WO2017101965A1 - An internal combustion engine system and a method for an internal combustion engine system - Google Patents

An internal combustion engine system and a method for an internal combustion engine system Download PDF

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Publication number
WO2017101965A1
WO2017101965A1 PCT/EP2015/079580 EP2015079580W WO2017101965A1 WO 2017101965 A1 WO2017101965 A1 WO 2017101965A1 EP 2015079580 W EP2015079580 W EP 2015079580W WO 2017101965 A1 WO2017101965 A1 WO 2017101965A1
Authority
WO
WIPO (PCT)
Prior art keywords
expander
exhaust
exhaust gases
piston
treatment device
Prior art date
Application number
PCT/EP2015/079580
Other languages
French (fr)
Inventor
Lennart Andersson
Arne Andersson
Bengt Johansson
Nhut LAM
Staffan Lundgren
Original Assignee
Volvo Truck Corporation
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Volvo Truck Corporation filed Critical Volvo Truck Corporation
Priority to PCT/EP2015/079580 priority Critical patent/WO2017101965A1/en
Priority to PCT/EP2016/080934 priority patent/WO2017102813A2/en
Priority to CN201680073107.6A priority patent/CN108368771A/en
Priority to US16/060,969 priority patent/US10774734B2/en
Priority to EP16812727.2A priority patent/EP3390791B1/en
Publication of WO2017101965A1 publication Critical patent/WO2017101965A1/en
Priority to US17/001,954 priority patent/US11286847B2/en

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B41/00Engines characterised by special means for improving conversion of heat or pressure energy into mechanical power
    • F02B41/02Engines with prolonged expansion
    • F02B41/06Engines with prolonged expansion in compound cylinders
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01BMACHINES OR ENGINES, IN GENERAL OR OF POSITIVE-DISPLACEMENT TYPE, e.g. STEAM ENGINES
    • F01B1/00Reciprocating-piston machines or engines characterised by number or relative disposition of cylinders or by being built-up from separate cylinder-crankcase elements
    • F01B1/06Reciprocating-piston machines or engines characterised by number or relative disposition of cylinders or by being built-up from separate cylinder-crankcase elements with cylinders in star or fan arrangement
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N13/00Exhaust or silencing apparatus characterised by constructional features ; Exhaust or silencing apparatus, or parts thereof, having pertinent characteristics not provided for in, or of interest apart from, groups F01N1/00 - F01N5/00, F01N9/00, F01N11/00
    • F01N13/009Exhaust or silencing apparatus characterised by constructional features ; Exhaust or silencing apparatus, or parts thereof, having pertinent characteristics not provided for in, or of interest apart from, groups F01N1/00 - F01N5/00, F01N9/00, F01N11/00 having two or more separate purifying devices arranged in series
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N13/00Exhaust or silencing apparatus characterised by constructional features ; Exhaust or silencing apparatus, or parts thereof, having pertinent characteristics not provided for in, or of interest apart from, groups F01N1/00 - F01N5/00, F01N9/00, F01N11/00
    • F01N13/009Exhaust or silencing apparatus characterised by constructional features ; Exhaust or silencing apparatus, or parts thereof, having pertinent characteristics not provided for in, or of interest apart from, groups F01N1/00 - F01N5/00, F01N9/00, F01N11/00 having two or more separate purifying devices arranged in series
    • F01N13/0097Exhaust or silencing apparatus characterised by constructional features ; Exhaust or silencing apparatus, or parts thereof, having pertinent characteristics not provided for in, or of interest apart from, groups F01N1/00 - F01N5/00, F01N9/00, F01N11/00 having two or more separate purifying devices arranged in series the purifying devices are arranged in a single housing
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N3/00Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust
    • F01N3/02Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for cooling, or for removing solid constituents of, exhaust
    • F01N3/021Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for cooling, or for removing solid constituents of, exhaust by means of filters
    • F01N3/033Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for cooling, or for removing solid constituents of, exhaust by means of filters in combination with other devices
    • F01N3/035Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for cooling, or for removing solid constituents of, exhaust by means of filters in combination with other devices with catalytic reactors, e.g. catalysed diesel particulate filters
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N3/00Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust
    • F01N3/08Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for rendering innocuous
    • F01N3/10Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for rendering innocuous by thermal or catalytic conversion of noxious components of exhaust
    • F01N3/103Oxidation catalysts for HC and CO only
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N3/00Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust
    • F01N3/08Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for rendering innocuous
    • F01N3/10Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for rendering innocuous by thermal or catalytic conversion of noxious components of exhaust
    • F01N3/18Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for rendering innocuous by thermal or catalytic conversion of noxious components of exhaust characterised by methods of operation; Control
    • F01N3/20Exhaust or silencing apparatus having means for purifying, rendering innocuous, or otherwise treating exhaust for rendering innocuous by thermal or catalytic conversion of noxious components of exhaust characterised by methods of operation; Control specially adapted for catalytic conversion ; Methods of operation or control of catalytic converters
    • F01N3/2066Selective catalytic reduction [SCR]
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B33/00Engines characterised by provision of pumps for charging or scavenging
    • F02B33/02Engines with reciprocating-piston pumps; Engines with crankcase pumps
    • F02B33/06Engines with reciprocating-piston pumps; Engines with crankcase pumps with reciprocating-piston pumps other than simple crankcase pumps
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B33/00Engines characterised by provision of pumps for charging or scavenging
    • F02B33/02Engines with reciprocating-piston pumps; Engines with crankcase pumps
    • F02B33/06Engines with reciprocating-piston pumps; Engines with crankcase pumps with reciprocating-piston pumps other than simple crankcase pumps
    • F02B33/20Engines with reciprocating-piston pumps; Engines with crankcase pumps with reciprocating-piston pumps other than simple crankcase pumps with pumping-cylinder axis arranged at an angle to working-cylinder axis, e.g. at an angle of 90 degrees
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B33/00Engines characterised by provision of pumps for charging or scavenging
    • F02B33/02Engines with reciprocating-piston pumps; Engines with crankcase pumps
    • F02B33/06Engines with reciprocating-piston pumps; Engines with crankcase pumps with reciprocating-piston pumps other than simple crankcase pumps
    • F02B33/22Engines with reciprocating-piston pumps; Engines with crankcase pumps with reciprocating-piston pumps other than simple crankcase pumps with pumping cylinder situated at side of working cylinder, e.g. the cylinders being parallel
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B37/00Engines characterised by provision of pumps driven at least for part of the time by exhaust
    • F02B37/004Engines characterised by provision of pumps driven at least for part of the time by exhaust with exhaust drives arranged in series
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B37/00Engines characterised by provision of pumps driven at least for part of the time by exhaust
    • F02B37/04Engines with exhaust drive and other drive of pumps, e.g. with exhaust-driven pump and mechanically-driven second pump
    • F02B37/10Engines with exhaust drive and other drive of pumps, e.g. with exhaust-driven pump and mechanically-driven second pump at least one pump being alternatively or simultaneously driven by exhaust and other drive, e.g. by pressurised fluid from a reservoir or an engine-driven pump
    • F02B37/105Engines with exhaust drive and other drive of pumps, e.g. with exhaust-driven pump and mechanically-driven second pump at least one pump being alternatively or simultaneously driven by exhaust and other drive, e.g. by pressurised fluid from a reservoir or an engine-driven pump exhaust drive and pump being both connected through gearing to engine-driven shaft
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B37/00Engines characterised by provision of pumps driven at least for part of the time by exhaust
    • F02B37/12Control of the pumps
    • F02B37/24Control of the pumps by using pumps or turbines with adjustable guide vanes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B75/00Other engines
    • F02B75/16Engines characterised by number of cylinders, e.g. single-cylinder engines
    • F02B75/18Multi-cylinder engines
    • F02B75/22Multi-cylinder engines with cylinders in V, fan, or star arrangement
    • F02B75/222Multi-cylinder engines with cylinders in V, fan, or star arrangement with cylinders in star arrangement
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B75/00Other engines
    • F02B75/16Engines characterised by number of cylinders, e.g. single-cylinder engines
    • F02B75/18Multi-cylinder engines
    • F02B75/22Multi-cylinder engines with cylinders in V, fan, or star arrangement
    • F02B75/227Multi-cylinder engines with cylinders in V, fan, or star arrangement with cylinder banks in X-arrangement, e.g. double-V engines
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02DCONTROLLING COMBUSTION ENGINES
    • F02D41/00Electrical control of supply of combustible mixture or its constituents
    • F02D41/02Circuit arrangements for generating control signals
    • F02D41/021Introducing corrections for particular conditions exterior to the engine
    • F02D41/0235Introducing corrections for particular conditions exterior to the engine in relation with the state of the exhaust gas treating apparatus
    • F02D41/024Introducing corrections for particular conditions exterior to the engine in relation with the state of the exhaust gas treating apparatus to increase temperature of the exhaust gas treating apparatus
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02GHOT GAS OR COMBUSTION-PRODUCT POSITIVE-DISPLACEMENT ENGINE PLANTS; USE OF WASTE HEAT OF COMBUSTION ENGINES; NOT OTHERWISE PROVIDED FOR
    • F02G5/00Profiting from waste heat of combustion engines, not otherwise provided for
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02DCONTROLLING COMBUSTION ENGINES
    • F02D41/00Electrical control of supply of combustible mixture or its constituents
    • F02D41/0002Controlling intake air
    • F02D2041/001Controlling intake air for engines with variable valve actuation
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02DCONTROLLING COMBUSTION ENGINES
    • F02D2200/00Input parameters for engine control
    • F02D2200/02Input parameters for engine control the parameters being related to the engine
    • F02D2200/08Exhaust gas treatment apparatus parameters
    • F02D2200/0802Temperature of the exhaust gas treatment apparatus
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02ATECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
    • Y02A50/00TECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE in human health protection, e.g. against extreme weather
    • Y02A50/20Air quality improvement or preservation, e.g. vehicle emission control or emission reduction by using catalytic converters
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T10/00Road transport of goods or passengers
    • Y02T10/10Internal combustion engine [ICE] based vehicles
    • Y02T10/12Improving ICE efficiencies

Definitions

  • the invention relates to an internal combustion engine system, a combined compressor and expander for an internal combustion engine system, a method for an internal combustion engine system, a computer program, a computer readable medium, and a control unit.
