Universal Constant Velocity Joint System And Method Of Use
This system and method is directed to A joint system comprising: a rings system having: a first pair of rings pivotally attached to each other by a first set of rotating housings, the first set of rotating housings being configured to rotate along a first axis and a second pair of rings pivotally attached to each other by a second set of rotating housings, the second set of rotating housings being configured to rotate along a second axis; a first sliding support subassembly configured to slidingly receive a first ring from the rings system; and a second sliding support subassembly configured to slidingly receive a second ring from the rings system; a primary gears system carried by and having a first and second primary gear wherein the first primary gear and the second primary gear are rotatably attached to a central connecting support.
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This application is a continuation of U.S. patent application Ser. No. 15/207,648 titled Universal Constant Velocity Joint System And Method of Use” filed Jul. 12, 2016 which is incorporated by reference herein.
BACKGROUND 1. Field of the InventionThe present invention relates generally to universal constant velocity joints and methods of use.
2. Description of Related ArtConstant velocity joint, commonly known as CV joint, is a mechanical coupling between two rotating shafts, configured to allow a drive shaft to transmit power, motion, or both through a fixed or variable angle, at constant rotational speed, without an appreciable increase in friction or play. The axes of the shafts are always intersecting and the bending angle between them is permitted to change during operation. In one application of use, the CV joints can be used with vehicles, for example, used in front wheel drive vehicles. It should be understood that many modern rear wheel drive cars with independent rear suspension typically use CV joints at the ends of the rear axle shafts. It will be appreciated that the CV joints could also be used on other types of applications of use wherein input power is used at a variable angle relative to the receiving shaft.
The “Cardan joint” (also called “Hooke's joint”) is a well-known example of a universal joint. It is noted that the Cardan joint transmits rotary motion but does not ensure that the angular velocities of the shafts are equal at all times. A constant velocity universal joint, on the other hand, is a universal joint that transmits a rotary motion while keeping the angular velocities of the shafts equal at all times.
True constancy of angular velocity transmission is achieved by a widely used arrangement of two Cardan joints in series, the output member of the first joint comprising the input member to the second joint. It is noted, however, that the constancy is kept only under strict geometrical requirements: both input and output shafts must lie in one plane and both bending angles of the two Cardan joints must always be equal. This principle is used in the so-called double Cardan universal joint, as described for example in U.S. Pat. Nos. 4,257,243 and 5,419,740, where two Cardan joints are connected by a relatively short intermediate member designed to meet said geometrical requirements.
Another known constant velocity universal joint, which is commonly used in motor vehicle front-wheel drives, is the Rzeppa joint as described in U.S. Pat. No. 7,393,283. It operates on the basic principle that constancy of transmission is ensured when the contact point or points between the two shafts lie in the so called “homokinetic plane” of the joint. This plane is normal to the plane defined by the two shaft axes and lies along the bisector of the angle between the two shaft axes. The Rzeppa joint consists of a cage that keeps six balls in the homokinetic plane at all times. A further development of the Rzeppa joint, that allows not only angular but also axial relative movement of the shafts, is described in U.S. Pat. No. 4,573,947. One of the geometrical constrains in the Rzeppa joint is the limited range of angular bending between the input and output shafts.
Examples of other types of universal joints, or constant velocity universal joints, like Tracta constant velocity joint, tripod joint, Thompson coupling, Martin GECiK joint and other relative prior art joints are described in U.S. Pat. Nos. 4,331,003, 6,682,435, 4,786,270, 7,144,326, US20140141893, U.S. Pat. Nos. 1,975,758 3,036,446, 4,686,866, 4,773,890, 5,167,583, 6,409,413, 5,954,586 and 5,256,107.
Accordingly, although great strides have been made in the area of CV joints, many shortcomings remain, especially in the limited range of angular bending between the input and output shafts.
SUMMARY OF THE INVENTIONThe system and method herein is a joint system comprising: a rings system having: a first elongated ring pivotally attached to a second elongated ring via a first rotating housing and a second rotating housing, the first rotating housing and the second rotating housing being configured to rotate along a first axis, and a third elongated ring pivotally attached to a fourth elongated ring via a third rotating housing and a fourth rotating housing, the third rotating housing and the fourth rotating housing being configured to rotate along a second axis; a first sliding support subassembly configured to slidingly receive the first elongated ring and slidingly receive the third elongated ring; and a second sliding support subassembly configured to slidingly receive the second elongated ring and slidingly receive the fourth elongated ring; a primary gears system carried by the rings system and having a first and second primary gear wherein the first primary gear and the second primary gear are rotatably attached to a central connecting support assembly.
