Large bore reinforced hose can be utilized in a wide array of applications. One important application for large bore reinforced hose that is of growing importance in the world today is in loading and unloading oil tankers and floating production storage and offloading units (FPSOs). Such hose has an inside diameter of 5 cm or greater and typically has an inside diameter ranging from 20 cm to 80 cm. Such hose for offshore applications is also typically designed to include a floatation medium to provide the hose with sufficient buoyancy so that it will float on the surface of water. Hose for offshore applications typically has reserve buoyancy when filled with sea water which is within the range of 10% to 40%. A reserve buoyancy of at least 20% is frequently demanded by customers. Because vast reserves of petroleum are located under water in many locations around the world including under the North Sea, the Gulf of Mexico, off the coast of Brazil, and off the coast of California there is a growing demand for large bore reinforced floating hose.
Transferring the crude oil from FPSOs to shuttle tankers at sea is an extremely demanding task because of the persisting relative movement between the vessels. During times of adverse weather conditions, such as high waves, high winds, and storms at sea, this tack becomes even more difficult. Floating hoses typically run from the bow and/or the stern of FPSOs to shuttle tankers. Modern shuttle tankers may have a bow manifold for charging crude oil, but many conventional shuttle tankers have a charging device consisting of a midship manifold for intake of the oil load. For this reason a relatively long loading hose is needed, from the FPSO-vessel to the midship manifold on the shuttle tanker. The separation between the vessels, between the stern of the FPSO and the bow of the shuttle tanker is generally about 50 to 200 meters, and the extension of the floating hose is normally between about 150 and 300 meters.
When the floating hoses are not being used to transfer petroleum they can be allowed to remain floating on the water after being released from the tankers. However, in such cases where the floating hose is left on the water the floating hose may be damaged by being struck by ships, sea creatures or by the movement from waves in stormy weather. In any case, hose wear occurs due to continual wave action. This can lead to a loss of the buoyancy and/or primary carcass failure and over time the hose can begin sink.
In the alternative, the floating hose can be hoisted onto the FPSO for storage until it is again needed for offloading crude oil to a shuttle tanker. This can be done by using a wench to pull the floating hose onto a reel. This protects the hose from exposure to waves and the inherent wear associated therewith. It also eliminates the danger of the floating hose being struck by a ship as it is floating at sea. However, pulling the hose onto a reel puts the couplings that connect different sections of hose under a tremendous amount of stress. At the point where the coupling is being pulled onto the reel it experiences a particularly high level of stress and compressive forces. Over time, these forces can cause the hose to fail at or near the point where it is attached to a coupling. In any case, large bore reinforced hoses are prone to failure at their couplings. This is also the case where large tensile loads are encountered in catenary and deep water submarine applications.
Today, there is a need for couplings for large bore reinforced hoses that are more resilient and which are capable of being incorporated into hoses that are more durable and capable of being repeatedly pulled onto reels and more resilient to high tension and bending loads. It would accordingly be desirable to develop couplings for large bore reinforced hoses that are more resistant to failure and which have a longer service under harsh service conditions, such as being repeatedly pulled onto reels.
The hose couplings of this invention can be used to connect sections of large bore reinforced hose to make them more resistant to damage and to provide longer service life. These couplings can be used in conjunction with virtually any reinforced hose and are particularly beneficial when used in conjunction with hose that has a propensity to being damaged by virtue of being subjected to axial and bending forces, such as those encountered while being spooled on a reel. More specifically, hose utilizing the couplings of this invention is not as susceptible to being damaged or destroyed by the forces normally encountered during normal usage. This extends the service life of hoses of this invention which include such couplings.
The present invention more specifically discloses a coupling for a large bore hose, said coupling comprising a tubular body which is adapted for fitting into the end of said large bore hose, said tubular body having a tail end which is adapted to lie inwardly from the end of the hose, said tubular body having an outer end which is adapted to extend beyond an axial end of the hose, and at least one hose carcass anchor which is affixed to the tubular body, wherein the carcass anchor is adapted for the hose carcass and/or load bearing extensions of the carcass to extend through and/or around the carcass anchor.
