Combustion Engine Assembly with an Ethanol Reformer Unit
20230167789 · 2023-06-01
Inventors
Cpc classification
F02M26/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/20
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
F02M27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An internal combustion engine assembly is provided with a fuel tank for fuel including ethanol, and a reformer for steam reforming of ethanol that is with an outlet connected to a buffer tank. A first reformer supply duct extends from the fuel tank to the reformer via a fuel evaporator that is in heat exchanging contact with the exhaust gases, for supplying ethanol vapor to the reformer. A second reformer supply duct extends from a water reservoir to the reformer via a water evaporator that is in heat exchanging contact with the exhaust gases. The reformer is in heat exchanging contact with the catalytic converter and is adapted for reforming ethanol and water into syngas including carbon monoxide and hydrogen, and for supplying the syngas via the outlet to the buffer tank. The reformer and the catalytic converter may form an integrated unit.
Claims
1. An internal combustion engine assembly, comprising: a fuel tank for containing fuel comprising ethanol, the fuel tank being connected via a fuel supply duct to a fuel inlet of at least one of a number of cylinders, the cylinders being with an outlet connected to an exhaust system comprising a catalytic converter, a reformer for steam reforming of ethanol, being with an outlet connected to a buffer tank, that is connected to a fuel inlet of the cylinders, and a first reformer supply duct extending from the fuel tank to the reformer via a fuel evaporator that is in heat exchanging contact with the exhaust gases, for supplying ethanol vapor to the reformer, and a second reformer supply duct extending from a water reservoir to the reformer via a water evaporator that is in heat exchanging contact with the exhaust gases, for supplying water steam to the reformer, the reformer being in heat exchanging contact with the catalytic converter and being adapted for reforming ethanol and water into syngas comprising carbon monoxide and hydrogen, and for supplying the syngas via the outlet to the buffer tank.
2. The internal combustion engine assembly according to claim 1, the reformer and the catalytic converter forming an integrated unit.
3. The internal combustion engine assembly according to claim 1, comprising an exhaust water condenser receiving at an inlet exhaust gases and being with an outlet connected to the water reservoir.
4. The internal combustion engine assembly according to claim 3, the fuel evaporator and the exhaust water condenser forming an integrated unit.
5. The internal combustion engine assembly according to claim 1, wherein the buffer tank is connected with an outlet to a combustion device that is in heat conducting contact with the catalytic converter.
6. The internal combustion engine assembly according to claim 1, the water reservoir being with a cooling outlet connected to the cylinders for cooling of the cylinders.
7. A vehicle, comprising: an internal combustion engine assembly, comprising: a fuel tank for containing fuel comprising ethanol, the fuel tank being connected via a fuel supply duct to a fuel inlet of at least one of a number of cylinders, the cylinders being with an outlet connected to an exhaust system comprising a catalytic converter, a reformer for steam reforming of ethanol, being with an outlet connected to a buffer tank, that is connected to a fuel inlet of the cylinders, and a first reformer supply duct extending from the fuel tank to the reformer via a fuel evaporator that is in heat exchanging contact with the exhaust gases, for supplying ethanol vapor to the reformer, and a second reformer supply duct extending from a water reservoir to the reformer via a water evaporator that is in heat exchanging contact with the exhaust gases, for supplying water steam to the reformer, the reformer being in heat exchanging contact with the catalytic converter and being adapted for reforming ethanol and water into syngas comprising carbon monoxide and hydrogen, and for supplying the syngas via the outlet to the buffer tank.
8. The vehicle according to claim 7, the reformer and the catalytic converter forming an integrated unit.
9. The vehicle according to claim 7, comprising an exhaust water condenser receiving at an inlet exhaust gases and being with an outlet connected to the water reservoir.
10. The vehicle according to claim 9, the fuel evaporator and the exhaust water condenser forming an integrated unit.
11. The vehicle according to claim 7, wherein the buffer tank is connected with an outlet to a combustion device that is in heat conducting contact with the catalytic converter.
