2026-06-10 2026, Volume 5 Issue 2

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  • research-article
    Raymond Thapa Magar, Tien Phat Dinh, The Hung Nguyen, Quang Hoai Le, Ahn Yonghan

    Rapid restoration of communication infrastructure is essential for effective coordination, emergency response, and resource allocation in post-disaster scenarios. As conventional communication systems are often damaged or rendered inaccessible during disasters, Unmanned Aerial Vehicles (UAVs) have emerged as a promising alternative for establishing temporary, ad-hoc communication networks. However, despite growing academic and practical interest, UAV-based communication recovery remains in its early stages, facing numerous technical and operational challenges that hinder widespread and effective adoption in complex disaster environments. In response, this study conducts a systematic literature review following the PRISMA protocol to synthesize the current state of knowledge on UAVs applications for Aerial Base Stations (ABSs) deployed as temporary replacements for disaster-affected terrestrial base stations. The review identified key concepts and system architectures, hardware configurations, deployment strategies, emerging AI-driven autonomy, and energy optimization approaches. The findings reveal notable technological progress in energy harvesting (e.g., solar-assisted and tethered platforms) and AI-driven energy conservation strategies; however, persistent limitations, particularly sustained endurance and unresolved coverage–capacity trade-offs, continue to hinder real-world implementation due to the lack of robust real-world validation. By consolidating these insights, the study provides a comprehensive assessment of current advancements and identifies strategic priorities for future research and policy development. This plays a crucial role in supporting the design and deployment of resilient, adaptive, and efficient UAV-based ABSs systems in disaster management contexts.

  • research-article
    Eber Alberto Godínez-Domínguez, Arturo Tena-Colunga, Alonso Gómez-Bernal, Hans I. Archundia-Aranda

    The greatest subduction earthquake in Mexico in almost 100 years ( M w=8.2) struck on September 7, 2017 with epicenter located at the Gulf of Tehuantepec, 133 km southwest of Pijijiapan, Chiapas. The Tehuantepec earthquake caused severe damage to some cities and towns of the Mexican states of Chiapas and Oaxaca. In order to assess the recovery process in the infrastructure of the states of Chiapas and Oaxaca, the research team that originally conducted the post-earthquake damage reconnaissance in cities and towns of those states just a few days after the September 7, 2017 earthquake, revisited most of those locations during a six-day effort in February 2025, more than seven years after. For each state, the amounts of money invested by the National Reconstruction Program are reported, as well as their distribution in four main sectors: dwellings, education, health, and culture. Photographic evidence of the recovery process in two specific cities is also presented: Juchitán, Oaxaca and Tonalá, Chiapas. Additionally, statistics on the distribution of economic resources from the National Reconstruction Program in both cities are shown, with a particular focus on the dwellings sector, as it was the most severely affected by the earthquake. Finally, the authors reflect on the efficiency of the recovery strategies implemented in the promotion of resilient communities in the face of future intense earthquakes.

  • research-article
    Jinyan Zhao, Nikola Blagojević, Sina Naeimi, Barbaros Cetiner, Tianyu Han, Frank McKenna, Božidar Stojadinović, Matthew Dejong

    Computer simulations are critical for assessing the resilience of civil infrastructure to natural hazards. To support efficient and comprehensive analyses that account for interdependencies among infrastructure systems, an integrated platform that spans the full resilience evaluation process, from damage to recovery, is essential. This paper presents such a platform by linking SimCenter’s R2D tool, together with embedded infrastructure system operation simulators, to the recovery simulator pyrecodes. Compared to state-of-the-art post-disaster recovery simulation tools, the proposed platform offers three key advantages: first, it employs high-fidelity traffic flow and potable water delivery simulators to improve the accuracy of resource allocation and the representation of system interdependencies in recovery simulations; second, it streamlines continuous system performance evaluation for interdependent systems considering the change in both resource supply and demand, thereby facilitating quantitative assessment of system resilience; and third, it provides an integrated open-source framework that supports reconfiguration and extension, enabling the continuous incorporation of newer and more advanced regional-scale simulators and allowing flexible levels of simulation fidelity across infrastructure systems. Thus, the proposed simulation platform establishes a unique and foundational framework for future integrated regional resilience modeling and assessment. The integration is achieved through two application programming interfaces (APIs): one connecting regional damage and recovery simulators, and the other linking the recovery simulator with infrastructure-specific service generation and dispatch (operation) simulators. The resulting open-source platform provides a user-friendly interface for hazard, exposure, vulnerability, and recovery analysis, as well as resilience quantification. The platform’s utility is demonstrated in a case study of a California community subjected to an M w 7.0 earthquake, where damage and recovery of buildings, bridges, tunnels, roadways, and water distribution pipelines are simulated. The case study illustrates the ability of the tools to quantify resilience comprehensively with high spatial and temporal resolution. Although only one case study and two system operation simulators are presented, the APIs are designed to integrate a broad range of hazard, exposure, damage, recovery, and operation simulators (e.g., PyPSA and pandapower for power system modeling), beyond those featured here.

