MODULAR CLAMPING SYSTEM
20180320719 ยท 2018-11-08
Inventors
Cpc classification
H04R1/025
ELECTRICITY
B25B5/062
PERFORMING OPERATIONS; TRANSPORTING
Y10T29/49998
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16B2/185
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H04R2201/021
ELECTRICITY
B25B5/087
PERFORMING OPERATIONS; TRANSPORTING
B25B5/16
PERFORMING OPERATIONS; TRANSPORTING
Y10T29/49826
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16M13/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16B2/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B25B5/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A clamping system includes a housing, a clamping lever pivotally coupled relative to the housing, a clamping arm pivotally coupled relative to the housing and the clamping lever, and an expandable link coupled to the clamping arm. The clamping lever and the clamping arm are rotatable from an open position to a closed position. A method of mounting a device on a substrate using the clamping system is also provided.
Claims
1. A method of mounting a device on a substrate, the method comprising: inserting a clamping system of the device at least partially into an opening in the substrate; actuating a clamping lever to rotate a clamping arm toward a closed position; and causing, via the actuating of the clamping lever, the clamping arm to rotate from a position within the opening in the substrate to a position over an interior surface of the opening of the substrate, and simultaneously moving the clamping arm toward the closed position such that a portion of the clamping arm comes into contact with the interior surface of the substrate.
2. The method of claim 1 further comprising: causing, via the actuating of the clamping lever, the clamping arm to move from an open arm position to a closed arm position using a track configured for guiding movement of the clamping arm.
3. The method of claim 2 wherein the track is configured such that the movement of the clamping arm from the open arm position to the closed arm position includes rotational and translational movement.
4. The method of claim 1 wherein moving the clamping lever from an open lever position to a closed lever position moves a clamping assembly to an over-toggle position, the over-toggle position configured to prevent the clamping lever from rotating toward the open lever position when the clamping lever is in the closed lever position.
5. The method of claim 1 where moving the clamping lever from an open lever position to a closed lever position comprises expanding an expandable link biased to pull the clamping arm toward a closed arm position when the clamping lever is in the closed lever position.
6. A method of mounting a structure on a substrate having a hole, the method comprising: inserting the structure in the hole, the structure coupled to at least one clamping system in an open position, the at least one clamping system comprised of: a housing; a link assembly comprising: a right first link pivotally coupled to the housing, a left first link pivotally coupled to the housing, and a second link pivotally coupled to the right first link and the left first link, and slidably coupled to the housing; a clamping assembly, wherein a portion of the clamping assembly is encased within the housing and configured to slidably move within the housing, the clamping assembly further comprising a clamping arm coupled to an expandable link, the expandable link coupled to the second link; a clamping lever pivotally coupled to the second link, the second link pivotally coupled to the housing, wherein the clamping arm is in an open arm position when the clamping lever is in an open lever position, the open arm position including the clamping arm located entirely within a perimeter of the hole when the structure is inserted in the hole and the clamping arm not in contact with the substrate, and whereby moving the clamping lever to a closed lever position moves the clamping arm to a closed arm position such that the clamping arm is located at least partially outside the perimeter of the hole and contacts the substrate; moving the clamping lever from the open lever position to the closed lever position, resulting in a movement of the clamping arm from the open arm position to the closed arm position.
7. The method of mounting the structure on the substrate of claim 6, wherein the housing includes a track configured for guiding movement of the clamping arm from the open arm position to the closed arm position.
8. The method of mounting the structure on the substrate of claim 7, wherein the track is configured such that the movement of the clamping arm from the open arm position to the closed arm position includes rotational and translational movement.
9. The method of mounting the structure on the substrate of claim 6, wherein the clamping arm is a dog-ear shape.
10. The method of mounting the structure on the substrate of claim 6, the at least one clamping system further comprising an extender coupled to an end of the clamping arm not coupled to the housing.
11. The method of mounting the structure on the substrate of claim 10, wherein a surface of the extender opposite to the side of the extender coupled to the clamping arm includes a textured surface.
12. The method of mounting the structure on the substrate of claim 6, wherein an end of the clamping arm not coupled to the housing includes a textured surface.
13. The method of mounting the structure on the substrate of claim 6, wherein a screw couples the clamping arm to the expandable link.
14. The method of mounting the structure on the substrate of claim 6, wherein the housing includes a left slot and a right slot parallel to the left slot and on an opposite side of the housing, and the coupling of the expandable link to the second link further includes a cross pin coupled to the expandable link and pivotally coupled to the second link, the cross pin located perpendicular to the left slot and the right slot, with a right end engaged in the right slot and a left end engaged in the left slot, wherein the clamping lever is moving from the open lever position to the closed lever position results in the cross pin moving the expandable link in a direction of the left slot and the right slot.