  • the invention can be applied in heavy-duty vehicles, such as trucks, buses and construction equipment, e.g. working machines.
  • the invention can also be applied to cars.
  • the invention will be described with respect to a truck, the invention is not restricted to this particular vehicle type.
  • US2010300385 discloses an engine with two stages of compression and two stages of expansion, where an oxidation catalyst is positioned between a power cylinder and an expander cylinder.
  • an oxidation catalyst is positioned between a power cylinder and an expander cylinder.
  • SCR exhaust treatment processes
  • An object of the invention is to reduce emissions from an internal combustion engine with a compressor, a combustor and an expander.
  • An object of the invention is also to provide an internal combustion engine system with a compressor, a combustor and an expander, which provides an effective treatment of exhaust gases, while avoiding large increases of the volume and/or weight of the engine system.
  • an internal combustion engine system comprising
  • a first expander arranged to receive exhaust gases from at least one of the at least one combustor, and to expand and extract energy from the exhaust gases
  • system comprises a second expander arranged to receive exhaust gases from the first expander, and to expand and extract energy from the exhaust gases.
  • the invention provides for the expansion of the engine system being done in at least three steps. In turn this provides for providing two different temperature ranges, one upstream of the first expander, and one between the first and second expanders. Thereby the engine system may provide a plurality of simultaneous temperature ranges, each suitable for one or more respective exhaust treatment processes.
  • the system may advantageously be provided with an exhaust treatment device arranged to receive exhaust gases from the first expander, to process the received exhaust gases, and to deliver the processed exhaust gases to the second expander.
  • an exhaust treatment device arranged to receive exhaust gases from the first expander, to process the received exhaust gases, and to deliver the processed exhaust gases to the second expander.
  • the exhaust treatment device in a form, e.g. as a selective catalytic reduction (SCR) catalyst, requiring a temperature range which is lower than the temperature range upstream of the first expander.
  • the temperature range between the expanders may be kept higher than in a portion of an exhaust system communicating directly with the atmosphere, e.g. a vehicle tail pipe; however, the temperature range between the expanders may be kept lower than between the combustor and the first expander.
  • the exhaust treatment device is an SCR catalyst
  • the position in the elevated temperature between the expanders allows for a smaller SCR than if it would be positioned in the tailpipe.
  • This makes it possible to provide the SCR catalyst as a cheap catalyst for nitrogen oxide (NOx) reduction in a temperature range 300-450C with a high conversion.
  • the catalyst size may be reduced, which reduces the volume and weight of the engine system.
  • the system comprises an injector arranged to inject reductant for the exhaust treatment device, upstream of the first expander or into the first expander.
  • the timing and/or duration of the reductant injections by the injector may be coordinated with the actuation of an inlet valve of the first expander.
  • the reductant may be a solution of urea or another reductant useful for lowering particulant emissions and/or nitrogen oxide emissions from the engine.
  • the reductant may a solution of organic and inorganic nitrogen compounds.
  • the system comprises in addition to said exhaust treatment device a pre- expander exhaust treatment device arranged to receive exhaust gases from the combustor, to provide an exhaust treatment process to the exhaust gases, and to deliver processed exhaust gases to the first expander.
  • the pre-expander exhaust treatment device may comprise an oxidation catalyst, and/or a particulate filter.
  • the particulate filter may be located downstream of the oxidation catalyst.
  • the system may further be arranged so that during an operation thereof, the pre-expander exhaust treatment device presents a temperature within the range of 550-800 5 C.
  • the first expander is arranged to receive processed or unprocessed exhaust gases from the combustor. Exhaust gases are herein understood as being processed if they are received from an exhaust treatment device.
  • the system comprises a crankshaft
  • the combustor comprises a piston arranged to reciprocate in a cylinder, and to drive the crankshaft.
  • the system may comprise a plurality of combustors, each comprising a piston arranged to reciprocate in a respective cylinder, whereby the piston are all arranged to drive the crankshaft.
  • the first expander is preferably a piston expander arranged to drive the crankshaft with the extracted energy.
  • the second expander is preferably a piston expander arranged to drive the crankshaft with the extracted energy.
  • the system may comprise at least one compressor, which may be a piston compressor, arranged to be driven by the crankshaft.
  • the invention may be advantageously implemented in a multistage compression and expansion engine where the compressor(s) and the expanders are connected to the crankshaft. Such a connection may be direct or indirect, as exemplified below. Thereby, the system may present a high efficiency.
  • the expanders may provide 30-50%, e.g.
  • the compressor(s) may take 10-20% of the total power of the engine.
  • the second expander may comprise a turbine arranged to drive the compressor or an additional compressor.
  • the system may be provided with a high power density.
  • an additional compressor may be arranged to deliver compressed air to said compressor arranged to compress air for at least one of the at least one combustor.
  • an advantageous three step compression may be provided.
  • the system comprises a crankshaft, and a compressor arranged to compress air for at least one of the at least one combustor
  • the compressor and one of the first expander and the second expander are integrated so as to share a piston which is connected to the crankshaft.
  • the compressor and the one of the first expander and the second expander may form a combined compressor and expander whereby the piston is arranged to reciprocate in a shared cylinder
  • the combined compressor and expander being arranged to admit air to the shared cylinder, on a first side of the piston, and to compress the air, by means of the piston, for the combustor,
  • the combined compressor and expander further being adapted to admit the exhaust gases, received by the one of the first expander and the second expander, to the shared cylinder, on a second side of the piston, to expand the exhaust gases by means of the piston.
  • the shared piston makes it possible to use the urge of the piston by the expander to deliver, in addition to power to the crankshaft, power for the air compression in a direct manner. More specifically, the exhaust gases may provide a direct pressure on the shared piston in turn serving to directly exert a direct pressure on the air. Thereby, mechanical losses for the transfer of this energy is substantially eliminated. Also, compared to providing the compressor and expander separately, the compressor and expander combination results in a reduced number of parts, since the piston and the cylinder are shared, thereby reducing the volume, weight, complexity and cost of the engine system.
  • the combustor comprises an exhaust valve, the system further comprising a variable valve timing mechanism arranged to actuate the exhaust valve.
  • the first expander comprises an expander exhaust valve
  • the system further comprising an expander variable valve timing mechanism arranged to actuate the expander exhaust valve.
  • an expander variable valve timing mechanism arranged to actuate the expander exhaust valve.
  • the first expander may comprise a hydrolysing reactor.
  • the system comprises, as described above, an injector arranged to inject reductant for an exhaust treatment device, upstream of the first expander or into the first expander.
  • the reductant comprises urea
  • the first expander may promote thermolysis of the urea to decompose it into isocyanate and ammonia before it reaches the catalyst. Thereupon the isocyanate may be processed by hydrolysis to provide ammonia. Injecting the reductant upstream of the first expander or into the first expander may support the thermolysis and the hydrolysis, since these processes will be enhanced by the heat therein.
  • the first expander may also provide a beneficial thorough mixing of the reductant with the exhaust gases.
  • an injector may be arranged to inject reductant downstream of the first expander.
  • an exhaust treatment device such as an SCR catalyst may be provided downstream of the second expander. This may provide a relatively long flow path for the reductant, past the second expander, to allow a good mix of the reductant and the exhaust gases.
  • the invention also provides a combined compressor and expander for an internal combustion engine system, comprising
  • a piston adapted to be connected to a crankshaft of the engine system, and arranged to reciprocate in the cylinder
  • the combined compressor and expander being adapted to admit air to the
  • the combined compressor and expander further being adapted to admit
  • exhaust gases obtained from a combustion process of the engine system and/or an exhaust gas treatment process of the engine system, to the cylinder, on a second side of the piston, to expand the exhaust gases by means of the piston to extract energy from the expanded exhaust gases.
