首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到18条相似文献,搜索用时 250 毫秒
1.
将初始体重为(580.9±44.65)g的大菱鲆成鱼按照低密度A组14.30 kg/m2、中密度B组20.49 kg/m2、高密度C组31.32 kg/m2的标准分为3个不同养殖密度组,并放养于循环水养殖系统中120 d,同时对大菱鲆成活率、体重差异、饵料系数、溶菌酶水平及养殖水体中总氨氮(TAN)、亚硝酸氮(NO2--N)、COD浓度的变化进行测定。研究表明,实验结束时A、B、C三组大菱鲆养殖密度分别达到30.09、41.30、60.07 kg/m2,各实验组成活率都在95%以上。大菱鲆养殖密度对增重率的影响主要体现在研究前期,并且随着养殖密度的增加,各实验组体重差异度出现显著变化(P0.01)。大菱鲆A、B、C组的饵料系数分别为0.73、0.75、0.82,与养殖密度呈正相关。研究开始第5天,高密度组大菱鲆溶菌酶水平升高,20 d后血液溶菌酶水平逐渐降低,40 d之后显著低于低密度组。研究期间系统运行稳定,循环水养殖大菱鲆的不同密度对系统各项水质指标总氨氮(TAN)、亚硝酸氮(NO2--N)、COD浓度的变化有显著影响(P0.05)。研究结果显示,随着养殖密度的升高,各项水质指标显著升高,但高密度组各项水质指标均未超过渔业水质标准所规定的浓度。  相似文献   

2.
将初始体重为(580.9±44.65)g的大菱鲆成鱼按照低密度A组14.30 kg/m2、中密度B组20.49 kg/m2、高密度C组31.32 kg/m2的标准分为3个不同养殖密度组,并放养于循环水养殖系统中120 d,同时对大菱鲆成活率、体重差异、饵料系数、溶菌酶水平及养殖水体中总氨氮(TAN)、亚硝酸氮(NO2--N)、COD浓度的变化进行测定。研究表明,实验结束时A、B、C三组大菱鲆养殖密度分别达到30.09、41.30、60.07 kg/m2,各实验组成活率都在95%以上。大菱鲆养殖密度对增重率的影响主要体现在研究前期,并且随着养殖密度的增加,各实验组体重差异度出现显著变化(P0.01)。大菱鲆A、B、C组的饵料系数分别为0.73、0.75、0.82,与养殖密度呈正相关。研究开始第5天,高密度组大菱鲆溶菌酶水平升高,20 d后血液溶菌酶水平逐渐降低,40 d之后显著低于低密度组。研究期间系统运行稳定,循环水养殖大菱鲆的不同密度对系统各项水质指标总氨氮(TAN)、亚硝酸氮(NO2--N)、COD浓度的变化有显著影响(P0.05)。研究结果显示,随着养殖密度的升高,各项水质指标显著升高,但高密度组各项水质指标均未超过渔业水质标准所规定的浓度。  相似文献   

3.
经过 6 0d的试验养殖 ,在每日 2、 4、6个循环水量的条件下 ,研究放养量从 0 .74~ 1.99kg/m2 大菱鲆 (Scophthalmusmaximus)幼鱼的平均体重增长、养殖成活率、饵料系数和养殖水中的溶解氧、氨氮含量等养殖生态状况。结果表明 ,日水循环量为 2个全量时 ,放养量为 1.5 4kg/m2 的实验组的平均体重增重与放养量低的实验组 (0 .75kg/m2 、1.0 1kg/m2 、1.31kg/m2 )平均体重增重无显著差异 (P >0 .0 5 ) ,而与高于此实验组 (1.74kg/m2 、1.99kg/m2 )的增重比较则差异显著 (P <0 0 5 ) ;水循环量的增加可以改善水质条件 ,加快幼鱼的生长速度 ,但对幼鱼的饵料系数影响不大。  相似文献   

