中国猪业 ›› 2024, Vol. 19 ›› Issue (3): 34-46.doi: 10.16174/j.issn.1673-4645.2024.03.004

• 专题报道 • 上一篇    下一篇

畜禽粪污好氧发酵多参数监测系统设计与试验

赵文文,仇天雷,朱君,王海峰,贾楠,李斌   

  • 出版日期:2024-07-15 发布日期:2024-06-25

  • Online:2024-07-15 Published:2024-06-25

摘要: 为解决畜禽粪污好氧发酵监测系统的参数单一、缺少罐体强度与监测数据有效性分析等问题,研究设计了畜禽粪污好氧发酵多参数监测系统,并开展测试与试验。该系统基于多点分布的气体要温度传感器,采集粪污发酵过程中CO2、O2 及不同堆层温度的实时数据,利用DWIN DGUS 开发平台搭建本地操作系统,实现监测信息的显示、存储等,并采用ANSYS 软件对发酵罐体及搅拌机构的结构强度进行分析。结果表明,在机械结构强度仿真分析过程中,发酵罐体及搅拌机构最大等效应力分别为0.837 MPa、0.276 MPa,最大变形量分别为(1.61×10-3)mm、(4.44×10-4)mm,强度符合设计要求;在预试验过程中,发酵罐内在不同堆层的温度变化一致,其中罐内温度传感器A~E 采集温度的平均值分别为28.60℃、28.64℃、27.82℃、28.73℃和28.21℃,均显著高于罐外温度传感器F 的平均值25.51℃(P<0.05),罐内CO2、O2浓度最大差值分别为221 ppm、0.5%;在正式试验过程中,粪污好氧发酵过程经历了完整的升温、高温、降温阶段,且粪污发酵高温期持续时间在5 d 以上,罐内CO2 浓度与O2 浓度呈相反的增减趋势变化;借助hampel 滤波识别方法分别构建了罐体中、下层的粪污发酵温度与发酵时间的回归模型,相关系数R2 分别为0.85 和0.79。说明该系统中各传感器采集的数据稳定,发酵过程符合好氧发酵的变化规律,发酵温度与发酵时间具有较好的相关性,可满足规模化好氧发酵过程参数在线监测需求。

