Apparatus and methods for exhaust gas recirculation for an internal combustion engine powered by a hydrocarbon fuel
10233809 ยท 2019-03-19
Assignee
Inventors
Cpc classification
F02M26/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B33/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2240/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/43
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
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
F02M26/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01N3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B33/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/43
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method to process exhaust gas expelled from at least one cylinder of a plurality of cylinders of an internal combustion engine, the method comprising providing an internal combustion engine, wherein the engine comprises a steam hydrocarbon reformer including a steam reformation catalyst, treating exhaust gas of the engine containing hydrocarbon and water by reacting the hydrocarbon and water in the presence of the steam reformation catalyst in the steam hydrocarbon reformer to provide treated exhaust gas. The treated exhaust gas includes carbon monoxide gas and hydrogen gas produced from the reaction, and mixing the treated exhaust gas, including the carbon monoxide gas and hydrogen gas produced in the steam hydrocarbon reformer with air to provide the mixture of air and treated exhaust gas introduced into the cylinders of the engine.
Claims
1. A method to process exhaust gas expelled from at least one cylinder of a plurality of cylinders of an internal combustion engine, the method comprising: providing an internal combustion engine, wherein the engine includes an exhaust turbine, an exhaust gas recirculation passage, a catalytic converter, an injection device and a steam hydrocarbon reformer, including a steam reformation catalyst, wherein the exhaust gas recirculation passage is located downstream of the exhaust turbine and upstream of the catalytic converter, wherein the exhaust gas recirculation passage of the engine located downstream of the exhaust turbine and upstream of the catalytic converter includes the steam hydrocarbon reformer and the injection device, and wherein the injection device is located in the exhaust gas recirculation passage upstream of the steam hydrocarbon reformer; forming a mixture of air and treated exhaust gas to enter the cylinders of the engine, wherein the mixture of air and treated exhaust gas is formed before entering the cylinders of the engine; introducing hydrocarbon as a fuel, and the mixture of air and treated exhaust gas, into the cylinders of the engine, wherein the hydrocarbon fuel is not from the mixture of air and treated exhaust gas; operating the engine such that internal combustion occurs in the cylinders of the engine; generating untreated exhaust gas in the cylinders of the engine; expelling the untreated exhaust gas from the cylinders of the engine through the exhaust turbine to the exhaust gas recirculation passage, wherein the untreated exhaust gas contains: (1) unreacted hydrocarbon and water; or (2) water and no hydrocarbon; wherein in the case that the untreated exhaust gas contains unreacted hydrocarbon and water, optionally introducing additional hydrocarbon to the untreated exhaust gas using the injection device such that the additional hydrocarbon is introduced in the exhaust gas recirculation passage of the engine upstream of the steam hydrocarbon reformer, and when the untreated exhaust gas contains water and no hydrocarbon, introducing hydrocarbon to the untreated exhaust gas using the injection device such that the hydrocarbon is introduced in the exhaust gas recirculation passage of the engine upstream of the steam hydrocarbon reformer; introducing the untreated exhaust gas containing the hydrocarbon and water into the steam hydrocarbon reformer; treating the untreated exhaust gas containing the hydrocarbon and water by reacting the hydrocarbon and water in the untreated exhaust gas in the presence of the steam reformation catalyst in the steam hydrocarbon reformer to provide treated exhaust gas, wherein the treated exhaust gas includes carbon monoxide gas and hydrogen gas produced from the reaction; and mixing the treated exhaust gas, including the carbon monoxide gas and hydrogen gas produced in the steam hydrocarbon reformer, with air to provide the mixture of air and treated exhaust gas introduced into the cylinders of the engine.
2. The method of claim 1 further comprising: directly coupling the exhaust gas recirculation passage to an upstream exhaust manifold of the engine.
3. The method of claim 1 wherein: the exhaust gas recirculation passage includes a cooler; and further comprising cooling the treated exhaust gas with the cooler after it leaves the steam hydrocarbon reformer and before the treated exhaust gas is mixed with the air.
4. The method of claim 1 further comprising: cooling the mixture of air and treated exhaust gas before it is introduced into the cylinders of the engine.