The subject invention also reveals a coupling for a large bore hose, said coupling comprising a tubular body which is adapted for fitting into the end of said large bore hose, said tubular body having a tail end which is adapted to lie inwardly from the end of the hose, said tubular body having an outer end which is adapted to extend beyond an axial end of the hose, the outer surface of said tubular body being provided with a plurality of axially spaced retention beads, and at least one hose carcass anchor which is affixed to the tubular body at a point on or outward from the last retention bead toward the outer end of the tubular body, wherein the carcass anchor is adapted for the hose carcass and/or load bearing extensions of the carcass to extend through and around the carcass anchor.
The present invention further discloses a hose assembly comprising a reinforced hose having at least one reinforcement layer and a coupling on at least one end of the hose, said coupling comprising a tubular body which is adapted for fitting into the end of said large bore hose, said tubular body having a tail end which is adapted to lie inwardly from the end of the hose, said tubular body having an outer end which is adapted to extend beyond an axial end of the hose, and at least one hose carcass anchor which is affixed to the tubular body, wherein the hose carcass and/or load bearing extensions of the hose carcass are affixed to the carcass anchor. For instance, load bearing extensions of the hose carcass which are comprised of steel wire or cable can be welded or clamped onto the carcass anchor. Fabric or polymeric cords or fibers can also be clamped onto the carcass anchor or wound around and/or through it. Virtually any attachment means that is capable of securely affixing the load bearing extensions of the hose carcass to the carcass anchor can be used.
The subject invention also reveals a hose assembly comprising a reinforced hose having at least one reinforcement layer and a coupling on at least one end of the hose, said coupling comprising a tubular body which is adapted for fitting into the end of said large bore hose, said tubular body having a tail end which is adapted to lie inwardly from the end of the hose, said tubular body having an outer end which is adapted to extend beyond an axial end of the hose, and at least one hose carcass anchor which is affixed to the tubular body, wherein the hose carcass and/or load bearing extensions of the hose carcass extend through and/or around the carcass anchor.
The subject invention further reveals a hose assembly, sometimes referred to as the “hitching post assembly,” comprising a reinforced hose having at least one reinforcement layer and a coupling on at least one end of the hose, said coupling comprising a tubular body which is adapted for fitting into the end of said large bore hose, said tubular body having a tail end which is adapted to lie inwardly from the end of the hose, said tubular body having an outer end which is adapted to extend beyond an axial end of the hose, the outer surface of said tubular body being provided with a plurality of axially spaced retention beads, and at least one hose carcass anchor which is affixed to the tubular body at a point on or outward from the last retention bead toward the outer end of the tubular body, wherein the hose carcass and/or load bearing extensions of the hose carcass extend through and around the carcass anchor.
a also illustrates the embodiment of the invention shown in
The couplings of this invention can be beneficially used in conjunctions with hoses of different sizes and that are designed for a wide variety of purposes. However, the couplings of this invention are of particular benefit for use in conjunction with large bore hoses having an inside diameter of at least 5 cm and which typically has an inside diameter ranging from 20 cm to 80 cm and an outside diameter which is within the range of about 40 cm to about 150 cm, such as floating hose that is used in transferring crude oil and other liquids over water (in filling and unloading tanker ships), catenary systems and deep water submarine applications.
The couplings of this invention can be used in conjunction with floating hose having a carcass with an inside and an outside, a floatation medium surrounding the hose carcass and an outer cover. They may also be used in a single carcass hose that is either designed for floating, submarine applications or as a catenary system. This type of floating hose typically has an inside diameter which is within the range of about 30 cm to 80 cm and an outside diameter which is within the range of about 40 cm to about 150 cm. For instance, many commercial floating hoses of this type have an inside diameter of 50 cm (20 inches) and an outside diameter of 95 cm (38 inches).
The carcass is of a tubular shape and is typically comprised of a base submarine hose complete with end fittings. The hose carcass is surrounded by a floatation medium which is typically comprised of several layers of closed cell foam. The closed cell foam can be multiple layers of a polymeric foam, such as polyurethane or polyethylene foam. The floatation medium will have a density and a total volume that is sufficient to provide the floating hose 1 with a reserve buoyancy when filled with sea water which is within the range of 10% to 40%. The floating hose will more typically have a reserve buoyancy when filled with sea water which is within the range of 15% to 35%. In most cases the floating hose will have a reserve buoyancy when filled with sea water of about 25%. In fact, many specifications call for a reserve buoyancy of at least 20%.
