Process for producing olefin trimers and tetramers

The described process addresses inefficiencies in olefin trimer and tetramer production by using multiple reactor units with controlled conditions and dimer recycling, achieving high carbon efficiency and selective production of these products.

JP7795669B2Active Publication Date: 2026-01-07NESTE OYJ
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Patent Information

Application Number
JP2025052479
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-10-27
Filing Date
2025-03-26
Publication Date
2026-01-07
Estimated Expiration
2042-10-27

AI Technical Summary

Technical Problem

Existing processes for producing olefin trimers and tetramers lack the ability to efficiently control the production of these products, leading to inefficiencies in carbon utilization and product yield.

Method used

A process involving multiple reactor units with controlled temperature, pressure, and oxygenate concentration, along with recycling of olefin dimers, to achieve selective production of olefin trimers and tetramers, utilizing acid catalysts such as macroreticular acid ion exchange resin catalysts.

Benefits of technology

The process achieves high carbon efficiency and selective production of olefin trimers and tetramers, efficiently converting olefin monomers into trimers and/or tetramers with high yields and high yields, achieving efficient and controlled production of trimers and/or tetramers.

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Abstract

To provide a process for controlled manufacturing of olefin trimers and olefin tetramers.SOLUTION: Olefin monomers are processed into olefin trimers and olefin tetramers by a two-step catalytic process involving separation and recycling of reaction products.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] This disclosure relates generally to processes for producing olefin trimers and tetramers. This disclosure particularly, but not exclusively, relates to continuous processes that can be controlled so that the production of olefin trimers and tetramers can be tailored as desired. [Background technology]

[0002] This section provides useful background information without admitting that any of the technology described herein represents the state of the art.

[0003] Olefins are hydrocarbons containing at least one double bond. They can be used as valuable feedstocks in fuels and fuel blends. Depending on the source, olefins vary in size, degree of branching, and the location and number of double bonds.

[0004] Smaller olefin molecules can be upgraded to produce longer chain molecules, i.e., oligomers of olefin monomers. Oligomerization reactions involve contacting olefin monomers with a catalyst to produce longer chain molecules composed of olefin monomers. Summary of the Invention

[0005] The appended claims define the scope of protection. Any examples, descriptions, or drawings of devices, products, or methods not covered by the claims are presented herein as background art or as examples useful for understanding the invention, and not as embodiments of the invention.

[0006] According to a first aspect, there is provided a process for the controlled production of olefin trimers and olefin tetramers, said process comprising the steps of: a. feeding at least one olefin monomer and at least one oxygen-containing moderator to at least one first reactor unit containing a catalyst; b. operating at least one of said first reactor units at a temperature selected from the range of 30 to 140°C and a pressure selected from the range of 800 to 5000 kPa to carry out a catalytic reaction between olefins within said first reactor unit; c. withdrawing a first reactor outlet stream from at least one of said first reactor units; d. distilling said first reactor effluent stream in a first distillation column to separate at least a first distillate product comprising at least unreacted olefin monomer and a first bottoms product comprising at least dimers of said olefin monomer; e. feeding said first bottoms product to at least one second reactor unit containing a catalyst; f. operating at least one of said second reactor units at a temperature selected from the range of 30 to 140°C and a pressure selected from the range of 150 to 5000 kPa to carry out a catalytic reaction between olefins within said second reactor unit; g. withdrawing a second reactor outlet stream from at least one of said second reactor units; and h. distilling said second reactor effluent stream in a second distillation column to separate a second distillate comprising at least olefin dimers and a second bottoms product comprising at least trimers and / or tetramers of said olefin monomers; wherein the process further comprises determining the composition of the second reactor outlet stream by the steps of: i. feeding olefin dimers to at least one of the first reactor units to increase the amount of olefin trimers in the second reactor outlet stream; and / or ii. feeding olefin dimer to at least one of said second reactor units to increase the amount of olefin tetramer in said second reactor outlet stream. This includes controlling by

[0007] In one embodiment, in steps i and ii, the phrase "feeding olefin dimers" includes or consists of feeding olefin dimers of the second distillate. Additionally or alternatively, in either or both of these steps, olefin dimers may be fed from another source.

[0008] The advantage of this process is that it is highly carbon efficient: it converts olefin monomers into olefin trimers and / or olefin tetramers efficiently and in high yields.

[0009] In one embodiment, at least a portion of the olefin dimers formed during the process is recycled to at least one of the first reactor units and / or at least one of the second reactor units, wherein the olefin dimer recycle ratio between the first reactor unit and the second reactor unit is selected from the range of 0 to 100%.

[0010] When olefin dimer is recycled to the first reactor unit, the dimer is preferably fed to the first reactor unit through a reactor feed line, such as first reactor feed line 11 shown in Figure 1, thereby achieving efficient mixing of the recycled dimer with fresh olefin monomer.

[0011] In one embodiment, when olefin trimer is produced, the amount of recycled dimer relative to fresh monomer in at least one of the first reactor units is at least about 350%, preferably at least about 400%, or about 350-550%, preferably about 400-500%, or about 450%. Preferably, when only olefin trimer production is desired, no dimer is recycled to the second reactor unit. In another embodiment, the operating conditions are as specified in Table 1. The amount of recycled dimer relative to fresh monomer can refer to the amount in one first reactor unit, or the amount in two, three, four, or all first reactor units contained in the first reaction zone.

[0012] In one embodiment, when olefin tetramer is produced, the total amount of recycled components relative to fresh monomer is at least about 250%, preferably at least about 300%, or about 250-350%, preferably about 300-350%, or about 320%. Preferably, dimer is recycled to at least one of the second reactor units when olefin tetramer is produced, and the amount of recycled dimer relative to fresh monomer is at least about 100%, such as 100-200%, or 100-150%, or about 140%. In another embodiment, the operating conditions are as set forth in Table 1. The amount of recycled dimer relative to fresh monomer can refer to the amount in one reactor unit, or the amount in two, three, four, or all reactor units contained in the reaction zone.

[0013] In one embodiment, the operating temperature of at least one of the first reactor units and / or at least one of the second reactor units is selected from the range of 50 to 140°C, or the range of 40 to 120°C, or the range of 45 to 120°C, or the range of 50 to 120°C. Another temperature range that may be used in at least one first reactor unit and / or at least one second reactor unit is a temperature selected from the range of 45 to 110°C, or from the range of 50 to 110°C. In another embodiment, the temperature is selected from the range of 60 to 110°C.