  • the compressor and expander are integrated with each other, and one cylinder and piston combination may be used for both compression and expansion.
  • the power extracted by the expander will contribute to driving the crankshaft and/or to compress the air.
  • the air compression process may be driven by the crankshaft and/or the exhaust gas expansion.
  • the compressor and expander combination results in a reduced number of parts, since the piston and the cylinder are shared, thereby reducing the volume, weight, complexity and cost of the engine system.
  • a method for an internal combustion engine system comprising a combustor arranged to combust air and fuel, an expander arranged to receive, expand and extract energy from exhaust gases from the combustor, and to expel the exhaust gases from the expander by means of an expander exhaust valve, and an exhaust treatment device arranged to receive the expelled exhaust gases from the expander and to process the exhaust gases, the method comprising controlling the expander exhaust valve to control the temperature of the process in the exhaust treatment device.
  • Said control of the expander exhaust valve may comprise controlling the temperature of the process in the exhaust treatment device to be within the range of 300-450 5 C.
  • the method provides an effective manner of controlling the temperature of the exhaust treatment device, for keeping it within a range that is beneficial to the process therein.
  • the distribution of exhaust treatment devices on both sides of the expander, as exemplified elsewhere herein, along with the control of the expander exhaust valves, provides an advantageous way of adapting the temperatures along the path of the exhaust gases for optimizing the processes in the exhaust treatment devices.
  • the objects are also reached with a method for an internal combustion engine system comprising a combustor arranged to combust air and fuel, an expander arranged to receive, expand and extract energy from exhaust gases from the combustor, the expander comprising an inlet valve, and an exhaust treatment device arranged to receive the exhaust gases from the expander and to process the exhaust gases, the method comprising
  • timing and/or the duration of said reductant injection is coordinated with said control of the expander inlet valve so as for the reductant and the exhaust gases to mix in the expander.
  • an injector may be arranged for said reductant injection.
  • the method will provide good mixing of the reductant with the exhaust gases.
  • Said reductant injection is preferably provided so that the injected reductant flows past the open expander inlet valve.
  • the reductant injection is commenced simultaneously with or after the opening of the expander inlet valve has commenced, and the reductant injection is terminated simultaneously with or before the closing of the expander inlet valve has been finalized.
  • Fig. 1 is a partially sectioned side view of a vehicle in the form of a truck.
  • Fig. 2 is a schematic perspective view of an engine system in the vehicle in fig. 1 .
  • Fig. 3 is a schematic cross-sectional view of the engine system in fig. 2.
  • Fig. 4 is a flow diagram depicting steps in a method carried out in the system in fig. 3.
  • Fig. 5 is a schematic cross-sectional view of an engine system according to an alternative embodiment of the invention.
  • Fig. 6 is a schematic cross-sectional view of an engine system according to another alternative embodiment of the invention.
  • Fig. 7 is a schematic cross-sectional view of an engine system according to yet a further embodiment of the invention.
  • Fig. 1 shows a vehicle in the form of a truck, or a tractor for a semitrailer. It should be noted however that the invention is applicable to a variety of alternative types of vehicles, such as a car, a bus, or a working machine such as a wheel loader.
  • the vehicle comprises an internal combustion engine system 1 .
  • the engine system 1 comprises a multi-stage compression and expansion internal combustion engine.
  • the engine comprises three combustors 3, in the form of cylinders with pistons, and three piston compressors 9.
  • the system further comprises an air guide 901 arranged to guide compressed air from the compressors 9 to the combustors 3.
  • the air guide is provided with an air buffer container 902, arranged to receive compressed air from the compressors 9, to provide an air buffer volume for the compressed air, and to deliver the compressed air to the combustors 3.
  • the system further comprises three first piston expanders 4 arranged to expand exhaust gases from the combustors 3 and to extract energy from the expanded exhaust gases.
  • An exhaust guide 701 is arranged to guide exhaust gases from the combustors 3 to the first expanders 4.
  • the exhaust guide 701 comprises a pre-expander exhaust treatment device 10 7 described closer below.
  • the system further comprises a post-expander exhaust treatment device 6 in the form of a selective catalytic reduction (SCR) catalyst.
  • SCR catalyst 6 is arranged to receive exhaust gases from the first expander 4 and to provide an exhaust treatment process to 15 the received exhaust gases, which process reduces nitrogen oxides (NOx) as is known per se.
  • Three second piston expanders 5 are arranged to receive and expand exhaust gases from the SCR catalyst 6 and to extract energy from the expanded exhaust gases.
  • the engine system may comprise any suitable number of combustors 20 3, compressors 9, first expanders 4, and second expanders 5.
  • each combustor 3 is arranged to reciprocate in the respective cylinder 302, whereby the pistons 25 are all arranged to drive a crankshaft 2 of the engine.
  • the combustor 3, the compressor 9, and the first expander 4 are shown as all being located in the same cross- sectional plane; in a real implementation of the embodiment, the combustor 3, the compressor 9, and the first expander 4 are preferably offset in relation to each other along the crankshaft 2.
  • the pistons 401 of the first expanders 4 are arranged to drive the crankshaft 2 with the energy extracted from the exhaust gases from the combustors 3.
  • the pistons 501 of the second expanders 5 are arranged to drive the crankshaft 2 with the energy extracted from the exhaust gases from the first expanders 4 and the SCR catalyst 6.
  • the pistons The pre-expander exhaust treatment device 7 is arranged to provide an exhaust treatment process to the exhaust gases from the combustor 3.
  • the pre-expander exhaust treatment device 7 comprises an oxidation catalyst 7, and a particulate filter 8 located downstream 5 of the oxidation catalyst 7.
  • the engine system comprises a control unit 15 arranged to control various function of the system as described below.
  • the combustors 3 are provided with respective sets of combustor inlet and outlet valves 303, 304, arranged to be actuated by a combustor valve actuator assembly 306.
  • the outlet valve 304 is herein also referred to as an exhaust valve 304.
  • the combustor valve actuator assembly 306 may be arranged to actuate the combustor inlet and outlet valves 303, 304 in any manner known per se, e.g. with cams mounted on camshafts.
  • combustor valve actuator assembly 306 is controllable by the control unit 15, to adjust the timing and the maximum movements of the combustor inlet and outlet valves 303, 304, in any manner known per se.
  • the combustor valve actuator assembly 306 is herein also referred to as a variable valve timing mechanism 306.
  • the combustors 3 are provided with respective fuel injectors 305 for injecting a fuel into the cylinders 302.
  • the fuel may be of any suitable type, e.g. diesel, methane e.g. in liquid natural gas (LNG), gasoline, etc.
  • the fuel injectors 305 are controllable by the control unit 15.
  • the combustors 3 are arranged to provide a Diesel cycle to extract work from the air and fuel provided.
  • the invention is equally applicable
  • the engine system may be provided with means for air mass flow control, such as variable inlet and outlet valves 913, 914 of the compressors 9, described further below, for controlling the air supply to the combustors 3.
  • means for air mass flow control may comprise one or more throttles for controlling the air supply to the combustors 3.
  • the engine system may be provided with spark plugs in the
  • the first expanders 4 are provided with respective sets of first expander inlet and outlet valves 403, 404, arranged to be actuated by a first expander valve actuator assembly 35 406, including e.g. cams mounted on camshafts.
  • the first expander valve actuator assembly 406 is controllable by the control unit 15, to adjust the timing and the maximum movements of the first expander inlet and outlet valves 403, 404.
  • the first expander valve actuator assembly 406 is herein also referred to as an expander variable valve timing mechanism 406.
  • the second expanders 5 are provided with respective sets of second expander inlet and outlet valves 503, 504, arranged to be actuated by a second expander valve actuator assembly 506, including e.g. cams mounted on camshafts.
  • the second expander valve actuator assembly 506 is controllable by the control unit 15, to adjust the timing and 10 the maximum movements of the second expander inlet and outlet valves 503, 504.
  • compressors 9 are provided with respective sets of said compressor inlet and outlet valves 913, 914, arranged to be actuated by a compressor valve actuator assembly 916, including e.g. cams mounted on camshafts.
  • a compressor valve actuator assembly 916 including e.g. cams mounted on camshafts.
  • actuator assembly 916 is controllable by the control unit 15, to adjust the timing and the maximum movements of the compressor inlet and outlet valves 913, 914.
  • the system also comprises three injectors 8 arranged to inject reductant for the SCR catalyst 6.
  • Each injector 10 is arranged to inject the reductant downstream of the pre-
  • the injectors 8 are controllable by the control unit 15, to control the timing, the flow and the duration of the redundant injections.
  • control unit 15 is arranged to control the timing and duration of the reductant injections so that they are coordinated with the actuations of the first expander
  • each injector 8 is arranged to inject the reductant directly into the respective exhaust first expander 4.
  • a single reductant injector may be provided, e.g. where the engine 30 system is provided with a single first expander 4 arranged to receive exhaust gases from a plurality of combustors 3.
  • the single reductant injector may be thereby be arranged to inject the reductant upstream of, or into the single first expander.
