US20260175946A1 · App 19/431,402
MODULAR RIGGING SYSTEM FOR SUPPORTING A SAILBOAT MAST
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Application
Classifications
IPC Classifications
CPC Classifications
Applicants
Mellman Tech LLC
Inventors
Benjamin Mellman
Abstract
Disclosed is a modular rigging system for supporting the mast of a sailboat. A variety of modular toggle designs are provided which enable the system to be fitted to a variety of different sailboat designs. A variety of modular thimble designs are provided which connect lengths of woven fibers between the toggles, such that load can be transferred therethrough. A system for adding tension to the modular rigging system is also disclosed, which utilizes turnbuckles to adjust lengths of woven fiber. A method for allowing standardized part sizes for off-the-shelf retail sale of components to comprise a customizable kit fitting any sailboat, selected and assembled by the end user is also disclosed.
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Description
CROSS REFERENCE TO RELATED APPLICATIONS
[0001]This application claims priority to U.S. Provisional Patent Application Ser. No. 63/738572, filed Dec. 24, 2024, the contents of which are hereby incorporated by reference in their entirety.
TECHNICAL FIELD
[0002]The present disclosure generally relates to a system for supporting a mast of a sailboat, and in particular to a modular rigging system for supporting the mast.
BACKGROUND
[0003]In sailboat design, sails are mounted to a stable structure called a mast. The mast of a sailboat is typically a tall, thin rod which is mounted to a sailboat in a vertical position when viewed relative to the horizon in flat water. When a sail is attached to the mast, forces and moments generated by wind passing over the sail are either absorbed by or passed through the mast to the rest of the boat. A partial result of the forces experienced by a sailboat is a state of heel, during which a sailboat leans over due to the moment generated by the force of the wind on the sail. When in such a state, the mast is no longer vertically positioned relative to the horizon and instead creates an angle with the horizon, often between 5 or 35 degrees. This state results in even more pronounced loading of the mast.
[0004]When under sail, waves complicate the situation further. A sailboat may experience significant acceleration and deceleration in several directions simultaneously as it travels through waves. These accelerations result in momentary shock loading of the mast.
[0005]The overall result of this dynamic scenario is that the mast experiences significant loading throughout use. To accommodate this loading, a system for supporting the mast is provided that supports against significant deformation or failure of the mast in all six degrees of freedom. This support is maintained while also allowing minor elastic deformation of the mast itself. Furthermore, this system provides desired support equivalently to both the left and right side of the mast, as loading conditions for the mast can be mirrored depending on the boat's position relative to the wind direction.
[0006]The widely accepted solution to supporting the mast is through the use of metal or carbon fiber wires or cables, which are anchored to the deck of the sailboat and are attached to points along the mast. Typically, the mast is supported by a series of these cables, with an equal number supporting the mast on either side, at least one supporting the mast from the front—or bow—of the boat, and in some cases at least one supporting the mast from the rear. In aggregate, these cables make up the standing rigging system of the sailboat. Cables which are supporting the left and right side of the mast are referred to as shrouds. Cables which are supporting the fore and aft of the mast are referred to as forestay and backstay respectively. The cables are under a significant amount of tension, so that when the mast experiences a load in a direction, the cable(s) opposite the load hold the mast largely in place save for minor elastic deformation. Tension is added to the system using turnbuckles, which are screw-like apparatuses which are positioned between a mounting point on the surface of the boat, sometimes referred to as a chainplate, and the cable.
[0007]However, standard standing rigging systems are heavy due to the number of metal components and recommended spare parts. The excess weight of the system results in reduced performance of the sailboat. Additionally, each cable uses an individual turnbuckle, which is expensive and adds more additional weight to the boat. The threads on turnbuckles act as stress concentrators to the material, along with being exposed to corrosive environments. These factors, especially when combined, lead to cracking and premature failure of turnbuckles which are installed in existing standing rigging systems. Furthermore, the system typically is installed by a specialist installer, who in many cases designs a custom solution for the individual boat and also custom fabricates each length of cable. As a result, installing the standing rigging system is expensive and time consuming. Furthermore, it makes repairs difficult to achieve, especially when offshore.
