High Torque Tool Assembly And System For Loosening A Torque Resistant Threaded Fastener
20210237232 · 2021-08-05
Inventors
Cpc classification
B25B23/0007
PERFORMING OPERATIONS; TRANSPORTING
B25G1/005
PERFORMING OPERATIONS; TRANSPORTING
B25B23/0021
PERFORMING OPERATIONS; TRANSPORTING
International classification
B25B23/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A tool and system for loosening or removing a torque resistant threaded fastener assembly. The system can be used with a bench receiver or vehicle mounted receiver and can be used to loosen “frozen” threaded fastener assemblies. The orientation of the components enables a user to place sufficient torque on a “frozen” threaded fastener. In this way the system enables the user to remove or disassemble a corroded combination (e.g.) a corroded or rusted nut and bolt.
Claims
1-12. (canceled)
13. A tool, adapted and configured to be inserted into a receiver mounted on a vehicle or a bench, the receiver having a square opening of 2″ or 1.25″ and the length of 1 to 12″, comprising an elongated member with a substantially square cross section having a first end a second end, each end having a flat face; where in, positioned at opposite ends of the member are substantially square socket drive portions that are sized to receive the substantially square drive portion of a socket; wherein the drive portions have different square dimensions; and where in the length of the member is about 1 to 12 inches, the square cross section of the member is 2 by 2 inches or 1.25 by 12.5 inches matching the receiver, the cross section of the first square driver portion is 0.5 by 0.5 inch and the cross-section of the second square driver portion is 0.75 by 1.75 inch and the tool can be used to manually apply a torque of 230-800 ft.-lbs. to a corroded fastener using a square driver mounted socket.
14. The tool of claim one wherein the square driver portion comprises a detent.
15. The tool of claim one when the tool has a hollow body.
16. An assembly comprising a hitch receiver and the tool of claim one.
17. A method of removing a corroded nut from a bolt in a corroded assembly comprising inserting the tool of claim one into a receiver, placing a socket on the tool inserting a nut or a bolt into the socket forming an assembly and applying sufficient torque to the assembly to remove the nut from the bolt.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] The disclosure is illustrated by the following figures. These figures, materials, amounts, and procedures are to be interpreted broadly in accordance with the scope and spirit of the disclosure as set forth herein. The disclosure may be more completely understood in consideration of the following detailed description of various embodiments of the disclosure relating to the accompanying drawings, in which:
[0015]
[0016]
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[0020]
[0021] The figures are not necessarily to scale. Like numbers used in the figures refer to like components. However, it will be understood that the use of a number to refer to a component in a given figure is not intended to limit the component in another figure labeled with the same number.
DETAILED DESCRIPTION
[0022] In a general sense, the present disclosure relates to a tool and system for loosening a torque resistant fastener assembly.
[0023] Oxidation and corrosion of fastening devices is a common and recurring problem. For example, fasteners, such as nuts and bolts are installed, and after years of use, when they need to be removed and/or replaced, such removal is prevented by the nut being “frozen” onto the bolt. To apply sufficient torque to loosen the bolt, the nut must be held steady. When a worker does not have a helper to hold the nut from rotating, he is unable to apply sufficient torque to loosen it. Even if a coworker is available, he may not be strong enough to hold the workpiece steady. Thus, a need exists to develop a mechanism by which the workpiece can be prevented from rotating. Optimally, the device should be simple to manufacture, easy to use, and compatible with other tools usually found in a well-equipped mechanic's armamentarium.
[0024] The high torque holding device fits such a need. It can be made from readily available and relatively inexpensive hot rolled steel or other high tensile suitable material, and it is designed to be used with standard wrenches that are commonly included in socket sets that are found in virtually all automotive facilities as well as in most of home workshops. Perhaps the biggest advantage of this device is that it relies, for its stability, upon an attachment that is found on most cars and trucks: a trailer hitch. By designing the high torque holding device to fit into a standard trailer hitch receiver, the device can be utilized by anyone whose car or truck has a trailer hitch.