  • the control unit 15 is also arranged to receive signals from a mass air flow (MAF) sensor 35 141 , located in an air intake system 921 located upstream of the compressors 9 and arranged to guide air to the compressors 9.
  • the control unit 15 is arranged to determine the load of the engine during its operation in the vehicle, as is known per se, e.g. based on signals from the MAF sensor 702, an accelerator pedal position (APP) sensor, (not shown), and/or a manifold absolute pressure (MAP) sensor (not shown) in the air intake 5 system 921 .
  • MAF mass air flow
  • APP accelerator pedal position
  • MAP manifold absolute pressure
  • the control unit 15 is further arranged to receive signals from a first temperature sensor
  • the control unit 15 is arranged to determine the temperature in the pre-expander exhaust treatment device 7,
  • the control unit 15 is also arranged to receive signals from a second temperature sensor
  • the control unit 15 is arranged to determine the temperature in the post-expander exhaust treatment device 6,
  • the air guide 901 may present a pressure within the range of 8-12 bar and a temperature within the range of 20 250-350 5 C.
  • the method involves controlling the temperature of the process in the pre- expander exhaust treatment device 7.
  • the control unit 15 determines S1 the load of the engine system, as described above.
  • the method involves controlling the injector 8, to inject S4 redundant upstream of the first expander for the post-expander exhaust treatment device.
  • the timing and duration of the reductant injections are coordinated with the actuations of the first expander inlet valve 403, in order to enable good mixing of the reductant with the exhaust gases in the expander.
  • the method also involves controlling the temperature of the process in the post-expander exhaust treatment device 6.
  • the control unit 15 determines S5 the temperature of the post-expander exhaust treatment device 6, as described above.
  • the first expander outlet valves 404 are controlled S6 in the first expander cycles so as to control the post-expander exhaust treatment device
  • the expansion ratio of the first expanders 4 will be reduced, and some heat is distributed from providing power for the first expander crankshaft drive to providing heat to the post-expander exhaust treatment device 6. Thereby, the temperature of the post-expander exhaust treatment device 6 may be increased. Also, energy not absorbed by the first expanders 4 due to the reduced expansion ratio, may be absorbed by the second expanders 5. By opening the first expander outlet valves 404 relatively late in the cycles, the heat escape from the first expanders 4 may be reduced, whereby the temperature of the post-expander exhaust treatment device 6 may be decreased.
  • the controller 14 periodically repeats said steps of engine load determination S1 , reductant injection S4, post-expander exhaust treatment device temperature determination S5, and first expander outlet valve control S6.
  • the pre-expander exhaust treatment device 7 suitably presents a temperature within the range of 550-800 5 C and a pressure within the range of 10-25 bar.
  • the method provides an effective manner of controlling the temperature of the post-expander exhaust treatment device 6, for keeping it within a range that is beneficial to the processes therein.
  • the post-expander exhaust treatment device 6 suitably presents a temperature within the range of 300-450 5 C. More generally, the method provides an advantageous distribution and control of the
  • the compressor 9 may be arranged to compress the air to a volumetric ratio of 1 :1 -1 :8, preferably 1 :4-1 :6, in dependence on the actuation of the variable compressor inlet and outlet valves 913, 914.
  • the combustors 3 may be arranged to compress the air from the compressors to a ratio of 1 :8-1 :14, preferably 1 :10-1 :12, and to expand the gases in the combustors 3 by a ratio of 1 :4-1 :14, preferably 1 :10-1 :12, in dependence on the actuation of the variable combustor inlet and outlet valves 303, 304.
  • the first expander 4 may be arranged to expand the exhaust gases with a ratio of 1 :2-1 :6, preferably 1 :3-1 :4, and the second expander 5 may be arranged to expand the exhaust gases with a ratio of 1 :2-1 :6, preferably 1 :2-1 :3, in dependence on the actuation of the variable first and second expander inlet and outlet valves 403, 404, 503, 504.
  • the first expander expansion ratio may be adjusted to control the temperature of the post-expander exhaust treatment device 6. It should be noted that in embodiments of the invention, any of the compression and expansion ratios may be outside the intervals mentioned above.
  • fig. 5 showing an engine system according to an alternative embodiment of the invention. This embodiment shares essential features with the embodiment described with reference to fig. 2 - fig. 4. However, some further
  • each pair of a second expander 5 and a compressor 9 are integrated so as to share a piston 591 which is connected to the crankshaft 2.
  • the compressors 9 and the second expanders 5 form three compressor and expander combinations 5, 9, in which the pistons 591 is arranged to reciprocate in shared cylinders 592.
  • compressor and expander combination 5, 9, herein also referred to as a combined compressor and expander 5, 9, presents on a first side of the piston 591 a first head 595, and compressor inlet and outlet valves 913, 914, arranged to be actuated by a
  • compressor valve actuator assembly (not shown), similarly to the compressor inlet and outlet valves 913, 914 in the embodiment in fig. 3.
  • the compressor and expander combination 5, 9 also presents on a second side of the piston 591 a second head 596, and second expander inlet and outlet valves 503, 504, arranged to be actuated by a second expander valve actuator assembly, (not shown), similarly to the second expander inlet and outlet valves 913, 914 in the embodiment in fig. 3.
  • the piston is connected to the crankshaft 2 via a connecting rod 593 and an extension rod 594.
  • the extension rod connects the piston 591 with the connecting rod 593, and extends with a tight fit through an opening in the second head 596. Said tight fit may be
  • the compressor and expander combination 5, 9 is arranged to admit, by actuation of the compressor inlet valve 913, air to the shared cylinder 592, on the first side of the piston 591 .
  • the compressor and expander combination 5, 9 is further arranged to compress the air by the piston movement caused by the crankshaft rotation.
  • the compressor and expander combination 5, 9 is further adapted to admit, by actuation of the second expander inlet valve 503, exhaust gases, received from the first expander 4 and the post- expander exhaust treatment device 6, on the second side of the piston 591 .
  • the compressor and expander combination 5, 9 is arranged to expand the admitted exhaust gases, thereby urging the piston 591 towards the first heat 595.
  • the compressor and expander combination 5, 9 is arranged to deliver energy for the air compression in a direct manner. More specifically, the exhaust gases provides a direct pressure on the shared piston 591 in turn serving to directly exert a direct pressure on the air. Thereby, mechanical losses for the transfer of this energy is substantially eliminated. Also, compared to providing the compressor and expander separately, the compressor and expander combination 5, 9 results in a reduced number of parts, since the piston 591 and the cylinder 592 are shared, thereby reducing the complexity and cost of the engine system 1 .
  • the compressor 9 and the first expander 4 may be integrated so as to share a piston which is connected to the crankshaft 2, similarly to what is described with reference to fig. 5.
  • inlet and outlet valves 303, 304, 403, 404, 503, 504, 913, 914 in the drawings are depicted as poppet valves, any one of them may be provided in any suitable alternative form, such as a sleeve valve.
  • fig. 6 showing an engine system according to a further alternative embodiment of the invention. This embodiment shares essential features with the embodiment described with reference to fig. 2 - fig. 4. However, some further
  • the pistons of the compressors 9, the first expanders 4, and the second expanders 5 are indirectly connected to the crankshaft 2.
  • the invention is applicable also to engine systems, where pistons of the compressors 9 and the first expanders 4 are indirectly connected to the crankshaft 2, via an additional crankshaft 2b and a chain or belt connection 201 , as shown in fig. 6.
  • the pistons of the compressors 9 and the first expanders 4 are directly connected to the additional crankshaft 2b, and the chain or belt connection 201 is provided between the crankshafts 2, 2b.
  • Any suitable type of connection between the crankshafts 2, 2b may be provided.
  • a toothed gear wheel connection between the crankshafts 2, 2b may be provided.
  • the second expander 5 comprises a piston arranged to drive a further crankshaft 2c connected to the additional crankshaft 2b, via a further chain or belt connection 202.
  • the system also comprises an additional compressor 19 with a piston connected to the further crankshaft 2c.
  • the additional compressor 19 is located upstream of the piston compressor 9, and is arranged to provide an additional compression step.
  • the second expander 5 comprises a turbine arranged to drive an additional compressor 19.
  • the additional compressor 19 is provided in the form of a centrifugal compressor 19, which is directly connected by means of a shaft to the turbine of the second expander.
  • the additional compressor is located upstream of the piston compressor 9, and is arranged to provide an additional compression step.

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Abstract

The invention provides an internal combustion engine system (1) comprising - at least one combustor (3), and - a first expander (4) arranged to receive exhaust gases from at least one of the at least one combustor (3), and to expand and extract energy from the exhaust gases, - characterized in that the system comprises a second expander (5) arranged to receive exhaust gases from the first expander (4), and to expand and extract energy from the exhaust gases.

