal loaded with iron oxide to form a mixture,

(7) adding the mixture into vegetable oil to prepare a slurry, and

(8) performing a first hydrogenation reaction by introducing hydrogen to the slurry and controlling a reaction pressure of 15 MPa and a reaction temperature of 440? C. to finally obtain a fuel oil and a chemical raw material.

(9) In this embodiment, the biomass charcoal loaded with iron oxide is prepared by a method comprising:

(10) (1) selecting a dry distillation biomass charcoal as a biomass charcoal carrier;

(11) (2) loading a sulfidation treated iron oxide on the biomass charcoal carrier to prepare the catalyst.

(12) Loading the sulfidation treated iron oxide on the biomass charcoal carrier comprises:

(13) preparing a suspension by mixing the biomass charcoal carrier with an aqueous solution of the sulfidation treated iron oxide,

(14) then adding a precipitant into the suspension to precipitate the sulfidation treated iron oxide on the biomass charcoal carrier,

(15) followed by washing and drying to obtain the catalyst;

(16) wherein, the precipitant is an solution comprising ammonia water and sodium carbonate solution, and during the precipitation process, the temperature is controlled to be 30? C., and the pH value is controlled to be 7; and the iron oxide accounts for 10 wt % of the total mass of the iron oxide and the biomass charcoal.

Embodiment 3

(17) Provided is a biomass liquefaction process, which comprises the following steps:

(18) mixing a dried, crushed and dedusted reed with a sulfidation treated biomass charcoal loaded with iron oxide hydroxide to form a mixture in a reactor,

(19) preparing a slurry by adding the mixture into coal tar, and

(20) performing a first hydrogenation reaction by introducing hydrogen to the slurry and controlling a reaction pressure of 17 MPa and a reaction temperature of 400? C. to finally obtain a fuel oil and a chemical raw material.

(21) In the slurry, the biomass accounts for 50 wt %, the catalyst accounts for 0.1 wt %, and the catalyst has a particle diameter of 500 ?m.

Embodiment 4

(22) Provided is a biomass liquefaction process, which comprises the following steps:

(23) mixing a dried, crushed and dedusted leaf with a sulfidation treated biomass charcoal loaded with iron hydroxide to form a mixture,

(24) preparing a slurry by adding the mixture into petroleum, and

(25) performing a first hydrogenation reaction by introducing hydrogen to the slurry and controlling a reaction pressure of 19 MPa and a reaction temperature of 370? C. to finally obtain a fuel oil and a chemical raw material.

(26) In the slurry, the biomass accounts for 40 wt %, the catalyst accounts for 2 wt %, and the catalyst has a particle diameter of 400 ?m. The dried solid biomass has a moisture content of 3 wt % and the crushed solid biomass has a particle size of 5000 ?m.

Embodiment 5

(27) Provided is a biomass liquefaction process, which comprises the following steps:

(28) mixing a dried, crushed and dedusted algae with a sulfidation treated amorphous iron oxide hydroxide to form a mixture in a reactor,

(29) preparing a slurry by adding the mixture into the fuel oil and the chemical raw material prepared by the process of the present invention, and

(30) performing a first hydrogenation reaction by introducing hydrogen to the slurry and controlling a reaction pressure of 20 MPa and a reaction temperature of 340? C. to finally obtain a fuel oil and a chemical raw material.

(31) Wherein, the catalyst is prepared by mixing sulphur with amorphous iron oxide hydroxide at a mass ratio of 0.4:1.

(32) In the slurry, the biomass accounts for 30 wt %, the catalyst accounts for 4 wt %, and the catalyst has a particle diameter of 300 ?m.

(33) The dried solid biomass has a moisture content of 5 wt % and the crushed solid biomass has a particle size of 2000 ?m.

(34) Introducing hydrogen in the above process comprises:

(35) introducing a high-pressure hydrogen into the slurry to prepare a reaction raw material mixture, wherein the high-pressure hydrogen and the slurry have a volume ratio of 600:1; and

(36) feeding the reaction raw material mixture into a first slurry bed reactor for undergoing hydrolysis, cracking and hydrogenation reactions, and simultaneous introducing a high-pressure cold hydrogen into the first slurry bed reactor by controlling the first slurry bed reactor to have a total gas velocity of 0.2 m/s,

(37) wherein each of the high-pressure hydrogen and the high-pressure cold hydrogen has a pressure of 13 MPa, and the high-pressure cold hydrogen has a temperature of 135? C.

Embodiment 6

(38) Provided is a biomass liquefaction process, which comprises the following steps:

(39) mixing dried, crushed and dedusted crop stalks and reeds with sulfidation treated amorphous iron oxide hydroxide to form a mixture in a first reactor,

(40) preparing a slurry by adding the mixture into vegetable oil and animal oil, and

(41) performing a first hydrogenation reaction by introducing hydrogen to the slurry and controlling a reaction pressure of 22 MPa, a reaction temperature of 300? C. and a reaction period of 15 min to finally obtain a fuel oil and a chemical raw material.

(42) Wherein, the catalyst is prepared by mixing sulphur with the amorphous iron oxide hydroxide at a mass ratio of 0.8:1.

(43) In the slurry, the biomass accounts for 20 wt %, the catalyst accounts for 6 wt %, and the catalyst has a particle diameter of 200 ?m.

(44) The dried solid biomass has a moisture content of 15 wt % and the crushed solid biomass has a particle size of 500 ?m.

(45) Said introducing hydrogen comprises:

(46) firstly, introducing a high-pressure and medium-temperature hydrogen with a pressure of 18 MPa and a temperature of 350? C. into the slurry and heating the slurry up to 200? C. by heat transfer;

(47) secondly, introducing a high-pressure and high-temperature hydrogen with a pressure of 18 MPa and a temperature of 510? C. into the slurry to prepare a reaction raw material mixture, wherein the total high-pressure hydrogen that are introduced at the first and second time and the slurry have a volume ratio of 700:1; and

(48) feeding the reaction raw material mixture into a slurry bed reactor for undergoing hydrolysis, cracking and hydrogenation reactions, and simultaneous introducing a high-pressure cold hydrogen having a pressure of 18 MPa and a temperature of 100? C. into the slurry bed reactor via 5 inlets formed on a side wall of the slurry bed reactor, and controlling the slurry bed reactor to have a total gas velocity of 0.08 m/s.