关键词: 畜禽粪污, 发酵, 堆肥, 温度, 气体监测, 发酵罐, hampel 滤波, 仿真分析

中图分类号:  S818.9;TP391.4;X713

[1] 黄欣. 畜禽粪污资源化利用处理现状及发展[J]. 中国畜牧业,2021(3):49-50. HUANG X. Present situation and development of resource utilization and treatment of livestock manure[J]. China Animal Industry, 2021(3):49-50. [2] 高海娟, 刘泽东, 孙蕊, 等. 畜禽粪污处理及资源化利用现状和措施[J]. 饲料博览, 2022(3):37-40. GAO HJ, LIU ZD, SUN R, et al. Current situation and measures of livestock and poultry manure treatment and resource utilization[J]. Feed Review, 2022(3):37-40. [3] 周海宾, 丁京涛, 孟海波, 等. 中国畜禽粪污资源化利用技术应用调研与发展分析[J]. 农业工程学报, 2022, 38(9):237-246. ZHOU HB, DING JT, MENG HB, et al. Survey and development analysis of resource utilization technology of livestock and poultry wastes in China[J]. Transactions of the Chinese Society of Agricultural Engineering, 2022, 38(9):237-246. [4] 王灿, 何腾兵, 杨志勇, 等. 好氧堆肥与厌氧发酵对猪粪重金属有效性的影响[J]. 西南农业学报, 2023, 36(7):1504-1512. WANG C, HE TB, YANG ZY, et al. Effects of aerobic composting and anaerobic fermentation on availability of heavy metals in pig manure[J]. Southwest China Journal of Agricultural Sciences, 2023, 36(7):1504-1512. [5] 北京市人民政府网. 国务院办公厅关于加快推进畜禽养殖废弃物资源化利用的意见[EB/OL]. https://www.beijing.gov.cn/zhengce/gwywj/201905/t20190522_60289.html. The People's Government of Beijing Municipality. Opinions of general office of the state council on accelerating the resourceutilization of livestock and poultry breeding wastes[EB/OL]. https://www.beijing.gov.cn/zhengce/gwywj/201905/t20190522_60289.html. [6] 中国人民政府网. 国务院办公厅关于促进畜牧业高质量发展的意见[EB/OL]. https://www.gov.cn/zhengce/content/2020-09/27/content_5547612.htm. Chinese People's Government Website. Opinions of the General Office of the State Council on promoting the high quality development of animal husbandry [EB/OL]. https://www.gov.cn/zhengce/content/2020-09/27/content_5547612.htm. [7] 辛祥彬. 基于ZigBee 无线自组网的堆肥发酵过程监控系统的设计与实现[D]. 天津: 天津大学, 2017. XIN XB. The design and implementation of ZigBee-network-based monitoring system on composting process [D].Tianjin: Tianjin University, 2017. [8] 张海波, 武占银, 郑风玲, 等. 基于单片机的堆肥好氧发酵时间—温度反馈控制系统研究[J]. 安徽农业科学, 2015, 43(29):364-367. ZHANG HB, WU ZY, ZHENG FL, et al. Study on time-temperature feedback control system of aerobic composting fermentation based on single chip microcomputer[J]. Journal of Anhui Agricultural Sciences, 2015, 43(29):364-367. [9] 缪宏, 张玲聪, 夏云帆, 等. 好氧堆肥反应器内部在线监测控制系统设计[J]. 农机化研究, 2020, 42(6):68-72. MIU H, ZHANG LC, XIA YF, et al. Design of internal online monitoring and control system for aerobic composting bioreactor[J]. Journal of Agricultural Mechanization Research, 2020, 42(6):68-72. [10] 朱能武, 邓昌彦, 熊远著, 等. 基于温度—时间的好氧堆肥通风控制系统的设计与运行效果[J]. 农业工程学报, 2003, 19(4):282-286. ZHU NW, DENG CY, XIONG YZ, et al. Design and operational effect of time/temperature-based aeration control system for aerobic composting[J]. Transactions of the Chinese Society of Agricultural Engineering, 2003, 19(4):282-286. [11] 姚娟, 李家连, 倪福川, 等. 基于多线程的堆肥监控系统[J]. 农机化研究, 2010, 32(6):205-208,224. YAO J, LI JL, NI FC, et al. The composting-monitoring system based on multi-thread[J]. Journal of Agricultural Mechanization Research, 2010, 32(6):205-208,224. [12] 邓志辉, 张西良. 基于蓝牙技术的堆肥发酵仓参数检测系统的设计[J]. 农机化研究, 2013, 35(11):211-214. DENG ZH, ZHANG XL. Design of parameters detection system of composting fermentation tanks based on bluetooth technology [J]. Journal of Agricultural Mechanization Research, 2013, 35(11):211-214. [13] OAZANA S, NAOR M, GRINSHPUN J, et al. A flexible control system designed for lab-scale simulations and optimization of composting processes [J]. Waste Management,2018, 72:150-160. [14] ISOBAEV P, BOUFERGUENE A, WICHUK KM , et al. An enhanced compost temperature sampling framework: case study of a covered aerated static pile[J]. Waste Management,2014, 34(7):1117-1124. [15] 石贵振. 新型粪肥发酵反应器的设计及其参数优化[D]. 武汉:华中农业大学, 2021. SHI GZ. Design of A new type of manure bioreactor and its parameters optimization[D]. Wuhan: Huazhong Agricultural University, 2021. [16] 张雅鑫, 邹淑鑫, 耿欣, 等. 