The system can include a secondary gears system including a first secondary gear secured to the first rotating housing and a second secondary gear secured to rotating housing; wherein pivoting movement of the first rotating housing causes pivoting movement of the first secondary gear; wherein pivoting movement of rotating housing causes pivoting movement of the second secondary gear; wherein the first secondary gear is positioned parallel and opposite to the second secondary gear, a third secondary gear included in the secondary gears system and secured to the third rotating housing; and a fourth secondary gear included in the secondary gears system and secured to the fourth rotating housing; wherein pivoting movement of the third rotating housing causes pivoting movement of the third secondary gear; wherein pivoting movement of the fourth rotating housing causes pivoting movement of the fourth secondary gear; and wherein the third secondary gear is positioned parallel and opposite to the fourth secondary gear. At least two of the gears in the secondary gear system can be partially teethed around a periphery of a relative secondary gears bodies. The first primary gear can engage and mesh with the secondary gears system; and, wherein the primary gears system and secondary gears can be located inside a rotation of the rings system.
The system can include a main body included in a central connecting support assembly; a first central connecting support and a second central connecting support included in the central connecting support assembly; a first connecting rod is connected to the main body of the central connecting support assembly and adapted to engage with the first rotating housing; and, a second connecting rod is connected to the main body of the central connecting support assembly and adapted to engage with the second rotating housing. A third connecting rod can be connected to the main body of the central connecting support assembly and adapted to engage with the third rotating housing; and, a fourth connecting rod is connected to the main body of the central connecting support assembly and adapted to engage with the fourth rotating housing. The joint system can be configured to have a pitch and roll range of motion independent of each other and the joint system can be configured to receive rotatable input and output shafts.
The system can include a first nob replaces the first connecting rod; a second nob replaces the second connecting rod; a first actuator rotatably secured to first nob; and a second actuator rotatably secured to the second nob. The first sliding support subassembly and the second sliding support subassembly can be configured as rectangular blocks having side cuts. A secondary gear can be carried by the first rotating housing wherein pivoting movement of the first rotating housing causes pivoting movement of the secondary gear. The secondary gear can be a first secondary gear and is positioned parallel and opposite to a second secondary gear carried by the first rotating housing.
The system can include a rings system having: a first pair of rings pivotally attached to each other by a first set of rotating housings, the first set of rotating housings being configured to rotate along a first axis and a second pair of rings pivotally attached to each other by a second set of rotating housings, the second set of rotating housings being configured to rotate along a second axis; a first sliding support subassembly configured to slidingly receive a first ring from the rings system; and a second sliding support subassembly configured to slidingly receive a second ring from the rings system; a primary gears system carried by and having a first and second primary gear wherein the first primary gear and the second primary gear are rotatably attached to a central connecting support.
The novel features believed characteristic of the non-limiting embodiments of the present application are set forth in the appended claims. However, the non-limiting embodiments themselves, as well as a preferred mode of use, and further objectives and advantages thereof, will best be understood by reference to the following detailed description when read in conjunction with the accompanying drawings, wherein:
While the system and method of use of the present application is susceptible to various modifications and alternative forms, specific embodiments thereof have been shown by way of example in the drawings and are herein described in detail. It should be understood, however, that the description herein of specific embodiments is not intended to limit the invention to the particular embodiment disclosed, but on the contrary, the intention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the present application as defined by the appended claims.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTIllustrative embodiments of the system and method of use of the present application are provided below. It will of course be appreciated that in the development of any actual embodiment, numerous implementation-specific decisions will be made to achieve the developer's specific goals, such as compliance with system-related and business-related constraints, which will vary from one implementation to another. Moreover, it will be appreciated that such a development effort might be complex and time-consuming but would nevertheless be a routine undertaking for those of ordinary skill in the art having the benefit of this disclosure.
The system and method of use will be understood, both as to its structure and operation, from the accompanying drawings, taken in conjunction with the accompanying description. Several embodiments of the system are presented herein. It should be understood that various components, parts, and features of the different embodiments may be combined together and/or interchanged with one another, all of which are within the scope of the present application, even though not all variations and particular embodiments are shown in the drawings. It should also be understood that the mixing and matching of features, elements, and/or functions between various embodiments is expressly contemplated herein so that one of ordinary skill in the art would appreciate from this disclosure that the features, elements, and/or functions of one embodiment may be incorporated into another embodiment as appropriate, unless described otherwise.
The preferred embodiment herein described is not intended to be exhaustive or to limit the invention to the precise form disclosed. It is chosen and described to explain the principles of the invention and its application and practical use to enable others skilled in the art to follow its teachings.
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The embodiments disclosed above are illustrative only, as the embodiments may be modified and practiced in different but equivalent manners apparent to those skilled in the art having the benefit of the teachings herein. It is therefore evident that the embodiments disclosed above may be altered or modified, and all such variations are considered within the scope and spirit of the application. Accordingly, the protection sought herein is as set forth in the description. Although the present embodiments are shown above, they are not limited to just these embodiments, but are amenable to various changes and modifications without departing from the spirit thereof.
Claims
1. A joint system comprising:
- a rings system having: a first elongated ring pivotally attached to a second elongated ring via a first rotating housing and a second rotating housing, the first rotating housing and the second rotating housing being configured to rotate along a first axis, and a third elongated ring pivotally attached to a fourth elongated ring via a third rotating housing and a fourth rotating housing, the third rotating housing and the fourth rotating housing being configured to rotate along a second axis;
- a first sliding support subassembly configured to slidingly receive the first elongated ring and slidingly receive the third elongated ring; and
- a second sliding support subassembly configured to slidingly receive the second elongated ring and slidingly receive the fourth elongated ring;
- a primary gears system carried by the rings system and having a first and second primary gear wherein the first primary gear and the second primary gear are rotatably attached to a central connecting support assembly.
