GRAVITY LINE POWER GENERATION SYSTEM INCLUDING A SLED MECHANISM TO HARVEST KINETIC ENERGY FROM A WHEELED VEHICLE MOVING DOWN A SLOPE
20200373811 ยท 2020-11-26
Inventors
Cpc classification
F03G3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A power generation system for the production of electric power or the accomplishment of other work objectives utilizes kinetic energy derived from the action of the force of gravity on a vehicle that is allowed to move along a power generation path having a downward grade. A tether cable connects the vehicle to a tether member that moves along a downhill line in response to the movement of the vehicle along the path, and the movement of the tether member operates a gearing mechanism that operates a machine to accomplish the work objective.
Claims
1. A power generation system, comprising: an exit road for diverting a wheeled vehicle from a main road for vehicular traffic to a tether station; a power generation path, connecting to the exit road at the tether station, the power generation path comprising a road having a downward grade; a power transfer mechanism, configured to receive the wheeled vehicle while the vehicle moves downwardly, due to the weight of the vehicle, along the power generation path from a first position to a second position and to use at least a portion of kinetic energy generated by the downward movement of the vehicle to operate a gearing mechanism operatively connected to an electric generator to thereby convert the kinetic energy to electric power; and an entrance road for returning the wheeled vehicle, after disconnection from the power transfer mechanism, back to the main road, wherein the power transfer mechanism comprises a sled member configured to move from the first position to the second position along a track.
2. The power generation system of claim 1, wherein the sled member is sized and configured to receive the vehicle thereon.
3. The power generation system of claim 1, wherein the sled member is interconnected to the gearing mechanism via a gearing cable.
4. The power generation system of claim 1, wherein a front portion of the sled member is configured to prevent a driver of the wheeled vehicle from driving the wheeled vehicle over the sled member when inside the tether station, and then to fold down to allow the driver to exit the sled member at a bottom of the power generation path.
5. The power generation system of claim 1, wherein a rear portion of the sled member is sloped to assist a driver of the wheeled vehicle in driving onto the sled member.
6. A method for generating electrical power, comprising: a) diverting a wheeled vehicle, from a main road for vehicular traffic, along an exit road to a tether station; b) receiving the wheeled vehicle on a sled member of a power transfer mechanism at the tether station, wherein the power transfer mechanism is operatively connected to a gearing mechanism and the gearing mechanism is operatively connected to an electric generator; c) allowing the wheeled vehicle to move downwardly, due to weight of the vehicle, along a power generation path from a first position at a starting point of the power generation path to a second position at an ending point of the power generation path, wherein the power generation path comprises a road having a downward grade; d) as a result of the downward motion of the vehicle, operating the gearing mechanism to operate the electric generator and thereby generate the electrical power; e) allowing the wheeled vehicle to exit the sled member at the second position at the ending point of the power generation path; and f) returning the wheeled vehicle to the main road via an entrance road.
7. The method of claim 6, wherein the vehicle is in an unpowered or low-powered mode as the vehicle moves downwardly along the power generation path.
8. The method of claim 6, wherein the sled member is interconnected to the gearing mechanism via a gearing cable.
9. The method of claim 6, wherein a front portion of the sled member is configured to prevent a driver of the wheeled vehicle from driving the wheeled vehicle over the sled member when inside the tether station, and then to fold down to allow the driver to exit the sled member at a bottom of the power generation path.
10. The method of claim 6, wherein a rear portion of the sled member is sloped to assist a driver of the wheeled vehicle in driving onto the sled member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0034] As used herein, the phrases at least one, one or more, or, and and/or are open-ended expressions that are both conjunctive and disjunctive in operation. For example, each of the expressions at least one of A, B and C, at least one of A, B, or C, one or more of A, B, and C, one or more of A, B, or C, A, B, and/or C, and A, B, or C means A alone, B alone, C alone, A and B together, A and C together, B and C together, or A, B, and C together.
[0035] As used herein, the term a or an entity refers to one or more of that entity. As such, the terms a (or an), one or more, and at least one can be used interchangeably herein. It is also to be noted that the terms comprising, including, and having can be used interchangeably.
[0036] As used herein, the terms grade, gradient, incline, pitch, slope, and tilt are interchangeable and each refer to an angle of a surface of a landform or other physical feature relative to a horizontal axis or plane. A positive grade may be referred to as an upward grade, and a negative grade may be referred to as a downward grade.
