SYSTEM AND METHOD FOR LEVERAGING FORCE

Information

  • Patent Application
  • 20250035194
  • Publication Number
    20250035194
  • Date Filed
    July 03, 2024
    10 months ago
  • Date Published
    January 30, 2025
    3 months ago
  • Inventors
    • COHEN; Menashe
Abstract
The present invention pertains to system, modules and methods for leveraging force.
Description
CROSS REFERENCE TO RELATED APPLICATIONS

This application claims the benefit of priority of Israeli Patent Application No. 304259, filed on Jul. 4, 2023, the contents of which are all incorporated herein by reference in their entirety.


FIELD OF THE INVENTION

The present invention pertains to system, modules and method for leveraging force.


BACKGROUND OF THE INVENTION

Known in the art are internal combustion engines and the manner of translating reciprocal motion into rotary motion with improved efficiency; and an improved cam-type crank-disc that more closely matches the source work potential of a reciprocating piston to the receiving work ability of the engine output shaft, see U.S. Pat. No. 5,060,603. Likewise, bearing devices, for example in a turbomachine, are a part of the public domain, see U.S. Pat. No. 9,328,627. A system for leveraging force is still a long-felt need.


SUMMARY OF THE INVENTION

It is hence the object of the discloses a system for leveraging force comprising at least one elongated crosspiece (main crosspiece 2) having at least one first end 2a and an opposite at least one second end 2b end, the main crosspiece 2 is interconnected by means of an axle 5 with a static wheel (1) at a location 2c, in between the 2a and 2b, the static wheel 1 is characterized by a first diameter (D). A driving wheel 3, characterized by a second diameter (d), is interconnected, by means of hinge 6 with the main crosspiece 2 at the at least one second end 2b; the first diameter (D) is configurable to be smaller, equal to or greater than the second diameter (d). Optionally, the driving wheel 3 is provided in connection with a driven wheel 4 and/or vis versa the driving wheel 4 is provided in connection with a driven wheel 4; still optionally, the small driving wheel 4 is in communication with the small driven wheel 3 by means of connector 8, the connector 8 linking small driven wheel axle 6 and small driving wheel axle 7. A surface of small driving wheel 4 is in non-slipping communication with a surface 1b of the static wheel 1. A first end 2a of the crosspiece 2 is in communication with the small driven wheel 3 by a small driven wheel axle. The second end 2b of the crosspiece 2 is configured to provide an output force Fout at second end 2b correlated to (L/l)Fin, where Fin is an input force applied to the driving wheel 4, L is a distance between second end 2b and the main axle 5 and l is a distance between the first end 2a and the main axle 5.


Another object of the invention is to disclose a system as defined in any if the above, wherein the L/l ratio, which determined the degree of leveraging of Fin to Fout, is not affecting and not affected by the constant path, namely the circumference of the static wheel 1, in which the driving wheel passes at a given time.


Another object of the invention is to disclose a system as defined in any if the above, wherein the system is implemented or otherwise used or connected with mechanisms with moving clement and energy production.


Another object of the invention is to disclose a system as defined in any if the above, wherein the system is implemented or otherwise used or connected with at least one member of a group consisted of land vehicles, sea or undersea vessels, airplanes and the like, motors, engines, including main engines and support engines, hybrid electrical systems, pumps, and powerplants.


The term energy production refers generally to the production of electrical energy and/or the production of hydrogen gas.


As used herein, the term vehicle is not limited to just an automobile, truck, van or sport utility vehicle, but includes any self-propelled or towed conveyance suitable for transporting a burden, or any stationary or non-road engine equipment.


In an embodiment, the term “engine” as used herein refers to any means suitable for replacing or supporting internal combustion engine, such as diesel engine, spark-ignition engine fueled by gasoline or any other suitable combustive fluid.


