Cracking reactor, method for preparing olefins by means of cracking and use
Patent Information
- Application Number
- JP2024525283
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-10-28
- Filing Date
- 2022-10-27
- Publication Date
- 2025-10-14
AI Technical Summary
Conventional cracking reactors face issues with low crude oil utilization, low lower olefin yield, and short operating cycles due to coking and clogging in the radiant section, particularly when using crude oil as a feedstock.
A cracking reactor system with sequential preheating, lightening, reduced pressure gasification, and decomposition sections, utilizing supercritical water reactions to convert heavy components into lighter molecules, followed by steam pyrolysis to enhance crude oil utilization and reduce coking.
The system improves crude oil utilization, increases lower olefin yield, and extends the operating cycle of the reactor by preventing coking and clogging, while reducing energy consumption and raw material costs.
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Abstract
Description
Detailed Description of the Invention
[0001] [Technical field] The present invention relates to the field of cracking, in particular to a cracking reactor, a method and uses for preparing olefins by cracking.
[0002] [Background technology] Low olefins are usually composed mainly of unsaturated hydrocarbons such as ethylene, propylene, butylene, and butadiene, and are organic chemical raw materials with high economic value. With the development of the economy, the demand for these organic chemical raw materials is increasing year by year. Naphtha has long been used as the main raw material for the preparation of low olefins. However, in recent years, cheap associated gas from Middle Eastern oil fields and shale gas in the United States have been widely used as ethylene raw materials, and the price of ethylene-related products has fallen. In order to deal with the influence of market competition, expanding the raw material source of the ethylene cracking reactor and reducing the raw material cost has become an effective means for traditional ethylene companies to reduce costs and improve efficiency. Therefore, using heavy hydrocarbons, especially untreated crude oil, as the raw material for the cracking reactor that produces low olefins contributes to reducing the raw material cost and energy consumption of olefin production, and can quickly respond to changes in the supply and demand of cracking raw materials in the market.
[0003] In order to effectively utilize crude oil resources and increase the yield of lower olefins, steam cracking is usually carried out to crack various hydrocarbon feedstocks into olefins using a cracking reactor. Commonly used cracking reactors include a convection section and a radiant section.
[0004] Steam cracking has been used to crack a variety of hydrocarbon feedstocks into olefins, preferably lower olefins such as ethylene, propylene, butenes, and butadiene. Traditional steam cracking uses a cracking furnace with two main sections, a convection section and a radiant section. The hydrocarbon feedstock typically enters the convection section of the cracking furnace as a liquid, where it is heated and gasified, typically by indirect contact with hot tail gas from the radiant section and direct contact with steam. The gasified feedstock and steam mixture is then introduced into the radiant section, where cracking takes place. The products, including olefins, exit the cracking furnace for further downstream processing, including quenching.
[0005] CN101583697A discloses a method for cracking feedstocks containing synthetic oils. The method includes blending existing ethylene production feedstocks with crude oil to dilute the crude oil, improve the cracking performance of the crude oil, and increase the conversion rate of olefins. However, this method is limited by the source of existing ethylene production feedstocks and cannot effectively utilize large amounts of crude oil to produce lower olefins.
[0006] CN109651041A discloses a method for preparing light olefins. The method includes the following steps: (1) contacting heavy oil with supercritical carbon dioxide and separating to obtain a light liquid phase containing light oil and carbon dioxide, and a heavy liquid phase containing heavy oil; (2) subjecting the light liquid phase containing light oil and carbon dioxide to component separation to obtain light oil and carbon dioxide; (3) subjecting the light oil to steam pyrolysis to obtain light olefins. This method uses carbon dioxide to treat heavy oil, which improves the properties of crude oil to a certain extent, but has the problem of a short operating cycle of the cracking reactor.
[0007] Cracking crude oil by the above methods results in low crude oil utilization rate, low yield of low olefins, easy coking of cracking reactor, and short operation cycle. Contents of the invention
[0008] The object of the present invention is to overcome the technical problems of low crude oil utilization rate, low low olefin yield and short operation cycle of cracking reactor existing in the prior art, and provide a cracking reactor, as well as a method and use for preparing olefins by cracking.
[0009] Crude oil contains non-volatile components with high molecular weights. The inventors have found that when these non-volatile components are preheated in the convection section of a conventional cracking reactor, only a small portion of them is not gasified, and the non-gasified non-volatile components are entrained in the radiant section by the mixed gas flow, which makes it easier for coking deposition to occur in the radiant section, and furthermore, the radiant section is blocked, which reduces the yield of the cracked product and shortens the operation cycle of the unit. Thus, the present invention provides a raw material that is more suitable for steam pyrolysis by subjecting crude oil to a lightening reaction in water, thereby lowering at least a portion of the heavy component polymers in the crude oil. In addition, the water required for lightening can also function as dilution steam in the cracking section. In addition, by first heating the product obtained after the lightening reaction under reduced pressure and then performing the cracking reaction, the crude oil utilization rate and the light olefin yield can be further improved, coking in the cracking reaction unit can be reduced, and the operation time of the cracking reaction unit can be extended.
[0010] A first aspect of the present invention provides a cracking reactor including a preheating section, a lightening section, a reduced pressure gasification section and a cracking section connected in series.
[0011] In some embodiments, the lightening section comprises a lightening vessel, preferably a lightening kettle.
[0012] In some embodiments, the preheating section comprises a heating vessel or a heat exchanger. In some embodiments, the reduced pressure gasification section comprises a reduced pressure gasification vessel. In some embodiments, the cracking section comprises a cracker.
[0013] In some embodiments, the cracking reactor includes one or more reaction tubes, each reaction tube including the preheating section, the lightening section, the vacuum gasification section and the cracking section, which are connected in series. The arrangement of the reaction tubes can be horizontal, vertical or suspended.
[0014] In some embodiments, the cracking reactor further comprises a pressurization section prior to the preheating section, and / or a quench section following the cracking section.
[0015] In some embodiments, a pressure reducing means for reducing the pressure of the material flowing into the pressure reducing gasification section is disposed between the lightening section and the pressure reducing gasification section. Preferably, the pressure reducing means is a pressure reducing valve, a pressure control valve or a throttling element.
[0016] In some embodiments, the temperatures of the preheating section, the lightening section, the decompression gasification section, and the cracking section are sequentially increased. Preferably, the temperatures of the preheating section, the lightening section, the cracking gasification section, and the cracking section are 150 to 250°C, 350 to 450°C, 550 to 650°C, and 770 to 880°C, respectively.
[0017] In some embodiments, the preheating section is a two-layered tube or a tube having more than two layers. In some embodiments, the helical projections are disposed on the inside and / or outside of the wall of the inner layer tube, and / or the tube wall of the middle layer, and / or the inside of the wall of the outer layer tube of the two-layered tube or the tube having more than two layers.
[0018] In some embodiments, the ratio of the inner diameter of the inner layer tube to the inner diameter of the outer layer tube of the two-layer tube is 0.1 to 0.9, preferably 0.4 to 0.6. In some embodiments, the helical projections of adjacent tube layers have opposite helical directions. In some embodiments, the ratio of the helical projection height to the diameter is 0.1 to 20, preferably 1 to 10. In some embodiments, the ratio of the helical projection height to the diameter is 0.01 to 0.5, preferably 0.02 to 0.1.
[0019] In some embodiments, the pressurizing portion comprises a pressurizing device, preferably the pressurizing device is a pump.
[0020] In some embodiments, the volume ratio of the preheating section, the lightening section, the reduced pressure gasification section and the cracking section is 0.1-10:0.1-1000:0.1-10:1, preferably 0.1-0.5:1-300:0.1-0.5:1.
[0021] A second aspect of the present invention provides a cracking reaction apparatus, comprising a pressurization section, a preheating section, a lightening section, a reduced pressure gasification section, a cracking section and a quenching section, which are connected in series, a cracked raw material inlet and a cracked product outlet, the cracked raw material inlet being disposed in the preheating section and the cracked product outlet being disposed in the quenching section, the preheating section, the lightening section, the reduced pressure gasification section, the cracking section and the quenching section each having a temperature control means for controlling the temperature of each section during operation, a pressure reduction means being disposed between the lightening section and the reduced pressure gasification section for reducing the pressure of the raw material flowing into the reduced pressure gasification section, the preheating section having a double-layered tube structure, and a spiral protrusion being disposed on the inside of the wall of the inner layer tube and / or the inside of the wall of the outer layer tube of the double-layered tube.
[0022] In some embodiments, the ratio of the inner diameter of the inner layer tube to the inner diameter of the outer layer tube of the two-layer tube is 0.1 to 0.9, preferably 0.4 to 0.6. In some embodiments, the helical protrusion on the inner side of the wall of the inner layer tube has a helical direction opposite to that of the helical protrusion on the inner side of the wall of the outer layer tube. In some embodiments, the ratio of the helical height to the diameter of the helical protrusion on the inner side of the wall of the inner layer tube is 0.1 to 20, preferably 1 to 10. In some embodiments, the ratio of the helical height to the diameter of the helical protrusion on the inner side of the wall of the outer layer tube is 0.1 to 20, preferably 1 to 10. In some embodiments, the ratio of the protrusion height to the diameter of the helical protrusion on the inner side of the wall of the inner layer tube is 0.01 to 0.5, preferably 0.02 to 0.1. In some embodiments, the ratio of the projection height to the diameter of the helical projection inside the wall of the outer layer tube is between 0.01 and 0.5, preferably between 0.02 and 0.1.
