Dehydrogenation process of normal paraffins to olefins
The method dehydrogenates renewable feedstock-derived paraffins using adsorbent beds to remove contaminants, producing high-yield, linear alkylbenzenes that meet detergent industry specifications and improve biodegradability.
Patent Information
- Application Number
- JP2024010212
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-05-30
- Filing Date
- 2024-01-26
- Publication Date
- 2026-03-06
- Estimated Expiration
- 2044-01-26
AI Technical Summary
Conventional processes for producing alkylbenzenes, used in detergent manufacturing, rely on fossil fuels and are not based on renewable sources, leading to contaminants that poison dehydrogenation catalysts and affect product quality.
A method for dehydrogenating normal paraffins derived from renewable feedstocks like vegetable and animal oils, using adsorbent beds to remove contaminants, followed by dehydrogenation and alkylation to produce linear alkylbenzenes, minimizing catalyst deactivation and ensuring product linearity.
This process produces high-yield, linear alkylbenzenes with minimal branched isomers, addressing the need for renewable and contaminant-free production, thereby enhancing the biodegradability and effectiveness of detergent surfactants.
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Abstract
Description
[Technical Field]
[0001] (Statement of priority) This application claims priority to U.S. Provisional Patent Application No. 63 / 504,884, filed May 30, 2023, which is incorporated herein by reference in its entirety. [Background technology]
[0002] Linear alkylbenzenes have the formula C6H5C n H 2n+1 The alkyl benzenes are organic compounds having the following structure: The alkyl carbon number "n" can have any practical value, but detergent manufacturers prefer alkyl benzenes to have alkyl carbon numbers in the range of 9 to 16, preferably 9 to 14. These specific ranges are often required when alkyl benzenes are used as intermediates in the manufacture of detergent surfactants. The alkyl carbon number range of 9 to 14 is in line with detergent industry specifications.
[0003] Because surfactants derived from alkylbenzenes are biodegradable, their production has grown rapidly since their initial use in detergent manufacturing in the 1960s. The linearity of the paraffin chains in alkylbenzenes is important to the biodegradability of the material and its effectiveness as a detergent. The primary factor in the final linearity of alkylbenzenes is the linearity of the paraffin component.
[0004] Although detergents made using alkylbenzene surfactants are biodegradable, the conventional process for producing alkylbenzenes is not based on renewable sources. Specifically, alkylbenzenes are currently produced from kerosene refined from crude oil extracted from the earth. With growing environmental bias against fossil fuel extraction and economic concerns about the depletion of fossil fuel deposits, there may be support for the use of alternative sources of biodegradable surfactants in detergent and other industries.
[0005] C9-C14 paraffins produced from vegetable oil or animal fat-based feedstocks contain contaminants that can poison the dehydrogenation catalyst. Contaminants can also cause discoloration of linear alkylbenzenes and linear alkylbenzene sulfonates. Contaminants can include aromatics, light oxygenates, fatty acids, fatty esters, etc. These contaminants must be removed before the C9-C14 paraffins can be dehydrogenated.
[0006] Therefore, it is desirable to provide a dehydrogenation unit with renewable and easily processable triglyceride and fatty acid-decontaminated C9-C14 paraffins from vegetable, animal, nut, and / or seed oils. Palm kernel oil, coconut oil, and babassu oil have a high C9-C14 n-paraffin composition in the desired range, consistent with the alkyl carbon number range desired in the detergent industry. Such renewable sources also have large amounts of nC16-nC18 feed, which can be desirably converted to nC9-nC14 feed in high one-pass yields. These nC9-nC14 intermediate products are useful for ultimately producing linear alkylbenzene-type detergents through additional process steps. Furthermore, the resulting nC9-nC14 paraffins are desirably linear products with minimal branched isomer products. [Brief explanation of the drawings]
[0007] [Figure 1] FIG. 1 is a schematic diagram of one embodiment of a process for producing alkylbenzenes from triglycerides according to the present invention. [Figure 2] 1 is a plot of normal paraffin mass % versus deoxygenation temperature according to Example 2. DETAILED DESCRIPTION OF THE INVENTION
[0008] The present invention relates to a method for dehydrogenating normal paraffins to olefins, the paraffins being derived from renewable feedstocks, including natural oils such as vegetable oils, animal fats, nut oils, and / or seed oils, and triglyceride-containing oils. The purification process for renewable bioparaffin streams involves passing the stream through one or more adsorbent beds containing an adsorbent.
