1. Technical Field
The present invention relates to providing a constant counterbalance throughout a predetermined range of motion. More particularly, the present invention relates to utilizing a spring to provide a non-linear counter torque to a lever arm throughout the lever arm's range of motion.
2. Description of the Related Art
An apparatus may use a counter weight for balancing purposes when the apparatus lifts/holds objects, such as those used in traction lifts (elevators), cranes and funfair rides. The expected load multiplied by the distance that load is spaced from a pivot point (lever arm) is referred to as a load moment, and the counterweight times its distance from the pivot point is referred to as the counterweight moment. In order to prevent over-balancing on either side, the load moment must equal the counterweight moment, which is fairly straight forward in linear applications where the load moment remains constant throughout the lever arm's range of motion. Non-linear applications, however, result in the load moment itself becoming non-linear throughout the lever arm's range of motion.
An apparatus includes a lever arm that couples to a pivot point on one end and a display on the other end. The lever arm rotates around the pivot point through a lever arm range of motion, and the weight of the display produces a display torque around the pivot point that varies as the lever arm rotates through the lever arm range of motion. The apparatus also includes a spring that couples to the lever arm using a cable. The spring produces, through the lever arm, a spring torque around the pivot point that is equally opposite of the display torque throughout the lever arm range of motion.
The foregoing is a summary and thus contains, by necessity, simplifications, generalizations, and omissions of detail; consequently, those skilled in the art will appreciate that the summary is illustrative only and is not intended to be in any way limiting. Other aspects, inventive features, and advantages of the present invention, as defined solely by the claims, will become apparent in the non-limiting detailed description set forth below.
The present invention may be better understood, and its numerous objects, features, and advantages made apparent to those skilled in the art by referencing the accompanying drawings, wherein:
Certain specific details are set forth in the following description and figures to provide a thorough understanding of various embodiments of the invention. Certain well-known details often associated with computing and software technology are not set forth in the following disclosure, however, to avoid unnecessarily obscuring the various embodiments of the invention. Further, those of ordinary skill in the relevant art will understand that they can practice other embodiments of the invention without one or more of the details described below. Finally, while various methods are described with reference to steps and sequences in the following disclosure, the description as such is for providing a clear implementation of embodiments of the invention, and the steps and sequences of steps should not be taken as required to practice this invention. Instead, the following is intended to provide a detailed description of an example of the invention and should not be taken to be limiting of the invention itself. Rather, any number of variations may fall within the scope of the invention, which is defined by the claims that follow the description. The following detailed description will generally follow the summary of the invention, as set forth above, further explaining and expanding the definitions of the various aspects and embodiments of the invention as necessary.
At lever arm 100's other end at a distance of length “L” from display 110's coupling, lever arm 100 couples to pivot point 120, which may be a cylindrical device (e.g., pin, rod, etc.) attached to a base that allows lever arm 100 to rotate (rotation angle 140) around pivot point 120 throughout a particular range of motion. For example, lever arm 100 may have a 180 degree range of motion that rotates from a top vertical position to a bottom vertical position. In this example, a torque produced by display 110 around pivot point 120 through lever arm 100 non-linearly increases to a maximum value when lever arm 100 is in a horizontal position (see
Torque=L*F=Lever arm length*Force
In this formula, the lever arm length is “L” and the force is the force perpendicular to the lever arm, or Forcedp 150. Angle 160 is the same as rotation angle 140, and since sin(⊖)=Forcedp 150/Forcedv 170,
Fdp=Fdv*sin(⊖)).
As a result, the display torque (Tdisplay 180) around pivot point 120 in terms of Fdv is:
Tdisplay(⊖)=L*Fdv Sin(⊖).