[0023] In some embodiments, the volume ratio of the preheating section, the lightening section, the reduced pressure gasification section, the quenching section and the cracking section is 0.1-10:0.1-1000:0.1-10:0.1-10:1, preferably 0.1-0.5:1-300:0.1-0.5:0.1-0.5:1.
[0024] In some embodiments, the pressure reducing means is a pressure reducing valve, a pressure control valve or a throttling element. In some embodiments, the pressurizing section comprises a pressurizing device. Preferably, the pressurizing device is a pump.
[0025] In some embodiments, the decomposition reactor has a configuration of one or more reactor tubes. In some embodiments, the reactor tubes are arranged in a horizontal, vertical or suspended configuration.
[0026] A third aspect of the present invention provides a method for producing olefins by cracking, characterized in that the method comprises the steps of: (1) pressurizing the cracking feedstock and water; (2) subjecting the pressurized cracked feedstock and water to a first heating; (3) subjecting the cracked feedstock and water subjected to the first heating to a second heating, and subjecting the cracked feedstock to a lightening reaction in the presence of water to obtain a lightening mixture (containing a lightening reaction product of the cracked feedstock); (4) gasifying the lightened mixture under reduced pressure and subjecting it to a third heating to obtain a third heated mixture (gas); and (5) cracking the third heated mixture in the presence of water vapor at a cracking temperature to obtain a cracked product comprising olefins.
[0027] In some embodiments, the temperatures of the first heating, the second heating, the third heating and the decomposition are sequentially increased, preferably from step (2) to step (5), with the temperature increase between adjacent steps ranging from 100 to 250° C., preferably 150 to 250° C. In some embodiments, the temperatures of the first heating, the second heating, the third heating and the decomposition are 150 to 250° C., 350 to 450° C., 550 to 650° C. and 770 to 880° C., respectively.
[0028] In some embodiments, the weight ratio of water to the cracked feedstock in step (1) is from 0.3 to 10.5, preferably from 0.5 to 5. In some embodiments, the cracked feedstock is crude oil.
[0029] In some embodiments, in step (1), after pressurization, the pressure of the cracking raw material and the water are each 10 to 40 MPa, preferably 15 to 30 MPa, and more preferably 21 to 30 MPa. In some embodiments, in step (2), the conditions of the first heating include: a temperature lower than 350°C, preferably 150 to 250°C; and a pressure of 10 to 40 MPa, preferably 15 to 30 MPa, and more preferably 21 to 30 MPa. In some embodiments, the lightening reaction in step (3) is carried out under supercritical water conditions or conditions close to supercritical water. Preferably, the conditions of the lightening reaction include: a temperature of 350 to 450°C, and a pressure of 10 to 40 MPa, preferably 15 to 30 MPa, and more preferably 21 to 30 MPa. In some embodiments, the decompression in step (4) reduces the pressure of the mixture after the lightening reaction to 0.01-0.5 MPa, preferably 0.1-0.3 MPa, and the third heating increases the temperature of the mixture after the lightening reaction to 550-650° C. In some embodiments, the conditions for the cracking reaction in step (5) include: a temperature of 770-880° C., preferably 780-820° C., and a pressure of 0.01-0.5 MPa, preferably 0.2-0.3 MPa. In step (5), the residence time of the material can be 0.1-0.5 seconds.
[0030] In some embodiments, the method further comprises: (6) cooling the decomposition product obtained after the decomposition reaction. Preferably, in step (6), the cooling reduces the temperature of the decomposition product to 550° C. or less within 0.1 seconds, and the pressure is 0.01-0.5 MPa, preferably 0.2-0.3 MPa.
[0031] In some embodiments, the method may be carried out in a decomposition reactor of the present application.
[0032] A fourth aspect of the present invention provides a method for producing olefins by cracking, the method comprising: (1) pressurizing the cracking feedstock and water; (2) subjecting the pressurized cracked feedstock and water to a first heating; (3) subjecting the cracked feedstock and water subjected to the first heating to a second heating, and subjecting the cracked feedstock to a lightening reaction in the presence of water; (4) reducing the pressure of the mixture obtained after the lightening reaction and then subjecting it to a third heating to obtain a third heated mixture containing water vapor and the lightening reaction product of the cracked feedstock; (5) subjecting the lightening reaction product of the cracking feedstock to a cracking reaction in the presence of water vapor; (6) Cooling the decomposition product after the decomposition reaction.
[0033] In some embodiments, the temperatures of the first heating, the second heating, the third heating and the cracking reaction are sequentially increased, and the increase is in the range of 100 to 250° C., preferably 150 to 250° C. In some embodiments, the weight ratio of water to the cracking feedstock in step (1) may be 0.3 to 10.5, preferably 0.5 to 5. In some embodiments, the cracking feedstock is at least one selected from the group consisting of crude oil, residual oil, and heavy hydrocarbons obtained by processing crude oil.
[0034] In some embodiments, the pressure of the cracking raw material and water after pressurization in step (1) is 10 to 40 MPa, preferably 21 to 30 MPa. In some embodiments, the conditions for the first heating in step (2) include: a temperature lower than 350°C, preferably 150 to 250°C; a pressure of 10 to 40 MPa, preferably 21 to 30 MPa. In some embodiments, the conditions for the lightening reaction in step (3) include: a temperature of 350 to 450°C, and a pressure of 10 to 40 MPa, preferably 21 to 30 MPa. In some embodiments, in step (4), the decompression reduces the pressure of the mixture obtained after the lightening reaction to 0.01 to 0.5 MPa, preferably 0.1 to 0.3 MPa; the third heating increases the temperature of the mixture after the lightening reaction to 550 to 650°C. In some embodiments, the conditions for the decomposition reaction in step (5) include a temperature of 770-880°C, preferably 780-820°C, a pressure of 0.01-0.5 MPa, preferably 0.2-0.3 MPa, and a residence time of 0.1-0.5 seconds. In some embodiments, in step (6), the temperature of the decomposition product is reduced to 550°C or less by cooling within 0.1 seconds, and the pressure is 0.01-0.5 MPa, preferably 0.2-0.3 MPa.
[0035] In some embodiments, the method may be carried out in a decomposition reactor of the present application.
[0036] A fifth aspect of the present invention provides the use of a cracking reactor as described above in the preparation of olefins by cracking.
[0037] The cracking reactor and / or cracking method provided by the present invention can effectively improve the cracking efficiency of crude oil, increase the olefin yield, reduce the operation cost, reduce the coking and clogging of the cracker, and extend the operation time of the cracking reactor. Description of the drawings
[0038] FIG. 1 is a schematic diagram of a decomposition reaction apparatus according to one embodiment of the present invention. FIG. 2 is a structural perspective view of a preheating section of a decomposition reaction apparatus according to one embodiment of the present invention. FIG. 3 is a structural perspective view of a preheating section of a decomposition reaction apparatus according to another embodiment of the present invention. As those skilled in the art will appreciate, the drawings merely depict example embodiments of the present application and are not necessarily drawn to scale. [Embodiments of the invention]
[0039] The range endpoints and any values disclosed herein are not intended to be limited to the exact range or value, but rather should be understood to include values close to such ranges or values. For numerical ranges, the endpoints of each range, the individual point values, can be combined with each other to obtain one or more new numerical ranges, which are considered to be specifically disclosed herein.
[0040] References herein to "one embodiment" or "some embodiments" mean that a feature, structure, or characteristic described in connection with an embodiment or embodiments is included in at least one embodiment. In one or more embodiments, these features, structures, or characteristics may be combined in any suitable manner.
[0041] The individual embodiments in this specification may be combined with each other, but this does not include combinations that are contrary to the laws of nature or that a person skilled in the art would exclude based on his or her expert knowledge.
[0042] One aspect of the present invention provides a cracking reactor including a preheating section, a lightening section, a reduced pressure gasification section and a cracking section, which are connected in series.
[0043] "Cracking" as used herein has its meaning generally known in the art and refers to the breaking down of hydrocarbons into smaller hydrocarbons containing fewer carbon atoms by breaking carbon-carbon bonds. Preferably, "cracking" in this application is steam cracking, which has its meaning generally known in the art and refers to a thermal cracking reaction that occurs in the presence of steam.
[0044] The cracking reactor of the present application includes a preheating section, a lightening section, a reduced pressure gasification section, and a cracking section, which are connected in series. According to some embodiments, the stream to be treated passes through the preheating section, the lightening section, the reduced pressure gasification section, and the cracking section in the cracking reactor in series.
