Foldable and portable electric vehicle
09567034 ยท 2017-02-14
Assignee
Inventors
Cpc classification
B62K21/16
PERFORMING OPERATIONS; TRANSPORTING
B62K15/008
PERFORMING OPERATIONS; TRANSPORTING
B62M6/45
PERFORMING OPERATIONS; TRANSPORTING
B62K25/005
PERFORMING OPERATIONS; TRANSPORTING
B62M6/65
PERFORMING OPERATIONS; TRANSPORTING
Y10T74/20792
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B62K11/14
PERFORMING OPERATIONS; TRANSPORTING
B62K3/002
PERFORMING OPERATIONS; TRANSPORTING
International classification
B62K15/00
PERFORMING OPERATIONS; TRANSPORTING
B62K11/14
PERFORMING OPERATIONS; TRANSPORTING
B62M6/65
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A foldable and portable electric vehicle for the transport of a single person comprises a foldable chassis with a support plate, a folding system for folding the chassis, a front driving wheel, a rear wheel, a foldable handlebar, an integrated system of command, control, monitoring and signaling, a mechanical brake on the rear wheel, a suspension on the rear wheel and a suspension on the front wheel, and a steering column.
Claims
1. A foldable and portable electric vehicle comprising: a folding chassis with a support plate; a folding system for the chassis; a driving wheel in the front of the vehicle; a rear wheel in the rear of the vehicle; foldable handlebars; an integrated command, control, monitoring and signaling system; a mechanical brake on the rear wheel; a rear wheel suspension for the rear wheel of the vehicle; a front wheel suspension for the front wheel of the vehicle; and a steering column for the vehicle.
2. A foldable and portable electric vehicle according to claim 1 wherein vehicle dimensions are reduced for storage or transport by having each of the handlebars comprise: a first planar rotation body fixed to the steering column by a first pin; a second planar rotation body around a second pin; and a handlebar pipe being slidably mounted on the first planar rotation body and on the second planar rotation body and being provided with a rubber sleeve so that when a release bolt is pushed, there is allowance for the handlebar pipe to slide outwardly in the direction of a tensioning spring and turning the handlebar vertically at an angle of 90 to ensure stability of the handlebars in the folded position.
3. A foldable and portable electric vehicle according to claim 2, wherein the folding system of the chassis comprises a lever which rotates around a second bolt to train a third bolt under the action of a traction spring, unlocking two components of the folding chassis that can be rotated to achieve its folding, whereby vehicle dimensions are reduced for storage or transport.
4. A foldable and portable electric vehicle according to claim 3, wherein folding is initiated in a first stage of a folding process, the handlebars are folded in a second stage, the chassis is folded in a third stage, and the folding process is ended in a fourth stage.
5. A foldable and portable electric vehicle according to claim 2, wherein folding is initiated in a first stage of a folding process, the handlebars are folded in a second stage, the chassis is folded in a third stage, and the folding process is ended in a fourth stage, and wherein said vehicle further comprises a power circuit for supplying power to a DC brushless motor from an accumulator when the electric vehicle is accelerating or when the electric vehicle is braking, with the same motor working as a generator, and power is sent to charge the accumulator.
6. A foldable and portable electric vehicle according to claim 2, wherein folding is initiated in a first stage of a folding process, the handlebars are folded in a second stage, the chassis is folded in a third stage, and the folding process is ended in a fourth stage.
7. A foldable and portable electric vehicle according to claim 1, wherein folding is initiated in a first stage of a folding process, the handlebars are folded in a second stage, the chassis is folded in a third stage, and the folding process is ended in a fourth stage.
8. A foldable and portable electric vehicle according to claim 7, wherein the driving wheel works as a brushless electric machine that operates as a DC electric motor during acceleration or as an electric generator during deceleration and whose tubular shaft is fixed to the chassis and whose outside is fitted with a rubber tire.
9. A foldable and portable electric vehicle according to claim 1, wherein the driving wheel works as a brushless electric machine that operates as a DC electric motor during acceleration or as an electric generator during deceleration, and whose tubular shaft is fixed to the chassis and whose outside is fitted with a rubber tire.
