Abstract: Water is an essential requirement for human living all throughout the world. Polluted water produces a variety of illnesses and, as a result, reduces human life expectancy. As a result, filtration is required; yet, despite the availability of numerous water filters, there will be a shortage of rational decision-making during water treatment. Our goal is to create a conversationally smart distilling device that can cleanse water from every source. Owing to the use of solar energy, this device is comparatively cheap, transportable, and energy effective. As a result, our purpose is to turn solar energy into clean drinking water as effectively as possible. Sun distilling is a cost-effective method for producing portable water using energy from the sun. This energy is primarily used to evaporate water in a device known as a solar still. Solar stills are utilised in situations when rainfall, pipeline water, or even well water is unavailable, like in isolated houses or even during power cuts. Filtration is one of many methods for purifying water, and solar is one of many sources of thermal energy. Maintaining standardized pH levels for cleansed water necessitates a high level of smart decisions and communications network cooperation. The technological developments, like IoT and AI, are used in this technology. Created the IoT processing unit, which is used to track and manage pH levels. The IoT pH module is in charge of overseeing the pH levels, while the smart pH device is in charge of balancing the pH levels in order to have filtered water at any moment.
Claims:1. Solar distilling method, IoT and AI pH processing device are all part of the development of an intelligently connected distillation device for water purification.
2. Solar distilling turns raw fluid to vapour, which is then absorbed into a water vessel for additional processing. Solar cells that are energy intensive are used in this technique.
3. To control and regulate the water pH levels, the smart IoT operation uses a combo of IoT pH processing modules and smart pH processing units.
, Description:The method of eliminating undesired substances, microbiological pollutants, suspended particles, and gases from polluted water is known as purifying water. The objective is to create filtered environment for drinking use, but filtration can also be tailored to fulfil the needs of medicinal, pharmaceutical, biochemical, and manufacturing uses. One of the procedures that may be utilized to purify water is distilling. This need a usable energy, which can be from heat, power, or radiation from the sun. Solar water filtration is the process of using solar energy for this reason. Sun distilling is a cost-effective method for producing drinkable water utilizing sunlight. To analyze and manage water pH levels, the IoT processing unit combines the benefits of both the IoT pH station and the smart pH station. The layout method for the processing facility comprises of many phases, including an IoT pH section, an Intelligent pH section, as well as a supplying unit for filtered water. The harvested rainwater through solar water distilling is sent to the IoT pH section, that calculates the present pH levels and compares them to the acceptable pH levels of the integrity of the freshwater before sending it to the transmitter device. The intelligent pH section will acquire the pH levels data from the IoT entity, verify the needed computed stirrer to be supplied, and then transmit the data returned to the IoT pH entity for pH to the initial estimated values. The pH levels data is checked by the IoT pH section in a periodic design and in a proforma in between IoT section as well as the intelligence device. Ultimately, if the distilled water reaches the required pH levels, the IOT pH section sends it to the supply unit for collection.
| # | Name | Date |
|---|---|---|
| 1 | 202141055392-COMPLETE SPECIFICATION [30-11-2021(online)].pdf | 2021-11-30 |
| 1 | 202141055392-REQUEST FOR EARLY PUBLICATION(FORM-9) [30-11-2021(online)].pdf | 2021-11-30 |
| 2 | 202141055392-DRAWINGS [30-11-2021(online)].pdf | 2021-11-30 |
| 2 | 202141055392-FORM-9 [30-11-2021(online)].pdf | 2021-11-30 |
| 3 | 202141055392-FIGURE OF ABSTRACT [30-11-2021(online)].jpg | 2021-11-30 |
| 3 | 202141055392-FORM 1 [30-11-2021(online)].pdf | 2021-11-30 |
| 4 | 202141055392-FIGURE OF ABSTRACT [30-11-2021(online)].jpg | 2021-11-30 |
| 4 | 202141055392-FORM 1 [30-11-2021(online)].pdf | 2021-11-30 |
| 5 | 202141055392-DRAWINGS [30-11-2021(online)].pdf | 2021-11-30 |
| 5 | 202141055392-FORM-9 [30-11-2021(online)].pdf | 2021-11-30 |
| 6 | 202141055392-COMPLETE SPECIFICATION [30-11-2021(online)].pdf | 2021-11-30 |
| 6 | 202141055392-REQUEST FOR EARLY PUBLICATION(FORM-9) [30-11-2021(online)].pdf | 2021-11-30 |