WQ
W. Qu
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4 records found
1
Master thesis
(2025)
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F.M.M. de Boer, A.J. van Binsbergen, J.H.R. van Duin, W. Qu, J. van Wilsum, R. Arab
Empty Container Repositioning (ECR) remains one of the most persistent and costly inefficiencies in global container logistics. To balance asymmetric trade flows at global, regional, and local scales, empty containers must be relocated from surplus locations to areas facing deficits. These movements typically generate no revenue for shipping lines. While the ECR problem has been widely studied at the global level, regional and local repositioning remain underexplored. This study investigates key barriers preventing direct inland repositioning between surplus and deficit locations within Maersk's hinterland networks of Rotterdam and Antwerp. A multi-method research approach was adopted, encompassing network analysis using internal Maersk data, stakeholder identification through semi-structured interviews, operational feasibility assessments, and financial analysis of repositioning corridors. Only 12% of container movements currently use direct repositioning, underscoring an overreliance on hub-based repositioning. Critical barriers were identified at both depot and corridor levels. Depot-level barriers include limited inter-vendor collaboration, fluctuating stock levels, container quality requirements, and seasonal flow variations. Corridor-level barriers encompass off-route positioning, fixed transportation schedules, lack of appropriate services, and physical constraints such as barge sizes. Financial assessments demonstrate clear cost advantages for direct repositioning by avoiding additional handling steps associated with hub-based movements. Operational insights highlight the impact of stakeholder interactions, coordination constraints, and planning routines on repositioning efficiency. These findings underscore the need for better stakeholder coordination and more flexible planning routines to make direct inland repositioning viable. By framing ECR as a coordination problem rather than purely an optimization task, this study offers practical insights for improving inland container flows in complex multi-actor networks.
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Empty Container Repositioning (ECR) remains one of the most persistent and costly inefficiencies in global container logistics. To balance asymmetric trade flows at global, regional, and local scales, empty containers must be relocated from surplus locations to areas facing deficits. These movements typically generate no revenue for shipping lines. While the ECR problem has been widely studied at the global level, regional and local repositioning remain underexplored. This study investigates key barriers preventing direct inland repositioning between surplus and deficit locations within Maersk's hinterland networks of Rotterdam and Antwerp. A multi-method research approach was adopted, encompassing network analysis using internal Maersk data, stakeholder identification through semi-structured interviews, operational feasibility assessments, and financial analysis of repositioning corridors. Only 12% of container movements currently use direct repositioning, underscoring an overreliance on hub-based repositioning. Critical barriers were identified at both depot and corridor levels. Depot-level barriers include limited inter-vendor collaboration, fluctuating stock levels, container quality requirements, and seasonal flow variations. Corridor-level barriers encompass off-route positioning, fixed transportation schedules, lack of appropriate services, and physical constraints such as barge sizes. Financial assessments demonstrate clear cost advantages for direct repositioning by avoiding additional handling steps associated with hub-based movements. Operational insights highlight the impact of stakeholder interactions, coordination constraints, and planning routines on repositioning efficiency. These findings underscore the need for better stakeholder coordination and more flexible planning routines to make direct inland repositioning viable. By framing ECR as a coordination problem rather than purely an optimization task, this study offers practical insights for improving inland container flows in complex multi-actor networks.
The drilling industry faces the challenge of moving away from conventional maintenance strategies to maximise operational efficiency. This thesis introduces a holistic approach to land drilling rig Predictive Maintenance (PdM), integrating component maintenance into system-level decision-making. By taking the operations of the whole system into account, PdM can be applied more effectively, and the uptime of a drilling rig can be improved. A hierarchical Multi-Agent System (MAS) framework is proposed, employing two layers of agents for the core equipment of a drilling rig and one centralised system agent. Middle-level agents perform component diagnostics, prognostics, and operational state classification. The system agent uses expert reasoning for integrated maintenance scheduling. As a proof of concept, the proposed model is partially developed and validated, using readily available data and additional condition monitoring.
In the field research phase of this thesis, valve vibration signals were gathered from a mud pump during a geothermal drilling project in Delft. From these signals, dimensionless features were extracted and used in a Fuzzy Logic (FL) classifier combined with Weibull Accelerated Failure Time (WAFT) modelling for dynamic Remaining Useful Life (RUL) prediction. In the case study, where synthetic valve failure is induced in historical operational data, the model demonstrated its ability to predict these failures on time. Maintenance actions were suggested by the model when components reached 93% of their theoretical lifetime, preventing excessive maintenance and minimising disruption to drilling operations through integrated scheduling.
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In the field research phase of this thesis, valve vibration signals were gathered from a mud pump during a geothermal drilling project in Delft. From these signals, dimensionless features were extracted and used in a Fuzzy Logic (FL) classifier combined with Weibull Accelerated Failure Time (WAFT) modelling for dynamic Remaining Useful Life (RUL) prediction. In the case study, where synthetic valve failure is induced in historical operational data, the model demonstrated its ability to predict these failures on time. Maintenance actions were suggested by the model when components reached 93% of their theoretical lifetime, preventing excessive maintenance and minimising disruption to drilling operations through integrated scheduling.
...