[0009] Natural oils are not based on kerosene or other fossil fuels. Natural oils include those derived from plant or algae materials or animal fats, nut and / or seed oils, and triglyceride-containing oils, often referred to as renewable oils. Natural oils typically contain triglycerides, free fatty acids, or combinations thereof. Natural oils include peanut oil (peanut oil, groundnut oil), babassu oil, coconut oil, cottonseed oil, grapeseed oil, corn oil, mustard oil, palm kernel oil, palm oil, palm olein (a liquid fraction derived from fractionation of palm oil), palm stearin (a high melting point fraction derived from fractionation of palm oil), rapeseed oil, rapeseed oil-low erucic acid (low erucic acid turnip rape oil, low erucic acid colza oil, canola oil), safflower seed oil (safflower oil, carthamus oil, kurdee oil), safflower seed oil-high oleic acid (high oleic acid safflower oil). Oils that may be used include, but are not limited to, safflower oil, high oleic acid carthamus oil, high oleic acid kurdee oil, sesame seed oil (sesame oil, gingelly oil, benne oil, ben oil, till oil, tillie oil), soybean oil, sunflower seed oil, and sunflower seed oil-high oleic (high oleic sunflower oil).
[0010] The feedstream, derived from natural oil, contains normal paraffins, isoparaffins, olefins, oxygenates, and up to 10 wt% aromatics.
[0011] The contaminants in the feed stream may include oxygenates and / or aromatics and / or fatty acids and esters. Alkali or alkaline earth cation exchanged X-zeolites can be used to remove at least a portion of the oxygenates, aromatics, and fatty acids and esters in paraffinic streams derived from natural oils. Suitable adsorbents for removing oxygenates and aromatics include, but are not limited to, alkali or alkaline earth cation exchanged X-zeolites.
[0012] After removal of contaminants, the treated stream contains less than 6000 ppm aromatics and less than 100 ppm oxygenates.
[0013] A second adsorbent bed, including but not limited to 5A zeolite, can be optionally included to further reduce the levels of oxygenates, aromatics, and fatty acids and esters in the treated stream.
[0014] The first and / or second adsorbent beds may be regenerated at predetermined times to remove at least a portion of the oxygenates, or aromatics, or both adsorbed on the first and / or second adsorbents.
[0015] There can be one or more first adsorbent beds and one or more second adsorbent beds.
[0016] Paraffin streams from renewable feedstocks, including vegetable oils and animal fats, may also contain other contaminants, such as sulfur compounds, nitrogen compounds, phosphorus compounds, or combinations thereof. These contaminants may be removed by passing the treated stream through a third adsorbent bed containing a third adsorbent. The third adsorbent may include, but is not limited to, 13X zeolite, 5A zeolite, alumina-zeolite, or combinations thereof.
[0017] After passing a feed stream derived from natural oil through a first adsorbent bed and optionally a second and / or third adsorbent bed, the process stream is dehydrogenated to convert at least a portion of the paraffins in the process stream to olefins, the dehydrogenated stream comprising monoolefins, diolefins, and aromatics.
[0018] The contaminant removal process can be incorporated into a process for producing alkylbenzenes from natural oils. This process involves deoxygenating the natural oil to form paraffins. The paraffins are separated (e.g., by fractionation or distillation) into a C9-C14 stream containing C9-C14 paraffins and a C14+ stream containing C14+ paraffins. The C14+ stream is sent to a separate linear selective cracking unit to crack the C14+ paraffins, and the cracked paraffins are fractionated into a first stream containing C9-C14 normal and lightly branched paraffins and a second stream containing isoparaffins. Contaminants, including, but not limited to, oxygenates, aromatics, fatty acids and esters, sulfur compounds, nitrogen compounds, and / or phosphorus compounds, or combinations thereof, are removed from the C9-C14 stream and the first stream. The decontaminated stream is dehydrogenated to form olefins, diolefins, and aromatics. The diolefins are selectively hydrogenated to form additional olefins, and the aromatics are separated and removed to form an aromatic stream containing aromatics and a monoolefin stream containing monoolefins. Benzene is alkylated with the olefins, and the alkylation effluent contains alkylbenzenes and benzene. The alkylbenzenes are then isolated.
