Improving Resilience to Tsunamis and Earthquakes via Predictions of Waste Disposal Times
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Improving Resilience to Tsunamis and Earthquakes via Predictions of Waste Disposal Times

13/06/2025 Waseda University

Researchers develop framework to predict cleanup times after seismic events by analyzing the interdependence of disposal facilities and road networks

Disaster waste from earthquakes and tsunamis can severely delay recovery in coastal communities, but existing predictive models often ignore how damaged transportation networks can hinder waste disposal efforts. In a recent study, researchers developed a probabilistic framework that jointly models waste disposal and road network systems under seismic and tsunami hazards. By accounting for their interdependencies and restoration dynamics, the framework offers more realistic estimates of cleanup times and highlights key strategies to improve resilience.

Tsunamis and earthquakes pose devastating threats to coastal communities worldwide. However, beyond the immediate destructive power of these events, the negative impact of the disaster waste they produce is sometimes overlooked. For example, when the 2011 Great East Japan Earthquake struck, approximately 23 million tons of waste were generated, severely hindering post-disaster recovery processes. Similarly, the 2024 Noto Peninsula Earthquake produced 2.7 million tons of waste—equivalent to seven years of normal waste disposal. Thus, rapid processing of disaster waste is essential for restoring community functionality, making it a critical component of resilience.

Effective disaster waste management hinges on the seamless operation of the waste disposal system (WDS), which encompasses collection sites, temporary storage, and processing facilities. However, these systems don’t function in isolation, as they are critically dependent on the functionality of the road network system (RNS) for the transportation of waste. Unfortunately, previous methods for estimating post-disaster waste disposal times have often overlooked the interdependencies between these two systems, particularly in the face of events that can simultaneously damage both.

Against this backdrop, a research group led by Professor Mitsuyoshi Akiyama and Adjunct Researcher Koki Aoki from Waseda University, Japan, has developed a novel probabilistic framework for estimating the disaster waste disposal time in coastal communities under the combined threat of seismic and tsunami hazards. Their latest study, which was made available online in Reliability Engineering & System Safety on May 14, 2025 and will be published in Volume 262 in October 2025, focuses on key interdependencies between WDS and RNS, offering a more realistic prediction of post-disaster recovery timelines. The study was co-authored by Adjunct Researcher Koki Aoki from Waseda University, Japan; Professor Mitsuyoshi Akiyama from Waseda University, Japan; Assistant Professor Abdul Kadir Alhamid from Bandung Institute of Technology, Indonesia; Professor Dan M. Frangopol from Lehigh University, USA; and Professor Shunichi Koshimura from Tohoku University, Japan.
The newly proposed methodology begins with the modeling of buildings, the WDS, and the RNS within the analyzed region. This is followed by a detailed seismic and tsunami hazard assessment, considering the spatial correlation of hazard intensities. The framework incorporates a seismic and tsunami fragility surface for buildings, existing processing facilities, and bridges, enabling the estimation of damage probabilities under combined hazards.

Afterwards, based on damage assessments, the amount of generated disaster waste and the initial functionality loss of both the WDS and RNS are estimated. The core of the method lies in its time-dependent evaluation of the functionalities of the two systems, accounting for both the hazard-related interdependency (simultaneous damage) and the subsequent restoration processes for both systems. Using Monte Carlo simulations, the framework estimates the probability of completing waste disposal within a specific timeframe, considering the transportation and removal of waste based on minimum cost flow principles and the time-varying capacities of both systems.

To showcase their method, the research group applied the framework to a hypothetical 990 km2 coastal community in Mie Prefecture, Japan, anticipating the predicted Nankai Trough earthquake. This illustrative example demonstrated how disaster waste disposal time is significantly affected by road network functionality, with damaged bridges creating bottlenecks even when processing facilities remain operational. “Our findings suggest retrofitting bridges in the RNS and sparse placement of processing facilities in the WDS before the event can reduce disaster waste disposal time,” the researchers highlight.

Taken together, the results highlight the critical importance of collaborative decision-making between stakeholders managing waste disposal and transportation infrastructure. Among various intervention strategies, including improvements to existing processing facilities and increasing road network redundancy, the quick installation of temporary processing facilities has the greatest impact on waste disposal timeframes. However, the effectiveness of improvements to WDS is significantly constrained by road network functionality, emphasizing the interconnected nature of these systems. “The proposed method provides critical insights for future disaster waste management to enhance community resilience before the anticipated Nankai Trough earthquake,” conclude the researchers.