[0045] In some embodiments, the cracking reactor may also include a pressurizing section prior to the preheating section. In the pressurizing section, the cracking feedstock and water are pressurized to a required pressure. After being pressurized in the pressurizing section, the cracking feedstock and water are pressurized to 10 to 40 MPa, preferably 15 to 30 MPa, more preferably 21 to 30 MPa. According to some embodiments, the pressure may be 15 MPa, 16 MPa, 17 MPa, 18 MPa, 19 MPa, 20 MPa, 21 MPa, 22 MPa, 23 MPa, 24 MPa, 25 MPa, 26 MPa, 27 MPa, 28 MPa, 29 MPa, 30 MPa, 31 MPa, 32 MPa, 33 MPa, 34 MPa, 35 MPa, 36 MPa, 37 MPa, 38 MPa, or 39 MPa.
[0046] In some embodiments, the pressurizing section includes or is, for example, a pipe that delivers cracking feedstock and water to the preheating section. In some embodiments, the pressurizing section includes a pressurizing device. Various pressurizing devices commonly known in the art can be used. Preferably, the pressurizing device is a pump.
[0047] The cracking material and water are pressurized and then sent to the preheating section.
[0048] The preheating section is used to preheat the material including the cracking raw material and water. In the preheating section, the material to be preheated, such as the cracking raw material and water, is heated to a desired temperature, for example, a temperature of 350°C or less. In some embodiments, the preheating section heats the material to a temperature of, for example, 150 to 250°C. For example, the preheating section heats the material to 150°C, 160°C, 170°C, 180°C, 190°C, 200°C, 210°C, 220°C, 230°C, 240°C, 250°C, 260°C, 270°C, 280°C, 290°C, 300°C, 310°C, 320°C, 330°C, or 340°C.
[0049] In some embodiments, the preheating section includes a heating vessel or a heat exchanger. After the pressurized cracked feedstock and water are fed into a heating vessel, the cracked feedstock and water are heated to a desired temperature in the heating vessel. When a heat exchanger is used, the cracked feedstock and water are heated to a desired temperature by heat exchange. In some embodiments, the preheating section is tubular. In some embodiments, the preheating section is a two-layer tube or a tube having more than two layers. In some embodiments, the preheating section includes or is a portion of a tubular reactor (i.e., a preheating section of the tubular reactor).
[0050] In the preheating section, the pressure of the raw materials (the cracking raw materials and water) is 10 to 40 MPa, preferably 15 to 30 MPa, and more preferably 21 to 30 MPa.
[0051] In the present invention, the cracked raw material and water can be pressurized and preheated separately, and then the pressurized and preheated cracked raw material and the pressurized and preheated water are mixed. Alternatively, the cracked raw material and water can be pressurized separately, and then the pressurized cracked raw material and the pressurized water are mixed to obtain a mixture, and the obtained mixture is heated to a desired preheat temperature. Alternatively, the cracked raw material can be mixed with water, and the mixture can be pressurized and preheated. For example, the cracked raw material and water are added to a container to obtain a mixture, and then the mixture in the container is pressurized and preheated.
[0052] The preheating section is followed by the lightening section, in which the cracked feedstock and water are preheated and then sent to the lightening section.
[0053] In the lightening section, the cracked raw material and water are further heated, for example, to a temperature of 300 to 540° C., preferably 300 to 500° C., and more preferably 350 to 450° C. For example, in the lightening section, the cracked raw material and water are heated to 310° C., 320° C., 330° C., 340° C., 350° C., 360° C., 370° C., 380° C., 390° C., 400° C., 410° C., 420° C., 430° C., 440° C., 450° C., 460° C., 470° C., 480° C., 490° C., 500° C., 510° C., 520° C., or 530° C.
[0054] In the lightening section, the pressure of the cracked raw material and water is 10 to 40 MPa, preferably 15 to 30 MPa, and more preferably 21 to 30 MPa.
[0055] As known in the art, the critical temperature of water is about 374° C. and the critical pressure of water is about 22.1 megapascals (MPa). Supercritical water is water having a temperature equal to or greater than the critical temperature of water and a pressure equal to or greater than the critical pressure of water. In the lightening section of the present application, water is in a near-critical or supercritical state. In the lightening section of the present application, the cracked feedstock (such as crude oil) reacts in the presence of near-critical or supercritical water to convert at least a portion of the heavy component macromolecules in the cracked feedstock into smaller molecules to obtain a lightened mixture.
[0056] In some embodiments, the lightening section comprises a lightening vessel such as a lightening kettle. Alternatively, the lightening section comprises or is a section of a tubular reactor.
[0057] In some embodiments, a plurality of lightening reactors can be connected in series or parallel, and when a part of the lightening reactors discharges reactants to the cracking gasification section, the cracking raw material and water are supplied to a part of the lightening reactors, and a part of the lightening reactors performs the lightening reaction, thereby maintaining continuous and stable operation of the downstream part of the cracking reactor.
[0058] In some embodiments, the pressurized and preheated cracked raw material and water are supplied to the lightening reaction vessel and reacted under conditions of 350 to 450°C and 21 to 30 MPa for 1 to 120 minutes to obtain a lightened mixture.
[0059] In some embodiments, the entire resulting lightened mixture enters the cracker-gasifier, or enters the cracker-gasifier after a solid residue and optionally a portion of the water have been separated.
[0060] The lightening section is followed by the reduced pressure gasification section. The lightened mixture obtained from the lightening section is supplied to the reduced pressure gasification section. The lightened mixture obtained after lightening is sent to the reduced pressure gasification section, where it is gasified under reduced pressure and heated to obtain a completely or substantially completely gasified steam-containing mixture (gaseous mixture).
[0061] In some embodiments, the pressure reduction reduces the pressure of the lightened mixture to 0.01 to 0.5 MPa, preferably 0.1 to 0.4 MPa. For example, the pressure of the lightened mixture can be reduced to 0.02 MPa, 0.03 MPa, 0.04 MPa, 0.05 MPa, 0.06 MPa, 0.07 MPa, 0.08 MPa, 0.09 MPa, 0.1 MPa, 0.15 MPa, 0.2 MPa, 0.25 MPa, 0.3 MPa, 0.35 MPa, 0.4 MPa, or 0.45 MPa. The heating in the reduced pressure gasification section increases the temperature of the steam-containing mixture to, for example, 550 to 700°C, preferably 550 to 650°C. For example, heating in the reduced pressure gasification section increases the temperature of the steam-containing mixture to 560°C, 570°C, 580°C, 590°C, 600°C, 610°C, 620°C, 630°C, 640°C, 650°C, 660°C, 670°C, 680°C or 690°C.
[0062] In some embodiments, the reduced pressure gasification section comprises a reduced pressure gasification vessel. Alternatively, the reduced pressure gasification section comprises or is a portion of a tubular reactor.
[0063] In some embodiments, a pressure reducing means is disposed between the lightening section and the reduced pressure gasification section to reduce the pressure of the feedstock entering the reduced pressure gasification section. Any pressure reducing means capable of reducing pressure may be used. Preferably, the pressure reducing means is a pressure reducing valve, a pressure control valve or a throttling element.
[0064] The decomposition section is followed by a decomposition section. The steam-containing mixture (gaseous mixture) obtained from the decomposition section is sent to the decomposition section. The raw material is subjected to steam decomposition treatment in the decomposition section. In the decomposition section, the material is heated to a decomposition temperature; preferably, the material is heated to a temperature of 710 to 900°C, preferably 770 to 880°C, more preferably 780 to 820°C; in the decomposition section, the pressure is 0.01 to 0.5 MPa, preferably 0.1 to 0.4 MPa. For example, the material is heated in the decomposition section to 720°C, 730°C, 740°C, 750°C, 760°C, 770°C, 780°C, 790°C, 800°C, 810°C, 820°C, 830°C, 840°C, 850°C, 860°C, 870°C, 880°C or 890°C. For example, the pressure can be 0.02 MPa, 0.03 MPa, 0.04 MPa, 0.05 MPa, 0.06 MPa, 0.07 MPa, 0.08 MPa, 0.09 MPa, 0.1 MPa, 0.15 MPa, 0.2 MPa, 0.25 MPa, 0.3 MPa, 0.35 MPa, 0.4 MPa or 0.45 MPa in the decomposition section.
[0065] As known in the art, the residence time of the material in the decomposition section is relatively short. A person skilled in the art can appropriately select the required residence time. Preferably, the residence time of the material in the decomposition section is 0.1 to 0.5 seconds. For example, the residence time of the material in the decomposition section can be 0.1 seconds, 0.2 seconds, 0.3 seconds, 0.4 seconds or 0.5 seconds.
[0066] In some embodiments, the cracking section includes a cracker. The cracker may be a cracker commonly known in the art, such as a steam cracker. In some embodiments, the cracking section includes or is a section of a tubular reactor.
[0067] In some embodiments, the decomposition reaction apparatus may further include a quenching section after the decomposition section. Quenching the decomposition product obtained after decomposition is known in the art. The quenching section is used to quickly cool the decomposition product obtained by decomposition, and prevents coking caused by the decomposition product remaining at high temperature for a long time. The quenching section may use a device generally known in the art. In some embodiments, in the quenching section of the present invention, the temperature of the decomposition product is cooled to 550°C or less, preferably 450 to 550°C, within 0.1 seconds, for example, and the pressure is 0.01 to 0.5 MPa, preferably 0.1 to 0.4 MPa.
