| Literature DB >> 36008578 |
Abstract
Analyzing of the energy consumption (EC) in bus operation is important for reducing operating costs, improving sustainable solutions and creating environmentally friendly cities. The purpose of this paper is to identify the factors, such as passenger load, speed and acceleration, that affect significantly EC in bus operation. This paper builds a simulation framework for describing the level of energy based on the vehicle-engine combined (VEC) EC model. On the basis of the relationship between engine torque, power, traction and EC, the simulation framework mainly includes the road model, vehicle model, engine model and driver strategy. Furthermore, the correlations between energy consumption, passenger load, vehicle speed and acceleration are analyzed in different station spacing. The results show that the passenger load has a significant impact on EC of buses, and is related to the vehicle's speed and acceleration. Generally, the higher the maximum driving speed, the higher the EC of the bus. Acceleration strategies and maximum speed limits are critical factors determining the EC of bus for a certain passenger load and station spacing. For the same station spacing and maximum driving speed, the acceleration phase is under a greater contribution to the increase of EC. In addition, the greater the maximum speed limit or the acceleration, the greater the contribution percentage of EC increase in the acceleration phase. The simulation framework based on vehicle-engine combined EC model and specific fuel consumption maps can obtain the operating EC of buses for situations with different station spacing and maximum speed, which is conducive to vehicle operation EC analysis. Acceleration strategies and maximum speed limits are critical factors determining the EC of bus for a certain passenger load and station spacing. Therefore, energy savings can be obtained by optimizing the driving strategy.Entities:
Year: 2022 PMID: 36008578 PMCID: PMC9411194 DOI: 10.1038/s41598-022-18866-6
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.996
Figure 1The simulation framework based on VEC model.
Main parameters.
| Parameters | Description | Parameters | Description |
|---|---|---|---|
| The driving force of the vehicle (N) | The torque (N·m) | ||
| The total rolling resistance of all the wheels (N) | The engine rotating speed (r/min) | ||
| The air resistance (N) | The propulsion power required by the driving wheels (kW) | ||
| The grade resistance (N) | The acceleration of vehicle, (m/s2) | ||
| The acceleration resistance (N) | The mechanical efficiency | ||
| The additional rolling resistance (N) | |||
| The road slope angle | |||
| The total mass of the vehicle (kg) | |||
| The rolling resistance coefficient of the tires | |||
| The wheelbase of the vehicle (mm) | The EC rate of a vehicle (g/sec) | ||
| The distance of the mass center from the front axle (mm) | The specific EC (g/(kW·h)) | ||
| The frontal area of the bus (m2) | The road adhesion coefficient | ||
| The drag coefficient of the air | The torque (N·m) | ||
| The driving speed (km/h) | The engine rotating speed (r/min) | ||
| The speed ratio of gearbox for each gear, ( | The propulsion power required by the driving wheels (kW) | ||
| The driving axle | The driving force in the highest gear (N) | ||
| The dynamic rolling radius (m) | The normal reaction force of the driving wheels (N) |
Figure 2The forces that affect the vehicle during motion.
Figure 3The performance map for WP7.270.
Main parameters of the test vehicle.
| Description | Value |
|---|---|
| curb weight (kg) | 11,200 |
| Gross vehicle weight (Kg) | 17,600 |
| Number of seats(persons) | 37 |
| Rated passenger capacity s(persons) | 98 |
| Front surface area | 7.78 |
| Overall dimensions( | 11,980 × 2550 × 3050 |
| Tyre size | 275/70R22.5 |
| 5.82, 3.23, 1.96, 1.26, 1.00 | |
| 5.571 | |
| 0.9 | |
| wheelbase of the vehicle (mm) | 5900 |
| distance of the mass center from the front axle (mm) | Full load:3848 |
| Empty: 4143 |
The feasible speed range of each gear.
| Gear | Speed range of Engine (rpm) | fEasible speed range (Km/h) | |
|---|---|---|---|
| 1 | 5.82 | 800–2400 | 4.33–12.98 |
| 2 | 3.23 | 800–2400 | 7.79–23.38 |
| 3 | 1.96 | 800–2400 | 12.84–38.53 |
| 4 | 1.26 | 800–2400 | 19.98–59.94 |
| 5 | 1 | 800–2400 | 25.17–75.52 |
Figure 4The EC of empty buses with different station spacings and maximum speeds.
Figure 5The lowest EC with different station spacings under different acceleration strategies.
Figure 6Contrastive analysis of EC under different acceleration strategies, station spacings and maximum speeds.
Analysis of EC in acceleration phase.
| EC (g) | Acceleration distance (m) | |||||
|---|---|---|---|---|---|---|
| 30 | 41.471 | 36.069 | 34.366 | 86.806 | 57.87 | 43.403 |
| 35 | 55.26 | 48.217 | 45.854 | 118.152 | 78.768 | 59.076 |
| 40 | 69.871 | 61.486 | 58.607 | 154.321 | 102.881 | 77.16 |
| 45 | 86.778 | 76.769 | 73.289 | 195.313 | 130.208 | 97.656 |
| 50 | 106.104 | 94.281 | 90.203 | 241.127 | 160.751 | 120.563 |
| 55 | 128.159 | 114.123 | 109.665 | 291.763 | 194.509 | 146.375 |
| 60 | 151.886 | 135.945 | 132.156 | 347.222 | 231.481 | 188.161 |
Figure 7The EC of different passenger load, acceleration and maximum speed for 400 m station spacing.
Figure 8The EC of different passenger load, acceleration and maximum speed for 600 m station spacing.
Figure 9The EC of different passenger load, acceleration and maximum speed for 800 m station spacing.
Figure 10The EC of different passenger load, acceleration and maximum speed for 1000 m station spacing.
Figure 11The EC of different passenger load, acceleration and maximum speed for 1200 m station spacing.
Figure 12The EC of different passenger load, acceleration and maximum speed for 1500 m station spacing.
Figure 13The analysis of EC in acceleration phase.
Figure 14Analysis of the contribution percentage of EC increase in the acceleration phase at .
Figure 15Analysis of the contribution percentage of EC increase in the acceleration phase at .
Figure 16Analysis of the contribution percentage of EC increase in the acceleration phase at .
Figure 17The EC of different passenger load and maximum speed for different station spacings.