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91.
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CO2气体可为微藻光合作用提供必需的碳源,CO2在藻液中的混合、溶解及传输特性显著影响了微藻的生长固碳.在微藻光生物反应器中,气泡在藻液中的生长、脱离、聚并、上升等动力学行为主要由气体分布器决定.本文以气体分布器为研究对象,研究在不同孔径及孔间距下对15%(V/V)CO2气体在悬浮液中的气泡行为、CO2溶解与混合特性以及对微藻生长固碳的影响.结果表明:气泡上升速度随气体分布器孔径及孔间距的减小而减小,导致CO2气泡在藻液中停留时间增加,强化了CO2溶解传输,CO2体积传质系数提高了143%,混合时间降低了24%,最终使微藻生物质浓度提高18.8%,固碳速率提高23.2%. 相似文献
93.
在石油资源日趋紧张以及环境恶化日趋严重的今天,微生物燃料电池(MFC)因其可同时实现污水处理和能源回收而受到广泛关注。微藻技术与MFC技术结合产生的微藻型MFC系统得到证实并随之兴起,其中尤以微藻生物阴极型MFC因可实现污水处理、零碳排放、CO2捕捉、太阳能捕获及电能、生物柴油、藻体残渣有价回收等多重功能,成为研究热点。文章根据其中微藻所起的不同作用将微藻型MFC系统分成三类,在参阅大量文献的基础上进行了全面综述,并由此对构建高效微藻生物阴极型MFC进行了探讨,提出了计算机辅助菌种选择技术等相关设想,最后对微藻型MFC的发展提出了展望。 相似文献
94.
耕作历史和种植制度对绿洲农田土壤有机碳及其组分的影响 总被引:5,自引:1,他引:5
耕作历史和种植方式是影响黑河绿洲农田土壤总有机碳及其组成的重要因素。研究结果显示,随着耕作时间的延长,土壤总有机碳(TOC)、活性有机碳(AOC)、惰性有机碳(NOC)的含量均呈增加趋势,但AOC、NOC的增幅存在差异,AOC因性质活泼,对农业活动等措施引起的变化较NOC有较快响应,因此,在耕作的初期(0~5 a),AOC的增幅高于NOC,而20 a的耕地NOC增幅大于AOC,之后达到AOC与NOC的增幅接近(>100 a)的动态发展趋势,表明总有机碳含量积累的过程是AOC与NOC增幅逐渐接近、NOC积累增速的过程。>100 a的耕地,因种植方式不同,剖面上TOC、AOC、NOC含量呈现出:油菜地>普通玉米地>制种玉米地>小麦地。分析发现,绿洲区近年来大面积种植制种玉米引起TOC、AOC、NOC发生改变,增加秸秆或牲畜粪便的归还量是提高土壤有机碳的有效途径。 相似文献
95.
以厌氧颗粒污泥为接种污泥,采用味精生产废水进行培养,在SBR中以逐渐降低污泥沉淀时间的方法成功培养出好氧颗粒污泥。实验结果表明:污泥接种65 d后,出现细小的好氧颗粒污泥,呈黄褐色,95 d后颗粒污泥趋于成熟,粒径达0.6 mm左右,且周围存在大量原生动物;运行95 d后MLSS提高至8.00 g/L,SVI降至30.00 mL/g左右;成熟后的好氧颗粒污泥对味精生产废水中的COD和NH3-N具有良好的去除效果,出水COD和ρ(NH3-N)分别为80 mg/L和2 mg/L左右。 相似文献
96.
