OPTIMIZED MECHANICAL ADVANTAGE CUTTING TOOL
A cutting tool and method comprises a first lever having a first jaw at one end. A second lever is connected to the first lever at a first pivot where the second lever has a second jaw that is opposed to the first jaw. A third lever is connected to the first lever at a second pivot and connected to the second lever at a third pivot such that relative movement of the third lever relative to the first lever between an open position and a closed position defines a stroke of the tool that corresponds to movement of the hand contact points on the levers toward one another. The third pivot comprises a pin engaging a cam surface where the cam surface has a shape such that the mechanical advantage may increase and decrease through the stroke of the tool and may be variable through the stroke of the jaws.
1 . A cutting tool comprising:
a first lever having a first jaw at one end;
a second lever connected to the first lever at a first pivot, the second lever having a second jaw that is opposed to the first jaw;
a third lever connected to the first lever at a second pivot and connected to the second lever at a third pivot such that movement of the first lever and third lever between an open position and a closed position defines a stroke of the tool that corresponds to movement of the jaws toward one another;
the third pivot comprising a pin engaging a cam surface, the cam surface having a shape such that a mechanical advantage increases and decreases through the stroke of the tool.
2 . The cutting tool of claim 1 wherein the shape is determined in part by an input force applied to the first and third levers.
3 . The cutting tool of claim 2 wherein the input force is related to the squeeze force of a user.
4 . The cutting tool of claim 1 wherein the cam surface has a curved shape.
5 . The cutting tool of claim 1 , wherein the pin exerts a force on the cam surface, the direction of the force changing relative to the second lever during the stroke of the tool.
6 . The cutting tool of claim 1 wherein the cam surface has a first surface disposed an angle relative to a second surface.
7 . The cutting tool of claim 1 wherein the cam surface has a C-shape.
8 . The cutting tool of claim 1 wherein the cam surface has an S-shape.
9 . The cutting tool of claim 1 wherein the cam surface has a first surface disposed at a first angle relative to the first pivot and a second surface disposed at a second angle relative to the first pivot.
10 . The cutting tool of claim 1 wherein the pin exerts a force on the cam surface in a direction, the direction of the force changes in a direction relative to the moment arm of the second lever.
11 . The cutting tool of claim 1 wherein the pin exerts a force on the cam surface in a direction, the direction of the force changes in a direction relative to the first pivot.
12 . The cutting tool of claim 1 wherein the pin exerts a force on the cam surface in a direction, the direction of the force changes in a direction relative to the second pivot.
13 . The cutting tool of claim 1 wherein the pin exerts a force on the cam surface in a direction, the direction of the force changes in a direction relative to the third pivot.
14 . A cutting tool comprising:
a first lever having a first jaw at one end;
a second lever connected to the first lever at a first pivot, the second lever having a second jaw that is opposed to the first jaw;
a third lever connected to the first lever at a second pivot and connected to the second lever at a third pivot such that movement of the first lever and third lever between an open position and a closed position defines a stroke of the tool that corresponds to movement of the jaws toward one another;
the third pivot comprising a pin on the third lever engaging a cam surface on the second lever, the cam surface having a non-linear shape such that the mechanical advantage between the levers and jaws is variable through the stroke of the jaws.
15 . A method of designing a cutting tool comprising:
providing a first lever and a second lever pivotably connected to the first lever at a first pivot, the first pivot comprising a pin on one of the first lever or the second lever that engages a cam surface on the other of the first lever or the second lever such that movement of the first lever causes the second lever to rotate;
determining a shape of the cam surface using an applied input force.
16 . The method of claim 15 wherein the input force is related to a user's hand strength.
17 . The method of claim 15 wherein the step of determining a shape comprises using a target cut force for an article to be cut as a function of jaw span.
18 . The method of claim 15 wherein the shape is determined to minimize the highest effort throughout the actuation of the tool.
19 . The method of claim 18 wherein the effort is based on a mechanical advantage of the tool as a function of hand span; a squeeze force function of a user's hand as a function of the hand span; and a cut force function of the target material as a function of jaw span.
20 . The method of claim 15 further comprising determining an optimized mechanical geometry of the shape.