سیویلیکا را در شبکه های اجتماعی دنبال نمایید.

Evaluation of Tidal Energy Potential Using a Two-Way Tidal Energy Model

Publish Year: 1403
Type: Journal paper
Language: English
View: 53

This Paper With 23 Page And PDF Format Ready To Download

Export:

Link to this Paper:

Document National Code:

JR_CEJ-10-9_016

Index date: 8 November 2024

Evaluation of Tidal Energy Potential Using a Two-Way Tidal Energy Model abstract

Tidal energy is a renewable energy source that provides sustainable energy through the utilization of tidal differences, making it a very promising option. This study examines a more effective tidal energy reservoir model by building a 1:100 scale prototype in the laboratory with several predetermined variations, namely an earthen pond (100, 80, and 60 cm), and flow holes (1.5, 1, and 0.5 cm) with initial tidal height differences of 10 cm, 15 cm, and 20 cm. The model uses a 6-hour time period, which corresponds to a semidiurnal tidal model. The results showed that the highest energy output was 281.84 kWh, achieved with a 1.5 cm flow hole, 20 cm tidal height difference for the initial condition, and 80 cm pond width. For a 1 cm flow hole, the outputs were 1774.8 kWh and 1803.78 kWh for 15 cm and 20 cm tidal height difference for the initial condition with a pond width of 100 cm. Meanwhile, the 0.5 cm flow hole produces potential energy outputs of 2623.8 kWh and 2611.4 kWh for different tidal heights of 15 cm and 20 cm for the initial condition with a pond width of 100 cm. Better model performance can be connected to a mini generator to validate the energy generated from the designed prototype model. Doi: 10.28991/CEJ-2024-010-09-016 Full Text: PDF

Evaluation of Tidal Energy Potential Using a Two-Way Tidal Energy Model Keywords:

Evaluation of Tidal Energy Potential Using a Two-Way Tidal Energy Model authors

مراجع و منابع این Paper:

لیست زیر مراجع و منابع استفاده شده در این Paper را نمایش می دهد. این مراجع به صورت کاملا ماشینی و بر اساس هوش مصنوعی استخراج شده اند و لذا ممکن است دارای اشکالاتی باشند که به مرور زمان دقت استخراج این محتوا افزایش می یابد. مراجعی که مقالات مربوط به آنها در سیویلیکا نمایه شده و پیدا شده اند، به خود Paper لینک شده اند :
Yi, J., Dai, S., Li, L., & Cheng, J. (2024). ...
Bogdanov, D., Ram, M., Aghahosseini, A., Gulagi, A., Oyewo, A. ...
Rahman, A., Farrok, O., & Haque, M. M. (2022). Environmental ...
Pasaribu, R., Kabul Pranoto, A., Rahman, A., & Ayu, D. ...
Li, Z., Siddiqi, A., Anadon, L. D., & Narayanamurti, V. ...
Nurman, S., Kurniawan, D., & Azis, M. (2024). Overview of ...
Mamat, R., Sani, M. S. M., & Sudhakar, K.J.S.O.T.T.E. (2019). ...
Qin, Z., Tang, X., Wu, Y. T., & Lyu, S. ...
Serowaniec, M. (2021). Sustainable development policy and renewable energy in ...
Korte, A., Windt, C., & Goseberg, N. (2024). Review and ...
Li, L., Gao, Y., Yuan, Z., Day, S., & Hu, ...
Sa’adi, Z., Ismail, A. Z., Yusop, Z., & Mohamad Yusof, ...
Koto, J., Arief, D. S., Tasri, A., & Kamil, I. ...
Naberezhnykh, A., Ingram, D., Ashton, I., & Culina, J. (2023). ...
Mariswamy, M. M. (2022). An Exploration of Tidal Energy Generation ...
Khare, V., Khare, C. J., & Bhuiyan, M. A. (2023). ...
Finnegan, W., Jiang, Y., Meier, P., Hung, L. C., Fagan, ...
Khojasteh, D., Shamsipour, A., Huang, L., Tavakoli, S., Haghani, M., ...
Vandercruyssen, D., Baker, S., Howard, D., & Aggidis, G. (2022). ...
Vandercruyssen, D., Howard, D., & Aggidis, G. (2022). A model ...
Junianto, S., Purnamasari, I., Habibi, M. N., Daffa, M. Z., ...
Khurshid, H., Mohammed, B. S., Al-Yacoubya, A. M., Liew, M. ...
Abdalla, A. N., Nazir, M. S., Tao, H., Cao, S., ...
Wulandari, S., Ismanto, A., & Sugianto, D. N. (2023, August). ...
Sleiti, A. K. (2017). Tidal power technology review with potential ...
Khalid, S. S., & Shah, Z. L. N. (2013). Research ...
Prakoso, S. A. A., & Mulyanto, T. (2022). Design and ...
Vidura, A., W, R. L., Studi, P., Energi, K., Pertahanan, ...
Khare, V., & Bhuiyan, M. A. (2022). Tidal energy-path towards ...
Pelc, R., & Fujita, R. M. (2002). Renewable energy from ...
Do, H. T., Nguyen, T. B., & Ly, T. M. ...
Suryaningsih, R. (2014). Study on wave energy into electricity in ...
Kangaji, L., Orumwense, E., & Abo-Al-ez, K. (2022). Modelling and ...
Peng, X., Liu, Z., & Jiang, D. (2021). A review ...
Ding, Y., Bao, X., Yu, H., & Kuang, L. (2012). ...
Langer, J., Quist, J., & Blok, K. (2021). Review of ...
Hanousek, N. (2023). Numerical Modelling of Tidal Energy Devices and ...
Sahir, M. H., & Qureshi, A. H. (2008). Assessment of ...
Dona Yustea (2015). Aplikasi Termodinamika Dalam Bidang Kelautan. Available online: ...
Rakhman.net (2024). Pembangkit Listrik Pasang Surut Air Laut (Energi Tidal). ...
Marinas.com (2024). Annapolis Tidal Power Generating Station, North Landmark. Available ...
Skiarski, A., Faedo, N., & Ringwood, J. V. (2024). Optimisation ...
Charlier, R. H. (2007). Forty candles for the Rance River ...
Khare, V., Khare, C., Nema, S., & Baredar, P. (2019). ...
Li, Y., & Ma, C. (2020). Development and management of ...
Li, Y., & Pan, D. Z. (2017). The ebb and ...
Chaineux, M. C., & Charlier, R. H. (2008). Women's tidal ...
Wang, Z. J., & Wang, Z. W. (2019, March). A ...
نمایش کامل مراجع