Restriction of acetic acid production in the ethane ODH process
By including acetic acid in the feed stream for the oxidative dehydrogenation of ethane, the production of acetic acid is reduced, simplifying downstream processing and enhancing ethylene yield.
Patent Information
- Application Number
- JP2022575246
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-06-09
- Filing Date
- 2021-05-25
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2041-05-25
AI Technical Summary
The oxidative dehydrogenation of ethane to ethylene often produces undesirable by-products like acetic acid, which increases the complexity and cost of downstream separation processes.
Incorporating acetic acid into the feed stream alongside ethane and oxygen, with a concentration of 0.5-10% by volume, to reduce its production and simplify downstream processing.
This approach effectively minimizes the selectivity to acetic acid, potentially achieving negative selectivity, thereby reducing the complexity and cost of downstream separation and increasing the yield of ethylene.
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Abstract
Description
[Technical field]
[0001] (Priority Claim) This application claims priority to U.S. Provisional Application No. 63 / 036,471, filed June 9, 2020, the entire contents of which are incorporated herein by reference. (Technical field) This specification relates to an oxidative dehydrogenation process for converting ethane to ethylene. More specifically, an oxidative dehydrogenation process is described that includes acetic acid in the feed stream. [Background technology]
[0002] Oxidative dehydrogenation of ethane using mixed metal oxide catalysts is an alternative to steam cracking for the production of ethylene. Oxidative dehydrogenation of ethane is a method to convert relatively inert ethane to the more reactive and more valuable ethylene. Oxidative dehydrogenation of ethane involves the endothermic removal of hydrogen from ethane and its exothermic oxidation to produce water. However, oxidative dehydrogenation of ethane can also produce undesirable by-products such as acetic acid. Therefore, selectively oxidizing hydrogen and minimizing the oxidation of ethane can be beneficial to maximize the production of the desired product, ethylene. Summary of the Invention
[0003] Some embodiments of the described subject matter can be practiced as a process for the oxidative dehydrogenation of ethane (ODH). The process includes contacting a feed stream comprising oxygen and acetic acid with an oxidative dehydrogenation catalyst in an oxidative dehydrogenation reactor under oxidative dehydrogenation conditions to produce a product stream comprising ethylene, unreacted ethane, water, and acetic acid. The concentration of acetic acid in the feed stream is 0.5-10 vol% (volume percent) of the feed stream. The feed stream can optionally include an inert diluent. In some cases, the product stream includes carbon monoxide, carbon dioxide, or both.
[0004] This and other aspects can include one or more of the following features.
[0005] The concentration of acetic acid in the feed stream can be 2-5% by volume of the feed stream. The concentration of acetic acid in the feed stream can be greater than 2% by volume of the feed stream. The feed stream to the reactor can include 0.5-10% by volume acetic acid. The feed stream to the reactor can include oxygen to ethane in a molar ratio of 0.5-0.7. The feed stream to the reactor can include water (H 2 O) and carbon dioxide (CO 2 ) in molar ratios such that the feed composition is outside the flammability limits.
[0006] The process may include downstream separation processes. The product stream may be separated, for example, by downstream separation processes into a liquid stream and a gaseous component stream. The liquid stream may include water and acetic acid. The gaseous component stream may include ethylene and unreacted ethane. In some cases, the gaseous component stream includes carbon monoxide, carbon dioxide, or both. At least a portion of the liquid stream may be recycled to the reactor as part of the feed stream. The liquid stream may be diluted with water to achieve a desired amount of acetic acid in the feed stream. The split fraction of the liquid stream may be adjusted to achieve a desired amount of acetic acid in the feed stream.
[0007] The reactor may be operated at a temperature from 300° C. to 425° C. The reactor may be operated at a temperature from 315° C. to 400° C. The reactor may be operated at a pressure from 0.5 psig to 100 psig. The reactor may be operated at a pressure from 15 psig to 50 psig.
[0008] The gas hourly space velocity (GHSV) of the product stream is 500h -1 ~30000h -1 The GHSV of the product stream can be calculated as follows: -1 ~150000h -1 The GHSV of the product stream can be 500h -1 ~4000h-1 It can be said that:
[0009] The catalyst may comprise one or more catalysts selected from the group consisting of: i) a catalyst of the formula: Mo a V b Te c Nb d Pd e O f (wherein a, b, c, d, e, and f are the relative atomic weights of the elements Mo, V, Te, Nb, Pd, and O, respectively; a=1, b=0.01-1.0, c=0.01-1.0, d=0.01-1.0, 0.00≦e≦0.10, and f is a number that satisfies the valence state of the catalyst); ii) a catalyst of the formula: Mo a E k G l O f (wherein E is selected from the group consisting of Ba, Ca, Cr, Mn, Nb, Ta, Ti, Te, V, W, and mixtures thereof; G is selected from the group consisting of Bi, Ce, Co, Cu, Fe, K, Mg, V, Ni, P, Pb, Sb, Si, Sn, Ti, U, and mixtures thereof; a=1; k is 0-2; l=0-2, with the proviso that the sum of l for Co, Ni, Fe, and mixtures thereof is less than 0.5; and f is a number satisfying the valence state of the catalyst); iii) a catalyst of the formula: V m Mo n Nb o Te p Me q O f (wherein Me is a metal selected from the group consisting of Ta, Ti, W, Hf, Zr, Sb, and mixtures thereof; m is 0.1 to 3; n is 0.5 to 1.5; o is 0.001 to 3; p is 0.001 to 5; q is 0 to 2; and f is a number satisfying the valence state of the catalyst); and iv) a catalyst of the formula: Mo a V r X sY t Z u M v O f (wherein X is at least one of Nb and Ta; Y is at least one of Sb and Ni; Z is at least one of Te, Ga, Pd, W, Bi and Al; M is at least one of Fe, Co, Cu, Cr, Ti, Ce, Zr, Mn, Pb, Mg, Sn, Pt, Si, La, K, Ag and In; a=1.0 (normalized); r=0.05-1.0; s=0.001-1.0; t=0.001-1.0; u=0.001-0.5; v=0.001-0.3; f is a number satisfying the valence state of the catalyst).
[0010] The liquid stream may contain less than 10% by volume of acetic acid.
[0011] The selectivity to ethylene can be 75% to 99%. 2 The selectivity to CO can be 10% or less. The selectivity to CO can be 11% or less. The feed stream to the reactor is 2-3% by volume of acetic acid, 29-57% by volume of H 2 O, 16-26% by volume C 2 H 6 , 8 to 14 volume percent O 2 , and 17-28% by volume of CO 2 may include.
[0012] The makeup stream and the gaseous component stream can be contacted with a second oxidative dehydrogenation catalyst under oxidative dehydrogenation conditions in a second oxidative dehydrogenation reactor to produce a second product stream. The second product stream can include ethylene, unreacted ethane, water, and acetic acid. In some cases, the second product stream includes carbon monoxide, carbon dioxide, or both. The total concentration of acetic acid in the makeup stream and the gaseous component stream entering (together) the second oxidative dehydrogenation reactor can be 0.5-10% by volume.
