Innovative Hardware Design for Biomedical Robotics - 15 Days
Hardware Biomedical Robotics - 15 Days ₹149. Build medical devices with 3D printing.
Course Overview
Program Description
Skills You'll Learn
Projects You'll Work On
Live Project: 3D-Printed Surgical Instrument with Compliant Mechanism
Build a complete 3D-printed surgical instrument with: CAD design of compliant mechanisms, Geometry-first robot design principles, Advanced 3D printing (SLA/SLS), Biocompatible material selection, Embedded electronics integration, Actuation and control system, Testing and quality assurance protocols.
Program Modules
D1: Introduction to Biomedical Hardware Design
Overview of biomedical hardware, medical device lifecycle, regulatory considerations.
D2: Mechatronics Fundamentals
Sensors, actuators, microcontrollers, signal conditioning, and system integration.
D3: CAD for Biomedical Devices
SolidWorks/Fusion 360, CAD fundamentals, parametric modeling, assembly design.
D4: Compliant Mechanisms
Theory of compliant mechanisms, flexure hinges, living hinges, design examples.
D5: Geometry-First Robot Design
Shape-based robot design, using geometry to replace traditional grippers, origami-inspired mechanisms.
D6: Advanced 3D Printing
FDM, SLA, SLS, MJF, medical-grade materials, printing for biocompatibility.
D7: Material Selection
Biocompatible materials, sterilization methods, material properties for medical devices.
D8: Electronic Design for Medical Devices
PCB design, sensor selection, power management, wireless communication (BLE, WiFi).
D9: Embedded Systems for Medical Devices
Arduino/ESP32/STM32 programming, real-time control, safety-critical systems.
D10: Actuation & Power Transmission
Motors (DC, BLDC, stepper), servo control, power transmission mechanisms.
D11: Additive Manufacturing for Medical Devices
3D printing for surgical planning, implants, custom medical devices.
D12: Design for Assembly & Manufacturing
DFA/DFM principles, cost reduction, manufacturability for medical devices.
D13: Testing & Quality Assurance
Testing protocols, QA/QC, validation, regulatory compliance (FDA, CE).
D14: Project Development
Build complete 3D-printed surgical instrument with compliant mechanisms. Full system integration.
D15: Project Presentation & Certification
Final project demo, viva voce, course wrap-up. Present prototype and receive certificate.
Key Features
What You'll Learn
Examination Details
| Exam Name | Full Marks | Pass Marks |
|---|---|---|
| Module-wise Assessment | 100 | 40 |
| Practical Lab Assessment | 100 | 40 |
| Project Evaluation | 100 | 40 |
| Project Viva | 100 | 40 |
Internship Details
Prerequisites
- Basic CAD/design knowledge
- Understanding of basic electronics
- Interest in hardware design
- Biomedical or Engineering background preferred
Target Audience
- B.Tech/M.Tech Biomedical Engineering students
- B.Tech/M.Tech Robotics/Automation students
- B.Tech ECE/EEE/CSE students
- Medical device designers
- Hardware engineers
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