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[0038] In many embodiments of the present invention, it may be advantageous to locate the power generation system 10 of the present invention at or near the summit of a pass, hill, mountain, or similar natural landform, i.e. a point where an upward grade of the road 22 (illustrated as U in
[0039] In the embodiment illustrated in
[0040] The connecting mechanism 34 comprises a first connector element 40, disposed on a rear portion 42 of the vehicle 14, and a second connector element 44, disposed at the end of the tether cable 32. In embodiments, the first connector element 40 comprises a plate made of steel or other ferrous material and the second connector element 44 comprises an electromagnet that magnetically engages the plate of the first connector element 40, and/or the first and second connector elements 40, 44 comprise cooperatively configured mechanical devices that securely interconnect the tether cable 32 to the rear portion 42 of the vehicle 14, but any type of connecting device known to those of skill in the art may be utilized. In embodiments, an overhead digital readout may be provided inside the tether station 28 to inform the driver of the vehicle 14 that the vehicle 14 is securely interconnected to the tether cable 32.
[0041] As illustrated in
[0042] In embodiments, the towers 54 may be configured to dispose the support arms 52 a sufficient distance above the power generating path 12 to allow the vehicle 14 to pass underneath the support arms 52 without interfering with the operation of the overhead trolley mechanism 46. Most commonly, the support arms 52 have one or more lines extending downwardly therefrom, such lines comprising at least one extension member 60 that supports rails 62 defining the downhill line 48 and the return line 50. In the embodiment illustrated in
[0043] When the power generation system 10 is in use, the driver of the vehicle 14 exits the road 22 onto the road exit path 24 and slows down to enter the tether station 28 to allow the second connector element 44 to attach to the first connector element 40 at a rear portion 42 of the vehicle 14, thereby securely interconnecting the tether cable 32 to the vehicle 14. Once the driver has been made aware that the tether cable 32 is securely interconnected to the vehicle 14, by any suitable means including but not limited to an overhead digital readout, the driver then proceeds through the tether station 28 to a starting point of the power generation path 12, and then may, in embodiments, place the vehicle in a neutral gear or other unpowered or low-power mode, which may advantageously result in fuel savings. Due to the downhill grade G of the power generation path 12, the vehicle 14 then travels, by the force of its own weight, down the power generation path 12.
[0044] The overhead trolley mechanism 46, via the tether cable 32 connected to the vehicle 14, may control the rate of descent of the vehicle 14, which may eliminate the need for the driver to apply the brakes of the vehicle 14 and thus save additional fuel and reduce wear and tear on the vehicle 14. As the vehicle 14 moves downwardly along the power generation path 12, the tether cable 32 pulls on the tether member 30, causing the tether member 30 to pull or otherwise move the downhill line 48 of the overhead trolley mechanism 46. The downward movement of the tether member 30 engages the gearing mechanism 56, for example by pulling on the downhill line 48 (as illustrated in
[0045] Once the driver has been made aware that the tether cable 32 has been disconnected from the vehicle 14, by any suitable means including but not limited to an overhead digital readout, the driver then proceeds along the road entrance path 26 to rejoin traffic on the road 22. If desired, an overhead digital readout that informs the driver that the tether cable 32 has been disconnected from the vehicle 14 may also display additional information, such as messages instructing the driver to proceed with caution.
[0046] Where the power generation system 10 is located on a particularly busy road 22, such as a highway or freeway, the movement of many vehicles 14 (on some particularly high-traffic stretches of urban freeways, hundreds of thousands of vehicles 14 per day) along the power generation path 12 may be capable of providing very large quantities of usable energy to the machine 18. The electricity or other useful work produced by power generation system 10 is clean and readily available, and may be installed as replacements for dirty and/or unreliable systems.
[0047] In addition to the advantages of the electricity or other work produced by the power generation system 10 of the present invention, the drivers of the vehicles 14 that utilize the power generation system 10 also reap benefits. As discussed above, vehicles 14 consume less fuel and rely less heavily on their braking systems as they descend the power generation path 12 than they otherwise would while descending the road 22; the downward grade G of the power generation path 12 is sufficient to allow the vehicle 14 to roll downwardly by the force of its own weight, while the overhead trolley mechanism 46 prevents the vehicle 14 from descending in an uncontrolled fashion or at an excessive speed. The reduced fuel consumption and wear on the braking system in turn reduce maintenance and other costs associated with operation of the vehicle 14. Additionally, traffic on the road 22 that does not utilize the power generation system 10 benefits by having some portion of traffic, often larger and/or slower vehicles, removed from a portion of the road 22, thereby reducing congestion.
[0048] Referring now to
[0049] The embodiment illustrated in
[0050] While the present disclosure shows and describes various aspects, embodiments, features, and forms of the invention, it is to be expressly understood, and will be readily apparent to those skilled in the art, that the invention is not limited to aspects, embodiments, features, and forms shown and described herein, but that various additions, alternatives, modifications, and rearrangements may be made without departing from the scope of the invention. Particularly, the embodiments shown and described herein are subject to modification with regard to any assembly method, dimension, material, shape, size, spatial orientation or configuration, or use. Likewise, numerous components described herein may be replaced by components having equivalent functions, and such alternatives and/or substitutions are within the scope of the present invention.