5. The method of claim 1 further comprising: compressing the mixture of air and treated exhaust gas before it is introduced into the cylinders of the engine.
6. The method of claim 1 further comprising: operating the engine exclusively with natural gas fuel.
7. The method of claim 1 wherein: the steam reformation catalyst comprises at least one of nickel, palladium and platinum.
8. The method of claim 1 further comprising: introducing the untreated exhaust gas containing the hydrocarbon and water into the steam hydrocarbon reformer at a temperature in a range of 400 C. to 800 C.
9. The method of claim 1 wherein: the steam hydrocarbon reformer comprises a packed bed reactor.
10. The method of claim 1 wherein: the steam hydrocarbon reformer comprises a membrane reactor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above-mentioned and other features of this disclosure, and the manner of attaining them, will become more apparent and better understood by reference to the following description of embodiments described herein taken in conjunction with the accompanying drawings, wherein:
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DETAILED DESCRIPTION
(8) It may be appreciated that the present disclosure is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the drawings. The invention(s) herein may be capable of other embodiments and of being practiced or being carried out in various ways. Also, it may be appreciated that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting as such may be understood by one of skill in the art.
(9) The following description is directed to various configurations of emissions systems, particularly exhaust gas recirculation (EGR) systems, apparatuses and methods to be used with an internal combustion engine. With an EGR system, one or more cylinders of the internal combustion engine may be used to generate exhaust gas, which may then be recirculated and mixed with an intake stream of fresh (ambient) air to provide a mixed charge (mixture) of exhaust gas and air to the cylinders of the engine.
(10) For the purposes of this disclosure, an engine configured such that substantially an entire output of exhaust gas from a cylinder is to be recirculated for EGR may be referred to herein as an engine having a dedicated EGR cylinder.
(11) In addition, for illustration purposes, the engine herein is described as one that relies upon the use of natural gas. However, it should be appreciated that the engine herein that may benefit from steam reformation is one that relies upon the use of a hydrocarbon fuel, and hydrocarbon steam reformation, and therefore is not limited to a fuel containing methane and the use of methane steam reformation.
(12) Referring now to the figures,
(13) Internal combustion engine 100 is shown to have four cylinders 150, 152, 154 and 156, although such is not intended to limit the present disclosure. One of the cylinders, cylinder 156, may be understood to be a dedicated EGR cylinder. In other words, it may be understood that substantially all of the exhaust gas 114 expelled from cylinder 156 may be directed (recirculated) back to the intake system 110, here through an EGR feedback loop 118. The exhaust gas from the remaining three cylinders 150, 152, and 154 is directed to an exhaust system 190, with none of the exhaust gas expelled from cylinders 150, 152 and 154 recirculated to the intake system 110 of engine 100.
(14) While it may be possible, based on the configuration of engine 100, for all of the exhaust gas (i.e. 100%) expelled from cylinder 156 to be optimally recirculated back to the intake system 110, it should be understood that certain design considerations and operating inefficiencies may only allow a substantial portion of the exhaust gas expelled from cylinder 156 to be recirculated back to the intake system 110. For example, exhaust gas losses may occur between connection points. Accordingly, it is contemplated that on a volume basis, 90% or more of the exhaust gas expelled from the dedicated EGR cylinder is recirculated to the engine intake system 110. More preferably, 90-100% of the exhaust gas expelled from cylinder 156 is recirculated, including all values therein, in 0.1% by volume increments.
(15) Furthermore, with four cylinders of equal volume, engine 100 may also be understood to have a maximum 25% dedicated EGR content because the exhaust gas expelled from each cylinder may be understood to have substantially the same volume, and one of the four cylinders has 100% of its exhaust gas redirected to the intake system 110, as noted above.
(16) During an operation of engine 100, fresh (ambient) intake air 102 may enter air inlet 104 of air intake system 110. The air 102 may then travel within intake passage 106, during which time it may be compressed by intake compressor 108. Thereafter, air 102 may enter air/exhaust gas mixer 112 of air intake system 110, and more particularly as distribution mixer, which is configured to distribute and mix the recirculated and treated exhaust gas 114 into the stream of fresh air 102 to be introduced to the internal combustion engine 100.
