High-Pressure Fuel Pump
20220333568 · 2022-10-20
Inventors
Cpc classification
F02M59/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M37/0041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B23/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B11/0016
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B9/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/8023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/8084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A high-pressure fuel pump includes a pump housing, a receiving space in the pump housing, a pressure pulsation damper in the form of a diaphragm cell having two diaphragms, which pressure pulsation damper is arranged in the receiving space, and a holding device for holding the diaphragm cell in the receiving space. The holding device includes a connection portion, which is connected to the pump housing rigidly both in an axial direction and in a radial direction. The connection portion is fastened to the pump housing, both in the axial direction and in the radial direction, to an inner lateral surface of the pump housing that delimits the receiving space.
Claims
1. A high-pressure fuel pump comprising: a pump housing having an inner lateral surface defining a receiving space; a pressure pulsation damper arranged in the receiving space, the pressure pulsation damper including a diaphragm cell having two diaphragms; and a holding device configured to hold the diaphragm cell in the receiving space, the holding device comprising a connecting section fixedly connected both in an axial direction and in a radial direction to the pump housing, wherein the connecting section is fastened both in the axial direction and in the radial direction to the inner lateral surface of the pump housing.
2. The high-pressure fuel pump as claimed in claim 1, wherein the connecting section is fixed to the inner lateral surface with an interference fit and/or is welded to the inner lateral surface.
3. The high-pressure fuel pump as claimed in claim 1, wherein: the two diaphragms are welded to one another in a region of a radially outer edge by a weld line extending in a circumferential direction, and the holding device further includes at least two clamping sections, between which the two diaphragms are clamped in a region radially inside of the weld line.
4. The high-pressure fuel pump as claimed in claim 3, wherein at least one clamping section of the at least two clamping sections is formed as a single piece with the connecting section.
5. The high-pressure fuel pump as claimed in claim 3, wherein the at least two clamping sections are welded to one another.
6. The high-pressure fuel pump as claimed in claim 3, wherein the at least two clamping sections are clipped to one another.
7. The high-pressure fuel pump as claimed in claim 1, wherein the connecting section is formed integrally on the diaphragm cell.
8. The high-pressure fuel pump as claimed in claim 1, wherein: the two diaphragms are welded to one another in a region of an edge of at least one of the two diaphragms by a weld line extending in a circumferential direction, and between the weld line and an interior space formed between the two diaphragms, a region is present in which the two diaphragms lie frictionally against one another at least in certain sections.
9. The high-pressure fuel pump as claimed in claim 8, wherein a bend is present between the weld line and the interior space formed between the two diaphragms.
10. The high-pressure fuel pump as claimed in claim 9, wherein, in a region of the bend, a radially inner section of one diaphragm of the two diaphragms is received with an interference fit in a radially outer section of the other another diaphragm of the two diaphragms.
Description
[0017] Below, an embodiment of the invention will be discussed with reference to the drawing, in which:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024] Below, functionally equivalent elements and regions are denoted by the same reference designations even in different embodiments.
[0025] In
[0026] From a fuel tank 12, fuel is fed via a suction line 14, a normally electric predelivery pump 16 and a low-pressure line 18 to an inlet 20 of a flow rate control valve 24, which can be actuated by an electromagnetic actuating device 22, and to a working chamber 26 of a high-pressure fuel pump 28, for example with an admission pressure, provided by the predelivery pump 16, of 4-8 bar, in particular approximately 6 bar. For example, the flow rate control valve 24 may be a positively openable inlet valve of the high-pressure fuel pump 28.
[0027] A piston 30 of the high-pressure fuel pump 28 can be moved vertically in the drawing by means of a cam disk 32. Arranged hydraulically between the working chamber 26 and an outlet 34 of the high-pressure fuel pump 28 are an outlet valve 36, shown as a spring-loaded check valve, and a pressure-limiting valve 38, likewise shown as a spring-loaded check valve. The outlet 34 is connected via a high-pressure line 40 to a high-pressure accumulator 42 (“common rail”).
