WO2020003963A1 - Dispositif de commande de moteur à combustion interne pour navire - Google Patents

Dispositif de commande de moteur à combustion interne pour navire Download PDF

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Publication number
WO2020003963A1
WO2020003963A1 PCT/JP2019/022616 JP2019022616W WO2020003963A1 WO 2020003963 A1 WO2020003963 A1 WO 2020003963A1 JP 2019022616 W JP2019022616 W JP 2019022616W WO 2020003963 A1 WO2020003963 A1 WO 2020003963A1
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WIPO (PCT)
Prior art keywords
exhaust
internal combustion
air
combustion engine
passage
Prior art date
Legal status (The legal status 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 status listed.)
Ceased
Application number
PCT/JP2019/022616
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English (en)
Japanese (ja)
Inventor
純 樋口
潤 柳
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Japan Engine Corp
Original Assignee
Japan Engine Corp
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 Japan Engine Corp filed Critical Japan Engine Corp
Priority to KR1020207032624A priority Critical patent/KR102561870B1/ko
Priority to CN201980033717.7A priority patent/CN112135964B/zh
Publication of WO2020003963A1 publication Critical patent/WO2020003963A1/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02B—INTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B37/00—Engines characterised by provision of pumps driven at least for part of the time by exhaust
    • F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02B—INTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B37/00—Engines characterised by provision of pumps driven at least for part of the time by exhaust
    • F02B37/04—Engines with exhaust drive and other drive of pumps, e.g. with exhaust-driven pump and mechanically-driven second pump
    • F02B37/10—Engines 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
    • F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02B—INTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B37/00—Engines characterised by provision of pumps driven at least for part of the time by exhaust
    • F02B37/12—Control of the pumps
    • F02B37/18—Control of the pumps by bypassing exhaust from the inlet to the outlet of turbine or to the atmosphere
    • F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02M—SUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
    • F02M26/00—Engine-pertinent apparatus for adding exhaust gases to combustion-air, main fuel or fuel-air mixture, e.g. by exhaust gas recirculation [EGR] systems
    • F02M26/02—EGR systems specially adapted for supercharged engines
    • F02M26/04—EGR systems specially adapted for supercharged engines with a single turbocharger
    • F02M26/05—High pressure loops, i.e. wherein recirculated exhaust gas is taken out from the exhaust system upstream of the turbine and reintroduced into the intake system downstream of the compressor
    • Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02T—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T10/00—Road transport of goods or passengers
    • Y02T10/10—Internal combustion engine [ICE] based vehicles
    • Y02T10/12—Improving ICE efficiencies

Definitions

  • the technology disclosed herein relates to a marine internal combustion engine.
  • Patent Document 1 As described in Patent Document 1, for example, in an internal combustion engine for a marine vessel, it is widely known to use an exhaust turbine supercharger.
  • the internal combustion engine described in Patent Document 1 has a main engine (diesel engine), a turbine that receives exhaust of the main engine, and a compressor (impeller) that sends compressed air to the main engine.
  • An exhaust turbine supercharger is provided.
  • the internal combustion engine described in Patent Document 1 further includes an air source for supplementarily supplying pressurized air to the compressor, and the pressurized air is used for supercharging by an exhaust turbine supercharger. It is configured to apply force (air assist).
  • Patent Literature 1 discloses that when a steering handle is moved to engage a clutch related to a diesel engine, energization by pressurized air is performed.
  • Patent Document 2 discloses, as an example of a method of controlling the energization of an exhaust turbine supercharger, when the excess air ratio is determined to be less than 1, or when the derivative of the engine speed with respect to time is smaller than a predetermined value. Is also disclosed, when compressed air is small, the auxiliary supply of pressurized air to the exhaust turbine supercharger.
  • Patent Document 3 discloses, as another example of a method of controlling the energization of the exhaust turbine supercharger, when the derivative of the fuel injection amount with respect to time is larger than a predetermined value, the method is applied to the exhaust turbine supercharger.
  • An auxiliary supply of compressed air is disclosed.
  • Patent Documents 1 to 3 are common in that, although the execution conditions are different, when a predetermined condition is satisfied, the energization to the exhaust turbine supercharger is automatically started. ing.