10. A method for operating a foldable and portable electric vehicle according to claim 1, wherein the method comprises in a first stage, initiating a process, in a second stage, reading the status of hard equipment, in a third stage, checking the status of the hard equipment, in a fourth stage, displaying battery charging status and current speed and time, in a fifth stage, pressing an acceleration throttle, in a sixth stage, checking vehicle starting, in a seventh stage, checking for need of a braking throttle, in an eighth stage, pressing a brake throttle, in a ninth stage, checking for a stopped vehicle, in a tenth stage, continuing braking, in an eleventh stage, checking for an emergency stop, in a twelfth stage, pushing an emergency brake, and in a thirteenth stage, stopping the electric vehicle.
11. A foldable and portable electric vehicle according to claim 1, wherein the foldable and portable electric vehicle provides integrated command, control, monitoring and signaling.
12. A foldable and portable electric vehicle according to claim 1, wherein the integrated command, control, monitoring and signaling system further comprises a display control unit mounted in a housing with an acceleration throttle, a braking throttle, a board containing an on/off button, a button for lights, a button for setting a clock, a headlight with low power consumption, a horn, a button for the horn, and a control unit which communicates with a main board that contains a microcontroller, sensors and a power circuit for supplying power to a DC brushless motor from an accumulator when the electric vehicle is accelerating or when the electric vehicle is braking, the same motor working as a generator, whereby power is sent to charge the accumulator.
13. A foldable and portable electric vehicle comprising: a folding chassis with a support plate; a driving wheel in front of the vehicle, wherein the driving wheel works as a brushless electric machine that operates as a DC electric motor during acceleration or as an electric generator during deceleration, and whose tubular shaft is fixed to the chassis and whose outside is fitted with a rubber tire; a rear wheel in the rear of the vehicle; an integrated command, control, monitoring and signaling system which includes a display control unit mounted in a housing with an acceleration throttle, a braking throttle, a board containing an on/off button, a button for lights, a horn, a button for the horn, a button for setting a clock, a headlight with low power consumption, a control unit which communicates with a main board that contains a microcontroller, sensors and a power circuit for supplying power to the DC brushless motor from an accumulator when the electric vehicle is accelerating or during the braking operation, the same motor working as a generator, and power is sent to charge the accumulator; a mechanical brake on the rear wheel; a rear wheel suspension for the rear wheel of the vehicle; a front wheel suspension for the front wheel of the vehicle; a steering column; foldable handlebars, wherein vehicle dimensions are reduced for storage or transport, each foldable handlebar comprising: a first planar rotation body fixed to the steering column by a first pin; and a second planar rotation body around a second pin; a handlebar pipe being slidably mounted on the first planar rotation body and on the second planar rotation body and being provided with a rubber sleeve so that when a release bolt is pushed, there is allowance for the handlebar pipe to slide outwardly in the direction of a tensioning spring and turning the handlebar vertically at an angle of 90 to ensure stability of the handlebar in the folded position; and a folding system for the chassis, wherein the folding system of the chassis comprises a lever which rotates around a second bolt to train a third bolt under the action of a traction spring, unlocking two components of the folding chassis that can be rotated to achieve its folding, whereby vehicle dimensions are reduced for storage or transport, and wherein folding is initiated in a first stage of a folding process, the handlebars are folded in a second stage, the chassis is folded in a third stage, and the folding process is completed in a fourth stage.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention is further described in the detailed description which follows, with reference to the noted plurality of drawings by way of non-limiting examples of embodiments of the present invention, in which like reference numerals represent similar parts throughout the several views of the drawings, and wherein:
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DETAILED DESCRIPTION OF THE PRESENT INVENTION
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(18) One embodiment of the present invention is directed to an electric vehicle for transporting a person, including a chassis; a folding system for the chassis; a front drive wheel, a rear wheel including an appropriate tire, foldable handlebars; an integrated command control, monitoring and signaling system; a mechanical brake located on the rear wheel; a rear wheel suspension for the rear wheel of the vehicle; a front wheel suspension for the front wheel of the vehicle; and a steering column for the vehicle.
(19) According to another aspect of the invention, vehicle dimensions are reduced for storage or transport by having each of the handlebars include a first planar rotation body fixed to the steering column by a first slidably mounted pin; a second planar rotation body around the second pin, a handlebar pipe being slidably mounted on the first planar rotation body and on the second planar rotation body and being provided with a rubber sleeve so that when a release bolt is pushed, there is allowance for the handlebar pipe to slide outwardly in the direction of a tensioning spring and, turning the handlebar vertically at an angle of 90, to ensure stability of the handlebars in the folded position.