  • research-article
    Wenming Wang, Bohai Ji, Huichao Ma, Han Diao, Zhenli Zhang

    With the rapid development of the wind power industry, wind turbine towers are evolving toward greater heights and larger capacities. When the tower height exceeds 140 m, hybrid towers demonstrate significant advantages over conventional steel towers in terms of economic efficiency and safety. Specifically, this hybrid system comprises a lower segmental concrete section compressed by external prestressed cables to prevent tension, a steel transition section, and an upper steel tower section. Although hybrid towers exceeding 160 m have been implemented in engineering practice, refined numerical simulations concerning their dynamic response under strong wind conditions and seismic actions remain limited. In this study, a 160 m-class hybrid tower located in a region with a seismic design intensity of 8 was selected as the prototype. Numerical models were established using ABAQUS to analyze the dynamic responses under strong wind conditions and seismic actions, respectively. Based on the Davenport fluctuating wind speed spectrum, a wind load time history corresponding to a wind speed of 37.5 m/s (strong wind conditions) was generated to analyze the wind-induced response. Furthermore, based on the design response spectrum for site type II, three ground motion records were selected from the PEER ground motion database. The seismic responses under frequent earthquake, design earthquake, and rare earthquake conditions were investigated, and measures to enhance the structural performance under rare earthquakes were proposed. The results indicate that the hybrid tower exhibits excellent performance under strong wind conditions, frequent earthquakes, and design earthquakes. No concrete tensile stress was observed in the concrete tower section, and the stress levels in key components-such as the upper steel tower section and prestressed cables-as well as the maximum tower top displacement, remained within allowable design limits. However, under rare earthquake action, concrete tensile stress developed in the concrete tower section, reaching a maximum value of 0.40 MPa. For the concrete tower section, the emergence of tensile stress indicates that the pre-compression stress at the concrete segment joint has been completely offset. This implies a potential opening of the segmented joints throughout the tower, thereby increasing the risk of collapse. Increasing the pre-tension force in the prestressed cables by 21.9% eliminated the tensile stress in the concrete tower section under rare earthquake action, ensuring the section remained in a compressive state throughout. Notably, even with this adjustment, the stresses in the upper steel tower section and prestressed cables, as well as the tower top displacement, remained within safe limits under strong wind conditions. The findings of this study provide a valuable reference for the safety evaluation of hybrid towers.

  • research-article
    Masoomeh Mirrashid, Nader M. Okasha, Danial Jahed Armaghani, Biswajeet Pradhan, Omer Mughieda, Omar Ghareeb Alshammari

    Current sustainability assessments for buildings often fail to account for the interactions between environmental risks, structural safety, and green performance, resulting in suboptimal prioritization for maintenance and retrofitting. To solve this problem, a novel framework is proposed to evaluate and prioritize the risk-based sustainability performance at the building asset level. The proposed framework integrates three different key aspects, including environmental, structural, and green, due to the multifaceted nature of sustainability. In the presented approach, fuzzy systems are modeled for each of these three aspects to address the uncertainties within the problem. These models introduced three indices: Environmental Risk index (considering factors like fault proximity and vegetation barriers), Structural Safety index (evaluating factors such as material quality and age), and Green index (evaluating factors such as energy efficiency and carbon footprint). The efficiency of the assessment process is upgraded using the results of three ensemble learning models, XGBoost, AdaBoost, and Random Forest, which are trained on a generated database obtained through the fuzzy system evaluations. Due to the complexities existing in the problem under study, a Graphical User Interface (GUI) is also presented based on the final systems, making the use of the computational framework simpler for the user. The framework helps engineers to make more informed decisions regarding maintenance, retrofitting, and redevelopment strategies in a construction project. The successful combination of fuzzy systems with machine learning and providing a user-friendly interface makes this research a significant contribution to advancing sustainable constructions.