[0013] The process may include a second downstream separation process. The second product stream may be separated into a second liquid stream and a second gaseous component stream, for example, by a second downstream separation process. The second liquid stream may include water and acetic acid. The second gaseous component stream may include ethylene and unreacted ethane. In some cases, the second gaseous component stream may include carbon monoxide, carbon dioxide, or both. At least a portion of the second liquid stream may be recycled to the reactor as part of the feed stream. The second liquid stream may be diluted with water to achieve a desired amount of acetic acid in the feed stream. The split fraction of the second liquid stream may be adjusted to achieve a desired amount of acetic acid in the feed stream. At least a portion of the second liquid stream may be recycled to the second reactor as part of the make-up stream. The second liquid stream may be diluted with water to achieve a desired amount of acetic acid in the make-up stream. The split fraction of the second liquid stream may be adjusted to achieve a desired amount of acetic acid in the make-up stream.
[0014] It is understood that the disclosure described herein is not limited to the examples summarized in this Summary, as various other aspects are described and illustrated herein. [Brief description of the drawings]
[0015] [Figure 1] FIG. 1 is a schematic diagram of an exemplary system including an oxidative dehydrogenation reactor. [Figure 2A] FIG. 2 is a schematic diagram of an exemplary system including two embodiments of the oxidative dehydrogenation reactor of FIG. [Figure 2B] FIG. 2 is a schematic diagram of an exemplary system including two embodiments of the oxidative dehydrogenation reactor of FIG. [Figure 3A] 1 is a flow chart of an exemplary method for an oxidative dehydrogenation process. [Figure 3B] 1 is a flow chart of an exemplary method for an oxidative dehydrogenation process. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0016] In order to provide a general understanding of the principles of the process disclosed herein, some exemplary embodiments of the present disclosure are described. Those skilled in the art will understand that the processes described herein are non-limiting exemplary embodiments, and the scope of the various examples of the present disclosure is defined only by the claims. Features illustrated or described in connection with one exemplary embodiment can be combined with features of other embodiments. Such modifications and variations are intended to be included within the scope of the present disclosure.
[0017] Except in the operating examples or where otherwise indicated, all numbers or expressions referring to quantities of ingredients, reaction conditions, and the like used in the specification and claims should be understood to be modified in all instances by the term "about." Accordingly, unless indicated to the contrary, the numerical parameters set forth in the following specification and appended claims are approximations that may vary depending on the properties desired to be obtained by the present disclosure. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter should be construed at least in light of the number of reported significant digits and by applying ordinary rounding techniques.
[0018] <Definition> As used herein, the term "oxidative dehydrogenation catalyst" refers to a catalyst used in the oxidative dehydrogenation of ethane to ethylene. The most frequently described oxidative dehydrogenation catalysts are mixed metal oxide catalysts. Use of the term "catalyst" is synonymous with oxidative dehydrogenation catalyst, unless otherwise specified. Furthermore, reference to an oxidative dehydrogenation catalyst can include a mixture of one or more oxidative dehydrogenation catalysts, each having a different chemical composition, and which may be supported or unsupported.
[0019] As used herein, the term "feed stream" refers to a gas stream that is initially contacted with an oxidative dehydrogenation catalyst. A feed stream in a typical oxidative dehydrogenation process includes the components ethane and oxygen, and optionally one or more inert diluents. In some examples, the component contributions to the feed stream are described as the "feed composition," and the volume percentage (vol%) of one or more components is given. In some examples, the components in the feed stream, particularly oxygen and ethane, are described using volume percentage (vol%) ratios.
[0020] As used herein, the term "inert diluent" refers to a gaseous composition used to dilute ethane and oxygen. The inert diluent should be present primarily in gaseous form under oxidative dehydrogenation conditions and should not increase the flammability of ethane. Common inert diluents known to those skilled in the art for oxidative dehydrogenation include, but are not limited to, nitrogen, carbon dioxide, steam, and mixtures thereof.
[0021] As used herein, the term "under oxidative dehydrogenation conditions" refers to process conditions that permit the conversion of ethane to ethylene by contact with an oxidative dehydrogenation catalyst in the presence of oxygen, including, but not limited to, the temperature, pressure, and flow rate of the feed stream. The oxidative dehydrogenation conditions can be adjusted by one of skill in the art in an attempt to optimize the conditions for a particular catalyst, or whether or not an inert diluent is used in the feed stream.
[0022] As used herein, unless otherwise specified, the term "selectivity" refers to the selectivity of carbon atoms based on the extent to which ethane is consumed. The selectivity expressed as a percentage can be calculated according to the following formula: TIFF0007684332000001.tif69155 where X is the product being evaluated and the net mass flow is calculated by the product X or converted C 2 H 6refers to the flow rate in g / min (g / min) of X or converted C in the product stream 2 H 6 From the mass flow rate of the feed stream, component X or converted C 2 H 6 (Equivalent) is the amount of X in moles (mol) that reacts completely with or is produced by one mole of ethane minus the mass flow rate of X. If the total selectivity of all products resulting from the conversion of ethane does not equal 100%, the selectivity is normalized to 100%. The normalization for each product can be calculated by dividing the selectivity of that product by the sum of the selectivities of all carbon atom products.
[0023] As used herein, the terms "about" or "approximately" may allow for some variation in value or range, for example, within 10%, within 5%, or within 1% of the stated limits of the stated value or range.
[0024] Embodiments of the present technology are directed to a process for the oxidative dehydrogenation (ODH) of ethane to ethylene under conditions that limit the production of acetic acid. Typically, oxidative dehydrogenation of ethane involves feeding a gas stream containing ethane and oxygen (and optionally an inert diluent) into an oxidative dehydrogenation reactor that contains an oxidative dehydrogenation catalyst. When the ethane and oxygen contact the oxidative dehydrogenation catalyst, ethylene and various by-products (including acetic acid) are formed. The production of by-products such as acetic acid requires costly downstream separation processes to separate the acetic acid from the desired product, ethylene. It is an objective of the present disclosure to limit the extent to which acetic acid is produced in the oxidative dehydrogenation of ethane by including acetic acid along with the ethane and oxygen in the initial feed to the process. Reducing the amount of acetic acid produced can reduce the complexity and scale of downstream separation infrastructure to separate the acetic acid.
[0025] <ODHプロセス> Provided in this disclosure is a process for the oxidative dehydrogenation of ethane. The process includes contacting a feed stream comprising ethane, oxygen, acetic acid, and optionally an inert diluent with an oxidative dehydrogenation catalyst under oxidative dehydrogenation conditions in an oxidative dehydrogenation reactor to produce a product stream comprising ethylene, unreacted ethane, water, acetic acid, and optionally one or both of carbon dioxide and carbon monoxide. The contribution of acetic acid in the feed stream is between 0.5% and 10% by volume of the feed stream. The oxidative dehydrogenation process can be carried out in the system 100 of FIG. 1.