Embodiment 7

(49) Provided is a biomass liquefaction process, which comprises the following steps:

(50) mixing dried, crushed and dedusted woods and leaves with sulfidation treated amorphous iron oxide hydroxide to form a mixture in a reactor,

(51) adding the mixture into coal tar and petroleum to prepare a slurry, and

(52) performing a first hydrogenation reaction by introducing hydrogen to the slurry and controlling a reaction pressure of 23 MPa, a reaction temperature of 250? C. and a reaction time of 60 min to finally obtain a fuel oil and a chemical raw material.

(53) Wherein, the catalyst is prepared by mixing sulphur with the amorphous iron oxide hydroxide at a mass ratio of 0.6:1.

(54) In the prepared slurry, the biomass accounts for 15 wt %, the catalyst accounts for 8 wt %, and the catalyst has a particle diameter of 100 ?m.

(55) The dried solid biomass has a moisture content of 20 wt % and the crushed solid biomass has a particle size of 50 ?m.

(56) Said introducing hydrogen comprises:

(57) firstly, introducing a high-pressure and medium-temperature hydrogen with a pressure of 23 MPa and a temperature of 260? C. into the slurry and heating the slurry up to 280? C. by heat transfer;

(58) secondly, introducing a high-pressure and high-temperature hydrogen with a pressure of 23 MPa and a temperature of 430? C. into the slurry to prepare a reaction raw material mixture, wherein the total high-pressure hydrogen that are introduced at the first and second time and the slurry have a volume ratio of 800:1; and

(59) feeding the reaction raw material mixture into a slurry bed reactor for undergoing hydrolysis, cracking and hydrogenation reactions, and simultaneous introducing a high-pressure cold hydrogen having a pressure of 23 MPa and a temperature of 80? C. into the slurry bed reactor via four inlets formed on a side wall of the slurry bed reactor by controlling the slurry bed reactor to have a total gas velocity of 0.05 m/s,

(60) wherein, the catalyst stored in the slurry bed reactor is controlled in an amount of 30 wt % of the mass of liquid phase in the slurry bed reactor.

Embodiment 8

(61) Provided is a biomass liquefaction process, which comprises the following steps:

(62) mixing dried, crushed and dedusted reeds and algaes with sulfidation treated amorphous iron oxide hydroxide to form a mixture in a reactor,

(63) adding the mixture into vegetable oil and a fuel oil and chemical raw material prepared by the present invention to prepare a slurry, and

(64) performing a first hydrogenation reaction by introducing hydrogen to the slurry and controlling a reaction pressure of 25 MPa, a reaction temperature of 200? C. and a reaction time of 90 min to finally obtain a fuel oil and a chemical raw material;

(65) wherein, the catalyst is prepared by mixing sulphur with the amorphous iron oxide hydroxide at a mass ratio of 1:1.

(66) In the slurry, the biomass accounts for 10 wt %, the catalyst accounts for 10 wt %, and the catalyst has a particle diameter of 5 ?m.

(67) The dried solid biomass has a moisture content of 25 wt % and the crushed solid biomass has a particle size of 1 ?m.

(68) Said introducing hydrogen comprises:

(69) firstly, introducing a high-pressure and medium-temperature hydrogen with a pressure of 27 MPa and a temperature of 180? C. into the slurry and heating the slurry up to 350? C. by heat transfer;

(70) secondly, introducing a high-pressure and high-temperature hydrogen with a pressure of 27 MPa and a temperature of 360? C. into the slurry to prepare a reaction raw material mixture, wherein the total high-pressure hydrogen that are introduced at the first and second time and the slurry have a volume ratio of 1000:1; and

(71) feeding the reaction raw material mixture into a slurry bed reactor for undergoing hydrolysis, cracking and hydrogenation reactions, and simultaneous introducing a high-pressure cold hydrogen having a pressure of 27 MPa and a temperature of 50? C. into the slurry bed reactor via three inlets formed on a side wall of the slurry bed reactor by controlling the slurry bed reactor to have a total gas velocity of 0.02 m/s.

(72) The catalyst stored in the slurry bed reactor is controlled in an amount of 5 wt % of the mass of liquid phase in the slurry bed reactor.

Embodiment 9

(73) Provided is a biomass liquefaction process, which comprises the following steps:

(74) (1) preparing a slurry by adding sulfidation treated amorphous iron oxide hydroxide into animal oil in a reactor, and introducing hydrogen into the slurry to perform a first hydrogenation reaction to obtain a first stage hydrogenation product; and

(75) (2) adding sulfidation treated amorphous aluminium oxide loaded with oxides of Mo and Ni into the first stage hydrogenation product and introducing hydrogen to perform a second hydrogenation reaction to obtain a second stage hydrogenation product which is then subjected to separation operation to finally obtain a fuel oil and chemical raw material;

(76) wherein the first hydrogenation reaction is carried out at a pressure of 13 MPa and a temperature of 350? C., and the second hydrogenation reaction is carried out at a pressure of 13 MPa and a temperature of 480? C.

Embodiment 10

(77) Provided is a biomass liquefaction process, which comprises the following steps:

(78) (1) mixing dried, crushed and dedusted crop stalks of wheat and corn with a sulfidation treated biomass charcoal loaded with iron oxide to form a mixture, and adding the mixture into vegetable oil to prepare a slurry, and introducing hydrogen into the slurry to perform a first hydrogenation reaction to obtain a first stage hydrogenation product; and

(79) (2) adding a sulfidation treated biomass charcoal loaded with W oxide and Ni oxide into the first stage hydrogenation product, and introducing hydrogen to perform a second hydrogenation reaction to obtain a second stage hydrogenation product which is then subjected to separation operation to finally obtain a fuel oil and chemical raw material;

(80) wherein, the first hydrogenation reaction is carried out at a pressure of 15 MPa and a temperature of 330? C., and the second hydrogenation reaction is carried out at a pressure of 15 MPa and a temperature of 470? C.

(81) In this embodiment, the sulfidation treated biomass charcoal loaded with iron oxide is prepared by a method comprising:

(82) (1) selecting a dry distillation biomass charcoal as a first biomass charcoal carrier;

(83) (2) loading sulfidation treated iron oxide on the first biomass charcoal carrier to prepare the first catalyst.

