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ammonifying相关的网络例句

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Five different selective culture medium were used for sewage microorganisms directional isolated cultivate, advantage compound bacteria of photosynthetic bacteria, ammonifying bacteria, nitrifying bacteria, denitrifying bacteria and phosphate solubilizing bacteria could be gained through enrichment cultivate, then compounded them and used in test wastewater static treatment.

采用5种选择性培养基对水样中的微生物进行定向分离,通过富集培养,可以得到光合细菌、氨化菌、硝化菌、反硝化菌和磷细菌的优势菌群,进行复合后,再对试验污水进行静态处理。

The population distribution of physiological groups of bacteria,including ammonifying bacteria, denitrifying bacteria, nitrobacteria and nitroso bacteria, organic ph

用最大可能数法和平板计数法,于2002年1月~2003年3月对苏州河水体和底泥中的主要微生物功能菌群——包括有机磷分解菌、无机磷分解菌、氨化菌、亚硝化菌、硝化菌和反硝化菌等进行了生态调查,并分析探讨了它们在苏州河水生态系统中的作用。

The average number of Bacillus sp., ammonifying bacteria and presumptive sulphur oxidizing bacteria in treated ponds sediment was also generally higher(P.05) than that of the control ponds.

而养殖末期弧菌的数量却明显低于对照组(P.05)。

These nitrogen cycle bacteria include ammonifying bacteria, denitrifying bacteria, nitrobacteria and nitroasobacteria, determined with MPN method.

结果表明,反硝化细菌的最大可能数,在水生高等植物群落内水体中较敞水区湖水高2-5个数量级,差异极显著(P<0.01),漂浮植物群落内水体的反硝化细菌MPN值较沉水和浮叶植物群落内水体高2-3个数量级,差异极显著(P<0.01);硝化细菌MPN值,敞水区湖水高于凤眼莲、水花生群落内水体,差异显著

The population distribution of physiological groups of bacteria,including ammonifying bacteria, denitrifying bacteria, nitrobacteria and nitroso bacteria, organic phosphate dissolving bacteria and inorganic phosphate dissolving bacteria in water body and sediment of Suzhou Creek are studied with MPN and flat account method from Jan. 2002 to Mar. 2003. The role of these physiological groups of bacteria in Suzhou Creek aquatic ecosystem is discussed.

用最大可能数法和平板计数法,于2002年1月~2003年3月对苏州河水体和底泥中的主要微生物功能菌群——包括有机磷分解菌、无机磷分解菌、氨化菌、亚硝化菌、硝化菌和反硝化菌等进行了生态调查,并分析探讨了它们在苏州河水生态系统中的作用。

Correlation coefficients between ammonifying bacteria and urease, polyphenol oxidase, bacteria and phosphatase, total microbe quantity were significant at 0.05 levels, and correlation coefficients between aromatic decomposing bacteria and urease, catalase, phosphatase and total microbe quantity were significant at 0.01 levels.

相关分析表明,氨化细菌与脉酶、多酚氧化酶均呈显著正相关;芳香族分解菌与脉酶、过氧化氢酶呈极显著正相关;细菌、微生物总量分别与磷酸酶呈显著、极显著正相关。

Straw returned to field played a positive role in increasing soil insect communities with the largest contribution, primarily the amounts of individuals and dominant species of macro and meso/micro soil animal, especially Neanuridae and Isotomidae animals individual amounts increased by nearly 10 times.(3) Soil nutrien had a positive correlation with soil bacteria, azotobacter, ammonifying bacteria, cellulose decomposing bacteria and denitrifying bacteria. Straw returned to field could stimulate effective microorganisms growth and population quantity in the soil. The increase of microbe community amount is 15%~44% more than that of CK.(4) Soil nutrien had a positive correlation with soil phosphatase, urease and sucrase activities, and a negative correlation with catalase.

研究发现:(1)长期配施秸秆能提高土壤速效氮、磷、钾含量,平均分别提高15%、48%和22%;(2)配施秸秆对土壤昆虫群落呈正向作用且贡献最大,主要增加了大型、中小型农田土壤动物的个体总数和优势类群数量,尤其是疣跳科和等节跳科动物个体数量增加近10倍;(3)土壤养分与土壤细菌、固氮菌、氨化细菌、纤维分解菌和反硝化细菌呈正相关,秸秆还田激发土壤有益微生物的生长和类群数量,使土壤微生物类群数量比对照增加15%~44%;(4)土壤养分与土壤磷酸酶、脲酶、蔗糖酶活性呈正相关,与过氧化氢酶呈负相关,秸秆还田增强土壤蔗糖酶、磷酸酶和脲酶活性,特别是脲酶和蔗糖酶活性平均提高26.5%。

Transgenic Bt cottons increased the population of ammonifying bacteria and decreased that of inorganic phosphorus-solubilizing bacteria significantly at seedling and flowering stages, whereas they increased the population of aerobic cellulose-decomposing bacteria and decreased that of organic phosphorus-solubilizing bacteria significantly only at the flowering stage.

苗期和花期转Bt基因棉均可显著提高氨化细菌、显著降低无机溶磷菌数量,花期均可显著提高好气纤维分解菌、显著降低有机溶磷菌数量,'Bt冀668'苗期也可显著提高好气纤维分解菌数量。

The selected process consists of several steps as follows. Firstly, ammonifying the oily mixture of PXA pyrolysis by ammonia or aqueous ammonia, then adding the organic solvent to extra

实验结果表明,合适的分离提纯工艺为:先将裂解产物用氨水氨化、有机溶剂萃取,然后用硫酸酸化11-CUA铵盐水溶液、再将粗品11-CUA于合适介质中结晶,得到高纯度11-CUA晶体;优化工艺条件为:氨化pH值8.0~10.0、温度25-35℃,甲苯为萃取剂,酸化pH值1.5~2.0、温度55-60℃,环己烷为结晶介质,粗品11-CUA在环己烷中溶解温度50~55℃、与环己烷初始质量比4:100、结晶前沉降分层时间10min、结晶温度20℃。

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The split between the two groups can hardly be papered over.

这两个团体间的分歧难以掩饰。

This approach not only encourages a greater number of responses, but minimizes the likelihood of stale groupthink.

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