  • Patent Documents 1 to 3 it is conceivable that a configuration is provided in which auxiliary air is supplied to pressurized air to increase the supercharging by the exhaust turbine supercharger. As a result of intensive studies, it was found that there is room for study in controlling the timing at which the boosting is performed.
  • Patent Document 1 it is automatically energized with the operation of the steering wheel, or as described in Patent Document 2 or 3, the operating state of the internal combustion engine Is inconvenient because the occupant may be energized at an undesired timing.
  • the technology disclosed herein is made in view of such a point, and an object thereof is to set a timing of energizing in a marine internal combustion engine configured to energize supercharging by an exhaust turbine supercharger. It is to control precisely.
  • the technology disclosed herein relates to a marine internal combustion engine.
  • the marine internal combustion engine includes a two-stroke main engine, an intake passage that guides air to the main engine, an exhaust turbine supercharger configured to supercharge air flowing through the intake passage, and the exhaust turbine.
  • An energizing device configured to energize supercharging by the exhaust turbine supercharger by supplying air to the supercharger, a steering handle for changing a rotation speed of the main engine, and the steering handle And an operation unit that operates the boosting device when an operation input is received by an occupant.
  • the boosting device boosts the supercharging by the supercharger by supplying air to the exhaust turbine supercharger. Accordingly, the supercharger can be operated with good response when the ship is accelerating, and the rotation speed of the main engine can be followed.
  • the marine internal combustion engine is configured such that when the operation unit receives an operation input, the urging by the urging device is started. Since this operation section is provided independently of the operation handle, it is possible to start energizing irrespective of the operation on the operation handle. This makes it possible to precisely control the timing of applying the force.
  • the boosting device may be configured to, when the operation unit receives an operation input by an occupant, pressurize the exhaust turbine supercharger for a predetermined time.
  • the vehicle may further include a plurality of control units for controlling the main engine, and the operation unit may be provided in each of the plurality of control units.
  • the marine internal combustion engine includes an exhaust passage that guides exhaust discharged from the main engine
  • the exhaust turbine supercharger includes a compressor provided in the intake passage, and a turbine provided in the exhaust passage.
  • the booster may supply air to the compressor so as to boost the rotational driving of the compressor.
  • the marine internal combustion engine may further include an EGR passage that connects a portion of the intake passage downstream of the compressor and a portion of the exhaust passage upstream of the turbine.
  • the configuration that boosts the supercharging by the exhaust turbine supercharger is particularly effective in an internal combustion engine equipped with such a high-pressure EGR system.
  • the marine internal combustion engine further includes an exhaust gas purification device provided at a portion of the exhaust passage downstream of the turbine and activated at a temperature equal to or higher than a predetermined temperature.
  • a bypass passage leading to the purification device may be provided.
  • the exhaust gas is circulated through the bypass passage as described above to bypass the turbine.
  • relatively high-temperature exhaust gas is guided to an exhaust gas purification device (so-called extracted gas).
  • extracted gas the exhaust gas purification device
  • the flow rate of exhaust gas reaching the turbine is reduced by the amount that the turbine is bypassed via the bypass passage. This is inconvenient for ensuring the responsiveness of the exhaust turbocharger.
  • the configuration that boosts the supercharging by the exhaust turbine supercharger is particularly effective in an internal combustion engine equipped with such an exhaust gas purification device.
  • the timing of the energization can be accurately controlled.
  • FIG. 1 is a system diagram illustrating a schematic configuration of a marine internal combustion engine.
  • FIG. 2 is a diagram illustrating a schematic configuration of a propulsion shaft system in a marine internal combustion engine.
  • FIG. 3 is a diagram illustrating an example of an increase in the rotation speed due to the energization.
  • FIG. 4 is a diagram illustrating a continuous use prohibition range.
  • FIG. 5 is a flowchart illustrating an operation procedure of the urging device.
  • FIG. 6 is a view corresponding to FIG. 1 showing a modification of the marine internal combustion engine.
  • FIG. 1 is a system diagram illustrating a schematic configuration of a marine internal combustion engine (hereinafter, simply referred to as “engine 1”).
  • FIG. 2 is a diagram illustrating a schematic configuration of a propulsion shaft system S in the engine 1.