[0014] In another embodiment, in the first reactor unit, the temperature is selected from the range of 90 to 110°C, or from the range of 95 to 105°C, such as about 100°C. When olefin trimers are produced, the temperature in the second reactor unit may be selected from the range of 30 to 50°C, such as about 40°C. When olefin tetramers are produced, the temperature in the second reactor unit may be selected from the range of 90 to 110°C, or from the range of 95 to 105°C, such as about 100°C.

[0015] In another embodiment, the operating weight hourly space velocity of at least one of the first reactor units is selected from the range of 1 to 10 1 / h, and / or the operating weight hourly space velocity of at least one of the second reactor units is selected from the range of 0.05 to 100 1 / h.

[0016] In one embodiment, when olefin trimer is produced, the operating weight hourly space velocity of at least one of the first reactor units is selected from the range of 1 to 5 1 / h, or from the range of 1 to 2 1 / h. In another embodiment, the operating weight hourly space velocity of at least one of the second reactor units is selected from the range of 0.05 to 0.3 1 / h, or from the range of 0.1 to 0.2 1 / h, such as about 0.15 1 / h. In another embodiment, the WHSV is as defined in Table 1.

[0017] In one embodiment, when olefin tetramer is produced, the operating weight hourly space velocity of at least one of the first reactor units is selected from the range of 1 to 5 1 / h, or from the range of 1 to 2 1 / h. In another embodiment, the operating weight hourly space velocity of at least one of the second reactor units is selected from the range of 0.2 to 0.5 1 / h, or from the range of 0.3 to 0.4 1 / h, such as about 0.35 1 / h. In another embodiment, the WHSV is as defined in Table 1.

[0018] In one embodiment, the operating pressure of at least one of the first reactor units is selected from the range of 2400 to 3000 kPa.

[0019] In one embodiment, the operating pressure of at least one of the second reactor units is selected from the range of 1900 to 2300 kPa. In another embodiment, the operating pressure of at least one of the second reactor units is selected from the range of 150 to 2300 kPa, for example, 300 to 2300 kPa or 400 to 2300 kPa.

[0020] In one embodiment, the pressure in the first reactor unit is higher than the pressure in the second reactor unit.

[0021] In one embodiment, the operating pressure of at least one of the first reactor units is selected from the range of 2500 to 2700 kPa, such as about 2600 kPa, and / or the operating pressure of at least one of the second reactor units is selected from the range of 2000 to 2200 kPa, such as about 2100 kPa. In one embodiment, the pressure in at least one of the first reactor units is higher than the pressure in at least one of the second reactor units.

[0022] In one embodiment, the amount of oxygen-containing moderator in at least one of the first reactor units is selected from the range of 1000 to 15000 mol-ppm, and / or the amount of oxygen-containing moderator in at least one of the second reactor units is selected from the range of 10 to 10000 mol-ppm, or 10 to 2500 mol-ppm.

[0023] In one embodiment, the amount of oxygen-containing moderator in at least one of the first reactor units is selected from the range of 2000 to 15000 mol-ppm, or 2200 to 2800 mol-ppm, such as about 2600 mol-ppm.

[0024] In one embodiment, the amount of oxygen-containing moderator in at least one of the second reactor units is selected from the range of 5 to 20 mol-ppm, or the range of 5 to 15 mol-ppm, such as about 10 mol-ppm. This amount is advantageous when producing olefin trimers. In another embodiment, the amount of oxygen-containing moderator (oxygenate) is as specified in Table 1.

[0025] In one embodiment, the amount of oxygen-containing moderator in at least one of the second reactor units is selected from the range of 500 to 2500 mol-ppm, or the range of 1000 to 2000 mol-ppm, such as about 1500 mol-ppm. This amount is advantageous when producing olefin tetramers. In another embodiment, the amount of oxygen-containing moderator (oxygenate) is as defined in Table 1.

[0026] The choice of oxygenate concentration governs the reaction selectivity in the process: in the first reactor unit, the selectivity is balanced between dimer and trimer oligomers: the more oxygenate fed, the more dimers are formed relative to trimers, and in the second reactor unit, the more oxygenate fed, the more tetramerization is suppressed, thus maintaining the trimer composition. The two extremes of the bottoms product from the first column are a predominantly dimer product with traces of larger oligomers, or a predominantly trimer product with traces of larger oligomers.

[0027] The olefin monomer and possible solvent are present in the first reactor unit and the first column in all modes of operation and do not enter the second reactor unit.

[0028] In this process, the selectivity of the final product is controlled by the oxygenate concentration, which determines the product selectivity in each reactor unit, the operation mode of the first column, and the recycle ratio of dimer from the second column between the first and second reactor units.

[0029] In a trimer dominated mode of operation, dimers are present in the first reactor unit and the first column and do not enter the second reactor unit.

[0030] In one embodiment, no olefin trimer is recycled from the second distillate to the first reactor or the second reactor.

[0031] In the mixed mode of operation, all of the targeted trimers are produced in the first reactor unit and the first column region, while the dimers withdrawn from the bottom of the first column are converted to tetramers in the second reactor unit.

[0032] In a maximum tetramer product dominated operating mode, dimer production is favored in the first reactor unit by controlling the amount of oxygenate. Optionally, the once-through monomer conversion is maintained below 90%. Optionally, the monomer from the top of the first column is recycled to the first reactor unit and the dimer, containing minimal higher oligomers, is withdrawn from the bottom of the first column. Thus, in the second reactor unit / reaction zone, the dimer is dimerized to tetramer in a controlled manner, and any unreacted dimer is recycled to the second reactor unit / reaction zone.

[0033] In one embodiment, the solvent feed rate is 0-80 wt. %, preferably 0-60 wt. %, based on the target final product composition and the subsequent operating mode of the first reactor unit / reaction zone. If a substantial trimer content in the product is targeted, the solvent can be omitted entirely. In a tetramer-dominant operating mode, a distinct solvent ratio may be required to control the exothermicity of the reaction in the first reactor unit / reaction zone. The desired degree of dimerization in the first reactor unit determines the need for solvent (50-80% solvent for all dimers, 0% solvent for all trimers). In all cases where a solvent is used, it is recycled from the first column to the first reactor unit / reaction zone, and the solvent does not enter the second reactor unit / reaction zone.

[0034] In embodiments where the tetramer is the predominant product and the feed does not contain a suitable inert solvent component, an additional solvent feed may be required. If an additional solvent is used, the majority of the solvent is recycled through the first reactor unit / reaction zone and the first column, and only a small additional feed is required. Furthermore, industrial feeds may contain sufficient amounts of suitable solvent as an impurity, in which case an additional solvent feed is not required.

[0035] Furthermore, industrial feeds may contain light inert impurities, such as paraffinic hydrocarbons, having the same carbon number as the reactive olefins, which may accumulate in the recycle stream. In such cases, a purge stream may be taken from the top of the column. If the purge flow rate is high, it may be advantageous to take the recycle stream as a side stream below the top of the column to prevent loss of dimers present in the recycle stream.

