Gliding arc plasmatron reactor with reverse vortex for the conversion of hydrocarbon fuel into synthesis gas
09834442 · 2017-12-05
Assignee
Inventors
- Alexander Rabinovich (Cherry Hill, NJ, US)
- Michael Gallagher (Philadelphia, PA, US)
- Alexander Fridman (Philadelphia, PA)
- Anatoliy Polevich (Philadelphia, PA, US)
- Alexander F. Gutsol (San Ramon, CA, US)
Cpc classification
Y02P20/145
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C01B2203/0244
CHEMISTRY; METALLURGY
C01B2203/141
CHEMISTRY; METALLURGY
C01B2203/0255
CHEMISTRY; METALLURGY
C01B3/342
CHEMISTRY; METALLURGY
C10J3/721
CHEMISTRY; METALLURGY
B01J2219/0869
PERFORMING OPERATIONS; TRANSPORTING
B01J19/088
PERFORMING OPERATIONS; TRANSPORTING
C01B2203/142
CHEMISTRY; METALLURGY
B01J2219/0894
PERFORMING OPERATIONS; TRANSPORTING
International classification
C01B3/36
CHEMISTRY; METALLURGY
B01J19/08
PERFORMING OPERATIONS; TRANSPORTING
C01B3/34
CHEMISTRY; METALLURGY
Abstract
A reactor for reforming a liquid hydrocarbon fuel, and associated processes and systems, are described herein. In one example, a two stage process is disclosed in which a first reactor is coupled to a second stage reactor having a reaction volume greater than the first reactor. In the first reactor, the liquid hydrocarbon fuel is partially reformed and thereafter is inputted into the second stage reactor for complete partial oxidation. The reaction product is at last partially synthesis gas, a mixture of carbon monoxide, hydrogen, as well as other low hydrocarbons such as methane, ethylene, ethane, and acetylene. The low hydrocarbons can be reformed further in a solid oxide fuel cell. A portion of the gaseous, rotating contents of the second stage reactor may be input into the first reactor to help generate and sustain rotation within the first reactor.
Claims
1. A process for reforming a hydrocarbon fuel, comprising: inputting the hydrocarbon fuel and a first oxidizing gas into a first stage reactor, wherein the relative amounts of the hydrocarbon fuel and the first oxidizing gas provide a first oxygen to carbon (O/C) ratio; partially reforming using non-thermal plasma the hydrocarbon fuel into partially reformed hydrocarbon fuel; inputting the partially reformed hydrocarbon fuel and a second oxidizing gas into a second stage reactor having a reverse vortex flow, wherein the relative amounts of the partially reformed hydrocarbon fuel and the second oxidizing gas provide a second oxygen to carbon (O/C) ratio, the first O/C ratio being less than 1 and the second O/C ratio being greater than 1, such that the overall ratio of carbon in the hydrocarbon fuel and oxygen in the oxidizing gas is maintained near 1; and completing the reforming process of at least a portion of the partially reformed hydrocarbon fuel in the second stage reactor to produce an outlet stream.
2. The process of claim 1, further comprising directly coupling an outlet of the first stage reactor to an inlet of the second stage reactor.
3. The process of claim 1, wherein the first oxidizing gas and the second oxidizing gas are both at least partially comprised of gaseous oxygen.
4. The process of claim 1, wherein a flow direction of the second oxidizing gas is tangential to a center axis of the second stage reactor to impart a rotating force within the second stage reactor to generate the reverse vortex flow.
5. The process of claim 1, wherein the reverse vortex flow is configured to provide for an insulating zone between a reaction zone located near a center axis of the second stage reactor and an inner surface of the second stage reactor.
6. The process of claim 1, wherein the reverse vortex flow is configured to provide for a recirculation zone between a reaction zone located near a center axis of the second stage reactor and an inner surface of the second stage reactor.