  • the engine 1 is an in-line multi-cylinder marine diesel engine having a plurality of cylinders 11.
  • the engine 1 is configured as a uniflow scavenging two-cycle engine, and is mounted on a large vessel such as a tanker, a container ship, a car carrier, or the like.
  • a crankshaft 19, which is an output shaft of the engine 1 is connected to a propeller 18 via a flywheel (flywheel) 13 and a propulsion shaft system S. The output is transmitted to the propeller 18 so that the boat is propelled.
  • the engine 1 is also configured as a supercharged engine. That is, as shown in FIG. 1, the engine 1 includes a main engine 10 having a plurality of cylinders 11, an intake passage 20 and an exhaust passage 30 connected to the main engine 10, and an exhaust gas flowing through the exhaust passage 30. And an exhaust turbine supercharger 40 operated by the engine.
  • the main engine 10 has a plurality of cylinders 11 (in FIG. 1, six cylinders 11 are illustrated).
  • a piston (not shown) is inserted in each cylinder 11 so as to be able to reciprocate.
  • a combustion chamber 12 is defined for each cylinder 11 by an inner wall of each cylinder 11, a ceiling surface of a cylinder head (not shown), and a top surface of a piston.
  • the main engine 10 is configured to start by receiving air pressure.
  • a pneumatic starting device 50 is connected to the main engine 10 of the engine 1.
  • the starting device 50 includes a starting valve 51 for supplying compressed air to each cylinder 11 and a starting valve 51 for supplying compressed air to each cylinder 11.
  • An air control valve 53 for controlling the opening and closing of 51 is provided with a flame arrestor 52 for preventing flashback to a compressed air pipe (specifically, a pipe defining the main flow path 63a).
  • the start valve 51 is provided for each cylinder 11 and is provided in the middle of a flow path from an air source 61 to each cylinder 11 described later (specifically, at a downstream end of the main flow path 63a). I have.
  • the starting valve 51 accommodates a starting piston to which air is supplied to the top surface on the upper end side and a valve stem is connected to the lower end side. By applying air pressure to the top surface of the starting piston and depressing a valve stem connected to the starting piston, the starting valve 51 can be opened. On the other hand, the starting valve 51 can be closed by lowering the air pressure applied to the top surface of the starting piston and pushing up the valve rod.
  • start air the start compressed air supplied from the air source 61
  • start air the start compressed air supplied from the air source 61
  • the piston in each cylinder 11 is pushed down by the compressed air, so that the crankshaft 19 can be caused to rotate.
  • the air pressure acting on the top surface of the start piston is controlled by control air supplied through a pipe independent of the start air. That is, when the control air is supplied to the inside of the start valve 51 (specifically, the top surface of the start piston), the above-described valve stem is lowered to open the start valve 51, while the start valve 51 is opened. When the control air is discharged from the inside, the valve stem rises and the starting valve 51 is closed. The supply of the control air is controlled by the air control valve 53.
  • the air control valve 53 is configured to control the opening and closing of each start valve 51 by distributing control air to each start valve 51.
  • the air control valve 53 according to the present embodiment is configured as a mechanical control valve including a helical drive gear, a rotating plate, a gear bearing, and the like, and compressed air is supplied to the air control valve 53. Then, the compressed air is distributed to each start valve 51 at a timing according to the ignition order of each combustion chamber 12 by the operation of the rotating plate and the like. The compressed air thus distributed can be used as the above-mentioned control air to control the vertical movement of the valve stem of each start valve 51, and thus the opening and closing of each start valve 51.
  • the flame arrester 52 is a so-called flashback prevention device, and is provided immediately upstream of each starting valve 51 as shown in FIG. By providing the flame arrestor 52, when the start valve 51 fails and does not close, and the open state is maintained unintentionally, the flame due to the combustion in the cylinder 11 flows back to the compressed air line. Can be prevented.
  • the air supplied from the air source 61 is used for purposes other than starting the main engine 10.
  • the air source 61 forms a pneumatic circuit 60 described later.
  • the main engine 10 is connected to a scavenging trunk 10a for supplying scavenging air to the combustion chamber 12, and an exhaust manifold 10b for discharging burned gas (exhaust gas) from the combustion chamber 12. ing.
