Water injection device of an internal combustion engine, and method for operating a water injection device of said type
10378435 ยท 2019-08-13
Assignee
Inventors
Cpc classification
F02D41/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2250/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/40
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
F02M25/0227
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02B47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A water injection device of an internal combustion engine is provided. The water injection device includes a water tank for storing water, and a delivery element for delivering the water. The delivery element is connected to the water tank. The water injection device further includes at least one water injector for injecting water. The at least one water injector is connected to the delivery element. The water injection device further includes a pressure sensor, which is arranged in a line region between the delivery element and the water injector, and a control unit, which is designed to determine, on the basis of pressure data of the pressure sensor, a formation of vapor in the aforementioned line region when the water injector is closed and the delivery element is deactivated.
Claims
1. A water injection device of an internal combustion engine, comprising: a water tank configured to store water; a conveying element configured to convey the water, the conveying element connected to the water tank; at least one water injector configured to inject water, the at least one water injector connected to the conveying element; a pressure sensor arranged in a line region between the conveying element and the at least one water injector; and a control unit configured, based on pressure data of the pressure sensor, to determine a formation of steam in the line region when the at least one water injector is closed and the conveying element is switched off.
2. The water injection device as claimed in claim 1, wherein: the control unit is configured to compare a first pressure value, which is recorded at a first point in time, with a second pressure value, which is recorded at a second point in time, and determine a formation of steam in the line region between the conveying element and the water injector if the difference between the first pressure value and the second pressure value is greater than a first setpoint value, and the first setpoint value is determined in a case of a steam-free water injection device.
3. The water injection device as claimed in claim 2, wherein the pressure sensor is configured to record the second pressure value with a time interval of at least 10 seconds from the first pressure value.
4. The water injection device as claimed in claim 3, wherein the time interval is 100 seconds from the first pressure value.
5. The water injection device as claimed in claim 1, wherein the conveying element is a displacement pump.
6. The water injection device as claimed in claim 1, wherein the control unit is configured to actuate the conveying element and the at least one water injector to remove steam located in the line region between the conveying element and the water injector if a formation of steam is determined.
7. The water injection device as claimed in claim 1, wherein the control unit is configured to actuate the conveying element and the at least one water injector to inject water if a formation of steam is determined.
8. The water injection device as claimed in claim 1, wherein: the at least one water injector includes a plurality of water injectors connected to a distributor, and the distributor is arranged between the water injectors and the pressure sensor.
9. An internal combustion engine, comprising: a water injection device, including: a water tank configured to store water; a conveying element configured to convey the water, the conveying element connected to the water tank; at least one water injector configured to inject water, the at least one water injector connected to the conveying element; a pressure sensor arranged in a line region between the conveying element and the at least one water injector; and a control unit configured, based on pressure data of the pressure sensor, to determine a formation of steam in the line region when the at least one water injector is closed and the conveying element is switched off.
10. The internal combustion engine as claimed in claim 9, wherein the internal combustion engine is configured to be operated with petrol and is configured to be operated according to the Otto principle.
11. A method for operating a water injection device of an internal combustion engine, including: determining, based on pressure data of a pressure sensor, formation of steam in a line region in a case of a closed water injector and a switched off conveying element, wherein: the conveying element is configured to convey the water, the water injector is configured to inject water, the water injector is connected to the conveying element, and the pressure sensor is arranged in the line region between the conveying element and the water injector.
12. The method as claimed in claim 11, wherein: a first pressure value is recorded at a first point in time and a second pressure valve is recorded at a second point in time, the formation of steam is determined in the line region between the conveying element and the water injector if a difference between the first pressure value and the second pressure value is greater than a first setpoint value, and the first setpoint value is determined in a steam-free water injection device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A preferred exemplary embodiment of the disclosure is described in detail below with reference to the enclosed drawing. In the drawing:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) A water injection device 1 of an internal combustion engine 2 according to one preferred exemplary embodiment of the present disclosure is described in detail below with reference to
(6) Internal combustion engine 2 is represented schematically in
(7) A water injector 6 is furthermore arranged on each inlet duct 22, which water injector 6 injects water into inlet duct 22 of internal combustion engine 2 via a control unit 10. In this exemplary embodiment, two water injectors 6 are provided for each cylinder, which leads to improved processing or to an increase in the maximum quantity of water which can be injected for each combustion cycle. Alternatively, one water injector can be arranged for each cylinder.