The floating hose includes a carcass and can optionally include a second carcass to attain a higher level of safety, performance and better durability. The hose carcass is typically comprised of a cured rubber which can be reinforced with a polymeric fabric, such as nylon or polyester, and/or steel reinforcements. For instance, the hose carcass can be reinforced with Kevlar® aramid fiber. The hose carcass will typically be comprised of a cured rubber, such as natural rubber, synthetic polyisoprene rubber, styrene-butadiene rubber (SBR), polyneoprene rubber, styrene-isoprene rubber, polybutadiene rubber, styrene-isoprene-butadiene rubber, nitrile rubber, carboxylated nitrile rubber, ethylene-propylene-diene monomer rubber (EPDM), or a mixture thereof. The hose carcass will also typically include one or more liners. To provide desired levels of chemical resistance such liners will generally be comprised of a nitrile rubber. To attain excellent heat resistance, oil resistance, and chemical resistance fluoroelastomers, such as Viton® fluoroelastomer, can be used in making the liners as well as thermoplastic liners such as crosslinked polyethylene.
The floatation medium can be provided by wrapping multiple layers of closed cell foam around the hose carcass. A thin layer of rubber is preferably laid between the carcass and the floatation medium. The floatation medium will normally be about 6 cm to about 18 cm thick. In other words, the floatation medium will extend outwardly from the carcass about 6 cm to about 18 cm. The floatation medium will preferably be about 10 cm to about 15 cm thick and will most preferably be about 12 cm to about 14 cm thick.
The floatation medium is surrounded outwardly with the outer cover of the hose. The outer cover is normally comprised of textile breakers with a rubber cover (a textile reinforced rubber cover). The outer cover can optionally include a polyurethane coating. In any case, the outer cover is designed to contain and protect the floatation medium from water damage and environmental conditions.
The key to this invention is providing the coupling with anchors that allow the hose carcass or a load bearing extension of the carcass to extend through and around the anchors. This allows for the stress associated with tensile loading to be delivered directly to the coupling through the carcass anchors rather than through the interface between the hose and the tubular body of the coupling as is the case with the coupling designs of the prior art. The carcass anchors will normally extend into the hose no further than the cement line behind the first retention bead. In many cases, the carcass anchors will not extend into the hose as far as the first retention bead.
In one embodiment of this invention the carcass anchor is a plurality of pins that extend radially from the tubular body. In another embodiment of this invention the carcass anchor is a ring which is affixed to the tubular body through a plurality of rods or plates that extend outwardly from the tubular body to the ring. The outer surface of the tubular body is provided with at least one retention bead. For instance, the outer surface of the tubular body can include two retention beads or a plurality of axially spaced retention beads. The carcass anchor is attached to the tubular body at a point on or outward from the retention bead toward the outer end of the tubular body.
The reinforcing fabric of the hose carcass can extends through and/or around the carcass anchor. In on embodiment of this invention the carcass anchor is a plurality of pins that extend radially from the tubular body. In another embodiment of this invention the carcass anchor is a ring which is affixed to the tubular body through a plurality of rods or plates that extend outwardly from the tubular body to the ring. Typically, the hose assembly will be void of longitudinal supports. The carcass wire can be a metal wire or cable, such as a steel wire or cable, which is directly attached to the coupling.
The outer surface of the tubular body is typically provided with at least one retention bead and can include two retention beads. In some cases, it may be desirable for the outer surface of the tubular body of the coupling to include a plurality of axially spaced retention beads. The carcass anchors are normally situated outwardly toward the end of the hose from the first retention bead. For instance, the carcass anchors are situated outwardly toward the end of the hose from the cement line behind the first retention bead. Normally, the carcass anchor is attached to the tubular body at a point on or outward from the last retention bead toward the outer end of the tubular body.
While certain representative embodiments and details have been shown for the purpose of illustrating the subject invention, it will be apparent to those skilled in this art that various changes and modifications can be made therein without departing from the scope of the subject invention.
This application claims benefit of U.S. Provisional Patent Application Ser. No. 61/235,460, filed on Aug. 20, 2009. The teachings of U.S. Provisional Patent Application Ser. No. 61/235,460 are incorporated herein by reference in their entirety.
Number | Date | Country | |
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61235460 | Aug 2009 | US |