[0028] During the operation of the fuel system 10, the predelivery pump 16 delivers fuel from the fuel tank 12 into the low-pressure line 18. The flow rate control valve 24 can be closed and opened in a manner dependent on a respective demand for fuel. The fuel quantity that is delivered to the high-pressure accumulator 42 is influenced in this way. Owing to the discontinuous mode of operation of the high-pressure fuel pump 28, so-called pressure pulsations occur in several sections of the fuel system 10, in particular also upstream of the working chamber 26, that is to say in a low-pressure region 43 of the high-pressure fuel pump 28 or of the fuel system 10. A pressure pulsation damper 44 is arranged there in order to dampen said pressure pulsations.
[0029] As can be seen from
[0030] In the present case, the diaphragm cell 56 in turn comprises two diaphragms 58a and 58b, which in a central region are substantially identical and arranged mirror-symmetrically and which, in plan view, have a substantially circular contour and are of rotationally symmetrical form. As can be seen from
[0031] The holding device 62 comprises a connecting section 66, which in the present case is formed integrally on the upper diaphragm 58a and thus on the diaphragm cell 56. For this purpose, the upper diaphragm 58a is configured as follows (see also
[0032] Radially outside the central region 68, the diaphragm 58a has a radially outwardly extending flat first section 74, which runs in encircling fashion in a circumferential direction. At the radially outer edge thereof, a bend 76 is present by way of which the diaphragm 58a is bent downward through, for example, 90° in the present case. The bend 76 has a radius R. A second section 78 running in encircling fashion in a circumferential direction extends downward in an axial direction, in the form of a cylindrical collar, from the bend 76. Formed integrally on said second section is a third section 80 which runs in encircling fashion in a circumferential direction, specifically obliquely outward at an angle of, for example, approximately 45° in the present case. Distributed uniformly in a circumferential direction in the third section 80 is a multiplicity of openings 82 through which fuel can flow during operation. On the third section 80, in turn, there is integrally formed a fourth section which, in the present case, runs for example in encircling fashion in a circumferential direction and which extends in a straight manner in an axial direction 70, downward in
[0033] Radially outside its central region 68, the diaphragm 58b has a likewise radially outwardly extending flat first section 86 running in encircling fashion in a circumferential direction. Present at the radially outer edge thereof is a bend 88 by way of which the diaphragm 58b is bent downward through, for example, 90° in the present case. The bend 88 has a radius r. A second section 90 running in encircling fashion in a circumferential direction extends downward in an axial direction, in the form of a cylindrical collar, from the bend 88. In this way, the second section 90 of the diaphragm 58b forms a radially inner section, and the second section 78 of the diaphragm 58a forms a radially outer section. The second section 90 of the diaphragm 58b however extends less far in the axial direction 70 than the second section 78 of the diaphragm 58a.
[0034] At the projecting free edge of the second section 90 of the diaphragm 58b, said diaphragm is welded to the second section 78 of the diaphragm 58a by means of the abovementioned weld line 60. Here, the second and radially inner section 90 of the diaphragm 58b is received with an interference fit in the second and radially outer section 78 of the diaphragm 58a. Furthermore, the bend 76 and the bend 88, and the first section 74 and the first section 86, are joined together so as to lie frictionally against one another. It is achieved in this way that the movement of the central regions 68 of the two diaphragms 58a and 58b are at least substantially kept away from the weld line 60.
[0035] The fourth section 84 of the diaphragm 58a is fixed by way of an interference fit to an inner lateral surface 92 of the housing cover 50. In an embodiment that is not shown, said fourth section is additionally or alternatively welded to the inner lateral surface. In this way, the connecting section 66, which in the present case is formed in particular by the bend 76, the second section 78, the third section 80 and the fourth section 84, of the holding device 62 is fixedly connected to the housing cover 50 and thus to the pump housing 46 both in the axial direction 70 and in the radial direction 72. The diaphragm cell 56 is thus held immovably and captively in the housing cover 50.
[0036] An alternative embodiment of a holding device 62 will now be discussed with reference to
[0037] The lower clamping section 96 may be fastened to the second section 78 by means of a clip connection with latching action, as can be seen from