Research on the Highly Energy-Efficient Conversion and Utilization Path of Solar Energy Demand Type

Article Preview

Abstract:

In order to promote the highly energy-efficiency utilization level of solar energy demand type, this paper, based on the average radiation within the solar radiation spectrum range and application requirement analysis of quantum theory, investigated the technical bottleneck and solution on the highly energy-efficient storage and conversion of solar energy demand type. Studies showed that the key to highly energy-efficiency utilization was to synthetically promote the utilization rate of energy conversion in each solar area. It could make direct conversion and utilization of solar energy in accordance with easy-preserved type foods, electrical power, fuel and other forms of energy demand, and then conversion route of energy utilization could be cut down and energy losses in the process of transmission could be decreased. Making full use of energy of solar spectrum visible light area to increase the plant photosynthesis, or using catalysis to change the Fermi lever and minimum work function of photocell battery module stripping to strengthen the photo electricity conversion rate could further enhance the conversion rate of highly-efficiency utilization of solar energy demand type. The study was involving multi-field of knowledge, and still need to be integrated innovation with further theoretical research.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 512-515)

Pages:

148-154

Citation:

Online since:

May 2012

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2012 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Gao Feng, Sun Chengquan and Liu Quangen: World Sci-tech R & D. Vol. 23 (2001), p.35 (In Chinese)

Google Scholar

[2] Yun Hong. Fundamentals of Atmospheric Radiation. (Beijing: Meteorological Press. 1993). (In Chinese)

Google Scholar

[3] S. Malato Rodrı́guez, J. Blanco Gálvez, M.I. Maldonado Rubio, P. Fernández Ibáñez, D. Alarcón Padilla, M. Collares Pereira, J. Farinha Mendes and J. Correia de Oliveira: Solar Energy. Vol. 77 (2004), p.513

DOI: 10.1016/j.solener.2004.03.020

Google Scholar

[4] Huang B J and Chyng J P: Solar Energy. Vol. 71 (2001), p.403

Google Scholar

[5] Zhang Hefei. Solar Thermal Application Principles and Computer Simulation. (Xi'an: Northwestern University Press. 1990). (In Chinese)

Google Scholar

[6] China's economic structure and consumption structure of energy research group and Lu Ling: The World Survey and Research. Issue 5, (2011), p.13 (In Chinese)

Google Scholar

[7] Information on http://zh.wikipedia.org/wiki

Google Scholar

[8] P.A.M. The Principles of Quantum Mechanics (4th edition), Oxford University Press (Clarendon), Oxford, England, 1958; "Quantum mechanics", Science Press translation version, (1979). (In Chinese)

Google Scholar

[9] Enke Liu, Bingsheng Zhu and Jinsheng Luo. Semiconductor Physics (6th edition), (Beijing: Electronic Industry Press. 2005). (In Chinese)

Google Scholar

[10] Luan Yemei and An Maozhong: Journal of Natural Science of Heilongjiang University. Vol. 23 (2006), p.76 (In Chinese)

Google Scholar