  • the main engine 10 is connected to the intake passage 20 via the scavenging trunk 10a, and is connected to the exhaust passage 30 via the exhaust manifold 10b.
  • a compressor 41 for supercharging the air flowing through the intake passage 20 and an air cooler 21 configured to cool the air supercharged by the compressor 41 are provided in this order from the upstream side. I have.
  • the air that has passed through the air cooler 21 reaches the combustion chamber 12 via the scavenging trunk 10a described above.
  • the exhaust passage 30 is provided with a turbine 42 which is drivingly connected to the compressor 41 and a urea SCR system 90 for purifying exhaust gas in order from the upstream side.
  • the exhaust gas discharged from the combustion chamber 12 flows into the exhaust passage 30 via the above-described exhaust manifold 10b, and sequentially passes through the turbine 42 and the urea SCR system 90.
  • the exhaust turbine supercharger 40 has a compressor 41 provided in the intake passage 20 and a turbine 42 provided in the exhaust passage 30.
  • the compressor 41 and the turbine 42 are connected, and rotate in synchronization with each other. When the compressor 41 is rotationally driven by the exhaust gas passing through the turbine 42, the air passing through the compressor 41 can be supercharged.
  • the engine 1 includes an EGR (Exhaust Gas Recirculation) system 80 for circulating exhaust gas.
  • the EGR system 80 is configured as a so-called high-pressure EGR system, and connects a portion of the intake passage 20 downstream of the compressor 41 and a portion of the exhaust passage 30 upstream of the turbine 42.
  • the EGR passage 81 is provided.
  • the EGR passage 81 includes a first EGR valve 82 that opens and closes the EGR passage 81 in order from an upstream side in a flow direction of circulated exhaust gas (hereinafter, also referred to as “EGR gas”), and soot, SOx, and the like from the EGR gas.
  • EGR gas circulated exhaust gas
  • An EGR scrubber 83 for removing, an EGR cooler 84 for cooling the EGR gas, an EGR blower 85 for increasing the pressure of the EGR gas, and a second EGR valve 86 for opening and closing the EGR passage 81 are provided. .
  • the engine 1 includes the above-described urea SCR system 90 for purifying exhaust gas.
  • the urea SCR system 90 is configured as a so-called low-pressure SCR system, and is provided in an SCR unit 91 provided in a portion of the exhaust passage 30 on the downstream side of the turbine 42, and provided in the exhaust passage 30.
  • a bypass passage 92 that bypasses the turbine 42 and reaches the SCR unit 91, and a bypass valve 93 that is provided in the bypass passage 92 and opens and closes the bypass passage 92 are provided.
  • the SCR unit 91 is an example of an “exhaust gas purification device”.
  • the SCR unit 91 includes a urea injector for injecting urea into the exhaust passage 30, an SCR (Selective Catalytic Reduction) catalyst for purifying exhaust gas using urea injected from the urea injector, and an SCR unit. And a slip catalyst for oxidizing and purifying unreacted ammonia discharged from the catalyst.
  • the SCR catalyst is configured to be activated at a predetermined temperature or higher. When activated, the SCR catalyst hydrolyzes urea to generate ammonia, and reacts (reduces) the ammonia with NOx in the exhaust gas. Can be purified.
  • the urea SCR system 90 in order for the urea SCR system 90 to exhibit the purification performance, it is necessary to warm up the SCR catalyst to the predetermined temperature or more. Therefore, when it is required to sufficiently activate the SCR catalyst, such as immediately after the start of the main engine 10, the exhaust gas is bypassed by opening the bypass valve 93. In this case, higher-temperature exhaust gas can be guided to the SCR unit 91 by the amount of energy saved for the operation of the turbine 42. The high-temperature exhaust gas thus guided makes it possible to warm up the SCR catalyst early (so-called extraction gas). In addition, not only immediately after the start of the main engine 10 but also during a steady operation (during normal operation), if it is required to keep the SCR catalyst in an active state, extraction gas is appropriately executed. It has become.
  • the air pressure circuit 60 includes, as main components, an air source 61 in which compressed air for starting the main engine 10 is stored, a compressor 62 for replenishing the air source 61 with air, and an air source 61.