Qingxiang Yang Jing Zhang Wenyu Zhang Zhe Wang Yongsheng Xie Hao Zhang 《Journal of environmental science and health. Part. B》2013,48(3):190-197
In this study, the effects of tetracycline exposure on wheat growth and the microbial community structure in the rhizosphere were investigated under hydroponic culture conditions. Exposure to various concentrations of tetracycline resulted in significant suppression of the growth of wheat roots and shoots, with minimum doses of 0.8 mg L?1 and 4 mg L?1 resulting in inhibition rates of 32% and 15.4%, respectively. Complete inhibition of the growth of these two parts of wheat plants was observed in response to treatment with tetracycline at 20 mg L?1 and 100 mg L?1, respectively. However, the germination of wheat seeds was not sensitive to exposure to tetracycline. The effects of tetracycline exposure on the microbial community in the wheat rhizosphere were evaluated through traditional cultivation and molecular biological analyses. The cultivation results indicated that bacteria were the dominant population, being present in concentrations of 1× 108–2.45× 109CFUs mL?1, although 39% to 87% inhibition occurred in response to tetracycline. The concentration of fungi increased in all tetracycline treated samples to 2.5 to 15.8 times that of the control. The highest concentration of fungi (4.27× 108 CFU mL?1) was observed in response to 60 mg L?1 tetracycline after 15 days of cultivation. In this stage, a large amount of fungal colonies was observed on the surface of the culture solution, the wheat roots became rotted and the plants became atrophic or even died. Molecular biological analysis indicated that the bacterial community structure was significantly different in samples that were exposed to high levels of tetracycline (over 20 mg L?1) than in samples that were exposed to lower concentrations. As the concentration of tetracycline increased, the diversity of the bacteria decreased. Additionally, several dominant sensitive species such as Sphingobacterium multivorum were suppressed by tetracycline, while some resistant species such as Acinetobacter sp. appeared or were conserved. The bacteria population tended to stabilize when the drug concentration exceeded 40 mg L?1. 相似文献
97.
Paran Gani Norshuhaila Mohamed Sunar Hazel Matias-Peralta Ab Aziz Abdul Latiff 《International Journal of Green Energy》2017,14(4):395-399
Microalgae biomass is well known as a potential sustainable product for bio-based industry, which has reported encountering numerous difficulties during biomass harvesting and recovering. This study examined the effect of pH (5–12) and alum dosage (30–180 mg/L) for microalgae Botryococcus sp. harvested via flocculation technique. The optimum pH condition for Botryococcus sp. harvesting was measured to be 9.2, and the alum dosage was 100 mg/L. Both optimum values successfully harvested up to 95% microalgae biomass. This study revealed that flocculation efficiencies for alum are highly dependent on the range of pH and coagulant dosage that were applied during the process. Use of flocculation technique with alum as a coagulant represents a convenient technique for Botryococcus sp. biomass harvesting and is recommended for use in both small- and large-scale biomass industries. 相似文献
98.
Junhong Yang Xuyang Cui Yuanzheng Feng Guangning Jing Ligai Kang Mengyuan Luo 《International Journal of Green Energy》2017,14(15):1269-1276
Microalgae have been identified as a superior feedstock for biodiesel production and varied tubular photobioreactors are developed for high efficient and scale-up microalgae cultivation. This article presented a novel concentric double tubes using aeration through radial pores along the length direction of inner tube. Experiments on microalgae cultivation were carried out in the novel photobioreactor, and two control groups including concentric double tubes with axial aeration at both ends and common tubular. The biomass productivity of novel photobioreactor increased by 43.6% and 107.4%, respectively, compared with concentric double tubes with axial aeration at both ends and common tubular without aeration. The values of pH shifted from 7.5 to 9.0 for novel photobioreactor, but 7.5 to 8.8 for common tubular, and 7.5 to 9.6 for concentric double tubes with axial aeration. The dissolved oxygen concentration fluctuated between 6.0 and 7.0 mg·L?1 for novel photobioreactor, but rose from 6.6 to 10.2 mg·L?1 for the common tubular, and 6.9 to 8.1 mg·L?1 for the concentric with axial aeration. Results show that the aeration style of novel photobioreactor can make efficient local mixing and maintain smaller range of pH and lower level of dissolved oxygen in case of higher biomass concentration. Moreover, compared with the two control groups, the novel concentric double tubes have advantages on the light/dark cycle frequency, which may be benefit for microalgae cultivation. The novel concentric double tubes presented in this work can give some inspiration for high efficiency microalgae cultivation. 相似文献
99.
100.