Another object of the invention is to disclose a method of leveraging force comprising steps of providing at least one elongated crosspiece (main crosspiece 2) having at least one first end 2a and an opposite at least one second end 2b end; interconnecting the main crosspiece 2 by means of an axle 5 with a static wheel (1) at a location 2c, in between the 2a and 2b, the static wheel 1 is characterized by a first diameter (D); interconnecting a driving wheel 3, characterized by a second diameter (d), by means of hinge 6 with the main crosspiece 2 at the at least one second end 2b; configuring the first diameter (D) to be smaller, equal to or greater than the second diameter (d); optionally, proving the driving wheel 3 in connection with a driven wheel 4 and/or vis versa proving the driving wheel 4 in connection with a driven wheel 3; still optionally, communicating the small driving wheel 4 with the small driven wheel 3 by means of connector 8, the connector 8 linking small driven wheel axle 6 and small driving wheel axle 7; communicating in a non-slipping manner a surface of small driving wheel 4 with a surface 1b of the static wheel 1; communicating the first end 2a of the crosspiece 2 with the small driven wheel 3 by a small driven wheel axle; the second end 2b of the crosspiece 2 is configured to provide an output force Fout at second end 2b correlated to (L/l)Fin, where Fin is an input force applied to the driving wheel 3 or 4, L is a distance between second end 2b and the main axle 5 and l is a distance between the first end 2a and the main axle 5.


Another object of the invention is to disclose a method as defined in any of the above, wherein force leveraging is defined as a function of Eq. 1, namely







F
out

=



L
+
l

R




F
in

.






Another object of the invention is to disclose a method as defined in any of the above, wherein the L/l ratio, which determined the degree of leveraging of Fin to Fout, is not affecting and not affected by the constant path, namely the circumference of the static wheel 1, in which the driving wheel passes at a given time.


Another object of the invention is to disclose a method as defined in any of the above, wherein the method is implemented or otherwise used or connected with mechanisms with moving element and energy production.


Another object of the invention is to disclose a method as defined in any of the above, wherein the method is implemented or otherwise used or connected with at least one member of a group consisted of land vehicles, sea or undersea vessels, airplanes and the like, motors, engines, including main engines and support engines, hybrid electrical systems, pumps, and powerplants.


Another object of the invention is to disclose methods and systems for leveraging force comprising a crosspiece e.g., as shown in the figures, configured to provide an output force Fout at second end 2b correlated to (L/l)Fin, where Fin is an input force applied to the driving wheel, L is a distance between second end 2b and the main axle and l is a distance between said first end 2a and said main axle.





BRIEF DESCRIPTION OF THE FIGURES

Reference will now be made to the accompanying drawings, which are not necessarily drawn to scale:



FIG. 1a,b and FIG. 2a,b depicts two different systems and methods for leveraging force according to an embodiment of the invention; and



FIG. 3 illustrates the effectivity of force leveraging of the systems and methods according to an embodiment of the invention.





DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

Reference is now made to any of FIGS. 1a,b and 2a,b, each of which discloses a schematic and in an out-of-scale manner side and front views (respectively) of two different systems for leveraging force according to an embodiment of the invention. The systems are to be used in e.g., all mechanisms with moving element and energy production. It comprises at least one elongated crosspiece; e.g., a bar-like member provided useful as at least one first main crosspiece 2. The crosspiece is having at least one first end 2a and an opposite at least one second end 2b end. The main crosspiece 2 is interconnected by means of an axle 5 with a static wheel (1) at a location 2c, in between the 2a and 2b. The static wheel 1 is characterized by a first diameter (D). A driving wheel 3, characterized by a second diameter (d), is interconnected, by means of hinge 6 with the main crosspiece 2 at the at least one second end 2b. The first diameter (D) is configurable to be smaller, equal to or greater than the second diameter (d).


Optionally, and according to an embodiment of the invention, driving wheel 3 is provided in connection with a driven wheel 3 or 4. Optionally, and according to yet another embodiment of the invention, driving wheel 3 or 4 is provided in connection with a driven wheel 3 or 4. Optionally, and according to yet another embodiment of the invention, the driving wheel 3 or 4 is in communication with a driven wheel 3 or 4 by means of connector 8. The connector 8 is linking the driven wheel axle 6 and the driving wheel axle 7.


Optionally, and according to yet another embodiment of the invention, a motor 9a. optionally via a gear 9b, is actuating one or more driving wheels.


The surface of driving wheel 3 or 4 is in non-slipping communication with a surface 1b of the static wheel 1. The first end 2a of the crosspiece 2 is in communication with the driven wheel 3 or 4 by a driven wheel axle.


It is acknowledged in a non-limiting manner that the novelty and the invention step here is that the second end 2b of the crosspiece 2 is configured to provide an output force Fout at second end 2b correlated to (L/l)Fin, where Fin is an input force applied to the driving wheel 4, L is a distance between second end 2b and the main axle 5 and l is a distance between the first end 2a and the main axle 5.


