1. 广东省南海资源与环境重点实验室∥中山大学海洋科学学院,广东,广州,510006
2.
3. 中山大学生命科学学院,广东,广州,510275
纸质出版日期:2017,
网络出版日期:2017-11-25,
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刘健, 侯冬伟, 曾燊正, 等. 凡纳滨对虾封闭式养殖池塘水体氨氮、〖KH*2D〗亚硝氮、硝氮变化规律及消减措施[J]. 中山大学学报(自然科学版)(中英文), 2017,56(6):116-122.
LIU Jian, HOU Dongwei, ZENG Shenzheng, et al. The change regularity and control measure of ammonia, nitrite and nitrate nitrogen in closed culture ponds of Litopenaeus vannamei[J]. Acta Scientiarum Naturalium Universitatis SunYatseni, 2017,56(6):116-122.
刘健, 侯冬伟, 曾燊正, 等. 凡纳滨对虾封闭式养殖池塘水体氨氮、〖KH*2D〗亚硝氮、硝氮变化规律及消减措施[J]. 中山大学学报(自然科学版)(中英文), 2017,56(6):116-122. DOI:
LIU Jian, HOU Dongwei, ZENG Shenzheng, et al. The change regularity and control measure of ammonia, nitrite and nitrate nitrogen in closed culture ponds of Litopenaeus vannamei[J]. Acta Scientiarum Naturalium Universitatis SunYatseni, 2017,56(6):116-122. DOI:
凡纳滨对虾是全球主要养殖对虾品种,近年来肝胰腺坏死综合症(hepatopancreas necrosis syndrome
HPNS)造成的损失严重,HPNS的发生与水体理化因子和条件致病菌有一定的相关性。2015年,选取广东省电白地区1个凡纳滨对虾养殖场43个虾塘进行氨氮、亚硝氮、硝氮的监测。结果显示:对虾养殖第1-22天内,氨氮质量浓度在0.01~0.30 mg·L
-1
的范围内波动,而亚硝氮低于0.01 mg·L
-1
硝氮在0.01~0.60 mg·L
-1
的范围内波动,氨氮与硝氮的变化趋势相似。养殖第22-72天期间内,氨氮质量浓度波动幅度增大,处于0.30~1.50 mg·L
-1
有逐步升高趋势;亚硝氮和硝氮质量浓度同步缓慢升高,在0.01~0.80 mg·L
-1
之间波动,处于平稳升高状态。养殖第72天后,三氮均处于0.60~1.50 mg·L
-1
的高水平波动状态,且质量浓度不断升高。从氨氮和亚硝氮两者波动和升高趋势来说,氨氮大幅波动变化比亚硝氮提前大约26 d。在养殖过程中选取5个塘分别检测肥水和添加沸石粉前后的氨氮变化,施用肥料1 d后氨氮平均降低19.50%,2 d后降低37.54%;施用沸石粉后在4 d内氨氮分别平均降低47.62%,23.34%,60.73%和76.58%。对5个塘投料量和水体三氮平均值的相关性分析显示,投料量与水体氨氮、亚硝氮和硝氮均有极显著的正相关关系(P
<
0.01)。结果表明,氨氮是凡纳滨对虾封闭养殖中期和晚期(约第20-95天)的限制性因子,且在养殖中期受气候等因子影响波动大,表现出剧烈的震荡特征,成为养殖环境容纳量主要限制因子;亚硝氮是养殖中期尤其晚期的限制性因子。
Litopenaeus vannamei is a major farmed shrimp species in the world
suffering serious losses because of hepatopancreas necrosis syndrome (HPNS) in recent years. The outbreak of HPNS is believed to be correlated with toxic chemical and physical factors as well as opportunistic pathogens. In 2015
we detected the concentration of ammonia
nitrite and nitrate nitrogen in 43 shrimp ponds of a aquaculture farm in Dianbai county
Guangdong province
China. In the first 22 days of breeding
the concentration of ammonia nitrogen ranged from 0.01 to 0.30 mg·L
-1
while nitrite nitrogen was below 0.01 mg·L
-1
. The concentration of nitrate nitrogen ranged from 0.01 to 0.60 mg·L
-1
with a similar tendency to that of ammonia nitrogen. During 22 to 72 days of breeding
the concentration of ammonia nitrogen increased from 0.30 mg·L
-1
to 1.50 mg·L
-1
in volatility. Unlike ammonia nitrogen
the nitrite nitrogen and nitrate nitrogen were generally stable
slowly and synchronously rising from 0.01 mg·L
-1
to 0.80 mg·L
-1
. After 72 days of breeding
their concentration all enhanced and fluctuated between 0.60 mg·L
-1
and 1.50 mg·L
-1
. Compared with the change of nitrite nitrogen
the sharp fluctuation of ammonia nitrogen was occurred about 26 days in advance. Moreover
we also detected the concentration of ammonia nitrogen after the zeolite and fertilizer were added in five shrimp ponds during breeding. The concentration of ammonia nitrogen was reduced by 19.50% at 1 day and reduced by 37.54% at 2 days after fertilizer addition. After adding zeolite powder
ammonia nitrogen was decreased by 47.62%,23.34%,60.73% and 76.58% in 4 days
respectively. Results also showed that the feed amount was positive correlated with the concentration of ammonia
nitrite and nitrate nitrogen (P
<
0.01). In summary
this study showed that the ammonia nitrogen was the limiting factor in closed culture of L. vannamei during the middle and late culture period
greatly influenced by climate. Besides
nitrite nitrogen was the restrictive factor
especially in the late culture period. Considering the tendency of ammonia nitrogen and nitrite nitrogen
the ecological system of closed shrimp culture mode can be divided into early ecosystem
medium ecosystem and late ecosystem.
凡纳滨对虾氨氮亚硝氮硝氮
Litopenaeus vannameiammonia nitrogennitrite nitrogennitrate nitrogen
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