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Air temperature carbon dioxide and ammonia assessment inside a commercial cage layer barn with manure-drying tunnels

机译:带有粪便隧道的商业笼子层谷仓内的空气温度二氧化碳和氨评估

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摘要

Understanding the air temperature distribution, ammonia (NH3) and carbon dioxide (CO2) levels in poultry housing systems are crucial to poultry health, welfare, and productivity. In this study, 4 Intelligent Portable Monitoring Units and 7 temperature sensors were installed inside and between the cages and above 2 minimum ventilation fans of a commercial stacked-deck cage laying hen house in the Midwest United States (425,000 laying hens) to continuously monitor the interior environment over a 6-month period. During cold conditions (March 12th–May 22nd), there was a variation noted, with barn center temperatures consistently being highest in the longitudinal and lateral direction (P < 0.001) and the top floor deck warmer than the bottom floor (P < 0.05). During hotter conditions (May 23rd–July 26th), the interior thermal environment was more uniform than during the winter, resulting in a difference only in the longitudinal direction. The daily CO2 and NH3 concentrations were 400 to 4,981 ppm and 0 to 42.3 ppm among the 4 sampling locations, respectively. Both CO2 and NH3 decreased linearly with increasing outside temperatures. The mean NH3 and CO2 concentrations varied with sampling locations and with the outside temperatures (P < 0.001). For CO2, the minimum ventilation sidewall had lower values than those measured in the barn’s center (P < 0.05) during cold weather, while the barn center and the manure room sidewall consistently measured the highest concentrations during warmer weather (P < 0.05). For NH3, the tunnel ventilation inlet end consistently had the lowest daily concentrations, whereas the in-cage and manure drying tunnel sidewall locations measured the highest concentrations (P < 0.001). Higher NH3 and CO2 concentrations were recorded within the cage than in the cage aisle (P < 0.05). The highest NH3 concentration of 42 ppm was recorded above the minimum exhaust fan adjacent to the manure drying tunnel, which indicated that higher pressure (back pressure) in the manure drying tunnel allowed air leakage back into the production area through nonoperating sidewall fan shutters.
机译:理解家禽壳体系统中的空气温度分布,氨(NH3)和二氧化碳(CO2)水平对家禽健康,福利和生产力至关重要。在这项研究中,4个智能便携式监控单元和7个温度传感器安装在笼子内和7架之间,以上225,000名铺设鸡舍的商业堆叠甲板笼的最小通风风扇(425,000鸽)以不断监测室内环境在6个月内。在寒冷条件(3月12日至5月22日)期间,有一个变型,谷仓中心温度在纵向和横向方向上始终如一(P <0.001),顶层甲板比底层升温(P <0.05) 。在较热的条件下(5月23日至7月26日),内部热环境比冬季更均匀,导致仅在纵向方向上的差异。每日CO 2和NH 3浓度分别为400至4,981ppm,4个采样位置分别为0至42.3ppm。 CO 2和NH3均随着外部温度的增加而线性下降。平均NH 3和CO 2浓度随抽样位置而变化,外部温度(P <0.001)。对于CO2,最小通风侧壁的值低于寒冷天气中谷仓中心(P <0.05)测量的值较低的值,而谷仓中心和粪便室侧壁在温暖的天气期间始终测量最高浓度(P <0.05)。对于NH3,隧道通风入口始终具有最低日常浓度,而内架和粪便干燥隧道侧壁位置测量最高浓度(P <0.001)。在笼内记录较高的NH 3和CO 2浓度,而不是在笼式过道中(P <0.05)。 42ppm的最高NH 3浓度被记录在与粪便干燥隧道相邻的最小排气扇上方,这表明粪便干燥隧道中的更高的压力(背压)允许通过非渗透侧壁风扇百叶窗泄回空气泄漏回到生产区域。

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