(17) With the operation of engine 100, treated exhaust gas 114 from dedicated EGR cylinder 156 may enter passage 116 of EGR feedback loop 118. Thereafter, treated exhaust gas 114 may enter mixer 112 of the air intake system 110 and be mixed with a stream of fresh air 102 to provide a mixture 130 of fresh air 102 and treated exhaust gas 114.
(18) As understood in the art, the combustion of natural gas comprising methane (CH.sub.4) gas/liquid with oxygen (O.sub.2) gas from the fresh air 102 within dedicated EGR cylinder 156 will produce untreated exhaust gas 114 containing the combustion by-products of carbon dioxide (CO.sub.2) gas and water vapor according to a reaction as shown in the following equation (1):
CH.sub.4(g)+2O.sub.2(g).fwdarw.CO.sub.2(g)+3H.sub.2O(v)(Eq 1)
(19) In addition to the foregoing, depending on operating conditions and stoichiometry, exhaust gas 114 may also include unburnt methane (CH.sub.4) gas, as well as small amounts of hydrogen (H.sub.2) gas, carbon monoxide (CO) gas and other reactive hydrocarbons. Exhaust gas 114 may include higher levels of methane (CH.sub.4) gas in the event EGR cylinder 156 is run rich (i.e. phi () is greater than 1.0).
(20) After leaving the dedicated EGR cylinder 156, the untreated exhaust gas 114 enters a steam methane reformer 120 within the EGR feedback loop 118. Using a steam reformation catalyst contained within the steam hydrocarbon reformer 120, steam hydrocarbon reformer 120 simultaneously produces carbon monoxide (CO) gas and hydrogen (H.sub.2) gas from unburnt hydrocarbon (e.g. CH.sub.4) gas and water vapor in the untreated exhaust gas 114.
(21) Optionally, engine 100 may include a hydrocarbon injection device 174 (e.g. a fuel injector) located in the passage 116 of EGR loop 118, or in the exhaust port 160 of the cylinder head 144 (e.g. exhaust port fuel injector) to introduce hydrocarbon such as methane (CH.sub.4) gas and/or water directly into the stream of untreated exhaust gas 114 from dedicated EGR cylinder 156, or methane (CH.sub.4) liquid which rapidly changes phase to a gas. Such may be particularly useful to increase the amount of hydrocarbon such as methane (CH.sub.4) gas in the untreated exhaust gas 114 in the event the amount of hydrocarbon such as methane (CH.sub.4) gas in the untreated exhaust gas 114 from dedicated EGR cylinder 156 is insufficient. Engine 100 may include a hydrocarbon sensor such as a methane sensor 178 which may detect methane in untreated exhaust gas 114 and which may be configured and arranged to operate with engine controller 180. After methane sensor 178 determines a level of methane (CH.sub.4) gas in untreated exhaust gas 114, the engine controller 180 may than introduce a hydrocarbon such as methane (CH.sub.4) and/or water from methane/water injection device 174 if such in the untreated exhaust gas 114 is insufficient in accordance with a programed algorithm based on operating conditions.
(22) The following equation (2) illustrates a steam reformation reaction which simultaneously produces carbon monoxide (CO) gas and hydrogen (H.sub.2) gas from methane (CH.sub.4) gas and water vapor:
CH.sub.4(g)+H.sub.2O(v).fwdarw.CO(g)+3H.sub.2(g)(Eq 2)
(23) However, more generally herein, the steam reformation reaction for a hydrocarbon may be written as follows:
CnHm(g)+nH.sub.2O(v).fwdarw.(n+m/2)H.sub.2+nCO(g)(Eq2a)
(24) Thus, reacting a hydrocarbon such as methane (CH.sub.4) gas and water vapor in the untreated exhaust gas 114 from dedicated EGR cylinder 156 to produce carbon monoxide (CO) gas and hydrogen (H.sub.2) gas is beneficial by increasing the amount of carbon monoxide (CO) gas and hydrogen (H.sub.2) gas in the untreated exhaust gas 114 from dedicated EGR cylinder 156.