7. The process of claim 1, wherein the first stage reactor is further configured to have a reverse vortex flow motion within the first stage reactor.
8. The process of claim 1, wherein the outlet stream comprises hydrogen and carbon monoxide.
9. The process of claim 8, wherein the outlet stream further comprises light hydrocarbons such as methane, acetylene, ethylene and ethane.
10. The process of claim 1, wherein the non-equilibrium plasma in the first stage reactor is generated by applying high voltage potential between a first electrode of the first stage reactor and a second electrode of the first stage reactor.
11. The process of claim 1, wherein the hydrocarbon fuel is liquid, gaseous or solid hydrocarbon fuel.
12. The process of claim 11, wherein the solid hydrocarbon fuel is biomass.
13. The process of claim 11, wherein the liquid hydrocarbon fuel is gasoline, diesel or jet propellant.
14. The process of claim 13, wherein the jet propellant is JP8 or JP5 fuel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing summary, as well as the following detailed description of the subject matter is better understood when read in conjunction with the appended drawings. For the purposes of illustration, there are shown in the drawings exemplary embodiments; however, these embodiments are not limited to the specific methods and instrumentalities disclosed. In the drawings:
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DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
(8) Certain specific details are set forth in the following description and figures to provide a thorough understanding of various embodiments of the subject matter. Certain well-known details often associated with computing and software technology are not set forth in the following disclosure to avoid unnecessarily obscuring the various embodiments of the subject matter. Further, those of ordinary skill in the relevant art will understand that they can practice other embodiments of the subject matter without one or more of the details described below. Finally, while various methods are described with reference to steps and sequences in the following disclosure, the description as such is for providing a clear implementation of embodiments of the subject matter, and the steps and sequences of steps should not be taken as required to practice this subject matter.
(9) A reactor configured to reform liquid, gaseous or solid hydrocarbon fuel and a process is provided for the production of synthesis gas. The reactor is configured to stimulate the process of partial oxidation or autothermal reforming through a plasma. In one configuration, a non-equilibrium or non-thermal plasma is used.
(10) Partial oxidation process has two primary stages: an exothermic stage of combustion and a slow endothermic stage of interaction of CO.sub.2 and H.sub.2O with gaseous hydrocarbons. The reaction rate of the first stage may vary depending upon the state of the reacting hydrocarbon. Thus, the residence time of the reactants in the reactor may be varied to maintain a consistent degree of conversion. On the second stage to increase H.sub.2 production the steam could be introduced. Partial oxidation and steam reforming reactions could be balanced to provide overall energy neutrality while also taking into account heat losses.
(11) The present invention may be understood more readily by reference to the following detailed description taken in connection with the accompanying figures and examples, which form a part of this disclosure. It is to be understood that this invention is not limited to the specific devices, methods, applications, conditions or parameters described and/or shown herein, and that the terminology used herein is for the purpose of describing particular embodiments by way of example only and is not intended to be limiting of the claimed invention.
(12) Also, as used in the specification including the appended claims, the singular forms “a,” “an,” and “the” include the plural, and reference to a particular numerical value includes at least that particular value, unless the context clearly dictates otherwise. The term “plurality”, as used herein, means more than one. When a range of values is expressed, another embodiment includes from the one particular value and/or to the other particular value. Similarly, when values are expressed as approximations, by use of the antecedent “about,” it will be understood that the particular value forms another embodiment. All ranges are inclusive and combinable.
(13) It is to be appreciated that certain features of the invention which are, for clarity, described herein in the context of separate embodiments, may also be provided in combination in a single embodiment. Conversely, various features of the invention that are, for brevity, described in the context of a single embodiment, may also be provided separately or in any subcombination. Further, references to values stated in ranges include each and every value within that range.
(14) The term “gliding arc” is used in the present subject matter as is understood by those skilled in the art. It should be understood that a plasma discharge in the present subject matter may be generated in various ways, for example, glow discharge. In a reactor implementing a glow discharge, a cathode current may be controlled mostly by the secondary electron emission, as occurs in glow discharge, instead of thermionic emission, as occurs in electrical arcs.
