段洁利, 张馨予, 吕恩利, 陆华忠, 侯可明. 仓储转轮除湿系统管道形式参数优化试验[J]. 农业工程学报, 2016, 32(15): 255-260. DOI: 10.11975/j.issn.1002-6819.2016.15.035
    引用本文: 段洁利, 张馨予, 吕恩利, 陆华忠, 侯可明. 仓储转轮除湿系统管道形式参数优化试验[J]. 农业工程学报, 2016, 32(15): 255-260. DOI: 10.11975/j.issn.1002-6819.2016.15.035
    Duan Jieli, Zhang Xinyu, Lü Enli, Lu Huazhong, Hou Keming. Optimization of pipe form parameters of desiccant rotary wheels of dehumidification system for storage[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2016, 32(15): 255-260. DOI: 10.11975/j.issn.1002-6819.2016.15.035
    Citation: Duan Jieli, Zhang Xinyu, Lü Enli, Lu Huazhong, Hou Keming. Optimization of pipe form parameters of desiccant rotary wheels of dehumidification system for storage[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2016, 32(15): 255-260. DOI: 10.11975/j.issn.1002-6819.2016.15.035

    仓储转轮除湿系统管道形式参数优化试验

    Optimization of pipe form parameters of desiccant rotary wheels of dehumidification system for storage

    • 摘要: 为提高仓储除湿系统的工作性能,改善仓储环境中相对湿度的均匀性,设计了管道式转轮除湿系统,并对改造后系统的除湿效果进行了测试和分析。增加了管道式干空气通路,气流组织方式由原来的箱体中部送风、底部回风改为管道开孔送风、底部回风。研究了管道位置、管道直径、管道开孔数对除湿效果的影响。根据不同因素对除湿效果的整体影响效果,综合极差分析和方差分析,得出影响除湿效果因素的排序为管道开孔数、管道直径、管道位置。试验结果表明,最佳除湿效果组合为管道位于箱体中部0.65 m处、管道直径为40 mm、管道开孔数为20个时,除湿能力达71.74 g/(kg?h),除湿效率达0.090 6 g/(kg?h?kJ),综合效果好。研究结果对仓储除湿系统的优化设计有一定的参考价值。

       

      Abstract: Controlling the humidity in environment is very important for qualities of storage.In order to improve the working performance of desiccant rotary wheels of dehumidification system for the storage and the relative humidity uniformity of the storage environment, a set of pipeline type wheel dehumidifying device was integrated into the existing dehumidification system in this study.By increasing pipeline type passage of dry air, the pattern of indoor air flow was rearranged from middle-in and bottom-out to pipe-in and bottom-out.In this study, hybrid rice seeds were used as the test material.To determine the dehumidifying effect of the modified system, a three-factor three-level orthogonal experiment for the prototype was carried out and the results were analyzed.Experiment was carried out at temperature of 25 ℃, airflow velocity of 5 m/s, and cargo stacking in the intermediate bottom.For the 3 factors in the experiment, pipeline location was set as 1.25, 0.65 and 0.05 m, pipe diameter was set as 50, 40 and 32 mm, and number of holes on pipes was set as 5, 10 and 20.With the pipeline type wheel dehumidifying device, the relative humidity in the container could be decreased from 95% to 30%.When the pipeline was located at 0.05 m above the bottom of the container, the pipeline diameter was 50 mm, and the number of holes on pipes was 20.It was found this relative humidity distribution was the most uniform, and the coefficient of variance of relative humidity was 3.81%, which was about only 15% of the worst case.Because the position of the air supply pipe determined the revolving flow of the whole flow field.Meanwhile, it was found that the best dehumidifying effect occurred under the conditions that the pipeline location was 0.65 m, the pipe diameter was 40 mm, and the number of holes on pipes was 20.The capacity of the desiccant in combination of the pipeline location of 0.65 m, the pipe diameter of 40 mm, and the 20 holes on pipes was 71.74 g/(kg?h), which was about twice of that in the worst case.The corresponding efficiency of the desiccant was 0.0906 g/(kg?h?kJ), which was 3 times that of the worst case.Taking into account the overall effect of the desiccant, more attention should be paid to the performance of the desiccant capacity and efficiency.The results show that the number of holes on pipes makes the strongest unique contribution to the capacity and efficiency of the desiccant, followed by the pipe diameter and the pipeline location.Overall, the research can provide guideline information for the optimization design of dehumidification system for the storage.

       

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