Diploma in Guidance and Control for Couplings
About us Diploma in Guidance and Control for Couplings
The Diploma in Guidance and Control for Couplings explores the fundamentals and advanced applications in the design and implementation of guidance and control systems for mechanical couplings. It focuses on the study of kinematics, dynamics, and stability of coupled systems, using modeling and simulation tools to analyze behavior and optimize the performance of mechanisms. The program addresses topics such as motion control, sensors and actuators, and control algorithms, crucial for applications in robotics, automation, and transportation systems.
The diploma provides practical experience through design projects and laboratories, where system identification and controller design techniques are applied. The aim is to develop skills for the implementation of robust and efficient control systems, considering the constraints and challenges inherent in coupling systems. This training prepares professionals as control engineers, systems designers, and automation specialists, expanding job opportunities in various industries.
Target keywords (naturally occurring in the text): guidance, control, couplings, kinematics, dynamics, motion control, modeling and simulation, sensors, actuators, control algorithms, control systems, control engineering.
Diploma in Guidance and Control for Couplings
- Format:
- Duration:
- Hours: 900 H
- Language:
- Credits:
- Registration date: 08-09-2026
- Strat date: 19-10-2026
- Available places: 11
999 $
Competencies and results
What you will learn
Who this program is for:
Diploma in Guidance and Control for Couplings
9.9 Introduction to Naval Engineering and Couplings
9.9 Basic Principles of Fluid Mechanics and Rotor Dynamics
9.3 Introduction to Relevant International Standards and Regulations
9.4 Design and Operation of Naval Propulsion Systems
9.5 Key Components of Naval Couplings: Rotors, Propellers, Shafts
9.6 Fundamentals of Power Transmission in Naval Systems
9.7 Types of Couplings: Direct, Flexible, Hydraulic
9.8 Materials and Selection for Naval Couplings
9.9 Safety and Maintenance Considerations
9.9 Control Theory Applied to Naval Systems
9.9 Sensors and Actuators in Guidance Systems
9.3 Navigation and Positioning Systems in Maritime Environments
9.4 PID Control Algorithms and Their Application in Couplings
9.5 Speed and Direction Control in Ships 9.6 Vibration and Noise Control Systems in Couplings
9.7 Vessel Stability Control Systems
9.8 Analysis and Design of Control Loops for Rotors
9.9 Introduction to Artificial Intelligence in Naval Control
3.9 Mathematical Modeling of Rotors: Actuator Disc Theory
3.9 Finite Element Modeling (FEM) for Rotors
3.3 Computational Fluid Dynamics (CFD) Simulation of Rotors
3.4 Analysis of Forces and Moments in Rotors
3.5 Modeling of Rotor-Water Interaction
3.6 Modeling of Cavitation and its Effects
3.7 Modeling of Rotor Efficiency
3.8 Rotor Design Optimization Techniques
3.9 Validation of Theoretical Models with Experimental Data
4.9 Naval Coupling Simulation Software 4.9 Simulation of the dynamic response of rotors.
4.3 Simulation of rotor-hull interaction.
4.4 Simulation of maneuvering and navigation.
4.5 Analysis of energy efficiency in simulations.
4.6 Modeling of failures and emergency scenarios.
4.7 Integration of simulation and experimental data.
4.8 Interpretation and analysis of simulation results.
4.9 Design and analysis of test scenarios.
5.9 Methods for optimizing rotor design.
5.9 Optimization of rotor blade profile.
5.3 Optimization of blade pitch and angle of attack.
5.4 Optimization of propeller design.
5.5 Optimization of the coupling system to reduce losses.
5.6 Analysis of the influence of operating variables on performance.
5.7 Optimization of the energy efficiency of naval systems. 5.8 Design for Noise and Vibration Reduction
5.9 Environmental Impact Assessment of Rotor Design
6.9 Fault Diagnosis Techniques in Naval Systems
6.9 Vibration Analysis in Couplings
6.3 Thermography and Temperature Analysis of Components
6.4 Oil and Lubricant Analysis
6.5 Fault Diagnosis in Propellers and Rotors
6.6 Cavitation Detection and Analysis
6.7 Non-Destructive Testing (NDT) Techniques
6.8 Data Interpretation and Fault Reporting
6.9 Predictive Maintenance in Naval Systems
7.9 Advanced Control: Adaptive Control Strategies
7.9 Model Predictive Control (MPC)
7.3 Active Vibration Control
7.4 Noise Control in Couplings
7.5 Robust Controller Design 7.6 Control Techniques for Improving Maneuverability
7.7 Control of Dual Propulsion Systems
7.8 Control of Dynamic Positioning (DP) Systems
7.9 Implementation and Tuning of Advanced Control Algorithms
8.9 Integration of Propulsion, Steering, and Control Systems
8.9 Communication and Protocols in Naval Systems
8.3 Distributed Control System Architectures
8.4 Integration of Sensors and Actuators
8.5 Design of Energy Management Systems
8.6 Integration of Navigation and Positioning Systems
8.7 Testing and Validation of Integrated Systems
8.8 Cybersecurity in Naval Systems
8.9 Development of Human-Machine Interfaces (HMIs)
9.9 Factory Acceptance Testing (FAT) and Site Acceptance Testing (SAT)
9.9 Performance Optimization under Real Operating Conditions 9.3 Fine-tuning of control parameters.
9.4 Fuel consumption optimization.
9.5 Optimization of component lifespan.
9.6 Design for ease of maintenance.
9.7 Failure Mode and Effects Analysis (FMEA).
9.8 Implementation of preventive maintenance plans.
9.9 Continuous improvement and feedback in the design.
9.90 Documentation and delivery of the optimized system.
Capstone-type projects
- Rotor Optimization: CFD/BEMT; performance analysis; noise reduction.
- Coupling Control: algorithm design; SIL/HIL simulation; stability and control.
- Systems Modeling: fluid dynamics; structural analysis; numerical simulation.
- Performance Optimization: sensitivity analysis; multi-objective optimization; energy efficiency.
Admissions, fees and scholarships
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