[0025] The principle of the device is straightforward. The device fits securely into the trailer hitch, and a half-inch or three-quarter inch square drive extends from the free end. This square drive is then inserted into a socket which matches the size of the nut to be held. The user places another socket, with a long lever arm, on the bolt which is stuck on the nut, and sufficient torque can then be applied to loosen the nut. The presence of the massive vehicle to which the trailer hitch is mounted renders rotation of the nut impossible.
[0026] Occasionally the nut and bolt are so tightly stuck to each other that, rather than the nut coming loose, the torque exceeds the bolt's strength and the bolt breaks. This is not necessarily a disadvantage, as frequently the nut and bolt are expendable, and the desired piece can be salvaged and re-used after being released from the nut and bolt.
In the claimed tool/assembly, torque is a rotational aspect of a force acting through a lever arm to rotate an object. The rotational action required by the assembly/tool on the frozen fastener to loosen/remove/disassemble the structure is obtained by placing sufficient torque on the handle 66 to cause the socket 65 to force the bolt 63 to rotate with respect to the nut 64. Torque is quantized as newton-meters (Nm) or foot-pounds (ft⋅lbs). One Nm is equal to 0.7376 ft⋅lbs. In the case that the fastener will mechanically fail before loosening and removal, the assembly/tool must be able to exert such a torsional force without failure.
[0027] The materials used in the assembly/tool as used must have sufficient structural modulus such that the assembly/tool can place sufficient torque on the fastener to accomplish its loosening, removal or disassembly or in other cases the mechanical failure of the fastener. The assembly/tool must not mechanically or structurally fail in the application of torque when in use. The assembly/tool must be made with sufficient size or dimensions in combination with sufficient modulus to act successfully. Typical receivers have either about 51 or 32 mm (2 or 1.25 inches) square internal opening and have a wall thickness of about 4 to 10 mm (0.15 to 0.4 inch). Such structures made from high strength steel have sufficient strength to withstand the torques necessary of successful operation. The inserts can be solid or hollow and can be made of high strength material such as steel. If solid, the inserts are sized to match the receiver openings. If hollow, the insert walls are sized to match or exceed the receiver walls. The sockets and socket drive lever arm are commercial materials and are typically engineered to provide sufficient torsional force to act successfully. The torsional strength of the materials used in the insert and receiver should meet or exceed that of the socket and lever arm.
[0028] Structural steel such as medium carbon steel, medium carbon alloy steel and super strength alloy steels are sufficient with tensile capacity and shear capacity of 500 to 2000 Mpa (70 to 300 ksi).
[0029] The initial prototype of this device was machined from an 8-inch-long piece of 2-inch square hot rolled steel (ASTM A36). Sufficient metal was removed to form a ¾ inch square drive on one end, and a ½ inch square drive on the other. Depending on socket availability and the need for strength, a selection can be made to use either square drive. Most socket wrenches have a spring-loaded ball on the side of the square drive to prevent the socket from slipping off. The prototype did not contain these, but the plans for the final product do include that feature. Cost and weight considerations could result in manufacturing the device using a hollow square steel tube, with 3/32 inch or ¼ inch thick walls, which is a readily available material, rather than a solid 2-inch square bar. This would be cheaper and lighter than the prototype, although the manufacturing process would require that the square drive ends be welded onto the square tube.
[0030] The design of the device calls for a ¾ inch square drive at one end, and a ½ inch square drive on the other. Therefore, depending on the preference of the user, a half-inch or three-quarter inch square drive socket can be used. Additionally, the design calls for a ⅝-inch hole to be drilled transversely in the middle of the device, to accommodate the locking pin that is routinely used to secure a trailer hitch into a receiver.
DETAILED DESCRIPTION OF THE FIGURES
[0031] The disclosure will be further explained in greater detail by the figures that follow; however, the scope of this disclosure is not construed to be limited by the scope of these exemplary figures. The following is a table of Figure elements and reference numbering.