[0026] <Supply composition> The present disclosure, in one aspect, seeks to limit the production of acetic acid in an ethane oxidative dehydrogenation process by including acetic acid in the feed stream 101. Depending on the process conditions and the nature of the oxidative dehydrogenation catalyst, the selectivity of acetic acid when using a conventional feed stream without acetic acid varies widely, but an experienced operator should be able to limit the selectivity of acetic acid to less than 10% of the converted ethane. The inclusion of acetic acid in the feed stream 101 can reduce the selectivity to acetic acid. It has been found that the formation of acetic acid is partially or completely suppressed by including 0.5% to 10% by volume of acetic acid in the feed stream 101. Furthermore, it has been found that negative selectivity to acetic acid is possible, where the amount of acetic acid in the product stream 103 is reduced compared to the amount of acetic acid in the feed stream 101. In some embodiments, the amount of acetic acid in the feed stream 101 is between 1% and 10% by volume, or between 2% and 5% by volume. In some embodiments, the amount of acetic acid in feed stream 101 is about 0.5%, about 1%, about 1.5%, about 2%, about 2.5%, about 3%, about 3.5%, about 4%, about 4.5%, about 5%, about 6%, about 7%, about 8%, about 9%, or about 10% by volume. In some embodiments, the amount of acetic acid in feed stream 101 is about 3% by volume.
[0027] The process of oxidative dehydrogenation of ethane is within the skill of one of ordinary skill in the art. The feed is preferably free of O2, which falls outside the flammable limits to prevent process upsets. 2 :C 2 H 6 The ratio allows the user to determine how much inert diluent, such as carbon dioxide or water (in steam form), or a mixture thereof, can be added to ensure the mixture remains outside the flammability limits. Although a feed stream 101 without an inert diluent is possible, the feed stream must have very low or very high O2 content to remain outside the flammability limits. 2 :C 2 H 6 Note that this is not ideal since it requires a ratio of 100 to 1500. The use of steam as an inert diluent offers the advantage of easier separation from the gaseous target product, but is also known to increase the selectivity to acetic acid. The inclusion of acetic acid in the feed stream 101 allows the use of steam as an inert diluent, allowing for easier separation from the target product while minimizing or even avoiding the increase in selectivity to acetic acid.
[0028] In some embodiments, O in the feed stream 101 2 :C 2 H 6 The volume ratio is between 0.2:1 and 1:1, between 0.3:1 and 0.8:1, or between 0.4:1 and 0.7:1. In some embodiments, the contribution of ethane in feed stream 101 is between 10% and 80% by volume, between 12% and 50% by volume, or between 15% and 30% by volume. In some embodiments, the contribution of oxygen in feed stream 101 is between 1% and 30% by volume, between 5% and 25% by volume, or between 8% and 18% by volume.
[0029] The components of the feed stream 101 may be premixed prior to introduction into the oxidative dehydrogenation reactor 110, or the components may be added separately to the oxidative dehydrogenation reactor 110. It is also contemplated that some components may be premixed and some components may be fed separately to the oxidative dehydrogenation reactor 110. For example, ethane may be saturated with an inert diluent and introduced into the reactor 110, and oxygen may be added separately. The ethane saturated with the inert diluent may then be combined with oxygen to form the feed stream 101 that contacts the catalyst. The described process also contemplates the staged addition of components to the gas stream, with each stage contributing a different component to the gas stream, with the feed stream 101 being formed after the last component is added. In the process of oxidative dehydrogenation described herein, the feed stream 101 introduced into the oxidative dehydrogenation reactor 110 comprises acetic acid in addition to ethane, oxygen, and optionally one or more inert diluents.
[0030] Acetic acid may be added separately to the oxidative dehydrogenation reactor 110 or may be mixed with one or more of ethane, oxygen, or an inert diluent. Acetic acid may be added as glacial acetic acid or in diluted form to provide an amount of acetic acid ranging from about 0.5 to 10.0 volume percent of the feed stream 101. The use of dilute aqueous acetic acid is ideal, since water is well known to be suitable for use as an inert diluent in oxidative dehydrogenation processes.
[0031] The feed stream 101 may be heated to a temperature at least above the dew point of the feed stream 101 to ensure that all components are gaseous prior to contact with the oxidative dehydrogenation catalyst. This is particularly relevant when water is used as an inert diluent, since the oxidative dehydrogenation catalyst may be sensitive to liquid water but not steam. The components may be heated separately or as a complete mixture. In some embodiments, the temperature of the feed stream 101 is at least 150° C., at least 225° C., or at least 300° C.
[0032] The temperature of the feed stream 101, or the individual components, upon entering the reactor 110 may be below 150° C., provided that the temperature is raised above the dew point before contacting the catalyst. In this example, a portion of the reactor 110 may be used to heat the feed stream components to the desired temperature. This portion of the catalyst bed may be filled with a thermally conductive non-catalytic material.
[0033] <Reactor> Any of the known reactor types applicable to the oxidative dehydrogenation of hydrocarbons can be used in the present technology. Particularly suitable for use are conventional fixed bed reactors. In a typical fixed bed reactor, reactants are introduced into the reactor at one end, flow through an immobilized catalyst, and products are formed and exit the reactor at the other end. The design of a suitable fixed bed reactor can be made according to the known technology for this type of reactor. Those skilled in the art know what features are required in terms of shape and dimensions, reactant input, product removal, temperature and pressure control, and means for immobilizing the catalyst. In some embodiments, the oxidative dehydrogenation reactor 110 comprises a fixed bed reactor.
[0034] Fluidized bed reactors can also be used. These types of reactors are well known. Typically, the catalyst is supported by a porous structure or distribution plate located near the bottom end of the reactor, and the reactants flow at a velocity sufficient to fluidize the bed (e.g., the catalyst rises and begins to swirl fluidly). The reactants are converted to products upon contact with the fluidized catalyst and are then removed from the top of the reactor. Design considerations include reactor and distribution plate geometry, inlets and outlets, and temperature and pressure control, all of which are within the knowledge of one of ordinary skill in the art. In some embodiments, the oxidative dehydrogenation reactor 110 comprises a fluidized bed reactor.
[0035] Various tools commonly used in chemical reactors can be used, such as flow meters, compressors, valves, sensors for measuring parameters such as temperature and pressure, etc. A person skilled in the art would be expected to include these components as required for operation or as required to comply with legal obligations related to safety regulations.
[0036] <Process conditions> Use of the oxidative dehydrogenation reactor 110 to conduct an ethane oxidative dehydrogenation process consistent with the present disclosure is within the knowledge of one of ordinary skill in the art. Operators may vary process conditions along with feed composition to optimize product selectivity, conversion, and / or yield.