Description

AN INTERNAL COMBUSTION ENGINE SYSTEM AND A METHOD FOR AN INTERNAL
COMBUSTION ENGINE SYSTEM
TECHNICAL FIELD
The invention relates to an internal combustion engine system, a combined compressor and expander for an internal combustion engine system, a method for an internal combustion engine system, a computer program, a computer readable medium, and a control unit. The invention can be applied in heavy-duty vehicles, such as trucks, buses and construction equipment, e.g. working machines. The invention can also be applied to cars. Although the invention will be described with respect to a truck, the invention is not restricted to this particular vehicle type. BACKGROUND
It is known that internal combustion engines with two stages of compression and two stages of expansion, e.g. by a compressor, a combustor and an expander, may provide for reaching very high pressures and for extracting more energy from the fuel. However, a highly efficient vehicle engine may have very cool tailpipe exhaust, which may prevent or reduce the efficiency of exhaust treatment processes provided by exhaust treatment devices such as catalytic converters of various types. For certain processes, e.g. selective catalytic reduction (SCR), it is possible to compensate for low temperatures by providing large exhaust treatment devices; however, this will increase the weight and volume of the engine system, which may be a problem, particularly in vehicles, where often there are demanding space requirements.
US2010300385 discloses an engine with two stages of compression and two stages of expansion, where an oxidation catalyst is positioned between a power cylinder and an expander cylinder. However, for many exhaust treatment processes, e.g. SCR, such a location provides temperatures which are too high. SUMMARY
An object of the invention is to reduce emissions from an internal combustion engine with a compressor, a combustor and an expander. An object of the invention is also to provide an internal combustion engine system with a compressor, a combustor and an expander, which provides an effective treatment of exhaust gases, while avoiding large increases of the volume and/or weight of the engine system.
The objects are reached with an internal combustion engine system comprising
- at least one combustor, and
- a first expander arranged to receive exhaust gases from at least one of the at least one combustor, and to expand and extract energy from the exhaust gases,
- characterized in that the system comprises a second expander arranged to receive exhaust gases from the first expander, and to expand and extract energy from the exhaust gases.
The invention provides for the expansion of the engine system being done in at least three steps. In turn this provides for providing two different temperature ranges, one upstream of the first expander, and one between the first and second expanders. Thereby the engine system may provide a plurality of simultaneous temperature ranges, each suitable for one or more respective exhaust treatment processes.
Thus, the system may advantageously be provided with an exhaust treatment device arranged to receive exhaust gases from the first expander, to process the received exhaust gases, and to deliver the processed exhaust gases to the second expander. Thereby, it is possible to provide the exhaust treatment device in a form, e.g. as a selective catalytic reduction (SCR) catalyst, requiring a temperature range which is lower than the temperature range upstream of the first expander. In particular, the temperature range between the expanders may be kept higher than in a portion of an exhaust system communicating directly with the atmosphere, e.g. a vehicle tail pipe; however, the temperature range between the expanders may be kept lower than between the combustor and the first expander.
In a vehicle, where the exhaust treatment device is an SCR catalyst, the position in the elevated temperature between the expanders allows for a smaller SCR than if it would be positioned in the tailpipe. This makes it possible to provide the SCR catalyst as a cheap catalyst for nitrogen oxide (NOx) reduction in a temperature range 300-450C with a high conversion. Specifically, the catalyst size may be reduced, which reduces the volume and weight of the engine system.
Advantageously, the system comprises an injector arranged to inject reductant for the exhaust treatment device, upstream of the first expander or into the first expander.
Thereby, the timing and/or duration of the reductant injections by the injector may be coordinated with the actuation of an inlet valve of the first expander. This will provide good mixing of the reductant with the exhaust gases. It is understood that the reductant may be a solution of urea or another reductant useful for lowering particulant emissions and/or nitrogen oxide emissions from the engine. The reductant may a solution of organic and inorganic nitrogen compounds. Preferably, the system comprises in addition to said exhaust treatment device a pre- expander exhaust treatment device arranged to receive exhaust gases from the combustor, to provide an exhaust treatment process to the exhaust gases, and to deliver processed exhaust gases to the first expander. The pre-expander exhaust treatment device may comprise an oxidation catalyst, and/or a particulate filter. Where both are provided, the particulate filter may be located downstream of the oxidation catalyst. The system may further be arranged so that during an operation thereof, the pre-expander exhaust treatment device presents a temperature within the range of 550-8005C. Thereby, an advantageous distribution of exhaust treatment devices along the path of the exhaust gases may be provided, giving different temperatures which are each optimized for the respective exhaust treatment device.
It is understood that depending on the provision of the pre-expander exhaust treatment device, the first expander is arranged to receive processed or unprocessed exhaust gases from the combustor. Exhaust gases are herein understood as being processed if they are received from an exhaust treatment device.
The invention is particularly advantageous where the system comprises a crankshaft, and the combustor comprises a piston arranged to reciprocate in a cylinder, and to drive the crankshaft. It is understood that the system may comprise a plurality of combustors, each comprising a piston arranged to reciprocate in a respective cylinder, whereby the piston are all arranged to drive the crankshaft.
The first expander is preferably a piston expander arranged to drive the crankshaft with the extracted energy. Similarly, the second expander is preferably a piston expander arranged to drive the crankshaft with the extracted energy. The system may comprise at least one compressor, which may be a piston compressor, arranged to be driven by the crankshaft. Thus, the invention may be advantageously implemented in a multistage compression and expansion engine where the compressor(s) and the expanders are connected to the crankshaft. Such a connection may be direct or indirect, as exemplified below. Thereby, the system may present a high efficiency. Typically, the expanders may provide 30-50%, e.g. 40%, of the total power of the engine, and the compressor(s) may take 10-20% of the total power of the engine. In some embodiments, where the system comprises a compressor arranged to compress air for at least one of the at least one combustor, the second expander may comprise a turbine arranged to drive the compressor or an additional compressor. Thereby, the system may be provided with a high power density. Where an additional compressor is provided, it may be arranged to deliver compressed air to said compressor arranged to compress air for at least one of the at least one combustor. Thus, an advantageous three step compression may be provided.
In an advantageous embodiment, where the system comprises a crankshaft, and a compressor arranged to compress air for at least one of the at least one combustor, the compressor and one of the first expander and the second expander are integrated so as to share a piston which is connected to the crankshaft. Thereby, the compressor and the one of the first expander and the second expander may form a combined compressor and expander whereby the piston is arranged to reciprocate in a shared cylinder,
- the combined compressor and expander being arranged to admit air to the shared cylinder, on a first side of the piston, and to compress the air, by means of the piston, for the combustor,
- the combined compressor and expander further being adapted to admit the exhaust gases, received by the one of the first expander and the second expander, to the shared cylinder, on a second side of the piston, to expand the exhaust gases by means of the piston. The shared piston makes it possible to use the urge of the piston by the expander to deliver, in addition to power to the crankshaft, power for the air compression in a direct manner. More specifically, the exhaust gases may provide a direct pressure on the shared piston in turn serving to directly exert a direct pressure on the air. Thereby, mechanical losses for the transfer of this energy is substantially eliminated. Also, compared to providing the compressor and expander separately, the compressor and expander combination results in a reduced number of parts, since the piston and the cylinder are shared, thereby reducing the volume, weight, complexity and cost of the engine system.
Preferably, the combustor comprises an exhaust valve, the system further comprising a variable valve timing mechanism arranged to actuate the exhaust valve.
Preferably, the first expander comprises an expander exhaust valve, the system further comprising an expander variable valve timing mechanism arranged to actuate the expander exhaust valve. As exemplified below, this allows for an advantageous manner of controlling the temperature of the post-expander exhaust treatment device.
In some embodiments, the first expander may comprise a hydrolysing reactor. This is particularly advantageous where the system comprises, as described above, an injector arranged to inject reductant for an exhaust treatment device, upstream of the first expander or into the first expander. Where the reductant comprises urea, e.g. where the exhaust treatment device is an SCR catalyst, the first expander may promote thermolysis of the urea to decompose it into isocyanate and ammonia before it reaches the catalyst. Thereupon the isocyanate may be processed by hydrolysis to provide ammonia. Injecting the reductant upstream of the first expander or into the first expander may support the thermolysis and the hydrolysis, since these processes will be enhanced by the heat therein. The first expander may also provide a beneficial thorough mixing of the reductant with the exhaust gases.
It should be noted that in some embodiments, an injector may be arranged to inject reductant downstream of the first expander. Thereby, an exhaust treatment device such as an SCR catalyst may be provided downstream of the second expander. This may provide a relatively long flow path for the reductant, past the second expander, to allow a good mix of the reductant and the exhaust gases. The invention also provides a combined compressor and expander for an internal combustion engine system, comprising
- a cylinder,
- a piston adapted to be connected to a crankshaft of the engine system, and arranged to reciprocate in the cylinder,
- the combined compressor and expander being adapted to admit air to the
cylinder, on a first side of the piston, and to compress the air by means of the piston for a combustion process of the engine system,
- the combined compressor and expander further being adapted to admit
exhaust gases, obtained from a combustion process of the engine system and/or an exhaust gas treatment process of the engine system, to the cylinder, on a second side of the piston, to expand the exhaust gases by means of the piston to extract energy from the expanded exhaust gases.