As can be seen from the formula above, the display torque varies depending upon ⊖, which is rotation angle 140 (see
Cable 300 feeds over pulley 310. As such, spring 320 may be located in areas other than that shown in
When lever arm 100 rotates away from pulley 310 at a displacement of “X,” spring 320 produces Forces(spring)330 (Fs) that is equal to the formula Force=K*X, where K is the spring constant and X is the displacement (see
sin(⊖/2)=b/L,
b=L*sin(⊖/2);
since X=2b,X(⊖)=2L sin(⊖/2).
The formula X=2L sin(⊖/2) is used in
Forces330=Fs=K*X.
Since the displacement depends upon rotation angle 140, the formula may be written as
Fs=K*X(⊖), or K=Fs/X(⊖).
When lever arm 100 is at a horizontal position, the force of a display (Fdv170) equals the display's perpendicular force on lever arm 100 (Fdp150) shown in
Fs=√2Fsp=√2Fdv.
Therefore, using this formula and the formula derived in
K=Fs/X(⊖)=√2Fdv/2L sin(⊖/2).
Since, in this example, ⊖=π/2 (90 degrees), the formula results in:
K=√2Fdv/2L sin(π/4).
Since sin(π/4)=√2/2, the formula reduces to:
K=Fdv/L.
Therefore, the spring force results in:
Fs=K*X(⊖))=(Fdv/L)*(2L sin(⊖)/2));
Fs=2Fdv Sin(⊖/2)
Since the spring force is a function of the rotation angle and the vertical display force as shown in the above formula, a spring torque value around pivot point 120 may also be derived, using the spring force formula above, as a function of the rotation angle and vertical display force (see
Torque=Lever arm*Force.
As such, Tspring(⊖)=L*Fsp, where L is the lever arm length and Fsp is Fsp 340, which is the perpendicular force created by the spring. Since angle 460 is half of rotation angle 140,
Fsp=Fs*cos(⊖/2).
And, since Fs=2Fdv Sin(⊖/2) as computed in FIG. 4B's discussion above,
Tspring(⊖)=L*2Fdv sin(⊖/2)cos(⊖/2).
Since trigonometry includes a property that shows sin(⊖)=½ sin(⊖/2)cos(⊖/2), the above formula may be reduced to:
Tspring(⊖)=L*Fdv sin(⊖)
This formula is used during the discussion of
Tspring(⊖)=L*Fdv sin(⊖)(from FIG. 5A), and
Tdisplay(⊖)=L*Fdv sin(⊖)(from FIG. 1B).
Comparing the two formulas,
Tspring(⊖)+Tdisplay(⊖)=0.
Therefore, by selecting spring 320 according to the weight of a display (Fdv 170), the apparatus shown in
At step 630, processing computes a spring force when the lever arm is at 90 degrees (horizontal) using the formula Fs=√2 Fdv from
Once processing computes the maximum spring force required, spring types and quantities may be selected (step 660). During this step, various options are available, such as selecting one larger spring that provides the required spring constant, or selecting a few smaller springs that, when combined in parallel, provide the required spring constant. Processing ends at 670.
While particular embodiments of the present invention have been shown and described, it will be obvious to those skilled in the art that, based upon the teachings herein, that changes and modifications may be made without departing from this invention and its broader aspects. Therefore, the appended claims are to encompass within their scope all such changes and modifications as are within the true spirit and scope of this invention.
Furthermore, it is to be understood that the invention is solely defined by the appended claims. It will be understood by those with skill in the art that if a specific number of an introduced claim element is intended, such intent will be explicitly recited in the claim, and in the absence of such recitation no such limitation is present. For non-limiting example, as an aid to understanding, the following appended claims contain usage of the introductory phrases “at least one” and “one or more” to introduce claim elements. However, the use of such phrases should not be construed to imply that the introduction of a claim element by the indefinite articles “a” or “an” limits any particular claim containing such introduced claim element to inventions containing only one such element, even when the same claim includes the introductory phrases “one or more” or “at least one” and indefinite articles such as “a” or “an”; the same holds true for the use in the claims of definite articles.
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Number | Date | Country | |
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20100250152 A1 | Sep 2010 | US |