The present invention relates to a high-pressure connection assembly for a fuel line with end fitting designed to allow for angular misalignment of a high pressure fuel line to a mating fitting in the connection so as to reduce the stress concentration factor between the end fitting and fuel line.
A high-pressure fuel line may be used to connect various components in a high-pressure fuel system (seeing pressures up to 180 bar), see
Misalignments between end fitting and mating fitting may be accommodated by a flexible fuel line which includes crimp joints between the tubing of the fuel line and its end fitting.
What is desirable is a high-pressure connection assembly for a fuel line with end fitting and mating fitting configured to reduce the stress concentration factor between the end fitting and fuel line. The connection assembly includes a mating fitting and retention structure and uses two less joins, i.e., eliminating the flexible line crimp joints.
The end fitting has a spherical frontside and backside which complement the conical inner surfaces respectively of the mating fitting and retention structure.
In one embodiment of the invention, the conical mating surfaces of the retention structure and the mating fitting define a 60 degree conical surface.
Another aspect of this invention includes a fuel line assembly, having a fuel line configured to transport fluid at a high pressure and a connection assembly with an end fitting securable to the fuel line. The connection assembly defines a cavity into which the end fitting is fittable and which has facing bi-conical surfaces that cooperate with the end fitting to effect a seal.
Another aspect of the invention includes a method of reducing misalignment-induced stress concentration in a high pressure fuel line assembly which includes a fuel line, end fitting, mating fitting and retention structure. The method includes configuring an inner cavity between the mating fitting and the retention structure with angular walls, configuring the end fitting with a backside and frontside respectively co-operable with the mirrored angular walls of the mating fitting and retention structure and positioning the end fittings in the cavity between the mirrored angular walls so that at least one of the backside and frontside are in sealing contact with at least one of the mirrored angular walls.
More specifically, the present invention includes a high pressure connection assembly for a fuel line, having a mating fitting with a first connecting surface; an end fitting securable to the fuel line and matable with the mating fitting; and a retention structure for connecting the end fitting to the mating fitting and having a second connecting surface. The end fitting defines an orifice configured to permit fuel to flow from the fuel line to the matable fitting. Moreover, the end fitting defines a frontside and backside. The frontside is configured to sufficiently abut the mating fitting in a manner to effect a seal therebetween. The backside of the end fitting, in cooperation with the second connecting surface of the retention structure, is angularly or spherically configured with respect to the second connecting surface to complement the seal between the frontside of the end fitting and the mating fitting in a manner so as to reduce the stress concentration factor between the fuel line and the end fitting.
The full spherical end of the fuel line fitting eliminates the stresses in the fuel line caused by angular misalignment between the fuel line and the mating fitting. The spherical end allows easier assembly when angular misalignment exists between the spherical end of the fitting and its mating conical fitting. The lower stresses and easier assembly accommodates more misalignment between mating components and may avoid the need for flexible fuel lines.
The above features and advantages and other features and advantages of the present invention are readily apparent from the following detailed description of the best modes for carrying out the invention when taken in connection with the accompanying drawings.
a is a schematic perspective view of a high pressure fuel line with a retention structure relatively rotatably connected and secured to the end fitting; and
b is a schematic perspective view of a high-pressure fuel line with the improved substantially spherical end fitting and without the retention structure shown in
Referring to the drawings,
In high-pressure applications the end fitting must be securely sealed to the mating fitting 18 to prevent fuel from seeping out. Moreover, the end fitting and mating fitting 18 should be substantially sealed to maintain the desired pressure level within the fuel line 12. The upper and lower portions, 24 and 26 respectively, of the frontside 20 of the end fittings 14 and 16 define substantially semi-spherical surfaces, the two portions (24 and 26) have slightly offset radius center points (A for the upper portion and B for the lower portion, respectively). The retention structure or tube nut 28 is fastened to the fuel line 12 for relative rotation with respect to the end fitting 14 and the threaded mating fitting 18 to provide a clamp force sufficient to seal the mating fitting 18 to the end fitting 14. The end fitting 14 defines an orifice 30 to enable fuel to pass from the fuel line 12 to the mating fitting 18. The mating fitting 18 also defines an orifice 32 which directs the fuel in the desired direction at a predetermined pressure.
One technical advantage of the present invention is that the end fitting 14 is configured in a manner to compensate for angular misalignments between the fuel line and mating fitting and thereby reduce the stress concentration factor, if any, in the fuel line 12. Therefore, joint performance is not compromised by moderate misalignment between the mating fitting 18 and the end fitting 14 due to the full spherical outer surface 15 as shown in FIGS. 2 though 4b. In particular and with reference to
The retention structure 28, as shown in
The assembly 10 may rely on a two-fold sealing system as shown in
Another benefit of the present invention is that the connection assembly 10 requires less parts than the prior art assembly 42. Specifically, the fuel line 12 has two fewer flexible line crimp joints between end fittings 14 and fuel line 12 than prior high pressure fuel connections. Moreover, the end fitting 14, mating fitting 18, and retention structure 28 are preferably made of stainless steel so as to reduce corrosion of the assembly parts under repetitious contact with various fuels.
A method of reducing misalignment-induced stress concentration in a high pressure fuel line assembly requires configuring an inner cavity 27 between the mating fitting 18 and the retention structure 28 with mirrored angular walls 19, 34 and configuring the end fitting 14 with a backside 36 and frontside 20 which cooperate with the mirrored angular walls 19, 34 of the mating fitting 18 and the retention structure 25. The positioning of the end fitting in the cavity 27 between the mirrored angular walls is such that at least one of the backside and frontside are in sealing contact with at least one of the mirrored angular walls.
The reduction of stress in the fuel line 12 resulting from the end fitting 14 enables the connection assembly 10 to be operable in 100% of all six sigma stack-up conditions. Though each production part (end fitting 14, fuel line 12, mating fitting 18 and retention structure 28) may vary within certain tolerances the end fitting 14 is configured to accommodate part variations so that the performance of the pressure line connection assembly 10 is not compromised.
While the best modes for carrying out the invention have been described in detail, those familiar with the art to which this invention relates will recognize various alternative designs and embodiments for practicing the invention within the scope of the appended claims.