4.
大西洋鲑Salmo salar与大菱鲆Scophthalmus maximus适宜生长水温相近,但栖息水层不同。本试验通过研究在循环水主养大西洋鲑(2 kg/尾)系统中混养不同密度大菱鲆(0.15 kg/尾)的养殖效果,旨在优化这两种鱼类工厂化循环水养殖模式。在水温16℃条件下,在循环水养殖系统10个单池面积40 m~2、水体120 m~3的养殖池中放养大西洋鲑,密度为20尾/m~2,大菱鲆的混养密度分别为0尾/m~2、2.5尾/m~2、5尾/m~2、7.5尾/m~2和10尾/m~2,分析两种鱼类的摄食、出池体质量、特定生长率、成活率、毛产量、净产量、饲料系数等生产指标。结果表明,大菱鲆混养密度为2.5尾/m~2时,大西洋鲑出池体质量、特定生长率和成活率分别达最大值(4.755±0.049)kg、(0.3865±0.006)%/d和(98.995±0.177)%,且大菱鲆也达最佳生长与成活效果,可获最大总毛产量(31.795±0.384)kg/m~3、最大总净产量(18.524±0.059)kg/m~3和最低饲料系数(1.35±0.004),养殖效果显著优于大西洋鲑单养组[最大总毛产量(30.521±0.205)kg/m~3、最大总净产量(17.413±0.077)kg/m~3、饲料系数(1.44±0.006)];超过5尾/m~2,各生产指标显著低于单养组(P0.05)。  相似文献   

5.
在工厂化养殖条件下,研究了养殖密度对2~5龄大鲵(Andrias davidianus)摄食与生长的影响。结果表明:2龄大鲵适宜养殖密度为27尾/m2,该组特定生长率显著高于9尾/m2组、18尾/m2组(P<0.05),且饵料系数最低;当养殖密度为17尾/m2时,3龄大鲵的增重率、特定生长率最大,饵料系数最低且与低密度5尾/m2组差异显著(P<0.05),确定3龄大鲵的适宜养殖密度为17尾/m2;4龄大鲵特定生长率的最大值出现在养殖密度为10尾/m2,显著高于16尾/m2组(P<0.05),且饵料系数最低,4龄大鲵的适宜养殖密度为10尾/m2;5龄大鲵的适宜养殖密度为5尾/m2,特定生长率与高密度组9尾/m2差异显著(P<0.05),饵料系数最低。大鲵适宜养殖密度与体重存在显著的负相关性,关系式为y=-0.016 4x+25.34(r2=0.839 9)。  相似文献   

6.
研究了基于两级人工湿地的温室循环水系统中,养殖密度对鲫(Carassius cuvieri)生长、脏器系数、血清生理免疫指标及对嗜水气单胞菌(Aeromonas hydrophila)抵抗力的影响。试验设2 kg·m^-3、4 kg·m^-3、8 kg·m^-3和16kg·m^-3共4种密度组,每组2个平行,养殖68 d。结果显示:1)各养殖密度下鲫生长及脏器系数不存在显著差异;2)与2 kg·m^-3组鲫相比,16 kg·m^-3组鲫血清丙二醛(MDA)质量摩尔浓度显著升高,溶菌酶(LSZ)、酸性磷酸酶(ACP)和碱性磷酸酶(AKP)活性显著降低,超氧化物歧化酶(SOD)活性和总蛋白质量浓度虽有不同程度升高,但差异不显著;3)高密度组鲫对嗜水气单胞菌的抵抗力较低密度组弱。以上结果表明,如果以生长为考量指标,温室湿地循环水系统中鲫养殖密度可达16 kg·m^-3,但如此高的密度会对鲫免疫力造成负面影响。  相似文献   

7.
在封闭循环水养殖系统中,选取平均体质量(416.1±0.73)g的黄姑鱼(Nibea albiflora),设置3个养殖密度组,分别为低密度组D_1(12.0 kg/m~3±0.03 kg/m~3)、中密度组D_2(15.0 kg/m~3±0.02 kg/m~3)和高密度组D_3(18.0 kg/m~3±0.03 kg/m~3),研究养殖密度对黄姑鱼代谢和血清免疫的影响。结果表明:各养殖密度组黄姑鱼成活率、特定生长率(SGR)和饲料系数(FCR)分别差异不显著(P0.05),其中D_1组的成活率、特定生长率和饲料系数略优于D_2、D_3组;谷草转氨酶(AST)、谷丙转氨酶(ALT)和乳酸脱氢酶(LDH)活性在各养殖密度组之间差异不显著(P0.05),但随着养殖密度增加而略有增大;溶菌酶(LZM)、免疫球蛋白M(Ig M)和补体C3等血清免疫指标稍有变化,但均没有显著性差异(P0.05),D_2、D_3较高养殖密度组的补体C4与D_1低密度组差异显著(P0.05)。本研究表明,试验设置的养殖密度不会引起黄姑鱼血清代谢酶和免疫指标显著差异,不会出现密度胁迫。  相似文献   

