Pakistan has still not fully utilized the low head potential of its river,canals, conduits. Rural Areas of pakistan are still not full connected to the national grid. So our motivation is to design and test the archimedes screw turbine and see how it replenishes the power of low head sites in
Design and Fabrication of Mini Archimedes Screw Hydel Turbine
Pakistan has still not fully utilized the low head potential of its river,canals, conduits. Rural Areas of pakistan are still not full connected to the national grid. So our motivation is to design and test the archimedes screw turbine and see how it replenishes the power of low head sites in rural areas of Pakistan.
We first selected a low head site and then calculated the important parameters for our archimedes screw turbine. After that we designed different turbine models having different angle of blades and shapes on SOLID WORKS and after that we did analysis of our different turbine models on ANSYS and Mechanical APDL. From our analysis we determined the most optimized model of out turbine .
Then we build a prototype of our turbine and after doing actual experiments we again did some modifications in our turbine design and finally build our final actual model.
The following are the objectives of this study:
• To generate energy using hydropower.
• To design and refine the turbine blade profile.
• CFD Analysis was used to optimise the design by changing the size, shape, and spacing of the blades for a particular input condition.
• 3D printing will be used to fabricate the turbine.
• To apply this technology in an accessible manner.
• To generate inexpensive and low-cost power.
• To reduce pollution by reducing the usage of fossil fuels in electricity generation.
We first selected a low head site and then calculated the important parameters for our archimedes screw turbine. After that we designed different turbine models having different angle of blades and shapes on SOLID WORKS and after that we did analysis of our different turbine models on ANSYS and Mechanical APDL. From our analysis we determined the most optimized model of out turbine .
Then we build a prototype of our turbine and after doing actual experiments we again did some modifications in our turbine design and finally build our final actual model.
| Item Name | Type | No. of Units | Per Unit Cost (in Rs) | Total (in Rs) |
|---|---|---|---|---|
| Turbine Rotor | Equipment | 1 | 20000 | 20000 |
| Gears | Equipment | 2 | 6000 | 12000 |
| DC Generator/Alternator | Equipment | 1 | 15000 | 15000 |
| Turbine Casing | Equipment | 0 | 12000 | 0 |
| Tachometer | Equipment | 1 | 5000 | 5000 |
| Digital flow meter | Equipment | 1 | 4500 | 4500 |
| Digital Multimeter | Equipment | 1 | 1500 | 1500 |
| Bearings | Equipment | 2 | 3000 | 6000 |
| Bulb | Equipment | 2 | 500 | 1000 |
| Stationary | Miscellaneous | 1000 | 1 | 1000 |
| Printing | Miscellaneous | 2500 | 1 | 2500 |
| Flex banner | Miscellaneous | 4000 | 1 | 4000 |
| Wires | Equipment | 5 | 200 | 1000 |
| Buttons | Miscellaneous | 5 | 200 | 1000 |
| Total in (Rs) | 74500 |
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