Complex Network Analysis of China National Standards for New Energy Vehicles
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Standard Publication Overview
3.2. Sectional Analysis of Standards
- Safety standards: These standards can increase consumer confidence and facilitate trade. They are the basis for technical barriers to trade, and focus on safety requirements and test methods, such as the battery-overcharge or the short-circuit tests.
- Performance standards: These standards are the basis for the measurement of product performance and market claims, which can reduce information asymmetry, decrease purchasing search costs and facilitate trade. The target aspects can be battery range, charging time, endurance, etc.
- Compatibility standards: These standards can facilitate compatible charging of NEVs to increase the indirect network effect of the charging stations. They also include information-exchange formats such as V2X (vehicle-to-everything) communication.
- General standards: These standards target components or end products. They cover safety, performance and compatibility requirements for the targeted product. Terminology standards are also covered by this category.
3.3. Citation Network and Cluster Analysis of Standards
- EVWPT—Electric-vehicle wireless power transfer
- FCEV—Fuel-cell electric vehicles
- EVTB—Electric-vehicle traction battery
- EVDM—Electric-vehicle drive motor
- EVRM—Electric-vehicle remote management
- EVSS—Electric-vehicle safety standards
- EVPS—Electric-vehicle performance standards
- EVCS—Electric-vehicle compatibility standards
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Standard No. | Standard Name | Publication Year |
---|---|---|
GB 19755 | Technical requirements and measurement methods for emissions from light-duty hybrid electric vehicles | 2016 |
GB 22757.2 | Energy consumption label for light-duty vehicles—Part 2: For off-vehicle-chargeable hybrid electric vehicles and pure electric vehicles | 2017 |
GB 18384 | Electric vehicles safety requirements | 2020 |
GB 38031 | Electric vehicles traction battery safety requirements | 2020 |
GB 38032 | Electric buses safety requirements | 2020 |
Target System | GB/T Standard | GB Standard |
---|---|---|
Electric-drive system | 4 | 0 |
General requirements | 22 | 3 |
On-board energy system | 18 | 1 |
Charge/replacement system and interface | 30 | 0 |
Other system and component | 6 | 0 |
Fuel-cell EV/systems | 20 | 0 |
PHEV | 6 | 1 |
BEV | 9 | 0 |
Standard No. | Standard Name | In-Degree | Out-Degree |
---|---|---|---|
GB/T 19596 | Terminology of electric vehicles | 67 | 2 |
GB 18384 | Electric-vehicle safety requirements | 20 | 6 |
GB/T 24548 | Fuel-Cell Electric Vehicles—Terminology | 14 | 1 |
GB/T 20234.1 | Connection set of conductive charging for electric vehicles—Part 1: General requirements | 13 | 2 |
GB/T 18487.1 | Electric-vehicle conductive charging system—Part 1: General requirements | 11 | 7 |
GB/T 29317 | Terminology of electric-vehicle charging/battery-swap infrastructure | 9 | 0 |
GB/T 27930 | Communication protocols between off-board conductive charger and battery-management system for electric vehicle | 8 | 2 |
GB/T 24549 | Fuel-cell electric vehicles—Safety requirements | 8 | 4 |
Standard No. | Standard Name | Betweenness |
---|---|---|
GB 18384 | Electric-vehicle safety requirements | 341 |
GB/T 19596 | Terminology of electric vehicles | 247 |
GB/T 18487.1 | Electric-vehicle conductive charging system—Part 1: General requirements | 206 |
GB/T 20234.1 | Connection set of conductive charging for electric vehicles—Part 1: General requirements | 156 |
GB/T 24549 | Fuel-cell electric vehicles—Safety requirements | 141 |
GB/T 19836 | Instrumentation for electric vehicles | 85 |
GB/T 19752 | Hybrid electric vehicles—Power performance—Test method | 74 |
GB/T 24548 | Fuel-Cell Electric Vehicles—Terminology | 24 |
GB/T 37154 | Fuel-cell electric vehicles—Test methods of hydrogen emission | 22 |
GB/T 36288 | Fuel-cell electric vehicles—Safety requirement of fuel-cell stack | 21 |
No | Organization | Type | Standards Amount |
---|---|---|---|
1 | China Automotive Technology and Research Center | Research Institute | 111 |
2 | BYD | Enterprise | 44 |
3 | Beijing Electric VEHICLE Co., Ltd. | Enterprise | 32 |
4 | Pan Asia Technical Automotive Center | Enterprise | 25 |
5 | SAIC Motor Group | Enterprise | 24 |
6 | Chongqing Changan | Enterprise | 23 |
7 | China FAW Group | Enterprise | 20 |
8 | Dongfeng Motor Corporation | Enterprise | 18 |
9 | Potevio New Energy Co., Ltd. | Enterprise | 18 |
10 | Beijing Institute of Technology | Research Institute | 18 |
11 | SAIC GM Wuling Automobile | Enterprise | 16 |
12 | STATE GRID of China | Enterprise | 14 |
13 | Cheryev | Enterprise | 14 |
14 | Tsinghua University | Research Institute | 14 |
15 | NIO Shanghai | Enterprise | 13 |
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Sun, W.; Zhang, X.; Yuan, M.; Zhang, Z. Complex Network Analysis of China National Standards for New Energy Vehicles. Sustainability 2023, 15, 1155. https://doi.org/10.3390/su15021155
Sun W, Zhang X, Yuan M, Zhang Z. Complex Network Analysis of China National Standards for New Energy Vehicles. Sustainability. 2023; 15(2):1155. https://doi.org/10.3390/su15021155
Chicago/Turabian StyleSun, Weiwei, Xueli Zhang, Min Yuan, and Zheng Zhang. 2023. "Complex Network Analysis of China National Standards for New Energy Vehicles" Sustainability 15, no. 2: 1155. https://doi.org/10.3390/su15021155
APA StyleSun, W., Zhang, X., Yuan, M., & Zhang, Z. (2023). Complex Network Analysis of China National Standards for New Energy Vehicles. Sustainability, 15(2), 1155. https://doi.org/10.3390/su15021155