[0008]Accordingly, while existing current standing rigging systems for sailboats are suitable for their intended purposes the need for improvement remains. Particularly in providing a standing rigging system having the features described herein.
[0009]This section is intended to introduce the reader to various aspects of art that may be related to various aspects of the present disclosure described or claimed below. This description is believed to be helpful in providing the reader with background information to facilitate a better understanding of the various aspects of the present disclosure. Accordingly, it should be understood that these statements are to be read in this light and not as admissions of prior art.
BRIEF DESCRIPTION
[0010]A modular rigging system for supporting a mast of a sailboat is disclosed. The modular rigging system comprises a first toggle configured to connect to a chainplate of the sailboat. A first thimble is configured with at least two first attachment points which are configured to receive a first adjustable connector. The modular rigging system further comprises a second thimble, wherein the second thimble is configured with at least two second attachment points configured to receive a second woven fiber. A lower tensioning section is provided which includes the first adjustable connector, wherein the first adjustable connector is coupled between the first toggle and the first thimble. Additionally, a synthetic shroud segment is made of a length of woven fiber and is configured to connect to and span the distance between the first thimble and the second thimble. The modular rigging system further comprises a mast attachment portion which is configured to couple between the shroud apparatus and the mast; and an optional upper tensioning section which includes a second adjustable connector, wherein the second adjustable connector is coupled between the mast attachment portion and the second thimble.
[0011]Various refinements exist of the features noted in relation to the above-mentioned aspects. Further features may also be incorporated in the above-mentioned aspects as well. These refinements and additional features may exist individually or in any combination. For instance, various features discussed below in relation to any of the illustrated examples may be incorporated into any of the above-described aspects, alone or in any combination.
BRIEF DESCRIPTION OF DRAWINGS
[0012]The following drawings form part of the present specification and are included to further demonstrate certain aspects of the present disclosure. The disclosure may be better understood by reference to one or more of these drawings in combination with the detailed description of specific embodiments presented herein.
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[0032]Corresponding reference characters indicate corresponding parts throughout the several views of the drawings. Although specific features of various examples may be shown in some drawings and not in others, this is for convenience only. Any feature of any drawing may be referenced or claimed in combination with any feature of any other drawing.
DETAILED DESCRIPTION
[0033]The following detailed description and examples set forth preferred materials, components, and procedures used in accordance with the present disclosure. This description and these examples, however, are provided by way of illustration only, and nothing therein shall be deemed to be a limitation upon the overall scope of the present disclosure. The following terms are used in the present disclosure as defined below.
[0034]Embodiments of the present disclosure provide for a standing rigging system for a sailboat that reduces the weight of the system by reducing the number of redundant components and limiting the number of metal components. Further embodiments of the present disclosure provide for a standing rigging system that can easily be repaired while offshore. Still further embodiments of the present disclosure provide for a standing rigging system that reduces the cost and time required to install a new standing rigging system onboard the sailboat. Further embodiments of the present disclosure provide for a standing rigging system which can be easily retrofitted onto a sailboat to replace an existing standing rigging system. Further embodiments of the present disclosure provide for a standing rigging system comprised of standardized modular parts of various sizes, allowing for production of an off-the-shelf type kit to be purveyed by retail stores and foregoing the need for an expert professional to design and or install a customized system for each sailboat.