[0036] In one embodiment, the olefin monomer comprises an olefin having four carbon atoms, preferably isobutene, hi another embodiment, the isobutene comprises 10 to 100 wt% of the fresh olefin feed fed to the first reactor unit.

[0037] In one embodiment, the olefin monomer is supplied to at least one of the first reactor units in an olefin feed comprising at least one of the following: C4 olefins, C5 olefins, a mixed feed of C4 and C5 olefins, isobutene, 1-butene, cis-2-butene, trans-2-butene, or a mixture thereof; and optionally, inerts, n-butane, i-butane, butadiene, a distillate fraction, or a mixture thereof.

[0038] In one embodiment, the at least one catalyst or catalysts is an acid catalyst, preferably a strongly acidic ion exchange resin catalyst, most preferably a macroreticular acid ion exchange resin catalyst. The catalyst used in the first reactor unit or reaction zone may be the same catalyst as the catalyst used in the second reactor unit or reaction zone. It is also possible to use different catalysts in the first reactor unit (or reaction zone) and the second reactor unit (or reaction zone).

[0039] In one embodiment, the oxygen-containing moderator comprises water, demi-water, alcohol, tert-butyl alcohol, or any combination thereof.

[0040] In one embodiment, the process further comprises recycling olefin dimers present in the second distillate to at least one of the first reactor units, thereby increasing the amount of olefin trimers in the final product stream or in the second reactor effluent stream.

[0041] In one embodiment, 0 to 50 wt. % of the olefin dimers present in the second distillate are recycled to at least one of the first reactor units to obtain a trimer to tetramer ratio of 25 to 0.05 (wt / wt) in the second reactor outlet stream.

[0042] In one embodiment, 0 to 50 wt. % of the second distillate is recycled to at least one of the first reactors to obtain a trimer to tetramer ratio of 25 to 0.05 (wt / wt) in the second reactor outlet stream. Because the second distillate contains dimers, the process can be directed to favor the production of olefin trimers by increasing the amount of olefin dimers in the first reaction unit. If trimer production is desired, the amount of second distillate recycled to the first reactor can be increased; for example, 5 to 50, 10 to 50, 20 to 50, 30 to 50, or 40 to 50 wt. % of the second distillate can be recycled to the first reactor.

[0043] In one embodiment, the process further comprises distilling the second bottoms product in a third distillation column to separate a third distillate comprising trimers of olefin monomers and a third bottoms product comprising tetramers of olefin monomers.

[0044] In one embodiment, the process further comprises increasing the amount of olefin tetramer in the second reactor outlet stream by recycling olefin monomer from the first distillate to at least one of the first reactor units to increase the production of olefin dimer in the first reactor unit, by feeding the first bottom product to at least one of the second reactor units, and by recycling olefin dimer from the second distillate to at least one of the second reactor units. Recycling olefin monomer to the first reactor unit promotes the production of olefin dimer, and these olefin dimers are reacted after distillation in the second reactor unit. Dimer from the second distillation column is also recycled to the second reactor unit, thereby increasing the amount of olefin dimer in the second reactor and promoting the formation of olefin tetramer in the second reactor unit.

[0045] In one embodiment, 99 to 100 wt. % of the olefin monomers present in the first distillate are recycled to at least one of the first reactor units, and the first bottoms product comprises 2 to 98 wt. % olefin dimers.

[0046] In one embodiment, the dimer is recycled only to at least one of the second reactor units.

[0047] In one embodiment, 4 to 99% or 4 to 96% of the olefin monomer is converted to olefin trimer during the process.

[0048] In one embodiment, 4 to 99% or 4 to 94% of the olefin monomer is converted to olefin tetramer during the process.

[0049] The process allows for high carbon efficiency with respect to reactive olefin monomer. For high purity olefin feeds, greater than 99% of the monomer will be product oligomers, while for mixed feeds where the purge stream from the top of the first column may displace reactive monomer, small losses can be expected (less than 1-5%).

[0050] According to a second aspect, there is provided an olefin conversion system configured to carry out the process of the first aspect, the system comprising: a. at least one first reactor unit configured to receive an acid catalyst; b. at least one second reactor unit configured to receive an acid catalyst; c. a first distillation column configured to separate olefin monomers from olefin dimers; d. a second distillation column configured to separate olefin dimers from olefin trimers and olefin tetramers; e. at least one first reactor feed line in fluid communication with at least one of the first reactor units and at least one reservoir for olefin monomer; f. a first reactor outlet line in fluid communication with at least one of the first reactor unit and the first distillation column; g. a first recycle line in fluid communication with at least one of the first reactor unit and the first distillation column; h. a first bottoms product line in fluid communication with at least one of the first distillation column and the second reactor unit; i. a second reactor outlet line in fluid communication with at least one of the second reactor units and the second distillation column; j. a second recycle line in fluid communication with the second distillation column, at least one of the first reactor units, and at least one of the second reactor units; k. a second bottoms product line in fluid communication with the second distillation column and a reservoir for the final product; and l. an optional third distillation column configured to separate olefin trimers from olefin tetramers and comprising a third column feed line in fluid communication with the second bottoms product line; and m. an optional solvent addition line communicating with the first reactor feed line; Includes:

[0051] In one embodiment, the olefin conversion system, including the above elements, is configured to carry out the process of the first aspect or any embodiment or feature thereof.

[0052] In one embodiment, the olefin conversion system of the present invention comprises means configured to control the flow in the second recycle line such that the recycled olefin dimers can be directed to at least one of the first reactor units and at least one of the second reactor units in desired amounts and proportions.

[0053] According to another aspect, there is provided a method for operating the olefin conversion system of the present invention, comprising controlling the composition of the second reactor outlet stream by feeding olefin dimer to at least one of the first reactor units to increase the amount of olefin trimer in the second reactor outlet stream; and / or by feeding olefin dimer to at least one of the second reactor units to increase the amount of olefin tetramer in the second reactor outlet stream. [Brief explanation of the drawings]

[0054] [Figure 1]Figure 1 is a schematic diagram of a process for the production of olefin trimers and olefin tetramers. In one embodiment, the process of the present invention is carried out according to the scheme of Figure 1. The olefin conversion system of the present invention can also be used to carry out the process described in Figure 1. An optional mode of operation using a third column to separate olefin trimers from olefin tetramers is shown in dashed lines. Instead of the single first reactor unit and / or single second reactor unit illustrated in Figure 1, a reaction zone comprising multiple reactor units configured to carry out the reaction can be used. DETAILED DESCRIPTION OF THE INVENTION

[0055] In the following description, like reference numerals refer to like elements or steps.