2. The system of claim 1 including:
- a secondary gears system including a first secondary gear secured to the first rotating housing and a second secondary gear secured to rotating housing;
- wherein pivoting movement of the first rotating housing causes pivoting movement of the first secondary gear;
- wherein pivoting movement of rotating housing causes pivoting movement of the second secondary gear; and,
- wherein the first secondary gear is positioned parallel and opposite to the second secondary gear.
3. The system of claim 2 including:
- a third secondary gear included in the secondary gears system and secured to the third rotating housing; and
- a fourth secondary gear included in the secondary gears system and secured to the fourth rotating housing;
- wherein pivoting movement of the third rotating housing causes pivoting movement of the third secondary gear;
- wherein pivoting movement of the fourth rotating housing causes pivoting movement of the fourth secondary gear; and
- wherein the third secondary gear is positioned parallel and opposite to the fourth secondary gear.
4. The system of claim 3 wherein at least two of the gears in the secondary gear system are partially teethed around a periphery of a relative secondary gears bodies.
5. The system of claim 2 wherein:
- the first primary gear engages and meshes with the secondary gears system; and,
- wherein the primary gears system and secondary gears can be located inside a rotation of the rings system.
6. The system of claim 5 including
- a main body included in a central connecting support assembly;
- a first central connecting support and a second central connecting support included in the central connecting support assembly;
- a first connecting rod is connected to the main body of the central connecting support assembly and adapted to engage with the first rotating housing; and,
- a second connecting rod is connected to the main body of the central connecting support assembly and adapted to engage with the second rotating housing.
7. The system of claim 6 including:
- a third connecting rod is connected to the main body of the central connecting support assembly and adapted to engage with the third rotating housing; and,
- a fourth connecting rod is connected to the main body of the central connecting support assembly and adapted to engage with the fourth rotating housing.
8. The system of claim 7 wherein the joint system is configured to have a pitch and roll range of motion independent of each other.
9. The system of claim 7 wherein the joint system is configured to receive rotatable input and output shafts.
10. The system of claim 6, further comprising:
- a first nob replaces the first connecting rod;
- a second nob replaces the second connecting rod;
- a first actuator rotatably secured to first nob; and
- a second actuator rotatably secured to the second nob.
11. The system of claim 1, wherein the first sliding support subassembly and the second sliding support subassembly are configured as rectangular blocks having side cuts.
12. The system of claim 1 including a secondary gear carried by the first rotating housing wherein pivoting movement of the first rotating housing causes pivoting movement of the secondary gear.
13. The system of claim 12 wherein the secondary gear is a first secondary gear and is positioned parallel and opposite to a second secondary gear carried by the first rotating housing.
14. A joint system comprising:
- a rings system having: a first elongated ring pivotally attached to a second elongated ring via a first rotating housing, the first rotating housing being configured to rotate along a first axis and a third elongated ring pivotally attached to a fourth elongated ring via a second rotating housing, the second rotating housing being configured to rotate along a second axis;
- a first sliding support subassembly configured to slidingly receive the first elongated ring and slidingly receive the third elongated ring; and,
- a second sliding support subassembly configured to slidingly receive the second elongated ring and slidingly receive the fourth elongated ring.
15. The system of claim 14 including a primary gears system carried by the rings system and having a first and second primary gear wherein the first primary gear and the second primary gear are rotatably attached to a central connecting support.
16. The system of claim 14 including a central connecting support assembly carried by at least one of the first elongated ring, the second elongated ring, the third elongated ring and the fourth elongated ring.
17. A joint system comprising:
- a rings system having: a first pair of rings pivotally attached to each other by a first set of rotating housings, the first set of rotating housings being configured to rotate along a first axis and a second pair of rings pivotally attached to each other by a second set of rotating housings, the second set of rotating housings being configured to rotate along a second axis;
- a first sliding support subassembly configured to slidingly receive a first ring from the rings system; and
- a second sliding support subassembly configured to slidingly receive a second ring from the rings system;
- a primary gears system carried by and having a first and second primary gear wherein the first primary gear and the second primary gear are rotatably attached to a central connecting support.
18. The system of claim 17 wherein the joint system is configured to have a pitch and roll range of motion independent of each other.
19. The system of claim 17 including:
- a secondary gear secured to the first housing; and,
- wherein pivoting movement of the first housing causes pivoting movement of the secondary gear.
20. The system of claim 14 including a central connecting support assembly carried by the rings system.
Type: Application
Filed: Oct 3, 2019
Publication Date: Jan 30, 2020
Applicant: Advanced Innovative Solutions, LLC (Greenville, SC)
Inventors: Haitham Hussein Bilal (Sherman, TX), Raed Zuhair Hasan (Greenville, SC)
Application Number: 16/592,077