[0035]Turning now to
[0036]A backstay 20 couples the mast 12 to a point proximate the rearmost point of the sailboat 10. In some embodiments, the backstay 20 connects directly to a point on a rear surface of the mast 12 proximate the mast tip 18. In some embodiments, a strut 22 extends from a point on the rear surface of the mast 12 proximate the mast tip 18, and the backstay couples a point on the strut to the point proximate the rearmost point of the sailboat (as shown in
[0037]In
[0038]For some sailboats, additional support is desired to ensure the mast 12 does not deform or buckle between the mast base 13 and the mast connection point 36. In such embodiments of the metal cable standing rigging system, at least one diagonal shroud 42 is provided on either side of the mast which is coupled to a spreader base 44. As shown in
[0039]As shown in
[0040]
[0041]Prior art metal cable standing rigging systems utilize turnbuckles 50 as the anchors between the chainplate 48 and each respective cap shroud 32 and each respective diagonal shroud 42 at the base end 34 and diagonal base end 46 respectively. Other devices are known which can replace the turnbuckle on smaller sailboats, such as shroud adjuster plates or downsized turnbuckles known by the trade name “Sta-Master.” The turnbuckle is adjustable to provide more or less tension to the respective shroud it is connected to using a crescent wrench, pliers, or other similar tools known in the art. More tension is often desirable, for example, when sailing in extreme winds where the forces experienced by the mast 12 are amplified.
[0042]The chainplate 48 comprises a metal body with a number of anchor holes corresponding to the number of desired base ends and diagonal base ends for the given sailboat 10. Each turnbuckle 50 has a turnbuckle toggle 52 which connects to a respective anchor hole via clevis pins 54.
[0043]The below description is directed to one “segment” of a modular rigging system. A segment of the modular rigging system can replace any similar segment of the metal cable standing rigging system. For example, a segment of the modular rigging system may replace a cap shroud in totality, or the cap shroud may be replaced by several discontinuous segments which would mimic the arrangement of the discontinuous cap shroud described above. The same applies to continuous and discontinuous diagonal shrouds.
[0044]Referring now to
[0045]The modular toggle 102, which is described in further detail in relation to
[0046]A second length of woven fiber 110 couples the first thimble 108 to a second thimble 112. The second length of woven fiber 110 is pre-cut to a pre-determined length so that the an overall length of the modular rigging system 100 matches the desired segment length closely. Each end of the second length of woven fiber 110 is spliced or otherwise attached to itself around each of the first thimble 108 and second thimble 112 to form a loop. In some embodiments, the second length of woven fiber 110 is made of ultrahigh molecular weight polyethylene or high modulus polyethylene fiber, often known by the trade name Dyneema manufactured by Avient Corporation of Avon Lake, OH. On a weight for weight basis, Dyneema or an equivalent fiber has a tensile strength that is several times stronger than steel, while also being several times lighter. Thus, replacing the metal standing rigging system with the modular rigging system provides advantages in significant weight savings by replacing the metal cables with lighter synthetic fibers. Those skilled in the art will appreciate that other similar woven and/or synthetic fibers could be used instead of Dyneema.
[0047]A third length of woven fiber 114 couples the second thimble 112 to a mast attachment portion 116 (i.e. replacing the mast connection point 36). In some embodiments, such as the embodiment shown in
[0048]The first length of woven fiber 106 and the third length of woven fiber 114, may be made of the same material as the second length of woven fiber 110, or may alternatively be made of other known rope materials such as nylon or polyester, for example. Other adjustable lengths of woven fiber, such as ratchet straps, may also be used as a substitute. Additionally, the first length of woven fiber 106 and the third length of woven fiber 114 may be replaced by other means of achieving an adjustable connector of variable length.
[0049]The modular toggle 102 is shown according to some embodiments in
[0050]In some embodiments, the modular toggles 102, 118 are manufactured by stamping a flattened work piece out of a sheet of metal with the desired holes, then bending the work piece about a middle axis to create the radius of the arcuate section 128. Alternatively, the modular toggles 102, 118 may be manufactured using casting or forging metal working processes. In some alternative embodiments, some or all of the manufacturing process is achieving using a CNC machine. In still further embodiments, the toggle 102 may be fabricated using an additive manufacturing process.
[0051]The first thimble 108 is shown according to some embodiments in
[0052]In some embodiments, either first thimble 108 and/or second thimble 112 may have a generally planar body with a circular cross-section in lieu of the teardrop shaped planar body. In some embodiments, the circular cross-section may enable the respective thimble 108, 112 to be used without the respective length of woven fiber 106, 114. A person of ordinary skill in the art will readily appreciate that the first thimble 108 and/or second thimble 112 may have a cross section with a different shape without departing from the scope of the present disclosure.