[0056] The term oxygen-containing moderator refers to an oxygenate or a compound that contains oxygen, such as a compound that contains oxygen, carbon, and hydrogen.

[0057] As used herein, the term "comprising" includes the broader terms "including," "containing," and "comprehending," as well as the narrower terms "consisting of" and "consisting only of."

[0058] In one embodiment, the process is carried out on an industrial scale, preferably as a continuous process.

[0059] Unless otherwise specified, % is % by weight, i.e. wt-%. Values ​​referring to recycling rates can mean wt-% or % by themselves.

[0060] In one embodiment, the process steps are performed in the order specified in any aspect, embodiment, or claim. In another embodiment, any process step specified to be performed on a product or intermediate obtained in a preceding process step is performed directly on said product or intermediate, i.e., without additional, optional, or auxiliary processing steps that may chemically and / or physically alter the product or intermediate between said two successive steps.

[0061] In another embodiment, the process is carried out as a continuous process, and at least some of the steps specified in any aspect, embodiment, or claim occur simultaneously as the process is carried out.

[0062] Any process step defined herein can further include analysis of reactants, reaction products, and / or operating parameters. For example, the chemical composition of a reaction mixture in a reactor unit, feed, or stream can be analyzed, and the analysis results can be used to modify process parameters to achieve a desired result.

[0063] In the context of the present invention, the term reactor feed refers to any feed entering the reactor unit. For simplicity, when at least one same component, such as, for example, an olefin monomer or isobutene, is supplied to the reactor unit via multiple feeds, the olefin monomer reactor feed or the olefin monomer reactor feed may in such a case refer to the total feed of said olefin monomer to the reactor unit.

[0064] The terms fresh olefin monomer feed and fresh olefin monomer refer to olefin monomer that is fresh, i.e., not recycled, and that is fed to a reactor unit to provide a source of olefin monomer that compensates for the amount of olefin monomer consumed in the course of the catalytic reaction in the reactor unit, and that is removed from the reactor unit primarily as recovered or consumed olefin trimer or olefin tetramer product. The fresh olefin monomer is fed to the first reactor unit in an amount sufficient to maintain the weight ratio of monomer to dimer at a desired level.

[0065] In one embodiment, the olefin monomer is fed to the reactor unit primarily as a fresh olefin feed, i.e., the fresh olefin monomer comprises greater than 50 wt.% of the total olefin monomer entering the reactor unit, hi another embodiment, at least 55 wt.%, 60 wt.%, 70 wt.%, 80 wt.%, or 90 wt.% of the olefin monomer entering the reactor unit is fresh.

[0066] In one embodiment, the recycle feed comprises unreacted olefin monomer. The recycle feed may also comprise solvent.

[0067] The term reactor unit refers to at least one reactor unit or reactor, such as at least one reactor vessel, in which a catalytic reaction takes place. The reactor unit may include at least one catalyst bed, an opening for introducing fluids into the reactor unit, and an opening for removing fluids from the reactor unit.

[0068] An olefin is a compound composed of at least hydrogen and carbon, and has at least one double bond between two carbon atoms. Olefins suitable for this process contain two or more carbon atoms and may be linear or branched. A preferred olefin monomer in this disclosure contains one double bond. A more preferred olefin monomer is isobutene.

[0069] Olefin mixtures, such as mixtures of olefin monomers, olefin dimers and larger polymers, or mixtures containing olefin monomers with various numbers of carbon atoms and double bonds, can also be used in the process and fed to the first reactor unit. In one embodiment, a feed containing an olefin monomer mixture is fed to the reactor unit as a mixed feed. Preferably, such a monomer mixture contains predominantly one olefin monomer.

[0070] In the context of this invention, a mixed feed or mixed monomer feed refers to a mixture of olefins having different carbon numbers, or olefin isomers having the same carbon number, and combinations thereof. In one embodiment, the mixed feed comprises C4-C5 olefins, preferably olefins having one double bond. In another embodiment, the mixed feed comprises olefins having a carbon number of C4±1. In one embodiment, reactive components lighter than C4 olefins are removed from the feed entering the reactor unit to facilitate distillation of the reaction product.

[0071] In one embodiment, the olefin monomer feed comprises at least one of the following: C4 olefins, C5 olefins, a mixed feed of C4 and C5 olefins, isobutene, 1-butene, cis-2-butene, trans-2-butene; and optionally inerts, n-butane, i-butane, butadiene, a distillate fraction, or a mixture thereof.

[0072] In another embodiment, the olefin monomer feed or mixed feed comprises or consists essentially of isobutene and at least one of C4 olefins, C5 olefins, a mixed feed of C4 and C5 olefins, 1-butene, cis-2-butene, trans-2-butene, inerts, n-butane, i-butane, butadiene, a distillate fraction, or mixtures thereof. In a preferred embodiment, isobutene is the major component of the mixed feed.

[0073] In one embodiment, the olefin monomer contains one double bond.

[0074] In one embodiment, the olefin monomer is isobutene. Isobutene is a preferred olefin monomer because it can sequentially react with itself to form longer olefinic products such as, for example, olefin dimers, olefin trimers, and olefin tetramers.

[0075] In one embodiment, the olefin trimer and / or olefin tetramer synthesized during the process contain one double bond, i.e., they are isoolefins. In a preferred embodiment, the olefin trimer is a trimer of isobutene and / or the olefin tetramer is a tetramer of isobutene.

[0076] In one embodiment, the amount of non-reactive components, such as inerts, n-butane, i-butane, etc., in the reactor effluent stream leaving the reactor unit is low and does not significantly interfere with the separation of olefin dimers and olefin trimers in the distillation step.

[0077] The first reactor outlet stream removed from the first reactor unit comprises at least olefin monomers and olefin dimers, and optionally minor amounts of moderators and / or inerts.

[0078] In one embodiment, fresh monomer is fed to the reactor as a high-purity monomer feed. The high-purity olefin preferably has a purity of at least 95% by weight. High-purity olefin has the advantage of allowing for greater control over the process, particularly the distillation step, and the composition of the final product.

[0079] In the context of the present invention, the term diluent means any inert agent or agent less reactive than the olefins in the process. Thus, the addition of a diluent to the reactor reduces the concentration of olefins in the reactor unit, and the catalytic conversion rate of olefin monomer, olefin dimer, and olefin trimer in the process can be controlled by selecting the appropriate amount of diluent.