[0068] Preferably, the cracking reactor of the present application may include one or more reaction tubes, each reaction tube including the preheating section, the lightening section, the reduced pressure gasification section, and the cracking section, which are sequentially connected. That is, the preheating section, the lightening section, the reduced pressure gasification section, and the cracking section each form a part of the reaction tube, and are sequentially connected to form the entire reaction tube. In such an embodiment, the preheating section, the lightening section, the reduced pressure gasification section, and the cracking section may each be tubular.
[0069] In some embodiments, the preheating section, the lightening section, the reduced pressure gasification section, and the cracking section are each part of a reaction tube and each have the same tube diameter. Alternatively, the preheating section, the lightening section, the reduced pressure gasification section, and the cracking section are each part of a reaction tube, but the tube diameters thereof may be the same or different from each other.
[0070] The length and diameter of each section of the reaction tube in which the preheating section, the lightening section, the reduced pressure gasification section and the cracking section are successively connected can be appropriately selected and set, and can be selected based on, for example, the flow rate, the volume, the residence time, etc.
[0071] In this application, the reactor tube configuration can be horizontal, vertical, suspended, or any other configuration available in the art.
[0072] In the present application, the temperatures of the preheating section, the lightening section, the reduced pressure gasification section and the cracking section are preferably increased in sequence. Preferably, the temperature increase between two adjacent sections among the preheating section, the lightening section, the cracking gasification section and the cracking section is in the range of 100 to 250°C, preferably 150 to 250°C. For example, the temperatures of the preheating section, the lightening section, the cracking gasification section and the cracking section are preferably 150 to 250°C, 350 to 450°C, 550 to 650°C and 770 to 880°C, respectively.
[0073] In the present application, there is no limitation on the heating method of the cracking reaction apparatus. For example, heating can be performed by heat exchange. Also, for example, heating can be performed by electrical heating or combustion of combustible gas. In the present application, the type of the combustible gas is not limited, and various combustible gases known in the art can be used. In some embodiments, the preheating section, the lightening section, the reduced pressure gasification section, and the cracking section each include a temperature control means for controlling the temperature of each section.
[0074] In some embodiments, the preheating section preferably includes or is a two-layer tube or a tube having more than two layers. When the preheating section is a two-layer tube or a tube having more than two layers, the cracking feedstock and water can be disposed in different tubes or tube layers.
[0075] Preferably, the helical protrusions are positioned on the inner wall and / or the outside wall of the tube side of the innermost layer of a two-layer tube or a tube having more than two layers, and / or on the inside and / or the outside wall of a middle layer tube, and / or on the inside wall of the tube of the outermost layer.
[0076] In some embodiments, the helical projections of adjacent tube layers preferably have opposite helical directions, for example in the case of a two-layer tube, if the helical projections on the inside of the wall of the inner tube are clockwise, the helical projections on the inside of the wall of the outer tube are counterclockwise, and vice versa.
[0077] When the preheating section is a tube with more than two layers (having layers), the preheating section can be a tube with three layers, four layers, five layers, six layers, etc. In this application, the inner space of the innermost tube is called the first tube layer, and from the inside to the outside, the first tube layer, the second tube layer, the third tube layer, the fourth tube layer, etc. are named. In the present invention, the cracking raw material and water enter different tube layers of the preheating section, respectively. For example, when the preheating section includes or is a two-layer tube, water can be supplied to the inner layer tube (first tube layer), and the cracking raw material can be supplied to the outer layer tube (second tube layer). For example, when the preheating section includes a tube with three layers, the cracking raw material can be supplied to the first and third tube layers, and water can be supplied to the second tube layer (i.e., the middle tube layer). Preferably, water is not supplied to the outermost tube layer.
[0078] In some embodiments, the helical projections are disposed on the inside (inner surface) of the wall of the outer tube of each tube layer.
[0079] In the present application, the preheating section can be heated from the outside. In the case of a two-layer tube having helical protrusions with opposite helical directions, water is supplied to the inner layer tube (the first tube layer) and the cracking raw material is supplied to the outer layer tube (the second tube layer), so the order of heat transfer is the wall of the outer layer tube, the cracking raw material, the wall of the inner layer tube, and water. In the preheating section, the action of the helical protrusions causes the cracking raw material and water to generate swirling flows in opposite directions, reducing the thickness of the retention layer near the tube wall, and greatly promoting the mass transfer and heat transfer in the tube. When leaving the preheating section and entering the lightening section, the cracking raw material and water with swirling flows in opposite directions are in complete contact with each other, greatly improving the rate of the lightening reaction. In addition, the corrosion of the outer tube wall of the reaction tube caused by water is greatly reduced. This is because the water entering the head part of the lightening section is in the center of the reaction tube and is far from the outer tube wall, and its temperature is gradually raised to near or above the critical temperature.
[0080] In the present application, the thickness of each tube layer of the two-layer tube or the tube having layers more than two layers can be set appropriately. For example, the thickness of each tube layer can be set appropriately according to the amount and flow rate of the decomposition raw material and water passing through the preheating section. In some embodiments, the ratio of the inner diameter of the inner layer tube to the inner diameter of the outer layer tube of the two-layer tube is 0.1 to 0.9, preferably 0.4 to 0.6. For example, the ratio of the inner diameter of the inner layer tube to the inner diameter of the outer layer tube of the two-layer tube can be 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, or 0.9.
[0081] In some embodiments, the helical projection has a ratio of helical height to diameter (ratio of the height of one turn of the helix to the helical diameter) of 0.1 to 20, preferably 1 to 10. For example, the ratio of height to diameter can be 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, or 19. In some embodiments, the ratio of projection height to diameter of the helical projection (for the innermost tube, it is the ratio of the height of the helical projection to the inner diameter of the tube, and for other tube layers, it is the ratio of the height of the helical projection to the difference between the inner diameter of the outer layer of the tube layer and the outer diameter of the inner layer) is 0.01 to 0.5, preferably 0.02 to 0.1. For example, the ratio of projection height to diameter can be 0.02, 0.03, 0.04, 0.05, 0.06, 0.07, 0.08, 0.09, 0.1, 0.11, 0.12, 0.13, 0.14, 0.15, 0.16, 0.17, 0.18, 0.19, 0.2, 0.3 or 0.4.
[0082] The cross section of the helical projection can be any commonly known shape, such as a rectangle, a square, a triangle, a trapezoid, a semicircle, a semi-ellipse, etc. The height of the helical projection is defined as the height from the tube wall to the highest point of the cross section of the helical projection.
[0083] The volumes of the preheating section, the lightening section, the reduced pressure gasification section and the cracking section can be appropriately selected by those skilled in the art. In some embodiments, the volume ratio of the preheating section, the lightening section, the reduced pressure gasification section and the cracking section is 0.1-10:0.1-1000:0.1-10:1, preferably 0.1-7:1-300:0.1-7:1, preferably 0.1-5:1-300:0.1-7:1, preferably 0.1-0.5:1-300:0.1-0.5:1. For example, when the cracking reaction apparatus includes a reaction tube, and each reaction tube includes a preheating section, a lightening section, a reduced pressure gasification section and a cracking section connected in sequence, the volume can be adjusted by setting the tube length and / or tube diameter of each section.
[0084] Preferably, the present invention provides a cracking reaction apparatus including a pressurization section, a preheating section, a lightening section, a reduced pressure gasification section, a cracking section and a quenching section, which are connected in series: the cracked raw material inlet and the cracked product outlet are arranged in the preheating section, the cracked raw material inlet and the cracked product outlet are arranged in the quenching section, the preheating section, the lightening section, the reduced pressure gasification section, the cracking section and the quenching section each include a temperature control means for controlling the temperature of each section during operation, a pressure reduction means is arranged between the lightening section and the reduced pressure gasification section to reduce the pressure of the raw material flowing into the reduced pressure gasification section, the preheating section has a double-layered tube structure, and a spiral protrusion is arranged on the inside of the wall of the inner layer tube and / or the inside of the wall of the outer layer tube of the double-layered tube.
[0085] FIG. 2 shows a preheating section of a two-layer tube that can be used in the present application. The two-layer tube includes an inner layer tube 10 and an outer layer tube 11. The ratio of the inner diameter of the inner layer tube 10 to the inner diameter of the outer layer tube 11 can be 0.1 to 0.9, preferably 0.4 to 0.6. The inner side of the inner layer tube and the inner side of the outer layer tube are provided with helical protrusions. The helical protrusions provided on the inner side of the inner layer tube have a helical direction opposite to that of the helical protrusions provided on the inner side of the outer layer tube. The ratio of the helical height to the diameter of the helical protrusions on the inner side of the inner layer tube (the ratio of the height of one helical turn to the helical diameter) is 0.1 to 20, preferably 1 to 10. The ratio of the helical height to the diameter of the helical protrusions on the inner layer side of the outer layer tube (the ratio of the height of one helical turn to the helical diameter) is 0.1 to 20, preferably 1 to 10. The ratio of the projection height to the diameter of the spiral projections on the inside of the inner layer tube (ratio of projection height to tube inner diameter) is 0.01 to 0.5, preferably 0.02 to 0.1. The ratio of the projection height to the diameter of the spiral projections on the inside of the outer layer tube (ratio of projection height to the difference between the inner diameter of the outer layer tube and the outer diameter of the inner layer tube) is 0.01 to 0.5, preferably 0.02 to 0.1.