(15) In the present disclosed subject matter, a gliding arc discharge plasma may be used in two reactors to cause the partial oxidation of a hydrocarbon. For example, the first stage, or first reactor, may be used to evaporate some or all of the liquid fuel using a plasma and plasma supported flame while the chemical process of oxidation (or ignition) of the evaporated liquid may be initiated in the second reactor. A gliding arc discharge reactor is configured to cause a high-voltage electrical discharge to glide over the surface of one or more electrodes. The properties of the plasma discharge may be adjusted depending upon the configuration of the reactor. The reactor of the present example may be further configured to utilize a reverse-vortex flow pattern. Reverse vortex flow means that the vortex flow has axial motion initially from a swirl generator to a “closed” end of reaction chamber.
(16) Referring now to the drawings, wherein like reference numerals designate corresponding structure throughout the views, and referring in particular to
(17) In the present embodiment, nozzles 14a and 14b may be tangential nozzles that introduce input fluid 2 into reaction chamber 12 tangentially. This present embodiment is for illustrative purposes only, as the rotation may be caused by other means, such as baffles inside of reaction chamber 12. Further, in some embodiments, input fluid 2 may be introduced into reaction chamber 12 at or near sonic velocity having mostly the tangential component of the velocity vector. Input fluid 2, in the present example, may be an input fluid comprising solid hydrocarbons.
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(19) It should also be understood that, although the reactor 10 of
(20) In one embodiment, input fluid 2 may be an input stream of air or other gas and hydrocarbons. It should be understood that input fluid 2 may also have substances or compounds other than air and hydrocarbons. The present subject matter is not limited to input fluid 2 being a pure fluid input, but rather, discusses the partial oxidation of the hydrocarbon component of input fluid 2.
(21) Referring back to
(22) In the present embodiment, reactor 10 has input fluid 2 and two output streams, output stream 22 and output stream 24. Output stream 22 is preferably stream comprising synthesis gas, i.e. hydrogen and carbon monoxide, as well as other gases such as nitrogen if air is input into the reactor. Depending upon the reactions within reactor 10, output stream 24 may be composed of solid reaction products such as ash. It should be understood that output streams 22 and 24 may not be pure but may contain other compounds because of impurities in input fluid 2 or incomplete oxidation and/or separation of the solid reaction products from the gaseous reaction products in the chamber. For example, in output stream 22, ash may be present that may require the installation of one or more filters further downstream.
(23) Input fluid 2 is introduced to reaction chamber 12 via nozzles 14a, 14b, the outputs of which are preferably oriented tangential relative to wall 13 of reaction chamber 12, as shown by
(24) By introducing input fluid 2 in this manner, as discussed above, a rotational force is imparted upon the fluids in reaction chamber 12, thus causing a rotation of the fluids in reaction chamber 12 in a clockwise direction in this embodiment. Thus, the velocity at which input fluid 2 enters reaction chamber 12 effects the rotational speed of the contents in reaction chamber 12. It should be noted that the input direction may be in a direction reverse to that shown in
(25) Referring back to
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(27) Referring back to
(28) The diameter of opening 32 may also be configured to establish, or prevent, a recirculation zone from forming. Reactor 10 may be configured to provide a way in which relatively hot fluids flowing from plasma region 40 may exchange a portion of their heat with fluids flowing to plasma region 40. For example, exemplary fluids 38a-c, which are flowing generally towards plasma region 40 receive heat from exemplary fluid 42a, which is flowing from plasma region 40. Exemplary fluid 42a, after exchanging heat with exemplary fluids 38a-c, may than flow back to plasma region 40, as shown by exemplary fluid 42b. Thus, a portion of the reaction heat generated in plasma region 40 and a portion of fluids in reaction chamber 12 recirculate within reactor 10. In one embodiment, if a recirculation zone is desired, the diameter of opening 32 in flange 30 may be approximately 10% up to 75% of the diameter of reaction chamber 12.