[0080] Instead of using a single reactor unit as the first reactor unit and / or the second reactor unit, each reactor unit can be formed and allocated in a separate vessel, thereby forming a first reaction zone and / or a second reaction zone correspondingly. By increasing the number of reactor vessels and reaction beds, reaction conditions can be easily controlled, and as a result, nearly complete once-through conversion of olefin monomers such as isobutene can be achieved. In addition, the use of multiple reactor vessels also facilitates thermal control of adiabatic temperature rise.

[0081] In one embodiment, the reactor unit comprises multiple reaction vessels arranged as a series reactor unit or a parallel reactor unit, or a combination thereof.

[0082] In one embodiment, a reactor unit, such as the first reactor unit or the second reactor unit, is a reaction zone that may be comprised of one or more reactor vessels.

[0083] In one embodiment, the reactor unit comprises two or more reactor vessels, e.g., two, three, four, or five reactor vessels, each having at least one reactor bed. The use of two or more reactor vessels is advantageous because it allows for more precise control of the temperature and, further, the amount of moderator and catalyst in each individual reactor vessel. Between the reactor vessels, the temperature of the feed can be controlled by a temperature control unit configured to cool or heat the feed. In one embodiment, the reaction conditions, e.g., temperature and pressure, are essentially the same in each reactor vessel.

[0084] When multiple reactor vessels are used as a reactor unit instead of a single reactor vessel, each reactor vessel contains a catalyst, preferably an acidic ion exchange resin catalyst. Preferably, the same catalyst is used in each reactor vessel. Preferably, the amount of catalyst is kept low in the first reactor vessel and increased in subsequent reactor vessels downstream in the process. By limiting the amount of catalyst in the first reactor vessel, for example, temperature control is facilitated, and reaction conditions can be more easily maintained within a selected range. For example, when multiple reactor vessels are used and the olefin stream is cooled between reactor vessels, the olefins are more likely to be maintained in a liquid phase. Preferably, in addition to the reactor feed to the first reactor vessel, no additional olefins are fed to subsequent reactor vessels during the process, i.e., the mixture of olefins fed is not supplemented with additional olefins as the mixture flows through the reactor vessels. When multiple reactor vessels with a single reactor bed in each reactor vessel are used, the amount of catalyst can be increased within the reactor vessel. In a multiple reactor configuration, the upstream reactor vessel contains more catalyst than the downstream reactor vessel. In one embodiment, the multiple reactor unit configuration comprises three or four reactor vessels.

[0085] In a reactor unit including multiple reactor vessels, the volumes of the reactor vessels may increase downstream from the first reactor vessel to the subsequent reactor vessel. In one embodiment, the volumes of the first reactor vessel and the second reactor vessel are substantially the same. In another embodiment, the volumes of the third and fourth reactor vessels are substantially the same. In yet another embodiment, the volumes of the third and fourth reactor vessels are substantially the same relative to each other, but their volumes are greater than the volumes of the first or second reactor vessel, where the first and second reactor vessels may have substantially the same volume.

[0086] In one embodiment, the oxygen-containing moderator is an oxygenate, such as demiwater or tertiary butyl alcohol (TBA). Alternatively or additionally, the moderator comprises an alcohol formed in the reactor unit as a result of the reaction between water and an olefin. Thus, for example, 2-butanol may be produced from isobutene in the reactor unit and function as a moderator.

[0087] The moderator circulates in the recycle loop with the lighter components and is replenished to maintain a substantially constant amount. The amount of moderator can be determined by known methods, for example, from the recycle line. The moderator is preferably used in an amount exceeding the amount of water present in the fresh olefin feed or recycle feed, which can also serve as a source of oxygenates, but is not sufficient in this invention. The moderator can be added to the reactor unit by mixing it with a feed entering the first or second reactor unit, such as a reactor feed containing fresh olefin monomer. Alternatively, the moderator can be mixed into any recycle stream before mixing with the fresh or recycled olefin monomer. The use of added moderator in this process is advantageous because it improves the selectivity of trimer production.

[0088] When the monomeric olefin is isobutene, the resulting oligomers are highly branched pentamethylheptene and heptamethylnonene. This product may optionally be hydrogenated to obtain the corresponding paraffinic product, which has interesting properties as an aviation fuel component or chemical.

[0089] In one embodiment, the process is a continuous process, which advantageously allows the process to run for long periods of time, even months, without the need to interrupt the process for maintenance.

[0090] In one embodiment, the catalytic reaction is carried out at operating conditions where the olefin and, optionally, the moderator remain in the liquid phase. Preferably, the temperature and pressure of at least the reactor unit are selected so that the olefin is in the liquid phase within the reactor unit.

[0091] In one embodiment, the first reactor unit and the second reactor unit are operated at conditions where the olefin remains in the same phase, preferably in the liquid phase.

[0092] In one embodiment, the catalyst is a solid catalyst.

[0093] In one embodiment, the dimerization catalyst is an acid catalyst, preferably a strongly acidic ion exchange resin catalyst, most preferably a macroreticular acid ion exchange resin catalyst.

[0094] In one embodiment, the second catalyst is not the same catalyst as the first catalyst, but preferably both catalysts are of a similar type, such as an acid catalyst.

[0095] In one embodiment, olefin dimers are fed to both the first reactor unit and the second reactor unit. This mode of operation produces both olefin trimers and olefin tetramers, which can be removed in the second reactor outlet stream. Additional control of the composition of the second reactor outlet stream can be achieved by controlling the amount of olefin dimers from the second distillate recycled to the first reactor unit and to the second reactor unit. Increasing the amount of dimers recycled in the first reactor unit favors the reaction between olefin dimers and olefin monomers, thereby producing olefin trimers, while increasing the amount of olefin dimers in the second reactor unit favors the reaction between olefin dimers, thereby producing olefin tetramers.

[0096] In one embodiment, the process further comprises recovering heat from at least one stream obtained from the distillation column.

[0097] In one embodiment of this process, the recovered heat is used to heat any reactor effluent stream before it enters the distillation column, hi another embodiment, the heat is used to heat the reactor feed before it enters the reactor unit.

[0098] In one embodiment, the first and second distillation columns are non-reactive distillation columns. A non-reactive distillation column is a distillation column that does not contain a catalytic material or a reaction zone and in which olefins do not significantly chemically react with each other or with other chemical agents. Thus, a non-reactive distillation column is distinguished from, for example, a reactive distillation column that has a reactive or catalytic zone that chemically converts feed components, particularly olefin monomers, olefin dimers, or olefin trimers.

[0099] In one embodiment, each distillation column is operated under conditions that do not allow dimerization or oligomerization of olefins to occur.

[0100] In one embodiment, the amount of olefin monomer is analyzed in the first distillate and / or the first bottom product. Therefore, the amount of fresh olefin monomer fed to the first reactor unit can be adjusted based on the amount of recycled olefin monomer to maintain the total amount of olefin monomer fed at a desired amount. Similarly, if the amount of dimer in the first bottom product is known, it is easier to control the reaction in the second reactor unit.