15. The method of mounting the structure on the substrate of claim 6, the structure including a flange, wherein the substrate is clamped between the flange and the clamping arm when the clamping arm is in the closed arm position.
16. The method of mounting the structure on the substrate according to claim 6, wherein moving the clamping lever from the open lever position to the closed lever position moves the clamping assembly to an over-toggle position, the over-toggle position configured to prevent the clamping lever from rotating toward the open lever position when the clamping lever is in the closed lever position.
17. The method of mounting the structure on the substrate according to claim 16, further comprising the step of: moving the clamping lever from the closed lever position to a stored position, wherein the over-toggle position prevents the clamping arm from moving when the clamping lever is moved from the closed lever position to the stored position.
18. The method of mounting the structure on the substrate according to claim 16, wherein the link assembly and the clamping assembly are configured such that moving of a clamping lever pivot joint, the clamping lever pivot joint coupling the clamping lever to the second link, away from the structure when the at least one clamping system is in an over-toggle position results in a release of the over-toggle position and movement of the clamping arm away from the substrate, and further comprising the step of: moving of the clamping lever pivot joint away from the structure, resulting in the release of the over-toggle position and movement of the clamping arm away from the substrate.
19. The method of mounting the structure on the substrate according to claim 6, wherein the expandable link is a spring.
20. The method of mounting the structure on the substrate according to claim 19, wherein the expandable link is biased to pull the clamping arm toward the closed arm position when the clamping lever is in the closed lever position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE DRAWINGS
[0051] For the purposes of promoting an understanding of the principles of the invention, reference will now be made to the exemplary embodiments illustrated in the drawings, and specific language will be used to describe the same. It will nevertheless be understood that no limitation of the scope of the invention is thereby intended. Any alterations and further modifications of the inventive features illustrated herein, and any additional applications of the principles of the invention as illustrated herein, which would occur to one skilled in the relevant art and having possession of this disclosure, are to be considered within the scope of the invention.
[0052] Generally, a clamping system is provided. The clamping system can be used for mounting a variety of devices to various surfaces. For example only, the clamping system can be used to mount sound system speakers, clocks, lighting and plumbing fixtures, medicine cabinets, mailboxes, or the like on interior and exterior walls, ceilings, beams, doors, or the like.
[0053] One common limitation encountered when mounting an item to a ceiling or wall is the inability of the user to access the inside face of the wall or ceiling after the item is positioned to cover a mounting hole. This limitation prevents the use of typical clamping systems, as they generally require access to both sides of the mounting substrate.
[0054] The present invention utilizes a lever on the accessible side of the item to actuate a clamping arm on the inaccessible side of the item, thus moving the clamping arm from a non-clamping position to a clamping position, without requiring user access to the inside of the substrate. Furthermore, the clamping arm in the non-clamping position is located such that it permits the item to be installed in the mounting hole prior to actuating the lever and moving the clamping arm.
[0055] Referring to
[0056] The clamping system 100 includes a clamping lever 108. As shown in
[0057] In an alternative approach, the clamping lever 108 can comprise only one arm 111 which is pivotally coupled directly to the housing 102 via the pivot joint 110. While the clamping lever 108 has been shown in
[0058] Referring to
[0059] With continuing reference to
[0060] It is to be appreciated that instead of the expandable link 128, the clamping system 100 may include an adjustable or telescopic link, or a rigid link and a flexible clamping arm. The spring 128 can be biased to pull the clamping arm 114 toward the closed position shown in
[0061] The components of the clamping system 100 can be movable from an open or unlocked position shown in
[0062] The clamping system 100 is modular and can be interchangeably used with a variety of electronic or non-electronic devices and household items. As such, the clamping system 100 can be a self contained clamping module which can be installed into an appropriate structure of any suitable device, for example, a slot 208 of a sound system speaker 200 as shown in
[0063] Referring to
[0064] Typically, an opening would be made in the wall 300 to permit the insertion of at least a portion of the clamping system 100 therethrough. The clamping system 100 can be inserted into the slot 208 of the speaker 200 such that the clamping arm 114 passes through the slot and the opening in the wall 300 and extends on the interior of the wall 300 until the bulbous end portion 116 of the clamping arm 114 abuts the interior surface 304 of the wall 300 as shown in
[0065] The clamping system 100 can be recessed within a slot 208 in the speaker 200 so that the arm 111 of the clamping lever 108 can be below the upper surface 212 of the speaker 200 as shown in
[0066] The clamping system 100 can be secured in the slot 208 in a variety of ways. In one approach shown in
[0067] Referring to
[0068] Referring to
[0069] The configuration shown in
[0070] In another approach, the clamping system 100 may include one or more screws driven through the clamping lever 108 into the housing 102 of the clamping system 100, or through the device being mounted to mechanically secure the clamping lever 1008 in its fully clamped position.
