FUEL INJECTOR FOR INTERNAL COMBUSTION ENGINES
20230130775 · 2023-04-27
Inventors
- Andreas Koeninger (Neulingen-Goebrichen, DE)
- Fabian Wolf (Renningen, DE)
- Gerhard Suenderhauf (Tiefenbronn, DE)
- Knut Kristian Baadshaug (Kongsberg, Buskerud, NO)
Cpc classification
F02M61/1866
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/1833
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/1893
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M61/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a fuel injector (10) for internal combustion engines, comprising a nozzle body (12), in which there is formed a blind bore (14), from which at least one injection opening (22) starts, and comprising a nozzle needle (26; 26a to 26g) which is arranged so as to be movable longitudinally in the nozzle body (12), with a sealing face (28) formed on the side facing towards the blind bore (14), by means of which sealing face the nozzle needle (26; 26a to 26g) interacts with a seat face (17) of the nozzle body (12) in order to control a flow of fuel to the at least one injection opening (22), and comprising a needle tip (34), which has a first edge (41) miming radially around a longitudinal axis (15) and having a first diameter (D.sub.1), which first edge is adjoined in the direction of the base of the blind bore (20) by a second edge (42) miming radially around the longitudinal axis (15) and having a second diameter (D.sub.2).
Claims
1. A fuel injector (10) for internal combustion engines, the fuel injector comprising a nozzle body (12) having therein a blind hole (14), from which at least one injection opening (22) starts, and a nozzle needle (26; 26a to 26g), which is arranged in a longitudinally movable manner in the nozzle body (12) and which has, on a side facing the blind hole (14), a sealing surface (28), by which the nozzle needle (26; 26a to 26g) interacts with a seat surface (17) of the nozzle body (12) in order to control a fuel flow to the at least one injection opening (22), and the nozzle needle having a needle tip (34), which adjoins the sealing surface (28) in a direction of the blind hole (14) and which has a first edge (41) with a first diameter (D.sub.1) extending radially around a longitudinal axis (15), wherein a second edge (42) adjoins the first edge (41) in the direction of the blind hole bottom (20) and has a second diameter (D.sub.2) extending radially around the longitudinal axis (15), wherein, in a lowered position of the nozzle needle (26; 26a to 26g) forming a sealing seat (30), the second edge (42) is arranged below a lower inlet edge (44) of the injection opening (22) when viewed in a direction of the longitudinal axis (15), wherein, in a partially open position of the nozzle needle (26; 26a to 26g), the first edge (41) is arranged below an upper inlet edge (45) of the injection opening (22) when viewed in the direction of the longitudinal axis (15), and wherein, in a fully open position of the nozzle needle (26; 26a to 26g), the second edge (42) is arranged above the lower inlet edge (44) of the injection opening (22) when viewed in the direction of the longitudinal axis (15), wherein a diameter (D.sub.1) of the nozzle needle (26; 26a to 26g) in a region of the first edge (41) is greater than a diameter (D.sub.2) of the nozzle needle (26; 26a to 26g) in a region of the second edge (42), and wherein a distance (a) between the first and second edges (41, 42), when viewed in the direction of the longitudinal axis (15), corresponds to 0.4 times to 1.6 times a diameter (d) of the injection opening (22) in an inlet region (24) to the blind hole (14) in the non-rounded state of the inlet region (24).
2. The fuel injector as claimed in claim 1, wherein the nozzle needle (26; 26e to 26g) has at least one conical section (36; 53, 54) between the first and second edges (41, 42).
3. The fuel injector as claimed in claim 1, wherein the nozzle needle (26a) has a cylindrical section (49) between the first and second edges (41, 42).
4. The fuel injector as claimed in claim 1, wherein the nozzle needle (26b; 26c) has at least one convex section (51; 52) between the two edges (41, 42).
5. The fuel injector as claimed in claim 1, wherein the nozzle needle (26; 26a to 26e) has a cylindrical section (35) between the first edge (41) and the sealing surface (28).
6. The fuel injector as claimed in claim 5, wherein the cylindrical section (35) is adjoined in a direction of the sealing surface (28) by a section (55) of conical design having a first angle (β) with respect to the longitudinal axis (15) that is greater than a second angle (γ) between the sealing surface (28) and the longitudinal axis (15).
7. The fuel injector as claimed in claim 6, wherein the difference between the first and second angles (β, γ) is less than 8.5°.
