Development of a Bike-Sharing System Based on Pedal-Assisted Electric Bicycles for Bogota City
Abstract
:1. Introduction
- A long-standing industry and experience in electric motors (e.g., Siemens), metalworking and machining.
- Numerous companies dedicated to the design and manufacture of bicycles.
- A deep-rooted culture of bicycle use.
- How should be a public transport system based on shared electric bicycles be implemented so that it is sustainable, safe and appropriate to the characteristics of the bike-users of Bogota City?
1.1. Pedaling Assistance Systems for Electric Bicycles
1.2. Electric Motors and Powertrain Systems for E-Bikes
1.3. Energy Accumulators and Batteries for E-Bikes and Their Charging Systems
1.4. IoT and E-Bikes Sharing Systems
2. Related Work
2.1. Information and Communications Technologies for Bike-Sharing Systems
2.1.1. Transportation and Mobile Apps
2.1.2. Bike-Sharing Systems and Data Mining
2.2. Charging Systems for Electric Bicycles
2.3. Electric Bicycles in Colombia and Latest Developments Worldwide
2.3.1. Colombia
2.3.2. Worldwide
3. Electronic Design and Development of an E-Bike-Sharing System for Bogota City
3.1. System Overview
3.2. Embedded System for Bike-Users’ Characterization
3.2.1. Custom-Made On-Board Computer OBC
3.2.2. Processing Software
3.3. BLDC Based Motor Propulsion System for an Electric Bicycle
3.3.1. Control Strategy
- The currents of each of the three phases in the stators are measured. These are transformed from the static three-phase reference frame to the static two-phase reference frame, in which it passes from having three variables to two, the parameters α, β being from the Clarke transform.
- From this reference frame, the next step is to move to the rotating two-phase reference frame by means of the Park transform, leaving two variables d, q. These two variables are controlled.
- The next step is to perform the Park and Clarke inverse transforms remaining in the frame of the static three-phase reference; these are used for pulse-width SVM (space vector modulation) or SVPWM (space-vector pulse-width modulation).
3.3.2. Motor Torque Control
3.3.3. Motor Control Implementation Details
3.4. Charging Station for E-Bike Sharing Systems
3.4.1. Solar Panels
3.4.2. Solar Charge Controller and Inverter
3.4.3. Stationary Batteries
4. Results
4.1. Embedded System for Bike-Users Characterization
4.1.1. Cyclist Power Estimation
4.1.2. E-Bike Battery Power Measurement
4.1.3. E-Bike User’s Power profiles
4.2. BLDC Motor-Based Propulsion System for an E-Bike
4.2.1. Experimental Results
4.2.2. BLY342S-48V-3200 MOTOR
4.2.3. MTO 5065-170-HA-C MOTOR
4.3. Charging Station for E-Bike Sharing Systems
5. Discussion
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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(t) | (2) | |
(t) | (3) | |
(t) | (4) | |
(t) | (5) | |
(t) | (6) |
Symbol | Description | Value |
---|---|---|
Air density | 0.8962 kg/m3 | |
Drag coefficient | 1 | |
Frontal area (bike and cyclist) | 0.504 m2 | |
Coefficient of rolling resistance | 0.0032 | |
Gravitational acceleration | 9.81 m/s2 | |
1st coefficient of wheel bearing | 0.091 N | |
2nd coefficient of wheel bearing | 0.0087 N s/m | |
Wheel moment of inertia | 0.14 kg m2 | |
Power measurement period | 1 s | |
Bicycle velocity relative to air | 0 m/s2 |
Symbol | Description | Sensor—Method |
---|---|---|
Bicycle ground velocity | Reed switch sensor (m/s) | |
Road—gravity vector angle | GPS unit output based (°) | |
Bike and cyclist mass | Body and hanging scales (kg) | |
Wheel radius | Class 2 tape measure (m) | |
Bicycle linear acceleration | value based computation (m/s2) |
Motor Reference | Motor Model Parameters | Controller Constants | ||
---|---|---|---|---|
Rs (Ω) | Ls (μH) | Ki | Kp | |
BLY342S-48V-3200 | 0.197 | 521.49 | ||
MTO 5065-170-HA-C | 0.091 | 50.80 |
Perturbed Parameter | Settling Time (s) |
---|---|
Motor load | 0.3 |
Frequency | 0.2 |
Reference amplitude | 0.15 |
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Florez, D.; Carrillo, H.; Gonzalez, R.; Herrera, M.; Hurtado-Velasco, R.; Cano, M.; Roa, S.; Manrique, T. Development of a Bike-Sharing System Based on Pedal-Assisted Electric Bicycles for Bogota City. Electronics 2018, 7, 337. https://doi.org/10.3390/electronics7110337
Florez D, Carrillo H, Gonzalez R, Herrera M, Hurtado-Velasco R, Cano M, Roa S, Manrique T. Development of a Bike-Sharing System Based on Pedal-Assisted Electric Bicycles for Bogota City. Electronics. 2018; 7(11):337. https://doi.org/10.3390/electronics7110337
Chicago/Turabian StyleFlorez, David, Henry Carrillo, Ricardo Gonzalez, Max Herrera, Ronald Hurtado-Velasco, Martha Cano, Sergio Roa, and Tatiana Manrique. 2018. "Development of a Bike-Sharing System Based on Pedal-Assisted Electric Bicycles for Bogota City" Electronics 7, no. 11: 337. https://doi.org/10.3390/electronics7110337
APA StyleFlorez, D., Carrillo, H., Gonzalez, R., Herrera, M., Hurtado-Velasco, R., Cano, M., Roa, S., & Manrique, T. (2018). Development of a Bike-Sharing System Based on Pedal-Assisted Electric Bicycles for Bogota City. Electronics, 7(11), 337. https://doi.org/10.3390/electronics7110337