Robotics Exhibition at DCAC Delhi | Robotic Sir | Robotic Sir
event
Robotic Sir Exhibition at DCAC Delhi
When
Where
Delhi College of Arts and Commerce (DCAC), New Delhi, Delhi
On February 24, 2025, Founder Piyush Bafna Jain and the Robotic Sir AI India Private Limited team conducted a full-day Robotics Innovation Exhibition at Delhi College of Arts and Commerce (DCAC), Delhi. The exhibition introduced students and faculty to developments in industrial robotics, automation, artificial intelligence, emerging robotic technologies, and the engineering skills required to build and deploy intelligent hardware systems.
The event combined technology showcases with discussions on India's growing robotics ecosystem, including automation across electronics manufacturing, automotive and electric vehicles, logistics and warehousing, collaborative robots, Robotics-as-a-Service, AI-driven 3D vision, and indigenous hardware development.
Key takeaway: India's transition from conventional automation to intelligent robotics is creating opportunities for engineers who can combine software with electronics, embedded systems, sensors, mechanics, control systems, and AI.
Event Highlights
The exhibition connected students with practical robotics technologies and broader industry trends shaping automation in India.
Robotics innovation and technology showcase
Indian robotics industry and market discussion
Electronics manufacturing and automation trends
Automotive and EV robotics
Warehouse automation and Autonomous Mobile Robots
Collaborative robots and Robotics-as-a-Service
AI-powered 3D vision systems
Indigenous robotics hardware and engineering skills
Indian Robotics Industry and Market Growth
The exhibition explored the factors contributing to increased robotics adoption across Indian industries. The discussion covered the role of manufacturing expansion, government initiatives, automation requirements, and the growing demand for intelligent production systems.
Industry Growth and Government Support
Piyush Bafna Jain discussed the economic and policy factors encouraging manufacturers to adopt robotics and automation. The session highlighted the role of government manufacturing initiatives and production-linked incentives in sectors such as automotive, electronics, semiconductors, and advanced manufacturing.
The market figures presented during the exhibition were used to illustrate the scale of the opportunity and the increasing importance of automation in India's manufacturing ecosystem.
Key learning point: Industrial robotics adoption is closely connected to manufacturing growth and automation requirements.
Application: Automated systems support precision, consistency, productivity, and scalable production.
Result: Students gained a broader understanding of the economic forces driving robotics adoption.
Sector-Specific Automation Trends
The exhibition examined how different industries are using robotics to address production, quality, logistics, and workforce challenges.
Electronics Manufacturing
Electronics manufacturing is increasingly using robotic systems for precision assembly, pick-and-place operations, Automated Optical Inspection (AOI), and Surface-Mount Technology (SMT) processes.
The discussion connected the growth of electronics manufacturing with the need for accurate, repeatable, and high-speed automation.
Key learning point: Electronics production requires highly precise and repeatable robotic processes.
Application: Robotic arms, inspection systems, and automated assembly equipment.
Result: Students learned how robotics supports high-volume electronics manufacturing.
Automotive and Electric Vehicles
The automotive industry remains an important area for industrial robot deployment. The exhibition discussed applications including battery pack assembly, laser welding, coating, material handling, and other automated manufacturing processes associated with the transition toward electric vehicles.
Key learning point: EV manufacturing introduces new automation requirements across battery and vehicle production.
Application: Robotic assembly, welding, coating, inspection, and material handling.
Result: Students connected robotics with the changing requirements of automotive manufacturing.
Logistics, Warehousing and Supply Chains
The session also explored Autonomous Mobile Robots (AMRs) and Automated Guided Vehicles (AGVs) used in modern logistics and warehousing environments.
These systems can support automated movement, sorting, storage, and material transportation in high-volume facilities.
Key learning point: Robotics is expanding beyond factory floors into logistics and supply-chain operations.
Application: Automated warehouses, sorting systems, material transportation, and fulfilment centres.
Result: Students learned how autonomous mobile systems are changing warehouse operations.
Emerging Robotics Technologies
The exhibition highlighted several technology shifts that are influencing the next generation of robotics systems.