[0019] To limit catalyst deactivation, the feed is treated to remove sulfur contaminants before hydrodeoxygenation. Otherwise, sulfur accumulates on the catalyst, causing deactivation. High-temperature hydrotreating has been shown to restore some of the lost activity. The extent of hydrodeoxygenation can affect the selectivity for each of the normal paraffins in the 9-14 carbon range. A high degree of hydrodeoxygenation can result in a hydrodeoxygenated composition that is predominantly normal dodecane and normal decane, with a bias toward normal undecane and normal tridecane. A low degree of hydrodeoxygenation can result in a hydrodeoxygenated composition that is rich in normal undecane and normal tridecane, and a bias toward normal dodecane and normal decane.
[0020] The temperature of the hydrodeoxygenation reactor is kept low, below 343°C (650°F) for typical biorenewable feedstocks, and below 304°C (580°F) for feedstocks with higher free fatty acid (FFA) concentrations to avoid polymerization of the olefins found in the FFA. Generally, hydrodeoxygenation reactor pressures between 700 kPa (100 psig) and 21 MPa (3000 psig) are suitable.
[0021] The linearity of the alkylbenzene product depends primarily on the linearity of the paraffins used to alkylate the benzene. A general rule of thumb for those skilled in the art is that the linearity of the paraffin feed decreases by 5-7% by mass after dehydrogenation and alkylation. Thus, a 97% by mass linearity of paraffins (or 3% by mass isoparaffins) will produce an alkylbenzene product with a linearity of approximately 90-92% by mass. This sets the paraffin linearity requirement 5-7% by mass higher than the alkylbenzene product specification. Typically, the linearity of the paraffin product is measured by standard test methods UOP621, UOP411, or UOP732 available from ASTM, which are incorporated herein by reference in their entireties. Linear alkylbenzenes may be analyzed using ASTM standard test method D4337, which is incorporated herein by reference in its entirety.
[0022] Illustrated is an exemplary system 100 for producing an alkylbenzene product from a particular triglyceride feed.
[0023] In the illustrated embodiment, the selected triglyceride feed 105 is delivered to a deoxygenation unit 110, which also receives a hydrogen feed (not shown). In the deoxygenation unit 110, the fatty acids in the selected triglyceride feed 105 are deoxygenated and converted to normal paraffins. Structurally, triglycerides are formed by three, typically different, fatty acid molecules linked together with a glycerol bridge. The glycerol molecule contains three hydroxyl groups (HO-), and each fatty acid molecule has a carboxyl group (COOH). In triglycerides, the hydroxyl groups of the glycerol combine with the carboxyl groups of the fatty acids to form ester bonds. Thus, during deoxygenation, the fatty acids are liberated from the triglyceride structure and converted to normal paraffins. The glycerol is converted to propane, and the oxygen in the hydroxyl and carboxyl groups is converted to water, carbon dioxide, or carbon monoxide. The deoxygenation reactions for fatty acids and triglycerides are shown below, respectively:
[0024] [ka]
[0025] During the deoxygenation reaction, the paraffin chain R n The length of the chain varies by a value of 1 depending on the exact reaction pathway. Deoxygenation is understood to include at least one of hydrodeoxygenation, decarboxylation, and decarbonylation, or any combination thereof. For example, if carbon dioxide is formed, the chain has one less carbon than the fatty acid source. If water is formed, the chain matches the length of the fatty acid source.
[0026] Operating conditions for the deoxygenation unit include pressures ranging from 250 to 800 psig (1724 to 5516 kPa) in one embodiment and temperatures ranging from 274°C to 371°C (525°F to 700°F), from 274°C to 338°C (525°F to 640°F) in another embodiment, and from 274°C to 310°C (525°F to 590°F) in another embodiment. Catalysts may include those containing one or more of Ni, Mo, Co, and P, such as Ni-Mo, Ni-Mo-P, Ni-Co-Mo, or Co-Mo, on alumina, silica, titania, zirconia, and mixtures thereof. Suitable hydrogen-to-hydrocarbon molar ratios include 1500 to 10,000, 4000 to 9000, and 5000 to 8000 standard cubic feet per barrel of feed (scf / B). Suitable space velocities are 0.2 to 3.0 hr -1 Conditions are selected to minimize cracking or isomerization of paraffins.
