FUEL INJECTOR AND METHOD FOR OPERATING A FUEL INJECTOR
20210324824 ยท 2021-10-21
Inventors
- Johannes Unrath (Heimerdingen, DE)
- Henning Kreschel (Ludwigsburg, DE)
- Thomas Schwarz (Schorndorf, DE)
- Boerries Belkner (Stuttgart, DE)
- Christian Grimminger (Leonberg, DE)
- Violaine Chassagnoux (Stuttgart, DE)
Cpc classification
F02M55/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M63/0028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M63/0015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M63/0026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M63/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a method for operating a fuel injector (10) and to a fuel injector (10) which is configured to carry out the method. The method comprises the steps of introducing a fuel under high pressure into a feed passage (78) and branching off a substream of the fuel under high pressure into a control space (74) in which an axial end face (70) of the nozzle needle (50) is loaded with the pressure such that the nozzle needle (50) is hydraulically loaded in the closing direction, and of opening a control valve (90) such that an outflow path arranged downstream of the control valve (90) in an outflow direction is freed and fuel flows out of the control space (74) in order to relieve the nozzle needle (50), wherein the fuel flowing out via the outflow path is divided into at least two substreams.
Claims
1. A method for operating a fuel injector (10), wherein the method comprises the steps: introducing a highly pressurized fuel into an inlet channel (78) and branching off a partial stream of the highly pressurized fuel into a control chamber (74) in which an axial end side (70) of a nozzle needle (50) is subjected to load by the pressure, such that the nozzle needle (50) is hydraulically loaded in a closing direction, and opening a control valve (90) such that an outflow path arranged downstream of the control valve (90) in an outflow direction is opened up and fuel flows out of the control chamber (74), in order to relieve the nozzle needle (50) of load, wherein the fuel flowing out via the outflow path is split up into at least two partial streams.
2. The method for operating a fuel injector (10) as claimed in claim 1, characterized in that at least one partial stream of the fuel in the outflow path is conducted into an annular chamber (158) at a radial outer side of a valve plate (18).
3. The method for operating a fuel injector (10) as claimed in claim 1, characterized in that at least one partial stream of the fuel in the outflow path flows out over a structurally lengthened distance.
4. A fuel injector (10) which is configured for carrying out a method as claimed claim 1, comprising: a control chamber (74) into which a fuel can be introduced at high pressure such that a force can be exerted on an axial end side (70), which delimits the control chamber (74), of a nozzle needle (50), such that the nozzle needle (50) is hydraulically loaded in a closing direction, an outlet bore (98) which is formed in a throttle plate (22) and which is connected to the control chamber (74) and which has an outlet throttle (102), a control valve (90) which is arranged in a valve plate (18), said control valve having a valve chamber (94), which is connected to the outlet bore (98), and having a valve body (106), which interacts with a valve seat surface (118) such that, when the control valve (90) is open, fuel can be discharged from the valve chamber (94), a low-pressure chamber (122) which is delimited by the valve plate (18) and a coupler body (110) and which is fluidically connected to the valve chamber (94), wherein the coupler body (110) has at least one opening (126) for connection to a return line (134), which forms a part of an outflow path, a groove (142) which is formed between the valve plate (18) and the throttle plate (22) and which is connected via at least one rising line (146) to the return line (134), such that fuel can be led out of the rising line (146) via the return line (134), and at least one outflow line (138), which is arranged between the low-pressure chamber (122) and the groove (142) and/or the rising line (146) and which fluidically connects the low-pressure chamber (122) to the groove (142) and/or to the rising line (146), such that the fuel flowing out via the outflow path can be split up.
5. The fuel injector (10) as claimed in claim 4, characterized in that at least one outflow line (138) is formed such that the low-pressure chamber (122) is connected to an annular chamber (158) at a radial outer side of the valve plate (18).
6. The fuel injector (10) as claimed in claim 4, characterized in that the at least one outflow line (138) is formed as a bore.
7. The fuel injector (10) as claimed in claim 4, characterized in that a surface cutout (130) is arranged between the coupler body (110) and the return line (134).
8. The fuel injector (10) as claimed in claim 4, characterized in that, in the throttle plate (22), there is formed an inlet bore (82) with an inlet throttle (86) which is connected to the control chamber (74), such that a fuel can be introduced at high pressure into the control chamber (74).
9. The fuel injector (10) as claimed in claim 4, characterized in that, in the throttle plate (22), there is formed a filling bore (150) which connects a high-pressure chamber (46), which is formed in the nozzle body (26) and which surrounds the nozzle needle (50), to the valve chamber (94).
10. The fuel injector (10) as claimed in claim 4, characterized in that the fuel injector (10) is a piezo injector.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Exemplary embodiments of the invention are illustrated in the drawing and explained in more detail in the following description. In the drawing:
[0020]
[0021]
[0022]
DETAILED DESCRIPTION
[0023]
[0024] At an axial end of the nozzle needle 50 which is situated opposite the injection region, said nozzle needle is surrounded by a sleeve 58, wherein the sleeve 58 is pressed against the throttle plate 22 by means of a closing spring 62 which surrounds the nozzle needle 50 and which, at a side of the closing spring 62 which is situated opposite the sleeve 58, is supported on a shoulder 66. The sleeve 58, the throttle plate 22 and an axial end side 70, averted from the injection region, of the nozzle needle 50 delimit a control chamber 74 which is filled with fuel, such that, by means of the pressure in the control chamber 74, a hydraulic force is exerted on the axial end side 70 of the nozzle needle 50, and the nozzle needle 50 is hydraulically loaded in a closing direction.
[0025] In the holding body 14, the valve plate 18 and the throttle plate 22, there is formed an inlet channel 78 (see
[0026] To control the pressure in the control chamber 74, a control valve 90 is arranged in the valve plate 18, which control valve comprises a valve chamber 94 which is connected via an outlet bore 98, which is formed in the throttle plate 22 and which has an outlet throttle 102 (see
[0027] In the valve plate 18, there is formed an outflow line 138 which connects the low-pressure chamber 122 to a groove 142 which is arranged between the valve plate 18 and the throttle plate 22 and which is formed as an encircling annular groove. In this way, a proportion of the fuel can be led out of the low-pressure chamber 122 via the outflow line 138 into the annular groove 142. Additionally formed in the valve plate 18 is a rising line 146 which connects the annular groove 142 to the return line 134. A proportion of the returned fuel thus flows out over a lengthened distance.
[0028] Additionally shown in
[0029]