Regime Confluence in Automobile Industry Transformation: Boundary Dissolution and Network Reintegration via CASE Vehicles
Abstract
:1. Introduction
2. Sociotechnical Transitions and Regime Confluence in the Automotive Industry on Pathway to a Service-Centric Automobility Industry
2.1. The Automotive SocioTechnical System
2.2. Regimes in Sociotechnical Transitions
2.3. Regime Confluence
3. Research Methodology
4. Automotive Industry Transformation
4.1. The Contradictions
4.2. Competition Inside the Regime
4.3. The New Challenges to the Traditional Automobility Industry
4.4. The Dissolution of Industry Boundaries
4.5. CASE Accumulated the Network Transformation from the Automotive (Product) Industry to the Automobility (Service) Industry
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Connectivity | Autonomous | Shared | Electric | |
---|---|---|---|---|
Carbon emissions | Fewer stop and starts could decrease emissions | Effective vehicle usage, on average decrease the emissions | Should be lower if more trips are shared | Yes, lower or zero if renewable electricity sources used |
Road deaths and injuries | Yes, should be fewer | Yes, properly executed and designed autonomous vehicles should reduce crashes | Fewer if fewer vehicles are on the road and average distances reduced | No direct impact. May increase crashes due to low noise in operation |
Air quality | Indirectly improved | Yes, vehicle efficient usage could improve air quality | Yes, if on-road numbers of vehicles are reduced | Yes, as they are zero emissions at point of use |
Noise | Some marginal benefits | Some marginal benefits | Yes, if on-road numbers of vehicles are reduced | Lower noise overall, especially at low speed. Mandated noise in many urban settings |
Urbanization | Could be more, expanded to rural areas | More difficult to achieve in a complex urban environment | Often deployed in urban areas to release parking spaces | Currently mainly urban usage due to range anxiety |
Congestion | Reduces the stress of congested traffic on drivers and occupants. Smart traffic managements may reduce congestion | Reduces the stress of congested traffic on divers and occupants | Should reduce congestion in urban areas | No direct influence on congestion |
Environmental burdens of infrastructure | Yes, needs more communications infrastructure, e.g., 5G networks | Yes, needs even more | No significant added burden | Yes, charging stations required. Old fuel stations need to be decommissioned |
Geo-politics of fuel and materials supply and demand | No direct significant issue. | No direct significant issues | No direct significant issues | Independence from geo-politics of petroleum, new dependencies on e.g., rare earth; cobalt |
Resource consumption | Yes, rare metals inside of sensors and other parts, and infrastructure | Yes, rare metals inside of sensors and other parts | No direct significant issues | Yes, a large amount of copper, lithium and other materials required |
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Wang, L.; Wells, P. Regime Confluence in Automobile Industry Transformation: Boundary Dissolution and Network Reintegration via CASE Vehicles. Energies 2021, 14, 1116. https://doi.org/10.3390/en14041116
Wang L, Wells P. Regime Confluence in Automobile Industry Transformation: Boundary Dissolution and Network Reintegration via CASE Vehicles. Energies. 2021; 14(4):1116. https://doi.org/10.3390/en14041116
Chicago/Turabian StyleWang, Liqiao, and Peter Wells. 2021. "Regime Confluence in Automobile Industry Transformation: Boundary Dissolution and Network Reintegration via CASE Vehicles" Energies 14, no. 4: 1116. https://doi.org/10.3390/en14041116
APA StyleWang, L., & Wells, P. (2021). Regime Confluence in Automobile Industry Transformation: Boundary Dissolution and Network Reintegration via CASE Vehicles. Energies, 14(4), 1116. https://doi.org/10.3390/en14041116