(8) The water injection device according to the disclosure is shown in detail in
(9) A water tank 5 is furthermore provided which is connected by a first line 7 to conveying element 3. A second line 8 (line region) connects conveying element 3 to a distributor 9 or a rail to which a plurality of water injectors 6 are connected. Second line 8 with distributor 9 corresponds to the line region between conveying element 3 and water injectors 6.
(10) For injection of water into inlet ducts 22 of internal combustion engine 2, water is conveyed out of water tank 5 through conveying element 3 into water injectors 6. A condensate of an evaporator, not shown, of an air-conditioning system is preferably used, to which end device 1 according to the disclosure has a supply line 11 for injection of water.
(11) Alternatively or additionally to the condensate, deionized water can be conveyed via a refilling line 12 into water tank 5. A sieve can optionally be provided in refilling line 12. A preliminary filter 16 is furthermore arranged in first line 7 and a fine filter 17 is arranged in second line 8. Preliminary filter 16 and fine filter 17 are optionally heatable. Moreover, a water fill level and/or temperature sensor 18 is provided for the water located in water tank 5, which sensor 18 can be controlled via control unit 10.
(12) In order to determine whether a formation of steam is present in water injection device 1 if water injectors 6 are closed and conveying element 3 is switched off, a pressure sensor 14 is provided in second line 8. Pressure sensor 14 is actuated via control unit 10. A case in which water injectors 6 are closed and conveying element 3 is switched off, which corresponds to an inactive water injection, can occur e.g. during a stopping phase of the stop/start system. During this phase, no water injection is demanded since the internal combustion engine is switched off. The water located in second line 8 and distributor 9 can heat up and lead to a formation of steam.
(13) This is described on the basis of
(14) The chronological profile of recorded system pressure P is provided with reference number 15 and the chronological profile of temperature T is provided with reference number 16. Profile 15 of system pressure P is divided into a first diagram region I and a second diagram region II. The x-axis designates time t in s and the y-axis designates the temperature in C. and recorded pressure P10.sup.5 in Pa. A temperature sensor, not shown in
(15) As is apparent from
(16) From a certain point in time, the boiling temperature of the water is reached, as a result of which steam is generated. A pressure drop is generated via conveying element 3 since the steam expands in this direction and the pressure in line region 8 increases significantly. This corresponds to second diagram region II in
(17) In order to identify such a formation of steam in second line 8 and distributor 9, the pressure data recorded by pressure sensor 14 are processed and/or compared with one another by control unit 10.
(18) In particular, a first pressure value P1 is recorded at a first point in time t1 and a second pressure value P2 is recorded at a second point in time t2 via pressure sensor 14, which second point in time t2 lies after first point in time t1.
(19) Control unit 10 is configured to compare first pressure value P1 with second pressure value P2. It is determined in particular by control unit 10 whether a difference between first pressure value P1 and second pressure value P2 is greater than a first setpoint value. The first setpoint value is defined as the pressure difference below which it is identified that no formation of steam is present.
(20) Alternatively, second pressure value P2 can be compared with a second setpoint value. The second setpoint value corresponds to the pressure below which it is identified that no formation of steam has arisen. This means that no steam is present if second pressure value P2 lower than the second setpoint value.
(21) It is also possible in the context of the disclosure to record a larger number of pressure values. The pressure can thus be recorded not only at points in time t1 and t2.
(22) If an increase in pressure is identified after an expired period of time (in this case after point in time t2) in which the pressure remains unchanged, it is ascertained that a formation of steam has taken place in second line 8 and distributor 9.
(23) As soon as it is identified by control unit 10 on the basis of the recorded pressure values of pressure sensor 14 that steam exists in line region 8, conveying element 3 and water injectors 6 are operated so that the resultant steam is removed from water injection device 1. Moreover, one or more water injections can be carried out, as a result of which at least part of the steam is condensed. Distributor 9 is also cooled by the injected water, which leads to avoidance of a further development of steam.
(24) Once the required system pressure has built up, combustion-related water injection can be carried out.
(25) Water injection device 1 according to the disclosure has the advantage of a rapid communication of its operational readiness and the release of the injection in the case of the required system pressure. A delayed build up of pressure in the case of the formation of steam can furthermore be rapidly identified. To this end, additional components such as e.g. shut-off elements in the line region between conveying element 3 and water injectors 6 can be omitted, which leads to a lower cost and compact structure of water injection device 1 according to the disclosure.