[0027] The deoxygenated product, containing normal paraffins, water, carbon dioxide, carbon monoxide, and propane, is fractionated into a C9-C14 stream 115 and a C14+ stream 120. The separation may be performed in a multi-stage fractionation unit, a distillation system, or similar known equipment. In either case, the separator removes the water, carbon dioxide, carbon monoxide, and propane from the deoxygenated product. A naphtha stream (not shown) of paraffins with carbon chain lengths of C5 to C9 may also be formed.
[0028] The C14+ stream 120 is sent to a linear selective cracking unit 125 where it is selectively cracked to form a first stream 130 containing normal or lightly branched C9-C14 paraffins and a second stream 135 containing isoparaffins. The linear selective cracking is carried out in a separate unit rather than in the bottom bed of the first-stage hydrocracking reactor because sulfur and nitrogen contaminants in the first stage can poison the metal-based hydrocracking catalyst. The C14+ paraffins are selectively cracked over the C9-C14 due to their higher absorbed energy.
[0029] The selection of specific metal catalysts, including noble metals (e.g., ruthenium and platinum) and nickel, can produce normal paraffins with 9 to 14 carbon atoms in much higher yields than previous processes. Suitable catalysts include, but are not limited to, Ru / ZrO2, Pt-Al2O3, Ni-alumina, or NiOx / clay. Using these catalysts, C14+ streams can produce linear cracking products without producing significant amounts of branched isomers.
[0030] Among the preferred catalysts, the Ru catalyst exhibits much higher activity and nC9-nC14 yields per pass than other catalysts. Under optimized reaction conditions, the Ru catalyst also produces very small amounts of methane and isomerized products. This has proven to be the best catalyst for such chemical conversion processes. The Pt-Al2O3 catalyst can provide even lower methane yields than the Ru-based catalyst, with slightly lower linear product yields.
[0031] The C9 to C14 stream 115 from the deoxygenation unit 110 and the first stream 130 from the linear selective cracking unit 125 are sent to a decontamination unit 140 as described above. The decontamination unit 140 removes contaminants from the C9 to C14 stream 115 and the C9 to C14 paraffins in the first stream 130. The contaminants may include, but are not limited to, oxygenates and / or aromatics and / or fatty acids and esters, and / or sulfur compounds, and / or nitrogen compounds, and / or phosphorus compounds, or combinations thereof.
[0032] The decontaminated stream 145 is sent to a dehydrogenation unit 150 where hydrogen is removed to produce a dehydrogenated stream 155 containing mono-olefins, di-olefins, and aromatics. In the dehydrogenation unit 150, the paraffins are dehydrogenated to mono-olefins of the same carbon number as the paraffins. Typically, the dehydrogenation is carried out by known catalytic processes such as the commercially available Pacol process. Di-olefins (i.e., dienes) and aromatics are also produced as undesired results of the dehydrogenation reaction, which is represented by the following equation: Mono-olefin formation: C x H 2x+2 →C x H 2x +H2 Di-olefin formation: C x H 2x →C x H 2x-2 +H2 Aromatic formation:C x H 2x-2 →C x H 2x-6 +2H2
[0033] The operating conditions for the dehydrogenation unit 150 are space velocities of 5-50 LHSV and 20-32 LHSV, pressures of 34 kPa(g) to 345 kPa(g) (5 psig to 50 psig) and 103 kPa(g) to 172 kPa(g) (15 psig to 25 psig), temperatures of 400°C to 500°C and 440°C to 490°C, and hydrogen-to-hydrocarbon molar ratios of 1-12 and 3-7. An example of a suitable catalyst is Pt on alumina, where the platinum is attenuated with a attenuating metal. Another suitable catalyst is described in U.S. Pat. No. 6,177,381, which is incorporated herein by reference in its entirety. The dehydrogenation unit 150 may be operated dry or with an injection of up to 2000 ppm by weight of water. Hydrogen can be recycled to the upstream deoxygenation unit.