  • research-article
    HakJong Chang, Yewon Hwang, JunHee Kim

    As earthquakes continue to pose significant risks to the built environment, the concept of seismic resilience has gained attention as a means to evaluate how effectively buildings recover functionality after such disruptive events. This study aims to develop a quantitative assessment framework that evaluates the post-seismic resilience of buildings using Expected Annual Resilience (EAR). By introducing the Expected Annual Resilience as a core metric, the framework enables integrated evaluation of both the extent of functional loss and the capacity for recovery over time, based on seismic hazard probabilities. EAR is defined as a probabilistic metric that quantifies the expected level of building functionality maintained or recovered throughout a year, considering the annual probability and frequency of seismic events. It reflects both the extent of retained functionality and the capacity for recovery over time across various earthquake scenarios. To implement this concept, a quantitative assessment framework is developed by integrating seismic hazard models, post-seismic functionality curves, and recovery timelines. Applying the framework to school buildings is particularly significant, as schools are essential community infrastructure and are often used as shelters after earthquakes. A seismic hazard curve was developed based on more than 2,000 historical ground motion records observed across Korea. Using each school's fragility function and loss function, the retained functionality following seismic events was estimated, and corresponding EAR values were calculated. EAR were evaluated across three seismic hazard levels corresponding to different probability of exceedance scenarios, categorized as low, medium, and high hazard. The results indicate that buildings under moderate hazard conditions exhibited EAR values approximately 8.6% higher than those under slight hazard, and 4.1% higher than those under low hazard. These findings suggest that as seismic hazard levels increase, the expected annual resilience decreases, highlighting the metric’s sensitivity to varying hazard intensities. The proposed methodology may be helpful for many stakeholders and decision makers for pre- and post-earthquake assessments to quantify seismic performance.

  • research-article
    Himadri Sen Gupta, Md Shoaib Mahmud, Arko Gupta

    Urban flash-flood management requires turning probabilistic forecasts into concrete, resource-constrained actions. We develop a forecast-to-decision pipeline that links calibrated incident-level harm prediction with prescriptive optimization. Using a processed DesignSafe-CI Texas flash-flood incident dataset covering 2005–2019 (6,137 incidents; 2.17% harm prevalence), we construct GIS-derived predictors of hazard intensity, exposure, and transportation infrastructure, plus physically motivated interactions (e.g., precipitation × bridge density). An 𝓁 1-regularized logistic model (LASSO) with out-of-fold isotonic calibration provides decision-grade probabilities and automatic feature selection. Temporal generalization is assessed with a strict year holdout (train 2005-2018; test 2019), leave-one-year-out (LOYO), and rolling-origin schemes. On the 2019 holdout, the calibrated model attains ROC-AUC 0.783, PR-AUC 0.127 (about six times prevalence), and Brier 0.021, although the holdout contains only five positive cases and therefore yields wide uncertainty intervals; complementary LOYO validation gives AUC values spanning 0.66–0.99, reflecting interannual variability that random splits obscure. We embed the learned calibrator as a piecewise-linear mapping in a mixed-integer program that selects intervention sets meeting risk-coverage targets at minimum effort. Results show strong spatial concentration of expected harm within the candidate set of historically active locations: intervening at 61 of 220 candidate assets (28%) captures 80% of baseline risk; 98 candidate assets (45%) achieve 90%, with certified optimality gaps < 0.1%. Leave-one-year-out frontier analysis confirms this concentration pattern is stable across years (median: 27% of assets for 80% coverage; IQR < 2 percentage points), indicating that the prescriptive conclusions are not artifacts of the single holdout year. The framework is reproducible, interpretable, and operationally tractable, providing a transparent pathway from geomatics-informed risk to prioritized preparedness and response portfolios for known high-risk locations.