(84) Particularly, the step (2) comprises:

(85) mixing the first biomass charcoal carrier with an aqueous solution of the sulfidation treated iron oxide to prepare a suspension,

(86) then adding a precipitant into the suspension to precipitate the sulfidation treated iron oxide onto the first biomass charcoal carrier,

(87) followed by washing and drying to finally prepare the first catalyst;

(88) wherein, the precipitant is a solution of ammonia water and sodium carbonate, and during the precipitation process, the temperature is controlled to be 30? C., and the pH value is controlled to be 7.

(89) The iron oxide accounts for 10 wt % of the total mass of the iron oxide and the biomass charcoal.

(90) The sulfidation treated biomass charcoal loaded with W oxide and Ni oxide is prepared by a method comprising:

(91) S1. subjecting a dry distillation biomass charcoal to acidification treatment to prepare a second biomass charcoal carrier, wherein the acidification treatment adopts a acidic medium which has a H.sup.+ concentration of 0.5 mol/L, a volume ratio of the dry distillation biomass charcoal to the acid medium is 1:5, and the acidification treatment is carried out at a temperature of 30? C. for a period of 1 h; and

(92) S2. subjecting W oxide and Ni oxide and the second biomass charcoal carrier to ball milling to prepare a second catalyst with particle size of 500 ?m.

(93) Wherein, the W oxide and Ni oxide account for 1 wt % of the total mass of W oxide and Ni oxide and the biomass charcoal.

Embodiment 11

(94) Provided is a biomass liquefaction process, which comprises the following steps:

(95) (1) mixing a dried, crushed and dedusted reed with sulfidation treated biomass charcoal loaded with iron oxide hydroxide to form a mixture, and adding the mixture into coal tar to prepare a slurry, and introducing hydrogen into the slurry to perform a first hydrogenation reaction to obtain a first stage hydrogenation product; and

(96) (2) adding a sulfidation treated biomass charcoal loaded with Pd oxide and Ni oxide into the first stage hydrogenation product and introducing hydrogen to perform a second hydrogenation reaction to obtain a second stage hydrogenation product which is then subjected to separation operation to finally obtain a fuel oil and chemical raw material.

(97) Wherein, the first hydrogenation reaction is carried out at a pressure of 17 MPa and a temperature of 310? C., and the second hydrogenation reaction is carried out at a pressure of 17 MPa and a temperature of 460? C.

(98) In the slurry, the biomass accounts for 50 wt %, the first catalyst accounts for 0.1 wt %, and the first catalyst has a particle diameter of 500 ?m. The second catalyst is added in an amount of 0.5 wt % of the first stage hydrogenation product, and the second catalyst has a particle size of 500 ?m; in prior to adding the second catalyst into the first stage hydrogenation product, the second catalyst is prepared into an oil-catalyst slurry by mixing the second catalyst with an animal oil in a mass ratio of 1:10.

Embodiment 12

(99) Provided is a biomass liquefaction process, which comprises the following steps:

(100) (1) mixing dried, crushed and dedusted leaves, melons, fruits and vegetables with a sulfidation treated biomass charcoal loaded with iron hydroxide to form a mixture, and adding the mixture into petroleum to prepare a slurry, and introducing hydrogen into the slurry to perform a first hydrogenation reaction to obtain a first stage hydrogenation product; and

(101) (2) adding a sulfidation treated biomass charcoal loaded with Mo oxide and Co oxide into the first stage hydrogenation product and introducing hydrogen to perform a second hydrogenation reaction to obtain a second stage hydrogenation product which is then subjected to separation operation to finally obtain a fuel oil and chemical raw material.

(102) Wherein, the first hydrogenation reaction is carried out at a pressure of 18 MPa and a temperature of 300? C., and the second hydrogenation reaction is carried out at a pressure of 18 MPa and a temperature of 440? C.

(103) In the slurry, the biomass accounts for 40 wt %, the first catalyst accounts for 2 wt %, and the first catalyst has a particle diameter of 400 ?m. The second catalyst is added in an amount of 0.8 wt % of the first stage hydrogenation product, and the second catalyst has a particle size of 400 ?m; in prior to adding the second catalyst into the first stage hydrogenation product, the second catalyst is prepared into an oil-catalyst slurry by mixing the second catalyst with a vegetable oil in a mass ratio of 2:10. The dried solid biomass has a moisture content of 3 wt % and the crushed solid biomass has a particle size of 5000 ?m.

Embodiment 13

(104) Provided is a biomass liquefaction process, which comprises the following steps:

(105) (1) mixing a dried, crushed and dedusted algae with a sulfidation treated amorphous iron oxide hydroxide to form a mixture in a reactor, and adding the mixture into a fuel oil and chemical raw material prepared by the present invention to prepare a slurry, and introducing hydrogen into the slurry to perform a first hydrogenation reaction to obtain a first stage hydrogenation product;

(106) (2) adding a sulfidation treated amorphous aluminum oxide loaded with W oxide and Co oxide into the first stage hydrogenation product and introducing hydrogen to perform a second hydrogenation reaction to obtain a second stage hydrogenation product which is then subjected to separation treatment to finally obtain a fuel oil and chemical raw material.

(107) Wherein, the first hydrogenation reaction is carried out at a pressure of 20 MPa and a temperature of 280? C., and the second hydrogenation reaction is carried out at a pressure of 20 MPa and a temperature of 420? C.,

(108) The first catalyst is prepared by mixing sulphur and the amorphous iron oxide hydroxide at a mass ratio of 0.4:1.

(109) In the slurry, the biomass accounts for 30 wt %, the first catalyst accounts for 4 wt % and has a particle diameter of 300 ?m. The second catalyst is added in an amount of 1.2 wt % of the first stage hydrogenation product, and has a particle size of 300 ?m; in prior to adding the second catalyst into the first stage hydrogenation product, the second catalyst is prepared into an oil-catalyst slurry by mixing the second catalyst with the fuel oil and chemical raw material prepared by this process at a mass ratio of 1:10. The dried solid biomass has a moisture content of 5 wt % and the crushed solid biomass has a particle size of 2000 ?m.

(110) Said introducing hydrogen in the above step (1) comprises: introducing a high-pressure hydrogen with a pressure of 13 MPa into the slurry by controlling the high-pressure hydrogen and the slurry at a volume ratio of 600:1 to prepare a first reaction raw material mixture; and feeding the first reaction raw material mixture into a first slurry bed reactor for undergoing a first hydrogenation reaction, and simultaneous introducing a high-pressure cold hydrogen having a pressure of 13 MPa and a temperature of 135? C. into the first slurry bed reactor by controlling the first slurry bed reactor to have a total gas velocity of 0.2 m/s.