Collaborative Robots and Robotics-as-a-Service
Collaborative robots, or cobots, are designed for applications where robots and people can work in closer proximity under appropriate safety systems. Their flexibility makes them particularly relevant to manufacturers that may not require large traditional robotic installations.
The session also introduced Robotics-as-a-Service (RaaS), where organisations can access robotic capabilities through subscription or operational models instead of making a large upfront capital investment.
Key learning point: New deployment models can make robotics more accessible to smaller and mid-sized businesses.
Application: Assembly, machine tending, welding, inspection, and flexible production.
Result: Students understood how both technology and business models influence robotics adoption.
AI and 3D Vision Systems
The exhibition discussed the evolution from fixed-trajectory automation toward intelligent systems capable of responding to changing physical environments.
AI-powered 3D vision can help robots understand object position, shape, orientation, and spatial relationships for applications such as quality inspection and unstructured bin picking.
Key learning point: Perception enables robots to respond to environments rather than simply repeat fixed movements.
Application: Inspection, sorting, picking, quality control, and adaptive manipulation.
Result: Students saw how computer vision and AI can make industrial robots more flexible.
Indigenous Robotics Hardware
The session also discussed the importance of developing domestic capabilities in robotics hardware and engineering. Topics included embedded systems, electronics, sensors, mechanical systems, and other components required to build complete robotic platforms.
Key learning point: Building competitive robotics systems requires expertise across multiple engineering disciplines.
Result: Students gained insight into the hardware skills needed to participate in India's robotics ecosystem.
Engineering Skills and the Robotics Opportunity
Addressing students and faculty, Piyush Bafna Jain highlighted the importance of developing practical engineering skills alongside software knowledge.
The discussion focused on areas such as embedded systems, PCB design, semiconductor fundamentals, sensors, electronics, mechanical engineering, control systems, and system integration.
Bridging the Hardware and Software Skill Gap
Modern robotics requires engineers who can work across hardware and software boundaries. A robotic system may combine microcontrollers, sensors, motor drivers, communication protocols, mechanical structures, control algorithms, and AI models.
Key learning point: Robotics engineering is inherently multidisciplinary.
Application: Embedded robotics, autonomous systems, industrial automation, and intelligent machines.
Result: Students were encouraged to develop practical hardware and software skills together.
Event FAQ
Frequently asked questions
Answers about Robotic Sir Exhibition at DCAC Delhi.
It was a full-day Robotics Innovation Exhibition held on February 24, 2025, at Delhi College of Arts and Commerce (DCAC), Delhi. The event explored robotics technologies, industrial automation, emerging industry trends, and engineering skills.
Participants learned about industrial robotics, electronics manufacturing, automotive and EV automation, warehouse robotics, cobots, Robotics-as-a-Service, AI-powered 3D vision, and robotics hardware engineering.
The exhibition covered collaborative robots, Autonomous Mobile Robots, Automated Guided Vehicles, AI-driven vision systems, industrial automation, robotic manufacturing, and emerging approaches to robotics hardware development.
The exhibition was conducted by Founder Piyush Bafna Jain and the Robotic Sir AI India Private Limited team.
The event was held at Delhi College of Arts and Commerce (DCAC), Delhi, India.
Robotic Sir focuses on practical robotics and AI learning through exhibitions, workshops, guest lectures, hands-on projects, and engineering-focused learning experiences covering hardware, embedded systems, programming, sensors, and intelligent automation.
Conclusion
The Robotic Sir Exhibition at DCAC Delhi gave students and faculty an opportunity to explore the technologies and industry forces shaping India's robotics ecosystem. By combining industry insights with practical technology discussions, the event demonstrated how robotics is expanding across manufacturing, automotive, electronics, logistics, and intelligent automation.
The exhibition also highlighted the importance of multidisciplinary engineering skills. Future robotics professionals will need to understand not only AI and software, but also electronics, embedded systems, sensors, mechanics, control systems, and physical hardware.
Robotic Sir continues to connect students with practical robotics, AI, automation, and engineering through hands-on learning and industry-focused experiences.
Photos
Keep building
Continue your robotics journey
Turn the ideas from this event into skills, projects, and future opportunities with Robotic Sir.