[0034] The dehydrogenated stream 155 is sent to a selective hydrogenation unit 160, such as a Define reactor, where at least a portion of the diolefins are hydrogenated to form additional monoolefins. As a result, monoolefins stream 170 has an increased monoolefin concentration compared to the dehydrogenated stream 155. The aromatics are separated and removed as aromatics stream 165. A light ends stream 167 containing any lights, such as butane, propane, ethane, and methane, resulting from cracking or other reactions during upstream processing can also be removed, if desired.
[0035] Monoolefin stream 170, which contains monoolefins, is sent to alkylation unit 175 along with benzene stream 180. Benzene is alkylated with the monoolefin to form alkylbenzenes. Alkylation unit 175 contains a catalyst, such as a solid acid catalyst, that supports the alkylation of benzene with monoolefins. Fluorinated silica-alumina, hydrogen fluoride (HF), aluminum chloride (AlCl), zeolites, and ionic liquid catalysts are examples of major catalysts in commercial use for the alkylation of benzene with linear monoolefins and may be used in alkylation unit 175. As a result of the alkylation, alkylbenzenes, typically referred to as linear alkylbenzenes (LABs), are formed according to the following reaction: C6H6+C x H 2x →C6H5C x H 2x+1
[0036] Suitable operating conditions for alkylation unit 175 include space velocities of 1 to 10 LHSV, pressures to maintain liquid phase operation such as 2068 kPa(g) to 4137 kPa(g) (300 psig to 600 psig), temperatures ranging from 80°C to 180°C and 120°C to 170°C, and benzene to olefin molar ratios of 3 to 40 and 8 to 35.
[0037] An excess amount of benzene is fed to the alkylation unit 175 to achieve the desired high degree of alkylation. Thus, the alkylation effluent 185 exiting the alkylation unit 175 contains alkylbenzenes and unreacted benzene. Additionally, the alkylation effluent 185 may also contain some unreacted paraffins. The alkylation effluent 185 is sent to a benzene separation unit 190, such as a fractionation column, to separate the unreacted benzene and paraffins from the alkylation effluent 185. The unreacted benzene forms a benzene recycle stream 195 that may exit the benzene separation unit 190 and be returned to the alkylation unit 175 to maintain a desired benzene / olefin ratio (e.g., 1 to 50) and reduce the volume of fresh benzene required. The amount of fresh benzene required (i.e., net benzene) depends on the net olefins to the alkylation unit. A paraffin stream 200 can also be separated and recycled to the dehydrogenation unit 150.
[0038] As a result of the post-alkylation separation process, a linear alkylbenzene product 205 is isolated. Note that such a separation process is not required in all embodiments to isolate the linear alkylbenzene product 205.
[0039] The linear alkylbenzene product 205 has the formula C6H5C n H 2n+1 where n is 9 to 14. In some embodiments, at least 80% by weight, or at least 90% by weight, of the alkylbenzenes have linear alkyl groups.
[0040] Linear alkylbenzene is sulfonated to give a compound of formula C n H 2n+1 A linear alkylbenzene sulfonate product may be provided, which comprises an alkylbenzene sulfonate compound having the formula C6H4SO3H, where n is 10-14, or n is 11-13.
[0041] The term "column" refers to one or more distillation columns for separating one or more components of different volatility. Unless otherwise specified, each column includes a condenser at the top of the column for condensing and refluxing a portion of the overhead stream that returns to the top of the column, and a reboiler at the bottom of the column for vaporizing a portion of the bottom stream and returning it to the bottom of the column. The feed to a column may be preheated. The top pressure is the pressure of the overhead vapor at the vapor outlet of the column. The bottom temperature is the liquid bottom outlet temperature. Unless otherwise specified, the overhead and bottom lines refer to the net lines from the column downstream of any reflux or reboil to the column. A stripper column may omit the reboiler at the bottom of the column and instead provide the required heat and driving force for separation from a fluidized inert medium such as steam.