[0037] It is well known that a catalyst bed may have a temperature profile or gradient that may vary depending on the reactor type, process conditions, and catalyst composition. It is also well known in the art to measure or estimate the temperature of a catalyst bed, including measuring the temperature at a single point or at multiple points in the catalyst bed. The temperature can be measured at a single point if the temperature fluctuation in the catalyst bed is minimal and in the range of 25°C or less, preferably 10°C or less. Preferably, the catalyst temperature is calculated using three or more points in the catalyst bed and using the weight average catalyst bed temperature. In some embodiments, the oxidative dehydrogenation of ethane may be carried out at a temperature of 300°C to 450°C, 315°C to 425°C, or 330°C to 400°C. In some embodiments, the oxidative dehydrogenation of ethane may be carried out at a temperature of about 300°C, about 315°C, about 330°C, about 400°C, about 425°C, or about 450°C.
[0038] The operating pressure may also be controlled by the operator, including the inlet pressure at which the feed stream is introduced into the oxidative dehydrogenation reactor. The inlet pressure will be higher than the outlet pressure due to the pressure drop across the length of the catalyst bed. The pressures listed are the inlet pressures. In some embodiments, the oxidative dehydrogenation of ethane may be carried out at a pressure of 0.5 to 100 psig (3.447 to 689.47 kPag), or 15 to 50 psig (103.4 to 344.73 kPag). In some embodiments, the oxidative dehydrogenation of ethane may be carried out at a pressure of about 0.5 psig, about 10 psig, about 15 psig, about 20 psig, about 30 psig, about 50 psig, about 75 psig, or about 100 psig.
[0039] In some embodiments, the residence time of ethane in reactor 110 is between 0.002 and 30 seconds, or between 1 and 10 seconds. In some embodiments, the residence time of ethane in reactor 110 is about 0.002 seconds, about 1 second, about 2 seconds, about 3 seconds, about 4 seconds, about 5 seconds, about 6 seconds, about 7 seconds, about 8 seconds, about 9 seconds, about 10 seconds, about 15 seconds, about 20 seconds, about 25 seconds, or about 30 seconds. The flow of reactants and inert diluents can be described in many ways known in the art. Typically, the flow is described and measured in terms of the volume of all feed gases (reactants and diluents) passing through the volume of active catalyst bed per hour, or the gas hourly space velocity (GHSV). In some embodiments, the GHSV is between 500 and 30,000 h -1 , 1000h -1 ~20000h -1 , 1500h -1 ~10000h -1 , or 2000h -1 ~10000h -1 In some embodiments, the GHSV is about 500 h -1 , about 1000h -1 , about 1500h -1 , about 2000h -1 , about 3000h -1 , about 4000h -1 , about 5000h -1 , about 500h -1 , 6000h -1, about 7000h -1 , about 8000h -1 , about 9000h -1 , about 10000h -1 , about 15000h -1 , about 20000h -1 , about 25000h -1 , or about 30,000h -1 It is.
[0040] Flow rate can also be measured as weight hourly space velocity (WHSV), which is the flow of gas by weight, rather than volume, per weight of active catalyst per hour. In calculating WHSV, the weight of gas may include only reactants, but may also include diluents added to the gas mixture. In some embodiments, the WHSV, including the weight of diluents, is calculated as 0.5 h -1 ~50h -1 , 1.0~25.0h -1 , or 2.0 to 10.0 hours -1 In some embodiments, the WHSV, including the weight of the diluent, is about 0.5 h -1 , about 1.0h -1 , about 1.5h -1 , about 2.0h -1 , about 3.0h -1 , about 4.0h -1 , about 5.0h -1 , about 6.0h -1 , about 7.0h -1 , about 8.0h -1 , about 9.0h -1 , about 10h -1 , about 15h -1 , about 20h -1 , about 25h -1 , about 30h -1 , about 40h -1 , or about 50 hours -1 It is.
[0041] The flow of the feed stream 101 through the reactor 110 can also be described as the linear velocity of the feed stream (cm / s), which is defined in the art as the flow rate of the feed stream 101 / cross-sectional area of the reactor 110 / void fraction of the catalyst bed. Flow rate generally refers to the sum of the flow rates of all gases entering the reactor 110, measured at the point where the oxygen and alkane first contact the catalyst, at the temperature and pressure at that time. The cross-section of the reactor 110 is also measured at the inlet of the catalyst bed. The void fraction of the catalyst bed is defined as the volume of the voids in the catalyst bed / total volume of the catalyst bed. The void volume refers to the voids between the catalyst particles, not including the volume of the pores inside the catalyst particles. In some embodiments, the linear velocity is between 5 cm / s and 1500 cm / s, between 10 cm / s and 500 cm / s, or between 25 cm / s and 350 cm / s. In some embodiments, the linear velocity is about 5 cm / s, about 10 cm / s, about 15 cm / s, about 20 cm / s, about 25 cm / s, about 50 cm / s, about 75 cm / s, about 100 cm / s, about 150 cm / s, about 200 cm / s, about 250 cm / s, about 300 cm / s, about 350 cm / s, about 400 cm / s, about 500 cm / s, about 600 cm / s, about 700 cm / s, about 800 cm / s, about 900 cm / s, about 1000 cm / s, about 1250 cm / s, or about 1500 cm / s. In some embodiments, the space-time yield (productivity) of ethylene (g / hr of ethylene per kg of catalyst) is at least 900 h -1 , or at least 1500h -1 In some embodiments, when the temperature is between 350° C. and 400° C., the space-time yield (productivity) of ethylene is g / hr of ethylene per kg of catalyst and is at least 3500 h -1 It should be noted that the increase in catalyst productivity with increasing temperature is usually accompanied by a decrease in ethylene selectivity.
[0042] Optimization or adjustment of process conditions can affect ethane conversion and corresponding selectivity, including selectivity to ethylene and acetic acid. In some embodiments, the process has a selectivity to ethylene of at least 60%, at least 75%, or at least 90%. In some embodiments, the conversion of ethane is at least 25%, at least 40%, at least 50%, at least 60%, or at least 70%.
