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| report:conc [2026/06/11 14:29] – [Future Development] team3 | report:conc [2026/06/11 18:25] (current) – [Achievements] team3 |
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| ===== Conclusions ===== | ===== Conclusions ===== |
| ==== Achievements ==== | ==== Achievements ==== |
| //Discuss here what was achieved (wrt the initial objectives) and what is missing (wrt the initial objectives) of the project.// | The main objective of the TRAQUA project was to develop a smart water bottle that encourages healthy hydration habits while providing users with feedback on the quality of their drinking water. This objective was successfully addressed through the development of a functional prototype and a companion mobile application. |
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| | The prototype is capable of monitoring water quality through TDS and temperature measurements, providing users with real-time information about the water they consume. It also integrates an activated carbon filter and a UV-C disinfection module to improve water and bottle hygiene. In addition, daily water intake can be tracked through a mobile application connected to the bottle via Bluetooth. The project also achieved its objective of creating a portable and user-friendly product concept while incorporating safety features such as a magnetic reed-switch mechanism to prevent accidental UV-C exposure. |
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| | Some objectives were only partially achieved. While the system provides an indication of water quality, it cannot directly detect specific contaminants, microorganisms, or chemical pollutants. Furthermore, advanced personalized hydration recommendations and a complete gamification system with challenges, rewards, and streaks were not fully implemented within the project timeframe. Nevertheless, the project successfully demonstrated the feasibility of combining hydration tracking, water-quality monitoring, filtration, UV-C disinfection, and mobile connectivity into a single integrated solution. |
| ==== Limitations ==== | ==== Limitations ==== |
| //Identify here the limitations of the solution and prototype.// | Although the prototype demonstrates the core functionality of the TRAQUA concept, several limitations remain. |
| | The water quality assessment relies mainly on TDS and temperature measurements. While these parameters provide useful information regarding mineral content and general water conditions, they cannot identify specific contaminants, heavy metals, or chemical pollutants. Thats why, the system should be considered an initial water-quality indicator rather than a complete water-safety solution. |
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| | The UV-C disinfection system was designed with multiple safety measures, including a magnetic reed-switch interlock. However, the effectiveness of the sterilization process depends on factors such as exposure time, water clarity, and component positioning. Comprehensive microbiological validation was beyond the scope of this project. |
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| | The prototype was developed under strict budget and time constraints, resulting in the use of commercially available development boards and sensor modules. As a result, the system is larger, less energy-efficient, and less integrated than a commercial product would be. Battery life, waterproofing, mechanical durability, and long-term reliability have not yet been fully optimized. |
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| | Finally, the project exceeded the initial budget target, demonstrating that further cost optimization would be necessary before mass-market production. Future work should focus on custom electronics, sensor downsizing, extended field testing, certification, and refinement of the user experience to transform the prototype into a commercially viable product. |
| ==== Future Development ==== | ==== Future Development ==== |
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