[0042] As used herein, the term "component-rich stream" or "component stream" means that the stream exiting a vessel has a higher concentration of the component than the feed to the vessel. As used herein, the term "component-lean stream" means that the stream exiting a vessel has a lower concentration of the component than the feed to the vessel. [Example]
[0043] Example 1 The coconut oil feed was deoxygenated to form paraffins, dehydrogenated to form mono-olefins, and benzene was alkylated with the mono-olefins to form an alkylbenzene product having a modern carbon content of 62 mass 96 modern carbon as measured by ASTM D6866, a bromine number of 1 gBr / gram sample as measured by UOP Standard Test Method 304, and a linearity of 92 mass %, compared to a theoretical modern carbon content of 66.4 mass %.
[0044] Example 2 The catalyst was used to deoxygenate the oil at a pressure of 480 psig, an H2O-to-bio-oil ratio of 7200 scf / B, and an LHSV of 1 hr. During operation, the deoxygenation reaction temperature was increased stepwise from 600°F (315°C) to 660°F (34.9°C), then to 710°F (377°C) and 760°F (404°C) to monitor the linear response of the final product to reaction temperature. The results are shown in Figure 2, which is a plot of the concentration of normal C10-C13 paraffins in mass percent versus reaction temperature. Figure 2 clearly shows that the concentration of normal paraffins decreases as the deoxygenation reaction temperature increases. Controlling the temperature below 760°F (404°C) yielded greater than 92 mass percent normal paraffins.
[0045] Note: Examples 1 and 2 were previously included as Examples 3 and 4 in U.S. Patent No. 9,079,814.
[0046] Specific Embodiments While the following will be described in conjunction with specific embodiments, it will be understood that this description is intended to be illustrative, but not limiting, of the scope of the foregoing description and appended claims.
[0047] A first embodiment of the present invention is a process for dehydrogenating normal paraffins to olefins, comprising: passing a feed stream derived from natural oil, comprising C9 to C14 normal paraffins, isoparaffins, olefins, oxygenates, and up to 10 wt.% aromatics, through a first adsorbent bed comprising a first adsorbent comprising an alkali or alkaline earth cation exchanged X-zeolite, wherein the adsorbent adsorbs and removes at least a portion of the oxygenates and aromatics from the paraffin stream to form a treat stream; and dehydrogenating the treat stream to convert at least a portion of the treat stream to olefins and provide a dehydrogenated stream comprising mono-olefins, di-olefins, and aromatics. An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph up to and including the first embodiment of this paragraph, further comprising regenerating the adsorbent bed for a predetermined period of time to remove at least a portion of the oxygenates or aromatics or both adsorbed on the adsorbent. An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph through the first embodiment of this paragraph, further comprising passing the process stream through a second adsorbent bed containing a second adsorbent comprising a 5A zeolite to remove additional oxygenates and aromatics to form a second process stream. An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph through the first embodiment of this paragraph, further comprising regenerating the second adsorbent bed at a predetermined time to remove at least a portion of the oxygenates, aromatics, or both adsorbed on the second adsorbent. An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph up to and including the first embodiment of this paragraph, wherein the feed stream is formed by deoxygenating a natural oil to form a paraffin stream comprising C9 to C28 paraffins; and linear selective cracking the paraffin stream in a linear selective cracking unit in the presence of a linear selective cracking catalyst under linear selective cracking conditions to form a first stream comprising normal or lightly branched C9 to C14 paraffins and a second stream comprising isoparaffins.An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph through the first embodiment of this paragraph, further comprising removing contaminants from the treatment stream in a third adsorbent bed comprising a third adsorbent to form a decontaminated stream prior to dehydrogenating the treatment stream, wherein the contaminants comprise sulfur compounds, or nitrogen compounds, or phosphorus compounds, or combinations thereof, and the third adsorbent comprises a 13X zeolite, a 5A zeolite, an alumina-zeolite, or combinations thereof.7 An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph through the first embodiment of this paragraph, further comprising selectively hydrogenating diolefins in the dehydrogenation stream to form additional mono-olefins; separating and removing aromatics from the mono-olefins to form an aromatic stream comprising aromatics and a mono-olefin stream comprising mono-olefins; alkylating benzene with the mono-olefin under alkylation conditions to provide an alkylation effluent comprising alkylbenzenes and benzene; and isolating the alkylbenzenes to provide an alkylbenzene product derived from a natural oil. An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph up to and including the first embodiment of this paragraph, wherein the process stream comprises no more than 6000 ppm aromatics and no more than 100 ppm oxygenates.