[0053]The thimbles 108, 112 may be manufactured via a CNC machining, casting, or forging. Additive manufacturing, such as 3D printing, could also be used. The thimbles 108, 112 are manufactured using titanium, aluminum, or stainless steel alloys, ceramic, ceramic-metallic or “cermet”, carbon fiber, or any other fiber reinforced polymer or composite materials.
[0054]Referring now to
[0055]Referring now to
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[0057]The dog bone 122 may be manufactured via CNC machining, die casting, forging, or additive manufacturing (such as 3D printing). The dog bone 122 is made of titanium, aluminum, or stainless steel alloys, ceramic, ceramic-metallic or “cermet”, carbon fiber, other fiber reinforced polymer materials, or other materials which can be shaped using the aforementioned method while achieving similar material properties.
[0058]Referring now to
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[0062]It should be appreciated that the embodiments of
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[0064]In some embodiments, the modular rigging system 100 is assembled by first coupling the first modular toggle 102 to the chainplate 48. Then, the first thimble 108 is coupled to the first modular toggle 102 via a first length of woven fiber 106. The second thimble 112 is coupled to the first thimble 108 by the second length of woven fiber 110. The second thimble 112 is coupled to the mast attachment portion 116 via the third length of fiber 114 or attached directly using the circular thimble embodiment as the second thimble 112, foregoing the need for the third length of fiber 114. The mast attachment portion 116 is coupled to the mast 12.
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[0066]In some embodiments, usage of the tensioning assembly may be described as follows. First, a tension plate 800 is coupled to each of the first modular toggle 102 and the first thimble 108 via a plurality of quick pins 802. Respective receiver ends 805 of the turnbuckle 804 are coupled to each respective tension plate 800 via elongate quick pins 806. The turnbuckle 804 is then tightened to reduce a length of the turnbuckle 804, in turn reducing the effective length of the first length of woven fiber 106. Slack is removed from the first length of woven fiber 106. The first length of woven fiber 106 is secured by tying off the free end as described above in reference to
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[0071]Embodiments of the present disclosure provide for a modular rigging system for sailboats that have a number of advantages over the prior art. Embodiments of the modular rigging system have reduced weight over prior art metal cable rigging systems and have increased flexibility in the connection between the mast and the deck/hull of the sailboat. Embodiments provide for allowing the sailboat operator to repair or change the configuration of the rigging while not moored or in port. Still further embodiments allow an operator to carry a small number of spare components to facilitate repairs or changes under operation. Still further embodiments allow for the packaging and sale of a standardized kit of components off-the-shelf at retail locations allowing end users the ability to easily procure and implement the modular rigging system on their own vessels with limited expertise or special tooling. It should be appreciated that while embodiments herein illustrate a particular sailboat, this is for exemplary purposes and the rigging system described herein may be scaled for use on any size boat having a mast without deviating from the teachings herein.
[0072]As used herein, an element or step recited in the singular and proceeded with the word “a” or “an” should be understood as not excluding plural elements or steps unless such exclusion is explicitly recited. Furthermore, references to “one embodiment” of the disclosure or an “exemplary” or “example” embodiment are not intended to be interpreted as excluding the existence of additional embodiments that also incorporate the recited features. Likewise, limitations associated with “one embodiment” or “an embodiment” should not be interpreted as limiting to all embodiments unless explicitly recited.
[0073]Disjunctive language such as the phrase “at least one of X, Y, or Z,” unless specifically stated otherwise, is generally intended, within the context presented, to disclose that an item, term, etc. may be either X, Y, or Z, or any combination thereof (e.g., X, Y, and/or Z). Likewise, conjunctive language such as the phrase “at least one of X, Y, and Z,” unless specifically stated otherwise, is generally intended, within the context presented, to disclose at least one of X, at least one of Y, and at least one of Z.
