Drive system for all-terrain vehicle (ATV)
11766929 · 2023-09-26
Assignee
Inventors
Cpc classification
B62D21/183
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/44
PERFORMING OPERATIONS; TRANSPORTING
B60L53/22
PERFORMING OPERATIONS; TRANSPORTING
B60Q5/00
PERFORMING OPERATIONS; TRANSPORTING
B60K17/043
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/30
PERFORMING OPERATIONS; TRANSPORTING
B60K2007/0038
PERFORMING OPERATIONS; TRANSPORTING
H02K7/006
ELECTRICITY
B60L15/20
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/34
PERFORMING OPERATIONS; TRANSPORTING
H02K11/0094
ELECTRICITY
B60K1/04
PERFORMING OPERATIONS; TRANSPORTING
B60K17/22
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60K7/00
PERFORMING OPERATIONS; TRANSPORTING
B60K1/04
PERFORMING OPERATIONS; TRANSPORTING
B60K17/04
PERFORMING OPERATIONS; TRANSPORTING
B60K17/22
PERFORMING OPERATIONS; TRANSPORTING
B60L15/20
PERFORMING OPERATIONS; TRANSPORTING
B60L50/60
PERFORMING OPERATIONS; TRANSPORTING
B60L53/22
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/30
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/34
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/44
PERFORMING OPERATIONS; TRANSPORTING
B60Q5/00
PERFORMING OPERATIONS; TRANSPORTING
B62D21/18
PERFORMING OPERATIONS; TRANSPORTING
H02K11/00
ELECTRICITY
H02K7/00
ELECTRICITY
Abstract
A drive system for an all-terrain vehicle (ATV) comprises an electric motor, at least three wheel and tire assemblies, a primary battery, a control module and a throttle device. The primary battery may be located within at least two opposing frame rails of a chassis of the all-terrain vehicle.
Claims
1. A drive system (10) for an all-terrain vehicle (ATV) (20) comprising: an electric motor (100); at least three wheel and tire assemblies (200); a primary battery (300) located within at least two opposing frame rails of a chassis (30) of the all-terrain vehicle (ATV), said chassis being a space frame chassis; a control module (400); a throttle device (500); at least one device selected from the group consisting of a light (600), a horn (610), and a winch (620); a step down converter (310); a secondary battery (350); and a transducer (355); and wherein the electric motor is a three-phase electric motor; the electric motor is rotationally connected to at least one of the wheel and tire assemblies; the electric motor is electrically connected to, and configured to receive at least a first signal from the control module; the control module is electrically connected to, and configured to receive a charge from the primary battery; and the throttle device is electrically connected to, and configured to send a second signal to the control module; the step down converter is electrically connected to, and configured to receive a charge from the secondary battery at a first voltage level; each device of the at least one device is electrically connected to, and configured to receive a signal from the step down converter at a second voltage level which is less than the first voltage level; and the transducer is electrically connected to the primary battery and the secondary battery to provide a recharging voltage to the secondary battery from the primary battery.
2. The drive system of claim 1, wherein the at least one device comprises at least one light selected from the group consisting of at least one headlight, at least one tail light, at least one brake light, at least one turn signal light, at least one daytime running light, and at least one fog light.
3. The drive system of claim 1, wherein the primary battery is contained within a housing (320), said housing having a first cuboid shape.
4. The drive system of claim 3, wherein the housing includes an extension protruding upward from a top surface of the first cuboid shape wherein said extension has a second cuboid shape.
5. The drive system of claim 3, wherein the chassis comprises a slideable drawer (35) configured to receive the primary battery.
6. The drive system of claim 5, wherein the slideable drawer comprises a pair of opposing tracks (37).
7. The drive system of claim 6, wherein at least one of the pair of opposing tracks comprises a friction reducing mechanism.
8. The drive system of claim 7, wherein the friction reducing mechanism is at least one bearing.
9. The drive system of claim 7, wherein the friction reducing mechanism is at least one slide plate comprising a material selected from the group consisting of ultra high molecular weight polyethylene (UHMW) plastics, bronze, powdered metal, and polytetrafluoroethylene.
10. The drive system of claim 1, wherein the electric motor is rotationally connected to the wheel and tire assemblies by a gear and chain drive connected to an axle.
11. The drive system of claim 1, wherein the electric motor is rotationally connected to the wheel and tire assemblies by a belt and pulley drive connected to an axle.
12. The drive system of claim 1, wherein the primary battery is a lithium battery.
13. The drive system of claim 1, wherein the primary battery is a lead acid battery.
14. The drive system of claim 1, wherein the electric motor is rotationally connected to at least two of the wheel and tire assemblies.
15. The drive system of claim 1, comprising four wheel and tire assemblies.
16. The drive system of claim 15, wherein the electric motor is rotationally connected to each of the four wheel and tire assemblies.