Reference is still made to FIGS. 1a,b and 2a,b each of which enables a method of leveraging force. The method comprising steps of providing at least one elongated crosspiece (main crosspiece 2) having at least one first end 2a and an opposite at least one second end 2b end; and interconnecting the main crosspiece 2 by means of an axle 5 with a static wheel (1) at a location 2c, in between the 2a and 2b, the static wheel 1 is characterized by a first diameter (D). The method further comprising steps of interconnecting a driving wheel 3, characterized by a second diameter (d), by means of hinge 6 with the main crosspiece 2 at the at least one second end 2b; and configuring the first diameter (D) to be smaller, equal to or greater than the second diameter (d). The method further comprising steps of communicating in a non-slipping manner a surface of small driving wheel 4 with a surface 1b of the static wheel 1; and communicating the first end 2a of the crosspiece 2 with the small driven wheel 3 by a small driven wheel axle.


It is acknowledged in a non-limiting manner that the novelty and the invention step here is that the second end 2b of the crosspiece 2 is configured to provide an output force Fout at second end 2b correlated to (L/l)Fin, where Fin is an input force applied to the driving wheel 4, L is a distance between second end 2b and the main axle 5 and l is a distance between the first end 2a and the main axle 5.


It is noted that driving and driven wheels (3 and 4, FIG. 1a,b) are two times bigger than driving and driven wheels (3a and 4b, FIG. 2a,b) so that Fin/Fout varies.


Optionally, the method comprising step of proving the driving wheel 3 in connection with a driven wheel 4 and/or vis versa proving the driving wheel 4 in connection with a driven wheel 4; still optionally, the method comprising step of communicating the small driving wheel 4 with the small driven wheel 3 by means of connector 8, the connector 8 linking small driven wheel axle 6 and small driving wheel axle 7. Optionally, and according to yet another embodiment of the invention, the method comprising step of providing then using a motor 9a. optionally via a gear 9b, for actuating one or more driving wheels.


It is acknowledged that the changeable L/l ratio, which determined the degree of leveraging of Fin to Fout, is not affecting and not affected by the constant path (the circumference of the static wheel 1) in which the driving wheel passes at a given time.


The term “wheel” refers in a non-limiting manner to all type of one or more, and array of wheels and the like, with or without gear and power transitions thereof, including Cogwheel and mechanisms designed to transmit torque to another wheel, gear or toothed component. Such a transition is selected e.g., from mechanical, modules powered by compressed air or compressed inert gases, or fluids, such as oil or water.


Reference is now made to FIG. 3, schematically illustrating a system for leveraging force according to an embodiment of the invention, wherein the force leverage is defined in Eq. 1 below:










The


leveraged


output


force



F
out


=


L
l



F
in






Eq
.

1







Table 1 depicts a few examples where an input force (Fin) is 1 N. Assuming no energy lost due to e.g., friction and heating, the output force Fout is in correlation (function) with Fin as defined in Eq. 1.









TABLE 1







Leveraging Finto elevated (or reduced) Fout in system


100 and methods as defined in any of the above.
















Radius of
ratio long

Ratio


input
long
short
driving
radius to
output
output


force
radius
radius
wheel
short radius
force
to input


(N)
(L, m)
(l, m)
(r, m)
(L/l)
(N)
power
















1
7
5
1
1.4
1.4
7


1
10
5
1
2
2
10


1
100
5
1
20
20
100


1
5
5
1
1
1
5


1
5
20
1
0.25
0.25
5









The system and method of the present invention as shown in the table above grantee efficient means for leveraging force with reduced impact on the environmental carbon print.


The invention discloses methods, systems and muddles thereof for leveraging force. The system comprises, inter alia, a crosspiece e.g., as shown in the figures, configured to provide an output force Fout at effector end (see e.g., crosspiece 2b) correlated to (L/l)Fin, where Fin is an input force applied to the driving wheel, L is a distance between second end 2b and the main axle and l is a distance between said first end 2a and said main axle.


Reference is now made to FIG. 1a. Output power Pout=(L/r)Pin, where Pin is input power. Hence, when the long radius L is 10 m and the radius of the driving wheel is 1 m, the ratio of output power to input power is 10:1.


