Sustainability of the Trans-European Transport Networks Land Infrastructure to Address Large-Scale Disasters: A Case Study in the Czech Republic
Abstract
:1. Introduction
2. Materials and Methods
2.1. TEN-T Land Infrastructure in the Czech Republic
- Line elements—ensure the transfer, delivery, or transport of goods between two physically separate locations (e.g., road and rail corridors). They are a meaningful basic group that is in relation to all point and area elements (the length dimension is an order of magnitude greater than the width dimension).
- Point elements—represent a concentrated and closed unit located on a small area, which fulfils its function for the needs of specific line objects (e.g., bridges, tunnels), (length and width are negligible compared to line and area elements).
- Area elements—represent one unit or integral objects, where two or more point elements or two or more key technologies occur (e.g., significant transport hubs).
2.2. Large-Scale Disasters Resulting in Above-Standard Use of TEN-T Land Infrastructure
2.3. Description of the Methods Used for Modelling and Digitizing Routes for Excessive and Oversized Transport
3. Results
3.1. Defining and Modelling Typical Transport Situations Using TEN-T Land Infrastructure
3.2. Identification of Critical Infrastructure Objects of the TEN-T Land Infrastructure
3.2.1. Phase 1: Selection of the Type of Transport and Identification of the Technical Parameters of the Convoy
3.2.2. Phase 2: Identification of Construction-Technical Parameters of the Affected Infrastructure Objects
3.2.3. Phase 3: Assessment of the Infrastructure Objects Suitability for the Selected Type of Transport
- green category: the object is suitable for the given transport;
- orange category: the object is suitable for the given transport after technical modification of the object or vehicle/train (e.g., dismantling of a certain part of it) and with increased attention;
- red category: the object is not suitable for the given transport.
3.3. Digitalization of Critical Infrastructure Objects of the TEN-T Land Infrastructure
3.4. Defining Recommendations for the Sustainability and Future Development of TEN-T Land Infrastructure in the Context of Military Mobility
3.4.1. Legislative Layer: Amend the Relevant Legislation with the Possibility of Prioritizing Military Movements
3.4.2. Capacitive Layer: FOCUS on the Specifics of Military Mobility and Conduct Relevant Military Movements Simulations
3.4.3. Construction-Technical Layer: Prioritize Relevant Infrastructure Objects (Primarily Bridges) in the Maintenance and Repair System in Cooperation with the Ministry of Defence of the Czech Republic/Ministry of Defence of the Czech Republic
3.4.4. Technological Layer: Use the Tools of Intelligent Transport Systems and New Technologies
- Strengthen the ability of ITS and professional personnel to respond to new threats, emergencies, and cooperate with the Army of the Czech Republic (e.g., movements of own and allied forces—HNS).
- Supplement ITSs according to the requirements and needs of the Army of the Czech Republic, e.g., supplement the collection of data on the condition and operation of land roads with the detection of new emergencies and transfer and sharing of these data. Use the potential of unmanned vehicles.
- Strengthen the infrastructure and build elements of active traffic management on selected sections of land roads so that it is possible to effectively manage traffic flows of civilian and military vehicles.
- Involve fleets of land road administrator vehicles/assistance service vehicles equipped with ITS and other technologies in resolving emergencies that are beyond their basic purpose.
- Increase the resilience of ITSs, existing and newly built, against cyber-attacks.
- Make static and dynamic data and information accessible and share, e.g., on the condition and operation of roadways, between civilian ITSs (including the Integrated Rescue System) and the systems of the Army of the Czech Republic. Protect sensitive data, e.g., exchange and purpose of data, data transfer, etc.
3.4.5. Summary of Recommendations
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
EU | European Union |
HNS | Host Nation Support |
ITS | Intelligent Transportation System |
MoD CR | Ministry of Defence of the Czech Republic |
MLC | Military Load Classification |
MoT CR | Ministry of Transport of the Czech Republic |
NATO | North Atlantic Treaty Organization |
ROM | Rest on Movement |
RON | Rest on Night |
TEN-T | Trans-European Transport Networks |
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Rehak, D.; Vlkovsky, M.; Manas, P.; Apeltauer, J.; Apeltauer, T.; Hromada, M. Sustainability of the Trans-European Transport Networks Land Infrastructure to Address Large-Scale Disasters: A Case Study in the Czech Republic. Sustainability 2025, 17, 2509. https://doi.org/10.3390/su17062509
Rehak D, Vlkovsky M, Manas P, Apeltauer J, Apeltauer T, Hromada M. Sustainability of the Trans-European Transport Networks Land Infrastructure to Address Large-Scale Disasters: A Case Study in the Czech Republic. Sustainability. 2025; 17(6):2509. https://doi.org/10.3390/su17062509
Chicago/Turabian StyleRehak, David, Martin Vlkovsky, Pavel Manas, Jiri Apeltauer, Tomas Apeltauer, and Martin Hromada. 2025. "Sustainability of the Trans-European Transport Networks Land Infrastructure to Address Large-Scale Disasters: A Case Study in the Czech Republic" Sustainability 17, no. 6: 2509. https://doi.org/10.3390/su17062509
APA StyleRehak, D., Vlkovsky, M., Manas, P., Apeltauer, J., Apeltauer, T., & Hromada, M. (2025). Sustainability of the Trans-European Transport Networks Land Infrastructure to Address Large-Scale Disasters: A Case Study in the Czech Republic. Sustainability, 17(6), 2509. https://doi.org/10.3390/su17062509