  • An air flow passage 63 that guides air to the main engine 10 (specifically, the starting device 50).
  • the air source 61 is configured as a so-called starting air tank (Starting air tank), and is filled with air for starting the main engine 10 under pressure. Two or more air sources (two in the example shown in FIG. 1) are provided according to the size of the main engine 10. The air sources 61 communicate with each other as shown in FIG. These air sources 61 are configured to supply compressed air to the starting device 50 via the air passage 63 when the main engine 10 is started.
  • the air flow path 63 has a main flow path 63a formed by connecting the air source 61 and the starting device 50, and first and second sub-flow paths 63b and 63c branched from an intermediate part of the main flow path 63a. I have. Further, an energizing flow path 71 is connected to a part of the main flow path 63a which is on the way from the branch portion to the first and second sub flow paths 63b and 63c to the starting device 50.
  • the main channel 63a is a channel through which the starting air supplied to the starting device 50 flows.
  • the main flow path 63a branches near the starting device 50 into a flow path for supplying starting air to each cylinder 11 and a flow path for supplying control air to each starting valve 51.
  • the former flow path further branches in accordance with the number of cylinders, and reaches each cylinder 11 via the flame arrester 52 and the starting valve 51.
  • the latter flow path branches at the air control valve 53 and reaches the start valve 51 of each cylinder 11.
  • the first sub flow path 63b is a flow path through which air (hereinafter, also referred to as “control air”) for controlling each actuator constituting the main engine 10 such as an exhaust valve of the main engine 10 flows.
  • the second sub flow path 63c is a flow path through which air (hereinafter, also referred to as “working air”) supplied to a tool used in the marine vessel flows.
  • the pressure of the starting air in the main flow passage 63a is relatively high (about 25 to 30 bar), while the control air and the working air are lower (about 7 to 9 bar). Is required. Therefore, a plurality of pressure reducing valves 64 are provided in the first and second sub-flow paths 63b and 63c.
  • an air dryer 65 is provided downstream of the pressure reducing valve 64 in the first sub flow path 63b.
  • the pneumatic circuit 60 further includes an energizing device 70 configured to energize the supercharging by the exhaust turbine supercharger 40.
  • the booster 70 can supply boosting air (hereinafter, also referred to as “boosting air”) to the compressor 41 of the exhaust turbine supercharger 40 through the boosting flow path 71.
  • the energizing flow path 71 is configured to branch off from the middle of the air flow path 63 to reach the exhaust turbine supercharger 40. Specifically, as shown in FIG. 1, the energizing flow path 71 according to the present embodiment is located downstream of the branch of the air flow path 63 into the first and second sub-flow paths 63 b and 63 c and has a starting device. It branches from a portion on the upstream side of the connection portion with 50. Further, the downstream end of the energizing flow path 71 is connected to the compressor 41 of the exhaust turbine supercharger 40.
  • the energizing device 70 includes the energizing channel 71 and various members provided in the energizing channel 71. Specifically, for example, an opening / closing valve 72 for shutting off the energizing passage 71 when the energizing device 70 is not operated, and a starting air, A regulator 73 for reducing the pressure, an on-off valve 74 for opening and closing the boosting flow path 71, and an air filter 75 for filtering the boosting air are provided.
  • the on-off valve 74 is configured as a pneumatic ball valve, and is configured to be controlled by control air supplied through the first sub-channel 63b. For this reason, the first sub flow path 63b is further branched, and the control air is supplied to the on-off valve 74 via the branch flow path 76.
  • the branch flow path 76 is configured as a flow path from a downstream portion of the air dryer 65 in the first sub flow path 63 b to the on-off valve 74, and is configured to be opened and closed by a solenoid valve 77.
  • the solenoid valve 77 is configured to open and close based on a control signal input from the outside.
  • control air is supplied to the on-off valve 74 so that the on-off valve 74 can be opened.
  • the solenoid valve 77 is in the closed state, the control air is not supplied to the on-off valve 74, and the on-off valve 74 can be kept in the closed state.
  • the propulsion shaft system S is configured to transmit power from the main engine 10 (specifically, the crankshaft 19) to the propeller 18 and rotate the propeller 18.