[0071] Referring to
[0072] When fully actuated, the clamping lever 108 rotates to the closed position as described above. With the clamping lever 108 moving into the closed position, the clamping arm 114 is caused to move into its closed position, including the over-toggle described above. The expandable link 128 of the clamping system 100 permits the clamping arm 114 to be rotated to various positions accommodating substrates 406, 408, and 410 having different thickness.
[0073] The expandable link in the form of a spring 128 of the clamping system 100 is shown in four different positions in
[0074] Referring now to
[0075]
[0076]
[0077]
[0078] Referring next to
[0079] As shown in perspective view
[0080] In the embodiment shown, the clamping system 100 is shown integrated into the body portion 202 of the structure to be mounted (in this example, the speaker 200 as previously shown in
[0081] As previously shown in
[0082] The hollow, cylindrically-shaped tower housing 2000 can extend vertically downward from the body portion 202, with a front side of the tower housing 2000 approximately aligning with the side wall 204. The tower housing 2000 is described further below in
[0083] The tower housing 2000 can also include the helical track 2002 as shown in
[0084] The tower housing 2000 can also include the right cross pin slot 2014 and the left cross pin slot 2040 (not shown). The cross pin slots 2014, 2040 are vertical slots located on the left and right faces 2012 of the tower housing 2000. The width of the cross pin slots 2014, 2040 are configured to allow the cross pin 2032 to slide within the cross pin slots 2014, 2040, as described further below. The cross pin slots 2014, 2040 begin at the upper end of the tower housing 2000 (proximate to the flange 206) and extend downward to approximately a midpoint of the tower housing 2000.
[0085] The tower housing 2000 can also include the left link attachment point 2030, as shown in
[0086] Referring back to
[0087] The threaded screw shaft 2048 can be coupled to the expandable link 128, with an end of the expandable link 128 proximate to the screw 2006 coupled to an end of the screw shaft 2048 such that the expandable link 128 may rotate in relation to the screw 2006 while still remaining coupled to the screw 2006. The screw 2006 is located proximate to the lower portion of the tower housing 2000, with the shaft 2048 extending upwards. In the present embodiment, the screw head 2046 is a hex-head type head, but it will be appreciated that other types of fastener heads may be used, e.g. a cap screw, pan head screw, hex bolt, button head screw or a custom screw. In some embodiments the screw may be comprised of steel, stainless steel, brass or nylon. The link assembly 2018 is configured to fit within the cylindrical support 2042 and be coupled to the link assembly 2018 so that the clamping arm assembly 2004 can move with the screw 2006 and expandable link 128 along a longitudinal axis of the tower housing 2000, and the cylindrical support 2042 is free to rotate within the tower housing 2000 as allowed by the helical track 2002. In the embodiment shown, the expandable link 128 can comprise a coiled spring where a portion of spring loops at the end of the spring encircle the end of the threaded screw shaft 2048, permitting the spring loops to rotate relative to the screw 2006 while the spring remains coupled to the screw 2006 during axial translation. In some embodiments the spring may be comprised of steel, music wire, stainless steel or titanium. While in the present embodiment a threaded screw is used to couple to the dog ear clamping arm 2008 to the expandable link 128, those skilled in the art will note that other configurations are possible, e.g. configuring the dog ear clamping arm 2008 to couple directly to the expandable link 128, or by other methods such as rivets, tethers, or spring steel. An upper end of the expandable link 128 distal to the screw 2006 is coupled to the cross pin 2032, where each end of the cross pin 2032 is located within the respective cross pin slot 2014, 2040 so that the cross pin 2032 may slide along the longitudinal axis of the tower housing 2000.