8.
不同养殖密度对长江鲟稚鱼生长的影响   总被引:1,自引:0,他引:1  
为了解不同养殖密度对长江鲟(Acipenser dabryanus)稚鱼生长的影响,设置初始密度为0.27(D 200)、0.46(D 350)、0.66(D 500)和0.87(D 650)kg/m2的4种养殖密度,对初始体重3.38 g和体长7.79 cm的2月龄长江鲟稚鱼进行4周的养殖实验。结果表明:养殖密度对体重、体长、变异系数(CV)、日增重(DWG)、净增重(NY)、特定生长率(SGR)和饵料系数(FCR)有显著影响,对存活率和肥满度无显著影响;D 200组的生长速度最快,与D 350组差异不显著,D 650组生长速度最慢;D 200组的体重、体长、特定生长率、日增重均最大,与D 350组无显著差异,但D 350组的变异系数和饵料系数均较D 200组要小;特定生长率与养殖密度(D)呈负相关关系:SGR=-1.171 5D+6.331 5(R2=0.484 5);变异系数与养殖密度呈正相关关系:CV=3.989 1D+13.533(R2=0.480 5)。此阶段长江鲟稚鱼最适养殖密度为D350(0.46 kg/m~2)。  相似文献   

9.
循环水养殖大菱鲆试验   总被引:1,自引:0,他引:1  
通过循环水养殖大菱鲆,养殖250 d后大菱鲆平均体重550 g,平均日增重2.3 g,饵料系数1.1。循环水养殖大菱鲆,既能减少环境污染,又能节水、节煤、节电,1000 m2养殖面积能降低生产成本近10万元。  相似文献   

10.
为研究池塘工程化循环水养殖模式下养殖密度对大口黑鲈(Micropterus salmoides)生长性能、血清生化指标的影响,设置15 000和25 000尾/槽2个养殖密度,经过120 d的养殖实验。结果显示:养殖密度对大口黑鲈生长性能、血清丙氨酸氨基转移酶、天冬氨酸氨基转移酶、碱性磷酸酶、皮质醇和溶菌酶含量无显著影响;高养殖密度组血清总蛋白、胆固醇、甘油三酯和葡萄糖含量显著低于低养殖密度组。在低、高密度养殖条件下,体重与体长之间呈幂函数关系,生长方程分别为y=0.031 6x~(2.903 8)(R~2=0.980 1)和y=0.032 1x~(2.898 5)(R~2=0.982 4)。结果表明,池塘工程化循环水养殖模式下,高密度养殖而不影响大口黑鲈生长。  相似文献   

11.
本研究尝试将生物絮团养殖技术(Bio-floc aquaculture technology, BFA)应用到凡纳滨对虾高密度养殖系统中,研究生物絮团在凡纳滨对虾不同放苗密度下的水质调控、对虾生长及存活等方面的作用效果。试验将200、400和600尾/m2的放苗密度分为传统养殖组(TF200、TF400和TF600)和絮团养殖组(BFA)(BF200、BF400和BF600)共6组,分别在18个室内水泥池中进行,其中BFA组通过添加益生菌和赤砂糖培养生物絮团,并在养殖过程中极少换水,而传统养殖组进行传统换水养殖管理。经过113d的养殖试验,随着放苗密度的增加,水质、对虾存活率和对虾特定增长率逐步下降,然而BFA在400尾/m2的凡纳滨对虾封闭式养殖中有良好效果。与400尾/m2的传统养殖组(TF400)相比,400尾/m2的BFA组(BF400)在养殖过程中生物絮团平均形成量提升3.25倍;水体中的亚硝酸氮和氨氮平均含量分别降低67.9%和72.7%,而用水量只有传统养殖组的33%左右;对虾的体重、存活率、特定生长率及单位产量分别提高了14.5%、156.3%、2.4%和194.1%;400 尾/m2的BFA组对虾单位产量达到4.01±0.94 kg/m2,具有最好的环境和产出效应。  相似文献   

