POWER FEEDBACK SYSTEM FOR ELECTRIC VEHICLE
20190058350 ยท 2019-02-21
Inventors
Cpc classification
H02J7/163
ELECTRICITY
B60L53/00
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/70
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
Y02T90/14
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
Y02T10/7072
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
International classification
Abstract
The power feedback system for an electric vehicle includes a generator, a charging controller, a battery module, and a current limiting controller. A first wheel of the electric vehicle drives the generator to produce an AC power. The charging controller converts the AC power from the generator into a DC power and delivers the DC power to the battery module. The current limiting controller receives and outputs the DC power in the battery module to a driving motor of the electric vehicle at a preset amperage. The driving motor then drives a second wheel to turn. The first wheel has an axle rotational speed greater than that of the second wheel, and the generator produces a greater current than the preset current of the current limiting controller. As such, the power consumption to the battery module is significantly reduced, greatly enhancing the electric vehicle's travelable distance.
Claims
1. A power feedback system for an electric vehicle, where the electric vehicle has at least a driving motor, at least a first wheel, and at least a second wheel, the first wheel has an axle rotational speed greater than that of the second wheel, and the driving motor is coupled to the second wheel and drives the second wheel to spin, the power feedback system comprising: at least a generator coupled to and driven by the first wheel to produce an AC power; a charging controller electrically connected to the generator and converting the AC power from the generator into a DC power, where the charging controller has a first input terminal and a first output terminal, and the first input terminal is electrically connected to the generator; a battery module electrically connected to the charging controller for storing the DC power output from the charging controller, where the battery module has a second input terminal and a second output terminal, and the second input terminal is electrically connected to the first output terminal of the charging controller; and a current limiting controller electrically connected to the battery module and the driving motor, where the DC power in the battery module is output to the driving motor at a pre-set amperage, the current limiting controller has a third input terminal and a third output terminal, the third input terminal is electrically connected to the battery module's second output terminal, and the third output terminal is electrically connected to the driving motor; wherein, when the electric vehicle is turned on, the driving motor drives the second wheel to spin; as the first wheel turns, the generator is driven to produce the AC power; and, as the first wheel's axle rotational speed is greater than that of the second wheel, the generator produces a current greater than the preset amperage from the current limiting controller.
2. The power feedback system according to claim 1, wherein the driving motor is a hub motor.
3. The power feedback system according to claim 1, wherein the charging controller is a two-way bridge rectifier.
4. A power feedback system for an electric vehicle, where the electric vehicle has at least a driving motor, at least a first wheel, and at least a second wheel, the first wheel has an axle rotational speed greater than that of the second wheel, and the driving motor is coupled to the second wheel and drives the second wheel to spin, the power feedback system comprising: at least a generator coupled to and driven by the first wheel to produce an AC power; a charging controller electrically connected to the generator and converting the AC power from the generator into a second AC power, where the charging controller has a first input terminal and a first output terminal, and the first input terminal is electrically connected to the generator; a battery module electrically connected to the charging controller for storing the second AC power output from the charging controller, where the battery module has a second input terminal and a second output terminal, and the second input terminal is electrically connected to the first output terminal of the charging controller; and a current limiting controller electrically connected to the battery module and the driving motor, where a DC power output from the battery module is delivered to the driving motor at a pre-set amperage by the current limiting controller, the current limiting controller has a third input terminal and a third output terminal, the third input terminal is electrically connected to the battery module's second output terminal, and the third output terminal is electrically connected to the driving motor; wherein, when the electric vehicle is turned on, the driving motor drives the second wheel to spin; as the first wheel turns, the generator is driven to produce the AC power; and, as the first wheel's axle rotational speed is greater than that of the second wheel, the generator produces a current greater than the preset amperage from the current limiting controller.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0011] The following descriptions are exemplary embodiments only, and are not intended to limit the scope, applicability or configuration of the invention in any way. Rather, the following description provides a convenient illustration for implementing exemplary embodiments of the invention. Various changes to the described embodiments may be made in the function and arrangement of the elements described without departing from the scope of the invention as set forth in the appended claims.
