1. Field of the Invention
The present invention relates to a resin pipe for an automotive fuel line and, more particularly, to a resin pipe coated with a silicon film.
2. Description of the Related Art
Metal pipes having an outside surface plated or coated with a resin film have been generally used as fuel pipes on automobiles. Efforts have been made for the improvement of coating materials and structure of coating layers to improve the corrosion resistance and chemical resistance of pipes.
Recently, resin pipes have been used as well as metal pipes for fuel lines. Resin pipes have many advantages over metal pipes. Resin pipes are not rusted, can be easily processed, are lightweight and increase the degree of freedom of design. The permeability to fuel of resins is the most serious problem in using resin pipes as fuel pipes. Environmental problems have necessitated imposing severe legal controls on fuel lines in Europe in recent years. Conventional resin pipes are unable to meet low permeability required by regulations.
The term “low-permeability resin” is used to indicate resins meeting a quality determined by the following permeability test methods. A CARB DBL method which is carried out by a SHED testing machine is a representative permeability test method of testing resins for fuel pipes.
Referring to
A conventional resin pipe is provided with a functional layer having low permeability and made of a low-permeability resin. Since the permeation-resisting ability of such a resin pipe to resist the permeation of fuel is dependent on the permeation-resisting ability of the low-permeability resin forming the functional layer, the permeation-resisting ability of the resin pipe to resist the permeation of fuel cannot exceed that of the low-permeability resin.
Accordingly, it is an object of the present invention to solve problems in the foregoing prior art and to provide a multilayer-wall resin pipe having an outside surface coated with a silicon film for improving the permeation-resisting ability of the resin pipe.
The present invention provides a resin pipe of multilayer construction including a plurality of resin layers respectively made of thermoplastic resins, wherein the surface of any one of the plurality of resin layers is coated with a silicon oxide film.
In the resin pipe according to the present invention, the resin layer having the surface coated with the silicon oxide film may be the outermost one of the plurality of resin layers.
In the resin pipe according to the present invention, the silicon oxide film may be formed between the adjacent resin layers of the plurality of resin layers.
The resin pipe according to the present invention may further include a protective layer coating the outside surface of the silicon oxide film to protect the silicon oxide film.
In the resin pipe according to the present invention, the protective layer may be made of rubber or a thermoplastic elastomer.
In the resin pipe according to the present invention, the silicon oxide film may be formed by a burning reaction of an organic silicon compound in flames.
In the resin pipe according to the present invention, the flames may be projected by at least one combustor disposed beside a feed path along which the resin pipe is fed to form the silicon oxide film thereon.
In the resin pipe according to the present invention, two combustors may be disposed obliquely opposite to each other on the opposite sides of the feed path, respectively.
In the resin pipe according to the present invention, the combustor may have a flat flame projecting opening, through which flames are projected, elongated in a direction in which the resin pipe is fed to form the silicon oxide film thereon.
In the resin pipe according to the present invention, a liquefied petroleum gas supply pipe (an LPG supply pipe) for carrying a liquefied petroleum gas (an LPG) and a silicon adding material supply pipe for carrying a silicon adding material containing an organic silicon compound may be connected to the combustor, and the combustor may be provided with a combustion chamber in which the LPG and the silicon adding material are burned.
The resin pipe according to the present invention may be intended for use in an automotive fuel line.
Since the outside surface of the outermost layer of the resin pipe of the present invention is coated with the silicon film, the fuel permeated the resin layers is stopped by the silicon film. Thus the resin pipe has a remarkably improved permeation-resisting ability.
Resin pipes in preferred embodiments according to the present invention will be described with reference to the accompanying drawings.
Referring to
Referring to
The extruder 10 extrudes molten resins respectively for forming the first, the second and the third layer to form the resin pipe. The resin pipe is passed through a water tank included in the cooling device 11 to cool and set the resin pipe. After the resins forming the first, the second and the third layer have been thus solidified, the take-up device 12 takes up the resin pipe and delivers the resin pipe to the coating device 13. The coating device d13 burns an organic silicon compound and an LPG in a space surrounding the resin pipe to coat the third layer with a silicon oxide film.
SiC+C3H8+7O2→SiO2+4H2O+4CO2 (1)
2SiC+C3H8+7O2→2SiO+4H2O+4CO2 (2)
The resin pipe of the present invention having the outside surface coated with the silicon dioxide film or the silicon monoxide film exercises the following effects when used for forming an automotive fuel line.
A very small amount of fuel flowing through a resin pipe in an automotive fuel line permeates the resin pipe and is discharged outside. All kinds of resins are permeable to fuel in greater or lesser degrees. An ethylene-vinyl alcohol resin (EvOH) is an example of a functional resin used as a material for resin pipes. An EVOH is a functional resin having an excellent gas-barrier characteristic.
Table 1 shows the results of the permeability test of a silicon film and an EvOH film. As obvious from Table 1, the permeability to ethanol and steam of the silicon film is lower than that of the EVOH film having a comparatively low permeability among resin films.
The resin pipe in this embodiment is a composite multilayer structure having a resin body made of a resin inferior in permeation-resisting ability but inexpensive and excellent in workability, such as a polyamide resin and a silicon film coating the outside surface of the body. Fuel permeated the resin body is stopped by the silicon film. Thus the resin pipe of the present invention has an improved permeation-resisting ability far higher than that of the conventional resin pipe made of a low-permeability resin.
There are two types of silicon films; a first silicon film containing silicon monoxide as a principal component and a second silicon film containing silicon dioxide as a principal component. Although both the first and the second silicon film are superior in permeation-resisting ability to resin films, the first and the second silicon film differ from each other in permeability to a gas (oxygen gas) as shown in
Either the silicon monoxide film or the silicon dioxide film can be selectively formed over the outside surface of the resin tube in this embodiment by properly adjusting the flame temperature in the combustors 16 of the coating device 13. The outside surface of the resin pipe can be coated with a silicon dioxide film when the LPG is supplied at a comparatively high rate to the combustors 16 and the flames in the combustors 16 have a comparatively high frame temperature between 1300 and 1600° C. The outside surface of the resin pipe can be coated with a silicon monoxide film when the LPG is supplied at a comparatively low rate to the combustors 16 and the flames in the combustors 16 have a comparatively low frame temperature on the order of 800° C.
Either of a silicon monoxide film and the silicon dioxide film can be formed by properly adjusting the flame temperature in the combustors. Therefore, a resin pipe required to have a high permeation-resisting ability is coated with a silicon dioxide film, while a resin pipe required to have a moderate permeation-resisting ability is coated with a silicon monoxide film.
Referring to
Number | Date | Country | Kind |
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2004-309698 | Oct 2004 | JP | national |