(111) Said introducing hydrogen in the above step (2) comprises: heating the mixture of the first stage hydrogenation product and the second catalyst to 380? C., and then feeding the mixture into a second slurry bed reactor and introducing high-pressure high-temperature hydrogen with a pressure of 13 MPa and a temperature of 480? C. to perform a second hydrogenation reaction, and meanwhile introducing a high-pressure cold hydrogen with a pressure of 13 MPa and a temperature of 135? C. into the second slurry bed reactor with controlling a total gas velocity of 0.1 m/s and a volume ratio of the hydrogen to the first stage hydrogenation product being 1000:1 in the second slurry bed reactor.

Embodiment 14

(112) Provided is a biomass liquefaction process, which comprises the following steps:

(113) (1) mixing dried, crushed and dedusted tabasheer grass and industrial wood with a sulfidation treated amorphous iron oxide hydroxide to form a mixture in a reactor, and adding the mixture into vegetable oil and animal oil to prepare a slurry, and introducing hydrogen into the slurry to perform a first hydrogenation reaction to obtain a first stage hydrogenation product;

(114) (2) adding a sulfidation treated amorphous aluminium oxide loaded with Mo oxide and Ni oxide into the first stage hydrogenation product, and introducing hydrogen to perform a second hydrogenation reaction to prepare a second stage hydrogenation product which is then subjected to separation treatment to finally obtain a fuel oil and chemical raw material.

(115) Wherein, the first hydrogenation reaction is carried out at a pressure of 22 MPa and a temperature of 260? C. for a period of 15 min, and the second hydrogenation reaction is carried out at a pressure of 22 MPa and a temperature of 400? C. for a period of 60 min.

(116) The first catalyst is prepared by mixing sulphur and the amorphous iron oxide hydroxide at a mass ratio of 0.8:1.

(117) In the slurry, the biomass accounts for 20 wt %, the first catalyst accounts for 6 wt %, and the first catalyst has a particle diameter of 200 ?m. The second catalyst is added in an amount of 1.5 wt % of the first stage hydrogenation product, and the second catalyst has a particle size of 200 ?m; in prior to adding the second catalyst into the first stage hydrogenation product, the second catalyst is prepared into an oil-catalyst slurry by mixing the second catalyst with solvent oil at a mass ratio of 2:10. The dried solid biomass has a moisture content of 15 wt % and the crushed solid biomass has a particle size of 500 ?m.

(118) Said introducing hydrogen in the above step (1) comprises: introducing a high-temperature and high-pressure hydrogen with a pressure of 18 MPa and a temperature of 350? C. into the slurry for a first time and heating the slurry to 200? C. by heat transfer, and then introducing a high-pressure and high-temperature hydrogen with a pressure of 18 MPa and a temperature of 510? C. into the slurry for a second time to prepare a first reaction raw material mixture, wherein the total high-pressure hydrogen that are introduced for the first and second time and the slurry have a volume ratio of 700:1; and feeding the first reaction raw material mixture into a first slurry bed reactor for undergoing a first hydrogenation reaction, and simultaneous introducing a high-pressure cold hydrogen with a pressure of 18 MPa and a temperature of 100? C. into the first slurry bed reactor via 5 inlets formed on a side wall of the first slurry bed reactor by controlling the first slurry bed reactor to have a total gas velocity of 0.08 m/s.

(119) Said introducing hydrogen in the above step (2) comprises: heating a mixture of the first stage hydrogenation product and the second catalyst to 400? C., and then feeding the mixture and introducing a high-temperature high-pressure hydrogen with a pressure of 18 MPa and a temperature of 460? C. into a second slurry bed reactor to perform a second hydrogenation reaction, meanwhile introducing a high-pressure cold hydrogen with a pressure of 18 MPa and a temperature of 100? C. into the second slurry bed reactor via 5 inlets formed on a side wall of the second slurry bed reactor with controlling a total gas velocity of 0.08 m/s and a volume ratio of the hydrogen to the first stage hydrogenation product being 1200:1 in the second slurry bed reactor.

Embodiment 15

(120) Provided is a biomass liquefaction process, which comprises the following steps:

(121) (1) mixing dried, crushed and dedusted cotton straw, trees and waste paper with sulfidation treated amorphous iron oxide hydroxide to form a mixture in a reactor, and adding the mixture into coal tar and petroleum to prepare a slurry, and introducing hydrogen into the slurry to perform a first hydrogenation reaction to obtain a first stage hydrogenation product; and

(122) (2) adding a sulfidation treated amorphous aluminium oxide loaded with W oxide and Ni oxide into the first stage hydrogenation product and introducing hydrogen to perform a second hydrogenation reaction to prepare a second stage hydrogenation product which is then subjected to separation treatment to finally obtain a fuel oil and chemical raw material.

(123) The biomass liquefaction process further comprises hydroforming the second stage hydrogenation product under a pressure of 7 MPa and a temperature of 460? C.

(124) Wherein, the first hydrogenation reaction is carried out at a pressure of 23 MPa and a temperature of 230? C. for a period of 40 min, and the second hydrogenation reaction is carried out at a pressure of 23 MPa and a temperature of 390? C. for a period of 35 min.

(125) The first catalyst is prepared by mixing sulphur with the amorphous iron oxide hydroxide at a mass ratio of 0.6:1.

(126) In the slurry, the biomass accounts for 15 wt %, the first catalyst accounts for 8 wt %, and the first catalyst has a particle diameter of 100 ?m. The second catalyst is added in an amount of 1.8 wt % of the first stage hydrogenation product, and the second catalyst has a particle size of 100 ?m; in prior to adding the second catalyst into the first stage hydrogenation product, the second catalyst is prepared into an oil-catalyst slurry by mixing the second catalyst with a solvent oil at a mass ratio of 1:10. The solvent oil comprises animal oil and a fuel oil and chemical raw material prepared by the present invention. The dried solid biomass has a moisture content of 20 wt % and the crushed solid biomass has a particle size of 20 ?m.

