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首页> 外文期刊>Aquacultural Engineering: An International Journal >Heavy metal and waste metabolite accumulation and their potential effect on rainbow trout performance in a replicated water reuse system operated at low or high system flushing rates
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Heavy metal and waste metabolite accumulation and their potential effect on rainbow trout performance in a replicated water reuse system operated at low or high system flushing rates

机译:重金属和废物代谢物的积累及其对虹鳟鱼性能的潜在影响,该系统以低或高系统冲水速度运行

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A six-month trial was conducted to compare the effects of high and low make-up water flushing rates on rainbow trout performance and water quality in replicated water reuse aquaculture systems (WRAS). Six identical 9.5mpd WRAS, containing a single 5.3mpd tank and operated at a total recirculating flow of 380L/min were stocked with 1000 rainbow trout each (133pl1g). Three WRAS were operated at high flushing rates (2.6% of total flow) and three were operated at low flushing rates (0.26% of total flow), providing system hydraulic retention times of 0.67 and 6.7 days, respectively. During a one-week period when fish were at maximum feeding (i.e., mean feed loadings of 0.53 and 5.3kg/mpd make-up water flow high and low make-up conditions, respectively) and maximum densities (80kg/mpd), water samples were collected across all unit processes. All typical water quality parameters measured at the culture tank outlet during this week were significantly different between treatments, except for dissolved oxygen, carbon dioxide, and temperature, which were controlled. Within the low exchange WRAS, total suspended solids (TSS), carbonaceous biochemical oxygen demand, total ammonia nitrogen, un-ionized ammonia nitrogen, nitrite nitrogen, nitrate nitrogen, dissolved organic carbon, particle counts, true color, and total heterotrophic plate counts were significantly greater, whereas UV transmittance (%) and alkalinity were significantly reduced. Of these parameters, TSS, fine particles, and heterotrophic bacteria counts were the only parameters of concern within the low exchange WRAS. The potential impacts of each water quality constituent are discussed. Element analysis indicated that concentrations of nine metals were significantly greater within the low exchange WRAS. The highest metal concentrations measured at low exchange were within safe recommended limits, with the exception of copper (0.037-0.056mg/L), which could have reached chronically toxic levels. Although cumulative mortality was relatively low for all WRAS, a linear trend between copper concentration and mortality was evident. The highest mortality, which occurred within a low exchange WRAS, coincided with the highest copper (0.056mg/L); and the lowest mortality, which occurred within a high exchange WRAS, coincided with non-detectable copper levels. A comparison of survival between treatments bordered significance, 99.5pl0.1 and 98.9pl0.4% for the high and low exchange WRAS, respectively. There was no significant difference in rainbow trout weight at the conclusion of the study, i.e., approximately one year post-hatch: 1401pl23 and 1366pl33g for the high and low exchange WRAS, respectively. There were no differences in thermal growth coefficients or feed conversion ratios between the high and low exchange treatments. Rainbow trout condition factor was significantly greater within the low exchange WRAS.
机译:进行了为期六个月的试验,以比较高倍率补水率和低倍率补水率对重复水回用养殖系统(WRAS)中虹鳟鱼性能和水质的影响。六个相同的9.5mpd WRAS,一个单一的5.3mpd储罐并以380L / min的总循环流量运行,每个库存有1000条虹鳟鱼(133pl1g)。三个WRAS以高冲洗率(占总流量的2.6%)运行,而三个WRAS以低冲洗率(占总流量的0.26%)运行,分别提供0.67和6.7天的系统液压保留时间。在鱼类达到最大摄食量(即平均摄食量分别为高和低补充条件下的补充水流量分别为0.53和5.3kg / mpd)和最大密度(80kg / mpd),水的一个星期期间内在所有单元过程中收集样本。在本周期间,除了可控制的溶解氧,二氧化碳和温度外,各处理之间在培养槽出口处测得的所有典型水质参数均存在显着差异。在低交换WRAS中,总悬浮固体(TSS),碳质生化需氧量,总氨氮,未电离的氨氮,亚硝酸盐氮,硝酸盐氮,溶解的有机碳,颗粒数,本色和总异养板数为紫外线透过率(%)和碱度显着降低。在这些参数中,TSS,细颗粒和异养细菌计数是低交换WRAS中唯一需要关注的参数。讨论了每种水质成分的潜在影响。元素分析表明,低交换WRAS中9种金属的浓度明显更高。在低交换下测得的最高金属浓度在安全建议的范围内,但铜(0.037-0.056mg / L)除外,铜可能已达到慢性毒性水平。尽管所有WRAS的累积死亡率都相对较低,但是铜浓度和死亡率之间存在线性趋势。在低交换WRAS内发生的最高死亡率与最高铜(0.056mg / L)一致。最低的死亡率发生在高交换WRAS中,与不可检测的铜水平相吻合。高和低交换WRAS的治疗之间的生存率比较具有显着意义,分别为99.5pl0.1和98.9pl0.4%。在研究结束时,即孵化后大约一年,虹鳟鱼的体重没有显着差异:高和低交换WRAS分别为1401pl23和1366pl33g。高和低交换处理之间的热生长系数或饲料转化率没有差异。在低交换WRAS中,虹鳟鱼的条件因子明显更大。

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