[0086] Figure 3 shows a preheater section of a three-layer tube that can be used in the present application, which has helical projections on the inside of each layer of the tube wall.
[0087] In some embodiments of the present invention, when the preheating section includes or is a two-layer tube or a tube having more than two layers, the cracking raw material and water can be respectively supplied to different tube layers in the preheating section. For example, in the case of a two-layer tube, the cracking raw material and water can be respectively supplied to the inner layer tube and the tube layer between the inner layer tube and the outer layer tube in the preheating section. In the case of external heating, in the preheating section, water flows through the inner layer tube, and the cracking raw material flows between the inner layer tube and the outer layer tube. The order of heat transfer is the outer layer tube, the cracking raw material, the inner layer tube, and water. The corrosion of the outer layer tube wall of the reaction tube by water is greatly reduced. Because the water entering the head part of the lightening section is in the center of the reaction tube, far from the outer layer tube wall, its temperature is gradually raised to near or above the critical temperature. In addition, when the helical protrusions are present, the cracking material and the water generate swirling flows in opposite directions due to the action of the helical protrusions, the thickness of the retention layer near the pipe wall is reduced, and the mass transfer and heat transfer in the pipe are greatly promoted. When the cracking material and the water leave the preheating section and enter the lightening section, they come into complete contact with each other, which greatly improves the rate of the lightening reaction.
[0088] In some embodiments of the present invention, the volume ratio of the preheating section, the lightening section, the reduced pressure gasification section, the quenching section and the cracking section is 0.1-10:0.1-1000:0.1-10:0.1-10:1, preferably 0.1-0.5:1-300:0.1-0.5:0.1-0.5:1.
[0089] In some embodiments of the present invention, the specific form of the pressure reducing means is not limited as long as it can achieve the purpose of pressure reduction. Preferably, the pressure reducing means can be a pressure reducing valve, a pressure control valve, or a throttle element.
[0090] In some embodiments of the present invention, the pressurizing portion comprises a pressurizing device. Preferably, the pressurizing device is a pump.
[0091] In some embodiments of the present invention, the cracking reactor includes one or more reaction tubes. Specifically, each reaction tube is arranged with a pressurizing section, a preheating section, a lightening section, a decompression gasification section, a cracking section, and optionally a quenching section, which are connected in series. The arrangement of the reaction tubes can be horizontal, vertical, or suspended.
[0092] In the present invention, the method of heating the decomposition reaction apparatus is not particularly limited. For example, heating may be performed by electrical heating, or by burning a flammable gas with a bottom burner. In the present invention, the type of the flammable gas is not particularly limited, and various flammable gases known in the art can be used. The preheating section, the lightening section, the reduced pressure gasification section, and the cracking section can each be equipped with a temperature control means for controlling the temperature of each section to increase sequentially during operation, and the temperature increase is preferably in the range of 150 to 250°C. For example, the preheating section, the lightening section, the reduced pressure gasification section, the cracking section, and the quenching section each are equipped with a temperature control means, and the temperature of each section is controlled to be 150°C to 250°C, 350 to 450°C, 550 to 650°C, 770 to 880°C, and 450 to 550°C, respectively, during operation.
[0093] In the present invention, the product obtained in one section can be separated, and a part of the product can be sent to the next section for further processing, which also falls within the scope of protection of the present invention.
[0094] In some embodiments, when the cracking reactor includes (a plurality of) reaction tubes, each reaction tube including the preheating section, the lightening section, the reduced pressure gasification section and the cracking section connected in series, there is no product separation operation between any two sections, i.e., all products from the upstream section are supplied to the downstream section subsequent to the upstream section.
[0095] According to a specific embodiment of the present invention, referring to FIG. 1, a cracking reactor is shown. The cracking reactor includes a pressurizing section (in this embodiment, pressurization is achieved through a pressurizing device, i.e., a water pump 1 and a crude oil pump 2 in FIG. 1), a preheating section 4, a lightening section 5, a reduced pressure gasification section 6, a cracking section 7 and a quenching section 8, which are connected in series, an inlet 3, and a cracked product outlet 9. The inlet 3 is disposed in the preheating section 4, and the cracked product outlet 9 is disposed in the quenching section 8. Optionally, the preheating section 4, the lightening section 5, the reduced pressure gasification section 6, the cracking section 7 and the quenching section 8 are each equipped with a temperature control means for controlling the temperature of each section during operation. Between the lightening section and the reduced pressure gasification section, a pressure reducing means is disposed for reducing the pressure of the lightened mixture flowing into the reduced pressure gasification section. As shown in the figure, the preheating section 4, the lightening section 5, the reduced pressure gasification section 6, the cracking section 7 and the quenching section 8 form a tubular reactor.
[0096] Another aspect of the present invention provides a method for producing olefins by cracking, characterized in that the method comprises the steps of: (1) pressurizing the cracking feedstock and water; (2) subjecting the pressurized cracked feedstock and water to a first heating (preheating); (3) subjecting the cracked feedstock subjected to the first heating and water to a second heating to lighten the cracked feedstock in the presence of water and obtain a lightened mixture; (4) gasifying the lightened mixture under reduced pressure and subjecting it to a third heating to obtain a third heated mixture (reduced pressure gasification); and (5) cracking the third heated mixture in the presence of water vapor at a cracking temperature to obtain a cracked product comprising olefins. Another aspect of the present invention provides a method for producing olefins by cracking, the method comprising: (1) pressurizing the cracking feedstock and water; (2) subjecting the pressurized cracked feedstock and water to a first heating (preheating); (3) subjecting the cracked feedstock subjected to the first heating and water to a second heating to lighten the cracked feedstock in the presence of water and obtain a lightened mixture; (4) gasifying the lightened mixture under reduced pressure and subjecting it to a third heating (reduced pressure gasification) to obtain a third heated mixture containing water vapor and a lightened reaction product of the cracked feedstock; and (5) cracking the third heated mixture in the presence of steam to obtain a cracked product comprising olefins; and (6) cooling the decomposition products. In some embodiments, the temperatures of the first heating, second heating, third heating and decomposition are sequentially increased. Preferably, from step (2) to step (5), the temperature increase between adjacent steps is in the range of 150 to 250°C.
[0097] In some embodiments of the present invention, the temperatures of the first heating, second heating, third heating and decomposition are sequentially increased, and the increase is within a range of 150 to 250° C., preferably within a range of 150 to 250° C. In some embodiments, the temperatures of the first heating, second heating, third heating and decomposition are preferably 150 to 250° C., 350 to 450° C., 550 to 650° C. and 770 to 880° C., respectively.
[0098] In some embodiments of the present invention, in step (1), the weight ratio of water to the decomposition raw material is 0.3 to 10.5, preferably 0.5 to 5. For example, the weight ratio of water to the decomposition raw material may be 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2, 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, 2.8, 2.9, 3, 3.5, 4, or 4.5.
[0099] In the present invention, the mole number is increased by the forward cracking reaction. By reducing the pressure and adding water (as steam under the reaction conditions), the partial pressure of the hydrocarbons can be reduced, which contributes to promoting the forward cracking reaction and improving the conversion rate.
[0100] In the present application, the cracking feedstock may include at least one of crude oil, residual oil, and heavy hydrocarbons obtained by processing crude oil. The residual oil may include atmospheric residual oil and vacuum residual oil. In some embodiments of the present invention, the cracking feedstock is crude oil.
[0101] In the present invention, water generally used in petrochemical processes can be used, such as deionized water, recycled water, reclaimed water, etc.
[0102] In the pressurizing step (step (1)), the decomposition raw material and water are pressurized to a required pressure. According to some embodiments, the decomposition raw material and water are pressurized to 10 to 40 MPa, preferably 15 to 30 MPa, more preferably 21 to 30 MPa. According to some embodiments, the pressure can be 15 MPa, 16 MPa, 17 MPa, 18 MPa, 19 MPa, 20 MPa, 21 MPa, 22 MPa, 23 MPa, 24 MPa, 25 MPa, 26 MPa, 27 MPa, 28 MPa, 29 MPa, 30 MPa, 31 MPa, 32 MPa, 33 MPa, 34 MPa, 35 MPa, 36 MPa, 37 MPa, 38 MPa, or 39 MPa.
[0103] The pressurizing step can be performed in the pipeline for sending the cracked feedstock and water. For example, the pressurizing can be performed in the pipeline(s) that sends the cracked feedstock and water to the preheating step. The pressurizing can be performed by a pressurizing device known in the art. Preferably, the pressurizing device is a pump.
[0104] After the cracking feedstock and water are pressurized, they are preheated, i.e., the preheating step (step (2)).