[0101] In one embodiment, the amount of olefin dimers in the second distillate is analyzed. If the dimer content of the second distillate is known, it is easier to control the production of olefin trimers and / or olefin tetramers. For example, the feed ratio of recycled olefin dimers from the second distillate to the feed from the first bottom product can be adjusted so that the second reactor unit receives the desired amount of olefin dimers. This embodiment is particularly useful when olefin tetramers are produced or when the amount of olefin tetramers is increased compared to olefin trimers.

[0102] Similarly, the known amounts of olefin dimer and olefin tetramer in the second distillate can be used to select the appropriate amount of recycled olefin dimer to be fed to the first reactor unit, which is particularly useful when olefin trimer or olefin tetramer are produced in desired amounts.

[0103] In one embodiment, the catalytic reaction is carried out in the liquid phase, preferably entirely in the liquid phase.

[0104] In one embodiment, the second reactor outlet stream comprises at least 15 wt. % olefin tetramers, such as, for example, tetramers of isobutene.

[0105] The olefin conversion system 100 is further described with reference to FIG. 110 is the reservoir of olefin monomer; 111 is the first reactor feed line; 210 is the first reactor unit; 211 is the first reactor outlet flow line; 310 is the first distillation column; 315 is the first recycling line; 333 is an optional solvent addition line 350 is the first bottoms product line; 410 is the second reactor unit; 411 is the second reactor outlet flow line; 510 is the second distillation column; 515 is the second recycling line; 5151 is part of a second recycle line connecting the second distillation column to the first reactor unit; 5152 is part of a second recycle line connecting the second distillation column to the second reactor unit; 550 is the second bottom product line; 590 is a reservoir for the final product; 610 is an optional third distillation column; 690 is a reservoir for another end product when the system includes an optional third distillation column, which reservoir may receive olefin tetramer from the third distillation column; 695 is a reservoir for another final product if the system includes an optional third distillation column, which reservoir can receive olefin trimer from the third distillation column; and 555 is an optional third tower feedline.

[0106] In one embodiment, the olefin conversion system further comprises means configured to allow olefin dimers to be fed to at least one of the first reactor units and / or to allow olefin dimers to be fed to at least one of the second reactor units. In one embodiment, the means comprises control means for controlling the operation of the olefin conversion system, and in particular the operation of its feeds, reactors, distillation columns, and lines used to transport the feeds. Thus, the control means can be used to direct feeds between various parts of the system. The means can be used to control the recycle of dimers from the second distillation column to the first reactor unit and from the second distillation column to the second reactor unit, in particular to control the production of olefin trimers and olefin tetramers in the system.

[0107] Implementations and embodiments are further disclosed in the following numbered paragraphs: Item 1: A process for the controlled production of olefin trimers and olefin tetramers, comprising the following steps: a. feeding at least one olefin monomer and at least one oxygen-containing moderator to at least one first reactor unit containing a catalyst; b. operating at least one of said first reactor units at a temperature selected from the range of 30 to 140°C and a pressure selected from the range of 800 to 5000 kPa to carry out a catalytic reaction between olefins within said first reactor unit; c. withdrawing a first reactor outlet stream from at least one of said first reactor units; d. distilling said first reactor effluent stream in a first distillation column to separate at least a first distillate product comprising at least unreacted olefin monomer and a first bottoms product comprising at least dimers of said olefin monomer; e. feeding said first bottoms product to at least one second reactor unit containing a catalyst; f. operating at least one of said second reactor units at a temperature selected from the range of 30 to 140°C and a pressure selected from the range of 150 to 5000 kPa to carry out a catalytic reaction between olefins within said second reactor unit; g. withdrawing a second reactor outlet stream from at least one of said second reactor units; and h. distilling said second reactor effluent stream in a second distillation column to separate a second distillate comprising at least olefin dimers and a second bottoms product comprising at least trimers and / or tetramers of said olefin monomers; wherein the process further comprises determining the composition of the second reactor outlet stream by the steps of: feeding olefin dimers to at least one of the first reactor units to increase the amount of olefin trimers in the second reactor outlet stream; and / or feeding olefin dimer to at least one of said second reactor units to increase the amount of olefin tetramer in said second reactor outlet stream. A process involving controlling by Item 2: The process of item 1, wherein at least a portion of the olefin dimer formed during the process is recycled to at least one of the first reactor units and / or at least one of the second reactor units, wherein the olefin dimer recycle ratio between the first reactor unit and the second reactor unit is selected from the range of 0 to 100%. Item 3: The process according to item 1 or 2, wherein the operating temperature of at least one of the first reactor units and / or at least one of the second reactor units is selected from the range of 40 to 120°C, or the range of 45 to 110°C. Item 4: The process of any one of items 1 to 3, wherein the operating weight hourly space velocity of at least one of the first reactor units is selected from the range of 1 to 10 1 / h, and / or the operating weight hourly space velocity of at least one of the second reactor units is selected from the range of 0.05 to 100 1 / h. Item 5: The process of any one of items 1 to 4, wherein the operating pressure of at least one of the first reactor units is selected from the range of 2400 to 3000 kPa, and / or the operating pressure of at least one of the second reactor units is selected from the range of 1900 to 2300 kPa. Item 6: The process of any one of items 1 to 5, wherein the amount of oxygen-containing moderator in at least one of the first reactor units is selected from the range of 1,000 to 15,000 mol-ppm, and / or the amount of oxygen-containing moderator in at least one of the second reactor units is selected from the range of 10 to 10,000 mol-ppm, or 10 to 2,500 mol-ppm. Item 7: The process according to any one of Items 1 to 6, wherein the solvent feed fraction is 0 to 80 wt %, preferably 0 to 60 wt %. Item 8: The process according to any one of Items 1 to 7, wherein the inert solvent relative to the fresh olefin monomer is selected from the range of 0 to 80% by weight. Item 9: The process according to any one of Items 1 to 8, wherein the olefin monomer comprises an olefin having 4 carbon atoms, preferably isobutene. Item 10: The olefin monomer is one of the following: C4 olefins, C5 olefins, a mixed feed of C4 and C5 olefins, isobutene, 1-butene, cis-2-butene, trans-2-butene, or mixtures thereof; and optionally inerts, n-butane, i-butane, butadiene, distillate fractions, or mixtures thereof. 10. The process of any one of items 1 to 9, wherein the at least one first reactor unit is supplied in an olefin feed comprising at least one of: Item 11: The process of any one of items 1 to 10, wherein the catalyst is an acid catalyst, preferably a strongly acidic ion exchange resin catalyst, most preferably a macroreticular acid ion exchange resin catalyst. Item 12: The process of any one of items 1 to 11, wherein the oxygen-containing moderator comprises water, demi-water, alcohol, tert-butyl alcohol, or any combination thereof. Item 13: The process of any one of items 1 to 12, comprising recycling olefin dimers present in the second distillate to at least one of the first reactor units, thereby increasing the amount of olefin trimers in the final product stream. Item 14. The process of item 13, wherein 0 to 50 wt. % of the olefin dimers present in the second distillate are recycled to at least one of the first reactor units to obtain a trimer to tetramer ratio of 25 to 0.05 (wt / wt) in the second reactor outlet stream. Item 15: The process of items 13 or 14, comprising distilling the second bottoms product in a third distillation column to separate a third distillate comprising trimers of olefin monomers and a third bottoms product comprising tetramers of olefin monomers. Item 16: The process of any one of items 1 to 15, comprising increasing the amount of olefin tetramer in the second reactor outlet stream by recycling olefin monomer of a first distillate to at least one of the first reactor units to increase the production of olefin dimer in the first reactor unit, by supplying a first bottoms product to at least one of the second reactor units, and by recycling olefin dimer of a second distillate to at least one of the second reactor units. Item 17: The process of item 16, wherein 99 to 100 wt. % of the olefin monomers present in the first distillate are recycled to at least one of the first reactor units, and the first bottoms product comprises 2 to 98 wt. % olefin dimers. Item 18: The process of items 16 or 17, wherein dimer is recycled only to at least one of the second reactor units. Item 19: An olefin conversion system configured to carry out the process described in any one of items 1 to 17, comprising: at least one first reactor unit configured to receive an acid catalyst; at least one second reactor unit configured to receive an acid catalyst; a first distillation column configured to separate olefin monomers from olefin dimers; a second distillation column configured to separate olefin dimers from olefin trimers and olefin tetramers; at least one first reactor feed line in fluid communication with at least one of the first reactor units and at least one reservoir for olefin monomer; a first reactor outlet line in fluid communication with at least one of the first reactor units and the first distillation column; a first recycle line in fluid communication with at least one of the first reactor unit and the first distillation column; a first bottoms product line in fluid communication with at least one of the first distillation column and the second reactor unit; a second reactor outlet line in fluid communication with at least one of the second reactor units and the second distillation column; a second recycle line in fluid communication with the second distillation column, at least one of the first reactor units, and at least one of the second reactor units; a second bottoms product line in fluid communication with the second distillation column and a reservoir for the final product; and an optional third distillation column configured to separate olefin trimers from olefin tetramers and comprising a third column feed line in fluid communication with the second bottoms product line; and an optional solvent addition line in communication with the first reactor feed line; A system including: [Example]