[0074]The disclosed systems and methods are not limited to the specific embodiments described herein. Rather, components of the systems or steps of the methods may be utilized independently and separately from other described components or steps.
[0075]This written description uses examples to disclose various embodiments, which include the best mode, to enable any person skilled in the art to practice those embodiments, including making and using any devices or systems and performing any incorporated methods. The patentable scope is defined by the claims and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal language of the claims.
Claims
1. A modular rigging system for supporting a mast of a sailboat, the modular rigging system comprising:
a first modular toggle coupled to a chainplate of the sailboat;
a first thimble coupled to the first modular toggle by a first length of fiber, the first modular toggle and the first thimble being configured such that a tensioning assembly is removably couplable to the first modular toggle and the first thimble;
a second thimble coupled to the first thimble by a second length of fiber; and
a mast attachment portion coupled to the second thimble either directly or by a third length of fiber.
2. The modular rigging system of
a second modular toggle, wherein the third length of fiber is coupled to the second modular toggle; and
a mast tang, wherein the mast tang is secured to the mast via a threaded fastener or pin and coupled to the second modular toggle via a dog bone.
3. The modular rigging system of
4. The modular rigging system of
a second modular toggle, wherein the third length of fiber is coupled to the second modular toggle; and
a mast tang, wherein the mast tang is secured to the mast via a threaded fastener or pin, and the second toggle is connected to the mast tang.
5. The modular rigging system of
6. The modular rigging system of
7. The modular rigging system of
8. The modular rigging system of
9. The modular rigging system of
10. The modular rigging system of
11. The modular rigging system of
12. The modular rigging system of
at least one tension plate removably coupled to the first modular toggle;
at least one additional tension plate removably coupled to the first thimble; and
at least one turnbuckle coupled to and extending between the at least one tension plate and the at least one additional tension plate.
13. The modular rigging system of
14. The modular rigging system of
15. The modular rigging system of
a U-shaped profile defined by a first leg and an opposing second leg, the first leg and second leg being joined by at least one shoulder, wherein:
a first hole is defined through the first leg, and
a second hole coaxial with the first hole is defined through the opposing second leg; and
a roller pin held captive to the first modular toggle by the at least one shoulder, wherein the first length of woven fiber is wrapped around the roller pin.
16. The modular rigging system of
17. A method for assembling a modular rigging system configured to support a mast of a sailboat, the method comprising:
coupling a first modular toggle to a chainplate of the sailboat;
coupling a first thimble to the first modular toggle via a first length of fiber, wherein a length of the first length of fiber is tensioned via a tensioning assembly;
coupling a second thimble to the first thimble by a second length of fiber; and
coupling the second thimble to the mast via a mast attachment portion, the mast attachment portion being coupled to the second thimble through mast attachment hardware or via a third length of fiber and mast attachment hardware.
18. The method of
coupling at least one tension plate to the first modular toggle via a plurality of quick pins;
coupling at least one additional tension plate to the first thimble via a plurality of quick pins;
coupling a first receiver end of at least one turnbuckle to the at least one tension plate via an elongate quick pin;
coupling a second receiver end of the turnbuckle to the at least one additional tension plate via an elongate quick pin;
reducing the length of the turnbuckle;
removing slack from the first length of fiber; and
securing the first length of fiber.
19. The method of
coupling a first end of the first length of fiber to a roller pin of the first modular toggle;
wrapping a second end of the first length of fiber around a receiver of the first thimble; and
securing the second end.
20. The method of
wrapping a first end of the second length of fiber about the first thimble, wherein the first end of the second length of fiber is held in place by a groove formed in the first thimble;
splicing the first end of the second length of fiber to itself such that the first thimble is held in a loop formed by the splice;
wrapping a second end of the second length of fiber about the second thimble, wherein the second end of the second length of fiber is held in place by a groove formed in the second thimble; and
splicing the second end of the second length of fiber to itself such that the second thimble is held in the loop formed by the second end.