The drilling industry faces the challenge of moving away from conventional maintenance strategies to maximise operational efficiency. This thesis introduces a holistic approach to land drilling rig Predictive Maintenance (PdM), integrating component maintenance into system-level decision-making. By taking the operations of the whole system into account, PdM can be applied more effectively, and the uptime of a drilling rig can be improved. A hierarchical Multi-Agent System (MAS) framework is proposed, employing two layers of agents for the core equipment of a drilling rig and one centralised system agent. Middle-level agents perform component diagnostics, prognostics, and operational state classification. The system agent uses expert reasoning for integrated maintenance scheduling. As a proof of concept, the proposed model is partially developed and validated, using readily available data and additional condition monitoring.
In the field research phase of this thesis, valve vibration signals were gathered from a mud pump during a geothermal drilling project in Delft. From these signals, dimensionless features were extracted and used in a Fuzzy Logic (FL) classifier combined with Weibull Accelerated Failure Time (WAFT) modelling for dynamic Remaining Useful Life (RUL) prediction. In the case study, where synthetic valve failure is induced in historical operational data, the model demonstrated its ability to predict these failures on time. Maintenance actions were suggested by the model when components reached 93% of their theoretical lifetime, preventing excessive maintenance and minimising disruption to drilling operations through integrated scheduling.
In the field research phase of this thesis, valve vibration signals were gathered from a mud pump during a geothermal drilling project in Delft. From these signals, dimensionless features were extracted and used in a Fuzzy Logic (FL) classifier combined with Weibull Accelerated Failure Time (WAFT) modelling for dynamic Remaining Useful Life (RUL) prediction. In the case study, where synthetic valve failure is induced in historical operational data, the model demonstrated its ability to predict these failures on time. Maintenance actions were suggested by the model when components reached 93% of their theoretical lifetime, preventing excessive maintenance and minimising disruption to drilling operations through integrated scheduling.
In the 21st century, maritime landscape is confronted with issues such as congestion and delays due to the ever increasing maritime trade volumes.
This thesis explores the possibility of utilizing the concept of amphibious vehicles as a potential solution to address the issue of congestion and enabling the autonomous container terminal operations. For this research, an agent based model is developed to study the impact of amphibious vehicles on space optimization and reduction of material handling equipment within a given port region. The study analyses the performance of the proposed concept over several key performance indicators such as time taken by a handling equipment from origin to destination, container throughput, handling equipment fleet size and container demand fulfilment rate. The developed simulation model is then applied to the chosen case study of the port of Rotterdam. Additionally, the study also performs a sensitivity analysis to simulate how container demand variations affects the efficiency of logistic chains with these amphibious vehicles. This thesis highlights the effect of these amphibious vehicles on tackling problems faced by container terminals due to increased global trade. Through an extensive analysis of existing literature and developed model, this thesis provides valuable insights into the future of container terminal operations. ...
This thesis explores the possibility of utilizing the concept of amphibious vehicles as a potential solution to address the issue of congestion and enabling the autonomous container terminal operations. For this research, an agent based model is developed to study the impact of amphibious vehicles on space optimization and reduction of material handling equipment within a given port region. The study analyses the performance of the proposed concept over several key performance indicators such as time taken by a handling equipment from origin to destination, container throughput, handling equipment fleet size and container demand fulfilment rate. The developed simulation model is then applied to the chosen case study of the port of Rotterdam. Additionally, the study also performs a sensitivity analysis to simulate how container demand variations affects the efficiency of logistic chains with these amphibious vehicles. This thesis highlights the effect of these amphibious vehicles on tackling problems faced by container terminals due to increased global trade. Through an extensive analysis of existing literature and developed model, this thesis provides valuable insights into the future of container terminal operations. ...
In the 21st century, maritime landscape is confronted with issues such as congestion and delays due to the ever increasing maritime trade volumes.
This thesis explores the possibility of utilizing the concept of amphibious vehicles as a potential solution to address the issue of congestion and enabling the autonomous container terminal operations. For this research, an agent based model is developed to study the impact of amphibious vehicles on space optimization and reduction of material handling equipment within a given port region. The study analyses the performance of the proposed concept over several key performance indicators such as time taken by a handling equipment from origin to destination, container throughput, handling equipment fleet size and container demand fulfilment rate. The developed simulation model is then applied to the chosen case study of the port of Rotterdam. Additionally, the study also performs a sensitivity analysis to simulate how container demand variations affects the efficiency of logistic chains with these amphibious vehicles. This thesis highlights the effect of these amphibious vehicles on tackling problems faced by container terminals due to increased global trade. Through an extensive analysis of existing literature and developed model, this thesis provides valuable insights into the future of container terminal operations.
This thesis explores the possibility of utilizing the concept of amphibious vehicles as a potential solution to address the issue of congestion and enabling the autonomous container terminal operations. For this research, an agent based model is developed to study the impact of amphibious vehicles on space optimization and reduction of material handling equipment within a given port region. The study analyses the performance of the proposed concept over several key performance indicators such as time taken by a handling equipment from origin to destination, container throughput, handling equipment fleet size and container demand fulfilment rate. The developed simulation model is then applied to the chosen case study of the port of Rotterdam. Additionally, the study also performs a sensitivity analysis to simulate how container demand variations affects the efficiency of logistic chains with these amphibious vehicles. This thesis highlights the effect of these amphibious vehicles on tackling problems faced by container terminals due to increased global trade. Through an extensive analysis of existing literature and developed model, this thesis provides valuable insights into the future of container terminal operations.