Not Applicable
Not Applicable
Not Applicable
The field of the present Invention is related to manually operated linear struts utilized for stabilization of instruments, instrumentation, apparatus, cargo, and the like. Those practiced in the field of manually operated stabilizers, tripods, stands, and the like are familiar with several means for securing linear struts, linear stabilizers, legs and the like, means including thumb screws, bullet catches, lever-actuated friction clamps and locks, and twist or rotationally actuated friction locks. These latter devices have been comprised of various means including screw-expanded friction locks, cam and ring friction locks, and other forms of friction locks. These have, in general, failed to meet the requirements of minimizing dimensions of a strut in a retracted position, minimizing the force required to extend the strut and also minimizing the time required to deploy and retract the strut.
In the present invention, an improved manually operated strut device is revealed that provides for a minimizing of the dimensions of a strut in a shortened or retracted position, minimizing force required for the locking and unlocking the members of the strut at the retracted position, and minimizing the duration of time required to perform that operation. Improvements are obtained by a new and novel approach that combines a twist-lock friction mechanism employed to lock the strut in a deployed or extended position, with a magnetic catch mechanism employed to retain the strut in a shortened or retracted position. A key feature of the present invention is the elimination of a requirement of a twist-lock only approach, wherein, an additional length of tubing be exposed to permit grasping and twisting to lock or unlock the strut in the retracted position.
The contemplated embodiment of the present invention is comprised of one or more pairs of telescoping tubes, paired as an inner and an outer, wherein the inner is fitted with a rapidly expanding cam ring and crank-cam twist-lock mechanism. A key feature of the contemplated invention is the capability of this cam design for providing excellent linear force capacity while requiring only a only a sixty degree rotation when locking the strut members together. Additionally, the outer tube is fitted with an internal magnetic catch mechanism, incorporating a powerful, rare-earth magnet in a floating configuration, whereby the inner tube is retained within the outer tube in the retracted position. A key feature of the present invention, is that the magnetic catch mechanism eliminates the requirement that an additional length of tubing be exposed to permit sufficient surface for grasping and twisting in the retracted position as is required for a twist-lock mechanism. The strut is further optionally fitted with one or two means for engagement comprised of a flexible ball-joint and a contact plate or other contactor, coupler, or means for grasping, providing alignment and distribution of force between opposing surfaces or points, or combinations thereof, or between two objects, or between a static reference and an object being stabilized.
Additional objects, features, and advantages of the present invention will become apparent to those skilled in the art upon consideration of the following illustration of the contemplated embodiment presented in the detailed description, operation, and accompanying drawings.
The detailed description of a contemplated device embodiment of the present invention makes reference to the accompanying figures in which
Referring now more particularly to the figures, a following description of components and their relationships shall serve to illuminate various particulars of an illustrative embodiment of the disclosures and teachings of the present invention. Throughout the following description are several references to specific components which serve to clarify various aspects of the invention. It will be understood that these specific component references are not limitations and that the teachings and disclosures of the present invention may be practiced with alternative components. In other instances, structures and methods well known to those skilled in the art have been omitted in order to avoid unnecessary complexity which would tend to obscure the teachings and disclosures of the present invention.
Referring now to
Said cam head 10 is coupled to a magnetic catch mechanism 4 comprised of a traveling pole 13, a floating magnet 14, a fixed pole 15, a pole mount 16 and a mount bore 25, wherein said traveling pole 13 is fastened in said head bore 9 in said cam head 10 and said pole mount 16 is fastened internally within said outer tube 2 at the catch end 22. Said fixed pole 15 is fastened in said mount bore 25 of said pole mount 16, facing said traveling pole 13, and is magnetically coupled to said floating magnet 14. Additionally, said outer tube 2 is depicted having an air vent hole 21 adjacent to said fixed pole 15. One advantage of utilizing a magnet in a floating configuration is that of avoiding adhesives, threaded fasteners or press fits and the like, thereby affording simplicity and greater durability over the life of the device. Said floating magnet 14 may be fashioned in a variety of shapes, including, but not limited to, cylindrical and cubic.
One possible embodiment of the invention, as depicted here, additionally has an engagement assembly 5 coupled to a distal end 24 of said inner tube 1, said engagement assembly 5 being comprised of a shaft 19 having a ball joint 18 coupled to a plate 17. Said ball joint 18 should have a range of motion of approximately +/−30 degrees.
Those skilled in the art will recognize a variety of means for fastening or coupling the components described above, including, but not limited to, chemical adhesive bonding; thermal bonding, including the addition of solders or rods of metal or plastic material; and mechanical, methods including threaded fasteners, rivets, swaging and staking.
A description of the operation of the invention is now presented in the following review of the general mechanical operation and is merely for illustrative purposes. The description following should in no way be considered either the sole or limiting view of the breadth and range of possible operational characteristics. Considering the operation of a single stage device embodiment, as depicted in
In the present invention, an improved strut device may be employed in a variety of circumstances, therefore, the following review of two scenarios of operation are merely for illustrative purposes and should in no way be considered either the only or limiting views of the breadth and range of possible operational characteristics.
In a first case scenario, the means for engagement would couple one end of the strut to an electronic instrument device or the like that is being stabilized, while the other end would be attached to a foot consisting of the above described contactor plate. The strut would normally be in the retracted position when not in use until it became necessary to deploy the strut, whereupon, an operator would pull the foot, disengaging the magnetic catch and drawing the inner tube linearly outward, extending the strut to a desired length to contact a supporting surface, positioned in nearly infinite increments, subsequently grasping the inner tube, and rotating or twisting about a sixth of a turn relative to the outer tube, thereby engaging the twist-lock mechanism causing it to frictionally lock the inner tube relative to the outer tube. The contactor plate ball joint typically accommodates an angle of the strut, relative to and generally perpendicular, to the contacted surface of seventy to ninety degrees. When the occasion arrives to retract and stow the strut or leg, the operator grasps the inner tube, rotates it approximately sixty degrees in an opposite direction from that of the locking rotation, disengaging the twist-lock mechanism, and then linearly pushes the inner tube back into the outer tube whereby the magnetic catch pole pieces engage again, retaining the inner tube in the retracted position.
In a second case scenario, a similar sequence of events would transpire, however, the strut would be fitted with means for engagement such as a flexible ball-joint coupled contact plates at both ends permitting the application of a restraining force to opposing surfaces being stabilized such as containers of cargo or other means for storage, wherein the operator would align the strut for optimal application of force required to maintain the position of said means for storage.
The present invention reveals apparatus and methods which provide for the resistance of a linear force of tension and/or compression through application of a manually operated linear strut, either singly or in sets, such as those utilized for stabilization of instruments, cargo, apparatus and the like, wherein, such applications it is desirable, and even necessary, to minimize dimensions of a strut in a retracted position, minimize the force required to extend the strut and also minimize the time required to deploy the strut. The application of the Invention may consist of one or more telescoping tube pair assemblies cascaded as nested stages, whereby an inner tube becomes an outer tube for a next smaller diameter stage and an outer tube becomes an inner tube inserted in a larger diameter tube to form another stage and so forth.
Those skilled in the art will conceive of many applications that require a device based upon the present invention, however, the present invention is not suitable, nor intended, for applications or situations where human physical safety is involved or dependent upon such devices. Although one possible embodiment has been described to illustrate the teachings and disclosures of the present invention, it is not limited to the specific foregoing illustrative embodiment or applications and that various and several modifications in design, arrangement, and use may be made within the scope and spirit of the invention as expressed in the following