[0043] <Catalyst> There are many known catalysts that can be used for the oxidative dehydrogenation of ethane. Mixed metal oxides containing molybdenum and vanadium are particularly suitable for implementation in the catalyst. Typically, the oxidative dehydrogenation catalyst comprises a mixed metal oxide catalyst selected from the group consisting of: i) a catalyst of the formula: Mo a V b Te c Nb d Pd e O f (wherein a, b, c, d, e, and f are the relative atomic weights of the elements Mo, V, Te, Nb, Pd, and O, respectively; a=1, b=0.01 to 1.0 (preferably 0.1 to 0.4), c=0.01 to 1.0 (preferably 0.1 to 0.3), d=0.01 to 1.0 (preferably 0.1 to 0.3), 0.00≦e≦0.10 (preferably e is 0.03 to 0.1), and f is a number satisfying the valence state of the catalyst); ii) a catalyst of the formula: Mo a E k G l O f (wherein E is selected from the group consisting of Ba, Ca, Cr, Mn, Nb, Ta, Ti, Te, V, W, and mixtures thereof; G is selected from the group consisting of Bi, Ce, Co, Cu, Fe, K, Mg, V, Ni, P, Pb, Sb, Si, Sn, Ti, U, and mixtures thereof; a=1; k is 0-2 (preferably 0.2-0.6); l=0-2 (preferably 0.2-0.6), with the proviso that the total value of l for Co, Ni, Fe, and mixtures thereof is less than 0.5; and f is a number satisfying the valence state of the catalyst); iii) a catalyst of the formula: V m Mo n Nb o Te p Me q O f wherein Me is a metal selected from the group consisting of Ta, Ti, W, Hf, Zr, Sb, and mixtures thereof; m is 0.1 to 3 (in some cases, 0.5 to 1); n is 0.5 to 1.5 (in some cases, 0.5 to 1); o is 0.001 to 3 (in some cases, 0.01 to 1); p is 0.001 to 5 (in some cases, 0.01 to 1); q is 0 to 2 (in some cases, 0.01 to 1); and f is a number that satisfies the valence states of the catalyst; and iv) a catalyst of the formula: Mo a V r X st Z u M v O f where X is at least one of Nb and Ta; Z is at least one of Te, Ga, Pd, W, Bi, and Al (in some embodiments Te, Pd, W, and B); and M is at least one of Fe, Co, Cu, Cr, Ti, Ce, Zr, Mn, Pb, Mg, Sn, Pt, Si, La, K, Ag, and In (in some embodiments Fe, Co, Cu, Cr, Ti, Ce, Zr, Mn, Mg, Sn, Pt, La, Ag, and In). with; a=1.0 (normalized); r=0.05-1.0 (0.05-0.5 in some embodiments); s=0.001-1.0 (0.01-0.4 in some embodiments); t=0.001-1.0 (0.01-0.4 in some embodiments); u=0.001-0.5 (0.01-0.03 in some embodiments); v=0.001-0.3 (0.01-0.2 in some embodiments); and f is a number satisfying the valence state of the catalyst.
[0044] In some embodiments, the catalyst is a catalyst comprising molybdenum, vanadium, tellurium, niobium, and oxygen, wherein the molar ratio of molybdenum to vanadium is from 1:0.12 to 1:0.49, the molar ratio of molybdenum to tellurium is from 1:0.01 to 1:0.30, and the molar ratio of molybdenum to niobium is from 1:0.01 to 1:0.30, and the oxygen is present in an amount to at least satisfy the valences of the metal oxides present.
[0045] In some embodiments, the catalyst is a catalyst comprising molybdenum, vanadium, tellurium, niobium, and oxygen, wherein the molar ratio of molybdenum to vanadium is from 1:0.20 to 1:0.45, the molar ratio of molybdenum to tellurium is from 1:0.05 to 1:0.25, and the molar ratio of molybdenum to niobium is from 1:0.05 to 1:0.25, and the oxygen is present in an amount to at least satisfy the valences of the metal oxides present.
[0046] In some embodiments, the catalyst is a catalyst comprising molybdenum, vanadium, tellurium, niobium, and oxygen, wherein the molar ratio of molybdenum to vanadium is from 1:0.25 to 1:0.40, the molar ratio of molybdenum to tellurium is from 1:0.10 to 1:0.20, and the molar ratio of molybdenum to niobium is from 1:0.10 to 1:0.20, and the oxygen is present in an amount to at least satisfy the valences of the metal oxides present.
[0047] In some embodiments, the catalyst is a catalyst comprising molybdenum, vanadium, tellurium, niobium, and oxygen, wherein the molar ratio of molybdenum to vanadium is from 1:0.30 to 1:0.35, the molar ratio of molybdenum to tellurium is from 1:0.13 to 1:0.17, and the molar ratio of molybdenum to niobium is from 1:0.12 to 1:0.14, and the oxygen is present in an amount to at least satisfy the valences of the metal oxides present.
[0048] <Recycling of acetic acid> In another aspect of the disclosure, the acetic acid produced in the ethane oxidative dehydrogenation process can be recovered and recycled for addition to the feed stream. The product stream can undergo processing steps to isolate the desired product ethylene. The first processing step ideally involves removing acetic acid and water from the product stream, and typically involves cooling the product stream to condense most of the acetic acid and steam, which can then be easily separated from the gases as liquid stream 107, as has been described in the art. The gaseous components form part of gaseous components stream 105, which includes ethane, ethylene, and carbon dioxide, and may then be subjected to further processing steps, which may include separating carbon dioxide from ethane and ethylene, followed by separating ethane from ethylene. The separated ethane can be recycled to form part of the feed stream 101. The cooling and separation of acetic acid from the product stream 103 can be non-diluted, for example, by passing the product stream 103 through a heat exchanger. The cooling and separation of acetic acid from product stream 103 can be diluted, for example, by introducing product stream 103 into a quench tower 118 and adding cold water to product stream 103. A combination of methods can also be used. Regardless of which method is used for separation (diluted, undiluted, or a combination of both), liquid stream 107 containing aqueous acetic acid can be recycled for use in feed stream 101.
[0049] The concentration of acetic acid in liquid stream 107 may vary depending on the original concentration in product stream 103 and what method or combination of methods is used for separation. For example, dilution cooling using quench tower 118 results in a much lower concentration of acetic acid due to the addition of water during quenching. One skilled in the art would be able to determine the concentration of acetic acid in liquid stream 107 and then estimate how much of liquid stream 107 can be recycled to feed stream 101 to provide 0.5-10% acetic acid by volume. If not all of liquid stream 107 is required to provide the desired % by volume of acetic acid in feed stream 101, a split fraction of liquid stream 107 can be recycled to add to feed stream 101 and the remaining liquid stream can be sent for further processing, such as upgrading to glacial acetic acid, using methods known in the art. If the concentration of acetic acid in liquid stream 107 is insufficient to provide enough acetic acid to provide 0.5%-10% by volume of acetic acid in the feed stream, an additional source of acetic acid can be utilized to make up the difference. The gaseous portions of streams 101, 103, and 105 have compositions that are outside their respective flammability limits.
[0050] In some embodiments, the oxidative dehydrogenation of hydrocarbons is carried out using multiple implementations of the ODH reactor 110, examples of which are shown in FIGS. 2A and 2B. The reactors can be in a parallel flow configuration, a series flow configuration, or a combination thereof. As shown in FIG. 2A, the oxidative dehydrogenation of hydrocarbons can be carried out by a system 200a including two oxidative dehydrogenation reactors 210A, 210B in a series flow configuration. Each of the ODH reactors 210A and 210B is an implementation of the ODH reactor 110 described above. The feed stream 101 flows to the ODH reactor 210A and contacts the catalyst in the ODH reactor 210A.