(20) According to yet another aspect of the invention, a folding system 2 of chassis 1 includes a lever which rotates around the first bolt to train a third bolt under the action of a traction spring, unlocking the two components of the chassis that can be rotated to achieve its folding, whereby vehicle dimensions are reduced for storage or transport.
(21) Further yet, in a first stage of a folding process, folding is initiated. In a second stage of the folding process, the handlebars are folded. In a third stage, the chassis is folded, and the folding process is completed in a fourth stage.
(22) According to the invention, the integrated command control, monitoring and signaling system increases electric vehicle reliability by way of a display control unit mounted in a housing with an acceleration throttle, a braking throttle, a board containing an on/off button, a button for a light, a button for setting a clock, a headlight with low power consumption, a horn, a button for the horn, and a control unit which communicates with a main board that contains a microcontroller, sensors and a power circuit for supplying power to a DC brushless motor from an accumulator when the electric vehicle is accelerating or, when the electric vehicle is braking, the same motor working as a generator, whereby power is sent to charge the accumulator.
(23) Furthermore, the driving wheel is built like a brushless electric machine that operates as a DC electric motor during acceleration, or as an electric generator during deceleration, and a tubular shaft is fixed to the chassis and the outside of the shaft is fitted with a rubber tire.
(24) According to another aspect of the invention, a method for operating an electric vehicle according to the present invention comprises in a first stage, initiating the process, in a second stage, reading the status of the hard equipment, in a third stage, checking the status of the equipment, in a fourth stage, displaying the battery charging status and current speed and time, in a fifth stage, pressing the acceleration throttle, in a sixth stage, checking for vehicle starting, in a seventh stage, checking the braking throttle, in an eighth stage, pressing the brake throttle, in a ninth stage, checking for a stopped vehicle, in a tenth stage, continuing braking, in an eleventh stage, checking for an emergency stop, in a twelfth stage, pushing the emergency brake, and in a thirteenth stage, stopping the electric vehicle.
(25) According to yet another aspect of the invention, the electric vehicle of the present invention comprises a folding chassis with a support plate, a folding system for the chassis, a front driving wheel with a tubular shaft fixed to the chassis and which is fitted with a rubber tire, the front driving wheel operating as a brushless DC electric motor during an acceleration operation or as a generator during a deceleration operation, a rear wheel, a foldable handlebar, an integrated command, control, monitoring and signaling system, a mechanical brake on the rear wheel, a rear wheel suspension, a front wheel suspension, and a steering column. The vehicle provides an integrated command control, monitoring and signaling system to increase electric vehicle reliability which includes a display control unit mounted in a housing with an acceleration throttle, a braking throttle, a board containing an on/off button, a button for lights, a horn, a button for a horn, a button for setting a clock, a headlight with low power consumption, and a control unit which communicates with a main board that contains a microcontroller, sensors and a power circuit for supplying power from an accumulator to the front wheel. There is further included a DC brushless motor when the electric vehicle is accelerating, or during a braking operation, the same motor works as a generator, and power is sent to charge the accumulator.
(26) The particulars shown herein are by way of example and for purposes of illustrative discussion of the embodiments of the present invention only and are presented in the cause of providing what is believed to be the most useful and readily understood description of the principles and conceptual aspects of the present invention. In this regard, no attempt is made to show structural details of the present invention in more detail than is necessary for the fundamental understanding of the present invention, the description taken with the drawings making apparent to those skilled in the art how the several forms of the present invention may be embodied in practice.
(27) It is noted that the foregoing examples have been provided merely for the purpose of explanation and are in no way to be construed as limiting of the present invention.
(28) While the present invention has been described with reference to an exemplary embodiment, it is understood that the words which have been used herein are words of description and illustration, rather than words of limitation. Changes may be made, within the purview of the appended claims, as presently stated and as amended, without departing from the scope and spirit of the present invention in its aspects. Although the present invention has been described herein with reference to particular means, materials and embodiments, the present invention is not intended to be limited to the particulars disclosed herein; rather, the present invention extends to all functionally equivalent structures, methods and uses, such as are within the scope of the appended claims.