SUPERCRITICAL REFORMING OF FUELS, WITHOUT SEPARATE WATER SUPPLY, FOR INTERNAL COMBUSTION ENGINES
20200182165 ยท 2020-06-11
Inventors
Cpc classification
Y02T10/30
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
F01N3/2066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M37/0064
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/0228
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D19/0692
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D19/0671
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D19/081
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D19/0644
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D19/084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An engine/reformer system accepts a first fuel and reforms it into syngas for use as a fuel in an accompanying internal combustion engine. Prior to reforming, the first fuel is pressurized and/or heated to at or near supercritical fluid conditions, such that the resulting syngas leaves the reformer in a supercritical fluid state. Injection of the supercritical syngas into an engine cylinder avoids the autoignition problems that occur when gaseous syngas is used. The first fuel is a fully self-reforming fuel (one that needs no separate water supply for complete conversion to syngas), and can beneficially be a wet fuel, such as ethanol containing water, allowing the system to use intermediate products of an ethanol production process (such as hydrous ethanol and stillage wastewater) as fuel, and reducing the overall cost of fuel production and engine operation.
Claims
1. A method of operating an internal combustion engine, the method including the steps of: a. providing a first fuel to a reformer to produce syngas, wherein the first fuel is fully convertible to syngas: (1) when subjected to steam reforming, and (2) without addition of water apart from any water present in the first fuel; and b. supplying the syngas in a supercritical fluid state to a combustion chamber of the internal combustion engine.
2. The method of claim 1 wherein the first fuel has water mixed therein.
3. The method of claim 1 further including the step of adding water to the first fuel prior to providing the first fuel to the reformer.
4. The method of claim 1 wherein the first fuel primarily contains one or more alcohols.
5. The method of claim 4 wherein the first fuel primarily contains ethanol.
6. The method of claim 5 wherein the first fuel contains approximately 25% water.
7. The method of claim 1 wherein the first fuel is in a supercritical fluid state when provided to the reformer.
8. The method of claim 1 wherein the first fuel is also provided to the combustion chamber of the internal combustion engine.
9. The method of claim 8 wherein the first fuel and syngas are both present in the combustion chamber during a combustion cycle.
10. A method of operating an internal combustion engine, the method including the steps of: a. reforming a first fuel to produce syngas, wherein: (1) the first fuel primarily contains one or more alcohols, and (2) the syngas is a supercritical fluid; and b. supplying the supercritical syngas to a combustion chamber of the internal combustion engine.
11. The method of claim 10 wherein the first fuel is fully convertible to syngas: a. when subjected to steam reforming, and b. without addition of water, apart from any water present in the first fuel.
12. The method of claim 10 wherein the first fuel has water mixed therein.
13. The method of claim 10 wherein the first fuel contains wet ethanol.
14. The method of claim 10 further including the step of adding water to the first fuel prior to producing syngas from the first fuel.
15. The method of claim 10 wherein the first fuel is in a supercritical fluid state during reforming.
16. The method of claim 10 wherein the first fuel is also supplied to the combustion chamber of the internal combustion engine, such that the first fuel and syngas are both present in the combustion chamber during a combustion cycle.
17. A method of operating an internal combustion engine, the method including the steps of: a. reforming a first fuel to produce syngas, wherein: (1) the first fuel has water mixed therein, and (2) the syngas is a supercritical fluid; and b. supplying the supercritical syngas to a combustion chamber of the internal combustion engine.
18. The method of claim 17 wherein the first fuel is fully convertible to syngas: a. when subjected to steam reforming, and b. without addition of water, apart from any water present in the first fuel.
19. The method of claim 17 wherein the first fuel is in a supercritical fluid state during reforming.
20. The method of claim 17 wherein the first fuel primarily contains one or more alcohols.
21. The method of claim 17 wherein the first fuel contains wet ethanol.
22. The method of claim 17 further including the steps of: a. mixing water into the first fuel, and b. thereafter providing the first fuel to a reformer, wherein the reformer provides the reforming of the first fuel to produce the syngas.
23. The method of claim 22 wherein the first fuel is in a supercritical fluid state during reforming.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The FIGURE presents a schematic diagram of an exemplary internal combustion engine and reformer system useful for either spark ignition or compression ignition operation using supercritical syngas produced from a reformed hydrocarbon fuel.
DETAILED DESCRIPTION OF EXEMPLARY VERSIONS OF THE INVENTION
[0010] The exemplary engine/reformer system of the aforementioned drawing will now be reviewed. Throughout the following discussion, exemplary temperatures and pressures will be noted for the various fluids used in the system. It should be understood that these temperatures and pressures may vary depending on the choice of components used in the system, the fuel(s) used in the system, ambient conditions, and similar factors.
[0011] The FIGURE illustrates an exemplary engine/reformer system 100 which can operate solely on syngas generated from a first fuel (which is preferably a fully self-reforming fuel, and which may be a wet fuel, i.e., it may contain water), and which can additionally or alternatively use the first fuel under at least some speed/load conditions (and which might use either compression ignition or spark ignition depending on conditions). In this example, ethanol will be considered as the first fuel, in particular wet ethanol containing approximately 25% water. This amount of water is needed because the reforming process requires approximately 24% water to 76% anhydrous (i.e., dehydrated) ethanol to fully reform the ethanol. Since hydrous ethanolthat is, ethanol having some amount of water mixed therein as a byproduct of the ethanol production process, prior to dehydrationtypically contains at least 4% water, additional water may need to be added to the wet ethanol prior to use as a first fuel, if the first fuel is to be fully self-reforming. This is easily done, as water is readily miscible with ethanol. It should be understood that different material(s) chosen for use in the first fuel may require addition of different amounts of water for full fuel reforming. The amount of water required for complete self-reforming may be zero, as some materials (e.g., methanol, ammonia) do not require additional water for complete reforming.