17. The drive system of claim 16, wherein the electric motor is rotationally connected to the wheel and tire assemblies by an electric motor gearbox (110) which is rotationally connected to a driveshaft (230) which is rotationally connected to a gearbox (210) which is rotationally connected to an axle.
18. The drive system of claim 1, wherein the electric motor is rotationally connected to the wheel and tire assemblies by an electric motor gearbox (110) which is rotationally connected to a driveshaft (230) which is rotationally connected to a gearbox (210) which is rotationally connected to an axle (220).
Description
BRIEF DESCRIPTION OF FIGURES
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DETAILED DESCRIPTION
(6) Disclosed herein is a drive system for an all-terrain vehicle. The drive system is described below with reference to the Figures. As described herein and in the claims, the following numbers refer to the following structures as noted in the Figures. 10 refers to a drive system. 20 refers to an all-terrain vehicle. 30 refers to a chassis. 35 refers to a slideable drawer. 37 refers to a track. 100 refers to an electric motor. 110 refers to an electric motor gearbox. 200 refers to a wheel and tire assembly. 210 refers to a gearbox. 220 refers to an axle. 230 refers to a driveshaft. 300 refers to a primary battery. 310 refers to a stepdown converter. 350 refers to a secondary battery. 355 refers to a transducer. 400 refers to a control module. 500 refers to a throttle device. 600 refers to a light. 610 refers to a horn. 620 refers to a winch.
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(9) In some embodiments, the ATV may be a three wheeled ATV with two wheel and tire assemblies in the front and a single wheel and tire assembly in the back. In such embodiments, the electric motor may be rotationally connected to the single wheel and tire assembly in the back by a gear and chain drive connected to an axle or by a belt and pulley drive connected to an axle.
(10) In other embodiments, the ATV may be a three wheeled ATV with one wheel and tire assembly in the front and two wheel and tire assemblies in the back. In such embodiments, the electric motor may be rotationally connected to the two wheel and tire assemblies in the back by any number of mechanisms. One preferred mechanism—as shown in
(11) Four wheeled embodiments of ATVs are common with two wheel and tire assemblies in the front and two wheel and tire assemblies in the back. In such embodiments, the electric motor may be rotationally connected to the two wheel and tire assemblies in the back, the two wheel and tire assemblies in the front, or each of the four wheel and tire assemblies. Mechanisms for connecting the electric motor to the wheel and tire assemblies may include an electric motor gearbox which is rotationally connected to a driveshaft which is rotationally connected to a gearbox which is rotationally connected to an axle, a gear and chain drive connected to an axle, or a belt and pulley drive connected to an axle. In embodiments where the electric motor is rotationally connected to each of the four wheel and tire assemblies—there may be two mechanisms—one for connecting the electric motor to the two wheel and tire assemblies in the front and a second for connecting the electric motor to the two wheel and tire assemblies in the back, although the mechanism connecting the electric motor to the two wheel and tire assemblies in the front may share an electric motor gearbox with the mechanism connecting the electric motor to the two wheel and tire assemblies in the back.
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(13) The control module (400) may be electrically connected to, and configured to receive a charge from the primary battery (300) as shown in
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(15) The primary battery (300), is preferably a 72 volt 100 amp lithium battery. The lithium battery may be a lithium ion battery, a lithium polymer battery, or a lithium prismatic battery. While a lithium battery is preferred, other batteries are possible, including lead acid batteries.
(16) The control module (400) draws amperage from the primary battery upon receiving a signal from the throttle device. The control module then passes said amperage to the electric motor. Preferably the amount of amperage transmitted to the electric motor is determined by the amount of user input into the throttle device. The preferred control module is a circuit board.
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(18) As shown in
(19) The transducer (355) may be electrically connected to the primary battery (300) and the secondary battery (350) as shown in
(20) Each device of the at least one device may be electrically connected to, and configured to receive a signal from the secondary battery (350) through the step down converter (310). This signal may be in the form of voltage from the secondary battery when a circuit between the secondary battery is opened, such as by a switch or button.
(21) When the at least one device includes a light (600), the light may be in a variety of locations and may serve a variety of well-known functions. Common lights include at least one headlight, at least one tail light, at least one brake light, at least one turn signal light, at least one daytime running light, and at least one fog light.
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(23) In some embodiments, such as that shown in
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(25) In some embodiments, the pair of opposing tracks (37) may comprise a friction reducing mechanism. One example of a friction reducing mechanism is a bearing, which may be a ball bearing, or a roller bearing. Another example of a friction reducing mechanism is a slide plate. Slide plates may be comprised of a material selected from the group consisting of ultra high molecular weight polyethylene (UHMW) plastics, bronze, powdered metal, and Teflon®.
(26) As shown in
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(29) As shown in
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