(127) Said introducing hydrogen in the above step (1) comprises: introducing a high-temperature and high-pressure hydrogen with a pressure of 23 MPa and a temperature of 260? C. into the slurry for a first time and heating the slurry to 280? C. by heat transfer, and then introducing a high-pressure and high-temperature hydrogen with a pressure of 23 MPa and a temperature of 430? C. into the slurry for a second time to prepare a first reaction raw material mixture, wherein the total high-pressure hydrogen introduced for the first and second time and the slurry have a volume ratio of 800:1; and feeding the first reaction raw material mixture into a first slurry bed reactor for undergoing a first hydrogenation reaction, and simultaneous introducing a high-pressure cold hydrogen with a pressure of 23 MPa and a temperature of 80? C. into the first slurry bed reactor via 4 inlets formed on a side wall of the first slurry bed reactor by controlling the first slurry bed reactor to have a total gas velocity of 0.05 m/s.

(128) Said introducing hydrogen in the above step (2) comprises: heating the mixture of the first stage hydrogenation product and the second catalyst to 440? C., and then feeding the mixture and introducing a high-temperature high-pressure hydrogen with a pressure of 23 MPa and a temperature of 440? C. into a second slurry bed reactor to perform a second hydrogenation reaction, meanwhile introducing high-pressure cold hydrogen with a pressure of 23 MPa and a temperature of 80? C. into the second slurry bed reactor via 4 inlets formed on a side wall of the second slurry bed reactor with controlling a total gas velocity of 0.07 m/s and a volume ratio of the hydrogen to the first stage hydrogenation product being 1350:1 in the second slurry bed reactor. Wherein, the first catalyst stored in the first slurry bed reactor is controlled in an amount of 5 wt % of the mass of liquid phase in the first slurry bed reactor. The second catalyst stored in the second slurry bed reactor is controlled in an amount of 30 wt % of the mass of liquid phase in the second slurry bed reactor.

Embodiment 16

(129) Provided is a biomass liquefaction process, which comprises the following steps:

(130) (1) mixing dried, crushed and deducted rice straw and reeds with sulfidation treated amorphous iron oxide hydroxide to form a mixture in a reactor, and adding the mixture into vegetable oil and a fuel oil and chemical raw material prepared by this process to prepare a slurry, and introducing hydrogen into the slurry to perform a first hydrogenation reaction to obtain a first stage hydrogenation product; and

(131) (2) adding sulfidation treated amorphous aluminium oxide loaded with Pd oxide and Co oxide into the first stage hydrogenation product and introducing hydrogen to perform a second hydrogenation reaction to prepare a second stage hydrogenation product which is then subjected to separation treatment to finally obtain a fuel oil and chemical raw material; and

(132) the biomass liquefaction process further comprises hydroforming the second stage hydrogenation product under a pressure of 23 MPa and a temperature of 250? C.

(133) Wherein, the first hydrogenation reaction is carried out at a pressure of 25 MPa and a temperature of 200? C. for a period of 60 min, and the second hydrogenation reaction is carried out at a pressure of 25 MPa and a temperature of 380? C. for a period of 30 min. The first catalyst is prepared by mixing sulphur and the amorphous iron oxide hydroxide at a mass ratio of 1:1. In the slurry, the biomass accounts for 10 wt %, the first catalyst accounts for 10 wt %, and the first catalyst has a particle diameter of 5 ?m. The second catalyst is added in an amount of 2 wt % of the first stage hydrogenation product, and the second catalyst has a particle size of 5 ?m; in prior to adding the second catalyst into the first stage hydrogenation product, the second catalyst is prepared into an oil-catalyst slurry by mixing the second catalyst with a solvent oil at a mass ratio of 2:10. The solvent oil comprises vegetable oil and a fuel oil and chemical raw material prepared by this process. The dried solid biomass has a moisture content of 25 wt % and the crushed solid biomass has a particle size of 1 ?m.

(134) Said introducing hydrogen in the above step (1) comprises: introducing a high-pressure medium-temperature hydrogen with a pressure of 27 MPa and a temperature of 180? C. into the slurry for a first time and heating the slurry to 350? C. by heat transfer, and then introducing a high-pressure high-temperature hydrogen with a pressure of 27 MPa and a temperature of 360? C. into the slurry for a second time to prepare a first reaction raw material mixture, wherein the total high-pressure hydrogen introduced for the first and second time and the slurry have a volume ratio of 1000:1; and feeding the first reaction raw material mixture into a first slurry bed reactor for undergoing a first hydrogenation reaction, and simultaneous introducing a high-pressure cold hydrogen with a pressure of 27 MPa and a temperature of 50? C. into the first slurry bed reactor via 3 inlets formed on a side wall of the first slurry bed reactor by controlling the first slurry bed reactor to have a total gas velocity of 0.02 m/s.

(135) Said introducing hydrogen in the above step (2) comprises: heating a mixture of the first stage hydrogenation product and the second catalyst to 480? C., and then feeding the mixture and introducing a high-pressure high-temperature hydrogen with a pressure of 27 MPa and a temperature of 430? C. into a second slurry bed reactor to perform a second hydrogenation reaction, meanwhile introducing a high-pressure cold hydrogen with a pressure of 27 MPa and a temperature of 50? C. into the second slurry bed reactor via 3 inlets formed on a side wall of the second slurry bed reactor with controlling a total gas velocity of 0.06 m/s and a volume ratio of the hydrogen to the first stage hydrogenation product being 1500:1 in the second slurry bed reactor. Wherein, the first catalyst stored in the first slurry bed reactor is controlled in an amount of 30 wt % of the mass of liquid phase in the first slurry bed reactor. The second catalyst stored in the second slurry bed reactor is controlled in an amount of 5 wt % of the mass of liquid phase in the second slurry bed reactor.

Embodiment 17

(136) In this embodiment, a first catalyst and a second catalyst are prepared as follows:

(137) Preparation of the first catalyst comprises:

(138) (1) selecting a dry distillation biomass charcoal as a first biomass charcoal carrier; and

(139) (2) loading a first active component on the first biomass charcoal carrier to prepare a first catalyst, wherein the first active component is iron oxide, and counted by the mass of metal element, the first active component accounts for 50% of the first biomass charcoal carrier by mass.