[0012] Looking to the bottom right of the Figure, the wet ethanol (P=5-10 bar, T=300K) is provided from a pressurized reservoir (not shown) to port injector 102 when ethanol-only operation is desired, e.g., at start-up and low load operation, and possibly during transient periods when the engine is changing between different speed/load states. A spark plug 104 is provided on the combustion chamber 106 to enable standard spark-ignited ethanol operation.
[0013] To produce syngas for use as an alternative or additional fuel, the ethanol is filtered at filter 108, and then further pressurized at pump 110 (P>250 bar, T=300K) and optionally filtered at a second filter 112. One or both of the filters 108 and 112 might be omitted, but are useful where the ethanol and/or added water may contain particles or other unwanted contaminants, as where the ethanol is raw (i.e., not fully processed) hydrous ethanol from a distillation facility, and/or where any added water is provided from an untreated/unprocessed source (e.g., from stillage wastewater from ethanol production, which tends to contain suspended solids). The ethanol is heated in heat exchanger 114 to reach a supercritical fluid state (P>250 bar, T=800-1150 K), and is then provided to a reformer 116 to generate supercritical syngas (P>250 bar, T>800-1150K) consisting of H2, CO, and other trace species. The supercritical syngas may then be provided to a syngas injector 118 for injection into the combustion chamber 106, where it might be ignited via compression ignition or spark ignition, and with or without ethanol in the chamber 106, with the ignition mode and fuel(s) being chosen in accordance with speed/load conditions. It is notable that the power required to place the (liquid) ethanol into a supercritical fluid statewhich readily enables production of syngas in the supercritical fluid state (with supercritical syngas in turn enabling high-pressure direct injection into the combustion chamber, which greatly eases control of ignition timing)is far lower than the power needed to place gaseous syngas in the supercritical fluid state, allowing the engine's power output to be directed to other purposes.
[0014] Now considering the system's air intake, looking near the bottom middle of the Figure, ambient air (P=1 bar, T=300K) is preferably pressurized by a turbocharger 120 (P=1.5-2.5 bar, T=400-500K). The air is then preferably cooled in an air-to-air intercooler/heat exchanger 122 so that its temperature is closer to ambient (P=1.5-2.5 bar, T=300-325K) prior to supply to the engine's air intake manifold 124. The turbocharger 120 may be omitted and the engine may simply be naturally aspirated, but turbocharging can usefully increase power output and efficiency.
[0015] Now considering the system's exhaust, exhaust gas (P=1.5-2.5 bar, T=800-1150K) from the exhaust manifold 126 is first preferably provided to a catalytic converter 128, where an oxidation catalyst further converts any unburned CO and hydrocarbons (if present) to carbon dioxide and water vapor. The hot exhaust is then supplied to the reformer 116 so that its heat supports the reforming process, after which the exhaust goes to an exhaust heat exchanger 114 to further capture waste heat to assist in converting the input ethanol into the supercritical fluid state. The exhaust (P=1.5-2.5 bar, T=450-750K) leaving the exhaust heat exchanger 114 drives the input turbine of the turbocharger 120 used to pressurize the engine's ambient air supply. The exhaust leaving the turbocharger 120 (P=1 bar, T=400-650K) is then released to the environment (P=1 bar, T=300K).
[0016] The depicted system may be adapted in numerous ways to allow different modes of operation with different first fuels. As examples, the syngas from the reforming process might also or alternatively be provided to a port injector, and the first fuel might also or alternatively be provided to the direct injector 118 (or to another direct injector). An exhaust gas recirculation (EGR) system and/or other emissions reduction components might be incorporated. Features can be combined or removed, rather than added; for example, the heat exchanger 114 and
116 might be provided as a single component. As another example, the low-pressure port injector 102 might be omitted (and spark plug 104 as well), leaving only direct injection of syngas via injector 118. In this case, the engine would operate solely on syngas using compression ignition either at lean or stoichiometric conditions. Under lean conditions, where nitrous oxide emissions are of concern, it is expected that exhaust gas recirculation (EGR) and/or Selective Catalytic Reduction (SCR) might be used for emissions control. Since syngas beneficially creates no soot under stoichiometric conditions, a three-way catalyst (TWC) might be suitable for emissions control under stoichiometric operation.
[0017] Throughout this document, where the terms primarily, substantially, and the like are used, these should be regarded as meaning in major part. For example, a fuel formed primarily or substantially of ethanol has over half of its volume formed of ethanol.
[0018] Also throughout this document, where a measurement or other value is qualified by the term approximately, about, nearly, roughly, or the likefor example, approximately 25% waterthis can be regarded as referring to a variation of 15% from the noted value. Thus, as an example, approximately 25% water can be understood to mean within 3.75% (i.e., 15% of 25%) of 25% water.
[0019] It should be understood that the versions of the invention described above are merely exemplary, and the invention is not intended to be limited to these versions. Rather, the scope of rights to the invention is limited only by the claims set out below, and the invention encompasses all different versions that fall literally or equivalently within the scope of these claims.