PENGARUH KEMIRINGAN STRAIGHT BLADE TERHADAP PENINGKATAN KEMAMPUAN SELF-STARTING TURBIN HIDROKINETIK ARTICULATING H-ROTOR
DOI:
https://doi.org/10.26623/teknika.v16i2.3981Keywords:
articulating h-rotor, hydrokinetic, self-starting, flow velocity distributionAbstract
The Articulating of H-Rotor is a development of the turbine from H-Darrieus which has a straight blade tilted with the aim of correcting poor self-starting due to the dominance of lift force. How likely is the influence of straight blade slope on turbine performance and it is important to be examined. The aim of this study was to find out the effect of the straight blade slope of the Articulating H-Rotor turbine to increase the self-starting ability. Hydrokinetic turbine experimental test method was carried out in a water channel (flume) using 3 NACA 0018 profile blades with varying inclination angles of 0o (vertical blade), 30o (inflated blade) and -30o (cupped blade). The result indicated that the Articulating H-Rotor hydrokinetic turbine with a blade slope of 0o had a larger RPM value and it was more dominant in working with lift force. The Articulating H-Rotor hydrokinetic turbine with a blade tilted of 30o provides higher torque and increases drag, increasing self-starting for rotation. The shape of the turbine frontal area with a blade slope of 30o was better able to respond the kinetic energy that raised from the flow velocity distribution profile of the water flow. The results of this study can contribute to the design of the tilted blade H-Darrieus turbine.References
Antomo, T., Kamiana, I. M., & Nindito, D. A. (2020). Analisis Pengembangan Hidrokinetik Turbin Gorlov Akibat Penambahan Luas Bidang Tangkap. Teknika: Jurnal Sains Dan Teknologi, 16(2), 159 170. https://dx.doi.org/10.36055/tjst.v16i2.9186
Arab, A., Javadi, M., Anbarsooz, M., & Moghiman, M. (2017). A Numerical Study on the Aerodynamic Performance and the Self-Starting Characteristics of a Darrieus Wind Turbine Considering its Moment of Inertia. Renewable Energy, 107, 1 29. https://doi.org/10.1016/j.renene.2017.02.013
Asr, M. T., Nezhad, E. Z., Mustapha, F., & Wiriadidjaja, S. (2016). Study on Start-Up Characteristics of H-Darrieus Vertical Axis Wind Turbines Comprising NACA 4-Digit Series Blade Airfoils. Energy, 112, 528 537. https://doi.org/10.1016/j.energy.2016.06.059
Batista, N. C., Mel cio, R., Mendes, V. M. F., Calder ³n, M., & Ramiro, A. (2015). On a Self-Start Darrieus Wind Turbine: Blade Design and Field Tests. Renewable and Sustainable Energy Reviews, 52, 508 522. https://doi.org/10.1016/j.rser.2015.07.147
Bianchini, A., Ferrari, L., & Magnani, S. (2016). Start-Up Behavior of a Three-Bladed H-Darrieus VAWT: Experimental and Numerical Analysis. Proceedings of the ASME Turbo Expo (2011) 1 811-820, 1, 1 10. https://doi.org/10.1115/GT2011-45882
Bruce, E. B., Riversong, D., & Eagle. (2010). Vertical Axis Wind Turbine with Articulating H-Rotor. No. US 7,677,862 B2
Brusca, S., Cucinotta, F., Galvagno, A., Lanzafame, R., Mauro, S., & Messina, M. (2015). Oscillating Water Column Wave Energy Converter by means of straight-bladed Darrieus turbine. Energy Procedia, 82, 766 773. https://doi.org/10.1016/j.egypro.2015.11.809
Dai, Y. M., Gardiner, N., Sutton, R., & Dyson, P. K. (2011). Hydrodynamic Analysis Models for the Design of Darrieus-Type Vertical-Axis Marine Current Turbines. Proceedings of the Institution of Mechanical Engineers Part M: Journal of Engineering for the Maritime Environment, 225(3), 295 307. https://doi.org/10.1177/1475090211400684
Ed-Dı̂n Fertahi, S., Bouhal, T., Rajad, O., Kousksou, T., Arid, A., El Rhafiki, T., Jamil, A., & Benbassou, A. (2018). CFD Performance Enhancement of a Low Cut-in Speed Current Vertical Tidal Turbine Through the Nested Hybridization of Savonius and Darrieus. Energy Conversion and Management, 169(February), 266 278. https://doi.org/10.1016/j.enconman.2018.05.027
Erinofiardi, Gokhale, P., Date, A., Akbarzadeh, A., Bismantolo, P., Suryono, A. F., Mainil, A. K., & Nuramal, A. (2017). A Review on Micro Hydropower in Indonesia. Energy Procedia, 110(December 2016), 316 321. https://doi.org/10.1016/j.egypro.2017.03.146
Gorle, J. M. R., Chatellier, L., Pons, F., & Ba, M. (2016). Flow and Performance Analysis of H-Darrieus Hydroturbine in a Confined Flow: A Computational and Experimental Study. Journal of Fluids and Structures, 66, 382 402. http://dx.doi.org/10.1016/j.jfluidstructs.2016.08.003
Khan, M. J., Bhuyan, G., Iqbal, M. T., & Quaicoe, J. E. (2009). Hydrokinetic Energy Conversion Systems and Assessment of Horizontal and Vertical Axis Turbines for River and Tidal Applications: A Technology Status Review. Applied Energy, 86(10), 1823 1835. https://doi.org/10.1016/j.apenergy.2009.02.017
Kirke, B. K., & Lazauskas, L. (2011). Limitations of Fixed Pitch Darrieus Hydrokinetic Turbines and the Challenge of Variable Pitch. Renewable Energy, 36(3), 893 897. https://doi.org/10.1016/j.renene.2010.08.027
Nakashima, K., Watanabe, S., Matsushita, D., Tsuda, S., & Furukawa, A. (2016). Performance Prediction of Darrieus-Type Hydroturbine with Inlet Nozzle Operated in Open Water Channels. IOP Conference Series: Earth and Environmental Science, 49(10), 1 10. https://doi.org/10.1088/1755-1315/49/10/102011
Nindito, D.A, Istiarto, & Kironoto, B. (2008). Simulasi Numeris Tiga Dimensi Kantong Lumpur Bendung Sapon. Civil Engineering Forum, XVIII/1, 712 724.