[0012] As shown in
[0013] The power feedback system further includes a generator 1, a charging controller 2, a battery module 3, and a current limiting controller 4.
[0014] The generator 1 is coupled to the first wheel 5, and the first wheel 5 drives the generator 1 to produce an AC power.
[0015] The charging controller 2 and the generator 1 are electrically connected together so as to convert the AC power from the generator 1 into a DC power. The charging controller 2 has a first input terminal 21 and a first output terminal 22. The first input terminal 21 is electrically connected to the generator 1 so that the AC power from the generator 1 is delivered to the charging controller 2, and converted by the charging controller 2 into a regulated DC power. The charging controller 2 may be a two-way bridge rectifier.
[0016] The battery module 3 is electrically connected to the charging controller 2 for storing the DC power output from the charging controller 2. The battery module 3 has a second input terminal 31 and a second output terminal 32. The second input terminal 31 is electrically connected to the charging controller 2.
[0017] The current limiting controller 4 is electrically connected to the battery module 3 and the driving motor 7 so that the DC power in the battery module 3 is output to the driving motor 7 at a preset amperage. The current limiting controller 4 has a third input terminal 41 and a third output terminal 42. The third input terminal 41 is electrically connected to the battery module 3's second output terminal 32, and the third output terminal 42 is electrically connected to the driving motor 7.
[0018] Using an electric bike as an example, the present invention operates as follows. The first wheel 5 is the front wheel and the second wheel 6 is the rear wheel of the electric bike. When the electric bike is turned on, the driving motor 7 drives the second wheel 6 to turn. In the meantime, the first wheel 5 also turns and the first wheel 5 drives the generator 1 to produce an AC power. The generator 1 outputs the AC power to the charging controller 2 and the AC power is converted into a DC power. The charging controller 2 outputs the DC power to the battery module 3, and the battery module 3 delivers the DC power to the current limiting controller 4. Finally, the current limiting controller 4 output the DC power at a preset amperage to the driving motor 7. For example, if the driving motor 7 has a driving current at 10 amperes (A), the current limiting controller 4 outputs the DC power at a constant current 10 amperes (A) to the driving motor 7.
[0019] The gist of the present invention lies in that the first wheel 5 has an axle rotational speed greater than that of the second wheel 6. For example, if the second wheel 6's axle rotational speed is 1 RPM, the first wheel 5's axle rotational speed is greater than 1 RPM. Then, the first wheel 5 drives the generator 1 to produce a current greater than the preset constant current from the current limiting controller 4. In other words, the generator 1 produces a greater current than what is consumed by the driving motor 7. As such, the power consumption to the battery module 3 is significantly reduced or even almost no consumption at all, greatly enhancing the electric vehicle's travelable distance.
[0020] In an alternative embodiment, the charging controller 2 outputs an AC power and the battery module 3 is chargeable by an AC power. When the electric vehicle is turned on, the driving motor 7 drives the second wheel 6 to turn. In the meantime, the first wheel 5 also turns and the first wheel 5 drives the generator 1 to produce an AC power. The generator 1 outputs the AC power to the charging controller 2. The charging controller 2 outputs an AC power to the battery module 3, and the battery module 3 delivers a DC power to the current limiting controller 4. Finally, the current limiting controller 4 output the DC power at a preset amperage to the driving motor 7. For example, if the driving motor 7 has a driving current at 10 amperes (A), the current limiting controller 4 outputs the DC power at a constant current 10 amperes (A) to the driving motor 7.
[0021] While certain novel features of this invention have been shown and described and are pointed out in the annexed claim, it is not intended to be limited to the details above, since it will be understood that various omissions, modifications, substitutions and changes in the forms and details of the device illustrated and in its operation can be made by those skilled in the art without departing in any way from the claims of the present invention.