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TABLE-US-00001 TABLE References in FIGS. FIG. 1 10 Receiver Bench or Vehicle mounted 11 Hollow member Member substantially square receive insert aspect 15 Receiver Locking Pin Hollow body aperture (locking pin aperture not shown) 16 Receiver Profile Insert profile substantially square shaped to Female aspect receiver Receive insertion point 18 Mount not shown Bench/Vehicle FIG. 1 20 Isometric Insert Insert for and 2 Profile male aspect receiver 21 Flat face 22 Substantially square Match profile internal shape of receiver 23 Socket drive Any commercial dimension 24 Socket drive Any commercial dimension 25 Insert Locking Pin Can be aperture (match aperture in receiver) hollow body insert or a solid body insert 26 insert direction into Position insert receiver 27 Detent ball Retain socket 28 Edge (can be Match chamfered) receiver profile if needed 29, 29a Receiver mating Fixes insert in surfaces place in receiver FIG. 3, 4 30 Solid/Not hollow Optional sold and 5 or hollow body Top view FIG. Insert 20 Side view FIG. Insert 20 end view FIG. Insert 20 FIG. 6 20 insert Insert body 60 Isometric overall (Bench, Assembly (exploded) Vehicle, or View other foundational receiver base) 61 First socket On insert 62 Article 63 Frozen Bolt Fastener 64 Frozen Nut Threaded receiver 65 Second socket On fastener 66 Ratchet and handle 67 Assembly direction Socket 68 Assembly direction Socket 69 Assembly direction Other socket 70 Assembly direction Other socket 71 Drive insert Socket drive 72 a, b, c, d Drive aperture In sockets 73 Receiver mount (B en ch, Vehicle, or other foundational receiver base) Shown in Phantom
[0038] All scientific and technical terms used herein have meanings commonly used in the art unless otherwise specified. The definitions provided herein are to facilitate understanding of certain terms used frequently herein and are not meant to limit the scope of the disclosure. The words “preferred” and “preferably” refer to embodiments of the disclosure that may afford certain benefits, under certain circumstances. However, other embodiments may also be preferred, under the same or other circumstances. Furthermore, the recitation of one or more preferred embodiments does not imply that other embodiments are not useful, and is not intended to exclude other embodiments from the scope of the disclosure.
[0039] The term “comprises” and variations thereof do not have a limiting meaning where these terms appear in the description and claims.
[0040] As used in this specification and the appended claims, the term “or” is generally employed in its sense including “and/or” unless the content clearly dictates otherwise.
[0041] “Include,” “including,” or like terms means encompassing but not limited to, that is, including and not exclusive.
[0042] The complete disclosure of all patents, patent applications, and publications cited herein are incorporated by reference. If any inconsistency exists between the disclosure of the application and the disclosure(s) of any document incorporated herein by reference, the disclosure of the application shall govern. The foregoing detailed description and examples have been given for clarity of understanding only. No unnecessary limitations are to be understood therefrom. The disclosure is not limited to the exact details shown and described, for variations obvious to one skilled in the art will be included within the disclosure defined by the claims.
[0043] Unless otherwise indicated, all numbers expressing quantities of components, molecular weights, and so forth used in the specification and claims are to be understood as being modified in all instances by the term “about.” Accordingly, unless otherwise indicated to the contrary, the numerical parameters set forth in the specification and claims are approximations that may vary depending upon the desired properties sought to be obtained by the present disclosure. At the very least, and not as an attempt to limit the doctrine of equivalents to the scope of the claims, each numerical parameter should at least be construed considering the number of reported significant digits and by applying ordinary rounding techniques.
[0044] Notwithstanding that the numerical ranges and parameters setting forth the broad scope of the disclosure are approximations, the numerical values set forth in the specific examples are reported as precisely as possible. All numerical values, however, inherently contain a range necessarily resulting from the standard deviation found in their respective testing measurements.
[0045] All headings are for the convenience of the reader and should not be used to limit the meaning of the text that follows the heading, unless so specified.