(25) The steam reformation catalyst may comprise nickel (Ni) as the active metal. For example, the steam reformation catalyst may comprise Ni-M composition, where M=gold (Au), silver (Ag), tin (Sn), copper (Cu), cobalt (Co), molybdenum (Mo), iron (Fe), gadolinium (Gd) or boron (B). Apart from such N-M compositions, one may also use palladium (Pd) or platinum (Pt) as the steam reformation catalyst. A particularly preferred catalyst is nickel or palladium. Preferably, the steam reformation reaction is carried out at temperatures at or above 500 C.
(26) Untreated exhaust gas 114 entering steam hydrocarbon reformer 120 preferably may have a temperature in a range of 400 C. to 800 C., and be exposed to a pressure in a range of 14.7 psi. to 44 psi. It is generally desirable to maintain exhaust temperatures as high as possible to increase production of carbon monoxide (CO) gas and hydrogen (H.sub.2) gas from a hydrocarbon such as methane (CH.sub.4) gas.
(27) As such, for D-EGR applications, one particular placement of the steam hydrocarbon reformer 120 is as close to the exhaust port 160 as possible, so that the temperature of the exhaust gas 114 entering the steam hydrocarbon reformer 120 is as high as possible. Furthermore, one particular placement of the hydrocarbon/water injection device 174 upstream of the steam hydrocarbon reformer 120 is in the exhaust port 160 of the cylinder head 144. As may be appreciated, one may use a plurality of hydrocarbon/water injection devices 174. As illustrated in
(28) As shown by
(29) Furthermore, as shown by
(30) The amount of unburned hydrocarbon such as methane (CH.sub.4) gas from dedicated EGR cylinder 156, as well as the amount of carbon monoxide (CO) gas and hydrogen (H.sub.2) gas created in dedicated EGR cylinder 156, and subsequently entering the steam hydrocarbon reformer 120 is a function of the dedicated EGR cylinder air/fuel ratio and spark timing. For example, if dedicated EGR cylinder 156 is run rich of stoichiometric A/F (air/fuel) ratio, a relatively significant amount of carbon monoxide (CO) and hydrogen (H.sub.2) may be formed prior to the use of the methane reformer 120.
(31) The amount of carbon monoxide (CO) gas and hydrogen (H.sub.2) gas further created in the hydrocarbon reformer 120 is dependent on exhaust gas temperature and the amount of hydrocarbon or methane (CH.sub.4) gas in the untreated exhaust gas 114 entering the reformer 120, with the hydrocarbon or methane (CH.sub.4) gas either being present in the exhaust gas 114 when it is expelled from the EGR cylinder 156 and/or being added to the exhaust gas 114 after being expelled from the EGR cylinder 156 via injection device 174. Thus, performance of the steam reformation catalyst is dependent on exhaust gas temperature, with the amount of carbon monoxide (CO) gas and hydrogen (H.sub.2) gas exiting the steam hydrocarbon reformer 120 being dependent on the amount existing prior to use of the steam hydrocarbon reformer 120 and the amount created in the steam hydrocarbon reformer 120
(32) After being mixed in mixer 112, air/exhaust gas mixture 130 may then flow in passage 106 to cooler 132 (e.g. heat exchanger) to remove heat therefrom and correspondingly increase the density thereof. In the cooler 132, the air/exhaust gas mixture 130 is cooled to a temperature in a range of 30 C. to 60 C.
(33) After being cooled by cooler 132, air/exhaust gas mixture 130 may then flow to an intake flow restrictor 134, such as an intake throttle valve (a mechanism by which a flow of the air/exhaust gas mixture 130 is managed by restriction or obstruction) configured to restrict the volumetric flow and amount (mass) of air/exhaust gas mixture 130 provided to cylinders 150, 152, 154 and 156. The intake throttle valve may more particularly comprise a butterfly valve that restricts the flow and amount of air/exhaust gas mixture 130 entering the intake manifold 136 and ultimately provided to cylinders 150, 152, 154 and 156. Intake flow restrictor 134 may be considered to be a primary flow restrictor in that it may similarly restrict the flow of the air/exhaust gas mixture 130 to all of cylinders 150, 152, 154 and 156.