8. The fuel injector as claimed in claim 1, wherein the nozzle needle (26f; 26g) has a concave section (56) between the first edge (41) and the sealing surface (28).
9. The fuel injector as claimed in claim 1, wherein the second edge (42) delimits a flat end face (38) of the needle tip (34).
10. The fuel injector as claimed in claim 1, wherein the needle tip (34) has a conical end face (38a) on a side of the second edge (42) which faces away from the first edge (41).
11. The fuel injector as claimed in claim 1, wherein the blind hole (14) has a cylindrical section (18) which merges into the rounded blind hole bottom (20), and wherein a transition between the cylindrical section (18) and the rounded blind hole bottom (20) is arranged between the lower and upper inlet edges (44, 45) of the injection opening (22).
12. The fuel injector as claimed in claim 1, wherein the injection opening (22) is formed with a rounded portion (25) in the inlet region (24) to the blind hole (14).
13. The fuel injector as claimed in claim 1, wherein the nozzle needle (26b; 26c) has at least one concave section (51; 52) between the two edges (41, 42).
14. The fuel injector as claimed in claim 1, wherein the blind hole (14) has a cylindrical section (18) which merges into the rounded blind hole bottom (20), wherein a transition between the cylindrical section (18) and the rounded blind hole bottom (20) is arranged between the lower and upper inlet edges (44, 45) of the injection opening (22), and wherein a longitudinal axis (23) of the injection opening (22) intersects the transition between the cylindrical section (18) and the blind hole bottom (20).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
[0019]
[0020]
[0021] In the figures, identical elements or elements having the same function are provided with the same reference numerals.
DETAILED DESCRIPTION
[0022]
[0023] The fuel injector 10 has a nozzle body 12, in which a blind hole 14 is formed. In longitudinal section, the blind hole 14 has a section 16 which is of conical design about a longitudinal axis 15 of the nozzle body 12 and forms a seat surface 17. Section 16 merges into a cylindrical section 18, which is adjoined by a rounded blind hole bottom 20. Opening into the transitional region between the cylindrical section 18 and the blind hole bottom 20 there is at least one injection opening 22, which is designed as a through hole in the nozzle body 12 and via which fuel can be injected from the nozzle body 12 into the combustion chamber of the internal combustion engine.
[0024] The injection opening 22 is arranged at an oblique angle α with respect to the longitudinal axis 15, wherein a longitudinal axis 23 of the injection opening 22 preferably intersects the transition between the cylindrical section 18 and the blind hole bottom 20 (
[0025] According to the illustration of
[0026] The diameter of the injection opening 22 in the region outside the rounded portion 25 is denoted by d.
[0027] For the injection of fuel into the combustion chamber of the internal combustion engine, the nozzle body 12 described thus far interacts via the at least one injection opening 22 with a nozzle needle 26 arranged so that it can perform a stroke motion along the longitudinal axis 15. The nozzle needle 26 is moved by means of a magnetic actuator (not illustrated), for example, in a manner known per se, such that, in a lowered position, illustrated in
[0028] On the side facing the blind hole bottom 20, the sealing surface 28 of the nozzle needle 26 merges into a cylindrical section 35 as part of a needle tip 34, which is in turn adjoined by a conical section 36. The end face 38 of the nozzle needle 26, which faces the blind hole bottom 20, is designed as a flat end face 38, i.e. extends perpendicularly to the longitudinal axis 15.
[0029] The transition between the cylindrical section 35 and the conical section 36 of the nozzle needle 26 forms a first edge 41 with a first diameter D.sub.1 extending radially around the longitudinal axis 15. At the transition to the conical section 36, the end face 38 forms a second edge 42, with a second diameter D.sub.2 extending radially around the longitudinal axis 15. In this case, the second diameter D.sub.2 is smaller than the first diameter D.sub.1. Furthermore, an axial distance a is formed between the two edges 41, 42, when viewed in the direction of the longitudinal axis 15. The distance a is 0.4 times to 1.6 times the diameter d of the injection opening 22 outside the inlet region 24, i.e. in the cylindrical region of the injection opening 22.
[0030]
[0031]
[0032]
[0033]
[0034] The nozzle needle 26b illustrated in
[0035] The nozzle needle 26c illustrated in
[0036]
[0037]
[0038]
[0039] Finally,