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International Conference on Materials Engineering Innovations via Blockchain

ICMEB2

8th Jan – 9th Jan 2027 Barcelona, Spain

Official Invitation Letter Available

An official invitation letter will be provided upon successful registration for your participation in the conference.

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Access to All Conference Sessions

Plenary, keynote and parallel sessions

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Official invitation letter after successful registration

Conference Kit / Digital Materials

E-proceedings & resource materials

Access to Keynote Sessions

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Conference Session Tracks

UN SDG Wheel

Aligned with UN Sustainable Development Goals

The conference's session tracks effectively support the following SDGs.

SDG 4 SDG 8 SDG 9 SDG 12
01 Blockchain Applications in Materials Engineering +
This track explores the integration of blockchain technology in materials engineering, focusing on its potential to enhance transparency and traceability in material supply chains. Papers should discuss innovative applications and case studies demonstrating the effectiveness of blockchain in material management.
SDG 9 SDG 12
02 Predictive Modeling Techniques for Material Properties +
This session invites contributions on predictive modeling methodologies tailored for analyzing and forecasting material properties. Emphasis will be placed on the role of machine learning and deep learning techniques in improving predictive accuracy.
SDG 4 SDG 9
03 Supervised and Unsupervised Learning in Material Analysis +
This track focuses on the application of supervised and unsupervised learning algorithms in the analysis of material properties and behaviors. Contributions should highlight novel approaches and their implications for materials engineering.
SDG 4 SDG 9
04 Anomaly Detection in Material Manufacturing Processes +
This session aims to address the challenges of anomaly detection within material manufacturing workflows. Papers should present innovative solutions utilizing machine learning and data analytics to identify and mitigate anomalies.
SDG 9 SDG 12
05 Feature Extraction Techniques for Material Data +
This track emphasizes the importance of feature extraction in enhancing the performance of predictive models in materials engineering. Submissions should explore novel techniques and their impact on model efficiency and accuracy.
SDG 9 SDG 12
06 Workflow Automation in Materials Engineering +
This session will investigate the role of automation in streamlining workflows within materials engineering. Papers should discuss the implementation of automated systems and their effects on productivity and quality assurance.
SDG 8 SDG 9
07 System Monitoring and Predictive Maintenance Strategies +
This track focuses on the development of system monitoring frameworks and predictive maintenance strategies in materials engineering. Contributions should highlight the integration of IoT technologies and data analytics to enhance maintenance practices.
SDG 9 SDG 12
08 Model Evaluation and Validation in Materials Engineering +
This session invites discussions on best practices for model evaluation and validation in the context of materials engineering applications. Papers should provide insights into metrics and methodologies that ensure model reliability and robustness.
SDG 4 SDG 9
09 Industrial IoT Applications in Materials Engineering +
This track explores the intersection of industrial IoT and materials engineering, focusing on how IoT technologies can optimize material usage and performance. Contributions should highlight real-world applications and case studies demonstrating IoT's impact.
SDG 9 SDG 12
10 Resource Allocation and Risk Assessment in Material Projects +
This session addresses the critical aspects of resource allocation and risk assessment in materials engineering projects. Papers should propose frameworks and methodologies that enhance decision-making processes in resource management.
SDG 8 SDG 9
11 Digital Twin Technologies for Material Property Analysis +
This track focuses on the utilization of digital twin technologies for analyzing and simulating material properties and behaviors. Contributions should explore innovative applications and the potential of digital twins in predictive analytics.
SDG 9 SDG 12