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1Academic Journal
المصدر: 全球能源互联网, Vol 3, Iss 4, Pp 319-327 (2020)
مصطلحات موضوعية: 成本效益分析, 减缓技术, 生态环境影响, 可再生能源发电, 碳捕集与封存, 生物质能, 氢能, Energy industries. Energy policy. Fuel trade, HD9502-9502.5
وصف الملف: electronic resource
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2
المصدر: 全球能源互联网, Vol 3, Iss 4, Pp 319-327 (2020)
مصطلحات موضوعية: 生态环境影响, 可再生能源发电, 成本效益分析, 生物质能, 氢能, 减缓技术, lcsh:HD9502-9502.5, 碳捕集与封存, lcsh:Energy industries. Energy policy. Fuel trade
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3Dissertation/ Thesis
المؤلفون: 陳品穎, Chen, Pin-Ying
المساهمون: 李文傑 李浩仲, Lee, Wen-Chieh Li, Hao-Chung
مصطلحات موضوعية: 可再生能源發電, 自然資源稟賦, 政府政策, 專利新穎性, Renewable energy generation, Natural resource endowment, Government policy, Patent novelty
وصف الملف: 2571928 bytes; application/pdf
Relation: 羅佳真 (2024)。利用專利新穎性指標衡量汽車產業的技術創新。國立政治大學 碩博士生論文。 朱妍儒 (2024)。補貼對專利新穎性與研發能力的影響 - 以HORIZON 2020例。國立政治大學碩博士生論文。 Abban, O. J., Xing, Y. H., Nuţă, A. C., Nuţă, F. M., Borah, P. S., Ofori, C., & Jing, Y. J. (2023). Policies for carbon-zero targets: Examining the spillover effects of renewable energy and patent applications on environmental quality in Europe. Energy Economics, 126, 106954. Aguirre, M., & Ibikunle, G. (2014). Determinants of renewable energy growth: A global sample analysis. Energy policy, 69, 374-384. Al Riza, D. F., & Gilani, S. I.-H. (2014). Standalone photovoltaic system sizing using peak sun hour method and evaluation by TRNSYS simulation. International Journal of Renewable Energy Research, 4(1), 109-114. Al-Shetwi, A. Q. (2022). Sustainable development of renewable energy integrated power sector: Trends, environmental impacts, and recent challenges. Science of The Total Environment, 822, 153645. Altinbilek, D., Seelos, K., & Taylor, R. (2005). Hydropower's role in delivering sustainability. Energy & environment, 16(5), 815-824. Bamati, N., & Raoofi, A. (2020). Development level and the impact of technological factor on renewable energy production. Renewable Energy, 151, 946-955. Bartle, A. (2002). Hydropower potential and development activities. Energy policy, 30(14), 1231-1239. Bayer, P., Dolan, L., & Urpelainen, J. (2013). Global patterns of renewable energy innovation, 1990–2009. Energy for Sustainable Development, 17(3), 288-295. Belabes, B., Youcefi, A., Guerri, O., Djamai, M., & Kaabeche, A. (2015). Evaluation of wind energy potential and estimation of cost using wind energy turbines for electricity generation in north of Algeria. Renewable and sustainable energy reviews, 51, 1245-1255. Beurskens, H. (1999). Trends in the development and implementation of wind energy technology. Bilgili, M., Yasar, A., & Simsek, E. (2011). Offshore wind power development in Europe and its comparison with onshore counterpart. Renewable and sustainable energy reviews, 15(2), 905-915. Castillo, C. P., e Silva, F. B., & Lavalle, C. (2016). An assessment of the regional potential for solar power generation in EU-28. Energy policy, 88, 86-99. Chimres, N., & Wongwises, S. (2016). Critical review of the current status of solar energy in Thailand. Renewable and sustainable energy reviews, 58, 198-207. Dimas, F., Gillani, S., & Ans, M. (2011). Preliminary Investigation into the use of Solar PV Systems for Residential Application in Bandar Sri Iskandar, Malaysia. Journal of Applied Sciences, 11(11), 2012-2017. Enevoldsen, P., & Jacobson, M. Z. (2021). Data investigation of installed and output power densities of onshore and offshore wind turbines worldwide. Energy for Sustainable Development, 60, 40-51. Grubb, M. J., & Meyer, N. I. (1993). Wind energy: resources, systems, and regional strategies. Hatziargyriou, N., & Zervos, A. (2001). Wind power development in Europe. Proceedings of the IEEE, 89(12), 1765-1782. Helm, S., Tannock, Q., & Iliev, I. (2014). Renewable energy technology: evolution and policy implications–evidence from patent literature. Global Challenges Report. WIPO, Geneva. Hille, E., Althammer, W., & Diederich, H. (2020). Environmental regulation and innovation in renewable energy technologies: does the policy instrument matter? Technological Forecasting and Social Change, 153, 119921. Hoogwijk, M., De Vries, B., & Turkenburg, W. (2004). Assessment of the global and regional geographical, technical and economic potential of onshore wind energy. Energy Economics, 26(5), 889-919. Johnstone, N., Haščič, I., & Popp, D. (2010). Renewable energy policies and technological innovation: evidence based on patent counts. Environmental and resource economics, 45, 133-155. la Tour, M.