[0088] Referring again to
[0089] The clamping lever 108 is pivotally connected to the second link 2026 by the pivot joint 2020, and extends upward through the lever slot 2010 in the body portion 202. The lever slot 2010 is configured to extend inwards away from the flange 206 in a generally perpendicular direction. The length and width of the lever slot 2010 are configured to permit the required movement of the second link 2026 and clamping lever 108 as the clamping system 100 is moved between the open, closed, and stored positions. The clamping lever 108 is further described below in
[0090] Referring again to
[0091] As shown in
[0092] The screw 2006 and expandable link 128, being coupled to the dog ear clamping arm 208, are also located in their most downward position in the open position.
[0093] In the present embodiment, an open lever position of the clamping lever 108 in is in a substantially vertical position, but it should be noted that other positions are allowable, as long as the open lever position permits enough movement of the clamping lever 108 to result in the dog ear clamping arm 2008 being moved to a closed arm position and the open lever position of the clamping lever 108 still permits the speaker 200 with the clamping system 100 to be fully inserted in the substrate 2034 hole.
[0094] In the open position, the angle 2028 between the right or left first link 2024, 2200 and the portion of the second link 2026 coupling the right or left first link 2024, 2200 to the cross pin 2032 is an acute angle 2028 as shown in
[0095] Referring next to
[0096] As the user continues to move the clamping lever 108 inwards, it travels through the lever slot 2010 in the body portion 202, and can also rotate towards a center of the body portion 202. The angle 2206 between the right or left first link 2024, 2200 and the portion of the second link 2026 coupling the right or left first link 2024, 2200 to the cross pin 2032 has widened from the open position angle 2028 shown in
[0097] Referring next to
[0098] The lever movement has resulted in cross pin 2032 being pulled upwards in the cross pin slots 2014, 2040, causing the dog ear clamping arm 2008 to continue to move within the helical track 2002, coming into contact with the substrate interior surface 2038. In the embodiment shown, the helical track 2002 is configured such that the dog ear clamping arm 2008 has already fully rotated towards the flange 206 before contacting the substrate 2034.
[0099] In one embodiment, a spring constant of the expandable link 128 is chosen such that when the dog ear clamping arm 2008 contacts the substrate 2034, the continued movement of the clamping lever 108 extends the expandable link 128, thus exerting pressure on the substrate 2034 and forcibly clamping the substrate 2034 between the dog ear clamping arm 2008 and the flange 206, without causing damage to the clamping system 100 or substrate 2034. The spring constant may also be chosen to limit the magnitude of the force required by the user to move the clamping lever 108 from the open lever position to the closed lever position, so that the user may overcome the maximum spring force exerted while closing the clamping system, in order for the user to be able to move the clamping lever 108 to the closed lever position.
[0100] The free end of the clamping arm assembly 2004 contacts the interior surface 2038 of the substrate 2034 while the clamping lever 108 is still being moved. The movement of the clamping lever 108 after the clamping arm assembly 2004 contacts the substrate 2034 extends the expandable link 128, resulting in a spring force clamping the substrate 2034 between the dog ear clamping arm 2008 and the flange 206, as previously described.
[0101] As the clamping lever 108 continues to move the cross pin 2032 upwards towards the closed position, the angle between the second link 2026 and the first links 2024, 2200 continues to widen to an 180 degree angle, and then snap past the 180 degree angle to an angle greater than 180 degrees, as shown by a resulting angle 2400. As previously described, the snapping past the center 180 degree position results in an over-toggle position that locks the clamping system 100 in place relative to the clamping lever 108. As previously mentioned, the spring constant of the expandable link 128 is chosen to provide sufficient clamping force to the substrate 2034 when the lever clamping system 100 is in the over-toggle position.
[0102] Referring next to
[0103] As previously described, the clamping system 100 can be divided into three main elements: The link assembly 2018, the tower housing 2000, and the clamping arm assembly 2004. In the embodiment shown, the tower housing 2000 is comprised of two portions, the upper tower portion 2600 which may be integral with the body portion 202, and the lower tower portion 2602 which in the present embodiment is coupled to the upper tower portion 2600. In one embodiment the upper tower portion 2600 and the lower tower portion 2602 may be configured to snap together. An adhesive may be used to couple the tower portions 2600, 2602, either alone or in conjunction with mechanical coupling such as a screw or snap connection. In other embodiments the tower housing 2000 may be one piece coupled to the body portion 202, or may be comprised of three or more pieces. In another embodiment, the entire tower housing 2000 may be formed integrally with the body portion 202.
[0104] The screw 2006, the dog ear clamping arm 2008 and the expandable link 128 form the clamping arm assembly 2004, where as noted previously the screw 2006 and expandable link 128 are coupled together and fit within the cylindrical support 2042 of the dog ear clamping arm 2008. The dog ear clamping arm 2008 portion of the clamping arm assembly 2004 protrudes through the helical track 2002. The expandable link 128, screw 2006 and the cylindrical support 2042 are encased by the tower housing 2000.