  • the propulsion shaft system S according to the present embodiment is connected to the crankshaft 19 and receives a thrust shaft 15 that receives a thrust force generated when the ship is propelled, a thrust shaft inserted into the stern tube, and a propeller 18 attached thereto.
  • a middle shaft 16 for connecting the thrust shaft 15 and the propeller shaft 17 to each other.
  • the thrust shaft 15 according to the present embodiment is built in the main engine 10 like the crankshaft 19.
  • crankshaft 19 rotates with the reciprocating motion of the piston inserted into each cylinder 11.
  • the rotation of the crankshaft 19 is transmitted to the thrust shaft 15, the intermediate shaft 16, and the propeller shaft 17 to rotate the propeller 18 while being smoothed by the flywheel 13.
  • the marine internal combustion engine (engine 1) is a large diesel engine configured to be mounted on a large marine vessel, as described above.
  • the engine 1 includes a plurality of control units 101 and 102 for controlling a ship on which the main engine 10 is mounted.
  • each of the plurality of control units 101 and 102 is configured as a remote control system (Remote Control System: RCS), and includes a control unit 101 provided in the bridge B of the ship and a control unit provided in the engine room E. And a unit 102.
  • RCS Remote Control System
  • Each of the control units 101 and 102 is provided with control handles 101 a and 102 a for changing the engine speed (rotation speed) of the main engine 10.
  • Each of the steering handles 101a and 102a is configured as a so-called telegraph-type lever, and by operating this, a target value of the rotational speed of the main engine 10 can be set.
  • a rotation speed sensor 14 that detects the rotation speed of the main engine 10 by monitoring the rotation of the flywheel 13 is provided near the flywheel 13. The detection result by the rotation speed sensor 14 is displayed on a display (not shown) installed in the bridge B and the engine room E. The occupant can operate the steering handles 101a and 102a while referring to the display contents of the indicator.
  • a signal corresponding to the setting is transmitted to a speed control system (SCS) 103.
  • SCS speed control system
  • the amount of fuel necessary to achieve the target value of the rotation speed is determined, and a signal corresponding to the determined amount of fuel is sent to an actuator such as a fuel injection valve.
  • the rotation speed of the main engine 10 can be controlled by operating the operation handles 101a and 102a.
  • the main engine 10 is provided with another control unit (not shown).
  • This control unit is installed near the main engine 10, unlike the control units 101 and 102 configured as a remote control system, so that the occupant can operate while visually observing the behavior of the main engine 10. It has become.
  • Push buttons 201, 202, and 203 for operating the urging device 70 are provided in the bridge B, the engine room E, and the vicinity of the main engine 10, respectively.
  • the push buttons 201, 202, and 203 are provided as operation devices independent of the operation handles 101a and 102a, respectively, and are configured to receive an operation input (specifically, a push operation) by an occupant.
  • a control signal is output to a solenoid valve 77 forming the energizing device 70, and the solenoid valve 77 receives the control signal.
  • the valve is configured to open.
  • Each of these push buttons 201, 202, and 203 exemplifies an “operation unit”.
  • a timer 204 is provided in an electric circuit formed by connecting each of the push buttons 201, 202, 203 and the solenoid valve 77.
  • the timer 204 switches its timer contact, thereby closing the solenoid valve 77.
  • the energizing device 70 configured as described above is used, for example, when the main engine 10 is accelerated.
  • a control signal output by pressing any one of the plurality of push buttons 201, 202, and 203 is input to the solenoid valve 77, and when this is opened, the control air opens and closes through the branch flow path 76.
  • the on-off valve 74 is supplied to the valve 74 to open. Then, the starting air flows from the main flow path 63 a into the energizing flow path 71, is reduced in pressure by the regulator 73, is filtered by the air filter 75, and reaches the compressor 41 of the exhaust turbine supercharger 40.
  • the boosting air supplied to the compressor 41 assists the supercharging by the exhaust turbine supercharger 40 by boosting the rotational drive of the compressor 41.
  • the boosting device 70 can bias the exhaust turbine supercharger 40 for a predetermined time (set time of the timer 204).
  • FIG. 3 is a diagram illustrating an example of an increase in the number of rotations due to energization. Specifically, FIG. 3 illustrates a case where the acceleration device 70 is not operated when the acceleration of the main engine 10 is started at the time t0 (see a broken line in FIG. 3) and a case where the acceleration device 70 is operated (see FIG. 3). 3 (see the solid line of FIG. 3).
