The Development of Strategies to Reduce Exhaust Emissions from Passenger Cars in Rzeszow City—Poland. A Preliminary Assessment of the Results Produced by the Increase of E-Fleet
Abstract
:1. Introduction
- variation of the functional geometric scheme with the proposed implementation of a turbo-roundabout.
- evaluation of a scenario with an increase in electric vehicle traffic with the same current geometry.
2. Case Study Description: Basic Characteristics and Design Elements
2.1. Turbo Roundabout Scheme Proposal
2.2. Actual and Future E-Traffic Composition in Poland
3. Methodology
4. Results and Discussion
Pollutant Impact Mitigation
- respiratory problems,
- pneumonia,
- increased consumption of drugs,
- increased number of deaths,
- increased number of hospitalizations,
- unfavorable changes in the circulatory system.
- increased number of chronic symptoms of diseases of the upper respiratory tract,
- decreased respiratory function of the lungs in children,
- decreased respiratory function of the lungs in adults,
- decrease life expectancy.
5. Conclusions
- the results of PM10 concentration from motor vehicles depend on the air quality for the ambient background, which is influenced by for example, wind force,
- it is possible to improve air quality for the area of roundabouts and reduce PM10 higher concentration points from 4 to 2 by applying newer infrastructure solutions such as turbo roundabouts,
- a significant improvement in air quality is possible if we replace diesel engines with fully electric cars; especially on inlet and outlet roads of roundabouts, it can lead to reducing of PM10 concentration by about 30%, and
- the preparation of concentration maps and their analysis in relation to various solutions would allow for a better location of pedestrian crossings and minimize the harmfulness of exhaust gases to the health of pedestrians.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Scenario | Road Scheme | Traffic Composition | Emission Source |
---|---|---|---|
0 | two-lane roundabout | 80% light vehicle (fuel engine); 10% heavy vehicle; 10% buses | direct acquisition + simulation |
1 | turbo roundabout | 80% light vehicle (fuel engine); 10% heavy vehicle; 10% buses | simulation |
2 | two-lane roundabout | 55% light vehicle (fuel engine) + 25% e-vehicle; 10% heavy vehicle; 10% buses | simulation |
Mass of PM Concentration | Particulate Number PN | Measurement of Ambient Temperature and Relative Humidity |
---|---|---|
Channels: PM2.5/PM10 | Channels: 0.3; 0.5; 1.0; 2.5; 5.0; 10 µm | Temperature measuring range: 0–50 °C |
Mass concentration range: 0-2000 µg/m3 | Flow: 0.1 ft3 (2.83l/min) | Relative humidity measuring range: 0–100% RH |
Resolution: 1µg/m3 | Counting efficiency: 50% for 0.3 µm; 100% for particles > 0.45 µm | Accuracy temperature measuring: ±0.5 °C |
Air Quality Index | PM10 [µg/m3] | PM2,5 [µg/m3] | Health Information |
---|---|---|---|
Very good | 0–21 | 0–13 | Air quality is satisfactory, air pollution is not a threat, ideal conditions for outdoor activities. |
Good | 21.1–61 | 13.1–37 | Air quality is good, conditions are good for outdoor activities, air pollutants can pose a minimal risk to those at higher risk (including children, the elderly, and people with heart or respiratory diseases). |
Moderate | 61.1–101 | 37.1–61 | The air quality is acceptable. Acceptable conditions for outdoor activities, although air pollutants may pose a risk to those at increased risk (including children, the elderly, and people with heart or respiratory disease). |
Sufficient | 101.1–141 | 61.1–85 | The air quality is sufficient, it is recommended to limit outdoor activity, air pollution is a threat to people at high risk (including children, the elderly and people with heart or respiratory diseases), other people should limit staying outside, especially when they experience symptoms such as a cough or sore throat. |
Bad | 141.1–201 | 85.1–121 | The air quality is bad, outdoor activities are not recommended, people at high risk (including children, the elderly and people with heart or respiratory diseases should avoid being outdoors), other people should limit their use of outdoors. |
Very bad | >201 | >121 | The air quality is very bad, all outdoor activities are discouraged, people in the high-risk group (including children, elderly people, and people with heart or respiratory diseases should absolutely avoid being outside), other people should limit staying outside to a minimum. |
Qualitative Name | PM10 [µg/m3] | PM2.5 [µg/m3] |
---|---|---|
Very high | >180 | >110 |
High | 180–90 | 110–55 |
Medium | 90–50 | 55–30 |
Low | 50–25 | 30–15 |
Very low | <25 | <15 |
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Mądziel, M.; Campisi, T.; Jaworski, A.; Tesoriere, G. The Development of Strategies to Reduce Exhaust Emissions from Passenger Cars in Rzeszow City—Poland. A Preliminary Assessment of the Results Produced by the Increase of E-Fleet. Energies 2021, 14, 1046. https://doi.org/10.3390/en14041046
Mądziel M, Campisi T, Jaworski A, Tesoriere G. The Development of Strategies to Reduce Exhaust Emissions from Passenger Cars in Rzeszow City—Poland. A Preliminary Assessment of the Results Produced by the Increase of E-Fleet. Energies. 2021; 14(4):1046. https://doi.org/10.3390/en14041046
Chicago/Turabian StyleMądziel, Maksymilian, Tiziana Campisi, Artur Jaworski, and Giovanni Tesoriere. 2021. "The Development of Strategies to Reduce Exhaust Emissions from Passenger Cars in Rzeszow City—Poland. A Preliminary Assessment of the Results Produced by the Increase of E-Fleet" Energies 14, no. 4: 1046. https://doi.org/10.3390/en14041046
APA StyleMądziel, M., Campisi, T., Jaworski, A., & Tesoriere, G. (2021). The Development of Strategies to Reduce Exhaust Emissions from Passenger Cars in Rzeszow City—Poland. A Preliminary Assessment of the Results Produced by the Increase of E-Fleet. Energies, 14(4), 1046. https://doi.org/10.3390/en14041046