EQUINE BRIDLE SYSTEM FOR PROVIDING VARIABLE PRESSURE OUTPUT RESPONSE
20190002270 ยท 2019-01-03
Inventors
Cpc classification
B68B7/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An equine bridle system, the system having a mouth piece; a headstall; reins; and a plurality of connection interfaces being provided at opposing ends of the mouthpiece. Each connection interface is configured to resiliently deform in response to a tensile input by a user to the reins so as to provide a variable pressure output profile at the mouth piece.
Claims
1. An equine bridle system, the system comprising: a mouth piece; a headstall; reins; and a plurality of connection interfaces being provided at opposing ends of the mouthpiece, wherein the mouth piece is connected to a forward portion of each connection interface, the reins being affixed to each connection interface at a rear portion of each connection interface, and the headstall being affixed to each connection interface at an upper portion of each connection interface, wherein each connection interface is configured to resiliently deform in response to a tensile input force being between zero and thirty-five pounds by a user to the reins.
2. The equine bridle system of claim 1, wherein each connection interface is an annular ring, the annular ring being circular in an unloaded state.
3. The equine bridle system of claim 2, wherein each connection interface is formed of a resilient thermoplastic.
4. The equine bridle system of claim 1, wherein each connection interface is an annular ring, each annular ring having a break about the rear portion.
5. The equine bridle system of claim 1, wherein each connection interface is a D-shaped ring, the D-shaped ring being D-shaped in an unloaded state.
6. The equine bridle system of claim 1, wherein each connection interface is a J-shaped ring, each J-shaped ring being J-shaped in an unloaded state.
7. The equine bridle system of claim 6, wherein the headstall is affixed to each connection interface above a connection point of the mouth piece, and the mount piece is affixed between relative connection points for the headstall and the reins.
8. The equine bridle system of claim 1, wherein each connection interface is formed having a resilient core portion being over-molded by a secondary resilient material having varying resilient properties from the resilient core.
9. The equine bridle system of claim 1, wherein a first portion of the connection interface is formed of a rigid material, and wherein a second portion of the connection interface is formed of a resilient material.
10. The equine bridle system of claim 1, wherein the connection interface is configured to resiliently deform through a target deformation range in response to a tensile input force ranging between 0 and 35 pounds of force, the connection interface resiliently returning to an unloaded initial shape upon release of the tensile input.
11. The equine bridle system of claim 1, wherein the tensile input force applied to the plurality of connection interfaces results in a change to a relative angle between the mouth piece and the headstall.
12. The equine bridle system of claim 1, wherein the headstall, reins, and mouth piece are rigidly affixed to the connection interface.
13. The equine bridle system of claim 1, wherein the headstall, reins, and mouth piece are slidingly affixed about a perimeter of the connection interface.
14. The equine bridle system of claim 1, wherein the tensile input force applied to the plurality of connection interfaces results in a non-linear output force directed to the mouth piece
15. An equine bridle system, the system comprising: a mouth piece; a headstall; reins; a plurality of connection interfaces being provided at opposing ends of the mouthpiece, wherein each connection interface is provided as an annular ring, the annular ring being circular in an unloaded state, wherein the mouth piece is slidingly connected to a forward portion of each connection interface, the reins being affixed to each connection interface at a rear portion of each connection interface, and the headstall being slidingly affixed to each connection interface at an upper portion of each connection interface, wherein each connection interface is configured to resiliently deform in response to a tensile input force being between zero and thirty-five pounds by a user to the reins.
16. The equine bridle system of claim 15, wherein each connection interface is formed of a resilient thermoplastic.
17. An equine bridle system, the system comprising: a mouth piece; a headstall; a plurality of connection interfaces being provided at opposing ends of the mouthpiece, wherein each connection interface is provided as an annular ring, the annular ring being circular in an unloaded state, wherein each connection interface being affixed to the mouth piece at a forward portion of the connection interface, and wherein a tensile force applied to the plurality of connection interfaces results in a non-linear output force directed to the mouth piece.
18. The equine bridle system of claim 17, further comprising: a rein connection interface provided about a rear portion of the connection interface.
19. The equine bridle system of claim 18, wherein each connection interface is configured to resiliently deform in response to a tensile input force being between zero and thirty-five pounds at the rein connection interface.
20. The equine bridle system of claim 17, wherein the connection interface is formed of a resilient thermoplastic.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The foregoing and other objects, aspects, features, and advantages of the disclosure will become more apparent and better understood by referring to the following description taken in conjunction with the accompanying drawings, in which:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0027] Contemplated herein, and as illustrated in the various figures is a new and improved an equine bridle system for providing variable pressure output response for providing commands to an equine animal. It will be appreciated by those having skill in the art that various bridle systems utilize various mouth pieces or bits which extend into the animal's mouth and have a connection interface provided about opposing ends thereof. These bits are connected to at least a headstall and reins through the connection interface. Meanwhile headstall and other straps also receive some of the tensile input force at the reins and are also used to ensure proper relative positioning of the mouth piece within the mouth of the animal, the reins are utilized to receive a tensile force from a rider or user so as to transmit the tensile force into the mouth of the animal and thus convey a command.
[0028] The present invention allows for variation in the output pressure profile applied to the animal's mouth or noseband by utilizing various materials and structures as will be discussed in detail below.
[0029] Also contemplated herein is the use of the connection interface in conjunction with a bit-less bridle. Bit-less bridles utilize a nose piece instead of a bit style mouth-piece, however the mechanism is the same in that the pressure or rotation imparted to the nose piece is transferred through the connection interface to the headstall and reins.