12. The vehicle according to claim 7, the water reservoir being with a cooling outlet connected to the cylinders for cooling of the cylinders.
13. An assembly, comprising: a catalytic converter, an ethanol steam reformer, and a housing containing the converter and the reformer, each having separate fluid flows and containing heat exchange means for exchange of heat between the reformer and the converter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] A number of embodiments will by way of non-limiting example, be described in detail with reference to the accompanying drawings. In the drawings:
[0021]
[0022]
[0023]
DETAILED DESCRIPTION
[0024]
[0025] A turbocharger 8 compresses the air that is supplied from an air intake 9 and transports the intake air through an air duct 10 to the intake manifold 11 for supply to the cylinders 3. The exhaust gases of the fuel that has been burned in the cylinders 3, leave the engine 2 via an exhaust manifold 12 and flow through an exhaust duct 46 to drive the turbocharger 8. After passing the turbocharger 8, the exhaust gases pass via the duct 13 into an integrated catalytic converter/fuel reformer unit 14. Via an exhaust duct 16, the exhaust gases pass to a water evaporator 17 and from there via exhaust duct 18 to a fuel evaporator/water condenser unit 19 that includes fuel evaporator 19a and water condenser 19b. On leaving the fuel evaporator/water condenser unit 19, the exhaust gases pass to a tail pipe 20 to be expelled into the ambient.
[0026] A second fuel pump 23 supplies bio-fuel from the tank 4 to the fuel evaporator/water condenser unit 19 where the fuel, that is at ambient temperature, is brought in heat exchanging contact with the exhaust gases. The ethanol that is evaporated from the fuel is supplied via a duct 21 to an inlet 34 of a pre-heater/cooler unit 35. The fuel that passes through the evaporator/water condenser unit 19 in a liquid state, is transported via a duct 22 to the fuel supply duct 6. In the fuel evaporator/water condenser unit 19, water is condensed from the exhaust gases and is stored in a water tank 25 via water outlet duct 28, water pump 27 and duct 29.
[0027] The water that has been condensed in the unit 19 and/or that is supplied from the water tank 25 by the pump 27, is evaporated in the water evaporator 17 and is passed as steam to the outlet 32. Through a water steam supply duct 33, the water steam enters into a pre-heater/cooler unit 35.
[0028] Ethanol that is evaporated from the fuel in the fuel evaporator/water condenser unit 19, is also supplied to the inlet 34 via the duct 21. Both ethanol and water steam are mixed in the pre-heater/cooling unit 35, the mass ratio being controlled by the pump mass flow. The pre-heated water steam and ethanol steam mixture is fed from the unit 35 to the integrated catalytic converter/fuel reformer unit 14 through duct 36, where the water and steam are transformed into syngas.
[0029] The syngas that is formed in the integrated catalytic converter/fuel reformer unit 14 is transported via a syngas outlet duct 37, through the pre-heater/cooler unit 35 and preheats the water and ethanol by being brought in heat exchanging contact with the water/ethanol steam that is supplied at inlet 34.
[0030] Via an outlet duct 40 and a pump 41, the syngas is supplied to a buffer tank 42 in which it is stored in compressed form. From the buffer tank 42, the syngas is transported via a gas supply duct 43 and a reduction valve 44 to a gas inlet manifold 45 that is connected to the cylinders 3.
[0031] Through a syngas duct 47 and a catalyst heating valve 48, the syngas may be supplied to the catalytic converter/fuel reformer unit 14 and ignited by a glow plug 50 for heating of the unit 14 in case the exhaust gas temperature is not sufficiently high.
[0032] From the water reservoir 25, a cooling duct 49 may extend to the engine 2 for injection of cooling water into the cylinders 3 at maximum power to maintain a lambda value of the air to fuel ratio at 1 and cool the engine at maximum load points.
[0033]
[0034] The converter part 14a of the unit 14 may be formed by a three way catalyst (TWC) and is shown in
[0035]