[0051] Product stream 203a flows from ODH reactor 210A to quench tower 218A where acetic acid is separated from product stream 203a. Liquid stream 207a containing acetic acid exits quench tower 218A. Gaseous component stream 205a flows from quench tower 218A to ODH reactor 210B and contacts the catalyst therein. In some embodiments, makeup stream 251 flows to ODH reactor 210B and contacts the catalyst therein. In some embodiments, makeup stream 251 has the same composition as feed stream 101. In some embodiments, makeup stream 251 has the same components as feed stream 101, although the amounts of each component may differ from those of feed stream 101. In some embodiments, the composition and flow rate of makeup stream 251 is determined so that the total flow entering ODH reactor 210B (gaseous component stream 205a plus makeup stream 251) has the same composition as feed stream 101. The components of gaseous component stream 205a and makeup stream 251 may be premixed prior to introduction into ODH reactor 210B, or the components may be added separately to ODH reactor 210B. It is also contemplated that some components may be premixed and some components may be fed separately to ODH reactor 210B.
[0052] Product stream 203b flows from ODH reactor 210B to quench tower 218B where acetic acid is separated from product stream 203b. Liquid stream 207b containing acetic acid exits quench tower 218B. Gaseous component stream 205b exits quench tower 210B. The compositions of feed stream 101 and make-up stream 251 can be adjusted so that the overall streams entering each of ODH reactors 210A, 210B have acetic acid contents in the range of 0.5% to 10% by volume. The compositions of feed stream 101 and make-up stream 251 can be adjusted so that the gaseous portions of streams 101, 203a, 203b, 205a, 205b, and 251 have compositions outside their respective flammability limits. In some embodiments, the composition of feed stream 101, the operating temperature of ODH reactor 210A, the operating pressure of ODH reactor 210A, the composition of make-up stream 251, the amount of gaseous component stream 205a split off and diverted to ODH reactor 210B, or a combination thereof, are adjusted such that the overall ethylene content of the streams entering ODH reactor 210B is 20 wt% or less.
[0053] In some embodiments, a portion of gaseous component stream 205a is split off and combined with gaseous component stream 205b, bypassing ODH reactor 210B and quench tower 218B. Gaseous component stream 205b (and in some cases the portion of gaseous component stream 205a combined with 205b), which includes ethane, ethylene, and carbon dioxide, may then be subjected to further processing steps, which may include separating carbon dioxide from ethane and ethylene, followed by separating ethane from ethylene. In some embodiments, liquid stream 207a, liquid stream 207b, or both liquid streams 207a, 207b are recycled to form at least a portion of feed stream 101. In some embodiments, liquid stream 207a, liquid stream 207b, or both liquid streams 207a, 207b are recycled to form at least a portion of make-up stream 251.
[0054] The operating conditions (temperature and pressure) of the ODH reactors 210A, 210B can be adjusted to improve control of product distribution, increase net ethylene yield, reduce the amount of dilution gas used in the ODH process, or any combination thereof. For example, the upstream ODH reactor 210A can be operated at a lower temperature compared to the downstream ODH reactor 210B, at a higher temperature compared to the downstream ODH reactor 210B, or at the same temperature as the downstream ODH reactor 210B. For example, the upstream ODH reactor 210A can be operated at a lower pressure compared to the downstream ODH reactor 210B, at a higher pressure compared to the downstream ODH reactor 210B, or at the same pressure as the downstream ODH reactor 210B. In an embodiment where the upstream ODH reactor 210A is operated at a lower pressure (or the same pressure) compared to the downstream ODH reactor 210B, the system 200b can include an ejector 250, as shown in FIG. 2B. In such an embodiment, make-up stream 251 can be used as a motive fluid by ejector 250. Make-up stream 251 and gaseous component stream 205a mix as they flow through ejector 250, and the mixture flows from ejector 250 to ODH reactor 210B. The operating conditions of the motive fluid (make-up stream 251) to ejector 250 can be adjusted to meet the target operating conditions of ODH reactor 210B. Similarly, the operating conditions of feed stream 101 can be adjusted to meet the target operating conditions of ODH reactor 210A.
[0055] Referring to FIG. 3A, method 300a can be implemented for an oxidative dehydrogenation process. Method 300a can be implemented, for example, by any of systems 100, 200a, or 200b. In step 302, a feed stream (such as feed stream 101) is contacted with an oxidative dehydrogenation catalyst under oxidative dehydrogenation conditions in an oxidative dehydrogenation reactor (such as ODH reactor 110, 210A, or 210B). As previously described, feed stream 101 includes ethane, oxygen, and acetic acid. The concentration of acetic acid in feed stream 101 is 0.5-10% by volume of feed stream 101. In some cases, feed stream 101 includes additional components, such as an inert diluent. Contacting the feed stream 101 with an oxidative dehydrogenation catalyst under oxidative dehydrogenation conditions in the ODH reactors (110, 210A, 210B) produces a product stream (such as product stream 103, 203a, or 203b). As previously discussed, the product streams (103, 203a, 203b) include ethylene, unreacted ethane, water, and acetic acid. In some cases, the product streams (103, 203a, 203b) include additional components such as carbon monoxide, carbon dioxide, or both.
[0056] Referring to FIG. 3B, method 300b can be implemented for an oxidative dehydrogenation process. Method 300b can be implemented, for example, by either system 200a or 200b. Similar to method 300a, method 300b includes step 302. In step 304, product stream 203a is separated into a liquid stream (such as liquid stream 207a) and a gaseous component stream (such as gaseous component stream 205a). Step 304 can be implemented by a downstream separation process, such as quench tower 218A. In some embodiments, at least a portion of liquid stream 207a is recycled to ODH reactor 210A as part of feed stream 101.
[0057] In step 306, the make-up stream (e.g., make-up stream 251) and the gaseous component stream 205a are contacted with a second oxidative dehydrogenation catalyst under oxidative dehydrogenation conditions in a second oxidative dehydrogenation reactor (e.g., ODH reactor 210B). Contacting make-up stream 251 and the gaseous component stream 205a with the oxidative dehydrogenation catalyst under oxidative dehydrogenation conditions in ODH reactor 210B produces a second product stream (e.g., product stream 203b). As previously mentioned, product stream 203b includes ethylene, unreacted ethane, water, and acetic acid. In some cases, product stream 203b includes additional components such as carbon monoxide, carbon dioxide, or both. The total concentration of acetic acid in make-up stream 251 and gaseous component stream 205a entering (together) ODH reactor 210B is between 0.5 and 10% by volume. In step 308, product stream 203b is separated into a second liquid stream (such as liquid stream 207b) and a second gaseous component stream (such as gaseous component stream 205b). Step 308 can be performed by a second downstream separation process, such as quench tower 218B. In some embodiments, at least a portion of second liquid stream 207b is recycled to ODH reactor 210A as part of feed stream 101 or to second ODH reactor 210B as part of make-up stream 251. EXAMPLES
[0058] The following examples are merely illustrative of the subject matter of the present disclosure and are not intended to be limiting. Computational modeling of an ODH process was used to demonstrate the effect of adding acetic acid to the feed stream on the production of acetic acid. The modeling was based on experimental data produced using a catalyst containing molybdenum, vanadium, niobium, and tellurium. The model shows the effect of adding acetic acid to the feed stream under ODH process conditions at different temperatures, GHSVs, and feed compositions. For each process condition, a base case of 0% acetic acid by volume in the feed stream was compared to cases of 2%, 5%, and 10% acetic acid by volume in the feed stream.