Thereby the compressor and expander are integrated with each other, and one cylinder and piston combination may be used for both compression and expansion. The power extracted by the expander will contribute to driving the crankshaft and/or to compress the air. The air compression process may be driven by the crankshaft and/or the exhaust gas expansion. As mentioned, the compressor and expander combination results in a reduced number of parts, since the piston and the cylinder are shared, thereby reducing the volume, weight, complexity and cost of the engine system.
The objects are also reached with a vehicle according to claim 23.
The objects are also reached with a method for an internal combustion engine system comprising a combustor arranged to combust air and fuel, an expander arranged to receive, expand and extract energy from exhaust gases from the combustor, and to expel the exhaust gases from the expander by means of an expander exhaust valve, and an exhaust treatment device arranged to receive the expelled exhaust gases from the expander and to process the exhaust gases, the method comprising controlling the expander exhaust valve to control the temperature of the process in the exhaust treatment device. Said control of the expander exhaust valve may comprise controlling the temperature of the process in the exhaust treatment device to be within the range of 300-4505C. The method provides an effective manner of controlling the temperature of the exhaust treatment device, for keeping it within a range that is beneficial to the process therein. The distribution of exhaust treatment devices on both sides of the expander, as exemplified elsewhere herein, along with the control of the expander exhaust valves, provides an advantageous way of adapting the temperatures along the path of the exhaust gases for optimizing the processes in the exhaust treatment devices. The objects are also reached with a method for an internal combustion engine system comprising a combustor arranged to combust air and fuel, an expander arranged to receive, expand and extract energy from exhaust gases from the combustor, the expander comprising an inlet valve, and an exhaust treatment device arranged to receive the exhaust gases from the expander and to process the exhaust gases, the method comprising
- injecting reductant for the exhaust treatment device upstream of the expander or into the expander,
- controlling the expander inlet valve to expel exhaust gases from the expander,
- wherein the timing and/or the duration of said reductant injection is coordinated with said control of the expander inlet valve so as for the reductant and the exhaust gases to mix in the expander.
It is understood that an injector may be arranged for said reductant injection. The method will provide good mixing of the reductant with the exhaust gases. Said reductant injection is preferably provided so that the injected reductant flows past the open expander inlet valve. Preferably, the reductant injection is commenced simultaneously with or after the opening of the expander inlet valve has commenced, and the reductant injection is terminated simultaneously with or before the closing of the expander inlet valve has been finalized.
The objects are also reached with a computer program according to claim 27, a computer readable medium according to claim 28, and a control unit according to claim 29.
Further advantages and advantageous features of the invention are disclosed in the following description and in the dependent claims. BRIEF DESCRIPTION OF THE DRAWINGS With reference to the appended drawings, below follows a more detailed description of embodiments of the invention cited as examples. In the drawings:
Fig. 1 is a partially sectioned side view of a vehicle in the form of a truck. Fig. 2 is a schematic perspective view of an engine system in the vehicle in fig. 1 .
Fig. 3 is a schematic cross-sectional view of the engine system in fig. 2.
Fig. 4 is a flow diagram depicting steps in a method carried out in the system in fig. 3.
Fig. 5 is a schematic cross-sectional view of an engine system according to an alternative embodiment of the invention.
Fig. 6 is a schematic cross-sectional view of an engine system according to another alternative embodiment of the invention.
Fig. 7 is a schematic cross-sectional view of an engine system according to yet a further embodiment of the invention.
DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS OF THE INVENTION
Fig. 1 shows a vehicle in the form of a truck, or a tractor for a semitrailer. It should be noted however that the invention is applicable to a variety of alternative types of vehicles, such as a car, a bus, or a working machine such as a wheel loader. The vehicle comprises an internal combustion engine system 1 .
As can be seen in the schematic fig. 2 the engine system 1 comprises a multi-stage compression and expansion internal combustion engine. The engine comprises three combustors 3, in the form of cylinders with pistons, and three piston compressors 9. The system further comprises an air guide 901 arranged to guide compressed air from the compressors 9 to the combustors 3. The air guide is provided with an air buffer container 902, arranged to receive compressed air from the compressors 9, to provide an air buffer volume for the compressed air, and to deliver the compressed air to the combustors 3.
5
The system further comprises three first piston expanders 4 arranged to expand exhaust gases from the combustors 3 and to extract energy from the expanded exhaust gases. An exhaust guide 701 is arranged to guide exhaust gases from the combustors 3 to the first expanders 4. The exhaust guide 701 comprises a pre-expander exhaust treatment device 10 7 described closer below.
The system further comprises a post-expander exhaust treatment device 6 in the form of a selective catalytic reduction (SCR) catalyst. The SCR catalyst 6 is arranged to receive exhaust gases from the first expander 4 and to provide an exhaust treatment process to 15 the received exhaust gases, which process reduces nitrogen oxides (NOx) as is known per se. Three second piston expanders 5 are arranged to receive and expand exhaust gases from the SCR catalyst 6 and to extract energy from the expanded exhaust gases.
It is understood that the engine system may comprise any suitable number of combustors 20 3, compressors 9, first expanders 4, and second expanders 5.
Reference is made to fig. 3 in which only one of the combustors 3, only one of
compressors 9, and only one of the first expanders 4 are shown. The piston 301 of each combustor 3 is arranged to reciprocate in the respective cylinder 302, whereby the pistons 25 are all arranged to drive a crankshaft 2 of the engine. For simplicity, the combustor 3, the compressor 9, and the first expander 4 are shown as all being located in the same cross- sectional plane; in a real implementation of the embodiment, the combustor 3, the compressor 9, and the first expander 4 are preferably offset in relation to each other along the crankshaft 2.
30
The pistons 401 of the first expanders 4 are arranged to drive the crankshaft 2 with the energy extracted from the exhaust gases from the combustors 3. The pistons 501 of the second expanders 5 are arranged to drive the crankshaft 2 with the energy extracted from the exhaust gases from the first expanders 4 and the SCR catalyst 6. Further, the pistons The pre-expander exhaust treatment device 7 is arranged to provide an exhaust treatment process to the exhaust gases from the combustor 3. The pre-expander exhaust treatment device 7 comprises an oxidation catalyst 7, and a particulate filter 8 located downstream 5 of the oxidation catalyst 7.
The engine system comprises a control unit 15 arranged to control various function of the system as described below.
10 The combustors 3 are provided with respective sets of combustor inlet and outlet valves 303, 304, arranged to be actuated by a combustor valve actuator assembly 306. The outlet valve 304 is herein also referred to as an exhaust valve 304. The combustor valve actuator assembly 306 may be arranged to actuate the combustor inlet and outlet valves 303, 304 in any manner known per se, e.g. with cams mounted on camshafts. The
15 combustor valve actuator assembly 306 is controllable by the control unit 15, to adjust the timing and the maximum movements of the combustor inlet and outlet valves 303, 304, in any manner known per se. The combustor valve actuator assembly 306 is herein also referred to as a variable valve timing mechanism 306.
20 In addition, the combustors 3 are provided with respective fuel injectors 305 for injecting a fuel into the cylinders 302. The fuel may be of any suitable type, e.g. diesel, methane e.g. in liquid natural gas (LNG), gasoline, etc. The fuel injectors 305 are controllable by the control unit 15. In this example, the combustors 3 are arranged to provide a Diesel cycle to extract work from the air and fuel provided. However, the invention is equally applicable
25 to engines in which the combustors are arranged to provide an Otto cycle, wherein the engine system may be provided with means for air mass flow control, such as variable inlet and outlet valves 913, 914 of the compressors 9, described further below, for controlling the air supply to the combustors 3. Alternatively, or in addition, the means for air mass flow control may comprise one or more throttles for controlling the air supply to
30 the combustors 3. The engine system may be provided with spark plugs in the
combustors.
The first expanders 4 are provided with respective sets of first expander inlet and outlet valves 403, 404, arranged to be actuated by a first expander valve actuator assembly 35 406, including e.g. cams mounted on camshafts. The first expander valve actuator assembly 406 is controllable by the control unit 15, to adjust the timing and the maximum movements of the first expander inlet and outlet valves 403, 404. The first expander valve actuator assembly 406 is herein also referred to as an expander variable valve timing mechanism 406.
5
Similarly, the second expanders 5 are provided with respective sets of second expander inlet and outlet valves 503, 504, arranged to be actuated by a second expander valve actuator assembly 506, including e.g. cams mounted on camshafts. The second expander valve actuator assembly 506 is controllable by the control unit 15, to adjust the timing and 10 the maximum movements of the second expander inlet and outlet valves 503, 504.
In addition, the compressors 9 are provided with respective sets of said compressor inlet and outlet valves 913, 914, arranged to be actuated by a compressor valve actuator assembly 916, including e.g. cams mounted on camshafts. The compressor valve
15 actuator assembly 916 is controllable by the control unit 15, to adjust the timing and the maximum movements of the compressor inlet and outlet valves 913, 914.