[0105] The preheating step is used to preheat materials including the decomposition raw materials and water. In the preheating step, the materials to be preheated, such as the decomposition raw materials and water, are heated to a desired temperature, for example, a temperature of 350°C or less. In some embodiments, the preheating step heats the materials to a temperature of, for example, 150 to 250°C. For example, the preheating unit heats the materials to 150°C, 160°C, 170°C, 180°C, 190°C, 200°C, 210°C, 220°C, 230°C, 240°C, 250°C, 260°C, 270°C, 280°C, 290°C, 300°C, 310°C, 320°C, 330°C, or 340°C.
[0106] In some embodiments, the preheating step includes the use of a heating vessel and / or a heat exchanger. When a heating vessel is used, the pressurized cracking feed and water are fed into the heating vessel, and then the cracking feed and water are heated to the desired temperature in the heating vessel. When a heat exchanger is used, the cracking feed and water are heated to the desired temperature by heat exchange. In some embodiments, the preheating step can be a section of a tubular reactor (i.e., a preheating section of a tubular reactor).
[0107] In the preheating step, the pressure of the materials (the decomposition raw material and water) is 10 to 40 MPa, preferably 15 to 30 MPa, more preferably 21 to 30 MPa. In some embodiments, the pressure in the preheating step may be the same as the pressure in the pressurizing step.
[0108] In the present invention, the cracked raw material and water can be pressurized and preheated separately, and then the pressurized and preheated cracked raw material and the pressurized and preheated water are mixed. Alternatively, the cracked raw material and water can be pressurized separately, and the pressurized cracked raw material and the pressurized water are mixed to obtain a mixture, and the resulting mixture is heated to a desired preheat temperature. Alternatively, the cracked raw material can be mixed with water, and the mixture can be pressurized and preheated. For example, the cracked raw material and water can be added to a container to obtain a mixture, and then the mixture in the container can be pressurized and preheated. In some embodiments, step (1) and step (2) can be combined into one step.
[0109] In some embodiments of the present invention, after pressurization, the pressure of the decomposition raw material and water is: 10 to 40 MPa, preferably 15 to 30 MPa, more preferably 21 to 30 MPa. In the present invention, the decomposition raw material and water can be separately pressurized to 10 to 40 MPa, preferably 15 to 30 MPa, more preferably 21 to 30 MPa. In the present invention, alternatively, the decomposition raw material and water are mixed and pressurized to 10 to 40 MPa, preferably 15 to 30 MPa, more preferably 21 to 30 MPa.
[0110] In the present invention, the pressurization is carried out in order to keep the water and the crude oil in a liquid state during the lightening reaction and to achieve a near-critical or supercritical state of water, in which all of the mass transfer, heat transfer, and reaction are promoted, the lightening reaction rate is high, and coking is unlikely to occur.
[0111] In the present invention, a preheating step is provided before the lightening treatment in order to prevent the cracking raw material from reaching a high temperature too quickly and remaining at the high temperature for a long time, which would cause coking, and to prevent the water from reaching a supercritical state too quickly, which would cause corrosion of the equipment. In the preheating step (step (2)), the first heating conditions include raising the temperature to 350°C or less, preferably 150 to 250°C, and setting the pressure to 10 to 40 MPa, preferably 15 to 30 MPa, and more preferably 21 to 30 MPa.
[0112] In the present method, the preheating step is followed by a lightening step, where "lightening" refers to the treatment of material with supercritical or near supercritical water at temperature and pressure.
[0113] In some embodiments of the present invention, in step (3) (lightening treatment step), the conditions of the lightening treatment may include a temperature of 350 to 450°C and a pressure of 10 to 40 MPa, preferably 15 to 30 MPa, and more preferably 21 to 30 MPa. The time of the lightening treatment may be appropriately selected so as to obtain a desired lightening treatment product. For example, the treatment time of the lightening step may be 0.2 to 240 minutes, preferably 0.5 to 60 minutes, and more preferably 1 to 10 minutes.
[0114] In some embodiments, in the lightening section, the cracked raw material and water are further heated, for example, to a temperature of 300 to 540° C., preferably 300 to 500° C., and more preferably 350 to 450° C. For example, in the lightening section, the cracked raw material and water are heated to 310° C., 320° C., 330° C., 340° C., 350° C., 360° C., 370° C., 380° C., 390° C., 400° C., 410° C., 420° C., 430° C., 440° C., 450° C., 460° C., 470° C., 480° C., 490° C., 500° C., 510° C., 520° C., or 530° C.
[0115] In the lightening step, the cracked feedstock (such as crude oil) is reacted (lightened) with water under the temperature and pressure of supercritical water or water close to supercritical water, and at least a portion of the heavy component polymers in the cracked feedstock is converted into smaller molecules, making them more suitable as feedstock for steam pyrolysis. The water required for lightening also serves as dilution steam during the cracking stage. The mixture obtained after the lightening reaction (lightened mixture) contains steam and the lightening reaction product of the cracked feedstock.
[0116] In the lightening treatment step, the cracked raw material and water from the preheating step are further heated, for example, to a temperature of 350 to 450° C. In the lightening treatment step, the pressure of the cracked raw material and water is 10 to 40 MPa, preferably 15 to 30 MPa, and more preferably 21 to 30 MPa. In some embodiments, the pressure in the lightening treatment step may be the same as the pressure in the preheating step and / or the pressure in the pressurizing step.
[0117] In the lightening treatment step of the present application, water is in a near-critical or supercritical state. In the lightening treatment step of the present application, the cracked feedstock (crude oil, etc.) is reacted in the presence of water in a near-critical or supercritical state to convert at least a part of the heavy component macromolecules in the cracked feedstock into low molecules to obtain a lightened mixture.
[0118] In some embodiments, the lightening step is carried out in a lightening vessel, such as a lightening kettle. Alternatively, the lightening step is carried out in a tubular reactor (i.e., the lightening section of a tubular reactor).
[0119] In some embodiments, multiple lightening reactors can be connected in series or parallel, and when some of the lightening reactors discharge reactants to the cracking gasification section, cracking raw materials and water are supplied to some of the lightening reactors, and some of the lightening reactors perform lightening reactions, so as to maintain continuous and stable operation of the present method.
[0120] In some embodiments, the pressurized and preheated cracked feedstock and water are reacted in a lightening treatment step under conditions of 350 to 450° C. and 21 to 30 MPa for 1 to 120 minutes to obtain a lightened mixture.
[0121] The method of the present application further includes a decompression gasification step (step (4)) after the lightening treatment to obtain a gaseous mixture. In some embodiments of the present invention, in order to increase the olefin yield, in step (4), the decompression reduces the pressure of the mixture obtained after the lightening reaction to 0.01 to 0.5 MPa, preferably 0.1 to 0.4 MPa. For example, the pressure of the mixture can be reduced to 0.02 MPa, 0.03 MPa, 0.04 MPa, 0.05 MPa, 0.06 MPa, 0.07 MPa, 0.08 MPa, 0.09 MPa, 0.1 MPa, 0.15 MPa, 0.2 MPa, 0.25 MPa, 0.3 MPa, 0.35 MPa, 0.4 MPa, or 0.45 MPa.
[0122] It should be noted that in the decompression gasification step (step (4)) in the method of the present invention, the pressure of the mixture (lightened mixture) obtained after the lightening reaction is reduced, but the temperature is not reduced. Preferably, during or after the decompression of the mixture obtained after the lightening reaction, a third heating is performed so that the temperature of the mixture obtained after the lightening reaction is further increased, preferably to 550 to 650°C. The heating in the decompression gasification section increases the temperature of the mixture, for example, to 550 to 700°C, preferably 550 to 650°C. For example, the heating in the decompression gasification section increases the temperature of the mixture to 560°C, 570°C, 580°C, 590°C, 600°C, 610°C, 620°C, 630°C, 640°C, 650°C, 660°C, 670°C, 680°C, or 690°C.
[0123] In some embodiments, the reduced pressure gasification step is carried out in a reduced pressure gasification vessel. Alternatively, the reduced pressure gasification step is carried out in a tubular reactor (i.e., the reduced pressure gasification section of the tubular reactor).
[0124] In the method of the present application, after the reduced pressure gasification, the mixture (gaseous mixture) obtained by the reduced pressure gasification is subjected to steam decomposition (step (5), decomposition step).
[0125] In the process of the present invention, the cracking reaction is a reaction system with strong endothermic properties, increased mole numbers, and many side reactions, so high temperature, low pressure, and short residence time are process conditions that facilitate the production of olefins by the cracking reaction.
[0126] Steam cracking is an operation known in the art. A person skilled in the art can rationally select the conditions required for the cracking operation based on the raw material to be cracked and the desired cracking products. For example, specifically, in the steam cracking step (step (5)), the conditions of the cracking reaction include a temperature of 770 to 880°C, preferably 780 to 820°C, a pressure of 0.01 to 0.5 MPa, preferably 0.2 to 0.3 MPa, and a residence time of 0.1 to 0.5 seconds. In the cracking section, the material is heated to a cracking temperature, preferably, the material is heated to a temperature of 710 to 900°C, preferably 770 to 880°C, more preferably 780 to 820°C. In the cracking section, the pressure is 0.01 to 0.5 MPa, preferably 0.1 to 0.4 MPa. For example, in the decomposition section, the material is heated to 720°C, 730°C, 740°C, 750°C, 760°C, 770°C, 780°C, 790°C, 800°C, 810°C, 820°C, 830°C, 840°C, 850°C, 860°C, 870°C, 880°C, or 890°C. For example, the pressure in the decomposition section can be 0.02MPa, 0.03MPa, 0.04MPa, 0.05MPa, 0.06MPa, 0.07MPa, 0.08MPa, 0.09MPa, 0.1MPa, 0.15MPa, 0.2MPa, 0.25MPa, 0.3MPa, 0.35MPa, 0.4MPa, or 0.45MPa. For example, the residence time of the material in the decomposition section can be 0.1s, 0.2s, 0.3s, 0.4s, or 0.5s.
