复合型智能蘑菇栽培设备对流换热性能研究

Jae-Hwan Son, D. Cho, K. Nah
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摘要

假设混合型智能蘑菇培养设备的内部流体为空气。假设四个FCU和风扇分别位于左侧和右侧,每个FCU和风扇分别位于前部,用于强制流。分析了fcu和风扇高、低安装的四种情况。为了分析室温下的智能农场,将内部初始温度设置为10℃,并假设15℃的空气以0.5 m/s的速度从fcu流入,从风扇流出。另外,假设智能蘑菇设施内部温度恒定在12~18℃范围内时为最佳温度,并假设面板是隔热的。对四个季节也进行了分析。通过稳定地实现一致的环境管理,智能蘑菇栽培设备的最佳条件不仅节省了每天重复通风的工作量,而且使通风管理处于最佳状态,从而实现高质量的生产。本研究旨在通过流量分析来检验夹层隔热板型智能农场系统。通过调整fcu和风扇的位置,使多阵菌床之间的气流在四行七层的多阵菌床之间平滑,防止上下菌床之间的环境差异。fcu和fan位置较低的智能蘑菇设施的标准差最小,为0.298。因此,由于智能蘑菇培养设备内部货架周围的温度分布最均匀,因此判断该智能蘑菇培养模式为最优模式。选择635点周围的架子在内部流动发生,以确定温度结果,并检查平均值和标准偏差。标准偏差是指所有值与平均值之间的差值(偏差)的平均值。标准差越大,该值与均值的偏差越大。因此,标准差代表了观测值的散射程度。因此,模型的标准差越小,温度分布越均匀
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Study on the Performance of the Convective Heat Transfer of Hybrid Smart Mushroom Cultivation Equipment
The hybrid smart mushroom cultivation equipment’s internal fluid was assumed to be air. Four each FCUs and FANs were assumed to be on the left and on the right and one each FCU and FAN were assumed to be on the front for forced flows. Four cases where the FCUs and FANs were installed high or low were analyzed. To analyze the smart farm at room temperature, the internal initial temperature was set to 10 ℃ and it was assumed that air at 15 ℃ would flow in through the FCUs at 0.5 m/s and flow out through the FANs. In addition, the internal temperature of smart mushroom growing facility was assumed to be optimal when it is constant in a range of 12~18 ℃ and the panels were assumed to be insulated. Analyses were conducted for four seasons too. By stably realizing consistent environmental management, smart mushroom cultivation equipment optimum conditions not only save the effort for ventilation repeated everyday but also enable the management of ventilation at the optimum thereby enabling high quality production. The present study is intended to examine sandwich insulation panel type smart farm systems through flow analyses. The positions of FCUs and FANs that are in charge of air inflows/outflows were adjusted to smoothen the air flows between the multiple array mushroom beds in four lines of seven layers and prevent environmental differences between upper and lower mushroom beds. The standard deviation of the smart mushroom growing facility where FCUs and FANs were positioned low was the smallest amounting to 0.298. Therefore, this smart mushroom cultivation was judged to be the optimum model because the temperatures around the shelves inside the smart mushroom cultivation equipment became the most evenly distributed. Select 635 points around the shelf in the inside where flows occur to determine temperature results and check the mean and standard deviation. The standard deviation refers to the average value of the differences (deviations) between all values from the mean. The larger the standard deviation is, the more the value deviates from the mean. Therefore, the standard deviation represents the degree of scattering of the observed values. Therefore, the smaller the standard deviations of the model, the more uniform the temperature distribution
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