The system also comprises three injectors 8 arranged to inject reductant for the SCR catalyst 6. Each injector 10 is arranged to inject the reductant downstream of the pre-
20 expander exhaust treatment device 7, into a respective portion of the exhaust guide 701 leading to the respective first expander 4. The injectors 8 are controllable by the control unit 15, to control the timing, the flow and the duration of the redundant injections.
Specifically, the control unit 15 is arranged to control the timing and duration of the reductant injections so that they are coordinated with the actuations of the first expander
25 inlet valves 403, in order to enable good mixing of the reductant with the exhaust gases in the respective first expander 4. In some embodiments, each injector 8 is arranged to inject the reductant directly into the respective exhaust first expander 4.
In some embodiments, a single reductant injector may be provided, e.g. where the engine 30 system is provided with a single first expander 4 arranged to receive exhaust gases from a plurality of combustors 3. The single reductant injector may be thereby be arranged to inject the reductant upstream of, or into the single first expander.
The control unit 15 is also arranged to receive signals from a mass air flow (MAF) sensor 35 141 , located in an air intake system 921 located upstream of the compressors 9 and arranged to guide air to the compressors 9. The control unit 15 is arranged to determine the load of the engine during its operation in the vehicle, as is known per se, e.g. based on signals from the MAF sensor 702, an accelerator pedal position (APP) sensor, (not shown), and/or a manifold absolute pressure (MAP) sensor (not shown) in the air intake 5 system 921 .
The control unit 15 is further arranged to receive signals from a first temperature sensor
142, arranged at the pre-expander exhaust treatment device 7. The control unit 15 is arranged to determine the temperature in the pre-expander exhaust treatment device 7,
10 based on signals from the first temperature sensor 142.
The control unit 15 is also arranged to receive signals from a second temperature sensor
143, arranged at the post-expander exhaust treatment device 6. The control unit 15 is arranged to determine the temperature in the post-expander exhaust treatment device 6,
15 based on signals from the second temperature sensor 143.
Reference is made to fig. 4 depicting steps in a method carried out in the system described above. During an operation of the engine system 1 , the air guide 901 may present a pressure within the range of 8-12 bar and a temperature within the range of 20 250-3505C. The method involves controlling the temperature of the process in the pre- expander exhaust treatment device 7. During operation of the engine system in the vehicle, the control unit 15 determines S1 the load of the engine system, as described above.
25 The method involves controlling the injector 8, to inject S4 redundant upstream of the first expander for the post-expander exhaust treatment device. The timing and duration of the reductant injections are coordinated with the actuations of the first expander inlet valve 403, in order to enable good mixing of the reductant with the exhaust gases in the expander.
30
The method also involves controlling the temperature of the process in the post-expander exhaust treatment device 6. During operation of the engine system in the vehicle, the control unit 15 determines S5 the temperature of the post-expander exhaust treatment device 6, as described above.
35 Based on the determined post-expander exhaust treatment device temperature, and optionally the engine load, the first expander outlet valves 404 are controlled S6 in the first expander cycles so as to control the post-expander exhaust treatment device
temperature. More specifically, by opening the first expander outlet valves 404 relatively early in the cycles, the expansion ratio of the first expanders 4 will be reduced, and some heat is distributed from providing power for the first expander crankshaft drive to providing heat to the post-expander exhaust treatment device 6. Thereby, the temperature of the post-expander exhaust treatment device 6 may be increased. Also, energy not absorbed by the first expanders 4 due to the reduced expansion ratio, may be absorbed by the second expanders 5. By opening the first expander outlet valves 404 relatively late in the cycles, the heat escape from the first expanders 4 may be reduced, whereby the temperature of the post-expander exhaust treatment device 6 may be decreased.
During the engine system operation, the controller 14 periodically repeats said steps of engine load determination S1 , reductant injection S4, post-expander exhaust treatment device temperature determination S5, and first expander outlet valve control S6.
In the configuration described above with an oxidation catalyst 10 and a particulate filter 1 1 , the pre-expander exhaust treatment device 7 suitably presents a temperature within the range of 550-8005C and a pressure within the range of 10-25 bar. The method provides an effective manner of controlling the temperature of the post-expander exhaust treatment device 6, for keeping it within a range that is beneficial to the processes therein. In the configuration described above with an SCR catalyst, the post-expander exhaust treatment device 6 suitably presents a temperature within the range of 300-4505C. More generally, the method provides an advantageous distribution and control of the
temperatures along the path of the exhaust gases, so that exhaust treatment devices distributed along said path are provided with different temperatures which are each optimized for the respective exhaust treatment device. In this example, the compressor 9 may be arranged to compress the air to a volumetric ratio of 1 :1 -1 :8, preferably 1 :4-1 :6, in dependence on the actuation of the variable compressor inlet and outlet valves 913, 914. The combustors 3 may be arranged to compress the air from the compressors to a ratio of 1 :8-1 :14, preferably 1 :10-1 :12, and to expand the gases in the combustors 3 by a ratio of 1 :4-1 :14, preferably 1 :10-1 :12, in dependence on the actuation of the variable combustor inlet and outlet valves 303, 304. The first expander 4 may be arranged to expand the exhaust gases with a ratio of 1 :2-1 :6, preferably 1 :3-1 :4, and the second expander 5 may be arranged to expand the exhaust gases with a ratio of 1 :2-1 :6, preferably 1 :2-1 :3, in dependence on the actuation of the variable first and second expander inlet and outlet valves 403, 404, 503, 504. Specifically, as suggested, the first expander expansion ratio may be adjusted to control the temperature of the post-expander exhaust treatment device 6. It should be noted that in embodiments of the invention, any of the compression and expansion ratios may be outside the intervals mentioned above. Reference is made to fig. 5, showing an engine system according to an alternative embodiment of the invention. This embodiment shares essential features with the embodiment described with reference to fig. 2 - fig. 4. However, some further
advantageous features are also provided. In the embodiment in fig. 5, each pair of a second expander 5 and a compressor 9 are integrated so as to share a piston 591 which is connected to the crankshaft 2. Thus, the compressors 9 and the second expanders 5 form three compressor and expander combinations 5, 9, in which the pistons 591 is arranged to reciprocate in shared cylinders 592.
In fig. 5 one of the compressor and expander combinations 5, 9 is shown. The
compressor and expander combination 5, 9, herein also referred to as a combined compressor and expander 5, 9, presents on a first side of the piston 591 a first head 595, and compressor inlet and outlet valves 913, 914, arranged to be actuated by a
compressor valve actuator assembly, (not shown), similarly to the compressor inlet and outlet valves 913, 914 in the embodiment in fig. 3. The compressor and expander combination 5, 9 also presents on a second side of the piston 591 a second head 596, and second expander inlet and outlet valves 503, 504, arranged to be actuated by a second expander valve actuator assembly, (not shown), similarly to the second expander inlet and outlet valves 913, 914 in the embodiment in fig. 3.
The piston is connected to the crankshaft 2 via a connecting rod 593 and an extension rod 594. The extension rod connects the piston 591 with the connecting rod 593, and extends with a tight fit through an opening in the second head 596. Said tight fit may be
accomplished, e.g. with a suitable arrangement of a sliding bush or piston rings. The compressor and expander combination 5, 9 is arranged to admit, by actuation of the compressor inlet valve 913, air to the shared cylinder 592, on the first side of the piston 591 . The compressor and expander combination 5, 9 is further arranged to compress the air by the piston movement caused by the crankshaft rotation. The compressor and expander combination 5, 9 is further adapted to admit, by actuation of the second expander inlet valve 503, exhaust gases, received from the first expander 4 and the post- expander exhaust treatment device 6, on the second side of the piston 591 . The compressor and expander combination 5, 9 is arranged to expand the admitted exhaust gases, thereby urging the piston 591 towards the first heat 595.
By the urge of the piston 591 towards the first heat 595, in addition to driving the crankshaft 2, the compressor and expander combination 5, 9 is arranged to deliver energy for the air compression in a direct manner. More specifically, the exhaust gases provides a direct pressure on the shared piston 591 in turn serving to directly exert a direct pressure on the air. Thereby, mechanical losses for the transfer of this energy is substantially eliminated. Also, compared to providing the compressor and expander separately, the compressor and expander combination 5, 9 results in a reduced number of parts, since the piston 591 and the cylinder 592 are shared, thereby reducing the complexity and cost of the engine system 1 .
It should be noted that in alternative embodiments, the compressor 9 and the first expander 4 may be integrated so as to share a piston which is connected to the crankshaft 2, similarly to what is described with reference to fig. 5.