[0108] The following examples are provided to better illustrate the claimed invention and are not to be construed as limiting the scope of the invention, which is determined by the claims. To the extent that specific materials are mentioned, they are mentioned merely to illustrate the invention, not to limit it. One skilled in the art may develop equivalent means or reactants without the exercise of inventive capacity and without departing from the scope of the invention.

[0109] Table 1 shows several operating modes of the process. In these examples, the process and olefin conversion system of the present invention were used. The process equipment was the same in three examples. The feed was pure isobutene, which in these examples served as an example of an olefin monomer that could be converted to olefin dimer, olefin trimer, and / or olefin tetramer by the process of the present invention. Variations in the final product composition were achieved by adjusting the process parameters as shown in Table 1. As can be seen from the results, the entire product range, from up to trimer to up to tetramer, could be produced with the process according to the present invention, with yields greater than 99%. In the examples, the reaction zone corresponds to the term "at least one reactor unit" used elsewhere in this specification.

[0110] In Example 1, the goal was to maximize trimer yield. To minimize tetramer production, dimers from the second reaction zone were prevented from entering the second reaction zone. In this case, the recycle stream from the first distillation column to the first reaction zone consisted of dimers, unreacted monomer, and oxygenates. Oxygenates were kept at a low level (~0.3 mol-%) in the first reaction zone. Because many recycle streams were sufficient diluents in themselves, solvent addition was omitted. The recycle ratio per fresh feed rate from the first distillation column to the first reaction zone was 3.4. In this case, no recycle from the second distillation column to the first reaction zone was required.

[0111] In Example 2, the goal was to produce approximately equal amounts of olefin trimers and olefin tetramers. In this case, sufficient levels of dimers were maintained in both the first and second reaction zones. As a result, the recycle stream from the first distillation column to the first reaction zone contained dimers, monomers, and oxygenates. The oxygenate content entering the first reaction zone was kept at an intermediate level (~1%). The recycle stream from the second distillation column to the first and second reaction zones consisted of dimers and oxygenates. The recycle ratio from the first distillation column to the first reaction zone per fresh feed rate was 3.2. The recycle ratio from the second distillation column to the second reaction zone was 1.0. Because the recycle stream provided sufficient dilution, no additional solvent was required. In this mode, maintaining sufficient dimer content in the feeds to the first and second reaction zones required the application of recycle from the second distillation column to the first reaction zone. The recycle ratio from the second distillation column to the first reaction zone per fresh feed rate was 0.2.

[0112] In Example 3, the goal was to maximize tetramer production. In this case, trimer production in the primary reaction zone was minimized, and therefore dimers were not recycled to the first reaction zone. However, the recycle stream to this first reaction zone consisted of solvent, monomer, and oxygenates. The oxygenate content was relatively high (~1.5%) to suppress trimer formation. In this case, additional diluent had to be added to the feed to the first reaction zone. The solvent retarded the reaction and absorbed the heat of reaction, so the process remained controllable. The recycle stream from the second distillation column to the second reaction zone consisted primarily of dimers and small amounts of oxygenates. The recycle ratio from the first distillation column to the first reaction zone per fresh feed rate was 3.07. The recycle from the second distillation column to the first reaction zone was not useful in this mode, and as a result, the rate for this stream was zero. The recycle ratio from the second distillation column to the second reaction zone per fresh feed rate was 1.4.

[0113] [Table 1]

[0114] The foregoing description provides a complete and informative description of the best mode presently contemplated by the inventors for carrying out the invention, by way of non-limiting examples of specific implementations and embodiments. However, it will be apparent to those skilled in the art that the invention is not limited to the details of the embodiments set forth above, and that it may be practiced in other embodiments using equivalent means, or in various combinations of embodiments, without departing from the characteristics of the invention.

[0115] Furthermore, it should be understood that many variations are possible in the procedures described herein while remaining within the scope of the present invention. Furthermore, any individual feature of any embodiment may be used without the presence of other features of that embodiment.