The methods and systems described herein are not limited to the specific embodiments described herein. For example, components of each system and/or steps of each method may be used and/or practiced independently and separately from other components and/or steps described herein. In addition, each component and/or step may also be used and/or practiced with other assemblies and methods.


While the invention has been described in terms of various specific embodiments, those skilled in the art will recognize that the invention can be practiced with modification within the spirit and scope of the claims.

Claims
  • 1. A system 100 for leveraging force comprising at least one elongated crosspiece (main crosspiece 2) having at least one first end 2a and an opposite at least one second end 2b end, said main crosspiece 2 is interconnected by means of an axle 5 with a static wheel (1) at a location 2c, in between said 2a and 2b, said static wheel 1 is characterized by a first diameter (D); a driving wheel 3, characterized by a second diameter (d), is interconnected, by means of hinge 6 with said main crosspiece 2 at said at least one second end 2b; said first diameter (D) is configurable to be smaller, equal to or greater than said second diameter (d);optionally, said driving wheel 3 is provided in connection with a driven wheel 4 and/or vis versa said driving wheel 4 is provided in connection with a driven wheel 4; still optionally, said small driving wheel 4 is in communication with said small driven wheel 3 by means of connector 8, said connector 8 linking small driven wheel axle 6 and small driving wheel axle 7;a surface of small driving wheel 4 is in non-slipping communication with a surface 1b of said static wheel 1;said first end 2a of said crosspiece 2 is in communication with said small driven wheel 3 by a small driven wheel axle;said second end 2b of said crosspiece 2 is configured to provide an output force Fout at second end 2b correlated to (L/l)Fin, where Fin is an input force applied to said driving wheel 4, L is a distance between second end 2b and said main axle 5 and l is a distance between said first end 2a and said main axle 5.
  • 2. The system of claim 1, wherein said L/l ratio, which determined the degree of leveraging of Fin to Fout, is not affecting and not affected by the constant path, namely the circumference of the static wheel 1, in which the driving wheel passes at a given time.
  • 3. The system of claim 1, wherein the system is implemented or otherwise used or connected with mechanisms with moving element and energy production.
  • 4. The system of claim 1, wherein the system is implemented or otherwise used or connected with at least one member of a group consisted of land vehicles, sea or undersea vessels, airplanes and the like, motors, engines, including main engines and support engines, hybrid electrical systems, pumps, and powerplants.
  • 5. A method of leveraging force comprising steps of a. providing at least one elongated crosspiece (main crosspiece 2) having at least one first end 2a and an opposite at least one second end 2b end,b. interconnecting said main crosspiece 2 by means of an axle 5 with a static wheel (1) at a location 2c, in between said 2a and 2b, said static wheel 1 is characterized by a first diameter (D);c. interconnecting a driving wheel 3, characterized by a second diameter (d), by means of hinge 6 with said main crosspiece 2 at said at least one second end 2b; d. configuring said first diameter (D) to be smaller, equal to or greater than said second diameter (d);e. optionally, proving said driving wheel 3 in connection with a driven wheel 4 and/or vis versa proving said driving wheel 4 in connection with a driven wheel 3; still optionally, communicating said small driving wheel 4 with said small driven wheel 3 by means of connector 8, said connector 8 linking small driven wheel axle 6 and small driving wheel axle 7;f. communicating in a non-slipping manner a surface of small driving wheel 4 with a surface 1b of said static wheel 1;g. communicating said first end 2a of said crosspiece 2 with said small driven wheel 3 by a small driven wheel axle;
  • 6. The method of claim 5, force leveraging is defined as a function of Eq. 1, namely
  • 7. The method of claim 5, wherein said L/l ratio, which determined the degree of leveraging of Fin to Fout, is not affecting and not affected by the constant path, namely the circumference of the static wheel 1, in which the driving wheel passes at a given time.
  • 8. The method of claim 5, wherein the method is implemented or otherwise used or connected with mechanisms with moving element and energy production.
  • 9. The method of claim 5, wherein the method is implemented or otherwise used or connected with at least one member of a group consisted of land vehicles, sea or undersea vessels, airplanes and the like, motors, engines, including main engines and support engines, hybrid electrical systems, pumps, and powerplants.
Priority Claims (1)
Number Date Country Kind
304259 Jul 2023 IL national