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rew430-2
2 Week Advanced Program

Advanced Wind Energy Optimization Skills using AI and Data Analytics

www.eurotraining.com/bro/rew430-2.php

2 Week Job Process Good & Best Practices Training

New Delhi
22 April-3 May 2024
Kualalumpur
6-17 May 2024
London
20-31 May 2024
New York
3-14 June 2024
Seattle, USA
17-28 June 2024
New Delhi
1-12 July 2024
Kualalumpur
15-26 July 2024
New Delhi
29 July - 9 Aug 2024
London
12-23 Aug 2024
New York
26 Aug-6 Sept 2024
Seattle
9-20 Sept 2024
Istanbul
23 Sept-4 Oct 2024
New Delhi
7-18 Oct 2024
Kualalumpur
21 Oct-1 Nov 2024
New Delhi
4-15 Nov 2024
London
18-29 Nov 2024
New York
2-13 Dec 2024
Seattle, USA
16-27 Dec 2024
London
30 Dec 2024- 10 Jan 2025
Dubai
6-17 Jan 2025
Kualalumpur
20-31 Jan 2025
Dubai
3-14 Feb 2025
London
17-28 Feb 2025
New York
2-13 March 2025
Seattle, USA
16-27 March 2025
Istanbul
30 March-10 April 2025
New York
13-24 April 2025
Dubai 27 April-8 May 2025
Kualalumpur 11-22 May 2025
London 25 May-5 June 2025



Wind Energy Optimization Skills Using AI and Data Analytics

Wind Energy Optimization Skills Using AI and Data Analytics

Building Multi-discipline Understanding, Knowledge, Process Understanding, Skills, and Competencies to Perform and Improve each of the Work Performance included in the Program Content Below


Program Overview


The Wind Energy Optimization Skills Using AI and Data Analytics program is an advanced training initiative designed to provide participants with specialized knowledge and skills in leveraging artificial intelligence (AI) and data analytics to optimize the performance and efficiency of wind energy systems. This program aims to empower wind energy engineers, data scientists, researchers, and professionals with expertise in applying cutting-edge technologies to enhance the operation, maintenance, and decision-making processes of wind farms. Program topics cover the key aspects of leveraging AI and data analytics for wind energy optimization.

This Program provides participants with the knowledge and skills to utilize these advanced technologies to enhance wind energy generation, improve system performance, and contribute to the development of a sustainable and efficient wind energy sector.

This two week program provides further insight, process knowledge and comprehensive coverage of advanced areas in wind energy optimization using AI and data analytics.

Program addresses emerging trends, cutting-edge research, and practical considerations, equipping participants with the knowledge and skills to drive innovation and sustainability in the wind energy sector.


Course Objectives


  1. Introduction to AI and Data Analytics in Wind Energy: Participants will gain an understanding of the role of AI and data analytics in improving wind energy systems' efficiency and reducing operational costs.
  2. Data Collection and Preprocessing for Wind Energy Systems: The program will cover data collection methods, sensor technologies, and data preprocessing techniques for wind energy systems.
  3. Machine Learning Algorithms for Wind Energy Optimization: Participants will learn about various machine learning algorithms used for optimizing wind turbine performance, including regression, clustering, and ensemble methods.
  4. AI-Based Wind Resource Assessment: The program will focus on AI-driven techniques for accurate wind resource assessment and forecasting.
  5. Condition Monitoring and Predictive Maintenance: Participants will explore how AI and data analytics can be applied to condition monitoring and predictive maintenance of wind turbines for early fault detection and reduced downtime.
  6. Advanced Wind Turbine Control Strategies: The program will address AI-driven control strategies, such as model predictive control and reinforcement learning, for efficient wind turbine operation.
  7. Wind Farm Layout Optimization: Participants will learn about AI-based wind farm layout optimization to maximize energy production and minimize wake effects.
  8. Energy Forecasting for Wind Farm Operations: The program will cover AI-driven energy forecasting models for efficient wind farm planning and scheduling.
  9. Data-Driven Decision Making in Wind Energy: Participants will understand how to leverage data analytics and AI insights for informed decision-making in wind energy projects.
  10. Grid Integration and Power System Stability: The program will explore the impact of AI and data analytics on grid integration of wind farms for improved power system stability.
  11. Real-Time Monitoring and Remote Control: Participants will learn about real-time monitoring and remote control of wind energy systems using AI-driven technologies.
  12. Optimization of Wind Turbine Blades and Components: The program will address the optimization of wind turbine blades and components using AI-driven design and analysis tools.

Program Content

Wind Energy Optimization Skills Using AI and Data Analytics


Day 1
  • Introduction to Wind Energy Optimization
  • Wind Resource Assessment using Data Analytics
  • Machine Learning for Wind Speed Forecasting
  • AI-Driven Wind Farm Layout Optimization
Day 2
  • Data Analytics for Wind Turbine Performance Monitoring
  • Wind Farm Control and Optimization using AI
  • AI-Based Condition Monitoring and Predictive Maintenance for Wind Turbines
Day 3
  • AI-Enabled Energy Storage Integration for Wind Energy
  • Data Analytics for Wind Power Forecasting and Grid Integration
  • AI for Wind Farm Life Extension and Repowering
Day 4
  • Optimization of Wind Turbine Operations and Maintenance
  • Data Visualization and Decision Support for Wind Energy Systems
  • AI for Wind Energy Economics and Project Feasibility Analysis
Day 5
  • AI and Machine Learning for Wind Energy Research and Development
  • Case Studies and Best Practices
Day 6
  • AI-Driven Wind Turbine Control Strategies
  • Wind Power Prediction and Forecasting using Machine Learning
  • AI-Enabled Wind Farm Layout Design for Complex Terrain
Day 7
  • Data Analytics for Wind Farm Performance Evaluation
  • AI-Driven Fault Diagnosis and Prognostics for Wind Turbines
  • Advanced Control Strategies for Wind Farm Power System Stability
  • Data-Driven Wind Farm Lifecycle Assessment
Day 8
  • AI-Driven Wind Energy Integration in Microgrids
  • Advanced Data Analytics for Wind Turbine Health Monitoring
  • AI-Enabled Hybrid Renewable Energy Systems with Wind
Day 9
  • Data Analytics for Wind Farm Operations and Maintenance Optimization
  • AI-Driven Wind Power Forecasting for Ancillary Services
  • AI and Data Analytics for Wind Energy Grid Integration Studies
  • AI-Based Wind Power Trading and Portfolio Optimization
Day 10
  • Emerging Technologies and Innovations in Wind Energy