[0127] In some embodiments, the cracking step is carried out in a cracker. The cracker may be any cracker commonly known in the art, such as a steam cracker. In some embodiments, the cracking step is carried out in a tubular reactor (i.e., the cracking section of the tubular reactor).
[0128] Optionally, the method may also include a cooling (quenching) step after the decomposition step. Cooling (quenching) of the decomposition products after decomposition is known in the art.
[0129] Those skilled in the art can reasonably select the conditions required for cooling based on the decomposition products. In some embodiments of the present invention, in the cooling step (step (6)), the temperature of the decomposition products is cooled to 550°C or less (for example, cooled to 450 to 550°C) within 0.1 seconds, and the pressure is set to 0.01 to 0.5 MPa, preferably 0.2 to 0.3 MPa.
[0130] In some embodiments, the quenching step can be carried out in a quenching device commonly known in the art.
[0131] In the present invention, the method of the present application can be carried out in the above-mentioned cracking reaction apparatus of the present application. Here, the pressurizing section is used to pressurize the cracked raw material and water. The preheating section is used to subject the pressurized cracked raw material and water to the first heating. The lightening section subjects the cracked raw material and water subjected to the first heating to the second heating, and subjects the cracked raw material to a lightening reaction in the presence of supercritical water or near-critical water. The reduced pressure gasification section is used to reduce the pressure of the mixture obtained after the lightening reaction and to perform the third heating to obtain a third heated mixture containing steam and a lightening reaction product of the cracked raw material. The cracking section is used to cause the mixture to undergo a cracking reaction in the presence of steam. The quenching section is used to quench the cracked product obtained after the cracking reaction, thereby preventing coking caused by the reaction raw material remaining at a high temperature for a long period of time.
[0132] According to a preferred embodiment, steps (2) to (5) of the method of the present invention (i.e., the preheating step, the lightening step, the reduced pressure gasification step and the cracking step) are carried out in a cracking reactor including a reaction tube as described above, wherein the reaction tube includes a preheating section, a lightening section, a reduced pressure gasification section and a cracking section, which are connected in sequence to carry out the preheating step, the lightening step, the reduced pressure gasification step and the cracking step, respectively. More preferably, when the cracking reactor including a reaction tube is used, no operation of separating products is carried out between each of the preheating step, the lightening step, the reduced pressure gasification step and the cracking step, i.e., all of the products from the upstream step are supplied to the next downstream step.
[0133] As will be appreciated by those skilled in the art, the cracking reactors described herein above may be used in the present process, and therefore features described in relation to the present apparatus may, where applicable, also be applied to the present process, and vice versa.
[0134] In this application, the temperature or pressure range provided for each section or step is the temperature or pressure expected to be achieved in that section or step. However, as known to those skilled in the art, a process is required to achieve the temperature or pressure value. For example, if the preheating step heats the material to a temperature of 200°C, the temperature of the material is lower than 200°C at the start of heating and increases to 200°C as heating proceeds. For example, if the preheating step is performed in a tubular reactor (tubular preheating section), the temperature of the material is lower than 200°C at the inlet of the tubular preheating section, and the temperature increases as the material flows through the tube and reaches 200°C. For example, in the case of a two-layer tube, the materials in the inner and outer layers of the tube are gradually heated in the preheating section, and the average temperature at the outlet of the preheating section reaches 200°C.
[0135] A third aspect of the present invention provides the use of the cracking reactor of the present application in the preparation of olefins by cracking. For example, the cracking reactor of the present application can be used for cracking, preferably steam cracking, heavy feedstocks such as crude oil.
[0136] In the present invention, pressure is absolute pressure. In the present invention, the lower olefins prepared by cracking include ethylene, propylene, and butadiene. [Example]
[0137] The present invention will now be described in detail with reference to examples. The compositions of the crude oils used in the following Examples and Comparative Examples are shown in Table 1. The compositions were measured according to the simulated distillation analysis method ASTM D5307 using an Agilent 7890 gas chromatograph. [Table 1] [Example of lightening]
[0138] Using a tubular lightening reactor and a stirred reactor, crude oil and water were lightened with supercritical water or near-supercritical water, respectively. The results are shown in Tables A and B. The reactors and reaction conditions were lightened crude oil A (tubular lightening reactor composed of the preheating section and lightening section of Example 1 in Table 2; water to oil ratio 1.5; preheating section temperature 250°C, pressure 27 MPa; lightening section temperature 440°C, pressure 27 MPa, residence time 15 minutes); lightened crude oil B (reactor the same as for lightened crude oil A; water to oil ratio 1.5, preheating section temperature 250°C, pressure 24 MPa, lightening section temperature 430°C, pressure 24 MPa, residence time 15 minutes); retention time 15 minutes); lightened crude oil c (110 mL stirred tank-type lightening reactor, water amount 28 g, water to oil ratio 1.5, 430°C, 32 MPa, stirring speed 600 r / min, reaction time 15 minutes); lightened crude oil d (tubular lightening reactor consisting of the preheating section and lightening section of Example 1 in Table 2 but not having a spiral structure, water to oil ratio 1.5, preheating section temperature 250°C, pressure 30 MPa; lightening section 430°C, 30 MPa, retention time 15 minutes). [Table 2] [Table 3]
[0139] From the results in Table A, the light components in the crude oil increased from about 12% to 32%, 24%, 20% and 12%, respectively, and the heavy components in the crude oil decreased from about 40% to 4%, 8%, 19% and 25%. Correspondingly, the light components in the crude oil increased by 166.7%, 100%, 66.7% and 0%, and the heavy components in the crude oil decreased by 90%, 80%, 52.5% and 37.5%. The simulated distillation data of crude oil before and after the lightening treatment show that after the crude oil undergoes the lightening reaction, some of the heavy components are converted to light components. [Examples 1 to 6]
[0140] In the cracking reactor of the present application, lower olefins were produced from crude oil and water. The cracking reactor includes a water pump, a crude oil pump, an inlet, a preheating section, a lightening section, a reduced pressure gasification section, a cracking section, and a quenching section, which are connected in series, and a cracked product outlet. The preheating section, the lightening section, the reduced pressure gasification section, the cracking section, and the quenching section are arranged as a tubular reactor. The preheating section has a two-layered tube structure, and the inside of the wall of the two-layered tube is provided with spiral protrusions in opposite directions (cross-sectional shape is rectangular, width is 1 mm). The cracking raw material and water were supplied to the cracking reactor, and pressurization, first heating (preheating), second heating (lightening), third heating (reduced pressure gasification), cracking, and cooling were performed in this order. The cracked feedstock and water were pressurized using a water pump and a crude oil pump, and the pressurized cracked feedstock and water were first heated using the preheating section; the cracked feedstock and water were supplied to the preheating section from the inlet, the water flowed through the inner layer tube of the preheating section, and the cracked feedstock flowed between the inner layer tube and the outer layer tube of the preheating section, and the lightening section was used to perform a second heating of the cracked feedstock and water subjected to the first heating, and the cracked feedstock was subjected to a lightening reaction in the presence of water; the reduced pressure gasification section was used to reduce the pressure of the mixture obtained after the lightening reaction, and then a third heating was performed to obtain a third heated mixture containing steam and a lightening reaction product of the cracked feedstock. The cracking section was used to crack the third heated mixture in the presence of steam, and the quenching section was used to cool the cracked product obtained after the cracking reaction, and the cracked reaction product was taken out from the cracked product outlet of the quenching section.
[0141] The specifications of the cracking reactor are shown in Table 2, and the processing parameters of each part are shown in Table 3. Using crude oil and water as raw materials, cracking was carried out under conditions of a specific weight ratio of raw material to water, a specific temperature at each part, and a specific pressure at each part. The results of the cracking product (olefins) are shown in Table 4.
[0142] In Examples 1 to 6, the decomposition section is a tube having an inner diameter of 10 mm and a length of 1 m. In Examples 1 to 6, the inner pipe diameter of each section is 10 mm, except for Example 6, in which the inner pipe diameter of the lightening section is 32 mm. [Table 4] [Table 5] Comparative Example 1
[0143] Using a SRT-IV type cracking reactor known in the ethylene industry, a cracking reaction was carried out using crude oil having the composition shown in Table 1 as the feedstock, with a weight ratio of water to crude oil of 0.75, an outlet temperature of the radiant section of the cracking reactor of 780°C, a pressure of 0.27 MPa, and a residence time of 0.2 seconds. The cracked product was recovered, and the olefin content is shown in Table 4.