  • the boosting device 70 boosts the supercharging by the exhaust turbine supercharger 40, so that the exhaust turbine supercharger 40 operates with good response when the ship is accelerating, and thus the rotation of the main engine 10 The number can be raised quickly.
  • FIG. 4 shows the relationship between the number of revolutions of the main engine 10 and the torsional vibration stress, and particularly illustrates the continuous use prohibited range (hereinafter also referred to as a “bird range”).
  • a propulsion shaft system of the main engine 10 is generated.
  • S generates torsional vibration.
  • torsional vibration generated in the propulsion shaft system S reaches resonance at a predetermined rotation speed.
  • the resonance that causes a problem in the operation of the engine 1 is caused by the first-order nth-order torsional vibration (n is the number of cylinders) in the case of the engine 1 having 4 to 7 cylinders.
  • the rotational speed that causes such resonance will be referred to as “resonant rotational speed” in the following description, and will be denoted by reference symbol “r0”.
  • the torsional vibration stress shown in FIG. 4 becomes maximum at this resonance rotational speed r0.
  • the torsional vibration stress acting on the propulsion shaft system S is limited by the allowable stresses ⁇ 1, ⁇ 2 specified in the classification rules.
  • allowable stresses ⁇ 1 and ⁇ 2 both of which are determined based on the type, shape, size, and the like of the thrust shaft 15, the intermediate shaft 16, and the propeller shaft 17 forming the propulsion shaft system S.
  • the first allowable stress ⁇ 1 indicates that if the torsional vibration stress generated at a certain rotation speed is ⁇ 1 or less, the main engine 10 can be continuously used at that rotation speed.
  • the torsional vibration stress exceeds ⁇ 1, such as when the rotational speed is near the resonant rotational speed r0, it is difficult to protect the propulsion shaft system S from fatigue failure at the rotational speed. Become.
  • a bird range is set before and after the resonance rotation speed r0, and when changing the rotation speed of the engine 1, the bird range is quickly passed. Is required.
  • the bird range is set based on the resonance rotation speed r0 and the ratio of the resonance rotation speed r0 to the continuous maximum rotation speed.
  • a range of r1 ⁇ r ⁇ r2 corresponds to a bird range.
  • the bird's range includes the resonance speed r0 (that is, r1 ⁇ r0 ⁇ r2).
  • the second allowable stress ⁇ 2 indicates an allowable limit that must not be exceeded even when passing through the bird range. That is, even if the torsional vibration stress temporarily exceeds ⁇ 1, it is not allowed to exceed ⁇ 2.
  • ⁇ 2 is set in consideration of the fact that the stress generated when passing through the bird range repeatedly acts on the propulsion shaft system S.
  • the bird range based on the first allowable stress ⁇ 1 is set based on a design that does not exceed the second allowable stress ⁇ 2. It is required to pass as quickly as possible. In particular, in order to meet the latter requirement, it is required to accelerate the main engine 10 as steeply as possible.
  • exhaust gas can be recirculated through the EGR passage 81, The flow rate of the exhaust gas passing through the turbine 42 is reduced by the amount of the exhaust gas bypassing the turbine 42 via the bypass passage 92. This is inconvenient for ensuring the responsiveness of the exhaust turbocharger 40.
  • the boosting device 70 supplementarily supplies pressurized air so as to boost the supercharging by the exhaust turbine supercharger 40.
  • the vehicle is automatically activated in accordance with the operation of the control handles 101a and 102a or is automatically activated in accordance with the operation state of the main engine 10, the timing undesired by the occupant may be reduced. This is inconvenient because there is a possibility that it will be added.
  • the engine 1 is configured such that when the push buttons 201, 202, and 203 serving as the operation units receive a pushing operation, the pushing by the pushing device 70 is started.
  • Each of the push buttons 201, 202, and 203 is provided independently of the steering handles 101a and 102a, so that the pressing can be started regardless of the operation on the steering handles 101a and 102a. Thereby, it becomes possible to control the timing of applying the power accurately.