(140) Particularly, in step (2), loading the first active component on the first biomass charcoal carrier comprises:

(141) mixing the first biomass charcoal carrier with an aqueous solution of the first active component to prepare a suspension, then adding a precipitant into the suspension to precipitate the first active component on the first biomass charcoal carrier, followed by washing and drying to obtain the first catalyst; wherein the precipitant is ammonia water or an aqueous solution of at least one selected from alkali metal carbonate, alkali metal bicarbonate, alkali metal hydroxide and any combination thereof, and during the precipitation process, the temperature is controlled to be 90? C., and the pH value is controlled to be 9.

(142) Preparation of the second catalyst comprises:

(143) S1. subjecting a dry distillation biomass charcoal to acidification treatment or alkalization treatment to prepare a second biomass charcoal carrier, wherein the acidification treatment adopts an acidic medium which has a H.sup.+ concentration of 5 mol/L, a volume ratio of the dry distillation biomass charcoal to the acid medium is 1:15, and the acidification treatment is carried out at a temperature of 80? C. for a period of 10 h; the alkalization treatment adopts an alkaline medium which has an OH.sup.? concentration of 0.5 mol/L, a volume ratio of the dry distillation biomass charcoal to the alkaline medium is 1:5, and the alkalization treatment is carried out at a temperature of 30? C. for a period of 10 h; and

(144) S2. subjecting the second active component and the second biomass charcoal carrier to vibration grinding and/or plane grinding and/or ball milling to prepare a second catalyst with particle size of 200-300 ?m.

(145) Wherein the second active component is an oxide loaded with Mo and W, and counted by the mass of metal element, the second active component accounts for 5% of the second biomass charcoal carrier by mass.

Embodiment 18

(146) Provided is a biomass liquefaction process, which comprises the following steps:

(147) using a biomass charcoal loaded with iron oxide hydroxide as a first catalyst, and using a biomass charcoal loaded with molybdenum oxide as a second catalyst;

(148) (1) preparing a slurry comprising the first catalyst, a vulcanizing agent and animal, and introducing hydrogen to the slurry to undergo a first hydrogenation reaction by controlling a reaction pressure of 25 MPa and a reaction temperature of 200? C. to obtain a first stage hydrogenation product;

(149) (2) preparing an oil-catalyst slurry by mixing the second catalyst, a vulcanizing agent and animal oil, and adding the oil-catalyst slurry into the first stage hydrogenation product and introducing hydrogen to perform a second hydrogenation reaction by controlling a reaction pressure of 25 MPa and a reaction temperature of 380? C. to obtain a second stage hydrogenation product; and

(150) (3) subjecting the second stage hydrogenation product to separation treatment to obtain a fuel oil and chemical raw material.

Embodiment 19

(151) Provided is a biomass liquefaction process, which comprises the following steps:

(152) using an amorphous iron oxide as a first catalyst, and using an amorphous aluminium oxide loaded with W oxide and Ni oxide as a second catalyst;

(153) (1) drying corn stalks in a dryer until its moisture content is 5 wt %, and then crushing the corn stalks in a pulverizer until its particle size is 1-50 ?m, and dedusting the corn stalks to obtain stalk particles, and mixing the stalk particles and the first catalyst with petroleum to prepare a slurry;

(154) (2) introducing a high-pressure medium-temperature hydrogen with a pressure of 13 MPa and a temperature of 180? C. into the slurry for a first time and heating the slurry to 200? C. by heat transfer, and then introducing a high-pressure and high-temperature hydrogen with a pressure of 13 MPa and a temperature of 510? C. into the slurry for a second time to prepare a first reaction raw material mixture, wherein the total high-pressure hydrogen introduced at the first and second time and the slurry have a mass ratio of 600:1;

(155) feeding the first reaction raw material mixture and introducing hydrogen into a first slurry bed reactor to perform a first hydrogenation reaction with controlling a reaction pressure of 13 MPa and a reaction temperature of 350? C. to obtain a first stage hydrogenation product;

(156) wherein the above introducing hydrogen comprises: introducing a high-pressure cold hydrogen having a pressure of 27 MPa and a temperature of 50? C. into the first slurry bed reactor after the first reaction raw material mixture is fed into the first slurry bed reactor, by controlling the first slurry bed reactor to have a total gas velocity of 0.05 m/s;

(157) (3) mixing the second catalyst, a vulcanizing agent and animal oil to prepare an oil-catalyst slurry, and adding the oil-catalyst slurry into the first stage hydrogenation product and introducing hydrogen to perform a second hydrogenation reaction with controlling a reaction pressure of 13 MPa and a reaction temperature of 480? C. to obtain a second stage hydrogenation product; and

(158) (4) subjecting the second stage hydrogenation product to separation treatment to obtain a fuel oil and chemical raw material.

Embodiment 20

(159) Provided is a biomass liquefaction process, which comprises the following steps:

(160) using a biomass charcoal loaded with iron oxide hydroxide as a first catalyst, and using a biomass charcoal loaded with nickel oxide as a second catalyst;

(161) (1) drying sea algae and sea grass in a dryer until the moisture content is 15 wt %, and then crushing the sea algae and sea grass in a pulverizer until the particle size is 400-500 ?m, and dedusting the sea algae and sea grass to obtain particles of sea algae and sea grass, and mixing the particles of sea algae and sea grass and the first catalyst with coal tar to prepare a slurry, wherein a mass ratio of a vulcanizing agent to the first catalyst is 0.4:1, the first catalyst accounts for 10% of the slurry by mass, the first catalyst has a particle size of 5-100 ?m, the particles of sea algae and sea grass account for 10% of the slurry by mass;

(162) (2) introducing a high-pressure medium-temperature hydrogen with a pressure of 27 MPa and a temperature of 350? C. into the slurry for a first time and heating the slurry to 350? C. by heat transfer, and then introducing a high-pressure high-temperature hydrogen having a pressure of 27 MPa and a temperature of 360? C. into the slurry for a second time to prepare a first reaction raw material mixture, wherein a mass ratio of the total high-pressure hydrogen introduced at the first and second time to the slurry is 1000:1;

(163) feeding the first reaction raw material mixture into a first slurry bed reactor and introducing hydrogen to perform a first hydrogenation reaction with controlling a reaction pressure of 20 MPa and a reaction temperature of 300? C. to obtain a first stage hydrogenation product;

(164) wherein the above introducing hydrogen comprises: introducing a high-pressure cold hydrogen having a pressure of 13 MPa and a temperature of 135? C. into the first slurry bed reactor after the first reaction raw material mixture is fed into the first slurry bed reactor, and controlling the first slurry bed reactor to have a total gas velocity of 0.08 m/s;

(165) (3) mixing the second catalyst with a vulcanizing agent and animal oil to prepare an oil-catalyst slurry, and adding the oil-catalyst slurry into the first stage hydrogenation product and introducing hydrogen to perform a second hydrogenation reaction with controlling a reaction pressure of 25 MPa and a reaction temperature of 430? C. to obtain a second stage hydrogenation product, wherein a mass ratio of the second catalyst to the solvent oil in the oil-catalyst slurry is 1:10, the second catalyst accounts for 0.5 wt % of the first stage hydrogenation product, a mass ratio of the vulcanizing agent to the second catalyst is 0.4:1, and the second catalyst has a particle size of 400-500 ?m;

(166) (4) subjecting the second stage hydrogenation product to separation treatment to obtain a fuel oil and chemical raw material respectively.