[0059] Cases 1-5 are modeling examples, where each case represents a different process condition or feed composition, and was modeled by varying acetic acid in the feed stream to 0, 2, 5, and 10% by volume. The process conditions and feed compositions for each of Cases 1 through 5 are summarized in Table 1. The feed stream composition was O 2 Volume%, C 2 H 6 % by volume, and CO 2 Only volume percent is shown, the remainder being water and acetic acid added to make up a total of 100 volume percent (vol%). Table 2-1 summarizes the results, including ethylene and acetic acid selectivities (%) and ethane conversion (%), for 0, 2, 5, and 10 volume percent acetic acid added to the feed stream. Table 2-1 shows that for each volume percent (vol%) of acetic acid in the feed stream, the selectivity of acetic acid decreases compared to the absence of acetic acid in the feed stream. Results, including ethane conversion and ethylene, acetic acid, and carbon monoxide / carbon dioxide selectivities, are summarized in Table 2-1 for 0-2 volume percent acetic acid in the feed stream, and in Table 2-2 for an intermediate 0.5 volume percent acetic acid in the feed stream. Table 2-2 confirms the trend of decreasing selectivity of acetic acid in the product as the acetic acid content in the feed stream increases.
[0060] [Table 1]
[0061] [Table 2-1]
[0062] [Table 2-2]
[0063] A fixed bed reactor unit (FBRU) apparatus was used to conduct experiments involving the addition of acetic acid to a feed stream for the oxidative dehydrogenation of ethane. The FBRU apparatus consisted of two vertically oriented fixed bed tubular reactors in series, each a 1 inch OD, 34 inch long SS316L tube, wrapped in an electrically heated jacket and sealed with ceramic insulation. Each reactor contained an identical catalyst bed consisting of 1 part catalyst by weight to 2.14 parts DENSTONE® 99 (predominantly alpha alumina) powder. The total weight of catalyst in each reactor was calculated using the formula MoV 0.40 Nb 0.16 Te 0.14 of catalyst with O, with the relative atomic weight of each component indicated by a subscript relative to the relative amount of Mo of 1. The remainder of the reactor above and below the catalyst bed was packed with quartz powder fixed in place with glass wool to minimize the risk of catalyst bed movement during the experiment.
[0064] The temperature of each of the reactors was monitored using seven corresponding thermocouples present in each reactor, four of which were located within each catalyst bed. Temperature control was limited and subject to variation, especially at low temperatures. The temperatures reported in the examples represent the average of temperatures at eight different locations within the two catalyst beds. Both reactors were temperature controlled by controlling the pressure and boiling temperature of the water in the water jacket surrounding each reactor.
[0065] In the experimental setup, the inlet pressure was monitored using a pressure transducer immediately upstream of the first reactor. The product stream leaving the second reactor was passed through a condensing unit before being released to the air, indicating that the pressure at that point was approximately 0 psig.
[0066] Cases 6 and 7 are example experiments conducted using the FBRU equipment to demonstrate selectivity reduction to acetic acid in a practical physical setting. The process conditions and feed composition for each of Cases 6 and 7 are summarized in Table 3. The feed composition was O 2 , C 2 H 6 , CO 2, and acetic acid, the remainder includes the water needed to make up 100% by volume. The results, including ethylene and acetic acid selectivities (%), and ethane conversion (%), are summarized in Table 4. Table 4 shows that, similar to Modeling Cases 1-5, the addition of acetic acid to the feed stream decreases the selectivity for acetic acid.
[0067] [Table 3]
[0068] [Table 4]
[0069] Cases 8-11 used similar FBRU equipment. Reactor temperature, inlet pressure, GHSV, feed ethane volume fraction, and feed oxygen volume fraction were kept constant for Cases 8-11. Each of Cases 8-11 included two runs, the first run ("a") with both steam and acetic acid in the feed, and the second run ("b") with steam but no acetic acid in the feed. Reactor operating conditions and feed compositions, in vol.%, for Cases 8-11 are shown in Table 5. Catalyst activities for Cases 8-11 are shown in Table 6. The extent of change in catalyst activity and product distribution for Cases 8-11 when acetic acid is present in the feed ("a") compared to when acetic acid is absent in the feed ("b") are shown in Table 7.
[0070] The following summarizes the trends observed in Cases 8-11. The presence or absence of acetic acid in the feed did not appear to affect ethane conversion. Ethylene selectivity remained the same or increased when acetic acid was present in the feed ("a") compared to when acetic acid was not present in the feed ("b"). Carbon monoxide / carbon dioxide selectivity increased when acetic acid was present in the feed ("a") compared to when acetic acid was not present in the feed ("b"). Acetic acid selectivity was either decreased or completely suppressed when acetic acid was present in the feed ("a") compared to when acetic acid was not present in the feed ("b").
[0071] Compared to Case 8, Case 9 was carried out with the temperature increased to 359°C. Comparing Cases 8 and 9, it was found that the change in acetic acid selectivity with increasing temperature was negligible (Table 7), and that with increasing temperature, the selectivity of ethylene decreased while the selectivity of carbon monoxide / carbon dioxide increased (Table 7), and that with increasing temperature, the ethane conversion increased (Table 6). Compared to Case 8, Case 10 was carried out with the pressure increased. Comparing Cases 8 and 10, it was found that with increasing pressure, the degree of decrease in acetic acid selectivity decreased (Table 7), the degree of increase in ethylene selectivity was almost completely suppressed (Table 7), the degree of increase in carbon monoxide / carbon dioxide selectivity increased (Table 7), and that with increasing pressure, the ethane conversion increased (Table 6).
[0072] From these experiments, it can be inferred that a portion of the acetic acid (if present in the feed) is converted to ethylene, carbon monoxide, and / or carbon dioxide, and that lowering the temperature, pressure, or both can shift the selectivity toward ethylene over carbon monoxide / carbon dioxide. However, lowering the temperature, pressure, or both can also reduce ethane conversion. In some cases, lowering the operating pressure can have a greater impact on shifting the selectivity toward ethylene over carbon monoxide / carbon dioxide compared to lowering the operating temperature. By using multiple reactors (e.g., in systems 200a and 200b), the ODH process can be run at various combinations of operating temperature and pressure to meet both the target ethane conversion and the target ethylene selectivity.