12.
为了评估全封闭循环水养殖系统中养殖密度对钝吻黄盖鲽生长的影响及水质变化情况,将体质量为(250.00±50.83)g的钝吻黄盖鲽分成8个试验组(放养密度分别为18、22、26、30、34、38、42、46 kg/m3),进行了3个月的饲养试验,检测不同养殖密度下鱼的成活率、体质量增长率及饲料系数,同时对试验期间氨氮、亚硝酸盐和溶解氧等各项水质指标的动态变化进行监测。试验结果显示,各试验组鱼的成活率均达到96%以上,但随着养殖密度的增加,钝吻黄盖鲽的成活率总体呈现降低的趋势;低密度组(18 kg/m3)的体质量增长率最高,为36.1%,高密度组(46 kg/m3)的体质量增长率最低,为24.8%,且体质量增长率随着养殖密度的增加而逐渐降低;随着养殖密度的增加,饲料系数呈逐渐升高的趋势;养殖期间各项水质指标均保持在适宜钝吻黄盖鲽生长的范围内。结果表明,在本试验的循环水养殖系统中,综合考量养殖生长指标及单位面积产量,钝吻黄盖鲽规模化生产的最适养殖密度为42~46 kg/m3。  相似文献   

13.
本文主要研究密度对网箱养殖硬头鳟Oncorhynchus mykiss存活和生长的影响。在水温8.2~19.1℃下,将体质量1.02 kg的硬头鳟鱼种养殖在5m×10m×6m网箱中,网箱放置在松花江上游的松山水库中,密度分别为5尾/m~2(Ⅰ组)、8尾/m~2(Ⅱ组)、11尾/m~2(Ⅲ组)和14尾/m~2(Ⅳ组),投喂粗蛋白含量为42%、粗脂肪22%的颗粒饲料,常规养殖。145d的养殖表明:网箱养殖的放养密度对硬头鳟的生长有一定影响。第Ⅳ组鱼的存活率显著低于其他3组(P0.05);放养密度为5~11尾/m~2时硬头鳟的生长与密度呈正相关,大于此密度范围则呈负相关。第Ⅲ组鱼的终末体质量、日增重、增重率、利润和利润率显著高于其余3组(P0.05);4个密度组硬头鳟的产量随放养密度增加而递增。本试验表明:网箱养殖硬头鳟的放养密度为11尾/m~2较适宜。  相似文献   

14.
Welfare in farmed fish got particular attention during the last decades from both governmental and public sides. In aquaculture context, welfare concerns are mainly related to handling procedures, water quality and stoking densities. In Europe, authorities had to clarify the threshold limits of stocking densities to maintain fish good welfare, including for organics aquaculture through the EC regulation 710/2009. However, effects of stocking density on fish welfare are complex and sometimes contradictory. Moreover, there is a lack of knowledge about the impact of density on fish welfare in organic aquaculture. Thus, the aim of the study is to asses welfare state of rainbow trout (Oncorhynchus mykiss) at two initial stocking densities (low density, LD: 12 kg/m3 and high density, HD: 17 kg/m3) fed using organic feed by combining the monitoring of growth performances, behaviour (swimming activity) and physiological indicators (i.e. cortisol, glucose, lactate, hematocrit, red blood cellule count and lysozyme). At the end of experiment, the stocking density reached 21 kg/m3 and 30 kg/m3 for the LD and HD respectively. Overall, growth performances, swimming activity and level of physiological indicators of stress and welfare were similar between HD and LD over the experiment duration. To conclude, we observed no alteration of fish welfare between the two stocking densities monitored. This study suggests that a final stocking density of 30 kg/m3 can be considered for organic aquaculture of rainbow trout respecting welfare.  相似文献   

15.
To quantitatively define relationships among stocking densities, feeding rates, water quality, and production costs for channel catfish, Ictalurus punctatus, grown in multiple‐batch systems, twelve 0.1‐ha earthen ponds were stocked at 8,600, 17,300, 26,000, or 34,600 fingerlings/ha along with 2,268 kg/ha of carryover fish. Fish in all ponds were fed daily to apparent satiation using 32% protein floating feed. Temperature and dissolved oxygen in each pond were monitored twice daily; pH weekly; nitrite‐N, total ammonia nitrogen, and Secchi disk visibility every 2 wk; nitrate‐N, chlorophyll a, total nitrogen, total phosphorus, and chemical oxygen demand monthly; and chloride every other month. The costs of producing channel catfish at different stocking densities were estimated. There were no significant differences (P > 0.05) as a result of stocking density among treatment means of (1) gross or net yields, (2) mean weights at harvest, and (3) growth or survival of fingerlings (24–36%) and carryover fish (77–94%). Mean and maximum daily feeding rates ranged from 40 to 53 kg/ha/d and 123 to 188 kg/ha/d, respectively, and feed conversion ratios averaged 1.75. There were no differences in any feed‐related parameter as a result of density. Water quality variables showed few differences among densities at samplings and no differences when averaged across the production season. Yield of fingerlings increased as stocking density increased with significant differences between the two highest and the two lowest stocking densities. Breakeven prices were lower at the higher stocking densities as a result of the higher yield of understocked fish and similar mean individual fish weights produced at these higher stocking densities. Overall, varying stocking densities of fingerlings in multiple‐batch systems had little effect on production efficiency and water quality. Additional research on managing the population structure of carryover fish in commercial catfish ponds may be warranted.  相似文献   