Embodiment 21

(167) Provided is a biomass liquefaction process, which comprises the following steps:

(168) using a biomass charcoal loaded with iron oxide as a first catalyst, and using a biomass charcoal loaded with nickel oxide and iron oxide as a second catalyst;

(169) (1) drying straw in a dryer until the moisture content is 10 wt %, and then crushing the straw in a pulverizer until the particle size is 4000-5000 ?m, and deducting the straw to obtain straw particles, and mixing the straw particles and the first catalyst with coal tar to prepare a slurry, wherein a mass ratio of a vulcanizing agent to the first catalyst is 1:1, the first catalyst accounts for 2% of the slurry by mass, the first catalyst has a particle size of 400-500 ?m, the straw particles accounts for 30% of the slurry by mass;

(170) (2) introducing a high-pressure medium temperature hydrogen with a pressure of 20 MPa and a temperature of 250? C. into the slurry for a first time and heating the slurry to 300? C. by heat transfer, and then introducing a high-pressure high-temperature hydrogen with a pressure of 20 MPa and a temperature of 450? C. into the slurry for a second time to prepare a first reaction raw material mixture, wherein the total introduced high-pressure hydrogen at two times and the slurry have a mass ratio of 800:1;

(171) feeding the first reaction raw material mixture into a first slurry bed reactor and introducing hydrogen into the first slurry bed reactor to perform a first hydrogenation reaction with controlling a reaction pressure of 20 MPa and a reaction temperature of 300? C. for a period of 15-30 min to obtain a first stage hydrogenation product,

(172) wherein the above introducing hydrogen comprises: introduced a high-pressure cold hydrogen having a pressure of 17 MPa and a temperature of 100? C. into the first slurry bed reactor after the first reaction raw material mixture is fed into the first slurry bed reactor, and controlling the first slurry bed reactor to have a total gas velocity of 0.02 m/s;

(173) (3) mixing the second catalyst with a vulcanizing agent and animal oil to prepare an oil-catalyst slurry, adding the oil-catalyst slurry into the first stage hydrogenation product to obtain a mixture, heating the mixture to 430? C. and feeding it into a second slurry bed reactor, and introducing hydrogen into the second slurry bed reactor to perform a second hydrogenation reaction with controlling a reaction pressure of 17 MPa and a reaction temperature of 450? C. for a period of 30-40 min to obtain a second stage hydrogenation product, wherein the second catalyst stored in the second slurry bed reactor is controlled in an amount of 5-20 wt % of the mass of liquid phase in the second slurry bed reactor;

(174) a mass ratio of the second catalyst to a solvent oil in the oil-catalyst slurry is 2:10, the second catalyst accounts for 1 wt % of the first stage hydrogenation product, a mass ratio of the vulcanizing agent to the second catalyst is 1:1, and the second catalyst has a particle size of 100-200 ?m;

(175) wherein the introducing hydrogen comprises: introducing a high-temperature high-pressure hydrogen with a pressure of 13 MPa and a temperature of 480? C. into the second slurry bed reactor after the mixture is fed into the second slurry bed reactor, to perform a second hydrogenation reaction, and meanwhile introducing a high-pressure cold hydrogen with a pressure of 13 MPa and a temperature of 135? C. into the second slurry bed reactor, and controlling a total gas velocity of 0.1 m/s and a volume ratio of the hydrogen to the first stage hydrogenation product being 1000:1 in the second slurry bed reactor; and

(176) (4) hydroforming the second stage hydrogenation product under a pressure of 7 MPa and a temperature of 460? C., followed by separation to obtain a fuel oil and chemical raw material.

Embodiment 22

(177) Provided is a biomass liquefaction process, which comprises the following steps:

(178) preparing a first catalyst and a second catalyst according to the embodiment 17;

(179) (1) drying straw in a dryer until the moisture content is 20 wt %, and then crushing the straw in a pulverizer until the particle size is 3000-4000 ?m, and dedusting the straw to obtain straw particles, and mixing the straw particles and the first catalyst with coal tar to prepare a slurry, wherein a mass ratio of a vulcanizing agent to the first catalyst is 0.7:1, the first catalyst accounts for 10% of the slurry by mass, the first catalyst has a particle size of 5-200 ?m, and the straw particles account for 40% of the slurry by mass;

(180) (2) introducing a high-pressure medium-temperature hydrogen with a pressure of 18 MPa and a temperature of 300? C. into the slurry for a first time and heating the slurry to 250? C. by heat transfer, and then introducing a high-pressure high-temperature hydrogen with a pressure of 18 MPa and a temperature of 400? C. into the slurry for a second time to prepare a first reaction raw material mixture, wherein the hydrogen totally introduced at the first and second time and the slurry have a mass ratio of 900:1;

(181) feeding the first reaction raw material mixture into a first slurry bed reactor and introducing hydrogen into the first slurry bed reactor to perform a first hydrogenation reaction with controlling a reaction pressure of 20 MPa and a reaction temperature of 300? C. for a period of 30-60 min to obtain a first stage hydrogenation product, wherein the first catalyst stored in the first slurry bed reactor is controlled in an amount of 20-30 wt % of the mass of liquid phase in the first slurry bed reactor;

(182) wherein the above introducing hydrogen comprises: introducing a high-pressure cold hydrogen having a pressure of 17 MPa and a temperature of 100? C. into the first slurry bed reactor after the first reaction raw material mixture is fed into the first slurry bed reactor, and controlling the first slurry bed reactor to have a total gas velocity of 0.02 m/s;