Overall, this framework represents a significant advancement in disaster preparedness, offering coastal communities a scientifically sound tool for evaluating their resilience to seismic and tsunami hazards. More informed decision-making regarding infrastructure investments and emergency planning will hopefully improve recovery outcomes when disaster finally strikes.

***

Reference

Authors: Koki Aoki1, Mitsuyoshi Akiyama1, Abdu Kadir Alhamid2, Dan M. Frangopol3, and Shunichi Koshimura4


Title of original paper: Resilience-based estimation of the disaster waste disposal time considering interdependencies between waste disposal and road network systems under seismic and tsunami hazards in coastal communities

Journal: Reliability Engineering & System Safety

DOI: 10.1016/j.ress.2025.111242


Affiliations:

1Department of Civil and Environmental Engineering, Waseda University
2Faculty of Civil and Environmental Engineering, Center for Coastal and Marine Development, Bandung Institute of Technology
3Department of Civil and Environmental Engineering, Engineering Research Center for Advanced Technology for Large Structural Systems (ATLSS Center), Lehigh University
4International Research Institute of Disaster Science, Tohoku University


About Waseda University
Located in the heart of Tokyo, Waseda University is a leading private research university that has long been dedicated to academic excellence, innovative research, and civic engagement at both the local and global levels since 1882. The University has produced many changemakers in its history, including eight prime ministers and many leaders in business, science and technology, literature, sports, and film. Waseda has strong collaborations with overseas research institutions and is committed to advancing cutting-edge research and developing leaders who can contribute to the resolution of complex, global social issues. The University has set a target of achieving a zero-carbon campus by 2032, in line with the Sustainable Development Goals (SDGs) adopted by the United Nations in 2015.

To learn more about Waseda University, visit https://www.waseda.jp/top/en

About Adjunct Researcher Koki Aoki from Waseda University
Dr. Koki Aoki obtained a Doctor of Engineering degree from Waseda University, Tokyo, Japan, in 2025. He currently serves as an Adjunct Researcher at the Faculty of Science and Engineering, Waseda University, and as a Researcher at the Department of Civil and Environmental Engineering, Politecnico di Milano, Italy. His research focuses on earthquake resilience and structural engineering. He has over 15 papers published to his name. He has been an honorable awardee of multiple accolades, including the 2023 Encouragement Award for Outstanding Thesis from the Japan Society of Civil Engineers (JSCE) and the 2023 Student Recognition Award from the International Civil Engineering Risk and Reliability Association (CERRA).

About Professor Mitsuyoshi Akiyama from Waseda University
Dr. Mitsuyoshi Akiyama is a Professor of Structural Engineering at Waseda University, Tokyo, Japan. With over 200 publications, he leads projects focusing on the reliability, risk, and resilience of structures against multiple hazards and climate change, the life-cycle performance of concrete structures, the design of resilient and cost-efficient structures, and the development of carbon-negative concrete. He actively contributes to academia and society as a Managing Editor of leading academic journals, Chair of Commission 6 (Sustainability) of IABSE, and President of Engineers Without Borders, Japan. His notable accolades include the 2023 IABSE Scientific Outstanding Paper Award and the 2008 Commendation for Science and Technology by Japan’s Minister of Education, Culture, Sports, Science and Technology.
Title of original paper: Resilience-based estimation of the disaster waste disposal time considering interdependencies between waste disposal and road network systems under seismic and tsunami hazards in coastal communities

Journal: Reliability Engineering & System Safety

DOI: 10.1016/j.ress.2025.111242


Affiliations:

1Department of Civil and Environmental Engineering, Waseda University
2Faculty of Civil and Environmental Engineering, Center for Coastal and Marine Development, Bandung Institute of Technology
3Department of Civil and Environmental Engineering, Engineering Research Center for Advanced Technology for Large Structural Systems (ATLSS Center), Lehigh University
4International Research Institute of Disaster Science, Tohoku University
Attached files
  • This infographic visually summarizes the research background and the proposed framework, which can help improve the resilience of coastal communities to seismic events.
  • Researchers proposed a novel framework that considers the interdependencies between road networks and waste disposal systems, with potential implications for improving resilience in coastal communities.
13/06/2025 Waseda University
Regions: Asia, Japan
Keywords: Science, Environment - science, Public Dialogue - science, Applied science, Artificial Intelligence, Technology, Engineering

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