NON-METALLIC FLUID COUPLING
20230204136 · 2023-06-29
Assignee
Inventors
Cpc classification
F16L25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L23/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L25/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L25/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L25/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A non-metallic fluid coupling is disclosed with electrical current transferring elements incorporated therein. The coupling is formed of two C-shaped halves of non-metal, non-conducting material, where each halve includes integral hinges and latches, or hinges and latches made of a common material with the C-shaped halves. A non-metallic, substantially rigid sealing sleeve can be incorporated into the coupling to seal the coupling while maintaining the strength of the coupling.
Claims
1. A fluid coupling for joining first and second fluid pipes each having a ferrule adapter at respective mating ends, the coupling comprising: first and second semi-cylindrical elements cooperating to form a cylindrical coupling, the first and second semi-cylindrical elements formed of a non-metallic material, said first and second semi-cylindrical elements each having integrally formed thereon complementary interlocking hinge elements for establishing a pivoting relative motion of the first and second semi-cylindrical elements; a pin passing through the first and second hinge elements; a latch releasably connecting the first and second semi-cylindrical elements; and a non-metallic sealing sleeve positioned adjacent the ferrule adapter of each fluid pipe to seal the coupling; wherein one complementary interlocking hinge element comprises a pair of barbed projections extending from the one semi-cylindrical element over a shoulder integrally formed on the other complimentary interlocking hinge element; and wherein the other complimentary interlocking hinge element comprises a single barbed projection extending therefrom and passing between the pair of barbed projections to engage an integrally formed member of the one complementary interlocking hinge element.
2. The coupling of claim 1, wherein the single barbed projection passes through an aperture on the one complementary interlocking hinge element.
3. The coupling of claim 1, wherein the single barbed projection engages a lowermost edge of the integrally formed member.
4. The coupling of claim 3, wherein the single barbed projection once engaged with the lowermost edge of the integrally formed member is disengaged with the one complimentary interlocking hinge element by a radially inwardly directed force.
5. The coupling of claim 4, where the first and second semi-cylindrical elements with the respective hinge elements are each molded as a single integrally formed unit.
6. The coupling of claim 1, wherein the first and second semi-cylindrical elements and the pin comprise an entire coupling.
7. The coupling of claim 1, wherein the sealing sleeve is fabricated from a glass fiber.
8. The coupling of claim 1, wherein an outer diameter of the sealing sleeve is less than an inner diameter of the semi-cylindrical elements such that the sealing sleeve can reside in the coupling in an axial and a radial dimension.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0020]
[0021] The components of the hinge 24 and latch 26 can be formed integrally with the halves 20, 22 of the coupling 10 using non-metallic materials that are molded together during fabrication. That is, halve 20 can be integrally formed with hinge bearing 44, ledge 36, and upwardly facing barbed projection 38 as a single unit. Similarly, halve 22 can be formed with hinge bearing 46, base 32, and downwardly projecting barbed projections 34 as a single unit. Only pin 48 is needed to complete the assembly of the coupling 10.
[0022]
[0023]
[0024] The non-metallic coupling halves 20,22 are seen in
[0025] The non-metallic coupling retainer halves 20, 22 may be assembled together using a single pin 48 that is inserted into the hinge 24 at mating structures 44, 46. Unlike metallic couplings that have numerous smaller components that assemble into hinge and latch mechanisms, both the hinges 24 and latches 26 of the present invention are incorporated integrally into the retainer halves and formed as a single unit to reduce part count and minimize assembly time. In another embodiment, the hinge 24 and latch 26 of the non-metallic coupling 10 are not integral but made from the same material as the retainer halves 20,22. The combination of the latch 26 and hinge 24 cooperate to open and close the coupling 10 like a “clam-shell”. Because the hinges and latches are incorporated into the retainer halves in a preferred embodiment, the retainer halves may or may not be identical as dictated by the application.
[0026] The sealing sleeve 54 may be fabricated from a non-metallic material such as glass fiber and this component provides a seal between two adjoining tubes 12, 14 each having its ferrule adapters 16 and O-rings. The sealing sleeve 54 is made from a material that is relatively stiff and/or the final fabricated part is stiff with little to no flex. The O-rings may be replaced with other sealants in certain other embodiments. The sealing sleeve 54 has a slightly larger inner diameter than the outer diameters of the ferrule adapter lips. The ferrule adapter flange outer and inner lips create a groove in which the O-ring is seated adjacent the sealing sleeve 54. The sealing sleeve can then be installed over the combination of the O-Rings and ferrule adapters 16 to create a fluid tight seal. The sealing sleeve 54 provides strength from the internal pressure coming from a fluid system in the radial (hoop) direction. The combination of the O-rings or sealants and the fit of the ferrule adapters 16 to the sealing sleeve 54 allows flexibility within each joint.
[0027] When the coupling 10 is closed around the assembled ferrule adapters 16 of respective tubes 12, 14, sealing sleeve 54, and O-rings, the “C” shaped profile and the flanges prevent the two separate ferrule adapters and tubes from separating in the axial direction. The force on the outer lips of the ferrule adapters by the retainer halves 20, 22 provides axial strength along the tube line. The coupling also provides additional sealing in the radial (hoop) direction.
[0028] The bonding mechanisms 28 contact the swage ferrules 16 that are connected to the tubes 12, 14 and allow electrical current to flow from one tube to the other. The bonding mechanisms 28 are made from an electrically conductive material including, but not exclusive to, metals. They are positioned on the surface of the coupling retainer halves 20, 22 in the axial direction to provide contact from one tube to another. Although shown with four bonding mechanisms, more or fewer can be added or subtracted without departing from the scope of the present invention. The bonding mechanisms are attached to their respective retainer halves in a way that allows the non-metallic material of the coupling 10 to mold over the bonding devices 28 to secure it in place while permitting electrical contact. The retainer halves include extruded bosses 30 that can have various shapes, sizes, and quantities that are molded or reshaped over the bonding devices to keep the bonding devices in place.
[0029] While certain embodiments have been described and depicted in this disclosure and the drawings, the invention is not intended to be limited to any specifically described or depicted embodiment. Rather, a person of ordinary skill in the art will readily appreciate and understand that many modifications and substitutions may be made within the described embodiments, and the scope of the present invention is intended to include all such modifications and substitutions. Accordingly, the scope of the invention is not limited herein unless expressly stated, and the invention's scope is properly measured by the appended claims, using their plain and ordinary meanings consistent with these descriptions and drawings.