(183) (3) mixing the second catalyst with a vulcanizing agent and animal oil to prepare an oil-catalyst slurry, and adding the oil-catalyst slurry into the first stage hydrogenation product to obtain a mixture, and heating the mixture to 430? C. and feeding it into a second slurry bed reactor, and introducing hydrogen into the second slurry bed reactor to perform a second hydrogenation reaction with controlling a reaction pressure of 17 MPa and a reaction temperature of 450? C. for a period of 50-60 min to obtain a second stage hydrogenation product, wherein the second catalyst stored in the second slurry bed reactor is controlled in an amount of 20-30 wt % of the mass of liquid phase in the second slurry bed reactor;

(184) a mass ratio of the second catalyst to a solvent oil in the oil-catalyst slurry is 2:10, the second catalyst accounts for 1 wt % of the first stage hydrogenation product, a mass ratio of the vulcanizing agent to the second catalyst is 0.01:1, and the second catalyst has a particle size of 100-200 ?m;

(185) wherein the introducing hydrogen comprises: feeding the mixture into the second slurry bed reactor, and introducing a high-temperature high-pressure hydrogen with a pressure of 13 MPa and a temperature of 480? C. into the second slurry bed reactor to perform a second hydrogenation reaction, and meanwhile introducing a high-pressure cold hydrogen with a pressure of 13 MPa and a temperature of 135? C. into the second slurry bed reactor via 3-5 inlets formed on a side wall of the second slurry bed reactor, with controlling a total gas velocity being 0.1 m/s and a volume ratio of the hydrogen to the first stage hydrogenation product being 1000:1 in the second slurry bed reactor; and (4) hydroforming the second stage hydrogenation product under a pressure of 23 MPa and a temperature of 250? C., followed by separation to obtain a fuel oil and chemical raw material.

Comparative Example 1

(186) Provided is a biomass liquefaction process, which comprises the following steps:

(187) adding sulfidation treated amorphous iron oxide hydroxide into animal oil to prepare a slurry in a reactor, and introducing hydrogen to the slurry to perform a hydrogenation reaction by controlling a reaction pressure of 4 MPa and a reaction temperature of 430? C. to finally obtain a fuel oil and chemical raw material.

Comparative Example 2

(188) Provided is a biomass liquefaction process, which comprises the following steps:

(189) adding a sulfidation treated oil-soluble dispersive hydrogenation catalyst into animal oil to prepare a slurry in a reactor, and performing hydrogenation reaction by introducing hydrogen to the slurry and controlling a reaction pressure of 13 MPa and a reaction temperature of 480? C. to finally obtain a fuel oil and chemical raw material.

Comparative Example 3

(190) Provided is a method for preparing a fuel oil and chemical raw material from biomass. The method comprises the same steps as the method of embodiment 17, except that the first slurry bed reactor is controlled to have a reaction pressure of 10 Mpa and a reaction temperature of 400? C.

Comparative Example 4

(191) Provided is a method for preparing a fuel oil and chemical raw material from biomass. The method comprises the same steps as the method of embodiment 17, except that the second slurry bed reactor is controlled to have a reaction pressure of 30 Mpa and a reaction temperature of 200? C.

Test Example

(192) The products prepared by Embodiment 1 and Comparative examples 1 and 2 are tested to compare the product distribution, and the results are shown in the following table 1.

(193) TABLE-US-00001 TABLE 1 Product distribution comparison of Embodiment 1 and Comparative examples 1-2 Biomass Light oil Coke Conversion conversion rate yield amount result wt % wt % wt % Comparative 87.62 69.59 2.18 example 1 Comparative 88.36 70.61 2.05 example 2 Embodiment 1 98.94 75 0.01

(194) Table 1 shows that, when compared with the Comparative examples 1-2, the biomass conversion rate and light oil yield obtained by the Embodiment 1 are higher while the coke amount is remarkably reduced and almost no coke is generated. Therefore the results have proved that the process of the present invention can remarkably increase the biomass conversion rate and light oil yield and reduce coke amount. In addition, the multi-stage liquefaction enables the hydrogenation reaction is more sufficient and the quality of the light oil is better.

(195) The products prepared by Embodiment 9 and Comparative examples 1 and 2 are tested to compare the product distribution, and results are shown in the following table 2.

(196) TABLE-US-00002 TABLE 2 Product distribution comparison of Embodiment 9 and Comparative examples 1-2 Biomass Light oil Coke Conversion conversion rate yield amount result wt % wt % wt % Comparative 87.62 69.59 2.18 example 1 Comparative 88.36 70.61 2.05 example 2 Embodiment 9 98.94 75 0.01

(197) Table 2 shows that, compared with the Comparative examples 1-2, the biomass conversion rate and light oil yield obtained by the Embodiment 9 are higher while the coke amount is remarkably reduced and almost no coke is generated. Therefore the results have proved that the process of the present invention can remarkably increase the biomass conversion rate and light oil yield and reduce coke amount. In addition, the multi-stage liquefaction enables the hydrogenation reaction is more sufficient and the quality of the light oil is better.

(198) The products prepared by Embodiment 17 and Comparative examples 3 and 4 are tested to compare the product distribution, and the results are shown in the following table 3.

(199) TABLE-US-00003 TABLE 3 Product distribution comparison of Embodiment 17 and Comparative examples 3-4 Biomass Fuel oil Coke Conversion conversion rate yield amount result wt % wt % wt % Comparative 85.62 69.59 2.18 example 3 Comparative 82.36 70.61 3.05 example 4 Embodiment 17 99.24 79 0.01

(200) Table 3 shows that, compared with the Comparative examples 3-4, the biomass conversion rate and fuel oil yield obtained by the Embodiment 17 are higher, while the coke amount is remarkably reduced and almost no coke is generated. Therefore the results have proved that the process of the present invention can remarkably increase the biomass conversion rate and fuel oil yield and reduce coke amount. In addition, the multi-stage liquefaction enables the hydrogenation reaction is more sufficient and the quality of the fuel oil is higher.

(201) Apparently, the above-mentioned embodiments are only illustrated for distinct description, but not intended to limit embodiments. For those having ordinary skill in the art, changes or variations of other different forms can also be made on the basis of the above-mentioned description. Herein, all embodiments are not required to and cannot be exhaustive. Readily apparent changes or variations evolved therefrom still fall within the protection scope of the present invention.