[0048] A second embodiment of the invention comprises the steps of passing a feed stream comprising normal paraffins, isoparaffins, olefins, up to 10 wt. % aromatics, and oxygenates through an adsorbent bed containing an adsorbent comprising an alkali or alkaline earth cation exchanged X-zeolite, the adsorbent removing by adsorption at least a portion of the oxygenates and aromatics from the paraffin stream to form a treated stream; and removing contaminants from the treated stream in a third adsorbent bed comprising a third adsorbent to form a decontaminated stream, the contaminants being selected from the group consisting of sulfur compounds, nitrogen compounds, and arsenic compounds. or a phosphorus compound, or a combination thereof, and the adsorbent comprises a 13X zeolite, a 5A zeolite, an alumina-zeolite, or a combination thereof; dehydrogenating the decontamination stream to convert at least a portion of the decontamination stream to olefins to provide a dehydrogenated stream comprising mono-olefins, di-olefins, and aromatics; and regenerating the adsorbent bed for a predetermined time to remove at least a portion of the oxygenates, aromatics, or both adsorbed on the adsorbent. One embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph up to the second embodiment of this paragraph, further comprising passing the decontamination stream through a second adsorbent bed containing a second adsorbent comprising a 5A zeolite to remove additional oxygenates and aromatics to form a second decontamination stream, followed by removing contaminants in a third adsorbent bed. An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph up to and including the second embodiment of this paragraph, further comprising regenerating the second adsorbent bed at a predetermined time to remove at least a portion of the oxygenates, or aromatics, or both adsorbed on the second adsorbent.An embodiment of the present invention is one, any or all of the preceding embodiments of this paragraph up to and including the second embodiment of this paragraph, wherein the feed stream is formed by deoxygenating a natural oil to form a paraffin stream comprising C9 to C28 paraffins; and linear selective cracking the paraffin stream in a linear selective cracking unit in the presence of a linear selective cracking catalyst under linear selective cracking conditions to form a first stream comprising normal or lightly branched C9 to C14 paraffins and a second stream comprising isoparaffins, wherein the first stream comprises normal or lightly branched C9 to C14 paraffins and the second stream comprises isoparaffins. An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph up to and including the second embodiment of this paragraph, further comprising the steps of selectively hydrogenating diolefins in the dehydrogenation stream to form additional mono-olefins, separating and removing aromatics from the mono-olefins to form an aromatic stream comprising aromatics and a mono-olefin stream comprising mono-olefins, alkylating benzene with the mono-olefin under alkylation conditions to provide an alkylation effluent comprising alkylbenzenes and benzene, and isolating the alkylbenzenes to provide an alkylbenzene product derived from a natural oil. An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph up to and including the second embodiment of this paragraph, wherein the treated stream comprises no more than 6000 ppm aromatics and no more than 100 ppm oxygenates.
[0049] A third embodiment of the present invention provides a method for producing a process for deoxygenating a natural oil to form a paraffinic stream comprising C9 to C28 paraffins; linear selective cracking the paraffinic stream in a linear selective cracking unit under linear selective cracking conditions and in the presence of a linear selective cracking catalyst to form a first stream comprising normal or lightly branched C9 to C14 paraffins and a second stream comprising isoparaffins; passing the first stream comprising normal paraffins, isoparaffins, olefins, oxygenates, and up to 10 wt. % aromatics through a first adsorbent bed containing a first adsorbent comprising an alkali or alkaline earth cation exchanged X-zeolite, the adsorbent removing at least a portion of the oxygenates and aromatics from the first stream by adsorption to form a treated stream; and removing contaminants from the treated stream in a third adsorbent bed prior to dehydrogenating the treated stream, the third adsorbent bed comprising a third adsorbent to form the treated stream, the contaminants being selected from the group consisting of sulfur compounds and olefins. , or a nitrogen compound, or a phosphorus compound, or a combination thereof, and wherein the third adsorbent comprises 13X zeolite, 5A zeolite, alumina-zeolite, or a combination thereof; dehydrogenating the decontaminated stream to convert at least a portion of the decontaminated stream to olefins to provide a dehydrogenated stream comprising mono-olefins, di-olefins, and aromatics; selectively hydrogenating the di-olefins in the dehydrogenated stream to form additional mono-olefins; separating and removing the aromatics from the mono-olefins to form an aromatic stream comprising aromatics and a mono-olefin stream comprising mono-olefins; alkylating benzene with the mono-olefin under alkylation conditions to provide an alkylation effluent comprising alkylbenzene and benzene; and isolating the alkylbenzene to provide an alkylbenzene product derived from a natural oil. An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph through the third embodiment of this paragraph, further comprising regenerating the first adsorbent bed for a predetermined time to remove at least a portion of the oxygenates, or aromatics, or both adsorbed on the first adsorbent.An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph through the third embodiment of this paragraph, further comprising passing the process stream through a second adsorbent bed containing a second adsorbent comprising a 5A zeolite to remove additional oxygenates and aromatics to form a second process stream. An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph through the third embodiment of this paragraph, further comprising regenerating the second adsorbent bed for a predetermined period of time to remove at least a portion of the oxygenates, aromatics, or both adsorbed on the second adsorbent. An embodiment of the present invention is one, any, or all of the preceding embodiments of this paragraph through the third embodiment of this paragraph, wherein the process stream comprises no more than 6000 ppm aromatics and no more than 100 ppm oxygenates.
