谷物联合收割机远程测产系统开发及降噪试验  被引量:27

Development and denoising test of grain combine with remote yield monitoring system

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作  者:李新成[1,2] 李民赞[1] 王锡九[3] 郑立华[1] 张漫[4] 孙茂真 孙红[4] 

机构地区:[1]“现代精细农业系统集成研究”教育部重点实验室,中国农业大学信息与电气工程学院,北京100083 [2]青岛农业大学机电工程学院,青岛266109 [3]山东省桓台县农业局,淄博256400 [4]农业部农业信息获取技术重点实验室,中国农业大学信息与电气工程学院,北京100083

出  处:《农业工程学报》2014年第2期1-8,共8页Transactions of the Chinese Society of Agricultural Engineering

基  金:国家“863”计划(2012AA101901);农业“948”项目(2011-G32)联合资助

摘  要:为降低田间振动干扰对谷物产量检测精度的影响,同时增加测产系统的实用性,设计了一种基于CAN总线技术、无线通信技术以及计算机网络技术的新型谷物智能测产系统。系统包括车载子系统和远程监测子系统2个部分,实现了谷物产量的现场监测、产量图绘制、远程监控与收获作业管理等功能。车载部分设计了弧形冲量传感器,提出了机械减振和双板差分方法来降低收割机振动对谷物流量测量的影响,采用数字阈值滤波的方法来提高谷物产量的测量精度,并建立了总产量和单位面积产量的数学模型。田间动态试验结果表明双板回归差分方式滤除干扰的效果优于直接差分,其最大测产误差为8.03%,测产平均误差为3.27%,最大测产误差比直接差分方式降低了7.12个百分点,最后绘制了试验地块的产量分布图。另外,系统的远程监控部分开发了界面友好的收获作业管理系统,实现了谷物产量的远程监测与管理。系统总体运行性能良好,满足了测产需要。Since grain yield in farmland has spatial variability, and the size of production can reflect the growth and management situation of grain, it is necessary to obtain accurate information on spatial distribution of production for implementing precision agriculture. However, it is still lacking of yield monitoring systems that are suitable for grain combine harvester and field conditions in China. The current developed systems in China mostly cannot reduce the vibration from the harvester, and tend to produce a large error in dynamic measurement of production. Therefore, in this study, a new type of intelligent grain yield monitoring system was developed in order to minimize the influence of the field vibration on accuracy of grain yield monitoring system and improve its practicality. The system included a remote monitoring subsystem based on computer networking technology and a vehicle-mounted subsystem based on controller area network (CAN) bus technology. The remote monitoring subsystem could realize on-site yield measurement, yield mapping, remote monitoring and harvest management. The vehicle-mounted subsystem consisted of industrial computer, CAN bus module, general packet radio service (GPRS), GPS receiver module and a variety of signal sensors. It could detect grain yield, generate yield map and remote wireless communication. Meanwhile, it collected impulse sensor data, elevator shaft speed, grain moisture, harvester travel speed and cutting width to establish mathematical model and measured the grain yield accurately. In addition, it also could get information on geographical location from GPS receiver to draw grain yield distribution map. Moreover, through the GPRS network, it sent the data to a remote personal computer (PC) for processing and displaying. The vehicle-mounted subsystem here adopted mechanical denoising method and double plates differential method to reduce the influence of harvester vibration on measurement accuracy, but the minor differences in output signals between pre-plate

关 键 词:谷物 传感器 试验 测产 降噪 产量图 精细农业 

分 类 号:TH823.3[机械工程—仪器科学与技术] S24[机械工程—精密仪器及机械]

 

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