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在工业化水产养殖设施中的热环境的数值计算和实验分析
Zhipeng Yang1,2, Desheng Li1, Jiashuai Song1
1College of Engineering, Anhui Agricultural University, Anhui Hefei, China.
PloS one
|September 25, 2023
概括
这项研究验证了工业化水产养殖设施的数值模型,证实了其在预测热性能方面的准确性. 优化绝缘可以保持最佳的水温,这对于高效的冬季养鱼至关重要.
科学领域:
- 水产养殖工程 水产养殖工程
- 热管理 热管理
- 可持续农业 可持续农业
背景情况:
- 对高质量的水产产品日益增长的需求需要高效的工业化水产养殖.
- 现有设施面临着隔热的挑战,影响运营效率.
- 精确的热建模对于优化这些系统至关重要.
研究的目的:
- 验证一个用于预测工业化水产养殖设施的热环境的数值模型.
- 评估这些设施在冬季的绝热性能.
- 确定冬季水产养殖的最佳加热策略和能源消耗.
主要方法:
- 模型验证使用实际测量空气,水和表面温度的数据.
- 数字模拟来分析热性能和绝缘优化.
- 在冬季保持不同水温的能源消耗计算.
主要成果:
- 数字模型的准确性得到证实,平均相对误差在2.5%以内.
- 优化的绝缘使水温适合 (Epinephelinae) 种植 (21°C).
- 能源消耗分析显示,大量的煤炭相当于供暖,峰值效率在22-25°C之间.
结论:
- 经过验证的数值模型准确地反映了水产养殖设施的热力学.
- 优化体热物理参数是实现所需水温的关键.
- 保持水温在22-25°C之间为冬季水产养殖提供了最高的加热效率,为该行业提供了宝贵的见解.
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