(29) As discussed above, reverse vortex flow as used herein means that the vortex flow has axial motion initially caused by nozzles 14a and 14b along wall 13 of the chamber and then the flow turns back and moves along the axis to the “open” end of the chamber towards opening 32. An example in nature of this flow pattern may be similar to the flow inside a dust separation cyclone. Input fluid 2 travels in a circular motion, traveling in a downward and inward direction towards plasma region 40, as shown by exemplary fluids 38a-c.
(30) A reverse vortex flow in reaction chamber 12 causes the contents of reactor 10 in reaction chamber 12 to rotate around plasma region 40, while output stream 22 travels in a direction upwards from the bottom of reactor 10 to opening 32. Along with other benefits that may not be explicitly disclosed herein, the rotation may provide necessary time for the heating of the contents flowing to and in the relatively hot plasma region 40 as the contents move downwardly around plasma region 40. Another benefit of the rotation may be that the reverse vortex flow may increase the residence time of reactants and products inside reaction chamber 12. A still further benefit of the rotation may be that the heat generated as a result of a reaction in plasma region 40 may be insulated from the walls of the reactor, thus reducing the insulating requirements of reactor 10 as well as reducing heat loss, and thus, possibly increasing efficiency.
(31) A vortex flow, such as the reverse-vortex flow described in
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(33) Plasmatrons are electrical heating devices that take advantage of the finite conductivity of gases at very elevated temperatures. At these temperatures, the gas is partially ionized. Plasmatrons provide highly controllable electrical heating of this ionized gas. The high temperatures can be used to reform a wide range of hydrocarbon fuels, and particularly heavy hydrocarbons into hydrogen, carbon monoxide and a small amount of methane without the use of a catalyst. One exemplary use of a plasmatron would be to boost the temperature and kinetic actions in a reformer, resulting in hydrogen-rich gas production throughout a wide dynamic range.
(34) The boosting of the conversion process would occur as a result of the creation of a small, very high temperature region (2000-5000 K) where radicals are produced and as a result of increasing the average temperature in an extended region. The additional heating provided by the plasmatron would serve to ensure a sufficiently high number of chemically reactive species, ionization states, and temperatures for the partial oxidation or other reforming reaction to occur with negligible soot production and a high conversion of hydrocarbon fuel into hydrogen rich gas. The effective conversion of JP8 or diesel fuel is aided by both the high peak temperature in the plasma and the high turbulence created by the reverse vortex flow.
(35) In some configurations, plasmatrons may be able provide a number of advantages over conventional reformers. For example, a plasmatron using plasma may be catalyst-free. A plasmatron using plasma may not require any catalysts or water for its operation. That leads to higher reliability, zero maintenance (no parts to replace) and simple low-cost design. A plasmatron using plasma may be insensitive to sulfur or carbon poisoning. A plasmatron using plasma may be fuel-independent. In other words, the same hardware can reform both liquid (such as JP8, diesel, gasoline and biofuel) and various gaseous fuels. Depending upon its size and electrical configuration, a plasmatron using plasma may allow for a faster start-up. For example, some plasmatrons requires less than five seconds to achieve 90% of its output capacity. The first 15% of H.sub.2 yield is produced in less than two seconds. It offers quick transient response when needed. A plasmatron using plasma may be capable of “freeze-start” and are typically designed for unlimited “start-stop” cycles.
(36) In
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(39) While the embodiments have been described in connection with the preferred embodiments of the various figures, it is to be understood that other similar embodiments may be used or modifications and additions may be made to the described embodiment for performing the same function without deviating therefrom. Therefore, the disclosed embodiments should not be limited to any single embodiment but rather should be construed in breadth and scope in accordance with the appended claims.