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Evaluation and modelling of the nitrogen and solids dynamics in recirculating aquaculture systems.

机译:循环水产养殖系统中氮和固体动力学的评估和建模。

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摘要

The evaluation and modelling of the nitrogen and solids dynamics in recirculating aquaculture systems was carried out in three different parts. The first part evaluated the effect of two settling unit sizes (large and small), three solid removal periods (each 48, 24, or 12-hours), and three percentages of water exchanged (9, 18, and 36% of the total volume) on nitrogen budget, water quality, and fish production performance. The second part evaluated the effect of high (47% P) and low (32% P) protein diets on mass and energy balance and resource use. In the third part of the thesis, the nitrogen and solids models were built, parameterized, calibrated, and validated. The large settling units had higher inorganic nitrogen concentrations and removed lower amounts of dry matter and protein than small settling units. Dissolved oxygen and chlorophyll-a concentrations, pH, water temperature, and fish variables (feed conversion rate, biomass gained, dry matter, and protein retention efficiency) were not significantly affected by the size of the settling units. The level of protein in the diets had a negligible effect on the mass balance of the feed ingredients in the system. The level of protein in the diet also had an insignificant effect on the amount of nitrogen lost from the system. The protein levels in the affected the environmental cost on-farm. The nitrogen model predicted with adequate accuracy (less than 10% of average relative error) the fish nitrogen retained, dissolved nitrogen (ammonia-N, nitrite-N, and nitrate-N concentrations), and the phytoplankton N concentrations, and the phytoplankton N concentrations. The solids model predicted with adequate accuracy (less than 10% of relative error) most of the system solids. Fraction of uneaten feed did not affect the solids accumulated in the system, while an increase in protein digestibility decreased the solids in the rearing, settling, and biofilter units. (Abstract shortened by UMI.)
机译:在三个不同的部分对循环水产养殖系统中的氮和固体动力学进行了评估和建模。第一部分评估了两个沉降单元大小(大和小的),三个固体去除时间(每个48、24或12小时)和三个百分比的水交换(分别占总沉降量的9%,18%和36%)的影响氮预算,水质和鱼类生产绩效)。第二部分评估了高蛋白饮食(47%P)和低蛋白饮食(32%P)对质量和能量平衡以及资源利用的影响。在论文的第三部分中,建立了氮和固体模型,对其进行了参数化,校准和验证。大型沉降单元比小型沉降单元具有较高的无机氮浓度,并去除了较少量的干物质和蛋白质。沉降单元的大小对溶解氧和叶绿素a的浓度,pH,水温和鱼类变量(饲料转化率,获得的生物量,干物质和蛋白质保留效率)没有显着影响。日粮中蛋白质的水平对系统中饲料成分的质量平衡的影响可忽略不计。饮食中的蛋白质含量对系统中氮的损失量也没有显着影响。蛋白质水平影响了农场的环境成本。氮模型以足够的精度(小于平均相对误差的10%)预测鱼的氮保留量,溶解氮(氨氮,亚硝酸盐氮和硝酸盐氮的浓度),浮游植物N的浓度以及浮游植物N的浓度浓度。实体模型可以以足够的精度(小于相对误差的10%)预测大多数系统实体。未进料的饲料的分馏率不会影响系统中累积的固体,而蛋白质消化率的提高会降低饲养,沉降和生物滤池单元中的固体。 (摘要由UMI缩短。)

著录项

  • 作者

    Cabarcas Nunez, Alexis A.;

  • 作者单位

    University of Puerto Rico, Mayaguez (Puerto Rico).;

  • 授予单位 University of Puerto Rico, Mayaguez (Puerto Rico).;
  • 学科 Biology Animal Physiology.; Agriculture Fisheries and Aquaculture.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 165 p.
  • 总页数 165
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生理学;水产、渔业;
  • 关键词

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