AI AI-powered digital twins smart is a M.Tech project topic for Environmental Engineering. It gives students a clear starting point for research, implementation planning, and documentation.
AI AI-powered digital twins smart Project Details
| Abstract |
Combining artificial intelligence (AI) with digitalβtwin technology is changing how we design smart, green, and zeroβenergy buildings. This research area gives a clear way to assess the newest computer tools that aim to improve environmental sustainability. By pulling together methods from recent studies, the framework helps you review and plan the use of AIβbased prediction models, realβtime thermalβcomfort control, and automated energyβmanagement systems. It looks at linking Building Information Modeling (BIM) with live sensor networks to create detailed virtual copies of buildings that can predict energy use, indoor air quality, and carbon emissions. The work also discusses major hurdles such as making data from different sources work together, integrating sensors,
and scaling algorithms for many climate zones. This document acts as a fullβfeatured guide for organizing research on intelligent building controls. It offers stepβbyβstep procedures to simulate building performance, assess decarbonization options, and set solid benchmarks for meeting netβzero energy targets in todayβs cities. Using this approach, researchers can compare the cost of more complex calculations with the energy savings they provide.
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| Reference Paper |
AI and AI-powered digital twins for smart, green, and zero-energy buildings: A systematic review of leading-edge solutions for advancing environmental sustainability goals. |
| Domain |
Environmental Engineering |
| Sub-Domain |
Sustainable Systems / Climate & Sustainability / Net-Zero Buildings |
| PDF Download |
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| Get Help |
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