-A. D. (2023). Photovoltaic and wind energy potential in Europe–A systematic review. Renewable and sustainable energy reviews, 179, 113189. Lehner, B., Czisch, G., & Vassolo, S. (2005). The impact of global change on the hydropower potential of Europe: a model-based analysis. Energy policy, 33(7), 839-855. Liu, J., Zuo, J., Sun, Z., Zillante, G., & Chen, X. (2013). Sustainability in hydropower development—A case study. Renewable and sustainable energy reviews, 19, 230-237. Liu, W., Zhang, X., & Feng, S. (2019). Does renewable energy policy work? Evidence from a panel data analysis. Renewable Energy, 135, 635-642. Lopes, F. M., Silva, H. G., Salgado, R., Cavaco, A., Canhoto, P., & Collares-Pereira, M. (2018). Short-term forecasts of GHI and DNI for solar energy systems operation: assessment of the ECMWF integrated forecasting system in southern Portugal. Solar energy, 170, 14-30. Maasoumi, E., Heshmati, A., & Lee, I. (2021). Green innovations and patenting renewable energy technologies. Empirical economics, 60(1), 513-538. Madsen, D. N., & Hansen, J. P. (2019). Outlook of solar energy in Europe based on economic growth characteristics. Renewable and sustainable energy reviews, 114, 109306. Manzano-Agugliaro, F., Taher, M., Zapata-Sierra, A., Juaidi, A., & Montoya, F. G. (2017). An overview of research and energy evolution for small hydropower in Europe. Renewable and sustainable energy reviews, 75, 476-489. Muhammed, G., & Tekbiyik-Ersoy, N. (2020). Development of renewable energy in China, USA, and Brazil: A comparative study on renewable energy policies. Sustainability, 12(21), 9136. Nesta, L., Vona, F., & Nicolli, F. (2014). Environmental policies, competition and innovation in renewable energy. Journal of Environmental Economics and Management, 67(3), 396-411. Papież, M., Śmiech, S., & Frodyma, K. (2018). Determinants of renewable energy development in the EU countries. A 20-year perspective. Renewable and sustainable energy reviews, 91, 918-934. Przychodzen, W. (2024). Political factors in renewable energy generation: Do populism, carbon tax and feed-in tariffs matter? Energy Research & Social Science, 115, 103628. Renné, D. S. (2022). Progress, opportunities and challenges of achieving net-zero emissions and 100% renewables. Solar Compass, 1, 100007. Ryberg, D. S., Caglayan, D. G., Schmitt, S., Linßen, J., Stolten, D., & Robinius, M. (2019). The future of European onshore wind energy potential: Detailed distribution and simulation of advanced turbine designs. Energy, 182, 1222-1238. Salam, M. A., & Noguchi, T. (2005). Impact of human activities on carbon dioxide (CO 2) emissions: A statistical analysis. Environmentalist, 25, 19-30. Sengupta, M., Xie, Y., Lopez, A., Habte, A., Maclaurin, G., & Shelby, J. (2018). The national solar radiation data base (NSRDB). Renewable and sustainable energy reviews, 89, 51-60. Shahzadi, I., Yaseen, M. R., Khan, M. T. I., Makhdum, M. S. A., & Ali, Q. (2022). The nexus between research and development, renewable energy and environmental quality: Evidence from developed and developing countries. Renewable Energy, 190, 1089-1099. Sharma, S. S. (2011). Determinants of carbon dioxide emissions: empirical evidence from 69 countries. Applied energy, 88(1), 376-382. Solangi, K., Islam, M., Saidur, R., Rahim, N., & Fayaz, H. (2011). A review on global solar energy policy. Renewable and sustainable energy reviews, 15(4), 2149-2163. Šúri, M., Huld, T. A., Dunlop, E. D., & Ossenbrink, H. A. (2007). Potential of solar electricity generation in the European Union member states and candidate countries. Solar energy, 81(10), 1295-1305. Tee, W.-S., Chin, L., & Abdul-Rahim, A. S. (2021). Determinants of renewable energy production: do intellectual property rights matter? Energies, 14(18), 5707. Verhoeven, D., Bakker, J., & Veugelers, R. (2016). Measuring technological novelty with patent-based indicators. Research policy, 45(3), 707-723. Vinhoza, A., & Schaeffer, R. (2021). Brazil's offshore wind energy potential assessment based on a Spatial Multi-Criteria Decision Analysis. Renewable and sustainable energy reviews, 146, 111185. Zhao, Z.-Y., & Chen, Y.-L. (2018). Critical factors affecting the development of renewable energy power generation: Evidence from China. Journal of Cleaner Production, 184, 466-480. Zhou, C. (2019). Can intellectual property rights within climate technology transfer work for the UNFCCC and the Paris Agreement? International Environmental Agreements: Politics, Law and Economics, 19(1), 107-122.; G0111258020; https://nccur.lib.nccu.edu.tw//handle/140.119/153292; https://nccur.lib.nccu.edu.tw/bitstream/140.119/153292/1/802001.pdf
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4Academic Journal
المؤلفون: 杨淑君
المساهمون: 北京大学法学院,北京,100871
Relation: 南京工业大学学报(社会科学版).2014,13,(1),62-69.; 1126956; http://hdl.handle.net/20.500.11897/104419
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5Report
المؤلفون: 欧阳钟灿
Relation: 物理教学探讨; http://ir.itp.ac.cn/handle/311006/26521
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6Dissertation/ Thesis
المؤلفون: 江芳君
مصطلحات موضوعية: 歐盟風能, 歐盟能源政策綠皮書, 歐盟第七期科研架構計畫, 促進內部市場可再生能源發電指令, 內部電力市場指令, European Wind Power, Green Paper, FP7, Directive 2009/28/EC, Directive 2009/72/EC
Relation: http://ir.lib.ntust.edu.tw/handle/987654321/34472; http://ir.lib.ntust.edu.tw/bitstream/987654321/34472/-1/index.html