[0144] The operation cycle of the cracking reactor means the time from when the cracking reactor starts to operate until when the operation is stopped due to coke combustion. Ethylene yield (wt%) = (weight of ethylene obtained by cracking / weight of crude oil supplied) x 100% Propylene yield (wt%) = (weight of propylene obtained by cracking / weight of crude oil supplied) x 100% Butadiene yield (wt%) = (weight of butadiene obtained by cracking / weight of crude oil supplied) x 100% Total yield of three olefins (wt%) = Ethylene yield + Propylene yield + Butadiene yield The specific results are summarized in Table 4. [Table 6]
[0145] As can be seen from the results in Table 4, in Examples 1 to 6 using the technical solution of the present invention, the yields of ethylene, propylene, and butadiene obtained were high, the total yield of the three olefins was also high, and the operation time of the unit was long. In Comparative Example 1 not using the technical solution of the present invention, the yields of ethylene, propylene, and butadiene obtained were low, and the total yield of the three olefins was also low. In addition, the operation cycle of the unit lasted only 12 hours, and the coking of the reaction tube was too severe, so coke had to be incinerated.
[0146] Although the preferred embodiments of the present invention have been described in detail above, the present invention is not limited thereto. Within the scope of the technical concept of the present invention, many simple modifications can be made to the technical solutions of the present invention, including the combination of various technical features in any other suitable aspects. These simple modifications and combinations should also be considered as disclosed by the present invention, and are all included in the protection scope of the present invention. [Explanation of symbols] 1 Water pump 2. Crude Oil Pump 3 Decomposition raw material inlet 4 Preheating section 5 Lightening section 6. Decompression gasification section 7 Disassembly part 8. Quenching section 9 Decomposition product outlet 10 Inner layer pipe 11 Outer layer tube 12. Spiral projection on the inside of the outer tube wall 13. Spiral projections on the inner wall of the inner tube [Brief description of the drawings]
[0147] [Figure 1] FIG. 1 is a schematic diagram of a decomposition reactor according to one embodiment of the present invention. [Diagram 2] FIG. 2 is a structural perspective view of the preheating section of a decomposition reactor according to one embodiment of the present invention. [Diagram 3] FIG. 3 is a structural perspective view of the preheating section of a decomposition reactor according to another embodiment of the present invention.
Claims
1. A cracking reaction apparatus comprising a preheating section, a lightening section, a reduced pressure gasification section and a cracking section, which are connected in series.
2. 2. The cracking reactor according to claim 1, wherein the lightening section comprises a lightening vessel, preferably a lightening kettle.
3. the preheating section comprises a heating vessel or a heat exchanger; and / or the pressure reduction gasification unit includes a pressure reduction gasification vessel; and / or The cracking reactor according to claim 1 or 2, wherein the cracking section includes a cracker.
4. 2. The cracking reactor according to claim 1, comprising one or more reaction tubes, each reaction tube comprising the preheating section, the lightening section, the reduced pressure gasification section and the cracking section, which are connected in series, and optionally, the tube diameters of the sections may be the same as or different from each other.
5. 3. The decomposition reactor according to claim 1, further comprising a pressurizing section before the preheating section and / or a quenching section after the decomposition section.
6. 3. The cracking reaction apparatus according to claim 1, wherein a pressure reducing means for reducing the pressure of the raw material flowing into the pressure reducing gasification section is disposed between the lightening section and the pressure reducing gasification section, and preferably the pressure reducing means is a pressure reducing valve, a pressure control valve or a throttling element.
7. 3. The decomposition reaction apparatus according to claim 1, wherein the temperatures of the preheating section, the lightening section, the reduced pressure gasification section, and the decomposition section are sequentially increased, and preferably, the temperatures of the preheating section, the lightening section, the reduced pressure gasification section, and the decomposition section are 150 to 250°C, 350 to 450°C, 550 to 650°C, and 770 to 880°C, respectively.
8. 3. The decomposition reactor according to claim 1, wherein the preheating section is a two-layer tube or a tube having more than two layers.
9. 9. The decomposition reactor according to claim 8, wherein the two-layer tube or the tube having more than two layers has spiral protrusions arranged on the inside and / or outside of the wall of the inner layer tube and / or on the wall of the middle layer tube and / or on the inside of the wall of the outer layer tube.
10. the ratio of the inner diameter of the inner-layer tube to the inner diameter of the outer-layer tube of the two-layer tube is 0.1 to 0.9, preferably 0.4 to 0.6; and / or the helical projections of adjacent tube layers have opposite helical directions; and / or the ratio of the helical height to the diameter of the helical projection is 0.1 to 20, preferably 1 to 10; And / or the ratio of the height of the spiral projection to the diameter is 0.01 to 0.5, preferably 0.02 to 0.
1.
11. The decomposition reaction apparatus according to claim 5, wherein the pressurizing section comprises a pressurizing device, and preferably, the pressurizing device is a pump.
12. 3. The cracking reaction apparatus according to claim 1 or 2, wherein the volume ratio of the preheating section, the lightening section, the reduced pressure gasification section, and the cracking section is 0.1 to 10:0.1 to 1000:0.1 to 10:1, preferably 0.1 to 0.5:1 to 300:0.1 to 0.5:
1.
13. a pressure reducing means for reducing the pressure of the feedstock flowing into the reduced pressure gasification section; and a cracking reaction apparatus comprising: a pressurization section, a preheating section, a lightening section, a reduced pressure gasification section, a cracking section, and a quenching section, which are connected in series; a cracked feedstock inlet and a cracked product outlet; the cracked feedstock inlet being disposed in the preheating section; the cracked product outlet being disposed in the quenching section; each of the preheating section, the lightening section, the reduced pressure gasification section, the cracking section, and the quenching section being equipped with a temperature control means for controlling the temperature of each section during operation; a pressure reducing means being disposed between the lightening section and the reduced pressure gasification section for reducing the pressure of the feedstock flowing into the reduced pressure gasification section; and the preheating section having a double-layered tube structure, wherein a spiral projection is disposed on the inside of the wall of the inner tube and / or the outer tube of the double-layered tube.
14. 1. A method for producing olefins by cracking, comprising: (1) pressurizing the cracking feedstock and water; (2) subjecting the pressurized cracking feedstock and water to a first heating step; (3) subjecting the cracked feedstock subjected to the first heating and water to a second heating step to lighten the cracked feedstock in the presence of water, thereby obtaining a lightened mixture; (4) gasifying the lightened mixture under reduced pressure and subjecting it to a third heating to obtain a third heated mixture; and (5) cracking the third heated mixture in the presence of steam at a cracking temperature to obtain a cracked product comprising an olefin.
15. The temperatures of the first heating, the second heating, the third heating and the decomposition are sequentially increased, and preferably, from step (2) to step (5), the temperature increase between adjacent steps is in the range of 100 to 250°C, preferably 150 to 250°C; more preferably, the temperatures of the first heating, the second heating, the third heating and the decomposition are 150 to 250°C, 350 to 450°C, 550 to 650°C and 770 to 880°C, respectively; and / or in step (1), the weight ratio of water to the decomposition raw material is 0.3 to 10.5, preferably 0.5 to 5; and / or the cracked feedstock is at least one of crude oil, residual oil, and heavy hydrocarbons obtained by processing crude oil.
16. In step (1), after pressurization, the pressure of the decomposition raw material and water is 10 to 40 MPa, preferably 15 to 30 MPa, more preferably 21 to 30 MPa; And / or the method according to claim 14 or 15, wherein in step (2), the conditions of the first heating include a temperature of less than 350°C, preferably 150 to 250°C; and a pressure of 10 to 40 MPa, preferably 15 to 30 MPa, more preferably 21 to 30 MPa.
17. In step (3), the lightening is carried out under supercritical water conditions or near-supercritical water conditions, and preferably, the lightening conditions include a temperature of 300 to 500°C, preferably 350 to 450°C; and a pressure of 10 to 40 MPa, preferably 15 to 30 MPa, more preferably 21 to 30 MPa; And / or the method according to claim 14 or 15, wherein in step (4), the decompression reduces the pressure of the lightened mixture to 0.01 to 0.5 MPa, preferably 0.1 to 0.4 MPa; and the third heating increases the temperature of the lightened mixture to 550 to 700°C, preferably 550 to 650°C.
18. 16. The method of claim 14 or 15, wherein in step (5), the decomposition conditions comprise a temperature of 710 to 900°C, preferably 770 to 880°C, more preferably 780 to 820°C, a pressure of 0.01 to 0.5 MPa, preferably 0.1 to 0.4 MPa, and a residence time of 0.1 to 0.5 seconds.
19. (6) cooling the decomposition product obtained after the decomposition reaction; The method according to claim 14 or 15, wherein in step (6), the temperature of the decomposition product is reduced to 550°C or less by cooling within 0.1 seconds, and the pressure is 0.01 to 0.5 MPa, preferably 0.1 to 0.4 MPa.
20. 16. The process of claim 14 or 15, carried out in a decomposition reactor according to claim 1.
21. 14. Use of a cracking reactor according to any one of claims 1, 2, 4 and 13 in the preparation of olefins by cracking.