首页> 外文期刊>Aquacultural Engineering: An International Journal >Temperature modeling of a land-based aquaculture system for the production of Gracilaria pacifica: Possible system modifications to conserve heat and extend the growing season
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Temperature modeling of a land-based aquaculture system for the production of Gracilaria pacifica: Possible system modifications to conserve heat and extend the growing season

机译:用于生产Gracilaria pacifica的陆基水产养殖系统的温度模型:可能的系统修改以节省热量并延长生长期

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Temperature control is a major cost for numerous aquaculture systems. Solar thermal engineering techniques can be used to identify inexpensive methods for conserving and capturing heat. Gracilaria pacifica, also known as the culinary ingredient ogo, is currently grown in land-based tanks at a site in Goleta, CA where influent sea water temperatures infrequently reach the 21-28 degrees C range that provides for optimal growth. The major objective of this study was to explore various designs of a G. pacifica tank culture system that maintain optimal water temperature year round to maximize growth. A model was constructed and calibrated by comparing results to a one-third scale pilot system operated in Davis, CA. For model calibration the most sensitive parameter such as cover optical properties were adjusted first and less sensitive parameters were adjusted later. The pilot system consisted of six tanks, three insulated with foam and a clear polyethylene cover (experimental), and three uninsulated and uncovered (controls). The model had weather data inputs including air temperature, humidity, wind speed, and solar radiation. The model was then compared to a full-scale system operated in Santa Barbara during the winter. The experimental pilot system was 4.93 degrees C warmer than the control pilot system under optimal weather conditions. The full-scale experimental system was 2.80 degrees C warmer than the control system under non-ideal conditions. The model demonstrated predictive accuracy under most weather conditions. Furthermore the model is robust enough to accept estimated values for many inputs and still produce accurate results, this suggests a simpler model may be feasible. A polyethylene cover and insulation are not sufficient in general for raising the water temperature to the optimum range during the winter; they may be during other times of the year when more solar energy is available, thereby extending the growing season. (C) 2015 Elsevier B.V. All rights reserved.
机译:温度控制是许多水产养殖系统的主要成本。可以使用太阳能热工程技术来确定用于保存和捕获热量的廉价方法。南美楠(Gracilaria pacifica),也被称为烹饪成分ogo,目前在加利福尼亚州哥莱塔(Goleta)的一个地点的陆基水箱中生长,这里的进水海水温度很少达到21-28摄氏度,可以实现最佳生长。这项研究的主要目的是探索各种G.pacifica罐式培养系统的设计,这些设计可全年保持最佳水温以最大化生长。通过与加利福尼亚州戴维斯市运营的三分之一规模的试验系统进行比较,构建并校准了模型。对于模型校准,首先调整最敏感的参数(例如覆盖光学特性),然后调整较不敏感的参数。试点系统由六个储罐组成,三个由泡沫绝缘并且有一个透明的聚乙烯盖(实验性),以及三个未绝缘和未覆盖的(对照组)。该模型具有天气数据输入,包括空气温度,湿度,风速和太阳辐射。然后将模型与冬季在圣塔芭芭拉(Santa Barbara)运行的全面系统进行了比较。在最佳天气条件下,实验控制系统比控制控制系统高4.93摄氏度。在非理想条件下,全尺寸实验系统比对照系统高2.80摄氏度。该模型证明了在大多数天气条件下的预测准确性。此外,该模型具有足够的鲁棒性,可以接受许多输入的估计值,并且仍然可以产生准确的结果,这表明更简单的模型是可行的。通常,聚乙烯套和绝缘材料不足以将冬季的水温升高至最佳范围。它们可能会在一年中的其他时间使用更多的太阳能,从而延长了生长季节。 (C)2015 Elsevier B.V.保留所有权利。

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