[0030] The present invention seeks to overcome various deficiencies present in the prior art and provide a bridle and bit which can provide a wider range or bit pressure by forming the connection interface from a resilient material that will flex or elastically deform in a predetermined response profile as an increasing amount of pressure is applied to the reins. In this manner, a certain degree of variation in a predetermined profile can be achieved between the application pressure provided at the reins and headstall and that transmitted to the horse through the mouth or nose piece.
[0031]
[0032] In some instances, the connection interface can be configured to allow for deflection of the structure itself into a deformed shape, but be rigid along the axis of the material or along the circumference thereof, thus allowing deflection, but not stretching of the structure which would then result in an exponential force output profile which slowly increases in resistance or output force at low forces, but increases exponentially as more force is applied to the reins. However, in some alternative embodiments stretch or elastic deformation along the axial length or circumference can be permitted and thus allow for a logarithmic or plateaued pressure output at the bit, thus effectively limiting the amount of pressure a rider can apply to the bit. In other instances, the deformation can be designed to have a non-linear result. Which systems can be of particular advantage with use for inexperienced riders wherein such an interface can be utilized to protect the animal, particularly in instances where a rider may not understand an appropriate amount of pressure to apply.
[0033]
[0034]
[0035] In one example embodiment of the present invention, as shown in
[0036] In this embodiment a connection ring can also be provided on an upper edge of the D-ring so as to render it into a kimblewick or snaffle shape.
[0037] In another example embodiment of the present invention, as shown in
[0038] In yet another example embodiment of the present invention, as shown in
[0039] Also, as briefly discussed above, the various connection interfaces can be formed of a singular material which can be achieved by utilizing a single-shot molding process. However, in yet additional embodiments, the connection interfaces can be formed of two differing materials which can be achieved by utilizing a double-shot molding process, wherein a resilient material is over-molded onto a differing material. For example, and as shown in
[0040] Additionally, in some embodiments of the present invention, and as illustrated above, the connection interface can be wholly made of a singular or unitary resilient material. However, in other embodiments, and as illustrated in
[0041] It will also be understood that in some instances certain advantages and pressure profiles can be recognized by providing secure or fixed connection locations between the reins, headstall, or mouth piece to any particular connection interface. In some instances, desired pressure profiles can be achieved by providing slidable or translating connection interfaces as various combinations may allow for variation in the alignment of the tensile force applied to the reins and the pressure output provided to the mouth piece, or the change in relative angle between the headstall and the noseband or mouth piece.
[0042] The materials that comprise the resilient connection interfaces discussed herein are advantageously designed to withstand variable, and often unpredictable, long term forces such as: heat, cold, UV exposure, animal misbehavior, etc. The total flexure cycles experienced over the lifetime of the ring could number well over 1,000,000, and thus must be able to withstand flexure cycles while exposed to environmental factors. As such, various materials can be used which can withstand such flexure cycling such as thermoplastic polyurethane, synthetic rubbers, polyamides, carbon fiber or other reinforcement structures as well as other engineered plastics and composites can also be utilized.
[0043] As discussed above, the resilient connection interfaces can be fabricated utilizing a resilient core having alternative properties from an exterior over-molded portion. For example, a resilient spring steel overlaid by engineered plastics. Or the entire connecteion interface can be entirely formed of a singular material, for example engineered plastic type materials.
[0044] In some embodiments, it can be advantageous to form the structures from medical grade or food-grade plastics, as the product will be utilized adjacent to the horse's open mouth. However, food-grade may not be necessary to achieve the desired pressure output profile, and in some instances, depending on the connection with the mouth or nose piece the connection interfaces may not necessarily come into contact with the horse's mouth.
[0045] Some exemplary engineered plastics or materials for forming the connection interfaces can include: Polyamide (66), such as Ultramide A3H, Polyamide (12), such as Vestamid ML16, which comply with USP class VI and ISO 10993 standards, TPE such as Medalist MD-12342, Santoprene 101-55 TPV/TPE family, Polyether block amides (PeBA) such as Vestamid, and Polyester, or thermoplastic polyurethane, such as Texin 255.
[0046] In some embodiments, the process for manufacturing the connection interfaces can include an injection molding process which can utilize raw plastic material in bead form melted then injected into a metal mold. In the prior art, standard loose ring bits have the rings welded onto the mouthpiece. In contrast, the resilient connection interfaces described herein can be molded in a two-stage injection process so as to retain the mouthpiece integrity but it may also be possible to utilize O-ring technology to create the connection interface structure, then create a special attachment onto the bit such that the connection interface can then be affixed to the mouthpiece.
[0047] In the case a different material is utilized at the core of the connection interface, an over-molding process can used with the same tool fitted with a special stabilizer to keep the core centered as the plastic is injected around it within the injection mold.
[0048] While the principles of the invention have been described herein, it is to be understood by those skilled in the art that this description is made only by way of example and not as a limitation as to the scope of the invention. Other embodiments are contemplated within the scope of the present invention in addition to the exemplary embodiments shown and described herein. Modifications and substitutions by one of ordinary skill in the art are considered to be within the scope of the present invention.
[0049] Further, while certain features are discussed in relation to various figures or embodiments, it should be appreciated that those having skill in the art will be able to take features and advantages discussed in relation to any single embodiment disclosed herein and apply the same principles in any combination to any one of the other embodiments, as appropriate, disclosed herein.