CONTROL SYSTEM FOR ELECTRIC BICYCLES
20180326868 ยท 2018-11-15
Inventors
Cpc classification
Y02T90/16
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
H04W4/80
ELECTRICITY
Y02T10/72
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
B62M6/45
PERFORMING OPERATIONS; TRANSPORTING
B60L50/20
PERFORMING OPERATIONS; TRANSPORTING
B62J43/13
PERFORMING OPERATIONS; TRANSPORTING
B60L58/10
PERFORMING OPERATIONS; TRANSPORTING
B62J45/20
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/64
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
Y02T10/70
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
B60L15/20
PERFORMING OPERATIONS; TRANSPORTING
B62M6/65
PERFORMING OPERATIONS; TRANSPORTING
B62J45/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60L15/20
PERFORMING OPERATIONS; TRANSPORTING
B62J99/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A control system includes a bicycle includes a crank, a motor and a battery which provides power to the motor. An acceleration detector is connected to the bicycle and detects the riding acceleration speed of the bicycle. A torque detector is connected to the bicycle and consistently detects treading of the crank and generates multiple instant treading torque values. A controller is connected to the bicycle and electrically connected to the motor, the battery, the acceleration detector and the torque detector, and receives the riding acceleration speed, the treading acceleration speed and the instant treading torque values so as to control output of the motor and the battery instantly.
Claims
1. A control system comprising: a bicycle (1) having a crank (11), a motor (12) and a battery (13) which provides power to the motor (12); an acceleration detector (14) connected to the bicycle (1) and detecting a riding acceleration speed (141) of the bicycle (1), and a treading acceleration speed (142) from the crank (11) of the bicycle (1); a torque detector (15) connected to the bicycle (1) and consistently detecting treading of the crank (11) and generating multiple instant treading torque values (151), and a controller (2) connected to the bicycle (1 and electrically connected to the motor (12), the battery, the acceleration detector (14) and the torque detector (15), the controller (2) receiving the riding acceleration speed (141), the treading acceleration speed (142) and the instant treading torque values (151), and sending adjustment signals to the motor (12) and the battery (13) to control output of the motor (12) and the battery (13), when the treading acceleration speed (142) is higher than the riding acceleration speed (141), the controller (2) judges that resistance to the bicycle (1) is increased so that the output of the motor (12) and the battery (13) is increased, when the treading acceleration speed (142) is lower than the riding acceleration speed (141), the controller (2) judges that resistance to the bicycle (1) is reduced so that the output of the motor (12) and the battery (13) is reduced, when the treading acceleration speed (142) is lower than the riding acceleration speed (141), and the instant treading torque values (151) increase, the controller (2) increases the output of the motor (12) and the battery (13).
2. The control system as claimed in claim 1, wherein the controller (2) compares one of the instant treading torque values (151) with a previous one of the instant treading torque values (151) to judge that the whether the instant treading torque values (151) increase or not.
3. The control system as claimed in claim 1, wherein the torque detector (15) is connected to pedals of the crank (11) of the bicycle (1).
4. The control system as claimed in claim 1, wherein the controller (2) includes a pre-set torque value (21), when the treading acceleration speed (142) is lower than the riding acceleration speed (141), and the instant treading torque values (151) are higher than the pre-set torque value (21), the controller (2) increases the output of the motor (12) and the battery (13).
5. A control system comprising: a bicycle (1) having a crank (11), a motor (12) and a battery which provides power to the motor 12); a smart phone (140) having an acceleration detector (14) installed therein, the smart phone (140) installed to the bicycle (1), the acceleration detector (14) detecting a riding acceleration speed (141) of the bicycle (1), and a treading acceleration speed (142) from the crank (11) of the bicycle (1); a torque detector (15) connected to the bicycle (1) and consistently detecting treading of the crank (11) and generating multiple instant treading torque values (151), and a controller (2) connected to the bicycle (1) and electrically connected to the motor (12), the battery (13) and the torque detector (15), the controller (2) receiving the instant treading torque values (151), the controller (2) having a blue-tooth device for sending signals to the smart phone (140) by way of wire-less, the riding acceleration speed (141) and the treading acceleration speed (142) detected by the acceleration detector (14) of the smart phone (140) being sent to the controller (2) by the blue-tooth device, the controller (2) sending adjustment signals to the motor (12) and the battery (13) to control output of the motor (12) and the battery (13), when the treading acceleration speed (142) is higher than the riding acceleration speed (141), the controller (2) judges that resistance to the bicycle (1) is increased so that the output of the motor (12) and the battery (13) is increased, when the treading acceleration speed (142) is lower than the riding acceleration speed (141), the controller (2) judges that resistance to the bicycle (1) is reduced so that the output of the motor (12) and the battery (13) is reduced, when the treading acceleration speed (142) is lower than the riding acceleration speed (141), and the instant treading torque values (151) increase, the controller (2) increases the output of the motor (12) and the battery (13).
6. The control system as claimed in claim 5, wherein the torque detector (15) is connected to pedals of the crank (11) of the bicycle (1), the controller (2) compares one of the instant treading torque values (151) with a previous one of the instant treading torque values (151) to judge that the whether the instant treading torque values (151) increase or not.
7. The control system as claimed in claim 5, wherein the controller (2) includes a pre-set torque value (21), when the treading acceleration speed (142) is lower than the riding acceleration speed (141), and the instant treading torque values (151) are higher than the pre-set torque value (21), the controller (2) increases the output of the motor (12) and the battery (13).
