This invention relates to a new and novel concept in the manufacture of a corrugated flexible collapse-resistant and substantially non-expandable hose. More particularly, such hose is particularly applicable to automobile cooling systems both as replacement as well as original equipment hose.
Hose of this general type has been available for many years, primarily in the after markets, first as a hose of a "wrap-down" construction which later was replaced almost entirely by a "molded" construction. Once the molded hose was introduced, the wrap-down method was for all practical purposes, completely abandoned, at least in the manufacture of hose for automotive use. In either instance, a length of hose consisted of cylindrical end portions for attachment to the radiator and engine and an intermediate corrugated portion to provide the flexibility necessary to bend the hose to fit between the points of attachment. This type of hose in most instances included a resilient preformed wire reinforcement incorporated as an integral part of the wall of the hose structure and usually was incorporated in the corrugated portion only. This wire reinforcement permitted the hose to bend to various configurations without collapse as well as providing resistance to expansion and collapse of the hose during use.
There has been considerable activity in the past in the manufacture of the molded type of hose and as a result, there are numerous patents disclosing various methods and different structures for this particular type of hose. The following are typical of those showing molded hose and/or methods of manufacture:
In each of the foregoing patents as well as others relating to this particular type of hose, the unvulcanized hose structure is either of a diameter substantially smaller than that of the mold cavity or is built or preformed to substantially the mold configuration. As a result, when it is subjected to internal pressure during vulcanization, the unvulcanized hose structure is expanded into contact with the mold surface or the structure is merely pressed against the mold surface to produce the finished hose.
It is therefore an object of this invention to provide a new and novel method of making a flexible corrugated hose.
Another object of the invention is to provide a more economical method of manufacturing a molded, corrugated hose.
An important object of the invention is to provide a method of making a flexible corrugated hose in which the internal corrugations are formed sufficiently deep to retain the preformed wire inserted therein after vulcanization of the hose.
These and other objects of the invention will become more fully apparent as the description proceeds in the following specification and the accompanying drawings.
In the drawings:
FIG. 1 shows an exterior view of the completed hose;
FIG. 2 is a partial section of a typical tubular structure from which the hose is formed;
FIG. 3 is a cross-sectional view of the hose shown in FIG. 2 in place in the mold before vulcanization;
FIG. 4 is a view similar to FIG. 3 with internal pressure applied during vulcanization; and
FIG. 5 is a partial cross-section of the finished hose with the wire reinforcement inserted in the interior.
As seen in FIG. 1, a flexible corrugated hose 1 includes an intermediate portion 2 which is corrugated, preferably in a helical path, and straight cylindrical end portions 3 and 4. As shown, the outer diameter of the corrugated portion 2 is substantially the same as the diameters of end portions 3 and 4 although if desired, each of the end portions may be of a different diameter as well as of a diameter different than the corrugations. The length of the hose 1 may be of different lengths depending upon the particular use or application with which the hose is to be used. In the various lengths of hoses 1 that are usually made, the end portions 3 and 4 in many instances are substantially the same with the corrugated portion varying in length according to the overall hose length.
In the preferred method of manufacture of the hose of this invention, a tubular member 5 is formed by extruding an inner tubular element 6 of a predetermined diameter of an elastomeric material such as rubber, synthetic or natural. The material should have the properties necessary to provide resistance to the effects of temperature, fluid compositions, pressure, etc. Over the tubular element 6 a layer 7 of textile material such as nylon, rayon or polyester is knit to provide longitudinal and radial reinforcement to the hose. U.S. Pat. No. 2,788,804 issued to Larkin is illustrative of a typical knit pattern used for hoses of this type. Other types of fabric reinforcement may be used if desired.
The assembly of the inner tubular element 6 and knit 7 is then passed through an extruder to form a cover 8 of elastomeric material over the assembly to form a green hose body 9 with a predetermined outside diameter that is selected to fit properly in the mold cavity to be used to vulcanize the green hose body 9. The selection of the diameter will be subsequently discussed. The methods and apparatus for forming the hose body 9 are well known in the art and have been used for many years by the industry for the forming of the basic tubular reinforced members that are used in this invention.