It should be noted that while the inlet and outlet valves 303, 304, 403, 404, 503, 504, 913, 914 in the drawings are depicted as poppet valves, any one of them may be provided in any suitable alternative form, such as a sleeve valve. Reference is made to fig. 6, showing an engine system according to a further alternative embodiment of the invention. This embodiment shares essential features with the embodiment described with reference to fig. 2 - fig. 4. However, some further
advantageous features are also provided. In fig. 3, the pistons of the compressors 9, the first expanders 4, and the second expanders 5 are indirectly connected to the crankshaft 2. However, the invention is applicable also to engine systems, where pistons of the compressors 9 and the first expanders 4 are indirectly connected to the crankshaft 2, via an additional crankshaft 2b and a chain or belt connection 201 , as shown in fig. 6. In fig. 6, the pistons of the compressors 9 and the first expanders 4 are directly connected to the additional crankshaft 2b, and the chain or belt connection 201 is provided between the crankshafts 2, 2b. Any suitable type of connection between the crankshafts 2, 2b may be provided. For example, as an alternative to the chain or belt connection 201 , a toothed gear wheel connection between the crankshafts 2, 2b may be provided.
In should be noted that in the embodiment in fig. 6, the second expander 5 comprises a piston arranged to drive a further crankshaft 2c connected to the additional crankshaft 2b, via a further chain or belt connection 202. The system also comprises an additional compressor 19 with a piston connected to the further crankshaft 2c. The additional compressor 19 is located upstream of the piston compressor 9, and is arranged to provide an additional compression step.
Reference is made to fig. 7, showing an engine system according to yet another embodiment of the invention. This embodiment shares essential features with the embodiment described with reference to fig. 6. However, in the embodiment in fig. 7, the second expander 5 comprises a turbine arranged to drive an additional compressor 19. The additional compressor 19 is provided in the form of a centrifugal compressor 19, which is directly connected by means of a shaft to the turbine of the second expander. The additional compressor is located upstream of the piston compressor 9, and is arranged to provide an additional compression step.
It is to be understood that the present invention is not limited to the embodiments described above and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within the scope of the appended claims.

Claims

1 . An internal combustion engine system (1 ) comprising
- at least one combustor (3), and
- a first expander (4) arranged to receive exhaust gases from at least one of the at least one combustor (3), and to expand and extract energy from the exhaust gases,
- characterized in that the system comprises a second expander (5) arranged to receive exhaust gases from the first expander (4), and to expand and extract energy from the exhaust gases.
2. A system according to claim 1 , characterized in that the system comprises an exhaust treatment device (6) arranged to receive exhaust gases from the first expander (4), to process the received exhaust gases, and to deliver the processed exhaust gases to the second expander (5).
3. A system according to claim 2, characterized in that the exhaust treatment device (6) is a selective catalytic reduction (SCR) catalyst.
A system according to any one of claims 2-3, characterized in that the system comprises an injector (8) arranged to inject reductant for the exhaust treatment device (6), upstream of the first expander (4) or into the first expander (4).
A system according to any one of claims 2-4, characterized in that the system is arranged so that during an operation thereof, the exhaust treatment device (6) presents a temperature within the range of 300-4505C.
6. A system according to any one of claims 2-5, characterized in that the system
comprises in addition to said exhaust treatment device (6) a pre-expander exhaust treatment device (7) arranged to receive exhaust gases from the combustor (3), to provide an exhaust treatment process to the exhaust gases, and to deliver processed exhaust gases to the first expander (4).
7. A system according to claim 6, characterized in that the pre-expander exhaust treatment device (7) comprises an oxidation catalyst (10).
8. A system according to any one of claims 6-7, characterized in that the pre- expander exhaust treatment device (7) comprises a particulate filter (1 1 ).
A system according to claims 7 and 8, characterized in that the particulate filter (1 1 ) is located downstream of the oxidation catalyst (10).
10. A system according to any one of claims 6-9, characterized in that the system is arranged so that during an operation thereof, the pre-expander exhaust treatment device (7) presents a temperature within the range of 550-8005C.
1 1 . A system according to any one of the preceding claims, characterized in that the system comprises a crankshaft (2), and that the combustor (3) comprises a piston arranged to reciprocate in a cylinder, and to drive the crankshaft (2).
12. A system according to any one of the preceding claims, characterized in that the first expander (4) is a piston expander (4).
13. A system according to any one of the preceding claims, characterized in that the system comprises a crankshaft (2), and that the first expander (4) is arranged to drive the crankshaft (2) with the extracted energy.
14. A system according to any one of the preceding claims, characterized in that the second expander (5) is a piston expander (5).
15. A system according to any one of the preceding claims, characterized in that the system comprises a crankshaft (2), and that the second expander (5) is arranged to drive the crankshaft (2) with the extracted energy.
16. A system according to any one of the preceding claims, characterized in that the system comprises a compressor arranged to compress air for at least one of the at least one combustor (3), and that the second expander (5) comprises a turbine arranged to drive the compressor (9) or an additional compressor (19).
17. A system according to any one of the preceding claims, characterized in that the system comprises a crankshaft (2), and that the system comprises a compressor (9) arranged to compress air for at least one of the at least one combustor (3), wherein the compressor (9) and one of the first expander (4) and the second expander (5) are integrated so as to share a piston (591 ) which is connected to the crankshaft (2).
18. A system according to claim 17, characterized in that the compressor (9) and the one of the first expander (4) and the second expander (5) form a combined compressor and expander (5, 9) whereby the piston (591 ) is arranged to reciprocate in a shared cylinder (592),
- the combined compressor and expander (5, 9) being arranged to admit air to the shared cylinder (592), on a first side of the piston (591 ), and to compress the air, by means of the piston (591 ), for the combustor (3),
- the combined compressor and expander (5, 9) further being adapted to admit the exhaust gases, received by the one of the first expander (4) and the second expander (5), to the shared cylinder (592), on a second side of the piston (591 ), to expand the exhaust gases by means of the piston.
19. A system according to any one of the preceding claims, characterized in that the combustor (3) comprises an exhaust valve (304), the system further comprising a variable valve timing mechanism (306) arranged to actuate the exhaust valve
(304).
20. A system according to any one of the preceding claims, characterized in that the first expander (4) comprises an expander exhaust valve (404), the system further comprising an expander variable valve timing mechanism (406) arranged to actuate the expander exhaust valve (404).
21 . A system according to any one of the preceding claims, characterized in that the first expander (4) comprises a hydrolysing reactor.
22. A combined compressor and expander (5, 9) for an internal combustion engine system, comprising
- a cylinder (592),
- a piston (591 ) adapted to be connected to a crankshaft (2) of the engine
system, and arranged to reciprocate in the cylinder (592), - the combined compressor and expander (5, 9) being adapted to admit air to the cylinder (592), on a first side of the piston (591 ), and to compress the air by means of the piston for a combustion process of the engine system,
- the combined compressor and expander (5, 9) further being adapted to admit exhaust gases, obtained from a combustion process of the engine system and/or an exhaust gas treatment process of the engine system, to the cylinder (592), on a second side of the piston (591 ), to expand the exhaust gases by means of the piston to extract energy from the expanded exhaust gases.
23. A vehicle provided with an internal combustion engine system according to any one of claims 1 -21 , or a combined compressor and expander according to claim 22.
24. A method for an internal combustion engine system comprising
- a combustor (3) arranged to combust air and fuel,
- an expander (4) arranged to receive, expand and extract energy from exhaust gases from the combustor (3), and to expel the exhaust gases from the expander (4) by means of an expander exhaust valve (404), and
- an exhaust treatment device (6) arranged to receive the expelled exhaust gases from the expander (4) and to process the exhaust gases,
- the method comprising controlling (S6) the expander exhaust valve (404) to control the temperature of the process in the exhaust treatment device (6).
25. A method according to claim 24, characterized in that said control (S6) of the
expander exhaust valve (404) comprises controlling the temperature of the process in the exhaust treatment device (6) to be within the range of 300-4505C.
26. A method for an internal combustion engine system comprising a combustor (3) arranged to combust air and fuel, an expander (4) arranged to receive, expand and extract energy from exhaust gases from the combustor (3), the expander comprising an inlet valve (403), and an exhaust treatment device (6) arranged to receive the exhaust gases from the expander (4) and to process the exhaust gases, the method comprising
- injecting (S4) reductant for the exhaust treatment device (6) upstream of the expander (4) or into the expander (4), - controlling the expander inlet valve (403) to expel exhaust gases from the expander (4),
- wherein the timing and/or the duration of said reductant injection is coordinated with said control of the expander inlet valve (403) so as for the reductant and the exhaust gases to mix in the expander (4).
27. A computer program comprising program code means for performing the steps of any one of claims 24-26 when said program is run on a computer.
28. A computer readable medium carrying a computer program comprising program code means for performing the steps of any one of claims 24-26 when said program is run on a computer.
29. A control unit (14) being arranged to perform the steps of any one of claims 24-26.
PCT/EP2015/079580 2015-12-14 2015-12-14 An internal combustion engine system and a method for an internal combustion engine system WO2017101965A1 (en)

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CN201680073107.6A CN108368771A (en) 2015-12-14 2016-12-14 Internal-combustion engine system and method for internal-combustion engine system
US16/060,969 US10774734B2 (en) 2015-12-14 2016-12-14 Internal combustion engine system and a method for an internal combustion system
EP16812727.2A EP3390791B1 (en) 2015-12-14 2016-12-14 An internal combustion engine system and a method for an internal combustion engine system
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US10774734B2 (en) 2020-09-15
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