(34) Intake flow restrictor 134 may be located at the entrance of intake manifold 136. Intake manifold 136 may comprise a plenum 138 through which the air/exhaust gas mixture 130 may flow to a plurality of intake passages/runners 140, shown with one passage/runner 140 dedicated to each cylinder 150-156. Each passage/runner 140 may then feed the air/exhaust gas mixture 130 directly into an intake port 142 (shown by dotted lines) of a cylinder head 144, shown with one port 142 dedicated to each cylinder 150-156.
(35) After entering cylinders 150-156, the air/exhaust gas mixture 130 may be ignited by an igniter (not shown) and combust therein. After combustion of the air/exhaust gas mixture 130 within cylinders 150-156, untreated exhaust gas 114 from cylinders 150, 152 and 154 may flow through exhaust ports 160 of cylinder head 144 and exhaust passages/runners 162 of exhaust manifold 170, shown with one exhaust port 160 and one passage/runner 162 dedicated to each cylinder 150-154, and then be collected in collector 164.
(36) From collector 164, untreated exhaust gas 114 may then flow through turbine 176, which may turn intake compressor 108 by shaft 178. After turbine 176, untreated exhaust gas 114 may flow through exhaust passage 182 to catalytic converter 184 to be treated therein before being expelled from exhaust system 190 and into the atmosphere. Catalytic converter 184 may comprise a three-way catalytic converter. In other words, a catalytic converter which performs the following:
(37) Reduction of nitrogen oxides to nitrogen and oxygen by the reaction:
2NO.sub.x(g).fwdarw.xO.sub.2(g)+N.sub.2(g)(Eq 3)
(38) Oxidation of carbon monoxide to carbon dioxide by the reaction:
2CO(g)+O.sub.2(g).fwdarw.2CO.sub.2(g)(Eq 4)
(39) Oxidation of unburnt hydrocarbons (HC) to carbon dioxide and water by the reaction:
(40)
(41) To control the air/fuel ratio, untreated exhaust gas 114 from cylinders 150, 152 and 154 may be sampled by an exhaust gas oxygen (EGO) sensor 166, which may more particularly comprise a heated exhaust gas oxygen (HEGO) sensor, while untreated exhaust gas 114 from cylinder 156 may be sampled by an exhaust gas oxygen (EGO) sensor 168, which may more particularly comprise a universal exhaust gas oxygen (UEGO) sensor.
(42) To control the mass and volumetric flow rate of the air/exhaust gas mixture 130 entering dedicated EGR cylinder 156, the portion of the intake passage 146 dedicated to cylinder 156 may include an intake charge flow restrictor 148, such as a throttle valve, configured and arranged to restrict the flow and amount of air/exhaust gas mixture 130 entering cylinder 156 without restricting the flow and amount of air/exhaust gas mixture 130 entering remaining cylinders 150, 152 or 154. The throttle may more particularly comprise a butterfly valve that restricts the amount of air/exhaust gas mixture 130 entering cylinder 156.
(43) Flow restrictor 148 may be considered to be a secondary flow restrictor in that it may restrict the flow of the air/exhaust gas mixture 130 to a particular cylinder, here cylinder 156, as opposed to all the cylinders, after the air/exhaust gas mixture 130 has flowed past primary flow restrictor 134. Flow restrictor 148 may be used in conjunction with intake/exhaust valves, fuel injectors and engine controller 180 of engine 100 to operate or otherwise control dedicated EGR cylinder 156 at the same or different air/fuel ratio than cylinders 150, 152 and 154. Further, each cylinder 150-156 may be independently operated at an air/fuel ratio which is greater than (rich), equal to, or less than (lean) a stoichiometric ratio for the air and fuel.