The mold 10 is of conventional construction made up of an upper half 11 and a lower half 12 which define cavity 13 with straight end portions 14 and 15 and as shown, an intermediate helically corrugated portion 16. End plugs 17 and 18 register adjacent the straight end portions 14 and 15 respectively of mold 10 and as shown, extend inwardly to the corrugated portion 16 but are of a smaller diameter than the adjacent end portions of the mold. End plug 17 has an opening 19 extending therethrough so that steam, air or other fluids under pressure can be admitted to the interior of mold cavity for forming and vulcanizing the hose. The diameter A of the end plugs 17 and 18 is the same as the desired inside diameter of the end portions 3 and 4 of the finished hose 1 and as a result, the end portions 3 and 4 are fully molded on the inside and outside. The fully molded end surfaces provide a smooth surface for installing and clamping the hose.
The green hose body 9 is formed with an outside diameter that is substantially identical to the maximum internal diameter B of the corrugated section 16 of the mold 10, with the diameter being selected so as to prevent pinching of the body when the mold is closed around it. The prior art structures are all of a diameter that is substantially less than that of the mold so substantial expansion takes place when the tubular member is subjected to internal pressure during forming and vulcanization. A section of the tubular member 5 having a length substantially identical to the length of the mold cavity forms the green hose body 9 and is placed in position in the lower mold section 12. The upper mold section 11 is placed in position over the lower section 12 on the heated platens of a conventional vulcanizing platen press (not shown), and the press is then closed on the mold 10 which will close the mold sections 11 and 12 completely around the hose body 9 and end plugs 17 and 18. The end plugs 17 and 18 are then forced or inserted into the ends of the hose body 9 to fully form the ends of the hose body and seal to prevent the loss of pressure during vulcanization. As a result, as best seen in FIG. 3, the inwardly extending portions 20 of the mold corrugations push or move the corresponding portions of tubular member 5 inwardly when mold sections 11 and 12 are closed. Fluid pressure such as air or steam is then introduced into the interior of hose body 9 through opening 19 in end plug 18 to prevent collapse of the hose body 9 and to hold the hose body in contact with the surface of the mold cavity. As a result, portions of the exterior wall of the hose body 9 are depressed by portions 20 to cause the hose body to assume the configuration of the mold cavity in the corrugated portion 16. As a result, the interior wall is corrugated to substantially the same extent. The end portions 3 and 4 are formed both externally and internally against the end plugs 17 and 18 and mold portions 14 and 15 respectively. The heated mold sections in contact with the hose body soften the elastomeric material so that the internal pressure holds the hose against the mold surface. The heat of the internal fluid assists in vulcanizing the elastomeric material.
Since the hose body 9 is not subjected to expansion to any significant degree, the knit reinforcement layer 7 is free to move with the inner tube 6 and cover 8 of the hose body 9 during forming and therefore assumes the corrugated configuration also. It might be said that the knit layer 7 is "free floating" which causes the internal corrugations to be formed to a greater depth to more securely hold the subsequently inserted wire reinforcement in place. In forming similar hoses as shown in the prior art where the tubular element is expanded, the reinforcement layer or knit tends to remain straight due to the lack of extensibility in such structures or at least is stretched to its limit which places the layer under tension. In the hose of this invention, the reinforcement is almost completely relaxed.
By way of example, in the manufacture of the nominal 11/2" of this type, the mold has a maximum diameter of 1.817" in the area of the corrugations. The tubular element prepared for use in the manufacture of this size should have an outside diameter between a minimum of about 1.705" and a maximum of about 1.832". It has been found that a tubular element of the following dimensions will provide a very satisfactory hose when formed and vulcanized in the mold having the above-described dimensions.
Inner Tube ID: 1.4219.+-.0.03125
Tube Wall Gauge: 0.160.+-.0.010
Once the hose body is formed and vulcanized, the mold 10 is opened and the formed hose 1 is removed. In the preferred embodiment, a preformed rustproof resilient wire reinforcement 21 is inserted into the interior of the hose to lie in troughs of the corrugated portion 2 of the hose. A turn of the wire lies in each corrugation as seen in FIG. 5. The wire reinforcement 20 may be readily inserted by either twisting to reduce it in diameter, inserting into the interior and then releasing it whereby it expands to fit into the crest or it may be threaded into the hose interior. The wire reinforcement is fit snugly into the crests of the corrugations to prevent any of the turns from being displaced when the hose is flexed or bent during installation or use.
While the previously described method of manufacturing a flexible corrugated hose has been directed to corrugations or a helical configuration, the method may be used to manufacture a hose in which a series of individual corrugations may be used. In such a hose, an individual resilient ring of rustproof wire is inserted into the hose interior so as to lie in the crest of each corrugation.
While certain representative embodiments and details have been shown for the purpose of illustrating the invention, it will be apparent to those skilled in this art that various changes and modifications may be made therein without departing from the spirit or scope of the invention.