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将太阳能高效转化为生物质能和电能。

Efficient conversion of solar energy to biomass and electricity.

作者信息

Parlevliet David, Moheimani Navid Reza

机构信息

School of Engineering and Information Technology, Physics and Energy, Murdoch 6150, Western Australia, Australia ; Murdoch University, Murdoch 6150, WA, Australia.

Algae R&D Centre, School of Veterinary and Life Sciences, Murdoch 6150, WA, Australia ; Murdoch University, Murdoch 6150, WA, Australia.

出版信息

Aquat Biosyst. 2014 Jun 11;10:4. doi: 10.1186/2046-9063-10-4. eCollection 2014.

Abstract

The Earth receives around 1000 W.m(-2) of power from the Sun and only a fraction of this light energy is able to be converted to biomass (chemical energy) via the process of photosynthesis. Out of all photosynthetic organisms, microalgae, due to their fast growth rates and their ability to grow on non-arable land using saline water, have been identified as potential source of raw material for chemical energy production. Electrical energy can also be produced from this same solar resource via the use of photovoltaic modules. In this work we propose a novel method of combining both of these energy production processes to make full utilisation of the solar spectrum and increase the productivity of light-limited microalgae systems. These two methods of energy production would appear to compete for use of the same energy resource (sunlight) to produce either chemical or electrical energy. However, some groups of microalgae (i.e. Chlorophyta) only require the blue and red portions of the spectrum whereas photovoltaic devices can absorb strongly over the full range of visible light. This suggests that a combination of the two energy production systems would allow for a full utilization of the solar spectrum allowing both the production of chemical and electrical energy from the one facility making efficient use of available land and solar energy. In this work we propose to introduce a filter above the algae culture to modify the spectrum of light received by the algae and redirect parts of the spectrum to generate electricity. The electrical energy generated by this approach can then be directed to running ancillary systems or producing extra illumination for the growth of microalgae. We have modelled an approach whereby the productivity of light-limited microalgae systems can be improved by at least 4% through using an LED array to increase the total amount of illumination on the microalgae culture.

摘要

地球从太阳接收约1000 W·m⁻²的能量,而只有一小部分光能能够通过光合作用过程转化为生物质(化学能)。在所有光合生物中,微藻因其生长速度快以及能够利用盐水在非耕地生长的能力,已被确定为化学能源生产的潜在原材料来源。通过使用光伏组件,也可以从相同的太阳能资源中产生电能。在这项工作中,我们提出了一种新颖的方法,将这两种能源生产过程结合起来,以充分利用太阳光谱并提高光限制微藻系统的生产力。这两种能源生产方法似乎会争夺使用相同的能源资源(阳光)来生产化学能或电能。然而,某些微藻群体(即绿藻门)只需要光谱中的蓝色和红色部分,而光伏设备可以在整个可见光范围内强烈吸收。这表明这两种能源生产系统的结合将允许充分利用太阳光谱,从而使一个设施既能生产化学能又能生产电能,有效利用可用土地和太阳能。在这项工作中,我们建议在藻类培养物上方引入一个滤光器,以改变藻类接收到的光的光谱,并将部分光谱重新导向以发电。通过这种方法产生的电能然后可以用于运行辅助系统或为微藻生长提供额外照明。我们已经建立了一个模型,通过使用LED阵列增加微藻培养物上的总照明量,光限制微藻系统的生产力可以提高至少4%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8fe6/4062565/85118a2d3e43/2046-9063-10-4-1.jpg

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