16.
Abstract

Rainbow trout, Oncorhynchus mykiss, were raised in culture cages (1 m3) to determine the effect of stocking density on growth, survival, and percentage of market-size fish. Large fingerling rainbow trout (20-25 cm, 232 g average weight) were stocked into six cages located in a 0.4-ha pond. Two stocking densities (100 or 200 fish/cage) were used, and fish were grown for 140 days (2000-April 2001). Average total harvest weight (35.0 kg) in the low-density cages was approximately one-half the average total harvest weight (61.2 kg) in the high-density cages. Average weight gain (11.7 kg to 15.1 kg) and feed conversion (1.2 to 1.5) were also smaller for the low-density cages. Average survival was 96.7% for the low-density cages and 94.2% for the high-density cages, with the percentage of market-size fish (< 29 cm) averaging 50.3% and 52.0%, respectively. Production costs for the actual experiment and the revenues from fish sold at the end of the study were collected. An enterprise budget based on the experimental results for the two densities was developed to determine if a culture operation of this size would produce a net return. Production costs and revenues from the experiment resulted in a large negative return (-$3,124) and high breakeven price ($13.53/kg).  相似文献   

17.
Recirculating raceway systems were examined for their potential as a method for the intensive culture of the marine shrimp Penaeus vannamei Boone. The systems consisted of fiberglass raceways 38 m3 (13.7 m ± 2.4 m ± 1.16 m) and 28 m3 (13.7 m ± 2.4 m ± 0.85 m) each equipped with a vertical screen biofilter, foam fractionators and an ultraviolet ozone generator. All of the systems were enclosed in a commercial greenhouse. Four preliminary growout experiments and two growout experiments with stocking densities of 970 shrimp/m3 and 2,132 shrimp/m3 were completed.
Temperature, pH and salinity remained constant throughout the experiments. Unionized ammonia levels remained below 0.2 mg/L. Nitrite levels ranged from 0.1 to 1.0 mg/L. The 2,132/m2 stocking density resulted in 48% survival, food conversion ratio (FCR) of 1.8 and an average size of 10.8 g. The 970/m3 stocking density resulted in 82% survival, FCR of 2, and an average size of 14 g. Production was 11.4 kg/m3 (114 tons/ha) and 11.0 kg/m3 (110 tons/ha) for the high and low stocking densities, respectively.  相似文献   

18.
杂交青虾“太湖1号”苗种在池塘养殖中的适宜放养密度   总被引:1,自引:0,他引:1  
以饲料系数、养殖产量、成虾规格、体长与体质量特定生长率作为判据,水质状况作为参考,以杂交青虾"太湖1号"为实验对象,在放养密度为60、105、150、195、240尾/m35个梯度下进行为期100 d的养殖试验,研究杂交青虾"太湖1号"苗种在池塘养殖中的适宜放养密度。结果显示,150尾/m3组的饲料系数显著低于195尾/m3和240尾/m3组(P<0.05),而养殖产量及成虾规格显著高于其它各组(P<0.05)。在高于150尾/m3的高密度组中,虽然产量也显著高于低密度组(P<0.05),但成虾规格较小。养殖期间各养殖水体的水质均能满足养殖虾的生长需求;高温季节除了高密度组的亚硝态氮盐指标稍有升高以外,水体pH、DO、NH4+-N等指标基本保持一致。将放养密度分别与饲料系数、增重率、体长与体质量特定生长率等指标之间进行二次回归曲线方程拟合,计算出杂交青虾"太湖1号"的适宜放养密度为117~150尾/m3。  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号