8. A control system comprising: a bicycle (1) having a crank (11), a motor (12) and a battery which provides power to the motor (12); a smart phone (140) having an acceleration detector (14) installed therein, the smart phone (140) installed to the bicycle (1), the acceleration detector (14) detecting a riding acceleration speed (141) of the bicycle (1), and a treading acceleration speed (142) from the crank (11) of the bicycle (1), and a controller (2) connected to the bicycle (1) and electrically connected to the motor (12) and the battery (13), the controller (2) having a blue-tooth device for sending signals to the smart phone (140) by way of wire-less, the riding acceleration speed (141) and the treading acceleration speed (142) detected by the acceleration detector (14) of the smart phone (140) being sent to the controller (2) by the blue-tooth device, the controller (2) sending adjustment signals to the motor (12) and the battery (13) to control output of the motor (12) and the battery (13), when the treading acceleration speed (142) is higher than the riding acceleration speed (141), the controller (2) judges that resistance to the bicycle (1) is increased so that the output of the motor (12) and the battery (13) is increased, when the treading acceleration speed (142) is lower than the riding acceleration speed (141), the controller (2) judges that resistance to the bicycle (1) is reduced so that the output of the motor (12) and the battery (13) is reduced.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
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[0021]
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0027] Referring to
[0028] When the treading acceleration speed 142 is higher than the riding acceleration speed 141, the controller 2 judges that resistance to the bicycle 1 is increased so that the output of the motor 12 and the battery 13 is increased. When the treading acceleration speed 142 is lower than the riding acceleration speed 141, the controller 2 judges that resistance to the bicycle 1 is reduced so that the output of the motor 12 and the battery 13 is reduced. When the treading acceleration speed 142 is lower than the riding acceleration speed 141, and the instant treading torque values 151 increase, the controller 2 increases the output of the motor 12 and the battery 13.
[0029] Specifically, to judge that the instant treading torque values 151 increases along with time passes, the controller 2 compares one of the instant treading torque values 151 with a previous one of the instant treading torque values 151 to judge that the whether the instant treading torque values 151 increase or not. The torque detector 15 is connected to pedals of the crank 11 of the bicycle 1.
[0030] The work for the force applied to the bicycle 1 to overcome resistance so as to move the bicycle 1 forward equal to the product of force (F) and velocity (v), wherein the (F) includes the treading force, the initial force and the force from the motor 12. The treading force and the force from the motor 12 have inverse proportional relationship. When the user treads the crank 11 along the direction of the solid arrow head to move the bicycle 1 along the direction of the hollow arrow head (Y-axis). The acceleration detector 14 detects a treading acceleration speed 142 in the direction of Y-axis as shown in
[0031] The acceleration detector 14 detects the component in ZY direction and the component in ZX direction of the treading acceleration speed 142, such that the controller 2 responds to the weight of the user and the road condition to adjust the response of the motor 12 and the battery 43. When the treading acceleration speed 142 is higher than the riding acceleration speed 141, the controller 2 judges that resistance to the bicycle 1 is increased so that the output of the motor 12 and the battery 13 is increased to assist the user to tread the bicycle 1 easily.
[0032] When the treading acceleration speed 142 is lower than the riding acceleration speed 141, the controller 2 judges that resistance to the bicycle 1 is reduced so that the output of the motor 12 and the battery 13 is reduced. This balances the output of the battery 13 and prolong the life of use of the battery 13. When the bicycle 1 is operated along a downhill road, due to the initial force so that the treading action is reduced, and the torque detector 15 detects the change, the output of the motor 12 and the battery 13 is reduced to save energy.
[0033] When the treading acceleration speed 142 is lower than the riding acceleration speed 141, and the instant treading torque values 151 increase, the controller 2 increases the output of the motor 12 and the battery 13. This feature makes the bicycle 1 to instantly respond the situation and allows the user to operate the bicycle 1 easily.
[0034] As shown in
[0035] As shown in
[0036] When the treading acceleration speed 142 is higher than the riding acceleration speed 141, the controller 2 judges that resistance to the bicycle 1 is increased so that the output of the motor 12 and the battery 13 is increased. When the treading acceleration speed 142 is lower than the riding acceleration speed 141, the controller 2 judges that resistance to the bicycle 1 is reduced so that the output of the motor 12 and the battery 13 is reduced. When the treading acceleration speed 142 is lower than the riding acceleration speed 141, and the instant treading torque values 151 increase, the controller 2 increases the output of the motor 12 and the battery 13.
[0037] The torque detector 15 is connected to pedals of the crank 11 of the bicycle 1. The controller 2 compares one of the instant treading torque values 151 with a previous one of the instant treading torque values 151 to judge that the whether the instant treading torque values 151 increase or not.
[0038] As shown in
[0039] As shown in
[0040] When the treading acceleration speed 142 is higher than the riding acceleration speed 141, the controller 2 judges that resistance to the bicycle 1 is increased so that the output of the motor 12 and the battery 13 is increased. When the treading acceleration speed 142 is lower than the riding acceleration speed 141, the controller 2 judges that resistance to the bicycle 1 is reduced so that the output of the motor 12 and the battery 13 is reduced.
[0041] While we have shown and described the embodiment in accordance with the present invention, it should be clear to those skilled in the art that further embodiments may be made without departing from the scope of the present invention.