Who Should Attend


The program is designed for wind energy engineers, data scientists, researchers, project managers, and professionals interested in advancing their skills in AI and data analytics for wind energy optimization.
  • Wind Energy Optimization using AI and Data Analytics Professionals
  • Wind Farm Operators and Engineers: Wind farm operators and engineers responsible for the operation and maintenance of wind turbines can learn about the use of AI and data analytics to optimize the performance, reliability, and energy output of wind farms. This includes understanding predictive maintenance, condition monitoring, and performance optimization techniques.
  • Wind Energy Project Developers: Wind energy project developers can gain insights into the application of AI and data analytics in site selection, resource assessment, and project design to maximize the energy production and profitability of wind projects.
  • Data Scientists and Analysts: Data scientists and analysts interested in renewable energy and wind power can explore the specific challenges and opportunities in applying AI and data analytics techniques to wind energy data. This includes data preprocessing, feature extraction, predictive modeling, and optimization algorithms.
  • Energy Systems Analysts: Energy systems analysts focusing on wind energy integration and grid stability can learn about AI-driven approaches to optimize the integration of wind power into the grid, including forecasting, ramping prediction, and intelligent control strategies.
  • Researchers and Academics: Researchers and academics in fields such as renewable energy, wind engineering, data science, and AI can gain insights into the latest advancements and research trends in AI and data analytics for wind energy optimization. They can contribute to the development of innovative algorithms and methodologies for improving wind energy performance.
  • Consultants and Advisors: Consultants and advisors specializing in wind energy systems and optimization can enhance their understanding of AI and data analytics techniques. This knowledge can enable them to provide guidance and support to clients in maximizing the performance and profitability of wind energy projects.
  • Wind Turbine Manufacturers and Suppliers: Wind turbine manufacturers and suppliers can explore the potential of AI and data analytics in optimizing turbine design, control systems, and maintenance practices to improve energy capture and turbine performance.
  • Students and Future Professionals: Students pursuing degrees in renewable energy, data science, engineering, or related fields can gain a foundational understanding of AI and data analytics for wind energy optimization. This knowledge can prepare them for careers in wind energy research, project development, data analysis, or wind turbine technology.

Registration Form

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Registration & Fee Information (2 Week Workshops)

  1. Fee information is also available at:   PROGRAM-FEE-PAGE   Special Discounts May be Available Please email scholarships@eurotraining.com.
  2. To register please send us an official letter confirming registration (on organizational letterhead), or, send us a completed registration form above. GET MSWORD REGISTRATION FORM .
  3. Fees are Payable by Bank Transfer or Bank Draft.
    • 2 week (60 hrs) Training Workshop:
      Classroom Training at Dubai, Kuwait, New Delhi, Qatar £6,990 (USD $8,900) per participant.
      Classroom Training at London, US Locations, Europe, Malaysia, Singapore £7,689 (USD $9,790) per participant.
      Online eTraining Fee £3,500 (USD $4,375) per participant.
    • Fee includes Course Materials, Certificate, Refreshments and Lunch (classroom programs).
    • Accommodation is not included in Program fee. Special rates may be available at venue hotel for participants.
    • A Special discount of 10% is offered for participants who pay their fees at least 45 days before start of the program.
    Cancellation & Date Change: No Fee Refund if participant cancels his registration less than 3 weeks before start of the program. Alternate nominations may be allowed if requested atleast 2 weeks before program start. In case of exceptional hardship or emergency participant may be allowed to attend same program at another location or date on payment of 10% of fee.
  4. All participants are required to fill in Participant Information Form and Program Related Questionnaire - on first day of the program.
  5. Each program Undergoes Customization to Better Meet Participant Present and Future Job and Career Needs. Please be prepared to let the Instructor/s know about your organization's Special Needs, Interests or Initiatives.
  6. It is always useful for participants to bring their existing problems or case studies, work-process flow charts or job related problems for discussion - consideration will be at sole discretion of the program director/s.
  7. Provisional Registration : You can make a provisional registration request by sending us an email using an official email account. Provisionsl registration request, when confirmed by Euro Training, will reserve a seat for you for 14 days. After our Confirmation you have 2 weeks to send us an official registration request. Provisional registration is automatically cancelled at the earlier of (1) 2 weeks after Provisional Registration Confirmation if registration is not reconfirmed from your side (2) Two weeks before start of the program. We do request you to inform us ASAP you have decided either way.
  8. Please note All provisional registrations automatically cancel 2 weeks before program start unless confirmed otherwise by us.
  9. Information required for Provisional Registration: Program Title, Location, Dates, Your Organization Name, Your Email Address, Your Mobile Number.

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