[0105] As previously described, the upper end of the expandable link 128 is coupled to the cross pin 2032.
[0106] The second link 2026 is comprised of the left second link 2604, the right second link 2606, the second link connector 2608 and the second link lever connector 2610. In one embodiment, the second link 2026 is integrally formed from molded plastic. In other embodiments the second link 2026 may be made from molded plastic, formed using a CNC machine, or may be cast metal. The left second link 2604 and the right second link 2606 together with the second link connector 2608 form a U-shape, with the second link lever connector 2610 extending outwards from the base of the U-shape to further form a Y-shape. A free end of the right second link 2606 is pivotally coupled to the right cross pin 2032 end and a free end of the left second link 2604 is pivotally coupled to the left cross pin 2032 end. The right second link 2606 is pivotally connected to the right first link 2200 proximate to the base of the U-shape, forming a pivot joint 2202. The left second link 2604 is pivotally connected to the left first link 2024 proximate to the base of the U-shape, forming the pivot joint 2022. A free end of the second link lever connector 2610 is pivotally coupled to the clamping lever 108, forming the pivot joint 2020. The right first link 2200 is pivotally coupled to the right link attachment point 2204 of the tower housing 2000 forming the pivot joint 2614, and the left first link 2024 is pivotally coupled to the left link attachment point 2030 of the tower housing 2000, forming the pivot joint 2612. In the embodiment shown, the attachment points 2030 2204 are shown extending from a wing on each side of the tower housing 2000, but it will be appreciated that alternate forms of attachment locations and configurations may be used, for example pins that extend outward from the tower housing 2000 perimeter.
[0107] The body portion 202 includes the lever slot 2010 and the flange 206, as previously described.
[0108] Referring again to
[0109] The second link 2026 couples together the link assembly 2018 and the clamping arm assembly 2004, and also includes an attachment point for the clamping lever 108. As the first link 2200, 2024 and cross pin 2032 attachment points are located on each side of the tower housing 2000, the second link 2026 comprises the left second link 2604 and the right second link 2606 in order to linearly couple the cross pin 2032 ends to the first link 2200, 2024 ends. However, in order to also connect to the single clamping lever 108 which is aligned with the longitudinal axis of the tower housing 2000, the second link 2026 is formed in a Y-shape with the upper portion of the Y comprising the left and right second links 2604 2606 and the second link connector 2608 plus the lever connector 2610 forming the bottom portion of the Y and connecting to the clamping lever 108.
[0110] In some embodiments the clamping lever 108 can be shaped to fit within the tower housing 2000 when the clamping system 100 is in the open position, or to lay mostly flat against the body portion 202 when the clamping system 100 is in the closed or stored position, although it will be appreciated that other clamping lever 108 configurations are also possible.
[0111] Referring next to
[0112] When the clamping system 100 is in the closed position as indicated by the dashed line 2700, the over-toggle mechanism of the link assembly 2018 locks the link assembly 2018 in the closed position and permits the clamping lever 108 to be pivoted about the pivot joint 2020, to the second link 2026, while the rest of the clamping arm assembly 2004 remains in the closed position. The clamping lever 108 is rotated towards the flange 206 and in the embodiment shown approximately fits within the lever slot 2010, partially conforming to the profile of the body portion 202, as shown by the clamping lever stored position 2702.
[0113] Referring next to
[0114] The clamping system 100 also permits unclamping of the clamping system 100 after the system 100 is in the closed and/or stored position. The clamping system 100 is shown in the closed and stored position in
[0115] The foregoing exemplary embodiments describe a modular clamping system that can be interchangeably used with a large variety devices and fixtures to mount the devices and fixtures onto underlying substrates such as walls, ceilings, doors, or the like. The clamping system described above provides a cost-effective and time saving alternative to the devices presently used to secure various devices and fixtures onto underlying substrates.
[0116] It is understood that the above-described arrangements are only illustrative of the application of the basic principles of the present invention. Numerous modifications and alternative arrangements may be devised by those skilled in the art without departing from the spirit and scope of the present invention. For example, the clamping system 100 may vary in shape and/or size depending on the shape, size, and weight of the device to be mounted to the structure. Although the clamping system 100 has been illustrated in use with electronic devices such as speakers, the clamping system 100 can easily be adapted to any type of device or structure which requires a tool-free connection to a substrate.