  • FIG. 5 is a flowchart illustrating an operation procedure of the energizing device 70.
  • Step S1 the occupant confirms the surrounding situation to grasp the congestion situation of the ship traffic. Subsequently, in a situation where the surrounding sea area is not crowded and the bird range must be quickly passed, it is determined that the power should be increased (step S2).
  • step S3 when the occupant presses any of the push buttons 201, 202, and 203 (step S3), the booster 70 starts (step S4).
  • step S5 When the booster 70 starts, the boosting air is supplementarily supplied to the compressor 41 of the exhaust turbine supercharger 40 to boost the rotation of the compressor 41 (step S5).
  • step S6: NO When the set time of the timer 204 has not elapsed (step S6: NO), the energizing device 70 continues energizing the exhaust turbine supercharger 40, and when the set time of the timer 204 has elapsed (step S6). In S6: YES), the energization of the exhaust turbine supercharger 40 is stopped (Step S7).
  • the configuration in which the opening and closing of the starting valve 51 is controlled by the air control valve 53 has been described, but the configuration is not limited to this configuration.
  • the opening and closing of the starting valve 51 may be mechanically controlled, or may be electrically controlled using, for example, a solenoid valve 59 as shown in FIG.
  • the opening and closing of the start valve 51 can be controlled based on an electric signal output from the ECU 104.
  • the configuration including the EGR system 80 configured as the high-pressure EGR system has been illustrated, but the configuration is not limited to this.
  • an EGR system (so-called low-pressure EGR system) configured to recirculate exhaust gas between an upstream portion of the compressor 41 in the intake passage 20 and a downstream portion of the turbine 42 in the exhaust passage 30 is provided.
  • a configuration may be adopted, or a configuration in which the EGR system itself is omitted may be adopted.
  • the configuration including the urea SCR system 90 configured as a low-pressure SCR system has been illustrated, but the configuration is not limited to this.
  • a configuration including a urea SCR system (so-called high-pressure EGR system) disposed on the exhaust passage 30 upstream of the turbine 42 may be employed.
  • the timer 204 is provided in the circuit from the push buttons 201, 202, 203 to the solenoid valve 77, but the present invention is not limited to this configuration.
  • a timer may be individually provided for each push button.

Landscapes

  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Supercharger (AREA)
  • Output Control And Ontrol Of Special Type Engine (AREA)
  • Exhaust-Gas Circulating Devices (AREA)

Abstract

Cette invention concerne un moteur (1), comprenant : un moteur principal à deux temps (10) ; un trajet d'admission (20) qui introduit de l'air dans le moteur principal (10) ; un turbocompresseur de suralimentation d'échappement (40) qui suralimente l'air s'écoulant à travers le trajet d'aspiration (20) ; un dispositif d'assistance (70) qui fournit de l'air au turbocompresseur de suralimentation d'échappement (40) pour assister ainsi la suralimentation par le turbocompresseur de suralimentation d'échappement (40) ; un levier de commande (101a, 102a) utilisée pour modifier le nombre de révolutions du moteur principal (10) ; et un bouton poussoir (201, 202, 203) qui est disposé indépendamment du levier de commande (101a, 102a) et amène le dispositif d'assistance (70) à s'activer lors de la réception d'une entrée d'opération en provenance d'un passager.
PCT/JP2019/022616 2018-06-25 2019-06-06 Dispositif de commande de moteur à combustion interne pour navire Ceased WO2020003963A1 (fr)

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KR1020207032624A KR102561870B1 (ko) 2018-06-25 2019-06-06 선박용 내연 기관
CN201980033717.7A CN112135964B (zh) 2018-06-25 2019-06-06 船用内燃机

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JP2018-119909 2018-06-25
JP2018119909A JP7201345B2 (ja) 2018-06-25 2018-06-25 舶用内燃機関

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WO2020003963A1 true WO2020003963A1 (fr) 2020-01-02

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KR (1) KR102561870B1 (fr)
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CN112135964A (zh) 2020-12-25
KR102561870B1 (ko) 2023-07-31
JP2020002794A (ja) 2020-01-09
KR20200133809A (ko) 2020-11-30
CN112135964B (zh) 2022-11-01
JP7201345B2 (ja) 2023-01-10

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