(44) As shown in
(45) As flow restrictor 148 may be at least partially closed, the flow and amount of air/exhaust gas mixture 130 entering cylinder 156 may be decreased. Simultaneously, the air/exhaust gas mixture 130 entering cylinders 150, 152 and 154 may be increased, provided flow restrictor 134 remains unchanged. Thus, the flow and amount of the air/exhaust gas mixture 130 entering cylinder 156 may be inversely related to the flow and amount of the air/exhaust gas mixture 130 entering cylinders 150, 152 and 154. That is, as the flow and amount of the air/exhaust gas mixture 130 entering cylinder 156 may be decreased, the flow and amount of the air/exhaust gas mixture 130 entering cylinders 150, 152 and 154 may be increased, and vice-versa.
(46) As indicated above, without the use of flow restrictor 148, the engine 100 in
(47) However, with the use of flow restrictor 148, the volume of exhaust gas expelled from cylinder 156 may now be varied by restricting the amount of air/exhaust gas 130 which is consumed by cylinder 156 such at the engine 100 may provide, for example, between 0.1% and 25% dedicated EGR. By decreasing the flow and amount of air/exhaust gas 130 which is consumed by cylinder 156, the flow and amount of untreated exhaust gas 114 expelled from cylinder 156 and processed through steam hydrocarbon reformer 120 to air intake system 110 may be correspondingly decreased, which will decrease amount of treated exhaust gas 114 provided to the cylinders 150, 152, 154 and 156.
(48) Restriction of untreated exhaust gas 114 expelled from cylinder 156 may be particularly necessary if the quantity of treated exhaust gas 114 adversely effects engine performance. For example, as shown by
(49) In contrast, as shown by
(50) For the applicable range of carbon monoxide (CO) gas and hydrogen (H.sub.2) gas concentration in the present disclosure, the addition of carbon monoxide (CO) gas and hydrogen (H.sub.2) gas to the charge feed preferably would only increase burning velocity of the mixture. As such, it may become necessary to limit the amount of exhaust gas produced from cylinder 156, and more particularly the amount of carbon monoxide (CO) gas produced, by use of flow restrictor 148.
(51) The present disclosure also has application for hydrocarbon powered (e.g. natural gas powered) internal combustion engines 100 which do not make use of a dedicated EGR cylinder 156. Referring now to
(52) As shown, untreated exhaust gas 114 from all the cylinders 150, 152, 154 and 158 flows from the exhaust manifold 170 to either turbine 176 or steam hydrocarbon reformer 120 within take-off branch 128 of the EGR feedback loop 118, with an EGR valve 124 controlling the amount of untreated exhaust gas 114 flowing into take-off branch 128 of the EGR feedback loop 118.
(53) Since cylinders 150, 152, 154 and 158 may be operated at or near stoichiometric air/fuel ratio, engine 100 may include a hydrocarbon/water injection device 174 (e.g. a fuel injector) in the take-off branch 128 of the EGR loop 118 after the exhaust manifold 170, to introduce a hydrocarbon such as methane (CH.sub.4) into untreated exhaust gas 114.
(54) After flowing through steam hydrocarbon reformer 120, the treated exhaust gas 114 then flows through an EGR cooler 122 (e.g. heat exchanger) where it is cooled to a temperature in a range of 90 C. to 150 C. Thereafter, the amount of treated exhaust gas 114 to be mixed with fresh air 102 is controlled by EGR valve 124. At the same time, fresh air 102 flows through cooler 133 (e.g. heat exchanger) which cools the fresh air 102 to a temperature in a range of 30 C. to 60 C. Once the fresh air 102 has been cooled by cooler 133, the volume of fresh air 102 flowing through the intake system 110 of the internal combustion engine 100 is controlled by intake flow restrictor 134 (e.g. throttle valve).
(55) Fresh air 102 which flows through intake flow restrictor 134 and treated exhaust gas 114 which flows through EGR valve 124 may then mix in air/exhaust gas mixer 126 of air intake system 110, and more particularly a venturi mixer, which is configured to distribute and mix recirculated treated exhaust gas 114 into the stream of fresh air 102 to be introduced to the internal combustion engine 100. The mixture 130 of fresh air 102 and treated exhaust gas 114 may then flow into the intake manifold 136 and into cylinders 150, 152, 154 and 158.
