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大型商业蛋鸡舍两年连续监测的通风率。

Ventilation rates in large commercial layer hen houses with two-year continuous monitoring.

机构信息

Vegetable Research Centre, Beijing Academy of Agriculture and Forestry Sciences, Beijing, P.R. China.

出版信息

Br Poult Sci. 2012;53(1):19-31. doi: 10.1080/00071668.2011.643766.

DOI:10.1080/00071668.2011.643766
PMID:22404801
Abstract
  1. Ventilation controls the indoor environment and is critical for poultry production and welfare. Ventilation is also crucial for assessing aerial pollutant emissions from the poultry industry. Published ventilation data for commercial layer houses have been limited, and are mostly based on short-term studies, mainly because monitoring airflow from large numbers of fans is technically challenging. 2. A two-year continuous ventilation monitoring trial was conducted at two commercial manure belt houses (A and B), each with 250 000 layers and 88 130-cm exhaust fans. All the fans were individually monitored with fan rotational speed sensors or vibration sensors. Differential static pressures across the house walls were also measured. Three fan performance assessment methods were applied periodically to determine fan degradations. Fan models were developed to calculate house ventilations. 3. A total of 693 and 678 complete data days, each containing >16 h of valid ventilation data, were obtained in houses A and B, respectively. The two-year mean ventilation rates of houses A and B were 2·08 and 2·10 m(3) h(-1) hen(-1), corresponding to static pressures of -36·5 and -48·9 Pa, respectively. For monthly mean ventilation, the maximum rates were 4·87 and 5·01 m(3) h(-1) hen(-1) in July 2008, and the minimum were 0·59 and 0·81 m(3) h(-1) hen(-1) in February 2008, for houses A and B, respectively. 4. The two-year mean ventilation rates were similar to those from a survey in Germany and a 6-month study in Indiana, USA, but were much lower than the 8·4 and 6·2 m(3) h(-1) hen(-1) from a study in Italy. The minimum monthly mean ventilation rates were similar to the data obtained in winter in Canada, but were lower than the minimum ventilation suggested in the literature. The lower static pressure in house B required more ventilation energy input. The two houses, although identical, demonstrated differences in indoor environment controls that represented potential to increase ventilation energy efficiency, and reduce carbon footprints and operational costs.
摘要
  1. 通风控制着室内环境,对家禽生产和福利至关重要。通风对于评估家禽业的空气污染物排放也至关重要。商业层鸡舍的通风数据发表有限,主要是因为监测大量风机的气流在技术上具有挑战性,而且这些数据大多基于短期研究。

  2. 在两个商业粪带鸡舍(A 和 B)中进行了为期两年的连续通风监测试验,每个鸡舍有 25 万只鸡和 88 个 130 厘米的排风扇。所有的风扇都通过风扇转速传感器或振动传感器进行单独监测。房屋墙壁之间的压差也进行了测量。定期应用三种风扇性能评估方法来确定风扇的退化情况。开发了风扇模型来计算房屋的通风量。

  3. 在 A 号和 B 号房屋中,分别获得了 693 天和 678 天完整的数据日,每个数据日包含超过 16 小时的有效通风数据。A 号和 B 号房屋两年的平均通风率分别为 2.08 和 2.10 m³/h·只(-1),相应的静压分别为-36.5 和-48.9 Pa。对于月平均通风量,2008 年 7 月的最高通风率分别为 4.87 和 5.01 m³/h·只(-1),2008 年 2 月的最低通风率分别为 0.59 和 0.81 m³/h·只(-1),A 号和 B 号房屋。

  4. 这两年的平均通风率与德国的一项调查和美国印第安纳州的一项 6 个月研究相似,但远低于意大利的 8.4 和 6.2 m³/h·只(-1)。最低月平均通风率与加拿大冬季获得的数据相似,但低于文献中建议的最低通风量。B 号房屋的较低静压需要更多的通风能量输入。尽管这两个房屋相同,但它们在室内环境控制方面存在差异,这代表着提高通风能源效率、减少碳足迹和运营成本的潜力。

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