Octauria, E. P., Nindito, D. A., & Saputra, R. H. (2021). Uji Eksperimental Pengaruh Sudut Omni Directional Guide Vanes Terhadap Performa Turbin Hidrokinetik Darrieus. EKSERGI Jurnal Teknik Energi, 17(2), 95 108. https://doi.org/10.32497/eksergi.v17i2.2581
Patel, V., Eldho, T. I., & Prabhu, S. V. (2017). Experimental Investigations on Darrieus Straight Blade Turbine for Tidal Current Application and Parametric Optimization for Hydro Farm Arrangement. In International Journal of Marine Energy (Vol. 17). Elsevier Ltd. https://doi.org/10.1016/j.ijome.2017.01.007
Pratama, A., Nindito, D. A., & Saputra, R. H. (2021). Studi Eksperimental Sistem Pengarah Aliran Pada Turbin Hidrokinetik Archimedes Spiral. Jurnal Teknik, 19(1), 1 11. https://doi.org/10.37031/jt.v19i1.145
Scungio, M., Arpino, F., Focanti, V., Profili, M., & Rotondi, M. (2016). Wind Tunnel Testing of Scaled Models of a Newly Developed Darrieus-Style Vertical Axis Wind Turbine with Auxiliary Straight Blades. Energy Conversion and Management, 130, 60 70. https://doi.org/10.1016/j.enconman.2016.10.033
Shimokawa, K., Furukawa, A., Okuma, K., Matsushita, D., & Watanabe, S. (2012). Experimental Study on Simplification of Darrieus-Type Hydro Turbine with Inlet Nozzle for Extra-Low Head Hydropower Utilization. Renewable Energy, 41, 376 382. https://doi.org/10.1016/j.renene.2011.09.017
Tanier-Gesner, F., Stillinger, C., Bond, A., Egan, P., & Perry, J. (2014). Design, Build and Testing of a Hydrokinetic H-Darrieus Turbine for Developing Countries. IEEE Power and Energy Society General Meeting, 2014-Octob(October), 1 5. https://doi.org/10.1109/PESGM.2014.6939352
Tjiu, W., Marnoto, T., Mat, S., & Ha, M. (2015). Darrieus Vertical Axis Wind Turbine for Power Generation I : Assessment of Darrieus VAWT Configurations. Renewable Energy, 75, 50 67. http://doi.org/10.1016/j.renene.2014.09.038
Wang, Y., Sun, X. J., Zhu, B., Zhang, H. J., & Huang, D. G. (2016). Effect of Blade Vortex Interaction on Performance of Darrieus-Type Cross Flow Marine Current Turbine. Renewable Energy, 86, 316 323. http://dx.doi.org/10.1016/j.renene.2015.07.089
Wardani, C. S., Nindito, D. A., & Jaya, A. R. (2020). Inovasi dan Desain Turbin Hidrokinetik Darrieus Berdasarkan Bentuk Distribusi Kecepatan Aliran. Media Ilmiah Teknik Sipil, 9(1), 32 43. https://doi.org/10.33084/mits.v9i1.1771
Worasinchai, S., Ingram, G. L., & Dominy, R. G. (2016). The Physics of H-Darrieus Turbine Starting Behavior. Engineering for Gas Turbines and Power, 138(June 2016), 1 11. https://doi.org/10.1115/1.4031870
Yudistira, R., Nindito, D. A., & Saputra, R. H. (2021a). Kinerja Turbin Hidrokinetik Tornado Savonius. Jurnal Teknika: Jurnal Teoritis Dan Terapan Bidang Keteknikan, 4(2), 181 186. https://doi.org/10.52868/jt.v4i2.2732
Yudistira, R., Nindito, D. A., & Saputra, R. H. (2021b). Uji Eksperimental Pengembangan Turbin Hidrokinetik Savonius Berdasarkan Bentuk Profil Distribusi Kecepatan Aliran. RekaRacana: Jurnal Teknik Sipil, 7(1), 1 11. https://doi.org/https://doi.org/10.26760/rekaracana.v7i1.215
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