Claims

1. 1. A process for the controlled production of olefin trimers and olefin tetramers, comprising the steps of: a. feeding at least one olefin monomer and at least one oxygen-containing moderator to at least one first reactor unit containing a catalyst, wherein the at least one oxygen-containing moderator is water, demi-water, an alcohol, tert-butyl alcohol, or any combination thereof; b. operating at least one of said first reactor units at a temperature selected from the range of 30 to 140° C. and a pressure selected from the range of 800 to 5000 kPa to carry out a catalytic reaction between olefins within said first reactor unit; c. withdrawing a first reactor outlet stream from at least one of said first reactor units; d. distilling the first reactor effluent stream in a first distillation column to separate at least a first distillate product comprising at least unreacted olefin monomer and a first bottoms product comprising at least olefin dimer; e. feeding the first bottoms product to at least one second reactor unit containing a catalyst; f. operating at least one of said second reactor units at a temperature selected from the range of 30 to 140° C. and a pressure selected from the range of 150 to 5000 kPa to carry out a catalytic reaction between olefins within said second reactor unit; g. withdrawing a second reactor outlet stream from at least one of said second reactor units; and h) distilling the second reactor effluent stream in a second distillation column to separate a second distillate comprising at least olefin dimers and a second bottoms product comprising at least olefin trimers and / or olefin tetramers; wherein the process further comprises adjusting the composition of the second reactor outlet stream by the steps of: i. feeding olefin dimers to at least one of said first reactor units to increase the amount of olefin trimers in said second reactor outlet stream; and / or ii. feeding olefin dimer to at least one of said second reactor units to increase the amount of olefin tetramer in said second reactor outlet stream. A process involving controlling by

2. 2. The process of claim 1, wherein at least a portion of the olefin dimers formed during the process is recycled to at least one of the first reactor units and / or at least one of the second reactor units, wherein the olefin dimer recycle ratio between the first reactor unit and the second reactor unit is selected from the range of 0 to 100%.

3. 2. The process of claim 1, wherein the operating temperature of at least one of the first reactor units and / or at least one of the second reactor units is selected from the range of 40 to 120°C, or the range of 45 to 110°C.

4. 2. The process of claim 1, wherein the operating weight hourly space velocity of at least one of the first reactor units is selected from the range of 1 to 10 1 / h and / or the operating weight hourly space velocity of at least one of the second reactor units is selected from the range of 0.05 to 100 1 / h.

5. 2. The process of claim 1, wherein the operating pressure of at least one of the first reactor units is selected from the range of 2400 to 3000 kPa and / or the operating pressure of at least one of the second reactor units is selected from the range of 1900 to 2300 kPa.

6. 2. The process of claim 1, wherein the amount of oxygen-containing moderator in at least one of the first reactor units is selected from the range of 1,000 to 15,000 mol-ppm and / or the amount of oxygen-containing moderator in at least one of the second reactor units is selected from the range of 10 to 10,000 mol-ppm, or 10 to 2,500 mol-ppm.

7. The process of claim 1, wherein the first reactor unit contains a solvent in an amount of 0 to 80% by weight.

8. The process of claim 7, wherein the amount of the solvent is 0 to 60% by weight.

9. The process of claim 1, wherein the first reactor unit contains 0 to 80 weight percent inert solvent relative to the fresh olefin monomer.

10. 10. The process of claim 1, wherein the olefin monomer comprises an olefin having four carbon atoms.

11. The process of claim 10, wherein the olefin monomer comprises isobutene.

12. The olefin monomer is selected from the group consisting of: C4 olefins, C5 olefins, a mixed feed of C4 and C5 olefins, isobutene, 1-butene, cis-2-butene, trans-2-butene, or mixtures thereof and 10. The process of claim 1, wherein at least one of said first reactor units is optionally supplied in an olefin feed comprising inerts, n-butane, i-butane, butadiene, a distillate fraction, or a mixture thereof.

13. 10. The process of claim 1, wherein the catalyst is an acid catalyst.

14. The process of claim 13, wherein the catalyst is a strongly acidic ion exchange resin catalyst.

15. The process of claim 13, wherein the catalyst is a macroreticular acid ion exchange resin catalyst.

16. 2. The process of claim 1, comprising recycling olefin dimers present in said second distillate to at least one of said first reactor units, thereby increasing the amount of olefin trimers in the final product stream.

17. 17. The process of claim 16, wherein 0 to 50 wt. % of the olefin dimers present in the second distillate are recycled to at least one of the first reactor units to obtain an olefin trimer to olefin tetramer ratio in the second reactor outlet stream of 25 to 0.05 (wt / wt).

18. 17. The process of claim 16, comprising distilling the second bottoms product in a third distillation column to separate a third distillate comprising olefin trimers and a third bottoms product comprising olefin tetramers.

19. 10. The process of claim 1, comprising increasing the amount of olefin tetramer in the second reactor effluent stream by recycling olefin monomer of a first distillate to at least one of the first reactor units to increase olefin dimer production in the first reactor units, by feeding a first bottoms product to at least one of the second reactor units, and by recycling olefin dimer of a second distillate to at least one of the second reactor units.

20. 20. The process of claim 19, wherein 99 to 100 wt. % of the olefin monomers present in the first distillate are recycled to at least one of the first reactor units, and the first bottoms product comprises 2 to 98 wt. % olefin dimers.

21. The process of claim 19, wherein olefin dimers are recycled to only at least one of said second reactor units.

22. 21. An olefin conversion system configured to carry out the process of any one of claims 1 to 20, comprising: a. at least one first reactor unit configured to receive an acid catalyst; b. at least one second reactor unit configured to receive an acid catalyst; c. a first distillation column configured to separate olefin monomers from olefin dimers; d. a second distillation column configured to separate olefin dimers from olefin trimers and olefin tetramers; e. at least one first reactor feed line in fluid communication with at least one of the first reactor units and at least one reservoir for olefin monomer; f. a first reactor outlet line in fluid communication with at least one of the first reactor unit and the first distillation column; g. a first recycle line in fluid communication with at least one of the first reactor unit and the first distillation column; h. a first bottoms product line in fluid communication with at least one of the first distillation column and the second reactor unit; i. a second reactor outlet line in fluid communication with at least one of the second reactor unit and the second distillation column; j. a second recycle line in fluid communication with the second distillation column, at least one of the first reactor units, and at least one of the second reactor units; k. a second bottoms product line in fluid communication with the second distillation column and a reservoir for the final product; and l. an optional third distillation column configured to separate olefin trimers from olefin tetramers, the third column feed line being in fluid communication with the second bottoms product line; and m. an optional solvent addition line in communication with the first reactor feed line A system including:

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