[0050] Without further elaboration, it is believed that one skilled in the art can, using the preceding description, readily ascertain the essential characteristics of the present invention and make various changes and modifications to the present invention to adapt it to various uses and conditions, all without departing from the spirit and scope of the present invention. The preceding preferred specific embodiments are, therefore, to be construed as merely illustrative, and not limitative of the remainder of the disclosure in any way, and are intended to cover various modifications and equivalent arrangements included within the scope of the appended claims.
[0051] Above, all temperatures are set forth in degrees Celsius and all parts and percentages are by weight unless otherwise stated.
Claims
1. 1. A process for dehydrogenating normal paraffins to olefins, comprising: passing a feed stream (130) derived from natural oil, comprising C9 to C14 normal paraffins, isoparaffins, olefins, oxygenates, and up to 10 wt. % aromatics, through a first adsorbent bed containing a first adsorbent comprising an alkali or alkaline earth cation exchanged X-zeolite, said adsorbent removing at least a portion of said oxygenates and aromatics from said feed stream by adsorption to form a treated stream; dehydrogenating said process stream to convert at least a portion of said process stream to olefins and provide a dehydrogenated stream (155) comprising monoolefins, diolefins, and aromatics; the feed stream deoxygenating a natural oil (105) to form a paraffin stream comprising C9 to C28 paraffins; and linear selective cracking the paraffin stream in a linear selective cracking unit (125) under linear selective cracking conditions in the presence of a linear selective cracking catalyst to form the feed stream (130) comprising normal or lightly branched C9 to C14 paraffins. method.
2. passing the treated stream through a second adsorbent bed containing a second adsorbent comprising a 5A zeolite to further remove oxygenates and aromatics to form a second treated stream; or removing contaminants from the process stream in a third adsorbent bed containing a third adsorbent to form a decontaminated stream (145) prior to dehydrogenating the process stream, the contaminants comprising sulfur compounds, or nitrogen compounds, or phosphorus compounds, or combinations thereof, and the third adsorbent comprising 13X zeolite, 5A zeolite, alumina-zeolite, or combinations thereof; or both.
3. selectively hydrogenating the diolefins in the dehydrogenated stream (155) to form additional mono-olefins and separating and removing the aromatics from the mono-olefins to form an aromatics stream (165) comprising the aromatics and a mono-olefins stream (170) comprising the mono-olefins; alkylating benzene (180) with said monoolefin under alkylation conditions to provide an alkylation effluent (185) comprising alkylbenzenes and benzene; isolating said alkylbenzene to provide said alkylbenzene product (205) derived from said natural oil; The method of any one of claims 1 to 2, further comprising:
Citation Information
Patent Citations
Hydrocarbon dehydrogenation
JP1980079327A
Method for separating olefinic hydrocarbon
JP2002060760A
Process for removal of oxygenates from a paraffin stream
US20060247481A1
Method for cutting packages
US20130025243A1
Methods for producing linear paraffins and olefins from natural oils
US20130253243A1