(56) Thus, one particular placement of the steam hydrocarbon reformer 120 is as close to the exhaust manifold 170 as possible so that the temperature of the exhaust gas 114 entering the steam hydrocarbon reformer 120 is as high as possible. Moreover, placement of the steam hydrocarbon reformer 120, as well as the hydrocarbon/water injection device 174, is in a take-off branch 128 of the exhaust system 190 with an entrance to the take-off branch directly coupled to the exhaust manifold 170.
(57) Referring now to
(58) Since cylinders 150, 152, 154 and 158 may be operated at or near stoichiometric air/fuel ratio, engine 100 may include a hydrocarbon/water injection device 174 (e.g. a fuel injector) in the take-off branch 128 of the EGR loop 118, such as in take-off branch 128 of the EGR loop 118 after turbine 176 and before catalytic converter 184, to introduce a hydrocarbon such as methane (CH.sub.4) into untreated exhaust gas 114.
(59) After flowing through steam methane reformer 120, the treated exhaust gas 114 then flows through an EGR cooler 122 where it is cooled to a temperature in a range of 90 C. to 150 C. Thereafter, the amount of treated exhaust gas 114 to be mixed with fresh air 102 is controlled by EGR valve 124. At the same time, fresh air 102 flows into air inlet 104 of intake passage 106. The volume of fresh air 10 flowing through the intake system 110 of the internal combustion engine 100 is controlled by intake flow restrictor 172 (e.g. throttle valve).
(60) Fresh air 102 which flows through intake flow restrictor 172 and treated exhaust gas 114 which flows through EGR valve 124 may then mix in air/exhaust gas mixer 126 of air intake system 110, and more particularly a venturi mixer, which is configured to distribute and mix recirculated treated exhaust gas 114 into the stream of fresh air 102 to be introduced to the internal combustion engine 100.
(61) After flowing through air/exhaust gas mixer 126, the mixture 130 of fresh air 102 and treated exhaust gas 114 may then flow into intake compressor 108 where it is compressed (pressurized). From the intake compressor 108, the mixture 130 of fresh air 102 and treated exhaust gas 114 may then flow through cooler 135 (e.g. heat exchanger) to remove heat therefrom and correspondingly increase the density thereof. In the cooler 135, the air/exhaust gas mixture 130 is cooled to a temperature in a range of 30 C. to 60 C.
(62) The volume of mixture 130 of fresh air 102 and treated exhaust gas 114 flowing through the intake system 110 of the internal combustion engine 100 is controlled by intake flow restrictor 134 (e.g. throttle valve). Thereafter, the mixture 130 of fresh air 102 and treated exhaust gas 114 may then flow into the intake manifold 136 and into cylinders 150, 152, 154 and 158.
(63) Thus, for HPL-EGR applications, exhaust gas 114 downstream of the turbine 176 is utilized for EGR, with one particular placement of the steam hydrocarbon reformer 120 being as close to the turbine 176 as possible so that the temperature of the exhaust gas 114 entering the steam hydrocarbon reformer 120 is as high as possible. Moreover, placement of the steam hydrocarbon reformer 120, as well as the hydrocarbon/water injection device 174, is in a take-off branch 128 of the exhaust system 190 with an entrance to the take-off branch after the turbine 176 and upstream of the catalytic converter 182 to prevent exhaust emission of CH.sub.4 and upstream of the steam reformation catalyst.
(64) For operation of steam reformation catalysts in an environment containing appreciable amounts of sulfur which may poison the catalyst, it may be necessary to utilize a regenerable or replaceable sulfur trap upstream of the steam reformation catalyst in order prevent sulfation of the steam reformation catalyst. Natural gas streams are typically very free of sulfur, and as such may allow for effective use of regenerable or replaceable sulfur traps with satisfactory replacement or regeneration intervals.
(65) While the principles of the invention have been described herein, it is to be understood by those skilled in the art that this description is made only by way of example and not as a limitation as to the scope of the invention. Other embodiments are contemplated within the scope of the present invention in addition to the exemplary embodiments shown and described herein. Modifications and substitutions by one of ordinary skill in the art are considered to be within the scope of the present invention, which is not to be limited except by the following claims.