This invention relates to clamps for holding objects and more specifically to bar clamps.
In the filed of clamps, bar clamps are a well known tool having many and varied applications. The concept of a bar clamp is old and well-known. In recent years, bar clamps have been developed which can be operated by one hand, and are held by a friction member. A trigger handle advances a slide bar by driving a lever which binds against a surface of the slide bar and moves the bar as the lever is moved. The lever is returned by spring force to its original position after each stroke of the trigger handle, the lever sliding over the bar surface during its return motion, (i.e. U.S. Pat. No. 4,926,722 by Sorensen et al. and U.S. Pat. No. 5,022,137 by Sorensen et al.). While very successful, these devices have a distinct limitation in clamping force. Specifically, the force exerted between clamping jaws is determined by the pressure applied to the lever by a user's grip. Thus, while a person with a strong grip can apply more pressure than a person with a weak grip, the pressure applied is still limited to human strength. Additionally, the force applied is difficult to control, relying on an individual user's judgment of how much pressure is being applied.
It would be highly advantageous, therefore, to remedy the foregoing and other deficiencies inherent in the prior art.
An object of the present invention is to provide a bar clamp wherein the clamping pressure can be adjusted.
Another object of the present invention is to provide a bar clamp that can provide great clamping pressure through mechanical advantage.
Briefly, to achieve the desired objects and advantages of the instant invention, provided is a self-adjusting bar clamp. The self-adjusting bar clamp includes a body having a rear end defining a rear aperture and a front end defining a front aperture. The body defines an elongated channel extending between the rear end and the front end. An actuating lever having a first end pivotally coupled to the body at a pivot point, is movable between an open position and a closed position and has a second end. An elongated bar is positioned in the elongated channel of the body, and has a rearward end extending rearwardly from the rear aperture and a forward end extending forwardly from the front aperture and is carried by the body for reciprocal sliding movement therethrough. The forward end terminates in a pressure foot. A self-adjusting toggle mechanism is provided which includes a locking element carried by the elongated bar within the elongated channel for reciprocal and canting movement. An element pivotally coupled to the actuating lever intermediate the first end and the second end and a cam element pivotally coupled to the element and pivotally coupled to the locking element. The cam element is movable between a first condition permitting the locking element to reciprocate along the elongated bar and a second condition bearing against the elongated bar and canting the locking element into frictional engagement with the elongated bar. A biasing member is captured between one of the rear end and the front end of the body, and the locking element, biasing the locking element in a first direction.
The locking member in the opened position of the actuating lever being positioned for sliding movement in relation to the elongated bar, the locking member in the closed position of the actuating lever, moves the elongated bar incrementally through the body in a second direction opposite the first direction; and
The self-adjusting bar clamp can also include a secondary locking element carried by the elongated bar proximate the forward end of the body and movable between an engaged position and a released position. The secondary locking element is biased by a biasing member into frictional engagement with the elongated bar in the engaged position, preventing movement of the elongated bar in the first direction, and selectively movable to disengage the elongated bar in the release position against the bias of the biasing member, permitting movement of the elongated bar in the first direction. The secondary locking element can be moved from the engaged position to the release position by rearward movement of the bottom of the secondary locking element, or if a lobe extending forwardly from the first end of the actuating lever is provided, by moving the lever in the open position. In the open position, the lobe engages the secondary locking element moving the secondary locking element to the release position.
Specific objects and advantages of the instant invention will become readily apparent to those skilled in the art from the following detailed description of a preferred embodiment thereof taken in conjunction with the drawings, in which:
Turning now to the drawings in which like reference characters indicate corresponding elements throughout the several views, attention is first directed to
A body 20 is formed of a pair of upright sides 22 extending in parallel spaced apart relationship to essentially form an elongated channel 23. Sides 22 are joined at a rear end 24 either by forming sides 22 integrally from a single elongated strip of metal or with interlocking ends or end wall, and define a rear aperture 25. Sides 22 are joined at a front end 27 either by forming sides 22 integrally from a single elongated strip of metal or with interlocking ends or end wall, and define a front aperture 28. Also, sides 22 can be formed integrally with base 14 so that the bottom edge of each side 22 flares outwardly at a ninety degree angle to form base 14 in two spaced apart portions or base 14 can be a single piece with the bottom edges of sides 22 fixedly attached thereto, as by welding or the like so as to rest against and stabilize clamp 10 on supporting surface 16.
An elongated actuating lever 30 includes a rearward end 32 pivotally coupled to body 20 proximate rear end 24 above elongated channel 23 at a pivot point 33, and extends forwardly to a forward end 34. Actuating lever 30 includes, in this specific embodiment, a pivot point 36 extending between two parallel projections 37 extending downwardly from actuating lever 30 intermediate forward end 34 and rearward end 32. The two parallel projections 37 are spaced apart at pivot point 36 to form a mounting yoke that is positioned on both sides of a link, with a pivot pin extending through both parallel projections 37 and the link, which will be described presently.
Still referring to
A self-adjusting toggle mechanism 50 generally includes three pivotally linked elements designated element 54, cam element 55, and locking element 56. Element 54 has an elongated body with the rearward end pivotally attached between spaced apart parallel projections 37 of actuating lever 37 at pivot point 36. The forward end of element 54 is bifurcated and the rearward end of cam element 55 is pivotally mounted in the bifurcation. Also, the forward end of element 54 has a vertically upwardly extending boss 58 formed thereon with a horizontally extending (generally parallel to element 54) threaded opening therethrough. An adjustment screw 60 is threadedly engaged in the opening and is oriented so that the forwardly extending end is movable. The front end of cam element 55 is pivotally engaged in a bifurcated rearward end of locking element 56 and the front end of locking element 56 is slideably engaged over bar 40 and butts against a rearward end of compression spring 42. The forward end of spring 42 butts against the inner front end 27 of body 20. Spring 42 is captured between front end 27 and locking element 56. The front end of cam element 55 defines an upwardly and forwardly facing pressure adjustment surface 57 positioned to engage the front end of adjustment screw 60 and adjust downward pivotal movement of self-adjusting toggle mechanism 50, allowing for adjustment of the clamping force provided.