  • research-article
    Yongbin Liu, Hongxing Li, Ying Zhou, Jiangwen Song, Dong Jiang, Xianan Hou, Zheng Cheng, Yiqiu Lu

    Power plants are important lifeline engineering in urban construction. To improve their sustaining ability, adaptability, and recovery capabilities to uncertain hazards, it is vital for realizing engineering resilience, which contributes the reduction of economic losses and adverse social impacts. Functional quantitation has become more and more important for the resilience assessment of power plants after disasters. Quantitative evaluation of actual functionality for power plants becomes more significant to the resilience evaluation against disasters. However, it is difficult to understand the relationship between components and systems in power plants, which are composed of different kinds of equipment and pipeline. For thermal power plants, there is little research on the quantification of functional loss after disasters. This paper analyzes the main power generation system in thermal power plants and proposes a novel functional quantitative analysis method, namely functional state method. Quantification method of post-disaster functional loss for the main power generation system is presented. The functional quantification method proposed in this paper can be used further to conduct quantitative analysis of functional recovery, and evaluate resilience of the post-disaster power plants, based on the input-output relationships of components and systems.

  • research-article
    Md Mahathe Hasan Toha, Zhi Sun, Chuhan Fan, Jianglin Xu

    In this study, the impact behavior of an eccentrically prestressed simply-supported concrete beam of prophase bending-stretching retention subjected to a constant moving load is investigated for structure impact resilience evaluation. The finite element method is adopted for beam behavior modeling and the Newmark-β time-domain integration technique is adopted for response computation. The geometric stiffness matrices, due to the prestressing axial compression and the prophase bending-stretching caused by eccentric prestressing and self-weight, are considered. Parametric study on varying prestressing force and eccentricity shows that eccentric prestressing will induce up to 58 % reduction of the fundamental frequency with the increase of the prestressing force. Moving-load induced impact for the considered eccentrically prestressed beam will amplify the peak bending moment by up to 53 %, while shift the position of peak dynamic response in the positive bending moment zone away from the midspan by more than ± 15 % of the span length. For the studied cases, the consideration of the eccentric prestressing will enlarge the shift of the moving load-induced peak bending moment position but will not induce the presence of new bending moment zone under moving load.

  • research-article
    Jason Jia, Ashkan Hashemi, Pierre Quenneville

    This paper presents an advanced seismic design concept for bridge structures using Ductile Self-Centring Joint (DSJ) that enables highly resilient, low-damage performance under major earthquake events. The DSJ integrates a central rotational bearing with multiple Resilient Slip Friction Joints (RSFJs), arranged to provide controlled rocking, flag-shaped hysteresis, and self-centring capability. This configuration allows the joint to emulate the behaviour of a plastic hinge while avoiding inelastic deformation in concrete members, thereby addressing long-standing challenges associated with damage accumulation, residual drift, and post-earthquake repairability in conventional ductile bridge systems. A comprehensive suite of nonlinear analyses-including nonlinear static pushover, cyclic pushover, and nonlinear time-history simulations-was performed on a three-span timber-concrete hybrid bridge with timber beam composite with concrete deck and integral diaphragms at supports modelled in SAP2000 to evaluate the joint’s global and local seismic performance. The DSJ was modelled using friction–spring link elements to capture RSFJ hysteresis, combined with a rotationally free bearing to accommodate uplift and rocking. Results show that the introduction of DSJs significantly reduces seismic demands: base shear and peak acceleration decreased by up to 65% and 64%, respectively, compared with a conventional elastic low-damage configuration. Equivalent viscous damping ratios of approximately 20% were achieved, and displacement demands were substantially reduced across a broad suite of matched near-fault and far-field ground motions. RSFJ hysteresis loops remained fully elastic throughout all analyses, confirming the self-centring mechanism and absence of structural damage. Overall, these findings demonstrate that the proposed DSJ offers a practical, replaceable, and highly effective solution for next-generation low-damage seismic bridge design.