[0073] [Table 5]
[0074] [Table 6]
[0075] [Table 7]
[0076] In case 12, three runs were performed varying the amounts of ethylene and ethane. The individual amounts of ethylene and ethane were varied, but the total amount of ethylene and ethane in the feed remained constant. The amounts of other components (water, oxygen, carbon monoxide) were kept constant. For all runs in case 12, the reactor inlet pressure was atmospheric and the WHSV was between 1.29 and 1.31 h. -1 , GHSV is 1318~1322h -1The reactor temperature was 339-342° C. The feed composition, ethane conversion, and product selectivity are shown in Table 8. The results of the Case 12 experiment show that increasing the ethylene composition from 11 to 28 weight percent (wt%) increases the selectivity to carbon monoxide and acetic acid, decreases the selectivity to ethylene, and there is no observable trend in ethane conversion.
[0077] [Table 8] [Industrial Applicability]
[0078] The present disclosure relates to a process for the oxidative dehydrogenation of ethane that is applicable to limit the amount of acetic acid produced by including it as part of the feedstock of the ODH process along with ethane and oxygen.
Claims
1. 1. A process for the oxidative dehydrogenation of ethane comprising the steps of: contacting a feed stream comprising ethane, oxygen, and acetic acid with an oxidative dehydrogenation catalyst under oxidative dehydrogenation conditions in an oxidative dehydrogenation reactor to produce a product stream comprising ethylene, unreacted ethane, water, and acetic acid; The above process, wherein the concentration of acetic acid in the feed stream is 0.5 to 10% by volume of the feed stream.
2. 2. The process of claim 1, wherein the concentration of acetic acid in the feed stream is from 2 to 5% by volume of the feed stream.
3. 2. The process of claim 1, wherein the concentration of acetic acid in the feed stream is greater than 2% by volume of the feed stream.
4. further comprising a downstream separation process; 4. The process of claim 1, wherein the product stream is separated into a liquid stream comprising water and acetic acid and a gaseous component stream comprising ethylene and unreacted ethane, and at least a portion of the liquid stream is recycled to the oxidative dehydrogenation reactor as part of the feed stream.
5. 5. The process of claim 4, wherein the liquid stream is diluted with water to achieve a desired amount of acetic acid in the feed stream.
6. 5. The process of claim 4, wherein the liquid stream split fraction is adjusted to achieve a desired amount of acetic acid in the feed stream.
7. the feed stream to the oxidative dehydrogenation reactor i) the acetic acid, ii) oxygen to ethane in a molar ratio of 0.5 to 0.7; and iii) H in a molar ratio such that the feed composition is outside the flammable limits 2 O and CO 2 The process according to any one of claims 1 to 6, comprising:
8. 8. The process of any one of claims 1 to 7, wherein the oxidative dehydrogenation reactor is operated at a temperature of from 300°C to 425°C.
9. The process of any one of claims 1 to 8, wherein the oxidative dehydrogenation reactor is operated at a temperature of from 315°C to 400°C.
10. 10. The process of any one of claims 1 to 9, wherein the oxidative dehydrogenation reactor is operated at a pressure of from 0.5 psig to 100 psig.
11. 10. The process of any one of claims 1 to 9, wherein the oxidative dehydrogenation reactor is operated at a pressure of from 15 psig to 50 psig.
12. The gas hourly space velocity of the product stream is 500 h -1 ~30000h -1 The process according to any one of claims 1 to 11, wherein
13. The gas hourly space velocity of the product stream is 1000 h -1 ~15000h -1 The process according to any one of claims 1 to 11, wherein
14. The gas hourly space velocity of the product stream is 500 h -1 ~4000h -1 The process according to any one of claims 1 to 11, wherein
15. The process of any one of claims 1 to 14, wherein the catalyst comprises one or more catalysts selected from the group consisting of: i) a catalyst of the formula: Mo a V b The c Nb d P$ e Oh f (wherein a, b, c, d, e, and f are the relative atomic weights of the elements Mo, V, Te, Nb, Pd, and O, respectively; a=1, b=0.01-1.0, c=0.01-1.0, d=0.01-1.0, 0.00≦e≦0.10, and f is a number that satisfies the valence state of the catalyst); ii) a catalyst of the formula: Mo a E k G l O f wherein E is selected from the group consisting of Ba, Ca, Cr, Mn, Nb, Ta, Ti, Te, V, W, and mixtures thereof; G is selected from the group consisting of Bi, Ce, Co, Cu, Fe, K, Mg, V, Ni, P, Pb, Sb, Si, Sn, Ti, U, and mixtures thereof; a=1; k is 0-2; l=0-2, with the proviso that the sum of l for Co, Ni, Fe, and mixtures thereof is less than 0.5; and f is a number satisfying the valence states of the catalyst; iii) a catalyst of the formula: V m Mo n Nb o The p Me q Oh f wherein Me is a metal selected from the group consisting of Ta, Ti, W, Hf, Zr, Sb and mixtures thereof; m is 0.1 to 3; n is 0.5 to 1.5; o is 0.001 to 3; p is 0.001 to 5; q is 0 to 2; and f is a number that satisfies the valence states of the catalyst; and iv) a catalyst of the formula: Mo a V r X s Y t Z u M v O f where X is at least one of Nb and Ta; Y is at least one of Sb and Ni; Z is at least one of Te, Ga, Pd, W, Bi and Al; M is at least one of Fe, Co, Cu, Cr, Ti, Ce, Zr, Mn, Pb, Mg, Sn, Pt, Si, La, K, Ag and In; a=1.0 (normalized); r=0.05-1.0; s=0.001-1.0; t=0.001-1.0; u=0.001-0.5; v=0.001-0.3; and f is a number that satisfies the valence states of the catalyst.
16. 5. The process of claim 4, wherein the liquid stream comprises less than 10% by volume of acetic acid.
17. The process of any one of claims 1 to 3, wherein the selectivity to ethylene is from 75% to 99%.
18. CO 2 The process of any one of claims 1 to 3, wherein the selectivity to is 10% or less.
19. The process of any one of claims 1 to 3, wherein the selectivity to CO is 11% or less.
20. The feed stream to the oxidative dehydrogenation reactor is 2-3 vol.% acetic acid, 29-57 vol.% H 2 O, 16 to 26 volume percent C 2 H 6 , 8 to 14 volume percent O 2 and 17-28% by volume CO 2 The process according to any one of claims 1 to 19, comprising:
21. contacting the make-up stream and the gaseous component stream with a second oxidative dehydrogenation catalyst under oxidative dehydrogenation conditions in a second oxidative dehydrogenation reactor to produce a second product stream comprising ethylene, unreacted ethane, water, and acetic acid; 5. The process of claim 4, wherein the total concentration of acetic acid in the make-up stream and the gaseous component stream entering the second oxidative dehydrogenation reactor is from 0.5 to 10 volume percent.
22. further comprising a second downstream separation process; 22. The process of claim 21, wherein the second product stream is separated into a second liquid stream comprising water and acetic acid and a second gaseous component stream comprising ethylene and unreacted ethane, and at least a portion of the second liquid stream is recycled to the oxidative dehydrogenation reactor as part of the feed stream or to the second oxidative dehydrogenation reactor as part of the make-up stream.
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