鸡粪无害化处理与太阳能好氧发酵技术的应用[C]// 中国环境科学学会2022年科学技术年会———环境工程技术创新与应用分会场论文集(二). 南昌, 2022:258-260. ZHANG YX, ZOU SX, GEGN X, et al. Application of harmless treatment of chicken manure and solar aerobic fermentation technology [C]// Collection of Essays on the Innovation and Application of Environmental Engineering Technology at the 2022 Science and Technology Annual Meeting of the Chinese Society of Environmental Sciences ( Ⅱ ). Nanchang, 2022:258-260. [17] 刘冠雄. 好氧发酵自动控制系统的研究[D]. 大庆: 黑龙江八一农垦大学, 2020. LIU GX. Research on the automatic control system for aerobic fermentation [D]. Daqing: Heilongjiang Bayi Agricultural University, 2020. [18] 张安琪, 黄光群, 张绍英, 等. 好氧堆肥反应器试验系统设计与性能试验[J]. 农业机械学报, 2014, 45(7):156-161. ZHANG AQ, HUANG GQ, ZHANG SY, et al. Design and test on an experimental aerobic composting reactor system [J]. Transactions of the Chinese Society for Agricultural Machinery, 2014, 45(7):156-161. [19] 祁玲. 畜禽粪便无害化处理设备的研究[J]. 农产品加工, 2019(19):87-89,93. QI L. Research on the equipment for dung of livestock and poultry pollution-free treatment[J]. Farm Products Processing, 2019(19):87-89,93. [20] 袁兴茂, 范国昌, 陈林, 等. 畜禽粪便高温快速发酵装备设计与试验[J]. 农业机械学报, 2018, 49(S1):413-418. YUAN XM, FAN GC, CHEN L, et al. Design and experiment of high-temperature rapid fermentation equipment for livestock manure [J]. Transactions of the Chinese Society for Agricultural Machinery, 2018, 49(S1):413-418. [21] 王烽. 小型通气加热式畜禽粪便堆肥设备的设计与试验[D]. 呼和浩特: 内蒙古农业大学, 2021. WANG F. Design and experiment of small composting equipment for fecal matter of livestock and poultry based on heating by aeration[D]. Hohhot: Inner Mongolia Agricultural University, 2021. [22] 谢滨, 张志成, 宋中建, 等. 农业废弃物快速好氧发酵设备设计与试验[J]. 智能化农业装备学报(中英文), 2023, 4(1):62-70. XIE B, ZHANG ZC, SONG ZJ, et al. Design and experiment of rapid aerobic fermentation equipment for agricultural waste [J]. Journal of Intelligent Agricultural Mechanization,2023, 4(1):62-70. [23] 成大先. 机械设计手册(第6 版第三卷)[M]. 北京: 机械工业出版社, 2017:146. CHENG DX. Machine design handbook(Volume 3 of the 6th edition) [M]. Beijing: Machinery Industry Press, 2017:146. [24] GB 7959-1987, 粪便无害化卫生标准[S]. GB 7959-1987, Sanitary Standard for the Non-hazardous[S]. [25] 展恩欣. 低C/N 废弃物(鸡粪)无辅料快速无害化处理工艺及设备开发[D]. 济南: 齐鲁工业大学, 2023. ZHAN EX. Development of technology and equipment for rapid and harmless treatment of low C/N waste (chicken manure) without auxiliary materials[D]. Jinan: Qilu University of Technology, 2023. [26] HJ 497—2009, 畜禽养殖业污染治理工程技术规范[S]. 北京: 中国环境科学出版社, 2009. HJ 497—2009, Technical specifications for pollution treatment projects of livestock and poultry farms [S]. Beijing: China Environmental Science Press, 2009. [27] 许佳瑜. 好氧堆肥发酵装置设计及过程曝气控制的试验研究[D]. 大庆: 黑龙江八一农垦大学, 2019. XU JY. Experimental study on design of aerobic composting fermentation device and process aeration control [D]. Daqing: Heilongjiang Bayi Agricultural University, 2019. [28] 徐艳婷. 好氧堆肥曝气供氧量预测系统的研发[D]. 大庆: 黑龙江八一农垦大学, 2021. XU YT. Research and development of oxygen supply prediction system for aerobic composting aeration[D]. Daqing: Heilongjiang Bayi Agricultural University, 2021. [29] DE GUARDIA A, PETIOT C, BENOIST JC, et al. Characterization and modelling of the heat transfers in a pilot-scale reactor during composting under forced aeration[J]. Waste Management, 2012, 32(6):1091-1105. [30] 丁国超, 施雪玲, 胡军. 基于CGA-BP 神经网络的好氧堆肥曝气供氧量预测模型[J]. 农业工程学报, 2023, 39(7):211-217. DING GC, SHI XL, HU J. Prediction model of the aeration oxygen supply for aerobic composting using CGA-BP neural network [J]. Transactions of the Chinese Society of Agricultural Engineering, 2023, 39(7):211-217. [31] 李梦洋. 好氧发酵堆体环境气体测量分析系统设计实现[D]. 天津: 河北工业大学, 2018. LI MY. Design and implement on the gas measureing and analysising system of aerobic fermentation[D]. Tianjin: Hebei University of Technology, 2018.
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