With additional reference to
When actuating lever 30 is in the opened position and moved toward base 14, surface 57 of cam element 55 pivots against the rear surface of adjustment screw 60. In this starting position the lower surface of cam element 55 is spaced from bar 40 and disposed angularly relative to bar 40. The distance from and angular disposition of cam element 55 relative to bar 40 when surface 57 of cam element 55 abuts against the rear surface of adjustment screw 60 in the starting position is determinative of the clamping pressure applied by pressure foot 48 against a work piece positioned between pressure foot 48 and abutment 72 when actuating lever 30 is in its closed position. The closer cam element 55 is to bar 40 and the lesser the angular disposition of cam element 55 relative to bar 40 in the starting position the farther forward is the engagement of cam element 55 to bar 40 and the coincident frictional engagement between locking element 56 and bar 40. The farther cam element 55 is away from bar 40 and the greater the angular disposition of cam element 55 is relative to bar 40 in the starting position the farther rearward is the engagement of cam element 55 to bar 40 and the coincident frictional engagement between locking element 56 and bar 40. Because the over-the-center clamping action provided between element 54 and actuating lever 30 and the coincident pressure applied by pressure foot 48 to a work piece decreases the further forwardly the frictional engagement occurs between locking element 56 and rod 40 and increases the further rearwardly the frictional engagement occurs between locking element 56 and bar 40, adjustment of the clamping pressure is controlled by adjustment of screw 60. In this regard, adjusting the rearward end of adjusting screw 60 toward surface 57 of cam element 55 increases the distance of cam element 55 from bar 40 and increases the angular disposition of cam element 55 relative to bar 40, which results in an increased clamping pressure applied by pressure foot 48 to a work piece. Adjusting the forward end of adjusting screw 60 away from surface 57 of cam element 55 decreases the distance of cam element 55 from bar 40 and decreases the angular disposition of cam element 55 to bar 48, which results in a decreased clamping pressure applied by pressure foot 48 to a work piece. It should be understood that once adjusting screw 60 is set for a predetermined pressure, that pressure is applied without the need to further adjust the position of pressure foot 48, as its position will be self-adjusted by the mechanism. It will also be understood that the various bifurcated elements and pivotal pins associated therewith could be reversed if desired or non-bifurcated ends pivotally attached could be used.
Compression spring 42 encircles or axially surrounds bar 40 and is captured between the front end of locking element 56 and front end 27 of body 20. Spring 42 provides a rearward bias, urging locking element 56 rearwardly. The action applied by spring 42 to locking element 56 enables a user to easily open actuating lever 30 and thus release pressure on pressure foot 48. In addition to or in lieu of spring 42, a combination of compression and tension springs can be employed to perform the biasing action if desired.
In operation, base 14 is affixed to a work table or the like by locking peg 12 extending into holes 15. A work piece 70 to be captured is placed on the supporting surface 16 adjacent base 14 and generally in front of pressure foot 48. Bar 40 is moved forwardly though body 20 until pressure foot 48 engages work piece 70. Actuating lever 30 is pressed downwardly to the closed position so that pressure foot 48 is cammed forwardly to engage work piece 70. Actuating lever 30 is then pressed further downwardly until elements 54, 55, and 56 of toggle mechanism 50 react as described above and lock in position. In the reverse operation, actuating lever 30 is lifted to retract pressure foot 48 and release any work piece that might be captured thereby.
Turning now to
Turning to
Still referring to
A self-adjusting toggle mechanism 150 generally includes three pivotally linked elements designated element 154, cam element 155, and locking element 156. Element 154 has an elongated body with the forward end pivotally attached between spaced apart parallel projections 137 of actuating lever 130 at pivot point 136. The rearward end of element 154 is bifurcated and the forward end of cam element 155 is pivotally mounted in the bifurcation. Also, the rearward end of element 154 has a vertically upwardly extending boss 158 formed thereon with a horizontally extending (generally parallel to element 154) threaded opening therethrough. An adjustment screw 160 is threadedly engaged in the opening and is oriented so that the rearwardly extending end is movable. The rear end of cam element 155 is pivotally engaged in a bifurcated forward end of locking element 156 and the rear end of locking element 156 is slideably engaged over bar 140 and butts against a forward end of compression spring 142. The rearward end of spring 142 butts against the inner rear end 124 of body 120. Spring 142 is captured between rear end 124 and locking element 156. The rear end of cam element 155 defines an upwardly and forwardly facing pressure adjustment surface 157 positioned to engage the front end of adjustment screw 160 and adjust downward pivotal movement of self-adjusting toggle mechanism 150.
With additional reference to
Turning now to
Referring now to
Various changes and modifications to the embodiments herein chosen for purposes of illustration will readily occur to those skilled in the art. To the extent that such modifications and variations do not depart from the spirit of the invention, they are intended to be included within the scope thereof, which is assessed only by a fair interpretation of the following claims.
This application claims the benefit of U.S. Provisional Patent Application No. 61/861,317, filed 1 Aug. 2013.
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